BfModuleTypeUtils.cpp 563 KB

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  1. #include "BeefySysLib/util/AllocDebug.h"
  2. #include "BfCompiler.h"
  3. #include "BfSystem.h"
  4. #include "BfParser.h"
  5. #include "BfReducer.h"
  6. #include "BfCodeGen.h"
  7. #include "BfExprEvaluator.h"
  8. #include <fcntl.h>
  9. #include "BfConstResolver.h"
  10. #include "BfMangler.h"
  11. #include "BeefySysLib/util/PerfTimer.h"
  12. #include "BeefySysLib/util/BeefPerf.h"
  13. #include "BeefySysLib/util/StackHelper.h"
  14. #include "BfSourceClassifier.h"
  15. #include "BfAutoComplete.h"
  16. #include "BfDemangler.h"
  17. #include "BfResolvePass.h"
  18. #include "BfFixits.h"
  19. #include "BfIRCodeGen.h"
  20. #include "BfDefBuilder.h"
  21. #include "CeMachine.h"
  22. //////////////////////////////////////////////////////////////////////////
  23. int32 GetNumLowZeroBits(int32 n)
  24. {
  25. if (n == 0)
  26. return 32;
  27. int i = 0;
  28. while ((n & 1) == 0)
  29. {
  30. n = (int32)((uint32)n >> 1);
  31. i++;
  32. }
  33. return i;
  34. }
  35. //////////////////////////////////////////////////////////////////////////
  36. USING_NS_BF;
  37. BfGenericExtensionEntry* BfModule::BuildGenericExtensionInfo(BfTypeInstance* genericTypeInst, BfTypeDef* partialTypeDef)
  38. {
  39. if (!partialTypeDef->IsExtension())
  40. return NULL;
  41. if (partialTypeDef->mGenericParamDefs.size() != genericTypeInst->mGenericTypeInfo->mTypeGenericArguments.size())
  42. {
  43. AssertErrorState();
  44. return NULL;
  45. }
  46. BfGenericExtensionInfo* genericExtensionInfo = genericTypeInst->mGenericTypeInfo->mGenericExtensionInfo;
  47. if (genericExtensionInfo == NULL)
  48. {
  49. genericExtensionInfo = new BfGenericExtensionInfo();
  50. genericTypeInst->mGenericTypeInfo->mGenericExtensionInfo = genericExtensionInfo;
  51. }
  52. BfTypeState typeState;
  53. typeState.mPrevState = mContext->mCurTypeState;
  54. typeState.mType = genericTypeInst;
  55. typeState.mCurTypeDef = partialTypeDef;
  56. SetAndRestoreValue<BfTypeState*> prevTypeState(mContext->mCurTypeState, &typeState);
  57. BfGenericExtensionEntry* genericExEntry;
  58. genericExtensionInfo->mExtensionMap.TryAdd(partialTypeDef, NULL, &genericExEntry);
  59. int startDefGenericParamIdx = (int)genericExEntry->mGenericParams.size();
  60. for (int paramIdx = startDefGenericParamIdx; paramIdx < (int)genericTypeInst->mGenericTypeInfo->mTypeGenericArguments.size(); paramIdx++)
  61. {
  62. auto genericParamInstance = new BfGenericTypeParamInstance(partialTypeDef, paramIdx);
  63. genericParamInstance->mExternType = GetGenericParamType(BfGenericParamKind_Type, paramIdx);
  64. auto prevPtr = genericExEntry->mGenericParams.mVals;
  65. genericExEntry->mGenericParams.push_back(genericParamInstance);
  66. }
  67. for (int externConstraintIdx = 0; externConstraintIdx < (int)partialTypeDef->mExternalConstraints.size(); externConstraintIdx++)
  68. {
  69. auto& genericConstraint = partialTypeDef->mExternalConstraints[externConstraintIdx];
  70. auto genericParamInstance = new BfGenericTypeParamInstance(partialTypeDef, externConstraintIdx + (int)partialTypeDef->mGenericParamDefs.size());
  71. genericParamInstance->mExternType = ResolveTypeRef(genericConstraint.mTypeRef, BfPopulateType_Identity);
  72. auto autoComplete = mCompiler->GetAutoComplete();
  73. if (autoComplete != NULL)
  74. autoComplete->CheckTypeRef(genericConstraint.mTypeRef, false);
  75. if (genericParamInstance->mExternType == NULL)
  76. genericParamInstance->mExternType = GetPrimitiveType(BfTypeCode_Var);
  77. ResolveGenericParamConstraints(genericParamInstance, genericTypeInst->IsUnspecializedType());
  78. genericExEntry->mGenericParams.push_back(genericParamInstance);
  79. }
  80. for (int paramIdx = startDefGenericParamIdx; paramIdx < (int)genericTypeInst->mGenericTypeInfo->mTypeGenericArguments.size(); paramIdx++)
  81. {
  82. auto genericParamInstance = genericExEntry->mGenericParams[paramIdx];
  83. auto rootGenericParamInstance = genericTypeInst->mGenericTypeInfo->mGenericParams[paramIdx];
  84. genericParamInstance->mTypeConstraint = rootGenericParamInstance->mTypeConstraint;
  85. genericParamInstance->mInterfaceConstraints = rootGenericParamInstance->mInterfaceConstraints;
  86. genericParamInstance->mGenericParamFlags = (BfGenericParamFlags)(genericParamInstance->mGenericParamFlags | rootGenericParamInstance->mGenericParamFlags);
  87. ResolveGenericParamConstraints(genericParamInstance, genericTypeInst->IsUnspecializedType());
  88. }
  89. for (auto genericParam : genericExEntry->mGenericParams)
  90. AddDependency(genericParam, mCurTypeInstance);
  91. ValidateGenericParams(BfGenericParamKind_Type,
  92. Span<BfGenericParamInstance*>((BfGenericParamInstance**)genericExEntry->mGenericParams.mVals,
  93. genericExEntry->mGenericParams.mSize));
  94. return genericExEntry;
  95. }
  96. bool BfModule::InitGenericParams(BfType* resolvedTypeRef)
  97. {
  98. BfTypeState typeState;
  99. typeState.mPrevState = mContext->mCurTypeState;
  100. typeState.mResolveKind = BfTypeState::ResolveKind_BuildingGenericParams;
  101. typeState.mType = resolvedTypeRef;
  102. SetAndRestoreValue<BfTypeState*> prevTypeState(mContext->mCurTypeState, &typeState);
  103. BF_ASSERT(mCurMethodInstance == NULL);
  104. auto genericTypeInst = resolvedTypeRef->ToGenericTypeInstance();
  105. genericTypeInst->mGenericTypeInfo->mInitializedGenericParams = true;
  106. if (genericTypeInst->mGenericTypeInfo->mTypeGenericArguments.IsEmpty())
  107. return true;
  108. if (genericTypeInst->mGenericTypeInfo->mTypeGenericArguments[0]->IsGenericParam())
  109. {
  110. BF_ASSERT(genericTypeInst->mGenericTypeInfo->mIsUnspecialized);
  111. }
  112. auto typeDef = genericTypeInst->mTypeDef;
  113. int startDefGenericParamIdx = (int)genericTypeInst->mGenericTypeInfo->mGenericParams.size();
  114. for (int paramIdx = startDefGenericParamIdx; paramIdx < (int)genericTypeInst->mGenericTypeInfo->mTypeGenericArguments.size(); paramIdx++)
  115. {
  116. auto genericParamInstance = new BfGenericTypeParamInstance(typeDef, paramIdx);
  117. genericParamInstance->mExternType = GetGenericParamType(BfGenericParamKind_Type, paramIdx);
  118. genericTypeInst->mGenericTypeInfo->mGenericParams.push_back(genericParamInstance);
  119. }
  120. for (int externConstraintIdx = 0; externConstraintIdx < (int)typeDef->mExternalConstraints.size(); externConstraintIdx++)
  121. {
  122. auto genericParamInstance = new BfGenericTypeParamInstance(typeDef, externConstraintIdx + (int)typeDef->mGenericParamDefs.size());
  123. genericTypeInst->mGenericTypeInfo->mGenericParams.push_back(genericParamInstance);
  124. }
  125. return true;
  126. }
  127. bool BfModule::FinishGenericParams(BfType* resolvedTypeRef)
  128. {
  129. BfTypeState typeState;
  130. typeState.mPrevState = mContext->mCurTypeState;
  131. typeState.mResolveKind = BfTypeState::ResolveKind_BuildingGenericParams;
  132. typeState.mType = resolvedTypeRef;
  133. SetAndRestoreValue<BfTypeState*> prevTypeState(mContext->mCurTypeState, &typeState);
  134. Array<BfTypeReference*> deferredResolveTypes;
  135. BF_ASSERT(mCurMethodInstance == NULL);
  136. auto genericTypeInst = resolvedTypeRef->ToGenericTypeInstance();
  137. genericTypeInst->mGenericTypeInfo->mFinishedGenericParams = true;
  138. if (genericTypeInst->mGenericTypeInfo->mTypeGenericArguments[0]->IsGenericParam())
  139. {
  140. BF_ASSERT(genericTypeInst->mGenericTypeInfo->mIsUnspecialized);
  141. }
  142. auto typeDef = genericTypeInst->mTypeDef;
  143. int startDefGenericParamIdx = (int)genericTypeInst->mGenericTypeInfo->mGenericParams.size();
  144. if ((!resolvedTypeRef->IsTuple()) && (!resolvedTypeRef->IsDelegateFromTypeRef()) && (!resolvedTypeRef->IsFunctionFromTypeRef()))
  145. {
  146. startDefGenericParamIdx = startDefGenericParamIdx -
  147. (int)genericTypeInst->mGenericTypeInfo->mTypeGenericArguments.size() -
  148. (int)typeDef->mExternalConstraints.size();
  149. }
  150. BF_ASSERT(startDefGenericParamIdx >= 0);
  151. if (!typeDef->mPartials.empty())
  152. {
  153. BitSet prevConstraintsPassedSet;
  154. if (!genericTypeInst->IsUnspecializedType())
  155. {
  156. if (genericTypeInst->mGenericTypeInfo->mGenericExtensionInfo != NULL)
  157. {
  158. auto genericExtensionInfo = genericTypeInst->mGenericTypeInfo->mGenericExtensionInfo;
  159. prevConstraintsPassedSet = genericExtensionInfo->mConstraintsPassedSet;
  160. genericExtensionInfo->mConstraintsPassedSet.Clear();
  161. }
  162. }
  163. int extensionCount = 0;
  164. BfLogSysM("BfModule::FinishGenericParams %p\n", resolvedTypeRef);
  165. for (auto partialTypeDef : typeDef->mPartials)
  166. {
  167. if (!partialTypeDef->IsExtension())
  168. {
  169. typeState.mCurTypeDef = partialTypeDef;
  170. for (int paramIdx = startDefGenericParamIdx; paramIdx < (int)genericTypeInst->mGenericTypeInfo->mGenericParams.size(); paramIdx++)
  171. {
  172. auto genericParamInstance = genericTypeInst->mGenericTypeInfo->mGenericParams[paramIdx];
  173. auto genericParamDef = genericParamInstance->GetGenericParamDef();
  174. if (paramIdx < (int)typeDef->mGenericParamDefs.size())
  175. {
  176. genericParamInstance->mExternType = GetGenericParamType(BfGenericParamKind_Type, paramIdx);
  177. }
  178. else
  179. {
  180. auto externConstraintDef = genericParamInstance->GetExternConstraintDef();
  181. genericParamInstance->mExternType = ResolveTypeRef(externConstraintDef->mTypeRef);
  182. if (genericParamInstance->mExternType == NULL)
  183. genericParamInstance->mExternType = GetPrimitiveType(BfTypeCode_Var);
  184. }
  185. ResolveGenericParamConstraints(genericParamInstance, genericTypeInst->IsUnspecializedType(), &deferredResolveTypes);
  186. if (genericParamDef != NULL)
  187. {
  188. for (auto nameNode : genericParamDef->mNameNodes)
  189. {
  190. HandleTypeGenericParamRef(nameNode, typeDef, paramIdx);
  191. }
  192. }
  193. }
  194. }
  195. else
  196. {
  197. auto genericExEntry = BuildGenericExtensionInfo(genericTypeInst, partialTypeDef);
  198. if (genericExEntry == NULL)
  199. continue;
  200. auto genericExtensionInfo = genericTypeInst->mGenericTypeInfo->mGenericExtensionInfo;
  201. if (extensionCount == 0)
  202. genericExtensionInfo->mConstraintsPassedSet.Resize(typeDef->mPartials.mSize);
  203. extensionCount++;
  204. if (!genericTypeInst->IsUnspecializedType())
  205. {
  206. SetAndRestoreValue<bool> prevIgnoreErrors(mIgnoreErrors, true);
  207. for (int paramIdx = 0; paramIdx < genericExEntry->mGenericParams.size(); paramIdx++)
  208. {
  209. auto genericParamInstance = genericExEntry->mGenericParams[paramIdx];
  210. BfGenericParamSource genericParamSource;
  211. genericParamSource.mCheckAccessibility = false;
  212. genericParamSource.mTypeInstance = genericTypeInst;
  213. BfError* error = NULL;
  214. BfType* genericArg;
  215. if (paramIdx < (int)genericTypeInst->mGenericTypeInfo->mTypeGenericArguments.size())
  216. {
  217. genericArg = genericTypeInst->mGenericTypeInfo->mTypeGenericArguments[paramIdx];
  218. }
  219. else
  220. {
  221. genericArg = genericParamInstance->mExternType;
  222. }
  223. if ((genericArg == NULL) || (!CheckGenericConstraints(genericParamSource, genericArg, NULL, genericParamInstance, NULL, &error)))
  224. {
  225. genericExEntry->mConstraintsPassed = false;
  226. }
  227. }
  228. }
  229. if (genericExEntry->mConstraintsPassed)
  230. genericExtensionInfo->mConstraintsPassedSet.Set(partialTypeDef->mPartialIdx);
  231. BfLogSysM("BfModule::FinishGenericParams %p partialTypeDef:%p passed:%d\n", resolvedTypeRef, partialTypeDef, genericExEntry->mConstraintsPassed);
  232. }
  233. }
  234. auto genericExtensionInfo = genericTypeInst->mGenericTypeInfo->mGenericExtensionInfo;
  235. if ((extensionCount > 0) && (!prevConstraintsPassedSet.IsEmpty()) && (genericExtensionInfo->mConstraintsPassedSet != prevConstraintsPassedSet))
  236. {
  237. mContext->QueueMidCompileRebuildDependentTypes(genericTypeInst, "mConstraintsPassedSet changed");
  238. }
  239. }
  240. else
  241. {
  242. for (int paramIdx = startDefGenericParamIdx; paramIdx < (int)genericTypeInst->mGenericTypeInfo->mGenericParams.size(); paramIdx++)
  243. {
  244. auto genericParamInstance = genericTypeInst->mGenericTypeInfo->mGenericParams[paramIdx];
  245. if (paramIdx < (int)typeDef->mGenericParamDefs.size())
  246. {
  247. genericParamInstance->mExternType = GetGenericParamType(BfGenericParamKind_Type, paramIdx);
  248. }
  249. else
  250. {
  251. auto externConstraintDef = genericParamInstance->GetExternConstraintDef();
  252. genericParamInstance->mExternType = ResolveTypeRef(externConstraintDef->mTypeRef);
  253. auto autoComplete = mCompiler->GetAutoComplete();
  254. if (autoComplete != NULL)
  255. autoComplete->CheckTypeRef(externConstraintDef->mTypeRef, false);
  256. if (genericParamInstance->mExternType != NULL)
  257. {
  258. //
  259. }
  260. else
  261. genericParamInstance->mExternType = GetPrimitiveType(BfTypeCode_Var);
  262. }
  263. ResolveGenericParamConstraints(genericParamInstance, genericTypeInst->IsUnspecializedType(), &deferredResolveTypes);
  264. auto genericParamDef = genericParamInstance->GetGenericParamDef();
  265. if (genericParamDef != NULL)
  266. {
  267. for (auto nameNode : genericParamDef->mNameNodes)
  268. {
  269. HandleTypeGenericParamRef(nameNode, typeDef, paramIdx);
  270. }
  271. }
  272. }
  273. }
  274. for (auto typeRef : deferredResolveTypes)
  275. auto constraintType = ResolveTypeRef(typeRef, BfPopulateType_Declaration, BfResolveTypeRefFlag_None);
  276. ValidateGenericParams(BfGenericParamKind_Type,
  277. Span<BfGenericParamInstance*>((BfGenericParamInstance**)genericTypeInst->mGenericTypeInfo->mGenericParams.mVals,
  278. genericTypeInst->mGenericTypeInfo->mGenericParams.mSize));
  279. for (auto genericParam : genericTypeInst->mGenericTypeInfo->mGenericParams)
  280. AddDependency(genericParam, mCurTypeInstance);
  281. return true;
  282. }
  283. void BfModule::ValidateGenericParams(BfGenericParamKind genericParamKind, Span<BfGenericParamInstance*> genericParams)
  284. {
  285. std::function<void(BfType*, Array<BfGenericParamType*>&)> _CheckType = [&](BfType* type, Array<BfGenericParamType*>& foundParams)
  286. {
  287. if (type == NULL)
  288. return;
  289. if (!type->IsGenericParam())
  290. return;
  291. auto genericParamType = (BfGenericParamType*)type;
  292. if (genericParamType->mGenericParamKind != genericParamKind)
  293. return;
  294. auto genericParam = genericParams[genericParamType->mGenericParamIdx];
  295. if (genericParam->mTypeConstraint == NULL)
  296. return;
  297. if (foundParams.Contains(genericParamType))
  298. {
  299. String error = "Circular constraint dependency between ";
  300. for (int i = 0; i < foundParams.mSize; i++)
  301. {
  302. auto foundParam = foundParams[i];
  303. if (i > 0)
  304. error += " and ";
  305. error += TypeToString(foundParam, BfTypeNameFlag_ResolveGenericParamNames);
  306. // Remove errored type constraint
  307. genericParams[foundParam->mGenericParamIdx]->mTypeConstraint = NULL;
  308. }
  309. if (foundParams.mSize == 1)
  310. error += " and itself";
  311. Fail(error, genericParams[genericParamType->mGenericParamIdx]->GetRefNode());
  312. return;
  313. }
  314. foundParams.Add(genericParamType);
  315. _CheckType(genericParam->mTypeConstraint, foundParams);
  316. foundParams.pop_back();
  317. };
  318. for (auto genericParam : genericParams)
  319. {
  320. if (genericParam->mTypeConstraint != NULL)
  321. {
  322. Array<BfGenericParamType*> foundParams;
  323. _CheckType(genericParam->mTypeConstraint, foundParams);
  324. }
  325. }
  326. }
  327. void BfModule::SetGenericValidationError(BfTypeInstance* typeInst)
  328. {
  329. if ((typeInst->mGenericTypeInfo == NULL) || (typeInst->mGenericTypeInfo->mHadValidateErrors))
  330. return;
  331. typeInst->mGenericTypeInfo->mHadValidateErrors = true;
  332. for (auto depKV : typeInst->mDependencyMap)
  333. {
  334. auto depType = depKV.mKey;
  335. auto depEntry = depKV.mValue;
  336. if ((depEntry.mFlags & BfDependencyMap::DependencyFlag_TypeGenericArg) != 0)
  337. {
  338. BF_ASSERT(depType->IsGenericTypeInstance());
  339. // If A<T> had validate errors then consider B<A<T>> to have validate errors
  340. SetGenericValidationError(depType->ToTypeInstance());
  341. }
  342. }
  343. }
  344. bool BfModule::ValidateGenericConstraints(BfAstNode* typeRef, BfTypeInstance* genericTypeInst, bool ignoreErrors)
  345. {
  346. if ((mCurTypeInstance != NULL) && (mCurTypeInstance->IsTypeAlias()) && (mCurTypeInstance->IsGenericTypeInstance()))
  347. {
  348. // Don't validate constraints during the population of a concrete generic type alias instance, we want to
  349. // throw those errors at the usage sites
  350. return true;
  351. }
  352. // We don't validate constraints for things like Tuples/Delegates
  353. if (genericTypeInst->IsOnDemand())
  354. return true;
  355. SetAndRestoreValue<bool> prevIgnoreErrors(mIgnoreErrors, mIgnoreErrors || ignoreErrors);
  356. genericTypeInst->mGenericTypeInfo->mValidatedGenericConstraints = true;
  357. if (!genericTypeInst->mGenericTypeInfo->mFinishedGenericParams)
  358. mContext->mUnreifiedModule->PopulateType(genericTypeInst, BfPopulateType_Interfaces_All);
  359. if (genericTypeInst->IsTypeAlias())
  360. {
  361. auto underlyingType = genericTypeInst->GetUnderlyingType();
  362. if ((underlyingType != NULL) && (underlyingType->IsGenericTypeInstance()))
  363. {
  364. auto underlyingGenericType = underlyingType->ToGenericTypeInstance();
  365. mContext->mUnreifiedModule->PopulateType(underlyingType, BfPopulateType_Declaration);
  366. bool result = ValidateGenericConstraints(typeRef, underlyingGenericType, ignoreErrors);
  367. if (underlyingGenericType->mGenericTypeInfo->mHadValidateErrors)
  368. SetGenericValidationError(genericTypeInst);
  369. return result;
  370. }
  371. return true;
  372. }
  373. for (auto typeArg : genericTypeInst->mGenericTypeInfo->mTypeGenericArguments)
  374. {
  375. auto genericArg = typeArg->ToGenericTypeInstance();
  376. if (genericArg != NULL)
  377. genericTypeInst->mGenericTypeInfo->mMaxGenericDepth = BF_MAX(genericTypeInst->mGenericTypeInfo->mMaxGenericDepth, genericArg->mGenericTypeInfo->mMaxGenericDepth + 1);
  378. }
  379. auto typeDef = genericTypeInst->mTypeDef;
  380. int startGenericParamIdx = 0;
  381. if (typeDef->mOuterType != NULL)
  382. {
  383. startGenericParamIdx = typeDef->mOuterType->mGenericParamDefs.mSize + typeDef->mOuterType->mExternalConstraints.mSize;
  384. auto outerType = GetOuterType(genericTypeInst);
  385. mContext->mUnreifiedModule->PopulateType(outerType, BfPopulateType_Declaration);
  386. if ((outerType->mGenericTypeInfo != NULL) && (outerType->mGenericTypeInfo->mHadValidateErrors))
  387. SetGenericValidationError(genericTypeInst);
  388. }
  389. for (int paramIdx = startGenericParamIdx; paramIdx < (int)genericTypeInst->mGenericTypeInfo->mGenericParams.size(); paramIdx++)
  390. {
  391. auto genericParamInstance = genericTypeInst->mGenericTypeInfo->mGenericParams[paramIdx];
  392. BfType* genericArg;
  393. if (paramIdx < (int)genericTypeInst->mGenericTypeInfo->mTypeGenericArguments.size())
  394. {
  395. genericArg = genericTypeInst->mGenericTypeInfo->mTypeGenericArguments[paramIdx];
  396. }
  397. else
  398. {
  399. genericArg = genericParamInstance->mExternType;
  400. }
  401. BfError* error = NULL;
  402. if ((genericArg == NULL) || (!CheckGenericConstraints(BfGenericParamSource(genericTypeInst), genericArg, typeRef, genericParamInstance, NULL, &error)))
  403. {
  404. if (!genericTypeInst->IsUnspecializedTypeVariation())
  405. SetGenericValidationError(genericTypeInst);
  406. return false;
  407. }
  408. }
  409. return true;
  410. }
  411. BfType* BfModule::ResolveGenericMethodTypeRef(BfTypeReference* typeRef, BfMethodInstance* methodInstance, BfGenericParamInstance* genericParamInstance, BfTypeVector* methodGenericArgsOverride)
  412. {
  413. BfConstraintState constraintSet;
  414. constraintSet.mPrevState = mContext->mCurConstraintState;
  415. constraintSet.mGenericParamInstance = genericParamInstance;
  416. constraintSet.mMethodInstance = methodInstance;
  417. constraintSet.mMethodGenericArgsOverride = methodGenericArgsOverride;
  418. SetAndRestoreValue<BfConstraintState*> prevConstraintSet(mContext->mCurConstraintState, &constraintSet);
  419. if (!CheckConstraintState(NULL))
  420. return NULL;
  421. SetAndRestoreValue<BfMethodInstance*> prevMethodInstance(mCurMethodInstance, methodInstance);
  422. SetAndRestoreValue<BfTypeInstance*> prevTypeInstance(mCurTypeInstance, methodInstance->GetOwner());
  423. SetAndRestoreValue<bool> prevIgnoreErrors(mIgnoreErrors, true);
  424. BfType* type = ResolveTypeRef(typeRef);
  425. if (type == NULL)
  426. type = GetPrimitiveType(BfTypeCode_Var);
  427. return type;
  428. }
  429. bool BfModule::AreConstraintsSubset(BfGenericParamInstance* checkInner, BfGenericParamInstance* checkOuter)
  430. {
  431. if (checkOuter == NULL)
  432. return false;
  433. if (checkInner == NULL)
  434. return true;
  435. // Added new flags?
  436. if ((checkInner->mGenericParamFlags | checkOuter->mGenericParamFlags) != checkOuter->mGenericParamFlags)
  437. {
  438. // If the outer had a type flag and the inner has a specific type constraint, then see if those are compatible
  439. auto outerFlags = checkOuter->mGenericParamFlags;
  440. if ((outerFlags & BfGenericParamFlag_Enum) != 0)
  441. outerFlags = (BfGenericParamFlags)(outerFlags | BfGenericParamFlag_Struct);
  442. if (checkOuter->mTypeConstraint != NULL)
  443. {
  444. if (checkOuter->mTypeConstraint->IsStruct())
  445. outerFlags = (BfGenericParamFlags)(outerFlags | BfGenericParamFlag_Struct);
  446. else if (checkOuter->mTypeConstraint->IsStructOrStructPtr())
  447. outerFlags = (BfGenericParamFlags)(outerFlags | BfGenericParamFlag_StructPtr);
  448. else if ((checkOuter->mTypeConstraint->IsObject()) && (!checkOuter->mTypeConstraint->IsDelegate()))
  449. outerFlags = (BfGenericParamFlags)(outerFlags | BfGenericParamFlag_Class);
  450. else if (checkOuter->mTypeConstraint->IsEnum())
  451. outerFlags = (BfGenericParamFlags)(outerFlags | BfGenericParamFlag_Enum | BfGenericParamFlag_Struct);
  452. else if (checkOuter->mTypeConstraint->IsInterface())
  453. outerFlags = (BfGenericParamFlags)(outerFlags | BfGenericParamFlag_Interface);
  454. }
  455. auto innerFlags = checkInner->mGenericParamFlags;
  456. if ((innerFlags & BfGenericParamFlag_Enum) != 0)
  457. innerFlags = (BfGenericParamFlags)(innerFlags | BfGenericParamFlag_Struct);
  458. if (((innerFlags | outerFlags) & ~BfGenericParamFlag_Var) != (outerFlags & ~BfGenericParamFlag_Var))
  459. return false;
  460. }
  461. if (checkInner->mTypeConstraint != NULL)
  462. {
  463. if (checkOuter->mTypeConstraint == NULL)
  464. return false;
  465. if (!TypeIsSubTypeOf(checkOuter->mTypeConstraint->ToTypeInstance(), checkInner->mTypeConstraint->ToTypeInstance()))
  466. return false;
  467. }
  468. for (auto innerIFace : checkInner->mInterfaceConstraints)
  469. {
  470. if (checkOuter->mInterfaceConstraints.IsEmpty())
  471. return false;
  472. if (checkOuter->mInterfaceConstraintSet == NULL)
  473. {
  474. std::function<void(BfTypeInstance*)> _AddInterface = [&](BfTypeInstance* ifaceType)
  475. {
  476. if (!checkOuter->mInterfaceConstraintSet->Add(ifaceType))
  477. return;
  478. if (ifaceType->mDefineState < BfTypeDefineState_HasInterfaces_Direct)
  479. PopulateType(ifaceType, Beefy::BfPopulateType_Interfaces_Direct);
  480. for (auto& ifaceEntry : ifaceType->mInterfaces)
  481. _AddInterface(ifaceEntry.mInterfaceType);
  482. };
  483. checkOuter->mInterfaceConstraintSet = new HashSet<BfTypeInstance*>();
  484. for (auto outerIFace : checkOuter->mInterfaceConstraints)
  485. _AddInterface(outerIFace);
  486. }
  487. if (!checkOuter->mInterfaceConstraintSet->Contains(innerIFace))
  488. return false;
  489. }
  490. for (auto& innerOp : checkInner->mOperatorConstraints)
  491. {
  492. if (!checkOuter->mOperatorConstraints.Contains(innerOp))
  493. return false;
  494. }
  495. return true;
  496. }
  497. bool BfModule::CheckConstraintState(BfAstNode* refNode)
  498. {
  499. if (mContext->mCurConstraintState == NULL)
  500. return true;
  501. auto checkState = mContext->mCurConstraintState->mPrevState;
  502. while (checkState != NULL)
  503. {
  504. if (*checkState == *mContext->mCurConstraintState)
  505. {
  506. if (refNode != NULL)
  507. {
  508. Fail("Constraints cause circular operator invocations", refNode);
  509. }
  510. return false;
  511. }
  512. checkState = checkState->mPrevState;
  513. }
  514. return true;
  515. }
  516. bool BfModule::ShouldAllowMultipleDefinitions(BfTypeInstance* typeInst, BfTypeDef* firstDeclaringTypeDef, BfTypeDef* secondDeclaringTypeDef)
  517. {
  518. if (firstDeclaringTypeDef == secondDeclaringTypeDef)
  519. return false;
  520. // Since we will use shared debugging info, we won't be able to differentiate between these two fields.
  521. // If we created per-target debug info then we could "fix" this.
  522. // Can these projects even see each other?
  523. if ((!firstDeclaringTypeDef->mProject->ContainsReference(secondDeclaringTypeDef->mProject)) &&
  524. (!secondDeclaringTypeDef->mProject->ContainsReference(firstDeclaringTypeDef->mProject)))
  525. return true;
  526. if (typeInst->IsUnspecializedType())
  527. {
  528. bool alwaysCoincide = true;
  529. auto genericTypeInst = (BfTypeInstance*)typeInst;
  530. if (genericTypeInst->mGenericTypeInfo->mGenericExtensionInfo != NULL)
  531. {
  532. auto firstConstraints = genericTypeInst->GetGenericParamsVector(firstDeclaringTypeDef);
  533. auto secondConstraints = genericTypeInst->GetGenericParamsVector(secondDeclaringTypeDef);
  534. for (int genericIdx = 0; genericIdx < (int)firstConstraints->size(); genericIdx++)
  535. {
  536. auto firstConstraint = (*firstConstraints)[genericIdx];
  537. auto secondConstraint = (*secondConstraints)[genericIdx];
  538. if ((!AreConstraintsSubset(firstConstraint, secondConstraint)) &&
  539. (!AreConstraintsSubset(secondConstraint, firstConstraint)))
  540. alwaysCoincide = false;
  541. }
  542. }
  543. // Only show an error if we are certain both members will always appear at the same time
  544. if (!alwaysCoincide)
  545. return true;
  546. }
  547. return false;
  548. }
  549. void BfModule::CheckInjectNewRevision(BfTypeInstance* typeInstance)
  550. {
  551. if ((typeInstance != NULL) && (typeInstance->mTypeDef != NULL))
  552. {
  553. auto typeDef = typeInstance->mTypeDef;
  554. if (typeDef->mEmitParent != NULL)
  555. typeDef = typeDef->mEmitParent;
  556. if (typeDef->mNextRevision != NULL)
  557. {
  558. // It's possible that our main compiler thread is generating a new typedef while we're autocompleting. This handles that case...
  559. if (typeInstance->mDefineState == BfTypeDefineState_Undefined)
  560. {
  561. if (typeInstance->IsBoxed())
  562. {
  563. BfBoxedType* boxedType = (BfBoxedType*)typeInstance;
  564. BfTypeInstance* innerType = boxedType->mElementType->ToTypeInstance();
  565. PopulateType(innerType, BfPopulateType_Data);
  566. }
  567. else
  568. {
  569. mContext->HandleChangedTypeDef(typeDef);
  570. mSystem->InjectNewRevision(typeDef);
  571. }
  572. }
  573. else
  574. {
  575. BF_ASSERT(mCompiler->IsAutocomplete());
  576. }
  577. }
  578. if ((!typeInstance->IsDeleting()) && (!mCompiler->IsAutocomplete()))
  579. BF_ASSERT((typeDef->mDefState == BfTypeDef::DefState_Defined) || (typeDef->mDefState == BfTypeDef::DefState_New));
  580. if ((typeInstance->mTypeDef->mDefState == BfTypeDef::DefState_EmittedDirty) && (typeInstance->mTypeDef->mEmitParent->mNextRevision == NULL))
  581. mSystem->UpdateEmittedTypeDef(typeInstance->mTypeDef);
  582. }
  583. }
  584. void BfModule::InitType(BfType* resolvedTypeRef, BfPopulateType populateType)
  585. {
  586. BP_ZONE("BfModule::InitType");
  587. if (auto depType = resolvedTypeRef->ToDependedType())
  588. {
  589. if ((mCurMethodInstance != NULL) && (mCurMethodInstance->mMethodInfoEx != NULL))
  590. {
  591. depType->mDependencyMap.mMinDependDepth = mCurMethodInstance->mMethodInfoEx->mMinDependDepth + 1;
  592. }
  593. else if (mCurTypeInstance != NULL)
  594. {
  595. depType->mDependencyMap.mMinDependDepth = mCurTypeInstance->mDependencyMap.mMinDependDepth + 1;
  596. }
  597. }
  598. SetAndRestoreValue<BfTypeInstance*> prevTypeInstance(mCurTypeInstance, resolvedTypeRef->ToTypeInstance());
  599. SetAndRestoreValue<BfMethodInstance*> prevMethodInstance(mCurMethodInstance, NULL);
  600. if (mCompiler->mHotState != NULL)
  601. mCompiler->mHotState->mHasNewTypes = true;
  602. auto typeInst = resolvedTypeRef->ToTypeInstance();
  603. if (typeInst != NULL)
  604. {
  605. CheckInjectNewRevision(typeInst);
  606. BF_ASSERT(!typeInst->mTypeDef->IsEmitted());
  607. if (typeInst->mBaseType != NULL)
  608. BF_ASSERT((typeInst->mBaseType->mRebuildFlags & BfTypeRebuildFlag_Deleted) == 0);
  609. if ((typeInst->mTypeDef != NULL) && (typeInst->mTypeDef->mDefState == BfTypeDef::DefState_New) &&
  610. (typeInst->mTypeDef->mNextRevision == NULL))
  611. {
  612. mContext->HandleChangedTypeDef(typeInst->mTypeDef);
  613. typeInst->mTypeDef->mDefState = BfTypeDef::DefState_Defined;
  614. }
  615. typeInst->mIsReified = mIsReified;
  616. //BF_ASSERT(typeInst->mTypeDef->mTypeCode != BfTypeCode_Extension);
  617. typeInst->mRevision = mCompiler->mRevision;
  618. if (typeInst->mTypeDef != NULL)
  619. BF_ASSERT(typeInst->mTypeDef->mDefState != BfTypeDef::DefState_Deleted);
  620. if (resolvedTypeRef->IsTuple())
  621. {
  622. auto tupleType = (BfTypeInstance*)resolvedTypeRef;
  623. for (int fieldIdx = 0; fieldIdx < (int)tupleType->mFieldInstances.size(); fieldIdx++)
  624. {
  625. auto fieldInstance = (BfFieldInstance*)&tupleType->mFieldInstances[fieldIdx];
  626. // We need to make sure dependencies get set immediately since we already resolved the types
  627. AddFieldDependency(typeInst, fieldInstance, fieldInstance->mResolvedType);
  628. }
  629. }
  630. }
  631. if (resolvedTypeRef->IsGenericTypeInstance())
  632. {
  633. auto genericTypeInst = (BfTypeInstance*)resolvedTypeRef;
  634. for (auto typeGenericArg : genericTypeInst->mGenericTypeInfo->mTypeGenericArguments)
  635. {
  636. //BF_ASSERT((typeGenericArg->mRebuildFlags & BfTypeRebuildFlag_Deleted) == 0);
  637. if ((typeGenericArg->mRebuildFlags & BfTypeRebuildFlag_Deleted) != 0)
  638. {
  639. mCompiler->RequestExtraCompile();
  640. InternalError("Using deleted generic type argument in PopulateType");
  641. TypeFailed(genericTypeInst);
  642. return;
  643. }
  644. if (mIsReified)
  645. {
  646. // Try to reify any generic args
  647. for (auto genericArg : typeInst->mGenericTypeInfo->mTypeGenericArguments)
  648. {
  649. if (!genericArg->IsReified())
  650. PopulateType(genericArg, BfPopulateType_Declaration);
  651. }
  652. }
  653. BF_ASSERT(!typeGenericArg->IsIntUnknown());
  654. }
  655. }
  656. if (!mContext->mSavedTypeDataMap.IsEmpty())
  657. {
  658. String typeName = BfSafeMangler::Mangle(resolvedTypeRef, this);
  659. BfSavedTypeData* savedTypeData;
  660. if (mContext->mSavedTypeDataMap.Remove(typeName, &savedTypeData))
  661. {
  662. mContext->mSavedTypeData[savedTypeData->mTypeId] = NULL;
  663. resolvedTypeRef->mTypeId = savedTypeData->mTypeId;
  664. BfLogSysM("Using mSavedTypeData for %p %s\n", resolvedTypeRef, typeName.c_str());
  665. if (typeInst != NULL)
  666. {
  667. if (IsHotCompile())
  668. {
  669. BfLogSysM("Using mSavedTypeData HotTypeData %p for %p\n", savedTypeData->mHotTypeData, resolvedTypeRef);
  670. typeInst->mHotTypeData = savedTypeData->mHotTypeData;
  671. savedTypeData->mHotTypeData = NULL;
  672. }
  673. }
  674. delete savedTypeData;
  675. mContext->mTypes[resolvedTypeRef->mTypeId] = resolvedTypeRef;
  676. }
  677. else
  678. {
  679. BfLogSysM("No mSavedTypeData entry for %p %s\n", resolvedTypeRef, typeName.c_str());
  680. }
  681. }
  682. resolvedTypeRef->mContext = mContext;
  683. if (resolvedTypeRef->IsGenericTypeInstance())
  684. {
  685. auto genericTypeInstance = (BfTypeInstance*)resolvedTypeRef;
  686. #ifdef _DEBUG
  687. for (auto genericArg : genericTypeInstance->mGenericTypeInfo->mTypeGenericArguments)
  688. BF_ASSERT(!genericArg->IsVar());
  689. #endif
  690. // We need to add generic dependencies here because when we are just doing an Identity population there may be
  691. // on-demand types that could get deleted before initializing the type
  692. DoPopulateType_SetGenericDependencies(genericTypeInstance);
  693. // Do it here so the location we attempted to specialize this type will throw the failure if there is one
  694. if (!InitGenericParams(resolvedTypeRef))
  695. return;
  696. }
  697. if ((typeInst != NULL) && (typeInst->mIsReified) && (!mCompiler->mIsResolveOnly))
  698. {
  699. BfLogSysM("REIFIED(InitType): %s Type:%p FromModule:%s FromMethod:%p\n", TypeToString(resolvedTypeRef).c_str(), resolvedTypeRef, mModuleName.c_str(), prevMethodInstance.mPrevVal);
  700. }
  701. BfLogSysM("%p InitType: %s Type: %p TypeDef: %p Revision:%d\n", mContext, TypeToString(resolvedTypeRef).c_str(), resolvedTypeRef, (typeInst != NULL) ? typeInst->mTypeDef : NULL, mCompiler->mRevision);
  702. // When we're autocomplete, we can't do the method processing so we have to add this type to the type work list
  703. if (((populateType < BfPopulateType_Full) || (mCompiler->IsAutocomplete())) /*&& (!resolvedTypeRef->IsUnspecializedTypeVariation())*/ && (resolvedTypeRef->IsTypeInstance()) &&
  704. (!resolvedTypeRef->IsTypeAlias()))
  705. {
  706. BfTypeProcessRequest* typeProcessRequest = mContext->mPopulateTypeWorkList.Alloc();
  707. typeProcessRequest->mType = resolvedTypeRef;
  708. BF_ASSERT(resolvedTypeRef->mContext == mContext);
  709. mCompiler->mStats.mTypesQueued++;
  710. mCompiler->UpdateCompletion();
  711. }
  712. PopulateType(resolvedTypeRef, populateType);
  713. }
  714. void BfModule::AddFieldDependency(BfTypeInstance* typeInstance, BfFieldInstance* fieldInstance, BfType* fieldType)
  715. {
  716. auto depFlag = fieldType->IsValueType() ? BfDependencyMap::DependencyFlag_ValueTypeMemberData : BfDependencyMap::DependencyFlag_PtrMemberData;
  717. if (fieldInstance->IsAppendedObject())
  718. depFlag = BfDependencyMap::DependencyFlag_ValueTypeMemberData;
  719. AddDependency(fieldType, typeInstance, depFlag);
  720. if ((fieldType->IsStruct()) && (fieldType->IsGenericTypeInstance()))
  721. {
  722. // When we're a generic struct, our data layout can depend on our generic parameters as well
  723. auto genericTypeInstance = (BfTypeInstance*)fieldType;
  724. for (auto typeGenericArg : genericTypeInstance->mGenericTypeInfo->mTypeGenericArguments)
  725. AddFieldDependency(typeInstance, fieldInstance, typeGenericArg);
  726. }
  727. }
  728. BfFieldInstance* BfModule::GetFieldByName(BfTypeInstance* typeInstance, const StringImpl& fieldName, bool isRequired, BfAstNode* refNode)
  729. {
  730. PopulateType(typeInstance);
  731. typeInstance->mTypeDef->PopulateMemberSets();
  732. BfMemberSetEntry* entry = NULL;
  733. BfFieldDef* fieldDef = NULL;
  734. if (typeInstance->mTypeDef->mFieldSet.TryGetWith(fieldName, &entry))
  735. {
  736. fieldDef = (BfFieldDef*)entry->mMemberDef;
  737. return &typeInstance->mFieldInstances[fieldDef->mIdx];
  738. }
  739. if (isRequired)
  740. {
  741. FailInternal(StrFormat("Field '%s' not found in '%s'", fieldName.c_str(), TypeToString(typeInstance).c_str()), refNode);
  742. }
  743. return NULL;
  744. }
  745. void BfModule::CheckMemberNames(BfTypeInstance* typeInst)
  746. {
  747. struct MemberRef
  748. {
  749. BfMemberDef* mMemberDef;
  750. StringView mName;
  751. StringView mKindName;
  752. BfTypeInstance* mTypeInst;
  753. BfAstNode* mNameNode;
  754. BfProtection mProtection;
  755. BfTypeDef* mDeclaringType;
  756. bool mIsOverride;
  757. };
  758. SizedArray<MemberRef, 64> memberList;
  759. // Check base types first and then current type
  760. auto checkType = typeInst;
  761. while (checkType != NULL)
  762. {
  763. for (auto prop : checkType->mTypeDef->mProperties)
  764. {
  765. BfPropertyDeclaration* propDecl = (BfPropertyDeclaration*)prop->mFieldDeclaration;
  766. if ((propDecl != NULL) && (propDecl->mExplicitInterface != NULL))
  767. continue;
  768. if (!typeInst->IsTypeMemberIncluded(prop->mDeclaringType))
  769. continue;
  770. MemberRef memberRef = { 0 };
  771. memberRef.mMemberDef = prop;
  772. memberRef.mTypeInst = checkType;
  773. memberRef.mProtection = prop->mProtection;
  774. memberRef.mName = prop->mName;
  775. memberRef.mKindName = "property";
  776. auto fieldDecl = prop->GetFieldDeclaration();
  777. if (fieldDecl != NULL)
  778. memberRef.mNameNode = fieldDecl->mNameNode;
  779. memberRef.mDeclaringType = prop->mDeclaringType;
  780. auto propertyDeclaration = BfNodeDynCast<BfPropertyDeclaration>(prop->mFieldDeclaration);
  781. if (propertyDeclaration != NULL)
  782. memberRef.mIsOverride = (propertyDeclaration->mNewSpecifier != NULL) ||
  783. ((propertyDeclaration->mVirtualSpecifier != NULL) && (propertyDeclaration->mVirtualSpecifier->GetToken() == BfToken_Override));
  784. memberList.push_back(memberRef);
  785. }
  786. for (auto field : checkType->mTypeDef->mFields)
  787. {
  788. if (!typeInst->IsTypeMemberIncluded(field->mDeclaringType))
  789. continue;
  790. MemberRef memberRef = { 0 };
  791. memberRef.mMemberDef = field;
  792. memberRef.mTypeInst = checkType;
  793. memberRef.mProtection = field->mProtection;
  794. memberRef.mName = field->mName;
  795. memberRef.mKindName = "field";
  796. memberRef.mDeclaringType = field->mDeclaringType;
  797. if (auto fieldDecl = field->GetFieldDeclaration())
  798. {
  799. memberRef.mNameNode = fieldDecl->mNameNode;
  800. memberRef.mIsOverride = fieldDecl->mNewSpecifier != NULL;
  801. }
  802. else if (auto paramDecl = field->GetParamDeclaration())
  803. {
  804. memberRef.mNameNode = paramDecl->mNameNode;
  805. }
  806. memberList.push_back(memberRef);
  807. }
  808. checkType = checkType->mBaseType;
  809. }
  810. Dictionary<StringView, MemberRef> memberMap;
  811. memberMap.Reserve(memberList.size());
  812. for (int i = (int)memberList.size() - 1; i >= 0; i--)
  813. {
  814. MemberRef& memberRef = memberList[i];
  815. if (memberRef.mName.IsEmpty())
  816. continue;
  817. if ((memberRef.mTypeInst == typeInst) && (!memberRef.mIsOverride))
  818. {
  819. MemberRef* prevMemberRef = NULL;
  820. if (memberMap.TryGetValue(memberRef.mName, &prevMemberRef))
  821. {
  822. if ((prevMemberRef->mDeclaringType->IsExtension()) && (!memberRef.mDeclaringType->IsExtension()))
  823. continue;
  824. MemberRef* firstMemberRef = &memberRef;
  825. MemberRef* secondMemberRef = prevMemberRef;
  826. bool showPrevious = false;
  827. BfError* error = NULL;
  828. if (prevMemberRef->mTypeInst != typeInst)
  829. {
  830. if ((prevMemberRef->mProtection != BfProtection_Private) && (memberRef.mNameNode != NULL))
  831. {
  832. error = Warn(BfWarning_CS0108_MemberHidesInherited, StrFormat("%s hides inherited member '%s'. Use the 'new' keyword if hiding was intentional.", String(prevMemberRef->mKindName).c_str(), String(memberRef.mName).c_str()), memberRef.mNameNode, true);
  833. showPrevious = true;
  834. }
  835. }
  836. else
  837. {
  838. if (ShouldAllowMultipleDefinitions(typeInst, firstMemberRef->mDeclaringType, secondMemberRef->mDeclaringType))
  839. {
  840. if (firstMemberRef->mMemberDef != NULL)
  841. {
  842. firstMemberRef->mMemberDef->mHasMultiDefs = true;
  843. secondMemberRef->mMemberDef->mHasMultiDefs = true;
  844. }
  845. continue;
  846. }
  847. bool wantsSwap = false;
  848. if ((secondMemberRef->mNameNode != NULL) && (firstMemberRef->mNameNode != NULL) &&
  849. (secondMemberRef->mNameNode->GetSourceData() == firstMemberRef->mNameNode->GetSourceData()) &&
  850. (secondMemberRef->mNameNode->GetSrcStart() < firstMemberRef->mNameNode->GetSrcStart()))
  851. {
  852. wantsSwap = true;
  853. }
  854. if (secondMemberRef->mDeclaringType->IsExtension() != firstMemberRef->mDeclaringType->IsExtension())
  855. {
  856. wantsSwap = firstMemberRef->mDeclaringType->IsExtension();
  857. }
  858. if (wantsSwap)
  859. {
  860. std::swap(firstMemberRef, secondMemberRef);
  861. }
  862. if (typeInst->mTypeDef->mIsCombinedPartial)
  863. {
  864. if ((firstMemberRef->mKindName == "property") && (secondMemberRef->mKindName == "property"))
  865. {
  866. auto firstPropertyDef = (BfPropertyDef*)firstMemberRef->mMemberDef;
  867. auto secondPropertyDef = (BfPropertyDef*)secondMemberRef->mMemberDef;
  868. if (auto secondPropertyDeclaration = BfNodeDynCast<BfPropertyDeclaration>(secondPropertyDef->mFieldDeclaration))
  869. {
  870. if ((secondPropertyDeclaration->mVirtualSpecifier != NULL) && (secondPropertyDeclaration->mVirtualSpecifier->mToken == BfToken_Override))
  871. continue;
  872. }
  873. }
  874. }
  875. if (secondMemberRef->mNameNode != NULL)
  876. error = Fail(StrFormat("A %s named '%s' has already been declared.", String(secondMemberRef->mKindName).c_str(), String(memberRef.mName).c_str()), secondMemberRef->mNameNode, true);
  877. showPrevious = true;
  878. typeInst->mHasDeclError = true;
  879. }
  880. if ((secondMemberRef->mNameNode != NULL) && (error != NULL))
  881. mCompiler->mPassInstance->MoreInfo("Previous declaration", firstMemberRef->mNameNode);
  882. }
  883. }
  884. memberMap.TryAdd(memberRef.mName, memberRef);
  885. }
  886. }
  887. void BfModule::TypeFailed(BfTypeInstance* typeInstance)
  888. {
  889. BfLogSysM("TypeFailed: %p\n", typeInstance);
  890. typeInstance->mTypeFailed = true;
  891. // Punt on field types - just substitute 'var' where we have NULLs
  892. for (auto& fieldInstance : typeInstance->mFieldInstances)
  893. {
  894. if ((fieldInstance.mResolvedType == NULL) || (fieldInstance.mResolvedType->IsNull()))
  895. {
  896. if (fieldInstance.mDataIdx >= 0)
  897. fieldInstance.mResolvedType = GetPrimitiveType(BfTypeCode_Var);
  898. }
  899. if (fieldInstance.mOwner == NULL)
  900. fieldInstance.mOwner = typeInstance;
  901. }
  902. if (typeInstance->mAlign == -1)
  903. typeInstance->mAlign = 1;
  904. if (typeInstance->mSize == -1)
  905. typeInstance->mSize = 1;
  906. if (typeInstance->mContext == NULL)
  907. typeInstance->mContext = mContext;
  908. mContext->mFailTypes.TryAdd(typeInstance, BfFailKind_Normal);
  909. mHadBuildError = true;
  910. }
  911. bool BfModule::CheckCircularDataError(bool failTypes, bool forceFail)
  912. {
  913. // First check to see if the forceFail is necessary
  914. if ((forceFail) && (CheckCircularDataError(failTypes, false)))
  915. return true;
  916. // Find two loops of mCurTypeInstance. Just finding one loop can give some false errors.
  917. BfTypeState* circularTypeStateEnd = NULL;
  918. int checkIdx = 0;
  919. auto checkTypeState = mContext->mCurTypeState;
  920. bool isPreBaseCheck = checkTypeState->mPopulateType == BfPopulateType_Declaration;
  921. while (true)
  922. {
  923. if (forceFail)
  924. break;
  925. if (checkTypeState == NULL)
  926. return false;
  927. if (checkTypeState->mResolveKind == BfTypeState::ResolveKind_UnionInnerType)
  928. {
  929. checkTypeState = checkTypeState->mPrevState;
  930. continue;
  931. }
  932. if (isPreBaseCheck)
  933. {
  934. if (checkTypeState->mPopulateType != BfPopulateType_Declaration)
  935. return false;
  936. }
  937. else
  938. {
  939. if (checkTypeState->mPopulateType == BfPopulateType_Declaration)
  940. return false;
  941. if ((checkIdx > 0) && (checkTypeState->mCurBaseTypeRef == NULL) && (checkTypeState->mCurAttributeTypeRef == NULL) && (checkTypeState->mCurFieldDef == NULL) &&
  942. ((checkTypeState->mType == NULL) || (checkTypeState->mType->IsTypeInstance())))
  943. return false;
  944. }
  945. if ((checkTypeState->mType == mCurTypeInstance) && (checkIdx > 1))
  946. {
  947. if (circularTypeStateEnd == NULL)
  948. circularTypeStateEnd = checkTypeState;
  949. else
  950. break;
  951. }
  952. checkTypeState = checkTypeState->mPrevState;
  953. checkIdx++;
  954. }
  955. bool hadError = false;
  956. checkTypeState = mContext->mCurTypeState;
  957. if (!forceFail)
  958. checkTypeState = checkTypeState->mPrevState;
  959. while (true)
  960. {
  961. if (checkTypeState == NULL)
  962. return hadError;
  963. if (checkTypeState == circularTypeStateEnd)
  964. return hadError;
  965. if (checkTypeState->mResolveKind == BfTypeState::ResolveKind_UnionInnerType)
  966. {
  967. // Skip over this to actual data references
  968. checkTypeState = checkTypeState->mPrevState;
  969. continue;
  970. }
  971. if (forceFail)
  972. {
  973. // Go all the way through
  974. NOP;
  975. }
  976. else if ((checkTypeState->mCurAttributeTypeRef == NULL) && (checkTypeState->mCurBaseTypeRef == NULL) && (checkTypeState->mCurFieldDef == NULL) &&
  977. ((checkTypeState->mType == NULL) || (checkTypeState->mType->IsTypeInstance())))
  978. return hadError;
  979. hadError = true;
  980. if (!failTypes)
  981. return hadError;
  982. // We only get one chance to fire off these errors, they can't be ignored.
  983. SetAndRestoreValue<bool> prevIgnoreErrors(mIgnoreErrors, false);
  984. if (checkTypeState->mCurAttributeTypeRef != NULL)
  985. {
  986. Fail(StrFormat("Attribute type '%s' causes a data cycle", BfTypeUtils::TypeToString(checkTypeState->mCurAttributeTypeRef).c_str()), checkTypeState->mCurAttributeTypeRef, true);
  987. }
  988. else if (checkTypeState->mCurBaseTypeRef != NULL)
  989. {
  990. Fail(StrFormat("Base type '%s' causes a data cycle", BfTypeUtils::TypeToString(checkTypeState->mCurBaseTypeRef).c_str()), checkTypeState->mCurBaseTypeRef, true);
  991. }
  992. else if ((checkTypeState->mCurFieldDef != NULL) && (checkTypeState->mCurFieldDef->mFieldDeclaration != NULL))
  993. {
  994. Fail(StrFormat("Field '%s.%s' causes a data cycle", TypeToString(checkTypeState->mType).c_str(), checkTypeState->mCurFieldDef->mName.c_str()),
  995. checkTypeState->mCurFieldDef->mTypeRef, true);
  996. }
  997. else if ((checkTypeState->mCurMethodDef != NULL) && (checkTypeState->mCurMethodDef->mMethodDeclaration != NULL))
  998. {
  999. Fail(StrFormat("Method '%s.%s' causes a data cycle", TypeToString(checkTypeState->mType).c_str(), checkTypeState->mCurMethodDef->mName.c_str()),
  1000. checkTypeState->mCurMethodDef->GetRefNode(), true);
  1001. }
  1002. else if (checkTypeState->mCurFieldDef != NULL)
  1003. {
  1004. BfAstNode* refNode = checkTypeState->mCurFieldDef->GetRefNode();
  1005. if (refNode == NULL)
  1006. {
  1007. if (checkTypeState->mCurTypeDef != NULL)
  1008. refNode = checkTypeState->mCurTypeDef->GetRefNode();
  1009. }
  1010. auto checkSrcTypeState = checkTypeState;
  1011. while ((refNode == NULL) && (checkSrcTypeState != NULL))
  1012. {
  1013. if (checkSrcTypeState->mCurFieldDef != NULL)
  1014. refNode = checkSrcTypeState->mCurFieldDef->GetRefNode();
  1015. checkSrcTypeState = checkSrcTypeState->mPrevState;
  1016. }
  1017. Fail(StrFormat("Field '%s.%s' causes a data cycle", TypeToString(checkTypeState->mType).c_str(), checkTypeState->mCurFieldDef->mName.c_str()), refNode, true);
  1018. }
  1019. else
  1020. {
  1021. BfAstNode* refNode = NULL;
  1022. if (checkTypeState->mCurTypeDef != NULL)
  1023. refNode = checkTypeState->mCurTypeDef->GetRefNode();
  1024. Fail(StrFormat("Type '%s' causes a data cycle", TypeToString(checkTypeState->mType).c_str()), refNode, true);
  1025. }
  1026. auto typeInstance = checkTypeState->mType->ToTypeInstance();
  1027. auto module = GetModuleFor(checkTypeState->mType);
  1028. if (module != NULL)
  1029. module->TypeFailed(typeInstance);
  1030. else if (typeInstance != NULL)
  1031. typeInstance->mTypeFailed = true;
  1032. checkTypeState = checkTypeState->mPrevState;
  1033. }
  1034. }
  1035. void BfModule::PopulateType(BfType* resolvedTypeRef, BfPopulateType populateType)
  1036. {
  1037. if ((populateType == BfPopulateType_Declaration) && (resolvedTypeRef->mDefineState >= BfTypeDefineState_Declared))
  1038. return;
  1039. if ((resolvedTypeRef->mRebuildFlags & BfTypeRebuildFlag_PendingGenericArgDep) != 0)
  1040. {
  1041. BfLogSysM("PopulateType handling BfTypeRebuildFlag_PendingGenericArgDep for type %p\n", resolvedTypeRef);
  1042. // Reinit dependencies
  1043. resolvedTypeRef->mRebuildFlags = (BfTypeRebuildFlags)(resolvedTypeRef->mRebuildFlags & ~BfTypeRebuildFlag_PendingGenericArgDep);
  1044. DoPopulateType_SetGenericDependencies(resolvedTypeRef->ToTypeInstance());
  1045. }
  1046. // Are we "demanding" to reify a type that is currently resolve-only?
  1047. if ((mIsReified) && (populateType >= BfPopulateType_Declaration))
  1048. {
  1049. if (resolvedTypeRef->IsTypeInstance())
  1050. {
  1051. auto typeModule = resolvedTypeRef->GetModule();
  1052. if ((typeModule != NULL) && (typeModule->mIsSpecialModule))
  1053. {
  1054. auto typeInst = resolvedTypeRef->ToTypeInstance();
  1055. if (!typeInst->mIsReified)
  1056. {
  1057. BfLogSysM("Reifying type %p in scratch module in PopulateType\n", resolvedTypeRef);
  1058. // It's important for unspecialized types to be in the correct module --
  1059. // when we process their methods, new types will be determined as
  1060. // resolve-only or reified based on the module the unresolved type is in
  1061. BF_ASSERT(typeInst->mModule == mContext->mUnreifiedModule);
  1062. typeInst->mIsReified = true;
  1063. typeInst->mModule = mContext->mScratchModule;
  1064. // Why did we need to do this at all? Why is just marking the type as reified not enough?
  1065. // This causes issues where we may delete a method instance that is currently being used as the generic bindings for
  1066. // a method of a specialized generic type
  1067. // if (typeInst->IsOnDemand())
  1068. // {
  1069. // RebuildMethods(typeInst);
  1070. // }
  1071. // else
  1072. // mContext->RebuildType(typeInst, false, false);
  1073. if (typeInst->mGenericTypeInfo != NULL)
  1074. {
  1075. for (auto genericArg : typeInst->mGenericTypeInfo->mTypeGenericArguments)
  1076. {
  1077. if (!genericArg->IsReified())
  1078. PopulateType(genericArg, BfPopulateType_Declaration);
  1079. }
  1080. }
  1081. }
  1082. }
  1083. else
  1084. {
  1085. if ((typeModule != NULL) && (!typeModule->mIsReified) && (!typeModule->mReifyQueued))
  1086. {
  1087. bool canFastReify = false;
  1088. if (typeModule->mAwaitingInitFinish)
  1089. {
  1090. canFastReify = true;
  1091. for (auto ownedTypes : typeModule->mOwnedTypeInstances)
  1092. if (ownedTypes->mDefineState > BfTypeDefineState_HasInterfaces_Direct)
  1093. canFastReify = false;
  1094. }
  1095. if (!mCompiler->mIsResolveOnly)
  1096. {
  1097. for (auto ownedTypes : typeModule->mOwnedTypeInstances)
  1098. {
  1099. BfLogSysM("REIFIED(PopulateType-Reference): %s %p FromModule:%s FromMethod: %p\n", TypeToString(ownedTypes).c_str(), ownedTypes, mModuleName.c_str(), mCurMethodInstance);
  1100. }
  1101. }
  1102. if (canFastReify)
  1103. {
  1104. BfLogSysM("Setting reified type %p in module %p in PopulateType on module awaiting finish\n", resolvedTypeRef, typeModule);
  1105. typeModule->mIsReified = true;
  1106. typeModule->CalcGeneratesCode();
  1107. typeModule->mWantsIRIgnoreWrites = false;
  1108. for (auto ownedTypes : typeModule->mOwnedTypeInstances)
  1109. {
  1110. ownedTypes->mIsReified = true;
  1111. if (ownedTypes->mCustomAttributes != NULL)
  1112. {
  1113. for (auto& attr : ownedTypes->mCustomAttributes->mAttributes)
  1114. {
  1115. if ((attr.mType->mAttributeData != NULL) && ((attr.mType->mAttributeData->mFlags & BfCustomAttributeFlags_ReflectAttribute) != 0))
  1116. {
  1117. // Reify this attribute
  1118. typeModule->PopulateType(attr.mType);
  1119. }
  1120. }
  1121. }
  1122. }
  1123. mCompiler->mStats.mReifiedModuleCount++;
  1124. if (typeModule->mBfIRBuilder != NULL)
  1125. {
  1126. typeModule->mBfIRBuilder->ClearNonConstData();
  1127. typeModule->mBfIRBuilder->mIgnoreWrites = false;
  1128. typeModule->SetupIRBuilder(false);
  1129. }
  1130. else
  1131. typeModule->PrepareForIRWriting(resolvedTypeRef->ToTypeInstance());
  1132. }
  1133. else
  1134. {
  1135. if ((mCompiler->mCompileState == BfCompiler::CompileState_Unreified) || (mCompiler->mCompileState == BfCompiler::CompileState_VData))
  1136. {
  1137. FailInternal(StrFormat("Invalid late reification of type '%s'", TypeToString(resolvedTypeRef).c_str()));
  1138. }
  1139. else
  1140. {
  1141. BF_ASSERT((mCompiler->mCompileState != BfCompiler::CompileState_Unreified) && (mCompiler->mCompileState != BfCompiler::CompileState_VData));
  1142. BfLogSysM("Queued reification of type %p in module %p in PopulateType\n", resolvedTypeRef, typeModule);
  1143. BF_ASSERT((typeModule != mContext->mUnreifiedModule) && (typeModule != mContext->mScratchModule));
  1144. BF_ASSERT(!typeModule->mIsSpecialModule);
  1145. // This caused issues - we may need to reify a type and then request a method
  1146. typeModule->mReifyQueued = true;
  1147. mContext->mReifyModuleWorkList.Add(typeModule);
  1148. //typeModule->ReifyModule();
  1149. }
  1150. }
  1151. }
  1152. }
  1153. }
  1154. else
  1155. {
  1156. // If we're a type like "A*", make sure we reify "A" if necessary
  1157. auto checkUnderlying = resolvedTypeRef->GetUnderlyingType();
  1158. while (checkUnderlying != NULL)
  1159. {
  1160. auto checkTypeInst = checkUnderlying->ToTypeInstance();
  1161. if (checkTypeInst != NULL)
  1162. {
  1163. if (!checkTypeInst->mIsReified)
  1164. PopulateType(checkTypeInst, BfPopulateType_BaseType);
  1165. break;
  1166. }
  1167. checkUnderlying = checkUnderlying->GetUnderlyingType();
  1168. }
  1169. }
  1170. }
  1171. if (!resolvedTypeRef->IsIncomplete())
  1172. return;
  1173. if (populateType <= BfPopulateType_TypeDef)
  1174. return;
  1175. auto typeInstance = resolvedTypeRef->ToTypeInstance();
  1176. CheckInjectNewRevision(typeInstance);
  1177. SetAndRestoreValue<BfTypeInstance*> prevTypeInstance(mCurTypeInstance, typeInstance);
  1178. SetAndRestoreValue<BfMethodInstance*> prevMethodInstance(mCurMethodInstance, NULL);
  1179. SetAndRestoreValue<BfMethodState*> prevMethodState(mCurMethodState, NULL);
  1180. if ((resolvedTypeRef->mRebuildFlags & (BfTypeRebuildFlag_Deleted | BfTypeRebuildFlag_DeleteQueued)) != 0)
  1181. {
  1182. if (mContext->mGhostDependencies.Contains(resolvedTypeRef))
  1183. {
  1184. // Not a nice state, but we should be able to recover
  1185. if (resolvedTypeRef->mDefineState < BfTypeDefineState_Defined)
  1186. {
  1187. resolvedTypeRef->mDefineState = BfTypeDefineState_Defined;
  1188. resolvedTypeRef->mSize = 0;
  1189. resolvedTypeRef->mAlign = 1;
  1190. if (typeInstance != NULL)
  1191. {
  1192. typeInstance->mInstSize = 0;
  1193. typeInstance->mInstAlign = 1;
  1194. }
  1195. }
  1196. return;
  1197. }
  1198. InternalError("Attempting PopulateType on deleted type");
  1199. return;
  1200. }
  1201. bool isNew = resolvedTypeRef->mDefineState == BfTypeDefineState_Undefined;
  1202. if (isNew)
  1203. {
  1204. BP_ZONE("BfModule::PopulateType");
  1205. if (resolvedTypeRef->mTypeId == -1)
  1206. {
  1207. mCompiler->mTypeInitCount++;
  1208. auto typeInstance = resolvedTypeRef->ToTypeInstance();
  1209. if (!mCompiler->mTypeIdFreeList.IsEmpty())
  1210. {
  1211. resolvedTypeRef->mTypeId = mCompiler->mTypeIdFreeList.back();
  1212. mCompiler->mTypeIdFreeList.pop_back();
  1213. }
  1214. else
  1215. resolvedTypeRef->mTypeId = mCompiler->mCurTypeId++;
  1216. while (resolvedTypeRef->mTypeId >= (int)mContext->mTypes.size())
  1217. mContext->mTypes.Add(NULL);
  1218. mContext->mTypes[resolvedTypeRef->mTypeId] = resolvedTypeRef;
  1219. if (typeInstance != NULL)
  1220. {
  1221. typeInstance->mSignatureRevision = mCompiler->mRevision;
  1222. typeInstance->mLastNonGenericUsedRevision = mCompiler->mRevision;
  1223. }
  1224. }
  1225. BfTypeDef* typeDef = NULL;
  1226. if (typeInstance != NULL)
  1227. typeDef = typeInstance->mTypeDef;
  1228. auto typeModule = resolvedTypeRef->GetModule();
  1229. if (typeModule != NULL)
  1230. BF_ASSERT(!typeModule->mAwaitingFinish);
  1231. BfLogSysM("PopulateType: %p %s populateType:%d ResolveOnly:%d Reified:%d AutoComplete:%d Ctx:%p Mod:%p TypeId:%d TypeDef:%p\n", resolvedTypeRef, TypeToString(resolvedTypeRef, BfTypeNameFlags_None).c_str(), populateType, mCompiler->mIsResolveOnly, mIsReified, mCompiler->IsAutocomplete(), mContext, resolvedTypeRef->GetModule(), resolvedTypeRef->mTypeId, typeDef);
  1232. BF_ASSERT(!resolvedTypeRef->IsDeleting());
  1233. }
  1234. if (resolvedTypeRef->IsRef())
  1235. {
  1236. BfRefType* refType = (BfRefType*)resolvedTypeRef;
  1237. if (refType->mElementType->IsValueType())
  1238. {
  1239. PopulateType(refType->mElementType, populateType);
  1240. resolvedTypeRef->mDefineState = refType->mElementType->mDefineState;
  1241. }
  1242. else
  1243. {
  1244. PopulateType(refType->mElementType, BfPopulateType_Identity);
  1245. resolvedTypeRef->mDefineState = BfTypeDefineState_Defined;
  1246. }
  1247. refType->mSize = refType->mAlign = mSystem->mPtrSize;
  1248. return;
  1249. }
  1250. if (resolvedTypeRef->IsTypeAlias())
  1251. {
  1252. // Always populate these all the way
  1253. if (populateType != BfPopulateType_IdentityNoRemapAlias)
  1254. populateType = BfPopulateType_Data;
  1255. }
  1256. if (resolvedTypeRef->IsSizedArray())
  1257. {
  1258. resolvedTypeRef->mRevision = mRevision;
  1259. bool typeFailed = false;
  1260. BfSizedArrayType* arrayType = (BfSizedArrayType*)resolvedTypeRef;
  1261. auto elementType = arrayType->mElementType;
  1262. int elementSize = 0;
  1263. int elementAlign = 0;
  1264. int elementStride = 0;
  1265. if (elementType->IsValueType())
  1266. {
  1267. resolvedTypeRef->mDefineState = BfTypeDefineState_ResolvingBaseType;
  1268. BfTypeState typeState(arrayType, mContext->mCurTypeState);
  1269. typeState.mPopulateType = BfPopulateType_Data;
  1270. SetAndRestoreValue<BfTypeState*> prevTypeState(mContext->mCurTypeState, &typeState);
  1271. SetAndRestoreValue<BfTypeInstance*> prevTypeInstance(mCurTypeInstance, NULL);
  1272. if (!CheckCircularDataError())
  1273. {
  1274. PopulateType(arrayType->mElementType, BfPopulateType_Data);
  1275. }
  1276. else
  1277. {
  1278. typeFailed = true;
  1279. PopulateType(arrayType->mElementType, BfPopulateType_Identity);
  1280. }
  1281. resolvedTypeRef->mDefineState = arrayType->mElementType->mDefineState;
  1282. AddDependency(elementType, resolvedTypeRef, BfDependencyMap::DependencyFlag_ValueTypeMemberData);
  1283. elementSize = arrayType->mElementType->mSize;
  1284. elementAlign = arrayType->mElementType->mAlign;
  1285. elementStride = arrayType->mElementType->GetStride();
  1286. }
  1287. else
  1288. {
  1289. PopulateType(arrayType->mElementType, BfPopulateType_Identity);
  1290. resolvedTypeRef->mDefineState = BfTypeDefineState_Defined;
  1291. AddDependency(elementType, resolvedTypeRef, BfDependencyMap::DependencyFlag_PtrMemberData);
  1292. elementSize = mSystem->mPtrSize;
  1293. elementAlign = mSystem->mPtrSize;
  1294. elementStride = mSystem->mPtrSize;
  1295. }
  1296. if (arrayType->mElementCount > 0)
  1297. {
  1298. arrayType->mSize = (int)(elementStride * arrayType->mElementCount);
  1299. if (elementSize > 0)
  1300. {
  1301. int64 maxElements = 0x7FFFFFFF / elementStride;
  1302. if (arrayType->mElementCount > maxElements)
  1303. {
  1304. Fail(StrFormat("Array size overflow: %s", TypeToString(arrayType).c_str()));
  1305. arrayType->mSize = 0x7FFFFFFF;
  1306. }
  1307. }
  1308. arrayType->mAlign = std::max(elementAlign, 1);
  1309. }
  1310. else if (arrayType->mElementCount < 0)
  1311. {
  1312. // Unknown size, don't assume it's valueless
  1313. arrayType->mSize = 1;
  1314. arrayType->mAlign = 1;
  1315. }
  1316. else
  1317. {
  1318. arrayType->mSize = 0;
  1319. arrayType->mAlign = 1;
  1320. }
  1321. BF_ASSERT(arrayType->mSize >= 0);
  1322. if (!typeFailed)
  1323. arrayType->mWantsGCMarking = elementType->WantsGCMarking();
  1324. resolvedTypeRef->mDefineState = BfTypeDefineState_DefinedAndMethodsSlotted;
  1325. resolvedTypeRef->mRebuildFlags = BfTypeRebuildFlag_None;
  1326. bool isValueless = arrayType->IsValuelessType();
  1327. return;
  1328. }
  1329. if (isNew)
  1330. {
  1331. BfTypeDef* typeDef = NULL;
  1332. if (typeInstance != NULL)
  1333. {
  1334. if ((populateType == BfPopulateType_Data) && (typeInstance->mNeedsMethodProcessing))
  1335. return;
  1336. typeDef = typeInstance->mTypeDef;
  1337. }
  1338. if (resolvedTypeRef->IsMethodRef())
  1339. return;
  1340. if (resolvedTypeRef->IsPointer())
  1341. {
  1342. BfPointerType* pointerType = (BfPointerType*)resolvedTypeRef;
  1343. if (pointerType->mElementType->IsIncomplete())
  1344. PopulateType(pointerType->mElementType, BfPopulateType_Declaration);
  1345. pointerType->mSize = pointerType->mAlign = mSystem->mPtrSize;
  1346. resolvedTypeRef->mDefineState = BfTypeDefineState_Defined;
  1347. return;
  1348. }
  1349. if (resolvedTypeRef->IsGenericParam())
  1350. {
  1351. BfGenericParamType* genericParamType = (BfGenericParamType*)resolvedTypeRef;
  1352. PopulateType(mContext->mBfObjectType);
  1353. genericParamType->mSize = mContext->mBfObjectType->mSize;
  1354. genericParamType->mAlign = mContext->mBfObjectType->mAlign;
  1355. resolvedTypeRef->mDefineState = BfTypeDefineState_Defined;
  1356. return;
  1357. }
  1358. if (resolvedTypeRef->IsModifiedTypeType())
  1359. {
  1360. BfModifiedTypeType* retTypeType = (BfModifiedTypeType*)resolvedTypeRef;
  1361. BF_ASSERT(retTypeType->mElementType->IsGenericParam());
  1362. resolvedTypeRef->mSize = mContext->mBfObjectType->mSize;
  1363. resolvedTypeRef->mAlign = mContext->mBfObjectType->mAlign;
  1364. resolvedTypeRef->mDefineState = BfTypeDefineState_Defined;
  1365. return;
  1366. }
  1367. if (resolvedTypeRef->IsConcreteInterfaceType())
  1368. {
  1369. BfConcreteInterfaceType* concreteInterfaceType = (BfConcreteInterfaceType*)resolvedTypeRef;
  1370. BF_ASSERT(concreteInterfaceType->mInterface->IsInterface());
  1371. resolvedTypeRef->mSize = mContext->mBfObjectType->mSize;
  1372. resolvedTypeRef->mAlign = mContext->mBfObjectType->mAlign;
  1373. resolvedTypeRef->mDefineState = BfTypeDefineState_Defined;
  1374. return;
  1375. }
  1376. if (resolvedTypeRef->IsConstExprValue())
  1377. {
  1378. BfConstExprValueType* constExprType = (BfConstExprValueType*)resolvedTypeRef;
  1379. resolvedTypeRef->mRevision = mRevision;
  1380. resolvedTypeRef->mSize = 0;
  1381. resolvedTypeRef->mAlign = 0;
  1382. resolvedTypeRef->mDefineState = BfTypeDefineState_Defined;
  1383. if (constExprType->mType->IsTypeInstance())
  1384. AddDependency(constExprType->mType, resolvedTypeRef, BfDependencyMap::DependencyFlag_TypeGenericArg);
  1385. return;
  1386. }
  1387. // The autocomplete pass doesn't need to do the method processing, allow type to be (partially) incomplete
  1388. if ((mCompiler->mResolvePassData != NULL) && (mCompiler->mResolvePassData->mAutoComplete != NULL) &&
  1389. (typeInstance != NULL) && (typeInstance->mNeedsMethodProcessing) && (!typeInstance->IsDelegate()))
  1390. return;
  1391. BfPrimitiveType* primitiveType = NULL;
  1392. if (typeInstance == NULL)
  1393. {
  1394. BF_ASSERT(resolvedTypeRef->IsPrimitiveType());
  1395. primitiveType = (BfPrimitiveType*)resolvedTypeRef;
  1396. typeDef = primitiveType->mTypeDef;
  1397. }
  1398. #define PRIMITIVE_TYPE(name, llvmType, size, dType) \
  1399. primitiveType->mSize = primitiveType->mAlign = size; \
  1400. primitiveType->mDefineState = BfTypeDefineState_Defined;
  1401. switch (typeDef->mTypeCode)
  1402. {
  1403. case BfTypeCode_None:
  1404. primitiveType->mSize = primitiveType->mAlign = 0;
  1405. resolvedTypeRef->mDefineState = BfTypeDefineState_Defined;
  1406. return;
  1407. case BfTypeCode_Self:
  1408. case BfTypeCode_Dot:
  1409. case BfTypeCode_Var:
  1410. case BfTypeCode_Let:
  1411. {
  1412. primitiveType->mSize = mSystem->mPtrSize;
  1413. primitiveType->mAlign = mSystem->mPtrSize;
  1414. resolvedTypeRef->mDefineState = BfTypeDefineState_Defined;
  1415. }
  1416. return;
  1417. case BfTypeCode_NullPtr:
  1418. primitiveType->mSize = primitiveType->mAlign = mSystem->mPtrSize;
  1419. primitiveType->mDefineState = BfTypeDefineState_Defined;
  1420. return;
  1421. case BfTypeCode_Boolean:
  1422. PRIMITIVE_TYPE("bool", Int1, 1, DW_ATE_boolean);
  1423. return;
  1424. case BfTypeCode_Int8:
  1425. PRIMITIVE_TYPE("sbyte", Int8, 1, DW_ATE_signed);
  1426. return;
  1427. case BfTypeCode_UInt8:
  1428. PRIMITIVE_TYPE("byte", Int8, 1, DW_ATE_unsigned);
  1429. return;
  1430. case BfTypeCode_Int16:
  1431. PRIMITIVE_TYPE("short", Int16, 2, DW_ATE_signed);
  1432. return;
  1433. case BfTypeCode_UInt16:
  1434. PRIMITIVE_TYPE("ushort", Int16, 2, DW_ATE_unsigned);
  1435. return;
  1436. case BfTypeCode_Int32:
  1437. PRIMITIVE_TYPE("int", Int32, 4, DW_ATE_signed);
  1438. return;
  1439. case BfTypeCode_UInt32:
  1440. PRIMITIVE_TYPE("uint", Int32, 4, DW_ATE_unsigned);
  1441. return;
  1442. case BfTypeCode_Int64:
  1443. PRIMITIVE_TYPE("long", Int64, 8, DW_ATE_signed);
  1444. return;
  1445. case BfTypeCode_UInt64:
  1446. PRIMITIVE_TYPE("ulong", Int64, 8, DW_ATE_unsigned);
  1447. return;
  1448. case BfTypeCode_IntPtr:
  1449. if (mSystem->mPtrSize == 4)
  1450. {
  1451. PRIMITIVE_TYPE("intptr", Int32, 4, DW_ATE_signed);
  1452. }
  1453. else
  1454. {
  1455. PRIMITIVE_TYPE("intptr", Int64, 8, DW_ATE_signed);
  1456. }
  1457. return;
  1458. case BfTypeCode_UIntPtr:
  1459. if (mSystem->mPtrSize == 4)
  1460. {
  1461. PRIMITIVE_TYPE("uintptr", Int32, 4, DW_ATE_unsigned);
  1462. }
  1463. else
  1464. {
  1465. PRIMITIVE_TYPE("uintptr", Int64, 8, DW_ATE_unsigned);
  1466. }
  1467. return;
  1468. case BfTypeCode_IntUnknown:
  1469. case BfTypeCode_UIntUnknown:
  1470. return;
  1471. case BfTypeCode_Char8:
  1472. PRIMITIVE_TYPE("char8", Int8, 1, DW_ATE_unsigned_char);
  1473. return;
  1474. case BfTypeCode_Char16:
  1475. PRIMITIVE_TYPE("char16", Int16, 2, DW_ATE_unsigned_char);
  1476. return;
  1477. case BfTypeCode_Char32:
  1478. PRIMITIVE_TYPE("char32", Int32, 4, DW_ATE_unsigned_char);
  1479. return;
  1480. case BfTypeCode_Float:
  1481. PRIMITIVE_TYPE("float", Float, 4, DW_ATE_float);
  1482. return;
  1483. case BfTypeCode_Double:
  1484. PRIMITIVE_TYPE("double", Double, 8, DW_ATE_float);
  1485. return;
  1486. case BfTypeCode_Object:
  1487. case BfTypeCode_Struct:
  1488. case BfTypeCode_Interface:
  1489. case BfTypeCode_Enum:
  1490. case BfTypeCode_TypeAlias:
  1491. case BfTypeCode_Inferred:
  1492. // Implemented below
  1493. break;
  1494. case BfTypeCode_Extension:
  1495. // This can only happen if we didn't actually find the type the extension referred to
  1496. break;
  1497. default:
  1498. //NotImpl(resolvedTypeRef->mTypeRef);
  1499. BFMODULE_FATAL(this, "Invalid type");
  1500. return;
  1501. }
  1502. //////////////////////////////////////////////////////////////////////////
  1503. BF_ASSERT(typeInstance != NULL);
  1504. if (!typeInstance->IsArray())
  1505. {
  1506. BF_ASSERT(typeInstance->mTypeDef != mContext->mCompiler->mArray1TypeDef);
  1507. }
  1508. if (mContext->mBfObjectType == NULL)
  1509. {
  1510. if (typeInstance->IsInstanceOf(mCompiler->mBfObjectTypeDef))
  1511. mContext->mBfObjectType = typeInstance;
  1512. else if (mCompiler->mBfObjectTypeDef != NULL)
  1513. ResolveTypeDef(mCompiler->mBfObjectTypeDef);
  1514. }
  1515. if (typeInstance->mModule == NULL)
  1516. {
  1517. // Create a module for this type
  1518. mContext->HandleTypeWorkItem(resolvedTypeRef);
  1519. }
  1520. }
  1521. if (typeInstance == NULL)
  1522. return;
  1523. if (typeInstance->mModule == NULL)
  1524. {
  1525. BF_ASSERT(typeInstance->mTypeFailed);
  1526. return;
  1527. }
  1528. typeInstance->mModule->DoPopulateType(typeInstance, populateType);
  1529. }
  1530. BfTypeOptions* BfModule::GetTypeOptions(BfTypeDef* typeDef)
  1531. {
  1532. if (mContext->mSystem->mTypeOptions.size() == 0)
  1533. {
  1534. return NULL;
  1535. }
  1536. Array<int> matchedIndices;
  1537. if (!mCompiler->mAttributeTypeOptionMap.IsEmpty())
  1538. {
  1539. auto customAttributes = typeDef->mTypeDeclaration->mAttributes;
  1540. while (customAttributes != NULL)
  1541. {
  1542. if (!mCompiler->mAttributeTypeOptionMap.IsEmpty())
  1543. {
  1544. SetAndRestoreValue<bool> prevIgnoreErrors(mIgnoreErrors, true);
  1545. auto typeRef = customAttributes->mAttributeTypeRef;
  1546. // StringT<128> attrName;
  1547. // for (auto& customAttrs : customAttributes->mAttributeTypeRef)
  1548. // {
  1549. // attrName.Clear();
  1550. // customAttrs.mType->mTypeDef->mFullName.ToString(attrName);
  1551. // Array<int>* arrPtr;
  1552. // if (mCompiler->mAttributeTypeOptionMap.TryGetValue(attrName, &arrPtr))
  1553. // {
  1554. // for (auto optionsIdx : *arrPtr)
  1555. // {
  1556. // matchedIndices.Add(optionsIdx);
  1557. // }
  1558. // }
  1559. // }
  1560. }
  1561. customAttributes = customAttributes->mNextAttribute;
  1562. }
  1563. }
  1564. int typeOptionsCount = (int)mContext->mSystem->mTypeOptions.size();
  1565. auto _CheckTypeName = [&](const StringImpl& typeName)
  1566. {
  1567. for (int optionIdx = 0; optionIdx < (int)mContext->mSystem->mTypeOptions.size(); optionIdx++)
  1568. {
  1569. auto& typeOptions = mContext->mSystem->mTypeOptions[optionIdx];
  1570. bool matched = false;
  1571. for (auto& filter : typeOptions.mTypeFilters)
  1572. {
  1573. int filterIdx = 0;
  1574. int typeNameIdx = 0;
  1575. const char* filterPtr = filter.c_str();
  1576. const char* namePtr = typeName.c_str();
  1577. char prevFilterC = 0;
  1578. while (true)
  1579. {
  1580. char filterC;
  1581. while (true)
  1582. {
  1583. filterC = *(filterPtr++);
  1584. if (filterC != ' ')
  1585. break;
  1586. }
  1587. char nameC;
  1588. while (true)
  1589. {
  1590. nameC = *(namePtr++);
  1591. if (nameC != ' ')
  1592. break;
  1593. }
  1594. if ((filterC == 0) || (nameC == 0))
  1595. {
  1596. matched = (filterC == 0) && (nameC == 0);
  1597. break;
  1598. }
  1599. bool doWildcard = false;
  1600. if (nameC != filterC)
  1601. {
  1602. if (filterC == '*')
  1603. doWildcard = true;
  1604. else if (((filterC == ',') || (filterC == '>')) &&
  1605. ((prevFilterC == '<') || (prevFilterC == ',')))
  1606. {
  1607. doWildcard = true;
  1608. filterPtr--;
  1609. }
  1610. if (!doWildcard)
  1611. {
  1612. matched = false;
  1613. break;
  1614. }
  1615. }
  1616. if (doWildcard)
  1617. {
  1618. int openDepth = 0;
  1619. const char* startNamePtr = namePtr;
  1620. while (true)
  1621. {
  1622. nameC = *(namePtr++);
  1623. if (nameC == 0)
  1624. {
  1625. namePtr--;
  1626. if (openDepth != 0)
  1627. matched = false;
  1628. break;
  1629. }
  1630. if ((nameC == '>') && (openDepth == 0))
  1631. {
  1632. namePtr--;
  1633. break;
  1634. }
  1635. if (nameC == '<')
  1636. openDepth++;
  1637. else if (nameC == '>')
  1638. openDepth--;
  1639. else if ((nameC == ',') && (openDepth == 0))
  1640. {
  1641. namePtr--;
  1642. break;
  1643. }
  1644. }
  1645. if (!matched)
  1646. break;
  1647. }
  1648. prevFilterC = filterC;
  1649. }
  1650. }
  1651. if (matched)
  1652. matchedIndices.push_back(optionIdx);
  1653. }
  1654. };
  1655. // if (typeInstance->IsTypedPrimitive())
  1656. // {
  1657. // auto underlyingType = typeInstance->GetUnderlyingType();
  1658. // if (underlyingType != NULL)
  1659. // {
  1660. // String typeName = TypeToString(underlyingType);
  1661. // _CheckTypeName(typeName);
  1662. // }
  1663. // else
  1664. // {
  1665. // // Can this only happen for functions that are being extended?
  1666. // }
  1667. // }
  1668. //
  1669. // if ((!typeInstance->IsBoxed()) && (typeInstance->mTypeDef == mCompiler->mPointerTTypeDef))
  1670. // {
  1671. // BF_ASSERT(typeInstance->IsGenericTypeInstance());
  1672. // auto innerType = typeInstance->mGenericTypeInfo->mTypeGenericArguments[0];
  1673. // auto ptrType = CreatePointerType(innerType);
  1674. // String typeName = TypeToString(ptrType);
  1675. // _CheckTypeName(typeName);
  1676. // }
  1677. String typeName = BfTypeUtils::TypeToString(typeDef);
  1678. _CheckTypeName(typeName);
  1679. int matchedIdx = -1;
  1680. if (matchedIndices.size() == 1)
  1681. {
  1682. matchedIdx = matchedIndices[0];
  1683. }
  1684. else if (matchedIndices.size() > 1)
  1685. {
  1686. // Try to find a merged typeoptions with these indices
  1687. for (int mergedIdx = 0; mergedIdx < (int)mContext->mSystem->mMergedTypeOptions.size(); mergedIdx++)
  1688. {
  1689. auto& typeOptions = mContext->mSystem->mMergedTypeOptions[mergedIdx];
  1690. if (typeOptions.mMatchedIndices == matchedIndices)
  1691. {
  1692. matchedIdx = typeOptionsCount + mergedIdx;
  1693. break;
  1694. }
  1695. }
  1696. // Otherwise make one...
  1697. if (matchedIdx == -1)
  1698. {
  1699. auto& first = mContext->mSystem->mTypeOptions[matchedIndices[0]];
  1700. BfTypeOptions mergedTypeOptions;
  1701. mergedTypeOptions.mSIMDSetting = first.mSIMDSetting;
  1702. mergedTypeOptions.mOptimizationLevel = first.mOptimizationLevel;
  1703. mergedTypeOptions.mEmitDebugInfo = first.mEmitDebugInfo;
  1704. mergedTypeOptions.mAndFlags = first.mAndFlags;
  1705. mergedTypeOptions.mOrFlags = first.mOrFlags;
  1706. mergedTypeOptions.mAllocStackTraceDepth = first.mAllocStackTraceDepth;
  1707. mergedTypeOptions.mReflectMethodFilters = first.mReflectMethodFilters;
  1708. mergedTypeOptions.mReflectMethodAttributeFilters = first.mReflectMethodAttributeFilters;
  1709. mergedTypeOptions.mMatchedIndices = matchedIndices;
  1710. for (int idx = 1; idx < (int)matchedIndices.size(); idx++)
  1711. {
  1712. auto& typeOptions = mContext->mSystem->mTypeOptions[matchedIndices[idx]];
  1713. if (typeOptions.mSIMDSetting != -1)
  1714. mergedTypeOptions.mSIMDSetting = typeOptions.mSIMDSetting;
  1715. if (typeOptions.mOptimizationLevel != -1)
  1716. mergedTypeOptions.mOptimizationLevel = typeOptions.mOptimizationLevel;
  1717. if (typeOptions.mEmitDebugInfo != -1)
  1718. mergedTypeOptions.mEmitDebugInfo = typeOptions.mEmitDebugInfo;
  1719. mergedTypeOptions.mOrFlags = (BfOptionFlags)(mergedTypeOptions.mOrFlags | typeOptions.mOrFlags);
  1720. mergedTypeOptions.mAndFlags = (BfOptionFlags)(mergedTypeOptions.mAndFlags | typeOptions.mOrFlags);
  1721. mergedTypeOptions.mAndFlags = (BfOptionFlags)(mergedTypeOptions.mAndFlags & typeOptions.mAndFlags);
  1722. mergedTypeOptions.mOrFlags = (BfOptionFlags)(mergedTypeOptions.mOrFlags & typeOptions.mAndFlags);
  1723. if (mergedTypeOptions.HasReflectMethodFilters())
  1724. {
  1725. // If merging filter has non-default method flags but no filter then we need to append it as a filtered modification
  1726. if ((!typeOptions.HasReflectMethodFilters()) &&
  1727. (((typeOptions.mAndFlags & BfOptionFlags_Reflect_MethodMask) != BfOptionFlags_Reflect_MethodMask) ||
  1728. ((typeOptions.mOrFlags & BfOptionFlags_Reflect_MethodMask) != 0)))
  1729. {
  1730. mergedTypeOptions.mReflectMethodFilters.Add({"*", typeOptions.mAndFlags, typeOptions.mOrFlags});
  1731. }
  1732. mergedTypeOptions.mAndFlags = (BfOptionFlags)(mergedTypeOptions.mAndFlags | BfOptionFlags_Reflect_MethodMask);
  1733. mergedTypeOptions.mOrFlags = (BfOptionFlags)(mergedTypeOptions.mOrFlags & ~BfOptionFlags_Reflect_MethodMask);
  1734. }
  1735. if (typeOptions.mAllocStackTraceDepth != -1)
  1736. mergedTypeOptions.mAllocStackTraceDepth = typeOptions.mAllocStackTraceDepth;
  1737. for (auto filter : typeOptions.mReflectMethodFilters)
  1738. mergedTypeOptions.mReflectMethodFilters.Add(filter);
  1739. for (auto filter : typeOptions.mReflectMethodAttributeFilters)
  1740. mergedTypeOptions.mReflectMethodAttributeFilters.Add(filter);
  1741. }
  1742. matchedIdx = typeOptionsCount + (int)mContext->mSystem->mMergedTypeOptions.size();
  1743. mContext->mSystem->mMergedTypeOptions.push_back(mergedTypeOptions);
  1744. }
  1745. }
  1746. return mSystem->GetTypeOptions( matchedIdx);
  1747. }
  1748. bool BfModule::ApplyTypeOptionMethodFilters(bool includeMethod, BfMethodDef* methodDef, BfTypeOptions* typeOptions)
  1749. {
  1750. BfOptionFlags findFlag = BfOptionFlags_None;
  1751. if (methodDef->mMethodType == BfMethodType_Ctor)
  1752. findFlag = BfOptionFlags_ReflectConstructors;
  1753. else if (methodDef->mIsStatic)
  1754. findFlag = BfOptionFlags_ReflectStaticMethods;
  1755. else
  1756. findFlag = BfOptionFlags_ReflectNonStaticMethods;
  1757. if ((typeOptions->mAndFlags & findFlag) == 0)
  1758. includeMethod = false;
  1759. if ((typeOptions->mOrFlags & findFlag) != 0)
  1760. includeMethod = true;
  1761. if (!typeOptions->mReflectMethodFilters.IsEmpty())
  1762. {
  1763. for (auto& filter : typeOptions->mReflectMethodFilters)
  1764. {
  1765. if (BfCheckWildcard(filter.mFilter, methodDef->mName))
  1766. {
  1767. if ((filter.mAndFlags & findFlag) == 0)
  1768. includeMethod = false;
  1769. if ((filter.mAndFlags | findFlag) != 0)
  1770. includeMethod = true;
  1771. }
  1772. }
  1773. }
  1774. return includeMethod;
  1775. }
  1776. int BfModule::GenerateTypeOptions(BfCustomAttributes* customAttributes, BfTypeInstance* typeInstance, bool checkTypeName)
  1777. {
  1778. if (mContext->mSystem->mTypeOptions.size() == 0)
  1779. {
  1780. return -1;
  1781. }
  1782. Array<int> matchedIndices;
  1783. if ((!checkTypeName) && (typeInstance->mTypeOptionsIdx != -1))
  1784. {
  1785. // Methods should 'inherit' the owner's type options before applying type options from custom attributes
  1786. auto typeOptions = mSystem->GetTypeOptions(typeInstance->mTypeOptionsIdx);
  1787. if (typeOptions->mMatchedIndices.size() == 0)
  1788. matchedIndices.push_back(typeInstance->mTypeOptionsIdx);
  1789. else
  1790. matchedIndices = typeOptions->mMatchedIndices;
  1791. }
  1792. if (customAttributes != NULL)
  1793. {
  1794. if (!mCompiler->mAttributeTypeOptionMap.IsEmpty())
  1795. {
  1796. StringT<128> attrName;
  1797. for (auto& customAttrs : customAttributes->mAttributes)
  1798. {
  1799. attrName.Clear();
  1800. customAttrs.mType->mTypeDef->mFullName.ToString(attrName);
  1801. Array<int>* arrPtr;
  1802. if (mCompiler->mAttributeTypeOptionMap.TryGetValue(attrName, &arrPtr))
  1803. {
  1804. for (auto optionsIdx : *arrPtr)
  1805. {
  1806. matchedIndices.Add(optionsIdx);
  1807. }
  1808. }
  1809. }
  1810. }
  1811. }
  1812. int typeOptionsCount = (int)mContext->mSystem->mTypeOptions.size();
  1813. if (checkTypeName)
  1814. {
  1815. auto _CheckType = [&](BfType* type)
  1816. {
  1817. StringImpl typeName = TypeToString(type);
  1818. for (int optionIdx = 0; optionIdx < (int)mContext->mSystem->mTypeOptions.size(); optionIdx++)
  1819. {
  1820. auto& typeOptions = mContext->mSystem->mTypeOptions[optionIdx];
  1821. bool matched = false;
  1822. for (auto& filter : typeOptions.mTypeFilters)
  1823. {
  1824. int filterIdx = 0;
  1825. int typeNameIdx = 0;
  1826. if (filter.StartsWith(':'))
  1827. {
  1828. BfTypeInstance* typeInst = type->ToTypeInstance();
  1829. if (typeInst != NULL)
  1830. {
  1831. int startPos = 1;
  1832. for (; startPos < (int)filter.length(); startPos++)
  1833. if (filter[startPos] != ' ')
  1834. break;
  1835. String checkFilter;
  1836. checkFilter.Reference(filter.c_str() + startPos, filter.mLength - startPos);
  1837. BfTypeInstance* checkTypeInst = typeInst;
  1838. while (checkTypeInst != NULL)
  1839. {
  1840. for (auto& iface : checkTypeInst->mInterfaces)
  1841. {
  1842. StringT<128> ifaceName = TypeToString(iface.mInterfaceType);
  1843. if (BfCheckWildcard(checkFilter, ifaceName))
  1844. {
  1845. matched = true;
  1846. break;
  1847. }
  1848. }
  1849. checkTypeInst = checkTypeInst->mBaseType;
  1850. }
  1851. if (matched)
  1852. break;
  1853. }
  1854. }
  1855. else if (BfCheckWildcard(filter, typeName))
  1856. {
  1857. matched = true;
  1858. break;
  1859. }
  1860. }
  1861. if (matched)
  1862. matchedIndices.push_back(optionIdx);
  1863. }
  1864. };
  1865. if (typeInstance->IsTypedPrimitive())
  1866. {
  1867. auto underlyingType = typeInstance->GetUnderlyingType();
  1868. if (underlyingType != NULL)
  1869. {
  1870. _CheckType(underlyingType);
  1871. }
  1872. else
  1873. {
  1874. // Can this only happen for functions that are being extended?
  1875. }
  1876. }
  1877. if ((!typeInstance->IsBoxed()) && (typeInstance->IsInstanceOf(mCompiler->mPointerTTypeDef)))
  1878. {
  1879. BF_ASSERT(typeInstance->IsGenericTypeInstance());
  1880. auto innerType = typeInstance->mGenericTypeInfo->mTypeGenericArguments[0];
  1881. auto ptrType = CreatePointerType(innerType);
  1882. _CheckType(ptrType);
  1883. }
  1884. _CheckType(typeInstance);
  1885. }
  1886. int matchedIdx = -1;
  1887. if (matchedIndices.size() == 1)
  1888. {
  1889. matchedIdx = matchedIndices[0];
  1890. }
  1891. else if (matchedIndices.size() > 1)
  1892. {
  1893. // Try to find a merged typeoptions with these indices
  1894. for (int mergedIdx = 0; mergedIdx < (int)mContext->mSystem->mMergedTypeOptions.size(); mergedIdx++)
  1895. {
  1896. auto& typeOptions = mContext->mSystem->mMergedTypeOptions[mergedIdx];
  1897. if (typeOptions.mMatchedIndices == matchedIndices)
  1898. {
  1899. matchedIdx = typeOptionsCount + mergedIdx;
  1900. break;
  1901. }
  1902. }
  1903. // Otherwise make one...
