ncal.pas 159 KB

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  1. {
  2. This file implements the node for sub procedure calling.
  3. Copyright (c) 1998-2002 by Florian Klaempfl
  4. This program is free software; you can redistribute it and/or modify
  5. it under the terms of the GNU General Public License as published by
  6. the Free Software Foundation; either version 2 of the License, or
  7. (at your option) any later version.
  8. This program is distributed in the hope that it will be useful,
  9. but WITHOUT ANY WARRANTY; without even the implied warranty of
  10. MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  11. GNU General Public License for more details.
  12. You should have received a copy of the GNU General Public License
  13. along with this program; if not, write to the Free Software
  14. Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
  15. ****************************************************************************
  16. }
  17. unit ncal;
  18. {$i fpcdefs.inc}
  19. interface
  20. uses
  21. cutils,cclasses,
  22. globtype,constexp,
  23. paramgr,parabase,cgbase,
  24. node,nbas,nutils,
  25. {$ifdef state_tracking}
  26. nstate,
  27. {$endif state_tracking}
  28. symbase,symtype,symsym,symdef,symtable;
  29. type
  30. tcallnodeflag = (
  31. cnf_typedefset,
  32. cnf_return_value_used,
  33. cnf_do_inline,
  34. cnf_inherited,
  35. cnf_anon_inherited,
  36. cnf_new_call,
  37. cnf_dispose_call,
  38. cnf_member_call, { called with implicit methodpointer tree }
  39. cnf_uses_varargs, { varargs are used in the declaration }
  40. cnf_create_failed, { exception thrown in constructor -> don't call beforedestruction }
  41. cnf_objc_processed, { the procedure name has been set to the appropriate objc_msgSend* variant -> don't process again }
  42. cnf_objc_id_call, { the procedure is a member call via id -> any ObjC method of any ObjC type in scope is fair game }
  43. cnf_unit_specified { the unit in which the procedure has to be searched has been specified }
  44. );
  45. tcallnodeflags = set of tcallnodeflag;
  46. tcallparanode = class;
  47. tcallnode = class(tbinarynode)
  48. private
  49. { number of parameters passed from the source, this does not include the hidden parameters }
  50. paralength : smallint;
  51. function is_simple_para_load(p:tnode; may_be_in_reg: boolean):boolean;
  52. procedure maybe_load_in_temp(var p:tnode);
  53. function gen_high_tree(var p:tnode;paradef:tdef):tnode;
  54. function gen_procvar_context_tree:tnode;
  55. function gen_self_tree:tnode;
  56. function gen_vmt_tree:tnode;
  57. procedure gen_hidden_parameters;
  58. function funcret_can_be_reused:boolean;
  59. procedure maybe_create_funcret_node;
  60. procedure bind_parasym;
  61. procedure add_init_statement(n:tnode);
  62. procedure add_done_statement(n:tnode);
  63. procedure convert_carg_array_of_const;
  64. procedure order_parameters;
  65. procedure check_inlining;
  66. function pass1_normal:tnode;
  67. procedure register_created_object_types;
  68. function get_expect_loc: tcgloc;
  69. protected
  70. procedure objc_convert_to_message_send;virtual;
  71. private
  72. { inlining support }
  73. inlinelocals : TFPObjectList;
  74. inlineinitstatement,
  75. inlinecleanupstatement : tstatementnode;
  76. procedure createinlineparas;
  77. function replaceparaload(var n: tnode; arg: pointer): foreachnoderesult;
  78. procedure createlocaltemps(p:TObject;arg:pointer);
  79. function optimize_funcret_assignment(inlineblock: tblocknode): tnode;
  80. function pass1_inline:tnode;
  81. protected
  82. pushedparasize : longint;
  83. { Objective-C support: force the call node to call the routine with
  84. this name rather than the name of symtableprocentry (don't store
  85. to ppu, is set while processing the node) }
  86. fobjcforcedprocname: pshortstring;
  87. public
  88. { the symbol containing the definition of the procedure }
  89. { to call }
  90. symtableprocentry : tprocsym;
  91. symtableprocentryderef : tderef;
  92. { symtable where the entry was found, needed for with support }
  93. symtableproc : TSymtable;
  94. { the definition of the procedure to call }
  95. procdefinition : tabstractprocdef;
  96. procdefinitionderef : tderef;
  97. { tree that contains the pointer to the object for this method }
  98. methodpointer : tnode;
  99. { initialize/finalization of temps }
  100. callinitblock,
  101. callcleanupblock : tblocknode;
  102. { function return node for initialized types or supplied return variable.
  103. When the result is passed in a parameter then it is set to nil }
  104. funcretnode : tnode;
  105. { varargs parasyms }
  106. varargsparas : tvarargsparalist;
  107. { separately specified resultdef for some compilerprocs (e.g. }
  108. { you can't have a function with an "array of char" resultdef }
  109. { the RTL) (JM) }
  110. typedef: tdef;
  111. callnodeflags : tcallnodeflags;
  112. { only the processor specific nodes need to override this }
  113. { constructor }
  114. constructor create(l:tnode; v : tprocsym;st : TSymtable; mp: tnode; callflags:tcallnodeflags);virtual;
  115. constructor create_procvar(l,r:tnode);
  116. constructor createintern(const name: string; params: tnode);
  117. constructor createinternfromunit(const fromunit, procname: string; params: tnode);
  118. constructor createinternres(const name: string; params: tnode; res:tdef);
  119. constructor createinternresfromunit(const fromunit, procname: string; params: tnode; res:tdef);
  120. constructor createinternreturn(const name: string; params: tnode; returnnode : tnode);
  121. destructor destroy;override;
  122. constructor ppuload(t:tnodetype;ppufile:tcompilerppufile);override;
  123. procedure ppuwrite(ppufile:tcompilerppufile);override;
  124. procedure buildderefimpl;override;
  125. procedure derefimpl;override;
  126. function dogetcopy : tnode;override;
  127. { Goes through all symbols in a class and subclasses and calls
  128. verify abstract for each .
  129. }
  130. procedure verifyabstractcalls;
  131. { called for each definition in a class and verifies if a method
  132. is abstract or not, if it is abstract, give out a warning
  133. }
  134. procedure verifyabstract(sym:TObject;arg:pointer);
  135. procedure insertintolist(l : tnodelist);override;
  136. function pass_1 : tnode;override;
  137. function pass_typecheck:tnode;override;
  138. {$ifdef state_tracking}
  139. function track_state_pass(exec_known:boolean):boolean;override;
  140. {$endif state_tracking}
  141. function docompare(p: tnode): boolean; override;
  142. procedure printnodedata(var t:text);override;
  143. function para_count:longint;
  144. function required_para_count:longint;
  145. { checks if there are any parameters which end up at the stack, i.e.
