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pgenutil.pas 73 KB

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  1. {
  2. Copyright (c) 2011
  3. Contains different functions that are used in the context of
  4. parsing generics.
  5. This program is free software; you can redistribute it and/or modify
  6. it under the terms of the GNU General Public License as published by
  7. the Free Software Foundation; either version 2 of the License, or
  8. (at your option) any later version.
  9. This program is distributed in the hope that it will be useful,
  10. but WITHOUT ANY WARRANTY; without even the implied warranty of
  11. MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  12. GNU General Public License for more details.
  13. You should have received a copy of the GNU General Public License
  14. along with this program; if not, write to the Free Software
  15. Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
  16. ****************************************************************************
  17. }
  18. unit pgenutil;
  19. {$i fpcdefs.inc}
  20. interface
  21. uses
  22. { common }
  23. cclasses,
  24. { global }
  25. globtype,
  26. { parser }
  27. pgentype,
  28. { symtable }
  29. symtype,symdef,symbase;
  30. procedure generate_specialization(var tt:tdef;parse_class_parent:boolean;_prettyname:string;parsedtype:tdef;symname:string;parsedpos:tfileposinfo);inline;
  31. procedure generate_specialization(var tt:tdef;parse_class_parent:boolean;_prettyname:string);inline;
  32. function generate_specialization_phase1(out context:tspecializationcontext;genericdef:tdef):tdef;inline;
  33. function generate_specialization_phase1(out context:tspecializationcontext;genericdef:tdef;symname:string):tdef;inline;
  34. function generate_specialization_phase1(out context:tspecializationcontext;genericdef:tdef;parsedtype:tdef;symname:string;parsedpos:tfileposinfo):tdef;
  35. function generate_specialization_phase2(context:tspecializationcontext;genericdef:tstoreddef;parse_class_parent:boolean;_prettyname:ansistring):tdef;
  36. function check_generic_constraints(genericdef:tstoreddef;paradeflist:tfpobjectlist;poslist:tfplist):boolean;
  37. function parse_generic_parameters(allowconstraints:boolean):tfphashobjectlist;
  38. function parse_generic_specialization_types(genericdeflist:tfpobjectlist;poslist:tfplist;out prettyname,specializename:ansistring):boolean;
  39. procedure insert_generic_parameter_types(def:tstoreddef;genericdef:tstoreddef;genericlist:tfphashobjectlist);
  40. procedure maybe_insert_generic_rename_symbol(const name:tidstring;genericlist:tfphashobjectlist);
  41. function generate_generic_name(const name:tidstring;specializename:ansistring;owner_hierarchy:string):tidstring;
  42. procedure split_generic_name(const name:tidstring;out nongeneric:string;out count:longint);
  43. procedure add_generic_dummysym(sym:tsym);
  44. function resolve_generic_dummysym(const name:tidstring):tsym;
  45. function could_be_generic(const name:tidstring):boolean;inline;
  46. procedure generate_specialization_procs;
  47. procedure maybe_add_pending_specialization(def:tdef);
  48. procedure specialization_init(genericdef:tdef;var state:tspecializationstate);
  49. procedure specialization_done(var state:tspecializationstate);
  50. implementation
  51. uses
  52. { common }
  53. cutils,fpccrc,
  54. { global }
  55. globals,tokens,verbose,finput,
  56. { symtable }
  57. symconst,symsym,symtable,defcmp,procinfo,
  58. { modules }
  59. fmodule,
  60. node,nobj,
  61. { parser }
  62. scanner,
  63. pbase,pexpr,pdecsub,ptype,psub,pparautl;
  64. procedure maybe_add_waiting_unit(tt:tdef);
  65. var
  66. hmodule : tmodule;
  67. begin
  68. if not assigned(tt) or
  69. not (df_generic in tt.defoptions) then
  70. exit;
  71. hmodule:=find_module_from_symtable(tt.owner);
  72. if not assigned(hmodule) then
  73. internalerror(2012092401);
  74. if hmodule=current_module then
  75. exit;
  76. if hmodule.state<>ms_compiled then
  77. begin
  78. {$ifdef DEBUG_UNITWAITING}
  79. Writeln('Unit ', current_module.modulename^,
  80. ' waiting for ', hmodule.modulename^);
  81. {$endif DEBUG_UNITWAITING}
  82. if current_module.waitingforunit.indexof(hmodule)<0 then
  83. current_module.waitingforunit.add(hmodule);
  84. if hmodule.waitingunits.indexof(current_module)<0 then
  85. hmodule.waitingunits.add(current_module);
  86. end;
  87. end;
  88. function check_generic_constraints(genericdef:tstoreddef;paradeflist:tfpobjectlist;poslist:tfplist):boolean;
  89. var
  90. i,j,
  91. intfcount : longint;
  92. formaldef,
  93. paradef : tstoreddef;
  94. objdef,
  95. paraobjdef,
  96. formalobjdef : tobjectdef;
  97. intffound : boolean;
  98. filepos : tfileposinfo;
  99. begin
  100. { check whether the given specialization parameters fit to the eventual
  101. constraints of the generic }
  102. if not assigned(genericdef.genericparas) or (genericdef.genericparas.count=0) then
  103. internalerror(2012101001);
  104. if genericdef.genericparas.count<>paradeflist.count then
  105. internalerror(2012101002);
  106. if paradeflist.count<>poslist.count then
  107. internalerror(2012120801);
  108. result:=true;
  109. for i:=0 to genericdef.genericparas.count-1 do
  110. begin
  111. filepos:=pfileposinfo(poslist[i])^;
  112. formaldef:=tstoreddef(ttypesym(genericdef.genericparas[i]).typedef);
  113. if formaldef.typ=undefineddef then
  114. { the parameter is of unspecified type, so no need to check }
  115. continue;
  116. if not (df_genconstraint in formaldef.defoptions) or
  117. not assigned(formaldef.genconstraintdata) then
  118. internalerror(2013021602);
  119. paradef:=tstoreddef(paradeflist[i]);
  120. { undefineddef is compatible with anything }
  121. if formaldef.typ=undefineddef then
  122. continue;
  123. if paradef.typ<>formaldef.typ then
  124. begin
  125. case formaldef.typ of
  126. recorddef:
  127. { delphi has own fantasy about record constraint
  128. (almost non-nullable/non-nilable value type) }
  129. if m_delphi in current_settings.modeswitches then
  130. case paradef.typ of
  131. floatdef,enumdef,orddef:
  132. continue;
  133. objectdef:
  134. if tobjectdef(paradef).objecttype=odt_object then
  135. continue
  136. else
  137. MessagePos(filepos,type_e_record_type_expected);
  138. else
  139. MessagePos(filepos,type_e_record_type_expected);
  140. end
  141. else
  142. MessagePos(filepos,type_e_record_type_expected);
  143. objectdef:
  144. case tobjectdef(formaldef).objecttype of
  145. odt_class,
  146. odt_javaclass:
  147. MessagePos1(filepos,type_e_class_type_expected,paradef.typename);
  148. odt_interfacecom,
  149. odt_interfacecorba,
  150. odt_dispinterface,
  151. odt_interfacejava:
  152. MessagePos1(filepos,type_e_interface_type_expected,paradef.typename);
  153. else
  154. internalerror(2012101003);
  155. end;
  156. errordef:
  157. { ignore }
  158. ;
  159. else
  160. internalerror(2012101004);
  161. end;
  162. result:=false;
  163. end
  164. else
  165. begin
  166. { the paradef types are the same, so do special checks for the
  167. cases in which they are needed }
  168. if formaldef.typ=objectdef then
  169. begin
  170. paraobjdef:=tobjectdef(paradef);
  171. formalobjdef:=tobjectdef(formaldef);
  172. if not (formalobjdef.objecttype in [odt_class,odt_javaclass,odt_interfacecom,odt_interfacecorba,odt_interfacejava,odt_dispinterface]) then
  173. internalerror(2012101102);
  174. if formalobjdef.objecttype in [odt_interfacecom,odt_interfacecorba,odt_interfacejava,odt_dispinterface] then
  175. begin
  176. { this is either a concerete interface or class type (the
  177. latter without specific implemented interfaces) }
  178. case paraobjdef.objecttype of
  179. odt_interfacecom,