  1904. if (matchedIdx == -1)
  1905. {
  1906. auto& first = mContext->mSystem->mTypeOptions[matchedIndices[0]];
  1907. BfTypeOptions mergedTypeOptions;
  1908. mergedTypeOptions.mSIMDSetting = first.mSIMDSetting;
  1909. mergedTypeOptions.mOptimizationLevel = first.mOptimizationLevel;
  1910. mergedTypeOptions.mEmitDebugInfo = first.mEmitDebugInfo;
  1911. mergedTypeOptions.mAndFlags = first.mAndFlags;
  1912. mergedTypeOptions.mOrFlags = first.mOrFlags;
  1913. mergedTypeOptions.mAllocStackTraceDepth = first.mAllocStackTraceDepth;
  1914. mergedTypeOptions.mReflectMethodFilters = first.mReflectMethodFilters;
  1915. mergedTypeOptions.mReflectMethodAttributeFilters = first.mReflectMethodAttributeFilters;
  1916. mergedTypeOptions.mMatchedIndices = matchedIndices;
  1917. for (int idx = 1; idx < (int)matchedIndices.size(); idx++)
  1918. {
  1919. auto& typeOptions = mContext->mSystem->mTypeOptions[matchedIndices[idx]];
  1920. if (typeOptions.mSIMDSetting != -1)
  1921. mergedTypeOptions.mSIMDSetting = typeOptions.mSIMDSetting;
  1922. if (typeOptions.mOptimizationLevel != -1)
  1923. mergedTypeOptions.mOptimizationLevel = typeOptions.mOptimizationLevel;
  1924. if (typeOptions.mEmitDebugInfo != -1)
  1925. mergedTypeOptions.mEmitDebugInfo = typeOptions.mEmitDebugInfo;
  1926. mergedTypeOptions.mOrFlags = (BfOptionFlags)(mergedTypeOptions.mOrFlags | typeOptions.mOrFlags);
  1927. mergedTypeOptions.mAndFlags = (BfOptionFlags)(mergedTypeOptions.mAndFlags | typeOptions.mOrFlags);
  1928. mergedTypeOptions.mAndFlags = (BfOptionFlags)(mergedTypeOptions.mAndFlags & typeOptions.mAndFlags);
  1929. mergedTypeOptions.mOrFlags = (BfOptionFlags)(mergedTypeOptions.mOrFlags & typeOptions.mAndFlags);
  1930. if (typeOptions.mAllocStackTraceDepth != -1)
  1931. mergedTypeOptions.mAllocStackTraceDepth = typeOptions.mAllocStackTraceDepth;
  1932. for (auto& filter : typeOptions.mReflectMethodFilters)
  1933. mergedTypeOptions.mReflectMethodFilters.Add(filter);
  1934. for (auto& filter : typeOptions.mReflectMethodAttributeFilters)
  1935. mergedTypeOptions.mReflectMethodAttributeFilters.Add(filter);
  1936. }
  1937. matchedIdx = typeOptionsCount + (int)mContext->mSystem->mMergedTypeOptions.size();
  1938. mContext->mSystem->mMergedTypeOptions.push_back(mergedTypeOptions);
  1939. }
  1940. }
  1941. return matchedIdx;
  1942. }
  1943. void BfModule::SetTypeOptions(BfTypeInstance* typeInstance)
  1944. {
  1945. typeInstance->mTypeOptionsIdx = GenerateTypeOptions(typeInstance->mCustomAttributes, typeInstance, true);
  1946. }
  1947. BfCEParseContext BfModule::CEEmitParse(BfTypeInstance* typeInstance, BfTypeDef* declaringType, const StringImpl& src, BfAstNode* refNode, BfCeTypeEmitSourceKind emitSourceKind)
  1948. {
  1949. if (mCompiler->mResolvePassData != NULL)
  1950. mCompiler->mResolvePassData->mHadEmits = true;
  1951. BfCEParseContext ceParseContext;
  1952. ceParseContext.mFailIdx = mCompiler->mPassInstance->mFailedIdx;
  1953. ceParseContext.mWarnIdx = mCompiler->mPassInstance->mWarnIdx;
  1954. if (typeInstance->mTypeDef->mEmitParent == NULL)
  1955. {
  1956. if (typeInstance->mTypeDef->mNextRevision != NULL)
  1957. {
  1958. InternalError("CEEmitParse preconditions failed");
  1959. return ceParseContext;
  1960. }
  1961. }
  1962. bool createdParser = false;
  1963. int startSrcIdx = 0;
  1964. BfParser* emitParser = NULL;
  1965. int64 emitSourceMapKey = ((int64)declaringType->mPartialIdx << 32) | refNode->mSrcStart;
  1966. if (typeInstance->mCeTypeInfo == NULL)
  1967. typeInstance->mCeTypeInfo = new BfCeTypeInfo();
  1968. auto ceTypeInfo = typeInstance->mCeTypeInfo;
  1969. if (ceTypeInfo->mNext != NULL)
  1970. ceTypeInfo = ceTypeInfo->mNext;
  1971. BfCeTypeEmitSource* ceEmitSource = NULL;
  1972. if ((mCurMethodState != NULL) && (mCurMethodState->mClosureState != NULL) && (mCurMethodState->mClosureState->mCapturing))
  1973. {
  1974. // Don't create emit sources when we're in a capture phase
  1975. }
  1976. else
  1977. {
  1978. auto refParser = refNode->GetParser();
  1979. if ((refParser != NULL) && (refParser->mIsEmitted))
  1980. {
  1981. // Default to type declaration
  1982. emitSourceMapKey = mCurTypeInstance->mTypeDef->GetRefNode()->mSrcStart;
  1983. for (auto& kv : ceTypeInfo->mEmitSourceMap)
  1984. {
  1985. if ((refNode->mSrcStart >= kv.mValue.mSrcStart) && (refNode->mSrcStart < kv.mValue.mSrcEnd))
  1986. {
  1987. // We found the initial emit source
  1988. emitSourceMapKey = kv.mKey;
  1989. break;
  1990. }
  1991. }
  1992. }
  1993. if (ceTypeInfo->mEmitSourceMap.TryAdd(emitSourceMapKey, NULL, &ceEmitSource))
  1994. {
  1995. if (typeInstance->IsSpecializedType())
  1996. {
  1997. auto unspecializedType = GetUnspecializedTypeInstance(typeInstance);
  1998. if ((unspecializedType->mCeTypeInfo == NULL) || (!unspecializedType->mCeTypeInfo->mEmitSourceMap.ContainsKey(emitSourceMapKey)))
  1999. ceTypeInfo->mMayHaveUniqueEmitLocations = true;
  2000. }
  2001. }
  2002. ceEmitSource->mKind = emitSourceKind;
  2003. }
  2004. BfLogSysM("CEEmitParse type %p ceTypeInfo %p\n", typeInstance, ceTypeInfo);
  2005. int emitSrcStart = 0;
  2006. BfEmitEmbedEntry* emitEmbedEntry = NULL;
  2007. if (typeInstance->mTypeDef->mEmitParent == NULL)
  2008. {
  2009. BF_ASSERT(typeInstance->mTypeDef->mNextRevision == NULL);
  2010. BfTypeDef* emitTypeDef = new BfTypeDef();
  2011. emitTypeDef->mEmitParent = typeInstance->mTypeDef;
  2012. mSystem->CopyTypeDef(emitTypeDef, typeInstance->mTypeDef);
  2013. emitTypeDef->mDefState = BfTypeDef::DefState_Emitted;
  2014. typeInstance->mTypeDef = emitTypeDef;
  2015. createdParser = true;
  2016. emitParser = new BfParser(mSystem, typeInstance->mTypeDef->mProject);
  2017. emitParser->mIsEmitted = true;
  2018. BfLogSys(mSystem, "Emit typeDef for type %p created %p parser %p typeDecl %p\n", typeInstance, emitTypeDef, emitParser, emitTypeDef->mTypeDeclaration);
  2019. String typeName = TypeToString(typeInstance, BfTypeNameFlag_AddProjectName);
  2020. if ((mCompiler->mResolvePassData != NULL) && (!mCompiler->mResolvePassData->mEmitEmbedEntries.IsEmpty()))
  2021. mCompiler->mResolvePassData->mEmitEmbedEntries.TryGetValue(typeName, &emitEmbedEntry);
  2022. emitParser->mFileName = "$Emit$";
  2023. emitParser->mFileName += typeName;
  2024. emitTypeDef->mSource = emitParser;
  2025. emitParser->mRefCount++;
  2026. emitParser->SetSource(src.c_str(), src.mLength);
  2027. if (emitEmbedEntry != NULL)
  2028. {
  2029. emitEmbedEntry->mRevision = typeInstance->mRevision;
  2030. emitEmbedEntry->mParser = emitParser;
  2031. emitEmbedEntry->mParser->mSourceClassifier = new BfSourceClassifier(emitEmbedEntry->mParser, NULL);
  2032. mCompiler->mPassInstance->mFilterErrorsTo.Add(emitEmbedEntry->mParser->mParserData);
  2033. if (emitEmbedEntry->mCursorIdx != -1)
  2034. {
  2035. emitParser->SetCursorIdx(emitEmbedEntry->mCursorIdx);
  2036. emitParser->mParserFlags = (BfParserFlag)(emitParser->mParserFlags | ParserFlag_Autocomplete | ParserFlag_Classifying);
  2037. }
  2038. }
  2039. // If we emit only from method attributes then we will already have method instances created
  2040. auto _FixMethod = [&](BfMethodInstance* methodInstance)
  2041. {
  2042. if (methodInstance == NULL)
  2043. return;
  2044. methodInstance->mMethodDef = emitTypeDef->mMethods[methodInstance->mMethodDef->mIdx];
  2045. };
  2046. for (auto& methodInstanceGroup : typeInstance->mMethodInstanceGroups)
  2047. {
  2048. _FixMethod(methodInstanceGroup.mDefault);
  2049. if (methodInstanceGroup.mMethodSpecializationMap != NULL)
  2050. {
  2051. for (auto& kv : *methodInstanceGroup.mMethodSpecializationMap)
  2052. _FixMethod(kv.mValue);
  2053. }
  2054. };
  2055. }
  2056. else
  2057. {
  2058. emitParser = typeInstance->mTypeDef->mSource->ToParser();
  2059. if ((mCompiler->mResolvePassData != NULL) && (!mCompiler->mResolvePassData->mEmitEmbedEntries.IsEmpty()))
  2060. {
  2061. int dollarPos = (int)emitParser->mFileName.LastIndexOf('$');
  2062. if (dollarPos != -1)
  2063. mCompiler->mResolvePassData->mEmitEmbedEntries.TryGetValue(emitParser->mFileName.Substring(dollarPos + 1), &emitEmbedEntry);
  2064. }
  2065. int idx = emitParser->AllocChars(2 + src.mLength + 1);
  2066. emitSrcStart = idx + 2;
  2067. memcpy((uint8*)emitParser->mSrc + idx, "\n\n", 2);
  2068. memcpy((uint8*)emitParser->mSrc + idx + 2, src.c_str(), src.mLength + 1);
  2069. emitParser->mSrcIdx = idx;
  2070. emitParser->mSrcLength = idx + src.mLength + 2;
  2071. emitParser->mParserData->mSrcLength = emitParser->mSrcLength;
  2072. emitParser->mOrigSrcLength = emitParser->mSrcLength;
  2073. }
  2074. if (ceEmitSource == NULL)
  2075. {
  2076. // Ignored
  2077. }
  2078. else if (ceEmitSource->mSrcStart == -1)
  2079. {
  2080. auto parserData = refNode->GetParserData();
  2081. if (parserData != NULL)
  2082. {
  2083. // Add the warning changes occur before the start of the buffer.
  2084. // We use this conservatively now - any temporary disabling will permanently disable
  2085. for (auto& warning : parserData->mWarningEnabledChanges)
  2086. {
  2087. if (!warning.mValue.mEnable)
  2088. emitParser->mParserData->mWarningEnabledChanges[-warning.mValue.mWarningNumber] = warning.mValue;
  2089. }
  2090. }
  2091. ceEmitSource->mSrcStart = emitSrcStart;
  2092. ceEmitSource->mSrcEnd = emitParser->mSrcLength;
  2093. }
  2094. else
  2095. {
  2096. ceEmitSource->mSrcStart = BF_MIN(ceEmitSource->mSrcStart, emitSrcStart);
  2097. ceEmitSource->mSrcEnd = BF_MAX(ceEmitSource->mSrcEnd, emitParser->mSrcLength);
  2098. }
  2099. emitParser->Parse(mCompiler->mPassInstance);
  2100. emitParser->FinishSideNodes();
  2101. if (emitEmbedEntry != NULL)
  2102. {
  2103. int prevStart = emitEmbedEntry->mCharData.mSize;
  2104. emitEmbedEntry->mCharData.GrowUninitialized(emitParser->mSrcLength - emitEmbedEntry->mCharData.mSize);
  2105. auto charDataPtr = emitEmbedEntry->mCharData.mVals;
  2106. for (int i = prevStart; i < emitParser->mSrcLength; i++)
  2107. {
  2108. charDataPtr[i].mChar = emitParser->mSrc[i];
  2109. charDataPtr[i].mDisplayPassId = 0;
  2110. charDataPtr[i].mDisplayTypeId = 0;
  2111. charDataPtr[i].mDisplayFlags = 0;
  2112. }
  2113. emitEmbedEntry->mParser->mSourceClassifier->mCharData = emitEmbedEntry->mCharData.mVals;
  2114. }
  2115. if (createdParser)
  2116. {
  2117. AutoCrit crit(mSystem->mDataLock);
  2118. mSystem->mParsers.Add(emitParser);
  2119. }
  2120. return ceParseContext;
  2121. }
  2122. void BfModule::FinishCEParseContext(BfAstNode* refNode, BfTypeInstance* typeInstance, BfCEParseContext* ceParseContext)
  2123. {
  2124. if ((ceParseContext->mFailIdx != mCompiler->mPassInstance->mFailedIdx) && (refNode != NULL))
  2125. Fail("Emitted code had errors", refNode);
  2126. else if ((ceParseContext->mWarnIdx != mCompiler->mPassInstance->mWarnIdx) && (refNode != NULL))
  2127. Warn(0, "Emitted code had warnings", refNode);
  2128. else if ((ceParseContext->mFailIdx != mCompiler->mPassInstance->mFailedIdx) ||
  2129. (ceParseContext->mWarnIdx != mCompiler->mPassInstance->mWarnIdx))
  2130. {
  2131. AddFailType(typeInstance);
  2132. }
  2133. }
  2134. void BfModule::UpdateCEEmit(CeEmitContext* ceEmitContext, BfTypeInstance* typeInstance, BfTypeDef* declaringType, const StringImpl& ctxString, BfAstNode* refNode, BfCeTypeEmitSourceKind emitSourceKind)
  2135. {
  2136. for (int ifaceTypeId : ceEmitContext->mInterfaces)
  2137. typeInstance->mCeTypeInfo->mPendingInterfaces.Add(ifaceTypeId);
  2138. if (ceEmitContext->mEmitData.IsEmpty())
  2139. return;
  2140. String src;
  2141. // if (typeInstance->mTypeDef->mEmitParent != NULL)
  2142. // src += "\n\n";
  2143. // src += "// Code emission in ";
  2144. // src += ctxString;
  2145. // src += "\n\n";
  2146. src += ceEmitContext->mEmitData;
  2147. ceEmitContext->mEmitData.Clear();
  2148. BfCEParseContext ceParseContext = CEEmitParse(typeInstance, declaringType, src, refNode, emitSourceKind);
  2149. auto emitParser = typeInstance->mTypeDef->mSource->ToParser();
  2150. auto typeDeclaration = emitParser->mAlloc->Alloc<BfTypeDeclaration>();
  2151. BfReducer bfReducer;
  2152. bfReducer.mSource = emitParser;
  2153. bfReducer.mPassInstance = mCompiler->mPassInstance;
  2154. bfReducer.mAlloc = emitParser->mAlloc;
  2155. bfReducer.mSystem = mSystem;
  2156. bfReducer.mCurTypeDecl = typeDeclaration;
  2157. typeDeclaration->mDefineNode = emitParser->mRootNode;
  2158. bfReducer.HandleTypeDeclaration(typeDeclaration, NULL);
  2159. BfDefBuilder defBuilder(mSystem);
  2160. defBuilder.mCurSource = emitParser;
  2161. defBuilder.mCurTypeDef = typeInstance->mTypeDef;
  2162. defBuilder.mCurDeclaringTypeDef = typeInstance->mTypeDef;
  2163. defBuilder.mPassInstance = mCompiler->mPassInstance;
  2164. defBuilder.mIsComptime = true;
  2165. defBuilder.DoVisitChild(typeDeclaration->mDefineNode);
  2166. defBuilder.FinishTypeDef(typeInstance->mTypeDef->mTypeCode == BfTypeCode_Enum);
  2167. FinishCEParseContext(refNode, typeInstance, &ceParseContext);
  2168. if (emitParser->mSourceClassifier != NULL)
  2169. {
  2170. emitParser->mSourceClassifier->VisitChild(emitParser->mRootNode);
  2171. emitParser->mSourceClassifier->DeferNodes(emitParser->mSidechannelRootNode);
  2172. emitParser->mSourceClassifier->DeferNodes(emitParser->mErrorRootNode);
  2173. }
  2174. if (typeInstance->mTypeDef->mEmitParent != NULL)
  2175. {
  2176. // Remove generated fields like the 'underlying type' enum field
  2177. typeInstance->mFieldInstances.Resize(typeInstance->mTypeDef->mEmitParent->mFields.mSize);
  2178. }
  2179. }
  2180. void BfModule::HandleCEAttributes(CeEmitContext* ceEmitContext, BfTypeInstance* typeInstance, BfFieldInstance* fieldInstance, BfCustomAttributes* customAttributes, Dictionary<BfTypeInstance*, BfIRValue>& prevAttrInstances, bool underlyingTypeDeferred)
  2181. {
  2182. for (auto& customAttribute : customAttributes->mAttributes)
  2183. {
  2184. bool isFieldApply = false;
  2185. bool hasFieldApply = false;
  2186. bool hasTypeApply = false;
  2187. for (int pass = 0; pass < 2; pass++)
  2188. {
  2189. if (pass == 1)
  2190. {
  2191. if ((hasFieldApply) && (hasTypeApply))
  2192. {
  2193. // Keep going - do the field apply now
  2194. }
  2195. else
  2196. break;
  2197. }
  2198. if ((customAttribute.mDeclaringType->IsExtension()) && (typeInstance->IsGenericTypeInstance()) && (!typeInstance->IsUnspecializedTypeVariation()))
  2199. {
  2200. if (!typeInstance->IsTypeMemberIncluded(customAttribute.mDeclaringType, typeInstance->mTypeDef, this))
  2201. continue;
  2202. }
  2203. auto attrType = customAttribute.mType;
  2204. BfMethodInstance* methodInstance = NULL;
  2205. BfIRValue irValue;
  2206. int checkDepth = 0;
  2207. auto checkAttrType = attrType;
  2208. while (checkAttrType != NULL)
  2209. {
  2210. mContext->mUnreifiedModule->PopulateType(checkAttrType, BfPopulateType_DataAndMethods);
  2211. if (checkAttrType->mDefineState < BfTypeDefineState_DefinedAndMethodsSlotted)
  2212. break;
  2213. for (auto& ifaceEntry : checkAttrType->mInterfaces)
  2214. {
  2215. isFieldApply = false;
  2216. isFieldApply = (ceEmitContext != NULL) && (fieldInstance != NULL) && (ifaceEntry.mInterfaceType->IsInstanceOf(mCompiler->mIOnFieldInitTypeDef));
  2217. if (((ceEmitContext != NULL) && (ifaceEntry.mInterfaceType->IsInstanceOf(mCompiler->mIComptimeTypeApply))) ||
  2218. ((ceEmitContext != NULL) && (ifaceEntry.mInterfaceType->IsInstanceOf(mCompiler->mIOnTypeInitTypeDef))) ||
  2219. ((ceEmitContext == NULL) && (ifaceEntry.mInterfaceType->IsInstanceOf(mCompiler->mIOnTypeDoneTypeDef))))
  2220. {
  2221. // Passes
  2222. hasTypeApply = true;
  2223. if (pass == 1)
  2224. {
  2225. // Only find field inits now
  2226. continue;
  2227. }
  2228. }
  2229. else if (isFieldApply)
  2230. {
  2231. // Field passes
  2232. hasFieldApply = true;
  2233. if (methodInstance != NULL)
  2234. continue;
  2235. }
  2236. else
  2237. continue;
  2238. prevAttrInstances.TryGetValue(checkAttrType, &irValue);
  2239. methodInstance = checkAttrType->mInterfaceMethodTable[ifaceEntry.mStartInterfaceTableIdx].mMethodRef;
  2240. if (pass == 1)
  2241. break;
  2242. }
  2243. if (methodInstance != NULL)
  2244. break;
  2245. checkAttrType = checkAttrType->mBaseType;
  2246. checkDepth++;
  2247. }
  2248. if (methodInstance == NULL)
  2249. continue;
  2250. SetAndRestoreValue<CeEmitContext*> prevEmitContext(mCompiler->mCeMachine->mCurEmitContext, ceEmitContext);
  2251. auto ceContext = mCompiler->mCeMachine->AllocContext();
  2252. defer({ mCompiler->mCeMachine->ReleaseContext(ceContext); });
  2253. BfIRValue attrVal = ceContext->CreateAttribute(customAttribute.mRef, this, typeInstance->mConstHolder, &customAttribute);
  2254. for (int baseIdx = 0; baseIdx < checkDepth; baseIdx++)
  2255. attrVal = mBfIRBuilder->CreateExtractValue(attrVal, 0);
  2256. SizedArray<BfIRValue, 1> args;
  2257. if (!attrType->IsValuelessType())
  2258. args.Add(attrVal);
  2259. if (isFieldApply)
  2260. {
  2261. auto fieldInfoType = ResolveTypeDef(mCompiler->mReflectFieldInfoTypeDef);
  2262. if (fieldInfoType != NULL)
  2263. {
  2264. SetAndRestoreValue<bool> prevIgnoreWrites(mBfIRBuilder->mIgnoreWrites, true);
  2265. SizedArray<BfIRValue, 9> fieldData =
  2266. {
  2267. mBfIRBuilder->CreateConstAggZero(mBfIRBuilder->MapType(fieldInfoType->ToTypeInstance()->mBaseType, BfIRPopulateType_Identity)),
  2268. mBfIRBuilder->CreateTypeOf(mCurTypeInstance), // mTypeInstance
  2269. CreateFieldData(fieldInstance, -1)
  2270. };
  2271. FixConstValueParams(fieldInfoType->ToTypeInstance(), fieldData);
  2272. auto fieldDataAgg = mBfIRBuilder->CreateConstAgg(mBfIRBuilder->MapType(fieldInfoType, BfIRPopulateType_Identity), fieldData);
  2273. args.Add(fieldDataAgg);
  2274. }
  2275. }
  2276. else
  2277. args.Add(mBfIRBuilder->CreateTypeOf(typeInstance));
  2278. if (methodInstance->GetParamCount() > 1)
  2279. {
  2280. if (irValue)
  2281. args.Add(irValue);
  2282. else
  2283. args.Add(mBfIRBuilder->CreateConstNull());
  2284. }
  2285. else
  2286. {
  2287. // Only allow a single instance
  2288. if (irValue)
  2289. continue;
  2290. }
  2291. DoPopulateType_CeCheckEnum(typeInstance, underlyingTypeDeferred);
  2292. if (fieldInstance != NULL)
  2293. mCompiler->mCeMachine->mFieldInstanceSet.Add(fieldInstance);
  2294. BfTypedValue result;
  2295. ///
  2296. {
  2297. SetAndRestoreValue<bool> prevIgnoreWrites(mBfIRBuilder->mIgnoreWrites, true);
  2298. CeCallSource callSource;
  2299. callSource.mRefNode = customAttribute.mRef;
  2300. if (isFieldApply)
  2301. {
  2302. callSource.mKind = CeCallSource::Kind_FieldInit;
  2303. callSource.mFieldInstance = fieldInstance;
  2304. }
  2305. else if (ceEmitContext != NULL)
  2306. {
  2307. callSource.mKind = CeCallSource::Kind_TypeInit;
  2308. }
  2309. else
  2310. {
  2311. callSource.mKind = CeCallSource::Kind_TypeDone;
  2312. }
  2313. result = ceContext->Call(callSource, this, methodInstance, args, (CeEvalFlags)(CeEvalFlags_ForceReturnThis | CeEvalFlags_IgnoreConstEncodeFailure), NULL);
  2314. }
  2315. if (fieldInstance != NULL)
  2316. mCompiler->mCeMachine->mFieldInstanceSet.Remove(fieldInstance);
  2317. if (result.mType == methodInstance->GetOwner())
  2318. prevAttrInstances[methodInstance->GetOwner()] = result.mValue;
  2319. if (ceEmitContext == NULL)
  2320. continue;
  2321. if (typeInstance->mDefineState == BfTypeDefineState_DefinedAndMethodsSlotted)
  2322. return;
  2323. if (typeInstance->mDefineState != BfTypeDefineState_CETypeInit)
  2324. {
  2325. // We populated before we could finish
  2326. AssertErrorState();
  2327. }
  2328. else
  2329. {
  2330. auto owner = methodInstance->GetOwner();
  2331. int typeId = owner->mTypeId;
  2332. if ((!result) && (mCompiler->mFastFinish))
  2333. {
  2334. if ((typeInstance->mCeTypeInfo != NULL) && (typeInstance->mCeTypeInfo->mNext == NULL))
  2335. typeInstance->mCeTypeInfo->mNext = new BfCeTypeInfo();
  2336. if ((typeInstance->mCeTypeInfo != NULL) && (typeInstance->mCeTypeInfo->mNext != NULL))
  2337. typeInstance->mCeTypeInfo->mNext->mFastFinished = true;
  2338. if (typeInstance->mCeTypeInfo != NULL)
  2339. {
  2340. BfCeTypeEmitEntry* entry = NULL;
  2341. if (typeInstance->mCeTypeInfo->mTypeIFaceMap.TryGetValue(typeId, &entry))
  2342. {
  2343. ceEmitContext->mEmitData = entry->mEmitData;
  2344. }
  2345. }
  2346. }
  2347. else
  2348. {
  2349. if (ceEmitContext->HasEmissions())
  2350. {
  2351. if (typeInstance->mCeTypeInfo == NULL)
  2352. typeInstance->mCeTypeInfo = new BfCeTypeInfo();
  2353. if (typeInstance->mCeTypeInfo->mNext == NULL)
  2354. typeInstance->mCeTypeInfo->mNext = new BfCeTypeInfo();
  2355. BfCeTypeEmitEntry entry;
  2356. entry.mEmitData = ceEmitContext->mEmitData;
  2357. typeInstance->mCeTypeInfo->mNext->mTypeIFaceMap[typeId] = entry;
  2358. typeInstance->mCeTypeInfo->mNext->mAlign = BF_MAX(typeInstance->mCeTypeInfo->mNext->mAlign, ceEmitContext->mAlign);
  2359. }
  2360. if ((ceEmitContext->mFailed) && (typeInstance->mCeTypeInfo != NULL))
  2361. typeInstance->mCeTypeInfo->mFailed = true;
  2362. }
  2363. if ((ceEmitContext->HasEmissions()) && (!mCompiler->mFastFinish))
  2364. {
  2365. String ctxStr = "comptime ";
  2366. ctxStr += methodInstance->mMethodDef->mName;
  2367. ctxStr += " of ";
  2368. ctxStr += TypeToString(attrType);
  2369. ctxStr += " to ";
  2370. ctxStr += TypeToString(typeInstance);
  2371. ctxStr += " ";
  2372. ctxStr += customAttribute.mRef->LocationToString();
  2373. UpdateCEEmit(ceEmitContext, typeInstance, customAttribute.mDeclaringType, ctxStr, customAttribute.mRef, BfCeTypeEmitSourceKind_Type);
  2374. }
  2375. }
  2376. }
  2377. }
  2378. }
  2379. void BfModule::CEMixin(BfAstNode* refNode, const StringImpl& code)
  2380. {
  2381. if (code.IsEmpty())
  2382. return;
  2383. if (mCurMethodInstance == NULL)
  2384. {
  2385. Fail("Invalid code mixin", refNode);
  2386. return;
  2387. }
  2388. auto activeTypeDef = mCurMethodInstance->mMethodDef->mDeclaringType;
  2389. //auto emitParser = activeTypeDef->mEmitParser;
  2390. String src;
  2391. // if (mCurTypeInstance->mTypeDef->mEmitParent != NULL)
  2392. // src += "\n\n";
  2393. // src += "// Code emission in ";
  2394. // src += MethodToString(mCurMethodInstance);
  2395. // src += "\n";
  2396. src += code;
  2397. BfReducer bfReducer;
  2398. bfReducer.mPassInstance = mCompiler->mPassInstance;
  2399. bfReducer.mSystem = mSystem;
  2400. bfReducer.mCurTypeDecl = activeTypeDef->mTypeDeclaration;
  2401. bfReducer.mCurMethodDecl = BfNodeDynCast<BfMethodDeclaration>(mCurMethodInstance->mMethodDef->mMethodDeclaration);
  2402. SetAndRestoreValue<BfAstNode*> prevCustomAttribute(mCurMethodState->mEmitRefNode, refNode);
  2403. EmitEnsureInstructionAt();
  2404. BfCEParseContext ceParseContext = CEEmitParse(mCurTypeInstance, activeTypeDef, src, refNode, BfCeTypeEmitSourceKind_Method);
  2405. auto emitParser = mCurTypeInstance->mTypeDef->mSource->ToParser();
  2406. bfReducer.mSource = emitParser;
  2407. bfReducer.mAlloc = emitParser->mAlloc;
  2408. bfReducer.HandleBlock(emitParser->mRootNode, false);
  2409. if (emitParser->mSourceClassifier != NULL)
  2410. {
  2411. emitParser->mSourceClassifier->VisitChild(emitParser->mRootNode);
  2412. emitParser->mSourceClassifier->VisitChild(emitParser->mSidechannelRootNode);
  2413. emitParser->mSourceClassifier->VisitChild(emitParser->mErrorRootNode);
  2414. }
  2415. Visit(emitParser->mRootNode);
  2416. prevCustomAttribute.Restore();
  2417. FinishCEParseContext(refNode, mCurTypeInstance, &ceParseContext);
  2418. }
  2419. void BfModule::ExecuteCEOnCompile(CeEmitContext* ceEmitContext, BfTypeInstance* typeInstance, BfCEOnCompileKind onCompileKind, bool underlyingTypeDeferred)
  2420. {
  2421. Dictionary<BfTypeInstance*, BfIRValue> prevAttrInstances;
  2422. if (typeInstance->mCustomAttributes != NULL)
  2423. HandleCEAttributes(ceEmitContext, typeInstance, NULL, typeInstance->mCustomAttributes, prevAttrInstances, underlyingTypeDeferred);
  2424. if ((ceEmitContext != NULL) || (onCompileKind == BfCEOnCompileKind_TypeDone))
  2425. {
  2426. for (auto& fieldInstance : typeInstance->mFieldInstances)
  2427. {
  2428. if (fieldInstance.mCustomAttributes != NULL)
  2429. HandleCEAttributes(ceEmitContext, typeInstance, &fieldInstance, fieldInstance.mCustomAttributes, prevAttrInstances, underlyingTypeDeferred);
  2430. }
  2431. for (auto methodDef : typeInstance->mTypeDef->mMethods)
  2432. {
  2433. auto methodDeclaration = methodDef->GetMethodDeclaration();
  2434. auto propertyMethodDeclaration = methodDef->GetPropertyMethodDeclaration();
  2435. BfAttributeTargets attrTarget = ((methodDef->mMethodType == BfMethodType_Ctor) || (methodDef->mMethodType == BfMethodType_CtorCalcAppend)) ? BfAttributeTargets_Constructor : BfAttributeTargets_Method;
  2436. BfAttributeDirective* attributeDirective = NULL;
  2437. if (methodDeclaration != NULL)
  2438. attributeDirective = methodDeclaration->mAttributes;
  2439. else if (propertyMethodDeclaration != NULL)
  2440. {
  2441. attributeDirective = propertyMethodDeclaration->mAttributes;
  2442. if (auto exprBody = BfNodeDynCast<BfPropertyBodyExpression>(propertyMethodDeclaration->mPropertyDeclaration->mDefinitionBlock))
  2443. {
  2444. attributeDirective = propertyMethodDeclaration->mPropertyDeclaration->mAttributes;
  2445. attrTarget = (BfAttributeTargets)(BfAttributeTargets_Property | BfAttributeTargets_Method);
  2446. }
  2447. }
  2448. if (attributeDirective == NULL)
  2449. continue;
  2450. // Corlib will never need to process
  2451. if (methodDef->mDeclaringType->mProject == mContext->mBfObjectType->mTypeDef->mProject)
  2452. continue;
  2453. if (methodDef->mDeclaringType != mCurTypeInstance->mTypeDef)
  2454. {
  2455. if (typeInstance->IsUnspecializedTypeVariation())
  2456. continue;
  2457. if (!typeInstance->IsTypeMemberIncluded(methodDef->mDeclaringType, mCurTypeInstance->mTypeDef, this))
  2458. continue;
  2459. }
  2460. if (methodDef->mIdx >= typeInstance->mMethodInstanceGroups.mSize)
  2461. continue;
  2462. auto& methodInstanceGroup = typeInstance->mMethodInstanceGroups[methodDef->mIdx];
  2463. if (methodInstanceGroup.mDefaultCustomAttributes == NULL)
  2464. {
  2465. BfTypeState typeState;
  2466. typeState.mPrevState = mContext->mCurTypeState;
  2467. typeState.mForceActiveTypeDef = methodDef->mDeclaringType;
  2468. SetAndRestoreValue<BfTypeState*> prevTypeState(mContext->mCurTypeState, &typeState);
  2469. methodInstanceGroup.mDefaultCustomAttributes = GetCustomAttributes(attributeDirective, attrTarget);
  2470. }
  2471. HandleCEAttributes(ceEmitContext, typeInstance, NULL, methodInstanceGroup.mDefaultCustomAttributes, prevAttrInstances, underlyingTypeDeferred);
  2472. }
  2473. }
  2474. int methodCount = (int)typeInstance->mTypeDef->mMethods.size();
  2475. for (int methodIdx = 0; methodIdx < methodCount; methodIdx++)
  2476. {
  2477. auto methodDef = typeInstance->mTypeDef->mMethods[methodIdx];
  2478. auto methodDeclaration = BfNodeDynCast<BfMethodDeclaration>(methodDef->mMethodDeclaration);
  2479. if (methodDeclaration == NULL)
  2480. continue;
  2481. if (methodDeclaration->mAttributes == NULL)
  2482. continue;
  2483. BfTypeState typeState;
  2484. typeState.mPrevState = mContext->mCurTypeState;
  2485. typeState.mType = typeInstance;
  2486. typeState.mForceActiveTypeDef = methodDef->mDeclaringType;
  2487. SetAndRestoreValue<BfTypeState*> prevTypeState(mContext->mCurTypeState, &typeState);
  2488. bool wantsAttributes = false;
  2489. BfAttributeDirective* checkAttributes = methodDeclaration->mAttributes;
  2490. while (checkAttributes != NULL)
  2491. {
  2492. SetAndRestoreValue<bool> prevIgnoreErrors(mIgnoreErrors, true);
  2493. BfType* attrType = ResolveTypeRef(checkAttributes->mAttributeTypeRef, BfPopulateType_Identity, (BfResolveTypeRefFlags)(BfResolveTypeRefFlag_Attribute | BfResolveTypeRefFlag_NoReify));
  2494. if (attrType != NULL)
  2495. {
  2496. if (attrType->IsInstanceOf(mCompiler->mOnCompileAttributeTypeDef))
  2497. wantsAttributes = true;
  2498. auto attrTypeInstance = attrType->ToTypeInstance();
  2499. if ((attrTypeInstance != NULL) && (!attrTypeInstance->mInterfaces.IsEmpty()))
  2500. wantsAttributes = true;
  2501. }
  2502. checkAttributes = checkAttributes->mNextAttribute;
  2503. }
  2504. if (!wantsAttributes)
  2505. continue;
  2506. auto customAttributes = GetCustomAttributes(methodDeclaration->mAttributes, BfAttributeTargets_Method);
  2507. defer({ delete customAttributes; });
  2508. auto onCompileAttribute = customAttributes->Get(mCompiler->mOnCompileAttributeTypeDef);
  2509. if (onCompileAttribute == NULL)
  2510. continue;
  2511. HandleCEAttributes(ceEmitContext, typeInstance, NULL, customAttributes, prevAttrInstances, underlyingTypeDeferred);
  2512. if (onCompileAttribute->mCtorArgs.size() < 1)
  2513. continue;
  2514. auto constant = typeInstance->mConstHolder->GetConstant(onCompileAttribute->mCtorArgs[0]);
  2515. if (constant == NULL)
  2516. continue;
  2517. if (onCompileKind != (BfCEOnCompileKind)constant->mInt32)
  2518. continue;
  2519. if (!methodDef->mIsStatic)
  2520. {
  2521. Fail("OnCompile methods must be static", methodDeclaration);
  2522. continue;
  2523. }
  2524. if (!methodDef->mParams.IsEmpty())
  2525. {
  2526. Fail("OnCompile methods cannot declare parameters", methodDeclaration);
  2527. continue;
  2528. }
  2529. SetAndRestoreValue<CeEmitContext*> prevEmitContext(mCompiler->mCeMachine->mCurEmitContext);
  2530. if (onCompileKind == BfCEOnCompileKind_TypeInit)
  2531. {
  2532. mCompiler->mCeMachine->mCurEmitContext = ceEmitContext;
  2533. }
  2534. DoPopulateType_CeCheckEnum(typeInstance, underlyingTypeDeferred);
  2535. BfTypedValue result;
  2536. BfMethodInstance* methodInstance = NULL;
  2537. ///
  2538. {
  2539. auto useTypeInstance = typeInstance;
  2540. if (useTypeInstance->IsUnspecializedTypeVariation())
  2541. useTypeInstance = GetUnspecializedTypeInstance(useTypeInstance);
  2542. BfType* prevContextTypeInstance = NULL;
  2543. if (ceEmitContext != NULL)
  2544. {
  2545. prevContextTypeInstance = ceEmitContext->mType;
  2546. ceEmitContext->mType = useTypeInstance;
  2547. }
  2548. methodInstance = GetRawMethodInstanceAtIdx(useTypeInstance, methodDef->mIdx);
  2549. result = mCompiler->mCeMachine->Call(methodDef->GetRefNode(), this, methodInstance, {}, (CeEvalFlags)(CeEvalFlags_PersistantError | CeEvalFlags_DeferIfNotOnlyError), NULL);
  2550. if (ceEmitContext != NULL)
  2551. ceEmitContext->mType = prevContextTypeInstance;
  2552. }
  2553. if ((onCompileKind == BfCEOnCompileKind_TypeDone) && (typeInstance->mDefineState > BfTypeDefineState_CETypeInit))
  2554. {
  2555. // Type done, okay
  2556. }
  2557. else if (typeInstance->mDefineState != BfTypeDefineState_CETypeInit)
  2558. {
  2559. // We populated before we could finish
  2560. AssertErrorState();
  2561. }
  2562. else
  2563. {
  2564. if ((!result) && (mCompiler->mFastFinish))
  2565. {
  2566. if ((typeInstance->mCeTypeInfo != NULL) && (typeInstance->mCeTypeInfo->mNext == NULL))
  2567. typeInstance->mCeTypeInfo->mNext = new BfCeTypeInfo();
  2568. if ((typeInstance->mCeTypeInfo != NULL) && (typeInstance->mCeTypeInfo->mNext != NULL))
  2569. typeInstance->mCeTypeInfo->mNext->mFastFinished = true;
  2570. if (typeInstance->mCeTypeInfo != NULL)
  2571. {
  2572. BfCeTypeEmitEntry* entry = NULL;
  2573. if (typeInstance->mCeTypeInfo->mOnCompileMap.TryGetValue(methodDef->mIdx, &entry))
  2574. {
  2575. ceEmitContext->mEmitData = entry->mEmitData;
  2576. }
  2577. }
  2578. }
  2579. else if (!ceEmitContext->mEmitData.IsEmpty())
  2580. {
  2581. if (typeInstance->mCeTypeInfo == NULL)
  2582. typeInstance->mCeTypeInfo = new BfCeTypeInfo();
  2583. if (typeInstance->mCeTypeInfo->mNext == NULL)
  2584. typeInstance->mCeTypeInfo->mNext = new BfCeTypeInfo();
  2585. BfCeTypeEmitEntry entry;
  2586. entry.mEmitData = ceEmitContext->mEmitData;
  2587. typeInstance->mCeTypeInfo->mNext->mOnCompileMap[methodDef->mIdx] = entry;
  2588. }
  2589. else if ((ceEmitContext->mFailed) && (typeInstance->mCeTypeInfo != NULL))
  2590. typeInstance->mCeTypeInfo->mFailed = true;
  2591. if (!ceEmitContext->mEmitData.IsEmpty())
  2592. {
  2593. String ctxStr = "OnCompile execution of ";
  2594. ctxStr += MethodToString(methodInstance);
  2595. ctxStr += " ";
  2596. ctxStr += methodInstance->mMethodDef->GetRefNode()->LocationToString();
  2597. UpdateCEEmit(ceEmitContext, typeInstance, methodDef->mDeclaringType, ctxStr, methodInstance->mMethodDef->GetRefNode(), BfCeTypeEmitSourceKind_Type);
  2598. }
  2599. }
  2600. if (mCompiler->mCanceling)
  2601. {
  2602. DeferRebuildType(typeInstance);
  2603. }
  2604. }
  2605. // if ((!typeInstance->IsInstanceOf(mCompiler->mValueTypeTypeDef)) &&
  2606. // (!typeInstance->IsInstanceOf(mCompiler->mBfObjectTypeDef)) &&
  2607. // (!typeInstance->IsBoxed()) &&
  2608. // (!typeInstance->IsDelegate()) &&
  2609. // (!typeInstance->IsTuple()))
  2610. // {
  2611. // //zTODO: TESTING, remove!
  2612. // CEEmitParse(typeInstance, "// Testing");
  2613. // }
  2614. }
  2615. void BfModule::DoCEEmit(BfTypeInstance* typeInstance, bool& hadNewMembers, bool underlyingTypeDeferred)
  2616. {
  2617. BfLogSysM("BfModule::DoCEEmit %p\n", typeInstance);
  2618. if (((typeInstance->IsInstanceOf(mCompiler->mValueTypeTypeDef))) ||
  2619. ((typeInstance->IsInstanceOf(mCompiler->mEnumTypeDef))) ||
  2620. ((typeInstance->IsInstanceOf(mCompiler->mAttributeTypeDef))))
  2621. {
  2622. // These are not allowed to emit
  2623. return;
  2624. }
  2625. CeEmitContext ceEmitContext;
  2626. ceEmitContext.mType = typeInstance;
  2627. ExecuteCEOnCompile(&ceEmitContext, typeInstance, BfCEOnCompileKind_TypeInit, underlyingTypeDeferred);
  2628. hadNewMembers = (typeInstance->mTypeDef->mEmitParent != NULL);
  2629. if (ceEmitContext.mFailed)
  2630. TypeFailed(typeInstance);
  2631. }
  2632. void BfModule::DoCEEmit(BfMethodInstance* methodInstance)
  2633. {
  2634. if (mCurTypeInstance->IsUnspecializedTypeVariation())
  2635. return;
  2636. auto customAttributes = methodInstance->GetCustomAttributes();
  2637. if (customAttributes == NULL)
  2638. return;
  2639. auto typeInstance = methodInstance->GetOwner();
  2640. CeEmitContext ceEmitContext;
  2641. ceEmitContext.mMethodInstance = methodInstance;
  2642. Dictionary<BfTypeInstance*, BfIRValue> prevAttrInstances;
  2643. for (auto& customAttribute : customAttributes->mAttributes)
  2644. {
  2645. auto attrType = customAttribute.mType;
  2646. BfMethodInstance* applyMethodInstance = NULL;
  2647. BfIRValue irValue;
  2648. int checkDepth = 0;
  2649. auto checkAttrType = attrType;
  2650. while (checkAttrType != NULL)
  2651. {
  2652. mContext->mUnreifiedModule->PopulateType(checkAttrType, BfPopulateType_DataAndMethods);
  2653. if (checkAttrType->mDefineState < BfTypeDefineState_DefinedAndMethodsSlotted)
  2654. break;
  2655. for (auto& ifaceEntry : checkAttrType->mInterfaces)
  2656. {
  2657. if ((!ifaceEntry.mInterfaceType->IsInstanceOf(mCompiler->mIComptimeMethodApply)) &&
  2658. (!ifaceEntry.mInterfaceType->IsInstanceOf(mCompiler->mIOnMethodInitTypeDef)))
  2659. continue;
  2660. prevAttrInstances.TryGetValue(checkAttrType, &irValue);
  2661. applyMethodInstance = checkAttrType->mInterfaceMethodTable[ifaceEntry.mStartInterfaceTableIdx].mMethodRef;
  2662. break;
  2663. }
  2664. if (applyMethodInstance != NULL)
  2665. break;
  2666. checkAttrType = checkAttrType->mBaseType;
  2667. checkDepth++;
  2668. }
  2669. if (applyMethodInstance == NULL)
  2670. continue;
  2671. SetAndRestoreValue<CeEmitContext*> prevEmitContext(mCompiler->mCeMachine->mCurEmitContext, &ceEmitContext);
  2672. auto ceContext = mCompiler->mCeMachine->AllocContext();
  2673. BfIRValue attrVal = ceContext->CreateAttribute(customAttribute.mRef, this, typeInstance->mConstHolder, &customAttribute);
  2674. for (int baseIdx = 0; baseIdx < checkDepth; baseIdx++)
  2675. attrVal = mBfIRBuilder->CreateExtractValue(attrVal, 0);
  2676. SizedArray<BfIRValue, 1> args;
  2677. if (!attrType->IsValuelessType())
  2678. args.Add(attrVal);
  2679. auto methodInfoType = ResolveTypeDef(mCompiler->mReflectMethodInfoTypeDef);
  2680. SizedArray<BfIRValue, 9> methodData =
  2681. {
  2682. mBfIRBuilder->CreateConstAggZero(mBfIRBuilder->MapType(methodInfoType->ToTypeInstance()->mBaseType, BfIRPopulateType_Identity)),
  2683. mBfIRBuilder->CreateTypeOf(mCurTypeInstance), // mTypeInstance
  2684. GetConstValue((int64)methodInstance, GetPrimitiveType(BfTypeCode_Int64)), // mNativeMethodInstance
  2685. };
  2686. FixConstValueParams(methodInfoType->ToTypeInstance(), methodData, true);
  2687. auto fieldDataAgg = mBfIRBuilder->CreateConstAgg(mBfIRBuilder->MapType(methodInfoType, BfIRPopulateType_Identity), methodData);
  2688. args.Add(fieldDataAgg);
  2689. if (applyMethodInstance->GetParamCount() > 1)
  2690. {
  2691. if (irValue)
  2692. args.Add(irValue);
  2693. else
  2694. args.Add(mBfIRBuilder->CreateConstNull());
  2695. }
  2696. else
  2697. {
  2698. // Only allow a single instance
  2699. if (irValue)
  2700. continue;
  2701. }
  2702. mCompiler->mCeMachine->mMethodInstanceSet.Add(methodInstance);
  2703. auto activeTypeDef = typeInstance->mTypeDef;
  2704. BfTypedValue result;
  2705. ///
  2706. {
  2707. SetAndRestoreValue<bool> prevIgnoreWrites(mBfIRBuilder->mIgnoreWrites, true);
  2708. CeCallSource callSource;
  2709. callSource.mRefNode = customAttribute.mRef;
  2710. callSource.mKind = CeCallSource::Kind_MethodInit;
  2711. result = ceContext->Call(callSource, this, applyMethodInstance, args, CeEvalFlags_ForceReturnThis, NULL);
  2712. }
  2713. if (result.mType == methodInstance->GetOwner())
  2714. prevAttrInstances[methodInstance->GetOwner()] = result.mValue;
  2715. if ((!result) && (mCompiler->mFastFinish))
  2716. {
  2717. methodInstance->mCeCancelled = true;
  2718. }
  2719. if ((!ceEmitContext.mEmitData.IsEmpty()) || (!ceEmitContext.mExitEmitData.IsEmpty()))
  2720. {
  2721. String src;
  2722. // src += "// Code emission in comptime ApplyToMethod of ";
  2723. // src += TypeToString(attrType);
  2724. // src += " to ";
  2725. // src += MethodToString(methodInstance);
  2726. // src += " ";
  2727. // src += customAttribute.mRef->LocationToString();
  2728. // src += "\n";
  2729. //auto emitTypeDef = typeInstance->mCeTypeInfo->mNext->mTypeDef;
  2730. //auto emitParser = emitTypeDef->mSource->ToParser();
  2731. //auto emitParser = activeTypeDef->mEmitParser;
  2732. BfReducer bfReducer;
  2733. //bfReducer.mSource = emitParser;
  2734. bfReducer.mPassInstance = mCompiler->mPassInstance;
  2735. bfReducer.mSystem = mSystem;
  2736. bfReducer.mCurTypeDecl = activeTypeDef->mTypeDeclaration;
  2737. bfReducer.mCurMethodDecl = BfNodeDynCast<BfMethodDeclaration>(methodInstance->mMethodDef->mMethodDeclaration);
  2738. BfAstNode* bodyNode = NULL;
  2739. if (auto methodDecl = BfNodeDynCast<BfMethodDeclaration>(methodInstance->mMethodDef->mMethodDeclaration))
  2740. bodyNode = methodDecl->mBody;
  2741. auto _Classify = [&](BfParser* emitParser)
  2742. {
  2743. if (emitParser->mSourceClassifier == NULL)
  2744. return;
  2745. emitParser->mSourceClassifier->VisitChild(emitParser->mRootNode);
  2746. emitParser->mSourceClassifier->VisitChild(emitParser->mSidechannelRootNode);
  2747. emitParser->mSourceClassifier->VisitChild(emitParser->mErrorRootNode);
  2748. };
  2749. if (!ceEmitContext.mEmitData.IsEmpty())
  2750. {
  2751. SetAndRestoreValue<BfAstNode*> prevCustomAttribute(mCurMethodState->mEmitRefNode, customAttribute.mRef);
  2752. String entrySrc = src;
  2753. // if (mCurTypeInstance->mTypeDef->mEmitParent != NULL)
  2754. // entrySrc += "\n\n";
  2755. entrySrc += src;
  2756. entrySrc += ceEmitContext.mEmitData;
  2757. BfAstNode* refNode = customAttribute.mRef;
  2758. if (bodyNode != NULL)
  2759. {
  2760. refNode = bodyNode;
  2761. if (auto blockNode = BfNodeDynCast<BfBlock>(bodyNode))
  2762. if (blockNode->mOpenBrace != NULL)
  2763. refNode = blockNode->mOpenBrace;
  2764. }
  2765. BfCEParseContext ceParseContext = CEEmitParse(typeInstance, methodInstance->mMethodDef->mDeclaringType, entrySrc, refNode, BfCeTypeEmitSourceKind_Type);
  2766. auto emitParser = mCurTypeInstance->mTypeDef->mSource->ToParser();
  2767. bfReducer.mSource = emitParser;
  2768. bfReducer.mAlloc = emitParser->mAlloc;
  2769. bfReducer.HandleBlock(emitParser->mRootNode, false);
  2770. _Classify(emitParser);
  2771. Visit(emitParser->mRootNode);
  2772. FinishCEParseContext(customAttribute.mRef, typeInstance, &ceParseContext);
  2773. }
  2774. if (!ceEmitContext.mExitEmitData.IsEmpty())
  2775. {
  2776. String exitSrc;
  2777. if (mCurTypeInstance->mTypeDef->mEmitParent != NULL)
  2778. exitSrc += "\n\n";
  2779. exitSrc += src;
  2780. exitSrc += ceEmitContext.mExitEmitData;
  2781. BfAstNode* refNode = customAttribute.mRef;
  2782. if (bodyNode != NULL)
  2783. {
  2784. refNode = bodyNode;
  2785. if (auto blockNode = BfNodeDynCast<BfBlock>(bodyNode))
  2786. if (blockNode->mCloseBrace != NULL)
  2787. refNode = blockNode->mCloseBrace;
  2788. }
  2789. BfCEParseContext ceParseContext = CEEmitParse(typeInstance, methodInstance->mMethodDef->mDeclaringType, exitSrc, refNode, BfCeTypeEmitSourceKind_Type);
  2790. auto emitParser = mCurTypeInstance->mTypeDef->mSource->ToParser();
  2791. bfReducer.mSource = emitParser;
  2792. bfReducer.mAlloc = emitParser->mAlloc;
  2793. bfReducer.HandleBlock(emitParser->mRootNode, false);
  2794. _Classify(emitParser);
  2795. auto deferredBlock = AddDeferredBlock(emitParser->mRootNode, &mCurMethodState->mHeadScope);
  2796. deferredBlock->mEmitRefNode = customAttribute.mRef;
  2797. FinishCEParseContext(customAttribute.mRef, typeInstance, &ceParseContext);
  2798. }
  2799. }
  2800. mCompiler->mCeMachine->ReleaseContext(ceContext);
  2801. }
  2802. }
  2803. void BfModule::PopulateUsingFieldData(BfTypeInstance* typeInstance)
  2804. {
  2805. if (typeInstance->mTypeInfoEx == NULL)
  2806. typeInstance->mTypeInfoEx = new BfTypeInfoEx();
  2807. BfUsingFieldData* usingFieldData;
  2808. if (typeInstance->mTypeInfoEx->mUsingFieldData != NULL)
  2809. {
  2810. usingFieldData = typeInstance->mTypeInfoEx->mUsingFieldData;
  2811. Array<BfTypeInstance*> populatedTypes;
  2812. for (auto checkType : usingFieldData->mAwaitingPopulateSet)
  2813. {
  2814. if (checkType->mDefineState >= BfTypeDefineState_Defined)
  2815. populatedTypes.Add(checkType);
  2816. }
  2817. if (populatedTypes.IsEmpty())
  2818. return;
  2819. for (auto type : populatedTypes)
  2820. usingFieldData->mAwaitingPopulateSet.Remove(type);
  2821. usingFieldData->mEntries.Clear();
  2822. usingFieldData->mMethods.Clear();
  2823. }
  2824. else
  2825. {
  2826. usingFieldData = new BfUsingFieldData();
  2827. typeInstance->mTypeInfoEx->mUsingFieldData = usingFieldData;
  2828. }
  2829. HashSet<BfTypeInstance*> checkedTypeSet;
  2830. Array<BfUsingFieldData::MemberRef> memberRefs;
  2831. std::function<void(BfTypeInstance*, bool)> _CheckType = [&](BfTypeInstance* usingType, bool staticOnly)
  2832. {
  2833. if (!checkedTypeSet.Add(usingType))
  2834. return;
  2835. defer(
  2836. {
  2837. checkedTypeSet.Remove(usingType);
  2838. });
  2839. for (auto fieldDef : usingType->mTypeDef->mFields)
  2840. {
  2841. if ((staticOnly) && (!fieldDef->mIsStatic))
  2842. continue;
  2843. memberRefs.Add(BfUsingFieldData::MemberRef(usingType, fieldDef));
  2844. defer(
  2845. {
  2846. memberRefs.pop_back();
  2847. });
  2848. if (memberRefs.Count() > 1)
  2849. {
  2850. BfUsingFieldData::Entry* entry = NULL;
  2851. usingFieldData->mEntries.TryAdd(fieldDef->mName, NULL, &entry);
  2852. SizedArray<BfUsingFieldData::MemberRef, 1> lookup;
  2853. for (auto entry : memberRefs)
  2854. lookup.Add(entry);
  2855. entry->mLookups.Add(lookup);
  2856. }
  2857. if (fieldDef->mUsingProtection == BfProtection_Hidden)
  2858. continue;
  2859. if (usingType->mDefineState < BfTypeDefineState_Defined)
  2860. {
  2861. bool isPopulatingType = false;
  2862. auto checkTypeState = mContext->mCurTypeState;
  2863. while (checkTypeState != NULL)
  2864. {
  2865. if ((checkTypeState->mType == usingType) && (checkTypeState->mPopulateType >= BfPopulateType_Data))
  2866. {
  2867. isPopulatingType = true;
  2868. break;
  2869. }
  2870. checkTypeState = checkTypeState->mPrevState;
  2871. }
  2872. if (!isPopulatingType)
  2873. {
  2874. // We need to populate this type now
  2875. PopulateType(usingType, BfPopulateType_Data_Soft);
  2876. }
  2877. if (usingType->mDefineState < BfTypeDefineState_Defined)
  2878. typeInstance->mTypeInfoEx->mUsingFieldData->mAwaitingPopulateSet.Add(usingType);
  2879. }
  2880. auto fieldInstance = &usingType->mFieldInstances[fieldDef->mIdx];
  2881. if (fieldInstance->mResolvedType != NULL)
  2882. {
  2883. auto fieldTypeInst = fieldInstance->mResolvedType->ToTypeInstance();
  2884. if (fieldTypeInst != NULL)
  2885. _CheckType(fieldTypeInst, fieldDef->mIsStatic);
  2886. }
  2887. }
  2888. for (auto propDef : usingType->mTypeDef->mProperties)
  2889. {
  2890. if ((staticOnly) && (!propDef->mIsStatic))
  2891. continue;
  2892. memberRefs.Add(BfUsingFieldData::MemberRef(usingType, propDef));
  2893. defer(
  2894. {
  2895. memberRefs.pop_back();
  2896. });
  2897. if (memberRefs.Count() > 1)
  2898. {
  2899. BfUsingFieldData::Entry* entry = NULL;
  2900. usingFieldData->mEntries.TryAdd(propDef->mName, NULL, &entry);
  2901. SizedArray<BfUsingFieldData::MemberRef, 1> lookup;
  2902. for (auto entry : memberRefs)
  2903. lookup.Add(entry);
  2904. entry->mLookups.Add(lookup);
  2905. }
  2906. if (propDef->mUsingProtection == BfProtection_Hidden)
  2907. continue;
  2908. if (usingType->mDefineState < BfTypeDefineState_Defined)
  2909. {
  2910. // We need to populate this type now
  2911. PopulateType(usingType);
  2912. }
  2913. BfType* propType = NULL;
  2914. for (auto methodDef : propDef->mMethods)
  2915. {
  2916. auto methodInstance = GetRawMethodInstance(usingType, methodDef);
  2917. if (methodInstance == NULL)
  2918. continue;
  2919. if (methodDef->mMethodType == BfMethodType_PropertyGetter)
  2920. {
  2921. propType = methodInstance->mReturnType;
  2922. break;
  2923. }
  2924. if (methodDef->mMethodType == BfMethodType_PropertySetter)
  2925. {
  2926. if (methodInstance->GetParamCount() > 0)
  2927. {
  2928. propType = methodInstance->GetParamType(0);
  2929. break;
  2930. }
  2931. }
  2932. }
  2933. if ((propType != NULL) && (propType->IsTypeInstance()))
  2934. _CheckType(propType->ToTypeInstance(), propDef->mIsStatic);
  2935. }
  2936. for (auto methodDef : usingType->mTypeDef->mMethods)
  2937. {
  2938. if ((staticOnly) && (!methodDef->mIsStatic))
  2939. continue;
  2940. //TODO: Support mixins as well
  2941. if (methodDef->mMethodType != BfMethodType_Normal)
  2942. continue;
  2943. // No auto methods
  2944. if (methodDef->mMethodDeclaration == NULL)
  2945. continue;
  2946. memberRefs.Add(BfUsingFieldData::MemberRef(usingType, methodDef));
  2947. defer(
  2948. {
  2949. memberRefs.pop_back();
  2950. });
  2951. if (memberRefs.Count() > 1)
  2952. {
  2953. BfUsingFieldData::Entry* entry = NULL;
  2954. usingFieldData->mMethods.TryAdd(methodDef->mName, NULL, &entry);
  2955. SizedArray<BfUsingFieldData::MemberRef, 1> lookup;
  2956. for (auto entry : memberRefs)
  2957. lookup.Add(entry);
  2958. entry->mLookups.Add(lookup);
  2959. }
  2960. }
  2961. };
  2962. _CheckType(typeInstance, false);
  2963. }
  2964. void BfModule::DoPopulateType_SetGenericDependencies(BfTypeInstance* genericTypeInstance)
  2965. {
  2966. SetAndRestoreValue<BfTypeInstance*> prevTypeInstance(mCurTypeInstance, genericTypeInstance);
  2967. SetAndRestoreValue<BfMethodInstance*> prevMethodInstance(mCurMethodInstance, NULL);
  2968. SetAndRestoreValue<BfMethodState*> prevMethodState(mCurMethodState, NULL);
  2969. // Add generic dependencies if needed
  2970. for (auto genericArgType : genericTypeInstance->mGenericTypeInfo->mTypeGenericArguments)
  2971. {
  2972. if (genericArgType->IsPrimitiveType())
  2973. genericArgType = GetWrappedStructType(genericArgType);
  2974. if (genericArgType != NULL)
  2975. {
  2976. AddDependency(genericArgType, genericTypeInstance, BfDependencyMap::DependencyFlag_TypeGenericArg);
  2977. BfLogSysM("Adding generic dependency of %p for type %p revision %d\n", genericArgType, genericTypeInstance, genericTypeInstance->mRevision);
  2978. #ifdef _DEBUG
  2979. // auto argDepType = genericArgType->ToDependedType();
  2980. // if (argDepType != NULL)
  2981. // {
  2982. // BfDependencyMap::DependencyEntry* depEntry = NULL;
  2983. // argDepType->mDependencyMap.mTypeSet.TryGetValue(genericTypeInstance, &depEntry);
  2984. // BF_ASSERT(depEntry != NULL);
  2985. // BF_ASSERT(depEntry->mRevision == genericTypeInstance->mRevision);
  2986. // BF_ASSERT((depEntry->mFlags & BfDependencyMap::DependencyFlag_TypeGenericArg) != 0);
  2987. // }
  2988. #endif
  2989. }
  2990. }
  2991. if ((genericTypeInstance->IsSpecializedType()) &&
  2992. (!genericTypeInstance->IsDelegateFromTypeRef()) &&
  2993. (!genericTypeInstance->IsFunctionFromTypeRef()))
  2994. {
  2995. // This ensures we rebuild the unspecialized type whenever the specialized type rebuilds. This is important
  2996. // for generic type binding
  2997. auto unspecializedTypeInstance = GetUnspecializedTypeInstance(genericTypeInstance);
  2998. BF_ASSERT(!unspecializedTypeInstance->IsUnspecializedTypeVariation());
  2999. mContext->mScratchModule->AddDependency(genericTypeInstance, unspecializedTypeInstance, BfDependencyMap::DependencyFlag_UnspecializedType);
  3000. }
  3001. }
  3002. void BfModule::DoPopulateType_TypeAlias(BfTypeAliasType* typeAlias)
  3003. {
  3004. SetAndRestoreValue<BfTypeInstance*> prevTypeInstance(mCurTypeInstance, typeAlias);
  3005. SetAndRestoreValue<BfMethodInstance*> prevMethodInstance(mCurMethodInstance, NULL);
  3006. SetAndRestoreValue<BfMethodState*> prevMethodState(mCurMethodState, NULL);
  3007. BF_ASSERT(mCurMethodInstance == NULL);
  3008. auto typeDef = typeAlias->mTypeDef;
  3009. auto typeAliasDecl = (BfTypeAliasDeclaration*)typeDef->mTypeDeclaration;
  3010. BfType* aliasToType = NULL;
  3011. if (typeAlias->mBaseType == NULL)
  3012. typeAlias->mBaseType = ResolveTypeDef(mCompiler->mValueTypeTypeDef)->ToTypeInstance();
  3013. if ((typeAlias->mGenericTypeInfo != NULL) && (!typeAlias->mGenericTypeInfo->mFinishedGenericParams))
  3014. FinishGenericParams(typeAlias);
  3015. BfTypeState typeState(mCurTypeInstance, mContext->mCurTypeState);
  3016. typeState.mPopulateType = BfPopulateType_Data;
  3017. typeState.mCurBaseTypeRef = typeAliasDecl->mAliasToType;
  3018. SetAndRestoreValue<BfTypeState*> prevTypeState(mContext->mCurTypeState, &typeState);
  3019. if (typeAlias->mDefineState < BfTypeDefineState_Declaring)
  3020. {
  3021. typeAlias->mDefineState = BfTypeDefineState_Declaring;
  3022. DoPopulateType_InitSearches(typeAlias);
  3023. }
  3024. typeAlias->mDefineState = BfTypeDefineState_ResolvingBaseType;
  3025. if (!CheckCircularDataError())
  3026. {
  3027. if (typeAliasDecl->mAliasToType != NULL)
  3028. aliasToType = ResolveTypeRef(typeAliasDecl->mAliasToType, BfPopulateType_IdentityNoRemapAlias,
  3029. (BfResolveTypeRefFlags)(BfResolveTypeRefFlag_AllowGenericParamConstValue | BfResolveTypeRefFlag_AllowImplicitConstExpr));
  3030. }
  3031. BfLogSysM("DoPopulateType_TypeAlias %p %s = %p %s\n", typeAlias, TypeToString(typeAlias).c_str(), aliasToType, (aliasToType != NULL) ? TypeToString(aliasToType).c_str() : NULL);
  3032. if (aliasToType != NULL)
  3033. {
  3034. if (aliasToType->IsConstExprValue())
  3035. {
  3036. Fail(StrFormat("Illegal alias to type '%s'", TypeToString(aliasToType).c_str()), typeAlias->mTypeDef->GetRefNode());
  3037. aliasToType = NULL;
  3038. }
  3039. }
  3040. if (aliasToType != NULL)
  3041. {
  3042. AddDependency(aliasToType, typeAlias, BfDependencyMap::DependencyFlag_DerivedFrom);
  3043. }
  3044. else
  3045. mContext->mFailTypes.TryAdd(typeAlias, BfFailKind_Normal);
  3046. if (typeAlias->mTypeFailed)
  3047. aliasToType = NULL;
  3048. if ((typeAlias->mAliasToType != NULL) && (typeAlias->mAliasToType != aliasToType) && (!typeAlias->mDependencyMap.IsEmpty()))
  3049. mContext->QueueMidCompileRebuildDependentTypes(typeAlias, "type alias remapped");
  3050. typeAlias->mAliasToType = aliasToType;
  3051. if (aliasToType != NULL)
  3052. {
  3053. typeAlias->mSize = 0;
  3054. typeAlias->mAlign = 1;
  3055. typeAlias->mInstSize = 0;
  3056. typeAlias->mInstAlign = 1;
  3057. }
  3058. typeAlias->mDefineState = BfTypeDefineState_DefinedAndMethodsSlotted;
  3059. typeAlias->mRebuildFlags = BfTypeRebuildFlag_None;
  3060. if ((typeAlias->mCustomAttributes == NULL) && (typeDef->mTypeDeclaration != NULL) && (typeDef->mTypeDeclaration->mAttributes != NULL))
  3061. typeAlias->mCustomAttributes = GetCustomAttributes(typeDef->mTypeDeclaration->mAttributes, BfAttributeTargets_Alias);
  3062. if (typeAlias->mGenericTypeInfo != NULL)
  3063. {
  3064. DoPopulateType_SetGenericDependencies(typeAlias);
  3065. }
  3066. }
  3067. void BfModule::DoPopulateType_InitSearches(BfTypeInstance* typeInstance)
  3068. {
  3069. if (typeInstance->IsBoxed())
  3070. return;
  3071. auto typeDef = typeInstance->mTypeDef;
  3072. auto _AddStaticSearch = [&](BfTypeDef* typeDef)
  3073. {
  3074. if (!typeDef->mStaticSearch.IsEmpty())
  3075. {
  3076. BfStaticSearch* staticSearch;
  3077. if (typeInstance->mStaticSearchMap.TryAdd(typeDef, NULL, &staticSearch))
  3078. {
  3079. SetAndRestoreValue<BfTypeDef*> prevTypeDef(mContext->mCurTypeState->mCurTypeDef, typeDef);
  3080. for (auto typeRef : typeDef->mStaticSearch)
  3081. {
  3082. auto staticType = ResolveTypeRef(typeRef, NULL, BfPopulateType_Identity);
  3083. if (staticType != NULL)
  3084. {
  3085. auto staticTypeInst = staticType->ToTypeInstance();
  3086. if (staticTypeInst == NULL)
  3087. {
  3088. Fail(StrFormat("Type '%s' cannot be used in a 'using static' declaration", TypeToString(staticType).c_str()), typeRef);
  3089. }
  3090. else
  3091. {
  3092. staticSearch->mStaticTypes.Add(staticTypeInst);
  3093. AddDependency(staticTypeInst, typeInstance, BfDependencyMap::DependencyFlag_StaticValue);
  3094. }
  3095. }
  3096. }
  3097. }
  3098. }
  3099. if (!typeDef->mInternalAccessSet.IsEmpty())
  3100. {
  3101. BfInternalAccessSet* internalAccessSet;
  3102. BF_ASSERT(!typeDef->IsEmitted());
  3103. if (typeInstance->mInternalAccessMap.TryAdd(typeDef, NULL, &internalAccessSet))
  3104. {
  3105. for (auto typeRef : typeDef->mInternalAccessSet)
  3106. {
  3107. if ((typeRef->IsA<BfNamedTypeReference>()) ||
  3108. (typeRef->IsA<BfQualifiedTypeReference>()))
  3109. {
  3110. String checkNamespaceStr;
  3111. typeRef->ToString(checkNamespaceStr);
  3112. BfAtomCompositeT<16> checkNamespace;
  3113. if (mSystem->ParseAtomComposite(checkNamespaceStr, checkNamespace))
  3114. {
  3115. if (mSystem->ContainsNamespace(checkNamespace, typeDef->mProject))
  3116. {
  3117. mSystem->RefAtomComposite(checkNamespace);
  3118. internalAccessSet->mNamespaces.Add(checkNamespace);
  3119. continue;
  3120. }
  3121. }
  3122. }
  3123. BfType* internalType = NULL;
  3124. if (auto genericTypeRef = BfNodeDynCast<BfGenericInstanceTypeRef>(typeRef))
  3125. internalType = mContext->mScratchModule->ResolveTypeRefAllowUnboundGenerics(typeRef, BfPopulateType_Identity);
  3126. else
  3127. internalType = ResolveTypeRef(typeRef, NULL, BfPopulateType_Identity);
  3128. if (internalType != NULL)
  3129. {
  3130. auto internalTypeInst = internalType->ToTypeInstance();
  3131. if (internalTypeInst == NULL)
  3132. {
  3133. Fail(StrFormat("Type '%s' cannot be used in a 'using internal' declaration", TypeToString(internalType).c_str()), typeRef);
  3134. }
  3135. else
  3136. {
  3137. internalAccessSet->mTypes.Add(internalTypeInst);
  3138. AddDependency(internalTypeInst, typeInstance, BfDependencyMap::DependencyFlag_StaticValue);
  3139. }
  3140. }
  3141. }
  3142. }
  3143. }
  3144. };
  3145. if (typeDef->mIsCombinedPartial)
  3146. {
  3147. for (auto partialTypeDef : typeDef->mPartials)
  3148. _AddStaticSearch(partialTypeDef);
  3149. }
  3150. else
  3151. _AddStaticSearch(typeDef);
  3152. }
  3153. void BfModule::DoPopulateType_FinishEnum(BfTypeInstance* typeInstance, bool underlyingTypeDeferred, HashContext* dataMemberHashCtx, BfType* unionInnerType)
  3154. {
  3155. if (typeInstance->mDefineState >= BfTypeDefineState_DefinedAndMethodsSlotting)
  3156. {
  3157. // Already locked
  3158. return;
  3159. }
  3160. if (typeInstance->IsEnum())
  3161. {
  3162. int64 min = 0;
  3163. int64 max = 0;
  3164. bool isFirst = true;
  3165. if (typeInstance->mTypeInfoEx == NULL)
  3166. typeInstance->mTypeInfoEx = new BfTypeInfoEx();
  3167. bool isAllInt64 = true;
  3168. for (auto& fieldInstanceRef : typeInstance->mFieldInstances)
  3169. {
  3170. auto fieldInstance = &fieldInstanceRef;
  3171. auto fieldDef = fieldInstance->GetFieldDef();
  3172. if (fieldDef != NULL)
  3173. {
  3174. if ((fieldInstance->mConstIdx == -1) || (fieldInstance->mResolvedType != typeInstance))
  3175. continue;
  3176. auto constant = typeInstance->mConstHolder->GetConstantById(fieldInstance->mConstIdx);
  3177. if (constant->mTypeCode != BfTypeCode_Int64)
  3178. isAllInt64 = false;
  3179. if (isFirst)
  3180. {
  3181. min = constant->mInt64;
  3182. max = constant->mInt64;
  3183. isFirst = false;
  3184. }
  3185. else
  3186. {
  3187. min = BF_MIN(constant->mInt64, min);
  3188. max = BF_MAX(constant->mInt64, max);
  3189. }
  3190. }
  3191. }
  3192. typeInstance->mTypeInfoEx->mMinValue = min;
  3193. typeInstance->mTypeInfoEx->mMaxValue = max;
  3194. if (underlyingTypeDeferred)
  3195. {
  3196. BfTypeCode typeCode;
  3197. if ((min == 0) && (max == 0))
  3198. typeCode = BfTypeCode_None;
  3199. else if ((min >= -0x80) && (max <= 0x7F))
  3200. typeCode = BfTypeCode_Int8;
  3201. else if ((min >= 0) && (max <= 0xFF))
  3202. typeCode = BfTypeCode_UInt8;
  3203. else if ((min >= -0x8000) && (max <= 0x7FFF))
  3204. typeCode = BfTypeCode_Int16;
  3205. else if ((min >= 0) && (max <= 0xFFFF))
  3206. typeCode = BfTypeCode_UInt16;
  3207. else if ((min >= -0x80000000LL) && (max <= 0x7FFFFFFF))
  3208. typeCode = BfTypeCode_Int32;
  3209. else if ((min >= 0) && (max <= 0xFFFFFFFFLL))
  3210. typeCode = BfTypeCode_UInt32;
  3211. else
  3212. typeCode = BfTypeCode_Int64;
  3213. if (typeInstance->mIsCRepr)
  3214. typeCode = BfTypeCode_Int32;
  3215. if ((typeCode != BfTypeCode_Int64) || (!isAllInt64))
  3216. {
  3217. for (auto& fieldInstanceRef : typeInstance->mFieldInstances)
  3218. {
  3219. auto fieldInstance = &fieldInstanceRef;
  3220. if ((fieldInstance->mConstIdx == -1) || (fieldInstance->mResolvedType != typeInstance))
  3221. continue;
  3222. auto constant = typeInstance->mConstHolder->GetConstantById(fieldInstance->mConstIdx);
  3223. if (constant->mTypeCode == typeCode)
  3224. continue;
  3225. BfIRValue newConstant = typeInstance->mConstHolder->CreateConst(typeCode, constant->mUInt64);
  3226. fieldInstance->mConstIdx = newConstant.mId;
  3227. }
  3228. }
  3229. BfType* underlyingType = GetPrimitiveType(typeCode);
  3230. auto fieldInstance = &typeInstance->mFieldInstances.back();
  3231. fieldInstance->mResolvedType = underlyingType;
  3232. fieldInstance->mDataSize = underlyingType->mSize;
  3233. typeInstance->mTypeInfoEx->mUnderlyingType = underlyingType;
  3234. typeInstance->mSize = underlyingType->mSize;
  3235. typeInstance->mAlign = underlyingType->mAlign;
  3236. typeInstance->mInstSize = underlyingType->mSize;
  3237. typeInstance->mInstAlign = underlyingType->mAlign;
  3238. typeInstance->mRebuildFlags = (BfTypeRebuildFlags)(typeInstance->mRebuildFlags & ~BfTypeRebuildFlag_UnderlyingTypeDeferred);
  3239. }
  3240. }
  3241. else
  3242. {
  3243. BF_ASSERT(!underlyingTypeDeferred);
  3244. }
  3245. if ((typeInstance->IsPayloadEnum()) && (!typeInstance->IsBoxed()))
  3246. {
  3247. typeInstance->mAlign = unionInnerType->mAlign;
  3248. int lastTagId = -1;
  3249. for (auto& fieldInstanceRef : typeInstance->mFieldInstances)
  3250. {
  3251. auto fieldInstance = &fieldInstanceRef;
  3252. auto fieldDef = fieldInstance->GetFieldDef();
  3253. if ((fieldDef != NULL) && (fieldInstance->mDataIdx < 0))
  3254. {
  3255. BF_ASSERT(fieldInstance->mResolvedType->mAlign >= 1);
  3256. typeInstance->mAlign = BF_MAX(typeInstance->mAlign, fieldInstance->mResolvedType->mAlign);
  3257. lastTagId = -fieldInstance->mDataIdx - 1;
  3258. }
  3259. }
  3260. auto fieldInstance = &typeInstance->mFieldInstances.back();
  3261. //BF_ASSERT(fieldInstance->mResolvedType == NULL);
  3262. BfPrimitiveType* discriminatorType;
  3263. if (lastTagId > 0x7FFFFFFF) // HOW?
  3264. discriminatorType = GetPrimitiveType(BfTypeCode_Int64);
  3265. else if (lastTagId > 0x7FFF)
  3266. discriminatorType = GetPrimitiveType(BfTypeCode_Int32);
  3267. else if (lastTagId > 0x7F)
  3268. discriminatorType = GetPrimitiveType(BfTypeCode_Int16);
  3269. else
  3270. discriminatorType = GetPrimitiveType(BfTypeCode_Int8);
  3271. fieldInstance->mResolvedType = discriminatorType;
  3272. fieldInstance->mDataOffset = unionInnerType->mSize;
  3273. fieldInstance->mDataIdx = 2; // 0 = base, 1 = payload, 2 = discriminator
  3274. if (typeInstance->mPacking == 0)
  3275. {
  3276. if ((fieldInstance->mDataOffset % discriminatorType->mAlign) != 0)
  3277. {
  3278. fieldInstance->mDataOffset = BF_ALIGN(fieldInstance->mDataOffset, discriminatorType->mAlign);
  3279. fieldInstance->mDataIdx++; // Add room for explicit padding
  3280. }
  3281. }
  3282. typeInstance->mAlign = BF_MAX(typeInstance->mAlign, discriminatorType->mAlign);
  3283. typeInstance->mSize = fieldInstance->mDataOffset + discriminatorType->mSize;
  3284. typeInstance->mInstSize = typeInstance->mSize;
  3285. typeInstance->mInstAlign = typeInstance->mAlign;
  3286. if (dataMemberHashCtx != NULL)
  3287. {
  3288. dataMemberHashCtx->Mixin(unionInnerType->mTypeId);
  3289. dataMemberHashCtx->Mixin(discriminatorType->mTypeId);
  3290. }
  3291. typeInstance->mMergedFieldDataCount = 1; // Track it as a single entry
  3292. }
  3293. }
  3294. void BfModule::DoPopulateType_CeCheckEnum(BfTypeInstance* typeInstance, bool underlyingTypeDeferred)
  3295. {
  3296. if (!typeInstance->IsEnum())
  3297. return;
  3298. if (!typeInstance->IsPayloadEnum())
  3299. return;
  3300. if ((typeInstance->mCeTypeInfo != NULL) && (typeInstance->mCeTypeInfo->mNext != NULL))
  3301. return;
  3302. BfType* unionInnerType = NULL;
  3303. if (typeInstance->mIsUnion)
  3304. {
  3305. SetAndRestoreValue<BfTypeState::ResolveKind> prevResolveKind(mContext->mCurTypeState->mResolveKind, BfTypeState::ResolveKind_UnionInnerType);
  3306. unionInnerType = typeInstance->GetUnionInnerType();
  3307. }
  3308. DoPopulateType_FinishEnum(typeInstance, underlyingTypeDeferred, NULL, unionInnerType);
  3309. }
  3310. void BfModule::DoPopulateType(BfType* resolvedTypeRef, BfPopulateType populateType)
  3311. {
  3312. if (populateType == BfPopulateType_Identity)
  3313. return;
  3314. if ((populateType <= BfPopulateType_Data) && (resolvedTypeRef->mDefineState >= BfTypeDefineState_Defined))
  3315. return;
  3316. auto typeInstance = resolvedTypeRef->ToTypeInstance();
  3317. BfTypeInstance* boxedUnderlyingTypeInstance = NULL;
  3318. if (typeInstance->IsBoxed())
  3319. {
  3320. auto underlyingType = typeInstance->GetUnderlyingType();
  3321. if (underlyingType->IsPrimitiveType())
  3322. boxedUnderlyingTypeInstance = GetPrimitiveStructType(((BfPrimitiveType*)underlyingType)->mTypeDef->mTypeCode);
  3323. else
  3324. boxedUnderlyingTypeInstance = underlyingType->ToTypeInstance();
  3325. typeInstance->mTypeDef = boxedUnderlyingTypeInstance->mTypeDef;
  3326. }
  3327. auto typeDef = typeInstance->mTypeDef;
  3328. BF_ASSERT((typeInstance->mTypeDef->mNextRevision == NULL) || (mCompiler->IsAutocomplete()));
  3329. // This is a special case where our base type has been rebuilt but we haven't
  3330. if ((typeInstance->mBaseTypeMayBeIncomplete) && (!typeInstance->mTypeIncomplete))
  3331. {
  3332. BfLogSysM("BaseTypeMayBeIncomplete processing. Type:%p -> Base:%p\n", typeInstance, typeInstance->mBaseType);
  3333. PopulateType(typeInstance->mBaseType, populateType);
  3334. if (!typeInstance->mBaseType->IsIncomplete())
  3335. typeInstance->mBaseTypeMayBeIncomplete = false;
  3336. if (!typeInstance->mTypeIncomplete)
  3337. return;
  3338. }
  3339. typeInstance->mBaseTypeMayBeIncomplete = false;
  3340. BF_ASSERT(mIsModuleMutable);
  3341. // Don't do type instance method processing for an autocomplete pass - this will get handled later on during
  3342. // the PopulateType worklist pass in the full resolver. We do need to handle the methods for delegates, though,
  3343. // since those can affect method declarations of other methods
  3344. // TODO: Investigate this "Delegate" claim
  3345. bool canDoMethodProcessing = ((mCompiler->mResolvePassData == NULL) || (mCompiler->mResolvePassData->mAutoComplete == NULL) /*|| (typeInstance->IsDelegate())*/);
  3346. if (populateType == BfPopulateType_Full_Force)
  3347. canDoMethodProcessing = true;
  3348. if (typeInstance->mResolvingConstField)
  3349. return;
  3350. // Partial population break out point
  3351. if ((populateType >= BfPopulateType_Identity) && (populateType <= BfPopulateType_IdentityNoRemapAlias))
  3352. return;
  3353. if ((populateType <= BfPopulateType_AllowStaticMethods) && (typeInstance->mDefineState >= BfTypeDefineState_HasInterfaces_Direct))
  3354. return;
  3355. // During CE init we need to avoid interface checking loops, so we only allow show direct interface declarations
  3356. if ((populateType == BfPopulateType_Interfaces_All) && (typeInstance->mDefineState >= Beefy::BfTypeDefineState_CETypeInit))
  3357. {
  3358. if ((typeInstance->mDefineState == Beefy::BfTypeDefineState_CEPostTypeInit) && (typeInstance->mCeTypeInfo != NULL) &&
  3359. (!typeInstance->mCeTypeInfo->mPendingInterfaces.IsEmpty()))
  3360. {
  3361. // We have finished CETypeInit and we have pending interfaces we need to apply
  3362. }
  3363. else
  3364. return;
  3365. }
  3366. if (!mCompiler->EnsureCeUnpaused(resolvedTypeRef))
  3367. {
  3368. // We need to avoid comptime reentry when the ceDebugger is paused
  3369. BfLogSysM("DoPopulateType %p bailing due to IsCePaused\n", resolvedTypeRef);
  3370. return;
  3371. }
  3372. auto _CheckTypeDone = [&]()
  3373. {
  3374. if (typeInstance->mNeedsMethodProcessing)
  3375. {
  3376. BF_ASSERT(typeInstance->mDefineState >= BfTypeDefineState_Defined);
  3377. if ((canDoMethodProcessing) && (populateType >= BfPopulateType_DataAndMethods))
  3378. DoTypeInstanceMethodProcessing(typeInstance);
  3379. return true;
  3380. }
  3381. if (typeInstance->mDefineState == BfTypeDefineState_DefinedAndMethodsSlotted)
  3382. return true;
  3383. return false;
  3384. };
  3385. if (_CheckTypeDone())
  3386. return;
  3387. if (!resolvedTypeRef->IsValueType())
  3388. {
  3389. resolvedTypeRef->mSize = typeInstance->mAlign = mSystem->mPtrSize;
  3390. }
  3391. BF_ASSERT((typeInstance->mMethodInstanceGroups.size() == 0) || (typeInstance->mMethodInstanceGroups.size() == typeDef->mMethods.size()) || (typeInstance->mCeTypeInfo != NULL) || (typeInstance->IsBoxed()));
  3392. typeInstance->mMethodInstanceGroups.Resize(typeDef->mMethods.size());
  3393. for (int i = 0; i < (int)typeInstance->mMethodInstanceGroups.size(); i++)
  3394. {
  3395. typeInstance->mMethodInstanceGroups[i].mOwner = typeInstance;
  3396. typeInstance->mMethodInstanceGroups[i].mMethodIdx = i;
  3397. }
  3398. AutoDisallowYield disableYield(mSystem);
  3399. SetAndRestoreValue<BfTypeInstance*> prevTypeInstance(mCurTypeInstance, typeInstance);
  3400. SetAndRestoreValue<BfMethodInstance*> prevMethodInstance(mCurMethodInstance, NULL);
  3401. SetAndRestoreValue<BfMethodState*> prevMethodState(mCurMethodState, NULL);
  3402. // WHY were we clearing these values?
  3403. //SetAndRestoreValue<bool> prevHadError(mHadBuildError, false);
  3404. //SetAndRestoreValue<bool> prevHadWarning(mHadBuildWarning, false);
  3405. BfTypeState typeState(mCurTypeInstance, mContext->mCurTypeState);
  3406. typeState.mPopulateType = populateType;
  3407. SetAndRestoreValue<BfTypeState*> prevTypeState(mContext->mCurTypeState, &typeState);
  3408. if (typeInstance->IsGenericTypeInstance())
  3409. {
  3410. auto genericTypeInst = (BfTypeInstance*)typeInstance;
  3411. if (!genericTypeInst->mGenericTypeInfo->mInitializedGenericParams)
  3412. InitGenericParams(resolvedTypeRef);
  3413. }
  3414. if (resolvedTypeRef->IsTypeAlias())
  3415. {
  3416. prevTypeState.Restore();
  3417. DoPopulateType_TypeAlias((BfTypeAliasType*)typeInstance);
  3418. typeInstance->mTypeIncomplete = false;
  3419. resolvedTypeRef->mRebuildFlags = BfTypeRebuildFlag_None;
  3420. resolvedTypeRef->mDefineState = BfTypeDefineState_DefinedAndMethodsSlotted;
  3421. return;
  3422. }
  3423. if (_CheckTypeDone())
  3424. return;
  3425. // Don't do TypeToString until down here. Otherwise we can infinitely loop on BuildGenericParams
  3426. bool isStruct = resolvedTypeRef->IsStruct();
  3427. bool reportErrors = true;
  3428. if ((mCompiler->mResolvePassData != NULL) && (mCompiler->mResolvePassData->mAutoComplete != NULL))
  3429. reportErrors = true;
  3430. // If we're not the defining context then we don't report errors for this type, but errors will still put the system
  3431. // into an errored state
  3432. SetAndRestoreValue<bool> prevReportErrors(mReportErrors, reportErrors);
  3433. if (typeInstance->mIsFinishingType)
  3434. {
  3435. if (typeInstance->mTypeFailed)
  3436. return;
  3437. }
  3438. if (!typeInstance->mTypeFailed)
  3439. {
  3440. if (populateType == BfPopulateType_Data_Soft)
  3441. {
  3442. if (CheckCircularDataError(false))
  3443. return;
  3444. }
  3445. CheckCircularDataError();
  3446. }
  3447. if (typeInstance->mDefineState < BfTypeDefineState_Declaring)
  3448. {
  3449. typeInstance->mDefineState = BfTypeDefineState_Declaring;
  3450. DoPopulateType_InitSearches(typeInstance);
  3451. }
  3452. //
  3453. {
  3454. BP_ZONE("DoPopulateType:CheckStack");
  3455. StackHelper stackHelper;
  3456. if (!stackHelper.CanStackExpand(128 * 1024))
  3457. {
  3458. if (!stackHelper.Execute([&]()
  3459. {
  3460. DoPopulateType(resolvedTypeRef, populateType);
  3461. }))
  3462. {
  3463. Fail("Stack exhausted in DoPopulateType", typeDef->GetRefNode());
  3464. }
  3465. return;
  3466. }
  3467. }
  3468. bool underlyingTypeDeferred = false;
  3469. BfType* underlyingType = NULL;
  3470. if (typeInstance->mBaseType != NULL)
  3471. {
  3472. if (typeInstance->IsTypedPrimitive())
  3473. underlyingType = typeInstance->GetUnderlyingType();
  3474. if ((typeInstance->mRebuildFlags & BfTypeRebuildFlag_UnderlyingTypeDeferred) != 0)
  3475. underlyingTypeDeferred = true;
  3476. }
  3477. if ((typeInstance->IsEnum()) && (underlyingType == NULL) && (!underlyingTypeDeferred))
  3478. {
  3479. bool hasPayloads = false;
  3480. for (auto fieldDef : typeDef->mFields)
  3481. {
  3482. if ((fieldDef->IsEnumCaseEntry()) && (fieldDef->mTypeRef != NULL))
  3483. {
  3484. hasPayloads = true;
  3485. break;
  3486. }
  3487. }
  3488. if (!hasPayloads)
  3489. {
  3490. bool hadType = false;
  3491. BfAstNode* deferredErrorNode = NULL;
  3492. const char* deferredError = NULL;
  3493. for (auto baseTypeRef : typeDef->mBaseTypes)
  3494. {
  3495. auto declTypeDef = typeDef;
  3496. if (typeDef->mIsCombinedPartial)
  3497. declTypeDef = typeDef->mPartials.front();
  3498. SetAndRestoreValue<BfTypeDef*> prevTypeDef(mContext->mCurTypeState->mCurTypeDef, declTypeDef);
  3499. SetAndRestoreValue<BfTypeReference*> prevTypeRef(mContext->mCurTypeState->mCurBaseTypeRef, baseTypeRef);
  3500. SetAndRestoreValue<BfTypeDefineState> prevDefineState(typeInstance->mDefineState, BfTypeDefineState_ResolvingBaseType);
  3501. SetAndRestoreValue<bool> prevIgnoreError(mIgnoreErrors, true);
  3502. SetAndRestoreValue<bool> prevSkipTypeProtectionChecks(typeInstance->mSkipTypeProtectionChecks, true);
  3503. auto baseType = ResolveTypeRef(baseTypeRef, BfPopulateType_Declaration);
  3504. if (baseType != NULL)
  3505. {
  3506. if (baseType->IsIntegral())
  3507. {
  3508. if (!hadType)
  3509. {
  3510. hadType = true;
  3511. underlyingType = baseType;
  3512. }
  3513. else
  3514. {
  3515. deferredError = "Underlying enum type already specified";
  3516. deferredErrorNode = baseTypeRef;
  3517. }
  3518. }
  3519. else if (!baseType->IsInterface())
  3520. {
  3521. deferredError = "Invalid underlying enum type";
  3522. deferredErrorNode = baseTypeRef;
  3523. }
  3524. }
  3525. else
  3526. {
  3527. AssertErrorState();
  3528. TypeFailed(typeInstance);
  3529. }
  3530. }
  3531. if (deferredError != NULL)
  3532. Fail(deferredError, deferredErrorNode, true);
  3533. if (underlyingType == NULL)
  3534. {
  3535. underlyingType = GetPrimitiveType(BfTypeCode_Int64);
  3536. underlyingTypeDeferred = true;
  3537. }
  3538. }
  3539. }
  3540. // else if (typeInstance->IsFunction())
  3541. // {
  3542. // underlyingType = GetPrimitiveType(BfTypeCode_NullPtr);
  3543. // }
  3544. else if (((typeInstance->IsStruct()) || (typeInstance->IsTypedPrimitive())) &&
  3545. (!typeInstance->mTypeFailed))
  3546. {
  3547. for (auto baseTypeRef : typeDef->mBaseTypes)
  3548. {
  3549. auto declTypeDef = typeDef;
  3550. if (typeDef->mIsCombinedPartial)
  3551. declTypeDef = typeDef->mPartials.front();
  3552. SetAndRestoreValue<BfTypeDef*> prevTypeDef(mContext->mCurTypeState->mCurTypeDef, declTypeDef);
  3553. SetAndRestoreValue<BfTypeDefineState> prevDefineState(typeInstance->mDefineState, BfTypeDefineState_ResolvingBaseType);
  3554. SetAndRestoreValue<BfTypeReference*> prevTypeRef(mContext->mCurTypeState->mCurBaseTypeRef, baseTypeRef);
  3555. // We ignore errors here to avoid double-errors for type lookups, but this is where data cycles are detected
  3556. // but that type of error supersedes the mIgnoreErrors setting
  3557. SetAndRestoreValue<bool> prevIgnoreError(mIgnoreErrors, true);
  3558. // Temporarily allow us to derive from private classes, to avoid infinite loop from TypeIsSubTypeOf
  3559. SetAndRestoreValue<bool> prevSkipTypeProtectionChecks(typeInstance->mSkipTypeProtectionChecks, true);
  3560. auto baseType = ResolveTypeRef(baseTypeRef, BfPopulateType_Declaration);
  3561. if (baseType != NULL)
  3562. {
  3563. if (baseType->IsVar())
  3564. {
  3565. // Ignore
  3566. }
  3567. else if (baseType->IsPrimitiveType())
  3568. {
  3569. underlyingType = baseType;
  3570. }
  3571. else if (baseType->IsTypedPrimitive())
  3572. {
  3573. //PopulateType(baseType, true);
  3574. underlyingType = baseType->GetUnderlyingType();
  3575. BF_ASSERT(underlyingType != NULL);
  3576. }
  3577. }
  3578. else
  3579. {
  3580. AssertErrorState();
  3581. TypeFailed(typeInstance);
  3582. }
  3583. if (_CheckTypeDone())
  3584. {
  3585. prevDefineState.CancelRestore();
  3586. return;
  3587. }
  3588. }
  3589. // Incase we had re-entry, work this through ourselves again here
  3590. typeInstance->mIsTypedPrimitive = false;
  3591. }
  3592. if (underlyingTypeDeferred)
  3593. typeInstance->mRebuildFlags = (BfTypeRebuildFlags)(typeInstance->mRebuildFlags | BfTypeRebuildFlag_UnderlyingTypeDeferred);
  3594. typeInstance->mIsTypedPrimitive = underlyingType != NULL;
  3595. int wantFieldCount = (int)typeDef->mFields.size() + (((underlyingType != NULL) || (typeInstance->IsPayloadEnum())) ? 1 : 0);
  3596. if ((int)typeInstance->mFieldInstances.size() < wantFieldCount)
  3597. {
  3598. // Closures don't include the enclosed fields on their first pass through PopulateType, and they have no typeDef of their own
  3599. // so we need to take care not to truncate their fieldInstance vector here (thus the 'wantFieldCount' check above)
  3600. typeInstance->mFieldInstances.Resize(wantFieldCount);
  3601. }
  3602. if (underlyingType != NULL)
  3603. {
  3604. auto fieldInstance = &typeInstance->mFieldInstances.back();
  3605. fieldInstance->mDataOffset = 0;
  3606. fieldInstance->mDataSize = underlyingType->mSize;
  3607. fieldInstance->mOwner = typeInstance;
  3608. fieldInstance->mResolvedType = underlyingType;
  3609. typeInstance->mSize = underlyingType->mSize;
  3610. typeInstance->mAlign = underlyingType->mAlign;
  3611. typeInstance->mInstSize = underlyingType->mSize;
  3612. typeInstance->mInstAlign = underlyingType->mAlign;
  3613. typeInstance->mHasPackingHoles = underlyingType->HasPackingHoles();
  3614. }
  3615. // Partial population break out point
  3616. if (typeInstance->mDefineState < BfTypeDefineState_Declared)
  3617. typeInstance->mDefineState = BfTypeDefineState_Declared;
  3618. if (populateType == BfPopulateType_Declaration)
  3619. {
  3620. return;
  3621. }
  3622. if ((!mCompiler->mIsResolveOnly) && (!typeInstance->HasBeenInstantiated()))
  3623. {
  3624. for (auto& dep : typeInstance->mDependencyMap)
  3625. {
  3626. auto& depEntry = dep.mValue;
  3627. if ((depEntry.mFlags & BfDependencyMap::DependencyFlag_Allocates) != 0)
  3628. {
  3629. auto depType = dep.mKey;
  3630. if (depType->mRevision == depEntry.mRevision)
  3631. {
  3632. BfLogSysM("Setting mHasBeenInstantiated for %p instantiated from %p\n", typeInstance, depType);
  3633. typeInstance->mHasBeenInstantiated = true;
  3634. }
  3635. }
  3636. }
  3637. }
  3638. //BfLogSysM("Setting revision. Type: %p Revision: %d\n", typeInstance, mRevision);
  3639. //typeInstance->mRevision = mRevision;
  3640. // Temporarily allow us to derive from private classes, to avoid infinite loop from TypeIsSubTypeOf
  3641. SetAndRestoreValue<bool> prevSkipTypeProtectionChecks(typeInstance->mSkipTypeProtectionChecks, true);
  3642. if ((typeDef->mOuterType != NULL) && (typeDef->mOuterType->IsGlobalsContainer()))
  3643. {
  3644. if ((typeDef->mTypeDeclaration != NULL) && (typeDef->mTypeDeclaration->mTypeNode != NULL))
  3645. Fail("Global blocks cannot contain type declarations", typeDef->mTypeDeclaration->mTypeNode);
  3646. }
  3647. /// Create DI data
  3648. SizedArray<BfIRType, 8> llvmFieldTypes;
  3649. int curFieldDataIdx = 0;
  3650. typeInstance->mBaseType = NULL;
  3651. BfTypeInstance* defaultBaseTypeInst = NULL;
  3652. // Find base type
  3653. BfType* baseType = NULL;
  3654. struct BfInterfaceDecl
  3655. {
  3656. BfTypeInstance* mIFaceTypeInst;
  3657. BfTypeReference* mTypeRef;
  3658. BfTypeDef* mDeclaringType;
  3659. };
  3660. SizedArray<BfInterfaceDecl, 8> interfaces;
  3661. HashSet<BfTypeInstance*> ifaceSet;
  3662. typeInstance->mRebuildFlags = (BfTypeRebuildFlags)(typeInstance->mRebuildFlags | BfTypeRebuildFlag_ResolvingBase);
  3663. if (resolvedTypeRef == mContext->mBfObjectType)
  3664. {
  3665. baseType = NULL;
  3666. }
  3667. else if (typeInstance->IsEnum())
  3668. {
  3669. if (mCompiler->mEnumTypeDef == NULL)
  3670. {
  3671. Fail("Enum type required");
  3672. TypeFailed(typeInstance);
  3673. }
  3674. else
  3675. baseType = ResolveTypeDef(mCompiler->mEnumTypeDef)->ToTypeInstance();
  3676. }
  3677. else if (resolvedTypeRef->IsObject())
  3678. baseType = mContext->mBfObjectType;
  3679. else if (resolvedTypeRef->IsPointer())
  3680. {
  3681. baseType = ResolveTypeDef(mCompiler->mPointerTTypeDef, BfPopulateType_Data);
  3682. }
  3683. else if (resolvedTypeRef->IsTuple())
  3684. {
  3685. baseType = ResolveTypeDef(mCompiler->mTupleTypeDef, BfPopulateType_Data);
  3686. }
  3687. else if ((resolvedTypeRef->IsValueType()) && (typeDef != mCompiler->mValueTypeTypeDef))
  3688. {
  3689. baseType = ResolveTypeDef(mCompiler->mValueTypeTypeDef, BfPopulateType_Data)->ToTypeInstance();
  3690. }
  3691. else if (typeDef->mTypeCode == BfTypeCode_Inferred)
  3692. baseType = mContext->mBfObjectType;
  3693. if (baseType != NULL)
  3694. defaultBaseTypeInst = baseType->ToTypeInstance();
  3695. struct _DeferredValidate
  3696. {
  3697. BfTypeReference* mTypeRef;
  3698. BfTypeInstance* mGenericType;
  3699. bool mIgnoreErrors;
  3700. };
  3701. Array<_DeferredValidate> deferredTypeValidateList;
  3702. bool wantPopulateInterfaces = false;
  3703. BfAstNode* baseTypeRef = NULL;
  3704. if ((typeDef->mIsDelegate) && (!typeInstance->IsClosure()))
  3705. {
  3706. if (mCompiler->mDelegateTypeDef == NULL)
  3707. {
  3708. Fail("Delegate type required");
  3709. TypeFailed(typeInstance);
  3710. }
  3711. else
  3712. baseType = ResolveTypeDef(mCompiler->mDelegateTypeDef)->ToTypeInstance();
  3713. }
  3714. else if (typeDef->mIsFunction)
  3715. {
  3716. if (mCompiler->mFunctionTypeDef == NULL)
  3717. {
  3718. Fail("Function type required");
  3719. TypeFailed(typeInstance);
  3720. }
  3721. else
  3722. baseType = ResolveTypeDef(mCompiler->mFunctionTypeDef)->ToTypeInstance();
  3723. }
  3724. else
  3725. {
  3726. for (auto checkTypeRef : typeDef->mBaseTypes)
  3727. {
  3728. if ((typeInstance->mDefineState == BfTypeDefineState_ResolvingBaseType) && (typeInstance->mTypeFailed))
  3729. break;
  3730. auto declTypeDef = typeDef;
  3731. if (typeDef->mIsCombinedPartial)
  3732. declTypeDef = typeDef->mPartials.front();
  3733. SetAndRestoreValue<BfTypeDef*> prevTypeDef(mContext->mCurTypeState->mCurTypeDef, declTypeDef);
  3734. SetAndRestoreValue<BfTypeReference*> prevTypeRef(mContext->mCurTypeState->mCurBaseTypeRef, checkTypeRef);
  3735. SetAndRestoreValue<BfTypeDefineState> prevDefineState(typeInstance->mDefineState, BfTypeDefineState_ResolvingBaseType);
  3736. bool populateBase = !typeInstance->mTypeFailed;
  3737. BfType* checkType = checkType = ResolveTypeRef_Ref(checkTypeRef, BfPopulateType_Declaration);
  3738. if ((checkType != NULL) && (!checkType->IsInterface()) && (populateBase))
  3739. {
  3740. SetAndRestoreValue<BfTypeInstance*> prevBaseType(mContext->mCurTypeState->mCurBaseType, checkType->ToTypeInstance());
  3741. PopulateType(checkType, BfPopulateType_Declaration);
  3742. }
  3743. if (typeInstance->mDefineState >= BfTypeDefineState_Defined)
  3744. {
  3745. prevDefineState.CancelRestore();
  3746. return;
  3747. }
  3748. if (checkType != NULL)
  3749. {
  3750. if (auto genericTypeInst = checkType->ToGenericTypeInstance())
  3751. {
  3752. // Specialized type variations don't need to validate their constraints
  3753. if (!typeInstance->IsUnspecializedTypeVariation())
  3754. deferredTypeValidateList.Add({ checkTypeRef, genericTypeInst, false });
  3755. }
  3756. auto checkTypeInst = checkType->ToTypeInstance();
  3757. bool canDeriveFrom = checkTypeInst != NULL;
  3758. if ((typeInstance->IsStruct()) || (typeInstance->IsTypedPrimitive()) || (typeInstance->IsBoxed()))
  3759. canDeriveFrom |= checkType->IsPrimitiveType();
  3760. if ((typeInstance->IsEnum()) && (!checkType->IsInterface()))
  3761. {
  3762. if (typeInstance->IsTypedPrimitive())
  3763. continue;
  3764. if (checkType->IsPrimitiveType())
  3765. Fail(StrFormat("Enum '%s' cannot be specified as '%s' because it has a payload",
  3766. TypeToString(typeInstance).c_str(), TypeToString(checkType).c_str()),
  3767. checkTypeRef, true);
  3768. else
  3769. Fail("Enums cannot derive from other types", checkTypeRef);
  3770. continue;
  3771. }
  3772. if ((checkTypeInst != NULL) && (checkTypeInst->mTypeFailed))
  3773. {
  3774. // To keep circular references from breaking type invariants (ie: base type loops)
  3775. continue;
  3776. }
  3777. if (!canDeriveFrom)
  3778. {
  3779. Fail("Cannot derive from this type", checkTypeRef);
  3780. continue;
  3781. }
  3782. if (checkType->IsVar())
  3783. {
  3784. // This can't explicitly be specified, but can occur from comptime
  3785. continue;
  3786. }
  3787. if (checkType->IsInterface())
  3788. {
  3789. auto ifaceInst = checkType->ToTypeInstance();
  3790. if (ifaceSet.Add(ifaceInst))
  3791. {
  3792. // Not base type
  3793. BfInterfaceDecl ifaceDecl;
  3794. ifaceDecl.mIFaceTypeInst = ifaceInst;
  3795. ifaceDecl.mTypeRef = checkTypeRef;
  3796. ifaceDecl.mDeclaringType = typeDef->GetDefinition();
  3797. interfaces.push_back(ifaceDecl);
  3798. }
  3799. else
  3800. {
  3801. Fail(StrFormat("Interface '%s' is already specified", TypeToString(checkType).c_str()), checkTypeRef);
  3802. }
  3803. }
  3804. else if (resolvedTypeRef == mContext->mBfObjectType)
  3805. {
  3806. Fail(StrFormat("Type '%s' cannot define a base type", TypeToString(baseType).c_str()), checkTypeRef);
  3807. }
  3808. else
  3809. {
  3810. if (baseTypeRef != NULL)
  3811. {
  3812. Fail(StrFormat("Base type '%s' already declared", TypeToString(baseType).c_str()), checkTypeRef);
  3813. }
  3814. else
  3815. {
  3816. baseTypeRef = checkTypeRef;
  3817. if (checkTypeInst != NULL)
  3818. {
  3819. auto checkOuter = checkTypeInst;
  3820. while (checkOuter != NULL)
  3821. {
  3822. if (checkOuter == typeInstance)
  3823. {
  3824. Fail(StrFormat("Type '%s' cannot be declare inner type '%s' as a base type",
  3825. TypeToString(typeInstance).c_str(),
  3826. TypeToString(checkTypeInst).c_str()), checkTypeRef, true);
  3827. checkTypeInst = NULL;
  3828. break;
  3829. }
  3830. checkOuter = GetOuterType(checkOuter);
  3831. }
  3832. }
  3833. if (checkTypeInst != NULL)
  3834. {
  3835. baseType = checkTypeInst;
  3836. }
  3837. }
  3838. }
  3839. if (_CheckTypeDone())
  3840. {
  3841. prevDefineState.CancelRestore();
  3842. return;
  3843. }
  3844. }
  3845. else
  3846. {
  3847. AssertErrorState();
  3848. // Why did we go around setting mTypeFailed on all these things?
