advancedLightingFeaturesGLSL.cpp 23 KB

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  1. //-----------------------------------------------------------------------------
  2. // Copyright (c) 2012 GarageGames, LLC
  3. //
  4. // Permission is hereby granted, free of charge, to any person obtaining a copy
  5. // of this software and associated documentation files (the "Software"), to
  6. // deal in the Software without restriction, including without limitation the
  7. // rights to use, copy, modify, merge, publish, distribute, sublicense, and/or
  8. // sell copies of the Software, and to permit persons to whom the Software is
  9. // furnished to do so, subject to the following conditions:
  10. //
  11. // The above copyright notice and this permission notice shall be included in
  12. // all copies or substantial portions of the Software.
  13. //
  14. // THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
  15. // IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
  16. // FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
  17. // AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
  18. // LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING
  19. // FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS
  20. // IN THE SOFTWARE.
  21. //-----------------------------------------------------------------------------
  22. #include "platform/platform.h"
  23. #include "lighting/advanced/glsl/advancedLightingFeaturesGLSL.h"
  24. #include "lighting/advanced/advancedLightBinManager.h"
  25. #include "shaderGen/langElement.h"
  26. #include "shaderGen/shaderOp.h"
  27. #include "shaderGen/conditionerFeature.h"
  28. #include "renderInstance/renderDeferredMgr.h"
  29. #include "materials/processedMaterial.h"
  30. #include "materials/materialFeatureTypes.h"
  31. void DeferredRTLightingFeatGLSL::processPixMacros( Vector<GFXShaderMacro> &macros,
  32. const MaterialFeatureData &fd )
  33. {
  34. // Skip deferred features, and use forward shading instead
  35. if ( !fd.features[MFT_isDeferred] )
  36. {
  37. Parent::processPixMacros( macros, fd );
  38. return;
  39. }
  40. // Pull in the uncondition method for the light info buffer
  41. NamedTexTarget *texTarget = NamedTexTarget::find( AdvancedLightBinManager::smBufferName );
  42. if ( texTarget && texTarget->getConditioner() )
  43. {
  44. ConditionerMethodDependency *unconditionMethod = texTarget->getConditioner()->getConditionerMethodDependency(ConditionerFeature::UnconditionMethod);
  45. unconditionMethod->createMethodMacro( String::ToLower( AdvancedLightBinManager::smBufferName ) + "Uncondition", macros );
  46. addDependency(unconditionMethod);
  47. }
  48. }
  49. void DeferredRTLightingFeatGLSL::processVert( Vector<ShaderComponent*> &componentList,
  50. const MaterialFeatureData &fd )
  51. {
  52. // Skip deferred features, and use forward shading instead
  53. if ( !fd.features[MFT_isDeferred] )
  54. {
  55. Parent::processVert( componentList, fd );
  56. return;
  57. }
  58. // Pass screen space position to pixel shader to compute a full screen buffer uv