  180. odt_interfacecorba,
  181. odt_interfacejava,
  182. odt_dispinterface:
  183. begin
  184. if (oo_is_forward in paraobjdef.objectoptions) and
  185. (paraobjdef.objecttype=formalobjdef.objecttype) and
  186. (df_genconstraint in formalobjdef.defoptions) and
  187. (
  188. (formalobjdef.objecttype=odt_interfacecom) and
  189. (formalobjdef.childof=interface_iunknown)
  190. )
  191. or
  192. (
  193. (formalobjdef.objecttype=odt_interfacecorba) and
  194. (formalobjdef.childof=nil)
  195. ) then
  196. continue;
  197. if not def_is_related(paraobjdef,formalobjdef.childof) then
  198. begin
  199. MessagePos2(filepos,type_e_incompatible_types,paraobjdef.typename,formalobjdef.childof.typename);
  200. result:=false;
  201. end;
  202. end;
  203. odt_class,
  204. odt_javaclass:
  205. begin
  206. objdef:=paraobjdef;
  207. intffound:=false;
  208. while assigned(objdef) do
  209. begin
  210. for j:=0 to objdef.implementedinterfaces.count-1 do
  211. if timplementedinterface(objdef.implementedinterfaces[j]).intfdef=formalobjdef.childof then
  212. begin
  213. intffound:=true;
  214. break;
  215. end;
  216. if intffound then
  217. break;
  218. objdef:=objdef.childof;
  219. end;
  220. result:=intffound;
  221. if not result then
  222. MessagePos2(filepos,parser_e_class_doesnt_implement_interface,paraobjdef.typename,formalobjdef.childof.typename);
  223. end;
  224. else
  225. begin
  226. MessagePos1(filepos,type_e_class_or_interface_type_expected,paraobjdef.typename);
  227. result:=false;
  228. end;
  229. end;
  230. end
  231. else
  232. begin
  233. { this is either a "class" or a concrete instance with
  234. or without implemented interfaces }
  235. if not (paraobjdef.objecttype in [odt_class,odt_javaclass]) then
  236. begin
  237. MessagePos1(filepos,type_e_class_type_expected,paraobjdef.typename);
  238. result:=false;
  239. continue;
  240. end;
  241. { for forward declared classes we allow pure TObject/class declarations }
  242. if (oo_is_forward in paraobjdef.objectoptions) and
  243. (df_genconstraint in formaldef.defoptions) then
  244. begin
  245. if (formalobjdef.childof=class_tobject) and
  246. not formalobjdef.implements_any_interfaces then
  247. continue;
  248. end;
  249. if assigned(formalobjdef.childof) and
  250. not def_is_related(paradef,formalobjdef.childof) then
  251. begin
  252. MessagePos2(filepos,type_e_incompatible_types,paraobjdef.typename,formalobjdef.childof.typename);
  253. result:=false;
  254. end;
  255. intfcount:=0;
  256. for j:=0 to formalobjdef.implementedinterfaces.count-1 do
  257. begin
  258. objdef:=paraobjdef;
  259. while assigned(objdef) do
  260. begin
  261. intffound:=assigned(
  262. find_implemented_interface(objdef,
  263. timplementedinterface(formalobjdef.implementedinterfaces[j]).intfdef
  264. )
  265. );
  266. if intffound then
  267. break;
  268. objdef:=objdef.childof;
  269. end;
  270. if intffound then
  271. inc(intfcount)
  272. else
  273. MessagePos2(filepos,parser_e_class_doesnt_implement_interface,paraobjdef.typename,timplementedinterface(formalobjdef.implementedinterfaces[j]).intfdef.typename);
  274. end;
  275. if intfcount<>formalobjdef.implementedinterfaces.count then
  276. result:=false;
  277. end;
  278. end;
  279. end;
  280. end;
  281. end;
  282. function parse_generic_specialization_types_internal(genericdeflist:tfpobjectlist;poslist:tfplist;out prettyname,specializename:ansistring;parsedtype:tdef;parsedpos:tfileposinfo):boolean;
  283. var
  284. old_block_type : tblock_type;
  285. first : boolean;
  286. typeparam : tnode;
  287. parampos : pfileposinfo;
  288. tmpparampos : tfileposinfo;
  289. namepart : string;
  290. prettynamepart : ansistring;
  291. module : tmodule;
  292. begin
  293. result:=true;
  294. if genericdeflist=nil then
  295. internalerror(2012061401);
  296. { set the block type to type, so that the parsed type are returned as
  297. ttypenode (e.g. classes are in non type-compatible blocks returned as
  298. tloadvmtaddrnode) }
  299. old_block_type:=block_type;
  300. { if parsedtype is set, then the first type identifer was already parsed
  301. (happens in inline specializations) and thus we only need to parse
  302. the remaining types and do as if the first one was already given }
  303. first:=not assigned(parsedtype);
  304. if assigned(parsedtype) then
  305. begin
  306. genericdeflist.Add(parsedtype);
  307. module:=find_module_from_symtable(parsedtype.owner);
  308. if not assigned(module) then
  309. internalerror(2016112801);
  310. namepart:='_$'+hexstr(module.moduleid,8)+'$$'+parsedtype.unique_id_str;
  311. specializename:='$'+namepart;
  312. prettyname:=parsedtype.fullownerhierarchyname(true)+parsedtype.typesym.prettyname;
  313. if assigned(poslist) then
  314. begin
  315. New(parampos);
  316. parampos^:=parsedpos;
  317. poslist.add(parampos);
  318. end;
  319. end
  320. else
  321. begin
  322. specializename:='$';
  323. prettyname:='';
  324. end;
  325. while not (token in [_GT,_RSHARPBRACKET]) do
  326. begin
  327. { "first" is set to false at the end of the loop! }
  328. if not first then
  329. consume(_COMMA);
  330. block_type:=bt_type;
  331. tmpparampos:=current_filepos;
  332. typeparam:=factor(false,[ef_type_only]);
  333. if typeparam.nodetype=typen then
  334. begin
  335. if tstoreddef(typeparam.resultdef).is_generic and
  336. (
  337. not parse_generic or
  338. not defs_belong_to_same_generic(typeparam.resultdef,current_genericdef)
  339. ) then
  340. Message(parser_e_no_generics_as_params);
  341. if assigned(poslist) then
  342. begin
  343. New(parampos);
  344. parampos^:=tmpparampos;
  345. poslist.add(parampos);
  346. end;
  347. if typeparam.resultdef.typ<>errordef then
  348. begin
  349. if not assigned(typeparam.resultdef.typesym) then
  350. message(type_e_generics_cannot_reference_itself)
  351. else if (typeparam.resultdef.typ<>errordef) then
  352. begin
  353. genericdeflist.Add(typeparam.resultdef);
  354. module:=find_module_from_symtable(typeparam.resultdef.owner);
  355. if not assigned(module) then
  356. internalerror(2016112802);
  357. namepart:='_$'+hexstr(module.moduleid,8)+'$$'+typeparam.resultdef.unique_id_str;
  358. { we use the full name of the type to uniquely identify it }
  359. if (symtablestack.top.symtabletype=parasymtable) and
  360. (symtablestack.top.defowner.typ=procdef) and
  361. (typeparam.resultdef.owner=symtablestack.top) then
  362. begin
  363. { special handling for specializations inside generic function declarations }
  364. prettynamepart:=tdef(symtablestack.top.defowner).fullownerhierarchyname(true)+tprocdef(symtablestack.top.defowner).procsym.prettyname;
  365. end
  366. else
  367. begin
  368. prettynamepart:=typeparam.resultdef.fullownerhierarchyname(true);
  369. end;
  370. specializename:=specializename+namepart;
  371. if not first then
  372. prettyname:=prettyname+',';
  373. prettyname:=prettyname+prettynamepart+typeparam.resultdef.typesym.prettyname;
  374. end;
  375. end
  376. else
  377. begin
  378. result:=false;
  379. end;
  380. end
  381. else
  382. begin
  383. Message(type_e_type_id_expected);
  384. result:=false;
  385. end;
  386. typeparam.free;
  387. first:=false;
  388. end;
  389. block_type:=old_block_type;
  390. end;
  391. function parse_generic_specialization_types(genericdeflist:tfpobjectlist;poslist:tfplist;out prettyname,specializename:ansistring):boolean;
  392. var
  393. dummypos : tfileposinfo;
  394. begin
  395. FillChar(dummypos, SizeOf(tfileposinfo), 0);
  396. result:=parse_generic_specialization_types_internal(genericdeflist,poslist,prettyname,specializename,nil,dummypos);
  397. end;
  398. procedure generate_specialization(var tt:tdef;parse_class_parent:boolean;_prettyname:string);