  3849. //typeInstance->mTypeFailed = true;
  3850. }
  3851. }
  3852. wantPopulateInterfaces = true;
  3853. }
  3854. // Handle CE interfaces
  3855. {
  3856. auto checkTypeInst = typeInstance;
  3857. if (boxedUnderlyingTypeInstance != NULL)
  3858. checkTypeInst = boxedUnderlyingTypeInstance;
  3859. if ((checkTypeInst->mCeTypeInfo != NULL) && (!checkTypeInst->mCeTypeInfo->mPendingInterfaces.IsEmpty()))
  3860. {
  3861. for (auto ifaceTypeId : checkTypeInst->mCeTypeInfo->mPendingInterfaces)
  3862. {
  3863. auto ifaceType = mContext->mTypes[ifaceTypeId];
  3864. if ((ifaceType == NULL) || (!ifaceType->IsInterface()))
  3865. continue;
  3866. auto ifaceInst = ifaceType->ToTypeInstance();
  3867. if (ifaceSet.Add(ifaceInst))
  3868. {
  3869. // Not base type
  3870. BfInterfaceDecl ifaceDecl;
  3871. ifaceDecl.mIFaceTypeInst = ifaceInst;
  3872. ifaceDecl.mTypeRef = NULL;
  3873. ifaceDecl.mDeclaringType = typeDef->GetDefinition();
  3874. interfaces.Add(ifaceDecl);
  3875. }
  3876. }
  3877. }
  3878. }
  3879. if (_CheckTypeDone())
  3880. return;
  3881. if (resolvedTypeRef->IsBoxed())
  3882. {
  3883. BfBoxedType* boxedType = (BfBoxedType*)resolvedTypeRef;
  3884. if ((baseType != NULL) && (baseType->IsStruct()))
  3885. {
  3886. BfType* modifiedBaseType = baseType;
  3887. if (boxedType->IsBoxedStructPtr())
  3888. modifiedBaseType = CreatePointerType(modifiedBaseType);
  3889. boxedType->mBoxedBaseType = CreateBoxedType(modifiedBaseType);
  3890. PopulateType(boxedType->mBoxedBaseType);
  3891. // Use derivedFrom for both the boxed base type and the unboxed type
  3892. AddDependency(boxedType->mBoxedBaseType, typeInstance, BfDependencyMap::DependencyFlag_DerivedFrom);
  3893. }
  3894. AddDependency(boxedType->mElementType, typeInstance, BfDependencyMap::DependencyFlag_ValueTypeMemberData);
  3895. baseType = mContext->mBfObjectType;
  3896. }
  3897. BfTypeInstance* baseTypeInst = NULL;
  3898. if (baseType != NULL)
  3899. {
  3900. baseTypeInst = baseType->ToTypeInstance();
  3901. if ((baseTypeInst != NULL) && (typeDef->mTypeCode == BfTypeCode_Inferred))
  3902. typeDef->mTypeCode = baseTypeInst->mTypeDef->mTypeCode;
  3903. }
  3904. if (typeInstance->mBaseType != NULL)
  3905. {
  3906. BF_ASSERT(typeInstance->mBaseType == baseTypeInst);
  3907. }
  3908. if (auto genericTypeInst = typeInstance->ToGenericTypeInstance())
  3909. {
  3910. if ((genericTypeInst->IsSpecializedType()) && (!genericTypeInst->mGenericTypeInfo->mValidatedGenericConstraints) && (!typeInstance->IsBoxed()))
  3911. {
  3912. deferredTypeValidateList.Add({ NULL, genericTypeInst, true });
  3913. }
  3914. }
  3915. if (!typeInstance->IsBoxed())
  3916. {
  3917. BfType* outerType = GetOuterType(typeInstance);
  3918. if (outerType != NULL)
  3919. {
  3920. PopulateType(outerType, BfPopulateType_Identity);
  3921. AddDependency(outerType, typeInstance, BfDependencyMap::DependencyFlag_OuterType);
  3922. }
  3923. }
  3924. if ((typeInstance->IsInterface()) && (baseTypeInst != NULL))
  3925. {
  3926. Fail("Interfaces cannot declare base types", baseTypeRef, true);
  3927. baseTypeInst = NULL;
  3928. }
  3929. if ((baseTypeInst != NULL) && (typeInstance->mBaseType == NULL))
  3930. {
  3931. if (typeInstance->mTypeFailed)
  3932. {
  3933. if (baseTypeInst->IsDataIncomplete())
  3934. {
  3935. if (baseTypeInst->IsStruct())
  3936. baseTypeInst = ResolveTypeDef(mCompiler->mValueTypeTypeDef)->ToTypeInstance();
  3937. else if (baseTypeInst->IsObject())
  3938. baseTypeInst = ResolveTypeDef(mCompiler->mBfObjectTypeDef)->ToTypeInstance();
  3939. }
  3940. }
  3941. if (populateType > BfPopulateType_CustomAttributes)
  3942. PopulateType(baseTypeInst, BfPopulateType_Data);
  3943. typeInstance->mBaseTypeMayBeIncomplete = false;
  3944. typeInstance->mMergedFieldDataCount = baseTypeInst->mMergedFieldDataCount;
  3945. if ((resolvedTypeRef->IsObject()) && (!baseTypeInst->IsObject()))
  3946. {
  3947. Fail("Class can only derive from another class", baseTypeRef, true);
  3948. baseTypeInst = defaultBaseTypeInst;
  3949. typeInstance->mBaseType = baseTypeInst;
  3950. }
  3951. else if ((resolvedTypeRef->IsStruct()) && (!baseTypeInst->IsValueType()))
  3952. {
  3953. Fail("Struct can only derive from another struct", baseTypeRef, true);
  3954. baseTypeInst = defaultBaseTypeInst;
  3955. typeInstance->mBaseType = baseTypeInst;
  3956. }
  3957. if (!typeInstance->IsIncomplete())
  3958. {
  3959. // Re-entry may cause this type to be completed already
  3960. return;
  3961. }
  3962. //BfLogSysM("Adding DerivedFrom dependency. Used:%p Using:%p\n", baseType, typeInstance);
  3963. auto checkBaseType = baseTypeInst;
  3964. while (checkBaseType != NULL)
  3965. {
  3966. // Add 'DerivedFrom' dependency all the way up the inheritance chain
  3967. AddDependency(checkBaseType, typeInstance, BfDependencyMap::DependencyFlag_DerivedFrom);
  3968. checkBaseType = checkBaseType->mBaseType;
  3969. }
  3970. typeInstance->mBaseType = baseTypeInst;
  3971. typeInstance->mWantsGCMarking = baseTypeInst->mWantsGCMarking;
  3972. typeInstance->mInheritDepth = baseTypeInst->mInheritDepth + 1;
  3973. typeInstance->mHasParameterizedBase = baseTypeInst->mHasParameterizedBase;
  3974. if ((baseTypeInst->IsArray()) || (baseTypeInst->IsSizedArray()) || (baseTypeInst->IsGenericTypeInstance()))
  3975. typeInstance->mHasParameterizedBase = true;
  3976. if (underlyingType == NULL)
  3977. {
  3978. typeInstance->mInstSize = baseTypeInst->mInstSize;
  3979. typeInstance->mInstAlign = baseTypeInst->mInstAlign;
  3980. typeInstance->mAlign = baseTypeInst->mAlign;
  3981. typeInstance->mSize = baseTypeInst->mSize;
  3982. if (baseTypeInst->IsValuelessCReprType())
  3983. {
  3984. typeInstance->mInstSize = 0;
  3985. if (typeInstance->IsValueType())
  3986. typeInstance->mSize = 0;
  3987. }
  3988. typeInstance->mHasPackingHoles = baseTypeInst->mHasPackingHoles;
  3989. if (baseTypeInst->mIsTypedPrimitive)
  3990. typeInstance->mIsTypedPrimitive = true;
  3991. }
  3992. }
  3993. typeInstance->mRebuildFlags = (BfTypeRebuildFlags)(typeInstance->mRebuildFlags & ~BfTypeRebuildFlag_ResolvingBase);
  3994. if (populateType <= BfPopulateType_BaseType)
  3995. return;
  3996. if (typeInstance->IsGenericTypeInstance())
  3997. {
  3998. auto genericTypeInst = (BfTypeInstance*)typeInstance;
  3999. // if (!genericTypeInst->mGenericTypeInfo->mInitializedGenericParams)
  4000. // InitGenericParams(resolvedTypeRef);
  4001. if (!genericTypeInst->mGenericTypeInfo->mFinishedGenericParams)
  4002. FinishGenericParams(resolvedTypeRef);
  4003. }
  4004. if (wantPopulateInterfaces)
  4005. {
  4006. for (auto partialTypeDef : typeDef->mPartials)
  4007. {
  4008. if (!typeInstance->IsTypeMemberIncluded(partialTypeDef))
  4009. continue;
  4010. if (partialTypeDef->mTypeDeclaration == typeInstance->mTypeDef->mTypeDeclaration)
  4011. continue;
  4012. for (auto checkTypeRef : partialTypeDef->mBaseTypes)
  4013. {
  4014. SetAndRestoreValue<BfTypeReference*> prevTypeRef(mContext->mCurTypeState->mCurBaseTypeRef, checkTypeRef);
  4015. SetAndRestoreValue<BfTypeDef*> prevTypeDef(mContext->mCurTypeState->mCurTypeDef, partialTypeDef);
  4016. bool populateBase = !typeInstance->mTypeFailed;
  4017. auto checkType = ResolveTypeRef(checkTypeRef, BfPopulateType_Declaration);
  4018. if (checkType != NULL)
  4019. {
  4020. if (checkType->IsInterface())
  4021. {
  4022. BfInterfaceDecl ifaceDecl;
  4023. ifaceDecl.mIFaceTypeInst = checkType->ToTypeInstance();
  4024. ifaceDecl.mTypeRef = checkTypeRef;
  4025. ifaceDecl.mDeclaringType = partialTypeDef;
  4026. interfaces.push_back(ifaceDecl);
  4027. }
  4028. else
  4029. {
  4030. Fail(StrFormat("Extensions can only specify new interfaces, type '%s' is not a valid ", TypeToString(checkType).c_str()), checkTypeRef);
  4031. }
  4032. }
  4033. }
  4034. }
  4035. }
  4036. if ((typeInstance->mBaseType != NULL) && (!typeInstance->IsTypedPrimitive()))
  4037. {
  4038. curFieldDataIdx++;
  4039. }
  4040. if (!interfaces.empty())
  4041. {
  4042. for (int iFaceIdx = 0; iFaceIdx < (int)interfaces.size(); iFaceIdx++)
  4043. {
  4044. auto checkInterface = interfaces[iFaceIdx].mIFaceTypeInst;
  4045. SetAndRestoreValue<BfTypeDef*> prevTypeDef(mContext->mCurTypeState->mCurTypeDef, interfaces[iFaceIdx].mDeclaringType);
  4046. SetAndRestoreValue<BfTypeReference*> prevTypeRef(mContext->mCurTypeState->mCurBaseTypeRef, interfaces[iFaceIdx].mTypeRef);
  4047. PopulateType(checkInterface, BfPopulateType_Data);
  4048. BfTypeInterfaceEntry* found = NULL;
  4049. bool foundExact = false;
  4050. for (auto& typeInterfaceInst : typeInstance->mInterfaces)
  4051. {
  4052. if (typeInterfaceInst.mInterfaceType == checkInterface)
  4053. {
  4054. if (typeInterfaceInst.mDeclaringType == interfaces[iFaceIdx].mDeclaringType)
  4055. {
  4056. foundExact = true;
  4057. break;
  4058. }
  4059. found = &typeInterfaceInst;
  4060. }
  4061. }
  4062. if (foundExact)
  4063. continue;
  4064. BfTypeInterfaceEntry typeInterfaceInst;
  4065. typeInterfaceInst.mDeclaringType = interfaces[iFaceIdx].mDeclaringType;
  4066. typeInterfaceInst.mInterfaceType = checkInterface;
  4067. typeInterfaceInst.mStartInterfaceTableIdx = -1;
  4068. typeInterfaceInst.mStartVirtualIdx = -1;
  4069. typeInterfaceInst.mIsRedeclared = false;
  4070. typeInstance->mInterfaces.push_back(typeInterfaceInst);
  4071. AddDependency(checkInterface, typeInstance, BfDependencyMap::DependencyFlag_ImplementsInterface);
  4072. // Interfaces can list other interfaces in their declaration, so pull those in too
  4073. for (auto depIFace : checkInterface->mInterfaces)
  4074. {
  4075. auto depIFaceEntry = interfaces[iFaceIdx];
  4076. depIFaceEntry.mIFaceTypeInst = depIFace.mInterfaceType;
  4077. interfaces.push_back(depIFaceEntry);
  4078. }
  4079. }
  4080. if (typeInstance->mTypeFailed)
  4081. {
  4082. // Circular references in interfaces - just clear them all out
  4083. typeInstance->mInterfaces.Clear();
  4084. interfaces.Clear();
  4085. }
  4086. if (_CheckTypeDone())
  4087. return;
  4088. }
  4089. if (mCompiler->mOptions.mAllowHotSwapping)
  4090. {
  4091. if (typeInstance->mDefineState < BfTypeDefineState_HasInterfaces_Direct)
  4092. {
  4093. if (typeInstance->mHotTypeData == NULL)
  4094. {
  4095. typeInstance->mHotTypeData = new BfHotTypeData();
  4096. BfLogSysM("Created HotTypeData %p created for type %p in DoPopulateType\n", typeInstance->mHotTypeData, typeInstance);
  4097. }
  4098. // Clear any unused versions (if we have errors, etc)
  4099. if (mCompiler->mHotState != NULL)
  4100. typeInstance->mHotTypeData->ClearVersionsAfter(mCompiler->mHotState->mCommittedHotCompileIdx);
  4101. else
  4102. BF_ASSERT(typeInstance->mHotTypeData->mTypeVersions.IsEmpty()); // We should have created a new HotTypeData when rebuilding the type
  4103. BfHotTypeVersion* hotTypeVersion = new BfHotTypeVersion();
  4104. hotTypeVersion->mTypeId = typeInstance->mTypeId;
  4105. hotTypeVersion->mDeclHotCompileIdx = mCompiler->mOptions.mHotCompileIdx;
  4106. if (mCompiler->IsHotCompile())
  4107. hotTypeVersion->mCommittedHotCompileIdx = -1;
  4108. else
  4109. hotTypeVersion->mCommittedHotCompileIdx = 0;
  4110. hotTypeVersion->mRefCount++;
  4111. typeInstance->mHotTypeData->mTypeVersions.Add(hotTypeVersion);
  4112. BfLogSysM("BfHotTypeVersion %p created for type %p\n", hotTypeVersion, typeInstance);
  4113. }
  4114. auto hotTypeVersion = typeInstance->mHotTypeData->mTypeVersions.back();
  4115. if (typeInstance->mBaseType != NULL)
  4116. {
  4117. if (typeInstance->mBaseType->mHotTypeData != NULL)
  4118. hotTypeVersion->mBaseType = typeInstance->mBaseType->mHotTypeData->GetLatestVersion();
  4119. else if (populateType >= BfPopulateType_Interfaces_All)
  4120. {
  4121. AssertErrorState();
  4122. }
  4123. }
  4124. }
  4125. BF_ASSERT(!typeInstance->mNeedsMethodProcessing);
  4126. if (typeInstance->mDefineState < BfTypeDefineState_HasInterfaces_Direct)
  4127. typeInstance->mDefineState = BfTypeDefineState_HasInterfaces_Direct;
  4128. for (auto& validateEntry : deferredTypeValidateList)
  4129. {
  4130. SetAndRestoreValue<BfTypeReference*> prevAttributeTypeRef(typeState.mCurAttributeTypeRef, validateEntry.mTypeRef);
  4131. SetAndRestoreValue<bool> ignoreErrors(mIgnoreErrors, mIgnoreErrors | validateEntry.mIgnoreErrors);
  4132. ValidateGenericConstraints(validateEntry.mTypeRef, validateEntry.mGenericType, false);
  4133. }
  4134. bool isRootSystemType = typeInstance->IsInstanceOf(mCompiler->mValueTypeTypeDef) ||
  4135. typeInstance->IsInstanceOf(mCompiler->mAttributeTypeDef) ||
  4136. typeInstance->IsInstanceOf(mCompiler->mEnumTypeDef);
  4137. if (!typeInstance->IsBoxed())
  4138. {
  4139. if ((typeInstance->mCustomAttributes == NULL) && (typeDef->mTypeDeclaration != NULL) && (typeDef->HasCustomAttributes()))
  4140. {
  4141. BfAttributeTargets attrTarget;
  4142. if ((typeDef->mIsDelegate) || (typeDef->mIsFunction))
  4143. attrTarget = BfAttributeTargets_Delegate;
  4144. else if (typeInstance->IsEnum())
  4145. attrTarget = BfAttributeTargets_Enum;
  4146. else if (typeInstance->IsInterface())
  4147. attrTarget = BfAttributeTargets_Interface;
  4148. else if ((typeInstance->IsStruct()) || (typeInstance->IsTypedPrimitive()))
  4149. attrTarget = BfAttributeTargets_Struct;
  4150. else
  4151. attrTarget = BfAttributeTargets_Class;
  4152. if (!typeInstance->mTypeFailed)
  4153. {
  4154. BfTypeState typeState;
  4155. typeState.mPrevState = mContext->mCurTypeState;
  4156. typeState.mResolveKind = BfTypeState::ResolveKind_Attributes;
  4157. typeState.mType = typeInstance;
  4158. SetAndRestoreValue<BfTypeState*> prevTypeState(mContext->mCurTypeState, &typeState);
  4159. // This allows us to avoid reentrancy when checking for inner types
  4160. SetAndRestoreValue<bool> prevSkipTypeProtectionChecks(typeInstance->mSkipTypeProtectionChecks, true);
  4161. if (typeDef->mIsCombinedPartial)
  4162. {
  4163. auto customAttributes = new BfCustomAttributes();
  4164. for (auto partialTypeDef : typeDef->mPartials)
  4165. {
  4166. if (partialTypeDef->mTypeDeclaration->mAttributes == NULL)
  4167. continue;
  4168. if (!typeInstance->IsTypeMemberIncluded(partialTypeDef))
  4169. continue;
  4170. typeState.mCurTypeDef = partialTypeDef;
  4171. GetCustomAttributes(customAttributes, partialTypeDef->mTypeDeclaration->mAttributes, attrTarget);
  4172. }
  4173. if (typeInstance->mCustomAttributes == NULL)
  4174. typeInstance->mCustomAttributes = customAttributes;
  4175. else
  4176. delete customAttributes;
  4177. }
  4178. else
  4179. {
  4180. auto customAttributes = new BfCustomAttributes();
  4181. GetCustomAttributes(customAttributes, typeDef->mTypeDeclaration->mAttributes, attrTarget);
  4182. if (typeInstance->mCustomAttributes == NULL)
  4183. typeInstance->mCustomAttributes = customAttributes;
  4184. else
  4185. delete customAttributes;
  4186. }
  4187. }
  4188. }
  4189. }
  4190. if (typeInstance->mDefineState < BfTypeDefineState_HasCustomAttributes)
  4191. typeInstance->mDefineState = BfTypeDefineState_HasCustomAttributes;
  4192. if (typeInstance->mTypeOptionsIdx == -2)
  4193. {
  4194. SetTypeOptions(typeInstance);
  4195. }
  4196. if (populateType <= BfPopulateType_AllowStaticMethods)
  4197. return;
  4198. prevSkipTypeProtectionChecks.Restore();
  4199. typeInstance->mInstSize = std::max(0, typeInstance->mInstSize);
  4200. typeInstance->mInstAlign = std::max(0, typeInstance->mInstAlign);
  4201. ProcessCustomAttributeData();
  4202. int packing = 0;
  4203. bool isUnion = false;
  4204. bool isCRepr = false;
  4205. bool isOrdered = false;
  4206. int alignOverride = 0;
  4207. BfType* underlyingArrayType = NULL;
  4208. int underlyingArraySize = -1;
  4209. ProcessTypeInstCustomAttributes(packing, isUnion, isCRepr, isOrdered, alignOverride, underlyingArrayType, underlyingArraySize);
  4210. if (underlyingArraySize > 0)
  4211. {
  4212. typeInstance->mHasUnderlyingArray = true;
  4213. curFieldDataIdx = 0;
  4214. }
  4215. if (packing > 0) // Packed infers ordered
  4216. isOrdered = true;
  4217. typeInstance->mIsUnion = isUnion;
  4218. if ((typeInstance->IsEnum()) && (typeInstance->IsStruct()))
  4219. typeInstance->mIsUnion = true;
  4220. typeInstance->mPacking = (uint8)packing;
  4221. typeInstance->mIsCRepr = isCRepr;
  4222. if (typeInstance->mTypeOptionsIdx >= 0)
  4223. {
  4224. auto typeOptions = mSystem->GetTypeOptions(typeInstance->mTypeOptionsIdx);
  4225. if (typeOptions != NULL)
  4226. {
  4227. typeInstance->mHasBeenInstantiated = typeOptions->Apply(typeInstance->HasBeenInstantiated(), BfOptionFlags_ReflectAssumeInstantiated);
  4228. bool alwaysInclude = typeInstance->mAlwaysIncludeFlags != 0;
  4229. if ((typeOptions->Apply(alwaysInclude, BfOptionFlags_ReflectAlwaysIncludeType)) ||
  4230. (typeOptions->Apply(alwaysInclude, BfOptionFlags_ReflectAlwaysIncludeAll)))
  4231. {
  4232. typeInstance->mAlwaysIncludeFlags = (BfAlwaysIncludeFlags)(typeInstance->mAlwaysIncludeFlags | BfAlwaysIncludeFlag_Type);
  4233. }
  4234. else
  4235. {
  4236. typeInstance->mAlwaysIncludeFlags = BfAlwaysIncludeFlag_None;
  4237. }
  4238. }
  4239. }
  4240. BfType* unionInnerType = NULL;
  4241. bool hadDeferredVars = false;
  4242. int dataPos;
  4243. if (resolvedTypeRef->IsBoxed())
  4244. {
  4245. BfBoxedType* boxedType = (BfBoxedType*)resolvedTypeRef;
  4246. BfType* innerType = boxedType->mElementType;
  4247. if (boxedType->IsBoxedStructPtr())
  4248. innerType = CreatePointerType(innerType);
  4249. if (innerType->IsIncomplete())
  4250. PopulateType(innerType, BfPopulateType_Data);
  4251. auto innerTypeInst = innerType->ToTypeInstance();
  4252. if (innerTypeInst != NULL)
  4253. {
  4254. if (typeInstance->mTypeDef != innerTypeInst->mTypeDef)
  4255. {
  4256. // Rebuild with proper typedef (generally from inner type comptime emission)
  4257. BfLogSysM("Boxed type %p overriding typeDef to %p from inner type %p\n", typeInstance, innerTypeInst->mTypeDef, innerType);
  4258. typeInstance->mTypeDef = innerTypeInst->mTypeDef;
  4259. DoPopulateType(resolvedTypeRef, populateType);
  4260. return;
  4261. }
  4262. while (typeInstance->mInterfaces.mSize < innerTypeInst->mInterfaces.mSize)
  4263. {
  4264. auto ifaceEntry = innerTypeInst->mInterfaces[typeInstance->mInterfaces.mSize];
  4265. typeInstance->mInterfaces.Add(ifaceEntry);
  4266. AddDependency(ifaceEntry.mInterfaceType, typeInstance, BfDependencyMap::DependencyFlag_ImplementsInterface);
  4267. }
  4268. }
  4269. auto baseType = typeInstance->mBaseType;
  4270. dataPos = baseType->mInstSize;
  4271. int alignSize = BF_MAX(innerType->mAlign, baseType->mInstAlign);
  4272. if (alignSize > 1)
  4273. dataPos = (dataPos + (alignSize - 1)) & ~(alignSize - 1);
  4274. int dataSize = innerType->mSize;
  4275. typeInstance->mFieldInstances.push_back(BfFieldInstance());
  4276. BfFieldInstance* fieldInstance = &typeInstance->mFieldInstances.back();
  4277. fieldInstance->mDataOffset = dataPos;
  4278. fieldInstance->mDataSize = innerType->mSize;
  4279. fieldInstance->mOwner = typeInstance;
  4280. fieldInstance->mResolvedType = innerType;
  4281. if (!innerType->IsValuelessType())
  4282. {
  4283. curFieldDataIdx++;
  4284. }
  4285. dataPos += dataSize;
  4286. typeInstance->mInstAlign = std::max(baseType->mInstAlign, alignSize);
  4287. int instAlign = typeInstance->mInstAlign;
  4288. if (instAlign != 0)
  4289. {
  4290. int instSize = (dataPos + (instAlign - 1)) & ~(instAlign - 1);
  4291. if (instSize != typeInstance->mInstSize)
  4292. {
  4293. typeInstance->mInstSize = instSize;
  4294. typeInstance->mHasPackingHoles = true;
  4295. }
  4296. }
  4297. typeInstance->mInstSize = std::max(1, typeInstance->mInstSize);
  4298. }
  4299. else
  4300. {
  4301. dataPos = typeInstance->mInstSize;
  4302. if (underlyingType != NULL)
  4303. {
  4304. if (!underlyingType->IsValuelessType())
  4305. {
  4306. curFieldDataIdx++;
  4307. }
  4308. }
  4309. struct DeferredResolveEntry
  4310. {
  4311. BfFieldDef* mFieldDef;
  4312. int mTypeArrayIdx;
  4313. };
  4314. BfSizedVector<DeferredResolveEntry, 8> deferredVarResolves;
  4315. for (auto field : typeDef->mFields)
  4316. {
  4317. auto fieldInstance = &typeInstance->mFieldInstances[field->mIdx];
  4318. if (fieldInstance->mResolvedType != NULL)
  4319. continue;
  4320. if (!typeInstance->IsTypeMemberIncluded(field->mDeclaringType))
  4321. {
  4322. fieldInstance->mFieldIncluded = false;
  4323. continue;
  4324. }
  4325. fieldInstance->mOwner = typeInstance;
  4326. fieldInstance->mFieldIdx = field->mIdx;
  4327. if (typeInstance->IsInterface())
  4328. Fail("Interfaces cannot include fields. Consider making this a property", field->GetRefNode());
  4329. }
  4330. for (int pass = 0; pass < 2; pass++)
  4331. {
  4332. for (auto field : typeDef->mFields)
  4333. {
  4334. // Do consts then non-consts. Somewhat of a hack for using consts as sized array size
  4335. if (field->mIsConst != (pass == 0))
  4336. continue;
  4337. auto fieldInstance = &typeInstance->mFieldInstances[field->mIdx];
  4338. if ((fieldInstance->mResolvedType != NULL) || (!fieldInstance->mFieldIncluded))
  4339. continue;
  4340. SetAndRestoreValue<BfFieldDef*> prevTypeRef(mContext->mCurTypeState->mCurFieldDef, field);
  4341. SetAndRestoreValue<BfTypeState::ResolveKind> prevResolveKind(mContext->mCurTypeState->mResolveKind, BfTypeState::ResolveKind_FieldType);
  4342. BfType* resolvedFieldType = NULL;
  4343. auto initializer = field->GetInitializer();
  4344. if ((field->mIsAppend) && (!resolvedTypeRef->IsObject()))
  4345. Fail("Appended objects can only be declared in class types", field->GetFieldDeclaration()->mExternSpecifier, true);
  4346. if ((field->mIsAppend) && (isUnion))
  4347. Fail("Appended objects cannot be declared in unions", field->GetFieldDeclaration()->mExternSpecifier, true);
  4348. if (field->IsEnumCaseEntry())
  4349. {
  4350. if (typeInstance->IsEnum())
  4351. {
  4352. resolvedFieldType = typeInstance;
  4353. BfType* payloadType = NULL;
  4354. if (field->mTypeRef != NULL)
  4355. payloadType = ResolveTypeRef(field->mTypeRef, BfPopulateType_Data, BfResolveTypeRefFlag_NoResolveGenericParam);
  4356. if (payloadType == NULL)
  4357. {
  4358. if (!typeInstance->IsTypedPrimitive())
  4359. payloadType = CreateTupleType(BfTypeVector(), Array<String>());
  4360. }
  4361. if (payloadType != NULL)
  4362. {
  4363. AddDependency(payloadType, typeInstance, BfDependencyMap::DependencyFlag_ValueTypeMemberData);
  4364. BF_ASSERT(payloadType->IsTuple());
  4365. resolvedFieldType = payloadType;
  4366. fieldInstance->mIsEnumPayloadCase = true;
  4367. }
  4368. }
  4369. else
  4370. {
  4371. Fail("Enum cases can only be declared within enum types", field->GetRefNode(), true);
  4372. resolvedFieldType = typeInstance;
  4373. }
  4374. }
  4375. else if ((field->mTypeRef != NULL) && ((field->mTypeRef->IsExact<BfVarTypeReference>()) || (field->mTypeRef->IsExact<BfLetTypeReference>()) || (field->mTypeRef->IsExact<BfExprModTypeRef>())))
  4376. {
  4377. resolvedFieldType = GetPrimitiveType(BfTypeCode_Var);
  4378. DeferredResolveEntry resolveEntry;
  4379. resolveEntry.mFieldDef = field;
  4380. resolveEntry.mTypeArrayIdx = (int)llvmFieldTypes.size();
  4381. deferredVarResolves.push_back(resolveEntry);
  4382. fieldInstance->mIsInferredType = true;
  4383. // For 'let', make read-only
  4384. }
  4385. else
  4386. {
  4387. BfResolveTypeRefFlags resolveFlags = BfResolveTypeRefFlag_NoResolveGenericParam;
  4388. if (initializer != NULL)
  4389. resolveFlags = (BfResolveTypeRefFlags)(resolveFlags | BfResolveTypeRefFlag_AllowInferredSizedArray);
  4390. resolvedFieldType = ResolveTypeRef(field->mTypeRef, BfPopulateType_Declaration, resolveFlags);
  4391. if (resolvedFieldType == NULL)
  4392. {
  4393. // Failed, just put in placeholder 'var'
  4394. AssertErrorState();
  4395. resolvedFieldType = GetPrimitiveType(BfTypeCode_Var);
  4396. }
  4397. }
  4398. if (resolvedFieldType->IsUndefSizedArray())
  4399. {
  4400. if (auto arrayTypeRef = BfNodeDynCast<BfArrayTypeRef>(field->mTypeRef))
  4401. {
  4402. if (arrayTypeRef->IsInferredSize())
  4403. {
  4404. if (initializer != NULL)
  4405. {
  4406. DeferredResolveEntry resolveEntry;
  4407. resolveEntry.mFieldDef = field;
  4408. resolveEntry.mTypeArrayIdx = (int)llvmFieldTypes.size();
  4409. deferredVarResolves.push_back(resolveEntry);
  4410. fieldInstance->mIsInferredType = true;
  4411. }
  4412. else
  4413. {
  4414. AssertErrorState();
  4415. }
  4416. }
  4417. }
  4418. }
  4419. if (resolvedFieldType->IsMethodRef())
  4420. {
  4421. auto methodRefType = (BfMethodRefType*)resolvedFieldType;
  4422. }
  4423. if (fieldInstance->mResolvedType == NULL)
  4424. fieldInstance->mResolvedType = resolvedFieldType;
  4425. if (field->mIsConst)
  4426. {
  4427. // Resolve in ResolveConstField after we finish populating entire FieldInstance list
  4428. }
  4429. else if (field->mIsStatic)
  4430. {
  4431. // Don't allocate this until after we're finished populating entire FieldInstance list,
  4432. // because we may have re-entry and create multiple instances of this static field
  4433. }
  4434. }
  4435. }
  4436. // Assign enum indices
  4437. int enumCaseEntryIdx = 0;
  4438. for (auto field : typeDef->mFields)
  4439. {
  4440. auto fieldInstance = &typeInstance->mFieldInstances[field->mIdx];
  4441. if (!fieldInstance->mFieldIncluded)
  4442. continue;
  4443. if (field->IsEnumCaseEntry())
  4444. {
  4445. if (typeInstance->IsEnum())
  4446. {
  4447. fieldInstance->mDataIdx = -(enumCaseEntryIdx++) - 1;
  4448. }
  4449. }
  4450. }
  4451. if (!resolvedTypeRef->IsIncomplete())
  4452. {
  4453. // We finished resolving ourselves through a re-entry, so we're actually done here
  4454. return;
  4455. }
  4456. for (auto& resolveEntry : deferredVarResolves)
  4457. {
  4458. hadDeferredVars = true;
  4459. auto fieldType = ResolveVarFieldType(typeInstance, &typeInstance->mFieldInstances[resolveEntry.mFieldDef->mIdx], resolveEntry.mFieldDef);
  4460. if (fieldType == NULL)
  4461. {
  4462. fieldType = mContext->mBfObjectType;
  4463. // We used to set mTypeFailed, but mHasBuildError is enough to cause a type rebuild properly
  4464. mHadBuildError = true;
  4465. //typeInstance->mTypeFailed = true;
  4466. }
  4467. auto fieldInstance = &typeInstance->mFieldInstances[resolveEntry.mFieldDef->mIdx];
  4468. fieldInstance->SetResolvedType(fieldType);
  4469. }
  4470. if (typeInstance->mResolvingConstField)
  4471. return;
  4472. bool hadSoftFail = false;
  4473. for (auto& fieldInstanceRef : typeInstance->mFieldInstances)
  4474. {
  4475. auto fieldInstance = &fieldInstanceRef;
  4476. auto fieldDef = fieldInstance->GetFieldDef();
  4477. auto resolvedFieldType = fieldInstance->GetResolvedType();
  4478. if (!fieldInstance->mFieldIncluded)
  4479. continue;
  4480. if (fieldInstance->mCustomAttributes != NULL)
  4481. {
  4482. // Already handled
  4483. }
  4484. else if ((fieldDef != NULL) && (fieldDef->GetFieldDeclaration() != NULL) && (fieldDef->GetFieldDeclaration()->mAttributes != NULL) && (!typeInstance->mTypeFailed) && (!isRootSystemType))
  4485. {
  4486. if (auto propDecl = BfNodeDynCast<BfPropertyDeclaration>(fieldDef->mFieldDeclaration))
  4487. {
  4488. // Handled elsewhere
  4489. }
  4490. else
  4491. {
  4492. SetAndRestoreValue<BfFieldDef*> prevTypeRef(mContext->mCurTypeState->mCurFieldDef, fieldDef);
  4493. fieldInstance->mCustomAttributes = GetCustomAttributes(fieldDef->GetFieldDeclaration()->mAttributes, fieldDef->mIsStatic ? BfAttributeTargets_StaticField : BfAttributeTargets_Field);
  4494. }
  4495. if (fieldInstance->mCustomAttributes != NULL)
  4496. {
  4497. for (auto customAttr : fieldInstance->mCustomAttributes->mAttributes)
  4498. {
  4499. if (TypeToString(customAttr.mType) == "System.ThreadStaticAttribute")
  4500. {
  4501. if ((!fieldDef->mIsStatic) || (fieldDef->mIsConst))
  4502. {
  4503. Fail("ThreadStatic attribute can only be used on static fields", fieldDef->GetFieldDeclaration()->mAttributes);
  4504. }
  4505. }
  4506. }
  4507. }
  4508. }
  4509. if ((fieldInstance->mResolvedType != NULL) && (fieldInstance->mResolvedType->IsTypeInstance()) && (fieldInstance->mResolvedType->ToTypeInstance()->IsAnonymous()))
  4510. {
  4511. auto fieldTypeInst = fieldInstance->mResolvedType->ToTypeInstance();
  4512. if ((fieldTypeInst->IsAnonymous()) && (fieldTypeInst->mCustomAttributes != NULL))
  4513. {
  4514. bool hasPendingAttributes = false;
  4515. for (const auto& customAttribute : fieldTypeInst->mCustomAttributes->mAttributes)
  4516. {
  4517. if (customAttribute.mAwaitingValidation)
  4518. {
  4519. hasPendingAttributes = true;
  4520. break;
  4521. }
  4522. }
  4523. if (hasPendingAttributes)
  4524. {
  4525. fieldInstance->mCustomAttributes = new BfCustomAttributes();
  4526. for (const auto& customAttribute : fieldTypeInst->mCustomAttributes->mAttributes)
  4527. {
  4528. if (!customAttribute.mAwaitingValidation)
  4529. continue;
  4530. BfCustomAttribute copiedCustomAttribute = customAttribute;
  4531. copiedCustomAttribute.mIsMultiUse = false;
  4532. fieldInstance->mCustomAttributes->mAttributes.Add(copiedCustomAttribute);
  4533. }
  4534. ValidateCustomAttributes(fieldInstance->mCustomAttributes, fieldDef->mIsStatic ? BfAttributeTargets_StaticField : BfAttributeTargets_Field);
  4535. }
  4536. }
  4537. }
  4538. if (resolvedFieldType == NULL)
  4539. {
  4540. if ((underlyingType != NULL) || (typeInstance->IsPayloadEnum()))
  4541. continue;
  4542. }
  4543. if (fieldDef == NULL)
  4544. continue;
  4545. if ((!fieldDef->mIsStatic) && (resolvedFieldType->IsValueType()))
  4546. {
  4547. // We need that type finished up for alignment and data size
  4548. // But if the type has failed then we need to avoid stack overflow so we don't finish it
  4549. SetAndRestoreValue<BfFieldDef*> prevTypeRef(mContext->mCurTypeState->mCurFieldDef, fieldDef);
  4550. bool populateChildType = !typeInstance->mTypeFailed;
  4551. //bool populateChildType = true;
  4552. PopulateType(resolvedFieldType, populateChildType ? ((populateType == BfPopulateType_Data_Soft) ? BfPopulateType_Data_Soft : BfPopulateType_Data) : BfPopulateType_Declaration);
  4553. if (populateType == BfPopulateType_Data_Soft)
  4554. {
  4555. if (resolvedFieldType->IsDataIncomplete())
  4556. hadSoftFail = true;
  4557. }
  4558. else if (populateChildType)
  4559. {
  4560. if (resolvedFieldType->IsFinishingType())
  4561. {
  4562. AssertErrorState();
  4563. }
  4564. else
  4565. BF_ASSERT(!resolvedFieldType->IsDataIncomplete());
  4566. }
  4567. else
  4568. {
  4569. if (resolvedFieldType->IsDataIncomplete())
  4570. {
  4571. AssertErrorState();
  4572. resolvedFieldType = mContext->mBfObjectType;
  4573. fieldInstance->SetResolvedType(resolvedFieldType);
  4574. // We used to set mTypeFailed, but mHasBuildError is enough to cause a type rebuild properly
  4575. mHadBuildError = true;
  4576. }
  4577. }
  4578. }
  4579. }
  4580. if (hadSoftFail)
  4581. return;
  4582. bool tryCE = true;
  4583. if (typeInstance->mDefineState == BfTypeDefineState_CETypeInit)
  4584. {
  4585. if (populateType <= BfPopulateType_AllowStaticMethods)
  4586. return;
  4587. int foundTypeCount = 0;
  4588. auto typeState = mContext->mCurTypeState;
  4589. while (typeState != NULL)
  4590. {
  4591. if (typeState->mType == typeInstance)
  4592. {
  4593. foundTypeCount++;
  4594. if (foundTypeCount == 2)
  4595. break;
  4596. }
  4597. typeState = typeState->mPrevState;
  4598. }
  4599. if ((foundTypeCount >= 2) || (typeInstance->mTypeDef->IsEmitted()))
  4600. {
  4601. String error = "OnCompile const evaluation creates a data dependency during TypeInit";
  4602. // if (mCompiler->mCeMachine->mCurBuilder != NULL)
  4603. // {
  4604. // error += StrFormat(" during const-eval generation of '%s'", MethodToString(mCompiler->mCeMachine->mCurBuilder->mCeFunction->mMethodInstance).c_str());
  4605. // }
  4606. BfError* bfError = NULL;
  4607. auto refNode = typeDef->GetRefNode();
  4608. //Fail(error, refNode);
  4609. mCompiler->mCeMachine->FailCurrent(this, error, refNode);
  4610. if ((mCompiler->mCeMachine->mCurContext != NULL) && (mCompiler->mCeMachine->mCurContext->mCurFrame != NULL))
  4611. bfError = mCompiler->mCeMachine->mCurContext->Fail(*mCompiler->mCeMachine->mCurContext->mCurFrame, error);
  4612. else if (mCompiler->mCeMachine->mCurContext != NULL)
  4613. bfError = mCompiler->mCeMachine->mCurContext->Fail(error);
  4614. tryCE = false;
  4615. if (bfError != NULL)
  4616. {
  4617. auto passInstance = mCompiler->mPassInstance;
  4618. int foundTypeCount = 0;
  4619. auto typeState = mContext->mCurTypeState;
  4620. while (typeState != NULL)
  4621. {
  4622. if (typeState->mCurAttributeTypeRef != NULL)
  4623. {
  4624. passInstance->MoreInfo(StrFormat("Attribute type '%s' causes a data cycle", BfTypeUtils::TypeToString(typeState->mCurAttributeTypeRef).c_str()), typeState->mCurAttributeTypeRef);
  4625. }
  4626. else if (typeState->mCurBaseTypeRef != NULL)
  4627. {
  4628. passInstance->MoreInfo(StrFormat("Base type '%s' causes a data cycle", BfTypeUtils::TypeToString(typeState->mCurBaseTypeRef).c_str()), typeState->mCurBaseTypeRef);
  4629. }
  4630. else if ((typeState->mCurFieldDef != NULL) && (typeState->mCurFieldDef->mFieldDeclaration != NULL))
  4631. {
  4632. passInstance->MoreInfo(StrFormat("Field '%s.%s' causes a data cycle", TypeToString(typeState->mType).c_str(), typeState->mCurFieldDef->mName.c_str()),
  4633. typeState->mCurFieldDef->mTypeRef);
  4634. }
  4635. else if ((typeState->mCurMethodDef != NULL) && (typeState->mCurMethodDef->mMethodDeclaration != NULL))
  4636. {
  4637. passInstance->MoreInfo(StrFormat("Method '%s.%s' causes a data cycle", TypeToString(typeState->mType).c_str(), typeState->mCurMethodDef->mName.c_str()),
  4638. typeState->mCurMethodDef->GetRefNode());
  4639. }
  4640. else
  4641. {
  4642. BfAstNode* refNode = NULL;
  4643. if (typeState->mCurTypeDef != NULL)
  4644. refNode = typeState->mCurTypeDef->GetRefNode();
  4645. passInstance->MoreInfo(StrFormat("Type '%s' causes a data cycle", TypeToString(typeState->mType).c_str()), refNode);
  4646. }
  4647. if (typeState->mType == typeInstance)
  4648. {
  4649. foundTypeCount++;
  4650. if (foundTypeCount == 2)
  4651. break;
  4652. }
  4653. typeState = typeState->mPrevState;
  4654. }
  4655. }
  4656. }
  4657. }
  4658. if ((typeInstance->mDefineState == BfTypeDefineState_CETypeInit) && (tryCE))
  4659. {
  4660. if (!CheckCircularDataError())
  4661. {
  4662. Fail(StrFormat("Unexpected comptime circular data error detected in type '%s'", TypeToString(typeInstance).c_str()), typeDef->GetRefNode());
  4663. CheckCircularDataError(true, true);
  4664. }
  4665. }
  4666. if ((typeInstance->mDefineState < BfTypeDefineState_CEPostTypeInit) && (tryCE))
  4667. {
  4668. BF_ASSERT(!typeInstance->mTypeDef->IsEmitted());
  4669. if (typeInstance->mCeTypeInfo != NULL)
  4670. typeInstance->mCeTypeInfo->mPendingInterfaces.Clear();
  4671. typeInstance->mDefineState = BfTypeDefineState_CETypeInit;
  4672. bool hadNewMembers = false;
  4673. DoCEEmit(typeInstance, hadNewMembers, underlyingTypeDeferred);
  4674. if (typeInstance->mDefineState < BfTypeDefineState_CEPostTypeInit)
  4675. typeInstance->mDefineState = BfTypeDefineState_CEPostTypeInit;
  4676. if (typeInstance->mCeTypeInfo != NULL)
  4677. {
  4678. bool prevHadEmissions = !typeInstance->mCeTypeInfo->mEmitSourceMap.IsEmpty();
  4679. if (typeInstance->mCeTypeInfo->mNext != NULL)
  4680. {
  4681. BfLogSysM("Type %p injecting next ceTypeInfo %p into ceTypeInfo %p\n", typeInstance, typeInstance->mCeTypeInfo->mNext, typeInstance->mCeTypeInfo);
  4682. auto ceInfo = typeInstance->mCeTypeInfo->mNext;
  4683. HashContext hashCtx;
  4684. hashCtx.Mixin(ceInfo->mEmitSourceMap.mCount);
  4685. for (auto& kv : ceInfo->mEmitSourceMap)
  4686. {
  4687. hashCtx.Mixin(kv.mKey);
  4688. hashCtx.Mixin(kv.mValue.mKind);
  4689. hashCtx.Mixin(kv.mValue.mSrcStart);
  4690. hashCtx.Mixin(kv.mValue.mSrcEnd);
  4691. }
  4692. hashCtx.Mixin(ceInfo->mOnCompileMap.mCount);
  4693. for (auto& kv : ceInfo->mOnCompileMap)
  4694. {
  4695. hashCtx.Mixin(kv.mKey);
  4696. hashCtx.MixinStr(kv.mValue.mEmitData);
  4697. }
  4698. hashCtx.Mixin(ceInfo->mTypeIFaceMap.mCount);
  4699. for (auto& kv : ceInfo->mTypeIFaceMap)
  4700. {
  4701. hashCtx.Mixin(kv.mKey);
  4702. hashCtx.MixinStr(kv.mValue.mEmitData);
  4703. }
  4704. typeInstance->mCeTypeInfo->mNext->mHash = hashCtx.Finish128();
  4705. if (!typeInstance->mCeTypeInfo->mNext->mFastFinished)
  4706. {
  4707. if ((typeInstance->mCeTypeInfo->mHash != typeInstance->mCeTypeInfo->mNext->mHash) && (!typeInstance->mCeTypeInfo->mHash.IsZero()))
  4708. mContext->QueueMidCompileRebuildDependentTypes(typeInstance, "comptime hash changed");
  4709. typeInstance->mCeTypeInfo->mEmitSourceMap = typeInstance->mCeTypeInfo->mNext->mEmitSourceMap;
  4710. typeInstance->mCeTypeInfo->mOnCompileMap = typeInstance->mCeTypeInfo->mNext->mOnCompileMap;
  4711. typeInstance->mCeTypeInfo->mTypeIFaceMap = typeInstance->mCeTypeInfo->mNext->mTypeIFaceMap;
  4712. typeInstance->mCeTypeInfo->mHash = typeInstance->mCeTypeInfo->mNext->mHash;
  4713. typeInstance->mCeTypeInfo->mAlign = typeInstance->mCeTypeInfo->mNext->mAlign;
  4714. }
  4715. else
  4716. {
  4717. // This greatly increases dependent type rebuilds, which triggers other issues
  4718. /*if ((typeInstance->mCeTypeInfo->mHash != typeInstance->mCeTypeInfo->mNext->mHash) && (!typeInstance->mCeTypeInfo->mHash.IsZero()))
  4719. mContext->QueueMidCompileRebuildDependentTypes(typeInstance, "canceled comptime hash changed");*/
  4720. }
  4721. delete typeInstance->mCeTypeInfo->mNext;
  4722. typeInstance->mCeTypeInfo->mNext = NULL;
  4723. }
  4724. else
  4725. {
  4726. // Removed emissions
  4727. if (!typeInstance->mCeTypeInfo->mHash.IsZero())
  4728. mContext->QueueMidCompileRebuildDependentTypes(typeInstance, "removed comptime hash changed");
  4729. typeInstance->mCeTypeInfo->mEmitSourceMap.Clear();
  4730. typeInstance->mCeTypeInfo->mOnCompileMap.Clear();
  4731. typeInstance->mCeTypeInfo->mTypeIFaceMap.Clear();
  4732. typeInstance->mCeTypeInfo->mHash = Val128();
  4733. }
  4734. if (((typeInstance->mCeTypeInfo->mFailed) || (typeInstance->mTypeDef->HasParsingFailed())) &&
  4735. (prevHadEmissions))
  4736. {
  4737. // Just add a marker to retain the previous open emits
  4738. typeInstance->mCeTypeInfo->mEmitSourceMap[-1] = BfCeTypeEmitSource();
  4739. }
  4740. typeInstance->mCeTypeInfo->mFailed = false;
  4741. }
  4742. if (typeInstance->mCeTypeInfo != NULL)
  4743. {
  4744. if (!typeInstance->mCeTypeInfo->mPendingInterfaces.IsEmpty())
  4745. hadNewMembers = true;
  4746. }
  4747. if ((typeInstance->mTypeDef->IsEmitted()) && (typeInstance->mCeTypeInfo == NULL))
  4748. {
  4749. BF_ASSERT(mCompiler->mCanceling);
  4750. if (mCompiler->mCanceling)
  4751. {
  4752. TypeFailed(typeInstance);
  4753. auto prevTypeDef = typeInstance->mTypeDef->mEmitParent;
  4754. delete typeInstance->mTypeDef;
  4755. typeInstance->mTypeDef = prevTypeDef;
  4756. hadNewMembers = false;
  4757. }
  4758. }
  4759. if (hadNewMembers)
  4760. {
  4761. // Avoid getting stale cached comptime reflection info
  4762. mCompiler->mCeMachine->mCeModule->mTypeDataRefs.Remove(resolvedTypeRef);
  4763. // We need to avoid passing in BfPopulateType_Interfaces_All because it could cause us to miss out on new member processing,
  4764. // including resizing the method group table
  4765. DoPopulateType(resolvedTypeRef, BF_MAX(populateType, BfPopulateType_Data));
  4766. return;
  4767. }
  4768. if (_CheckTypeDone())
  4769. return;
  4770. }
  4771. }
  4772. // Type now has interfaces added from CEInit
  4773. if (typeInstance->mDefineState < BfTypeDefineState_HasInterfaces_All)
  4774. typeInstance->mDefineState = BfTypeDefineState_HasInterfaces_All;
  4775. if (_CheckTypeDone())
  4776. return;
  4777. BF_ASSERT(mContext->mCurTypeState == &typeState);
  4778. //BF_ASSERT(!typeInstance->mIsFinishingType);
  4779. typeInstance->mIsFinishingType = true;
  4780. // No re-entry is allowed below here -- we will run all the way to the end at this point
  4781. BfSizedVector<BfIRMDNode, 8> diFieldTypes;
  4782. HashContext dataMemberHashCtx;
  4783. if (!resolvedTypeRef->IsBoxed())
  4784. {
  4785. for (auto propDef : typeDef->mProperties)
  4786. {
  4787. if (!typeInstance->IsTypeMemberIncluded(propDef->mDeclaringType))
  4788. continue;
  4789. if (propDef->mFieldDeclaration != NULL)
  4790. {
  4791. SetAndRestoreValue<BfFieldDef*> prevTypeRef(mContext->mCurTypeState->mCurFieldDef, propDef);
  4792. BfAttributeTargets target = BfAttributeTargets_Property;
  4793. if (propDef->IsExpressionBodied())
  4794. target = (BfAttributeTargets)(target | BfAttributeTargets_Method);
  4795. if ((propDef->GetFieldDeclaration()->mAttributes != NULL) && (!typeInstance->mTypeFailed) && (!isRootSystemType))
  4796. {
  4797. auto customAttrs = GetCustomAttributes(propDef->GetFieldDeclaration()->mAttributes, target);
  4798. delete customAttrs;
  4799. }
  4800. auto propDecl = (BfPropertyDeclaration*)propDef->mFieldDeclaration;
  4801. if (propDecl->mExplicitInterface != NULL)
  4802. {
  4803. if ((mCompiler->mResolvePassData != NULL) && (mCompiler->mResolvePassData->mAutoComplete != NULL))
  4804. mCompiler->mResolvePassData->mAutoComplete->CheckTypeRef(propDecl->mExplicitInterface, false);
  4805. auto explicitInterface = ResolveTypeRef(propDecl->mExplicitInterface, BfPopulateType_Declaration);
  4806. if (explicitInterface != NULL)
  4807. {
  4808. bool interfaceFound = false;
  4809. for (auto ifaceInst : typeInstance->mInterfaces)
  4810. interfaceFound |= ifaceInst.mInterfaceType == explicitInterface;
  4811. if ((!interfaceFound) && (!typeInstance->mTypeFailed))
  4812. {
  4813. Fail("Containing class has not declared to implement this interface", propDecl->mExplicitInterface, true);
  4814. }
  4815. }
  4816. }
  4817. }
  4818. if (propDef->mMethods.IsEmpty())
  4819. {
  4820. auto nameNode = ((BfPropertyDeclaration*)propDef->mFieldDeclaration)->mNameNode;
  4821. if (nameNode != NULL)
  4822. {
  4823. Fail(StrFormat("Property or indexer '%s.%s' must have at least one accessor", TypeToString(typeInstance).c_str(), propDef->mName.c_str()),
  4824. nameNode, true); // CS0548
  4825. }
  4826. }
  4827. }
  4828. bool isGlobalContainer = typeDef->IsGlobalsContainer();
  4829. if (typeInstance->mBaseType != NULL)
  4830. {
  4831. dataMemberHashCtx.Mixin(typeInstance->mBaseType->mTypeId);
  4832. if (typeInstance->mBaseType->mHotTypeData != NULL)
  4833. {
  4834. BfHotTypeVersion* ver = typeInstance->mBaseType->mHotTypeData->GetLatestVersion();
  4835. dataMemberHashCtx.Mixin(ver->mDataHash);
  4836. }
  4837. }
  4838. dataMemberHashCtx.Mixin(typeInstance->mPacking);
  4839. dataMemberHashCtx.Mixin(typeInstance->mIsCRepr);
  4840. dataMemberHashCtx.Mixin(typeInstance->mIsUnion);
  4841. int startDataPos = dataPos;
  4842. int maxDataPos = dataPos;
  4843. BfSizedVector<BfFieldInstance*, 16> dataFieldVec;
  4844. bool allowInstanceFields = (underlyingType == NULL);
  4845. if (typeInstance->IsTypedPrimitive())
  4846. allowInstanceFields = false;
  4847. // We've resolved all the 'var' entries, so now build the actual composite type
  4848. for (auto& fieldInstanceRef : typeInstance->mFieldInstances)
  4849. {
  4850. auto fieldInstance = &fieldInstanceRef;
  4851. if (!fieldInstance->mFieldIncluded)
  4852. continue;
  4853. auto resolvedFieldType = fieldInstance->GetResolvedType();
  4854. if (fieldInstance->mResolvedType == NULL)
  4855. {
  4856. if ((underlyingType == NULL) && (!typeInstance->IsPayloadEnum()))
  4857. BF_ASSERT(typeInstance->mTypeFailed);
  4858. continue;
  4859. }
  4860. if ((fieldInstance->GetFieldDef() != NULL) && (fieldInstance->GetFieldDef()->mIsConst))
  4861. {
  4862. // Resolve later
  4863. AddDependency(resolvedFieldType, typeInstance, BfDependencyMap::DependencyFlag_ConstValue);
  4864. }
  4865. else if (fieldInstance->GetFieldDef() != NULL)
  4866. {
  4867. if (!fieldInstance->GetFieldDef()->mIsStatic)
  4868. AddFieldDependency(typeInstance, fieldInstance, resolvedFieldType);
  4869. else
  4870. AddDependency(resolvedFieldType, typeInstance, BfDependencyMap::DependencyFlag_StaticValue);
  4871. }
  4872. auto fieldDef = fieldInstance->GetFieldDef();
  4873. if (fieldInstance->mResolvedType != NULL)
  4874. {
  4875. auto resolvedFieldType = fieldInstance->GetResolvedType();
  4876. if ((!typeInstance->IsBoxed()) && (fieldDef != NULL))
  4877. {
  4878. if (fieldDef->mUsingProtection != BfProtection_Hidden)
  4879. {
  4880. auto fieldDecl = fieldDef->GetFieldDeclaration();
  4881. BfAstNode* refNode = fieldDecl->mConstSpecifier;
  4882. if (refNode == NULL)
  4883. refNode = fieldDef->GetRefNode();
  4884. if ((!resolvedFieldType->IsGenericParam()) && (!resolvedFieldType->IsObject()) && (!resolvedFieldType->IsStruct()))
  4885. {
  4886. Warn(0, StrFormat("Field type '%s' is not applicable for 'using'", TypeToString(resolvedFieldType).c_str()), refNode);
  4887. }
  4888. else if ((fieldDecl->mConstSpecifier == NULL) && (!BfNodeIsA<BfInlineTypeReference>(fieldDecl->mTypeRef)))
  4889. {
  4890. Warn(0, "Field needs either a name or a 'using' declaration", refNode);
  4891. }
  4892. }
  4893. if (fieldInstance->mIsEnumPayloadCase)
  4894. {
  4895. PopulateType(resolvedFieldType, BfPopulateType_Data);
  4896. if (resolvedFieldType->WantsGCMarking())
  4897. typeInstance->mWantsGCMarking = true;
  4898. }
  4899. if ((!fieldDef->mIsConst) && (!fieldDef->mIsStatic))
  4900. {
  4901. BfAstNode* nameRefNode = NULL;
  4902. if (auto fieldDecl = fieldDef->GetFieldDeclaration())
  4903. nameRefNode = fieldDecl->mNameNode;
  4904. else if (auto paramDecl = fieldDef->GetParamDeclaration())
  4905. nameRefNode = paramDecl->mNameNode;
  4906. if (nameRefNode == NULL)
  4907. nameRefNode = fieldDef->mTypeRef;
  4908. if ((!resolvedFieldType->IsValuelessType()) && (typeDef->mIsOpaque))
  4909. {
  4910. Fail(StrFormat("Opaque type '%s' attempted to declare non-static field '%s'", TypeToString(typeInstance).c_str(), fieldDef->mName.c_str()), nameRefNode, true);
  4911. resolvedFieldType = GetPrimitiveType(BfTypeCode_None);
  4912. fieldInstance->mResolvedType = resolvedFieldType;
  4913. }
  4914. PopulateType(resolvedFieldType, resolvedFieldType->IsValueType() ? BfPopulateType_Data : BfPopulateType_Declaration);
  4915. if (resolvedFieldType->WantsGCMarking())
  4916. typeInstance->mWantsGCMarking = true;
  4917. fieldInstance->mMergedDataIdx = typeInstance->mMergedFieldDataCount;
  4918. if (resolvedFieldType->IsStruct())
  4919. {
  4920. auto resolvedFieldTypeInstance = resolvedFieldType->ToTypeInstance();
  4921. typeInstance->mMergedFieldDataCount += resolvedFieldTypeInstance->mMergedFieldDataCount;
  4922. }
  4923. else if (!resolvedFieldType->IsValuelessType())
  4924. typeInstance->mMergedFieldDataCount++;
  4925. if (fieldDef->mIsExtern)
  4926. {
  4927. Fail("Cannot declare instance member as 'extern'", fieldDef->GetFieldDeclaration()->mExternSpecifier, true);
  4928. }
  4929. if (!allowInstanceFields)
  4930. {
  4931. if (typeInstance->IsEnum())
  4932. Fail("Cannot declare instance members in an enum", nameRefNode, true);
  4933. else if (typeInstance->IsFunction())
  4934. Fail("Cannot declare instance members in a function", nameRefNode, true);
  4935. else
  4936. Fail("Cannot declare instance members in a typed primitive struct", nameRefNode, true);
  4937. TypeFailed(typeInstance);
  4938. fieldInstance->mDataIdx = -1;
  4939. continue;
  4940. }
  4941. if (typeDef->mIsStatic)
  4942. {
  4943. //CS0708
  4944. Fail("Cannot declare instance members in a static class", nameRefNode, true);
  4945. }
  4946. if (resolvedFieldType->IsValueType())
  4947. {
  4948. BF_ASSERT((!resolvedFieldType->IsDataIncomplete()) || (resolvedFieldType->HasTypeFailed()));
  4949. }
  4950. if (!mCompiler->mIsResolveOnly)
  4951. {
  4952. dataMemberHashCtx.MixinStr(fieldDef->mName);
  4953. dataMemberHashCtx.Mixin(resolvedFieldType->mTypeId);
  4954. }
  4955. int dataSize = resolvedFieldType->mSize;
  4956. int alignSize = resolvedFieldType->mAlign;
  4957. if (fieldInstance->IsAppendedObject())
  4958. {
  4959. TryGetAppendedObjectInfo(fieldInstance, dataSize, alignSize);
  4960. }
  4961. else if (fieldDef->mIsAppend)
  4962. {
  4963. if (!typeInstance->IsObject())
  4964. Fail("Append fields can only be declared in classes", nameRefNode, true);
  4965. else if (resolvedFieldType->IsGenericParam())
  4966. {
  4967. SetAndRestoreValue<BfFieldDef*> prevTypeRef(mContext->mCurTypeState->mCurFieldDef, fieldDef);
  4968. auto genericParamInstance = GetGenericParamInstance((BfGenericParamType*)resolvedFieldType, false, BfFailHandleKind_Soft);
  4969. if (genericParamInstance != NULL)
  4970. {
  4971. if (((genericParamInstance->mGenericParamFlags & BfGenericParamFlag_Class) == 0) &&
  4972. ((genericParamInstance->mTypeConstraint == NULL) || (!genericParamInstance->mTypeConstraint->IsObject())))
  4973. {
  4974. Fail(StrFormat("Append fields must be classes. Consider adding a 'where %s : class' constraint.", genericParamInstance->GetName().c_str()), nameRefNode, true);
  4975. }
  4976. }
  4977. }
  4978. else if (!resolvedFieldType->IsObject())
  4979. Fail("Append fields must be classes", nameRefNode, true);
  4980. }
  4981. BF_ASSERT(dataSize >= 0);
  4982. fieldInstance->mDataSize = dataSize;
  4983. if (!isUnion)
  4984. {
  4985. if (!resolvedFieldType->IsValuelessType())
  4986. {
  4987. dataFieldVec.push_back(fieldInstance);
  4988. }
  4989. }
  4990. else
  4991. {
  4992. BF_ASSERT(resolvedFieldType->mSize >= 0);
  4993. // if (alignSize > 1)
  4994. // dataPos = (dataPos + (alignSize - 1)) & ~(alignSize - 1);
  4995. fieldInstance->mDataOffset = dataPos;
  4996. typeInstance->mInstAlign = std::max(typeInstance->mInstAlign, alignSize);
  4997. dataPos += dataSize;
  4998. if (dataPos > maxDataPos)
  4999. {
  5000. maxDataPos = dataPos;
  5001. }
  5002. dataPos = startDataPos;
  5003. }
  5004. auto fieldTypeInst = resolvedFieldType->ToTypeInstance();
  5005. if (fieldTypeInst != NULL)
  5006. {
  5007. if ((fieldTypeInst->mRebuildFlags & BfTypeRebuildFlag_UnderlyingTypeDeferred) != 0)
  5008. {
  5009. if (populateType < BfPopulateType_Data)
  5010. {
  5011. // We don't actually need the data - bail out
  5012. return;
  5013. }
  5014. BfAstNode* refNode = fieldDef->mFieldDeclaration;
  5015. String failStr;
  5016. failStr = StrFormat("Circular data reference detected between '%s' and '%s'", TypeToString(mCurTypeInstance).c_str(), TypeToString(fieldTypeInst).c_str());
  5017. if (!mContext->mFieldResolveReentrys.IsEmpty())
  5018. {
  5019. failStr += StrFormat(" with the following fields:", TypeToString(mCurTypeInstance).c_str());
  5020. for (int i = 0; i < (int)mContext->mFieldResolveReentrys.size(); i++)
  5021. {
  5022. auto checkField = mContext->mFieldResolveReentrys[i];
  5023. if (i > 0)
  5024. failStr += ",";
  5025. failStr += "\n '" + TypeToString(typeInstance) + "." + checkField->GetFieldDef()->mName + "'";
  5026. if (checkField->mOwner == fieldTypeInst)
  5027. refNode = checkField->GetFieldDef()->mFieldDeclaration;
  5028. }
  5029. }
  5030. BfError* err = Fail(failStr, refNode);
  5031. if (err)
  5032. err->mIsPersistent = true;
  5033. }
  5034. }
  5035. }
  5036. bool useForUnion = false;
  5037. if (fieldInstance->mIsEnumPayloadCase)
  5038. {
  5039. if (!typeInstance->IsEnum())
  5040. {
  5041. Fail("Cases can only be used in enum types", fieldDef->mFieldDeclaration);
  5042. }
  5043. else
  5044. {
  5045. BF_ASSERT(typeInstance->mIsUnion);
  5046. }
  5047. }
  5048. if ((!fieldDef->mIsStatic) && (!resolvedFieldType->IsValuelessType()))
  5049. {
  5050. if (isUnion)
  5051. {
  5052. fieldInstance->mDataIdx = curFieldDataIdx;
  5053. }
  5054. }
  5055. }
  5056. if ((resolvedFieldType->IsOpaque()) && (!IsInSpecializedGeneric()))
  5057. Fail(StrFormat("Invalid use of opaque type '%s' in field '%s.%s'",
  5058. TypeToString(resolvedFieldType).c_str(), TypeToString(mCurTypeInstance).c_str(), fieldDef->mName.c_str()),
  5059. fieldDef->mTypeRef, true);
  5060. if ((!typeInstance->IsSpecializedType()) && (!typeInstance->IsOnDemand()) && (fieldDef != NULL) && (!CheckDefineMemberProtection(fieldDef->mProtection, resolvedFieldType)))
  5061. {
  5062. //CS0052
  5063. Fail(StrFormat("Inconsistent accessibility: field type '%s' is less accessible than field '%s.%s'",
  5064. TypeToString(resolvedFieldType).c_str(), TypeToString(mCurTypeInstance).c_str(), fieldDef->mName.c_str()),
  5065. fieldDef->mTypeRef, true);
  5066. }
  5067. }
  5068. }
  5069. if (typeInstance->mIsUnion)
  5070. {
  5071. SetAndRestoreValue<BfTypeState::ResolveKind> prevResolveKind(typeState.mResolveKind, BfTypeState::ResolveKind_UnionInnerType);
  5072. unionInnerType = typeInstance->GetUnionInnerType();
  5073. }
  5074. if (!isOrdered)
  5075. {
  5076. int dataFieldCount = (int)dataFieldVec.size();
  5077. Array<Deque<BfFieldInstance*>> alignBuckets;
  5078. for (auto fieldInst : dataFieldVec)
  5079. {
  5080. int alignBits = GetHighestBitSet(fieldInst->GetAlign(packing));
  5081. while (alignBits >= alignBuckets.size())
  5082. alignBuckets.Add({});
  5083. alignBuckets[alignBits].Add(fieldInst);
  5084. }
  5085. dataFieldVec.clear();
  5086. int curSize = dataPos;
  5087. while (dataFieldVec.size() != dataFieldCount)
  5088. {
  5089. // Clear out completed buckets
  5090. while (alignBuckets[alignBuckets.size() - 1].IsEmpty())
  5091. {
  5092. alignBuckets.pop_back();
  5093. }
  5094. int alignBits = GetNumLowZeroBits(curSize) + 1;
  5095. alignBits = BF_MIN(alignBits, (int)alignBuckets.size() - 1);
  5096. bool foundEntry = false;
  5097. while (alignBits >= 0)
  5098. {
  5099. if (alignBuckets[alignBits].IsEmpty())
  5100. {
  5101. alignBits--;
  5102. continue;
  5103. }
  5104. bool isHighestBucket = alignBits == alignBuckets.size() - 1;
  5105. auto fieldInst = alignBuckets[alignBits][0];
  5106. alignBuckets[alignBits].RemoveAt(0);
  5107. dataFieldVec.push_back(fieldInst);
  5108. curSize = BF_ALIGN(curSize, fieldInst->GetAlign(packing));
  5109. curSize += fieldInst->mDataSize;
  5110. foundEntry = true;
  5111. if (!isHighestBucket)
  5112. {
  5113. // We may have a larger type that can fit now...
  5114. break;
  5115. }
  5116. }
  5117. if (!foundEntry)
  5118. {
  5119. // If no entries will fit, then force an entry of the smallest alignment
  5120. for (int alignBits = 0; alignBits < alignBuckets.size(); alignBits++)
  5121. {
  5122. if (!alignBuckets[alignBits].IsEmpty())
  5123. {
  5124. auto fieldInst = alignBuckets[alignBits][0];
  5125. alignBuckets[alignBits].RemoveAt(0);
  5126. dataFieldVec.push_back(fieldInst);
  5127. curSize = BF_ALIGN(curSize, fieldInst->GetAlign(packing));
  5128. curSize += fieldInst->mDataSize;
  5129. break;
  5130. }
  5131. }
  5132. }
  5133. }
  5134. }
  5135. bool needsExplicitAlignment = true;
  5136. if (typeInstance->mCeTypeInfo != NULL)
  5137. {
  5138. typeInstance->mInstAlign = BF_MAX(typeInstance->mInstAlign, typeInstance->mCeTypeInfo->mAlign);
  5139. }
  5140. for (int fieldIdx = 0; fieldIdx < (int)dataFieldVec.size(); fieldIdx++)
  5141. {
  5142. auto fieldInstance = dataFieldVec[fieldIdx];
  5143. auto resolvedFieldType = fieldInstance->GetResolvedType();
  5144. BF_ASSERT(resolvedFieldType->mSize >= 0);
  5145. if (fieldInstance->mDataSize == 0)
  5146. fieldInstance->mDataSize = resolvedFieldType->mSize;
  5147. int dataSize = fieldInstance->mDataSize;
  5148. int alignSize = fieldInstance->GetAlign(packing);
  5149. int nextDataPos = dataPos;
  5150. nextDataPos = (dataPos + (alignSize - 1)) & ~(alignSize - 1);
  5151. int padding = nextDataPos - dataPos;
  5152. if ((alignSize > 1) && (needsExplicitAlignment) && (padding > 0))
  5153. {
  5154. curFieldDataIdx++;
  5155. }
  5156. dataPos = nextDataPos;
  5157. fieldInstance->mDataOffset = dataPos;
  5158. fieldInstance->mDataIdx = curFieldDataIdx++;
  5159. typeInstance->mInstAlign = std::max(typeInstance->mInstAlign, alignSize);
  5160. dataPos += dataSize;
  5161. }
  5162. if (unionInnerType != NULL)
  5163. {
  5164. dataPos = startDataPos + unionInnerType->mSize;
  5165. typeInstance->mInstAlign = BF_MAX(unionInnerType->mAlign, typeInstance->mInstAlign);
  5166. }
  5167. // Old dataMemberHash location
  5168. CheckMemberNames(typeInstance);
  5169. if (alignOverride > 0)
  5170. typeInstance->mInstAlign = alignOverride;
  5171. else
  5172. typeInstance->mInstAlign = std::max(1, typeInstance->mInstAlign);
  5173. int alignSize = typeInstance->mInstAlign;
  5174. if (isCRepr)
  5175. {
  5176. // Align size to alignment
  5177. if (alignSize >= 1)
  5178. typeInstance->mInstSize = (dataPos + (alignSize - 1)) & ~(alignSize - 1);
  5179. if (typeInstance->mInstSize == 0)
  5180. {
  5181. // CRepr doesn't allow valueless types
  5182. typeInstance->mInstSize = 1;
  5183. }
  5184. typeInstance->mIsCRepr = true;
  5185. }
  5186. else
  5187. {
  5188. typeInstance->mInstSize = dataPos;
  5189. typeInstance->mIsCRepr = false;
  5190. }
  5191. if ((mCompiler->mResolvePassData != NULL) && (mCompiler->mResolvePassData->mAutoComplete != NULL))
  5192. {
  5193. for (auto propDef : typeInstance->mTypeDef->mProperties)
  5194. if (propDef->mFieldDeclaration != NULL)
  5195. mCompiler->mResolvePassData->mAutoComplete->CheckProperty(BfNodeDynCast<BfPropertyDeclaration>(propDef->mFieldDeclaration));
  5196. }
  5197. }
  5198. if (typeInstance->IsObjectOrInterface())
  5199. typeInstance->mWantsGCMarking = true;
  5200. if ((mCompiler->mOptions.mEnableRealtimeLeakCheck) && (!typeInstance->mWantsGCMarking))
  5201. {
  5202. typeInstance->mTypeDef->PopulateMemberSets();
  5203. BfMemberSetEntry* entry = NULL;
  5204. BfMethodDef* methodDef = NULL;
  5205. if (typeInstance->mTypeDef->mMethodSet.TryGetWith(String(BF_METHODNAME_MARKMEMBERS), &entry))
  5206. {
  5207. methodDef = (BfMethodDef*)entry->mMemberDef;
  5208. if (methodDef->HasBody())
  5209. typeInstance->mWantsGCMarking = true;
  5210. }
  5211. }
  5212. if (typeInstance->IsValueType())
  5213. {
  5214. typeInstance->mSize = typeInstance->mInstSize;
  5215. typeInstance->mAlign = typeInstance->mInstAlign;
  5216. }
  5217. if ((mCompiler->mOptions.mAllowHotSwapping) && (typeInstance->mDefineState < BfTypeDefineState_Defined))
  5218. {
  5219. if (typeInstance->mHotTypeData == NULL)
  5220. {
  5221. BF_ASSERT(typeInstance->mTypeFailed);
  5222. }
  5223. else
  5224. {
  5225. auto hotTypeVersion = typeInstance->mHotTypeData->mTypeVersions.back();
  5226. if ((typeInstance->mBaseType != NULL) && (typeInstance->mBaseType->mHotTypeData != NULL))
  5227. {
  5228. hotTypeVersion->mMembers.Add(typeInstance->mBaseType->mHotTypeData->GetLatestVersion());
  5229. }
  5230. for (auto& fieldInst : typeInstance->mFieldInstances)
  5231. {
  5232. auto fieldDef = fieldInst.GetFieldDef();
  5233. if ((fieldDef == NULL) || (fieldDef->mIsStatic))
  5234. continue;
  5235. auto depType = fieldInst.mResolvedType;
  5236. while (depType->IsSizedArray())
  5237. depType = ((BfSizedArrayType*)depType)->mElementType;
  5238. if (depType->IsStruct())
  5239. {
  5240. PopulateType(depType);
  5241. auto depTypeInst = depType->ToTypeInstance();
  5242. BF_ASSERT(depTypeInst->mHotTypeData != NULL);
  5243. if (depTypeInst->mHotTypeData != NULL)
  5244. hotTypeVersion->mMembers.Add(depTypeInst->mHotTypeData->GetLatestVersion());
  5245. }
  5246. }
  5247. for (auto member : hotTypeVersion->mMembers)
  5248. member->mRefCount++;
  5249. }
  5250. }
  5251. if (_CheckTypeDone())
  5252. return;
  5253. if (typeInstance->mDefineState < BfTypeDefineState_Defined)
  5254. {
  5255. typeInstance->mDefineState = BfTypeDefineState_Defined;
  5256. if (!typeInstance->IsBoxed())
  5257. {
  5258. ExecuteCEOnCompile(NULL, typeInstance, BfCEOnCompileKind_TypeDone, underlyingTypeDeferred);
  5259. if (typeInstance->mDefineState == BfTypeDefineState_DefinedAndMethodsSlotted)
  5260. return;
  5261. }
  5262. }
  5263. if (typeInstance->mTypeFailed)
  5264. mHadBuildError = true;
  5265. CheckAddFailType();
  5266. BF_ASSERT_REL(typeInstance->mDefineState != BfTypeDefineState_DefinedAndMethodsSlotting);
  5267. BF_ASSERT_REL(typeInstance->mDefineState != BfTypeDefineState_DefinedAndMethodsSlotted);
  5268. BfLogSysM("Setting mNeedsMethodProcessing=true on %p\n", typeInstance);
  5269. typeInstance->mNeedsMethodProcessing = true;
  5270. typeInstance->mIsFinishingType = false;
  5271. ///
  5272. // 'Splattable' means that we can be passed via 3 or fewer primitive/pointer values
  5273. if (typeInstance->mHasUnderlyingArray)
  5274. {
  5275. // Never splat
  5276. }
  5277. else if (typeInstance->IsStruct())
  5278. {
  5279. bool hadNonSplattable = false;
  5280. if (typeInstance->mBaseType != NULL)
  5281. PopulateType(typeInstance->mBaseType, BfPopulateType_Data);
  5282. if ((typeInstance->mBaseType == NULL) || (typeInstance->mBaseType->IsSplattable()))
  5283. {
  5284. int dataCount = 0;
  5285. std::function<void(BfType*)> splatIterate;
  5286. splatIterate = [&](BfType* checkType)
  5287. {
  5288. if (hadNonSplattable)
  5289. return;
  5290. if (checkType->IsValueType())
  5291. PopulateType(checkType, BfPopulateType_Data);
  5292. if (checkType->IsMethodRef())
  5293. {
  5294. // For simplicity, any methodRef inside a struct makes the struct non-splattable. This reduces cases of needing to
  5295. // handle embedded methodRefs
  5296. hadNonSplattable = true;
  5297. }
  5298. else if (checkType->IsOpaque())
  5299. {
  5300. hadNonSplattable = true;
  5301. }
  5302. else if (checkType->IsStruct())
  5303. {
  5304. auto checkTypeInstance = checkType->ToTypeInstance();
  5305. if (checkTypeInstance->mBaseType != NULL)
  5306. splatIterate(checkTypeInstance->mBaseType);
  5307. if (checkTypeInstance->mIsUnion)
  5308. {
  5309. bool wantSplat = false;
  5310. auto unionInnerType = checkTypeInstance->GetUnionInnerType(&wantSplat);
  5311. if (!wantSplat)
  5312. hadNonSplattable = true;
  5313. splatIterate(unionInnerType);
  5314. if (checkTypeInstance->IsEnum())
  5315. dataCount++; // Discriminator
  5316. }
  5317. else
  5318. {
  5319. for (int fieldIdx = 0; fieldIdx < (int)checkTypeInstance->mFieldInstances.size(); fieldIdx++)
  5320. {
  5321. auto fieldInstance = (BfFieldInstance*)&checkTypeInstance->mFieldInstances[fieldIdx];
  5322. if ((fieldInstance->mResolvedType != NULL) &&
  5323. ((fieldInstance->mResolvedType->IsVar()) || (fieldInstance->mResolvedType->IsLet())))
  5324. {
  5325. //TODO: allow splattables with var/let field types
  5326. hadNonSplattable = true;
  5327. }
  5328. if (fieldInstance->mDataIdx >= 0)
  5329. splatIterate(fieldInstance->GetResolvedType());
  5330. }
  5331. }
  5332. }
  5333. else if (!checkType->IsValuelessType())
  5334. {
  5335. if (checkType->IsSizedArray())
  5336. hadNonSplattable = true;
  5337. dataCount += checkType->GetSplatCount();
  5338. }
  5339. };
  5340. splatIterate(typeInstance);
  5341. if (isCRepr)
  5342. {
  5343. if ((mCompiler->mOptions.mMachineType == BfMachineType_x86) && (mCompiler->mOptions.mPlatformType == BfPlatformType_Windows))
  5344. {
  5345. typeInstance->mIsSplattable = (dataCount <= 4) && (!hadNonSplattable) && (dataPos > 4);
  5346. }
  5347. else
  5348. typeInstance->mIsSplattable = false;
  5349. }
  5350. else
  5351. typeInstance->mIsSplattable = (dataCount <= 3) && (!hadNonSplattable);
  5352. }
  5353. }
  5354. if (typeInstance->IsTypedPrimitive())
  5355. typeInstance->mIsSplattable = true;
  5356. if (typeInstance->mTypeDef->mIsOpaque)
  5357. typeInstance->mIsSplattable = false;
  5358. BF_ASSERT(mContext->mCurTypeState == &typeState);
  5359. // This is only required for autocomplete and finding type references
  5360. if (!typeInstance->IsSpecializedType())
  5361. {
  5362. for (auto propDef : typeDef->mProperties)
  5363. {
  5364. if (propDef->mTypeRef == NULL)
  5365. continue;
  5366. BfTypeState typeState;
  5367. typeState.mPrevState = mContext->mCurTypeState;
  5368. typeState.mCurTypeDef = propDef->mDeclaringType;
  5369. typeState.mType = typeInstance;
  5370. SetAndRestoreValue<BfTypeState*> prevTypeState(mContext->mCurTypeState, &typeState);
  5371. if (BfNodeIsA<BfVarTypeReference>(propDef->mTypeRef))
  5372. {
  5373. // This is only valid for ConstEval properties
  5374. }
  5375. else
  5376. ResolveTypeRef(propDef->mTypeRef, BfPopulateType_Identity, BfResolveTypeRefFlag_AllowRef);
  5377. }
  5378. }
  5379. // Const handling
  5380. {
  5381. Dictionary<int64, BfFieldDef*> valueMap;
  5382. for (auto& fieldInstanceRef : typeInstance->mFieldInstances)
  5383. {
  5384. auto fieldInstance = &fieldInstanceRef;
  5385. if (!fieldInstance->mFieldIncluded)
  5386. continue;
  5387. auto fieldDef = fieldInstance->GetFieldDef();
  5388. if (fieldDef == NULL)
  5389. continue;
  5390. if ((fieldInstance->mConstIdx == -1) && (fieldDef->mIsConst))
  5391. {
  5392. SetAndRestoreValue<BfFieldDef*> prevTypeRef(mContext->mCurTypeState->mCurFieldDef, fieldDef);
  5393. typeInstance->mModule->ResolveConstField(typeInstance, fieldInstance, fieldDef);
  5394. // Check enum cases for duplicates
  5395. if ((mCurTypeInstance->IsEnum()) && (!mCurTypeInstance->IsUnspecializedTypeVariation()))
  5396. {
  5397. auto underlyingType = fieldInstance->mResolvedType->GetUnderlyingType();
  5398. if ((fieldDef->IsEnumCaseEntry()) && (fieldInstance->mConstIdx != -1) && (underlyingType->IsIntegral()))
  5399. {
  5400. auto foreignConst = typeInstance->mConstHolder->GetConstantById(fieldInstance->mConstIdx);
  5401. BfFieldDef** fieldDefPtr;
  5402. if (valueMap.TryAdd(foreignConst->mInt64, NULL, &fieldDefPtr))
  5403. {
  5404. *fieldDefPtr = fieldDef;
  5405. }
  5406. else if ((typeInstance->mCustomAttributes == NULL) || (typeInstance->mCustomAttributes->Get(mCompiler->mAllowDuplicatesAttributeTypeDef) == NULL))
  5407. {
  5408. auto error = Warn(0, StrFormat("Enum value '%lld' for field '%s' is not unique. Considering adding [AllowDuplicates] to the type declaration.", foreignConst->mInt64, fieldDef->mName.c_str()), fieldDef->GetRefNode(), true);
  5409. if (error != NULL)
  5410. mCompiler->mPassInstance->MoreInfo(StrFormat("This value was previously used for field '%s'", (*fieldDefPtr)->mName.c_str()), (*fieldDefPtr)->GetRefNode());
  5411. }
  5412. }
  5413. }
  5414. }
  5415. }
  5416. }
  5417. if ((typeInstance->IsEnum()) && (!typeInstance->IsPayloadEnum()))
  5418. {
  5419. BfLogSysM("Setting underlying type %p %d\n", typeInstance, underlyingTypeDeferred);
  5420. }
  5421. DoPopulateType_FinishEnum(typeInstance, underlyingTypeDeferred, &dataMemberHashCtx, unionInnerType);
  5422. if (!typeInstance->IsBoxed())
  5423. {
  5424. if (typeInstance->IsTypedPrimitive())
  5425. {
  5426. auto underlyingType = typeInstance->GetUnderlyingType();
  5427. dataMemberHashCtx.Mixin(underlyingType->mTypeId);
  5428. }
  5429. Val128 dataMemberHash = dataMemberHashCtx.Finish128();
  5430. if (typeInstance->mHotTypeData != NULL)
  5431. {
  5432. auto newHotTypeVersion = typeInstance->mHotTypeData->GetLatestVersion();
  5433. newHotTypeVersion->mDataHash = dataMemberHash;
  5434. if (mCompiler->mHotState != NULL)
  5435. {
  5436. auto committedHotTypeVersion = typeInstance->mHotTypeData->GetTypeVersion(mCompiler->mHotState->mCommittedHotCompileIdx);
  5437. if (committedHotTypeVersion != NULL)
  5438. {
  5439. if ((newHotTypeVersion->mDataHash != committedHotTypeVersion->mDataHash) && (typeInstance->mIsReified))
  5440. {
  5441. BfLogSysM("Hot compile detected data changes in %p '%s'\n", resolvedTypeRef, TypeToString(typeInstance).c_str());
  5442. if (!typeInstance->mHotTypeData->mPendingDataChange)
  5443. {
  5444. mCompiler->mHotState->mPendingDataChanges.Add(typeInstance->mTypeId);
  5445. typeInstance->mHotTypeData->mPendingDataChange = true;
  5446. }
  5447. else
  5448. {
  5449. BF_ASSERT(mCompiler->mHotState->mPendingDataChanges.Contains(typeInstance->mTypeId));
  5450. }
  5451. bool baseHadChanges = (typeInstance->mBaseType != NULL) && (typeInstance->mBaseType->mHotTypeData != NULL) && (typeInstance->mBaseType->mHotTypeData->mPendingDataChange);
  5452. if (!baseHadChanges)
  5453. Warn(0, StrFormat("Hot compile detected data changes in '%s'", TypeToString(typeInstance).c_str()), typeDef->GetRefNode());
  5454. }
  5455. else if (typeInstance->mHotTypeData->mPendingDataChange)
  5456. {
  5457. BfLogSysM("Hot compile removed pending data change for %p '%s'\n", resolvedTypeRef, TypeToString(typeInstance).c_str());
  5458. mCompiler->mHotState->RemovePendingChanges(typeInstance);
  5459. }
  5460. }
  5461. }
  5462. }
  5463. }
  5464. if (typeInstance == mContext->mBfObjectType)
  5465. typeInstance->mHasBeenInstantiated = true;
  5466. auto _HandleTypeDeclaration = [&](BfTypeDeclaration* typeDeclaration)
  5467. {
  5468. if ((typeDeclaration != NULL) && (typeDeclaration->mNameNode != NULL))
  5469. {
  5470. auto typeRefSource = typeDeclaration->mNameNode->GetParserData();
  5471. if ((mCompiler->mResolvePassData != NULL) && (mCompiler->mResolvePassData->mIsClassifying) && (typeRefSource != NULL))
  5472. {
  5473. if (auto sourceClassifier = mCompiler->mResolvePassData->GetSourceClassifier(typeDeclaration->mNameNode))
  5474. {
  5475. BfSourceElementType elemType = BfSourceElementType_Type;
  5476. if (typeInstance->IsInterface())
  5477. elemType = BfSourceElementType_Interface;
  5478. else if (typeInstance->IsObject())
  5479. elemType = BfSourceElementType_RefType;
  5480. else if (typeInstance->IsStruct() || (typeInstance->IsTypedPrimitive() && !typeInstance->IsEnum()))
  5481. elemType = BfSourceElementType_Struct;
  5482. sourceClassifier->SetElementType(typeDeclaration->mNameNode, elemType);
  5483. }
  5484. }
  5485. }
  5486. };
  5487. if (!typeInstance->IsBoxed())
  5488. {
  5489. _HandleTypeDeclaration(typeDef->mTypeDeclaration);
  5490. for (auto partial : typeDef->mPartials)
  5491. _HandleTypeDeclaration(partial->mTypeDeclaration);
  5492. }
  5493. if (typeInstance->IsGenericTypeInstance())
  5494. {
  5495. auto genericTypeInst = (BfTypeInstance*)typeInstance;
  5496. if (!genericTypeInst->mGenericTypeInfo->mFinishedGenericParams)
  5497. FinishGenericParams(resolvedTypeRef);
  5498. }
  5499. if (populateType <= BfPopulateType_Data)
  5500. return;
  5501. disableYield.Release();
  5502. prevTypeState.Restore();
  5503. if (canDoMethodProcessing)
  5504. {
  5505. if (typeInstance->mNeedsMethodProcessing) // May have been handled by GetRawMethodInstanceAtIdx above
  5506. DoTypeInstanceMethodProcessing(typeInstance);
  5507. }
  5508. }
  5509. void BfModule::DoTypeInstanceMethodProcessing(BfTypeInstance* typeInstance)
  5510. {
  5511. if (typeInstance->IsDeleting())
  5512. {
  5513. BF_ASSERT(typeInstance->IsOnDemand());
  5514. return;
  5515. }
  5516. if (typeInstance->IsSpecializedByAutoCompleteMethod())
  5517. return;
  5518. if (typeInstance->mDefineState == BfTypeDefineState_DefinedAndMethodsSlotting)
  5519. {
  5520. BfLogSysM("DoTypeInstanceMethodProcessing %p re-entrancy exit\n", typeInstance);
  5521. return;
  5522. }
  5523. //
  5524. {
  5525. BP_ZONE("DoTypeInstanceMethodProcessing:CheckStack");
  5526. StackHelper stackHelper;
  5527. if (!stackHelper.CanStackExpand(128 * 1024))
  5528. {
  5529. if (!stackHelper.Execute([&]()
  5530. {
  5531. DoTypeInstanceMethodProcessing(typeInstance);
  5532. }))
  5533. {
  5534. Fail("Stack exhausted in DoPopulateType", typeInstance->mTypeDef->GetRefNode());
  5535. }
  5536. return;
  5537. }
  5538. }
  5539. BF_ASSERT_REL(typeInstance->mNeedsMethodProcessing);
  5540. BF_ASSERT_REL(typeInstance->mDefineState == BfTypeDefineState_Defined);
  5541. typeInstance->mDefineState = BfTypeDefineState_DefinedAndMethodsSlotting;
  5542. BF_ASSERT(typeInstance->mModule == this);
  5543. //TODO: This is new, make sure this is in the right place
  5544. /*if (mAwaitingInitFinish)
  5545. FinishInit();*/
  5546. AutoDisallowYield disableYield(mSystem);
  5547. SetAndRestoreValue<BfTypeInstance*> prevTypeInstance(mCurTypeInstance, typeInstance);
  5548. SetAndRestoreValue<BfMethodInstance*> prevMethodInstance(mCurMethodInstance, NULL);
  5549. BfLogSysM("DoTypeInstanceMethodProcessing: %p %s Revision:%d DefineState:%d\n", typeInstance, TypeToString(typeInstance).c_str(), typeInstance->mRevision, typeInstance->mDefineState);
  5550. auto typeDef = typeInstance->mTypeDef;
  5551. BfTypeOptions* typeOptions = NULL;
  5552. if (typeInstance->mTypeOptionsIdx >= 0)
  5553. typeOptions = mSystem->GetTypeOptions(typeInstance->mTypeOptionsIdx);
  5554. BfMethodDef* defaultCtor = NULL;
  5555. bool hasExplicitCtors = false;
  5556. // Generate all methods. Pass 0
  5557. for (auto methodDef : typeDef->mMethods)
  5558. {
  5559. if ((methodDef->mMethodType == BfMethodType_Ctor) && (!methodDef->mIsStatic) && (!methodDef->mDeclaringType->IsExtension()))
  5560. {
  5561. if (methodDef->mMethodDeclaration == NULL)
  5562. {
  5563. defaultCtor = methodDef;
  5564. }
  5565. else
  5566. {
  5567. hasExplicitCtors = true;
  5568. }
  5569. }
  5570. auto methodInstanceGroup = &typeInstance->mMethodInstanceGroups[methodDef->mIdx];
  5571. // Don't set these pointers during resolve pass because they may become invalid if it's just a temporary autocomplete method
  5572. if (mCompiler->mResolvePassData == NULL)
  5573. {
  5574. if ((methodDef->mMethodType == BfMethodType_Ctor) && (methodDef->mIsStatic))
  5575. {
  5576. typeInstance->mHasStaticInitMethod = true;
  5577. }
  5578. if ((methodDef->mMethodType == BfMethodType_Dtor) && (methodDef->mIsStatic))
  5579. {
  5580. typeInstance->mHasStaticDtorMethod = true;
  5581. }
  5582. if ((methodDef->mMethodType == BfMethodType_Normal) && (methodDef->mIsStatic) && (methodDef->mName == BF_METHODNAME_MARKMEMBERS_STATIC))
  5583. {
  5584. typeInstance->mHasStaticMarkMethod = true;
  5585. }
  5586. if ((methodDef->mMethodType == BfMethodType_Normal) && (methodDef->mIsStatic) && (methodDef->mName == BF_METHODNAME_FIND_TLS_MEMBERS))
  5587. {
  5588. typeInstance->mHasTLSFindMethod = true;
  5589. }
  5590. }
  5591. // Thsi MAY be generated already
  5592. // This should still be set to the default value
  5593. //BF_ASSERT((methodInstanceGroup->mOnDemandKind == BfMethodOnDemandKind_NotSet) || (methodInstanceGroup->mOnDemandKind == BfMethodOnDemandKind_AlwaysInclude));
  5594. }
  5595. if ((defaultCtor != NULL) && (hasExplicitCtors))
  5596. {
  5597. // This can happen if we emit another ctor
  5598. defaultCtor->mProtection = BfProtection_Hidden;
  5599. }
  5600. if (typeInstance == mContext->mBfObjectType)
  5601. {
  5602. BF_ASSERT(typeInstance->mInterfaceMethodTable.size() == 0);
  5603. }
  5604. int newIntefaceStartIdx = 0;
  5605. auto implBaseType = typeInstance->GetImplBaseType();
  5606. if (implBaseType != NULL)
  5607. {
  5608. auto baseTypeInst = implBaseType->ToTypeInstance();
  5609. if (implBaseType->IsIncomplete())
  5610. PopulateType(implBaseType, BfPopulateType_Full_Force);
  5611. typeInstance->mInterfaceMethodTable = baseTypeInst->mInterfaceMethodTable;
  5612. typeInstance->mVirtualMethodTable = implBaseType->mVirtualMethodTable;
  5613. typeInstance->mVirtualMethodTableSize = implBaseType->mVirtualMethodTableSize;
  5614. if ((!mCompiler->IsHotCompile()) && (!mCompiler->mPassInstance->HasFailed()) && ((mCompiler->mResolvePassData == NULL) || (mCompiler->mResolvePassData->mAutoComplete == NULL)))
  5615. {
  5616. BF_ASSERT(typeInstance->mVirtualMethodTable.size() == typeInstance->mVirtualMethodTableSize);
  5617. }
  5618. else
  5619. {
  5620. BF_ASSERT(typeInstance->mVirtualMethodTableSize >= (int)typeInstance->mVirtualMethodTable.size());
  5621. }
  5622. }
  5623. // Add new interfaces
  5624. for (int iFaceIdx = 0; iFaceIdx < (int)typeInstance->mInterfaces.size(); iFaceIdx++)
  5625. {
  5626. BfTypeInterfaceEntry& typeInterfaceInst = typeInstance->mInterfaces[iFaceIdx];
  5627. auto checkInterface = typeInterfaceInst.mInterfaceType;
  5628. if (checkInterface->IsIncomplete())
  5629. PopulateType(checkInterface, BfPopulateType_Full_Force);
  5630. typeInterfaceInst.mStartInterfaceTableIdx = (int)typeInstance->mInterfaceMethodTable.size();
  5631. // We don't add to the vtable for interface declarations, we just reference the listed interfaces
  5632. if (!typeInstance->IsInterface())
  5633. {
  5634. auto interfaceTypeDef = checkInterface->mTypeDef;
  5635. BF_ASSERT((interfaceTypeDef->mMethods.size() == checkInterface->mMethodInstanceGroups.size()) || (checkInterface->IsDeleting()));
  5636. // Reserve empty entries
  5637. for (int methodIdx = 0; methodIdx < (int)interfaceTypeDef->mMethods.size(); methodIdx++)
  5638. typeInstance->mInterfaceMethodTable.push_back(BfTypeInterfaceMethodEntry());
  5639. }
  5640. }
  5641. auto checkTypeInstance = typeInstance;
  5642. while (checkTypeInstance != NULL)
  5643. {
  5644. // These may have been already added
  5645. for (auto&& interfaceEntry : checkTypeInstance->mInterfaces)
  5646. AddDependency(interfaceEntry.mInterfaceType, typeInstance, BfDependencyMap::DependencyFlag_ImplementsInterface);
  5647. checkTypeInstance = checkTypeInstance->GetImplBaseType();
  5648. }
  5649. //for (auto& intefaceInst : typeInstance->mInterfaces)
  5650. if (typeInstance == mContext->mBfObjectType)
  5651. {
  5652. BF_ASSERT(typeInstance->mInterfaceMethodTable.size() == 1);
  5653. }
  5654. // Slot interfaces method blocks in vtable
  5655. {
  5656. int ifaceVirtIdx = 0;
  5657. std::unordered_map<BfTypeInstance*, BfTypeInterfaceEntry*> interfaceMap;
  5658. BfTypeInstance* checkType = typeInstance->GetImplBaseType();
  5659. while (checkType != NULL)
  5660. {
  5661. for (auto&& ifaceEntry : checkType->mInterfaces)
  5662. {
  5663. interfaceMap[ifaceEntry.mInterfaceType] = &ifaceEntry;
  5664. ifaceVirtIdx = std::max(ifaceVirtIdx, ifaceEntry.mStartVirtualIdx + ifaceEntry.mInterfaceType->mVirtualMethodTableSize);
  5665. }
  5666. checkType = checkType->GetImplBaseType();
  5667. }
  5668. for (int iFaceIdx = 0; iFaceIdx < (int)typeInstance->mInterfaces.size(); iFaceIdx++)
  5669. {
  5670. BfTypeInterfaceEntry& typeInterfaceInst = typeInstance->mInterfaces[iFaceIdx];
  5671. auto itr = interfaceMap.find(typeInterfaceInst.mInterfaceType);
  5672. if (itr != interfaceMap.end())
  5673. {
  5674. auto prevEntry = itr->second;
  5675. typeInterfaceInst.mStartVirtualIdx = prevEntry->mStartVirtualIdx;
  5676. }
  5677. else
  5678. {
  5679. typeInterfaceInst.mStartVirtualIdx = ifaceVirtIdx;
  5680. ifaceVirtIdx += typeInterfaceInst.mInterfaceType->mVirtualMethodTableSize;
  5681. interfaceMap[typeInterfaceInst.mInterfaceType] = &typeInterfaceInst;
  5682. }
  5683. }
  5684. }
  5685. auto isBoxed = typeInstance->IsBoxed();
  5686. BfLogSysM("Setting mTypeIncomplete = false on %p\n", typeInstance);
  5687. typeInstance->mNeedsMethodProcessing = false;
  5688. typeInstance->mTypeIncomplete = false;
  5689. auto checkBaseType = typeInstance->GetImplBaseType();
  5690. while (checkBaseType != NULL)
  5691. {
  5692. PopulateType(checkBaseType, BfPopulateType_Full_Force);
  5693. BF_ASSERT((!checkBaseType->IsIncomplete()) || (checkBaseType->mTypeFailed));
  5694. checkBaseType = checkBaseType->GetImplBaseType();
  5695. }
  5696. if ((mCompiler->mOptions.mHasVDataExtender) && (!typeInstance->IsInterface()))
  5697. {
  5698. // This is the vExt entry for this type instance
  5699. BfVirtualMethodEntry entry;
  5700. entry.mDeclaringMethod.mMethodNum = -1;
  5701. entry.mDeclaringMethod.mTypeInstance = typeInstance;
  5702. typeInstance->mVirtualMethodTable.push_back(entry);
  5703. typeInstance->mVirtualMethodTableSize++;
  5704. }
  5705. // Fill out to correct size
  5706. if (typeInstance->mHotTypeData != NULL)
  5707. {
  5708. //auto hotLatestVersionHead = typeInstance->mHotTypeData->GetLatestVersionHead();
  5709. int wantVTableSize = typeInstance->GetImplBaseVTableSize() + (int)typeInstance->mHotTypeData->mVTableEntries.size();
  5710. while ((int)typeInstance->mVirtualMethodTable.size() < wantVTableSize)
  5711. {
  5712. typeInstance->mVirtualMethodTable.push_back(BfVirtualMethodEntry());
  5713. typeInstance->mVirtualMethodTableSize++;
  5714. }
  5715. }
  5716. BfAmbiguityContext ambiguityContext;
  5717. ambiguityContext.mTypeInstance = typeInstance;
  5718. ambiguityContext.mModule = this;
  5719. ambiguityContext.mIsProjectSpecific = false;
  5720. bool wantsOnDemandMethods = false;
  5721. //TODO: Testing having interface methods be "on demand"...