  59. ShaderConnector *connectComp = dynamic_cast<ShaderConnector *>( componentList[C_CONNECTOR] );
  60. Var *ssPos = connectComp->getElement( RT_TEXCOORD );
  61. ssPos->setName( "screenspacePos" );
  62. ssPos->setStructName( "OUT" );
  63. ssPos->setType( "vec4" );
  64. Var *outPosition = (Var*) LangElement::find( "gl_Position" );
  65. AssertFatal( outPosition, "No gl_Position, ohnoes." );
  66. output = new GenOp( " @ = @;\r\n", ssPos, outPosition );
  67. }
  68. void DeferredRTLightingFeatGLSL::processPix( Vector<ShaderComponent*> &componentList,
  69. const MaterialFeatureData &fd )
  70. {
  71. // Skip deferred features, and use forward shading instead
  72. if ( !fd.features[MFT_isDeferred] )
  73. {
  74. Parent::processPix( componentList, fd );
  75. return;
  76. }
  77. MultiLine *meta = new MultiLine;
  78. ShaderConnector *connectComp = dynamic_cast<ShaderConnector *>( componentList[C_CONNECTOR] );
  79. Var *ssPos = connectComp->getElement( RT_TEXCOORD );
  80. ssPos->setName( "screenspacePos" );
  81. ssPos->setStructName( "IN" );
  82. ssPos->setType( "vec4" );
  83. Var *uvScene = new Var;
  84. uvScene->setType( "vec2" );
  85. uvScene->setName( "uvScene" );
  86. LangElement *uvSceneDecl = new DecOp( uvScene );
  87. String rtParamName = String::ToString( "rtParams%s", "diffuseLightingBuffer" );
  88. Var *rtParams = (Var*) LangElement::find( rtParamName );
  89. if( !rtParams )
  90. {
  91. rtParams = new Var;
  92. rtParams->setType( "vec4" );
  93. rtParams->setName( rtParamName );
  94. rtParams->uniform = true;
  95. rtParams->constSortPos = cspPass;
  96. }
  97. meta->addStatement( new GenOp( " @ = @.xy / @.w;\r\n", uvSceneDecl, ssPos, ssPos ) ); // get the screen coord... its -1 to +1
  98. meta->addStatement( new GenOp( " @ = ( @ + 1.0 ) / 2.0;\r\n", uvScene, uvScene ) ); // get the screen coord to 0 to 1
  99. meta->addStatement( new GenOp( " @.y = 1.0 - @.y;\r\n", uvScene, uvScene ) ); // flip the y axis
  100. meta->addStatement( new GenOp( " @ = ( @ * @.zw ) + @.xy;\r\n", uvScene, uvScene, rtParams, rtParams) ); // scale it down and offset it to the rt size
  101. Var *lightInfoSamp = new Var;
  102. lightInfoSamp->setType( "vec4" );
  103. lightInfoSamp->setName( "lightInfoSample" );
  104. // create texture var
  105. Var *lightInfoBuffer = new Var;
  106. lightInfoBuffer->setType( "sampler2D" );
  107. lightInfoBuffer->setName( "diffuseLightingBuffer" );
  108. lightInfoBuffer->uniform = true;
  109. lightInfoBuffer->sampler = true;
  110. lightInfoBuffer->constNum = Var::getTexUnitNum(); // used as texture unit num here
  111. // Declare the RTLighting variables in this feature, they will either be assigned
  112. // in this feature, or in the tonemap/lightmap feature
  113. Var *d_lightcolor = new Var( "d_lightcolor", "vec3" );
  114. meta->addStatement( new GenOp( " @;\r\n", new DecOp( d_lightcolor ) ) );
  115. Var *d_NL_Att = new Var( "d_NL_Att", "float" );
  116. meta->addStatement( new GenOp( " @;\r\n", new DecOp( d_NL_Att ) ) );
  117. Var *d_specular = new Var( "d_specular", "float" );
  118. meta->addStatement( new GenOp( " @;\r\n", new DecOp( d_specular ) ) );
  119. // Perform the uncondition here.