  399. var
  400. dummypos : tfileposinfo;
  401. begin
  402. FillChar(dummypos, SizeOf(tfileposinfo), 0);
  403. generate_specialization(tt,parse_class_parent,_prettyname,nil,'',dummypos);
  404. end;
  405. function generate_specialization_phase1(out context:tspecializationcontext;genericdef:tdef):tdef;
  406. var
  407. dummypos : tfileposinfo;
  408. {$push}
  409. {$warn 5036 off}
  410. begin
  411. result:=generate_specialization_phase1(context,genericdef,nil,'',dummypos);
  412. end;
  413. {$pop}
  414. function generate_specialization_phase1(out context:tspecializationcontext;genericdef:tdef;symname:string):tdef;
  415. var
  416. dummypos : tfileposinfo;
  417. {$push}
  418. {$warn 5036 off}
  419. begin
  420. result:=generate_specialization_phase1(context,genericdef,nil,symname,dummypos);
  421. end;
  422. {$pop}
  423. function generate_specialization_phase1(out context:tspecializationcontext;genericdef:tdef;parsedtype:tdef;symname:string;parsedpos:tfileposinfo):tdef;
  424. var
  425. pt2 : tnode;
  426. found,
  427. first,
  428. err : boolean;
  429. i,
  430. gencount : longint;
  431. def : tstoreddef;
  432. countstr,genname,ugenname : string;
  433. srsym : tsym;
  434. st : tsymtable;
  435. begin
  436. context:=nil;
  437. result:=nil;
  438. { either symname must be given or genericdef needs to be valid }
  439. if (symname='') and
  440. (not assigned(genericdef) or
  441. (
  442. (genericdef.typ<>procdef) and
  443. (
  444. not assigned(genericdef.typesym) or
  445. (genericdef.typesym.typ<>typesym)
  446. )
  447. ) or
  448. (
  449. (genericdef.typ=procdef) and
  450. (
  451. not assigned(tprocdef(genericdef).procsym) or
  452. (tprocdef(genericdef).procsym.typ<>procsym)
  453. )
  454. )
  455. ) then
  456. begin
  457. internalerror(2019112401);
  458. end;
  459. if not assigned(parsedtype) and not try_to_consume(_LT) then
  460. begin
  461. consume(_LSHARPBRACKET);
  462. { handle "<>" }
  463. if (token=_GT) or (token=_RSHARPBRACKET) then
  464. begin
  465. Message(type_e_type_id_expected);
  466. if not try_to_consume(_GT) then
  467. try_to_consume(_RSHARPBRACKET);
  468. result:=generrordef;
  469. exit;
  470. end;
  471. end;
  472. context:=tspecializationcontext.create;
  473. { Parse type parameters }
  474. err:=not parse_generic_specialization_types_internal(context.genericdeflist,context.poslist,context.prettyname,context.specializename,parsedtype,parsedpos);
  475. if err then
  476. begin
  477. if not try_to_consume(_GT) then
  478. try_to_consume(_RSHARPBRACKET);
  479. context.free;
  480. context:=nil;
  481. result:=generrordef;
  482. exit;
  483. end;
  484. { use the name of the symbol as procvars return a user friendly version
  485. of the name }
  486. if symname='' then
  487. begin
  488. if genericdef.typ=procdef then
  489. genname:=tprocdef(genericdef).procsym.realname
  490. else
  491. genname:=ttypesym(genericdef.typesym).realname;
  492. end
  493. else
  494. genname:=symname;
  495. { in case of non-Delphi mode the type name could already be a generic
  496. def (but maybe the wrong one) }
  497. if assigned(genericdef) and
  498. ([df_generic,df_specialization]*genericdef.defoptions<>[]) then
  499. begin
  500. { remove the type count suffix from the generic's name }
  501. for i:=Length(genname) downto 1 do
  502. if genname[i]='$' then
  503. begin
  504. genname:=copy(genname,1,i-1);
  505. break;
  506. end;
  507. { in case of a specialization we've only reached the specialization
  508. checksum yet }
  509. if df_specialization in genericdef.defoptions then
  510. for i:=length(genname) downto 1 do
  511. if genname[i]='$' then
  512. begin
  513. genname:=copy(genname,1,i-1);
  514. break;
  515. end;
  516. end
  517. else
  518. begin
  519. split_generic_name(genname,ugenname,gencount);
  520. if genname<>ugenname then
  521. genname:=ugenname;
  522. end;
  523. { search a generic with the given count of params }
  524. countstr:='';
  525. str(context.genericdeflist.Count,countstr);
  526. genname:=genname+'$'+countstr;
  527. ugenname:=upper(genname);
  528. context.genname:=genname;
  529. if assigned(genericdef) and (genericdef.owner.symtabletype in [objectsymtable,recordsymtable]) then
  530. begin
  531. if genericdef.owner.symtabletype = objectsymtable then
  532. found:=searchsym_in_class(tobjectdef(genericdef.owner.defowner),tobjectdef(genericdef.owner.defowner),ugenname,context.sym,context.symtable,[])
  533. else
  534. found:=searchsym_in_record(tabstractrecorddef(genericdef.owner.defowner),ugenname,context.sym,context.symtable);
  535. if not found then
  536. found:=searchsym(ugenname,context.sym,context.symtable);
  537. end
  538. else
  539. found:=searchsym(ugenname,context.sym,context.symtable);
  540. if not found or not (context.sym.typ in [typesym,procsym]) then
  541. begin
  542. identifier_not_found(genname);
  543. if not try_to_consume(_GT) then
  544. try_to_consume(_RSHARPBRACKET);
  545. context.free;
  546. context:=nil;
  547. result:=generrordef;
  548. exit;
  549. end;
  550. { we've found the correct def }
  551. if context.sym.typ=typesym then
  552. result:=tstoreddef(ttypesym(context.sym).typedef)
  553. else
  554. begin
  555. if tprocsym(context.sym).procdeflist.count=0 then
  556. internalerror(2015061203);
  557. result:=tstoreddef(tprocsym(context.sym).procdefList[0]);
  558. end;
  559. if not try_to_consume(_GT) then
  560. consume(_RSHARPBRACKET);
  561. end;
  562. function generate_specialization_phase2(context:tspecializationcontext;genericdef:tstoreddef;parse_class_parent:boolean;_prettyname:ansistring):tdef;
  563. procedure unset_forwarddef(def: tdef);
  564. var
  565. st : TSymtable;
  566. i : longint;
  567. begin
  568. case def.typ of
  569. procdef:
  570. tprocdef(def).forwarddef:=false;
  571. objectdef,
  572. recorddef:
  573. begin
  574. st:=def.getsymtable(gs_record);
  575. for i:=0 to st.deflist.count-1 do
  576. unset_forwarddef(tdef(st.deflist[i]));
  577. end;
  578. else
  579. ;
  580. end;
  581. end;
  582. procedure retrieve_genericdef_or_procsym(sym:tsym;out gendef:tdef;out psym:tsym);
  583. var
  584. i : longint;
  585. begin
  586. gendef:=nil;
  587. psym:=nil;
  588. case sym.typ of
  589. typesym:
  590. begin
  591. gendef:=ttypesym(sym).typedef
  592. end;
  593. procsym:
  594. begin
  595. for i:=0 to tprocsym(sym).procdeflist.count-1 do
  596. if tstoreddef(tprocsym(sym).procdeflist[i]).genericdef=genericdef then
  597. begin
  598. gendef:=tdef(tprocsym(sym).procdeflist[i]);
  599. break;
  600. end;
  601. psym:=sym;
  602. end
  603. else
  604. internalerror(200710171);
  605. end;
  606. end;
  607. var
  608. finalspecializename,
  609. ufinalspecializename : tidstring;
  610. prettyname : ansistring;
  611. generictypelist : tfphashobjectlist;
  612. srsymtable,
  613. specializest : tsymtable;
  614. hashedid : thashedidstring;
  615. tempst : tglobalsymtable;
  616. psym,
  617. srsym : tsym;
  618. def : tdef;
  619. old_block_type : tblock_type;
  620. state : tspecializationstate;
  621. old_current_structdef : tabstractrecorddef;
  622. old_current_specializedef,
  623. old_current_genericdef : tstoreddef;
  624. old_current_procinfo : tprocinfo;
  625. old_module_procinfo : tobject;
  626. hmodule : tmodule;
  627. oldcurrent_filepos : tfileposinfo;
  628. recordbuf : tdynamicarray;
  629. hadtypetoken : boolean;
  630. vmtbuilder : tvmtbuilder;
  631. i,
  632. replaydepth : longint;
  633. item : tobject;
  634. allequal,
  635. hintsprocessed : boolean;
  636. pd : tprocdef;
  637. pdflags : tpdflags;
  638. begin
  639. if not assigned(context) then
  640. internalerror(2015052203);
  641. result:=nil;
  642. pd:=nil;
  643. if not check_generic_constraints(genericdef,context.genericdeflist,context.poslist) then