  5722. //if (!typeInstance->IsInterface())
  5723. //
  5724. {
  5725. if ((typeInstance->IsSpecializedType()) || (typeInstance->IsUnspecializedTypeVariation()))
  5726. wantsOnDemandMethods = true;
  5727. else if ((mCompiler->mOptions.mCompileOnDemandKind != BfCompileOnDemandKind_AlwaysInclude) &&
  5728. (!typeInstance->IsUnspecializedTypeVariation()))
  5729. {
  5730. //if (typeDef->mName->ToString() != "AttributeUsageAttribute")
  5731. auto attributeDef = mCompiler->mAttributeTypeDef;
  5732. auto attributeType = mContext->mUnreifiedModule->ResolveTypeDef(attributeDef, BfPopulateType_Identity)->ToTypeInstance();
  5733. if (!TypeIsSubTypeOf(mCurTypeInstance, attributeType, false))
  5734. {
  5735. wantsOnDemandMethods = true;
  5736. }
  5737. }
  5738. }
  5739. if (TypeIsSubTypeOf(typeInstance, mCompiler->mAttributeTypeDef))
  5740. wantsOnDemandMethods = false;
  5741. if ((mCompiler->mResolvePassData != NULL) && (!mCompiler->mResolvePassData->mEmitEmbedEntries.IsEmpty()) && (typeInstance->IsSpecializedType()))
  5742. {
  5743. bool isCurrentEntry = false;
  5744. auto _CheckEntry = [&](BfTypeDef* typeDef)
  5745. {
  5746. auto parser = typeDef->mTypeDeclaration->GetParser();
  5747. if (parser != NULL)
  5748. if (mCompiler->mResolvePassData->GetSourceClassifier(parser) != NULL)
  5749. isCurrentEntry = true;
  5750. };
  5751. _CheckEntry(typeInstance->mTypeDef);
  5752. for (auto& partial : typeInstance->mTypeDef->mPartials)
  5753. _CheckEntry(partial);
  5754. if (isCurrentEntry)
  5755. {
  5756. String typeName = TypeToString(typeInstance, BfTypeNameFlag_AddProjectName);
  5757. if (mCompiler->mResolvePassData->mEmitEmbedEntries.ContainsKey(typeName))
  5758. {
  5759. wantsOnDemandMethods = false;
  5760. }
  5761. }
  5762. }
  5763. //bool allDeclsRequired = (mIsReified) && (mCompiler->mOptions.mEmitDebugInfo) && ();
  5764. bool allDeclsRequired = false;
  5765. //if ((mIsReified) && (mCompiler->mOptions.mEmitDebugInfo) && (!mCompiler->mWantsDeferMethodDecls))
  5766. // if ((mIsReified) && (mCompiler->mOptions.mEmitDebugInfo))
  5767. // {
  5768. // allDeclsRequired = true;
  5769. // }
  5770. HashSet<String> ifaceMethodNameSet;
  5771. if (wantsOnDemandMethods)
  5772. {
  5773. for (int iFaceIdx = newIntefaceStartIdx; iFaceIdx < (int)typeInstance->mInterfaces.size(); iFaceIdx++)
  5774. {
  5775. BfTypeInterfaceEntry& typeInterfaceInst = typeInstance->mInterfaces[iFaceIdx];
  5776. for (auto checkMethodDef : typeInterfaceInst.mInterfaceType->mTypeDef->mMethods)
  5777. {
  5778. ifaceMethodNameSet.Add(checkMethodDef->mName);
  5779. }
  5780. }
  5781. }
  5782. bool isFailedType = mCurTypeInstance->mTypeFailed;
  5783. if (auto genericTypeInst = mCurTypeInstance->ToGenericTypeInstance())
  5784. {
  5785. if (genericTypeInst->mGenericTypeInfo->mHadValidateErrors)
  5786. isFailedType = true;
  5787. }
  5788. bool typeOptionsIncludeAll = false;
  5789. bool typeOptionsIncludeFiltered = false;
  5790. if (typeOptions != NULL)
  5791. {
  5792. typeOptionsIncludeAll = typeOptions->Apply(typeOptionsIncludeAll, BfOptionFlags_ReflectAlwaysIncludeAll);
  5793. typeOptionsIncludeFiltered = typeOptions->Apply(typeOptionsIncludeAll, BfOptionFlags_ReflectAlwaysIncludeFiltered);
  5794. }
  5795. // Generate all methods. Pass 1
  5796. for (auto methodDef : typeDef->mMethods)
  5797. {
  5798. auto methodInstanceGroup = &typeInstance->mMethodInstanceGroups[methodDef->mIdx];
  5799. if (typeOptions != NULL)
  5800. {
  5801. BfOptionFlags optionFlags = BfOptionFlags_ReflectNonStaticMethods;
  5802. if (methodDef->mMethodType == BfMethodType_Ctor)
  5803. optionFlags = BfOptionFlags_ReflectConstructors;
  5804. else if (methodDef->mIsStatic)
  5805. optionFlags = BfOptionFlags_ReflectStaticMethods;
  5806. methodInstanceGroup->mExplicitlyReflected = typeOptions->Apply(false, optionFlags);
  5807. methodInstanceGroup->mExplicitlyReflected = ApplyTypeOptionMethodFilters(methodInstanceGroup->mExplicitlyReflected, methodDef, typeOptions);
  5808. }
  5809. if ((typeInstance->mCustomAttributes != NULL) && (typeInstance->mCustomAttributes->Contains(mCompiler->mReflectAttributeTypeDef)))
  5810. methodInstanceGroup->mExplicitlyReflected = true;
  5811. if (methodInstanceGroup->mOnDemandKind == BfMethodOnDemandKind_AlwaysInclude)
  5812. continue;
  5813. if (methodInstanceGroup->mOnDemandKind == BfMethodOnDemandKind_InWorkList)
  5814. continue;
  5815. if (methodInstanceGroup->mOnDemandKind == BfMethodOnDemandKind_Referenced)
  5816. continue;
  5817. if (isFailedType)
  5818. {
  5819. // We don't want method decls from failed generic types to clog up our type system
  5820. continue;
  5821. }
  5822. BF_ASSERT((methodInstanceGroup->mOnDemandKind == BfMethodOnDemandKind_NotSet) ||
  5823. (methodInstanceGroup->mOnDemandKind == BfMethodOnDemandKind_Decl_AwaitingDecl) ||
  5824. (methodInstanceGroup->mOnDemandKind == BfMethodOnDemandKind_Decl_AwaitingReference));
  5825. if ((isBoxed) && (!methodDef->mIsVirtual))
  5826. {
  5827. if (methodDef->mIsStatic)
  5828. continue;
  5829. bool boxedRequired = false;
  5830. if (((methodDef->mMethodType == BfMethodType_Ctor) && (methodDef->mParams.size() == 0)) ||
  5831. (methodDef->mMethodType == BfMethodType_Dtor) ||
  5832. ((methodDef->mName == BF_METHODNAME_MARKMEMBERS) || (methodDef->mName == BF_METHODNAME_MARKMEMBERS_STATIC) || (methodDef->mName == BF_METHODNAME_INVOKE) || (methodDef->mName == BF_METHODNAME_DYNAMICCAST)) ||
  5833. (methodDef->mGenericParams.size() != 0))
  5834. boxedRequired = true;
  5835. if (!boxedRequired)
  5836. {
  5837. if (wantsOnDemandMethods)
  5838. {
  5839. methodInstanceGroup->mOnDemandKind = BfMethodOnDemandKind_NoDecl_AwaitingReference;
  5840. mOnDemandMethodCount++;
  5841. }
  5842. continue;
  5843. }
  5844. }
  5845. if (methodDef->mMethodType == BfMethodType_Ignore)
  5846. continue;
  5847. if ((methodDef->mName == BF_METHODNAME_DYNAMICCAST) && (typeInstance->IsValueType()))
  5848. continue; // This is just a placeholder for boxed types
  5849. bool doAlwaysInclude = false;
  5850. if (wantsOnDemandMethods)
  5851. {
  5852. bool implRequired = false;
  5853. bool declRequired = false;
  5854. if ((!typeInstance->IsGenericTypeInstance()) && (methodDef->mGenericParams.IsEmpty()))
  5855. {
  5856. // For non-generic methods, declare all methods. This is useful for debug info.
  5857. declRequired = true;
  5858. }
  5859. if (methodDef->mMethodType == BfMethodType_CtorNoBody)
  5860. declRequired = true;
  5861. if ((methodDef->mMethodType == BfMethodType_Ctor) && (methodDef->mIsOverride))
  5862. {
  5863. // From extension
  5864. implRequired = true;
  5865. }
  5866. if ((methodDef->mIsStatic) &&
  5867. ((methodDef->mMethodType == BfMethodType_Dtor) || (methodDef->mMethodType == BfMethodType_Ctor)))
  5868. {
  5869. implRequired = true;
  5870. }
  5871. if (mCompiler->mOptions.mEnableRealtimeLeakCheck)
  5872. {
  5873. if ((methodDef->mName == BF_METHODNAME_MARKMEMBERS_STATIC) ||
  5874. (methodDef->mName == BF_METHODNAME_FIND_TLS_MEMBERS) ||
  5875. ((methodDef->mName == BF_METHODNAME_MARKMEMBERS) && (typeInstance->IsObject())))
  5876. implRequired = true;
  5877. }
  5878. BfAttributeDirective* attributes = NULL;
  5879. if (auto methodDeclaration = methodDef->GetMethodDeclaration())
  5880. attributes = methodDeclaration->mAttributes;
  5881. if (auto propertyDeclaration = methodDef->GetPropertyDeclaration())
  5882. attributes = propertyDeclaration->mAttributes;
  5883. while (attributes != NULL)
  5884. {
  5885. if (attributes->mAttributeTypeRef != NULL)
  5886. {
  5887. auto typeRefName = attributes->mAttributeTypeRef->ToCleanAttributeString();
  5888. if (typeRefName == "AlwaysInclude")
  5889. implRequired = true;
  5890. else if (typeRefName == "Export")
  5891. implRequired = true;
  5892. else if (typeRefName == "Test")
  5893. implRequired = true;
  5894. else
  5895. declRequired = true; // We need to create so we can check for AlwaysInclude in included attributes
  5896. }
  5897. attributes = attributes->mNextAttribute;
  5898. }
  5899. if ((mProject != NULL) && (mProject->mAlwaysIncludeAll) && (methodDef->mBody != NULL))
  5900. {
  5901. implRequired = true;
  5902. declRequired = true;
  5903. }
  5904. if (typeInstance->IncludeAllMethods())
  5905. implRequired = true;
  5906. // "AssumeInstantiated" also forces default ctor
  5907. if (((typeInstance->mAlwaysIncludeFlags & BfAlwaysIncludeFlag_AssumeInstantiated) != 0) &&
  5908. (methodDef->IsDefaultCtor()))
  5909. implRequired = true;
  5910. if ((typeOptionsIncludeAll || typeOptionsIncludeFiltered) && (ApplyTypeOptionMethodFilters(typeOptionsIncludeAll, methodDef, typeOptions)))
  5911. implRequired = true;
  5912. // if ((typeOptions != NULL) && (CheckTypeOptionMethodFilters(typeOptions, methodDef)))
  5913. // implRequired = true;
  5914. if (typeInstance->IsInterface())
  5915. declRequired = true;
  5916. if (methodDef->mIsVirtual)
  5917. declRequired = true;
  5918. if (!implRequired)
  5919. {
  5920. // Any interface with the same name causes us to not be on-demand
  5921. if (ifaceMethodNameSet.Contains(methodDef->mName))
  5922. declRequired = true;
  5923. }
  5924. // Is this strictly necessary? It will reduce our compilation speed in order to ensure methods are available for debug info
  5925. if (allDeclsRequired)
  5926. declRequired = true;
  5927. if (methodDef->mMethodDeclaration == NULL)
  5928. {
  5929. // Internal methods don't need decls
  5930. if ((methodDef->mName == BF_METHODNAME_DEFAULT_EQUALS) ||
  5931. (methodDef->mName == BF_METHODNAME_DEFAULT_STRICT_EQUALS))
  5932. declRequired = false;
  5933. }
  5934. if (methodDef->mMethodType == BfMethodType_Init)
  5935. {
  5936. declRequired = false;
  5937. implRequired = false;
  5938. }
  5939. if (!implRequired)
  5940. {
  5941. if (methodInstanceGroup->mOnDemandKind == BfMethodOnDemandKind_NotSet)
  5942. {
  5943. if (!mIsScratchModule)
  5944. mOnDemandMethodCount++;
  5945. }
  5946. if (!declRequired)
  5947. {
  5948. if (methodInstanceGroup->mOnDemandKind == BfMethodOnDemandKind_NotSet)
  5949. methodInstanceGroup->mOnDemandKind = BfMethodOnDemandKind_NoDecl_AwaitingReference;
  5950. continue;
  5951. }
  5952. else
  5953. {
  5954. if (methodInstanceGroup->mOnDemandKind == BfMethodOnDemandKind_NotSet)
  5955. methodInstanceGroup->mOnDemandKind = BfMethodOnDemandKind_Decl_AwaitingDecl;
  5956. }
  5957. VerifyOnDemandMethods();
  5958. }
  5959. else
  5960. {
  5961. doAlwaysInclude = true;
  5962. }
  5963. }
  5964. else
  5965. doAlwaysInclude = true;
  5966. if (doAlwaysInclude)
  5967. {
  5968. bool wasDeclared = (methodInstanceGroup->mOnDemandKind == BfMethodOnDemandKind_Decl_AwaitingDecl) ||
  5969. (methodInstanceGroup->mOnDemandKind == BfMethodOnDemandKind_Decl_AwaitingReference);
  5970. methodInstanceGroup->mOnDemandKind = BfMethodOnDemandKind_AlwaysInclude;
  5971. if (wasDeclared)
  5972. {
  5973. if (!mIsScratchModule)
  5974. mOnDemandMethodCount--;
  5975. if ((methodInstanceGroup->mDefault != NULL) && (!methodInstanceGroup->mDefault->mMethodDef->mIsAbstract))
  5976. AddMethodToWorkList(methodInstanceGroup->mDefault);
  5977. }
  5978. }
  5979. }
  5980. BF_ASSERT_REL(typeInstance->mDefineState < BfTypeDefineState_DefinedAndMethodsSlotted);
  5981. BfLogSysM("Starting DoTypeInstanceMethodProcessing %p GetMethodInstance pass. OnDemandMethods: %d\n", typeInstance, mOnDemandMethodCount);
  5982. // Def passes. First non-overrides then overrides (for in-place overrides in methods)
  5983. for (int pass = 0; pass < 2; pass++)
  5984. {
  5985. for (auto methodDef : typeDef->mMethods)
  5986. {
  5987. if ((pass == 1) != (methodDef->mIsOverride))
  5988. continue;
  5989. bool doGetMethodInstance = true;
  5990. auto methodInstanceGroup = &typeInstance->mMethodInstanceGroups[methodDef->mIdx];
  5991. if ((methodInstanceGroup->mOnDemandKind != BfMethodOnDemandKind_AlwaysInclude) &&
  5992. (methodInstanceGroup->mOnDemandKind != BfMethodOnDemandKind_Decl_AwaitingDecl))
  5993. {
  5994. BfLogSysM("Skipping GetMethodInstance on MethodDef: %p OnDemandKind: %d\n", methodDef, methodInstanceGroup->mOnDemandKind);
  5995. doGetMethodInstance = false;
  5996. }
  5997. if (methodDef->mMethodType == BfMethodType_Init)
  5998. doGetMethodInstance = false;
  5999. BfMethodInstance* methodInstance = NULL;
  6000. if (doGetMethodInstance)
  6001. {
  6002. int prevWorklistSize = (int)mContext->mMethodWorkList.size();
  6003. auto flags = ((methodDef->mGenericParams.size() != 0) || (typeInstance->IsUnspecializedType())) ? BfGetMethodInstanceFlag_UnspecializedPass : BfGetMethodInstanceFlag_None;
  6004. if (methodInstanceGroup->mOnDemandKind != BfMethodOnDemandKind_AlwaysInclude)
  6005. flags = (BfGetMethodInstanceFlags)(flags | BfGetMethodInstanceFlag_MethodInstanceOnly);
  6006. auto moduleMethodInstance = GetMethodInstance(typeInstance, methodDef, BfTypeVector(), flags);
  6007. methodInstance = moduleMethodInstance.mMethodInstance;
  6008. if (methodInstance == NULL)
  6009. {
  6010. BF_ASSERT(typeInstance->IsGenericTypeInstance() && (typeInstance->mTypeDef->mIsCombinedPartial));
  6011. continue;
  6012. }
  6013. if ((!mCompiler->mIsResolveOnly) &&
  6014. ((methodInstanceGroup->mOnDemandKind == BfMethodOnDemandKind_Decl_AwaitingReference) || (!typeInstance->IsReified())))
  6015. {
  6016. bool forceMethodImpl = false;
  6017. BfCustomAttributes* customAttributes = methodInstance->GetCustomAttributes();
  6018. if ((customAttributes != NULL) && (typeInstance->IsReified()))
  6019. {
  6020. for (auto& attr : customAttributes->mAttributes)
  6021. {
  6022. auto attrTypeInst = attr.mType->ToTypeInstance();
  6023. auto attrCustomAttributes = attrTypeInst->mCustomAttributes;
  6024. if (attrCustomAttributes == NULL)
  6025. continue;
  6026. for (auto& attrAttr : attrCustomAttributes->mAttributes)
  6027. {
  6028. if (attrAttr.mType->ToTypeInstance()->IsInstanceOf(mCompiler->mAttributeUsageAttributeTypeDef))
  6029. {
  6030. // Check for Flags arg
  6031. if (attrAttr.mCtorArgs.size() < 2)
  6032. continue;
  6033. auto constant = attrTypeInst->mConstHolder->GetConstant(attrAttr.mCtorArgs[1]);
  6034. if (constant == NULL)
  6035. continue;
  6036. if (constant->mTypeCode == BfTypeCode_Boolean)
  6037. continue;
  6038. if ((constant->mInt8 & BfCustomAttributeFlags_AlwaysIncludeTarget) != 0)
  6039. forceMethodImpl = true;
  6040. if (attrTypeInst->mAttributeData == NULL)
  6041. PopulateType(attrTypeInst);
  6042. BF_ASSERT(attrTypeInst->mAttributeData != NULL);
  6043. if (attrTypeInst->mAttributeData != NULL)
  6044. {
  6045. if ((attrTypeInst->mAttributeData->mAlwaysIncludeUser & BfAlwaysIncludeFlag_IncludeAllMethods) != 0)
  6046. forceMethodImpl = true;
  6047. // "AssumeInstantiated" also forces default ctor
  6048. if (((attrTypeInst->mAttributeData->mAlwaysIncludeUser & BfAlwaysIncludeFlag_AssumeInstantiated) != 0) &&
  6049. (methodDef->mMethodType == BfMethodType_Ctor) && (methodDef->mParams.IsEmpty()))
  6050. forceMethodImpl = true;
  6051. }
  6052. }
  6053. }
  6054. }
  6055. }
  6056. if (methodInstance->mMethodDef->mDeclaringType->mProject->mTargetType == BfTargetType_BeefTest)
  6057. {
  6058. if ((customAttributes != NULL) && (customAttributes->Contains(mCompiler->mTestAttributeTypeDef)))
  6059. {
  6060. forceMethodImpl = true;
  6061. }
  6062. }
  6063. if (forceMethodImpl)
  6064. {
  6065. if (!typeInstance->IsReified())
  6066. mContext->mScratchModule->PopulateType(typeInstance, BfPopulateType_Data);
  6067. // Reify method
  6068. mContext->mScratchModule->GetMethodInstance(typeInstance, methodDef, BfTypeVector());
  6069. BF_ASSERT(methodInstanceGroup->mOnDemandKind != BfMethodOnDemandKind_Decl_AwaitingReference);
  6070. }
  6071. }
  6072. }
  6073. else
  6074. {
  6075. methodInstance = methodInstanceGroup->mDefault;
  6076. if (methodInstance == NULL)
  6077. continue;
  6078. }
  6079. bool methodUsedVirtually = false;
  6080. if (typeInstance->IsInterface())
  6081. {
  6082. if ((!methodDef->mIsConcrete) && (!methodDef->mIsStatic) && (!methodInstance->HasSelf()))
  6083. SlotInterfaceMethod(methodInstance);
  6084. }
  6085. else if (!methodDef->IsEmptyPartial())
  6086. {
  6087. methodUsedVirtually = SlotVirtualMethod(methodInstance, &ambiguityContext);
  6088. }
  6089. // This is important for reducing latency of autocomplete popup, but it's important we don't allow the autocomplete
  6090. // thread to cause any reentry issues by re-populating a type at an "inopportune time". We do allow certain
  6091. // reentries in PopulateType, but not when we're resolving fields (for example)
  6092. if ((mContext->mFieldResolveReentrys.size() == 0) && (!mContext->mResolvingVarField))
  6093. {
  6094. disableYield.Release();
  6095. mContext->CheckLockYield();
  6096. disableYield.Acquire();
  6097. }
  6098. }
  6099. }
  6100. BF_ASSERT(typeInstance->mVirtualMethodTable.size() == typeInstance->mVirtualMethodTableSize);
  6101. if ((isBoxed) && (!typeInstance->IsUnspecializedTypeVariation()))
  6102. {
  6103. // Any interface method that can be called virtually via an interface pointer needs to go into the boxed type
  6104. auto underlyingType = typeInstance->GetUnderlyingType();
  6105. BfTypeInstance* underlyingTypeInstance;
  6106. if (underlyingType->IsPrimitiveType())
  6107. underlyingTypeInstance = GetPrimitiveStructType(((BfPrimitiveType*)underlyingType)->mTypeDef->mTypeCode);
  6108. else
  6109. underlyingTypeInstance = underlyingType->ToTypeInstance();
  6110. if (underlyingTypeInstance != NULL)
  6111. {
  6112. PopulateType(underlyingTypeInstance, BfPopulateType_Full_Force);
  6113. for (int ifaceIdx = 0; ifaceIdx < (int)underlyingTypeInstance->mInterfaces.size(); ifaceIdx++)
  6114. {
  6115. auto& underlyingIFaceTypeInst = underlyingTypeInstance->mInterfaces[ifaceIdx];
  6116. auto& boxedIFaceTypeInst = typeInstance->mInterfaces[ifaceIdx];
  6117. BF_ASSERT(underlyingIFaceTypeInst.mInterfaceType == boxedIFaceTypeInst.mInterfaceType);
  6118. auto ifaceInst = underlyingIFaceTypeInst.mInterfaceType;
  6119. int startIdx = underlyingIFaceTypeInst.mStartInterfaceTableIdx;
  6120. int boxedStartIdx = boxedIFaceTypeInst.mStartInterfaceTableIdx;
  6121. int iMethodCount = (int)ifaceInst->mMethodInstanceGroups.size();
  6122. for (int iMethodIdx = 0; iMethodIdx < iMethodCount; iMethodIdx++)
  6123. {
  6124. auto matchedMethodRef = &underlyingTypeInstance->mInterfaceMethodTable[iMethodIdx + startIdx].mMethodRef;
  6125. auto boxedMatchedMethodRef = &typeInstance->mInterfaceMethodTable[iMethodIdx + boxedStartIdx].mMethodRef;
  6126. BfMethodInstance* matchedMethod = *matchedMethodRef;
  6127. auto ifaceMethodInst = ifaceInst->mMethodInstanceGroups[iMethodIdx].mDefault;
  6128. if (ifaceMethodInst->mVirtualTableIdx != -1)
  6129. {
  6130. if (matchedMethod == NULL)
  6131. {
  6132. // Assert on base type?
  6133. //AssertErrorState();
  6134. }
  6135. else
  6136. {
  6137. auto matchedMethodDef = matchedMethod->mMethodDef;
  6138. if (!matchedMethod->mIsForeignMethodDef)
  6139. {
  6140. BfMethodInstanceGroup* boxedMethodInstanceGroup = &typeInstance->mMethodInstanceGroups[matchedMethod->mMethodDef->mIdx];
  6141. if (boxedMethodInstanceGroup->mOnDemandKind == BfMethodOnDemandKind_NoDecl_AwaitingReference)
  6142. {
  6143. boxedMethodInstanceGroup->mOnDemandKind = BfMethodOnDemandKind_Decl_AwaitingDecl;
  6144. VerifyOnDemandMethods();
  6145. }
  6146. }
  6147. auto methodFlags = matchedMethod->mIsForeignMethodDef ? BfGetMethodInstanceFlag_ForeignMethodDef : BfGetMethodInstanceFlag_None;
  6148. methodFlags = (BfGetMethodInstanceFlags)(methodFlags | BfGetMethodInstanceFlag_MethodInstanceOnly);
  6149. auto moduleMethodInstance = GetMethodInstance(typeInstance, matchedMethodDef, BfTypeVector(),
  6150. methodFlags,
  6151. matchedMethod->GetForeignType());
  6152. auto methodInstance = moduleMethodInstance.mMethodInstance;
  6153. UniqueSlotVirtualMethod(methodInstance);
  6154. *boxedMatchedMethodRef = methodInstance;
  6155. }
  6156. }
  6157. }
  6158. }
  6159. }
  6160. }
  6161. if (typeInstance->mHotTypeData != NULL)
  6162. {
  6163. auto latestVersion = typeInstance->mHotTypeData->GetLatestVersion();
  6164. auto latestVersionHead = typeInstance->mHotTypeData->GetLatestVersionHead();
  6165. if (typeInstance->mHotTypeData->mVTableOrigLength != -1)
  6166. {
  6167. bool hasSlotError = false;
  6168. BF_ASSERT(mCompiler->IsHotCompile());
  6169. //typeInstance->mHotTypeData->mDirty = true;
  6170. //Val128 vtHash;
  6171. Array<int> ifaceMapping;
  6172. ifaceMapping.Resize(latestVersionHead->mInterfaceMapping.size());
  6173. typeInstance->CalcHotVirtualData(&ifaceMapping);
  6174. // Hot swapping allows for interfaces to be added to types or removed from types, but it doesn't allow
  6175. // interfaces to be added when the slot number has already been used -- even if the interface using
  6176. // that slot has been removed.
  6177. for (int slotIdx = 0; slotIdx < (int)ifaceMapping.size(); slotIdx++)
  6178. {
  6179. int newId = ifaceMapping[slotIdx];
  6180. int oldId = 0;
  6181. if (slotIdx < (int)latestVersionHead->mInterfaceMapping.size())
  6182. oldId = latestVersionHead->mInterfaceMapping[slotIdx];
  6183. if ((newId != oldId) && (newId != 0) && (oldId != 0))
  6184. {
  6185. String interfaceName;
  6186. for (auto iface : typeInstance->mInterfaces)
  6187. {
  6188. if (iface.mInterfaceType->mTypeId == newId)
  6189. interfaceName = TypeToString(iface.mInterfaceType);
  6190. }
  6191. Warn(0, StrFormat("Hot swap detected resolvable interface slot collision with '%s'.", interfaceName.c_str()), typeDef->mTypeDeclaration);
  6192. BF_ASSERT(latestVersion != latestVersionHead);
  6193. if (!hasSlotError)
  6194. {
  6195. latestVersion->mInterfaceMapping = ifaceMapping;
  6196. }
  6197. hasSlotError = true;
  6198. }
  6199. else if (hasSlotError)
  6200. {
  6201. if (oldId != 0)
  6202. latestVersion->mInterfaceMapping[slotIdx] = oldId;
  6203. }
  6204. if (oldId != 0)
  6205. ifaceMapping[slotIdx] = oldId;
  6206. }
  6207. latestVersionHead->mInterfaceMapping = ifaceMapping;
  6208. if (hasSlotError)
  6209. mCompiler->mHotState->mPendingFailedSlottings.Add(typeInstance->mTypeId);
  6210. else
  6211. mCompiler->mHotState->mPendingFailedSlottings.Remove(typeInstance->mTypeId);
  6212. }
  6213. }
  6214. if ((typeInstance->IsInterface()) && (!typeInstance->IsUnspecializedType()) && (typeInstance->mIsReified) && (typeInstance->mSlotNum == -1) && (mCompiler->IsHotCompile()))
  6215. {
  6216. mCompiler->mHotState->mHasNewInterfaceTypes = true;
  6217. }
  6218. if ((!typeInstance->IsInterface()) && (!typeInstance->IsUnspecializedTypeVariation()) && (!isBoxed) && (!isFailedType))
  6219. {
  6220. if (!typeInstance->mTypeDef->mIsAbstract)
  6221. {
  6222. for (int methodIdx = 0; methodIdx < (int) typeInstance->mVirtualMethodTable.size(); methodIdx++)
  6223. {
  6224. auto& methodRef = typeInstance->mVirtualMethodTable[methodIdx].mImplementingMethod;
  6225. if (methodRef.mMethodNum == -1)
  6226. {
  6227. BF_ASSERT(mCompiler->mOptions.mHasVDataExtender);
  6228. if (methodRef.mTypeInstance == typeInstance)
  6229. {
  6230. if (typeInstance->GetImplBaseType() != NULL)
  6231. BF_ASSERT(methodIdx == (int)typeInstance->GetImplBaseType()->mVirtualMethodTableSize);
  6232. }
  6233. continue;
  6234. }
  6235. auto methodInstance = (BfMethodInstance*)methodRef;
  6236. if ((methodInstance != NULL) && (methodInstance->mMethodDef->mIsAbstract))
  6237. {
  6238. if (methodInstance->mMethodDef->mIsAbstract)
  6239. {
  6240. if (typeInstance->mVirtualMethodTable[methodIdx].mDeclaringMethod.mTypeInstance == typeInstance)
  6241. {
  6242. Fail("Method is abstract but it is declared in non-abstract class", methodInstance->mMethodDef->GetRefNode());
  6243. }
  6244. else if (!typeInstance->IsUnspecializedTypeVariation())
  6245. {
  6246. if (Fail(StrFormat("'%s' does not implement inherited abstract method '%s'", TypeToString(typeInstance).c_str(), MethodToString(methodInstance).c_str()), typeDef->mTypeDeclaration->mNameNode, true) != NULL)
  6247. mCompiler->mPassInstance->MoreInfo("Abstract method declared", methodInstance->mMethodDef->GetRefNode());
  6248. }
  6249. }
  6250. else
  6251. {
  6252. if (!typeInstance->IsUnspecializedType())
  6253. AssertErrorState();
  6254. }
  6255. }
  6256. }
  6257. }
  6258. std::unordered_set<String> missingIFaceMethodNames;
  6259. for (auto& ifaceTypeInst : typeInstance->mInterfaces)
  6260. {
  6261. auto ifaceInst = ifaceTypeInst.mInterfaceType;
  6262. int startIdx = ifaceTypeInst.mStartInterfaceTableIdx;
  6263. int iMethodCount = (int)ifaceInst->mMethodInstanceGroups.size();
  6264. auto declTypeDef = ifaceTypeInst.mDeclaringType;
  6265. for (int iMethodIdx = 0; iMethodIdx < iMethodCount; iMethodIdx++)
  6266. {
  6267. auto matchedMethodRef = &typeInstance->mInterfaceMethodTable[iMethodIdx + startIdx].mMethodRef;
  6268. BfMethodInstance* matchedMethod = *matchedMethodRef;
  6269. auto ifaceMethodInst = ifaceInst->mMethodInstanceGroups[iMethodIdx].mDefault;
  6270. if ((matchedMethod == NULL) && (ifaceMethodInst != NULL))
  6271. {
  6272. missingIFaceMethodNames.insert(ifaceMethodInst->mMethodDef->mName);
  6273. }
  6274. }
  6275. }
  6276. if (!missingIFaceMethodNames.empty())
  6277. {
  6278. // Attempt to find matching entries in base types
  6279. ambiguityContext.mIsReslotting = true;
  6280. auto checkType = typeInstance->GetImplBaseType();
  6281. while (checkType != NULL)
  6282. {
  6283. for (auto& methodGroup : checkType->mMethodInstanceGroups)
  6284. {
  6285. auto methodInstance = methodGroup.mDefault;
  6286. if (methodInstance != NULL)
  6287. {
  6288. if ((methodInstance->mMethodDef->mProtection != BfProtection_Private) &&
  6289. (!methodInstance->mMethodDef->mIsOverride) &&
  6290. (missingIFaceMethodNames.find(methodInstance->mMethodDef->mName) != missingIFaceMethodNames.end()))
  6291. {
  6292. SlotVirtualMethod(methodInstance, &ambiguityContext);
  6293. }
  6294. }
  6295. }
  6296. checkType = checkType->GetImplBaseType();
  6297. }
  6298. }
  6299. for (auto& ifaceTypeInst : typeInstance->mInterfaces)
  6300. {
  6301. auto ifaceInst = ifaceTypeInst.mInterfaceType;
  6302. int startIdx = ifaceTypeInst.mStartInterfaceTableIdx;
  6303. int iMethodCount = (int)ifaceInst->mMethodInstanceGroups.size();
  6304. auto declTypeDef = ifaceTypeInst.mDeclaringType;
  6305. for (int iMethodIdx = 0; iMethodIdx < iMethodCount; iMethodIdx++)
  6306. {
  6307. auto matchedMethodRef = &typeInstance->mInterfaceMethodTable[iMethodIdx + startIdx].mMethodRef;
  6308. BfMethodInstance* matchedMethod = *matchedMethodRef;
  6309. auto ifaceMethodInst = ifaceInst->mMethodInstanceGroups[iMethodIdx].mDefault;
  6310. if (ifaceMethodInst == NULL)
  6311. continue;
  6312. auto iReturnType = ifaceMethodInst->mReturnType;
  6313. if (iReturnType->IsUnspecializedTypeVariation())
  6314. {
  6315. BfType* resolvedType = ResolveGenericType(iReturnType, NULL, NULL, mCurTypeInstance);
  6316. if (resolvedType != NULL)
  6317. iReturnType = resolvedType;
  6318. else
  6319. iReturnType = typeInstance;
  6320. }
  6321. if (ifaceMethodInst->mMethodDef->mIsOverride)
  6322. continue; // Don't consider overrides here
  6323. // If we have "ProjA depends on LibBase", "ProjB depends on LibBase", then a type ClassC in LibBase implementing IFaceD,
  6324. // where IFaceD gets extended with MethodE in ProjA, an implementing MethodE is still required to exist on ClassC --
  6325. // the visibility is bidirectional. A type ClassF implementing IFaceD inside ProjB will not be required to implement
  6326. // MethodE, however
  6327. if ((!ifaceInst->IsTypeMemberAccessible(ifaceMethodInst->mMethodDef->mDeclaringType, ifaceTypeInst.mDeclaringType)) &&
  6328. (!ifaceInst->IsTypeMemberAccessible(ifaceTypeInst.mDeclaringType, ifaceMethodInst->mMethodDef->mDeclaringType)))
  6329. continue;
  6330. if (!ifaceInst->IsTypeMemberIncluded(ifaceMethodInst->mMethodDef->mDeclaringType, ifaceTypeInst.mDeclaringType))
  6331. continue;
  6332. bool hadMatch = matchedMethod != NULL;
  6333. bool hadPubFailure = false;
  6334. bool hadStaticFailure = false;
  6335. bool hadMutFailure = false;
  6336. if (hadMatch)
  6337. {
  6338. if ((matchedMethod->GetExplicitInterface() == NULL) && (matchedMethod->mMethodDef->mProtection != BfProtection_Public))
  6339. {
  6340. hadMatch = false;
  6341. hadPubFailure = true;
  6342. }
  6343. if (matchedMethod->mMethodDef->mIsStatic != ifaceMethodInst->mMethodDef->mIsStatic)
  6344. {
  6345. hadMatch = false;
  6346. hadStaticFailure = true;
  6347. }
  6348. if (ifaceMethodInst->mVirtualTableIdx != -1)
  6349. {
  6350. if (matchedMethod->mReturnType != iReturnType)
  6351. hadMatch = false;
  6352. }
  6353. else
  6354. {
  6355. // Concrete/generic
  6356. if (!CanCast(GetFakeTypedValue(matchedMethod->mReturnType), iReturnType))
  6357. hadMatch = false;
  6358. }
  6359. // If we have mExplicitInterface set then we already gave a mut error (if needed)
  6360. if ((typeInstance->IsValueType()) && (matchedMethod->GetExplicitInterface() == NULL) &&
  6361. (matchedMethod->mMethodDef->mIsMutating) && (!ifaceMethodInst->mMethodDef->mIsMutating))
  6362. {
  6363. hadMutFailure = true;
  6364. hadMatch = false;
  6365. }
  6366. }
  6367. if (!hadMatch)
  6368. {
  6369. if (!typeInstance->IsUnspecializedTypeVariation())
  6370. {
  6371. auto bestMethodInst = ifaceMethodInst;
  6372. auto bestInterface = ifaceInst;
  6373. if (matchedMethod == NULL)
  6374. {
  6375. bool searchFailed = false;
  6376. for (auto& checkIFaceTypeInst : typeInstance->mInterfaces)
  6377. {
  6378. auto checkIFaceInst = checkIFaceTypeInst.mInterfaceType;
  6379. int checkStartIdx = checkIFaceTypeInst.mStartInterfaceTableIdx;
  6380. int checkIMethodCount = (int)checkIFaceInst->mMethodInstanceGroups.size();
  6381. for (int checkIMethodIdx = 0; checkIMethodIdx < checkIMethodCount; checkIMethodIdx++)
  6382. {
  6383. auto checkIFaceMethodInst = checkIFaceInst->mMethodInstanceGroups[checkIMethodIdx].mDefault;
  6384. if ((checkIFaceMethodInst != NULL) && (checkIFaceMethodInst->mMethodDef->mIsOverride))
  6385. {
  6386. bool cmpResult = CompareMethodSignatures(checkIFaceMethodInst, ifaceMethodInst);
  6387. if (cmpResult)
  6388. {
  6389. bool isBetter = TypeIsSubTypeOf(checkIFaceInst, bestInterface);
  6390. bool isWorse = TypeIsSubTypeOf(bestInterface, checkIFaceInst);
  6391. if (isBetter == isWorse)
  6392. {
  6393. CompareDeclTypes(NULL, checkIFaceMethodInst->mMethodDef->mDeclaringType, bestMethodInst->mMethodDef->mDeclaringType, isBetter, isWorse);
  6394. }
  6395. if ((isBetter) && (!isWorse))
  6396. {
  6397. bestInterface = checkIFaceInst;
  6398. bestMethodInst = checkIFaceMethodInst;
  6399. }
  6400. else if (isBetter == isWorse)
  6401. {
  6402. if (!searchFailed)
  6403. {
  6404. searchFailed = true;
  6405. auto error = Fail(StrFormat("There is no most-specific default implementation of '%s'", MethodToString(ifaceMethodInst).c_str()), declTypeDef->mTypeDeclaration->mNameNode);
  6406. if (error != NULL)
  6407. {
  6408. mCompiler->mPassInstance->MoreInfo(StrFormat("'%s' is a candidate",
  6409. MethodToString(bestMethodInst).c_str()), bestMethodInst->mMethodDef->GetRefNode());
  6410. mCompiler->mPassInstance->MoreInfo(StrFormat("'%s' is a candidate",
  6411. MethodToString(checkIFaceMethodInst).c_str()), checkIFaceMethodInst->mMethodDef->GetRefNode());
  6412. }
  6413. //candidate implementations include '%s' and '%s'",
  6414. //TypeToString(checkIFaceInst).c_str(), TypeToString(bestInterface).c_str()), );
  6415. }
  6416. }
  6417. }
  6418. }
  6419. }
  6420. }
  6421. if (bestMethodInst->mReturnType != ifaceMethodInst->mReturnType)
  6422. {
  6423. auto error = Fail(StrFormat("Default interface method '%s' cannot be used because it doesn't have the return type '%s'",
  6424. MethodToString(bestMethodInst).c_str(), TypeToString(ifaceMethodInst->mReturnType).c_str()), declTypeDef->mTypeDeclaration->mNameNode);
  6425. if (error != NULL)
  6426. {
  6427. mCompiler->mPassInstance->MoreInfo("See original method declaration", ifaceMethodInst->mMethodDef->GetRefNode());
  6428. mCompiler->mPassInstance->MoreInfo("See override method declaration", bestMethodInst->mMethodDef->GetRefNode());
  6429. }
  6430. }
  6431. }
  6432. bool hasDefaultImpl = bestMethodInst->mMethodDef->HasBody() || bestMethodInst->mMethodDef->mIsAbstract;
  6433. if ((hasDefaultImpl) && (matchedMethod == NULL))
  6434. {
  6435. auto methodDef = bestMethodInst->mMethodDef;
  6436. BfGetMethodInstanceFlags flags = (BfGetMethodInstanceFlags)(BfGetMethodInstanceFlag_ForeignMethodDef | BfGetMethodInstanceFlag_MethodInstanceOnly);
  6437. if ((methodDef->mGenericParams.size() != 0) || (typeInstance->IsUnspecializedType()))
  6438. flags = (BfGetMethodInstanceFlags)(flags | BfGetMethodInstanceFlag_UnspecializedPass);
  6439. auto methodInst = GetMethodInstance(typeInstance, methodDef, BfTypeVector(), flags, ifaceInst);
  6440. if (methodInst)
  6441. {
  6442. *matchedMethodRef = methodInst.mMethodInstance;
  6443. BfMethodInstance* newMethodInstance = methodInst.mMethodInstance;
  6444. BF_ASSERT(newMethodInstance->mIsForeignMethodDef);
  6445. if (newMethodInstance->mMethodInstanceGroup->mOnDemandKind == BfMethodOnDemandKind_Decl_AwaitingReference)
  6446. {
  6447. if (!mIsScratchModule)
  6448. mOnDemandMethodCount++;
  6449. }
  6450. continue;
  6451. }
  6452. }
  6453. if (typeInstance->IsBoxed())
  6454. {
  6455. if (ifaceMethodInst->mMethodDef->mIsStatic)
  6456. {
  6457. // Skip the statics, those can't be invoked
  6458. }
  6459. else
  6460. {
  6461. // The unboxed version should have had the same error
  6462. if (!typeInstance->GetUnderlyingType()->IsIncomplete())
  6463. AssertErrorState();
  6464. }
  6465. }
  6466. else if ((typeInstance->mRebuildFlags & BfTypeRebuildFlag_ConstEvalCancelled) != 0)
  6467. {
  6468. // It's possible const eval was supposed to generate this method. We're rebuilding the type anyway.
  6469. }
  6470. else
  6471. {
  6472. String ifaceMethodString;
  6473. ///
  6474. {
  6475. BfTypeState typeState;
  6476. typeState.mPrevState = mContext->mCurTypeState;
  6477. typeState.mForceActiveTypeDef = declTypeDef;
  6478. SetAndRestoreValue<BfTypeState*> prevTypeState(mContext->mCurTypeState, &typeState);
  6479. SetAndRestoreValue<BfMethodInstance*> prevMethodInstance(mCurMethodInstance, ifaceMethodInst);
  6480. ifaceMethodString = MethodToString(ifaceMethodInst, (BfMethodNameFlags)(BfMethodNameFlag_ResolveGenericParamNames | BfMethodNameFlag_IncludeReturnType));
  6481. }
  6482. BfTypeDeclaration* typeDecl = declTypeDef->mTypeDeclaration;
  6483. BfError* error = Fail(StrFormat("'%s' does not implement interface member '%s'", TypeToString(typeInstance).c_str(), ifaceMethodString.c_str()), typeDecl->mNameNode, true);
  6484. if ((matchedMethod != NULL) && (error != NULL))
  6485. {
  6486. String matchedMethodString = MethodToString(matchedMethod, (BfMethodNameFlags)(BfMethodNameFlag_ResolveGenericParamNames | BfMethodNameFlag_IncludeReturnType));
  6487. if (hadStaticFailure)
  6488. {
  6489. auto staticNodeRef = matchedMethod->mMethodDef->GetRefNode();
  6490. if (auto methodDecl = BfNodeDynCast<BfMethodDeclaration>(matchedMethod->mMethodDef->mMethodDeclaration))
  6491. if (methodDecl->mStaticSpecifier != NULL)
  6492. staticNodeRef = methodDecl->mStaticSpecifier;
  6493. if (matchedMethod->mMethodDef->mIsStatic)
  6494. mCompiler->mPassInstance->MoreInfo(StrFormat("'%s' cannot match because it's static",
  6495. matchedMethodString.c_str()), staticNodeRef);
  6496. else
  6497. mCompiler->mPassInstance->MoreInfo(StrFormat("'%s' cannot match because it's not static",
  6498. matchedMethodString.c_str()), staticNodeRef);
  6499. }
  6500. else if (hadPubFailure)
  6501. {
  6502. mCompiler->mPassInstance->MoreInfo(StrFormat("'%s' cannot match because it's not public",
  6503. matchedMethodString.c_str()), matchedMethod->mMethodDef->mReturnTypeRef);
  6504. }
  6505. else if (ifaceMethodInst->mReturnType->IsConcreteInterfaceType())
  6506. {
  6507. mCompiler->mPassInstance->MoreInfo(StrFormat("'%s' cannot match because it does not have a concrete return type that implements '%s'",
  6508. matchedMethodString.c_str(), TypeToString(ifaceMethodInst->mReturnType).c_str()), matchedMethod->mMethodDef->mReturnTypeRef);
  6509. }
  6510. else if (hadMutFailure)
  6511. {
  6512. mCompiler->mPassInstance->MoreInfo(StrFormat("'%s' cannot match because it's market as 'mut' but interface method does not allow it",
  6513. matchedMethodString.c_str()), matchedMethod->mMethodDef->GetMutNode());
  6514. mCompiler->mPassInstance->MoreInfo(StrFormat("Declare the interface method as 'mut' to allow matching 'mut' implementations"), ifaceMethodInst->mMethodDef->mMethodDeclaration);
  6515. }
  6516. else if (!matchedMethod->mReturnType->IsVar())
  6517. {
  6518. mCompiler->mPassInstance->MoreInfo(StrFormat("'%s' cannot match because it does not have the return type '%s'",
  6519. matchedMethodString.c_str(), TypeToString(ifaceMethodInst->mReturnType).c_str()), matchedMethod->mMethodDef->mReturnTypeRef);
  6520. if ((ifaceMethodInst->mVirtualTableIdx != -1) && (ifaceMethodInst->mReturnType->IsInterface()))
  6521. {
  6522. BfAstNode* refNode = ifaceMethodInst->mMethodDef->GetRefNode();
  6523. auto methodDecl = ifaceMethodInst->mMethodDef->GetMethodDeclaration();
  6524. if ((methodDecl != NULL) && (methodDecl->mVirtualSpecifier != NULL))
  6525. refNode = methodDecl->mVirtualSpecifier;
  6526. mCompiler->mPassInstance->MoreInfo("Declare the interface method as 'concrete' to allow matching concrete return values", refNode);
  6527. }
  6528. }
  6529. }
  6530. }
  6531. }
  6532. // Clear out the entry
  6533. *matchedMethodRef = BfMethodRef();
  6534. }
  6535. }
  6536. }
  6537. }
  6538. VerifyOnDemandMethods();
  6539. ambiguityContext.Finish();
  6540. CheckAddFailType();
  6541. typeInstance->mDefineState = BfTypeDefineState_DefinedAndMethodsSlotted;
  6542. mCompiler->mStats.mTypesPopulated++;
  6543. mCompiler->UpdateCompletion();
  6544. BF_ASSERT_REL(!typeInstance->mNeedsMethodProcessing);
  6545. BfLogSysM("Finished DoTypeInstanceMethodProcessing %p. OnDemandMethods: %d Virtual Size: %d InterfaceMethodTableSize: %d\n", typeInstance, mOnDemandMethodCount, typeInstance->mVirtualMethodTable.size(), typeInstance->mInterfaceMethodTable.size());
  6546. }
  6547. void BfModule::RebuildMethods(BfTypeInstance* typeInstance)
  6548. {
  6549. if (typeInstance->IsIncomplete())
  6550. return;
  6551. BfLogSysM("RebuildMethods setting mNeedsMethodProcessing=true on %p\n", typeInstance);
  6552. BF_ASSERT_REL(typeInstance->mDefineState != BfTypeDefineState_DefinedAndMethodsSlotting);
  6553. typeInstance->mNeedsMethodProcessing = true;
  6554. typeInstance->mDefineState = BfTypeDefineState_Defined;
  6555. typeInstance->mTypeIncomplete = true;
  6556. for (auto& methodInstanceGroup : typeInstance->mMethodInstanceGroups)
  6557. {
  6558. delete methodInstanceGroup.mDefault;
  6559. methodInstanceGroup.mDefault = NULL;
  6560. delete methodInstanceGroup.mMethodSpecializationMap;
  6561. methodInstanceGroup.mMethodSpecializationMap = NULL;
  6562. methodInstanceGroup.mOnDemandKind = BfMethodOnDemandKind_NotSet;
  6563. }
  6564. BfTypeProcessRequest* typeProcessRequest = mContext->mPopulateTypeWorkList.Alloc();
  6565. typeProcessRequest->mType = typeInstance;
  6566. BF_ASSERT(typeInstance->mContext == mContext);
  6567. mCompiler->mStats.mTypesQueued++;
  6568. mCompiler->UpdateCompletion();
  6569. }
  6570. BfModule* BfModule::GetModuleFor(BfType* type)
  6571. {
  6572. auto typeInst = type->ToTypeInstance();
  6573. if (typeInst == NULL)
  6574. return NULL;
  6575. return typeInst->mModule;
  6576. }
  6577. void BfModule::AddMethodToWorkList(BfMethodInstance* methodInstance)
  6578. {
  6579. BF_ASSERT(!methodInstance->mMethodDef->mIsAbstract);
  6580. if (methodInstance->IsSpecializedByAutoCompleteMethod())
  6581. return;
  6582. BF_ASSERT(mCompiler->mCompileState != BfCompiler::CompileState_VData);
  6583. if ((methodInstance->mIsReified) && (!methodInstance->mIsUnspecialized))
  6584. {
  6585. BF_ASSERT(mCompiler->mCompileState != BfCompiler::CompileState_Unreified);
  6586. }
  6587. if (methodInstance->IsOrInUnspecializedVariation())
  6588. {
  6589. return;
  6590. }
  6591. BF_ASSERT(!methodInstance->GetOwner()->IsUnspecializedTypeVariation());
  6592. BF_ASSERT(methodInstance->mMethodProcessRequest == NULL);
  6593. auto defaultMethod = methodInstance->mMethodInstanceGroup->mDefault;
  6594. if (defaultMethod != methodInstance)
  6595. {
  6596. BF_ASSERT(defaultMethod != NULL);
  6597. if (methodInstance->mMethodInstanceGroup->mOnDemandKind == BfMethodOnDemandKind_Decl_AwaitingReference)
  6598. {
  6599. if ((defaultMethod->mIsReified) && (!defaultMethod->mDeclModule->mIsModuleMutable))
  6600. {
  6601. defaultMethod->mDeclModule->PrepareForIRWriting(methodInstance->GetOwner());
  6602. }
  6603. AddMethodToWorkList(defaultMethod);
  6604. // This should put all the specialized methods in the worklist, including us
  6605. return;
  6606. }
  6607. }
  6608. if (methodInstance->mDeclModule != NULL)
  6609. {
  6610. if (methodInstance->mDeclModule != this)
  6611. {
  6612. methodInstance->mDeclModule->AddMethodToWorkList(methodInstance);
  6613. return;
  6614. }
  6615. }
  6616. else
  6617. {
  6618. auto module = GetOrCreateMethodModule(methodInstance);
  6619. methodInstance->mDeclModule = module;
  6620. BfIRValue func = CreateFunctionFrom(methodInstance, false, methodInstance->mAlwaysInline);
  6621. methodInstance->mIRFunction = func;
  6622. module->mFuncReferences[methodInstance] = func;
  6623. module->AddMethodToWorkList(methodInstance);
  6624. return;
  6625. }
  6626. if ((!methodInstance->mIRFunction) && (methodInstance->mIsReified) && (!methodInstance->mIsUnspecialized) &&
  6627. (methodInstance->GetImportCallKind() == BfImportCallKind_None))
  6628. {
  6629. if (!mIsModuleMutable)
  6630. PrepareForIRWriting(methodInstance->GetOwner());
  6631. SetAndRestoreValue<bool> prevIgnoreWrites(mBfIRBuilder->mIgnoreWrites, mWantsIRIgnoreWrites);
  6632. BfIRValue func = CreateFunctionFrom(methodInstance, false, methodInstance->mAlwaysInline);
  6633. if (func)
  6634. {
  6635. methodInstance->mIRFunction = func;
  6636. mFuncReferences[methodInstance] = func;
  6637. }
  6638. }
  6639. BF_ASSERT(methodInstance->mDeclModule == this);
  6640. if (defaultMethod == methodInstance)
  6641. {
  6642. if (methodInstance->mMethodInstanceGroup->mOnDemandKind != BfMethodOnDemandKind_AlwaysInclude)
  6643. {
  6644. auto owningModule = methodInstance->GetOwner()->GetModule();
  6645. BF_ASSERT(methodInstance->mMethodInstanceGroup->mOnDemandKind != BfMethodOnDemandKind_Referenced);
  6646. if (!mIsScratchModule)
  6647. {
  6648. auto onDemandModule = owningModule;
  6649. if (owningModule->mParentModule != NULL)
  6650. onDemandModule = owningModule->mParentModule;
  6651. owningModule->VerifyOnDemandMethods();
  6652. if (methodInstance->mMethodInstanceGroup->mOnDemandKind == BfMethodOnDemandKind_NotSet)
  6653. owningModule->mOnDemandMethodCount++;
  6654. BF_ASSERT(onDemandModule->mOnDemandMethodCount > 0);
  6655. VerifyOnDemandMethods();
  6656. }
  6657. methodInstance->mMethodInstanceGroup->mOnDemandKind = BfMethodOnDemandKind_InWorkList;
  6658. if (methodInstance->mMethodInstanceGroup->mMethodSpecializationMap != NULL)
  6659. {
  6660. for (auto& kv : *methodInstance->mMethodInstanceGroup->mMethodSpecializationMap)
  6661. {
  6662. auto specMethodInstance = kv.mValue;
  6663. if ((!specMethodInstance->mDeclModule->mIsModuleMutable) && (!specMethodInstance->mDeclModule->mReifyQueued))
  6664. {
  6665. specMethodInstance->mDeclModule->PrepareForIRWriting(specMethodInstance->GetOwner());
  6666. }
  6667. specMethodInstance->mDeclModule->AddMethodToWorkList(specMethodInstance);
  6668. }
  6669. }
  6670. }
  6671. }
  6672. else
  6673. {
  6674. BF_ASSERT(defaultMethod->mMethodInstanceGroup->IsImplemented());
  6675. }
  6676. BF_ASSERT(methodInstance->mDeclModule != NULL);
  6677. auto typeInstance = methodInstance->GetOwner();
  6678. BfMethodProcessRequest* methodProcessRequest = mContext->mMethodWorkList.Alloc();
  6679. if (mCompiler->mCompileState == BfCompiler::CompileState_Unreified)
  6680. {
  6681. if (methodInstance->mIsReified)
  6682. {
  6683. BfLogSysM("Marking method %d as unreified due to CompileState_Unreified\n", methodInstance);
  6684. methodInstance->mIsReified = false;
  6685. }
  6686. }
  6687. //BF_ASSERT(!methodInstance->mIsReified);
  6688. methodProcessRequest->mType = typeInstance;
  6689. methodProcessRequest->mMethodInstance = methodInstance;
  6690. methodProcessRequest->mRevision = typeInstance->mRevision;
  6691. methodProcessRequest->mFromModuleRebuildIdx = mRebuildIdx;
  6692. methodProcessRequest->mFromModule = this;
  6693. if ((!mCompiler->mIsResolveOnly) && (methodInstance->mIsReified))
  6694. {
  6695. if ((!mIsModuleMutable) && (!mIsScratchModule))
  6696. {
  6697. BF_ASSERT(!mGeneratesCode);
  6698. StartNewRevision(BfModule::RebuildKind_None);
  6699. }
  6700. BF_ASSERT(mIsModuleMutable || mReifyQueued);
  6701. }
  6702. BF_ASSERT((mBfIRBuilder != NULL) || (!methodInstance->mIsReified));
  6703. BfLogSysM("Adding to mMethodWorkList Module: %p IncompleteMethodCount: %d Type %p MethodInstance: %p Name:%s TypeRevision: %d ModuleRevision: %d ReqId:%d\n", this, mIncompleteMethodCount, typeInstance, methodInstance, methodInstance->mMethodDef->mName.c_str(), methodProcessRequest->mRevision, methodProcessRequest->mFromModuleRevision, methodProcessRequest->mReqId);
  6704. if (mAwaitingFinish)
  6705. {
  6706. BfLogSysM("Module: %p No longer awaiting finish\n", this);
  6707. mAwaitingFinish = false;
  6708. }
  6709. mCompiler->mStats.mMethodsQueued++;
  6710. mCompiler->UpdateCompletion();
  6711. mIncompleteMethodCount++;
  6712. if (methodInstance->GetNumGenericArguments() != 0)
  6713. mHasGenericMethods = true;
  6714. methodInstance->mMethodProcessRequest = methodProcessRequest;
  6715. }
  6716. BfArrayType* BfModule::CreateArrayType(BfType* resolvedType, int dimensions)
  6717. {
  6718. BF_ASSERT(!resolvedType->IsVar());
  6719. BF_ASSERT(!resolvedType->IsIntUnknown());
  6720. auto arrayTypeDef = mCompiler->GetArrayTypeDef(dimensions);
  6721. if (arrayTypeDef == NULL)
  6722. return NULL;
  6723. auto arrayType = mContext->mArrayTypePool.Get();
  6724. delete arrayType->mGenericTypeInfo;
  6725. arrayType->mGenericTypeInfo = new BfGenericTypeInfo();
  6726. arrayType->mContext = mContext;
  6727. arrayType->mTypeDef = arrayTypeDef;
  6728. arrayType->mDimensions = dimensions;
  6729. arrayType->mGenericTypeInfo->mTypeGenericArguments.clear();
  6730. arrayType->mGenericTypeInfo->mTypeGenericArguments.push_back(resolvedType);
  6731. auto resolvedArrayType = ResolveType(arrayType);
  6732. if (resolvedArrayType != arrayType)
  6733. {
  6734. arrayType->Dispose();
  6735. mContext->mArrayTypePool.GiveBack(arrayType);
  6736. }
  6737. return (BfArrayType*)resolvedArrayType;
  6738. }
  6739. BfSizedArrayType* BfModule::CreateSizedArrayType(BfType * resolvedType, int size)
  6740. {
  6741. BF_ASSERT(!resolvedType->IsVar());
  6742. auto arrayType = mContext->mSizedArrayTypePool.Get();
  6743. arrayType->mContext = mContext;
  6744. arrayType->mElementType = resolvedType;
  6745. arrayType->mElementCount = size;
  6746. auto resolvedArrayType = ResolveType(arrayType);
  6747. if (resolvedArrayType != arrayType)
  6748. mContext->mSizedArrayTypePool.GiveBack(arrayType);
  6749. return (BfSizedArrayType*)resolvedArrayType;
  6750. }
  6751. BfUnknownSizedArrayType* BfModule::CreateUnknownSizedArrayType(BfType* resolvedType, BfType* sizeParam)
  6752. {
  6753. BF_ASSERT(!resolvedType->IsVar());
  6754. BF_ASSERT(sizeParam->IsGenericParam());
  6755. auto arrayType = mContext->mUnknownSizedArrayTypePool.Get();
  6756. arrayType->mContext = mContext;
  6757. arrayType->mElementType = resolvedType;
  6758. arrayType->mElementCount = -1;
  6759. arrayType->mElementCountSource = sizeParam;
  6760. auto resolvedArrayType = ResolveType(arrayType);
  6761. if (resolvedArrayType != arrayType)
  6762. mContext->mUnknownSizedArrayTypePool.GiveBack(arrayType);
  6763. return (BfUnknownSizedArrayType*)resolvedArrayType;
  6764. }
  6765. BfPointerType* BfModule::CreatePointerType(BfType* resolvedType)
  6766. {
  6767. BF_ASSERT(!resolvedType->IsVar());
  6768. auto pointerType = mContext->mPointerTypePool.Get();
  6769. pointerType->mContext = mContext;
  6770. pointerType->mElementType = resolvedType;
  6771. auto resolvedPointerType = (BfPointerType*)ResolveType(pointerType);
  6772. if (resolvedPointerType != pointerType)
  6773. {
  6774. mContext->mPointerTypePool.GiveBack(pointerType);
  6775. }
  6776. else
  6777. {
  6778. if (resolvedType->IsDeleting())
  6779. {
  6780. mCompiler->RequestExtraCompile();
  6781. InternalError("CreatePointerType using deleted type");
  6782. mContext->DeleteType(resolvedPointerType);
  6783. }
  6784. }
  6785. BF_ASSERT(resolvedPointerType->mElementType == resolvedType);
  6786. return resolvedPointerType;
  6787. }
  6788. BfConstExprValueType* BfModule::CreateConstExprValueType(const BfTypedValue& typedValue, bool allowCreate)
  6789. {
  6790. if (typedValue.mType->IsConstExprValue())
  6791. return (BfConstExprValueType*)typedValue.mType;
  6792. BfPopulateType populateType = allowCreate ? BfPopulateType_Data : BfPopulateType_Identity;
  6793. BfResolveTypeRefFlags resolveFlags = allowCreate ? BfResolveTypeRefFlag_None : BfResolveTypeRefFlag_NoCreate;
  6794. auto variant = TypedValueToVariant(NULL, typedValue);
  6795. if (variant.mTypeCode == BfTypeCode_None)
  6796. {
  6797. if (auto constant = mBfIRBuilder->GetConstant(typedValue.mValue))
  6798. {
  6799. if (constant->mConstType == BfConstType_Undef)
  6800. {
  6801. variant.mTypeCode = BfTypeCode_Let;
  6802. }
  6803. }
  6804. }
  6805. if (variant.mTypeCode == BfTypeCode_None)
  6806. return NULL;
  6807. auto constExprValueType = mContext->mConstExprValueTypePool.Get();
  6808. constExprValueType->mContext = mContext;
  6809. constExprValueType->mType = typedValue.mType;
  6810. constExprValueType->mValue = variant;
  6811. auto resolvedConstExprValueType = (BfConstExprValueType*)ResolveType(constExprValueType, populateType, resolveFlags);
  6812. if (resolvedConstExprValueType != constExprValueType)
  6813. mContext->mConstExprValueTypePool.GiveBack(constExprValueType);
  6814. if (resolvedConstExprValueType != NULL)
  6815. BF_ASSERT(resolvedConstExprValueType->mValue == constExprValueType->mValue);
  6816. return resolvedConstExprValueType;
  6817. }
  6818. BfConstExprValueType* BfModule::CreateConstExprValueType(const BfVariant& variant, BfType* type, bool allowCreate)
  6819. {
  6820. BfPopulateType populateType = allowCreate ? BfPopulateType_Data : BfPopulateType_Identity;
  6821. BfResolveTypeRefFlags resolveFlags = allowCreate ? BfResolveTypeRefFlag_None : BfResolveTypeRefFlag_NoCreate;
  6822. if (variant.mTypeCode == BfTypeCode_None)
  6823. return NULL;
  6824. auto constExprValueType = mContext->mConstExprValueTypePool.Get();
  6825. constExprValueType->mContext = mContext;
  6826. constExprValueType->mType = type;
  6827. constExprValueType->mValue = variant;
  6828. auto resolvedConstExprValueType = (BfConstExprValueType*)ResolveType(constExprValueType, populateType, resolveFlags);
  6829. if (resolvedConstExprValueType != constExprValueType)
  6830. mContext->mConstExprValueTypePool.GiveBack(constExprValueType);
  6831. if (resolvedConstExprValueType != NULL)
  6832. BF_ASSERT(resolvedConstExprValueType->mValue == constExprValueType->mValue);
  6833. return resolvedConstExprValueType;
  6834. }
  6835. BfTypeInstance* BfModule::GetWrappedStructType(BfType* type, bool allowSpecialized)
  6836. {
  6837. if (type->IsPointer())
  6838. {
  6839. if (allowSpecialized)
  6840. {
  6841. BfPointerType* pointerType = (BfPointerType*)type;
  6842. BfTypeVector typeVector;
  6843. typeVector.Add(pointerType->mElementType);
  6844. return ResolveTypeDef(mCompiler->mPointerTTypeDef, typeVector, BfPopulateType_Data)->ToTypeInstance();
  6845. }
  6846. else
  6847. return ResolveTypeDef(mCompiler->mPointerTTypeDef, BfPopulateType_Data)->ToTypeInstance();
  6848. }
  6849. else if (type->IsMethodRef())
  6850. {
  6851. if (allowSpecialized)
  6852. {
  6853. BfMethodRefType* methodRefType = (BfMethodRefType*)type;
  6854. BfTypeVector typeVector;
  6855. typeVector.Add(methodRefType);
  6856. return ResolveTypeDef(mCompiler->mMethodRefTypeDef, typeVector, BfPopulateType_Data)->ToTypeInstance();
  6857. }
  6858. else
  6859. return ResolveTypeDef(mCompiler->mMethodRefTypeDef, BfPopulateType_Data)->ToTypeInstance();
  6860. }
  6861. else if (type->IsSizedArray())
  6862. {
  6863. if (allowSpecialized)
  6864. {
  6865. if (type->IsUnknownSizedArrayType())
  6866. {
  6867. BfUnknownSizedArrayType* sizedArrayType = (BfUnknownSizedArrayType*)type;
  6868. BfTypeVector typeVector;
  6869. typeVector.Add(sizedArrayType->mElementType);
  6870. typeVector.Add(sizedArrayType->mElementCountSource);
  6871. return ResolveTypeDef(mCompiler->mSizedArrayTypeDef, typeVector, BfPopulateType_Data)->ToTypeInstance();
  6872. }
  6873. BfSizedArrayType* sizedArrayType = (BfSizedArrayType*)type;
  6874. BfTypeVector typeVector;
  6875. typeVector.Add(sizedArrayType->mElementType);
  6876. auto sizeValue = BfTypedValue(GetConstValue(BF_MAX(sizedArrayType->mElementCount, 0)), GetPrimitiveType(BfTypeCode_IntPtr));
  6877. typeVector.Add(CreateConstExprValueType(sizeValue));
  6878. return ResolveTypeDef(mCompiler->mSizedArrayTypeDef, typeVector, BfPopulateType_Data)->ToTypeInstance();
  6879. }
  6880. else
  6881. return ResolveTypeDef(mCompiler->mSizedArrayTypeDef, BfPopulateType_Data)->ToTypeInstance();
  6882. }
  6883. BF_ASSERT(type->IsPrimitiveType());
  6884. return GetPrimitiveStructType(((BfPrimitiveType*)type)->mTypeDef->mTypeCode);
  6885. }
  6886. BfPrimitiveType* BfModule::GetPrimitiveType(BfTypeCode typeCode)
  6887. {
  6888. BfPrimitiveType* primType = mContext->mPrimitiveTypes[typeCode];
  6889. if (primType == NULL)
  6890. {
  6891. switch (typeCode)
  6892. {
  6893. case BfTypeCode_NullPtr:
  6894. primType = (BfPrimitiveType*)ResolveTypeDef(mSystem->mTypeNullPtr);
  6895. break;
  6896. case BfTypeCode_Self:
  6897. primType = (BfPrimitiveType*)ResolveTypeDef(mSystem->mTypeSelf);
  6898. break;
  6899. case BfTypeCode_Dot:
  6900. primType = (BfPrimitiveType*)ResolveTypeDef(mSystem->mTypeDot);
  6901. break;
  6902. case BfTypeCode_Var:
  6903. primType = (BfPrimitiveType*)ResolveTypeDef(mSystem->mTypeVar);
  6904. break;
  6905. case BfTypeCode_Let:
  6906. primType = (BfPrimitiveType*)ResolveTypeDef(mSystem->mTypeLet);
  6907. break;
  6908. case BfTypeCode_None:
  6909. primType = (BfPrimitiveType*)ResolveTypeDef(mSystem->mTypeVoid);
  6910. break;
  6911. case BfTypeCode_Boolean:
  6912. primType = (BfPrimitiveType*)ResolveTypeDef(mSystem->mTypeBool);
  6913. break;
  6914. case BfTypeCode_Int8:
  6915. primType = (BfPrimitiveType*)ResolveTypeDef(mSystem->mTypeInt8);
  6916. break;
  6917. case BfTypeCode_UInt8:
  6918. primType = (BfPrimitiveType*)ResolveTypeDef(mSystem->mTypeUInt8);
  6919. break;
  6920. case BfTypeCode_Int16:
  6921. primType = (BfPrimitiveType*)ResolveTypeDef(mSystem->mTypeInt16);
  6922. break;
  6923. case BfTypeCode_UInt16:
  6924. primType = (BfPrimitiveType*)ResolveTypeDef(mSystem->mTypeUInt16);
  6925. break;
  6926. case BfTypeCode_Int32:
  6927. primType = (BfPrimitiveType*)ResolveTypeDef(mSystem->mTypeInt32);
  6928. break;
  6929. case BfTypeCode_UInt32:
  6930. primType = (BfPrimitiveType*)ResolveTypeDef(mSystem->mTypeUInt32);
  6931. break;
  6932. case BfTypeCode_Int64:
  6933. primType = (BfPrimitiveType*)ResolveTypeDef(mSystem->mTypeInt64);
  6934. break;
  6935. case BfTypeCode_UInt64:
  6936. primType = (BfPrimitiveType*)ResolveTypeDef(mSystem->mTypeUInt64);
  6937. break;
  6938. case BfTypeCode_Char8:
  6939. primType = (BfPrimitiveType*)ResolveTypeDef(mSystem->mTypeChar8);
  6940. break;
  6941. case BfTypeCode_Char16:
  6942. primType = (BfPrimitiveType*)ResolveTypeDef(mSystem->mTypeChar16);
  6943. break;
  6944. case BfTypeCode_Char32:
  6945. primType = (BfPrimitiveType*)ResolveTypeDef(mSystem->mTypeChar32);
  6946. break;
  6947. case BfTypeCode_Float:
  6948. primType = (BfPrimitiveType*)ResolveTypeDef(mSystem->mTypeSingle);
  6949. break;
  6950. case BfTypeCode_Double:
  6951. primType = (BfPrimitiveType*)ResolveTypeDef(mSystem->mTypeDouble);
  6952. break;
  6953. case BfTypeCode_IntPtr:
  6954. primType = (BfPrimitiveType*)ResolveTypeDef(mSystem->mTypeIntPtr);
  6955. break;
  6956. case BfTypeCode_UIntPtr:
  6957. primType = (BfPrimitiveType*)ResolveTypeDef(mSystem->mTypeUIntPtr);
  6958. break;
  6959. case BfTypeCode_IntUnknown:
  6960. primType = (BfPrimitiveType*)ResolveTypeDef(mSystem->mTypeIntUnknown);
  6961. break;
  6962. case BfTypeCode_UIntUnknown:
  6963. primType = (BfPrimitiveType*)ResolveTypeDef(mSystem->mTypeUIntUnknown);
  6964. break;
  6965. case BfTypeCode_StringId:
  6966. BFMODULE_FATAL(this, "Invalid use of StringId");
  6967. break;
  6968. default:
  6969. BF_DBG_FATAL("Invalid type");
  6970. break;
  6971. }
  6972. mContext->mPrimitiveTypes[typeCode] = primType;
  6973. }
  6974. return primType;
  6975. }
  6976. BfIRType BfModule::GetIRLoweredType(BfTypeCode loweredTypeCode, BfTypeCode loweredTypeCode2)
  6977. {
  6978. BF_ASSERT(!mIsComptimeModule);
  6979. BF_ASSERT(loweredTypeCode != BfTypeCode_None);
  6980. if (loweredTypeCode2 == BfTypeCode_None)
  6981. return mBfIRBuilder->GetPrimitiveType(loweredTypeCode);
  6982. SizedArray<BfIRType, 2> types;
  6983. types.push_back(mBfIRBuilder->GetPrimitiveType(loweredTypeCode));
  6984. types.push_back(mBfIRBuilder->GetPrimitiveType(loweredTypeCode2));
  6985. return mBfIRBuilder->CreateStructType(types);
  6986. }
  6987. BfMethodRefType* BfModule::CreateMethodRefType(BfMethodInstance* methodInstance, bool mustAlreadyExist)
  6988. {
  6989. // Make sure we don't have a partially-formed local method or lambda coming in, because those may be replaced
  6990. // after the capture phase
  6991. BF_ASSERT(!methodInstance->mDisallowCalling);
  6992. auto methodRefType = new BfMethodRefType();
  6993. methodRefType->mContext = mContext;
  6994. //methodRefType->mCaptureType = NULL;
  6995. methodRefType->mMethodRef = methodInstance;
  6996. methodRefType->mOwner = methodInstance->GetOwner();
  6997. methodRefType->mOwnerRevision = methodRefType->mOwner->mRevision;
  6998. //methodRefType->mMangledName = BfMangler::Mangle(mCompiler->GetMangleKind(), methodInstance);
  6999. methodRefType->mIsAutoCompleteMethod = methodInstance->mIsAutocompleteMethod;
  7000. methodRefType->mIsUnspecialized = methodInstance->mIsUnspecialized;
  7001. methodRefType->mIsUnspecializedVariation = methodInstance->mIsUnspecializedVariation;
  7002. methodRefType->mSize = 0;
  7003. BfResolvedTypeSet::LookupContext lookupCtx;
  7004. lookupCtx.mModule = this;
  7005. BfResolvedTypeSet::EntryRef typeEntry;
  7006. auto inserted = mContext->mResolvedTypes.Insert(methodRefType, &lookupCtx, &typeEntry);
  7007. if (typeEntry->mValue == NULL)
  7008. {
  7009. BF_ASSERT(!mustAlreadyExist);
  7010. BF_ASSERT(!methodInstance->mHasMethodRefType);
  7011. InitType(methodRefType, BfPopulateType_Identity);
  7012. methodRefType->mDefineState = BfTypeDefineState_DefinedAndMethodsSlotted;
  7013. methodInstance->mHasMethodRefType = true;
  7014. methodInstance->mMethodInstanceGroup->mRefCount++;
  7015. typeEntry->mValue = methodRefType;
  7016. BfLogSysM("Create MethodRefType %p MethodInstance: %p\n", methodRefType, methodInstance);
  7017. methodRefType->mRevision = 0;
  7018. AddDependency(methodInstance->GetOwner(), methodRefType, BfDependencyMap::DependencyFlag_Calls);
  7019. BfTypeVector tupleTypes;
  7020. Array<String> tupleNames;
  7021. int offset = 0;
  7022. methodRefType->mAlign = 1;
  7023. int dataIdx = 0;
  7024. // CRepr, just because we're lazy (for now)
  7025. int implicitParamCount = methodInstance->GetImplicitParamCount();
  7026. for (int implicitParamIdx = methodInstance->HasThis() ? -1 : 0; implicitParamIdx < implicitParamCount; implicitParamIdx++)
  7027. {
  7028. auto paramType = methodInstance->GetParamType(implicitParamIdx);
  7029. if (!paramType->IsValuelessType())
  7030. {
  7031. methodRefType->mDataToParamIdx.Add(implicitParamIdx);
  7032. if (implicitParamIdx >= 0)
  7033. methodRefType->mParamToDataIdx.Add(dataIdx);
  7034. offset = BF_ALIGN(offset, paramType->mAlign);
  7035. offset += paramType->mSize;
  7036. methodRefType->mAlign = std::max(methodRefType->mAlign, paramType->mAlign);
  7037. dataIdx++;
  7038. }
  7039. else
  7040. {
  7041. methodRefType->mParamToDataIdx.Add(-1);
  7042. }
  7043. }
  7044. offset = BF_ALIGN(offset, methodRefType->mAlign);
  7045. methodRefType->mSize = offset;
  7046. // if (!tupleTypes.empty())
  7047. // {
  7048. // methodRefType->mCaptureType = CreateTupleType(tupleTypes, tupleNames);
  7049. // AddDependency(methodRefType->mCaptureType, methodRefType, BfDependencyMap::DependencyFlag_ReadFields);
  7050. //
  7051. // methodRefType->mSize = methodRefType->mCaptureType->mSize;
  7052. // methodRefType->mAlign = methodRefType->mCaptureType->mAlign;
  7053. // }
  7054. // else
  7055. // {
  7056. // methodRefType->mSize = 0;
  7057. // methodRefType->mAlign = 0;
  7058. // }
  7059. }
  7060. else
  7061. {
  7062. methodRefType->mMethodRef = NULL;
  7063. delete methodRefType;
  7064. methodRefType = (BfMethodRefType*)typeEntry->mValue;
  7065. }
  7066. return methodRefType;
  7067. }
  7068. BfType* BfModule::FixIntUnknown(BfType* type)
  7069. {
  7070. if ((type != NULL) && (type->IsPrimitiveType()))
  7071. {
  7072. auto primType = (BfPrimitiveType*)type;
  7073. if (primType->mTypeDef->mTypeCode == BfTypeCode_IntUnknown)
  7074. return GetPrimitiveType(BfTypeCode_IntPtr);
  7075. if (primType->mTypeDef->mTypeCode == BfTypeCode_UIntUnknown)
  7076. return GetPrimitiveType(BfTypeCode_UIntPtr);
  7077. }
  7078. return type;
  7079. }
  7080. void BfModule::FixIntUnknown(BfTypedValue& typedVal, BfType* matchType)
  7081. {
  7082. if (!typedVal.mValue.IsConst())
  7083. {
  7084. if ((typedVal.mType != NULL) && (typedVal.mType->IsPrimitiveType()))
  7085. {
  7086. auto primType = (BfPrimitiveType*)typedVal.mType;
  7087. BF_ASSERT((primType->mTypeDef->mTypeCode != BfTypeCode_IntUnknown) && (primType->mTypeDef->mTypeCode != BfTypeCode_UIntUnknown));
  7088. }
  7089. return;
  7090. }
  7091. if (!typedVal.mType->IsPrimitiveType())
  7092. return;
  7093. BfTypeCode wantTypeCode;
  7094. auto primType = (BfPrimitiveType*)typedVal.mType;
  7095. if (primType->mTypeDef->mTypeCode == BfTypeCode_IntUnknown)
  7096. wantTypeCode = BfTypeCode_IntPtr;
  7097. else if (primType->mTypeDef->mTypeCode == BfTypeCode_UIntUnknown)
  7098. wantTypeCode = BfTypeCode_UIntPtr;
  7099. else
  7100. return;
  7101. auto constant = mBfIRBuilder->GetConstant(typedVal.mValue);
  7102. if ((matchType != NULL) && (matchType->IsPrimitiveType()) && (mBfIRBuilder->IsInt(matchType->ToPrimitiveType()->mTypeDef->mTypeCode)))
  7103. {
  7104. auto wantTypeCode = matchType->ToPrimitiveType()->mTypeDef->mTypeCode;
  7105. if (matchType->mSize < 8)
  7106. {
  7107. int64 minVal = -(1LL << (8 * matchType->mSize - 1));
  7108. int64 maxVal = (1LL << (8 * matchType->mSize - 1)) - 1;
  7109. if ((constant->mInt64 >= minVal) && (constant->mInt64 <= maxVal))
  7110. {
  7111. typedVal.mValue = mBfIRBuilder->CreateNumericCast(typedVal.mValue, mBfIRBuilder->IsSigned(wantTypeCode), wantTypeCode);
  7112. typedVal.mType = GetPrimitiveType(wantTypeCode);
  7113. return;
  7114. }
  7115. }
  7116. }
  7117. if (mSystem->mPtrSize == 4)
  7118. {
  7119. if (primType->mTypeDef->mTypeCode == BfTypeCode_IntUnknown)
  7120. {
  7121. if ((constant->mInt64 >= -0x80000000LL) && (constant->mInt64 <= 0x7FFFFFFFLL))
  7122. {
  7123. typedVal.mValue = mBfIRBuilder->CreateNumericCast(typedVal.mValue, true, BfTypeCode_IntPtr);
  7124. typedVal.mType = GetPrimitiveType(BfTypeCode_IntPtr);
  7125. }
  7126. else
  7127. typedVal.mType = GetPrimitiveType(BfTypeCode_Int64);
  7128. return;
  7129. }
  7130. else
  7131. {
  7132. if ((constant->mInt64 >= 0) && (constant->mInt64 <= 0xFFFFFFFF))
  7133. {
  7134. typedVal.mValue = mBfIRBuilder->CreateNumericCast(typedVal.mValue, false, BfTypeCode_IntPtr);
  7135. typedVal.mType = GetPrimitiveType(BfTypeCode_UIntPtr);
  7136. }
  7137. else
  7138. typedVal.mType = GetPrimitiveType(BfTypeCode_UInt64);
  7139. return;
  7140. }
  7141. }
  7142. typedVal.mType = GetPrimitiveType(wantTypeCode);
  7143. }
  7144. void BfModule::FixIntUnknown(BfTypedValue& lhs, BfTypedValue& rhs)
  7145. {
  7146. if ((lhs.mType != NULL) && (lhs.mType->IsIntUnknown()) && (rhs.mType != NULL) &&
  7147. (rhs.mType->IsInteger()) && (!rhs.mType->IsIntUnknown()))
  7148. {
  7149. if (CanCast(lhs, rhs.mType))
  7150. {
  7151. lhs = Cast(NULL, lhs, rhs.mType, BfCastFlags_SilentFail);
  7152. if (!lhs)
  7153. lhs = GetDefaultTypedValue(GetPrimitiveType(BfTypeCode_IntPtr));
  7154. return;
  7155. }
  7156. }
  7157. if ((rhs.mType != NULL) && (rhs.mType->IsIntUnknown()) && (lhs.mType != NULL) &&
  7158. (lhs.mType->IsInteger()) && (!lhs.mType->IsIntUnknown()))
  7159. {
  7160. if (CanCast(rhs, lhs.mType))
  7161. {
  7162. rhs = Cast(NULL, rhs, lhs.mType, BfCastFlags_SilentFail);
  7163. if (!rhs)
  7164. rhs = GetDefaultTypedValue(GetPrimitiveType(BfTypeCode_IntPtr));
  7165. return;
  7166. }
  7167. }
  7168. FixIntUnknown(lhs);
  7169. FixIntUnknown(rhs);
  7170. }
  7171. void BfModule::FixValueActualization(BfTypedValue& typedVal, bool force)
  7172. {
  7173. if (!typedVal.mValue.IsConst())
  7174. return;
  7175. if ((mBfIRBuilder->mIgnoreWrites) && (!force))
  7176. return;
  7177. auto constant = mBfIRBuilder->GetConstant(typedVal.mValue);
  7178. if (!HasUnactializedConstant(constant, mBfIRBuilder))
  7179. return;
  7180. typedVal.mValue = ConstantToCurrent(constant, mBfIRBuilder, typedVal.mType, false);
  7181. }
  7182. BfTypeInstance* BfModule::GetPrimitiveStructType(BfTypeCode typeCode)
  7183. {
  7184. BfTypeInstance* typeInst = NULL;
  7185. switch (typeCode)
  7186. {
  7187. case BfTypeCode_None:
  7188. typeInst = ResolveTypeDef(mSystem->FindTypeDef("System.Void"), BfPopulateType_Identity)->ToTypeInstance(); break;
  7189. case BfTypeCode_Boolean:
  7190. typeInst = ResolveTypeDef(mSystem->FindTypeDef("System.Boolean"), BfPopulateType_Identity)->ToTypeInstance(); break;
  7191. case BfTypeCode_Int8:
  7192. typeInst = ResolveTypeDef(mSystem->FindTypeDef("System.Int8"), BfPopulateType_Identity)->ToTypeInstance(); break;
  7193. case BfTypeCode_UInt8:
  7194. typeInst = ResolveTypeDef(mSystem->FindTypeDef("System.UInt8"), BfPopulateType_Identity)->ToTypeInstance(); break;
  7195. case BfTypeCode_Int16:
  7196. typeInst = ResolveTypeDef(mSystem->FindTypeDef("System.Int16"), BfPopulateType_Identity)->ToTypeInstance(); break;
  7197. case BfTypeCode_UInt16:
  7198. typeInst = ResolveTypeDef(mSystem->FindTypeDef("System.UInt16"), BfPopulateType_Identity)->ToTypeInstance(); break;
  7199. case BfTypeCode_Int32:
  7200. typeInst = ResolveTypeDef(mSystem->FindTypeDef("System.Int32"), BfPopulateType_Identity)->ToTypeInstance(); break;
  7201. case BfTypeCode_UInt32:
  7202. typeInst = ResolveTypeDef(mSystem->FindTypeDef("System.UInt32"), BfPopulateType_Identity)->ToTypeInstance(); break;
  7203. case BfTypeCode_Int64:
  7204. typeInst = ResolveTypeDef(mSystem->FindTypeDef("System.Int64"), BfPopulateType_Identity)->ToTypeInstance(); break;
  7205. case BfTypeCode_UInt64:
  7206. typeInst = ResolveTypeDef(mSystem->FindTypeDef("System.UInt64"), BfPopulateType_Identity)->ToTypeInstance(); break;
  7207. case BfTypeCode_IntPtr:
  7208. case BfTypeCode_IntUnknown:
  7209. typeInst = ResolveTypeDef(mSystem->FindTypeDef("System.Int"), BfPopulateType_Identity)->ToTypeInstance(); break;
  7210. case BfTypeCode_UIntPtr:
  7211. case BfTypeCode_UIntUnknown:
  7212. typeInst = ResolveTypeDef(mSystem->FindTypeDef("System.UInt"), BfPopulateType_Identity)->ToTypeInstance(); break;
  7213. case BfTypeCode_Char8:
  7214. typeInst = ResolveTypeDef(mSystem->FindTypeDef("System.Char8"), BfPopulateType_Identity)->ToTypeInstance(); break;
  7215. case BfTypeCode_Char16:
  7216. typeInst = ResolveTypeDef(mSystem->FindTypeDef("System.Char16"), BfPopulateType_Identity)->ToTypeInstance(); break;
  7217. case BfTypeCode_Char32:
  7218. typeInst = ResolveTypeDef(mSystem->FindTypeDef("System.Char32"), BfPopulateType_Identity)->ToTypeInstance(); break;
  7219. case BfTypeCode_Float:
  7220. typeInst = ResolveTypeDef(mSystem->FindTypeDef("System.Float"), BfPopulateType_Identity)->ToTypeInstance(); break;
  7221. case BfTypeCode_Double:
  7222. typeInst = ResolveTypeDef(mSystem->FindTypeDef("System.Double"), BfPopulateType_Identity)->ToTypeInstance(); break;
  7223. default:
  7224. //BF_FATAL("not implemented");
  7225. break;
  7226. }
  7227. return typeInst;
  7228. }
  7229. BfBoxedType* BfModule::CreateBoxedType(BfType* resolvedTypeRef, bool allowCreate)
  7230. {
  7231. bool isStructPtr = false;
  7232. BfPopulateType populateType = allowCreate ? BfPopulateType_Data : BfPopulateType_Identity;
  7233. BfResolveTypeRefFlags resolveFlags = allowCreate ? BfResolveTypeRefFlag_None : BfResolveTypeRefFlag_NoCreate;
  7234. if (resolvedTypeRef->IsPrimitiveType())
  7235. {
  7236. auto primType = (BfPrimitiveType*)resolvedTypeRef;
  7237. resolvedTypeRef = GetPrimitiveStructType(primType->mTypeDef->mTypeCode);
  7238. if (resolvedTypeRef == NULL)
  7239. return NULL;
  7240. }
  7241. else if (resolvedTypeRef->IsPointer())
  7242. {
  7243. BfPointerType* pointerType = (BfPointerType*)resolvedTypeRef;
  7244. if (pointerType->mElementType->IsStruct())
  7245. {
  7246. resolvedTypeRef = pointerType->mElementType;
  7247. isStructPtr = true;
  7248. }
  7249. else
  7250. {
  7251. BfTypeVector typeVector;
  7252. typeVector.Add(pointerType->mElementType);
  7253. resolvedTypeRef = ResolveTypeDef(mCompiler->mPointerTTypeDef, typeVector, populateType, resolveFlags);
  7254. if (resolvedTypeRef == NULL)
  7255. return NULL;
  7256. }
  7257. }
  7258. else if (resolvedTypeRef->IsMethodRef())
  7259. {
  7260. BfMethodRefType* methodRefType = (BfMethodRefType*)resolvedTypeRef;
  7261. BfTypeVector typeVector;
  7262. typeVector.Add(methodRefType);
  7263. resolvedTypeRef = ResolveTypeDef(mCompiler->mMethodRefTypeDef, typeVector, populateType, resolveFlags);
  7264. if (resolvedTypeRef == NULL)
  7265. return NULL;
  7266. }
  7267. else if (resolvedTypeRef->IsSizedArray())
  7268. {
  7269. BfSizedArrayType* sizedArrayType = (BfSizedArrayType*)resolvedTypeRef;
  7270. BfTypeVector typeVector;
  7271. typeVector.Add(sizedArrayType->mElementType);
  7272. auto sizeValue = BfTypedValue(GetConstValue(sizedArrayType->mElementCount), GetPrimitiveType(BfTypeCode_IntPtr));
  7273. auto sizeValueType = CreateConstExprValueType(sizeValue, allowCreate);
  7274. if (sizeValueType == NULL)
  7275. return NULL;
  7276. typeVector.Add(sizeValueType);
  7277. resolvedTypeRef = ResolveTypeDef(mCompiler->mSizedArrayTypeDef, typeVector, populateType, resolveFlags);
  7278. if (resolvedTypeRef == NULL)
  7279. return NULL;
  7280. }
  7281. BfTypeInstance* typeInst = resolvedTypeRef->ToTypeInstance();
  7282. if ((typeInst == NULL) && (!resolvedTypeRef->IsGenericParam()))
  7283. return NULL;
  7284. auto boxedType = mContext->mBoxedTypePool.Get();
  7285. boxedType->mContext = mContext;
  7286. boxedType->mElementType = resolvedTypeRef;
  7287. if (typeInst != NULL)
  7288. boxedType->mTypeDef = typeInst->mTypeDef->GetDefinition();
  7289. else
  7290. boxedType->mTypeDef = mCompiler->mValueTypeTypeDef;
  7291. boxedType->mBoxedFlags = isStructPtr ? BfBoxedType::BoxedFlags_StructPtr : BfBoxedType::BoxedFlags_None;
  7292. auto resolvedBoxedType = ResolveType(boxedType, populateType, resolveFlags);
  7293. if (resolvedBoxedType != boxedType)
  7294. {
  7295. boxedType->Dispose();
  7296. mContext->mBoxedTypePool.GiveBack(boxedType);
  7297. }
  7298. return (BfBoxedType*)resolvedBoxedType;
  7299. }
  7300. BfTypeInstance* BfModule::CreateTupleType(const BfTypeVector& fieldTypes, const Array<String>& fieldNames, bool allowVar)
  7301. {
  7302. auto baseType = (BfTypeInstance*)ResolveTypeDef(mContext->mCompiler->mValueTypeTypeDef);
  7303. BfTupleType* tupleType = NULL;
  7304. auto actualTupleType = mContext->mTupleTypePool.Get();
  7305. actualTupleType->Init(baseType->mTypeDef->mProject, baseType);
  7306. bool isUnspecialzied = false;
  7307. for (int fieldIdx = 0; fieldIdx < (int)fieldTypes.size(); fieldIdx++)
  7308. {
  7309. String fieldName;
  7310. if (fieldIdx < (int)fieldNames.size())
  7311. fieldName = fieldNames[fieldIdx];
  7312. if (fieldName.empty())
  7313. fieldName = StrFormat("%d", fieldIdx);
  7314. BfFieldDef* fieldDef = actualTupleType->AddField(fieldName);
  7315. auto fieldType = fieldTypes[fieldIdx];
  7316. if ((fieldType->IsUnspecializedType()) || (fieldType->IsVar()))
  7317. isUnspecialzied = true;
  7318. }
  7319. tupleType = actualTupleType;
  7320. tupleType->mContext = mContext;
  7321. tupleType->mFieldInstances.Resize(fieldTypes.size());
  7322. for (int fieldIdx = 0; fieldIdx < (int)fieldTypes.size(); fieldIdx++)
  7323. {
  7324. BfFieldInstance* fieldInstance = (BfFieldInstance*)&tupleType->mFieldInstances[fieldIdx];
  7325. fieldInstance->mFieldIdx = fieldIdx;
  7326. BfType* fieldType = fieldTypes[fieldIdx];
  7327. if ((fieldType->IsVar()) && (!allowVar))
  7328. fieldType = mContext->mBfObjectType;
  7329. fieldInstance->SetResolvedType(fieldType);
  7330. fieldInstance->mOwner = tupleType;
  7331. }
  7332. tupleType->mIsUnspecializedType = false;
  7333. tupleType->mIsUnspecializedTypeVariation = false;
  7334. if (isUnspecialzied)
  7335. {
  7336. tupleType->mIsUnspecializedType = true;
  7337. tupleType->mIsUnspecializedTypeVariation = true;
  7338. }
  7339. auto resolvedTupleType = ResolveType(tupleType);
  7340. if (resolvedTupleType != tupleType)
  7341. {
  7342. BF_ASSERT(tupleType->mContext != NULL);
  7343. tupleType->Dispose();
  7344. mContext->mTupleTypePool.GiveBack((BfTupleType*)tupleType);
  7345. }
  7346. return (BfTupleType*)resolvedTupleType;
  7347. }
  7348. BfTypeInstance* BfModule::SantizeTupleType(BfTypeInstance* tupleType)
  7349. {
  7350. bool needsSanitize = false;
  7351. for (int fieldIdx = 0; fieldIdx < (int)tupleType->mFieldInstances.size(); fieldIdx++)
  7352. {
  7353. BfFieldInstance* fieldInstance = (BfFieldInstance*)&tupleType->mFieldInstances[fieldIdx];
  7354. if ((fieldInstance->mResolvedType->IsVar()) || (fieldInstance->mResolvedType->IsLet()))
  7355. {
  7356. needsSanitize = true;
  7357. break;
  7358. }
  7359. }
  7360. if (!needsSanitize)
  7361. return tupleType;
  7362. BfTypeVector fieldTypes;
  7363. Array<String> fieldNames;
  7364. for (int fieldIdx = 0; fieldIdx < (int)tupleType->mFieldInstances.size(); fieldIdx++)
  7365. {
  7366. BfFieldInstance* fieldInstance = (BfFieldInstance*)&tupleType->mFieldInstances[fieldIdx];
  7367. auto fieldDef = fieldInstance->GetFieldDef();
  7368. if ((fieldInstance->mResolvedType->IsVar()) || (fieldInstance->mResolvedType->IsLet()))
  7369. fieldTypes.Add(mContext->mBfObjectType);
  7370. else
  7371. fieldTypes.Add(fieldInstance->mResolvedType);
  7372. if (!fieldDef->IsUnnamedTupleField())
  7373. {
  7374. for (int i = 0; i < fieldIdx; i++)
  7375. fieldNames.Add(String());
  7376. fieldNames.Add(fieldDef->mName);
  7377. }
  7378. }
  7379. return CreateTupleType(fieldTypes, fieldNames);
  7380. }
  7381. BfRefType* BfModule::CreateRefType(BfType* resolvedTypeRef, BfRefType::RefKind refKind)
  7382. {
  7383. auto refType = mContext->mRefTypePool.Get();
  7384. refType->mContext = mContext;
  7385. refType->mElementType = resolvedTypeRef;
  7386. refType->mRefKind = refKind;
  7387. auto resolvedRefType = ResolveType(refType);
  7388. if (resolvedRefType != refType)
  7389. mContext->mRefTypePool.GiveBack(refType);
  7390. return (BfRefType*)resolvedRefType;
  7391. }
  7392. BfModifiedTypeType* BfModule::CreateModifiedTypeType(BfType* resolvedTypeRef, BfToken modifiedKind)
  7393. {
  7394. auto retTypeType = mContext->mModifiedTypeTypePool.Get();
  7395. retTypeType->mContext = mContext;
  7396. retTypeType->mModifiedKind = modifiedKind;
  7397. retTypeType->mElementType = resolvedTypeRef;
  7398. auto resolvedRetTypeType = ResolveType(retTypeType);
  7399. if (resolvedRetTypeType != retTypeType)
  7400. mContext->mModifiedTypeTypePool.GiveBack(retTypeType);
  7401. return (BfModifiedTypeType*)resolvedRetTypeType;
  7402. }
  7403. BfConcreteInterfaceType* BfModule::CreateConcreteInterfaceType(BfTypeInstance* interfaceType)
  7404. {
  7405. auto concreteInterfaceType = mContext->mConcreteInterfaceTypePool.Get();
  7406. concreteInterfaceType->mContext = mContext;
  7407. concreteInterfaceType->mInterface = interfaceType;
  7408. auto resolvedConcreteInterfaceType = ResolveType(concreteInterfaceType);
  7409. if (resolvedConcreteInterfaceType != concreteInterfaceType)
  7410. mContext->mConcreteInterfaceTypePool.GiveBack(concreteInterfaceType);
  7411. return (BfConcreteInterfaceType*)resolvedConcreteInterfaceType;
  7412. }
  7413. BfPointerType* BfModule::CreatePointerType(BfTypeReference* typeRef)
  7414. {
  7415. auto resolvedTypeRef = ResolveTypeRef(typeRef);
  7416. if (resolvedTypeRef == NULL)
  7417. return NULL;
  7418. return CreatePointerType(resolvedTypeRef);
  7419. }
  7420. BfType* BfModule::ResolveTypeDef(BfTypeDef* typeDef, BfPopulateType populateType, BfResolveTypeRefFlags resolveFlags)
  7421. {
  7422. BF_ASSERT(typeDef->mDefState != BfTypeDef::DefState_Emitted);
  7423. if (typeDef->mTypeDeclaration == NULL)
  7424. {
  7425. BF_ASSERT(!typeDef->mIsDelegate && !typeDef->mIsFunction);
  7426. }
  7427. //BF_ASSERT(typeDef->mTypeCode != BfTypeCode_Extension);
  7428. BF_ASSERT(!typeDef->mIsPartial || typeDef->mIsCombinedPartial);
  7429. BF_ASSERT(typeDef->mDefState != BfTypeDef::DefState_Deleted);
  7430. BF_ASSERT((typeDef->mOuterType == NULL) || (typeDef->mOuterType->mDefState != BfTypeDef::DefState_Deleted));
  7431. if (typeDef->mGenericParamDefs.size() != 0)
  7432. return ResolveTypeDef(typeDef, BfTypeVector(), populateType, resolveFlags);
  7433. auto typeDefTypeRef = mContext->mTypeDefTypeRefPool.Get();
  7434. typeDefTypeRef->mTypeDef = typeDef;
  7435. auto resolvedtypeDefType = ResolveTypeRef(typeDefTypeRef, populateType, resolveFlags);
  7436. if (resolvedtypeDefType == NULL)
  7437. {
  7438. mContext->mTypeDefTypeRefPool.GiveBack(typeDefTypeRef);
  7439. return NULL;
  7440. }
  7441. mContext->mTypeDefTypeRefPool.GiveBack(typeDefTypeRef);
  7442. //BF_ASSERT(resolvedtypeDefType->IsTypeInstance() || resolvedtypeDefType->IsPrimitiveType());
  7443. return resolvedtypeDefType;
  7444. }
  7445. // Get BaseClass even when we haven't populated the type yet
  7446. BfTypeInstance* BfModule::GetBaseType(BfTypeInstance* typeInst)
  7447. {
  7448. if (typeInst->mBaseType == NULL)
  7449. {
  7450. auto checkTypeState = mContext->mCurTypeState;
  7451. while (checkTypeState != NULL)
  7452. {
  7453. if (checkTypeState->mType == typeInst)
  7454. return NULL;
  7455. checkTypeState = checkTypeState->mPrevState;
  7456. }
  7457. }
  7458. if ((typeInst->mBaseType == NULL) && (typeInst != mContext->mBfObjectType))
  7459. PopulateType(typeInst, BfPopulateType_BaseType);
  7460. return typeInst->mBaseType;
  7461. }
  7462. void BfModule::HandleTypeGenericParamRef(BfAstNode* refNode, BfTypeDef* typeDef, int typeGenericParamIdx)
  7463. {
  7464. if (mCompiler->IsAutocomplete())
  7465. {
  7466. BfAutoComplete* autoComplete = mCompiler->mResolvePassData->mAutoComplete;
  7467. if ((autoComplete != NULL) && (autoComplete->mIsGetDefinition) && (autoComplete->IsAutocompleteNode(refNode)))
  7468. {
  7469. if ((autoComplete->mDefMethod == NULL) && (autoComplete->mDefField == NULL) &&
  7470. (autoComplete->mDefProp == NULL))
  7471. {
  7472. autoComplete->mDefType = typeDef;
  7473. autoComplete->mDefTypeGenericParamIdx = typeGenericParamIdx;
  7474. autoComplete->SetDefinitionLocation(refNode);
  7475. }
  7476. }
  7477. }
  7478. if (mCompiler->mResolvePassData != NULL)
  7479. mCompiler->mResolvePassData->HandleTypeGenericParam(refNode, typeDef, typeGenericParamIdx);
  7480. }
  7481. void BfModule::HandleMethodGenericParamRef(BfAstNode* refNode, BfTypeDef* typeDef, BfMethodDef* methodDef, int methodGenericParamIdx)
  7482. {
  7483. if (mCompiler->IsAutocomplete())
  7484. {
  7485. BfAutoComplete* autoComplete = mCompiler->mResolvePassData->mAutoComplete;
  7486. if ((autoComplete != NULL) && (autoComplete->mIsGetDefinition) && (autoComplete->IsAutocompleteNode(refNode)))
  7487. {
  7488. if ((autoComplete->mDefMethod == NULL) && (autoComplete->mDefField == NULL) &&
  7489. (autoComplete->mDefProp == NULL))
  7490. {
  7491. autoComplete->mDefType = typeDef;
  7492. autoComplete->mDefMethod = methodDef;
  7493. autoComplete->mDefMethodGenericParamIdx = methodGenericParamIdx;
  7494. autoComplete->SetDefinitionLocation(refNode);
  7495. }
  7496. }
  7497. }
  7498. if (mCompiler->mResolvePassData != NULL)
  7499. mCompiler->mResolvePassData->HandleMethodGenericParam(refNode, typeDef, methodDef, methodGenericParamIdx);
  7500. }
  7501. BfType* BfModule::ResolveInnerType(BfType* outerType, BfAstNode* typeRef, BfPopulateType populateType, bool ignoreErrors, int numGenericArgs, BfResolveTypeRefFlags resolveFlags)
  7502. {
  7503. BfTypeDef* nestedTypeDef = NULL;
  7504. if (outerType->IsBoxed())
  7505. outerType = outerType->GetUnderlyingType();
  7506. BfNamedTypeReference* namedTypeRef = NULL;
  7507. BfGenericInstanceTypeRef* genericTypeRef = NULL;
  7508. BfDirectStrTypeReference* directStrTypeRef = NULL;
  7509. BfInlineTypeReference* inlineTypeRef = NULL;
  7510. BfIdentifierNode* identifierNode = NULL;
  7511. if ((namedTypeRef = BfNodeDynCast<BfNamedTypeReference>(typeRef)))
  7512. {
  7513. //TYPEDEF nestedTypeDef = namedTypeRef->mTypeDef;
  7514. }
  7515. else if ((genericTypeRef = BfNodeDynCast<BfGenericInstanceTypeRef>(typeRef)))
  7516. {
  7517. namedTypeRef = BfNodeDynCast<BfNamedTypeReference>(genericTypeRef->mElementType);
  7518. //TYPEDEF nestedTypeDef = namedTypeRef->mTypeDef;
  7519. }
  7520. else if ((identifierNode = BfNodeDynCast<BfIdentifierNode>(typeRef)))
  7521. {
  7522. //TYPEDEF nestedTypeDef = namedTypeRef->mTypeDef;
  7523. }
  7524. else if ((directStrTypeRef = BfNodeDynCast<BfDirectStrTypeReference>(typeRef)))
  7525. {
  7526. //
  7527. }
  7528. else if ((inlineTypeRef = BfNodeDynCastExact<BfInlineTypeReference>(typeRef)))
  7529. {
  7530. //
  7531. }
  7532. BF_ASSERT((identifierNode != NULL) || (namedTypeRef != NULL) || (directStrTypeRef != NULL) || (inlineTypeRef != NULL));
  7533. auto usedOuterType = outerType;
  7534. if (nestedTypeDef == NULL)
  7535. {
  7536. String tempStr;
  7537. StringView findName;
  7538. if (namedTypeRef != NULL)
  7539. findName = namedTypeRef->mNameNode->ToStringView();
  7540. else if (identifierNode != NULL)
  7541. findName = identifierNode->ToStringView();
  7542. else if (inlineTypeRef != NULL)
  7543. findName = inlineTypeRef->mTypeDeclaration->mAnonymousName;
  7544. else
  7545. findName = directStrTypeRef->mTypeName;
  7546. if (!findName.Contains('.'))