  146. which have LOC_REFERENCE and set pi_has_stackparameter if this applies }
  147. procedure check_stack_parameters;
  148. { force the name of the to-be-called routine to a particular string,
  149. used for Objective-C message sending. }
  150. property parameters : tnode read left write left;
  151. private
  152. AbstractMethodsList : TFPHashList;
  153. end;
  154. tcallnodeclass = class of tcallnode;
  155. tcallparaflag = (
  156. cpf_is_colon_para,
  157. cpf_varargs_para { belongs this para to varargs }
  158. );
  159. tcallparaflags = set of tcallparaflag;
  160. tcallparanode = class(ttertiarynode)
  161. private
  162. fcontains_stack_tainting_call_cached,
  163. ffollowed_by_stack_tainting_call_cached : boolean;
  164. public
  165. callparaflags : tcallparaflags;
  166. parasym : tparavarsym;
  167. { only the processor specific nodes need to override this }
  168. { constructor }
  169. constructor create(expr,next : tnode);virtual;
  170. destructor destroy;override;
  171. constructor ppuload(t:tnodetype;ppufile:tcompilerppufile);override;
  172. procedure ppuwrite(ppufile:tcompilerppufile);override;
  173. function dogetcopy : tnode;override;
  174. procedure insertintolist(l : tnodelist);override;
  175. function pass_typecheck : tnode;override;
  176. function pass_1 : tnode;override;
  177. procedure get_paratype;
  178. procedure firstcallparan;
  179. procedure insert_typeconv;
  180. procedure secondcallparan;virtual;abstract;
  181. function docompare(p: tnode): boolean; override;
  182. procedure printnodetree(var t:text);override;
  183. { returns whether a parameter contains a type conversion from }
  184. { a refcounted into a non-refcounted type }
  185. function can_be_inlined: boolean;
  186. property nextpara : tnode read right write right;
  187. { third is reused to store the parameter name (only while parsing
  188. vardispatch calls, never in real node tree) and copy of 'high'
  189. parameter tree when the parameter is an open array of managed type }
  190. property parametername : tnode read third write third;
  191. { returns whether the evaluation of this parameter involves a
  192. stack tainting call }
  193. function contains_stack_tainting_call: boolean;
  194. { initialises the fcontains_stack_tainting_call_cached field with the
  195. result of contains_stack_tainting_call so that it can be quickly
  196. accessed via the contains_stack_tainting_call_cached property }
  197. procedure init_contains_stack_tainting_call_cache;
  198. { returns result of contains_stack_tainting_call cached during last
  199. call to init_contains_stack_tainting_call_cache }
  200. property contains_stack_tainting_call_cached: boolean read fcontains_stack_tainting_call_cached;
  201. { returns whether this parameter is followed by at least one other
  202. parameter whose evaluation involves a stack tainting parameter
  203. (result is only valid after order_parameters has been called) }
  204. property followed_by_stack_tainting_call_cached: boolean read ffollowed_by_stack_tainting_call_cached;
  205. end;
  206. tcallparanodeclass = class of tcallparanode;
  207. tdispcalltype = (
  208. dct_method,
  209. dct_propget,
  210. dct_propput
  211. );
  212. function reverseparameters(p: tcallparanode): tcallparanode;
  213. function translate_disp_call(selfnode,parametersnode: tnode; calltype: tdispcalltype; const methodname : ansistring;
  214. dispid : longint;resultdef : tdef) : tnode;
  215. var
  216. ccallnode : tcallnodeclass = tcallnode;
  217. ccallparanode : tcallparanodeclass = tcallparanode;
  218. { Current callnode, this is needed for having a link
  219. between the callparanodes and the callnode they belong to }
  220. aktcallnode : tcallnode;
  221. implementation
  222. uses
  223. systems,
  224. verbose,globals,
  225. symconst,defutil,defcmp,
  226. htypechk,pass_1,
  227. ncnv,nld,ninl,nadd,ncon,nmem,nset,nobjc,
  228. objcutil,
  229. procinfo,cpuinfo,
  230. wpobase
  231. ;
  232. type
  233. tobjectinfoitem = class(tlinkedlistitem)
  234. objinfo : tobjectdef;
  235. constructor create(def : tobjectdef);
  236. end;
  237. {****************************************************************************
  238. HELPERS
  239. ****************************************************************************}
  240. function reverseparameters(p: tcallparanode): tcallparanode;
  241. var
  242. hp1, hp2: tcallparanode;
  243. begin
  244. hp1:=nil;
  245. while assigned(p) do
  246. begin
  247. { pull out }
  248. hp2:=p;
  249. p:=tcallparanode(p.right);
  250. { pull in }
  251. hp2.right:=hp1;
  252. hp1:=hp2;
  253. end;
  254. reverseparameters:=hp1;
  255. end;
  256. function translate_disp_call(selfnode,parametersnode: tnode; calltype: tdispcalltype; const methodname : ansistring;
  257. dispid : longint;resultdef : tdef) : tnode;
  258. const
  259. DISPATCH_METHOD = $1;
  260. DISPATCH_PROPERTYGET = $2;
  261. DISPATCH_PROPERTYPUT = $4;
  262. DISPATCH_PROPERTYPUTREF = $8;
  263. DISPATCH_CONSTRUCT = $4000;
  264. calltypes: array[tdispcalltype] of byte = (
  265. DISPATCH_METHOD, DISPATCH_PROPERTYGET, DISPATCH_PROPERTYPUT
  266. );
  267. var
  268. statements : tstatementnode;
  269. result_data,
  270. params : ttempcreatenode;
  271. paramssize : cardinal;
  272. calldescnode : tdataconstnode;
  273. resultvalue : tnode;
  274. para : tcallparanode;
  275. namedparacount,
  276. paracount : longint;
  277. assignmenttype,
  278. vardatadef,
  279. pvardatadef : tdef;
  280. useresult: boolean;
  281. restype: byte;
  282. names : ansistring;
  283. variantdispatch : boolean;
  284. function is_byref_para(out assign_type: tdef): boolean;
  285. begin
  286. result:=(assigned(para.parasym) and (para.parasym.varspez in [vs_var,vs_out,vs_constref])) or
  287. (variantdispatch and valid_for_var(para.left,false));
  288. if result or (para.left.resultdef.typ in [variantdef]) then
  289. assign_type:=voidpointertype
  290. else
  291. case para.left.resultdef.size of
  292. 1..4:
  293. assign_type:=u32inttype;
  294. 8:
  295. assign_type:=u64inttype;
  296. else
  297. internalerror(2007042801);
  298. end;
  299. end;
  300. function getvardef(sourcedef: TDef): longint;
  301. begin
  302. if is_ansistring(sourcedef) then
  303. result:=varStrArg
  304. else
  305. if is_unicodestring(sourcedef) then
  306. result:=varUStrArg
  307. else
  308. if is_interfacecom_or_dispinterface(sourcedef) then
  309. begin
  310. { distinct IDispatch and IUnknown interfaces }
  311. if tobjectdef(sourcedef).is_related(tobjectdef(search_system_type('IDISPATCH').typedef)) then
  312. result:=vardispatch
  313. else
  314. result:=varunknown;
  315. end
  316. else
  317. result:=sourcedef.getvardef;
  318. end;
  319. begin
  320. variantdispatch:=selfnode.resultdef.typ=variantdef;
  321. result:=internalstatements(statements);
  322. useresult := assigned(resultdef) and not is_void(resultdef);
  323. if useresult then
  324. begin
  325. { get temp for the result }
  326. result_data:=ctempcreatenode.create(colevarianttype,colevarianttype.size,tt_persistent,true);
  327. addstatement(statements,result_data);
  328. end;
  329. { first, count and check parameters }
  330. para:=tcallparanode(parametersnode);
  331. paracount:=0;
  332. namedparacount:=0;
  333. while assigned(para) do
  334. begin
  335. typecheckpass(para.left);
  336. { skip hidden dispinterface parameters like $self, $result,
  337. but count skipped variantdispatch parameters. }
  338. if (not variantdispatch) and (para.left.nodetype=nothingn) then
  339. begin
  340. para:=tcallparanode(para.nextpara);
  341. continue;
  342. end;
  343. inc(paracount);
  344. if assigned(para.parametername) then
  345. inc(namedparacount);
  346. { insert some extra casts }
  347. if para.left.nodetype=stringconstn then
  348. inserttypeconv_internal(para.left,cwidestringtype)
  349. { force automatable boolean type }
  350. else if is_boolean(para.left.resultdef) then
  351. inserttypeconv_internal(para.left,bool16type)
  352. { force automatable float type }
  353. else if is_extended(para.left.resultdef)
  354. and (current_settings.fputype<>fpu_none) then
  355. inserttypeconv_internal(para.left,s64floattype)
  356. else if is_shortstring(para.left.resultdef) then
  357. inserttypeconv_internal(para.left,cwidestringtype)
  358. { skip this check if we've already typecasted to automatable type }
  359. else if (para.left.nodetype<>nothingn) and (not is_automatable(para.left.resultdef)) then
  360. CGMessagePos1(para.left.fileinfo,type_e_not_automatable,para.left.resultdef.typename);
  361. para:=tcallparanode(para.nextpara);
  362. end;
  363. { create a temp to store parameter values }
  364. params:=ctempcreatenode.create(voidtype,0,tt_persistent,true);
  365. addstatement(statements,params);
  366. calldescnode:=cdataconstnode.create;
  367. if not variantdispatch then { generate a tdispdesc record }
  368. begin
  369. { dispid }
  370. calldescnode.append(dispid,sizeof(dispid));
  371. { restype }
  372. if useresult then
  373. restype:=getvardef(resultdef)
  374. else
  375. restype:=0;
  376. calldescnode.appendbyte(restype);
  377. end;
  378. calldescnode.appendbyte(calltypes[calltype]);
  379. calldescnode.appendbyte(paracount);
  380. calldescnode.appendbyte(namedparacount);
  381. { build up parameters and description }
  382. para:=tcallparanode(parametersnode);
  383. paramssize:=0;
  384. names := '';
  385. while assigned(para) do
  386. begin
  387. { Skipped parameters are actually (varType=varError, vError=DISP_E_PARAMNOTFOUND).