  644. begin
  645. { the parameters didn't fit the constraints, so don't continue with the
  646. specialization }
  647. result:=generrordef;
  648. exit;
  649. end;
  650. { build the new type's name }
  651. finalspecializename:=generate_generic_name(context.genname,context.specializename,genericdef.ownerhierarchyname);
  652. ufinalspecializename:=upper(finalspecializename);
  653. if genericdef.typ=procdef then
  654. prettyname:=tprocdef(genericdef).procsym.prettyname
  655. else
  656. prettyname:=genericdef.typesym.prettyname;
  657. prettyname:=prettyname+'<'+context.prettyname+'>';
  658. generictypelist:=tfphashobjectlist.create(false);
  659. { build the list containing the types for the generic params }
  660. if not assigned(genericdef.genericparas) then
  661. internalerror(2013092601);
  662. if context.genericdeflist.count<>genericdef.genericparas.count then
  663. internalerror(2013092603);
  664. for i:=0 to genericdef.genericparas.Count-1 do
  665. begin
  666. srsym:=tsym(genericdef.genericparas[i]);
  667. if not (sp_generic_para in srsym.symoptions) then
  668. internalerror(2013092602);
  669. generictypelist.add(srsym.realname,tdef(context.genericdeflist[i]).typesym);
  670. end;
  671. { Special case if we are referencing the current defined object }
  672. if assigned(current_structdef) and
  673. (current_structdef.objname^=ufinalspecializename) then
  674. result:=current_structdef;
  675. { Can we reuse an already specialized type? }
  676. { for this first check whether we are currently specializing a nested
  677. type of the current (main) specialization (this is necessary, because
  678. during that time the symbol of the main specialization will still
  679. contain a reference to an errordef) }
  680. if not assigned(result) and assigned(current_specializedef) then
  681. begin
  682. def:=current_specializedef;
  683. repeat
  684. if def.typ in [objectdef,recorddef] then
  685. if tabstractrecorddef(def).objname^=ufinalspecializename then begin
  686. result:=def;
  687. break;
  688. end;
  689. if assigned(def.owner) then
  690. def:=tstoreddef(def.owner.defowner)
  691. else
  692. { this can happen when specializing a generic function }
  693. def:=nil;
  694. until not assigned(def) or not (df_specialization in def.defoptions);
  695. end;
  696. { if the genericdef is the def we are currently parsing (or one of its parents) then we can
  697. not use it for specializing as the tokenbuffer is not yet set (and we aren't done with
  698. parsing anyway), so for now we treat those still as generic defs without doing a partial
  699. specialization }
  700. if not assigned(result) then
  701. begin
  702. def:=current_genericdef;
  703. while assigned(def) and (def.typ in [recorddef,objectdef]) do
  704. begin
  705. if (df_generic in def.defoptions) and (def=genericdef) then
  706. begin
  707. result:=def;
  708. break;
  709. end;
  710. { the following happens when a routine with its parent struct
  711. as parameter is specialized as a parameter or result of a
  712. generic function }
  713. if (df_specialization in def.defoptions) and (tstoreddef(def).genericdef=genericdef) then
  714. begin
  715. if tstoreddef(def).genericparas.count=generictypelist.count then
  716. begin
  717. allequal:=true;
  718. for i:=0 to generictypelist.count-1 do
  719. begin
  720. if not equal_defs(ttypesym(generictypelist[i]).typedef,ttypesym(tstoreddef(def).genericparas[i]).typedef) then
  721. begin
  722. allequal:=false;
  723. break;
  724. end;
  725. end;
  726. if allequal then
  727. begin
  728. result:=def;
  729. break;
  730. end;
  731. end;
  732. end;
  733. def:=tstoreddef(def.owner.defowner);
  734. end;
  735. end;
  736. { decide in which symtable to put the specialization }
  737. if parse_generic and not assigned(result) then
  738. begin
  739. srsymtable:=symtablestack.top;
  740. if (srsymtable.symtabletype in [localsymtable,parasymtable]) and tstoreddef(srsymtable.defowner).is_specialization then
  741. { if we are currently specializing a routine we need to specialize into
  742. the routine's local- or parasymtable so that they are correctly
  743. registered should the specialization be finalized }
  744. specializest:=srsymtable
  745. else if assigned(current_procinfo) and (df_generic in current_procinfo.procdef.defoptions) then
  746. { if we are parsing the definition of a method we specialize into
  747. the local symtable of it }
  748. specializest:=current_procinfo.procdef.getsymtable(gs_local)
  749. else
  750. begin
  751. if not assigned(current_genericdef) then
  752. internalerror(2014050901);
  753. { we specialize the partial specialization into the symtable of the currently parsed
  754. generic }
  755. case current_genericdef.typ of
  756. procvardef:
  757. specializest:=current_genericdef.getsymtable(gs_para);
  758. procdef:
  759. specializest:=current_genericdef.getsymtable(gs_local);
  760. objectdef,
  761. recorddef:
  762. specializest:=current_genericdef.getsymtable(gs_record);
  763. arraydef:
  764. specializest:=tarraydef(current_genericdef).symtable;
  765. else
  766. internalerror(2014050902);
  767. end;
  768. end;
  769. end
  770. else
  771. if current_module.is_unit and current_module.in_interface then
  772. specializest:=current_module.globalsymtable
  773. else
  774. specializest:=current_module.localsymtable;
  775. if not assigned(specializest) then
  776. internalerror(2014050910);
  777. { now check whether there is a specialization somewhere else }
  778. psym:=nil;
  779. if not assigned(result) then
  780. begin
  781. hashedid.id:=ufinalspecializename;
  782. if specializest.symtabletype=objectsymtable then
  783. begin
  784. { search also in parent classes }
  785. if not assigned(current_genericdef) or (current_genericdef.typ<>objectdef) then
  786. internalerror(2016112901);
  787. if not searchsym_in_class(tobjectdef(current_genericdef),tobjectdef(current_genericdef),ufinalspecializename,srsym,srsymtable,[]) then
  788. srsym:=nil;
  789. end
  790. else
  791. srsym:=tsym(specializest.findwithhash(hashedid));
  792. if assigned(srsym) then
  793. begin
  794. retrieve_genericdef_or_procsym(srsym,result,psym);
  795. end
  796. else
  797. { the generic could have been specialized in the globalsymtable
  798. already, so search there as well }
  799. if (specializest<>current_module.globalsymtable) and assigned(current_module.globalsymtable) then
  800. begin
  801. srsym:=tsym(current_module.globalsymtable.findwithhash(hashedid));
  802. if assigned(srsym) then
  803. begin
  804. retrieve_genericdef_or_procsym(srsym,result,psym);
  805. end;
  806. end;
  807. end;
  808. if not assigned(result) then
  809. begin
  810. specialization_init(genericdef,state);
  811. { push a temporary global symtable so that the specialization is
  812. added to the correct symtable; this symtable does not contain
  813. any other symbols, so that the type resolution can not be
  814. influenced by symbols in the current unit }
  815. tempst:=tspecializesymtable.create(current_module.modulename^,current_module.moduleid);
  816. symtablestack.push(tempst);
  817. { Reparse the original type definition }
  818. begin
  819. old_current_specializedef:=nil;
  820. old_current_genericdef:=nil;
  821. old_current_structdef:=nil;
  822. old_current_procinfo:=current_procinfo;
  823. old_module_procinfo:=current_module.procinfo;
  824. current_procinfo:=nil;
  825. current_module.procinfo:=nil;
  826. if parse_class_parent then
  827. begin
  828. old_current_structdef:=current_structdef;
  829. old_current_genericdef:=current_genericdef;
  830. old_current_specializedef:=current_specializedef;
  831. if genericdef.owner.symtabletype in [recordsymtable,objectsymtable] then