  7547. {
  7548. if (outerType->IsTypeInstance())
  7549. {
  7550. auto outerTypeInstance = outerType->ToTypeInstance();
  7551. for (int pass = 0; pass < 2; pass++)
  7552. {
  7553. bool isFailurePass = pass == 1;
  7554. bool allowPrivate = (mCurTypeInstance != NULL) &&
  7555. ((mCurTypeInstance == outerTypeInstance) || TypeHasParentOrEquals(mCurTypeInstance->mTypeDef, outerTypeInstance->mTypeDef));
  7556. bool allowProtected = allowPrivate;/*(mCurTypeInstance != NULL) &&
  7557. (allowPrivate || (mCurTypeInstance->mSkipTypeProtectionChecks) || TypeIsSubTypeOf(mCurTypeInstance, outerTypeInstance));*/
  7558. auto checkOuterType = outerTypeInstance;
  7559. while (checkOuterType != NULL)
  7560. {
  7561. for (auto checkType : checkOuterType->mTypeDef->mNestedTypes)
  7562. {
  7563. auto latestCheckType = checkType->GetLatest();
  7564. if ((!isFailurePass) && ((resolveFlags & BfResolveTypeRefFlag_IgnoreProtection) == 0) &&
  7565. (!CheckProtection(latestCheckType->mProtection, latestCheckType, allowProtected, allowPrivate)))
  7566. continue;
  7567. if ((checkType->mProject != checkOuterType->mTypeDef->mProject) && (!IsProjectVisible(checkType->mProject)))
  7568. continue;
  7569. if ((checkType->mName->mString == findName) && (checkType->GetSelfGenericParamCount() == numGenericArgs))
  7570. {
  7571. if (isFailurePass)
  7572. {
  7573. // This is the one error we don't ignore when ignoreErrors is set
  7574. Fail(StrFormat("'%s.%s' is inaccessible due to its protection level", TypeToString(checkOuterType).c_str(), BfTypeUtils::TypeToString(typeRef).c_str()), typeRef); // CS0122
  7575. }
  7576. usedOuterType = checkOuterType;
  7577. nestedTypeDef = checkType;
  7578. break;
  7579. }
  7580. }
  7581. if (nestedTypeDef != NULL)
  7582. break;
  7583. allowPrivate = false;
  7584. checkOuterType = GetBaseType(checkOuterType);
  7585. }
  7586. if (nestedTypeDef != NULL)
  7587. break;
  7588. if ((outerTypeInstance->IsEnum()) && (findName == "UnderlyingType"))
  7589. {
  7590. if (outerTypeInstance->IsDataIncomplete())
  7591. PopulateType(outerTypeInstance);
  7592. auto underlyingType = outerTypeInstance->GetUnderlyingType();
  7593. if (underlyingType != NULL)
  7594. return underlyingType;
  7595. }
  7596. }
  7597. }
  7598. }
  7599. if (nestedTypeDef == NULL)
  7600. {
  7601. if ((!mIgnoreErrors) && (!ignoreErrors) && ((resolveFlags & BfResolveTypeRefFlag_IgnoreLookupError) == 0))
  7602. {
  7603. StringT<64> name;
  7604. name.Append(findName);
  7605. Fail(StrFormat("'%s' does not contain a definition for '%s'", TypeToString(outerType).c_str(), name.c_str()), typeRef);
  7606. }
  7607. return NULL;
  7608. }
  7609. }
  7610. SetAndRestoreValue<bool> prevIgnoreErrors(mIgnoreErrors, ignoreErrors || mIgnoreErrors);
  7611. if ((genericTypeRef != NULL) || (usedOuterType->IsGenericTypeInstance()))
  7612. {
  7613. BfTypeVector genericArgs;
  7614. if (usedOuterType->IsGenericTypeInstance())
  7615. {
  7616. auto genericTypeInst = (BfTypeInstance*)usedOuterType;
  7617. genericArgs = genericTypeInst->mGenericTypeInfo->mTypeGenericArguments;
  7618. }
  7619. if (genericTypeRef != NULL)
  7620. {
  7621. for (auto genericArgTypeRef : genericTypeRef->mGenericArguments)
  7622. {
  7623. auto genericArgType = ResolveTypeRef(genericArgTypeRef, NULL, BfPopulateType_IdentityNoRemapAlias);
  7624. if (genericArgType == NULL)
  7625. return NULL;
  7626. genericArgs.push_back(genericArgType);
  7627. }
  7628. }
  7629. if (genericArgs.size() != nestedTypeDef->mGenericParamDefs.size())
  7630. {
  7631. if (populateType == BfPopulateType_TypeDef)
  7632. {
  7633. // Probably from inside ResolveGenericInstanceDef, just return unresolved typedef
  7634. genericArgs.clear();
  7635. }
  7636. else
  7637. {
  7638. ShowGenericArgCountError(typeRef, (int)nestedTypeDef->mGenericParamDefs.size() - (int)nestedTypeDef->mOuterType->mGenericParamDefs.size());
  7639. return NULL;
  7640. }
  7641. }
  7642. if (nestedTypeDef->mIsPartial)
  7643. {
  7644. nestedTypeDef = GetCombinedPartialTypeDef(nestedTypeDef);
  7645. if (nestedTypeDef == NULL)
  7646. return NULL;
  7647. }
  7648. return ResolveTypeDef(nestedTypeDef, genericArgs, BfPopulateType_IdentityNoRemapAlias);
  7649. }
  7650. else
  7651. {
  7652. if (nestedTypeDef->mIsPartial)
  7653. {
  7654. nestedTypeDef = GetCombinedPartialTypeDef(nestedTypeDef);
  7655. if (nestedTypeDef == NULL)
  7656. return NULL;
  7657. }
  7658. return ResolveTypeDef(nestedTypeDef, BfPopulateType_IdentityNoRemapAlias);
  7659. }
  7660. return NULL;
  7661. }
  7662. BfTypeDef* BfModule::GetCombinedPartialTypeDef(BfTypeDef* typeDef)
  7663. {
  7664. BF_ASSERT(!typeDef->mIsExplicitPartial);
  7665. if (!typeDef->mIsPartial)
  7666. return typeDef;
  7667. auto result = mSystem->FindTypeDef(typeDef->mFullName, (int)typeDef->mGenericParamDefs.size(), NULL, {}, NULL, BfFindTypeDefFlag_None);
  7668. return result;
  7669. }
  7670. BfTypeInstance* BfModule::GetOuterType(BfType* type)
  7671. {
  7672. if (type == NULL)
  7673. return NULL;
  7674. if (type->IsBoxed())
  7675. return GetOuterType(((BfBoxedType*)type)->mElementType);
  7676. auto typeInst = type->ToTypeInstance();
  7677. if ((typeInst == NULL) || (typeInst->mTypeDef->mOuterType == NULL))
  7678. return NULL;
  7679. auto outerTypeDef = typeInst->mTypeDef->mOuterType;
  7680. if (outerTypeDef->mIsPartial)
  7681. {
  7682. outerTypeDef = GetCombinedPartialTypeDef(outerTypeDef);
  7683. if (outerTypeDef == NULL)
  7684. return NULL;
  7685. }
  7686. BfTypeVector typeGenericArguments;
  7687. if (type->IsGenericTypeInstance())
  7688. {
  7689. auto genericType = (BfTypeInstance*)type;
  7690. typeGenericArguments = genericType->mGenericTypeInfo->mTypeGenericArguments;
  7691. }
  7692. BF_ASSERT((intptr)typeGenericArguments.size() >= (intptr)outerTypeDef->mGenericParamDefs.size());
  7693. typeGenericArguments.resize(outerTypeDef->mGenericParamDefs.size());
  7694. //auto outerType = ResolveTypeDef(outerTypeDef, typeGenericArguments, BfPopulateType_Declaration);
  7695. auto outerType = ResolveTypeDef(outerTypeDef, typeGenericArguments, BfPopulateType_Identity);
  7696. if (outerType == NULL)
  7697. return NULL;
  7698. return outerType->ToTypeInstance();
  7699. }
  7700. bool BfModule::IsInnerType(BfType* checkInnerType, BfType* checkOuterType)
  7701. {
  7702. BfType* outerType = GetOuterType(checkInnerType);
  7703. if (outerType == NULL)
  7704. return false;
  7705. if (outerType == checkOuterType)
  7706. return true;
  7707. return IsInnerType(outerType, checkOuterType);
  7708. }
  7709. bool BfModule::IsInnerType(BfTypeDef* checkInnerType, BfTypeDef* checkOuterType)
  7710. {
  7711. BF_ASSERT(!checkOuterType->mIsPartial);
  7712. if (checkInnerType->mNestDepth <= checkOuterType->mNestDepth)
  7713. return false;
  7714. while (true)
  7715. {
  7716. BfTypeDef* outerType = checkInnerType->mOuterType;
  7717. if (outerType == NULL)
  7718. return false;
  7719. if (outerType->mIsPartial)
  7720. outerType = mSystem->GetCombinedPartial(outerType);
  7721. if (outerType->GetDefinition() == checkOuterType->GetDefinition())
  7722. return true;
  7723. checkInnerType = checkInnerType->mOuterType;
  7724. }
  7725. }
  7726. BfType* BfModule::ResolveTypeDef(BfTypeDef* typeDef, const BfTypeVector& genericArgs, BfPopulateType populateType, BfResolveTypeRefFlags resolveFlags)
  7727. {
  7728. BF_ASSERT(typeDef->mDefState != BfTypeDef::DefState_Emitted);
  7729. if (typeDef->mGenericParamDefs.size() == 0)
  7730. return ResolveTypeDef(typeDef, populateType, resolveFlags);
  7731. if ((typeDef == mCompiler->mArray1TypeDef) || (typeDef == mCompiler->mArray2TypeDef))
  7732. {
  7733. auto arrayInstType = mContext->mArrayTypeInstancePool.Get();
  7734. arrayInstType->mContext = mContext;
  7735. if (typeDef == mCompiler->mArray1TypeDef)
  7736. arrayInstType->mDimensions = 1;
  7737. else
  7738. arrayInstType->mDimensions = 2;
  7739. auto typeRef = mContext->mTypeDefTypeRefPool.Get();
  7740. typeRef->mTypeDef = typeDef;
  7741. delete arrayInstType->mGenericTypeInfo;
  7742. arrayInstType->mGenericTypeInfo = new BfGenericTypeInfo();
  7743. arrayInstType->mTypeDef = typeDef;
  7744. arrayInstType->mGenericTypeInfo->mIsUnspecialized = false;
  7745. arrayInstType->mGenericTypeInfo->mTypeGenericArguments.clear();
  7746. for (auto genericArg : genericArgs)
  7747. {
  7748. arrayInstType->mGenericTypeInfo->mIsUnspecialized |= genericArg->IsGenericParam();
  7749. arrayInstType->mGenericTypeInfo->mTypeGenericArguments.push_back(genericArg);
  7750. }
  7751. if (genericArgs.size() == 0)
  7752. {
  7753. for (int i = 0; i < (int)typeDef->mGenericParamDefs.size(); i++)
  7754. {
  7755. auto genericParamTypeRef = GetGenericParamType(BfGenericParamKind_Type, i);
  7756. arrayInstType->mGenericTypeInfo->mTypeGenericArguments.push_back(genericParamTypeRef);
  7757. arrayInstType->mGenericTypeInfo->mIsUnspecialized = true;
  7758. }
  7759. }
  7760. auto resolvedType = ResolveType(arrayInstType, populateType, resolveFlags);
  7761. if (resolvedType != arrayInstType)
  7762. {
  7763. delete arrayInstType->mGenericTypeInfo;
  7764. arrayInstType->mGenericTypeInfo = NULL;
  7765. arrayInstType->Dispose();
  7766. mContext->mArrayTypeInstancePool.GiveBack(arrayInstType);
  7767. mContext->mTypeDefTypeRefPool.GiveBack(typeRef);
  7768. }
  7769. BF_ASSERT((resolvedType == NULL) || resolvedType->IsTypeInstance() || resolvedType->IsPrimitiveType());
  7770. return resolvedType;
  7771. }
  7772. BfTypeInstance* genericInstType;
  7773. if (typeDef->mTypeCode == BfTypeCode_TypeAlias)
  7774. genericInstType = mContext->mAliasTypePool.Get();
  7775. else
  7776. genericInstType = mContext->mGenericTypeInstancePool.Get();
  7777. delete genericInstType->mGenericTypeInfo;
  7778. genericInstType->mGenericTypeInfo = new BfGenericTypeInfo();
  7779. BF_ASSERT(genericInstType->mGenericTypeInfo->mGenericParams.size() == 0);
  7780. BF_ASSERT((genericInstType->mRebuildFlags & BfTypeRebuildFlag_AddedToWorkList) == 0);
  7781. genericInstType->mRebuildFlags = (BfTypeRebuildFlags)(genericInstType->mRebuildFlags & ~BfTypeRebuildFlag_InTempPool);
  7782. genericInstType->mContext = mContext;
  7783. auto typeRef = mContext->mTypeDefTypeRefPool.Get();
  7784. typeRef->mTypeDef = typeDef;
  7785. genericInstType->mTypeDef = typeDef;
  7786. genericInstType->mGenericTypeInfo->mIsUnspecialized = false;
  7787. genericInstType->mGenericTypeInfo->mTypeGenericArguments.clear();
  7788. genericInstType->mTypeFailed = false;
  7789. for (auto genericArg : genericArgs)
  7790. {
  7791. genericInstType->mGenericTypeInfo->mIsUnspecialized |= genericArg->IsGenericParam();
  7792. genericInstType->mGenericTypeInfo->mTypeGenericArguments.push_back(genericArg);
  7793. }
  7794. if (genericArgs.size() == 0)
  7795. {
  7796. for (int i = 0; i < (int)typeDef->mGenericParamDefs.size(); i++)
  7797. {
  7798. auto genericParamTypeRef = GetGenericParamType(BfGenericParamKind_Type, i);
  7799. genericInstType->mGenericTypeInfo->mTypeGenericArguments.push_back(genericParamTypeRef);
  7800. genericInstType->mGenericTypeInfo->mIsUnspecialized = true;
  7801. }
  7802. }
  7803. BfType* resolvedType = NULL;
  7804. bool failed = false;
  7805. resolvedType = ResolveType(genericInstType, populateType, resolveFlags);
  7806. if (resolvedType != genericInstType)
  7807. {
  7808. BF_ASSERT(genericInstType->mGenericTypeInfo->mGenericParams.size() == 0);
  7809. BF_ASSERT((genericInstType->mRebuildFlags & BfTypeRebuildFlag_AddedToWorkList) == 0);
  7810. genericInstType->mRebuildFlags = (BfTypeRebuildFlags)(genericInstType->mRebuildFlags | BfTypeRebuildFlag_InTempPool);
  7811. delete genericInstType->mGenericTypeInfo;
  7812. genericInstType->mGenericTypeInfo = NULL;
  7813. if (typeDef->mTypeCode == BfTypeCode_TypeAlias)
  7814. mContext->mAliasTypePool.GiveBack((BfTypeAliasType*)genericInstType);
  7815. else
  7816. {
  7817. genericInstType->Dispose();
  7818. mContext->mGenericTypeInstancePool.GiveBack(genericInstType);
  7819. }
  7820. mContext->mTypeDefTypeRefPool.GiveBack(typeRef);
  7821. }
  7822. BF_ASSERT((resolvedType == NULL) || resolvedType->IsTypeInstance() || resolvedType->IsPrimitiveType());
  7823. return resolvedType;
  7824. }
  7825. int checkIdx = 0;
  7826. BfTypeDef* BfModule::ResolveGenericInstanceDef(BfGenericInstanceTypeRef* genericTypeRef, BfType** outType, BfResolveTypeRefFlags resolveFlags)
  7827. {
  7828. if (outType != NULL)
  7829. *outType = NULL;
  7830. BfTypeReference* typeRef = genericTypeRef->mElementType;
  7831. int numGenericParams = genericTypeRef->GetGenericArgCount();
  7832. BfTypeDef* curTypeDef = NULL;
  7833. if (mCurTypeInstance != NULL)
  7834. curTypeDef = mCurTypeInstance->mTypeDef->GetDefinition();
  7835. if (auto directTypeDef = BfNodeDynCast<BfDirectTypeReference>(typeRef))
  7836. {
  7837. auto typeInst = directTypeDef->mType->ToTypeInstance();
  7838. return typeInst->mTypeDef->GetDefinition();
  7839. }
  7840. auto namedTypeRef = BfNodeDynCast<BfNamedTypeReference>(typeRef);
  7841. auto directStrTypeDef = BfNodeDynCastExact<BfDirectStrTypeReference>(typeRef);
  7842. if ((namedTypeRef != NULL) || (directStrTypeDef != NULL))
  7843. {
  7844. BfTypeLookupError error;
  7845. error.mRefNode = typeRef;
  7846. BfTypeDef* typeDef = FindTypeDef(typeRef, NULL, &error, numGenericParams, resolveFlags);
  7847. if (typeDef != NULL)
  7848. {
  7849. BfAutoComplete* autoComplete = NULL;
  7850. if (mCompiler->IsAutocomplete())
  7851. autoComplete = mCompiler->mResolvePassData->mAutoComplete;
  7852. if ((autoComplete != NULL) && (autoComplete->mIsGetDefinition) && (autoComplete->IsAutocompleteNode(typeRef)))
  7853. {
  7854. if ((autoComplete->mDefMethod == NULL) && (autoComplete->mDefField == NULL) &&
  7855. (autoComplete->mDefProp == NULL) && (typeDef->mTypeDeclaration != NULL))
  7856. {
  7857. autoComplete->mDefType = typeDef;
  7858. autoComplete->SetDefinitionLocation(typeDef->mTypeDeclaration->mNameNode);
  7859. }
  7860. }
  7861. if (mCompiler->mResolvePassData != NULL)
  7862. mCompiler->mResolvePassData->HandleTypeReference(typeRef, typeDef);
  7863. return typeDef;
  7864. }
  7865. if (mCurTypeInstance != NULL)
  7866. {
  7867. bool wasGenericParam = false;
  7868. // Check generics first
  7869. if (typeRef->IsA<BfNamedTypeReference>())
  7870. {
  7871. String findName = typeRef->ToString();
  7872. if ((resolveFlags & BfResolveTypeRefFlag_Attribute) != 0)
  7873. findName += "Attribute";
  7874. if ((mCurTypeInstance != NULL) && (mCurTypeInstance->IsGenericTypeInstance()))
  7875. {
  7876. auto genericTypeInst = (BfTypeInstance*)mCurTypeInstance;
  7877. for (int genericParamIdx = 0; genericParamIdx < (int)curTypeDef->mGenericParamDefs.size(); genericParamIdx++)
  7878. {
  7879. String genericName = curTypeDef->mGenericParamDefs[genericParamIdx]->mName;
  7880. if (genericName == findName)
  7881. wasGenericParam = true;
  7882. }
  7883. }
  7884. if (mCurMethodInstance != NULL)
  7885. {
  7886. for (int genericParamIdx = 0; genericParamIdx < (int)mCurMethodInstance->mMethodDef->mGenericParams.size(); genericParamIdx++)
  7887. {
  7888. String genericName = mCurMethodInstance->mMethodDef->mGenericParams[genericParamIdx]->mName;
  7889. if (genericName == findName)
  7890. wasGenericParam = true;
  7891. }
  7892. }
  7893. }
  7894. if ((wasGenericParam) && ((resolveFlags & BfResolveTypeRefFlag_IgnoreLookupError) == 0))
  7895. Fail("Cannot use generic param as generic instance type", typeRef);
  7896. }
  7897. if (typeDef == NULL)
  7898. {
  7899. if ((resolveFlags & BfResolveTypeRefFlag_IgnoreLookupError) == 0)
  7900. TypeRefNotFound(typeRef);
  7901. return NULL;
  7902. }
  7903. }
  7904. if (auto qualifiedTypeRef = BfNodeDynCast<BfQualifiedTypeReference>(typeRef))
  7905. {
  7906. BfAutoParentNodeEntry autoParentNodeEntry(this, genericTypeRef);
  7907. auto type = ResolveTypeRef(qualifiedTypeRef, BfPopulateType_TypeDef, resolveFlags, numGenericParams);
  7908. if (type == NULL)
  7909. return NULL;
  7910. if (outType != NULL)
  7911. *outType = type;
  7912. auto typeInst = type->ToTypeInstance();
  7913. if (typeInst != NULL)
  7914. return typeInst->mTypeDef->GetDefinition();
  7915. }
  7916. if ((resolveFlags & BfResolveTypeRefFlag_IgnoreLookupError) == 0)
  7917. Fail("Invalid generic type", typeRef);
  7918. return NULL;
  7919. }
  7920. BfType* BfModule::ResolveGenericType(BfType* unspecializedType, BfTypeVector* typeGenericArguments, BfTypeVector* methodGenericArguments, BfType* selfType, bool allowFail)
  7921. {
  7922. if (unspecializedType->IsGenericParam())
  7923. {
  7924. auto genericParam = (BfGenericParamType*)unspecializedType;
  7925. if ((genericParam->mGenericParamKind == BfGenericParamKind_Type) && (typeGenericArguments != NULL))
  7926. {
  7927. if (genericParam->mGenericParamIdx < (int)typeGenericArguments->size())
  7928. return FixIntUnknown((*typeGenericArguments)[genericParam->mGenericParamIdx]);
  7929. BF_ASSERT(allowFail);
  7930. }
  7931. if ((genericParam->mGenericParamKind == BfGenericParamKind_Method) && (methodGenericArguments != NULL))
  7932. {
  7933. if (genericParam->mGenericParamIdx < (int)methodGenericArguments->size())
  7934. {
  7935. auto resolvedType = FixIntUnknown((*methodGenericArguments)[genericParam->mGenericParamIdx]);
  7936. if ((resolvedType != NULL) && (resolvedType->IsGenericParam()))
  7937. {
  7938. auto genericParamType = (BfGenericParamType*)resolvedType;
  7939. //BF_ASSERT(genericParamType->mGenericParamKind != BfGenericParamKind_Method);
  7940. }
  7941. return resolvedType;
  7942. }
  7943. BF_ASSERT(allowFail);
  7944. }
  7945. return unspecializedType;
  7946. }
  7947. if ((unspecializedType->IsSelf()) && (selfType != NULL))
  7948. return selfType;
  7949. if (!unspecializedType->IsUnspecializedType())
  7950. {
  7951. return unspecializedType;
  7952. }
  7953. if (unspecializedType->IsUnknownSizedArrayType())
  7954. {
  7955. auto* arrayType = (BfUnknownSizedArrayType*)unspecializedType;
  7956. auto elementType = ResolveGenericType(arrayType->mElementType, typeGenericArguments, methodGenericArguments, selfType, allowFail);
  7957. if (elementType == NULL)
  7958. return NULL;
  7959. if (elementType->IsVar())
  7960. return elementType;
  7961. auto sizeType = ResolveGenericType(arrayType->mElementCountSource, typeGenericArguments, methodGenericArguments, selfType, allowFail);
  7962. if (sizeType == NULL)
  7963. return NULL;
  7964. if (sizeType->IsConstExprValue())
  7965. {
  7966. return CreateSizedArrayType(elementType, ((BfConstExprValueType*)sizeType)->mValue.mInt32);
  7967. }
  7968. return CreateUnknownSizedArrayType(elementType, sizeType);
  7969. }
  7970. if (unspecializedType->IsSizedArray())
  7971. {
  7972. auto* arrayType = (BfSizedArrayType*)unspecializedType;
  7973. auto elementType = ResolveGenericType(arrayType->mElementType, typeGenericArguments, methodGenericArguments, selfType, allowFail);
  7974. if (elementType == NULL)
  7975. return NULL;
  7976. if (elementType->IsVar())
  7977. return elementType;
  7978. elementType = FixIntUnknown(elementType);
  7979. return CreateSizedArrayType(elementType, (int)arrayType->mElementCount);
  7980. }
  7981. if (unspecializedType->IsRef())
  7982. {
  7983. auto refType = (BfRefType*)unspecializedType;
  7984. auto elementType = ResolveGenericType(refType->GetUnderlyingType(), typeGenericArguments, methodGenericArguments, selfType, allowFail);
  7985. if (elementType == NULL)
  7986. return NULL;
  7987. if (elementType->IsVar())
  7988. return elementType;
  7989. elementType = FixIntUnknown(elementType);
  7990. return CreateRefType(elementType, refType->mRefKind);
  7991. }
  7992. if (unspecializedType->IsPointer())
  7993. {
  7994. auto ptrType = (BfPointerType*)unspecializedType;
  7995. auto elementType = ResolveGenericType(ptrType->GetUnderlyingType(), typeGenericArguments, methodGenericArguments, selfType, allowFail);
  7996. if (elementType == NULL)
  7997. return NULL;
  7998. if (elementType->IsVar())
  7999. return elementType;
  8000. elementType = FixIntUnknown(elementType);
  8001. return CreatePointerType(elementType);
  8002. }
  8003. if (unspecializedType->IsConcreteInterfaceType())
  8004. {
  8005. auto concreteType = (BfConcreteInterfaceType*)unspecializedType;
  8006. auto elementType = ResolveGenericType(concreteType->GetUnderlyingType(), typeGenericArguments, methodGenericArguments, selfType, allowFail);
  8007. if (elementType == NULL)
  8008. return NULL;
  8009. auto elementTypeInstance = elementType->ToTypeInstance();
  8010. if (elementTypeInstance == NULL)
  8011. return unspecializedType;
  8012. return CreateConcreteInterfaceType(elementTypeInstance);
  8013. }
  8014. if (unspecializedType->IsArray())
  8015. {
  8016. auto arrayType = (BfArrayType*)unspecializedType;
  8017. auto elementType = ResolveGenericType(arrayType->GetUnderlyingType(), typeGenericArguments, methodGenericArguments, selfType, allowFail);
  8018. if (elementType == NULL)
  8019. return NULL;
  8020. if (elementType->IsVar())
  8021. return elementType;
  8022. elementType = FixIntUnknown(elementType);
  8023. return CreateArrayType(elementType, arrayType->mDimensions);
  8024. }
  8025. if (unspecializedType->IsTuple())
  8026. {
  8027. bool wantGeneric = false;
  8028. bool isUnspecialized = false;
  8029. auto unspecializedTupleType = (BfTypeInstance*)unspecializedType;
  8030. auto unspecializedGenericTupleType = unspecializedTupleType->ToGenericTypeInstance();
  8031. Array<String> fieldNames;
  8032. BfTypeVector fieldTypes;
  8033. bool hadChange = false;
  8034. for (auto& fieldInstance : unspecializedTupleType->mFieldInstances)
  8035. {
  8036. fieldNames.push_back(fieldInstance.GetFieldDef()->mName);
  8037. auto origGenericArg = fieldInstance.mResolvedType;
  8038. auto newGenericArg = ResolveGenericType(origGenericArg, typeGenericArguments, methodGenericArguments, selfType, allowFail);
  8039. if (newGenericArg == NULL)
  8040. return NULL;
  8041. if (newGenericArg->IsVar())
  8042. return newGenericArg;
  8043. if (newGenericArg->IsTypeGenericParam())
  8044. wantGeneric = true;
  8045. if (newGenericArg->IsUnspecializedType())
  8046. isUnspecialized = true;
  8047. if (newGenericArg->IsVar())
  8048. wantGeneric = mContext->mBfObjectType;
  8049. //wantGeneric = true;
  8050. if (newGenericArg != origGenericArg)
  8051. hadChange = true;
  8052. fieldTypes.push_back(newGenericArg);
  8053. }
  8054. if (!hadChange)
  8055. return unspecializedType;
  8056. if (unspecializedGenericTupleType == NULL)
  8057. wantGeneric = false;
  8058. //TODO:
  8059. wantGeneric = false;
  8060. auto baseType = (BfTypeInstance*)ResolveTypeDef(mContext->mCompiler->mValueTypeTypeDef);
  8061. BfTupleType* tupleType = NULL;
  8062. if (wantGeneric)
  8063. {
  8064. Array<BfType*> genericArgs;
  8065. for (int genericArgIdx = 0; genericArgIdx < (int)unspecializedGenericTupleType->mGenericTypeInfo->mTypeGenericArguments.size(); genericArgIdx++)
  8066. {
  8067. BfType* resolvedArg = unspecializedGenericTupleType->mGenericTypeInfo->mTypeGenericArguments[genericArgIdx];
  8068. if (resolvedArg->IsUnspecializedType())
  8069. {
  8070. resolvedArg = ResolveGenericType(resolvedArg, typeGenericArguments, methodGenericArguments, selfType, allowFail);
  8071. if (resolvedArg == NULL)
  8072. return NULL;
  8073. if (resolvedArg->IsVar())
  8074. return resolvedArg;
  8075. }
  8076. genericArgs.push_back(resolvedArg);
  8077. }
  8078. auto actualTupleType = mContext->mTupleTypePool.Get();
  8079. delete actualTupleType->mGenericTypeInfo;
  8080. actualTupleType->mGenericDepth = 0;
  8081. actualTupleType->mGenericTypeInfo = new BfGenericTypeInfo();
  8082. actualTupleType->mGenericTypeInfo->mIsUnspecialized = false;
  8083. actualTupleType->mGenericTypeInfo->mIsUnspecializedVariation = false;
  8084. actualTupleType->mGenericTypeInfo->mTypeGenericArguments = genericArgs;
  8085. for (int genericArgIdx = 0; genericArgIdx < (int)unspecializedGenericTupleType->mGenericTypeInfo->mTypeGenericArguments.size(); genericArgIdx++)
  8086. {
  8087. auto typeGenericArg = genericArgs[genericArgIdx];
  8088. if ((typeGenericArg->IsGenericParam()) || (typeGenericArg->IsUnspecializedType()))
  8089. actualTupleType->mGenericTypeInfo->mIsUnspecialized = true;
  8090. actualTupleType->mGenericTypeInfo->mGenericParams.push_back(unspecializedGenericTupleType->mGenericTypeInfo->mGenericParams[genericArgIdx]->AddRef());
  8091. }
  8092. CheckUnspecializedGenericType(actualTupleType, BfPopulateType_Identity);
  8093. if (isUnspecialized)
  8094. {
  8095. actualTupleType->mGenericTypeInfo->mIsUnspecialized = true;
  8096. actualTupleType->mGenericTypeInfo->mIsUnspecializedVariation = true;
  8097. }
  8098. actualTupleType->mIsUnspecializedType = actualTupleType->mGenericTypeInfo->mIsUnspecialized;
  8099. actualTupleType->mIsUnspecializedTypeVariation = actualTupleType->mGenericTypeInfo->mIsUnspecializedVariation;
  8100. actualTupleType->Init(baseType->mTypeDef->mProject, baseType);
  8101. for (int fieldIdx = 0; fieldIdx < (int)fieldTypes.size(); fieldIdx++)
  8102. {
  8103. String fieldName = fieldNames[fieldIdx];
  8104. BfFieldDef* fieldDef = actualTupleType->AddField(fieldName);
  8105. }
  8106. tupleType = actualTupleType;
  8107. }
  8108. else
  8109. {
  8110. auto actualTupleType = new BfTupleType();
  8111. actualTupleType->mIsUnspecializedType = isUnspecialized;
  8112. actualTupleType->mIsUnspecializedTypeVariation = isUnspecialized;
  8113. actualTupleType->Init(baseType->mTypeDef->mProject, baseType);
  8114. for (int fieldIdx = 0; fieldIdx < (int)fieldTypes.size(); fieldIdx++)
  8115. {
  8116. String fieldName = fieldNames[fieldIdx];
  8117. BfFieldDef* fieldDef = actualTupleType->AddField(fieldName);
  8118. }
  8119. tupleType = actualTupleType;
  8120. }
  8121. tupleType->mContext = mContext;
  8122. tupleType->mFieldInstances.Resize(fieldTypes.size());
  8123. for (int fieldIdx = 0; fieldIdx < (int)fieldTypes.size(); fieldIdx++)
  8124. {
  8125. BfFieldInstance* fieldInstance = (BfFieldInstance*)&tupleType->mFieldInstances[fieldIdx];
  8126. fieldInstance->mFieldIdx = fieldIdx;
  8127. fieldInstance->SetResolvedType(fieldTypes[fieldIdx]);
  8128. fieldInstance->mOwner = tupleType;
  8129. tupleType->mGenericDepth = BF_MAX(tupleType->mGenericDepth, fieldInstance->mResolvedType->GetGenericDepth() + 1);
  8130. }
  8131. bool failed = false;
  8132. BfType* resolvedType = NULL;
  8133. if (!failed)
  8134. resolvedType = ResolveType(tupleType, BfPopulateType_Identity);
  8135. if (resolvedType != tupleType)
  8136. {
  8137. delete tupleType->mGenericTypeInfo;
  8138. tupleType->mGenericTypeInfo = NULL;
  8139. tupleType->Dispose();
  8140. mContext->mTupleTypePool.GiveBack((BfTupleType*)tupleType);
  8141. }
  8142. BF_ASSERT((resolvedType == NULL) || resolvedType->IsTypeInstance() || resolvedType->IsPrimitiveType());
  8143. return resolvedType;
  8144. }
  8145. if ((unspecializedType->IsDelegateFromTypeRef()) || (unspecializedType->IsFunctionFromTypeRef()))
  8146. {
  8147. BfTypeInstance* unspecializedDelegateType = (BfTypeInstance*)unspecializedType;
  8148. BfTypeInstance* unspecializedGenericDelegateType = unspecializedType->ToGenericTypeInstance();
  8149. BfDelegateInfo* unspecializedDelegateInfo = unspecializedType->GetDelegateInfo();
  8150. bool wantGeneric = false;
  8151. bool isUnspecialized = false;
  8152. auto _CheckType = [&](BfType* type)
  8153. {
  8154. if (type->IsTypeGenericParam())
  8155. wantGeneric = true;
  8156. if (type->IsUnspecializedType())
  8157. isUnspecialized = true;
  8158. };
  8159. bool failed = false;
  8160. bool hasTypeGenerics = false;
  8161. auto returnType = ResolveGenericType(unspecializedDelegateInfo->mReturnType, typeGenericArguments, methodGenericArguments, selfType, allowFail);
  8162. if (returnType == NULL)
  8163. return NULL;
  8164. if (returnType->IsVar())
  8165. return returnType;
  8166. _CheckType(returnType);
  8167. if (returnType->IsGenericParam())
  8168. hasTypeGenerics |= ((BfGenericParamType*)returnType)->mGenericParamKind == BfGenericParamKind_Type;
  8169. Array<BfType*> paramTypes;
  8170. for (auto param : unspecializedDelegateInfo->mParams)
  8171. {
  8172. auto paramType = ResolveGenericType(param, typeGenericArguments, methodGenericArguments, selfType, allowFail);
  8173. if (paramType == NULL)
  8174. return NULL;
  8175. if (paramType->IsVar())
  8176. return paramType;
  8177. paramTypes.Add(paramType);
  8178. _CheckType(paramType);
  8179. }
  8180. if (unspecializedGenericDelegateType == NULL)
  8181. wantGeneric = false;
  8182. //TODO:
  8183. wantGeneric = false;
  8184. BfTypeInstance* delegateType = NULL;
  8185. auto baseDelegateType = ResolveTypeDef(mCompiler->mDelegateTypeDef)->ToTypeInstance();
  8186. if (wantGeneric)
  8187. {
  8188. Array<BfType*> genericArgs;
  8189. for (int genericArgIdx = 0; genericArgIdx < (int)unspecializedGenericDelegateType->mGenericTypeInfo->mTypeGenericArguments.size(); genericArgIdx++)
  8190. {
  8191. BfType* resolvedArg = unspecializedGenericDelegateType->mGenericTypeInfo->mTypeGenericArguments[genericArgIdx];
  8192. if (resolvedArg->IsUnspecializedType())
  8193. {
  8194. resolvedArg = ResolveGenericType(resolvedArg, typeGenericArguments, methodGenericArguments, selfType, allowFail);
  8195. if (resolvedArg == NULL)
  8196. return NULL;
  8197. if (resolvedArg->IsVar())
  8198. return resolvedArg;
  8199. }
  8200. genericArgs.push_back(resolvedArg);
  8201. }
  8202. auto dlgType = mContext->mDelegateTypePool.Get();
  8203. delete dlgType->mGenericTypeInfo;
  8204. dlgType->mGenericTypeInfo = new BfGenericTypeInfo();
  8205. dlgType->mGenericTypeInfo->mFinishedGenericParams = true;
  8206. dlgType->mGenericTypeInfo->mIsUnspecialized = false;
  8207. dlgType->mGenericTypeInfo->mIsUnspecializedVariation = false;
  8208. dlgType->mGenericTypeInfo->mTypeGenericArguments = genericArgs;
  8209. for (int genericArgIdx = 0; genericArgIdx < (int)unspecializedGenericDelegateType->mGenericTypeInfo->mTypeGenericArguments.size(); genericArgIdx++)
  8210. {
  8211. auto typeGenericArg = genericArgs[genericArgIdx];
  8212. if ((typeGenericArg->IsGenericParam()) || (typeGenericArg->IsUnspecializedType()))
  8213. dlgType->mGenericTypeInfo->mIsUnspecialized = true;
  8214. dlgType->mGenericTypeInfo->mGenericParams.push_back(unspecializedGenericDelegateType->mGenericTypeInfo->mGenericParams[genericArgIdx]->AddRef());
  8215. }
  8216. CheckUnspecializedGenericType(dlgType, BfPopulateType_Identity);
  8217. if (isUnspecialized)
  8218. {
  8219. dlgType->mGenericTypeInfo->mIsUnspecialized = true;
  8220. dlgType->mGenericTypeInfo->mIsUnspecializedVariation = true;
  8221. }
  8222. dlgType->mIsUnspecializedType = dlgType->mGenericTypeInfo->mIsUnspecialized;
  8223. dlgType->mIsUnspecializedTypeVariation = dlgType->mGenericTypeInfo->mIsUnspecializedVariation;
  8224. delegateType = dlgType;
  8225. }
  8226. else
  8227. {
  8228. auto dlgType = mContext->mDelegateTypePool.Get();
  8229. dlgType->mIsUnspecializedType = isUnspecialized;
  8230. dlgType->mIsUnspecializedTypeVariation = isUnspecialized;
  8231. delegateType = dlgType;
  8232. }
  8233. delete delegateType->mTypeDef;
  8234. delegateType->mTypeDef = NULL;
  8235. BfDelegateInfo* delegateInfo = delegateType->GetDelegateInfo();
  8236. delegateInfo->mParams.Clear();
  8237. BfTypeDef* typeDef = new BfTypeDef();
  8238. typeDef->mProject = baseDelegateType->mTypeDef->mProject;
  8239. typeDef->mSystem = mCompiler->mSystem;
  8240. typeDef->mName = mSystem->mEmptyAtom;
  8241. typeDef->mTypeCode = unspecializedDelegateType->mTypeDef->mTypeCode;
  8242. typeDef->mIsDelegate = unspecializedDelegateType->mTypeDef->mIsDelegate;
  8243. typeDef->mIsFunction = unspecializedDelegateType->mTypeDef->mIsFunction;
  8244. BfMethodDef* unspecializedInvokeMethodDef = unspecializedDelegateType->mTypeDef->GetMethodByName("Invoke");
  8245. BfMethodDef* methodDef = new BfMethodDef();
  8246. methodDef->mDeclaringType = typeDef;
  8247. methodDef->mName = "Invoke";
  8248. methodDef->mProtection = BfProtection_Public;
  8249. methodDef->mIdx = 0;
  8250. methodDef->mIsStatic = !typeDef->mIsDelegate && !unspecializedDelegateInfo->mHasExplicitThis;
  8251. methodDef->mHasExplicitThis = unspecializedDelegateInfo->mHasExplicitThis;
  8252. auto directTypeRef = BfAstNode::ZeroedAlloc<BfDirectTypeReference>();
  8253. delegateInfo->mDirectAllocNodes.push_back(directTypeRef);
  8254. if (typeDef->mIsDelegate)
  8255. directTypeRef->Init(delegateType);
  8256. else
  8257. directTypeRef->Init(ResolveTypeDef(mCompiler->mFunctionTypeDef));
  8258. typeDef->mBaseTypes.push_back(directTypeRef);
  8259. directTypeRef = BfAstNode::ZeroedAlloc<BfDirectTypeReference>();
  8260. delegateInfo->mDirectAllocNodes.push_back(directTypeRef);
  8261. directTypeRef->Init(returnType);
  8262. methodDef->mReturnTypeRef = directTypeRef;
  8263. delegateInfo->mReturnType = returnType;
  8264. delegateInfo->mHasExplicitThis = unspecializedDelegateInfo->mHasExplicitThis;
  8265. delegateInfo->mHasVarArgs = unspecializedDelegateInfo->mHasVarArgs;
  8266. int paramIdx = 0;
  8267. for (int paramIdx = 0; paramIdx < (int)paramTypes.size(); paramIdx++)
  8268. {
  8269. auto paramType = paramTypes[paramIdx];
  8270. BfParameterDef* unspecializedParamDef = unspecializedInvokeMethodDef->mParams[paramIdx];
  8271. if (!paramType->IsReified())
  8272. delegateType->mIsReified = false;
  8273. auto directTypeRef = BfAstNode::ZeroedAlloc<BfDirectTypeReference>();
  8274. delegateInfo->mDirectAllocNodes.push_back(directTypeRef);
  8275. directTypeRef->Init(paramType);
  8276. BfParameterDef* paramDef = new BfParameterDef();
  8277. paramDef->mParamKind = unspecializedParamDef->mParamKind;
  8278. paramDef->mTypeRef = directTypeRef;
  8279. paramDef->mName = unspecializedParamDef->mName;
  8280. methodDef->mParams.push_back(paramDef);
  8281. delegateInfo->mParams.Add(paramType);
  8282. }
  8283. typeDef->mMethods.push_back(methodDef);
  8284. if (unspecializedInvokeMethodDef->mIsMutating)
  8285. {
  8286. if ((delegateInfo->mParams[0]->IsValueType()) || (delegateInfo->mParams[0]->IsGenericParam()))
  8287. methodDef->mIsMutating = unspecializedInvokeMethodDef->mIsMutating;
  8288. }
  8289. //
  8290. if (typeDef->mIsDelegate)
  8291. {
  8292. BfDefBuilder::AddMethod(typeDef, BfMethodType_Ctor, BfProtection_Public, false, "");
  8293. BfDefBuilder::AddDynamicCastMethods(typeDef, true);
  8294. }
  8295. delegateType->mContext = mContext;
  8296. delegateType->mTypeDef = typeDef;
  8297. BfType* resolvedType = NULL;
  8298. if (!failed)
  8299. resolvedType = ResolveType(delegateType, BfPopulateType_Identity);
  8300. if (resolvedType == delegateType)
  8301. {
  8302. AddDependency(directTypeRef->mType, delegateType, BfDependencyMap::DependencyFlag_ParamOrReturnValue);
  8303. for (auto paramType : paramTypes)
  8304. AddDependency(paramType, delegateType, BfDependencyMap::DependencyFlag_ParamOrReturnValue);
  8305. }
  8306. else
  8307. {
  8308. delegateType->Dispose();
  8309. mContext->mDelegateTypePool.GiveBack((BfDelegateType*)delegateType);
  8310. }
  8311. BF_ASSERT((resolvedType == NULL) || resolvedType->IsTypeInstance() || resolvedType->IsPrimitiveType());
  8312. return resolvedType;
  8313. }
  8314. if (unspecializedType->IsGenericTypeInstance())
  8315. {
  8316. auto genericTypeInst = (BfTypeInstance*)unspecializedType;
  8317. BfTypeVector genericArgs;
  8318. for (auto genericArg : genericTypeInst->mGenericTypeInfo->mTypeGenericArguments)
  8319. {
  8320. if (genericArg->IsUnspecializedType())
  8321. {
  8322. auto resolvedArg = ResolveGenericType(genericArg, typeGenericArguments, methodGenericArguments, selfType, allowFail);
  8323. if (resolvedArg == NULL)
  8324. return NULL;
  8325. if (resolvedArg->IsVar())
  8326. return resolvedArg;
  8327. genericArgs.push_back(resolvedArg);
  8328. }
  8329. else
  8330. genericArgs.push_back(genericArg);
  8331. }
  8332. auto resolvedType = ResolveTypeDef(genericTypeInst->mTypeDef->GetDefinition(), genericArgs, BfPopulateType_BaseType);
  8333. BfTypeInstance* specializedType = NULL;
  8334. if (resolvedType != NULL)
  8335. specializedType = resolvedType->ToGenericTypeInstance();
  8336. if (specializedType != NULL)
  8337. {
  8338. if (specializedType->mGenericTypeInfo->mHadValidateErrors)
  8339. return NULL;
  8340. }
  8341. return specializedType;
  8342. }
  8343. return unspecializedType;
  8344. }
  8345. BfType* BfModule::ResolveSelfType(BfType* type, BfType* selfType)
  8346. {
  8347. if (!type->IsUnspecializedTypeVariation())
  8348. return type;
  8349. BfType* resolvedType = ResolveGenericType(type, NULL, NULL, selfType);
  8350. if (resolvedType != NULL)
  8351. return resolvedType;
  8352. return type;
  8353. }
  8354. BfType* BfModule::ResolveType(BfType* lookupType, BfPopulateType populateType, BfResolveTypeRefFlags resolveFlags)
  8355. {
  8356. BfResolvedTypeSet::LookupContext lookupCtx;
  8357. lookupCtx.mModule = this;
  8358. lookupCtx.mResolveFlags = resolveFlags;
  8359. BfResolvedTypeSet::EntryRef resolvedEntry;
  8360. bool inserted = mContext->mResolvedTypes.Insert(lookupType, &lookupCtx, &resolvedEntry);
  8361. if (!resolvedEntry)
  8362. return NULL;
  8363. if (!inserted)
  8364. {
  8365. auto resolvedTypeRef = resolvedEntry->mValue;
  8366. PopulateType(resolvedTypeRef, populateType);
  8367. return resolvedTypeRef;
  8368. }
  8369. if (lookupType->IsGenericTypeInstance())
  8370. CheckUnspecializedGenericType((BfTypeInstance*)lookupType, populateType);
  8371. if (lookupType->IsTuple())
  8372. {
  8373. auto tupleType = (BfTupleType*)lookupType;
  8374. tupleType->Finish();
  8375. }
  8376. resolvedEntry->mValue = lookupType;
  8377. InitType(lookupType, populateType);
  8378. return lookupType;
  8379. }
  8380. bool BfModule::IsUnboundGeneric(BfType* type)
  8381. {
  8382. if (type->IsVar())
  8383. return true;
  8384. if (!type->IsGenericParam())
  8385. return false;
  8386. auto genericParamInst = GetGenericParamInstance((BfGenericParamType*)type);
  8387. return (genericParamInst->mGenericParamFlags & BfGenericParamFlag_Var) != 0;
  8388. }
  8389. BfGenericParamInstance* BfModule::GetGenericTypeParamInstance(int genericParamIdx, BfFailHandleKind failHandleKind)
  8390. {
  8391. // When we're evaluating a method, make sure the params refer back to that method context
  8392. auto curTypeInstance = mCurTypeInstance;
  8393. //TODO: This caused MethodToString issues with interface "implementation method not found" errors
  8394. // if (mCurMethodInstance != NULL)
  8395. // curTypeInstance = mCurMethodInstance->mMethodInstanceGroup->mOwner;
  8396. BfTypeInstance* genericTypeInst = curTypeInstance->ToGenericTypeInstance();
  8397. if (genericTypeInst == NULL)
  8398. {
  8399. FatalError("Invalid mCurTypeInstance for GetGenericTypeParamInstance", failHandleKind);
  8400. return NULL;
  8401. }
  8402. if ((genericTypeInst->IsIncomplete()) && (genericTypeInst->mGenericTypeInfo->mGenericParams.size() == 0))
  8403. {
  8404. // Set this to NULL so we don't recurse infinitely
  8405. SetAndRestoreValue<BfTypeInstance*> prevTypeInst(mCurTypeInstance, NULL);
  8406. PopulateType(genericTypeInst, BfPopulateType_Declaration);
  8407. }
  8408. if (genericParamIdx >= (int)genericTypeInst->mGenericTypeInfo->mTypeGenericArguments.size())
  8409. {
  8410. if (genericParamIdx >= genericTypeInst->mGenericTypeInfo->mGenericParams.mSize)
  8411. FatalError("Invalid GetGenericTypeParamInstance");
  8412. // Extern constraints should always be directly used - they don't get extended
  8413. return genericTypeInst->mGenericTypeInfo->mGenericParams[genericParamIdx];
  8414. }
  8415. if (genericTypeInst->mGenericTypeInfo->mGenericExtensionInfo != NULL)
  8416. {
  8417. bool isAutocomplete = (mCompiler->mResolvePassData != NULL) && (mCompiler->mResolvePassData->mAutoComplete != NULL);
  8418. auto activeTypeDef = GetActiveTypeDef(NULL, true);
  8419. if ((activeTypeDef->mTypeDeclaration != genericTypeInst->mTypeDef->mTypeDeclaration) && (activeTypeDef->IsExtension()) &&
  8420. ((genericTypeInst->mTypeDef->ContainsPartial(activeTypeDef)) || (isAutocomplete)))
  8421. {
  8422. BfTypeDef* lookupTypeDef = activeTypeDef;
  8423. while (lookupTypeDef->mNestDepth > genericTypeInst->mTypeDef->mNestDepth)
  8424. lookupTypeDef = lookupTypeDef->mOuterType;
  8425. BfGenericExtensionEntry* genericExEntry;
  8426. if (genericTypeInst->mGenericTypeInfo->mGenericExtensionInfo->mExtensionMap.TryGetValue(lookupTypeDef, &genericExEntry))
  8427. {
  8428. return genericExEntry->mGenericParams[genericParamIdx];
  8429. }
  8430. else
  8431. {
  8432. if (!isAutocomplete)
  8433. {
  8434. FatalError("Invalid GetGenericParamInstance with extension");
  8435. }
  8436. }
  8437. }
  8438. }
  8439. BF_ASSERT(genericTypeInst != NULL);
  8440. return genericTypeInst->mGenericTypeInfo->mGenericParams[genericParamIdx];
  8441. }
  8442. void BfModule::GetActiveTypeGenericParamInstances(SizedArray<BfGenericParamInstance*, 4>& genericParamInstances)
  8443. {
  8444. // When we're evaluating a method, make sure the params refer back to that method context
  8445. auto curTypeInstance = mCurTypeInstance;
  8446. if (mCurMethodInstance != NULL)
  8447. curTypeInstance = mCurMethodInstance->mMethodInstanceGroup->mOwner;
  8448. BfTypeInstance* genericTypeInst = curTypeInstance->ToGenericTypeInstance();
  8449. if ((genericTypeInst->IsIncomplete()) && (genericTypeInst->mGenericTypeInfo->mGenericParams.size() == 0))
  8450. {
  8451. // Set this to NULL so we don't recurse infinitely
  8452. SetAndRestoreValue<BfTypeInstance*> prevTypeInst(mCurTypeInstance, NULL);
  8453. PopulateType(genericTypeInst, BfPopulateType_Declaration);
  8454. }
  8455. if (genericTypeInst->mGenericTypeInfo->mGenericExtensionInfo != NULL)
  8456. {
  8457. // Note: original version had useMixinDecl set. Was there a reason for that? Causes issue 2118
  8458. auto activeTypeDef = GetActiveTypeDef(NULL);
  8459. if ((activeTypeDef->mTypeDeclaration != genericTypeInst->mTypeDef->mTypeDeclaration) && (activeTypeDef->IsExtension()))
  8460. {
  8461. BfTypeDef* lookupTypeDef = activeTypeDef;
  8462. while (lookupTypeDef->mNestDepth > genericTypeInst->mTypeDef->mNestDepth)
  8463. lookupTypeDef = lookupTypeDef->mOuterType;
  8464. BfGenericExtensionEntry* genericExEntry;
  8465. if (genericTypeInst->mGenericTypeInfo->mGenericExtensionInfo->mExtensionMap.TryGetValue(lookupTypeDef, &genericExEntry))
  8466. {
  8467. for (auto entry : genericExEntry->mGenericParams)
  8468. genericParamInstances.Add(entry);
  8469. auto genericTypeInfo = genericTypeInst->mGenericTypeInfo;
  8470. // Add root extern constraints - they don't get extended
  8471. for (int genericParamIdx = (int)genericTypeInst->mGenericTypeInfo->mTypeGenericArguments.size(); genericParamIdx < genericTypeInst->mGenericTypeInfo->mGenericParams.size(); genericParamIdx++)
  8472. genericParamInstances.Add(genericTypeInst->mGenericTypeInfo->mGenericParams[genericParamIdx]);
  8473. return;
  8474. }
  8475. else
  8476. {
  8477. if ((mCompiler->mResolvePassData == NULL) || (mCompiler->mResolvePassData->mAutoComplete == NULL))
  8478. {
  8479. BFMODULE_FATAL(this, "Invalid GetGenericParamInstance with extension");
  8480. }
  8481. }
  8482. }
  8483. }
  8484. BF_ASSERT(genericTypeInst != NULL);
  8485. for (auto entry : genericTypeInst->mGenericTypeInfo->mGenericParams)
  8486. genericParamInstances.Add(entry);
  8487. }
  8488. BfGenericParamInstance* BfModule::GetMergedGenericParamData(BfType* type, BfGenericParamFlags& outFlags, BfType*& outTypeConstraint)
  8489. {
  8490. BfGenericParamType* genericParamType = NULL;
  8491. if (type->IsGenericParam())
  8492. genericParamType = (BfGenericParamType*)type;
  8493. BfGenericParamInstance* genericParam = NULL;
  8494. if (genericParamType != NULL)
  8495. {
  8496. genericParam = GetGenericParamInstance(genericParamType);
  8497. outFlags = (BfGenericParamFlags)(outFlags | genericParam->mGenericParamFlags);
  8498. if (genericParam->mTypeConstraint != NULL)
  8499. outTypeConstraint = genericParam->mTypeConstraint;
  8500. }
  8501. else
  8502. {
  8503. outFlags = BfGenericParamFlag_None;
  8504. outTypeConstraint = NULL;
  8505. if ((mCurTypeInstance != NULL) && (mCurTypeInstance->mGenericTypeInfo != NULL))
  8506. {
  8507. for (int genericIdx = mCurTypeInstance->mTypeDef->mGenericParamDefs.mSize; genericIdx < mCurTypeInstance->mGenericTypeInfo->mGenericParams.mSize; genericIdx++)
  8508. {
  8509. auto genericParam = mCurTypeInstance->mGenericTypeInfo->mGenericParams[genericIdx];
  8510. if (genericParam->mExternType == type)
  8511. {
  8512. outFlags = (BfGenericParamFlags)(outFlags | genericParam->mGenericParamFlags);
  8513. if (genericParam->mTypeConstraint != NULL)
  8514. outTypeConstraint = genericParam->mTypeConstraint;
  8515. }
  8516. }
  8517. }
  8518. }
  8519. // Check method generic constraints
  8520. if ((mCurMethodInstance != NULL) && (mCurMethodInstance->mIsUnspecialized) && (mCurMethodInstance->mMethodInfoEx != NULL))
  8521. {
  8522. for (int genericParamIdx = (int)mCurMethodInstance->mMethodInfoEx->mMethodGenericArguments.size();
  8523. genericParamIdx < mCurMethodInstance->mMethodInfoEx->mGenericParams.size(); genericParamIdx++)
  8524. {
  8525. auto genericParam = mCurMethodInstance->mMethodInfoEx->mGenericParams[genericParamIdx];
  8526. if (genericParam->mExternType == type)
  8527. {
  8528. outFlags = (BfGenericParamFlags)(outFlags | genericParam->mGenericParamFlags);
  8529. if (genericParam->mTypeConstraint != NULL)
  8530. outTypeConstraint = genericParam->mTypeConstraint;
  8531. }
  8532. }
  8533. }
  8534. return genericParam;
  8535. }
  8536. BfGenericParamInstance* BfModule::GetGenericParamInstance(BfGenericParamType* type, bool checkMixinBind, BfFailHandleKind failHandleKind)
  8537. {
  8538. if (type->mGenericParamKind == BfGenericParamKind_Method)
  8539. {
  8540. auto curGenericMethodInstance = mCurMethodInstance;
  8541. if ((mCurMethodState != NULL) && (mCurMethodState->mMixinState != NULL))
  8542. {
  8543. if ((checkMixinBind) || (mCurMethodState->mMixinState->mUseMixinGenerics))
  8544. curGenericMethodInstance = mCurMethodState->mMixinState->mMixinMethodInstance;
  8545. }
  8546. if ((curGenericMethodInstance == NULL) || (curGenericMethodInstance->mMethodInfoEx == NULL) || (type->mGenericParamIdx >= curGenericMethodInstance->mMethodInfoEx->mGenericParams.mSize))
  8547. {
  8548. if (failHandleKind == Beefy::BfFailHandleKind_Normal)
  8549. FatalError("Invalid GetGenericParamInstance method generic param");
  8550. else if (failHandleKind == Beefy::BfFailHandleKind_Soft)
  8551. InternalError("Invalid GetGenericParamInstance method generic param");
  8552. return NULL;
  8553. }
  8554. return curGenericMethodInstance->mMethodInfoEx->mGenericParams[type->mGenericParamIdx];
  8555. }
  8556. return GetGenericTypeParamInstance(type->mGenericParamIdx, failHandleKind);
  8557. }
  8558. bool BfModule::ResolveTypeResult_Validate(BfAstNode* typeRef, BfType* resolvedTypeRef)
  8559. {
  8560. if ((typeRef == NULL) || (resolvedTypeRef == NULL))
  8561. return true;
  8562. BfTypeInstance* genericTypeInstance = resolvedTypeRef->ToGenericTypeInstance();
  8563. if ((genericTypeInstance != NULL) && (genericTypeInstance != mCurTypeInstance))
  8564. {
  8565. bool doValidate = (genericTypeInstance->mGenericTypeInfo->mHadValidateErrors) ||
  8566. (!genericTypeInstance->mGenericTypeInfo->mValidatedGenericConstraints) ||
  8567. (genericTypeInstance->mGenericTypeInfo->mIsUnspecializedVariation);
  8568. if ((mCurMethodInstance != NULL) && (mCurMethodInstance->IsOrInUnspecializedVariation()))
  8569. doValidate = false;
  8570. if (mCurTypeInstance != NULL)
  8571. {
  8572. if (mCurTypeInstance->IsUnspecializedTypeVariation())
  8573. doValidate = false;
  8574. if (auto curGenericTypeInstance = mCurTypeInstance->ToGenericTypeInstance())
  8575. {
  8576. if ((curGenericTypeInstance->mDependencyMap.mMinDependDepth > 32) &&
  8577. (genericTypeInstance->mDependencyMap.mMinDependDepth > 32))
  8578. {
  8579. Fail(StrFormat("Generic type dependency depth exceeded for type '%s'", TypeToString(genericTypeInstance).c_str()), typeRef);
  8580. return false;
  8581. }
  8582. if (curGenericTypeInstance->mGenericTypeInfo->mHadValidateErrors)
  8583. doValidate = false;
  8584. }
  8585. if ((mContext->mCurTypeState != NULL) && (mContext->mCurTypeState->mCurBaseTypeRef != NULL) && (!mContext->mCurTypeState->mType->IsTypeAlias())) // We validate constraints for base types later
  8586. doValidate = false;
  8587. }
  8588. if (doValidate)
  8589. ValidateGenericConstraints(typeRef, genericTypeInstance, false);
  8590. }
  8591. if (auto genericInstanceTypeRef = BfNodeDynCastExact<BfGenericInstanceTypeRef>(typeRef))
  8592. {
  8593. if (genericTypeInstance != NULL)
  8594. {
  8595. auto genericTypeInfo = genericTypeInstance->GetGenericTypeInfo();
  8596. for (int argIdx = 0; argIdx < (int)genericInstanceTypeRef->mGenericArguments.size(); argIdx++)
  8597. {
  8598. ResolveTypeResult_Validate(genericInstanceTypeRef->mGenericArguments[argIdx], genericTypeInfo->mTypeGenericArguments[argIdx]);
  8599. }
  8600. }
  8601. }
  8602. else if (auto elementedTypeRef = BfNodeDynCast<BfElementedTypeRef>(typeRef))
  8603. {
  8604. return ResolveTypeResult_Validate(elementedTypeRef, resolvedTypeRef->GetUnderlyingType());
  8605. }
  8606. return true;
  8607. }
  8608. BfType* BfModule::SafeResolveAliasType(BfTypeAliasType* aliasType)
  8609. {
  8610. int aliasDepth = 0;
  8611. HashSet<BfType*> seenAliases;
  8612. BfType* type = aliasType;
  8613. while (type->IsTypeAlias())
  8614. {
  8615. aliasDepth++;
  8616. if (aliasDepth > 8)
  8617. {
  8618. if (!seenAliases.Add(type))
  8619. return NULL;
  8620. }
  8621. type = type->GetUnderlyingType();
  8622. if (type == NULL)
  8623. return NULL;
  8624. }
  8625. return type;
  8626. }
  8627. BfType* BfModule::ResolveTypeResult(BfTypeReference* typeRef, BfType* resolvedTypeRef, BfPopulateType populateType, BfResolveTypeRefFlags resolveFlags)
  8628. {
  8629. if ((mCompiler->mIsResolveOnly) && (!IsInSpecializedSection()))
  8630. {
  8631. bool isGetDefinition = false;
  8632. BfAutoComplete* autoComplete = NULL;
  8633. if (mCompiler->IsAutocomplete())
  8634. {
  8635. autoComplete = mCompiler->mResolvePassData->mAutoComplete;
  8636. isGetDefinition = autoComplete->mIsGetDefinition || (autoComplete->mResolveType == BfResolveType_GetResultString);
  8637. }
  8638. BfSourceData* typeRefSource = NULL;
  8639. if (typeRef->IsTemporary())
  8640. {
  8641. BfTypeReference* checkTypeRef = typeRef;
  8642. if (auto genericTypeRef = BfNodeDynCast<BfGenericInstanceTypeRef>(checkTypeRef))
  8643. checkTypeRef = genericTypeRef->mElementType;
  8644. if (auto namedTypeRef = BfNodeDynCast<BfNamedTypeReference>(checkTypeRef))
  8645. typeRefSource = namedTypeRef->mNameNode->GetSourceData();
  8646. }
  8647. else
  8648. typeRefSource = typeRef->GetSourceData();
  8649. BfSourceClassifier* sourceClassifier = NULL;
  8650. if ((mCompiler->mResolvePassData->mIsClassifying) && (typeRefSource != NULL))
  8651. {
  8652. auto parser = typeRefSource->ToParser();
  8653. if (parser != NULL)
  8654. sourceClassifier = mCompiler->mResolvePassData->GetSourceClassifier(parser);
  8655. }
  8656. bool wantsFileNamespaceInfo = ((sourceClassifier != NULL) || (isGetDefinition) || (mCompiler->mResolvePassData->mGetSymbolReferenceKind == BfGetSymbolReferenceKind_Namespace));
  8657. bool wantsAllNamespaceInfo = (mCompiler->mResolvePassData->mGetSymbolReferenceKind == BfGetSymbolReferenceKind_Namespace) && (mCompiler->mResolvePassData->mParsers.IsEmpty());
  8658. if (wantsFileNamespaceInfo || wantsAllNamespaceInfo)
  8659. {
  8660. //TODO: By only breaking out for "mIgnoreErrors", we classified elements (below) even when a resolvedTypeRef was not found!
  8661. //Why did we have this mIgnoreErrors check in there?
  8662. // if ((resolvedTypeRef == NULL) && (mIgnoreErrors))
  8663. if (resolvedTypeRef == NULL)
  8664. {
  8665. return NULL;
  8666. }
  8667. BfTypeInstance* resolvedTypeInstance = NULL;
  8668. if (resolvedTypeRef != NULL)
  8669. resolvedTypeInstance = resolvedTypeRef->ToTypeInstance();
  8670. bool isNamespace = false;
  8671. auto checkTypeRef = typeRef;
  8672. if (auto genericTypeRef = BfNodeDynCast<BfGenericInstanceTypeRef>(checkTypeRef))
  8673. checkTypeRef = genericTypeRef->mElementType;
  8674. auto headTypeRef = checkTypeRef;
  8675. if (auto elementedTypeRef = BfNodeDynCast<BfElementedTypeRef>(checkTypeRef))
  8676. checkTypeRef = elementedTypeRef->mElementType;
  8677. if (!mIsInsideAutoComplete)
  8678. {
  8679. if ((resolvedTypeInstance != NULL) && (resolvedTypeInstance->mTypeDef->IsGlobalsContainer()))
  8680. {
  8681. isNamespace = true;
  8682. }
  8683. else
  8684. {
  8685. //TODO: This broke colorizing of inner expressions for things like "T2[T3]"
  8686. //mCompiler->mResolvePassData->mSourceClassifier->VisitChildNoRef(typeRef);
  8687. }
  8688. }
  8689. BfSourceElementType elemType = BfSourceElementType_Type;
  8690. {
  8691. auto type = resolvedTypeRef;
  8692. if (type->IsTypeAlias())
  8693. {
  8694. type = SafeResolveAliasType((BfTypeAliasType*)type);
  8695. if (type == NULL)
  8696. type = resolvedTypeRef;
  8697. }
  8698. if (type->IsInterface())
  8699. elemType = BfSourceElementType_Interface;
  8700. else if (type->IsObject())
  8701. elemType = BfSourceElementType_RefType;
  8702. else if (type->IsGenericParam())
  8703. elemType = BfSourceElementType_GenericParam;
  8704. else if (type->IsPrimitiveType())
  8705. elemType = BfSourceElementType_PrimitiveType;
  8706. else if (type->IsStruct() || (type->IsTypedPrimitive() && !type->IsEnum()))
  8707. elemType = BfSourceElementType_Struct;
  8708. }
  8709. while (auto qualifiedTypeRef = BfNodeDynCast<BfQualifiedTypeReference>(checkTypeRef))
  8710. {
  8711. if ((sourceClassifier != NULL) && (checkTypeRef == headTypeRef) && (elemType != BfSourceElementType_Type))
  8712. sourceClassifier->SetElementType(qualifiedTypeRef->mRight, elemType);
  8713. StringView leftString = qualifiedTypeRef->mLeft->ToStringView();
  8714. BfSizedAtomComposite leftComposite;
  8715. bool isValid = mSystem->ParseAtomComposite(leftString, leftComposite);
  8716. if (sourceClassifier != NULL)
  8717. sourceClassifier->SetHighestElementType(qualifiedTypeRef->mRight, isNamespace ? BfSourceElementType_Namespace : BfSourceElementType_Type);
  8718. if (resolvedTypeInstance == NULL)
  8719. {
  8720. if ((isValid) && (mCompiler->mSystem->ContainsNamespace(leftComposite, mCurTypeInstance->mTypeDef->mProject)))
  8721. isNamespace = true;
  8722. }
  8723. else if ((isValid) && (resolvedTypeInstance->mTypeDef->mNamespace.EndsWith(leftComposite)) && (resolvedTypeInstance->mTypeDef->mOuterType == NULL))
  8724. {
  8725. if (autoComplete != NULL)
  8726. {
  8727. if (autoComplete->CheckFixit(typeRef))
  8728. autoComplete->FixitCheckNamespace(GetActiveTypeDef(), qualifiedTypeRef->mLeft, qualifiedTypeRef->mDot);
  8729. autoComplete->CheckNamespace(qualifiedTypeRef->mLeft, resolvedTypeInstance->mTypeDef->mNamespace);
  8730. }
  8731. mCompiler->mResolvePassData->HandleNamespaceReference(qualifiedTypeRef->mLeft, resolvedTypeInstance->mTypeDef->mNamespace);
  8732. isNamespace = true;
  8733. }
  8734. checkTypeRef = qualifiedTypeRef->mLeft;
  8735. }
  8736. if (auto namedTypeRef = BfNodeDynCast<BfNamedTypeReference>(checkTypeRef))
  8737. {
  8738. auto checkNameNode = namedTypeRef->mNameNode;
  8739. bool setType = false;
  8740. if ((sourceClassifier != NULL) && (checkTypeRef == headTypeRef) && (elemType != BfSourceElementType_Type))
  8741. {
  8742. if (auto qualifiedNameNode = BfNodeDynCast<BfQualifiedNameNode>(checkNameNode))
  8743. {
  8744. sourceClassifier->SetElementType(qualifiedNameNode->mRight, elemType);
  8745. }
  8746. else
  8747. {
  8748. setType = true;
  8749. sourceClassifier->SetElementType(checkNameNode, elemType);
  8750. }
  8751. }
  8752. while (auto qualifiedNameNode = BfNodeDynCast<BfQualifiedNameNode>(checkNameNode))
  8753. {
  8754. StringView leftString = qualifiedNameNode->mLeft->ToStringView();
  8755. BfSizedAtomComposite leftComposite;
  8756. bool isValid = mSystem->ParseAtomComposite(leftString, leftComposite);
  8757. if (sourceClassifier != NULL)
  8758. sourceClassifier->SetHighestElementType(qualifiedNameNode->mRight, isNamespace ? BfSourceElementType_Namespace : BfSourceElementType_Type);
  8759. if (resolvedTypeInstance == NULL)
  8760. {
  8761. if ((isValid) && (mCompiler->mSystem->ContainsNamespace(leftComposite, mCurTypeInstance->mTypeDef->mProject)))
  8762. isNamespace = true;
  8763. }
  8764. else if ((isValid) && (resolvedTypeInstance->mTypeDef->mOuterType == NULL) && (resolvedTypeInstance->mTypeDef->mNamespace.EndsWith(leftComposite)))
  8765. {
  8766. if (autoComplete != NULL)
  8767. {
  8768. if (autoComplete->CheckFixit(typeRef))
  8769. autoComplete->FixitCheckNamespace(GetActiveTypeDef(), qualifiedNameNode->mLeft, qualifiedNameNode->mDot);
  8770. autoComplete->CheckNamespace(qualifiedNameNode->mLeft, resolvedTypeInstance->mTypeDef->mNamespace);
  8771. }
  8772. mCompiler->mResolvePassData->HandleNamespaceReference(qualifiedNameNode->mLeft, resolvedTypeInstance->mTypeDef->mNamespace);
  8773. isNamespace = true;
  8774. }
  8775. checkNameNode = qualifiedNameNode->mLeft;
  8776. }
  8777. if ((sourceClassifier != NULL) &&
  8778. ((!setType) || (checkNameNode != namedTypeRef->mNameNode)))
  8779. sourceClassifier->SetHighestElementType(checkNameNode, isNamespace ? BfSourceElementType_Namespace : BfSourceElementType_Type);
  8780. }
  8781. }
  8782. if (((mCompiler->mResolvePassData->mGetSymbolReferenceKind == BfGetSymbolReferenceKind_Type) || (isGetDefinition)) &&
  8783. ((resolveFlags & BfResolveTypeRefFlag_FromIndirectSource) == 0) && (resolvedTypeRef != NULL) && (typeRefSource != NULL))
  8784. {
  8785. BfAstNode* elementTypeRef = typeRef;
  8786. if (auto namedTypeRef = BfNodeDynCast<BfNamedTypeReference>(elementTypeRef))
  8787. elementTypeRef = namedTypeRef->mNameNode;
  8788. if (elementTypeRef != NULL)
  8789. {
  8790. BfType* elementType = resolvedTypeRef;
  8791. if (BfTypeInstance* elementTypeInst = elementType->ToTypeInstance())
  8792. {
  8793. mCompiler->mResolvePassData->HandleTypeReference(elementTypeRef, elementTypeInst->mTypeDef);
  8794. if (mCompiler->IsAutocomplete())
  8795. {
  8796. BfAutoComplete* autoComplete = mCompiler->mResolvePassData->mAutoComplete;
  8797. if ((isGetDefinition) && (autoComplete->IsAutocompleteNode(elementTypeRef)))
  8798. {
  8799. BfAstNode* baseNode = elementTypeRef;
  8800. while (true)
  8801. {
  8802. if (auto qualifiedTypeRef = BfNodeDynCast<BfQualifiedTypeReference>(baseNode))
  8803. {
  8804. baseNode = qualifiedTypeRef->mRight;
  8805. }
  8806. else if (auto elementedTypeRef = BfNodeDynCast<BfElementedTypeRef>(baseNode))
  8807. {
  8808. baseNode = elementedTypeRef->mElementType;
  8809. }
  8810. else if (auto namedTypeRef = BfNodeDynCast<BfNamedTypeReference>(baseNode))
  8811. {
  8812. baseNode = namedTypeRef->mNameNode;
  8813. }
  8814. else if (auto qualifiedNameNode = BfNodeDynCast<BfQualifiedNameNode>(baseNode))
  8815. {
  8816. baseNode = qualifiedNameNode->mRight;
  8817. }
  8818. else if (auto declTypeRef = BfNodeDynCast<BfExprModTypeRef>(baseNode))
  8819. {
  8820. baseNode = NULL;
  8821. break;
  8822. }
  8823. else
  8824. break;
  8825. }
  8826. if ((baseNode != NULL) && (autoComplete->IsAutocompleteNode(baseNode)))
  8827. {
  8828. // We didn't have this mDefType check before - why? We always want to catch the FIRST definition,
  8829. // so 'Type?' will catch on 'Type' and not 'Type?'
  8830. if ((autoComplete->mDefType == NULL) &&
  8831. (autoComplete->mDefMethod == NULL) && (autoComplete->mDefField == NULL) &&
  8832. (autoComplete->mDefProp == NULL) && (elementTypeInst->mTypeDef->mTypeDeclaration != NULL))
  8833. {
  8834. autoComplete->mDefType = elementTypeInst->mTypeDef;
  8835. autoComplete->SetDefinitionLocation(elementTypeInst->mTypeDef->mTypeDeclaration->mNameNode);
  8836. }
  8837. if ((autoComplete->mResolveType == BfResolveType_GetResultString) && (resolvedTypeRef != NULL))
  8838. {
  8839. autoComplete->SetResultStringType(resolvedTypeRef);
  8840. }
  8841. }
  8842. }
  8843. }
  8844. }
  8845. }
  8846. }
  8847. }
  8848. if (resolvedTypeRef == NULL)
  8849. return NULL;
  8850. if (mCurTypeInstance == NULL)
  8851. {
  8852. // No deps
  8853. }
  8854. else if (resolvedTypeRef->IsTuple())
  8855. {
  8856. // Add the fields from the tuple as references since those inner fields types would have been explicitly stated, so we need
  8857. // to make sure to record the current type instance as a referring type. This mostly matters for symbol renaming.
  8858. BfTypeInstance* payloadTupleType = (BfTypeInstance*)resolvedTypeRef;
  8859. for (auto& payloadFieldInst : payloadTupleType->mFieldInstances)
  8860. {
  8861. auto payloadFieldType = payloadFieldInst.mResolvedType;
  8862. AddDependency(payloadFieldType, mCurTypeInstance, BfDependencyMap::DependencyFlag_TypeReference);
  8863. }
  8864. }
  8865. else if (resolvedTypeRef->IsDelegateFromTypeRef() || resolvedTypeRef->IsFunctionFromTypeRef())
  8866. {
  8867. auto delegateInfo = resolvedTypeRef->GetDelegateInfo();
  8868. // if (delegateInfo->mFunctionThisType != NULL)
  8869. // AddDependency(delegateInfo->mFunctionThisType, mCurTypeInstance, BfDependencyMap::DependencyFlag_TypeReference);
  8870. AddDependency(delegateInfo->mReturnType, mCurTypeInstance, BfDependencyMap::DependencyFlag_TypeReference);
  8871. for (auto& param : delegateInfo->mParams)
  8872. AddDependency(param, mCurTypeInstance, BfDependencyMap::DependencyFlag_TypeReference);
  8873. }
  8874. BfTypeInstance* typeInstance = resolvedTypeRef->ToTypeInstance();
  8875. BfTypeInstance* genericTypeInstance = resolvedTypeRef->ToGenericTypeInstance();
  8876. auto populateModule = this;
  8877. if ((resolveFlags & BfResolveTypeRefFlag_NoReify) != 0)
  8878. populateModule = mContext->mUnreifiedModule;
  8879. populateModule->PopulateType(resolvedTypeRef, populateType);
  8880. if ((typeInstance != NULL) && (typeInstance->mTypeDef != NULL) && (typeInstance->mTypeDef->mProtection == BfProtection_Internal) &&
  8881. (typeInstance != mCurTypeInstance) && (typeInstance->mTypeDef->mOuterType == NULL) && (!typeRef->IsTemporary()))
  8882. {
  8883. if (!CheckProtection(typeInstance->mTypeDef->mProtection, typeInstance->mTypeDef, false, false))
  8884. Fail(StrFormat("'%s' is inaccessible due to its protection level", TypeToString(typeInstance).c_str()), typeRef); // CS0122
  8885. }
  8886. // If the inner type is definted in an extension then we need to make sure the constraints are good
  8887. if ((typeInstance != NULL) && (typeInstance->mTypeDef != NULL) && (typeInstance->mTypeDef->mOuterType != NULL) &&
  8888. (typeInstance->mTypeDef->mOuterType->mTypeCode == BfTypeCode_Extension))
  8889. {
  8890. auto outerType = GetOuterType(typeInstance);
  8891. if ((outerType->mGenericTypeInfo != NULL) && (outerType->mGenericTypeInfo->mGenericExtensionInfo != NULL))
  8892. {
  8893. if (!outerType->mGenericTypeInfo->mGenericExtensionInfo->mConstraintsPassedSet.IsSet(typeInstance->mTypeDef->mOuterType->mPartialIdx))
  8894. {
  8895. Fail(StrFormat("'%s' is declared inside a type extension whose constraints were not met", TypeToString(typeInstance).c_str()), typeRef);
  8896. }
  8897. }
  8898. }
  8899. if (populateType > BfPopulateType_IdentityNoRemapAlias)
  8900. {
  8901. if (!ResolveTypeResult_Validate(typeRef, resolvedTypeRef))
  8902. return NULL;
  8903. }
  8904. if ((populateType != BfPopulateType_TypeDef) && (populateType != BfPopulateType_IdentityNoRemapAlias))
  8905. {
  8906. int aliasDepth = 0;
  8907. HashSet<BfType*> seenAliases;
  8908. while ((resolvedTypeRef != NULL) && (resolvedTypeRef->IsTypeAlias()))
  8909. {
  8910. aliasDepth++;
  8911. if (aliasDepth > 8)
  8912. {
  8913. if (!seenAliases.Add(resolvedTypeRef))
  8914. {
  8915. if ((typeRef != NULL) && (!typeRef->IsTemporary()))
  8916. Fail(StrFormat("Type alias '%s' has a recursive definition", TypeToString(resolvedTypeRef).c_str()), typeRef);
  8917. break;
  8918. }
  8919. }
  8920. if (mCurTypeInstance != NULL)
  8921. AddDependency(resolvedTypeRef, mCurTypeInstance, BfDependencyMap::DependencyFlag_NameReference);
  8922. if (resolvedTypeRef->mDefineState == BfTypeDefineState_Undefined)
  8923. PopulateType(resolvedTypeRef);
  8924. if ((typeInstance->mCustomAttributes != NULL) && (!typeRef->IsTemporary()))
  8925. CheckErrorAttributes(typeInstance, NULL, NULL, typeInstance->mCustomAttributes, typeRef);
  8926. resolvedTypeRef = resolvedTypeRef->GetUnderlyingType();
  8927. if (resolvedTypeRef != NULL)
  8928. typeInstance = resolvedTypeRef->ToTypeInstance();
  8929. else
  8930. typeInstance = NULL;
  8931. }
  8932. }
  8933. if (typeInstance != NULL)
  8934. {
  8935. if ((!typeRef->IsTemporary()) && ((resolveFlags & BfResolveTypeRefFlag_FromIndirectSource) == 0))
  8936. {
  8937. if (typeInstance->mCustomAttributes != NULL)
  8938. CheckErrorAttributes(typeInstance, NULL, NULL, typeInstance->mCustomAttributes, typeRef);
  8939. else if ((typeInstance->mTypeDef->mTypeDeclaration != NULL) && (typeInstance->mTypeDef->mTypeDeclaration->mAttributes != NULL))
  8940. {
  8941. auto typeRefVerifyRequest = mContext->mTypeRefVerifyWorkList.Alloc();
  8942. typeRefVerifyRequest->mCurTypeInstance = mCurTypeInstance;
  8943. typeRefVerifyRequest->mRefNode = typeRef;
  8944. typeRefVerifyRequest->mType = typeInstance;
  8945. typeRefVerifyRequest->mFromModule = this;
  8946. typeRefVerifyRequest->mFromModuleRevision = mRevision;
  8947. }
  8948. }
  8949. if (typeInstance->IsTuple())
  8950. {
  8951. //TODO: This can cause circular reference issues. Is there a case this is needed?