  120. String unconditionLightInfo = String::ToLower( AdvancedLightBinManager::smBufferName ) + "Uncondition";
  121. meta->addStatement( new GenOp( avar( " %s(tex2D(@, @), @, @, @);\r\n",
  122. unconditionLightInfo.c_str() ), lightInfoBuffer, uvScene, d_lightcolor, d_NL_Att, d_specular ) );
  123. // If this has an interlaced pre-pass, do averaging here
  124. if( fd.features[MFT_InterlacedDeferred] )
  125. {
  126. Var *oneOverTargetSize = (Var*) LangElement::find( "oneOverTargetSize" );
  127. if( !oneOverTargetSize )
  128. {
  129. oneOverTargetSize = new Var;
  130. oneOverTargetSize->setType( "vec2" );
  131. oneOverTargetSize->setName( "oneOverTargetSize" );
  132. oneOverTargetSize->uniform = true;
  133. oneOverTargetSize->constSortPos = cspPass;
  134. }
  135. meta->addStatement( new GenOp( " float id_NL_Att, id_specular;\r\n vec3 id_lightcolor;\r\n" ) );
  136. meta->addStatement( new GenOp( avar( " %s(tex2D(@, @ + vec2(0.0, @.y)), id_lightcolor, id_NL_Att, id_specular);\r\n",
  137. unconditionLightInfo.c_str() ), lightInfoBuffer, uvScene, oneOverTargetSize ) );
  138. meta->addStatement( new GenOp(" @ = lerp(@, id_lightcolor, 0.5);\r\n", d_lightcolor, d_lightcolor ) );
  139. meta->addStatement( new GenOp(" @ = lerp(@, id_NL_Att, 0.5);\r\n", d_NL_Att, d_NL_Att ) );
  140. meta->addStatement( new GenOp(" @ = lerp(@, id_specular, 0.5);\r\n", d_specular, d_specular ) );
  141. }
  142. // This is kind of weak sauce
  143. if( !fd.features[MFT_VertLit] && !fd.features[MFT_ToneMap] && !fd.features[MFT_LightMap] && !fd.features[MFT_SubSurface] )
  144. meta->addStatement( new GenOp( " @;\r\n", assignColor( new GenOp( "vec4(@, 1.0)", d_lightcolor ), Material::Mul ) ) );
  145. output = meta;
  146. }
  147. ShaderFeature::Resources DeferredRTLightingFeatGLSL::getResources( const MaterialFeatureData &fd )
  148. {
  149. // Skip deferred features, and use forward shading instead
  150. if ( !fd.features[MFT_isDeferred] )
  151. return Parent::getResources( fd );
  152. // HACK: See DeferredRTLightingFeatGLSL::setTexData.
  153. mLastTexIndex = 0;
  154. Resources res;
  155. res.numTex = 1;
  156. res.numTexReg = 1;
  157. return res;
  158. }
  159. void DeferredRTLightingFeatGLSL::setTexData( Material::StageData &stageDat,
  160. const MaterialFeatureData &fd,
  161. RenderPassData &passData,
  162. U32 &texIndex )
  163. {
  164. // Skip deferred features, and use forward shading instead
  165. if ( !fd.features[MFT_isDeferred] )
  166. {
  167. Parent::setTexData( stageDat, fd, passData, texIndex );
  168. return;
  169. }
  170. NamedTexTarget *texTarget = NamedTexTarget::find( AdvancedLightBinManager::smBufferName );
  171. if( texTarget )
  172. {
  173. // HACK: We store this for use in DeferredRTLightingFeatGLSL::processPix()
  174. // which cannot deduce the texture unit itself.
  175. mLastTexIndex = texIndex;
  176. passData.mTexType[ texIndex ] = Material::TexTarget;
  177. passData.mSamplerNames[ texIndex ]= "diffuseLightingBuffer";
  178. passData.mTexSlot[ texIndex++ ].texTarget = texTarget;
  179. }
  180. }
  181. void DeferredBumpFeatGLSL::processVert( Vector<ShaderComponent*> &componentList,
  182. const MaterialFeatureData &fd )
  183. {
  184. if( fd.features[MFT_DeferredConditioner] )
  185. {
  186. // There is an output conditioner active, so we need to supply a transform
  187. // to the pixel shader.
  188. MultiLine *meta = new MultiLine;
  189. // We need the view to tangent space transform in the pixel shader.