  832. current_structdef:=tabstractrecorddef(genericdef.owner.defowner)
  833. else
  834. current_structdef:=nil;
  835. current_genericdef:=nil;
  836. current_specializedef:=nil;
  837. end;
  838. maybe_add_waiting_unit(genericdef);
  839. { First a new sym so we can reuse this specialization and
  840. references to this specialization can be handled }
  841. if genericdef.typ=procdef then
  842. if assigned(psym) then
  843. srsym:=psym
  844. else
  845. srsym:=cprocsym.create(finalspecializename)
  846. else
  847. srsym:=ctypesym.create(finalspecializename,generrordef);
  848. { insert the symbol only if we don't know already that we have
  849. a procsym to add it to }
  850. if not assigned(psym) then
  851. specializest.insert(srsym);
  852. { specializations are declarations as such it is the wisest to
  853. declare set the blocktype to "type"; otherwise we'll
  854. experience unexpected side effects like the addition of
  855. classrefdefs if we have a generic that's derived from another
  856. generic }
  857. old_block_type:=block_type;
  858. block_type:=bt_type;
  859. if (
  860. (genericdef.typ=procdef) and
  861. not assigned(tprocdef(genericdef).genericdecltokenbuf)
  862. ) or (
  863. (genericdef.typ<>procdef) and
  864. not assigned(genericdef.generictokenbuf)
  865. ) then
  866. internalerror(200511171);
  867. hmodule:=find_module_from_symtable(genericdef.owner);
  868. if hmodule=nil then
  869. internalerror(2012051202);
  870. oldcurrent_filepos:=current_filepos;
  871. { use the index the module got from the current compilation process }
  872. current_filepos.moduleindex:=hmodule.unit_index;
  873. current_tokenpos:=current_filepos;
  874. if parse_generic then
  875. begin
  876. recordbuf:=current_scanner.recordtokenbuf;
  877. current_scanner.recordtokenbuf:=nil;
  878. end
  879. else
  880. recordbuf:=nil;
  881. replaydepth:=current_scanner.replay_stack_depth;
  882. if genericdef.typ=procdef then
  883. begin
  884. current_scanner.startreplaytokens(tprocdef(genericdef).genericdecltokenbuf);
  885. parse_proc_head(tprocdef(genericdef).struct,tprocdef(genericdef).proctypeoption,false,genericdef,generictypelist,pd);
  886. if assigned(pd) then
  887. begin
  888. if assigned(psym) then
  889. pd.procsym:=psym
  890. else
  891. pd.procsym:=srsym;
  892. parse_proc_dec_finish(pd,po_classmethod in tprocdef(genericdef).procoptions,tprocdef(genericdef).struct);
  893. end;
  894. result:=pd;
  895. end
  896. else
  897. begin
  898. current_scanner.startreplaytokens(genericdef.generictokenbuf);
  899. hadtypetoken:=false;
  900. read_named_type(result,srsym,genericdef,generictypelist,false,hadtypetoken);
  901. ttypesym(srsym).typedef:=result;
  902. result.typesym:=srsym;
  903. if _prettyname<>'' then
  904. ttypesym(result.typesym).fprettyname:=_prettyname
  905. else
  906. ttypesym(result.typesym).fprettyname:=prettyname;
  907. end;
  908. current_filepos:=oldcurrent_filepos;
  909. { Note regarding hint directives:
  910. There is no need to remove the flags for them from the
  911. specialized generic symbol, because hint directives that
  912. follow the specialization are handled by the code in
  913. pdecl.types_dec and added to the type symbol.
  914. E.g.: TFoo = TBar<Blubb> deprecated;
  915. Here the symbol TBar$1$Blubb will contain the
  916. "sp_hint_deprecated" flag while the TFoo symbol won't.}
  917. case result.typ of
  918. { Build VMT indexes for classes and read hint directives }
  919. objectdef:
  920. begin
  921. if replaydepth>current_scanner.replay_stack_depth then
  922. begin
  923. try_consume_hintdirective(srsym.symoptions,srsym.deprecatedmsg);
  924. if replaydepth>current_scanner.replay_stack_depth then
  925. consume(_SEMICOLON);
  926. end;
  927. vmtbuilder:=TVMTBuilder.Create(tobjectdef(result));
  928. vmtbuilder.generate_vmt;
  929. vmtbuilder.free;
  930. end;
  931. { handle params, calling convention, etc }
  932. procvardef:
  933. begin
  934. hintsprocessed:=false;
  935. if replaydepth>current_scanner.replay_stack_depth then
  936. begin
  937. if not check_proc_directive(true) then
  938. begin
  939. hintsprocessed:=try_consume_hintdirective(ttypesym(srsym).symoptions,ttypesym(srsym).deprecatedmsg);
  940. if replaydepth>current_scanner.replay_stack_depth then
  941. consume(_SEMICOLON);
  942. end
  943. else
  944. hintsprocessed:=true;
  945. end;
  946. if replaydepth>current_scanner.replay_stack_depth then
  947. parse_var_proc_directives(ttypesym(srsym));
  948. handle_calling_convention(tprocvardef(result),hcc_default_actions_intf);
  949. if not hintsprocessed and (replaydepth>current_scanner.replay_stack_depth) then
  950. begin
  951. try_consume_hintdirective(ttypesym(srsym).symoptions,ttypesym(srsym).deprecatedmsg);
  952. if replaydepth>current_scanner.replay_stack_depth then
  953. consume(_SEMICOLON);
  954. end;
  955. end;
  956. procdef:
  957. begin
  958. pdflags:=[pd_body,pd_implemen];
  959. if genericdef.owner.symtabletype=objectsymtable then
  960. include(pdflags,pd_object)
  961. else if genericdef.owner.symtabletype=recordsymtable then
  962. include(pdflags,pd_record);
  963. parse_proc_directives(pd,pdflags);
  964. while try_consume_hintdirective(pd.symoptions,pd.deprecatedmsg) do
  965. consume(_SEMICOLON);
  966. if parse_generic then
  967. handle_calling_convention(tprocdef(result),hcc_default_actions_intf)
  968. else
  969. handle_calling_convention(tprocdef(result),hcc_default_actions_impl);
  970. proc_add_definition(tprocdef(result));
  971. { for partial specializations we implicitely declare the routine as
  972. having its implementation although we'll not specialize it in reality }
  973. if parse_generic then
  974. unset_forwarddef(result);
  975. end;
  976. else
  977. { parse hint directives for records and arrays }
  978. if replaydepth>current_scanner.replay_stack_depth then begin
  979. try_consume_hintdirective(srsym.symoptions,srsym.deprecatedmsg);
  980. if replaydepth>current_scanner.replay_stack_depth then
  981. consume(_SEMICOLON);
  982. end;
  983. end;
  984. { Consume the remainder of the buffer }
  985. while current_scanner.replay_stack_depth>replaydepth do
  986. consume(token);
  987. if assigned(recordbuf) then
  988. begin
  989. if assigned(current_scanner.recordtokenbuf) then
  990. internalerror(2014050909);
  991. current_scanner.recordtokenbuf:=recordbuf;
  992. end;
  993. block_type:=old_block_type;
  994. current_procinfo:=old_current_procinfo;
  995. current_module.procinfo:=old_module_procinfo;
  996. if parse_class_parent then
  997. begin
  998. current_structdef:=old_current_structdef;
  999. current_genericdef:=old_current_genericdef;
  1000. current_specializedef:=old_current_specializedef;
  1001. end;
  1002. end;
  1003. { extract all created symbols and defs from the temporary symtable
  1004. and add them to the specializest }
  1005. for i:=tempst.SymList.Count-1 downto 0 do
  1006. begin
  1007. item:=tempst.SymList.Items[i];
  1008. { using changeowner the symbol is automatically added to the
  1009. new symtable }
  1010. tsym(item).ChangeOwner(specializest);
  1011. end;
  1012. for i:=tempst.DefList.Count-1 downto 0 do
  1013. begin
  1014. item:=tempst.DefList.Items[i];
  1015. { using changeowner the def is automatically added to the new
  1016. symtable }
  1017. tdef(item).ChangeOwner(specializest);
  1018. { for partial specializations we implicitely declare any methods as having their
  1019. implementations although we'll not specialize them in reality }
  1020. if parse_generic then
  1021. unset_forwarddef(tdef(item));
  1022. end;
  1023. { if a generic was declared during the specialization we need to
  1024. flag the specialize symtable accordingly }