  8952. //if (typeInstance->mDefineState < BfTypeDefineState_Defined)
  8953. // PopulateType(typeInstance);
  8954. if (typeInstance->mHasDeclError)
  8955. {
  8956. if (auto tupleTypeRef = BfNodeDynCast<BfTupleTypeRef>(typeRef))
  8957. {
  8958. HashSet<String> names;
  8959. for (auto nameIdentifier : tupleTypeRef->mFieldNames)
  8960. {
  8961. if (nameIdentifier == NULL)
  8962. continue;
  8963. StringT<64> fieldName;
  8964. nameIdentifier->ToString(fieldName);
  8965. if (!names.Add(fieldName))
  8966. {
  8967. Fail(StrFormat("A field named '%s' has already been declared", fieldName.c_str()), nameIdentifier);
  8968. }
  8969. }
  8970. }
  8971. }
  8972. }
  8973. }
  8974. return resolvedTypeRef;
  8975. }
  8976. void BfModule::ShowAmbiguousTypeError(BfAstNode* refNode, BfTypeDef* typeDef, BfTypeDef* otherTypeDef)
  8977. {
  8978. BfType* type = ResolveTypeDef(typeDef, BfPopulateType_Identity);
  8979. if (type == NULL)
  8980. return;
  8981. BfType* otherType = ResolveTypeDef(otherTypeDef, BfPopulateType_Identity);
  8982. if (otherType == NULL)
  8983. return;
  8984. auto error = Fail(StrFormat("'%s' is an ambiguous reference between '%s' and '%s'",
  8985. refNode->ToString().c_str(), TypeToString(type, BfTypeNameFlags_None).c_str(), TypeToString(otherType, BfTypeNameFlags_None).c_str()), refNode); // CS0104
  8986. if (error != NULL)
  8987. {
  8988. mCompiler->mPassInstance->MoreInfo("See first definition", typeDef->mTypeDeclaration->mNameNode);
  8989. mCompiler->mPassInstance->MoreInfo("See second definition", otherTypeDef->mTypeDeclaration->mNameNode);
  8990. }
  8991. }
  8992. void BfModule::ShowGenericArgCountError(BfAstNode* typeRef, int wantedGenericParams)
  8993. {
  8994. BfGenericInstanceTypeRef* genericTypeInstRef = BfNodeDynCast<BfGenericInstanceTypeRef>(typeRef);
  8995. BfAstNode* lastNode = typeRef;
  8996. int genericArgDiffCount;
  8997. if (genericTypeInstRef != NULL)
  8998. {
  8999. genericArgDiffCount = (int)genericTypeInstRef->mGenericArguments.size() - wantedGenericParams;
  9000. lastNode = genericTypeInstRef->mOpenChevron;
  9001. if (genericTypeInstRef->mCloseChevron != NULL)
  9002. lastNode = genericTypeInstRef->mCloseChevron;
  9003. if (genericTypeInstRef->mGenericArguments.size() > wantedGenericParams)
  9004. {
  9005. lastNode = genericTypeInstRef->mGenericArguments[wantedGenericParams];
  9006. if (genericArgDiffCount == 1)
  9007. Fail("Too many generic parameters, expected one fewer", lastNode);
  9008. else
  9009. Fail(StrFormat("Too many generic parameters, expected %d fewer", genericArgDiffCount), lastNode);
  9010. return;
  9011. }
  9012. }
  9013. else
  9014. genericArgDiffCount = -wantedGenericParams;
  9015. if (wantedGenericParams == 1)
  9016. Fail("Too few generic parameters, expected one more", lastNode);
  9017. else
  9018. Fail(StrFormat("Too few generic parameters, expected %d more", -genericArgDiffCount), lastNode);
  9019. }
  9020. BfTypeDef* BfModule::GetActiveTypeDef(BfTypeInstance* typeInstanceOverride, bool useMixinDecl, bool useForeignImpl)
  9021. {
  9022. BfTypeDef* useTypeDef = NULL;
  9023. BfTypeInstance* typeInstance = (typeInstanceOverride != NULL) ? typeInstanceOverride : mCurTypeInstance;
  9024. auto curTypeState = mContext->mCurTypeState;
  9025. if (curTypeState != NULL)
  9026. {
  9027. if ((curTypeState->mType != NULL) && (curTypeState->mType != typeInstance))
  9028. curTypeState = NULL;
  9029. }
  9030. if ((curTypeState != NULL) && (curTypeState->mForceActiveTypeDef != NULL))
  9031. return curTypeState->mForceActiveTypeDef;
  9032. if (typeInstance != NULL)
  9033. useTypeDef = typeInstance->mTypeDef->GetDefinition();
  9034. if ((mCurMethodState != NULL) && (mCurMethodState->mMixinState != NULL) && (useMixinDecl))
  9035. useTypeDef = mCurMethodState->mMixinState->mMixinMethodInstance->mMethodDef->mDeclaringType->GetDefinition();
  9036. else if ((mCurMethodInstance != NULL) && (mCurMethodInstance->mMethodDef->mDeclaringType != NULL))
  9037. {
  9038. if ((mCurMethodInstance->mIsForeignMethodDef) && (useForeignImpl))
  9039. {
  9040. // Use the concrete impl typeDef, not the foreign method typedecl (the interface)
  9041. }
  9042. else
  9043. {
  9044. auto declTypeDef = mCurMethodInstance->mMethodDef->mDeclaringType;
  9045. useTypeDef = declTypeDef->GetDefinition(true);
  9046. if ((declTypeDef->IsEmitted()) && (useTypeDef->mIsCombinedPartial))
  9047. {
  9048. // Always consider methods to belong to the primary type declaration
  9049. useTypeDef = useTypeDef->mPartials[0];
  9050. }
  9051. }
  9052. }
  9053. else if (curTypeState != NULL)
  9054. {
  9055. if ((curTypeState->mCurFieldDef != NULL) && (curTypeState->mCurFieldDef->mDeclaringType != NULL))
  9056. useTypeDef = curTypeState->mCurFieldDef->mDeclaringType->GetDefinition(true);
  9057. else if (curTypeState->mCurTypeDef != NULL)
  9058. useTypeDef = curTypeState->mCurTypeDef->GetDefinition(true);
  9059. }
  9060. return useTypeDef;
  9061. }
  9062. BfTypeDef* BfModule::FindTypeDefRaw(const BfAtomComposite& findName, int numGenericArgs, BfTypeInstance* typeInstance, BfTypeDef* useTypeDef, BfTypeLookupError* error, BfTypeLookupResultCtx* lookupResultCtx, BfResolveTypeRefFlags resolveFlags)
  9063. {
  9064. if ((findName.mSize == 1) && (findName.mParts[0]->mIsSystemType))
  9065. {
  9066. //BP_ZONE("BfModule::FindTypeDefRaw_1");
  9067. return mSystem->FindTypeDef(findName, 0, useTypeDef->mProject);
  9068. }
  9069. BfTypeInstance* skipCheckBaseType = NULL;
  9070. if (mContext->mCurTypeState != NULL)
  9071. {
  9072. if (mContext->mCurTypeState->mCurBaseTypeRef != NULL)
  9073. skipCheckBaseType = mContext->mCurTypeState->mType->ToTypeInstance();
  9074. if (mContext->mCurTypeState->mResolveKind == BfTypeState::ResolveKind_BuildingGenericParams)
  9075. skipCheckBaseType = mContext->mCurTypeState->mType->ToTypeInstance();
  9076. }
  9077. BfProject* useProject = useTypeDef->mProject;
  9078. BfTypeDefLookupContext lookupCtx;
  9079. bool allowPrivate = true;
  9080. int curPri = 1000;
  9081. auto checkTypeInst = typeInstance;
  9082. BfTypeDef* protErrorTypeDef = NULL;
  9083. BfTypeInstance* protErrorOuterType = NULL;
  9084. BfTypeDef* foundInnerType = NULL;
  9085. if ((resolveFlags & BfResolveTypeRefFlag_SpecializedProject) != 0)
  9086. {
  9087. if (typeInstance->mGenericTypeInfo->mProjectsReferenced.empty())
  9088. typeInstance->GenerateProjectsReferenced();
  9089. lookupCtx.mCheckProjects = &typeInstance->mGenericTypeInfo->mProjectsReferenced;
  9090. }
  9091. if ((lookupResultCtx != NULL) && (lookupResultCtx->mIsVerify))
  9092. {
  9093. if (lookupResultCtx->mResult->mFoundInnerType)
  9094. return lookupCtx.mBestTypeDef;
  9095. }
  9096. else
  9097. {
  9098. if ((!lookupCtx.HasValidMatch()) && (typeInstance != NULL))
  9099. {
  9100. std::function<bool(BfTypeInstance*)> _CheckType = [&](BfTypeInstance* typeInstance)
  9101. {
  9102. auto checkTypeInst = typeInstance;
  9103. allowPrivate = true;
  9104. while (checkTypeInst != NULL)
  9105. {
  9106. if (!checkTypeInst->mTypeDef->mNestedTypes.IsEmpty())
  9107. {
  9108. if (mSystem->FindTypeDef(findName, numGenericArgs, useProject, checkTypeInst->mTypeDef->mFullNameEx, allowPrivate, &lookupCtx))
  9109. {
  9110. foundInnerType = lookupCtx.mBestTypeDef;
  9111. if (lookupCtx.HasValidMatch())
  9112. return true;
  9113. if ((lookupCtx.mBestTypeDef->mProtection == BfProtection_Private) && (!allowPrivate))
  9114. {
  9115. protErrorTypeDef = lookupCtx.mBestTypeDef;
  9116. protErrorOuterType = checkTypeInst;
  9117. }
  9118. }
  9119. }
  9120. if (checkTypeInst == skipCheckBaseType)
  9121. break;
  9122. checkTypeInst = GetBaseType(checkTypeInst);
  9123. allowPrivate = false;
  9124. }
  9125. checkTypeInst = typeInstance;
  9126. allowPrivate = true;
  9127. while (checkTypeInst != NULL)
  9128. {
  9129. auto outerTypeInst = GetOuterType(checkTypeInst);
  9130. if (outerTypeInst != NULL)
  9131. {
  9132. if (_CheckType(outerTypeInst))
  9133. return true;
  9134. }
  9135. if (checkTypeInst == skipCheckBaseType)
  9136. break;
  9137. checkTypeInst = GetBaseType(checkTypeInst);
  9138. allowPrivate = false;
  9139. }
  9140. return false;
  9141. };
  9142. _CheckType(typeInstance);
  9143. }
  9144. }
  9145. if (!lookupCtx.HasValidMatch())
  9146. {
  9147. if (mSystem->mTypeDefs.TryGet(findName, NULL))
  9148. mSystem->FindTypeDef(findName, numGenericArgs, useProject, BfAtomComposite(), allowPrivate, &lookupCtx);
  9149. for (auto& checkNamespace : useTypeDef->mNamespaceSearch)
  9150. {
  9151. BfAtom* atom = findName.mParts[0];
  9152. BfAtom* prevAtom = checkNamespace.mParts[checkNamespace.mSize - 1];
  9153. if (atom->mPrevNamesMap.ContainsKey(prevAtom))
  9154. mSystem->FindTypeDef(findName, numGenericArgs, useProject, checkNamespace, allowPrivate, &lookupCtx);
  9155. }
  9156. }
  9157. if (!lookupCtx.HasValidMatch())
  9158. {
  9159. auto staticSearch = GetStaticSearch();
  9160. if (staticSearch != NULL)
  9161. {
  9162. for (auto staticTypeInstance : staticSearch->mStaticTypes)
  9163. {
  9164. if (mSystem->FindTypeDef(findName, numGenericArgs, useProject, staticTypeInstance->mTypeDef->mFullNameEx, false, &lookupCtx))
  9165. {
  9166. if (lookupCtx.HasValidMatch())
  9167. break;
  9168. if (lookupCtx.mBestTypeDef->mProtection < BfProtection_Public)
  9169. {
  9170. protErrorTypeDef = lookupCtx.mBestTypeDef;
  9171. protErrorOuterType = staticTypeInstance;
  9172. }
  9173. }
  9174. }
  9175. }
  9176. }
  9177. if ((!lookupCtx.HasValidMatch()) && (typeInstance == NULL))
  9178. {
  9179. if (useTypeDef->mOuterType != NULL)
  9180. return FindTypeDefRaw(findName, numGenericArgs, typeInstance, useTypeDef->mOuterType, error);
  9181. }
  9182. if ((error != NULL) && (lookupCtx.mAmbiguousTypeDef != NULL))
  9183. {
  9184. if (error->mErrorKind == BfTypeLookupError::BfErrorKind_None)
  9185. error->mErrorKind = BfTypeLookupError::BfErrorKind_Ambiguous;
  9186. error->mAmbiguousTypeDef = lookupCtx.mAmbiguousTypeDef;
  9187. if (error->mRefNode != NULL)
  9188. ShowAmbiguousTypeError(error->mRefNode, lookupCtx.mBestTypeDef, lookupCtx.mAmbiguousTypeDef);
  9189. }
  9190. if ((protErrorTypeDef != NULL) && (lookupCtx.mBestTypeDef == protErrorTypeDef) && (error != NULL) && (error->mRefNode != NULL))
  9191. Fail(StrFormat("'%s.%s' is inaccessible due to its protection level", TypeToString(protErrorOuterType).c_str(), findName.ToString().c_str()), error->mRefNode); // CS0122
  9192. if ((lookupResultCtx != NULL) && (lookupResultCtx->mResult != NULL) && (!lookupResultCtx->mIsVerify) && (foundInnerType != NULL) && (foundInnerType == lookupCtx.mBestTypeDef))
  9193. lookupResultCtx->mResult->mFoundInnerType = true;
  9194. if (((resolveFlags & BfResolveTypeRefFlag_AllowGlobalContainer) == 0) && (lookupCtx.mBestTypeDef != NULL) && (lookupCtx.mBestTypeDef->IsGlobalsContainer()))
  9195. return NULL;
  9196. return lookupCtx.mBestTypeDef;
  9197. }
  9198. BfTypeDef* BfModule::FindTypeDef(const BfAtomComposite& findName, int numGenericArgs, BfTypeInstance* typeInstanceOverride, BfTypeLookupError* error, BfResolveTypeRefFlags resolveFlags)
  9199. {
  9200. //BP_ZONE("BfModule::FindTypeDef_1");
  9201. BfTypeInstance* typeInstance = (typeInstanceOverride != NULL) ? typeInstanceOverride : mCurTypeInstance;
  9202. auto useTypeDef = GetActiveTypeDef(typeInstanceOverride, true);
  9203. if ((mCurMethodState != NULL) && (mCurMethodState->mMixinState != NULL))
  9204. typeInstance = mCurMethodState->mMixinState->mMixinMethodInstance->GetOwner();
  9205. if (useTypeDef != NULL)
  9206. useTypeDef = useTypeDef->GetDefinition();
  9207. if ((typeInstance == NULL) && (useTypeDef == NULL))
  9208. {
  9209. BfProject* project = NULL;
  9210. if ((mContext->mCurTypeState != NULL) && (mContext->mCurTypeState->mActiveProject != NULL))
  9211. project = mContext->mCurTypeState->mActiveProject;
  9212. else if ((mCompiler->mResolvePassData != NULL) && (!mCompiler->mResolvePassData->mParsers.IsEmpty()))
  9213. project = mCompiler->mResolvePassData->mParsers[0]->mProject;
  9214. //BP_ZONE("System.FindTypeDef_2");
  9215. Array<BfAtomComposite> namespaceSearch;
  9216. if (mContext->mCurNamespaceNodes != NULL)
  9217. {
  9218. String checkNamespace;
  9219. for (auto namespaceNode : *mContext->mCurNamespaceNodes)
  9220. {
  9221. if (namespaceNode->mNameNode != NULL)
  9222. {
  9223. if (!checkNamespace.IsEmpty())
  9224. checkNamespace += ".";
  9225. namespaceNode->mNameNode->ToString(checkNamespace);
  9226. }
  9227. }
  9228. if (!checkNamespace.IsEmpty())
  9229. {
  9230. BfAtomCompositeT<16> atomComposite;
  9231. if (mSystem->ParseAtomComposite(checkNamespace, atomComposite))
  9232. namespaceSearch.Add(atomComposite);
  9233. }
  9234. }
  9235. BfFindTypeDefFlags findDefFlags = BfFindTypeDefFlag_None;
  9236. if ((resolveFlags & BfResolveTypeRefFlag_AllowGlobalContainer) != 0)
  9237. findDefFlags = (BfFindTypeDefFlags)(findDefFlags | BfFindTypeDefFlag_AllowGlobal);
  9238. BfTypeDef* ambiguousTypeDef = NULL;
  9239. BfTypeDef *result = mSystem->FindTypeDef(findName, numGenericArgs, project, namespaceSearch, &ambiguousTypeDef, findDefFlags);
  9240. if ((ambiguousTypeDef != NULL) && (error != NULL))
  9241. {
  9242. error->mErrorKind = BfTypeLookupError::BfErrorKind_Ambiguous;
  9243. error->mAmbiguousTypeDef = ambiguousTypeDef;
  9244. if (error->mRefNode != NULL)
  9245. ShowAmbiguousTypeError(error->mRefNode, result, ambiguousTypeDef);
  9246. }
  9247. return result;
  9248. }
  9249. if ((mCompiler->mResolvePassData != NULL) && (typeInstance != NULL))
  9250. {
  9251. if (mCompiler->mResolvePassData->mAutoCompleteTempTypes.Contains(useTypeDef))
  9252. return FindTypeDefRaw(findName, numGenericArgs, typeInstance, useTypeDef, error, NULL, resolveFlags);
  9253. }
  9254. BfTypeLookupEntry typeLookupEntry;
  9255. typeLookupEntry.mName.Reference(findName);
  9256. typeLookupEntry.mNumGenericParams = numGenericArgs;
  9257. typeLookupEntry.mFlags = ((resolveFlags & BfResolveTypeRefFlag_SpecializedProject) != 0) ? BfTypeLookupEntry::Flags_SpecializedProject : BfTypeLookupEntry::Flags_None;
  9258. typeLookupEntry.mUseTypeDef = useTypeDef;
  9259. BfTypeLookupEntry* typeLookupEntryPtr = NULL;
  9260. BfTypeLookupResult* resultPtr = NULL;
  9261. if ((typeInstance != NULL) && (typeInstance->mLookupResults.TryAdd(typeLookupEntry, &typeLookupEntryPtr, &resultPtr)))
  9262. {
  9263. BF_ASSERT(!useTypeDef->IsEmitted());
  9264. bool isValid;
  9265. if (useTypeDef->mIsPartial)
  9266. isValid = typeInstance->mTypeDef->GetDefinition()->ContainsPartial(useTypeDef);
  9267. else
  9268. isValid = typeInstance->mTypeDef->GetDefinition() == useTypeDef;
  9269. if ((!isValid) && (mCurMethodInstance != NULL) && (mCurMethodInstance->mIsForeignMethodDef))
  9270. {
  9271. BF_ASSERT(mCurMethodInstance->mIsForeignMethodDef);
  9272. isValid = mCurMethodInstance->mMethodDef->mDeclaringType == useTypeDef;
  9273. }
  9274. BF_ASSERT(isValid);
  9275. typeLookupEntryPtr->mAtomUpdateIdx = typeLookupEntry.mName.GetAtomUpdateIdx();
  9276. // FindTypeDefRaw may re-enter when finding base types, so we need to expect that resultPtr can change
  9277. resultPtr->mForceLookup = true;
  9278. resultPtr->mTypeDef = NULL;
  9279. int prevAllocSize = (int)typeInstance->mLookupResults.size();
  9280. BfTypeLookupError localError;
  9281. BfTypeLookupError* errorPtr = (error != NULL) ? error : &localError;
  9282. BfTypeLookupResultCtx lookupResultCtx;
  9283. lookupResultCtx.mResult = resultPtr;
  9284. auto typeDef = FindTypeDefRaw(findName, numGenericArgs, typeInstance, useTypeDef, errorPtr, &lookupResultCtx, resolveFlags);
  9285. if (prevAllocSize != typeInstance->mLookupResults.size())
  9286. {
  9287. bool found = typeInstance->mLookupResults.TryGetValue(typeLookupEntry, &resultPtr);
  9288. BF_ASSERT(found);
  9289. }
  9290. resultPtr->mTypeDef = typeDef;
  9291. resultPtr->mForceLookup = errorPtr->mErrorKind != BfTypeLookupError::BfErrorKind_None;
  9292. return typeDef;
  9293. }
  9294. else
  9295. {
  9296. if ((resultPtr == NULL) || (resultPtr->mForceLookup))
  9297. return FindTypeDefRaw(findName, numGenericArgs, typeInstance, useTypeDef, error, NULL, resolveFlags);
  9298. else
  9299. return resultPtr->mTypeDef;
  9300. }
  9301. }
  9302. BfTypeDef* BfModule::FindTypeDef(const StringImpl& typeName, int numGenericArgs, BfTypeInstance* typeInstanceOverride, BfTypeLookupError* error, BfResolveTypeRefFlags resolveFlags)
  9303. {
  9304. //BP_ZONE("BfModule::FindTypeDef_4");
  9305. BfSizedAtomComposite findName;
  9306. if (!mSystem->ParseAtomComposite(typeName, findName))
  9307. return NULL;
  9308. auto result = FindTypeDef(findName, numGenericArgs, typeInstanceOverride, error, resolveFlags);
  9309. // Don't allow just finding extensions here. This can happen in some 'using static' cases but generally shouldn't happen
  9310. if ((result != NULL) && (result->mTypeCode == BfTypeCode_Extension))
  9311. return NULL;
  9312. return result;
  9313. }
  9314. BfTypeDef* BfModule::FindTypeDef(BfTypeReference* typeRef, BfTypeInstance* typeInstanceOverride, BfTypeLookupError* error, int numGenericParams, BfResolveTypeRefFlags resolveFlags)
  9315. {
  9316. //BP_ZONE("BfModule::FindTypeDef_5");
  9317. if (auto typeDefTypeRef = BfNodeDynCast<BfDirectTypeDefReference>(typeRef))
  9318. {
  9319. if (typeDefTypeRef->mTypeDef != NULL)
  9320. return mSystem->FilterDeletedTypeDef(typeDefTypeRef->mTypeDef);
  9321. }
  9322. //TODO: When does this get called?
  9323. if (auto elementedType = BfNodeDynCast<BfElementedTypeRef>(typeRef))
  9324. return FindTypeDef(elementedType->mElementType, typeInstanceOverride, error);
  9325. BF_ASSERT(typeRef->IsA<BfNamedTypeReference>() || typeRef->IsA<BfQualifiedTypeReference>() || typeRef->IsA<BfDirectStrTypeReference>() || typeRef->IsA<BfInlineTypeReference>());
  9326. auto namedTypeRef = BfNodeDynCast<BfNamedTypeReference>(typeRef);
  9327. StringView findNameStr;
  9328. if (namedTypeRef != NULL)
  9329. findNameStr = namedTypeRef->mNameNode->ToStringView();
  9330. else
  9331. {
  9332. if (auto directStrTypeDef = BfNodeDynCastExact<BfDirectStrTypeReference>(typeRef))
  9333. findNameStr = directStrTypeDef->mTypeName;
  9334. else if (auto inlineTypeRef = BfNodeDynCastExact<BfInlineTypeReference>(typeRef))
  9335. findNameStr = inlineTypeRef->mTypeDeclaration->mAnonymousName;
  9336. else
  9337. BFMODULE_FATAL(this, "Error?");
  9338. }
  9339. if (findNameStr.mLength == 6)
  9340. {
  9341. if (findNameStr == "object")
  9342. {
  9343. findNameStr = "System.Object";
  9344. Fail("'object' alias not supported, use 'Object'", typeRef);
  9345. }
  9346. else if (findNameStr == "string")
  9347. {
  9348. findNameStr = "System.String";
  9349. Fail("'string' alias not supported, use 'String'", typeRef);
  9350. }
  9351. }
  9352. BfSizedAtomComposite findName;
  9353. if ((resolveFlags & BfResolveTypeRefFlag_Attribute) != 0)
  9354. {
  9355. String attributeName;
  9356. attributeName += findNameStr;
  9357. attributeName += "Attribute";
  9358. if (!mSystem->ParseAtomComposite(attributeName, findName))
  9359. return NULL;
  9360. }
  9361. else
  9362. {
  9363. if (!mSystem->ParseAtomComposite(findNameStr, findName))
  9364. return NULL;
  9365. }
  9366. #ifdef BF_AST_HAS_PARENT_MEMBER
  9367. if (auto parentGenericTypeRef = BfNodeDynCast<BfGenericInstanceTypeRef>(typeRef->mParent))
  9368. {
  9369. if (parentGenericTypeRef->mElementType == typeRef)
  9370. BF_ASSERT(numGenericParams == parentGenericTypeRef->GetGenericArgCount());
  9371. }
  9372. #endif
  9373. auto typeDef = FindTypeDef(findName, numGenericParams, typeInstanceOverride, error, resolveFlags);
  9374. //TYPEDEF if (namedTypeRef != NULL)
  9375. // namedTypeRef->mTypeDef = typeDef;
  9376. return typeDef;
  9377. }
  9378. void BfModule::CheckTypeRefFixit(BfAstNode* typeRef, const char* appendName)
  9379. {
  9380. if ((mCompiler->IsAutocomplete()) && (mCompiler->mResolvePassData->mAutoComplete->CheckFixit((typeRef))))
  9381. {
  9382. String typeName = typeRef->ToString();
  9383. if (appendName != NULL)
  9384. typeName += appendName;
  9385. std::set<String> fixitNamespaces;
  9386. //TODO: Do proper value for numGenericArgs
  9387. mSystem->FindFixitNamespaces(typeName, -1, mCompiler->mResolvePassData->mParsers[0]->mProject, fixitNamespaces);
  9388. int insertLoc = 0;
  9389. BfUsingFinder usingFinder;
  9390. usingFinder.mFromIdx = typeRef->mSrcStart;
  9391. usingFinder.VisitMembers(typeRef->GetSourceData()->mRootNode);
  9392. for (auto& namespaceStr : fixitNamespaces)
  9393. {
  9394. BfParserData* parser = typeRef->GetSourceData()->ToParserData();
  9395. if (parser != NULL)
  9396. mCompiler->mResolvePassData->mAutoComplete->AddEntry(AutoCompleteEntry("fixit", StrFormat("using %s;\t.using|%s|%d||using %s;", namespaceStr.c_str(), parser->mFileName.c_str(), usingFinder.mLastIdx, namespaceStr.c_str()).c_str()));
  9397. }
  9398. }
  9399. }
  9400. void BfModule::CheckIdentifierFixit(BfAstNode* node)
  9401. {
  9402. //TODO: Check globals, possibly spelling mistakes?
  9403. }
  9404. void BfModule::TypeRefNotFound(BfTypeReference* typeRef, const char* appendName)
  9405. {
  9406. if (typeRef->IsTemporary())
  9407. return;
  9408. if (PreFail())
  9409. Fail("Type could not be found (are you missing a using directive or library reference?)", typeRef);
  9410. if (!mIgnoreErrors)
  9411. {
  9412. while (auto elementedType = BfNodeDynCast<BfElementedTypeRef>(typeRef))
  9413. typeRef = elementedType->mElementType;
  9414. if (auto namedTypeRef = BfNodeDynCast<BfNamedTypeReference>(typeRef))
  9415. {
  9416. String findNameStr = namedTypeRef->mNameNode->ToString();
  9417. if (appendName != NULL)
  9418. findNameStr += appendName;
  9419. BfSizedAtomComposite findName;
  9420. if ((!mSystem->ParseAtomComposite(findNameStr, findName)) && (mCurTypeInstance != NULL))
  9421. {
  9422. //BfTypeInstance* typeInstance = (typeInstanceOverride != NULL) ? typeInstanceOverride : mCurTypeInstance;
  9423. // We don't need a typeInstanceOverride because that is used to lookup references
  9424. // from mixins, but it's the type using the mixin (mCurTypeInstance) that needs
  9425. // rebuilding if the lookup fails
  9426. BfTypeInstance* typeInstance = mCurTypeInstance;
  9427. BfTypeLookupEntry typeLookupEntry;
  9428. typeLookupEntry.mNumGenericParams = 0;
  9429. typeLookupEntry.mAtomUpdateIdx = mSystem->mAtomUpdateIdx;
  9430. typeInstance->mLookupResults.TryAdd(typeLookupEntry, BfTypeLookupResult());
  9431. }
  9432. }
  9433. }
  9434. CheckTypeRefFixit(typeRef, appendName);
  9435. }
  9436. bool BfModule::ValidateTypeWildcard(BfAstNode* typeRef, bool isAttributeRef)
  9437. {
  9438. if (typeRef == NULL)
  9439. return false;
  9440. if (auto wildcardTypeRef = BfNodeDynCast<BfWildcardTypeReference>(typeRef))
  9441. return true;
  9442. StringT<128> nameStr;
  9443. typeRef->ToString(nameStr);
  9444. if (isAttributeRef)
  9445. nameStr.Append("Attribute");
  9446. auto typeDef = mSystem->FindTypeDef(nameStr, (BfProject*)NULL);
  9447. if ((typeDef != NULL) && (typeDef->mGenericParamDefs.IsEmpty()))
  9448. return true;
  9449. if (auto qualifiedTypeRef = BfNodeDynCast<BfQualifiedTypeReference>(typeRef))
  9450. {
  9451. if (qualifiedTypeRef->mLeft == NULL)
  9452. return false;
  9453. if (auto wildcardTypeRef = BfNodeDynCast<BfWildcardTypeReference>(qualifiedTypeRef->mRight))
  9454. {
  9455. StringT<128> leftNameStr;
  9456. BfType* leftType = NULL;
  9457. BfAtomCompositeT<16> leftComposite;
  9458. qualifiedTypeRef->mLeft->ToString(leftNameStr);
  9459. if (!mSystem->ParseAtomComposite(leftNameStr, leftComposite))
  9460. return false;
  9461. if (mSystem->ContainsNamespace(leftComposite, NULL))
  9462. return true;
  9463. return ValidateTypeWildcard(qualifiedTypeRef->mLeft, false);
  9464. }
  9465. }
  9466. if (!BfNodeIsA<BfGenericInstanceTypeRef>(typeRef))
  9467. {
  9468. if (auto elementedTypeRef = BfNodeDynCast<BfElementedTypeRef>(typeRef))
  9469. {
  9470. return ValidateTypeWildcard(elementedTypeRef->mElementType, false);
  9471. }
  9472. }
  9473. BfAstNode* origTypeRef = typeRef;
  9474. String name;
  9475. String nameEx;
  9476. int genericCount = 0;
  9477. std::function<bool(BfAstNode*, bool)> _ToString = [&](BfAstNode* typeRef, bool isLast)
  9478. {
  9479. if (auto qualifiedTypeRef = BfNodeDynCast<BfQualifiedTypeReference>(typeRef))
  9480. {
  9481. _ToString(qualifiedTypeRef->mLeft, false);
  9482. name.Append(".");
  9483. nameEx.Append(".");
  9484. _ToString(qualifiedTypeRef->mRight, typeRef == origTypeRef);
  9485. return true;
  9486. }
  9487. if (auto genericTypeRef = BfNodeDynCast<BfGenericInstanceTypeRef>(typeRef))
  9488. {
  9489. _ToString(genericTypeRef->mElementType, false);
  9490. genericCount += genericTypeRef->mCommas.mSize + 1;
  9491. for (auto genericArg : genericTypeRef->mGenericArguments)
  9492. if (!ValidateTypeWildcard(genericArg, false))
  9493. return false;
  9494. }
  9495. else
  9496. {
  9497. typeRef->ToString(name);
  9498. typeRef->ToString(nameEx);
  9499. }
  9500. if (genericCount > 0)
  9501. {
  9502. if (!isLast)
  9503. name += StrFormat("`%d", genericCount);
  9504. nameEx += StrFormat("`%d", genericCount);
  9505. }
  9506. return true;
  9507. };
  9508. if (!_ToString(typeRef, true))
  9509. return false;
  9510. BfAtomCompositeT<16> composite;
  9511. if (!mSystem->ParseAtomComposite(name, composite))
  9512. return false;
  9513. BfAtomCompositeT<16> compositeEx;
  9514. if (!mSystem->ParseAtomComposite(nameEx, compositeEx))
  9515. return false;
  9516. auto itr = mSystem->mTypeDefs.TryGet(composite);
  9517. while (itr != mSystem->mTypeDefs.end())
  9518. {
  9519. auto typeDef = *itr;
  9520. if (typeDef->mFullName != composite)
  9521. break;
  9522. if (typeDef->mFullNameEx == compositeEx)
  9523. return true;
  9524. ++itr;
  9525. }
  9526. return false;
  9527. }
  9528. //int sResolveTypeRefIdx = 0;
  9529. BfTypedValue BfModule::TryLookupGenericConstVaue(BfIdentifierNode* identifierNode, BfType* expectingType)
  9530. {
  9531. BfTypeInstance* contextTypeInstance = mCurTypeInstance;
  9532. BfMethodInstance* contextMethodInstance = mCurMethodInstance;
  9533. if ((mCurMethodState != NULL) && (mCurMethodState->mMixinState != NULL))
  9534. {
  9535. contextTypeInstance = mCurMethodState->mMixinState->mMixinMethodInstance->GetOwner();
  9536. contextMethodInstance = mCurMethodState->mMixinState->mMixinMethodInstance;
  9537. }
  9538. BfTypeDef* curTypeDef = NULL;
  9539. if (contextTypeInstance != NULL)
  9540. {
  9541. curTypeDef = contextTypeInstance->mTypeDef;
  9542. StringT<128> findName;
  9543. identifierNode->ToString(findName);
  9544. auto genericCheckTypeInstance = contextTypeInstance;
  9545. if (contextTypeInstance->IsBoxed())
  9546. genericCheckTypeInstance = contextTypeInstance->GetUnderlyingType()->ToTypeInstance();
  9547. bool doUndefVal = false;
  9548. if (genericCheckTypeInstance->IsUnspecializedTypeVariation())
  9549. {
  9550. genericCheckTypeInstance = GetUnspecializedTypeInstance(genericCheckTypeInstance);
  9551. doUndefVal = true;
  9552. }
  9553. BfGenericParamDef* genericParamDef = NULL;
  9554. BfGenericParamDef* origGenericParamDef = NULL;
  9555. BfType* genericParamResult = NULL;
  9556. BfType* genericTypeConstraint = NULL;
  9557. bool disallowConstExprValue = false;
  9558. if ((genericCheckTypeInstance != NULL) && (genericCheckTypeInstance->IsGenericTypeInstance()))
  9559. {
  9560. auto genericTypeInst = (BfTypeInstance*)genericCheckTypeInstance;
  9561. auto* genericParams = &curTypeDef->mGenericParamDefs;
  9562. auto* origGenericParams = &curTypeDef->mGenericParamDefs;
  9563. if (genericTypeInst->mGenericTypeInfo->mGenericExtensionInfo != NULL)
  9564. {
  9565. auto activeTypeDef = GetActiveTypeDef(NULL, true);
  9566. genericParams = &activeTypeDef->mGenericParamDefs;
  9567. }
  9568. for (int genericParamIdx = (int)genericParams->size() - 1; genericParamIdx >= 0; genericParamIdx--)
  9569. {
  9570. auto checkGenericParamDef = (*genericParams)[genericParamIdx];
  9571. String genericName = checkGenericParamDef->mName;
  9572. if (genericName == findName)
  9573. {
  9574. genericParamDef = checkGenericParamDef;
  9575. origGenericParamDef = (*origGenericParams)[genericParamIdx];
  9576. genericParamResult = genericTypeInst->mGenericTypeInfo->mTypeGenericArguments[genericParamIdx];
  9577. genericTypeConstraint = genericTypeInst->mGenericTypeInfo->mGenericParams[genericParamIdx]->mTypeConstraint;
  9578. if (contextTypeInstance != genericCheckTypeInstance)
  9579. {
  9580. // Don't allow an 'unspecialized variation' generic param
  9581. auto checkResult = contextTypeInstance->mGenericTypeInfo->mTypeGenericArguments[genericParamIdx];
  9582. if (!checkResult->IsGenericParam())
  9583. genericParamResult = checkResult;
  9584. }
  9585. HandleTypeGenericParamRef(identifierNode, genericTypeInst->mTypeDef, genericParamIdx);
  9586. }
  9587. }
  9588. }
  9589. if ((contextMethodInstance != NULL) && (genericParamResult == NULL))
  9590. {
  9591. auto checkMethodInstance = contextMethodInstance;
  9592. if (checkMethodInstance->mIsUnspecializedVariation)
  9593. checkMethodInstance = GetUnspecializedMethodInstance(checkMethodInstance);
  9594. for (int genericParamIdx = (int)checkMethodInstance->mMethodDef->mGenericParams.size() - 1; genericParamIdx >= 0; genericParamIdx--)
  9595. {
  9596. auto checkGenericParamDef = checkMethodInstance->mMethodDef->mGenericParams[genericParamIdx];
  9597. String genericName = checkGenericParamDef->mName;
  9598. if (genericName == findName)
  9599. {
  9600. genericParamDef = checkGenericParamDef;
  9601. origGenericParamDef = checkGenericParamDef;
  9602. genericParamResult = checkMethodInstance->mMethodInfoEx->mMethodGenericArguments[genericParamIdx];
  9603. genericTypeConstraint = checkMethodInstance->mMethodInfoEx->mGenericParams[genericParamIdx]->mTypeConstraint;
  9604. if (contextMethodInstance != checkMethodInstance)
  9605. {
  9606. // Don't allow an 'unspecialized variation' generic param
  9607. auto checkResult = contextMethodInstance->mMethodInfoEx->mMethodGenericArguments[genericParamIdx];
  9608. if (!checkResult->IsGenericParam())
  9609. genericParamResult = checkResult;
  9610. }
  9611. HandleMethodGenericParamRef(identifierNode, contextMethodInstance->GetOwner()->mTypeDef, checkMethodInstance->mMethodDef, genericParamIdx);
  9612. }
  9613. }
  9614. }
  9615. if (genericParamResult != NULL)
  9616. {
  9617. auto typeRefSource = identifierNode->GetSourceData();
  9618. if ((mCompiler->mResolvePassData != NULL) && (mCompiler->mResolvePassData->mIsClassifying) && (typeRefSource != NULL))
  9619. {
  9620. if (auto sourceClassifier = mCompiler->mResolvePassData->GetSourceClassifier(identifierNode))
  9621. sourceClassifier->SetElementType(identifierNode, BfSourceElementType_GenericParam);
  9622. }
  9623. if (genericParamResult->IsConstExprValue())
  9624. {
  9625. BfConstExprValueType* constExprValueType = (BfConstExprValueType*)genericParamResult;
  9626. auto constType = genericTypeConstraint;
  9627. if (constType == NULL)
  9628. constType = GetPrimitiveType(BfTypeCode_IntPtr);
  9629. if (constType->IsVar())
  9630. {
  9631. BfExprEvaluator exprEvaluator(this);
  9632. exprEvaluator.GetLiteral(identifierNode, constExprValueType->mValue, constExprValueType->mType);
  9633. return exprEvaluator.mResult;
  9634. }
  9635. else
  9636. {
  9637. BfExprEvaluator exprEvaluator(this);
  9638. exprEvaluator.mExpectingType = constType;
  9639. exprEvaluator.GetLiteral(identifierNode, constExprValueType->mValue, constExprValueType->mType);
  9640. if (exprEvaluator.mResult)
  9641. {
  9642. auto castedVal = CastToValue(identifierNode, exprEvaluator.mResult, constType, (BfCastFlags)(BfCastFlags_Explicit | BfCastFlags_SilentFail));
  9643. if (castedVal)
  9644. return BfTypedValue(castedVal, constType);
  9645. }
  9646. return exprEvaluator.mResult;
  9647. }
  9648. }
  9649. else if (genericParamResult->IsGenericParam())
  9650. {
  9651. if ((doUndefVal) && (genericTypeConstraint != NULL))
  9652. {
  9653. return GetDefaultTypedValue(genericTypeConstraint, false, BfDefaultValueKind_Undef);
  9654. }
  9655. if (((genericParamDef->mGenericParamFlags | origGenericParamDef->mGenericParamFlags) & BfGenericParamFlag_Const) != 0)
  9656. {
  9657. BfTypedValue result;
  9658. result.mType = genericParamResult;
  9659. result.mKind = BfTypedValueKind_GenericConstValue;
  9660. return result;
  9661. }
  9662. }
  9663. }
  9664. }
  9665. return BfTypedValue();
  9666. }
  9667. void BfModule::GetDelegateTypeRefAttributes(BfDelegateTypeRef* delegateTypeRef, BfCallingConvention& callingConvention)
  9668. {
  9669. if (delegateTypeRef->mAttributes == NULL)
  9670. return;
  9671. BfCaptureInfo captureInfo;
  9672. auto customAttributes = GetCustomAttributes(delegateTypeRef->mAttributes, (BfAttributeTargets)(BfAttributeTargets_DelegateTypeRef | BfAttributeTargets_FunctionTypeRef), BfGetCustomAttributesFlags_KeepConstsInModule);
  9673. if (customAttributes != NULL)
  9674. {
  9675. auto linkNameAttr = customAttributes->Get(mCompiler->mCallingConventionAttributeTypeDef);
  9676. if (linkNameAttr != NULL)
  9677. {
  9678. if (linkNameAttr->mCtorArgs.size() == 1)
  9679. {
  9680. auto constant = mBfIRBuilder->GetConstant(linkNameAttr->mCtorArgs[0]);
  9681. if (constant != NULL)
  9682. callingConvention = (BfCallingConvention)constant->mInt32;
  9683. }
  9684. }
  9685. delete customAttributes;
  9686. }
  9687. }
  9688. BfType* BfModule::ResolveTypeRef(BfTypeReference* typeRef, BfPopulateType populateType, BfResolveTypeRefFlags resolveFlags, int numGenericArgs)
  9689. {
  9690. return ResolveTypeRef_Ref(typeRef, populateType, resolveFlags, numGenericArgs);
  9691. }
  9692. BfType* BfModule::ResolveTypeRef_Ref(BfTypeReference* typeRef, BfPopulateType populateType, BfResolveTypeRefFlags& resolveFlags, int numGenericArgs)
  9693. {
  9694. //BP_ZONE("BfModule::ResolveTypeRef");
  9695. if (typeRef == NULL)
  9696. {
  9697. AssertErrorState();
  9698. return NULL;
  9699. }
  9700. if (resolveFlags & BfResolveTypeRefFlag_AutoComplete)
  9701. {
  9702. resolveFlags = (BfResolveTypeRefFlags)(resolveFlags & ~BfResolveTypeRefFlag_AutoComplete);
  9703. auto autoComplete = mCompiler->GetAutoComplete();
  9704. if (autoComplete != NULL)
  9705. autoComplete->CheckTypeRef(typeRef, false);
  9706. }
  9707. if ((resolveFlags & BfResolveTypeRefFlag_AllowRef) == 0)
  9708. {
  9709. if (auto refTypeRef = BfNodeDynCast<BfRefTypeRef>(typeRef))
  9710. {
  9711. const char* refTypeStr = BfTokenToString(refTypeRef->mRefToken->mToken);
  9712. Fail(StrFormat("Invalid use of '%s'. Only method parameters, return types, and local variables can be declared as %s types", refTypeStr, refTypeStr), refTypeRef->mRefToken);
  9713. return ResolveTypeRef(refTypeRef->mElementType, populateType, resolveFlags, numGenericArgs);
  9714. }
  9715. }
  9716. if (auto directTypeRef = BfNodeDynCastExact<BfDirectTypeReference>(typeRef))
  9717. {
  9718. return directTypeRef->mType;
  9719. }
  9720. if (auto dotType = BfNodeDynCastExact<BfDotTypeReference>(typeRef))
  9721. {
  9722. Fail(StrFormat("Invalid use of '%s'", BfTokenToString(dotType->mDotToken->mToken)), typeRef);
  9723. return NULL;
  9724. }
  9725. if (auto varRefType = BfNodeDynCastExact<BfVarRefTypeReference>(typeRef))
  9726. {
  9727. Fail("Invalid use of 'var ref'. Generally references are generated with a 'var' declaration with 'ref' applied to the initializer", typeRef);
  9728. return NULL;
  9729. }
  9730. if (mNoResolveGenericParams)
  9731. resolveFlags = (BfResolveTypeRefFlags)(resolveFlags | BfResolveTypeRefFlag_NoResolveGenericParam);
  9732. SetAndRestoreValue<bool> prevNoResolveGenericParams(mNoResolveGenericParams, (resolveFlags & BfResolveTypeRefFlag_NoResolveGenericParam) != 0);
  9733. //
  9734. resolveFlags = (BfResolveTypeRefFlags)(resolveFlags & ~BfResolveTypeRefFlag_NoResolveGenericParam);
  9735. BfTypeInstance* contextTypeInstance = mCurTypeInstance;
  9736. BfMethodInstance* contextMethodInstance = mCurMethodInstance;
  9737. if ((mCurMethodInstance != NULL) && (mCurMethodInstance->mIsForeignMethodDef))
  9738. contextTypeInstance = mCurMethodInstance->mMethodInfoEx->mForeignType;
  9739. if ((mCurMethodState != NULL) && (mCurMethodState->mMixinState != NULL))
  9740. {
  9741. contextTypeInstance = mCurMethodState->mMixinState->mMixinMethodInstance->GetOwner();
  9742. contextMethodInstance = mCurMethodState->mMixinState->mMixinMethodInstance;
  9743. }
  9744. BfTypeDef* curTypeDef = NULL;
  9745. Array<BfProject*>* checkProjects = NULL;
  9746. if (contextTypeInstance != NULL)
  9747. {
  9748. curTypeDef = contextTypeInstance->mTypeDef;
  9749. if ((curTypeDef->IsEmitted()) && (!typeRef->IsTemporary()))
  9750. {
  9751. auto parser = typeRef->GetParser();
  9752. if ((parser != NULL) && (parser->mIsEmitted))
  9753. {
  9754. if (contextTypeInstance->IsGenericTypeInstance())
  9755. {
  9756. resolveFlags = (BfResolveTypeRefFlags)(resolveFlags | BfResolveTypeRefFlag_SpecializedProject);
  9757. if (contextTypeInstance->mGenericTypeInfo->mProjectsReferenced.empty())
  9758. contextTypeInstance->GenerateProjectsReferenced();
  9759. checkProjects = &contextTypeInstance->mGenericTypeInfo->mProjectsReferenced;
  9760. }
  9761. }
  9762. }
  9763. // Check generics first
  9764. auto namedTypeRef = BfNodeDynCastExact<BfNamedTypeReference>(typeRef);
  9765. auto directStrTypeRef = BfNodeDynCastExact<BfDirectStrTypeReference>(typeRef);
  9766. auto inlineStrTypeRef = BfNodeDynCastExact<BfInlineTypeReference>(typeRef);
  9767. if (((namedTypeRef != NULL) && (namedTypeRef->mNameNode != NULL)) || (directStrTypeRef != NULL) || (inlineStrTypeRef != NULL))
  9768. {
  9769. StringView findName;
  9770. if (namedTypeRef != NULL)
  9771. findName = namedTypeRef->mNameNode->ToStringView();
  9772. else if (directStrTypeRef != NULL)
  9773. findName = directStrTypeRef->mTypeName;
  9774. else
  9775. findName = inlineStrTypeRef->mTypeDeclaration->mAnonymousName;
  9776. if (findName == "Self")
  9777. {
  9778. BfType* selfType = mCurTypeInstance;
  9779. if (selfType->IsTypeAlias())
  9780. selfType = GetOuterType(selfType);
  9781. if (selfType != NULL)
  9782. {
  9783. if (selfType->IsInterface()) // For interfaces, 'Self' refers to the identity of the implementing type, so we use a placeholder
  9784. return GetPrimitiveType(BfTypeCode_Self);
  9785. else
  9786. resolveFlags = (BfResolveTypeRefFlags)(resolveFlags | BfResolveTypeRefFlag_FromIndirectSource);
  9787. if (selfType->IsBoxed())
  9788. selfType = selfType->GetUnderlyingType();
  9789. if ((resolveFlags & BfResolveTypeRefFlag_NoResolveGenericParam) != 0)
  9790. {
  9791. if ((selfType->IsSpecializedType()) || (selfType->IsUnspecializedTypeVariation()))
  9792. selfType = ResolveTypeDef(selfType->ToTypeInstance()->mTypeDef, populateType);
  9793. }
  9794. }
  9795. if (selfType != NULL)
  9796. {
  9797. auto selfTypeInst = selfType->ToTypeInstance();
  9798. if ((selfTypeInst != NULL) && (selfTypeInst->mTypeDef->IsGlobalsContainer()) && ((resolveFlags & BfResolveTypeRefFlag_AllowGlobalsSelf) == 0))
  9799. selfType = NULL;
  9800. }
  9801. if (selfType == NULL)
  9802. {
  9803. Fail("'Self' type is not usable here", typeRef);
  9804. }
  9805. return ResolveTypeResult(typeRef, selfType, populateType, resolveFlags);
  9806. }
  9807. else if (findName == "SelfBase")
  9808. {
  9809. BfType* selfType = mCurTypeInstance;
  9810. if (selfType->IsTypeAlias())
  9811. selfType = GetOuterType(selfType);
  9812. if (selfType != NULL)
  9813. {
  9814. resolveFlags = (BfResolveTypeRefFlags)(resolveFlags | BfResolveTypeRefFlag_FromIndirectSource);
  9815. if (selfType->IsBoxed())
  9816. selfType = selfType->GetUnderlyingType();
  9817. if ((resolveFlags & BfResolveTypeRefFlag_NoResolveGenericParam) != 0)
  9818. {
  9819. if ((selfType->IsSpecializedType()) || (selfType->IsUnspecializedTypeVariation()))
  9820. selfType = ResolveTypeDef(selfType->ToTypeInstance()->mTypeDef, populateType);
  9821. }
  9822. }
  9823. BfType* baseType = NULL;
  9824. if (selfType != NULL)
  9825. {
  9826. if (selfType->IsTypedPrimitive())
  9827. baseType = selfType->GetUnderlyingType();
  9828. else
  9829. {
  9830. auto selfTypeInst = selfType->ToTypeInstance();
  9831. if (selfTypeInst != NULL)
  9832. {
  9833. baseType = selfTypeInst->mBaseType;
  9834. }
  9835. }
  9836. }
  9837. if (baseType == NULL)
  9838. {
  9839. Fail("'SelfBase' type is not usable here", typeRef);
  9840. }
  9841. return ResolveTypeResult(typeRef, baseType, populateType, resolveFlags);
  9842. }
  9843. else if (findName == "SelfOuter")
  9844. {
  9845. BfType* selfType = mCurTypeInstance;
  9846. if (selfType->IsTypeAlias())
  9847. selfType = GetOuterType(selfType);
  9848. if (selfType != NULL)
  9849. {
  9850. resolveFlags = (BfResolveTypeRefFlags)(resolveFlags | BfResolveTypeRefFlag_FromIndirectSource);
  9851. if (selfType->IsBoxed())
  9852. selfType = selfType->GetUnderlyingType();
  9853. if ((resolveFlags & BfResolveTypeRefFlag_NoResolveGenericParam) != 0)
  9854. {
  9855. if ((selfType->IsSpecializedType()) || (selfType->IsUnspecializedTypeVariation()))
  9856. selfType = ResolveTypeDef(selfType->ToTypeInstance()->mTypeDef, populateType);
  9857. }
  9858. selfType = GetOuterType(selfType->ToTypeInstance());
  9859. }
  9860. if (selfType == NULL)
  9861. Fail("'SelfOuter' type is not usable here", typeRef);
  9862. return ResolveTypeResult(typeRef, selfType, populateType, resolveFlags);
  9863. }
  9864. else if (findName == "ExpectedType")
  9865. {
  9866. Fail("'ExpectedType' is not usable here", typeRef);
  9867. return ResolveTypeResult(typeRef, NULL, populateType, resolveFlags);
  9868. }
  9869. auto genericCheckTypeInstance = contextTypeInstance;
  9870. if (contextTypeInstance->IsBoxed())
  9871. genericCheckTypeInstance = contextTypeInstance->GetUnderlyingType()->ToTypeInstance();
  9872. BfGenericParamDef* genericParamDef = NULL;
  9873. BfType* genericParamResult = NULL;
  9874. bool disallowConstExprValue = false;
  9875. if ((contextMethodInstance != NULL) && (genericParamResult == NULL))
  9876. {
  9877. BfMethodInstance* prevMethodInstance = NULL;
  9878. // If we're in a closure then use the outside method generic arguments
  9879. auto checkMethodInstance = contextMethodInstance;
  9880. if ((mCurMethodState != NULL) && (checkMethodInstance->mIsClosure))
  9881. {
  9882. auto checkMethodState = mCurMethodState;
  9883. while (checkMethodState != NULL)
  9884. {
  9885. if ((checkMethodState->mMethodInstance != NULL) && (checkMethodState->mMethodInstance->mIsClosure))
  9886. {
  9887. checkMethodInstance = checkMethodState->mPrevMethodState->mMethodInstance;
  9888. }
  9889. checkMethodState = checkMethodState->mPrevMethodState;
  9890. }
  9891. }
  9892. for (int genericParamIdx = (int)checkMethodInstance->mMethodDef->mGenericParams.size() - 1; genericParamIdx >= 0; genericParamIdx--)
  9893. {
  9894. auto checkGenericParamDef = checkMethodInstance->mMethodDef->mGenericParams[genericParamIdx];
  9895. String genericName = checkGenericParamDef->mName;
  9896. if (genericName == findName)
  9897. {
  9898. genericParamDef = checkGenericParamDef;
  9899. if (((genericParamDef->mGenericParamFlags & BfGenericParamFlag_Const) != 0) &&
  9900. ((resolveFlags & BfResolveTypeRefFlag_AllowGenericMethodParamConstValue) == 0))
  9901. disallowConstExprValue = true;
  9902. HandleMethodGenericParamRef(typeRef, checkMethodInstance->GetOwner()->mTypeDef, checkMethodInstance->mMethodDef, genericParamIdx);
  9903. if ((resolveFlags & BfResolveTypeRefFlag_NoResolveGenericParam) != 0)
  9904. return GetGenericParamType(BfGenericParamKind_Method, genericParamIdx);
  9905. else
  9906. {
  9907. if ((mContext->mCurConstraintState != NULL) && (mContext->mCurConstraintState->mMethodInstance == checkMethodInstance) &&
  9908. (mContext->mCurConstraintState->mMethodGenericArgsOverride != NULL))
  9909. {
  9910. return ResolveTypeResult(typeRef, (*mContext->mCurConstraintState->mMethodGenericArgsOverride)[genericParamIdx], populateType, resolveFlags);
  9911. }
  9912. SetAndRestoreValue<BfGetSymbolReferenceKind> prevSymbolRefKind;
  9913. if (mCompiler->mResolvePassData != NULL) // Don't add these typeRefs, they are indirect
  9914. prevSymbolRefKind.Init(mCompiler->mResolvePassData->mGetSymbolReferenceKind, BfGetSymbolReferenceKind_None);
  9915. genericParamResult = checkMethodInstance->mMethodInfoEx->mMethodGenericArguments[genericParamIdx];
  9916. if ((genericParamResult != NULL) &&
  9917. (genericParamResult->IsConstExprValue()) &&
  9918. ((resolveFlags & BfResolveTypeRefFlag_AllowGenericMethodParamConstValue) == 0))
  9919. disallowConstExprValue = true;
  9920. }
  9921. }
  9922. }
  9923. }
  9924. if ((genericCheckTypeInstance != NULL) && (genericCheckTypeInstance->IsGenericTypeInstance()) && (genericParamResult == NULL))
  9925. {
  9926. auto genericTypeInst = (BfTypeInstance*)genericCheckTypeInstance;
  9927. auto* genericParams = &curTypeDef->mGenericParamDefs;
  9928. if (genericTypeInst->mGenericTypeInfo->mGenericExtensionInfo != NULL)
  9929. {
  9930. auto activeTypeDef = GetActiveTypeDef(NULL, true);
  9931. genericParams = &activeTypeDef->mGenericParamDefs;
  9932. }
  9933. for (int genericParamIdx = (int)genericParams->size() - 1; genericParamIdx >= 0; genericParamIdx--)
  9934. {
  9935. auto checkGenericParamDef = (*genericParams)[genericParamIdx];
  9936. String genericName = checkGenericParamDef->mName;
  9937. if (genericName == findName)
  9938. {
  9939. genericParamDef = checkGenericParamDef;
  9940. if (((genericParamDef->mGenericParamFlags & BfGenericParamFlag_Const) != 0) &&
  9941. ((resolveFlags & BfResolveTypeRefFlag_AllowGenericTypeParamConstValue) == 0))
  9942. disallowConstExprValue = true;
  9943. HandleTypeGenericParamRef(typeRef, curTypeDef, genericParamIdx);
  9944. if ((resolveFlags & BfResolveTypeRefFlag_NoResolveGenericParam) != 0)
  9945. return GetGenericParamType(BfGenericParamKind_Type, genericParamIdx);
  9946. else
  9947. {
  9948. SetAndRestoreValue<BfGetSymbolReferenceKind> prevSymbolRefKind;
  9949. if (mCompiler->mResolvePassData != NULL) // Don't add these typeRefs, they are indirect
  9950. prevSymbolRefKind.Init(mCompiler->mResolvePassData->mGetSymbolReferenceKind, BfGetSymbolReferenceKind_None);
  9951. genericParamResult = genericTypeInst->mGenericTypeInfo->mTypeGenericArguments[genericParamIdx];
  9952. if ((genericParamResult != NULL) &&
  9953. (genericParamResult->IsConstExprValue()) &&
  9954. ((resolveFlags & BfResolveTypeRefFlag_AllowGenericTypeParamConstValue) == 0))
  9955. disallowConstExprValue = true;
  9956. }
  9957. }
  9958. }
  9959. }
  9960. if (genericParamResult != NULL)
  9961. {
  9962. if (disallowConstExprValue)
  9963. {
  9964. Fail("Invalid use of constant generic value", typeRef);
  9965. return ResolveTypeResult(typeRef, NULL, populateType, resolveFlags);
  9966. }
  9967. if (genericParamResult->IsRef())
  9968. {
  9969. if ((resolveFlags & BfResolveTypeRefFlag_AllowRefGeneric) == 0)
  9970. genericParamResult = genericParamResult->GetUnderlyingType();
  9971. }
  9972. return ResolveTypeResult(typeRef, genericParamResult, populateType, (BfResolveTypeRefFlags)(resolveFlags | BfResolveTypeRefFlag_FromIndirectSource));
  9973. }
  9974. }
  9975. }
  9976. BfTypeDef* typeDef = NULL;
  9977. if (typeRef->IsNamedTypeReference())
  9978. {
  9979. BfTypeLookupError error;
  9980. error.mRefNode = typeRef;
  9981. typeDef = FindTypeDef(typeRef, contextTypeInstance, &error, 0, resolveFlags);
  9982. if (auto namedTypeRef = BfNodeDynCast<BfNamedTypeReference>(typeRef))
  9983. {
  9984. if (auto qualifiedNameNode = BfNodeDynCast<BfQualifiedNameNode>(namedTypeRef->mNameNode))
  9985. {
  9986. // This handles the case where we have an "BaseClass.InnerClass", but the name is qualified as "DerivedClass.InnerClass"
  9987. auto leftType = ResolveTypeRef(qualifiedNameNode->mLeft, NULL, BfPopulateType_Identity, (BfResolveTypeRefFlags)(resolveFlags | BfResolveTypeRefFlag_NoResolveGenericParam | BfResolveTypeRefFlag_AllowRef));
  9988. if ((leftType != NULL) && (qualifiedNameNode->mRight != NULL))
  9989. {
  9990. // Try searching within inner type
  9991. auto resolvedType = ResolveInnerType(leftType, qualifiedNameNode->mRight, populateType, true);
  9992. if (resolvedType != NULL)
  9993. {
  9994. if (mCurTypeInstance != NULL)
  9995. AddDependency(leftType, mCurTypeInstance, BfDependencyMap::DependencyFlag_NameReference);
  9996. return ResolveTypeResult(typeRef, resolvedType, populateType, resolveFlags);
  9997. }
  9998. }
  9999. }
  10000. }
  10001. if ((typeDef == NULL) && (mCurTypeInstance != NULL))
  10002. {
  10003. // Try searching within inner type
  10004. auto checkOuterType = mCurTypeInstance;
  10005. while (checkOuterType != NULL)
  10006. {
  10007. // We check for mBaseType to not be NULL because we can't inherit from an inner type, so don't even search there
  10008. // Causes reference cycles (bad).
  10009. if ((checkOuterType != mCurTypeInstance) || (checkOuterType->mBaseType != NULL))
  10010. {
  10011. auto resolvedType = ResolveInnerType(checkOuterType, typeRef, populateType, true);
  10012. if (resolvedType != NULL)
  10013. {
  10014. if (mCurTypeInstance != NULL)
  10015. AddDependency(checkOuterType, mCurTypeInstance, BfDependencyMap::DependencyFlag_NameReference);
  10016. return ResolveTypeResult(typeRef, resolvedType, populateType, resolveFlags);
  10017. }
  10018. }
  10019. checkOuterType = GetOuterType(checkOuterType);
  10020. }
  10021. }
  10022. if (typeDef == NULL)
  10023. {
  10024. auto staticSearch = GetStaticSearch();
  10025. if (staticSearch != NULL)
  10026. {
  10027. for (auto staticTypeInst : staticSearch->mStaticTypes)
  10028. {
  10029. auto resolvedType = ResolveInnerType(staticTypeInst, typeRef, populateType, true);
  10030. if (resolvedType != NULL)
  10031. {
  10032. if (mCurTypeInstance != NULL)
  10033. AddDependency(staticTypeInst, mCurTypeInstance, BfDependencyMap::DependencyFlag_NameReference);
  10034. return ResolveTypeResult(typeRef, resolvedType, populateType, resolveFlags);
  10035. }
  10036. }
  10037. }
  10038. }
  10039. if (typeDef == NULL)
  10040. {
  10041. #ifdef BF_AST_HAS_PARENT_MEMBER
  10042. if (auto parentQualifiedTypeRef = BfNodeDynCast<BfQualifiedTypeReference>(typeRef->mParent))
  10043. {
  10044. BF_ASSERT(typeRef->mParent == mParentNodeEntry->mNode);
  10045. }
  10046. #endif
  10047. if (mParentNodeEntry != NULL)
  10048. {
  10049. if (auto parentQualifiedTypeRef = BfNodeDynCast<BfQualifiedTypeReference>(mParentNodeEntry->mNode))
  10050. {
  10051. if (typeRef == parentQualifiedTypeRef->mLeft)
  10052. {
  10053. if ((resolveFlags & BfResolveTypeRefFlag_IgnoreLookupError) == 0)
  10054. TypeRefNotFound(typeRef);
  10055. return ResolveTypeResult(typeRef, NULL, populateType, resolveFlags);
  10056. }
  10057. }
  10058. }
  10059. if ((resolveFlags & BfResolveTypeRefFlag_IgnoreLookupError) == 0)
  10060. {
  10061. TypeRefNotFound(typeRef, ((resolveFlags & Beefy::BfResolveTypeRefFlag_Attribute) != 0) ? "Attribute" : NULL);
  10062. return ResolveTypeResult(typeRef, NULL, populateType, resolveFlags);
  10063. }
  10064. return NULL;
  10065. }
  10066. }
  10067. else if (auto typeDefTypeRef = BfNodeDynCastExact<BfDirectTypeDefReference>(typeRef))
  10068. {
  10069. typeDef = typeDefTypeRef->mTypeDef;
  10070. }
  10071. if (auto qualifiedTypeRef = BfNodeDynCast<BfQualifiedTypeReference>(typeRef))
  10072. {
  10073. //TODO: Determine why we had this prevIgnoreErrors set here. It causes things like IEnumerator<Hey.Test<INVALIDNAME>> not fail
  10074. // properly on INVALIDNAME
  10075. SetAndRestoreValue<bool> prevIgnoreErrors(mIgnoreErrors, /*true*/mIgnoreErrors);
  10076. StringView leftNameStr;
  10077. BfType* leftType = NULL;
  10078. BfSizedAtomComposite leftComposite;
  10079. bool leftIsValid = false;
  10080. //bool leftIsValid = (qualifiedTypeRef->mLeft != NULL) && mSystem->ParseAtomComposite(qualifiedTypeRef->mLeft->ToString(), leftComposite);
  10081. if (qualifiedTypeRef->mLeft != NULL)
  10082. {
  10083. leftNameStr = qualifiedTypeRef->mLeft->ToStringView();
  10084. if (mSystem->ParseAtomComposite(leftNameStr, leftComposite))
  10085. leftIsValid = true;
  10086. }
  10087. if ((leftIsValid) && (qualifiedTypeRef->mRight != NULL))
  10088. {
  10089. StringT<128> findName;
  10090. auto genericTypeRef = BfNodeDynCast<BfGenericInstanceTypeRef>(qualifiedTypeRef->mRight);
  10091. auto activeTypeDef = GetActiveTypeDef();
  10092. BfProject* bfProject = NULL;
  10093. if (activeTypeDef != NULL)
  10094. bfProject = activeTypeDef->mProject;
  10095. bool leftIsNamespace = false;
  10096. if (mSystem->ContainsNamespace(leftComposite, bfProject))
  10097. {
  10098. leftIsNamespace = true;
  10099. }
  10100. else if (checkProjects != NULL)
  10101. {
  10102. for (auto checkProject : *checkProjects)
  10103. {
  10104. if (mSystem->ContainsNamespace(leftComposite, checkProject))
  10105. {
  10106. leftIsNamespace = true;
  10107. break;
  10108. }
  10109. }
  10110. }
  10111. if (leftIsNamespace)
  10112. {
  10113. qualifiedTypeRef->mLeft->ToString(findName);
  10114. findName.Append('.');
  10115. if (genericTypeRef != NULL)
  10116. genericTypeRef->mElementType->ToString(findName);
  10117. else
  10118. qualifiedTypeRef->mRight->ToString(findName);
  10119. if ((resolveFlags & BfResolveTypeRefFlag_Attribute) != 0)
  10120. findName += "Attribute";
  10121. }
  10122. else if ((activeTypeDef != NULL) && (activeTypeDef->mNamespace.EndsWith(leftComposite)))
  10123. {
  10124. // Partial namespace reference, extend to a full reference
  10125. findName += activeTypeDef->mNamespace.ToString();
  10126. findName.Append('.');
  10127. qualifiedTypeRef->mRight->ToString(findName);
  10128. }
  10129. if (!findName.IsEmpty())
  10130. {
  10131. int wantNumGenericArgs = numGenericArgs;
  10132. #ifdef BF_AST_HAS_PARENT_MEMBER
  10133. if (auto genericTypeParent = BfNodeDynCast<BfGenericInstanceTypeRef>(typeRef->mParent))
  10134. {
  10135. BF_ASSERT(mParentNodeEntry->mNode == genericTypeParent);
  10136. //wantNumGenericArgs = (int)genericTypeParent->mGenericArguments.size();
  10137. //genericTypeRef = genericTypeParent;
  10138. }
  10139. #endif
  10140. if (mParentNodeEntry != NULL)
  10141. {
  10142. if (auto genericTypeParent = BfNodeDynCast<BfGenericInstanceTypeRef>(mParentNodeEntry->mNode))
  10143. {
  10144. wantNumGenericArgs = (int)genericTypeParent->mGenericArguments.size();
  10145. genericTypeRef = genericTypeParent;
  10146. }
  10147. }
  10148. BfTypeDef* ambiguousTypeDef = NULL;
  10149. BfTypeLookupError lookupError;
  10150. auto typeDef = FindTypeDef(findName, wantNumGenericArgs, NULL, &lookupError, resolveFlags);
  10151. if (typeDef != NULL)
  10152. {
  10153. if (ambiguousTypeDef != NULL)
  10154. ShowAmbiguousTypeError(typeRef, typeDef, ambiguousTypeDef);
  10155. BfTypeVector genericArgs;
  10156. if (populateType != BfPopulateType_TypeDef)
  10157. {
  10158. if (genericTypeRef != NULL)
  10159. {
  10160. for (auto genericParamTypeRef : genericTypeRef->mGenericArguments)
  10161. {
  10162. auto genericParam = ResolveTypeRef(genericParamTypeRef, NULL, BfPopulateType_Declaration);
  10163. if (genericParam == NULL)
  10164. return ResolveTypeResult(typeRef, NULL, populateType, resolveFlags);
  10165. genericArgs.push_back(genericParam);
  10166. }
  10167. }
  10168. if (typeDef->mGenericParamDefs.size() != genericArgs.size())
  10169. {
  10170. prevIgnoreErrors.Restore();
  10171. BfAstNode* refNode = typeRef;
  10172. if (genericTypeRef != NULL)
  10173. refNode = genericTypeRef->mOpenChevron;
  10174. int wantedGenericParams = (int)typeDef->mGenericParamDefs.size();
  10175. if (wantedGenericParams == 1)
  10176. Fail("Expected one generic argument", refNode);
  10177. else
  10178. Fail(StrFormat("Expected %d generic arguments", wantedGenericParams), refNode);
  10179. return ResolveTypeResult(typeRef, NULL, populateType, resolveFlags);
  10180. }
  10181. }
  10182. return ResolveTypeResult(typeRef, ResolveTypeDef(typeDef, genericArgs, populateType, resolveFlags), populateType, resolveFlags);
  10183. }
  10184. }
  10185. }
  10186. if (leftType == NULL)
  10187. {
  10188. BfAutoParentNodeEntry autoParentNodeEntry(this, qualifiedTypeRef);
  10189. auto leftPopulateType = BfPopulateType_Identity;
  10190. if ((resolveFlags & BfResolveTypeRefFlag_AllowUnboundGeneric) == 0)
  10191. {
  10192. // We can't just pass 'Identity' here because it won't validate a generic type ref on the left
  10193. leftPopulateType = BfPopulateType_Declaration;
  10194. }
  10195. leftType = ResolveTypeRef(qualifiedTypeRef->mLeft, leftPopulateType,
  10196. (BfResolveTypeRefFlags)((resolveFlags | BfResolveTypeRefFlag_IgnoreLookupError) & ~BfResolveTypeRefFlag_Attribute)); // We throw an error below if we can't find the type
  10197. }
  10198. if (leftType == NULL)
  10199. {
  10200. mIgnoreErrors = prevIgnoreErrors.mPrevVal;
  10201. BfTypeReference* errorRefNode = qualifiedTypeRef->mLeft;
  10202. if ((leftIsValid) && (mCurTypeInstance != NULL) && (mSystem->ContainsNamespace(leftComposite, curTypeDef->mProject)))
  10203. {
  10204. // The left was a namespace name, so throw an error on the whole string
  10205. errorRefNode = qualifiedTypeRef;
  10206. }
  10207. TypeRefNotFound(errorRefNode);
  10208. return ResolveTypeResult(typeRef, NULL, populateType, resolveFlags);
  10209. }
  10210. prevIgnoreErrors.Restore();
  10211. if (qualifiedTypeRef->mRight == NULL)
  10212. {
  10213. FailAfter("Expected identifier", qualifiedTypeRef->mDot);
  10214. //AssertErrorState();
  10215. return ResolveTypeResult(typeRef, NULL, populateType, resolveFlags);
  10216. }
  10217. if (leftType->IsGenericParam())
  10218. {
  10219. auto genericParam = GetGenericParamInstance((BfGenericParamType*)leftType);
  10220. if ((genericParam->mGenericParamFlags & BfGenericParamFlag_Var) != 0)
  10221. return ResolveTypeResult(typeRef, GetPrimitiveType(BfTypeCode_Var), populateType, resolveFlags);
  10222. if ((genericParam->IsEnum()) && (qualifiedTypeRef->mRight != NULL))
  10223. {
  10224. StringView findNameRight = qualifiedTypeRef->mRight->ToStringView();
  10225. if (findNameRight == "UnderlyingType")
  10226. return ResolveTypeResult(typeRef, GetPrimitiveType(BfTypeCode_Var), populateType, resolveFlags);
  10227. }
  10228. }
  10229. auto resolvedType = ResolveInnerType(leftType, qualifiedTypeRef->mRight, populateType, false, numGenericArgs, resolveFlags);
  10230. if ((resolvedType != NULL) && (mCurTypeInstance != NULL))
  10231. AddDependency(leftType, mCurTypeInstance, BfDependencyMap::DependencyFlag_NameReference);
  10232. return ResolveTypeResult(typeRef, resolvedType, populateType, resolveFlags);
  10233. // If we did a ResolveTypeResult, then that may process an alias as the alias-to type instead of the actual alias
  10234. //return ResolveInnerType(leftType, qualifiedTypeRef->mRight, populateType);
  10235. }
  10236. if (auto resolvedTypeRef = BfNodeDynCast<BfResolvedTypeReference>(typeRef))
  10237. {
  10238. return ResolveTypeResult(typeRef, resolvedTypeRef->mType, populateType, resolveFlags);
  10239. }
  10240. if (auto retTypeTypeRef = BfNodeDynCastExact<BfModifiedTypeRef>(typeRef))
  10241. {
  10242. if (retTypeTypeRef->mRetTypeToken->mToken == BfToken_RetType)
  10243. {
  10244. bool allowThrough = false;
  10245. BfType* resolvedType = NULL;
  10246. if (retTypeTypeRef->mElementType != NULL)
  10247. {
  10248. auto innerType = ResolveTypeRef(retTypeTypeRef->mElementType, BfPopulateType_Declaration, BfResolveTypeRefFlag_AllowGenericParamConstValue);
  10249. if (innerType != NULL)
  10250. {
  10251. if ((innerType->IsDelegate()) || (innerType->IsFunction()))
  10252. {
  10253. PopulateType(innerType, BfPopulateType_DataAndMethods);
  10254. BfMethodInstance* invokeMethodInstance = GetRawMethodInstanceAtIdx(innerType->ToTypeInstance(), 0, "Invoke");
  10255. if (invokeMethodInstance != NULL)
  10256. {
  10257. resolvedType = invokeMethodInstance->mReturnType;
  10258. if ((resolvedType != NULL) && (resolvedType->IsRef()))
  10259. resolvedType = resolvedType->GetUnderlyingType();
  10260. return ResolveTypeResult(typeRef, resolvedType, populateType, resolveFlags);
  10261. }
  10262. }
  10263. else if (innerType->IsGenericParam())
  10264. {
  10265. if ((mCurTypeInstance != NULL) && (mCurTypeInstance->IsUnspecializedTypeVariation()))
  10266. {
  10267. // We could have case where we have "rettype(@T0)" and @T0 gets a type variation of @M0, but we can't do a
  10268. // GetGenericParamInstance on that
  10269. allowThrough = true;
  10270. }
  10271. else
  10272. {
  10273. auto genericParamInstance = GetGenericParamInstance((BfGenericParamType*)innerType);
  10274. if (genericParamInstance->mTypeConstraint != NULL)
  10275. {
  10276. if ((genericParamInstance->mTypeConstraint->IsDelegate()) || (genericParamInstance->mTypeConstraint->IsFunction()))
  10277. {
  10278. resolvedType = GetDelegateReturnType(genericParamInstance->mTypeConstraint);
  10279. return ResolveTypeResult(typeRef, resolvedType, populateType, resolveFlags);
  10280. }
  10281. else if ((genericParamInstance->mTypeConstraint->IsInstanceOf(mCompiler->mDelegateTypeDef)) ||
  10282. (genericParamInstance->mTypeConstraint->IsInstanceOf(mCompiler->mFunctionTypeDef)))
  10283. {
  10284. allowThrough = true;
  10285. }
  10286. }
  10287. }
  10288. }
  10289. else if (innerType->IsMethodRef())
  10290. {
  10291. auto methodRefType = (BfMethodRefType*)innerType;
  10292. resolvedType = methodRefType->mMethodRef->mReturnType;
  10293. if ((resolvedType != NULL) && (resolvedType->IsRef()))
  10294. resolvedType = resolvedType->GetUnderlyingType();
  10295. return ResolveTypeResult(typeRef, resolvedType, populateType, resolveFlags);
  10296. }
  10297. }
  10298. }
  10299. if (!allowThrough)
  10300. {
  10301. Fail("'rettype' can only be used on delegate or function types", retTypeTypeRef->mRetTypeToken);
  10302. return ResolveTypeResult(typeRef, resolvedType, populateType, resolveFlags);
  10303. }
  10304. }
  10305. else if (retTypeTypeRef->mRetTypeToken->mToken == BfToken_AllocType)
  10306. {
  10307. BfType* resolvedType = NULL;
  10308. if (retTypeTypeRef->mElementType != NULL)
  10309. {
  10310. resolvedType = ResolveTypeRef(retTypeTypeRef->mElementType, BfPopulateType_Declaration, BfResolveTypeRefFlag_AllowGenericParamConstValue);
  10311. if (resolvedType != NULL)
  10312. {
  10313. if (resolvedType->IsGenericParam())
  10314. {
  10315. auto genericParam = GetGenericParamInstance((BfGenericParamType*)resolvedType);
  10316. if (((genericParam->mTypeConstraint != NULL) && (genericParam->mTypeConstraint->IsValueType())) ||
  10317. ((genericParam->mGenericParamFlags & (BfGenericParamFlag_Struct | BfGenericParamFlag_StructPtr | BfGenericParamFlag_Enum)) != 0))
  10318. {
  10319. resolvedType = CreatePointerType(resolvedType);
  10320. }
  10321. else if (((genericParam->mTypeConstraint != NULL) && (!genericParam->mTypeConstraint->IsValueType())) ||
  10322. ((genericParam->mGenericParamFlags & (BfGenericParamFlag_Class)) != 0))
  10323. {
  10324. // Leave as 'T'
  10325. }
  10326. else
  10327. resolvedType = CreateModifiedTypeType(resolvedType, BfToken_AllocType);
  10328. }
  10329. else if (resolvedType->IsValueType())
  10330. resolvedType = CreatePointerType(resolvedType);
  10331. }
  10332. }
  10333. return ResolveTypeResult(typeRef, resolvedType, populateType, resolveFlags);
  10334. }
  10335. else if (retTypeTypeRef->mRetTypeToken->mToken == BfToken_Nullable)
  10336. {
  10337. bool allowThrough = false;
  10338. BfType* resolvedType = NULL;
  10339. if (retTypeTypeRef->mElementType != NULL)
  10340. {
  10341. resolvedType = ResolveTypeRef(retTypeTypeRef->mElementType, BfPopulateType_Declaration, BfResolveTypeRefFlag_AllowGenericParamConstValue);
  10342. }
  10343. if ((resolvedType != NULL) && (resolvedType->IsGenericParam()))
  10344. {
  10345. //resolvedType = CreateModifiedTypeType(resolvedType, BfToken_Nullable);
  10346. BfTypeVector typeVec;
  10347. typeVec.push_back(resolvedType);
  10348. resolvedType = ResolveTypeDef(mCompiler->mNullableTypeDef, typeVec, BfPopulateType_Declaration);
  10349. }
  10350. else if (resolvedType != NULL)
  10351. {
  10352. if (resolvedType->IsValueType())
  10353. {
  10354. if (InDefinitionSection())
  10355. Warn(0, StrFormat("Consider using '%s?' instead of nullable modifier", TypeToString(resolvedType).c_str()), retTypeTypeRef);
  10356. BfTypeVector typeVec;
  10357. typeVec.push_back(resolvedType);
  10358. resolvedType = ResolveTypeDef(mCompiler->mNullableTypeDef, typeVec, BfPopulateType_Declaration);
  10359. }
  10360. else
  10361. {
  10362. if (InDefinitionSection())
  10363. Warn(0, StrFormat("Unneeded nullable modifier, %s is already nullable", TypeToString(resolvedType).c_str()), retTypeTypeRef->mRetTypeToken);
  10364. }
  10365. }
  10366. if (resolvedType != NULL)
  10367. PopulateType(resolvedType, populateType);
  10368. return resolvedType;
  10369. }
  10370. else
  10371. BFMODULE_FATAL(this, "Unhandled");
  10372. }
  10373. if (auto refTypeRef = BfNodeDynCastExact<BfRefTypeRef>(typeRef))
  10374. {
  10375. if ((refTypeRef->mRefToken != NULL) && (refTypeRef->mRefToken->GetToken() == BfToken_Mut) && (refTypeRef->mElementType != NULL))
  10376. {
  10377. bool needsRefWrap = false;
  10378. auto resolvedType = ResolveTypeRef(refTypeRef->mElementType, BfPopulateType_Identity, BfResolveTypeRefFlag_AllowGenericParamConstValue);
  10379. if (resolvedType != NULL)
  10380. {
  10381. if ((resolvedType->IsValueType()) || (resolvedType->IsGenericParam()))
  10382. needsRefWrap = true;
  10383. if ((InDefinitionSection()) && (!resolvedType->IsGenericParam()) && ((resolveFlags & BfResolveTypeRefFlag_NoWarnOnMut) == 0))
  10384. {
  10385. if (!resolvedType->IsValueType())
  10386. Warn(0, StrFormat("Specified 'mut' has no effect on '%s' since reference types are always mutable", TypeToString(resolvedType).c_str()), refTypeRef->mRefToken);
  10387. else
  10388. Warn(0, "Use 'mut' for generic arguments which may or may not be reference types. Consider using 'ref' here, instead.", refTypeRef->mRefToken);
  10389. }
  10390. }
  10391. if (!needsRefWrap)
  10392. {
  10393. // Non-composites (including pointers) don't actually need ref-wrapping for 'mut'
  10394. return ResolveTypeResult(typeRef, resolvedType, populateType, resolveFlags);
  10395. }
  10396. }
  10397. }
  10398. static int sCallIdx = 0;
  10399. int callIdx = 0;
  10400. if (!mCompiler->mIsResolveOnly)
  10401. {
  10402. callIdx = sCallIdx++;
  10403. if (callIdx == 0x0000A224)
  10404. {
  10405. NOP;
  10406. }
  10407. }
  10408. BfResolvedTypeSet::LookupContext lookupCtx;
  10409. lookupCtx.mResolveFlags = (BfResolveTypeRefFlags)(resolveFlags &
  10410. (BfResolveTypeRefFlag_NoCreate | BfResolveTypeRefFlag_IgnoreLookupError | BfResolveTypeRefFlag_DisallowComptime |
  10411. BfResolveTypeRefFlag_AllowInferredSizedArray | BfResolveTypeRefFlag_Attribute | BfResolveTypeRefFlag_AllowUnboundGeneric |
  10412. BfResolveTypeRefFlag_ForceUnboundGeneric | BfResolveTypeRefFlag_AllowGenericParamConstValue |
  10413. BfResolveTypeRefFlag_AllowImplicitConstExpr | BfResolveTypeRefFlag_SpecializedProject));
  10414. lookupCtx.mRootTypeRef = typeRef;
  10415. lookupCtx.mRootTypeDef = typeDef;
  10416. lookupCtx.mModule = this;
  10417. BfResolvedTypeSet::EntryRef resolvedEntry;
  10418. if (auto delegateTypeRef = BfNodeDynCastExact<BfDelegateTypeRef>(typeRef))
  10419. GetDelegateTypeRefAttributes(delegateTypeRef, lookupCtx.mCallingConvention);
  10420. auto inserted = mContext->mResolvedTypes.Insert(typeRef, &lookupCtx, &resolvedEntry);
  10421. if (!resolvedEntry)
  10422. {
  10423. if (lookupCtx.mHadVar)
  10424. return ResolveTypeResult(typeRef, GetPrimitiveType(BfTypeCode_Var), populateType, resolveFlags);
  10425. return ResolveTypeResult(typeRef, NULL, populateType, resolveFlags);
  10426. }
  10427. if (!inserted)
  10428. {
  10429. BF_ASSERT(resolvedEntry->mValue != NULL);
  10430. BF_ASSERT(!resolvedEntry->mValue->IsDeleting());
  10431. return ResolveTypeResult(typeRef, resolvedEntry->mValue, populateType, resolveFlags);
  10432. }
  10433. defer({
  10434. if (resolvedEntry->mValue == NULL)
  10435. mContext->mResolvedTypes.RemoveEntry(resolvedEntry);
  10436. });
  10437. if ((lookupCtx.mIsUnboundGeneric) && (lookupCtx.mRootTypeDef != NULL))
  10438. {
  10439. return ResolveTypeResult(typeRef, ResolveTypeDef(lookupCtx.mRootTypeDef), populateType, resolveFlags);
  10440. }
  10441. if ((resolveFlags & BfResolveTypeRefFlag_NoCreate) != 0)
  10442. {
  10443. return ResolveTypeResult(typeRef, NULL, populateType, resolveFlags);
  10444. }
  10445. BfModule* populateModule = this;
  10446. if ((resolveFlags & BfResolveTypeRefFlag_NoReify) != 0)
  10447. populateModule = mContext->mUnreifiedModule;
  10448. if (typeRef->IsTypeDefTypeReference())
  10449. {
  10450. //BF_ASSERT(typeDefTypeRef->mTypeDef != NULL); // Resolved higher up
  10451. //auto typeDef = typeDefTypeRef->mTypeDef;
  10452. if ((typeDef->mTypeCode >= BfTypeCode_None) && (typeDef->mTypeCode <= BfTypeCode_Double))
  10453. {
  10454. BfPrimitiveType* primType = new BfPrimitiveType();
  10455. primType->mTypeDef = typeDef;
  10456. resolvedEntry->mValue = primType;
  10457. BF_ASSERT(BfResolvedTypeSet::Hash(primType, &lookupCtx, false) == resolvedEntry->mHashCode);
  10458. populateModule->InitType(primType, populateType);
  10459. return ResolveTypeResult(typeRef, primType, populateType, resolveFlags);
  10460. }
  10461. BfTypeInstance* outerTypeInstance = lookupCtx.mRootOuterTypeInstance;
  10462. if (outerTypeInstance == NULL)
  10463. outerTypeInstance = mCurTypeInstance;
  10464. if ((outerTypeInstance != NULL) && (typeDef->mGenericParamDefs.size() != 0))
  10465. {
  10466. // Try to inherit generic params from current parent
  10467. if (outerTypeInstance->IsDeleting())
  10468. {
  10469. mCompiler->RequestExtraCompile();
  10470. InternalError("ResolveTypeRef with deleted outer type");
  10471. return ResolveTypeResult(typeRef, NULL, populateType, resolveFlags);
  10472. }
  10473. BfTypeDef* outerType = mSystem->GetCombinedPartial(typeDef->mOuterType);
  10474. BF_ASSERT(!outerType->mIsPartial);
  10475. if (TypeHasParentOrEquals(outerTypeInstance->mTypeDef, outerType))
  10476. {
  10477. BfType* checkCurType = outerTypeInstance;
  10478. if (checkCurType->IsBoxed())
  10479. checkCurType = checkCurType->GetUnderlyingType();
  10480. if (checkCurType->IsTypeAlias())
  10481. checkCurType = GetOuterType(checkCurType);
  10482. BF_ASSERT(checkCurType->IsGenericTypeInstance());
  10483. int numParentGenericParams = (int)outerType->mGenericParamDefs.size();
  10484. int wantedGenericParams = (int)typeDef->mGenericParamDefs.size() - numParentGenericParams;
  10485. if (wantedGenericParams != 0)
  10486. {
  10487. if (wantedGenericParams == 1)
  10488. Fail("Expected generic argument", typeRef);
  10489. else
  10490. Fail(StrFormat("Expected %d generic arguments", wantedGenericParams), typeRef);
  10491. return ResolveTypeResult(typeRef, NULL, populateType, resolveFlags);
  10492. }
  10493. auto parentGenericTypeInstance = (BfTypeInstance*)checkCurType;
  10494. BfTypeInstance* genericTypeInst;
  10495. if (typeDef->mTypeCode == BfTypeCode_TypeAlias)
  10496. {
  10497. auto typeAliasType = new BfTypeAliasType();
  10498. genericTypeInst = typeAliasType;
  10499. }
  10500. else
  10501. genericTypeInst = new BfTypeInstance();
  10502. genericTypeInst->mGenericTypeInfo = new BfGenericTypeInfo();
  10503. genericTypeInst->mTypeDef = typeDef;
  10504. if (parentGenericTypeInstance->mGenericTypeInfo->mGenericParams.IsEmpty())
  10505. PopulateType(parentGenericTypeInstance, BfPopulateType_Declaration);
  10506. for (int i = 0; i < numParentGenericParams; i++)
  10507. {
  10508. genericTypeInst->mGenericTypeInfo->mGenericParams.push_back(parentGenericTypeInstance->mGenericTypeInfo->mGenericParams[i]->AddRef());
  10509. genericTypeInst->mGenericTypeInfo->mTypeGenericArguments.push_back(parentGenericTypeInstance->mGenericTypeInfo->mTypeGenericArguments[i]);
  10510. }
  10511. CheckUnspecializedGenericType(genericTypeInst, populateType);
  10512. resolvedEntry->mValue = genericTypeInst;
  10513. populateModule->InitType(genericTypeInst, populateType);
  10514. #ifdef _DEBUG
  10515. if (BfResolvedTypeSet::Hash(genericTypeInst, &lookupCtx) != resolvedEntry->mHashCode)
  10516. {
  10517. int refHash = BfResolvedTypeSet::Hash(typeRef, &lookupCtx);
  10518. int typeHash = BfResolvedTypeSet::Hash(genericTypeInst, &lookupCtx);
  10519. BF_ASSERT(refHash == typeHash);
  10520. }
  10521. #endif
  10522. return ResolveTypeResult(typeRef, genericTypeInst, populateType, resolveFlags);
  10523. }
  10524. }
  10525. BfTypeInstance* typeInst;
  10526. if (typeDef->mTypeCode == BfTypeCode_TypeAlias)
  10527. {
  10528. auto typeAliasType = new BfTypeAliasType();
  10529. typeInst = typeAliasType;
  10530. }
  10531. else
  10532. {
  10533. typeInst = new BfTypeInstance();
  10534. }
  10535. typeInst->mTypeDef = typeDef;
  10536. if (((resolveFlags & BfResolveTypeRefFlag_NoReify) != 0) && (mCompiler->mOptions.mCompileOnDemandKind != BfCompileOnDemandKind_AlwaysInclude))
  10537. {
  10538. typeInst->mIsReified = false;
  10539. }
  10540. if (typeInst->mTypeDef->mGenericParamDefs.size() != 0)
  10541. {
  10542. Fail("Generic type arguments expected", typeRef);
  10543. delete typeInst;
  10544. return ResolveTypeResult(typeRef, NULL, populateType, resolveFlags);
  10545. }
  10546. resolvedEntry->mValue = typeInst;
  10547. #ifdef _DEBUG
  10548. int typeRefash = BfResolvedTypeSet::Hash(typeRef, &lookupCtx);
  10549. #endif
  10550. populateModule->InitType(typeInst, populateType);
  10551. if (BfResolvedTypeSet::Hash(typeInst, &lookupCtx) != resolvedEntry->mHashCode)
  10552. {
  10553. int refHash = BfResolvedTypeSet::Hash(typeRef, &lookupCtx);
  10554. int typeHash = BfResolvedTypeSet::Hash(typeInst, &lookupCtx);
  10555. BF_ASSERT(refHash == typeHash);
  10556. }
  10557. {
  10558. BF_ASSERT(BfResolvedTypeSet::Hash(typeInst, &lookupCtx) == resolvedEntry->mHashCode);
  10559. }
  10560. return ResolveTypeResult(typeRef, typeInst, populateType, resolveFlags);
  10561. }
  10562. else if (auto arrayTypeRef = BfNodeDynCast<BfArrayTypeRef>(typeRef))
  10563. {
  10564. if (arrayTypeRef->mDimensions > 4)
  10565. {
  10566. Fail("Too many array dimensions, consider using a jagged array.", arrayTypeRef);
  10567. return ResolveTypeResult(typeRef, NULL, populateType, resolveFlags);
  10568. }
  10569. auto elementType = ResolveTypeRef(arrayTypeRef->mElementType, BfPopulateType_Declaration, BfResolveTypeRefFlag_AllowGenericParamConstValue);
  10570. auto arrayTypeDef = mCompiler->GetArrayTypeDef(arrayTypeRef->mDimensions);
  10571. if ((elementType == NULL) || (arrayTypeDef == NULL))
  10572. {
  10573. return ResolveTypeResult(typeRef, NULL, populateType, resolveFlags);
  10574. }
  10575. if ((arrayTypeRef->mDimensions == 1) && (arrayTypeRef->mParams.size() == 1))
  10576. {
  10577. intptr elementCount = -1;
  10578. BfExpression* sizeExpr = BfNodeDynCast<BfExpression>(arrayTypeRef->mParams[0]);
  10579. BF_ASSERT(sizeExpr != NULL);
  10580. if (sizeExpr != NULL)
  10581. {
  10582. BfType* intType = GetPrimitiveType(BfTypeCode_IntPtr);
  10583. BfTypedValue typedVal;
  10584. lookupCtx.mResolvedValueMap.TryGetValue(sizeExpr, &typedVal);
  10585. if (typedVal.mKind == BfTypedValueKind_GenericConstValue)
  10586. {
  10587. BfUnknownSizedArrayType* arrayType = new BfUnknownSizedArrayType();
  10588. arrayType->mContext = mContext;
  10589. arrayType->mElementType = elementType;
  10590. arrayType->mElementCount = -1;
  10591. arrayType->mElementCountSource = typedVal.mType;
  10592. resolvedEntry->mValue = arrayType;
  10593. BF_ASSERT(BfResolvedTypeSet::Hash(arrayType, &lookupCtx) == resolvedEntry->mHashCode);
  10594. populateModule->InitType(arrayType, populateType);
  10595. return ResolveTypeResult(typeRef, arrayType, populateType, resolveFlags);
  10596. }
  10597. if (typedVal)
  10598. typedVal = Cast(sizeExpr, typedVal, intType);
  10599. if (typedVal)
  10600. {
  10601. auto constant = mBfIRBuilder->GetConstant(typedVal.mValue);
  10602. if (constant != NULL)
  10603. {
  10604. if (constant->mConstType == BfConstType_Undef)
  10605. elementCount = -1; // Undef marker
  10606. else if (BfIRBuilder::IsInt(constant->mTypeCode))
  10607. elementCount = (intptr)constant->mInt64;
  10608. }
  10609. }
  10610. }
  10611. /*if (elementCount < 0)
  10612. {
  10613. Fail(StrFormat("Array length '%d' is illegal", elementCount), arrayTypeRef->mParams[0]);
  10614. mContext->mResolvedTypes.RemoveEntry(resolvedEntry);
  10615. return CreateSizedArrayType(elementType, 0);
  10616. }*/
  10617. BfSizedArrayType* arrayType = new BfSizedArrayType();
  10618. arrayType->mContext = mContext;
  10619. arrayType->mElementType = elementType;
  10620. arrayType->mElementCount = elementCount;
  10621. arrayType->mWantsGCMarking = false; // Fill in in InitType
  10622. arrayType->mGenericDepth = elementType->GetGenericDepth() + 1;
  10623. resolvedEntry->mValue = arrayType;
  10624. BF_ASSERT(BfResolvedTypeSet::Hash(arrayType, &lookupCtx) == resolvedEntry->mHashCode);
  10625. populateModule->InitType(arrayType, populateType);
  10626. return ResolveTypeResult(typeRef, arrayType, populateType, resolveFlags);
  10627. }
  10628. BfArrayType* arrayType = new BfArrayType();
  10629. arrayType->mGenericTypeInfo = new BfGenericTypeInfo();
  10630. arrayType->mContext = mContext;
  10631. arrayType->mDimensions = arrayTypeRef->mDimensions;
  10632. arrayType->mTypeDef = arrayTypeDef;
  10633. arrayType->mGenericTypeInfo->mTypeGenericArguments.push_back(elementType);
  10634. resolvedEntry->mValue = arrayType;
  10635. CheckUnspecializedGenericType(arrayType, populateType);
  10636. BF_ASSERT(BfResolvedTypeSet::Hash(arrayType, &lookupCtx) == resolvedEntry->mHashCode);
  10637. populateModule->InitType(arrayType, populateType);
  10638. return ResolveTypeResult(typeRef, arrayType, populateType, resolveFlags);
  10639. }
  10640. else if (auto genericTypeInstRef = BfNodeDynCast<BfGenericInstanceTypeRef>(typeRef))
  10641. {
  10642. BfTypeReference* outerTypeRef = NULL;
  10643. Array<BfAstNode*> genericArguments;
  10644. BfTypeReference* checkTypeRef = genericTypeInstRef;
  10645. int checkIdx = 0;
  10646. while (checkTypeRef != NULL)
  10647. {
  10648. checkIdx++;
  10649. if (checkIdx >= 3)
  10650. {
  10651. outerTypeRef = checkTypeRef;
  10652. break;
  10653. }
  10654. if (auto genericTypeRef = BfNodeDynCast<BfGenericInstanceTypeRef>(checkTypeRef))
  10655. {
  10656. for (auto genericArg : genericTypeRef->mGenericArguments)
  10657. genericArguments.push_back(genericArg);
  10658. checkTypeRef = genericTypeRef->mElementType;
  10659. continue;
  10660. }
  10661. if (auto elementedTypeRef = BfNodeDynCast<BfElementedTypeRef>(checkTypeRef))
  10662. {
  10663. checkTypeRef = elementedTypeRef->mElementType;
  10664. continue;
  10665. }
  10666. if (auto qualifiedTypeRef = BfNodeDynCast<BfQualifiedTypeReference>(checkTypeRef))
  10667. {
  10668. checkTypeRef = qualifiedTypeRef->mLeft;
  10669. continue;
  10670. }
  10671. break;
  10672. }
  10673. BfTypeVector genericArgs;
  10674. BfType* type = NULL;
  10675. BfTypeDef* typeDef = ResolveGenericInstanceDef(genericTypeInstRef, &type, resolveFlags);
  10676. if (typeDef == NULL)
  10677. {
  10678. Fail("Unable to resolve type", typeRef);
  10679. return ResolveTypeResult(typeRef, NULL, populateType, resolveFlags);
  10680. }
  10681. BfTypeInstance* outerTypeInstance = NULL;
  10682. BfTypeDef* commonOuterType = NULL;
  10683. int startDefGenericParamIdx = 0;
  10684. if (outerTypeRef != NULL)
  10685. {
  10686. BfType* outerType = lookupCtx.GetCachedResolvedType(outerTypeRef);
  10687. if (outerType != NULL)
  10688. {
  10689. outerTypeInstance = outerType->ToTypeInstance();
  10690. commonOuterType = outerTypeInstance->mTypeDef;
  10691. }
  10692. }
  10693. else
  10694. {
  10695. outerTypeInstance = mCurTypeInstance;
  10696. auto outerType = typeDef->mOuterType;
  10697. commonOuterType = BfResolvedTypeSet::FindRootCommonOuterType(outerType, &lookupCtx, outerTypeInstance);
  10698. }
  10699. if ((commonOuterType) && (outerTypeInstance->IsGenericTypeInstance()))
  10700. {
  10701. startDefGenericParamIdx = (int)commonOuterType->mGenericParamDefs.size();
  10702. auto parentTypeInstance = outerTypeInstance;
  10703. if (parentTypeInstance->IsTypeAlias())
  10704. parentTypeInstance = (BfTypeInstance*)GetOuterType(parentTypeInstance)->ToTypeInstance();
  10705. for (int i = 0; i < startDefGenericParamIdx; i++)
  10706. genericArgs.push_back(parentTypeInstance->mGenericTypeInfo->mTypeGenericArguments[i]);
  10707. }
  10708. for (auto genericArgRef : genericArguments)
  10709. {
  10710. BfType* genericArg = NULL;
  10711. lookupCtx.mResolvedTypeMap.TryGetValue(genericArgRef, &genericArg);
  10712. if (genericArg == NULL)
  10713. genericArg = ResolveTypeRef(genericArgRef, NULL, BfPopulateType_Identity, (BfResolveTypeRefFlags)(BfResolveTypeRefFlag_AllowGenericTypeParamConstValue | BfResolveTypeRefFlag_AllowGenericMethodParamConstValue));
  10714. if ((genericArg == NULL) || (genericArg->IsVar()))
  10715. {
  10716. return ResolveTypeResult(typeRef, ((genericArg != NULL) && (genericArg->IsVar())) ? genericArg : NULL, populateType, resolveFlags);
  10717. }
  10718. genericArgs.Add(genericArg);
  10719. }
  10720. BfTypeInstance* genericTypeInst;
  10721. if ((type != NULL) &&
  10722. ((type->IsDelegateFromTypeRef()) || (type->IsFunctionFromTypeRef())))
  10723. {
  10724. return ResolveGenericType(type, &genericArgs, NULL, mCurTypeInstance);
  10725. }
  10726. else if ((type != NULL) && (type->IsTuple()))
  10727. {
  10728. return ResolveGenericType(type, &genericArgs, NULL, mCurTypeInstance);
  10729. }
  10730. else if ((typeDef != NULL) && (typeDef->mTypeCode == BfTypeCode_TypeAlias))
  10731. {
  10732. auto typeAliasType = new BfTypeAliasType();
  10733. genericTypeInst = typeAliasType;
  10734. }
  10735. else
  10736. genericTypeInst = new BfTypeInstance();
  10737. genericTypeInst->mContext = mContext;
  10738. genericTypeInst->mGenericTypeInfo = new BfGenericTypeInfo();
  10739. BF_ASSERT(typeDef->mDefState != BfTypeDef::DefState_Deleted);
  10740. int genericParamCount = (int)typeDef->mGenericParamDefs.size();
  10741. if ((type != NULL) && (type->IsGenericTypeInstance()))
  10742. {
  10743. // Is a generic type for sure...