  388. Generate only varType here, the value will be added by RTL. }
  389. if para.left.nodetype=nothingn then
  390. begin
  391. if variantdispatch then
  392. calldescnode.appendbyte(varError);
  393. para:=tcallparanode(para.nextpara);
  394. continue;
  395. end;
  396. if assigned(para.parametername) then
  397. begin
  398. if para.parametername.nodetype=stringconstn then
  399. names:=names+tstringconstnode(para.parametername).value_str+#0
  400. else
  401. internalerror(200611041);
  402. end;
  403. restype:=getvardef(para.left.resultdef);
  404. if is_byref_para(assignmenttype) then
  405. restype:=restype or $80;
  406. { assign the argument/parameter to the temporary location }
  407. { for Variants, we always pass a pointer, RTL helpers must handle it
  408. depending on byref bit }
  409. if assignmenttype=voidpointertype then
  410. begin
  411. addstatement(statements,cassignmentnode.create(
  412. ctypeconvnode.create_internal(cderefnode.create(caddnode.create(addn,
  413. caddrnode.create(ctemprefnode.create(params)),
  414. cordconstnode.create(qword(paramssize),ptruinttype,false)
  415. )),voidpointertype),
  416. ctypeconvnode.create_internal(caddrnode.create_internal(para.left),voidpointertype)));
  417. end
  418. else
  419. addstatement(statements,cassignmentnode.create(
  420. ctypeconvnode.create_internal(cderefnode.create(caddnode.create(addn,
  421. caddrnode.create(ctemprefnode.create(params)),
  422. cordconstnode.create(paramssize,ptruinttype,false)
  423. )),assignmenttype),
  424. ctypeconvnode.create_internal(para.left,assignmenttype)));
  425. inc(paramssize,max(voidpointertype.size,assignmenttype.size));
  426. calldescnode.appendbyte(restype);
  427. para.left:=nil;
  428. para:=tcallparanode(para.nextpara);
  429. end;
  430. { Set final size for parameter block }
  431. params.size:=paramssize;
  432. { old argument list skeleton isn't needed anymore }
  433. parametersnode.free;
  434. pvardatadef:=tpointerdef(search_system_type('PVARDATA').typedef);
  435. if useresult then
  436. resultvalue:=caddrnode.create(ctemprefnode.create(result_data))
  437. else
  438. resultvalue:=cpointerconstnode.create(0,voidpointertype);
  439. if variantdispatch then
  440. begin
  441. calldescnode.append(pointer(methodname)^,length(methodname));
  442. calldescnode.appendbyte(0);
  443. calldescnode.append(pointer(names)^,length(names));
  444. { actual call }
  445. vardatadef:=trecorddef(search_system_type('TVARDATA').typedef);
  446. addstatement(statements,ccallnode.createintern('fpc_dispinvoke_variant',
  447. { parameters are passed always reverted, i.e. the last comes first }
  448. ccallparanode.create(caddrnode.create(ctemprefnode.create(params)),
  449. ccallparanode.create(caddrnode.create(calldescnode),
  450. ccallparanode.create(ctypeconvnode.create_internal(selfnode,vardatadef),
  451. ccallparanode.create(ctypeconvnode.create_internal(resultvalue,pvardatadef),nil)))))
  452. );
  453. end
  454. else
  455. begin
  456. addstatement(statements,ccallnode.createintern('fpc_dispatch_by_id',
  457. { parameters are passed always reverted, i.e. the last comes first }
  458. ccallparanode.create(caddrnode.create(ctemprefnode.create(params)),
  459. ccallparanode.create(caddrnode.create(calldescnode),
  460. ccallparanode.create(ctypeconvnode.create_internal(selfnode,voidpointertype),
  461. ccallparanode.create(ctypeconvnode.create_internal(resultvalue,pvardatadef),nil)))))
  462. );
  463. end;
  464. addstatement(statements,ctempdeletenode.create(params));
  465. if useresult then
  466. begin
  467. { clean up }
  468. addstatement(statements,ctempdeletenode.create_normal_temp(result_data));
  469. addstatement(statements,ctemprefnode.create(result_data));
  470. end;
  471. end;
  472. {****************************************************************************
  473. TOBJECTINFOITEM
  474. ****************************************************************************}
  475. constructor tobjectinfoitem.create(def : tobjectdef);
  476. begin
  477. inherited create;
  478. objinfo := def;
  479. end;
  480. {****************************************************************************
  481. TCALLPARANODE
  482. ****************************************************************************}
  483. constructor tcallparanode.create(expr,next : tnode);
  484. begin
  485. inherited create(callparan,expr,next,nil);
  486. if not assigned(expr) then
  487. internalerror(200305091);
  488. expr.fileinfo:=fileinfo;
  489. callparaflags:=[];
  490. if expr.nodetype = typeconvn then
  491. ttypeconvnode(expr).warn_pointer_to_signed:=false;
  492. end;
  493. destructor tcallparanode.destroy;
  494. begin
  495. inherited destroy;
  496. end;
  497. constructor tcallparanode.ppuload(t:tnodetype;ppufile:tcompilerppufile);
  498. begin
  499. inherited ppuload(t,ppufile);
  500. ppufile.getsmallset(callparaflags);
  501. end;
  502. procedure tcallparanode.ppuwrite(ppufile:tcompilerppufile);
  503. begin
  504. inherited ppuwrite(ppufile);
  505. ppufile.putsmallset(callparaflags);
  506. end;
  507. function tcallparanode.dogetcopy : tnode;
  508. var
  509. n : tcallparanode;
  510. begin
  511. n:=tcallparanode(inherited dogetcopy);
  512. n.callparaflags:=callparaflags;
  513. n.parasym:=parasym;
  514. result:=n;
  515. end;
  516. procedure tcallparanode.insertintolist(l : tnodelist);
  517. begin
  518. end;
  519. function tcallparanode.pass_typecheck : tnode;
  520. begin
  521. { need to use get_paratype }
  522. internalerror(200709251);
  523. result:=nil;
  524. end;
  525. function tcallparanode.pass_1 : tnode;
  526. begin
  527. { need to use firstcallparan }
  528. internalerror(200709252);
  529. result:=nil;
  530. end;
  531. procedure tcallparanode.get_paratype;
  532. var
  533. old_array_constructor : boolean;
  534. begin
  535. if assigned(right) then
  536. tcallparanode(right).get_paratype;
  537. old_array_constructor:=allow_array_constructor;
  538. allow_array_constructor:=true;
  539. typecheckpass(left);
  540. if assigned(third) then
  541. typecheckpass(third);
  542. allow_array_constructor:=old_array_constructor;
  543. if codegenerror then
  544. resultdef:=generrordef
  545. else
  546. resultdef:=left.resultdef;
  547. end;
  548. procedure tcallparanode.firstcallparan;
  549. begin
  550. if assigned(right) then
  551. tcallparanode(right).firstcallparan;
  552. if not assigned(left.resultdef) then
  553. get_paratype;
  554. firstpass(left);
  555. if assigned(third) then
  556. firstpass(third);
  557. expectloc:=left.expectloc;
  558. end;
  559. procedure tcallparanode.insert_typeconv;
  560. var
  561. olddef : tdef;
  562. hp : tnode;
  563. block : tblocknode;
  564. statements : tstatementnode;
  565. temp : ttempcreatenode;
  566. owningprocdef: tprocdef;
  567. begin
  568. { Be sure to have the resultdef }
  569. if not assigned(left.resultdef) then
  570. typecheckpass(left);
  571. if (left.nodetype<>nothingn) then
  572. begin
  573. { convert loads of the function result variable into procvars
  574. representing the current function in case the formal parameter is
  575. a procvar (CodeWarrior Pascal contains the same kind of
  576. automatic disambiguation; you can use the function name in both
  577. meanings, so we cannot statically pick either the function result
  578. or the function definition in pexpr) }
  579. if (m_mac in current_settings.modeswitches) and
  580. (parasym.vardef.typ=procvardef) and
  581. is_ambiguous_funcret_load(left,owningprocdef) then
  582. begin
  583. hp:=cloadnode.create_procvar(owningprocdef.procsym,owningprocdef,owningprocdef.procsym.owner);
  584. typecheckpass(hp);
  585. left.free;
  586. left:=hp;
  587. end;
  588. { Convert tp procvars, this is needs to be done
  589. here to make the change permanent. in the overload
  590. choosing the changes are only made temporarily }
  591. if (left.resultdef.typ=procvardef) and
  592. not(parasym.vardef.typ in [procvardef,formaldef]) then
  593. begin
  594. if maybe_call_procvar(left,true) then
  595. resultdef:=left.resultdef
  596. end;
  597. { Remove implicitly inserted typecast to pointer for
  598. @procvar in macpas }
  599. if (m_mac_procvar in current_settings.modeswitches) and
  600. (parasym.vardef.typ=procvardef) and
  601. (left.nodetype=typeconvn) and
  602. is_voidpointer(left.resultdef) and
  603. (ttypeconvnode(left).left.nodetype=typeconvn) and
  604. (ttypeconvnode(ttypeconvnode(left).left).convtype=tc_proc_2_procvar) then
  605. begin
  606. hp:=left;
  607. left:=ttypeconvnode(left).left;
  608. ttypeconvnode(hp).left:=nil;
  609. hp.free;
  610. end;
  611. maybe_global_proc_to_nested(left,parasym.vardef);