  190. getOutViewToTangent( componentList, meta, fd );
  191. const bool useTexAnim = fd.features[MFT_TexAnim];
  192. // Make sure there are texcoords
  193. if( !fd.features[MFT_Parallax] && !fd.features[MFT_DiffuseMap])
  194. {
  195. getOutTexCoord( "texCoord",
  196. "vec2",
  197. useTexAnim,
  198. meta,
  199. componentList );
  200. }
  201. const bool useFoliageTexCoord = fd.features[MFT_Foliage];
  202. if ( fd.features.hasFeature( MFT_DetailNormalMap ) )
  203. addOutDetailTexCoord( componentList,
  204. meta,
  205. useTexAnim, useFoliageTexCoord);
  206. output = meta;
  207. }
  208. else if ( fd.materialFeatures[MFT_NormalsOut] ||
  209. !fd.features[MFT_isDeferred] ||
  210. !fd.features[MFT_RTLighting] )
  211. {
  212. Parent::processVert( componentList, fd );
  213. return;
  214. }
  215. else
  216. {
  217. output = NULL;
  218. }
  219. }
  220. void DeferredBumpFeatGLSL::processPix( Vector<ShaderComponent*> &componentList,
  221. const MaterialFeatureData &fd )
  222. {
  223. // NULL output in case nothing gets handled
  224. output = NULL;
  225. if( fd.features[MFT_DeferredConditioner] )
  226. {
  227. MultiLine *meta = new MultiLine;
  228. Var *viewToTangent = getInViewToTangent( componentList );
  229. // create texture var
  230. Var *bumpMap = getNormalMapTex();
  231. Var *texCoord = getInTexCoord( "texCoord", "vec2", componentList );
  232. LangElement *texOp = new GenOp( "tex2D(@, @)", bumpMap, texCoord );
  233. // create bump normal
  234. Var *bumpNorm = new Var;
  235. bumpNorm->setName( "bumpNormal" );
  236. bumpNorm->setType( "vec4" );
  237. LangElement *bumpNormDecl = new DecOp( bumpNorm );
  238. meta->addStatement( expandNormalMap( texOp, bumpNormDecl, bumpNorm, fd ) );
  239. // If we have a detail normal map we add the xy coords of
  240. // it to the base normal map. This gives us the effect we
  241. // want with few instructions and minial artifacts.
  242. if ( fd.features.hasFeature( MFT_DetailNormalMap ) )
  243. {
  244. bumpMap = new Var;
  245. bumpMap->setType( "sampler2D" );
  246. bumpMap->setName( "detailBumpMap" );
  247. bumpMap->uniform = true;
  248. bumpMap->sampler = true;
  249. bumpMap->constNum = Var::getTexUnitNum();
  250. texCoord = getInTexCoord( "detCoord", "vec2", componentList );
  251. texOp = new GenOp( "tex2D(@, @)", bumpMap, texCoord );
  252. Var *detailBump = new Var;
  253. detailBump->setName( "detailBump" );
  254. detailBump->setType( "vec4" );
  255. meta->addStatement( expandNormalMap( texOp, new DecOp( detailBump ), detailBump, fd ) );
  256. Var *detailBumpScale = new Var;
  257. detailBumpScale->setType( "float" );
  258. detailBumpScale->setName( "detailBumpStrength" );
  259. detailBumpScale->uniform = true;
  260. detailBumpScale->constSortPos = cspPass;
  261. meta->addStatement( new GenOp( " @.xy += @.xy * @;\r\n", bumpNorm, detailBump, detailBumpScale ) );
  262. }
  263. // This var is read from GBufferConditionerGLSL and
  264. // used in the deferred output.
  265. //
  266. // By using the 'half' type here we get a bunch of partial
  267. // precision optimized code on further operations on the normal
  268. // which helps alot on older Geforce cards.
  269. //
  270. Var *gbNormal = new Var;
  271. gbNormal->setName( "gbNormal" );
  272. gbNormal->setType( "half3" );
  273. LangElement *gbNormalDecl = new DecOp( gbNormal );
  274. // Normalize is done later...
  275. // Note: The reverse mul order is intentional. Affine matrix.