  1025. if sto_has_generic in tempst.tableoptions then
  1026. specializest.includeoption(sto_has_generic);
  1027. tempst.free;
  1028. specialization_done(state);
  1029. { procdefs are only added once we know which overload we use }
  1030. if not parse_generic and (result.typ<>procdef) then
  1031. current_module.pendingspecializations.add(result.typename,result);
  1032. end;
  1033. generictypelist.free;
  1034. if assigned(genericdef) then
  1035. begin
  1036. { check the hints of the found generic symbol }
  1037. if genericdef.typ=procdef then
  1038. srsym:=tprocdef(genericdef).procsym
  1039. else
  1040. srsym:=genericdef.typesym;
  1041. check_hints(srsym,srsym.symoptions,srsym.deprecatedmsg);
  1042. end;
  1043. end;
  1044. procedure generate_specialization(var tt:tdef;parse_class_parent:boolean;_prettyname:string;parsedtype:tdef;symname:string;parsedpos:tfileposinfo);
  1045. var
  1046. context : tspecializationcontext;
  1047. genericdef : tstoreddef;
  1048. begin
  1049. genericdef:=tstoreddef(generate_specialization_phase1(context,tt,parsedtype,symname,parsedpos));
  1050. if genericdef<>generrordef then
  1051. genericdef:=tstoreddef(generate_specialization_phase2(context,genericdef,parse_class_parent,_prettyname));
  1052. tt:=genericdef;
  1053. if assigned(context) then
  1054. context.free;
  1055. end;
  1056. function parse_generic_parameters(allowconstraints:boolean):tfphashobjectlist;
  1057. var
  1058. generictype : ttypesym;
  1059. i,firstidx : longint;
  1060. srsymtable : tsymtable;
  1061. basedef,def : tdef;
  1062. defname : tidstring;
  1063. allowconstructor,
  1064. doconsume : boolean;
  1065. constraintdata : tgenericconstraintdata;
  1066. old_block_type : tblock_type;
  1067. begin
  1068. result:=tfphashobjectlist.create(false);
  1069. firstidx:=0;
  1070. old_block_type:=block_type;
  1071. block_type:=bt_type;
  1072. repeat
  1073. if token=_ID then
  1074. begin
  1075. generictype:=ctypesym.create(orgpattern,cundefinedtype);
  1076. { type parameters need to be added as strict private }
  1077. generictype.visibility:=vis_strictprivate;
  1078. include(generictype.symoptions,sp_generic_para);
  1079. result.add(orgpattern,generictype);
  1080. end;
  1081. consume(_ID);
  1082. if try_to_consume(_COLON) then
  1083. begin
  1084. if not allowconstraints then
  1085. { TODO }
  1086. Message(parser_e_illegal_expression{ parser_e_generic_constraints_not_allowed_here});
  1087. { construct a name which can be used for a type specification }
  1088. constraintdata:=tgenericconstraintdata.create;
  1089. defname:='';
  1090. str(current_module.deflist.count,defname);
  1091. defname:='$gendef'+defname;
  1092. allowconstructor:=m_delphi in current_settings.modeswitches;
  1093. basedef:=generrordef;
  1094. repeat
  1095. doconsume:=true;
  1096. case token of
  1097. _CONSTRUCTOR:
  1098. begin
  1099. if not allowconstructor or (gcf_constructor in constraintdata.flags) then
  1100. Message(parser_e_illegal_expression);
  1101. include(constraintdata.flags,gcf_constructor);
  1102. allowconstructor:=false;
  1103. end;
  1104. _CLASS:
  1105. begin
  1106. if gcf_class in constraintdata.flags then
  1107. Message(parser_e_illegal_expression);
  1108. if basedef=generrordef then
  1109. include(constraintdata.flags,gcf_class)
  1110. else
  1111. Message(parser_e_illegal_expression);
  1112. end;
  1113. _RECORD:
  1114. begin
  1115. if ([gcf_constructor,gcf_class]*constraintdata.flags<>[])
  1116. or (constraintdata.interfaces.count>0) then
  1117. Message(parser_e_illegal_expression)
  1118. else
  1119. begin
  1120. srsymtable:=trecordsymtable.create(defname,0,1);
  1121. basedef:=crecorddef.create(defname,srsymtable);
  1122. include(constraintdata.flags,gcf_record);
  1123. allowconstructor:=false;
  1124. end;
  1125. end;
  1126. else
  1127. begin
  1128. { after single_type "token" is the trailing ",", ";" or
  1129. ">"! }
  1130. doconsume:=false;
  1131. { def is already set to a class or record }
  1132. if gcf_record in constraintdata.flags then
  1133. Message(parser_e_illegal_expression);
  1134. single_type(def, [stoAllowSpecialization]);
  1135. { only types that are inheritable are allowed }
  1136. if (def.typ<>objectdef) or
  1137. not (tobjectdef(def).objecttype in [odt_class,odt_interfacecom,odt_interfacecorba,odt_interfacejava,odt_javaclass]) then
  1138. Message1(type_e_class_or_interface_type_expected,def.typename)
  1139. else
  1140. case tobjectdef(def).objecttype of
  1141. odt_class,
  1142. odt_javaclass:
  1143. begin
  1144. if gcf_class in constraintdata.flags then
  1145. { "class" + concrete class is not allowed }
  1146. Message(parser_e_illegal_expression)
  1147. else
  1148. { do we already have a concrete class? }
  1149. if basedef<>generrordef then
  1150. Message(parser_e_illegal_expression)
  1151. else
  1152. basedef:=def;
  1153. end;
  1154. odt_interfacecom,
  1155. odt_interfacecorba,
  1156. odt_interfacejava,
  1157. odt_dispinterface:
  1158. constraintdata.interfaces.add(def);
  1159. else
  1160. ;
  1161. end;
  1162. end;
  1163. end;
  1164. if doconsume then
  1165. consume(token);
  1166. until not try_to_consume(_COMMA);
  1167. if ([gcf_class,gcf_constructor]*constraintdata.flags<>[]) or
  1168. (constraintdata.interfaces.count>1) or
  1169. (
  1170. (basedef.typ=objectdef) and
  1171. (tobjectdef(basedef).objecttype in [odt_javaclass,odt_class])
  1172. ) then
  1173. begin
  1174. if basedef.typ=errordef then
  1175. { don't pass an errordef as a parent to a tobjectdef }
  1176. basedef:=class_tobject
  1177. else
  1178. if (basedef.typ<>objectdef) or
  1179. not (tobjectdef(basedef).objecttype in [odt_javaclass,odt_class]) then
  1180. internalerror(2012101101);
  1181. basedef:=cobjectdef.create(tobjectdef(basedef).objecttype,defname,tobjectdef(basedef),false);
  1182. for i:=0 to constraintdata.interfaces.count-1 do
  1183. tobjectdef(basedef).implementedinterfaces.add(
  1184. timplementedinterface.create(tobjectdef(constraintdata.interfaces[i])));
  1185. end
  1186. else
  1187. if constraintdata.interfaces.count=1 then
  1188. begin
  1189. if basedef.typ<>errordef then
  1190. internalerror(2013021601);
  1191. def:=tdef(constraintdata.interfaces[0]);
  1192. basedef:=cobjectdef.create(tobjectdef(def).objecttype,defname,tobjectdef(def),false);
  1193. constraintdata.interfaces.delete(0);
  1194. end;
  1195. if basedef.typ<>errordef then
  1196. with tstoreddef(basedef) do
  1197. begin
  1198. genconstraintdata:=tgenericconstraintdata.create;
  1199. genconstraintdata.flags:=constraintdata.flags;
  1200. genconstraintdata.interfaces.assign(constraintdata.interfaces);
  1201. include(defoptions,df_genconstraint);
  1202. end;
  1203. for i:=firstidx to result.count-1 do
  1204. ttypesym(result[i]).typedef:=basedef;
  1205. { we need a typesym in case we do a Delphi-mode inline
  1206. specialization with this parameter; so just use the first sym }
  1207. if not assigned(basedef.typesym) then
  1208. basedef.typesym:=ttypesym(result[firstidx]);
  1209. firstidx:=result.count;
  1210. constraintdata.free;
  1211. end
  1212. else
  1213. begin
  1214. if token=_SEMICOLON then
  1215. begin
  1216. { two different typeless parameters are considered as incompatible }
  1217. for i:=firstidx to result.count-1 do
  1218. begin
  1219. ttypesym(result[i]).typedef:=cundefineddef.create(false);
  1220. ttypesym(result[i]).typedef.typesym:=ttypesym(result[i]);
  1221. end;
  1222. { a semicolon terminates a type parameter group }
  1223. firstidx:=result.count;
  1224. end;
  1225. end;
  1226. until not (try_to_consume(_COMMA) or try_to_consume(_SEMICOLON));
  1227. { two different typeless parameters are considered as incompatible }