  10744. // We need this case for generic methods
  10745. genericParamCount = (int)((BfTypeInstance*)type)->mGenericTypeInfo->mTypeGenericArguments.size();
  10746. }
  10747. else if (typeDef->mGenericParamDefs.size() == 0)
  10748. {
  10749. Fail("Not a generic type", typeRef);
  10750. delete genericTypeInst;
  10751. return ResolveTypeResult(typeRef, NULL, populateType, resolveFlags);
  10752. }
  10753. genericTypeInst->mTypeDef = typeDef;
  10754. if (commonOuterType != NULL)
  10755. {
  10756. auto parentTypeInstance = outerTypeInstance;
  10757. if ((parentTypeInstance != NULL) && (parentTypeInstance->IsTypeAlias()))
  10758. parentTypeInstance = (BfTypeInstance*)GetOuterType(parentTypeInstance)->ToTypeInstance();
  10759. if (parentTypeInstance->mDefineState < BfTypeDefineState_Declared)
  10760. PopulateType(parentTypeInstance, BfPopulateType_Declaration);
  10761. if ((parentTypeInstance != NULL) && (parentTypeInstance->IsGenericTypeInstance()))
  10762. {
  10763. genericTypeInst->mGenericTypeInfo->mMaxGenericDepth = BF_MAX(genericTypeInst->mGenericTypeInfo->mMaxGenericDepth, parentTypeInstance->mGenericTypeInfo->mMaxGenericDepth);
  10764. for (int i = 0; i < startDefGenericParamIdx; i++)
  10765. {
  10766. genericTypeInst->mGenericTypeInfo->mGenericParams.push_back(parentTypeInstance->mGenericTypeInfo->mGenericParams[i]->AddRef());
  10767. genericTypeInst->mGenericTypeInfo->mTypeGenericArguments.push_back(parentTypeInstance->mGenericTypeInfo->mTypeGenericArguments[i]);
  10768. auto typeGenericArg = genericTypeInst->mGenericTypeInfo->mTypeGenericArguments[i];
  10769. genericTypeInst->mGenericTypeInfo->mIsUnspecialized |= typeGenericArg->IsGenericParam() || typeGenericArg->IsUnspecializedType();
  10770. }
  10771. }
  10772. }
  10773. int wantedGenericParams = genericParamCount - startDefGenericParamIdx;
  10774. int genericArgDiffCount = (int)genericArguments.size() - wantedGenericParams;
  10775. if (genericArgDiffCount != 0)
  10776. {
  10777. int innerWantedGenericParams = genericParamCount;
  10778. if (typeDef->mOuterType != NULL)
  10779. innerWantedGenericParams -= (int)typeDef->mOuterType->mGenericParamDefs.size();
  10780. ShowGenericArgCountError(genericTypeInstRef, innerWantedGenericParams);
  10781. delete genericTypeInst;
  10782. return ResolveTypeResult(typeRef, NULL, populateType, resolveFlags);
  10783. }
  10784. int genericParamIdx = 0;
  10785. for (auto genericArgRef : genericArguments)
  10786. {
  10787. auto genericArg = genericArgs[genericParamIdx + startDefGenericParamIdx];
  10788. genericTypeInst->mGenericTypeInfo->mMaxGenericDepth = BF_MAX(genericTypeInst->mGenericTypeInfo->mMaxGenericDepth, genericArg->GetGenericDepth() + 1);
  10789. genericTypeInst->mGenericTypeInfo->mTypeGenericArguments.push_back(genericArg);
  10790. genericParamIdx++;
  10791. }
  10792. if (genericTypeInst->mGenericTypeInfo->mMaxGenericDepth > 64)
  10793. {
  10794. Fail("Maximum generic depth exceeded", typeRef);
  10795. delete genericTypeInst;
  10796. return ResolveTypeResult(typeRef, NULL, populateType, resolveFlags);
  10797. }
  10798. resolvedEntry->mValue = genericTypeInst;
  10799. CheckUnspecializedGenericType(genericTypeInst, populateType);
  10800. populateModule->InitType(genericTypeInst, populateType);
  10801. #ifdef _DEBUG
  10802. if (BfResolvedTypeSet::Hash(genericTypeInst, &lookupCtx) != resolvedEntry->mHashCode)
  10803. {
  10804. int refHash = BfResolvedTypeSet::Hash(typeRef, &lookupCtx);
  10805. int typeHash = BfResolvedTypeSet::Hash(genericTypeInst, &lookupCtx);
  10806. BF_ASSERT(refHash == typeHash);
  10807. BF_ASSERT(refHash == resolvedEntry->mHashCode);
  10808. }
  10809. if (!BfResolvedTypeSet::Equals(genericTypeInst, typeRef, &lookupCtx))
  10810. {
  10811. BF_ASSERT(BfResolvedTypeSet::Equals(genericTypeInst, typeRef, &lookupCtx) || (mCompiler->mCanceling));
  10812. }
  10813. BfLogSysM("Generic type %p typeHash: %8X\n", genericTypeInst, resolvedEntry->mHashCode);
  10814. #endif
  10815. BF_ASSERT(BfResolvedTypeSet::Hash(genericTypeInst, &lookupCtx) == resolvedEntry->mHashCode);
  10816. return ResolveTypeResult(typeRef, genericTypeInst, populateType, resolveFlags);
  10817. }
  10818. else if (auto tupleTypeRef = BfNodeDynCast<BfTupleTypeRef>(typeRef))
  10819. {
  10820. Array<BfType*> types;
  10821. Array<String> names;
  10822. bool wantGeneric = false;
  10823. bool isUnspecialized = false;
  10824. for (int fieldIdx = 0; fieldIdx < (int)tupleTypeRef->mFieldTypes.size(); fieldIdx++)
  10825. {
  10826. BfTypeReference* typeRef = tupleTypeRef->mFieldTypes[fieldIdx];
  10827. auto type = ResolveTypeRef(typeRef, BfPopulateType_Identity, BfResolveTypeRefFlag_AllowGenericParamConstValue);
  10828. if (type == NULL)
  10829. return ResolveTypeResult(typeRef, NULL, populateType, resolveFlags);
  10830. String fieldName;
  10831. BfIdentifierNode* identifierNode = NULL;
  10832. if (fieldIdx < (int)tupleTypeRef->mFieldNames.size())
  10833. identifierNode = tupleTypeRef->mFieldNames[fieldIdx];
  10834. if (identifierNode != NULL)
  10835. fieldName = identifierNode->ToString();
  10836. else
  10837. fieldName = StrFormat("%d", fieldIdx);
  10838. if (type->IsTypeGenericParam())
  10839. wantGeneric = true;
  10840. if (type->IsUnspecializedType())
  10841. isUnspecialized = true;
  10842. if (type->IsVar())
  10843. {
  10844. return ResolveTypeResult(typeRef, NULL, populateType, resolveFlags);
  10845. }
  10846. types.push_back(type);
  10847. names.push_back(fieldName);
  10848. }
  10849. if ((mCurTypeInstance == NULL) || (!mCurTypeInstance->IsGenericTypeInstance()))
  10850. wantGeneric = false;
  10851. //TODO:
  10852. wantGeneric = false;
  10853. auto baseType = (BfTypeInstance*)ResolveTypeDef(mContext->mCompiler->mValueTypeTypeDef, BfPopulateType_Identity);
  10854. BfTupleType* tupleType = NULL;
  10855. if (wantGeneric)
  10856. {
  10857. BfTupleType* actualTupleType = new BfTupleType();
  10858. actualTupleType->mGenericTypeInfo = new BfGenericTypeInfo();
  10859. actualTupleType->mGenericTypeInfo->mFinishedGenericParams = true;
  10860. actualTupleType->Init(baseType->mTypeDef->mProject, baseType);
  10861. for (int fieldIdx = 0; fieldIdx < (int)types.size(); fieldIdx++)
  10862. {
  10863. BfFieldDef* fieldDef = actualTupleType->AddField(names[fieldIdx]);
  10864. fieldDef->mProtection = (names[fieldIdx][0] == '_') ? BfProtection_Private : BfProtection_Public;
  10865. }
  10866. actualTupleType->Finish();
  10867. auto parentTypeInstance = (BfTypeInstance*)mCurTypeInstance;
  10868. for (int i = 0; i < parentTypeInstance->mGenericTypeInfo->mGenericParams.size(); i++)
  10869. {
  10870. actualTupleType->mGenericTypeInfo->mGenericParams.push_back(parentTypeInstance->mGenericTypeInfo->mGenericParams[i]->AddRef());
  10871. }
  10872. for (int i = 0; i < parentTypeInstance->mGenericTypeInfo->mTypeGenericArguments.size(); i++)
  10873. {
  10874. actualTupleType->mGenericTypeInfo->mTypeGenericArguments.push_back(parentTypeInstance->mGenericTypeInfo->mTypeGenericArguments[i]);
  10875. auto typeGenericArg = actualTupleType->mGenericTypeInfo->mTypeGenericArguments[i];
  10876. actualTupleType->mGenericTypeInfo->mIsUnspecialized |= typeGenericArg->IsGenericParam() || typeGenericArg->IsUnspecializedType();
  10877. }
  10878. CheckUnspecializedGenericType(actualTupleType, populateType);
  10879. if (isUnspecialized)
  10880. {
  10881. actualTupleType->mGenericTypeInfo->mIsUnspecialized = true;
  10882. actualTupleType->mGenericTypeInfo->mIsUnspecializedVariation = true;
  10883. }
  10884. actualTupleType->mIsUnspecializedType = actualTupleType->mGenericTypeInfo->mIsUnspecialized;
  10885. actualTupleType->mIsUnspecializedTypeVariation = actualTupleType->mGenericTypeInfo->mIsUnspecializedVariation;
  10886. tupleType = actualTupleType;
  10887. }
  10888. else
  10889. {
  10890. BfTupleType* actualTupleType = new BfTupleType();
  10891. actualTupleType->Init(baseType->mTypeDef->mProject, baseType);
  10892. for (int fieldIdx = 0; fieldIdx < (int)types.size(); fieldIdx++)
  10893. {
  10894. BfFieldDef* fieldDef = actualTupleType->AddField(names[fieldIdx]);
  10895. fieldDef->mProtection = (names[fieldIdx][0] == '_') ? BfProtection_Private : BfProtection_Public;
  10896. }
  10897. actualTupleType->Finish();
  10898. tupleType = actualTupleType;
  10899. actualTupleType->mIsUnspecializedType = isUnspecialized;
  10900. actualTupleType->mIsUnspecializedTypeVariation = isUnspecialized;
  10901. }
  10902. tupleType->mFieldInstances.Resize(types.size());
  10903. for (int fieldIdx = 0; fieldIdx < (int)types.size(); fieldIdx++)
  10904. {
  10905. BfFieldInstance* fieldInstance = &tupleType->mFieldInstances[fieldIdx];
  10906. fieldInstance->mFieldIdx = fieldIdx;
  10907. fieldInstance->SetResolvedType(types[fieldIdx]);
  10908. BF_ASSERT(!types[fieldIdx]->IsVar());
  10909. fieldInstance->mOwner = tupleType;
  10910. tupleType->mGenericDepth = BF_MAX(tupleType->mGenericDepth, fieldInstance->mResolvedType->GetGenericDepth() + 1);
  10911. }
  10912. resolvedEntry->mValue = tupleType;
  10913. BF_ASSERT(BfResolvedTypeSet::Hash(tupleType, &lookupCtx) == resolvedEntry->mHashCode);
  10914. populateModule->InitType(tupleType, populateType);
  10915. return ResolveTypeResult(typeRef, tupleType, populateType, resolveFlags);
  10916. }
  10917. else if (auto tagTypeRef = BfNodeDynCast<BfTagTypeRef>(typeRef))
  10918. {
  10919. auto baseType = (BfTypeInstance*)ResolveTypeDef(mContext->mCompiler->mEnumTypeDef, BfPopulateType_Identity);
  10920. BfTagType* tagType = new BfTagType();
  10921. tagType->Init(baseType->mTypeDef->mProject, baseType, tagTypeRef->mNameNode->ToString());
  10922. resolvedEntry->mValue = tagType;
  10923. BF_ASSERT(BfResolvedTypeSet::Hash(tagType, &lookupCtx) == resolvedEntry->mHashCode);
  10924. populateModule->InitType(tagType, populateType);
  10925. return ResolveTypeResult(typeRef, tagType, populateType, resolveFlags);
  10926. }
  10927. else if (auto nullableTypeRef = BfNodeDynCast<BfNullableTypeRef>(typeRef))
  10928. {
  10929. BfTypeReference* elementTypeRef = nullableTypeRef->mElementType;
  10930. auto typeDef = mCompiler->mNullableTypeDef;
  10931. auto elementType = ResolveTypeRef(elementTypeRef, BfPopulateType_Identity, BfResolveTypeRefFlag_AllowGenericParamConstValue);
  10932. if ((elementType == NULL) || (elementType->IsVar()))
  10933. return ResolveTypeResult(typeRef, elementType, populateType, resolveFlags);
  10934. BfTypeInstance* genericTypeInst = new BfTypeInstance();
  10935. genericTypeInst->mGenericTypeInfo = new BfGenericTypeInfo();
  10936. genericTypeInst->mContext = mContext;
  10937. genericTypeInst->mTypeDef = typeDef;
  10938. auto genericParamInstance = new BfGenericTypeParamInstance(typeDef, 0);
  10939. genericTypeInst->mGenericTypeInfo->mGenericParams.push_back(genericParamInstance);
  10940. genericTypeInst->mGenericTypeInfo->mTypeGenericArguments.push_back(elementType);
  10941. //genericTypeInst->mIsUnspecialized = elementType->IsGenericParam() || elementType->IsUnspecializedType();
  10942. CheckUnspecializedGenericType(genericTypeInst, populateType);
  10943. resolvedEntry->mValue = genericTypeInst;
  10944. #ifdef _DEBUG
  10945. if (BfResolvedTypeSet::Hash(genericTypeInst, &lookupCtx) != resolvedEntry->mHashCode)
  10946. {
  10947. int refHash = BfResolvedTypeSet::Hash(typeRef, &lookupCtx);
  10948. int typeHash = BfResolvedTypeSet::Hash(genericTypeInst, &lookupCtx);
  10949. BF_ASSERT(refHash == typeHash);
  10950. }
  10951. #endif
  10952. populateModule->InitType(genericTypeInst, populateType);
  10953. return ResolveTypeResult(typeRef, genericTypeInst, populateType, resolveFlags);
  10954. }
  10955. else if (auto pointerTypeRef = BfNodeDynCast<BfPointerTypeRef>(typeRef))
  10956. {
  10957. BfPointerType* pointerType = new BfPointerType();
  10958. auto elementType = ResolveTypeRef(pointerTypeRef->mElementType, BfPopulateType_Identity, BfResolveTypeRefFlag_AllowGenericParamConstValue);
  10959. if ((elementType == NULL) || (elementType->IsVar()))
  10960. {
  10961. delete pointerType;
  10962. return ResolveTypeResult(typeRef, elementType, populateType, resolveFlags);
  10963. }
  10964. pointerType->mGenericDepth = elementType->GetGenericDepth() + 1;
  10965. pointerType->mElementType = elementType;
  10966. pointerType->mContext = mContext;
  10967. resolvedEntry->mValue = pointerType;
  10968. //int hashVal = mContext->mResolvedTypes.Hash(typeRef, &lookupCtx);
  10969. BF_ASSERT(BfResolvedTypeSet::Hash(pointerType, &lookupCtx) == resolvedEntry->mHashCode);
  10970. populateModule->InitType(pointerType, populateType);
  10971. return ResolveTypeResult(typeRef, pointerType, populateType, resolveFlags);
  10972. }
  10973. else if (auto refTypeRef = BfNodeDynCast<BfRefTypeRef>(typeRef))
  10974. {
  10975. BfRefType* refType = new BfRefType();
  10976. refType->mRefKind = BfRefType::RefKind_Ref;
  10977. if (refTypeRef->mRefToken == NULL)
  10978. refType->mRefKind = BfRefType::RefKind_Ref;
  10979. else if (refTypeRef->mRefToken->GetToken() == BfToken_In)
  10980. refType->mRefKind = BfRefType::RefKind_In;
  10981. else if (refTypeRef->mRefToken->GetToken() == BfToken_Out)
  10982. refType->mRefKind = BfRefType::RefKind_Out;
  10983. else if (refTypeRef->mRefToken->GetToken() == BfToken_Mut)
  10984. refType->mRefKind = BfRefType::RefKind_Mut;
  10985. auto elementType = ResolveTypeRef(refTypeRef->mElementType, BfPopulateType_Identity, BfResolveTypeRefFlag_AllowGenericParamConstValue);
  10986. if ((elementType == NULL) || (elementType->IsVar()))
  10987. {
  10988. delete refType;
  10989. return ResolveTypeResult(typeRef, elementType, populateType, resolveFlags);
  10990. }
  10991. refType->mElementType = elementType;
  10992. resolvedEntry->mValue = refType;
  10993. #ifdef _DEBUG
  10994. if (BfResolvedTypeSet::Hash(refType, &lookupCtx) != resolvedEntry->mHashCode)
  10995. {
  10996. int refHash = BfResolvedTypeSet::Hash(typeRef, &lookupCtx, BfResolvedTypeSet::BfHashFlag_AllowRef);
  10997. int typeHash = BfResolvedTypeSet::Hash(refType, &lookupCtx);
  10998. BF_ASSERT(refHash == typeHash);
  10999. }
  11000. BF_ASSERT(BfResolvedTypeSet::Equals(refType, typeRef, &lookupCtx));
  11001. #endif
  11002. populateModule->InitType(refType, populateType);
  11003. return ResolveTypeResult(typeRef, refType, populateType, resolveFlags);
  11004. }
  11005. else if (auto delegateTypeRef = BfNodeDynCast<BfDelegateTypeRef>(typeRef))
  11006. {
  11007. bool wantGeneric = false;
  11008. bool isUnspecialized = false;
  11009. auto _CheckType = [&](BfType* type)
  11010. {
  11011. if (type->IsTypeGenericParam())
  11012. wantGeneric = true;
  11013. if (type->IsUnspecializedType())
  11014. isUnspecialized = true;
  11015. };
  11016. bool failed = false;
  11017. auto returnType = ResolveTypeRef(delegateTypeRef->mReturnType, NULL, BfPopulateType_Declaration, BfResolveTypeRefFlag_AllowRef);
  11018. if (returnType == NULL)
  11019. {
  11020. failed = true;
  11021. returnType = GetPrimitiveType(BfTypeCode_Var);
  11022. }
  11023. _CheckType(returnType);
  11024. BfType* functionThisType = NULL;
  11025. bool hasMutSpecifier = false;
  11026. bool isFirst = true;
  11027. bool isDelegate = delegateTypeRef->mTypeToken->GetToken() == BfToken_Delegate;
  11028. bool hasVarArgs = false;
  11029. Array<BfType*> paramTypes;
  11030. for (int paramIdx = 0; paramIdx < delegateTypeRef->mParams.size(); paramIdx++)
  11031. {
  11032. auto param = delegateTypeRef->mParams[paramIdx];
  11033. BfResolveTypeRefFlags resolveTypeFlags = BfResolveTypeRefFlag_AllowRef;
  11034. if ((param->mNameNode != NULL) && (param->mNameNode->Equals("this")))
  11035. resolveTypeFlags = (BfResolveTypeRefFlags)(resolveTypeFlags | BfResolveTypeRefFlag_NoWarnOnMut);
  11036. if (paramIdx == delegateTypeRef->mParams.size() - 1)
  11037. {
  11038. if (auto dotTypeRef = BfNodeDynCast<BfDotTypeReference>(param->mTypeRef))
  11039. {
  11040. if (dotTypeRef->mDotToken->mToken == BfToken_DotDotDot)
  11041. {
  11042. hasVarArgs = true;
  11043. continue;
  11044. }
  11045. }
  11046. }
  11047. if (auto refTypeRef = BfNodeDynCast<BfRefTypeRef>(param->mTypeRef))
  11048. {
  11049. // This catches `ref Foo*` cases (which generate warnings)
  11050. if ((refTypeRef->mRefToken != NULL) && (refTypeRef->mRefToken->mToken == BfToken_Mut))
  11051. hasMutSpecifier = true;
  11052. }
  11053. auto paramType = ResolveTypeRef(param->mTypeRef, BfPopulateType_Declaration, resolveTypeFlags);
  11054. if (paramType == NULL)
  11055. {
  11056. failed = true;
  11057. paramType = GetPrimitiveType(BfTypeCode_Var);
  11058. }
  11059. if ((!isDelegate) && (isFirst) && (param->mNameNode != NULL) && (param->mNameNode->Equals("this")))
  11060. {
  11061. functionThisType = paramType;
  11062. if (functionThisType->IsRef())
  11063. {
  11064. auto refType = (BfRefType*)functionThisType;
  11065. if (refType->mRefKind != BfRefType::RefKind_Mut)
  11066. {
  11067. if (auto refTypeRef = BfNodeDynCast<BfRefTypeRef>(param->mTypeRef))
  11068. {
  11069. failed = true;
  11070. Fail("Only 'mut' is allowed here", refTypeRef->mRefToken);
  11071. }
  11072. }
  11073. hasMutSpecifier = true;
  11074. functionThisType = refType->mElementType;
  11075. }
  11076. if ((functionThisType != NULL) && (functionThisType->IsPointer()))
  11077. {
  11078. // We should have already warned against pointer types during hashing
  11079. functionThisType = functionThisType->GetUnderlyingType();
  11080. }
  11081. paramTypes.Add(functionThisType);
  11082. _CheckType(functionThisType);
  11083. }
  11084. else
  11085. {
  11086. paramTypes.Add(paramType);
  11087. _CheckType(paramType);
  11088. }
  11089. isFirst = false;
  11090. }
  11091. if ((mCurTypeInstance == NULL) || (!mCurTypeInstance->IsGenericTypeInstance()))
  11092. wantGeneric = false;
  11093. //TODO:
  11094. wantGeneric = false;
  11095. BfTypeInstance* baseDelegateType = NULL;
  11096. if (mCompiler->mDelegateTypeDef != NULL)
  11097. baseDelegateType = ResolveTypeDef(mCompiler->mDelegateTypeDef)->ToTypeInstance();
  11098. else
  11099. failed = true;
  11100. BfDelegateInfo* delegateInfo = NULL;
  11101. BfDelegateType* delegateType = NULL;
  11102. if (wantGeneric)
  11103. {
  11104. BfDelegateType* genericTypeInst = new BfDelegateType();
  11105. genericTypeInst->mGenericTypeInfo = new BfGenericTypeInfo();
  11106. genericTypeInst->mGenericTypeInfo->mFinishedGenericParams = true;
  11107. delegateType = genericTypeInst;
  11108. delegateInfo = delegateType->GetDelegateInfo();
  11109. auto parentTypeInstance = (BfTypeInstance*)mCurTypeInstance;
  11110. for (int i = 0; i < parentTypeInstance->mGenericTypeInfo->mGenericParams.size(); i++)
  11111. {
  11112. genericTypeInst->mGenericTypeInfo->mGenericParams.push_back(parentTypeInstance->mGenericTypeInfo->mGenericParams[i]->AddRef());
  11113. }
  11114. for (int i = 0; i < parentTypeInstance->mGenericTypeInfo->mTypeGenericArguments.size(); i++)
  11115. {
  11116. genericTypeInst->mGenericTypeInfo->mTypeGenericArguments.push_back(parentTypeInstance->mGenericTypeInfo->mTypeGenericArguments[i]);
  11117. auto typeGenericArg = genericTypeInst->mGenericTypeInfo->mTypeGenericArguments[i];
  11118. genericTypeInst->mGenericTypeInfo->mIsUnspecialized |= typeGenericArg->IsGenericParam() || typeGenericArg->IsUnspecializedType();
  11119. }
  11120. CheckUnspecializedGenericType(genericTypeInst, populateType);
  11121. // We don't ever need to do an actual pass over generic delegate methods, so it's safe to set the 'unspecialized variation' flag
  11122. if (isUnspecialized)
  11123. {
  11124. genericTypeInst->mGenericTypeInfo->mIsUnspecialized = true;
  11125. genericTypeInst->mGenericTypeInfo->mIsUnspecializedVariation = true;
  11126. }
  11127. genericTypeInst->mIsUnspecializedType = genericTypeInst->mGenericTypeInfo->mIsUnspecialized;
  11128. genericTypeInst->mIsUnspecializedTypeVariation = genericTypeInst->mGenericTypeInfo->mIsUnspecializedVariation;
  11129. }
  11130. else
  11131. {
  11132. auto dlgType = new BfDelegateType();
  11133. delegateInfo = dlgType->GetDelegateInfo();
  11134. dlgType->mIsUnspecializedType = isUnspecialized;
  11135. dlgType->mIsUnspecializedTypeVariation = isUnspecialized;
  11136. delegateType = dlgType;
  11137. }
  11138. delegateInfo->mCallingConvention = lookupCtx.mCallingConvention;
  11139. Val128 hashContext;
  11140. BfTypeDef* typeDef = new BfTypeDef();
  11141. if (baseDelegateType != NULL)
  11142. typeDef->mProject = baseDelegateType->mTypeDef->mProject;
  11143. typeDef->mSystem = mCompiler->mSystem;
  11144. typeDef->mName = mSystem->mEmptyAtom;
  11145. if (delegateTypeRef->mTypeToken->GetToken() == BfToken_Delegate)
  11146. {
  11147. typeDef->mIsDelegate = true;
  11148. typeDef->mTypeCode = BfTypeCode_Object;
  11149. }
  11150. else
  11151. {
  11152. typeDef->mIsFunction = true;
  11153. typeDef->mTypeCode = BfTypeCode_Struct;
  11154. }
  11155. BfMethodDef* methodDef = new BfMethodDef();
  11156. methodDef->mDeclaringType = typeDef;
  11157. methodDef->mName = "Invoke";
  11158. methodDef->mProtection = BfProtection_Public;
  11159. methodDef->mIdx = 0;
  11160. methodDef->mIsStatic = !typeDef->mIsDelegate && (functionThisType == NULL);
  11161. methodDef->mHasExplicitThis = functionThisType != NULL;
  11162. if ((functionThisType != NULL) && (hasMutSpecifier))
  11163. {
  11164. if ((functionThisType->IsValueType()) || (functionThisType->IsGenericParam()))
  11165. methodDef->mIsMutating = true;
  11166. }
  11167. auto directTypeRef = BfAstNode::ZeroedAlloc<BfDirectTypeReference>();
  11168. delegateInfo->mDirectAllocNodes.push_back(directTypeRef);
  11169. if (typeDef->mIsDelegate)
  11170. directTypeRef->Init(delegateType);
  11171. else if (mCompiler->mFunctionTypeDef == NULL)
  11172. failed = true;
  11173. else
  11174. directTypeRef->Init(ResolveTypeDef(mCompiler->mFunctionTypeDef));
  11175. if (!failed)
  11176. typeDef->mBaseTypes.push_back(directTypeRef);
  11177. directTypeRef = BfAstNode::ZeroedAlloc<BfDirectTypeReference>();
  11178. delegateInfo->mDirectAllocNodes.push_back(directTypeRef);
  11179. directTypeRef->Init(returnType);
  11180. methodDef->mReturnTypeRef = directTypeRef;
  11181. delegateInfo->mReturnType = returnType;
  11182. delegateInfo->mHasExplicitThis = functionThisType != NULL;
  11183. delegateInfo->mHasVarArgs = hasVarArgs;
  11184. delegateType->mGenericDepth = BF_MAX(delegateType->mGenericDepth, returnType->GetGenericDepth() + 1);
  11185. auto hashVal = mContext->mResolvedTypes.Hash(typeRef, &lookupCtx);
  11186. //int paramSrcOfs = (functionThisType != NULL) ? 1 : 0;
  11187. int paramSrcOfs = 0;
  11188. for (int paramIdx = 0; paramIdx < (int)paramTypes.size(); paramIdx++)
  11189. {
  11190. auto param = delegateTypeRef->mParams[paramIdx + paramSrcOfs];
  11191. auto paramType = paramTypes[paramIdx];
  11192. if (paramType == NULL)
  11193. paramType = GetPrimitiveType(BfTypeCode_Var);
  11194. if ((param->mModToken != NULL) && (param->mModToken->mToken == BfToken_Params))
  11195. delegateInfo->mHasParams = true;
  11196. String paramName;
  11197. if (param->mNameNode != NULL)
  11198. paramName = param->mNameNode->ToString();
  11199. if (!paramType->IsReified())
  11200. delegateType->mIsReified = false;
  11201. auto directTypeRef = BfAstNode::ZeroedAlloc<BfDirectTypeReference>();
  11202. delegateInfo->mDirectAllocNodes.push_back(directTypeRef);
  11203. directTypeRef->Init(paramType);
  11204. BfParameterDef* paramDef = new BfParameterDef();
  11205. paramDef->mTypeRef = directTypeRef;
  11206. paramDef->mName = paramName;
  11207. if ((paramIdx == 0) && (functionThisType != NULL))
  11208. paramDef->mParamKind = BfParamKind_ExplicitThis;
  11209. methodDef->mParams.push_back(paramDef);
  11210. if ((param->mModToken != NULL) && (param->mModToken->mToken == BfToken_Params))
  11211. {
  11212. if (paramIdx == (int)paramTypes.size() - 1)
  11213. paramDef->mParamKind = BfParamKind_Params;
  11214. else
  11215. {
  11216. failed = true;
  11217. Fail("Params parameter must be the last parameter", param);
  11218. }
  11219. }
  11220. if (auto dotTypeRef = BfNodeDynCast<BfDotTypeReference>(paramDef->mTypeRef))
  11221. {
  11222. if (dotTypeRef->mDotToken->mToken == BfToken_DotDotDot)
  11223. {
  11224. if (paramIdx == (int)paramTypes.size() - 1)
  11225. paramDef->mParamKind = BfParamKind_VarArgs;
  11226. else
  11227. {
  11228. failed = true;
  11229. Fail("Varargs specifier must be the last parameter", param);
  11230. }
  11231. }
  11232. }
  11233. delegateInfo->mParams.Add(paramType);
  11234. delegateType->mGenericDepth = BF_MAX(delegateType->mGenericDepth, paramType->GetGenericDepth() + 1);
  11235. }
  11236. if (delegateInfo->mHasVarArgs)
  11237. {
  11238. BfParameterDef* paramDef = new BfParameterDef();
  11239. paramDef->mParamKind = BfParamKind_VarArgs;
  11240. methodDef->mParams.push_back(paramDef);
  11241. }
  11242. typeDef->mMethods.push_back(methodDef);
  11243. if (failed)
  11244. {
  11245. delete delegateType;
  11246. return ResolveTypeResult(typeRef, NULL, populateType, resolveFlags);
  11247. }
  11248. //
  11249. if (typeDef->mIsDelegate)
  11250. {
  11251. BfDefBuilder::AddMethod(typeDef, BfMethodType_Ctor, BfProtection_Public, false, "");
  11252. BfDefBuilder::AddDynamicCastMethods(typeDef, true);
  11253. }
  11254. delegateType->mContext = mContext;
  11255. delegateType->mTypeDef = typeDef;
  11256. populateModule->InitType(delegateType, populateType);
  11257. resolvedEntry->mValue = delegateType;
  11258. AddDependency(directTypeRef->mType, delegateType, BfDependencyMap::DependencyFlag_ParamOrReturnValue);
  11259. // if (delegateInfo->mFunctionThisType != NULL)
  11260. // AddDependency(delegateInfo->mFunctionThisType, delegateType, BfDependencyMap::DependencyFlag_ParamOrReturnValue);
  11261. for (auto paramType : paramTypes)
  11262. AddDependency(paramType, delegateType, BfDependencyMap::DependencyFlag_ParamOrReturnValue);
  11263. #ifdef _DEBUG
  11264. if (BfResolvedTypeSet::Hash(delegateType, &lookupCtx) != resolvedEntry->mHashCode)
  11265. {
  11266. int refHash = BfResolvedTypeSet::Hash(typeRef, &lookupCtx);
  11267. int typeHash = BfResolvedTypeSet::Hash(delegateType, &lookupCtx);
  11268. BF_ASSERT(refHash == typeHash);
  11269. }
  11270. BF_ASSERT(BfResolvedTypeSet::Equals(delegateType, typeRef, &lookupCtx));
  11271. #endif
  11272. BF_ASSERT(BfResolvedTypeSet::Hash(delegateType, &lookupCtx) == resolvedEntry->mHashCode);
  11273. return ResolveTypeResult(typeRef, delegateType, populateType, resolveFlags);
  11274. }
  11275. else if (auto genericParamTypeRef = BfNodeDynCast<BfGenericParamTypeRef>(typeRef))
  11276. {
  11277. auto genericParamType = GetGenericParamType(genericParamTypeRef->mGenericParamKind, genericParamTypeRef->mGenericParamIdx);
  11278. resolvedEntry->mValue = genericParamType;
  11279. BF_ASSERT(BfResolvedTypeSet::Hash(genericParamType, &lookupCtx) == resolvedEntry->mHashCode);
  11280. return ResolveTypeResult(typeRef, genericParamType, populateType, resolveFlags);
  11281. }
  11282. else if (auto retTypeTypeRef = BfNodeDynCast<BfModifiedTypeRef>(typeRef))
  11283. {
  11284. auto retTypeType = new BfModifiedTypeType();
  11285. retTypeType->mModifiedKind = retTypeTypeRef->mRetTypeToken->mToken;
  11286. retTypeType->mElementType = ResolveTypeRef(retTypeTypeRef->mElementType, BfPopulateType_Declaration, BfResolveTypeRefFlag_AllowGenericParamConstValue);
  11287. // We know this is a generic param type, it can't fail to resolve
  11288. BF_ASSERT(retTypeType->mElementType);
  11289. resolvedEntry->mValue = retTypeType;
  11290. BF_ASSERT(BfResolvedTypeSet::Hash(retTypeType, &lookupCtx) == resolvedEntry->mHashCode);
  11291. populateModule->InitType(retTypeType, populateType);
  11292. return ResolveTypeResult(typeRef, retTypeType, populateType, resolveFlags);
  11293. }
  11294. else if (auto qualifiedTypeRef = BfNodeDynCast<BfQualifiedTypeReference>(typeRef))
  11295. {
  11296. auto leftType = ResolveTypeRef(qualifiedTypeRef->mLeft, BfPopulateType_Declaration, BfResolveTypeRefFlag_AllowGenericParamConstValue);
  11297. if (leftType == NULL)
  11298. return ResolveTypeResult(typeRef, NULL, populateType, resolveFlags);
  11299. return ResolveTypeResult(typeRef, ResolveInnerType(leftType, qualifiedTypeRef->mRight), populateType, resolveFlags);
  11300. }
  11301. else if (auto constTypeRef = BfNodeDynCastExact<BfConstTypeRef>(typeRef))
  11302. {
  11303. return ResolveTypeRef(constTypeRef->mElementType, populateType, (BfResolveTypeRefFlags)(resolveFlags & BfResolveTypeRefFlag_NoResolveGenericParam));
  11304. }
  11305. else if (auto constExprTypeRef = BfNodeDynCastExact<BfConstExprTypeRef>(typeRef))
  11306. {
  11307. if ((mCurTypeInstance != NULL) && (mCurTypeInstance->mDependencyMap.mMinDependDepth > 32))
  11308. {
  11309. Fail("Generic type dependency depth exceeded", typeRef);
  11310. return ResolveTypeResult(typeRef, NULL, populateType, resolveFlags);
  11311. }
  11312. BfVariant result;
  11313. BfType* resultType = NULL;
  11314. if (constExprTypeRef->mConstExpr != NULL)
  11315. {
  11316. result = mContext->mResolvedTypes.EvaluateToVariant(&lookupCtx, constExprTypeRef->mConstExpr, resultType);
  11317. BF_ASSERT(resultType != NULL);
  11318. }
  11319. auto constExprType = new BfConstExprValueType();
  11320. constExprType->mContext = mContext;
  11321. constExprType->mType = resultType;
  11322. BF_ASSERT(constExprType->mType != NULL);
  11323. if (constExprType->mType == NULL)
  11324. constExprType->mType = GetPrimitiveType(BfTypeCode_Let);
  11325. constExprType->mValue = result;
  11326. resolvedEntry->mValue = constExprType;
  11327. #ifdef _DEBUG
  11328. if (BfResolvedTypeSet::Hash(constExprType, &lookupCtx) != resolvedEntry->mHashCode)
  11329. {
  11330. int refHash = BfResolvedTypeSet::Hash(typeRef, &lookupCtx);
  11331. int typeHash = BfResolvedTypeSet::Hash(constExprType, &lookupCtx);
  11332. BF_ASSERT(refHash == typeHash);
  11333. }
  11334. BF_ASSERT(BfResolvedTypeSet::Equals(constExprType, typeRef, &lookupCtx));
  11335. #endif
  11336. populateModule->InitType(constExprType, populateType);
  11337. return constExprType;
  11338. }
  11339. else
  11340. {
  11341. BFMODULE_FATAL(this, "Not implemented!");
  11342. NotImpl(typeRef);
  11343. return ResolveTypeResult(typeRef, NULL, populateType, resolveFlags);
  11344. }
  11345. return ResolveTypeResult(typeRef, NULL, populateType, resolveFlags);
  11346. }
  11347. BfType* BfModule::ResolveTypeRefAllowUnboundGenerics(BfTypeReference* typeRef, BfPopulateType populateType, BfResolveTypeRefFlags resolveFlags, bool resolveGenericParam)
  11348. {
  11349. if (auto genericTypeRef = BfNodeDynCast<BfGenericInstanceTypeRef>(typeRef))
  11350. {
  11351. if (genericTypeRef->mGenericArguments.size() == 0)
  11352. {
  11353. auto genericTypeDef = ResolveGenericInstanceDef(genericTypeRef);
  11354. if (genericTypeDef == NULL)
  11355. return NULL;
  11356. BfTypeVector typeVector;
  11357. for (int i = 0; i < (int)genericTypeDef->mGenericParamDefs.size(); i++)
  11358. typeVector.push_back(GetGenericParamType(BfGenericParamKind_Type, i));
  11359. auto result = ResolveTypeDef(genericTypeDef, typeVector, populateType, resolveFlags);
  11360. if ((result != NULL) && (genericTypeRef->mCommas.size() + 1 != genericTypeDef->mGenericParamDefs.size()))
  11361. {
  11362. SetAndRestoreValue<BfTypeInstance*> prevTypeInstance(mCurTypeInstance, result->ToTypeInstance());
  11363. SetAndRestoreValue<BfMethodInstance*> prevMethodInstance(mCurMethodInstance, NULL);
  11364. Fail(StrFormat("Type '%s' requires %d generic arguments", TypeToString(result).c_str(), genericTypeDef->mGenericParamDefs.size()), typeRef);
  11365. }
  11366. return result;
  11367. }
  11368. }
  11369. return ResolveTypeRef(typeRef, populateType, resolveGenericParam ? (BfResolveTypeRefFlags)0 : BfResolveTypeRefFlag_NoResolveGenericParam);
  11370. }
  11371. // This finds non-default unspecialized generic type instances and converts them into a BfUnspecializedGenericTypeVariation
  11372. BfType* BfModule::CheckUnspecializedGenericType(BfTypeInstance* genericTypeInst, BfPopulateType populateType)
  11373. {
  11374. int argCount = (int)genericTypeInst->mGenericTypeInfo->mTypeGenericArguments.size();
  11375. bool isDefaultUnspecialized = true;
  11376. for (int argIdx = 0; argIdx < argCount; argIdx++)
  11377. {
  11378. auto argType = genericTypeInst->mGenericTypeInfo->mTypeGenericArguments[argIdx];
  11379. if (argType->IsGenericParam())
  11380. {
  11381. auto genericParamType = (BfGenericParamType*)argType;
  11382. if ((genericParamType->mGenericParamKind != BfGenericParamKind_Type) || (genericParamType->mGenericParamIdx != argIdx))
  11383. isDefaultUnspecialized = false;
  11384. genericTypeInst->mGenericTypeInfo->mIsUnspecialized = true;
  11385. }
  11386. else if (argType->IsUnspecializedType())
  11387. {
  11388. isDefaultUnspecialized = false;
  11389. genericTypeInst->mGenericTypeInfo->mIsUnspecialized = true;
  11390. }
  11391. else
  11392. isDefaultUnspecialized = false;
  11393. }
  11394. if (genericTypeInst->mGenericTypeInfo->mIsUnspecialized)
  11395. genericTypeInst->mGenericTypeInfo->mIsUnspecializedVariation = !isDefaultUnspecialized;
  11396. return genericTypeInst;
  11397. }
  11398. BfTypeInstance* BfModule::GetUnspecializedTypeInstance(BfTypeInstance* typeInst)
  11399. {
  11400. if (!typeInst->IsGenericTypeInstance())
  11401. return typeInst;
  11402. BF_ASSERT((!typeInst->IsDelegateFromTypeRef()) && (!typeInst->IsFunctionFromTypeRef()));
  11403. auto genericTypeInst = (BfTypeInstance*)typeInst;
  11404. auto result = ResolveTypeDef(genericTypeInst->mTypeDef->GetDefinition(), BfPopulateType_Declaration);
  11405. BF_ASSERT((result != NULL) && (result->IsUnspecializedType()));
  11406. if (result == NULL)
  11407. return NULL;
  11408. return result->ToTypeInstance();
  11409. }
  11410. BfType* BfModule::ResolveTypeRef_Type(BfAstNode* astNode, const BfSizedArray<BfAstNode*>* genericArgs, BfPopulateType populateType, BfResolveTypeRefFlags& resolveFlags)
  11411. {
  11412. if ((genericArgs == NULL) || (genericArgs->size() == 0))
  11413. {
  11414. if (auto identifier = BfNodeDynCast<BfIdentifierNode>(astNode))
  11415. {
  11416. BfNamedTypeReference typeRef;
  11417. typeRef.mNameNode = identifier;
  11418. typeRef.mSrcEnd = 0;
  11419. typeRef.mToken = BfToken_None;
  11420. auto type = ResolveTypeRef_Ref(&typeRef, populateType, resolveFlags, 0);
  11421. return type;
  11422. }
  11423. }
  11424. BfAstAllocator alloc;
  11425. alloc.mSourceData = astNode->GetSourceData();
  11426. std::function<BfTypeReference* (BfAstNode*)> _ConvType = [&](BfAstNode* astNode) -> BfTypeReference*
  11427. {
  11428. if (auto typeRef = BfNodeDynCast<BfTypeReference>(astNode))
  11429. return typeRef;
  11430. BfTypeReference* result = NULL;
  11431. if (auto identifier = BfNodeDynCast<BfIdentifierNode>(astNode))
  11432. {
  11433. auto* typeRef = alloc.Alloc<BfNamedTypeReference>();
  11434. typeRef->mNameNode = identifier;
  11435. result = typeRef;
  11436. }
  11437. else if (auto memberRefExpr = BfNodeDynCast<BfMemberReferenceExpression>(astNode))
  11438. {
  11439. auto qualifiedTypeRef = alloc.Alloc<BfQualifiedTypeReference>();
  11440. qualifiedTypeRef->mLeft = _ConvType(memberRefExpr->mTarget);
  11441. qualifiedTypeRef->mDot = memberRefExpr->mDotToken;
  11442. qualifiedTypeRef->mRight = _ConvType(memberRefExpr->mMemberName);
  11443. if ((qualifiedTypeRef->mLeft == NULL) || (qualifiedTypeRef->mRight == NULL))
  11444. return NULL;
  11445. result = qualifiedTypeRef;
  11446. }
  11447. if (result == NULL)
  11448. return NULL;
  11449. result->SetSrcStart(astNode->GetSrcStart());
  11450. result->SetSrcEnd(astNode->GetSrcEnd());
  11451. return result;
  11452. };
  11453. auto typeRef = _ConvType(astNode);
  11454. if (typeRef == NULL)
  11455. return NULL;
  11456. if ((genericArgs != NULL) && (genericArgs->size() != 0))
  11457. {
  11458. auto genericInstanceTypeRef = alloc.Alloc<BfGenericInstanceTypeRef>();
  11459. genericInstanceTypeRef->SetSrcStart(typeRef->GetSrcStart());
  11460. genericInstanceTypeRef->mElementType = typeRef;
  11461. #ifdef BF_AST_HAS_PARENT_MEMBER
  11462. typeRef->mParent = genericInstanceTypeRef;
  11463. #endif
  11464. BfDeferredAstSizedArray<BfAstNode*> arguments(genericInstanceTypeRef->mGenericArguments, &alloc);
  11465. for (auto genericArg : *genericArgs)
  11466. {
  11467. if (genericArg != NULL)
  11468. {
  11469. arguments.push_back(genericArg);
  11470. genericInstanceTypeRef->SetSrcEnd(genericArg->GetSrcEnd());
  11471. }
  11472. }
  11473. typeRef = genericInstanceTypeRef;
  11474. }
  11475. return ResolveTypeRef_Ref(typeRef, populateType, resolveFlags, 0);
  11476. }
  11477. BfType* BfModule::ResolveTypeRef(BfAstNode* astNode, const BfSizedArray<BfAstNode*>* genericArgs, BfPopulateType populateType, BfResolveTypeRefFlags resolveFlags)
  11478. {
  11479. return ResolveTypeRef_Ref(astNode, genericArgs, populateType, resolveFlags);
  11480. }
  11481. BfType* BfModule::ResolveTypeRef_Ref(BfAstNode* astNode, const BfSizedArray<BfAstNode*>* genericArgs, BfPopulateType populateType, BfResolveTypeRefFlags& resolveFlags)
  11482. {
  11483. if (astNode == NULL)
  11484. {
  11485. AssertErrorState();
  11486. return NULL;
  11487. }
  11488. if (auto typeRef = BfNodeDynCast<BfTypeReference>(astNode))
  11489. return ResolveTypeRef_Ref(typeRef, populateType, resolveFlags, 0);
  11490. if (astNode->IsTemporary())
  11491. return ResolveTypeRef((BfTypeReference*)astNode, populateType, resolveFlags);
  11492. if ((resolveFlags & BfResolveTypeRefFlag_AllowImplicitConstExpr) != 0)
  11493. {
  11494. if (auto expr = BfNodeDynCast<BfExpression>(astNode))
  11495. {
  11496. resolveFlags = (BfResolveTypeRefFlags)(resolveFlags | BfResolveTypeRefFlag_IgnoreLookupError);
  11497. auto checkType = ResolveTypeRef_Type(astNode, genericArgs, populateType, resolveFlags);
  11498. if (checkType != NULL)
  11499. return checkType;
  11500. BfResolvedTypeSet::LookupContext lookupCtx;
  11501. lookupCtx.mModule = this;
  11502. BfResolvedTypeSet::Entry* typeEntry = NULL;
  11503. BfType* resultType = NULL;
  11504. auto result = mContext->mResolvedTypes.EvaluateToVariant(&lookupCtx, expr, resultType);
  11505. if (resultType != NULL)
  11506. {
  11507. auto constExprValue = CreateConstExprValueType(result, resultType);
  11508. return constExprValue;
  11509. }
  11510. }
  11511. }
  11512. return ResolveTypeRef_Type(astNode, genericArgs, populateType, resolveFlags);
  11513. }
  11514. BfType* BfModule::ResolveTypeRef_Ref(BfAstNode* astNode, BfPopulateType populateType)
  11515. {
  11516. BfResolveTypeRefFlags resolveFlags = BfResolveTypeRefFlag_None;
  11517. return ResolveTypeRef_Ref(astNode, NULL, populateType, resolveFlags);
  11518. }
  11519. // This flow should mirror CastToValue
  11520. bool BfModule::CanCast(BfTypedValue typedVal, BfType* toType, BfCastFlags castFlags)
  11521. {
  11522. BP_ZONE("BfModule::CanCast");
  11523. SetAndRestoreValue<bool> prevIgnoreWrites(mBfIRBuilder->mIgnoreWrites, true);
  11524. return CastToValue(NULL, typedVal, toType, (BfCastFlags)(castFlags | BfCastFlags_SilentFail | BfCastFlags_IsCastCheck));
  11525. }
  11526. bool BfModule::AreSplatsCompatible(BfType* fromType, BfType* toType, bool* outNeedsMemberCasting)
  11527. {
  11528. if ((fromType->IsTypeInstance()) && (!fromType->IsSplattable()))
  11529. return false;
  11530. if ((toType->IsTypeInstance()) && (!toType->IsSplattable()))
  11531. return false;
  11532. auto _GetTypes = [&](BfType* type, Array<BfType*>& types)
  11533. {
  11534. BfTypeUtils::SplatIterate([&](BfType* memberType) { types.Add(memberType); }, type);
  11535. };
  11536. Array<BfType*> fromTypes;
  11537. _GetTypes(fromType, fromTypes);
  11538. Array<BfType*> toTypes;
  11539. _GetTypes(toType, toTypes);
  11540. if (toTypes.size() > fromTypes.size())
  11541. return false;
  11542. for (int i = 0; i < toTypes.size(); i++)
  11543. {
  11544. BfType* fromMemberType = fromTypes[i];
  11545. BfType* toMemberType = toTypes[i];
  11546. if (fromMemberType != toMemberType)
  11547. {
  11548. if ((outNeedsMemberCasting != NULL) &&
  11549. (fromMemberType->IsIntPtrable()) && (toMemberType->IsIntPtrable()))
  11550. *outNeedsMemberCasting = true;
  11551. else
  11552. return false;
  11553. }
  11554. }
  11555. return true;
  11556. }
  11557. BfType* BfModule::GetClosestNumericCastType(const BfTypedValue& typedVal, BfType* wantType)
  11558. {
  11559. BfType* toType = wantType;
  11560. if ((toType == NULL) ||
  11561. ((!toType->IsFloat()) && (!toType->IsIntegral())))
  11562. toType = NULL;
  11563. BfType* bestReturnType = NULL;
  11564. if (typedVal.mType->IsTypedPrimitive())
  11565. return NULL;
  11566. auto checkType = typedVal.mType->ToTypeInstance();
  11567. while (checkType != NULL)
  11568. {
  11569. for (auto operatorDef : checkType->mTypeDef->mOperators)
  11570. {
  11571. if (operatorDef->mOperatorDeclaration->mIsConvOperator)
  11572. {
  11573. if (operatorDef->IsExplicit())
  11574. continue;
  11575. auto returnType = CheckOperator(checkType, operatorDef, typedVal, BfTypedValue());
  11576. if ((returnType != NULL) &&
  11577. ((returnType->IsIntegral()) || (returnType->IsFloat())))
  11578. {
  11579. bool canCastTo = true;
  11580. if ((toType != NULL) && (!CanCast(GetFakeTypedValue(returnType), toType)))
  11581. canCastTo = false;
  11582. if (canCastTo)
  11583. {
  11584. if (bestReturnType == NULL)
  11585. {
  11586. bestReturnType = returnType;
  11587. }
  11588. else
  11589. {
  11590. if (CanCast(GetFakeTypedValue(bestReturnType), returnType))
  11591. {
  11592. bestReturnType = returnType;
  11593. }
  11594. }
  11595. }
  11596. }
  11597. }
  11598. }
  11599. checkType = checkType->mBaseType;
  11600. }
  11601. if ((toType == NULL) && (bestReturnType != NULL))
  11602. {
  11603. auto intPtrType = GetPrimitiveType(BfTypeCode_IntPtr);
  11604. if (!CanCast(GetFakeTypedValue(bestReturnType), intPtrType))
  11605. {
  11606. // If no 'wantType' is specified, try to get closest one to an intptr
  11607. auto otherType = GetClosestNumericCastType(typedVal, intPtrType);
  11608. if (otherType != NULL)
  11609. return otherType;
  11610. }
  11611. }
  11612. return bestReturnType;
  11613. }
  11614. BfIRValue BfModule::CastToFunction(BfAstNode* srcNode, const BfTypedValue& targetValue, BfMethodInstance* methodInstance, BfType* toType, BfCastFlags castFlags, BfIRValue irFunc)
  11615. {
  11616. auto invokeMethodInstance = GetDelegateInvokeMethod(toType->ToTypeInstance());
  11617. bool methodsThisMatch = true;
  11618. if (invokeMethodInstance->mMethodDef->mIsStatic != methodInstance->mMethodDef->mIsStatic)
  11619. methodsThisMatch = false;
  11620. else
  11621. {
  11622. if (!methodInstance->mMethodDef->mIsStatic)
  11623. {
  11624. BfType* thisType = methodInstance->GetThisType();
  11625. if (thisType->IsPointer())
  11626. thisType = thisType->GetUnderlyingType();
  11627. BfType* invokeThisType = invokeMethodInstance->GetThisType();
  11628. if (invokeThisType->IsPointer())
  11629. invokeThisType = invokeThisType->GetUnderlyingType();
  11630. if (!TypeIsSubTypeOf(thisType->ToTypeInstance(), invokeThisType->ToTypeInstance()))
  11631. methodsThisMatch = false;
  11632. }
  11633. }
  11634. bool methodMatches = methodsThisMatch;
  11635. if (methodMatches)
  11636. methodMatches = invokeMethodInstance->IsExactMatch(methodInstance, false, false);
  11637. if (methodMatches)
  11638. {
  11639. if (methodInstance->GetOwner()->IsFunction())
  11640. {
  11641. BF_ASSERT(targetValue);
  11642. return targetValue.mValue;
  11643. }
  11644. BfIRFunction bindFuncVal = irFunc;
  11645. if (!bindFuncVal)
  11646. {
  11647. BfModuleMethodInstance methodRefMethod;
  11648. if (methodInstance->mDeclModule == this)
  11649. methodRefMethod = methodInstance;
  11650. else
  11651. methodRefMethod = ReferenceExternalMethodInstance(methodInstance);
  11652. auto dataType = GetPrimitiveType(BfTypeCode_IntPtr);
  11653. if (!methodRefMethod.mFunc)
  11654. {
  11655. if ((!methodInstance->mIsUnspecialized) && (HasCompiledOutput()))
  11656. AssertErrorState();
  11657. return GetDefaultTypedValue(dataType, false, BfDefaultValueKind_Value).mValue;
  11658. }
  11659. bindFuncVal = methodRefMethod.mFunc;
  11660. }
  11661. if ((mCompiler->mOptions.mAllowHotSwapping) && (!mIsComptimeModule))
  11662. bindFuncVal = mBfIRBuilder->RemapBindFunction(bindFuncVal);
  11663. return mBfIRBuilder->CreatePtrToInt(bindFuncVal, BfTypeCode_IntPtr);
  11664. }
  11665. if ((castFlags & BfCastFlags_SilentFail) == 0)
  11666. {
  11667. if ((methodsThisMatch) && (invokeMethodInstance->IsExactMatch(methodInstance, true, false)))
  11668. {
  11669. Fail(StrFormat("Non-static method '%s' cannot match '%s' because it contains captured variables, consider using a delegate or removing captures", MethodToString(methodInstance).c_str(), TypeToString(toType).c_str()), srcNode);
  11670. }
  11671. else if (invokeMethodInstance->IsExactMatch(methodInstance, false, false))
  11672. {
  11673. bool handled = false;
  11674. if (methodInstance->HasThis())
  11675. {
  11676. auto thisType = methodInstance->GetThisType();
  11677. if (invokeMethodInstance->HasExplicitThis())
  11678. {
  11679. auto invokeThisType = invokeMethodInstance->GetThisType();
  11680. bool thisWasPtr = false;
  11681. if (thisType->IsPointer())
  11682. {
  11683. thisType = thisType->GetUnderlyingType();
  11684. thisWasPtr = true;
  11685. }
  11686. bool invokeThisWasPtr = false;
  11687. if (invokeThisType->IsPointer())
  11688. {
  11689. invokeThisType = invokeThisType->GetUnderlyingType();
  11690. invokeThisWasPtr = true;
  11691. }
  11692. if (TypeIsSubTypeOf(thisType->ToTypeInstance(), invokeThisType->ToTypeInstance()))
  11693. {
  11694. if (invokeThisWasPtr != thisWasPtr)
  11695. {
  11696. if (invokeThisWasPtr)
  11697. Fail(StrFormat("Non-static method '%s' cannot match '%s', consider removing 'mut' from 'mut %s this' in the function parameters", MethodToString(methodInstance).c_str(), TypeToString(toType).c_str(), TypeToString(thisType).c_str()), srcNode);
  11698. else
  11699. Fail(StrFormat("Non-static method '%s' cannot match '%s', consider adding 'mut' specifier to '%s this' in the function parameters", MethodToString(methodInstance).c_str(), TypeToString(toType).c_str(), TypeToString(thisType).c_str()), srcNode);
  11700. handled = true;
  11701. }
  11702. }
  11703. }
  11704. }
  11705. if ((!methodInstance->mMethodDef->mIsStatic) && (!invokeMethodInstance->HasExplicitThis()))
  11706. {
  11707. handled = true;
  11708. auto thisType = methodInstance->GetParamType(-1);
  11709. Fail(StrFormat("Non-static method '%s' cannot match '%s', consider adding '%s this' to the function parameters", MethodToString(methodInstance).c_str(), TypeToString(toType).c_str(), TypeToString(thisType).c_str()), srcNode);
  11710. }
  11711. if (!handled)
  11712. {
  11713. if (invokeMethodInstance->mMethodDef->mIsStatic)
  11714. Fail(StrFormat("Static method '%s' cannot match '%s'", MethodToString(methodInstance).c_str(), TypeToString(toType).c_str()).c_str(), srcNode);
  11715. else
  11716. Fail(StrFormat("Non-static method '%s' cannot match '%s'", MethodToString(methodInstance).c_str(), TypeToString(toType).c_str()).c_str(), srcNode);
  11717. }
  11718. }
  11719. }
  11720. return BfIRValue();
  11721. }
  11722. BfIRValue BfModule::CastToValue(BfAstNode* srcNode, BfTypedValue typedVal, BfType* toType, BfCastFlags castFlags, BfCastResultFlags* resultFlags)
  11723. {
  11724. bool silentFail = ((castFlags & BfCastFlags_SilentFail) != 0);
  11725. bool explicitCast = (castFlags & BfCastFlags_Explicit) != 0;
  11726. bool ignoreErrors = mIgnoreErrors || ((castFlags & BfCastFlags_SilentFail) != 0);
  11727. bool ignoreWrites = mBfIRBuilder->mIgnoreWrites;
  11728. if (typedVal.mType == toType)
  11729. {
  11730. if (resultFlags != NULL)
  11731. {
  11732. if (typedVal.IsAddr())
  11733. *resultFlags = (BfCastResultFlags)(*resultFlags | BfCastResultFlags_IsAddr);
  11734. if (typedVal.mKind == BfTypedValueKind_TempAddr)
  11735. *resultFlags = (BfCastResultFlags)(*resultFlags | BfCastResultFlags_IsTemp);
  11736. }
  11737. else if (typedVal.IsAddr())
  11738. typedVal = LoadValue(typedVal);
  11739. return typedVal.mValue;
  11740. }
  11741. BF_ASSERT(typedVal.mType->mContext == mContext);
  11742. BF_ASSERT(toType->mContext == mContext);
  11743. if ((typedVal.IsAddr()) && (!typedVal.mType->IsValueType()))
  11744. typedVal = LoadValue(typedVal);
  11745. //BF_ASSERT(!typedVal.IsAddr() || typedVal.mType->IsGenericParam() || typedVal.mType->IsValueType());
  11746. // Ref X to Ref Y, X* to Y*
  11747. {
  11748. bool checkUnderlying = false;
  11749. bool isRef = false;
  11750. if (((typedVal.mType->IsRef()) && (toType->IsRef())))
  11751. {
  11752. isRef = true;
  11753. auto fromRefType = (BfRefType*)typedVal.mType;
  11754. auto toRefType = (BfRefType*)toType;
  11755. if (fromRefType->mRefKind == toRefType->mRefKind)
  11756. checkUnderlying = true;
  11757. else if ((fromRefType->mRefKind == BfRefType::RefKind_Ref) && (toRefType->mRefKind == BfRefType::RefKind_Mut))
  11758. checkUnderlying = true; // Allow a ref-to-mut implicit conversion
  11759. }
  11760. if ((typedVal.mType->IsPointer()) && (toType->IsPointer()))
  11761. checkUnderlying = true;
  11762. if (checkUnderlying)
  11763. {
  11764. auto fromInner = typedVal.mType->GetUnderlyingType();
  11765. auto toInner = toType->GetUnderlyingType();
  11766. if (fromInner == toInner)
  11767. {
  11768. return typedVal.mValue;
  11769. }
  11770. if ((fromInner->IsTuple()) && (toInner->IsTuple()))
  11771. {
  11772. auto fromTuple = (BfTupleType*)fromInner;
  11773. auto toTuple = (BfTupleType*)toInner;
  11774. if (fromTuple->mFieldInstances.size() == toTuple->mFieldInstances.size())
  11775. {
  11776. bool matches = true;
  11777. for (int fieldIdx = 0; fieldIdx < (int)fromTuple->mFieldInstances.size(); fieldIdx++)
  11778. {
  11779. if (fromTuple->mFieldInstances[fieldIdx].mResolvedType != toTuple->mFieldInstances[fieldIdx].mResolvedType)
  11780. {
  11781. matches = false;
  11782. break;
  11783. }
  11784. }
  11785. if (matches)
  11786. {
  11787. // This is either a ref or a ptr so we don't need to set the "IsAddr" flag
  11788. typedVal = MakeAddressable(typedVal);
  11789. return mBfIRBuilder->CreateBitCast(typedVal.mValue, mBfIRBuilder->MapType(toType));
  11790. }
  11791. }
  11792. }
  11793. if ((isRef) && (fromInner->IsStruct()) && (toInner->IsStruct()))
  11794. {
  11795. if (TypeIsSubTypeOf(fromInner->ToTypeInstance(), toInner->ToTypeInstance()))
  11796. {
  11797. if (toInner->IsValuelessNonOpaqueType())
  11798. return mBfIRBuilder->GetFakeVal();
  11799. // Is this valid?
  11800. typedVal = MakeAddressable(typedVal);
  11801. return mBfIRBuilder->CreateBitCast(typedVal.mValue, mBfIRBuilder->MapType(toType));
  11802. }
  11803. }
  11804. // ref int <-> ref int64/int32 (of same size)
  11805. if (((fromInner->IsInteger()) && (toInner->IsInteger())) &&
  11806. (fromInner->mSize == toInner->mSize) &&
  11807. (fromInner->IsSigned() == toInner->IsSigned()))
  11808. return typedVal.mValue;
  11809. }
  11810. }
  11811. // Null -> ObjectInst|IFace|ptr
  11812. if ((typedVal.mType->IsNull()) &&
  11813. ((toType->IsObjectOrInterface()) || (toType->IsPointer() || (toType->IsFunction()) || (toType->IsAllocType()))))
  11814. {
  11815. return mBfIRBuilder->CreateBitCast(typedVal.mValue, mBfIRBuilder->MapType(toType));
  11816. }
  11817. // Func -> void*
  11818. if ((typedVal.mType->IsFunction()) && (toType->IsVoidPtr()))
  11819. {
  11820. typedVal = LoadValue(typedVal);
  11821. return mBfIRBuilder->CreateIntToPtr(typedVal.mValue, mBfIRBuilder->MapType(toType));
  11822. }
  11823. if (explicitCast)
  11824. {
  11825. // void* -> Func
  11826. if ((typedVal.mType->IsVoidPtr()) && (toType->IsFunction()))
  11827. {
  11828. typedVal = LoadValue(typedVal);
  11829. return mBfIRBuilder->CreatePtrToInt(typedVal.mValue, BfTypeCode_IntPtr);
  11830. }
  11831. // * -> Valueless
  11832. if (toType->IsVoid())
  11833. return mBfIRBuilder->GetFakeVal();
  11834. // void* -> intptr
  11835. if ((typedVal.mType->IsPointer()) && (toType->IsIntPtr()))
  11836. {
  11837. if ((!typedVal.mType->GetUnderlyingType()->IsVoid()) && ((castFlags & BfCastFlags_FromCompiler) == 0))
  11838. {
  11839. if (!ignoreErrors)
  11840. Fail(StrFormat("Unable to cast directly from '%s' to '%s', consider casting to void* first", TypeToString(typedVal.mType).c_str(), TypeToString(toType).c_str()), srcNode);
  11841. else if (!silentFail)
  11842. SetFail();
  11843. }
  11844. auto toPrimitive = (BfPrimitiveType*)toType;
  11845. return mBfIRBuilder->CreatePtrToInt(typedVal.mValue, toPrimitive->mTypeDef->mTypeCode);
  11846. }
  11847. // intptr -> void*
  11848. if ((typedVal.mType->IsIntPtr()) && (toType->IsPointer()))
  11849. {
  11850. if ((!toType->GetUnderlyingType()->IsVoid()) && ((castFlags & BfCastFlags_FromCompiler) == 0))
  11851. {
  11852. if (!ignoreErrors)
  11853. Fail(StrFormat("Unable to cast directly from '%s' to '%s', consider casting to void* first", TypeToString(typedVal.mType).c_str(), TypeToString(toType).c_str()), srcNode);
  11854. else if (!silentFail)
  11855. SetFail();
  11856. }
  11857. return mBfIRBuilder->CreateIntToPtr(typedVal.mValue, mBfIRBuilder->MapType(toType));
  11858. }
  11859. }
  11860. // * <-> Var
  11861. if ((typedVal.mType->IsVar()) || (toType->IsVar()))
  11862. {
  11863. return mBfIRBuilder->CreateUndefValue(mBfIRBuilder->MapType(toType));
  11864. }
  11865. // Generic param -> *
  11866. if (typedVal.mType->IsGenericParam())
  11867. {
  11868. if (toType->IsGenericParam())
  11869. {
  11870. auto genericParamInst = GetGenericParamInstance((BfGenericParamType*)typedVal.mType);
  11871. if (genericParamInst->mTypeConstraint == toType)
  11872. return typedVal.mValue;
  11873. }
  11874. else
  11875. {
  11876. if ((typedVal.mKind != Beefy::BfTypedValueKind_GenericConstValue) && (toType == mContext->mBfObjectType))
  11877. {
  11878. // Always allow casting from generic to object
  11879. return typedVal.mValue;
  11880. }
  11881. auto _CheckGenericParamInstance = [&](BfGenericParamInstance* genericParamInst)
  11882. {
  11883. if ((genericParamInst->mGenericParamFlags & BfGenericParamFlag_Var) != 0)
  11884. {
  11885. return typedVal.mValue;
  11886. }
  11887. if (toType->IsInterface())
  11888. {
  11889. for (auto iface : genericParamInst->mInterfaceConstraints)
  11890. if (TypeIsSubTypeOf(iface, toType->ToTypeInstance()))
  11891. return mBfIRBuilder->GetFakeVal();
  11892. }
  11893. if (genericParamInst->mTypeConstraint != NULL)
  11894. {
  11895. SetAndRestoreValue<bool> prevIgnoreWrites(mBfIRBuilder->mIgnoreWrites, true);
  11896. auto constraintTypeInst = genericParamInst->mTypeConstraint->ToTypeInstance();
  11897. if ((constraintTypeInst != NULL) && (constraintTypeInst->IsDelegateOrFunction()))
  11898. {
  11899. // Could be a methodref - can't cast to anything else
  11900. }
  11901. else
  11902. {
  11903. if ((constraintTypeInst != NULL) && (constraintTypeInst->IsInstanceOf(mCompiler->mEnumTypeDef)) && (explicitCast))
  11904. {
  11905. // Enum->int
  11906. if ((explicitCast) && (toType->IsInteger()))
  11907. return typedVal.mValue;
  11908. }
  11909. BfTypedValue fromTypedValue;
  11910. if (typedVal.mKind == BfTypedValueKind_GenericConstValue)
  11911. {
  11912. if (genericParamInst->mTypeConstraint->IsVar())
  11913. fromTypedValue = GetDefaultTypedValue(genericParamInst->mTypeConstraint);
  11914. else
  11915. fromTypedValue = GetDefaultTypedValue(genericParamInst->mTypeConstraint, false, BfDefaultValueKind_Undef);
  11916. }
  11917. else
  11918. fromTypedValue = BfTypedValue(mBfIRBuilder->GetFakeVal(), genericParamInst->mTypeConstraint, genericParamInst->mTypeConstraint->IsValueType());
  11919. auto result = CastToValue(srcNode, fromTypedValue, toType, (BfCastFlags)(castFlags | BfCastFlags_SilentFail));
  11920. if (result)
  11921. {
  11922. if ((genericParamInst->mTypeConstraint->IsDelegate()) && (toType->IsDelegate()))
  11923. {
  11924. // Don't allow cast when we are constrained by a delegate type, because BfMethodRefs can match and we require an actual alloc
  11925. Fail(StrFormat("Unable to cast '%s' to '%s' because delegate constraints allow valueless direct method references", TypeToString(typedVal.mType).c_str(), TypeToString(toType).c_str()), srcNode);
  11926. return BfIRValue();
  11927. }
  11928. return result;
  11929. }
  11930. }
  11931. }
  11932. // Generic constrained with class or pointer type -> void*
  11933. if (toType->IsVoidPtr())
  11934. {
  11935. if (((genericParamInst->mGenericParamFlags & (BfGenericParamFlag_Class | BfGenericParamFlag_StructPtr | BfGenericParamFlag_Interface)) != 0) ||
  11936. ((genericParamInst->mTypeConstraint != NULL) &&
  11937. ((genericParamInst->mTypeConstraint->IsPointer()) ||
  11938. (genericParamInst->mTypeConstraint->IsInstanceOf(mCompiler->mFunctionTypeDef)) ||
  11939. (genericParamInst->mTypeConstraint->IsObjectOrInterface()))))
  11940. {
  11941. return typedVal.mValue;
  11942. }
  11943. }
  11944. if ((toType->IsInteger()) && (explicitCast))
  11945. {
  11946. if ((genericParamInst->mGenericParamFlags & BfGenericParamFlag_Enum) != 0)
  11947. {
  11948. return typedVal.mValue;
  11949. }
  11950. }
  11951. return BfIRValue();
  11952. };
  11953. BfIRValue retVal;
  11954. // For these casts, it's just important we get *A* value to work with here,
  11955. // as this is just use for unspecialized parsing. We don't use the generated code
  11956. {
  11957. auto genericParamInst = GetGenericParamInstance((BfGenericParamType*)typedVal.mType);
  11958. retVal = _CheckGenericParamInstance(genericParamInst);
  11959. if (retVal)
  11960. return retVal;
  11961. }
  11962. // Check method generic constraints
  11963. if ((mCurMethodInstance != NULL) && (mCurMethodInstance->mIsUnspecialized) && (mCurMethodInstance->mMethodInfoEx != NULL))
  11964. {
  11965. for (int genericParamIdx = (int)mCurMethodInstance->mMethodInfoEx->mMethodGenericArguments.size();
  11966. genericParamIdx < mCurMethodInstance->mMethodInfoEx->mGenericParams.size(); genericParamIdx++)
  11967. {
  11968. auto genericParamInst = mCurMethodInstance->mMethodInfoEx->mGenericParams[genericParamIdx];
  11969. if (genericParamInst->mExternType == typedVal.mType)
  11970. {
  11971. retVal = _CheckGenericParamInstance(genericParamInst);
  11972. if (retVal)
  11973. return retVal;
  11974. }
  11975. }
  11976. }
  11977. }
  11978. }
  11979. // * -> Generic param
  11980. if (toType->IsGenericParam())
  11981. {
  11982. if (explicitCast)
  11983. {
  11984. // Either an upcast or an unbox
  11985. if ((typedVal.mType == mContext->mBfObjectType) || (typedVal.mType->IsInterface()))
  11986. {
  11987. return GetDefaultValue(toType);
  11988. }
  11989. }
  11990. auto genericParamInst = GetGenericParamInstance((BfGenericParamType*)toType);
  11991. if (genericParamInst->mGenericParamFlags & BfGenericParamFlag_Var)
  11992. return GetDefaultValue(toType);
  11993. if (typedVal.mType->IsNull())
  11994. {
  11995. bool allowCast = (genericParamInst->mGenericParamFlags & (BfGenericParamFlag_Class | BfGenericParamFlag_StructPtr | BfGenericParamFlag_Interface)) != 0;
  11996. if ((!allowCast) && (genericParamInst->mTypeConstraint != NULL))
  11997. allowCast = genericParamInst->mTypeConstraint->IsObject() || genericParamInst->mTypeConstraint->IsPointer();
  11998. if (allowCast)
  11999. return mBfIRBuilder->CreateBitCast(typedVal.mValue, mBfIRBuilder->MapType(toType));
  12000. }
  12001. if (genericParamInst->mTypeConstraint != NULL)
  12002. {
  12003. if (genericParamInst->mTypeConstraint->IsInstanceOf(mCompiler->mEnumTypeDef))
  12004. {
  12005. // int->Enum
  12006. if ((explicitCast) && (typedVal.mType->IsInteger()))
  12007. return mBfIRBuilder->GetFakeVal();
  12008. }
  12009. if ((genericParamInst->mTypeConstraint == toType) && (toType->IsUnspecializedType()))
  12010. return mBfIRBuilder->GetFakeVal();
  12011. auto castedVal = CastToValue(srcNode, typedVal, genericParamInst->mTypeConstraint, (BfCastFlags)(castFlags | BfCastFlags_SilentFail));
  12012. if (castedVal)
  12013. return castedVal;
  12014. }
  12015. if (explicitCast)
  12016. {
  12017. if (((genericParamInst->mGenericParamFlags & BfGenericParamFlag_StructPtr) != 0) ||
  12018. ((genericParamInst->mTypeConstraint != NULL) && genericParamInst->mTypeConstraint->IsInstanceOf(mCompiler->mFunctionTypeDef)))
  12019. {
  12020. auto voidPtrType = CreatePointerType(GetPrimitiveType(BfTypeCode_None));
  12021. auto castedVal = CastToValue(srcNode, typedVal, voidPtrType, (BfCastFlags)(castFlags | BfCastFlags_SilentFail));
  12022. if (castedVal)
  12023. return castedVal;
  12024. }
  12025. }
  12026. if ((typedVal.mType->IsIntegral()) && ((genericParamInst->mGenericParamFlags & BfGenericParamFlag_Enum) != 0))
  12027. {
  12028. bool allowCast = explicitCast;
  12029. if ((!allowCast) && (typedVal.mType->IsIntegral()))
  12030. {
  12031. // Allow implicit cast of zero
  12032. auto constant = mBfIRBuilder->GetConstant(typedVal.mValue);
  12033. if ((constant != NULL) && (mBfIRBuilder->IsInt(constant->mTypeCode)))
  12034. {
  12035. allowCast = constant->mInt64 == 0;
  12036. }
  12037. }
  12038. if (allowCast)
  12039. {
  12040. return mBfIRBuilder->GetFakeVal();
  12041. }
  12042. }
  12043. }
  12044. if ((typedVal.mType->IsTypeInstance()) && (toType->IsTypeInstance()))
  12045. {
  12046. auto fromTypeInstance = typedVal.mType->ToTypeInstance();
  12047. auto toTypeInstance = toType->ToTypeInstance();
  12048. if ((typedVal.mType->IsValueType()) && (toType->IsValueType()))
  12049. {
  12050. bool allowCast = false;
  12051. if (TypeIsSubTypeOf(fromTypeInstance, toTypeInstance))
  12052. allowCast = true;
  12053. if (allowCast)
  12054. {
  12055. PopulateType(toType);
  12056. if (toType->IsValuelessType())
  12057. return BfIRValue::sValueless;
  12058. if (ignoreWrites)
  12059. return mBfIRBuilder->GetFakeVal();
  12060. if (resultFlags != NULL)
  12061. *resultFlags = (BfCastResultFlags)(BfCastResultFlags_IsAddr);
  12062. typedVal = MakeAddressable(typedVal);
  12063. return mBfIRBuilder->CreateBitCast(typedVal.mValue, mBfIRBuilder->MapTypeInstPtr(toTypeInstance));
  12064. }
  12065. }
  12066. // ObjectInst|IFace -> object|IFace
  12067. if ((typedVal.mType->IsObject() || (typedVal.mType->IsInterface())) && ((toType->IsObject() || (toType->IsInterface()))))
  12068. {
  12069. bool allowCast = false;
  12070. if (((castFlags & BfCastFlags_NoInterfaceImpl) != 0) && (toTypeInstance->IsInterface()))
  12071. {
  12072. // Don't allow
  12073. }
  12074. else if (TypeIsSubTypeOf(fromTypeInstance, toTypeInstance))
  12075. allowCast = true;
  12076. else if ((explicitCast) &&
  12077. ((toType->IsInterface()) || (TypeIsSubTypeOf(toTypeInstance, fromTypeInstance))))
  12078. {
  12079. if (toType->IsObjectOrInterface())
  12080. {
  12081. if ((castFlags & BfCastFlags_Unchecked) == 0)
  12082. EmitDynamicCastCheck(typedVal, toType, true);
  12083. }
  12084. allowCast = true;
  12085. }
  12086. if (allowCast)
  12087. {
  12088. if ((ignoreWrites) && (!typedVal.mValue.IsConst()))
  12089. return mBfIRBuilder->GetFakeVal();
  12090. return mBfIRBuilder->CreateBitCast(typedVal.mValue, mBfIRBuilder->MapType(toType));
  12091. }
  12092. }
  12093. }
  12094. // MethodRef -> Function
  12095. if ((typedVal.mType->IsMethodRef()) && (toType->IsFunction()))
  12096. {
  12097. BfMethodInstance* methodInstance = ((BfMethodRefType*)typedVal.mType)->mMethodRef;
  12098. auto result = CastToFunction(srcNode, BfTypedValue(), methodInstance, toType, castFlags);
  12099. if (result)
  12100. return result;
  12101. }
  12102. // concrete IFace -> object|IFace
  12103. if ((typedVal.mType->IsConcreteInterfaceType()) && ((toType->IsObject() || (toType->IsInterface()))))
  12104. {
  12105. auto concreteInterfaceType = (BfConcreteInterfaceType*)typedVal.mType;
  12106. if ((toType->IsObject()) || (concreteInterfaceType->mInterface == toType))
  12107. return mBfIRBuilder->CreateBitCast(typedVal.mValue, mBfIRBuilder->MapType(toType));
  12108. }
  12109. // IFace -> object
  12110. if ((typedVal.mType->IsInterface()) && (toType == mContext->mBfObjectType))
  12111. return mBfIRBuilder->CreateBitCast(typedVal.mValue, mBfIRBuilder->MapType(toType));
  12112. // * -> Pointer
  12113. if (toType->IsPointer())
  12114. {
  12115. // Ptr -> Ptr
  12116. if (typedVal.mType->IsPointer())
  12117. {
  12118. bool allowCast = explicitCast;
  12119. auto fromPointerType = (BfPointerType*)typedVal.mType;
  12120. auto toPointerType = (BfPointerType*)toType;
  12121. auto fromUnderlying = fromPointerType->mElementType;
  12122. auto toUnderlying = toPointerType->mElementType;
  12123. // Allow cast from T[size]* to T* implicitly
  12124. // And from T* to T[size]* explicitly
  12125. while (fromUnderlying->IsSizedArray())
  12126. fromUnderlying = fromUnderlying->GetUnderlyingType();
  12127. while ((toUnderlying->IsSizedArray()) && (explicitCast))
  12128. toUnderlying = toUnderlying->GetUnderlyingType();
  12129. if ((fromUnderlying == toUnderlying) ||
  12130. (TypeIsSubTypeOf(fromUnderlying->ToTypeInstance(), toUnderlying->ToTypeInstance())) ||
  12131. (toUnderlying->IsVoid()))
  12132. allowCast = true;
  12133. if (allowCast)
  12134. {
  12135. if ((ignoreWrites) && (!typedVal.mValue.IsConst()))
  12136. return mBfIRBuilder->GetFakeVal();
  12137. return mBfIRBuilder->CreateBitCast(typedVal.mValue, mBfIRBuilder->MapType(toType));
  12138. }
  12139. }
  12140. else if (typedVal.mType->IsObject())
  12141. {
  12142. // ???
  12143. }
  12144. /*else if (typedVal.mType->IsSizedArray())
  12145. {
  12146. if (typedVal.IsAddr())
  12147. {
  12148. BfSizedArrayType* arrayType = (BfSizedArrayType*)typedVal.mType;
  12149. auto ptrType = CreatePointerType(arrayType->mElementType);
  12150. BfTypedValue returnPointer(mBfIRBuilder->CreateBitCast(typedVal.mValue, mBfIRBuilder->MapType(ptrType)), ptrType);
  12151. return CastToValue(srcNode, returnPointer, toType, castFlags, silentFail);
  12152. }
  12153. }*/
  12154. }
  12155. // Boxing?
  12156. bool mayBeBox = false;
  12157. if (((typedVal.mType->IsValueType()) || (typedVal.mType->IsPointer()) || (typedVal.mType->IsValuelessType())) &&
  12158. ((toType->IsInterface()) || (toType == mContext->mBfObjectType)))
  12159. {
  12160. // Make sure there's no conversion operator before we box
  12161. if ((!typedVal.mType->IsRef()) && (!typedVal.mType->IsModifiedTypeType()))
  12162. mayBeBox = true;
  12163. }
  12164. //TODO: the IsGenericParam is not valid - why did we have that? The generic param could be a struct for example...
  12165. if ((explicitCast) && ((typedVal.mType->IsInterface()) || (typedVal.mType == mContext->mBfObjectType) /*|| (typedVal.mType->IsGenericParam())*/) &&
  12166. ((toType->IsValueType()) || (toType->IsPointer())))
  12167. {
  12168. if (toType->IsValuelessType())
  12169. return BfIRValue::sValueless;
  12170. if (ignoreWrites)
  12171. return mBfIRBuilder->GetFakeVal();
  12172. // Unbox!