  276. meta->addStatement( new GenOp( " @ = half3(tMul( @.xyz, @ ));\r\n", gbNormalDecl, bumpNorm, viewToTangent ) );
  277. output = meta;
  278. return;
  279. }
  280. else if (fd.features[MFT_AccuMap])
  281. {
  282. Var *bumpSample = (Var *)LangElement::find("bumpSample");
  283. if (bumpSample == NULL)
  284. {
  285. MultiLine *meta = new MultiLine;
  286. Var *texCoord = getInTexCoord("texCoord", "vec2", componentList);
  287. Var *bumpMap = getNormalMapTex();
  288. bumpSample = new Var;
  289. bumpSample->setType("vec4");
  290. bumpSample->setName("bumpSample");
  291. LangElement *bumpSampleDecl = new DecOp(bumpSample);
  292. meta->addStatement(new GenOp(" @ = tex2D(@, @);\r\n", bumpSampleDecl, bumpMap, texCoord));
  293. if (fd.features.hasFeature(MFT_DetailNormalMap))
  294. {
  295. bumpMap = (Var*)LangElement::find("detailBumpMap");
  296. if (!bumpMap) {
  297. bumpMap = new Var;
  298. bumpMap->setType("sampler2D");
  299. bumpMap->setName("detailBumpMap");
  300. bumpMap->uniform = true;
  301. bumpMap->sampler = true;
  302. bumpMap->constNum = Var::getTexUnitNum();
  303. }
  304. texCoord = getInTexCoord("detCoord", "vec2", componentList);
  305. LangElement *texOp = new GenOp("tex2D(@, @)", bumpMap, texCoord);
  306. Var *detailBump = new Var;
  307. detailBump->setName("detailBump");
  308. detailBump->setType("vec4");
  309. meta->addStatement(expandNormalMap(texOp, new DecOp(detailBump), detailBump, fd));
  310. Var *detailBumpScale = new Var;
  311. detailBumpScale->setType("float");
  312. detailBumpScale->setName("detailBumpStrength");
  313. detailBumpScale->uniform = true;
  314. detailBumpScale->constSortPos = cspPass;
  315. meta->addStatement(new GenOp(" @.xy += @.xy * @;\r\n", bumpSample, detailBump, detailBumpScale));
  316. }
  317. output = meta;
  318. return;
  319. }
  320. }
  321. else if ( fd.materialFeatures[MFT_NormalsOut] ||
  322. !fd.features[MFT_isDeferred] ||
  323. !fd.features[MFT_RTLighting] )
  324. {
  325. Parent::processPix( componentList, fd );
  326. return;
  327. }
  328. else if (!fd.features[MFT_SpecularMap] )
  329. {
  330. Var *bumpSample = (Var *)LangElement::find( "bumpSample" );
  331. if( bumpSample == NULL )
  332. {
  333. Var *texCoord = getInTexCoord( "texCoord", "vec2", componentList );
  334. Var *bumpMap = getNormalMapTex();
  335. bumpSample = new Var;
  336. bumpSample->setType( "vec4" );
  337. bumpSample->setName( "bumpSample" );
  338. LangElement *bumpSampleDecl = new DecOp( bumpSample );
  339. output = new GenOp( " @ = tex2D(@, @);\r\n", bumpSampleDecl, bumpMap, texCoord );
  340. return;
  341. }
  342. }
  343. output = NULL;
  344. }
  345. ShaderFeature::Resources DeferredBumpFeatGLSL::getResources( const MaterialFeatureData &fd )
  346. {
  347. if ( fd.materialFeatures[MFT_NormalsOut] ||
  348. !fd.features[MFT_isDeferred] ||
  349. fd.features[MFT_Parallax] ||
  350. !fd.features[MFT_RTLighting] )
  351. return Parent::getResources( fd );
  352. Resources res;
  353. if(!fd.features[MFT_SpecularMap])
  354. {
  355. res.numTex = 1;
  356. res.numTexReg = 1;
  357. if ( fd.features[MFT_DeferredConditioner] &&
  358. fd.features.hasFeature( MFT_DetailNormalMap ) )
  359. {
  360. res.numTex += 1;
  361. if ( !fd.features.hasFeature( MFT_DetailMap ) )
  362. res.numTexReg += 1;
  363. }
  364. }
  365. return res;
  366. }
  367. void DeferredBumpFeatGLSL::setTexData( Material::StageData &stageDat,
  368. const MaterialFeatureData &fd,
  369. RenderPassData &passData,
  370. U32 &texIndex )
  371. {