  1228. for i:=firstidx to result.count-1 do
  1229. begin
  1230. ttypesym(result[i]).typedef:=cundefineddef.create(false);
  1231. ttypesym(result[i]).typedef.typesym:=ttypesym(result[i]);
  1232. end;
  1233. block_type:=old_block_type;
  1234. end;
  1235. procedure insert_generic_parameter_types(def:tstoreddef;genericdef:tstoreddef;genericlist:tfphashobjectlist);
  1236. var
  1237. i : longint;
  1238. generictype,sym : ttypesym;
  1239. st : tsymtable;
  1240. begin
  1241. def.genericdef:=genericdef;
  1242. if not assigned(genericlist) then
  1243. exit;
  1244. if assigned(genericdef) then
  1245. include(def.defoptions,df_specialization)
  1246. else
  1247. if genericlist.count>0 then
  1248. include(def.defoptions,df_generic);
  1249. case def.typ of
  1250. recorddef,objectdef: st:=tabstractrecorddef(def).symtable;
  1251. arraydef: st:=tarraydef(def).symtable;
  1252. procvardef,procdef: st:=tabstractprocdef(def).parast;
  1253. else
  1254. internalerror(201101020);
  1255. end;
  1256. if (genericlist.count>0) and not assigned(def.genericparas) then
  1257. def.genericparas:=tfphashobjectlist.create(false);
  1258. for i:=0 to genericlist.count-1 do
  1259. begin
  1260. generictype:=ttypesym(genericlist[i]);
  1261. if assigned(generictype.owner) then
  1262. begin
  1263. sym:=ctypesym.create(genericlist.nameofindex(i),generictype.typedef);
  1264. { type parameters need to be added as strict private }
  1265. sym.visibility:=vis_strictprivate;
  1266. st.insert(sym);
  1267. include(sym.symoptions,sp_generic_para);
  1268. end
  1269. else
  1270. begin
  1271. if (generictype.typedef.typ=undefineddef) and (generictype.typedef<>cundefinedtype) then
  1272. begin
  1273. { the generic parameters were parsed before the genericdef existed thus the
  1274. undefineddefs were added as part of the parent symtable }
  1275. if assigned(generictype.typedef.owner) then
  1276. generictype.typedef.owner.DefList.Extract(generictype.typedef);
  1277. generictype.typedef.changeowner(st);
  1278. end;
  1279. st.insert(generictype);
  1280. include(generictype.symoptions,sp_generic_para);
  1281. end;
  1282. def.genericparas.add(genericlist.nameofindex(i),generictype);
  1283. end;
  1284. end;
  1285. procedure maybe_insert_generic_rename_symbol(const name:tidstring;genericlist:tfphashobjectlist);
  1286. var
  1287. gensym : ttypesym;
  1288. begin
  1289. { for generics in non-Delphi modes we insert a private type symbol
  1290. that has the same base name as the currently parsed generic and
  1291. that references this defs }
  1292. if not (m_delphi in current_settings.modeswitches) and
  1293. (
  1294. (
  1295. parse_generic and
  1296. assigned(genericlist) and
  1297. (genericlist.count>0)
  1298. ) or
  1299. (
  1300. assigned(current_specializedef) and
  1301. assigned(current_structdef.genericdef) and
  1302. (current_structdef.genericdef.typ in [objectdef,recorddef]) and
  1303. (pos('$',name)>0)
  1304. )
  1305. ) then
  1306. begin
  1307. { we need to pass nil as def here, because the constructor wants
  1308. to set the typesym of the def which is not what we want }
  1309. gensym:=ctypesym.create(copy(name,1,pos('$',name)-1),nil);
  1310. gensym.typedef:=current_structdef;
  1311. include(gensym.symoptions,sp_internal);
  1312. { the symbol should be only visible to the generic class
  1313. itself }
  1314. gensym.visibility:=vis_strictprivate;
  1315. symtablestack.top.insert(gensym);
  1316. end;
  1317. end;
  1318. function generate_generic_name(const name:tidstring;specializename:ansistring;owner_hierarchy:string):tidstring;
  1319. var
  1320. crc : cardinal;
  1321. begin
  1322. if specializename='' then
  1323. internalerror(2012061901);
  1324. { build the new type's name }
  1325. crc:=UpdateCrc32(0,specializename[1],length(specializename));
  1326. result:=name+'$crc'+hexstr(crc,8);
  1327. if owner_hierarchy<>'' then
  1328. begin
  1329. crc:=UpdateCrc32(0,owner_hierarchy[1],length(owner_hierarchy));
  1330. result:=result+'$crc'+hexstr(crc,8);
  1331. end;
  1332. end;
  1333. procedure split_generic_name(const name:tidstring;out nongeneric:string;out count:longint);
  1334. var
  1335. i,code : longint;
  1336. countstr : string;
  1337. begin
  1338. for i:=length(name) downto 1 do
  1339. if name[i]='$' then
  1340. begin
  1341. nongeneric:=copy(name,1,i-1);
  1342. countstr:=copy(name,i+1,length(name)-i);
  1343. val(countstr,count,code);
  1344. if code<>0 then
  1345. break;
  1346. exit;
  1347. end;
  1348. nongeneric:=name;
  1349. count:=0;
  1350. end;
  1351. procedure add_generic_dummysym(sym:tsym);
  1352. var
  1353. list: TFPObjectList;
  1354. srsym : tsym;
  1355. srsymtable : tsymtable;
  1356. entry : tgenericdummyentry;
  1357. begin
  1358. if sp_generic_dummy in sym.symoptions then
  1359. begin
  1360. { did we already search for a generic with that name? }
  1361. list:=tfpobjectlist(current_module.genericdummysyms.find(sym.name));
  1362. if not assigned(list) then
  1363. begin
  1364. list:=tfpobjectlist.create(true);
  1365. current_module.genericdummysyms.add(sym.name,list);
  1366. end;
  1367. { is the dummy sym still "dummy"? }
  1368. if (sym.typ=typesym) and
  1369. (
  1370. { dummy sym defined in mode Delphi }
  1371. (ttypesym(sym).typedef.typ=undefineddef) or
  1372. { dummy sym defined in non-Delphi mode }
  1373. (tstoreddef(ttypesym(sym).typedef).is_generic)
  1374. ) then
  1375. begin
  1376. { do we have a non-generic type of the same name
  1377. available? }
  1378. if not searchsym_with_flags(sym.name,srsym,srsymtable,[ssf_no_addsymref]) then
  1379. srsym:=nil;
  1380. end
  1381. else if (sym.typ=procsym) and
  1382. (tprocsym(sym).procdeflist.count>0) then
  1383. srsym:=sym
  1384. else
  1385. { dummy symbol is already not so dummy anymore }
  1386. srsym:=nil;
  1387. if assigned(srsym) then
  1388. begin
  1389. entry:=tgenericdummyentry.create;
  1390. entry.resolvedsym:=srsym;
  1391. entry.dummysym:=sym;
  1392. list.add(entry);
  1393. end;
  1394. end;
  1395. end;
  1396. function resolve_generic_dummysym(const name:tidstring):tsym;
  1397. var
  1398. list : tfpobjectlist;
  1399. begin
  1400. list:=tfpobjectlist(current_module.genericdummysyms.find(name));
  1401. if assigned(list) and (list.count>0) then
  1402. result:=tgenericdummyentry(list.last).resolvedsym
  1403. else
  1404. result:=nil;
  1405. end;
  1406. function could_be_generic(const name:tidstring):boolean;
  1407. begin
  1408. result:=(name<>'') and
  1409. (current_module.genericdummysyms.findindexof(name)>=0);
  1410. end;
  1411. procedure specialization_init(genericdef:tdef;var state: tspecializationstate);
  1412. var
  1413. pu : tused_unit;
  1414. hmodule : tmodule;
  1415. unitsyms : TFPHashObjectList;
  1416. sym : tsym;
  1417. i : Integer;
  1418. begin
  1419. if not assigned(genericdef) then
  1420. internalerror(200705151);
  1421. { Setup symtablestack at definition time
  1422. to get types right, however this is not perfect, we should probably record
  1423. the resolved symbols }
  1424. state.oldsymtablestack:=symtablestack;
  1425. state.oldextendeddefs:=current_module.extendeddefs;
  1426. state.oldgenericdummysyms:=current_module.genericdummysyms;
  1427. current_module.extendeddefs:=TFPHashObjectList.create(true);
  1428. current_module.genericdummysyms:=tfphashobjectlist.create(true);
  1429. symtablestack:=tdefawaresymtablestack.create;
  1430. hmodule:=find_module_from_symtable(genericdef.owner);
  1431. if hmodule=nil then
  1432. internalerror(200705152);
  1433. { collect all unit syms in the generic's unit as we need to establish
  1434. their unitsym.module link again so that unit identifiers can be used }
  1435. unitsyms:=tfphashobjectlist.create(false);