  12173. if ((castFlags & BfCastFlags_Unchecked) == 0)
  12174. {
  12175. EmitDynamicCastCheck(typedVal, toType, false);
  12176. EmitObjectAccessCheck(typedVal);
  12177. }
  12178. if (toType->IsNullable())
  12179. {
  12180. auto toTypeInst = toType->ToTypeInstance();
  12181. int valueIdx = toTypeInst->mFieldInstances[0].mDataIdx;
  12182. int hasValueIdx = toTypeInst->mFieldInstances[1].mDataIdx;
  12183. typedVal = MakeAddressable(typedVal);
  12184. auto elementType = toType->GetUnderlyingType();
  12185. auto ptrElementType = CreatePointerType(elementType);
  12186. auto boolType = GetPrimitiveType(BfTypeCode_Boolean);
  12187. auto allocaInst = CreateAlloca(toType, true, "unboxN");
  12188. auto prevBB = mBfIRBuilder->GetInsertBlock();
  12189. auto nullBB = mBfIRBuilder->CreateBlock("unboxN.null");
  12190. auto notNullBB = mBfIRBuilder->CreateBlock("unboxN.notNull");
  12191. auto endBB = mBfIRBuilder->CreateBlock("unboxN.end");
  12192. auto isNull = mBfIRBuilder->CreateIsNull(typedVal.mValue);
  12193. mBfIRBuilder->CreateCondBr(isNull, nullBB, notNullBB);
  12194. int dataIdx = toTypeInst->mFieldInstances[1].mDataIdx;
  12195. mBfIRBuilder->AddBlock(nullBB);
  12196. mBfIRBuilder->SetInsertPoint(nullBB);
  12197. auto hasValueAddr = mBfIRBuilder->CreateInBoundsGEP(allocaInst, 0, hasValueIdx); // has_value
  12198. mBfIRBuilder->CreateStore(GetConstValue(0, boolType), hasValueAddr);
  12199. auto nullableValueAddr = mBfIRBuilder->CreateInBoundsGEP(allocaInst, 0, valueIdx); // value
  12200. auto nullableValueBits = mBfIRBuilder->CreateBitCast(nullableValueAddr, mBfIRBuilder->GetPrimitiveType(BfTypeCode_NullPtr));
  12201. mBfIRBuilder->CreateMemSet(nullableValueBits, GetConstValue(0, GetPrimitiveType(BfTypeCode_Int8)), GetConstValue(elementType->mSize), elementType->mAlign);
  12202. mBfIRBuilder->CreateBr(endBB);
  12203. mBfIRBuilder->AddBlock(notNullBB);
  12204. mBfIRBuilder->SetInsertPoint(notNullBB);
  12205. hasValueAddr = mBfIRBuilder->CreateInBoundsGEP(allocaInst, 0, hasValueIdx); // has_value
  12206. mBfIRBuilder->CreateStore(GetConstValue(1, boolType), hasValueAddr);
  12207. nullableValueAddr = mBfIRBuilder->CreateInBoundsGEP(allocaInst, 0, valueIdx); // value
  12208. auto srcObjBits = mBfIRBuilder->CreateBitCast(typedVal.mValue, mBfIRBuilder->MapType(ptrElementType));
  12209. auto boxedValueAddr = mBfIRBuilder->CreateInBoundsGEP(srcObjBits, 1); // Skip over vdata
  12210. auto boxedValue = mBfIRBuilder->CreateLoad(boxedValueAddr);
  12211. mBfIRBuilder->CreateStore(boxedValue, nullableValueAddr);
  12212. mBfIRBuilder->CreateBr(endBB);
  12213. mBfIRBuilder->AddBlock(endBB);
  12214. mBfIRBuilder->SetInsertPoint(endBB);
  12215. if (resultFlags != NULL)
  12216. *resultFlags = (BfCastResultFlags)(BfCastResultFlags_IsAddr | BfCastResultFlags_IsTemp);
  12217. return allocaInst;
  12218. }
  12219. auto boxedType = CreateBoxedType(toType);
  12220. mBfIRBuilder->PopulateType(boxedType);
  12221. AddDependency(boxedType, mCurTypeInstance, BfDependencyMap::DependencyFlag_ReadFields);
  12222. auto boxedObj = mBfIRBuilder->CreateBitCast(typedVal.mValue, mBfIRBuilder->MapType(boxedType));
  12223. auto valPtr = mBfIRBuilder->CreateInBoundsGEP(boxedObj, 0, 1);
  12224. if ((toType->IsPrimitiveType()) || (toType->IsTypedPrimitive()) || (toType->IsPointer()) || (toType->IsSizedArray()) || (toType->IsMethodRef()))
  12225. {
  12226. valPtr = mBfIRBuilder->CreateBitCast(valPtr, mBfIRBuilder->GetPointerTo(mBfIRBuilder->MapType(toType)));
  12227. }
  12228. if ((toType->IsComposite()) && (resultFlags != NULL))
  12229. {
  12230. *resultFlags = BfCastResultFlags_IsAddr;
  12231. return valPtr;
  12232. }
  12233. else
  12234. return mBfIRBuilder->CreateLoad(valPtr, false);
  12235. }
  12236. // Null -> Nullable<T>
  12237. if ((typedVal.mType->IsNull()) && (toType->IsNullable()))
  12238. {
  12239. if (ignoreWrites)
  12240. return mBfIRBuilder->GetFakeVal();
  12241. if ((castFlags & BfCastFlags_PreferAddr) != 0)
  12242. {
  12243. auto boolType = GetPrimitiveType(BfTypeCode_Boolean);
  12244. auto toTypeInst = toType->ToTypeInstance();
  12245. int hasValueIdx = toTypeInst->mFieldInstances[1].mDataIdx;
  12246. auto allocaInst = CreateAlloca(toType);
  12247. auto hasValueAddr = mBfIRBuilder->CreateInBoundsGEP(allocaInst, 0, hasValueIdx); // has_value
  12248. mBfIRBuilder->CreateStore(GetConstValue(0, boolType), hasValueAddr);
  12249. auto typedValue = BfTypedValue(allocaInst, toType, true);
  12250. if (resultFlags != NULL)
  12251. *resultFlags = (BfCastResultFlags)(BfCastResultFlags_IsAddr | BfCastResultFlags_IsTemp);
  12252. return allocaInst;
  12253. }
  12254. auto zeroNullable = mBfIRBuilder->CreateConstAggZero(mBfIRBuilder->MapType(toType));
  12255. return zeroNullable;
  12256. }
  12257. // Nullable<A> -> Nullable<B>
  12258. if ((typedVal.mType->IsNullable()) && (toType->IsNullable()))
  12259. {
  12260. auto fromNullableType = (BfTypeInstance*)typedVal.mType;
  12261. auto toNullableType = (BfTypeInstance*)toType;
  12262. if (ignoreWrites)
  12263. {
  12264. auto toVal = CastToValue(srcNode, BfTypedValue(mBfIRBuilder->GetFakeVal(), fromNullableType->mGenericTypeInfo->mTypeGenericArguments[0]),
  12265. toNullableType->mGenericTypeInfo->mTypeGenericArguments[0], ignoreErrors ? BfCastFlags_SilentFail : BfCastFlags_None);
  12266. if (!toVal)
  12267. return BfIRValue();
  12268. return mBfIRBuilder->GetFakeVal();
  12269. }
  12270. BfIRValue srcPtr = typedVal.mValue;
  12271. if (!typedVal.IsAddr())
  12272. {
  12273. auto srcAlloca = CreateAllocaInst(fromNullableType);
  12274. typedVal = LoadOrAggregateValue(typedVal);
  12275. mBfIRBuilder->CreateStore(typedVal.mValue, srcAlloca);
  12276. srcPtr = srcAlloca;
  12277. }
  12278. auto srcAddr = mBfIRBuilder->CreateInBoundsGEP(srcPtr, 0, 1); // mValue
  12279. auto srcVal = mBfIRBuilder->CreateLoad(srcAddr);
  12280. auto toVal = CastToValue(srcNode, BfTypedValue(srcVal, fromNullableType->mGenericTypeInfo->mTypeGenericArguments[0]),
  12281. toNullableType->mGenericTypeInfo->mTypeGenericArguments[0], ignoreErrors ? BfCastFlags_SilentFail : BfCastFlags_None);
  12282. if (!toVal)
  12283. return BfIRValue();
  12284. auto allocaInst = CreateAllocaInst(toNullableType);
  12285. auto destAddr = mBfIRBuilder->CreateInBoundsGEP(allocaInst, 0, 1); // mValue
  12286. mBfIRBuilder->CreateStore(toVal, destAddr);
  12287. srcAddr = mBfIRBuilder->CreateInBoundsGEP(srcPtr, 0, 2); // mHasValue
  12288. srcVal = mBfIRBuilder->CreateLoad(srcAddr);
  12289. destAddr = mBfIRBuilder->CreateInBoundsGEP(allocaInst, 0, 2); // mHasValue
  12290. mBfIRBuilder->CreateStore(srcVal, destAddr);
  12291. if (resultFlags != NULL)
  12292. *resultFlags = (BfCastResultFlags)(BfCastResultFlags_IsAddr | BfCastResultFlags_IsTemp);
  12293. return allocaInst;
  12294. }
  12295. // Tuple -> Tuple
  12296. if ((typedVal.mType->IsTuple()) && (toType->IsTuple()))
  12297. {
  12298. auto fromTupleType = (BfTypeInstance*)typedVal.mType;
  12299. auto toTupleType = (BfTypeInstance*)toType;
  12300. PopulateType(fromTupleType);
  12301. PopulateType(toTupleType);
  12302. if (fromTupleType->mFieldInstances.size() == toTupleType->mFieldInstances.size())
  12303. {
  12304. typedVal = LoadValue(typedVal);
  12305. BfIRValue curTupleValue = mBfIRBuilder->CreateUndefValue(mBfIRBuilder->MapType(toTupleType));
  12306. for (int valueIdx = 0; valueIdx < (int)fromTupleType->mFieldInstances.size(); valueIdx++)
  12307. {
  12308. BfFieldInstance* fromFieldInstance = &fromTupleType->mFieldInstances[valueIdx];
  12309. BfFieldInstance* toFieldInstance = &toTupleType->mFieldInstances[valueIdx];
  12310. if (!explicitCast)
  12311. {
  12312. BfFieldDef* fromFieldDef = fromFieldInstance->GetFieldDef();
  12313. BfFieldDef* toFieldDef = toFieldInstance->GetFieldDef();
  12314. // Either the names have to match or one has to be unnamed
  12315. if ((!fromFieldDef->IsUnnamedTupleField()) && (!toFieldDef->IsUnnamedTupleField()) &&
  12316. (fromFieldDef->mName != toFieldDef->mName))
  12317. {
  12318. curTupleValue = BfIRValue();
  12319. break;
  12320. }
  12321. }
  12322. auto fromFieldType = fromFieldInstance->GetResolvedType();
  12323. auto toFieldType = toFieldInstance->GetResolvedType();
  12324. if (toFieldType->IsVoid())
  12325. continue; // Allow sinking to void
  12326. BfIRValue fromFieldValue;
  12327. if (fromFieldInstance->mDataIdx >= 0)
  12328. fromFieldValue = mBfIRBuilder->CreateExtractValue(typedVal.mValue, fromFieldInstance->mDataIdx);
  12329. BfIRValue toFieldValue = CastToValue(srcNode, BfTypedValue(fromFieldValue, fromFieldType), toFieldType, (BfCastFlags)(castFlags | BfCastFlags_Explicit));
  12330. if (!toFieldValue)
  12331. {
  12332. curTupleValue = BfIRValue();
  12333. break;
  12334. }
  12335. if (toFieldInstance->mDataIdx >= 0)
  12336. curTupleValue = mBfIRBuilder->CreateInsertValue(curTupleValue, toFieldValue, toFieldInstance->mDataIdx);
  12337. }
  12338. if (curTupleValue)
  12339. return curTupleValue;
  12340. }
  12341. }
  12342. // -> const <value>
  12343. if (toType->IsConstExprValue())
  12344. {
  12345. auto constant = mBfIRBuilder->GetConstant(typedVal.mValue);
  12346. if (constant != NULL)
  12347. {
  12348. BfConstExprValueType* toConstExprValueType = (BfConstExprValueType*)toType;
  12349. auto variantVal = TypedValueToVariant(srcNode, typedVal, true);
  12350. if ((mBfIRBuilder->IsIntable(variantVal.mTypeCode)) && (mBfIRBuilder->IsIntable(toConstExprValueType->mValue.mTypeCode)))
  12351. {
  12352. if (variantVal.mUInt64 == toConstExprValueType->mValue.mUInt64)
  12353. return typedVal.mValue;
  12354. }
  12355. else if ((mBfIRBuilder->IsFloat(variantVal.mTypeCode)) && (mBfIRBuilder->IsFloat(toConstExprValueType->mValue.mTypeCode)))
  12356. {
  12357. if (variantVal.ToDouble() == toConstExprValueType->mValue.ToDouble())
  12358. return typedVal.mValue;
  12359. }
  12360. if (toConstExprValueType->mValue.mTypeCode == BfTypeCode_StringId)
  12361. {
  12362. int stringIdx = GetStringPoolIdx(typedVal.mValue, mBfIRBuilder);
  12363. if ((stringIdx != -1) && (stringIdx == toConstExprValueType->mValue.mInt32))
  12364. return typedVal.mValue;
  12365. }
  12366. if ((toConstExprValueType->mValue.mTypeCode == BfTypeCode_Let) && (constant->mConstType == BfConstType_Undef))
  12367. {
  12368. return typedVal.mValue;
  12369. }
  12370. if (!ignoreErrors)
  12371. {
  12372. String valStr;
  12373. VariantToString(valStr, variantVal);
  12374. Fail(StrFormat("Unable to cast '%s %s' to '%s'", TypeToString(typedVal.mType).c_str(), valStr.c_str(), TypeToString(toType).c_str()), srcNode);
  12375. }
  12376. else if (!silentFail)
  12377. SetFail();
  12378. }
  12379. }
  12380. if ((typedVal.mType->IsPrimitiveType()) && (toType->IsPrimitiveType()))
  12381. {
  12382. auto fromPrimType = (BfPrimitiveType*)typedVal.mType;
  12383. auto toPrimType = (BfPrimitiveType*)toType;
  12384. BfTypeCode fromTypeCode = fromPrimType->mTypeDef->mTypeCode;
  12385. BfTypeCode toTypeCode = toPrimType->mTypeDef->mTypeCode;
  12386. if (toType->IsIntegral())
  12387. {
  12388. // Allow constant ints to be implicitly casted to a smaller type if they fit
  12389. auto constant = mBfIRBuilder->GetConstant(typedVal.mValue);
  12390. if (constant != NULL)
  12391. {
  12392. if (mBfIRBuilder->IsInt(constant->mTypeCode))
  12393. {
  12394. int64 srcVal = constant->mInt64;
  12395. if (toPrimType->IsChar())
  12396. {
  12397. if (srcVal == 0)
  12398. explicitCast = true;
  12399. }
  12400. else if ((fromPrimType->IsChar()) && (!toPrimType->IsChar()))
  12401. {
  12402. // Never allow this
  12403. }
  12404. else if ((constant->mTypeCode == BfTypeCode_UInt64) && (srcVal < 0))
  12405. {
  12406. // There's nothing that this could fit into
  12407. }
  12408. else if (toType->IsSigned())
  12409. {
  12410. if (toType->mSize == 8) // int64
  12411. explicitCast = true;
  12412. else
  12413. {
  12414. int64 minVal = -(1LL << (8 * toType->mSize - 1));
  12415. int64 maxVal = (1LL << (8 * toType->mSize - 1)) - 1;
  12416. if ((srcVal >= minVal) && (srcVal <= maxVal))
  12417. explicitCast = true;
  12418. }
  12419. }
  12420. else if (toType->mSize == 8) // uint64
  12421. {
  12422. if (srcVal >= 0)
  12423. explicitCast = true;
  12424. }
  12425. else
  12426. {
  12427. int64 minVal = 0;
  12428. int64 maxVal = (1LL << (8 * toType->mSize)) - 1;
  12429. if ((srcVal >= minVal) && (srcVal <= maxVal))
  12430. explicitCast = true;
  12431. }
  12432. }
  12433. else if (constant->mConstType == BfConstType_Undef)
  12434. {
  12435. if (mIsComptimeModule)
  12436. return mBfIRBuilder->GetUndefConstValue(mBfIRBuilder->MapType(toType));
  12437. auto undefConst = (BfConstantUndef*)constant;
  12438. BfType* bfType = NULL;
  12439. if (undefConst->mType.mKind == BfIRTypeData::TypeKind_TypeCode)
  12440. {
  12441. bfType = GetPrimitiveType((BfTypeCode)undefConst->mType.mId);
  12442. }
  12443. else
  12444. {
  12445. BF_ASSERT(undefConst->mType.mKind == BfIRTypeData::TypeKind_TypeId);
  12446. if (undefConst->mType.mKind == BfIRTypeData::TypeKind_TypeId)
  12447. bfType = mContext->FindTypeById(undefConst->mType.mId);
  12448. }
  12449. if (bfType == NULL)
  12450. return BfIRValue();
  12451. auto fakeVal = GetFakeTypedValue(bfType);
  12452. auto val = CastToValue(srcNode, fakeVal, toType, castFlags);
  12453. if (val)
  12454. return mBfIRBuilder->GetUndefConstValue(mBfIRBuilder->MapType(toType));
  12455. }
  12456. }
  12457. }
  12458. bool allowCast = false;
  12459. switch (toTypeCode)
  12460. {
  12461. case BfTypeCode_Char16:
  12462. switch (fromTypeCode)
  12463. {
  12464. case BfTypeCode_Char8:
  12465. allowCast = true; break;
  12466. default: break;
  12467. }
  12468. break;
  12469. case BfTypeCode_Int16:
  12470. switch (fromTypeCode)
  12471. {
  12472. case BfTypeCode_Int8:
  12473. allowCast = true; break;
  12474. case BfTypeCode_UInt8:
  12475. allowCast = true; break;
  12476. default: break;
  12477. }
  12478. break;
  12479. case BfTypeCode_UInt16:
  12480. switch (fromTypeCode)
  12481. {
  12482. case BfTypeCode_UInt8:
  12483. allowCast = true; break;
  12484. default: break;
  12485. }
  12486. break;
  12487. case BfTypeCode_Int32:
  12488. switch (fromTypeCode)
  12489. {
  12490. case BfTypeCode_Int8:
  12491. case BfTypeCode_Int16:
  12492. allowCast = true; break;
  12493. case BfTypeCode_IntPtr:
  12494. if (mCompiler->mSystem->mPtrSize == 4)
  12495. allowCast = true;
  12496. break;
  12497. case BfTypeCode_UInt8:
  12498. case BfTypeCode_UInt16:
  12499. allowCast = true; break;
  12500. default: break;
  12501. }
  12502. break;
  12503. case BfTypeCode_Char32:
  12504. switch (fromTypeCode)
  12505. {
  12506. case BfTypeCode_Char8:
  12507. case BfTypeCode_Char16:
  12508. allowCast = true; break;
  12509. default: break;
  12510. }
  12511. break;
  12512. case BfTypeCode_UInt32:
  12513. switch (fromTypeCode)
  12514. {
  12515. case BfTypeCode_UInt8:
  12516. case BfTypeCode_UInt16:
  12517. case BfTypeCode_UInt32:
  12518. allowCast = true; break;
  12519. case BfTypeCode_UIntPtr:
  12520. if (mCompiler->mSystem->mPtrSize == 4)
  12521. allowCast = true;
  12522. break;
  12523. default: break;
  12524. }
  12525. break;
  12526. case BfTypeCode_Int64:
  12527. switch (fromTypeCode)
  12528. {
  12529. case BfTypeCode_Int8:
  12530. case BfTypeCode_Int16:
  12531. case BfTypeCode_Int32:
  12532. case BfTypeCode_IntPtr:
  12533. allowCast = true; break;
  12534. case BfTypeCode_UInt8:
  12535. case BfTypeCode_UInt16:
  12536. case BfTypeCode_UInt32:
  12537. allowCast = true; break;
  12538. default: break;
  12539. }
  12540. break;
  12541. case BfTypeCode_UInt64:
  12542. switch (fromTypeCode)
  12543. {
  12544. case BfTypeCode_UInt8:
  12545. case BfTypeCode_UInt16:
  12546. case BfTypeCode_UInt32:
  12547. case BfTypeCode_UIntPtr:
  12548. allowCast = true; break;
  12549. default: break;
  12550. }
  12551. break;
  12552. case BfTypeCode_IntPtr:
  12553. switch (fromTypeCode)
  12554. {
  12555. case BfTypeCode_Int8:
  12556. case BfTypeCode_Int16:
  12557. case BfTypeCode_Int32:
  12558. allowCast = true; break;
  12559. case BfTypeCode_UInt8:
  12560. case BfTypeCode_UInt16:
  12561. allowCast = true; break;
  12562. case BfTypeCode_UInt32:
  12563. case BfTypeCode_Int64:
  12564. // It may seem that we want this to require an explicit cast,
  12565. // but consider the case of
  12566. // int val = Math.Max(intA, intB)
  12567. // Math.Max has an int32 and int64 override, so we want the correct one to be chosen and
  12568. // to be able to have the int64 return value implicitly used in a 64-bit build
  12569. if (mCompiler->mSystem->mPtrSize == 8)
  12570. allowCast = true;
  12571. break;
  12572. default: break;
  12573. }
  12574. break;
  12575. case BfTypeCode_UIntPtr:
  12576. switch (fromTypeCode)
  12577. {
  12578. case BfTypeCode_UInt8:
  12579. case BfTypeCode_UInt16:
  12580. case BfTypeCode_UInt32:
  12581. allowCast = true; break;
  12582. case BfTypeCode_UInt64:
  12583. if (mCompiler->mSystem->mPtrSize == 8)
  12584. allowCast = true;
  12585. break;
  12586. default: break;
  12587. }
  12588. break;
  12589. case BfTypeCode_Float:
  12590. switch (fromTypeCode)
  12591. {
  12592. case BfTypeCode_Int8:
  12593. case BfTypeCode_Int16:
  12594. case BfTypeCode_Int32:
  12595. case BfTypeCode_Int64:
  12596. case BfTypeCode_IntPtr:
  12597. case BfTypeCode_IntUnknown:
  12598. allowCast = true; break;
  12599. case BfTypeCode_UInt8:
  12600. case BfTypeCode_UInt16:
  12601. case BfTypeCode_UInt32:
  12602. case BfTypeCode_UInt64:
  12603. case BfTypeCode_UIntPtr:
  12604. case BfTypeCode_UIntUnknown:
  12605. allowCast = true; break;
  12606. default: break;
  12607. }
  12608. break;
  12609. case BfTypeCode_Double:
  12610. switch (fromTypeCode)
  12611. {
  12612. case BfTypeCode_Int8:
  12613. case BfTypeCode_Int16:
  12614. case BfTypeCode_Int32:
  12615. case BfTypeCode_Int64:
  12616. case BfTypeCode_IntPtr:
  12617. case BfTypeCode_IntUnknown:
  12618. allowCast = true; break;
  12619. case BfTypeCode_UInt8:
  12620. case BfTypeCode_UInt16:
  12621. case BfTypeCode_UInt32:
  12622. case BfTypeCode_UInt64:
  12623. case BfTypeCode_UIntPtr:
  12624. case BfTypeCode_UIntUnknown:
  12625. allowCast = true; break;
  12626. case BfTypeCode_Float:
  12627. allowCast = true; break;
  12628. default: break;
  12629. }
  12630. break;
  12631. default: break;
  12632. }
  12633. if (explicitCast)
  12634. {
  12635. if (((fromPrimType->IsIntegral()) || (fromPrimType->IsFloat())) &&
  12636. ((toType->IsIntegral()) || (toType->IsFloat())))
  12637. allowCast = true;
  12638. }
  12639. if (allowCast)
  12640. {
  12641. if (typedVal.IsAddr())
  12642. typedVal = LoadValue(typedVal);
  12643. return mBfIRBuilder->CreateNumericCast(typedVal.mValue, typedVal.mType->IsSigned(), toTypeCode);
  12644. }
  12645. }
  12646. if (typedVal.mValue.IsConst())
  12647. {
  12648. if ((toType->IsPointer()) && (toType->GetUnderlyingType() == GetPrimitiveType(BfTypeCode_Char8)) && (typedVal.mType->IsInstanceOf(mCompiler->mStringTypeDef)))
  12649. {
  12650. int stringId = GetStringPoolIdx(typedVal.mValue, mBfIRBuilder);
  12651. if (stringId >= 0)
  12652. return GetStringCharPtr(stringId);
  12653. }
  12654. else if ((toType->IsInstanceOf(mCompiler->mStringViewTypeDef)))
  12655. {
  12656. int stringId = GetStringPoolIdx(typedVal.mValue, mBfIRBuilder);
  12657. bool isNull = false;
  12658. auto constant = mBfIRBuilder->GetConstant(typedVal.mValue);
  12659. if (constant->mTypeCode == BfTypeCode_NullPtr)
  12660. isNull = true;
  12661. if ((stringId >= 0) || (isNull))
  12662. {
  12663. int strLen = 0;
  12664. String str;
  12665. BfStringPoolEntry* entry = NULL;
  12666. if ((isNull) || (mContext->mStringObjectIdMap.TryGetValue(stringId, &entry)))
  12667. {
  12668. auto svTypeInst = toType->ToTypeInstance();
  12669. PopulateType(svTypeInst);
  12670. PopulateType(svTypeInst->mBaseType);
  12671. mBfIRBuilder->PopulateType(svTypeInst);
  12672. // Sanity check
  12673. if (svTypeInst->mMergedFieldDataCount == 2)
  12674. {
  12675. SizedArray<BfIRValue, 2> spanFieldVals;
  12676. spanFieldVals.Add(mBfIRBuilder->CreateConstAggZero(mBfIRBuilder->MapType(svTypeInst->mBaseType->mBaseType)));
  12677. if (isNull)
  12678. {
  12679. spanFieldVals.Add(mBfIRBuilder->CreateConstNull(mBfIRBuilder->MapType(CreatePointerType(GetPrimitiveType(BfTypeCode_Char8)))));
  12680. spanFieldVals.Add(mBfIRBuilder->CreateConst(BfTypeCode_IntPtr, 0));
  12681. }
  12682. else
  12683. {
  12684. auto stringCharPtr = GetStringCharPtr(stringId);
  12685. spanFieldVals.Add(stringCharPtr);
  12686. spanFieldVals.Add(mBfIRBuilder->CreateConst(BfTypeCode_IntPtr, entry->mString.mLength));
  12687. }
  12688. SizedArray<BfIRValue, 2> svFieldVals;
  12689. svFieldVals.Add(mBfIRBuilder->CreateConstAgg(mBfIRBuilder->MapType(svTypeInst->mBaseType), spanFieldVals));
  12690. return mBfIRBuilder->CreateConstAgg(mBfIRBuilder->MapType(svTypeInst), svFieldVals);
  12691. }
  12692. }
  12693. }
  12694. }
  12695. else if (toType->IsSizedArray())
  12696. {
  12697. auto sizedArray = (BfSizedArrayType*)toType;
  12698. if (sizedArray->mElementType == GetPrimitiveType(BfTypeCode_Char8))
  12699. {
  12700. int stringId = GetStringPoolIdx(typedVal.mValue, mBfIRBuilder);
  12701. if (stringId >= 0)
  12702. {
  12703. BfStringPoolEntry* entry = NULL;
  12704. if (mContext->mStringObjectIdMap.TryGetValue(stringId, &entry))
  12705. {
  12706. String& string = entry->mString;
  12707. if (string.GetLength() > sizedArray->mElementCount)
  12708. {
  12709. if (!ignoreErrors)
  12710. Fail(StrFormat("String literal is too long to fit into '%s'", TypeToString(sizedArray).c_str()), srcNode);
  12711. }
  12712. Array<BfIRValue> charValues;
  12713. for (int i = 0; i < (int)BF_MIN(string.GetLength(), sizedArray->mElementCount); i++)
  12714. {
  12715. char c = string[i];
  12716. charValues.Add(mBfIRBuilder->CreateConst(BfTypeCode_Char8, (int)(uint8)c));
  12717. }
  12718. if (sizedArray->mElementCount > charValues.size())
  12719. charValues.Add(mBfIRBuilder->CreateConst(BfTypeCode_Char8, 0));
  12720. return mBfIRBuilder->CreateConstAgg(mBfIRBuilder->MapType(sizedArray), charValues);
  12721. }
  12722. }
  12723. }
  12724. }
  12725. }
  12726. // Check user-defined operators
  12727. if (((castFlags & BfCastFlags_NoConversionOperator) == 0) && (toType != mContext->mBfObjectType))
  12728. {
  12729. BfType* walkFromType = typedVal.mType;
  12730. if (walkFromType->IsWrappableType())
  12731. walkFromType = GetWrappedStructType(walkFromType);
  12732. BfType* walkToType = toType;
  12733. if (walkToType->IsWrappableType())
  12734. walkToType = GetWrappedStructType(walkToType);
  12735. SizedArray<BfResolvedArg, 1> args;
  12736. BfResolvedArg resolvedArg;
  12737. resolvedArg.mTypedValue = typedVal;
  12738. if (resolvedArg.mTypedValue.IsParams())
  12739. {
  12740. resolvedArg.mTypedValue = LoadOrAggregateValue(resolvedArg.mTypedValue);
  12741. resolvedArg.mTypedValue.mKind = BfTypedValueKind_Value;
  12742. }
  12743. args.push_back(resolvedArg);
  12744. BfMethodMatcher methodMatcher(srcNode, this, "", args, BfMethodGenericArguments());
  12745. methodMatcher.mCheckReturnType = toType;
  12746. methodMatcher.mBfEvalExprFlags = (BfEvalExprFlags)(BfEvalExprFlags_NoAutoComplete | BfEvalExprFlags_FromConversionOp);
  12747. if ((castFlags & BfCastFlags_Explicit) != 0)
  12748. methodMatcher.mBfEvalExprFlags = (BfEvalExprFlags)(methodMatcher.mBfEvalExprFlags | BfEvalExprFlags_FromConversionOp_Explicit);
  12749. methodMatcher.mAllowImplicitRef = true;
  12750. methodMatcher.mAllowImplicitWrap = true;
  12751. BfBaseClassWalker baseClassWalker(walkFromType, walkToType, this);
  12752. bool isConstraintCheck = ((castFlags & BfCastFlags_IsConstraintCheck) != 0);
  12753. BfType* bestSelfType = NULL;
  12754. while (true)
  12755. {
  12756. auto entry = baseClassWalker.Next();
  12757. auto checkType = entry.mTypeInstance;
  12758. if (checkType == NULL)
  12759. break;
  12760. for (auto operatorDef : checkType->mTypeDef->mOperators)
  12761. {
  12762. if (operatorDef->mOperatorDeclaration->mIsConvOperator)
  12763. {
  12764. if ((!explicitCast) && (operatorDef->IsExplicit()))
  12765. continue;
  12766. if (!methodMatcher.IsMemberAccessible(checkType, operatorDef->mDeclaringType))
  12767. continue;
  12768. int prevArgSize = (int)args.mSize;
  12769. if (!operatorDef->mIsStatic)
  12770. {
  12771. // Try without arg
  12772. args.mSize = 0;
  12773. }
  12774. if (isConstraintCheck)
  12775. {
  12776. auto returnType = CheckOperator(checkType, operatorDef, typedVal, BfTypedValue());
  12777. if (returnType != NULL)
  12778. {
  12779. auto result = BfTypedValue(mBfIRBuilder->GetFakeVal(), returnType);
  12780. if (result)
  12781. {
  12782. if (result.mType != toType)
  12783. {
  12784. auto castedResult = CastToValue(srcNode, result, toType, (BfCastFlags)(castFlags | BfCastFlags_Explicit | BfCastFlags_NoConversionOperator), resultFlags);
  12785. if (castedResult)
  12786. return castedResult;
  12787. }
  12788. else
  12789. return result.mValue;
  12790. }
  12791. }
  12792. }
  12793. else
  12794. {
  12795. if (methodMatcher.CheckMethod(NULL, checkType, operatorDef, false))
  12796. methodMatcher.mSelfType = entry.mSrcType;
  12797. }
  12798. args.mSize = prevArgSize;
  12799. }
  12800. }
  12801. }
  12802. if (methodMatcher.mBestMethodDef != NULL)
  12803. {
  12804. if (mayBeBox)
  12805. {
  12806. if (!ignoreErrors)
  12807. {
  12808. if (Fail("Ambiguous cast, may be conversion operator or may be boxing request", srcNode) != NULL)
  12809. mCompiler->mPassInstance->MoreInfo("See conversion operator", methodMatcher.mBestMethodDef->GetRefNode());
  12810. }
  12811. else if (!silentFail)
  12812. SetFail();
  12813. }
  12814. }
  12815. if (methodMatcher.mBestMethodDef == NULL)
  12816. {
  12817. // Check method generic constraints
  12818. if ((mCurMethodInstance != NULL) && (mCurMethodInstance->mIsUnspecialized) && (mCurMethodInstance->mMethodInfoEx != NULL))
  12819. {
  12820. for (int genericParamIdx = 0; genericParamIdx < mCurMethodInstance->mMethodInfoEx->mGenericParams.size(); genericParamIdx++)
  12821. {
  12822. auto genericParam = mCurMethodInstance->mMethodInfoEx->mGenericParams[genericParamIdx];
  12823. for (auto& opConstraint : genericParam->mOperatorConstraints)
  12824. {
  12825. if ((opConstraint.mCastToken == BfToken_Implicit) ||
  12826. ((explicitCast) && (opConstraint.mCastToken == BfToken_Explicit)))
  12827. {
  12828. // If we can convert OUR fromVal to the constraint's fromVal then we may match
  12829. if (CanCast(typedVal, opConstraint.mRightType, BfCastFlags_NoConversionOperator))
  12830. {
  12831. // .. and we can convert the constraint's toType to OUR toType then we're good
  12832. auto opToVal = genericParam->mExternType;
  12833. if (CanCast(BfTypedValue(BfIRValue::sValueless, opToVal), toType, BfCastFlags_NoConversionOperator))
  12834. {
  12835. if (mBfIRBuilder->IsConstValue(typedVal.mValue))
  12836. {
  12837. // Retain constness
  12838. return mBfIRBuilder->GetUndefConstValue(mBfIRBuilder->MapType(toType));
  12839. }
  12840. else
  12841. return mBfIRBuilder->GetFakeVal();
  12842. }
  12843. }
  12844. }
  12845. }
  12846. }
  12847. }
  12848. // Check type generic constraints
  12849. if ((mCurTypeInstance != NULL) && (mCurTypeInstance->IsGenericTypeInstance()) && (mCurTypeInstance->IsUnspecializedType()))
  12850. {
  12851. SizedArray<BfGenericParamInstance*, 4> genericParams;
  12852. GetActiveTypeGenericParamInstances(genericParams);
  12853. for (auto genericParam : genericParams)
  12854. {
  12855. for (auto& opConstraint : genericParam->mOperatorConstraints)
  12856. {
  12857. if ((opConstraint.mCastToken == BfToken_Implicit) ||
  12858. ((explicitCast) && (opConstraint.mCastToken == BfToken_Explicit)))
  12859. {
  12860. // If we can convert OUR fromVal to the constraint's fromVal then we may match
  12861. if (CanCast(typedVal, opConstraint.mRightType, BfCastFlags_NoConversionOperator))
  12862. {
  12863. // .. and we can convert the constraint's toType to OUR toType then we're good
  12864. auto opToVal = genericParam->mExternType;
  12865. if (CanCast(BfTypedValue(BfIRValue::sValueless, opToVal), toType, BfCastFlags_NoConversionOperator))
  12866. {
  12867. if (mBfIRBuilder->IsConstValue(typedVal.mValue))
  12868. {
  12869. // Retain constness
  12870. return mBfIRBuilder->GetUndefConstValue(mBfIRBuilder->MapType(toType));
  12871. }
  12872. else
  12873. return mBfIRBuilder->GetFakeVal();
  12874. }
  12875. }
  12876. }
  12877. }
  12878. }
  12879. }
  12880. }
  12881. else
  12882. {
  12883. BfTypedValue result;
  12884. BfExprEvaluator exprEvaluator(this);
  12885. exprEvaluator.mBfEvalExprFlags = BfEvalExprFlags_FromConversionOp;
  12886. if ((castFlags & BfCastFlags_WantsConst) != 0)
  12887. exprEvaluator.mBfEvalExprFlags = (BfEvalExprFlags)(exprEvaluator.mBfEvalExprFlags | BfEvalExprFlags_Comptime);
  12888. auto methodDeclaration = BfNodeDynCast<BfMethodDeclaration>(methodMatcher.mBestMethodDef->mMethodDeclaration);
  12889. if ((methodDeclaration != NULL) && (methodDeclaration->mBody == NULL))
  12890. {
  12891. auto fromType = typedVal.mType;
  12892. if (fromType->IsTypedPrimitive())
  12893. {
  12894. typedVal = LoadValue(typedVal);
  12895. auto convTypedValue = BfTypedValue(typedVal.mValue, fromType->GetUnderlyingType());
  12896. if ((fromType->IsEnum()) && (convTypedValue.mType->IsVoid()) && (methodMatcher.mBestRawMethodInstance != NULL))
  12897. {
  12898. if (methodMatcher.mBestRawMethodInstance)
  12899. convTypedValue = GetDefaultTypedValue(methodMatcher.mBestRawMethodInstance->mReturnType);
  12900. }
  12901. return CastToValue(srcNode, convTypedValue, toType, castFlags, NULL);
  12902. }
  12903. else if (toType->IsTypedPrimitive())
  12904. {
  12905. auto castedVal = CastToValue(srcNode, typedVal, toType->GetUnderlyingType(), castFlags, NULL);
  12906. return castedVal;
  12907. }
  12908. }
  12909. bool doCall = true;
  12910. auto moduleMethodInstance = exprEvaluator.GetSelectedMethod(methodMatcher);
  12911. if (moduleMethodInstance.mMethodInstance != NULL)
  12912. {
  12913. auto returnType = moduleMethodInstance.mMethodInstance->mReturnType;
  12914. auto paramType = moduleMethodInstance.mMethodInstance->GetParamType(0);
  12915. BfCastFlags implicitCastFlags = (BfCastFlags)(castFlags & ~BfCastFlags_Explicit | BfCastFlags_NoConversionOperator);
  12916. // Check typedPrimitive->underlying cast
  12917. if ((explicitCast) && (typedVal.mType->IsTypedPrimitive()))
  12918. {
  12919. auto underlyingType = typedVal.mType->GetUnderlyingType();
  12920. if ((returnType == underlyingType) && (explicitCast))
  12921. {
  12922. doCall = false;
  12923. }
  12924. else if ((CanCast(GetFakeTypedValue(underlyingType), toType, (BfCastFlags)(castFlags | BfCastFlags_NoConversionOperator))))
  12925. {
  12926. float underlyingCanCast = CanCast(GetFakeTypedValue(underlyingType), toType, implicitCastFlags);
  12927. float returnCanCast = CanCast(GetFakeTypedValue(returnType), toType, implicitCastFlags);
  12928. if ((underlyingCanCast) &&
  12929. (!returnCanCast))
  12930. {
  12931. doCall = false;
  12932. }
  12933. else if ((returnCanCast) &&
  12934. (!underlyingCanCast))
  12935. {
  12936. // Can do
  12937. }
  12938. else if ((CanCast(GetFakeTypedValue(underlyingType), returnType, implicitCastFlags)) &&
  12939. (!CanCast(GetFakeTypedValue(returnType), underlyingType, implicitCastFlags)))
  12940. {
  12941. // Can do
  12942. }
  12943. else
  12944. doCall = false;
  12945. }
  12946. }
  12947. // Check underlying->typedPrimitive cast
  12948. if ((explicitCast) && (toType->IsTypedPrimitive()))
  12949. {
  12950. auto underlyingType = toType->GetUnderlyingType();
  12951. if ((paramType == underlyingType) && (explicitCast))
  12952. {
  12953. doCall = false;
  12954. }
  12955. else if (CanCast(typedVal, underlyingType, (BfCastFlags)(castFlags | BfCastFlags_NoConversionOperator)))
  12956. {
  12957. float underlyingCanCast = CanCast(typedVal, underlyingType, implicitCastFlags);
  12958. float paramCanCast = CanCast(typedVal, paramType, implicitCastFlags);
  12959. if ((underlyingType) &&
  12960. (!paramCanCast))
  12961. {
  12962. doCall = false;
  12963. }
  12964. else if ((paramCanCast) &&
  12965. (!underlyingCanCast))
  12966. {
  12967. // Can do
  12968. }
  12969. else if ((CanCast(GetFakeTypedValue(underlyingType), paramType, implicitCastFlags)) &&
  12970. (!CanCast(GetFakeTypedValue(paramType), underlyingType, implicitCastFlags)))
  12971. {
  12972. // Can do
  12973. }
  12974. else
  12975. doCall = false;
  12976. }
  12977. }
  12978. if (doCall)
  12979. {
  12980. if (!silentFail)
  12981. methodMatcher.FlushAmbiguityError();
  12982. auto wantType = paramType;
  12983. if (wantType->IsRef())
  12984. wantType = wantType->GetUnderlyingType();
  12985. auto convTypedVal = methodMatcher.mArguments[0].mTypedValue;
  12986. if (wantType != convTypedVal.mType)
  12987. {
  12988. if ((convTypedVal.mType->IsWrappableType()) && (wantType == GetWrappedStructType(convTypedVal.mType)))
  12989. {
  12990. convTypedVal = MakeAddressable(convTypedVal);
  12991. if (convTypedVal.mType->IsValuelessType())
  12992. {
  12993. methodMatcher.mArguments[0].mTypedValue = GetDefaultTypedValue(paramType, false, paramType->IsRef() ? BfDefaultValueKind_Value : BfDefaultValueKind_Addr);
  12994. }
  12995. else
  12996. {
  12997. methodMatcher.mArguments[0].mTypedValue = BfTypedValue(mBfIRBuilder->CreateBitCast(convTypedVal.mValue, mBfIRBuilder->MapTypeInstPtr(wantType->ToTypeInstance())),
  12998. paramType, paramType->IsRef() ? BfTypedValueKind_Value : BfTypedValueKind_Addr);
  12999. }
  13000. }
  13001. else
  13002. {
  13003. methodMatcher.mArguments[0].mTypedValue = Cast(srcNode, convTypedVal, wantType, (BfCastFlags)(castFlags | BfCastFlags_Explicit | BfCastFlags_NoConversionOperator));
  13004. if (paramType->IsRef())
  13005. {
  13006. convTypedVal = MakeAddressable(convTypedVal);
  13007. convTypedVal.mKind = BfTypedValueKind_Addr;
  13008. }
  13009. }
  13010. }
  13011. }
  13012. }
  13013. if (doCall)
  13014. {
  13015. if ((castFlags & BfCastFlags_IsCastCheck) != 0)
  13016. {
  13017. // We've already verified that we can cast from the return type to toType in MethodMatcher.CheckMethod
  13018. return mBfIRBuilder->GetFakeVal();
  13019. }
  13020. result = exprEvaluator.CreateCall(&methodMatcher, BfTypedValue());
  13021. if (result.mType != toType)
  13022. return CastToValue(srcNode, result, toType, (BfCastFlags)(castFlags | BfCastFlags_Explicit | BfCastFlags_NoConversionOperator), resultFlags);
  13023. if (result)
  13024. {
  13025. if (resultFlags != NULL)
  13026. {
  13027. if (result.IsAddr())
  13028. *resultFlags = (BfCastResultFlags)(*resultFlags | BfCastResultFlags_IsAddr);
  13029. if (result.mKind == BfTypedValueKind_TempAddr)
  13030. *resultFlags = (BfCastResultFlags)(*resultFlags | BfCastResultFlags_IsTemp);
  13031. }
  13032. else if (result.IsAddr())
  13033. result = LoadValue(result);
  13034. return result.mValue;
  13035. }
  13036. }
  13037. }
  13038. }
  13039. // Default typed primitive 'underlying casts' happen after checking cast operators
  13040. if (explicitCast)
  13041. {
  13042. // TypedPrimitive -> Primitive
  13043. if ((typedVal.mType->IsTypedPrimitive()) && (!typedVal.mType->IsFunction()) && (toType->IsPrimitiveType()))
  13044. {
  13045. auto fromTypedPrimitiveType = typedVal.mType->ToTypeInstance();
  13046. auto primTypedVal = BfTypedValue(typedVal.mValue, fromTypedPrimitiveType->mFieldInstances.back().mResolvedType, typedVal.IsAddr());
  13047. primTypedVal = LoadValue(primTypedVal);
  13048. if ((typedVal.mType->IsEnum()) && (primTypedVal.IsValuelessType()))
  13049. {
  13050. // For enums with <= 1 member, fake an int8(0) instead of a void
  13051. primTypedVal = GetDefaultTypedValue(GetPrimitiveType(BfTypeCode_Int8));
  13052. }
  13053. return CastToValue(srcNode, primTypedVal, toType, castFlags);
  13054. }
  13055. // TypedPrimitive -> TypedPrimitive
  13056. if ((typedVal.mType->IsTypedPrimitive()) && (!typedVal.mType->IsFunction()) && (toType->IsTypedPrimitive()))
  13057. {
  13058. auto fromTypedPrimitiveType = typedVal.mType->ToTypeInstance();
  13059. auto toTypedPrimitiveType = toType->ToTypeInstance();
  13060. auto fromUnderlyingType = fromTypedPrimitiveType->GetUnderlyingType();
  13061. auto toUnderlyingType = toTypedPrimitiveType->GetUnderlyingType();
  13062. BfTypedValue underlyingTypedValue(typedVal.mValue, fromUnderlyingType, typedVal.IsAddr());
  13063. underlyingTypedValue = LoadValue(underlyingTypedValue);
  13064. BfIRValue castedToValue = CastToValue(srcNode, underlyingTypedValue, toUnderlyingType, (BfCastFlags)(castFlags | BfCastFlags_Explicit));
  13065. if (castedToValue)
  13066. return castedToValue;
  13067. }
  13068. }
  13069. else if ((typedVal.mType->IsTypedPrimitive()) && (toType->IsTypedPrimitive()))
  13070. {
  13071. if (TypeIsSubTypeOf(typedVal.mType->ToTypeInstance(), toType->ToTypeInstance()))
  13072. {
  13073. // These have the same underlying primitive type, just keep it all the same
  13074. if ((resultFlags != NULL) && (typedVal.IsAddr()))
  13075. *resultFlags = BfCastResultFlags_IsAddr;
  13076. return typedVal.mValue;
  13077. }
  13078. }
  13079. // Prim -> TypedPrimitive
  13080. if ((typedVal.mType->IsPrimitiveType()) && (toType->IsTypedPrimitive()))
  13081. {
  13082. bool allowCast = explicitCast;
  13083. if (toType == mCurTypeInstance)
  13084. allowCast = true;
  13085. if ((!allowCast) && (typedVal.mType->IsIntegral()) /*&& (!toType->IsEnum())*/)
  13086. {
  13087. // Allow implicit cast of zero
  13088. auto constant = mBfIRBuilder->GetConstant(typedVal.mValue);
  13089. if ((constant != NULL) && (mBfIRBuilder->IsInt(constant->mTypeCode)))
  13090. {
  13091. allowCast = constant->mInt64 == 0;
  13092. }
  13093. }
  13094. if (allowCast)
  13095. {
  13096. return CastToValue(srcNode, typedVal, toType->GetUnderlyingType(), castFlags);
  13097. }
  13098. }
  13099. if (typedVal.mType->IsBoxed())
  13100. {
  13101. BfBoxedType* boxedType = (BfBoxedType*)typedVal.mType;
  13102. if (boxedType->mElementType->IsGenericParam())
  13103. {
  13104. // If we have a boxed generic param, the actual available interfaces constraints won't be
  13105. // handled, so we need to pass through again as the root generic param
  13106. BfTypedValue unboxedValue = typedVal;
  13107. unboxedValue.mType = boxedType->mElementType;
  13108. auto result = CastToValue(srcNode, unboxedValue, toType, (BfCastFlags)(castFlags | BfCastFlags_SilentFail), resultFlags);
  13109. if (result)
  13110. return result;
  13111. }
  13112. }
  13113. if ((mayBeBox) && ((castFlags & BfCastFlags_NoBox) == 0))
  13114. {
  13115. BfScopeData* scopeData = NULL;
  13116. if (mCurMethodState != NULL)
  13117. {
  13118. if (mCurMethodState->mOverrideScope)
  13119. scopeData = mCurMethodState->mOverrideScope;
  13120. else
  13121. scopeData = mCurMethodState->mCurScope;
  13122. }
  13123. if ((castFlags & BfCastFlags_WarnOnBox) != 0)
  13124. {
  13125. Warn(0, "This implicit boxing will only be in scope during the constructor. Consider using a longer-term allocation such as 'box new'", srcNode);
  13126. }
  13127. SetAndRestoreValue<bool> prevIgnoreWrites(mBfIRBuilder->mIgnoreWrites, ignoreWrites);
  13128. auto value = BoxValue(srcNode, typedVal, toType, scopeData, castFlags);
  13129. if (value)
  13130. return value.mValue;
  13131. }
  13132. if (!ignoreErrors)
  13133. {
  13134. const char* errStrF = explicitCast ?
  13135. "Unable to cast '%s' to '%s'" :
  13136. "Unable to implicitly cast '%s' to '%s'";
  13137. if ((castFlags & BfCastFlags_FromComptimeReturn) != 0)
  13138. errStrF = "Comptime return unable to cast '%s' to '%s'";
  13139. String errStr = StrFormat(errStrF, TypeToString(typedVal.mType).c_str(), TypeToString(toType).c_str());
  13140. auto error = Fail(errStr, srcNode);
  13141. if ((error != NULL) && (srcNode != NULL))
  13142. {
  13143. if ((mCompiler->IsAutocomplete()) && (mCompiler->mResolvePassData->mAutoComplete->CheckFixit((srcNode))))
  13144. {
  13145. SetAndRestoreValue<bool> ignoreWrites(mBfIRBuilder->mIgnoreWrites);
  13146. SetAndRestoreValue<bool> ignoreErrors(mIgnoreErrors, true);
  13147. if (CastToValue(srcNode, typedVal, toType, (BfCastFlags)(BfCastFlags_Explicit | BfCastFlags_SilentFail)))
  13148. {
  13149. bool doWrap = false;
  13150. if (auto unaryOpExpr = BfNodeDynCast<BfUnaryOperatorExpression>(srcNode))
  13151. {
  13152. if ((unaryOpExpr->mOp != BfUnaryOp_AddressOf) && (unaryOpExpr->mOp != BfUnaryOp_Dereference))
  13153. doWrap = true;
  13154. }
  13155. if ((srcNode->IsA<BfCastExpression>()) ||
  13156. (srcNode->IsA<BfBinaryOperatorExpression>()) ||
  13157. (srcNode->IsA<BfConditionalExpression>()))
  13158. doWrap = true;
  13159. BfParserData* parser = srcNode->GetSourceData()->ToParserData();
  13160. String typeName = TypeToString(toType);
  13161. if (doWrap)
  13162. {
  13163. mCompiler->mResolvePassData->mAutoComplete->AddEntry(AutoCompleteEntry("fixit",
  13164. StrFormat("(%s)\tcast|%s|%d|(%s)(|`%d|)", typeName.c_str(), parser->mFileName.c_str(), srcNode->GetSrcStart(), typeName.c_str(), srcNode->GetSrcLength()).c_str()));
  13165. }
  13166. else
  13167. {
  13168. mCompiler->mResolvePassData->mAutoComplete->AddEntry(AutoCompleteEntry("fixit",
  13169. StrFormat("(%s)\tcast|%s|%d|(%s)", typeName.c_str(), parser->mFileName.c_str(), srcNode->GetSrcStart(), typeName.c_str()).c_str()));
  13170. }
  13171. }
  13172. }
  13173. }
  13174. }
  13175. else if (!silentFail)
  13176. SetFail();
  13177. return BfIRValue();
  13178. }
  13179. BfTypedValue BfModule::Cast(BfAstNode* srcNode, const BfTypedValue& typedVal, BfType* toType, BfCastFlags castFlags)
  13180. {
  13181. bool explicitCast = (castFlags & BfCastFlags_Explicit) != 0;
  13182. if (typedVal.mType == toType)
  13183. return typedVal;
  13184. if ((toType->IsSizedArray()) && (typedVal.mType->IsSizedArray()))
  13185. {
  13186. // Retain our type if we're casting from a known-sized array to an unknown-sized arrays
  13187. if ((toType->IsUndefSizedArray()) && ((typedVal.mType->GetUnderlyingType()) == (toType->GetUnderlyingType())))
  13188. {
  13189. return typedVal;
  13190. }
  13191. }
  13192. if ((castFlags & BfCastFlags_Force) != 0)
  13193. {
  13194. PopulateType(toType, BfPopulateType_Data);
  13195. if (toType->IsValuelessType())
  13196. return BfTypedValue(mBfIRBuilder->GetFakeVal(), toType);
  13197. if ((typedVal.mType->IsValueType()) && (!typedVal.IsAddr()) && (typedVal.IsSplat()) && (toType->IsValueType()))
  13198. {
  13199. bool needsMemberCasting = false;
  13200. if (AreSplatsCompatible(typedVal.mType, toType, &needsMemberCasting))
  13201. {
  13202. return BfTypedValue(typedVal.mValue, toType, needsMemberCasting ? BfTypedValueKind_SplatHead_NeedsCasting : BfTypedValueKind_SplatHead);
  13203. }
  13204. }
  13205. if (typedVal.mType->IsValueType())
  13206. {
  13207. auto addrTypedValue = MakeAddressable(typedVal);
  13208. auto toPtrType = CreatePointerType(toType);
  13209. return BfTypedValue(mBfIRBuilder->CreateBitCast(addrTypedValue.mValue, mBfIRBuilder->MapType(toPtrType)), toType, BfTypedValueKind_Addr);
  13210. }
  13211. return BfTypedValue(mBfIRBuilder->CreateBitCast(typedVal.mValue, mBfIRBuilder->MapType(toType)), toType);
  13212. }
  13213. // This tuple cast may create a new type if the toType contains 'var' entries
  13214. if ((typedVal.mType->IsTuple()) && (toType->IsTuple()))
  13215. {
  13216. PopulateType(toType);
  13217. auto fromTupleType = (BfTypeInstance*)typedVal.mType;
  13218. auto toTupleType = (BfTypeInstance*)toType;
  13219. if (fromTupleType == toTupleType)
  13220. return typedVal;
  13221. if (fromTupleType->mFieldInstances.size() == toTupleType->mFieldInstances.size())
  13222. {
  13223. BfTypeVector fieldTypes;
  13224. Array<String> fieldNames;
  13225. bool isCompatible = true;
  13226. bool isExactTypeMatch = true;
  13227. for (int fieldIdx = 0; fieldIdx < (int)fromTupleType->mFieldInstances.size(); fieldIdx++)
  13228. {
  13229. auto fromFieldInst = &fromTupleType->mFieldInstances[fieldIdx];
  13230. auto toFieldInst = &toTupleType->mFieldInstances[fieldIdx];
  13231. auto fromFieldDef = fromFieldInst->GetFieldDef();
  13232. auto toFieldDef = toFieldInst->GetFieldDef();
  13233. if (!toFieldDef->IsUnnamedTupleField())
  13234. {
  13235. if ((!explicitCast) &&
  13236. (!fromFieldDef->IsUnnamedTupleField()) &&
  13237. (fromFieldDef->mName != toFieldDef->mName))
  13238. isCompatible = false;
  13239. fieldNames.push_back(toFieldDef->mName);
  13240. }
  13241. else
  13242. fieldNames.push_back("");
  13243. if (toFieldInst->mResolvedType->IsVar())
  13244. fieldTypes.push_back(fromFieldInst->mResolvedType);
  13245. else
  13246. {
  13247. if (fromFieldInst->mResolvedType != toFieldInst->mResolvedType)
  13248. isExactTypeMatch = false;
  13249. BfCastFlags tryCastFlags = BfCastFlags_SilentFail;
  13250. if (explicitCast)
  13251. tryCastFlags = (BfCastFlags)(tryCastFlags | BfCastFlags_Explicit);
  13252. // The unused-token '?' comes out as 'void', so we allow that to match here. We may want to wrap that with a different fake type
  13253. // so we can give normal implicit-cast-to-void errors
  13254. if ((fromFieldInst->mResolvedType != toFieldInst->mResolvedType) && (!toFieldInst->mResolvedType->IsVoid()) &&
  13255. (!CanCast(GetFakeTypedValue(fromFieldInst->mResolvedType), toFieldInst->mResolvedType, tryCastFlags)))
  13256. isCompatible = false;
  13257. fieldTypes.push_back(toFieldInst->mResolvedType);
  13258. }
  13259. }
  13260. auto tupleType = CreateTupleType(fieldTypes, fieldNames);
  13261. AddDependency(tupleType, mCurTypeInstance, BfDependencyMap::DependencyFlag_ReadFields);
  13262. mBfIRBuilder->PopulateType(tupleType);
  13263. if (isCompatible)
  13264. {
  13265. if (isExactTypeMatch)
  13266. {
  13267. if (typedVal.mKind == BfTypedValueKind_TempAddr)
  13268. {
  13269. return BfTypedValue(mBfIRBuilder->CreateBitCast(typedVal.mValue, mBfIRBuilder->MapTypeInstPtr(tupleType)), tupleType, BfTypedValueKind_TempAddr);
  13270. }
  13271. else if (typedVal.IsAddr())
  13272. {
  13273. return BfTypedValue(mBfIRBuilder->CreateBitCast(typedVal.mValue, mBfIRBuilder->MapTypeInstPtr(tupleType)), tupleType, BfTypedValueKind_ReadOnlyAddr);
  13274. }
  13275. else if (typedVal.IsSplat())
  13276. {
  13277. BfTypedValue retTypedValue = typedVal;
  13278. retTypedValue.mType = tupleType;
  13279. return retTypedValue;
  13280. }
  13281. BfIRValue curTupleValue = CreateAlloca(tupleType);
  13282. auto loadedVal = LoadValue(typedVal);
  13283. FixValueActualization(loadedVal);
  13284. mBfIRBuilder->CreateStore(loadedVal.mValue, mBfIRBuilder->CreateBitCast(curTupleValue, mBfIRBuilder->MapTypeInstPtr(fromTupleType)));
  13285. return BfTypedValue(curTupleValue, tupleType, BfTypedValueKind_TempAddr);
  13286. }
  13287. BfIRValue curTupleValue = CreateAlloca(tupleType);
  13288. for (int fieldIdx = 0; fieldIdx < (int)fromTupleType->mFieldInstances.size(); fieldIdx++)
  13289. {
  13290. BfFieldInstance* fromFieldInstance = &fromTupleType->mFieldInstances[fieldIdx];
  13291. BfFieldInstance* toFieldInstance = &tupleType->mFieldInstances[fieldIdx];
  13292. if (toFieldInstance->mDataIdx >= 0)
  13293. {
  13294. if (fromFieldInstance->mDataIdx >= 0)
  13295. {
  13296. auto elementVal = ExtractValue(typedVal, fromFieldInstance, fromFieldInstance->mDataIdx);
  13297. elementVal = LoadValue(elementVal);
  13298. auto castedElementVal = Cast(srcNode, elementVal, toFieldInstance->GetResolvedType(), castFlags);
  13299. if (!castedElementVal)
  13300. return BfTypedValue();
  13301. auto fieldRef = mBfIRBuilder->CreateInBoundsGEP(curTupleValue, 0, toFieldInstance->mDataIdx);
  13302. castedElementVal = LoadValue(castedElementVal);
  13303. mBfIRBuilder->CreateStore(castedElementVal.mValue, fieldRef);
  13304. }
  13305. else
  13306. isCompatible = false;
  13307. }
  13308. }
  13309. return BfTypedValue(curTupleValue, tupleType, BfTypedValueKind_TempAddr);
  13310. }
  13311. }
  13312. const char* errStr = explicitCast ?
  13313. "Unable to cast '%s' to '%s'" :
  13314. "Unable to implicitly cast '%s' to '%s'";
  13315. Fail(StrFormat(errStr, TypeToString(typedVal.mType).c_str(), TypeToString(toType).c_str()), srcNode);
  13316. return BfTypedValue();
  13317. }
  13318. // Function->Function and Delegate->Delegate where type is compatible but not exact
  13319. if (((typedVal.mType->IsDelegate()) || (typedVal.mType->IsFunction())) &&
  13320. (typedVal.mType != toType) && // Don't bother to check for exact match, let CastToValue handle this
  13321. ((typedVal.mType->IsDelegate()) == (toType->IsDelegate())) &&
  13322. ((typedVal.mType->IsFunction()) == (toType->IsFunction())))
  13323. {
  13324. auto fromTypeInst = typedVal.mType->ToTypeInstance();
  13325. auto toTypeInst = toType->ToTypeInstance();
  13326. auto fromMethodInst = GetRawMethodByName(fromTypeInst, "Invoke", -1, true);
  13327. auto toMethodInst = GetRawMethodByName(toTypeInst, "Invoke", -1, true);
  13328. auto toDelegateInfo = toTypeInst->GetDelegateInfo();
  13329. if ((fromMethodInst != NULL) && (toMethodInst != NULL) &&
  13330. (fromMethodInst->mCallingConvention == toMethodInst->mCallingConvention) &&
  13331. (fromMethodInst->mMethodDef->mIsMutating == toMethodInst->mMethodDef->mIsMutating) &&
  13332. (fromMethodInst->mReturnType == toMethodInst->mReturnType) &&
  13333. (fromMethodInst->GetParamCount() == toMethodInst->GetParamCount()))
  13334. {
  13335. bool matched = true;
  13336. StringT<64> fromParamName;
  13337. StringT<64> toParamName;
  13338. if (fromMethodInst->HasExplicitThis() != toMethodInst->HasExplicitThis())
  13339. {
  13340. matched = false;
  13341. }
  13342. else
  13343. {
  13344. for (int paramIdx = 0; paramIdx < (int)fromMethodInst->GetParamCount(); paramIdx++)
  13345. {
  13346. bool nameMatches = true;
  13347. if (!explicitCast)
  13348. {
  13349. int fromNamePrefixCount = 0;
  13350. int toNamePrefixCount = 0;
  13351. fromMethodInst->GetParamName(paramIdx, fromParamName, fromNamePrefixCount);
  13352. toMethodInst->GetParamName(paramIdx, toParamName, toNamePrefixCount);
  13353. if ((!fromParamName.IsEmpty()) && (!toParamName.IsEmpty()))
  13354. nameMatches = fromParamName == toParamName;
  13355. }
  13356. if ((fromMethodInst->GetParamKind(paramIdx) == toMethodInst->GetParamKind(paramIdx)) &&
  13357. (fromMethodInst->GetParamType(paramIdx) == toMethodInst->GetParamType(paramIdx)) &&
  13358. (nameMatches))
  13359. {
  13360. // Matched, required for implicit/explicit
  13361. }
  13362. else
  13363. {
  13364. matched = false;
  13365. break;
  13366. }
  13367. }
  13368. }
  13369. if (matched)
  13370. {
  13371. BfTypedValue loadedVal = LoadValue(typedVal);
  13372. return BfTypedValue(mBfIRBuilder->CreateBitCast(loadedVal.mValue, mBfIRBuilder->MapType(toType)), toType);
  13373. }
  13374. }
  13375. }
  13376. // Struct truncate
  13377. if ((typedVal.mType->IsStruct()) && (toType->IsStruct()))
  13378. {
  13379. auto fromStructTypeInstance = typedVal.mType->ToTypeInstance();
  13380. auto toStructTypeInstance = toType->ToTypeInstance();
  13381. if (TypeIsSubTypeOf(fromStructTypeInstance, toStructTypeInstance))
  13382. {
  13383. if (typedVal.IsSplat())
  13384. {
  13385. if ((!toStructTypeInstance->IsSplattable()) && (toStructTypeInstance->mInstSize != 0))
  13386. return Cast(srcNode, MakeAddressable(typedVal), toType, castFlags);
  13387. BF_ASSERT(toStructTypeInstance->IsSplattable() || (toStructTypeInstance->mInstSize == 0));
  13388. return BfTypedValue(typedVal.mValue, toStructTypeInstance, typedVal.IsThis() ? BfTypedValueKind_ThisSplatHead : BfTypedValueKind_SplatHead);
  13389. }
  13390. if (typedVal.IsAddr())
  13391. {
  13392. BfIRValue castedIRValue;
  13393. if (typedVal.mValue.IsFake())
  13394. castedIRValue = typedVal.mValue;
  13395. else
  13396. castedIRValue = mBfIRBuilder->CreateBitCast(typedVal.mValue, mBfIRBuilder->MapTypeInstPtr(toStructTypeInstance));
  13397. return BfTypedValue(castedIRValue, toType, typedVal.IsThis() ?
  13398. (typedVal.IsReadOnly() ? BfTypedValueKind_ReadOnlyThisAddr : BfTypedValueKind_ThisAddr) :
  13399. (typedVal.IsReadOnly() ? BfTypedValueKind_ReadOnlyAddr : BfTypedValueKind_Addr));
  13400. }
  13401. BfTypedValue curTypedVal = typedVal;
  13402. while (curTypedVal.mType != toStructTypeInstance)
  13403. {
  13404. mBfIRBuilder->PopulateType(curTypedVal.mType);
  13405. auto curTypeInstance = curTypedVal.mType->ToTypeInstance();
  13406. BfIRValue extractedValue;
  13407. if (toStructTypeInstance->IsValuelessType())
  13408. extractedValue = mBfIRBuilder->GetFakeVal();
  13409. else
  13410. extractedValue = mBfIRBuilder->CreateExtractValue(curTypedVal.mValue, 0);
  13411. curTypedVal = BfTypedValue(extractedValue, curTypeInstance->mBaseType, typedVal.IsThis() ?
  13412. (typedVal.IsReadOnly() ? BfTypedValueKind_ReadOnlyThisValue : BfTypedValueKind_ThisValue) :
  13413. BfTypedValueKind_Value);
  13414. }
  13415. return curTypedVal;
  13416. }
  13417. }
  13418. /*if ((explicitCast) && (toType->IsValuelessType()))
  13419. {
  13420. return BfTypedValue(mBfIRBuilder->GetFakeVal(), toType);
  13421. }*/
  13422. BfCastResultFlags castResultFlags = BfCastResultFlags_None;
  13423. if ((typedVal.IsParams()) && (toType->IsParamsType()))
  13424. {
  13425. if (typedVal.mType == toType->GetUnderlyingType())
  13426. return BfTypedValue(mBfIRBuilder->GetFakeVal(), toType);
  13427. }
  13428. auto castedValue = CastToValue(srcNode, typedVal, toType, castFlags, &castResultFlags);
  13429. if (!castedValue)
  13430. return BfTypedValue();
  13431. if ((castResultFlags & BfCastResultFlags_IsAddr) != 0)
  13432. {
  13433. if ((castResultFlags & BfCastResultFlags_IsTemp) != 0)
  13434. return BfTypedValue(castedValue, toType, BfTypedValueKind_TempAddr);
  13435. return BfTypedValue(castedValue, toType, BfTypedValueKind_Addr);
  13436. }
  13437. return BfTypedValue(castedValue, toType, BfTypedValueKind_Value);
  13438. }
  13439. BfPrimitiveType* BfModule::GetIntCoercibleType(BfType* type)
  13440. {
  13441. if (type->IsSizedArray())
  13442. {
  13443. auto sizedArray = (BfSizedArrayType*)type;
  13444. if ((sizedArray->mElementType->IsChar()) && (sizedArray->mElementType->mSize == 1))
  13445. {
  13446. auto primType = (BfPrimitiveType*)sizedArray->mElementType;
  13447. if (sizedArray->mElementCount == 1)
  13448. return GetPrimitiveType(BfTypeCode_UInt8);
  13449. if (sizedArray->mElementCount == 2)
  13450. return GetPrimitiveType(BfTypeCode_UInt16);
  13451. if (sizedArray->mElementCount == 4)
  13452. return GetPrimitiveType(BfTypeCode_UInt32);
  13453. if (sizedArray->mElementCount == 8)
  13454. return GetPrimitiveType(BfTypeCode_UInt64);
  13455. }
  13456. }
  13457. return NULL;
  13458. }
  13459. BfTypedValue BfModule::GetIntCoercible(const BfTypedValue& typedValue)
  13460. {
  13461. auto intType = GetIntCoercibleType(typedValue.mType);
  13462. if (intType == NULL)
  13463. return BfTypedValue();
  13464. if (typedValue.mValue.IsConst())
  13465. {
  13466. auto constant = mBfIRBuilder->GetConstant(typedValue.mValue);
  13467. if (constant->mConstType == BfConstType_Agg)
  13468. {
  13469. uint64 intVal = 0;
  13470. auto constantArray = (BfConstantAgg*)constant;
  13471. int memberIdx = 0;
  13472. for (int memberIdx = 0; memberIdx < (int)constantArray->mValues.size(); memberIdx++)
  13473. {
  13474. auto memberConstant = mBfIRBuilder->GetConstant(constantArray->mValues[memberIdx]);
  13475. if (memberConstant->mTypeCode == BfTypeCode_Char8)
  13476. {
  13477. intVal |= (uint64)(memberConstant->mUInt8) << (8 * memberIdx);
  13478. //intVal = (intVal << 8) | memberConstant->mUInt8;
  13479. }
  13480. }
  13481. return BfTypedValue(mBfIRBuilder->CreateConst(intType->mTypeDef->mTypeCode, intVal), intType);
  13482. }
  13483. }
  13484. auto convTypedValue = typedValue;
  13485. convTypedValue = MakeAddressable(convTypedValue);
  13486. auto intPtrType = CreatePointerType(intType);
  13487. auto addrVal = mBfIRBuilder->CreateBitCast(convTypedValue.mValue, mBfIRBuilder->MapType(intPtrType));
  13488. auto val = mBfIRBuilder->CreateLoad(addrVal);
  13489. return BfTypedValue(val, intType);
  13490. }
  13491. bool BfModule::TypeHasParentOrEquals(BfTypeDef* checkChildTypeDef, BfTypeDef* checkParentTypeDef)
  13492. {
  13493. BfTypeDef* checkType = checkChildTypeDef;
  13494. if (checkType->mNestDepth < checkParentTypeDef->mNestDepth)
  13495. return false;
  13496. while (checkType->mNestDepth > checkParentTypeDef->mNestDepth)
  13497. checkType = checkType->mOuterType;
  13498. if (checkType->GetDefinition() == checkParentTypeDef->GetDefinition())
  13499. return true;
  13500. if (checkType->mNameEx != checkParentTypeDef->mNameEx)
  13501. return false;
  13502. if (checkType->mIsPartial)
  13503. {
  13504. for (auto partial : checkParentTypeDef->mPartials)
  13505. if (partial == checkType)
  13506. return true;
  13507. }
  13508. return false;
  13509. }
  13510. BfTypeDef* BfModule::FindCommonOuterType(BfTypeDef* type, BfTypeDef* type2)
  13511. {
  13512. if ((type == NULL) || (type2 == NULL))
  13513. return NULL;
  13514. int curNestDepth = BF_MIN(type->mNestDepth, type2->mNestDepth);
  13515. while (type->mNestDepth > curNestDepth)
  13516. type = type->mOuterType;
  13517. while (type2->mNestDepth > curNestDepth)
  13518. type2 = type2->mOuterType;
  13519. while (curNestDepth >= 0)
  13520. {
  13521. if ((!type->mIsPartial) && (!type2->mIsPartial))
  13522. {
  13523. if (type->GetDefinition() == type2->GetDefinition())
  13524. return type;
  13525. }
  13526. else
  13527. {
  13528. if (type->mFullNameEx == type2->mFullNameEx)
  13529. return type;
  13530. }
  13531. type = type->mOuterType;
  13532. type2 = type2->mOuterType;
  13533. curNestDepth--;
  13534. }
  13535. return NULL;
  13536. }
  13537. bool BfModule::TypeIsSubTypeOf(BfTypeInstance* srcType, BfTypeInstance* wantType, bool checkAccessibility)
  13538. {
  13539. if ((srcType == NULL) || (wantType == NULL))
  13540. return false;
  13541. if (srcType == wantType)
  13542. return true;
  13543. if (srcType->mDefineState < BfTypeDefineState_HasInterfaces_Direct)
  13544. {
  13545. if (srcType->mDefineState == BfTypeDefineState_ResolvingBaseType)
  13546. {
  13547. auto typeState = mContext->mCurTypeState;
  13548. while (typeState != NULL)
  13549. {
  13550. if ((typeState->mType == srcType) && (typeState->mCurBaseType != NULL))
  13551. {
  13552. return TypeIsSubTypeOf(typeState->mCurBaseType, wantType, checkAccessibility);
  13553. }
  13554. typeState = typeState->mPrevState;
  13555. }
  13556. }
  13557. // Type is incomplete. We don't do the IsIncomplete check here because of re-entry
  13558. // While handling 'var' resolution, we don't want to force a PopulateType reentry
  13559. // but we do have enough information for TypeIsSubTypeOf
  13560. PopulateType(srcType, BfPopulateType_Interfaces_Direct);
  13561. }
  13562. if (wantType->IsInterface())
  13563. {
  13564. if (wantType->mDefineState < BfTypeDefineState_HasInterfaces_All)
  13565. PopulateType(srcType, BfPopulateType_Interfaces_All);
  13566. BfTypeDef* checkActiveTypeDef = NULL;
  13567. bool checkAccessibility = true;
  13568. if (IsInSpecializedSection())
  13569. {
  13570. // When we have a specialized section, the generic params may not be considered "included"
  13571. // in the module that contains the generic type definition. We rely on any casting errors
  13572. // to be thrown on the unspecialized type pass. We have a similar issue with injecting mixins.
  13573. checkAccessibility = false;
  13574. }
  13575. auto checkType = srcType;
  13576. while (checkType != NULL)
  13577. {
  13578. for (auto ifaceInst : checkType->mInterfaces)
  13579. {
  13580. if (ifaceInst.mInterfaceType == wantType)
  13581. {
  13582. if (checkAccessibility)
  13583. {
  13584. if (checkActiveTypeDef == NULL)
  13585. checkActiveTypeDef = GetActiveTypeDef(NULL, false, true);
  13586. // We need to be lenient when validating generic constraints
  13587. // Otherwise "T<A> where T : IB" declared in a lib won't be able to match a type B in a using project 'C',
  13588. // because this check will see the lib using 'C', which it won't consider visible
  13589. if ((checkActiveTypeDef != NULL) &&
  13590. ((mCurMethodInstance != NULL) && (mContext->mCurTypeState != NULL) && (mContext->mCurTypeState->mResolveKind != BfTypeState::ResolveKind_BuildingGenericParams)))
  13591. {
  13592. if ((!srcType->IsTypeMemberAccessible(ifaceInst.mDeclaringType, checkActiveTypeDef)) ||
  13593. (!srcType->IsTypeMemberIncluded(ifaceInst.mDeclaringType, checkActiveTypeDef, this)))
  13594. {
  13595. continue;
  13596. }
  13597. }
  13598. }
  13599. return true;
  13600. }
  13601. }
  13602. checkType = checkType->GetImplBaseType();
  13603. if ((checkType != NULL) && (checkType->mDefineState < BfTypeDefineState_CETypeInit))
  13604. {
  13605. // We check BfTypeDefineState_CETypeInit so we don't cause a populate loop during interface checking during CETypeInit
  13606. PopulateType(checkType, BfPopulateType_Interfaces_All);
  13607. }
  13608. }
  13609. if (srcType->IsTypedPrimitive())
  13610. {
  13611. BfType* underlyingType = srcType->GetUnderlyingType();
  13612. if (underlyingType->IsWrappableType())
  13613. {
  13614. BfTypeInstance* wrappedType = GetWrappedStructType(underlyingType);
  13615. if ((wrappedType != NULL) && (wrappedType != srcType))
  13616. return TypeIsSubTypeOf(wrappedType, wantType, checkAccessibility);
  13617. }
  13618. }
  13619. return false;
  13620. }
  13621. auto srcBaseType = srcType->mBaseType;
  13622. return TypeIsSubTypeOf(srcBaseType, wantType);
  13623. }
  13624. bool BfModule::TypeIsSubTypeOf(BfTypeInstance* srcType, BfTypeDef* wantType)
  13625. {
  13626. if ((srcType == NULL) || (wantType == NULL))
  13627. return false;
  13628. if (srcType->IsInstanceOf(wantType))
  13629. return true;
  13630. if (srcType->mDefineState < BfTypeDefineState_HasInterfaces_Direct)
  13631. {
  13632. if (srcType->mDefineState == BfTypeDefineState_ResolvingBaseType)
  13633. {
  13634. auto typeState = mContext->mCurTypeState;
  13635. while (typeState != NULL)
  13636. {
  13637. if ((typeState->mType == srcType) && (typeState->mCurBaseType != NULL))
  13638. {
  13639. return TypeIsSubTypeOf(typeState->mCurBaseType, wantType);
  13640. }
  13641. typeState = typeState->mPrevState;
  13642. }
  13643. }
  13644. // Type is incomplete. We don't do the IsIncomplete check here because of re-entry
  13645. // While handling 'var' resolution, we don't want to force a PopulateType reentry
  13646. // but we do have enough information for TypeIsSubTypeOf
  13647. PopulateType(srcType, BfPopulateType_Interfaces_Direct);
  13648. }
  13649. if (wantType->mTypeCode == BfTypeCode_Interface)
  13650. {
  13651. if (srcType->mDefineState < BfTypeDefineState_HasInterfaces_All)
  13652. PopulateType(srcType, BfPopulateType_Interfaces_All);
  13653. BfTypeDef* checkActiveTypeDef = NULL;
  13654. auto checkType = srcType;
  13655. while (checkType != NULL)
  13656. {
  13657. for (auto ifaceInst : checkType->mInterfaces)
  13658. {
  13659. if (ifaceInst.mInterfaceType->IsInstanceOf(wantType))
  13660. return true;
  13661. }
  13662. checkType = checkType->GetImplBaseType();
  13663. if ((checkType != NULL) && (checkType->mDefineState < BfTypeDefineState_HasInterfaces_All))
  13664. {
  13665. PopulateType(checkType, BfPopulateType_Interfaces_All);
  13666. }
  13667. }
  13668. if (srcType->IsTypedPrimitive())
  13669. {
  13670. BfType* underlyingType = srcType->GetUnderlyingType();
  13671. if (underlyingType->IsWrappableType())
  13672. {
  13673. BfTypeInstance* wrappedType = GetWrappedStructType(underlyingType);
  13674. if ((wrappedType != NULL) && (wrappedType != srcType))
  13675. return TypeIsSubTypeOf(wrappedType, wantType);
  13676. }
  13677. }
  13678. return false;
  13679. }
  13680. auto srcBaseType = srcType->mBaseType;
  13681. return TypeIsSubTypeOf(srcBaseType, wantType);
  13682. }
  13683. // Positive value means that toType encompasses fromType, negative value means toType is encompassed by formType
  13684. // INT_MAX means the types are not related
  13685. int BfModule::GetTypeDistance(BfType* fromType, BfType* toType)
  13686. {
  13687. if (fromType == toType)
  13688. return 0;
  13689. if (fromType->IsPrimitiveType())
  13690. {
  13691. if (!toType->IsPrimitiveType())
  13692. return INT_MAX;
  13693. auto fromPrimType = (BfPrimitiveType*)fromType;
  13694. auto toPrimType = (BfPrimitiveType*)toType;
  13695. if ((fromPrimType->IsIntegral()) && (toPrimType->IsIntegral()))
  13696. {
  13697. int fromBitSize = fromPrimType->mSize * 8;
  13698. if (fromPrimType->IsSigned())
  13699. fromBitSize--;
  13700. int toBitSize = toPrimType->mSize * 8;
  13701. if (toPrimType->IsSigned())
  13702. toBitSize--;
  13703. return fromBitSize - toBitSize;
  13704. }
  13705. if ((fromPrimType->IsFloat()) && (toPrimType->IsFloat()))
  13706. {
  13707. return (fromPrimType->mSize * 8) - (toPrimType->mSize * 8);
  13708. }
  13709. if (((fromPrimType->IsIntegral()) || (fromPrimType->IsFloat())) &&
  13710. ((toPrimType->IsIntegral()) || (toPrimType->IsFloat())))
  13711. {
  13712. int sizeDiff = (fromPrimType->mSize * 8) - (toPrimType->mSize * 8);
  13713. if (sizeDiff < 0)
  13714. sizeDiff--;
  13715. else
  13716. sizeDiff++;
  13717. return sizeDiff;
  13718. }
  13719. return INT_MAX;
  13720. }
  13721. auto fromTypeInstance = fromType->ToTypeInstance();
  13722. auto toTypeInstance = toType->ToTypeInstance();
  13723. if ((fromTypeInstance != NULL) != (toTypeInstance != NULL))
  13724. return INT_MAX; // Ever valid?
  13725. if ((fromTypeInstance != NULL) && (toTypeInstance != NULL))
  13726. {
  13727. if ((fromTypeInstance->IsNullable()) && (toTypeInstance->IsNullable()))
  13728. return GetTypeDistance(fromTypeInstance->GetUnderlyingType(), toTypeInstance->GetUnderlyingType());
  13729. int inheritDistance = toTypeInstance->mInheritDepth - fromTypeInstance->mInheritDepth;
  13730. auto mostSpecificInstance = (inheritDistance < 0) ? fromTypeInstance : toTypeInstance;
  13731. auto leastSpecificInstance = (inheritDistance < 0) ? toTypeInstance : fromTypeInstance;
  13732. while (mostSpecificInstance != NULL)
  13733. {
  13734. if (mostSpecificInstance == leastSpecificInstance)
  13735. return inheritDistance;
  13736. mostSpecificInstance = mostSpecificInstance->mBaseType;
  13737. }
  13738. }
  13739. return INT_MAX;
  13740. }
  13741. bool BfModule::IsTypeMoreSpecific(BfType* leftType, BfType* rightType)
  13742. {
  13743. if (leftType->IsGenericTypeInstance())
  13744. {
  13745. if (!rightType->IsGenericTypeInstance())
  13746. return true;
  13747. auto leftGenericType = (BfTypeInstance*)leftType;
  13748. auto rightGenericType = (BfTypeInstance*)rightType;
  13749. if (leftGenericType->mTypeDef != rightGenericType->mTypeDef)
  13750. return false;
  13751. bool isBetter = false;
  13752. bool isWorse = false;
  13753. for (int argIdx = 0; argIdx < (int)leftGenericType->mGenericTypeInfo->mTypeGenericArguments.size(); argIdx++)
  13754. {
  13755. if (IsTypeMoreSpecific(leftGenericType->mGenericTypeInfo->mTypeGenericArguments[argIdx], rightGenericType->mGenericTypeInfo->mTypeGenericArguments[argIdx]))
  13756. isBetter = true;
  13757. if (IsTypeMoreSpecific(rightGenericType->mGenericTypeInfo->mTypeGenericArguments[argIdx], leftGenericType->mGenericTypeInfo->mTypeGenericArguments[argIdx]))
  13758. isWorse = true;
  13759. }
  13760. return (isBetter) && (!isWorse);
  13761. }
  13762. return false;
  13763. }
  13764. StringT<128> BfModule::TypeToString(BfType* resolvedType, Array<String>* genericMethodParamNameOverrides)
  13765. {
  13766. BfTypeNameFlags flags = BfTypeNameFlags_None;
  13767. if ((mCurTypeInstance == NULL) || (!mCurTypeInstance->IsUnspecializedTypeVariation()))
  13768. flags = BfTypeNameFlag_ResolveGenericParamNames;
  13769. StringT<128> str;
  13770. DoTypeToString(str, resolvedType, flags, genericMethodParamNameOverrides);
  13771. return str;
  13772. }
  13773. StringT<128> BfModule::TypeToString(BfType* resolvedType, BfTypeNameFlags typeNameFlags, Array<String>* genericMethodParamNameOverrides)
  13774. {
  13775. StringT<128> str;
  13776. DoTypeToString(str, resolvedType, typeNameFlags, genericMethodParamNameOverrides);
  13777. return str;
  13778. }
  13779. void BfModule::DataToString(StringImpl& str, void* ptr, BfType* type)
  13780. {
  13781. if (type->IsPrimitiveType())
  13782. {
  13783. BfPrimitiveType* primType = (BfPrimitiveType*)type;
  13784. BfTypeCode typeCode = primType->GetTypeCode();
  13785. if (typeCode == BfTypeCode_IntPtr)
  13786. {
  13787. if (mSystem->mPtrSize == 8)
  13788. typeCode = BfTypeCode_Int64;
  13789. else
  13790. typeCode = BfTypeCode_Int32;
  13791. }
  13792. else if (typeCode == BfTypeCode_UIntPtr)
  13793. {
  13794. if (mSystem->mPtrSize == 8)
  13795. typeCode = BfTypeCode_UInt64;
  13796. else
  13797. typeCode = BfTypeCode_UInt32;
  13798. }
  13799. switch (typeCode)
  13800. {
  13801. case BfTypeCode_Boolean:
  13802. if (*(uint8*)ptr == 0)
  13803. str += "false";
  13804. else if (*(uint8*)ptr == 1)
  13805. str += "true";
  13806. else
  13807. str += StrFormat("%d", *(uint8*)ptr);
  13808. break;
  13809. case BfTypeCode_Int8:
  13810. str += StrFormat("%d", *(int8*)ptr);
  13811. break;
  13812. case BfTypeCode_UInt8:
  13813. str += StrFormat("%d", *(uint8*)ptr);
  13814. break;
  13815. case BfTypeCode_Int16:
  13816. str += StrFormat("%d", *(int16*)ptr);
  13817. break;
  13818. case BfTypeCode_UInt16:
  13819. str += StrFormat("%d", *(uint16*)ptr);
  13820. break;
  13821. case BfTypeCode_Int32:
  13822. str += StrFormat("%d", *(int32*)ptr);
  13823. break;
  13824. case BfTypeCode_Char8:
  13825. case BfTypeCode_Char16:
  13826. case BfTypeCode_Char32:
  13827. {
  13828. uint32 c = 0;
  13829. if (typeCode == BfTypeCode_Char8)
  13830. c = *(uint8*)ptr;
  13831. else if (typeCode == BfTypeCode_Char16)
  13832. c = *(uint16*)ptr;
  13833. else if (typeCode == BfTypeCode_Char32)
  13834. c = *(uint32*)ptr;
  13835. if ((c >= 32) && (c <= 0x7E))
  13836. str += StrFormat("'%c'", (char)c);
  13837. else if (c <= 0xFF)
  13838. str += StrFormat("'\\x%2X'", c);
  13839. else
  13840. str += StrFormat("'\\u{%X}'", c);
  13841. }
  13842. break;
  13843. case BfTypeCode_UInt32:
  13844. str += StrFormat("%lu", *(uint32*)ptr);
  13845. break;
  13846. case BfTypeCode_Int64:
  13847. str += StrFormat("%lld", *(int64*)ptr);
  13848. break;
  13849. case BfTypeCode_UInt64:
  13850. str += StrFormat("%llu", *(uint64*)ptr);
  13851. break;
  13852. case BfTypeCode_Float:
  13853. {
  13854. char cstr[64];
  13855. ExactMinimalFloatToStr(*(float*)ptr, cstr);
  13856. str += cstr;
  13857. if (strchr(cstr, '.') == NULL)
  13858. str += ".0f";
  13859. else
  13860. str += "f";
  13861. }
  13862. break;
  13863. case BfTypeCode_Double:
  13864. {
  13865. char cstr[64];
  13866. ExactMinimalDoubleToStr(*(double*)ptr, cstr);
  13867. str += cstr;
  13868. if (strchr(cstr, '.') == NULL)
  13869. str += ".0";
  13870. }
  13871. break;
  13872. case BfTypeCode_StringId:
  13873. {
  13874. int stringId = *(int32*)ptr;
  13875. auto stringPoolEntry = mContext->mStringObjectIdMap[stringId];
  13876. str += '"';
  13877. str += SlashString(stringPoolEntry.mString, false, false, true);
  13878. str += '"';
  13879. }
  13880. break;
  13881. case BfTypeCode_Let:
  13882. str += "?";
  13883. break;
  13884. default: break;
  13885. }
  13886. }
  13887. else
  13888. {
  13889. if (type->IsInstanceOf(mCompiler->mClosedRangeTypeDef))
  13890. {
  13891. if (type->mSize == 16)
  13892. str += StrFormat("%d...%d", ((int64*)ptr)[0], ((int64*)ptr)[1]);
  13893. else
  13894. str += StrFormat("%d...%d", ((int32*)ptr)[0], ((int32*)ptr)[1]);
  13895. return;
  13896. }
  13897. if (type->IsInstanceOf(mCompiler->mRangeTypeDef))
  13898. {
  13899. if (type->mSize == 16)
  13900. str += StrFormat("%d..<%d", ((int64*)ptr)[0], ((int64*)ptr)[1]);
  13901. else
  13902. str += StrFormat("%d..<%d", ((int32*)ptr)[0], ((int32*)ptr)[1]);
  13903. return;
  13904. }
  13905. BfTypeInstance* typeInstance = type->ToTypeInstance();
  13906. if (typeInstance != NULL)
  13907. {
  13908. str += "(";
  13909. DoPopulateType(typeInstance);
  13910. int showIdx = 0;
  13911. if ((typeInstance->mBaseType != NULL) && (!typeInstance->mBaseType->IsInstanceOf(mCompiler->mValueTypeTypeDef)))
  13912. {
  13913. DataToString(str, ptr, typeInstance->mBaseType);
  13914. showIdx++;
  13915. }
  13916. for (auto& fieldInstance : typeInstance->mFieldInstances)
  13917. {
  13918. if (fieldInstance.mDataOffset >= 0)
  13919. {
  13920. if (showIdx > 0)
  13921. str += ", ";
  13922. DataToString(str, (uint8*)ptr + fieldInstance.mDataOffset, fieldInstance.mResolvedType);
  13923. showIdx++;
  13924. }
  13925. }
  13926. str += ")";
  13927. }
  13928. else if (type->IsPointer())
  13929. str += "null";
  13930. else
  13931. {
  13932. str += "uint8[](";
  13933. for (int i = 0; i < type->mSize; i++)
  13934. {
  13935. if (i > 0)
  13936. str += ", ";
  13937. str += StrFormat("%d", ((uint8_t*)ptr)[i]);
  13938. }
  13939. str += ")";
  13940. }
  13941. }
  13942. }
  13943. void BfModule::VariantToString(StringImpl& str, const BfVariant& variant, BfType* type)
  13944. {
  13945. switch (variant.mTypeCode)
  13946. {
  13947. case BfTypeCode_Boolean:
  13948. if (variant.mUInt64 == 0)
  13949. str += "false";
  13950. else if (variant.mUInt64 == 1)
  13951. str += "true";
  13952. else
  13953. str += StrFormat("%lld", variant.mInt64);
  13954. break;
  13955. case BfTypeCode_Int8:
  13956. case BfTypeCode_UInt8:
  13957. case BfTypeCode_Int16:
  13958. case BfTypeCode_UInt16:
  13959. case BfTypeCode_Int32:
  13960. str += StrFormat("%d", variant.mInt32);
  13961. break;
  13962. case BfTypeCode_Char8:
  13963. case BfTypeCode_Char16:
  13964. case BfTypeCode_Char32:
  13965. if ((variant.mUInt32 >= 32) && (variant.mUInt32 <= 0x7E))
  13966. str += StrFormat("'%c'", (char)variant.mUInt32);
  13967. else if (variant.mUInt32 <= 0xFF)
  13968. str += StrFormat("'\\x%2X'", variant.mUInt32);
  13969. else
  13970. str += StrFormat("'\\u{%X}'", variant.mUInt32);
  13971. break;
  13972. case BfTypeCode_UInt32:
  13973. str += StrFormat("%lu", variant.mUInt32);
  13974. break;
  13975. case BfTypeCode_Int64:
  13976. str += StrFormat("%lld", variant.mInt64);
  13977. break;
  13978. case BfTypeCode_UInt64:
  13979. str += StrFormat("%llu", variant.mInt64);
  13980. break;
  13981. case BfTypeCode_Float:
  13982. {
  13983. char cstr[64];
  13984. ExactMinimalFloatToStr(variant.mSingle, cstr);
  13985. str += cstr;
  13986. if (strchr(cstr, '.') == NULL)
  13987. str += ".0f";
  13988. else
  13989. str += "f";
  13990. }
  13991. break;
  13992. case BfTypeCode_Double:
  13993. {
  13994. char cstr[64];
  13995. ExactMinimalDoubleToStr(variant.mDouble, cstr);
  13996. str += cstr;
  13997. if (strchr(cstr, '.') == NULL)
  13998. str += ".0";
  13999. }
  14000. break;
  14001. case BfTypeCode_StringId:
  14002. {
  14003. int stringId = variant.mInt32;
  14004. auto stringPoolEntry = mContext->mStringObjectIdMap[stringId];
  14005. str += '"';
  14006. str += SlashString(stringPoolEntry.mString, false, false, true);
  14007. str += '"';
  14008. }
  14009. break;
  14010. case BfTypeCode_Let:
  14011. str += "?";
  14012. break;
  14013. case BfTypeCode_Struct:
  14014. {
  14015. BfVariant::StructData* structData = (BfVariant::StructData*)variant.mPtr;
  14016. if (type == NULL)
  14017. {
  14018. str += "uint8[](";
  14019. for (int i = 0; i < structData->mSize; i++)
  14020. {
  14021. if (i > 0)
  14022. str += ", ";
  14023. str += StrFormat("%d", structData->mData[i]);
  14024. }
  14025. str += ")";
  14026. break;
  14027. }
  14028. DataToString(str, structData->mData, type);
  14029. }
  14030. break;
  14031. default: break;
  14032. }
  14033. }
  14034. void BfModule::DoTypeToString(StringImpl& str, BfType* resolvedType, BfTypeNameFlags typeNameFlags, Array<String>* genericMethodNameOverrides)
  14035. {
  14036. BP_ZONE("BfModule::DoTypeToString");
  14037. if (resolvedType == NULL)
  14038. {
  14039. str += "NULL";
  14040. return;
  14041. }
  14042. if (resolvedType->mContext == NULL)
  14043. {
  14044. str += "*UNINITIALIZED TYPE*";
  14045. return;
  14046. }
  14047. if ((typeNameFlags & BfTypeNameFlag_AddProjectName) != 0)
  14048. {
  14049. BfProject* defProject = NULL;
  14050. auto typeInst = resolvedType->ToTypeInstance();
  14051. if (typeInst != NULL)
  14052. {
  14053. defProject = typeInst->mTypeDef->mProject;
  14054. str += defProject->mName;
  14055. str += ":";
  14056. }
  14057. SizedArray<BfProject*, 4> projectList;
  14058. BfTypeUtils::GetProjectList(resolvedType, &projectList, 0);
  14059. if (!projectList.IsEmpty())
  14060. {
  14061. if (defProject != projectList[0])
  14062. {
  14063. str += projectList[0]->mName;
  14064. str += ":";
  14065. }
  14066. }
  14067. typeNameFlags = (BfTypeNameFlags)(typeNameFlags & ~BfTypeNameFlag_AddProjectName);
  14068. }
  14069. // This is clearly wrong. If we pass in @T0 from a generic type, this would immediately disable the ability to get its name
  14070. /*if (resolvedType->IsUnspecializedType())
  14071. typeNameFlags = (BfTypeNameFlags)(typeNameFlags & ~BfTypeNameFlag_ResolveGenericParamNames);*/
  14072. if (resolvedType->IsBoxed())
  14073. {
  14074. auto boxedType = (BfBoxedType*)resolvedType;
  14075. str += "boxed ";
  14076. DoTypeToString(str, boxedType->mElementType, typeNameFlags, genericMethodNameOverrides);
  14077. if (boxedType->mBoxedFlags == BfBoxedType::BoxedFlags_StructPtr)
  14078. str += "*";
  14079. return;
  14080. }
  14081. else if ((resolvedType->IsArray()) && ((typeNameFlags & BfTypeNameFlag_UseArrayImplType) == 0))
  14082. {
  14083. auto arrayType = (BfArrayType*)resolvedType;
  14084. DoTypeToString(str, arrayType->mGenericTypeInfo->mTypeGenericArguments[0], typeNameFlags, genericMethodNameOverrides);
  14085. str += "[";
  14086. for (int i = 1; i < arrayType->mDimensions; i++)
  14087. str += ",";
  14088. str += "]";
  14089. return;
  14090. }
  14091. else if (resolvedType->IsNullable())
  14092. {
  14093. auto genericType = (BfTypeInstance*)resolvedType;
  14094. auto elementType = genericType->mGenericTypeInfo->mTypeGenericArguments[0];
  14095. DoTypeToString(str, elementType, typeNameFlags, genericMethodNameOverrides);
  14096. str += "?";
  14097. return;
  14098. }
  14099. else if (resolvedType->IsTuple())
  14100. {
  14101. BfTypeInstance* tupleType = (BfTypeInstance*)resolvedType;
  14102. str += "(";
  14103. for (int fieldIdx = 0; fieldIdx < (int)tupleType->mFieldInstances.size(); fieldIdx++)
  14104. {
  14105. if (fieldIdx > 0)
  14106. str += ", ";
  14107. BfFieldInstance* fieldInstance = &tupleType->mFieldInstances[fieldIdx];
  14108. BfFieldDef* fieldDef = fieldInstance->GetFieldDef();
  14109. BfTypeNameFlags innerFlags = (BfTypeNameFlags)(typeNameFlags & ~(BfTypeNameFlag_OmitNamespace | BfTypeNameFlag_OmitOuterType | BfTypeNameFlag_ExtendedInfo));
  14110. DoTypeToString(str, fieldInstance->GetResolvedType(), innerFlags, genericMethodNameOverrides);
  14111. char c = fieldDef->mName[0];
  14112. if ((c < '0') || (c > '9'))
  14113. {
  14114. str += " ";
  14115. str += fieldDef->mName;
  14116. }
  14117. }
  14118. str += ")";
  14119. return;
  14120. }
  14121. else if ((resolvedType->IsOnDemand()) && (resolvedType->IsEnum()))
  14122. {
  14123. auto typeInst = resolvedType->ToTypeInstance();
  14124. str += "tag ";
  14125. str += typeInst->mTypeDef->mFields[0]->mName;
  14126. return;
  14127. }
  14128. else if (resolvedType->IsDelegateFromTypeRef() || resolvedType->IsFunctionFromTypeRef())
  14129. {
  14130. SetAndRestoreValue<BfTypeInstance*> prevTypeInstance(mCurTypeInstance);
  14131. auto delegateType = (BfTypeInstance*)resolvedType;
  14132. auto delegateInfo = resolvedType->GetDelegateInfo();
  14133. if (mCurTypeInstance == delegateType)
  14134. {
  14135. // Don't try to use ourselves for generic param resolution. This should only happen for debug printings from
  14136. // within InitType and such, not actual user-facing display
  14137. mCurTypeInstance = NULL;
  14138. }
  14139. auto methodDef = delegateType->mTypeDef->mMethods[0];
  14140. switch (methodDef->mCallingConvention)
  14141. {
  14142. case BfCallingConvention_Stdcall:
  14143. str += "[StdCall] ";
  14144. break;
  14145. case BfCallingConvention_Fastcall:
  14146. str += "[FastCall] ";
  14147. break;
  14148. default:
  14149. break;
  14150. }
  14151. if (resolvedType->IsDelegateFromTypeRef())
  14152. str += "delegate ";
  14153. else
  14154. str += "function ";
  14155. if (delegateInfo->mCallingConvention != BfCallingConvention_Unspecified)
  14156. {
  14157. str += "[CallingConvention(";
  14158. switch (delegateInfo->mCallingConvention)
  14159. {
  14160. case BfCallingConvention_Cdecl:
  14161. str += ".Cdecl";
  14162. break;
  14163. case BfCallingConvention_Stdcall:
  14164. str += ".Stdcall";
  14165. break;
  14166. case BfCallingConvention_Fastcall:
  14167. str += ".Fastcall";
  14168. break;
  14169. }
  14170. str += ")] ";
  14171. }
  14172. DoTypeToString(str, delegateInfo->mReturnType, typeNameFlags, genericMethodNameOverrides);
  14173. str += "(";
  14174. bool isFirstParam = true;//
  14175. for (int paramIdx = 0; paramIdx < methodDef->mParams.size(); paramIdx++)
  14176. {
  14177. if (!isFirstParam)
  14178. str += ", ";
  14179. auto paramDef = methodDef->mParams[paramIdx];
  14180. BfTypeNameFlags innerFlags = (BfTypeNameFlags)(typeNameFlags & ~(BfTypeNameFlag_OmitNamespace | BfTypeNameFlag_OmitOuterType | BfTypeNameFlag_ExtendedInfo));
  14181. if (paramDef->mParamKind == BfParamKind_VarArgs)
  14182. {
  14183. str += "...";
  14184. continue;
  14185. }
  14186. auto paramType = delegateInfo->mParams[paramIdx];
  14187. if ((paramIdx == 0) && (delegateInfo->mHasExplicitThis))
  14188. {
  14189. if ((methodDef->mIsMutating) && (paramType->IsValueType()))
  14190. str += "mut ";
  14191. }
  14192. DoTypeToString(str, paramType, innerFlags, genericMethodNameOverrides);
  14193. if (!paramDef->mName.IsEmpty())
  14194. {
  14195. str += " ";
  14196. str += paramDef->mName;
  14197. }
  14198. isFirstParam = false;
  14199. }
  14200. str += ")";
  14201. return;
  14202. }
  14203. else if (resolvedType->IsMethodRef())
  14204. {
  14205. auto methodRefType = (BfMethodRefType*)resolvedType;
  14206. BfMethodInstance* methodInstance = methodRefType->mMethodRef;
  14207. if (methodRefType->IsDeleting())
  14208. {
  14209. str += "DELETED METHODREF";
  14210. return;
  14211. }
  14212. if (methodInstance == NULL)
  14213. {
  14214. str += "method reference NULL";
  14215. return;
  14216. }
  14217. str += "method reference ";
  14218. str += MethodToString(methodInstance, BfMethodNameFlag_NoAst);
  14219. return;
  14220. }
  14221. else if (resolvedType->IsTypeInstance())
  14222. {
  14223. BfTypeInstance* typeInstance = (BfTypeInstance*)resolvedType;
  14224. if ((typeNameFlags & BfTypeNameFlag_ExtendedInfo) != 0)
  14225. {
  14226. if (typeInstance->mTypeDef->IsGlobalsContainer())
  14227. str += "static ";
  14228. else if (typeInstance->mTypeDef->mIsDelegate)
  14229. str += "delegate ";
  14230. else if (typeInstance->mTypeDef->mIsFunction)
  14231. str += "function ";
  14232. else if (typeInstance->mTypeDef->mTypeCode == BfTypeCode_Object)
  14233. str += "class ";
  14234. else if (typeInstance->mTypeDef->mTypeCode == BfTypeCode_Enum)
  14235. str += "enum ";
  14236. else if (typeInstance->mTypeDef->mTypeCode == BfTypeCode_Struct)
  14237. str += "struct ";
  14238. else if (typeInstance->mTypeDef->mTypeCode == BfTypeCode_TypeAlias)
  14239. str += "typealias ";
  14240. }
  14241. bool omitNamespace = (typeNameFlags & BfTypeNameFlag_OmitNamespace) != 0;
  14242. if ((typeNameFlags & BfTypeNameFlag_ReduceName) != 0)
  14243. {
  14244. for (auto& checkNamespace : mCurTypeInstance->mTypeDef->mNamespaceSearch)
  14245. {
  14246. if (checkNamespace == typeInstance->mTypeDef->mNamespace)
  14247. omitNamespace = true;
  14248. }
  14249. }
  14250. if ((!typeInstance->mTypeDef->mNamespace.IsEmpty()) && (!omitNamespace))
  14251. {
  14252. if (!typeInstance->mTypeDef->mNamespace.IsEmpty())
  14253. {
  14254. typeInstance->mTypeDef->mNamespace.ToString(str);
  14255. if (!typeInstance->mTypeDef->IsGlobalsContainer())
  14256. str += '.';
  14257. }
  14258. }
  14259. SizedArray<BfTypeDef*, 8> typeDefStack;
  14260. BfTypeDef* endTypeDef = NULL;
  14261. if (((typeNameFlags & BfTypeNameFlag_ReduceName) != 0) && (mCurTypeInstance != NULL))
  14262. {
  14263. auto checkTypeInst = typeInstance;
  14264. auto outerTypeInst = GetOuterType(checkTypeInst);
  14265. if (outerTypeInst != NULL)
  14266. {
  14267. checkTypeInst = outerTypeInst;
  14268. auto checkTypeDef = checkTypeInst->mTypeDef;
  14269. auto checkCurTypeInst = mCurTypeInstance; // Only used for ReduceName
  14270. BfTypeDef* checkCurTypeDef = NULL;
  14271. if (checkCurTypeInst != NULL)
  14272. checkCurTypeDef = checkCurTypeInst->mTypeDef;
  14273. while (checkCurTypeDef->mNestDepth > checkTypeDef->mNestDepth)
  14274. {
  14275. checkCurTypeInst = GetOuterType(checkCurTypeInst);
  14276. checkCurTypeDef = checkCurTypeInst->mTypeDef;
  14277. }
  14278. while (checkTypeDef != NULL)
  14279. {
  14280. if (TypeIsSubTypeOf(checkCurTypeInst, checkTypeInst))
  14281. {
  14282. endTypeDef = checkTypeDef;
  14283. break;
  14284. }
  14285. checkCurTypeInst = GetOuterType(checkCurTypeInst);
  14286. if (checkCurTypeInst == NULL)
  14287. break;
  14288. checkCurTypeDef = checkCurTypeInst->mTypeDef;
  14289. checkTypeInst = GetOuterType(checkTypeInst);
  14290. if (checkTypeInst == NULL)
  14291. break;
  14292. checkTypeDef = checkTypeInst->mTypeDef;
  14293. }
  14294. }
  14295. }
  14296. BfTypeDef* checkTypeDef = typeInstance->mTypeDef;
  14297. while (checkTypeDef != NULL)
  14298. {
  14299. typeDefStack.Add(checkTypeDef);
  14300. checkTypeDef = checkTypeDef->mOuterType;
  14301. if ((typeNameFlags & BfTypeNameFlag_OmitOuterType) != 0)
  14302. break;
  14303. if (checkTypeDef == endTypeDef)
  14304. break;
  14305. }
  14306. while (!typeDefStack.IsEmpty())
  14307. {
  14308. BfTypeDef* checkTypeDef = typeDefStack.back();
  14309. int depth = (int)typeDefStack.size() - 1;
  14310. typeDefStack.pop_back();
  14311. if (checkTypeDef->IsGlobalsContainer())
  14312. {
  14313. if ((typeNameFlags & BfTypeNameFlag_AddGlobalContainerName) != 0)
  14314. {
  14315. str += "G$";
  14316. str += checkTypeDef->mProject->mName;
  14317. }
  14318. }
  14319. else
  14320. {
  14321. checkTypeDef->mName->ToString(str);
  14322. if (!checkTypeDef->mGenericParamDefs.IsEmpty())
  14323. {
  14324. for (int ofs = 0; ofs < 3; ofs++)
  14325. {
  14326. int checkIdx = (int)str.length() - 1 - ofs;
  14327. if (checkIdx < 0)
  14328. break;
  14329. if (str[checkIdx] == '`')
  14330. {
  14331. str.RemoveToEnd(checkIdx);
  14332. break;
  14333. }
  14334. }
  14335. }
  14336. if (((typeNameFlags & BfTypeNameFlag_DisambiguateDups) != 0) && (checkTypeDef->mDupDetectedRevision != -1))
  14337. {
  14338. str += StrFormat("_%p", checkTypeDef);
  14339. }
  14340. }
  14341. int prevGenericParamCount = 0;
  14342. if (checkTypeDef->mOuterType != NULL)
  14343. {
  14344. prevGenericParamCount = (int)checkTypeDef->mOuterType->mGenericParamDefs.size();
  14345. }
  14346. if (resolvedType->IsGenericTypeInstance())
  14347. {
  14348. auto genericTypeInst = (BfTypeInstance*)resolvedType;
  14349. if (prevGenericParamCount != (int)checkTypeDef->mGenericParamDefs.size())
  14350. {
  14351. str += '<';
  14352. for (int i = prevGenericParamCount; i < (int)checkTypeDef->mGenericParamDefs.size(); i++)
  14353. {
  14354. BfType* typeGenericArg = genericTypeInst->mGenericTypeInfo->mTypeGenericArguments[i];
  14355. if (typeGenericArg->IsGenericParam())
  14356. {
  14357. if ((typeNameFlags & BfTypeNameFlag_ResolveGenericParamNames) == 0)
  14358. {
  14359. // We don't want the param names, just the commas (this is an unspecialized type reference)
  14360. if (i > prevGenericParamCount)
  14361. str += ',';
  14362. if ((typeNameFlags & BfTypeNameFlag_UseUnspecializedGenericParamNames) != 0)
  14363. {
  14364. str += checkTypeDef->mGenericParamDefs[i]->mName;
  14365. }
  14366. continue;
  14367. }
  14368. }
  14369. if (i > prevGenericParamCount)
  14370. str += ", ";
  14371. DoTypeToString(str, typeGenericArg, (BfTypeNameFlags)((typeNameFlags | BfTypeNameFlag_ShortConst) & ~(BfTypeNameFlag_OmitNamespace | BfTypeNameFlag_OmitOuterType | BfTypeNameFlag_ExtendedInfo)), genericMethodNameOverrides);
  14372. }
  14373. str += '>';
  14374. }
  14375. }
  14376. if (depth > 0)
  14377. str += '.';
  14378. };
  14379. if (typeInstance->IsTypeAlias())
  14380. {
  14381. if ((typeNameFlags & BfTypeNameFlag_ExtendedInfo) != 0)
  14382. {
  14383. auto underlyingType = typeInstance->GetUnderlyingType();
  14384. if (underlyingType != NULL)
  14385. {
  14386. str += " = ";
  14387. DoTypeToString(str, underlyingType, (BfTypeNameFlags)(typeNameFlags & ~(BfTypeNameFlag_OmitNamespace | BfTypeNameFlag_OmitOuterType | BfTypeNameFlag_ExtendedInfo)));
  14388. }
  14389. }
  14390. }
  14391. return;
  14392. }
  14393. else if (resolvedType->IsPrimitiveType())
  14394. {
  14395. auto primitiveType = (BfPrimitiveType*)resolvedType;
  14396. if (!primitiveType->mTypeDef->mNamespace.IsEmpty())
  14397. {
  14398. primitiveType->mTypeDef->mNamespace.ToString(str);
  14399. str += '.';
  14400. primitiveType->mTypeDef->mName->ToString(str);
  14401. return;
  14402. }
  14403. else
  14404. {
  14405. primitiveType->mTypeDef->mName->ToString(str);
  14406. return;
  14407. }
  14408. }
  14409. else if (resolvedType->IsPointer())
  14410. {
  14411. auto pointerType = (BfPointerType*)resolvedType;
  14412. DoTypeToString(str, pointerType->mElementType, typeNameFlags, genericMethodNameOverrides);
  14413. str += '*';
  14414. return;
  14415. }
  14416. else if (resolvedType->IsGenericParam())
  14417. {
  14418. bool doResolveGenericParams = (typeNameFlags & BfTypeNameFlag_ResolveGenericParamNames) != 0;
  14419. if ((mCurTypeInstance != NULL) && (mCurTypeInstance->IsUnspecializedTypeVariation()))
  14420. doResolveGenericParams = false;
  14421. auto genericParam = (BfGenericParamType*)resolvedType;
  14422. if (genericParam->mGenericParamKind == BfGenericParamKind_Method)
  14423. {
  14424. if ((mCurMethodInstance != NULL) && (mCurMethodInstance->mIsUnspecializedVariation))
  14425. doResolveGenericParams = false;
  14426. }
  14427. if (!doResolveGenericParams)
  14428. {
  14429. if (genericParam->mGenericParamKind == BfGenericParamKind_Method)
  14430. {
  14431. if (genericMethodNameOverrides != NULL)
  14432. {
  14433. BF_ASSERT(genericParam->mGenericParamIdx < genericMethodNameOverrides->mSize);
  14434. if (genericParam->mGenericParamIdx < genericMethodNameOverrides->mSize)
  14435. {
  14436. str += (*genericMethodNameOverrides)[genericParam->mGenericParamIdx];
  14437. return;
  14438. }
  14439. }
  14440. str += StrFormat("@M%d", genericParam->mGenericParamIdx);
  14441. return;
  14442. }
  14443. str += StrFormat("@T%d", genericParam->mGenericParamIdx);
  14444. return;
  14445. }
  14446. if ((genericParam->mGenericParamKind == BfGenericParamKind_Type) && (mCurTypeInstance == NULL))
  14447. {
  14448. str += StrFormat("@T%d", genericParam->mGenericParamIdx);
  14449. return;
  14450. }
  14451. if (genericParam->mGenericParamKind == BfGenericParamKind_Method)
  14452. {
  14453. if (genericMethodNameOverrides != NULL)
  14454. {
  14455. str += (*genericMethodNameOverrides)[genericParam->mGenericParamIdx];
  14456. return;
  14457. }
  14458. if (mCurMethodInstance == NULL)
  14459. {
  14460. str += StrFormat("@M%d", genericParam->mGenericParamIdx);
  14461. return;
  14462. }
  14463. }
  14464. if (genericParam->mGenericParamKind == BfGenericParamKind_Type)
  14465. {
  14466. auto curTypeInstance = mCurTypeInstance;
  14467. if (mCurMethodInstance != NULL)
  14468. curTypeInstance = mCurMethodInstance->mMethodInstanceGroup->mOwner;
  14469. if ((curTypeInstance == NULL) || (!curTypeInstance->IsGenericTypeInstance()))
  14470. {
  14471. str += StrFormat("@T%d", genericParam->mGenericParamIdx);
  14472. return;
  14473. }
  14474. }
  14475. auto genericParamInstance = GetGenericParamInstance(genericParam, false, BfFailHandleKind_Soft);
  14476. if (genericParamInstance == NULL)
  14477. {
  14478. str += StrFormat("@M%d", genericParam->mGenericParamIdx);
  14479. return;
  14480. }
  14481. auto genericParamDef = genericParamInstance->GetGenericParamDef();
  14482. if (genericParamDef != NULL)
  14483. str += genericParamInstance->GetGenericParamDef()->mName;
  14484. else
  14485. str += "external generic " + TypeToString(genericParamInstance->mExternType, typeNameFlags, genericMethodNameOverrides);
  14486. return;
  14487. }
  14488. else if (resolvedType->IsRef())
  14489. {
  14490. auto refType = (BfRefType*)resolvedType;
  14491. if (refType->mRefKind == BfRefType::RefKind_Ref)
  14492. {
  14493. str += "ref ";
  14494. DoTypeToString(str, refType->mElementType, typeNameFlags, genericMethodNameOverrides);
  14495. return;
  14496. }
  14497. else if (refType->mRefKind == BfRefType::RefKind_In)
  14498. {
  14499. str += "in ";
  14500. DoTypeToString(str, refType->mElementType, typeNameFlags, genericMethodNameOverrides);
  14501. return;
  14502. }
  14503. else if (refType->mRefKind == BfRefType::RefKind_Out)
  14504. {
  14505. str += "out ";
  14506. DoTypeToString(str, refType->mElementType, typeNameFlags, genericMethodNameOverrides);
  14507. return;
  14508. }
  14509. else
  14510. {
  14511. str += "mut ";
  14512. DoTypeToString(str, refType->mElementType, typeNameFlags, genericMethodNameOverrides);
  14513. return;
  14514. }
  14515. }
  14516. else if (resolvedType->IsModifiedTypeType())
  14517. {
  14518. auto retTypeType = (BfModifiedTypeType*)resolvedType;
  14519. str += BfTokenToString(retTypeType->mModifiedKind);
  14520. str += "(";
  14521. DoTypeToString(str, retTypeType->mElementType, typeNameFlags, genericMethodNameOverrides);
  14522. str += ")";
  14523. return;
  14524. }
  14525. else if (resolvedType->IsConcreteInterfaceType())
  14526. {
  14527. auto concreteTypeType = (BfConcreteInterfaceType*)resolvedType;
  14528. str += "concrete ";
  14529. DoTypeToString(str, concreteTypeType->mInterface, typeNameFlags, genericMethodNameOverrides);
  14530. return;
  14531. }
  14532. else if (resolvedType->IsUnknownSizedArrayType())
  14533. {
  14534. auto arrayType = (BfUnknownSizedArrayType*)resolvedType;
  14535. DoTypeToString(str, arrayType->mElementType, typeNameFlags, genericMethodNameOverrides);
  14536. str += "[";
  14537. DoTypeToString(str, arrayType->mElementCountSource, typeNameFlags, genericMethodNameOverrides);
  14538. str += "]";
  14539. return;
  14540. }
  14541. else if (resolvedType->IsSizedArray())
  14542. {
  14543. SizedArray<intptr, 4> sizes;
  14544. auto checkType = resolvedType;
  14545. while (true)
  14546. {
  14547. if (checkType->IsSizedArray())
  14548. {
  14549. auto arrayType = (BfSizedArrayType*)checkType;
  14550. sizes.Add(arrayType->mElementCount);
  14551. checkType = arrayType->mElementType;
  14552. continue;
  14553. }
  14554. DoTypeToString(str, checkType, typeNameFlags, genericMethodNameOverrides);
  14555. break;
  14556. }
  14557. for (int i = 0; i < (int)sizes.mSize; i++)
  14558. {
  14559. if (sizes[i] == -1)
  14560. str += "[?]";
  14561. else
  14562. str += StrFormat("[%d]", sizes[i]);
  14563. }
  14564. return;
  14565. }
  14566. else if (resolvedType->IsConstExprValue())
  14567. {
  14568. auto constExprValueType = (BfConstExprValueType*)resolvedType;
  14569. if ((typeNameFlags & BfTypeNameFlag_ShortConst) == 0)
  14570. {
  14571. str += "const ";
  14572. if ((!constExprValueType->mType->IsInstanceOf(mCompiler->mRangeTypeDef)) &&
  14573. (!constExprValueType->mType->IsInstanceOf(mCompiler->mClosedRangeTypeDef)))
  14574. {
  14575. DoTypeToString(str, constExprValueType->mType, typeNameFlags, genericMethodNameOverrides);
  14576. if (constExprValueType->mValue.mTypeCode != BfTypeCode_Boolean)
  14577. str += " ";
  14578. }
  14579. }
  14580. if (constExprValueType->mValueString.IsEmpty())
  14581. VariantToString(constExprValueType->mValueString, constExprValueType->mValue, constExprValueType->mType);
  14582. str += constExprValueType->mValueString;
  14583. return;
  14584. }
  14585. BFMODULE_FATAL(this, "Not implemented");
  14586. str += "???";
  14587. return;
  14588. }