  612. { Handle varargs and hidden paras directly, no typeconvs or }
  613. { pass_typechecking needed }
  614. if (cpf_varargs_para in callparaflags) then
  615. begin
  616. { this should only happen vor C varargs }
  617. { the necessary conversions have already been performed in }
  618. { tarrayconstructornode.insert_typeconvs }
  619. set_varstate(left,vs_read,[vsf_must_be_valid]);
  620. insert_varargstypeconv(left,true);
  621. resultdef:=left.resultdef;
  622. { also update parasym type to get the correct parameter location
  623. for the new types }
  624. parasym.vardef:=left.resultdef;
  625. end
  626. else
  627. if (vo_is_hidden_para in parasym.varoptions) then
  628. begin
  629. set_varstate(left,vs_read,[vsf_must_be_valid]);
  630. resultdef:=left.resultdef;
  631. end
  632. else
  633. begin
  634. { Do we need arrayconstructor -> set conversion, then insert
  635. it here before the arrayconstructor node breaks the tree
  636. with its conversions of enum->ord }
  637. if (left.nodetype=arrayconstructorn) and
  638. (parasym.vardef.typ=setdef) then
  639. inserttypeconv(left,parasym.vardef);
  640. { set some settings needed for arrayconstructor }
  641. if is_array_constructor(left.resultdef) then
  642. begin
  643. if left.nodetype<>arrayconstructorn then
  644. internalerror(200504041);
  645. if is_array_of_const(parasym.vardef) then
  646. begin
  647. { force variant array }
  648. include(left.flags,nf_forcevaria);
  649. end
  650. else
  651. begin
  652. include(left.flags,nf_novariaallowed);
  653. { now that the resultting type is know we can insert the required
  654. typeconvs for the array constructor }
  655. if parasym.vardef.typ=arraydef then
  656. tarrayconstructornode(left).force_type(tarraydef(parasym.vardef).elementdef);
  657. end;
  658. end;
  659. { check if local proc/func is assigned to procvar }
  660. if left.resultdef.typ=procvardef then
  661. test_local_to_procvar(tprocvardef(left.resultdef),parasym.vardef);
  662. { test conversions }
  663. if not(is_shortstring(left.resultdef) and
  664. is_shortstring(parasym.vardef)) and
  665. (parasym.vardef.typ<>formaldef) and
  666. not(parasym.univpara) then
  667. begin
  668. { Process open parameters }
  669. if paramanager.push_high_param(parasym.varspez,parasym.vardef,aktcallnode.procdefinition.proccalloption) then
  670. begin
  671. { insert type conv but hold the ranges of the array }
  672. olddef:=left.resultdef;
  673. inserttypeconv(left,parasym.vardef);
  674. left.resultdef:=olddef;
  675. end
  676. else
  677. begin
  678. check_ranges(left.fileinfo,left,parasym.vardef);
  679. inserttypeconv(left,parasym.vardef);
  680. end;
  681. if codegenerror then
  682. exit;
  683. end;
  684. { truncate shortstring value parameters at the caller side if }
  685. { they are passed by value (if passed by reference, then the }
  686. { callee will truncate when copying in the string) }
  687. { This happens e.g. on x86_64 for small strings }
  688. if is_shortstring(left.resultdef) and
  689. is_shortstring(parasym.vardef) and
  690. (parasym.varspez=vs_value) and
  691. not paramanager.push_addr_param(parasym.varspez,parasym.vardef,
  692. aktcallnode.procdefinition.proccalloption) and
  693. ((is_open_string(left.resultdef) and
  694. (tstringdef(parasym.vardef).len < 255)) or
  695. (not is_open_string(left.resultdef) and
  696. { when a stringconstn is typeconverted, then only its }
  697. { def is modified, not the contents (needed because in }
  698. { Delphi/TP, if you pass a longer string to a const }
  699. { parameter, then the callee has to see this longer }
  700. { string) }
  701. (((left.nodetype<>stringconstn) and
  702. (tstringdef(parasym.vardef).len<tstringdef(left.resultdef).len)) or
  703. ((left.nodetype=stringconstn) and
  704. (tstringdef(parasym.vardef).len<tstringconstnode(left).len))))) then
  705. begin
  706. block:=internalstatements(statements);
  707. { temp for the new string }
  708. temp:=ctempcreatenode.create(parasym.vardef,parasym.vardef.size,
  709. tt_persistent,true);
  710. addstatement(statements,temp);
  711. { assign parameter to temp }
  712. addstatement(statements,cassignmentnode.create(ctemprefnode.create(temp),left));
  713. left:=nil;
  714. { release temp after next use }
  715. addstatement(statements,ctempdeletenode.create_normal_temp(temp));
  716. addstatement(statements,ctemprefnode.create(temp));
  717. typecheckpass(tnode(block));
  718. left:=block;
  719. end;
  720. { check var strings }
  721. if (cs_strict_var_strings in current_settings.localswitches) and
  722. is_shortstring(left.resultdef) and
  723. is_shortstring(parasym.vardef) and
  724. (parasym.varspez in [vs_out,vs_var,vs_constref]) and
  725. not(is_open_string(parasym.vardef)) and
  726. not(equal_defs(left.resultdef,parasym.vardef)) then
  727. begin
  728. CGMessagePos(left.fileinfo,type_e_strict_var_string_violation);
  729. end;
  730. { passing a value to an "univ" parameter implies an explicit
  731. typecast to the parameter type. Must be done before the
  732. valid_for_var() check, since the typecast can result in
  733. an invalid lvalue in case of var/out parameters. }
  734. if (parasym.univpara) then
  735. begin
  736. { load procvar if a procedure is passed }
  737. if ((m_tp_procvar in current_settings.modeswitches) or
  738. (m_mac_procvar in current_settings.modeswitches)) and
  739. (left.nodetype=calln) and
  740. (is_void(left.resultdef)) then
  741. begin
  742. load_procvar_from_calln(left);
  743. { load_procvar_from_calln() creates a loadn for a
  744. a procedure, which means that the type conversion
  745. below will type convert the first instruction
  746. bytes of the procedure -> convert to a procvar }
  747. left:=ctypeconvnode.create_proc_to_procvar(left);
  748. typecheckpass(left);
  749. end;
  750. inserttypeconv_explicit(left,parasym.vardef);
  751. end;
  752. { Handle formal parameters separate }
  753. if (parasym.vardef.typ=formaldef) then
  754. begin
  755. { load procvar if a procedure is passed }
  756. if ((m_tp_procvar in current_settings.modeswitches) or
  757. (m_mac_procvar in current_settings.modeswitches)) and
  758. (left.nodetype=calln) and
  759. (is_void(left.resultdef)) then
  760. load_procvar_from_calln(left);
  761. case parasym.varspez of
  762. vs_var,
  763. vs_constref,
  764. vs_out :
  765. begin
  766. if not valid_for_formal_var(left,true) then
  767. CGMessagePos(left.fileinfo,parser_e_illegal_parameter_list);
  768. end;
  769. vs_const :
  770. begin
  771. if not valid_for_formal_const(left,true) then
  772. CGMessagePos(left.fileinfo,parser_e_illegal_parameter_list);
  773. end;
  774. end;
  775. end
  776. else
  777. begin
  778. { check if the argument is allowed }
  779. if (parasym.varspez in [vs_out,vs_var]) then
  780. valid_for_var(left,true);
  781. end;
  782. if parasym.varspez in [vs_var,vs_out,vs_constref] then
  783. set_unique(left);
  784. { When the address needs to be pushed then the register is
  785. not regable. Exception is when the location is also a var
  786. parameter and we can pass the address transparently (but
  787. that is handled by make_not_regable if ra_addr_regable is
  788. passed, and make_not_regable always needs to called for
  789. the ra_addr_taken info for non-invisble parameters) }
  790. if (
  791. not(
  792. (vo_is_hidden_para in parasym.varoptions) and
  793. (left.resultdef.typ in [pointerdef,classrefdef])
  794. ) and
  795. paramanager.push_addr_param(parasym.varspez,parasym.vardef,
  796. aktcallnode.procdefinition.proccalloption)
  797. ) then
  798. { pushing the address of a variable to take the place of a temp }
  799. { as the complex function result of a function does not make its }
  800. { address escape the current block, as the "address of the }
  801. { function result" is not something which can be stored }
  802. { persistently by the callee (it becomes invalid when the callee }
  803. { returns) }
  804. if not(vo_is_funcret in parasym.varoptions) then
  805. make_not_regable(left,[ra_addr_regable,ra_addr_taken])
  806. else
  807. make_not_regable(left,[ra_addr_regable]);
  808. case parasym.varspez of
  809. vs_out :
  810. begin
  811. { first set written separately to avoid false }
  812. { uninitialized warnings (tbs/tb0542) }
  813. set_varstate(left,vs_written,[]);
  814. set_varstate(left,vs_readwritten,[]);
  815. end;
  816. vs_var,
  817. vs_constref:
  818. set_varstate(left,vs_readwritten,[vsf_must_be_valid,vsf_use_hints]);
  819. else
  820. set_varstate(left,vs_read,[vsf_must_be_valid]);
  821. end;
  822. { must only be done after typeconv PM }
  823. resultdef:=parasym.vardef;
  824. end;
  825. end;