  372. if ( fd.materialFeatures[MFT_NormalsOut] ||
  373. !fd.features[MFT_isDeferred] ||
  374. !fd.features[MFT_RTLighting] )
  375. {
  376. Parent::setTexData( stageDat, fd, passData, texIndex );
  377. return;
  378. }
  379. if (!fd.features[MFT_DeferredConditioner] && fd.features[MFT_AccuMap])
  380. {
  381. passData.mTexType[texIndex] = Material::Bump;
  382. passData.mSamplerNames[texIndex] = "bumpMap";
  383. passData.mTexSlot[texIndex++].texObject = stageDat.getTex(MFT_NormalMap);
  384. if (fd.features.hasFeature(MFT_DetailNormalMap))
  385. {
  386. passData.mTexType[texIndex] = Material::DetailBump;
  387. passData.mSamplerNames[texIndex] = "detailBumpMap";
  388. passData.mTexSlot[texIndex++].texObject = stageDat.getTex(MFT_DetailNormalMap);
  389. }
  390. }
  391. else if (!fd.features[MFT_Parallax] && !fd.features[MFT_SpecularMap] &&
  392. ( fd.features[MFT_DeferredConditioner]) )
  393. {
  394. passData.mTexType[ texIndex ] = Material::Bump;
  395. passData.mSamplerNames[ texIndex ] = "bumpMap";
  396. passData.mTexSlot[ texIndex++ ].texObject = stageDat.getTex( MFT_NormalMap );
  397. if ( fd.features[MFT_DeferredConditioner] &&
  398. fd.features.hasFeature( MFT_DetailNormalMap ) )
  399. {
  400. passData.mTexType[ texIndex ] = Material::DetailBump;
  401. passData.mSamplerNames[ texIndex ] = "detailBumpMap";
  402. passData.mTexSlot[ texIndex++ ].texObject = stageDat.getTex( MFT_DetailNormalMap );
  403. }
  404. }
  405. }
  406. ShaderFeature::Resources DeferredMinnaertGLSL::getResources( const MaterialFeatureData &fd )
  407. {
  408. Resources res;
  409. if( fd.features[MFT_isDeferred] && fd.features[MFT_RTLighting] )
  410. {
  411. res.numTex = 1;
  412. res.numTexReg = 1;
  413. }
  414. return res;
  415. }
  416. void DeferredMinnaertGLSL::setTexData( Material::StageData &stageDat,
  417. const MaterialFeatureData &fd,
  418. RenderPassData &passData,
  419. U32 &texIndex )
  420. {
  421. if( fd.features[MFT_isDeferred] && fd.features[MFT_RTLighting] )
  422. {
  423. NamedTexTarget *texTarget = NamedTexTarget::find(RenderDeferredMgr::BufferName);
  424. if ( texTarget )
  425. {
  426. passData.mTexType[texIndex] = Material::TexTarget;
  427. passData.mSamplerNames[texIndex] = "deferredBuffer";
  428. passData.mTexSlot[ texIndex++ ].texTarget = texTarget;
  429. }
  430. }
  431. }
  432. void DeferredMinnaertGLSL::processPixMacros( Vector<GFXShaderMacro> &macros,
  433. const MaterialFeatureData &fd )
  434. {
  435. if( fd.features[MFT_isDeferred] && fd.features[MFT_RTLighting] )
  436. {
  437. // Pull in the uncondition method for the g buffer
  438. NamedTexTarget *texTarget = NamedTexTarget::find( RenderDeferredMgr::BufferName );
  439. if ( texTarget && texTarget->getConditioner() )
  440. {
  441. ConditionerMethodDependency *unconditionMethod = texTarget->getConditioner()->getConditionerMethodDependency(ConditionerFeature::UnconditionMethod);
  442. unconditionMethod->createMethodMacro( String::ToLower(RenderDeferredMgr::BufferName) + "Uncondition", macros );
  443. addDependency(unconditionMethod);
  444. }
  445. }
  446. }
  447. void DeferredMinnaertGLSL::processVert( Vector<ShaderComponent*> &componentList,
  448. const MaterialFeatureData &fd )
  449. {
  450. // If there is no deferred information, bail on this feature
  451. if( !fd.features[MFT_isDeferred] || !fd.features[MFT_RTLighting] )
  452. {
  453. output = NULL;
  454. return;
  455. }
  456. // Make sure we pass the world space position to the
  457. // pixel shader so we can calculate a view vector.