  1436. if (hmodule<>current_module) and assigned(hmodule.globalsymtable) then
  1437. for i:=0 to hmodule.globalsymtable.symlist.count-1 do
  1438. begin
  1439. sym:=tsym(hmodule.globalsymtable.symlist[i]);
  1440. if sym.typ=unitsym then
  1441. unitsyms.add(upper(sym.realname),sym);
  1442. end;
  1443. { add all units if we are specializing inside the current unit (as the
  1444. generic could have been declared in the implementation part), but load
  1445. only interface units, if we are in a different unit as then the generic
  1446. needs to be in the interface section }
  1447. pu:=tused_unit(hmodule.used_units.first);
  1448. while assigned(pu) do
  1449. begin
  1450. if not assigned(pu.u.globalsymtable) then
  1451. { in certain circular, but valid unit constellations it can happen
  1452. that we specialize a generic in a different unit that was used
  1453. in the implementation section of the generic's unit and were the
  1454. interface is still being parsed and thus the localsymtable is in
  1455. reality the global symtable }
  1456. if pu.u.in_interface then
  1457. symtablestack.push(pu.u.localsymtable)
  1458. else
  1459. internalerror(200705153)
  1460. else
  1461. symtablestack.push(pu.u.globalsymtable);
  1462. sym:=tsym(unitsyms.find(pu.u.modulename^));
  1463. if assigned(sym) and not assigned(tunitsym(sym).module) then
  1464. tunitsym(sym).module:=pu.u;
  1465. pu:=tused_unit(pu.next);
  1466. end;
  1467. unitsyms.free;
  1468. if assigned(hmodule.globalsymtable) then
  1469. symtablestack.push(hmodule.globalsymtable);
  1470. { push the localsymtable if needed }
  1471. if ((hmodule<>current_module) or not current_module.in_interface)
  1472. and assigned(hmodule.localsymtable) then
  1473. symtablestack.push(hmodule.localsymtable);
  1474. end;
  1475. procedure specialization_done(var state: tspecializationstate);
  1476. begin
  1477. { Restore symtablestack }
  1478. current_module.extendeddefs.free;
  1479. current_module.extendeddefs:=state.oldextendeddefs;
  1480. current_module.genericdummysyms.free;
  1481. current_module.genericdummysyms:=state.oldgenericdummysyms;
  1482. symtablestack.free;
  1483. symtablestack:=state.oldsymtablestack;
  1484. { clear the state record to be on the safe side }
  1485. fillchar(state, sizeof(state), 0);
  1486. end;
  1487. {****************************************************************************
  1488. SPECIALIZATION BODY GENERATION
  1489. ****************************************************************************}
  1490. procedure process_procdef(def:tprocdef;hmodule:tmodule);
  1491. var
  1492. oldcurrent_filepos : tfileposinfo;
  1493. begin
  1494. if assigned(def.genericdef) and
  1495. (def.genericdef.typ=procdef) and
  1496. assigned(tprocdef(def.genericdef).generictokenbuf) then
  1497. begin
  1498. if not assigned(tprocdef(def.genericdef).generictokenbuf) then
  1499. internalerror(2015061902);
  1500. oldcurrent_filepos:=current_filepos;
  1501. current_filepos:=tprocdef(def.genericdef).fileinfo;
  1502. { use the index the module got from the current compilation process }
  1503. current_filepos.moduleindex:=hmodule.unit_index;
  1504. current_tokenpos:=current_filepos;
  1505. current_scanner.startreplaytokens(tprocdef(def.genericdef).generictokenbuf);
  1506. read_proc_body(def);
  1507. current_filepos:=oldcurrent_filepos;
  1508. end
  1509. { synthetic routines will be implemented afterwards }
  1510. else if def.synthetickind=tsk_none then
  1511. MessagePos1(def.fileinfo,sym_e_forward_not_resolved,def.fullprocname(false));
  1512. end;
  1513. function process_abstractrecorddef(def:tabstractrecorddef):boolean;
  1514. var
  1515. i : longint;
  1516. hp : tdef;
  1517. hmodule : tmodule;
  1518. begin
  1519. result:=true;
  1520. hmodule:=find_module_from_symtable(def.genericdef.owner);
  1521. if hmodule=nil then
  1522. internalerror(201202041);
  1523. for i:=0 to def.symtable.DefList.Count-1 do
  1524. begin
  1525. hp:=tdef(def.symtable.DefList[i]);
  1526. if hp.typ=procdef then
  1527. begin
  1528. { only generate the code if we need a body }
  1529. if assigned(tprocdef(hp).struct) and not tprocdef(hp).forwarddef then
  1530. continue;
  1531. { and the body is available already (which is implicitely the
  1532. case if the generic routine is part of another unit) }
  1533. if ((hmodule=current_module) or (hmodule.state=ms_compile)) and
  1534. { may not be assigned in case it's a synthetic procdef that
  1535. still needs to be generated }
  1536. assigned(tprocdef(hp).genericdef) and
  1537. tprocdef(tprocdef(hp).genericdef).forwarddef then
  1538. begin
  1539. result:=false;
  1540. continue;
  1541. end;
  1542. process_procdef(tprocdef(hp),hmodule);
  1543. end
  1544. else
  1545. if hp.typ in [objectdef,recorddef] then
  1546. { generate code for subtypes as well }
  1547. result:=process_abstractrecorddef(tabstractrecorddef(hp)) and result;
  1548. end;
  1549. end;
  1550. procedure generate_specialization_procs;
  1551. var
  1552. i : longint;
  1553. list,
  1554. readdlist : tfpobjectlist;
  1555. def : tstoreddef;
  1556. state : tspecializationstate;
  1557. hmodule : tmodule;
  1558. begin
  1559. { first copy all entries and then work with that list to ensure that
  1560. we don't get an infinite recursion }
  1561. list:=tfpobjectlist.create(false);
  1562. readdlist:=tfpobjectlist.create(false);
  1563. for i:=0 to current_module.pendingspecializations.Count-1 do
  1564. list.add(current_module.pendingspecializations.Items[i]);
  1565. current_module.pendingspecializations.clear;
  1566. for i:=0 to list.count-1 do
  1567. begin
  1568. def:=tstoreddef(list[i]);
  1569. if not tstoreddef(def).is_specialization then
  1570. continue;
  1571. case def.typ of
  1572. procdef:
  1573. begin
  1574. { the use of forwarddef should not backfire as the
  1575. specialization always belongs to the current module }
  1576. if not tprocdef(def).forwarddef then
  1577. continue;
  1578. if not assigned(def.genericdef) then
  1579. internalerror(2015061903);
  1580. hmodule:=find_module_from_symtable(def.genericdef.owner);
  1581. if hmodule=nil then
  1582. internalerror(2015061904);
  1583. { we need to check for a forward declaration only if the
  1584. generic was declared in the same unit (otherwise there
  1585. should be one) }
  1586. if ((hmodule=current_module) or (hmodule.state=ms_compile)) and tprocdef(def.genericdef).forwarddef then
  1587. begin
  1588. readdlist.add(def);
  1589. continue;
  1590. end;
  1591. specialization_init(tstoreddef(def).genericdef,state);
  1592. process_procdef(tprocdef(def),hmodule);
  1593. specialization_done(state);
  1594. end;
  1595. recorddef,
  1596. objectdef:
  1597. begin
  1598. specialization_init(tstoreddef(def).genericdef,state);
  1599. if not process_abstractrecorddef(tabstractrecorddef(def)) then
  1600. readdlist.add(def);
  1601. specialization_done(state);
  1602. end;
  1603. else
  1604. ;
  1605. end;
  1606. end;
  1607. { add those defs back to the pending list for which we don't yet have
  1608. all method bodies }
  1609. for i:=0 to readdlist.count-1 do
  1610. current_module.pendingspecializations.add(tstoreddef(readdlist[i]).typename,readdlist[i]);
  1611. readdlist.free;
  1612. list.free;
  1613. end;
  1614. procedure maybe_add_pending_specialization(def:tdef);
  1615. var
  1616. hmodule : tmodule;
  1617. st : tsymtable;
  1618. begin
  1619. if parse_generic then
  1620. exit;
  1621. st:=def.owner;
  1622. while st.symtabletype in [localsymtable] do
  1623. st:=st.defowner.owner;
  1624. hmodule:=find_module_from_symtable(st);
  1625. if tstoreddef(def).is_specialization and (hmodule=current_module) then
  1626. current_module.pendingspecializations.add(def.typename,def);
  1627. end;
  1628. end.