  826. { process next node }
  827. if assigned(right) then
  828. tcallparanode(right).insert_typeconv;
  829. end;
  830. function tcallparanode.can_be_inlined: boolean;
  831. var
  832. n: tnode;
  833. begin
  834. n:=left;
  835. result:=false;
  836. while assigned(n) and
  837. (n.nodetype=typeconvn) do
  838. begin
  839. { look for type conversion nodes which convert a }
  840. { refcounted type into a non-refcounted type }
  841. if not is_managed_type(n.resultdef) and
  842. is_managed_type(ttypeconvnode(n).left.resultdef) then
  843. exit;
  844. n:=ttypeconvnode(n).left;
  845. end;
  846. { also check for dereferencing constant pointers, like }
  847. { tsomerecord(nil^) passed to a const r: tsomerecord }
  848. { parameter }
  849. if (n.nodetype=derefn) then
  850. begin
  851. repeat
  852. n:=tunarynode(n).left;
  853. until (n.nodetype<>typeconvn);
  854. if (n.nodetype in [niln,pointerconstn]) then
  855. exit
  856. end;
  857. result:=true;
  858. end;
  859. function check_contains_stack_tainting_call(var n: tnode; arg: pointer): foreachnoderesult;
  860. begin
  861. if (n.nodetype=calln) and
  862. tcallnode(n).procdefinition.stack_tainting_parameter(callerside) then
  863. result:=fen_norecurse_true
  864. else
  865. result:=fen_false;
  866. end;
  867. function tcallparanode.contains_stack_tainting_call: boolean;
  868. begin
  869. result:=foreachnodestatic(pm_postprocess,left,@check_contains_stack_tainting_call,nil);
  870. end;
  871. procedure tcallparanode.init_contains_stack_tainting_call_cache;
  872. begin
  873. fcontains_stack_tainting_call_cached:=contains_stack_tainting_call;
  874. end;
  875. function tcallparanode.docompare(p: tnode): boolean;
  876. begin
  877. docompare :=
  878. inherited docompare(p) and
  879. (callparaflags = tcallparanode(p).callparaflags)
  880. ;
  881. end;
  882. procedure tcallparanode.printnodetree(var t:text);
  883. begin
  884. printnodelist(t);
  885. end;
  886. {****************************************************************************
  887. TCALLNODE
  888. ****************************************************************************}
  889. constructor tcallnode.create(l:tnode;v : tprocsym;st : TSymtable; mp: tnode; callflags:tcallnodeflags);
  890. begin
  891. inherited create(calln,l,nil);
  892. symtableprocentry:=v;
  893. symtableproc:=st;
  894. callnodeflags:=callflags+[cnf_return_value_used];
  895. methodpointer:=mp;
  896. callinitblock:=nil;
  897. callcleanupblock:=nil;
  898. procdefinition:=nil;
  899. funcretnode:=nil;
  900. paralength:=-1;
  901. varargsparas:=nil;
  902. end;
  903. constructor tcallnode.create_procvar(l,r:tnode);
  904. begin
  905. inherited create(calln,l,r);
  906. symtableprocentry:=nil;
  907. symtableproc:=nil;
  908. methodpointer:=nil;
  909. callinitblock:=nil;
  910. callcleanupblock:=nil;
  911. procdefinition:=nil;
  912. callnodeflags:=[cnf_return_value_used];
  913. funcretnode:=nil;
  914. paralength:=-1;
  915. varargsparas:=nil;
  916. end;
  917. constructor tcallnode.createintern(const name: string; params: tnode);
  918. var
  919. srsym: tsym;
  920. begin
  921. srsym := tsym(systemunit.Find(name));
  922. if not assigned(srsym) and
  923. (cs_compilesystem in current_settings.moduleswitches) then
  924. srsym := tsym(systemunit.Find(upper(name)));
  925. if not assigned(srsym) or
  926. (srsym.typ<>procsym) then
  927. Message1(cg_f_unknown_compilerproc,name);
  928. create(params,tprocsym(srsym),srsym.owner,nil,[]);
  929. end;
  930. constructor tcallnode.createinternfromunit(const fromunit, procname: string; params: tnode);
  931. var
  932. srsym: tsym;
  933. srsymtable: tsymtable;
  934. begin
  935. if not searchsym_in_named_module(fromunit,procname,srsym,srsymtable) or
  936. (srsym.typ<>procsym) then
  937. Message1(cg_f_unknown_compilerproc,fromunit+'.'+procname);
  938. create(params,tprocsym(srsym),srsymtable,nil,[]);
  939. end;
  940. constructor tcallnode.createinternres(const name: string; params: tnode; res:tdef);
  941. var
  942. pd : tprocdef;
  943. begin
  944. createintern(name,params);
  945. typedef:=res;
  946. include(callnodeflags,cnf_typedefset);
  947. pd:=tprocdef(symtableprocentry.ProcdefList[0]);
  948. { both the normal and specified resultdef either have to be returned via a }
  949. { parameter or not, but no mixing (JM) }
  950. if paramanager.ret_in_param(typedef,pd.proccalloption) xor
  951. paramanager.ret_in_param(pd.returndef,pd.proccalloption) then
  952. internalerror(2001082911);
  953. end;
  954. constructor tcallnode.createinternresfromunit(const fromunit, procname: string; params: tnode; res:tdef);
  955. var
  956. pd : tprocdef;
  957. begin
  958. createinternfromunit(fromunit,procname,params);
  959. typedef:=res;
  960. include(callnodeflags,cnf_typedefset);
  961. pd:=tprocdef(symtableprocentry.ProcdefList[0]);
  962. { both the normal and specified resultdef either have to be returned via a }
  963. { parameter or not, but no mixing (JM) }
  964. if paramanager.ret_in_param(typedef,pd.proccalloption) xor
  965. paramanager.ret_in_param(pd.returndef,pd.proccalloption) then
  966. internalerror(200108291);
  967. end;
  968. constructor tcallnode.createinternreturn(const name: string; params: tnode; returnnode : tnode);
  969. begin
  970. createintern(name,params);
  971. funcretnode:=returnnode;
  972. end;
  973. destructor tcallnode.destroy;
  974. begin
  975. methodpointer.free;
  976. callinitblock.free;
  977. callcleanupblock.free;
  978. funcretnode.free;
  979. if assigned(varargsparas) then
  980. varargsparas.free;
  981. stringdispose(fobjcforcedprocname);
  982. inherited destroy;
  983. end;
  984. constructor tcallnode.ppuload(t:tnodetype;ppufile:tcompilerppufile);
  985. begin
  986. callinitblock:=tblocknode(ppuloadnode(ppufile));
  987. methodpointer:=ppuloadnode(ppufile);
  988. callcleanupblock:=tblocknode(ppuloadnode(ppufile));
  989. funcretnode:=ppuloadnode(ppufile);
  990. inherited ppuload(t,ppufile);
  991. ppufile.getderef(symtableprocentryderef);
  992. { TODO: FIXME: No withsymtable support}
  993. symtableproc:=nil;
  994. ppufile.getderef(procdefinitionderef);
  995. ppufile.getsmallset(callnodeflags);
  996. end;
  997. procedure tcallnode.ppuwrite(ppufile:tcompilerppufile);
  998. begin
  999. ppuwritenode(ppufile,callinitblock);
  1000. ppuwritenode(ppufile,methodpointer);
  1001. ppuwritenode(ppufile,callcleanupblock);
  1002. ppuwritenode(ppufile,funcretnode);
  1003. inherited ppuwrite(ppufile);
  1004. ppufile.putderef(symtableprocentryderef);
  1005. ppufile.putderef(procdefinitionderef);
  1006. ppufile.putsmallset(callnodeflags);
  1007. end;
  1008. procedure tcallnode.buildderefimpl;
  1009. begin
  1010. inherited buildderefimpl;
  1011. symtableprocentryderef.build(symtableprocentry);
  1012. procdefinitionderef.build(procdefinition);
  1013. if assigned(methodpointer) then
  1014. methodpointer.buildderefimpl;
  1015. if assigned(callinitblock) then
  1016. callinitblock.buildderefimpl;
  1017. if assigned(callcleanupblock) then
  1018. callcleanupblock.buildderefimpl;
  1019. if assigned(funcretnode) then
  1020. funcretnode.buildderefimpl;
  1021. end;
  1022. procedure tcallnode.derefimpl;
  1023. var
  1024. pt : tcallparanode;
  1025. i : integer;
  1026. begin
  1027. inherited derefimpl;
  1028. symtableprocentry:=tprocsym(symtableprocentryderef.resolve);
  1029. if assigned(symtableprocentry) then
  1030. symtableproc:=symtableprocentry.owner;
  1031. procdefinition:=tabstractprocdef(procdefinitionderef.resolve);
  1032. if assigned(methodpointer) then
  1033. methodpointer.derefimpl;
  1034. if assigned(callinitblock) then
  1035. callinitblock.derefimpl;
  1036. if assigned(callcleanupblock) then
  1037. callcleanupblock.derefimpl;
  1038. if assigned(funcretnode) then
  1039. funcretnode.derefimpl;
  1040. { generic method has no procdefinition }
  1041. if assigned(procdefinition) then
  1042. begin
  1043. { Connect parasyms }
  1044. pt:=tcallparanode(left);
  1045. while assigned(pt) and
  1046. (cpf_varargs_para in pt.callparaflags) do
  1047. pt:=tcallparanode(pt.right);
  1048. for i:=procdefinition.paras.count-1 downto 0 do
  1049. begin
  1050. if not assigned(pt) then
  1051. internalerror(200311077);
  1052. pt.parasym:=tparavarsym(procdefinition.paras[i]);
  1053. pt:=tcallparanode(pt.right);
  1054. end;
  1055. if assigned(pt) then
  1056. internalerror(200311078);
  1057. end;
  1058. end;
  1059. function tcallnode.dogetcopy : tnode;
  1060. var
  1061. n : tcallnode;
  1062. i : integer;
  1063. hp,hpn : tparavarsym;
  1064. oldleft : tnode;
  1065. begin
  1066. { Need to use a hack here to prevent the parameters from being copied.