  458. MultiLine *meta = new MultiLine;
  459. addOutWsPosition( componentList, fd.features[MFT_UseInstancing], meta );
  460. output = meta;
  461. }
  462. void DeferredMinnaertGLSL::processPix( Vector<ShaderComponent*> &componentList,
  463. const MaterialFeatureData &fd )
  464. {
  465. // If there is no deferred information, bail on this feature
  466. if( !fd.features[MFT_isDeferred] || !fd.features[MFT_RTLighting] )
  467. {
  468. output = NULL;
  469. return;
  470. }
  471. Var *minnaertConstant = new Var;
  472. minnaertConstant->setType( "float" );
  473. minnaertConstant->setName( "minnaertConstant" );
  474. minnaertConstant->uniform = true;
  475. minnaertConstant->constSortPos = cspPotentialPrimitive;
  476. // create texture var
  477. Var *deferredBuffer = new Var;
  478. deferredBuffer->setType( "sampler2D" );
  479. deferredBuffer->setName( "deferredBuffer" );
  480. deferredBuffer->uniform = true;
  481. deferredBuffer->sampler = true;
  482. deferredBuffer->constNum = Var::getTexUnitNum(); // used as texture unit num here
  483. // Texture coord
  484. Var *uvScene = (Var*) LangElement::find( "uvScene" );
  485. AssertFatal(uvScene != NULL, "Unable to find UVScene, no RTLighting feature?");
  486. MultiLine *meta = new MultiLine;
  487. // Get the world space view vector.
  488. Var *wsViewVec = getWsView( getInWsPosition( componentList ), meta );
  489. String unconditionDeferredMethod = String::ToLower(RenderDeferredMgr::BufferName) + "Uncondition";
  490. Var *d_NL_Att = (Var*)LangElement::find( "d_NL_Att" );
  491. meta->addStatement( new GenOp( avar( " vec4 normalDepth = %s(@, @);\r\n", unconditionDeferredMethod.c_str() ), deferredBuffer, uvScene ) );
  492. meta->addStatement( new GenOp( " float vDotN = dot(normalDepth.xyz, @);\r\n", wsViewVec ) );
  493. meta->addStatement( new GenOp( " float Minnaert = pow( @, @) * pow(vDotN, 1.0 - @);\r\n", d_NL_Att, minnaertConstant, minnaertConstant ) );
  494. meta->addStatement( new GenOp( " @;\r\n", assignColor( new GenOp( "vec4(Minnaert, Minnaert, Minnaert, 1.0)" ), Material::Mul ) ) );
  495. output = meta;
  496. }
  497. void DeferredSubSurfaceGLSL::processPix( Vector<ShaderComponent*> &componentList,
  498. const MaterialFeatureData &fd )
  499. {
  500. Var *subSurfaceParams = new Var;
  501. subSurfaceParams->setType( "vec4" );
  502. subSurfaceParams->setName( "subSurfaceParams" );
  503. subSurfaceParams->uniform = true;
  504. subSurfaceParams->constSortPos = cspPotentialPrimitive;
  505. Var *d_lightcolor = (Var*)LangElement::find( "d_lightcolor" );
  506. Var *d_NL_Att = (Var*)LangElement::find( "d_NL_Att" );
  507. MultiLine *meta = new MultiLine;
  508. if (fd.features[MFT_isDeferred])
  509. {
  510. Var* targ = (Var*)LangElement::find(getOutputTargetVarName(ShaderFeature::RenderTarget3));
  511. meta->addStatement(new GenOp(" @.rgb += @.rgb*@.a;\r\n", targ, subSurfaceParams, subSurfaceParams));
  512. output = meta;
  513. return;
  514. }
  515. output = meta;
  516. }