  1067. The parameters must be copied between callinitblock/callcleanupblock because
  1068. they can reference methodpointer }
  1069. oldleft:=left;
  1070. left:=nil;
  1071. n:=tcallnode(inherited dogetcopy);
  1072. left:=oldleft;
  1073. n.symtableprocentry:=symtableprocentry;
  1074. n.symtableproc:=symtableproc;
  1075. n.procdefinition:=procdefinition;
  1076. n.typedef := typedef;
  1077. n.callnodeflags := callnodeflags;
  1078. if assigned(callinitblock) then
  1079. n.callinitblock:=tblocknode(callinitblock.dogetcopy)
  1080. else
  1081. n.callinitblock:=nil;
  1082. { callinitblock is copied, now references to the temp will also be copied
  1083. correctly. We can now copy the parameters, funcret and methodpointer }
  1084. if assigned(left) then
  1085. n.left:=left.dogetcopy
  1086. else
  1087. n.left:=nil;
  1088. if assigned(methodpointer) then
  1089. n.methodpointer:=methodpointer.dogetcopy
  1090. else
  1091. n.methodpointer:=nil;
  1092. if assigned(funcretnode) then
  1093. n.funcretnode:=funcretnode.dogetcopy
  1094. else
  1095. n.funcretnode:=nil;
  1096. if assigned(callcleanupblock) then
  1097. n.callcleanupblock:=tblocknode(callcleanupblock.dogetcopy)
  1098. else
  1099. n.callcleanupblock:=nil;
  1100. if assigned(varargsparas) then
  1101. begin
  1102. n.varargsparas:=tvarargsparalist.create(true);
  1103. for i:=0 to varargsparas.count-1 do
  1104. begin
  1105. hp:=tparavarsym(varargsparas[i]);
  1106. hpn:=tparavarsym.create(hp.realname,hp.paranr,hp.varspez,hp.vardef,[]);
  1107. n.varargsparas.add(hpn);
  1108. end;
  1109. end
  1110. else
  1111. n.varargsparas:=nil;
  1112. result:=n;
  1113. end;
  1114. function tcallnode.docompare(p: tnode): boolean;
  1115. begin
  1116. docompare :=
  1117. inherited docompare(p) and
  1118. (symtableprocentry = tcallnode(p).symtableprocentry) and
  1119. (procdefinition = tcallnode(p).procdefinition) and
  1120. (methodpointer.isequal(tcallnode(p).methodpointer)) and
  1121. (((cnf_typedefset in callnodeflags) and (cnf_typedefset in tcallnode(p).callnodeflags) and
  1122. (equal_defs(typedef,tcallnode(p).typedef))) or
  1123. (not(cnf_typedefset in callnodeflags) and not(cnf_typedefset in tcallnode(p).callnodeflags)));
  1124. end;
  1125. procedure tcallnode.printnodedata(var t:text);
  1126. begin
  1127. if assigned(procdefinition) and
  1128. (procdefinition.typ=procdef) then
  1129. writeln(t,printnodeindention,'proc = ',tprocdef(procdefinition).fullprocname(true))
  1130. else
  1131. begin
  1132. if assigned(symtableprocentry) then
  1133. writeln(t,printnodeindention,'proc = ',symtableprocentry.name)
  1134. else
  1135. writeln(t,printnodeindention,'proc = <nil>');
  1136. end;
  1137. if assigned(methodpointer) then
  1138. begin
  1139. writeln(t,printnodeindention,'methodpointer =');
  1140. printnode(t,methodpointer);
  1141. end;
  1142. if assigned(callinitblock) then
  1143. begin
  1144. writeln(t,printnodeindention,'callinitblock =');
  1145. printnode(t,callinitblock);
  1146. end;
  1147. if assigned(callcleanupblock) then
  1148. begin
  1149. writeln(t,printnodeindention,'callcleanupblock =');
  1150. printnode(t,callcleanupblock);
  1151. end;
  1152. if assigned(right) then
  1153. begin
  1154. writeln(t,printnodeindention,'right =');
  1155. printnode(t,right);
  1156. end;
  1157. if assigned(left) then
  1158. begin
  1159. writeln(t,printnodeindention,'left =');
  1160. printnode(t,left);
  1161. end;
  1162. end;
  1163. procedure tcallnode.insertintolist(l : tnodelist);
  1164. begin
  1165. end;
  1166. procedure tcallnode.add_init_statement(n:tnode);
  1167. var
  1168. lastinitstatement : tstatementnode;
  1169. begin
  1170. if not assigned(callinitblock) then
  1171. callinitblock:=internalstatements(lastinitstatement)
  1172. else
  1173. lastinitstatement:=laststatement(callinitblock);
  1174. { all these nodes must be immediately typechecked, because this routine }
  1175. { can be called from pass_1 (i.e., after typecheck has already run) and }
  1176. { moreover, the entire blocks themselves are also only typechecked in }
  1177. { pass_1, while the the typeinfo is already required after the }
  1178. { typecheck pass for simplify purposes (not yet perfect, because the }
  1179. { statementnodes themselves are not typechecked this way) }
  1180. typecheckpass(n);
  1181. addstatement(lastinitstatement,n);
  1182. end;
  1183. procedure tcallnode.add_done_statement(n:tnode);
  1184. var
  1185. lastdonestatement : tstatementnode;
  1186. begin
  1187. if not assigned(callcleanupblock) then
  1188. callcleanupblock:=internalstatements(lastdonestatement)
  1189. else
  1190. lastdonestatement:=laststatement(callcleanupblock);
  1191. { see comments in add_init_statement }
  1192. typecheckpass(n);
  1193. addstatement(lastdonestatement,n);
  1194. end;
  1195. function tcallnode.para_count:longint;
  1196. var
  1197. ppn : tcallparanode;
  1198. begin
  1199. result:=0;
  1200. ppn:=tcallparanode(left);
  1201. while assigned(ppn) do
  1202. begin
  1203. if not(assigned(ppn.parasym) and
  1204. (vo_is_hidden_para in ppn.parasym.varoptions)) then
  1205. inc(result);
  1206. ppn:=tcallparanode(ppn.right);
  1207. end;
  1208. end;
  1209. function tcallnode.required_para_count: longint;
  1210. var
  1211. ppn : tcallparanode;
  1212. begin
  1213. result:=0;
  1214. ppn:=tcallparanode(left);
  1215. while assigned(ppn) do
  1216. begin
  1217. if not(assigned(ppn.parasym) and
  1218. ((vo_is_hidden_para in ppn.parasym.varoptions) or
  1219. assigned(ppn.parasym.defaultconstsym))) then
  1220. inc(result);
  1221. ppn:=tcallparanode(ppn.right);
  1222. end;
  1223. end;
  1224. function tcallnode.is_simple_para_load(p:tnode; may_be_in_reg: boolean):boolean;
  1225. var
  1226. hp : tnode;
  1227. begin
  1228. hp:=p;
  1229. while assigned(hp) and
  1230. (hp.nodetype=typeconvn) and
  1231. (ttypeconvnode(hp).convtype=tc_equal) do
  1232. hp:=tunarynode(hp).left;
  1233. result:=(hp.nodetype in [typen,loadvmtaddrn,loadn,temprefn,arrayconstructorn,addrn]);
  1234. if result and
  1235. not(may_be_in_reg) then
  1236. case hp.nodetype of
  1237. loadn:
  1238. result:=(tabstractvarsym(tloadnode(hp).symtableentry).varregable in [vr_none,vr_addr]);
  1239. temprefn:
  1240. result:=not(ti_may_be_in_reg in ttemprefnode(hp).tempinfo^.flags);
  1241. end;
  1242. end;
  1243. function look_for_call(var n: tnode; arg: pointer): foreachnoderesult;
  1244. begin
  1245. case n.nodetype of
  1246. calln:
  1247. result := fen_norecurse_true;
  1248. typen,loadvmtaddrn,loadn,temprefn,arrayconstructorn:
  1249. result := fen_norecurse_false;
  1250. else
  1251. result := fen_false;
  1252. end;
  1253. end;
  1254. procedure tcallnode.maybe_load_in_temp(var p:tnode);
  1255. var
  1256. loadp,
  1257. refp : tnode;
  1258. hdef : tdef;
  1259. ptemp : ttempcreatenode;
  1260. usederef : boolean;
  1261. begin
  1262. { Load all complex loads into a temp to prevent
  1263. double calls to a function. We can't simply check for a hp.nodetype=calln }
  1264. if assigned(p) and
  1265. foreachnodestatic(p,@look_for_call,nil) then
  1266. begin
  1267. { temp create }
  1268. usederef:=(p.resultdef.typ in [arraydef,recorddef]) or
  1269. is_shortstring(p.resultdef) or
  1270. is_object(p.resultdef);
  1271. if usederef then
  1272. hdef:=tpointerdef.create(p.resultdef)
  1273. else
  1274. hdef:=p.resultdef;
  1275. ptemp:=ctempcreatenode.create(hdef,hdef.size,tt_persistent,true);
  1276. if usederef then
  1277. begin
  1278. loadp:=caddrnode.create_internal(p);
  1279. refp:=cderefnode.create(ctemprefnode.create(ptemp));
  1280. end
  1281. else
  1282. begin
  1283. loadp:=p;
  1284. refp:=ctemprefnode.create(ptemp)
  1285. end;
  1286. add_init_statement(ptemp);
  1287. add_init_statement(cassignmentnode.create(
  1288. ctemprefnode.create(ptemp),
  1289. loadp));
  1290. add_done_statement(ctempdeletenode.create(ptemp));
  1291. { new tree is only a temp reference }
  1292. p:=refp;
  1293. typecheckpass(p);
  1294. end;
  1295. end;
  1296. function tcallnode.gen_high_tree(var p:tnode;paradef:tdef):tnode;
  1297. { When passing an array to an open array, or a string to an open string,
  1298. some code is needed that generates the high bound of the array. This
  1299. function returns a tree containing the nodes for it. }
  1300. var
  1301. temp: tnode;
  1302. len : integer;
  1303. loadconst : boolean;
  1304. hightree,l,r : tnode;
  1305. defkind: tdeftyp;
  1306. begin
  1307. len:=-1;
  1308. loadconst:=true;
  1309. hightree:=nil;
  1310. { constant strings are internally stored as array of char, but if the
  1311. parameter is a string also treat it like one }
  1312. defkind:=p.resultdef.typ;
  1313. if (p.nodetype=stringconstn) and
  1314. (paradef.typ=stringdef) then
  1315. defkind:=stringdef;
  1316. case defkind of
  1317. arraydef :
  1318. begin
  1319. if (paradef.typ<>arraydef) then
  1320. internalerror(200405241);
  1321. { passing a string to an array of char }
  1322. if (p.nodetype=stringconstn) and
  1323. is_char(tarraydef(paradef).elementdef) then
  1324. begin
  1325. len:=tstringconstnode(p).len;
  1326. if len>0 then
  1327. dec(len);
  1328. end
  1329. else
  1330. { handle special case of passing an single array to an array of array }
  1331. if compare_defs(tarraydef(paradef).elementdef,p.resultdef,nothingn)>=te_equal then
  1332. len:=0
  1333. else
  1334. begin
  1335. { handle via a normal inline in_high_x node }
  1336. loadconst:=false;
  1337. { slice? }
  1338. if (p.nodetype=inlinen) and (tinlinenode(p).inlinenumber=in_slice_x) then
  1339. with Tcallparanode(Tinlinenode(p).left) do
  1340. begin
  1341. {Array slice using slice builtin function.}
  1342. l:=Tcallparanode(right).left;
  1343. hightree:=caddnode.create(subn,l,genintconstnode(1));
  1344. Tcallparanode(right).left:=nil;
  1345. {Remove the inline node.}
  1346. temp:=p;
  1347. p:=left;
  1348. Tcallparanode(tinlinenode(temp).left).left:=nil;
  1349. temp.free;
  1350. typecheckpass(hightree);
  1351. end
  1352. else if (p.nodetype=vecn) and (Tvecnode(p).right.nodetype=rangen) then
  1353. begin
  1354. {Array slice using .. operator.}
  1355. with Trangenode(Tvecnode(p).right) do
  1356. begin
  1357. l:=left; {Get lower bound.}
  1358. r:=right; {Get upper bound.}
  1359. end;
  1360. {In the procedure the array range is 0..(upper_bound-lower_bound).}
  1361. hightree:=caddnode.create(subn,r,l);
  1362. {Replace the rangnode in the tree by its lower_bound, and
  1363. dispose the rangenode.}
  1364. temp:=Tvecnode(p).right;
  1365. Tvecnode(p).right:=l.getcopy;
  1366. {Typecheckpass can only be performed *after* the l.getcopy since it
  1367. can modify the tree, and l is in the hightree.}
  1368. typecheckpass(hightree);
  1369. with Trangenode(temp) do
  1370. begin
  1371. left:=nil;
  1372. right:=nil;
  1373. end;
  1374. temp.free;
  1375. {Tree changed from p[l..h] to p[l], recalculate resultdef.}
  1376. p.resultdef:=nil;
  1377. typecheckpass(p);
  1378. end
  1379. else
  1380. begin
  1381. maybe_load_in_temp(p);
  1382. hightree:=geninlinenode(in_high_x,false,p.getcopy);
  1383. typecheckpass(hightree);
  1384. { only substract low(array) if it's <> 0 }
  1385. temp:=geninlinenode(in_low_x,false,p.getcopy);
  1386. typecheckpass(temp);
  1387. if (temp.nodetype <> ordconstn) or
  1388. (tordconstnode(temp).value <> 0) then
  1389. hightree := caddnode.create(subn,hightree,temp)
  1390. else
  1391. temp.free;
  1392. end;
  1393. end;
  1394. end;
  1395. stringdef :
  1396. begin
  1397. if is_open_string(paradef) then
  1398. begin
  1399. { a stringconstn is not a simple parameter and hence would be
  1400. loaded in a temp, but in that case the high() node
  1401. a) goes wrong (it cannot deal with a temp node)
  1402. b) would give a generic result instead of one specific to
  1403. this constant string
  1404. }
  1405. if p.nodetype<>stringconstn then
  1406. maybe_load_in_temp(p);
  1407. { handle via a normal inline in_high_x node }
  1408. loadconst := false;
  1409. hightree := geninlinenode(in_high_x,false,p.getcopy);
  1410. end
  1411. else
  1412. { handle special case of passing an single string to an array of string }
  1413. if compare_defs(tarraydef(paradef).elementdef,p.resultdef,nothingn)>=te_equal then
  1414. len:=0
  1415. else
  1416. { passing a string to an array of char }
  1417. if (p.nodetype=stringconstn) and
  1418. is_char(tarraydef(paradef).elementdef) then
  1419. begin
  1420. len:=tstringconstnode(p).len;
  1421. if len>0 then
  1422. dec(len);
  1423. end
  1424. else
  1425. begin
  1426. maybe_load_in_temp(p);
  1427. hightree:=caddnode.create(subn,geninlinenode(in_length_x,false,p.getcopy),
  1428. cordconstnode.create(1,sinttype,false));
  1429. loadconst:=false;
  1430. end;
  1431. end;
  1432. else
  1433. len:=0;
  1434. end;
  1435. if loadconst then
  1436. hightree:=cordconstnode.create(len,sinttype,true)
  1437. else
  1438. begin
  1439. if not assigned(hightree) then
  1440. internalerror(200304071);
  1441. { Need to use explicit, because it can also be a enum }
  1442. hightree:=ctypeconvnode.create_internal(hightree,sinttype);
  1443. end;
  1444. result:=hightree;
  1445. end;
  1446. function tcallnode.gen_procvar_context_tree:tnode;
  1447. begin
  1448. { Load tmehodpointer(right).self (either self or parentfp) }
  1449. result:=genloadfield(ctypeconvnode.create_internal(
  1450. right.getcopy,methodpointertype),
  1451. 'self');
  1452. end;
  1453. function tcallnode.gen_self_tree:tnode;
  1454. var
  1455. selftree : tnode;
  1456. selfdef : tdef;
  1457. begin
  1458. selftree:=nil;
  1459. { When methodpointer was a callnode we must load it first into a
  1460. temp to prevent processing the callnode twice }
  1461. if (methodpointer.nodetype=calln) then
  1462. internalerror(200405121);
  1463. { Objective-C: objc_convert_to_message_send() already did all necessary
  1464. transformation on the methodpointer }
  1465. if (procdefinition.typ=procdef) and
  1466. (po_objc in tprocdef(procdefinition).procoptions) then
  1467. selftree:=methodpointer.getcopy
  1468. { inherited }
  1469. else if (cnf_inherited in callnodeflags) then
  1470. begin
  1471. selftree:=load_self_node;
  1472. { we can call an inherited class static/method from a regular method
  1473. -> self node must change from instance pointer to vmt pointer)
  1474. }
  1475. if (procdefinition.procoptions*[po_classmethod,po_staticmethod] <> []) and
  1476. (selftree.resultdef.typ<>classrefdef) then
  1477. selftree:=cloadvmtaddrnode.create(selftree);
  1478. end
  1479. else
  1480. { constructors }
  1481. if (procdefinition.proctypeoption=potype_constructor) then
  1482. begin
  1483. { push 0 as self when allocation is needed }
  1484. if (methodpointer.resultdef.typ=classrefdef) or
  1485. (cnf_new_call in callnodeflags) then
  1486. selftree:=cpointerconstnode.create(0,voidpointertype)
  1487. else
  1488. begin
  1489. if methodpointer.nodetype=typen then
  1490. selftree:=load_self_node
  1491. else
  1492. selftree:=methodpointer.getcopy;
  1493. end;
  1494. end
  1495. else
  1496. { Calling a static/class method }
  1497. if (po_classmethod in procdefinition.procoptions) or
  1498. (po_staticmethod in procdefinition.procoptions) then
  1499. begin
  1500. if (procdefinition.typ<>procdef) then
  1501. internalerror(200305062);
  1502. { if the method belongs to a helper then we need to use the
  1503. extended type for references to Self }
  1504. if is_objectpascal_helper(tprocdef(procdefinition).struct) then
  1505. selfdef:=tobjectdef(tprocdef(procdefinition).struct).extendeddef
  1506. else
  1507. selfdef:=tprocdef(procdefinition).struct;
  1508. if (selfdef.typ in [recorddef,objectdef]) and
  1509. (oo_has_vmt in tabstractrecorddef(selfdef).objectoptions) then
  1510. begin
  1511. { we only need the vmt, loading self is not required and there is no
  1512. need to check for typen, because that will always get the
  1513. loadvmtaddrnode added }
  1514. selftree:=methodpointer.getcopy;
  1515. if (methodpointer.resultdef.typ<>classrefdef) or
  1516. (methodpointer.nodetype = typen) then
  1517. selftree:=cloadvmtaddrnode.create(selftree);
  1518. end
  1519. else
  1520. selftree:=cpointerconstnode.create(0,voidpointertype);
  1521. end
  1522. else
  1523. begin
  1524. if methodpointer.nodetype=typen then
  1525. selftree:=load_self_node
  1526. else
  1527. selftree:=methodpointer.getcopy;
  1528. end;
  1529. result:=selftree;
  1530. end;
  1531. procedure tcallnode.register_created_object_types;
  1532. function checklive(def: tdef): boolean;
  1533. begin
  1534. if assigned(current_procinfo) and
  1535. not(po_inline in current_procinfo.procdef.procoptions) and
  1536. not wpoinfomanager.symbol_live(current_procinfo.procdef.mangledname) then
  1537. begin
  1538. {$ifdef debug_deadcode}
  1539. writeln(' NOT adding creadion of ',def.typename,' because performed in dead stripped proc: ',current_procinfo.procdef.typename);
  1540. {$endif debug_deadcode}
  1541. result:=false;
  1542. end
  1543. else
  1544. result:=true;
  1545. end;
  1546. var
  1547. crefdef,
  1548. systobjectdef : tdef;
  1549. begin
  1550. { only makes sense for methods }
  1551. if not assigned(methodpointer) then
  1552. exit;
  1553. if (methodpointer.resultdef.typ=classrefdef) then
  1554. begin
  1555. { constructor call via classreference => allocate memory }
  1556. if (procdefinition.proctypeoption=potype_constructor) then
  1557. begin
  1558. { Only a typenode can be passed when it is called with <class of xx>.create }
  1559. if (methodpointer.nodetype=typen) then
  1560. begin
  1561. if checklive(methodpointer.resultdef) then
  1562. { we know the exact class type being created }
  1563. tclassrefdef(methodpointer.resultdef).pointeddef.register_created_object_type
  1564. end
  1565. else
  1566. begin
  1567. { the loadvmtaddrnode is already created in case of classtype.create }
  1568. if (methodpointer.nodetype=loadvmtaddrn) and
  1569. (tloadvmtaddrnode(methodpointer).left.nodetype=typen) then
  1570. begin
  1571. if checklive(methodpointer.resultdef) then
  1572. tclassrefdef(methodpointer.resultdef).pointeddef.register_created_object_type
  1573. end
  1574. else
  1575. begin
  1576. if checklive(methodpointer.resultdef) then
  1577. begin
  1578. { special case: if the classref comes from x.classtype (with classtype,
  1579. being tobject.classtype) then the created instance is x or a descendant
  1580. of x (rather than tobject or a descendant of tobject)
  1581. }
  1582. systobjectdef:=search_system_type('TOBJECT').typedef;
  1583. if (methodpointer.nodetype=calln) and
  1584. { not a procvar call }
  1585. not assigned(right) and
  1586. { procdef is owned by system.tobject }
  1587. (tprocdef(tcallnode(methodpointer).procdefinition).owner.defowner=systobjectdef) and
  1588. { we're calling system.tobject.classtype }
  1589. (tcallnode(methodpointer).symtableprocentry.name='CLASSTYPE') and
  1590. { could again be a classrefdef, but unlikely }
  1591. (tcallnode(methodpointer).methodpointer.resultdef.typ=objectdef) and
  1592. { don't go through this trouble if it was already a tobject }
  1593. (tcallnode(methodpointer).methodpointer.resultdef<>systobjectdef) then
  1594. begin
  1595. { register this object type as classref, so all descendents will also
  1596. be marked as instantiatable (only the pointeddef will actually be
  1597. recorded, so it's no problem that the clasrefdef is only temporary)
  1598. }
  1599. crefdef:=tclassrefdef.create(tcallnode(methodpointer).methodpointer.resultdef);
  1600. { and register it }
  1601. crefdef.register_created_object_type;
  1602. end
  1603. else
  1604. { the created class can be any child class as well -> register classrefdef }
  1605. methodpointer.resultdef.register_created_object_type;
  1606. end;
  1607. end;
  1608. end;
  1609. end
  1610. end
  1611. else
  1612. { Old style object }
  1613. if is_object(methodpointer.resultdef) then
  1614. begin
  1615. { constructor with extended syntax called from new }
  1616. if (cnf_new_call in callnodeflags) then
  1617. begin
  1618. if checklive(methodpointer.resultdef) then
  1619. methodpointer.resultdef.register_created_object_type;
  1620. end
  1621. else
  1622. { normal object call like obj.proc }
  1623. if not(cnf_dispose_call in callnodeflags) and
  1624. not(cnf_inherited in callnodeflags) and
  1625. not(cnf_member_call in callnodeflags) then
  1626. begin
  1627. if (procdefinition.proctypeoption=potype_constructor) then
  1628. begin
  1629. if (methodpointer.nodetype<>typen) and
  1630. checklive(methodpointer.resultdef) then
  1631. methodpointer.resultdef.register_created_object_type;
  1632. end
  1633. end;
  1634. end;
  1635. end;
  1636. function tcallnode.get_expect_loc: tcgloc;
  1637. var
  1638. realresdef: tstoreddef;
  1639. begin
  1640. if not assigned(typedef) then
  1641. realresdef:=tstoreddef(resultdef)
  1642. else
  1643. realresdef:=tstoreddef(typedef);
  1644. if realresdef.is_intregable then
  1645. result:=LOC_REGISTER
  1646. else if (realresdef.typ=floatdef) and
  1647. not(cs_fp_emulation in current_settings.moduleswitches) then
  1648. if use_vectorfpu(realresdef) then
  1649. result:=LOC_MMREGISTER
  1650. else
  1651. result:=LOC_FPUREGISTER
  1652. else
  1653. result:=LOC_REFERENCE
  1654. end;
  1655. procedure tcallnode.objc_convert_to_message_send;
  1656. var
  1657. block,
  1658. selftree : tnode;
  1659. statements : tstatementnode;
  1660. field : tfieldvarsym;
  1661. temp : ttempcreatenode;
  1662. selfrestype,
  1663. objcsupertype : tdef;
  1664. srsym : tsym;
  1665. srsymtable : tsymtable;
  1666. msgsendname : string;
  1667. begin
  1668. if not(m_objectivec1 in current_settings.modeswitches) then
  1669. Message(parser_f_modeswitch_objc_required);
  1670. { typecheck pass must already have run on the call node,
  1671. because pass1 calls this method
  1672. }
  1673. { default behaviour: call objc_msgSend and friends;
  1674. 64 bit targets for Mac OS X can override this as they
  1675. can call messages via an indirect function call similar to
  1676. dynamically linked functions, ARM maybe as well (not checked)
  1677. Which variant of objc_msgSend is used depends on the
  1678. result type, and on whether or not it's an inherited call.
  1679. }
  1680. { make sure we don't perform this transformation twice in case
  1681. firstpass would be called multiple times }
  1682. include(callnodeflags,cnf_objc_processed);
  1683. { make sure the methodpointer doesn't get translated into a call
  1684. as well (endless loop) }
  1685. if methodpointer.nodetype=loadvmtaddrn then
  1686. tloadvmtaddrnode(methodpointer).forcall:=true;
  1687. { A) set the appropriate objc_msgSend* variant to call }
  1688. { record returned via implicit pointer }
  1689. if paramanager.ret_in_param(resultdef,procdefinition.proccalloption) then
  1690. begin
  1691. if not(cnf_inherited in callnodeflags) then
  1692. msgsendname:='OBJC_MSGSEND_STRET'
  1693. {$if defined(onlymacosx10_6) or defined(arm) }
  1694. else if (target_info.system in systems_objc_nfabi) then
  1695. msgsendname:='OBJC_MSGSENDSUPER2_STRET'
  1696. {$endif onlymacosx10_6 or arm}
  1697. else
  1698. msgsendname:='OBJC_MSGSENDSUPER_STRET'
  1699. end
  1700. {$ifdef i386}
  1701. { special case for fpu results on i386 for non-inherited calls }
  1702. { TODO: also for x86_64 "extended" results }
  1703. else if (resultdef.typ=floatdef) and
  1704. not(cnf_inherited in callnodeflags) then
  1705. msgsendname:='OBJC_MSGSEND_FPRET'
  1706. {$endif}
  1707. { default }
  1708. else if not(cnf_inherited in callnodeflags) then
  1709. msgsendname:='OBJC_MSGSEND'
  1710. {$if defined(onlymacosx10_6) or defined(arm) }
  1711. else if (target_info.system in systems_objc_nfabi) then
  1712. msgsendname:='OBJC_MSGSENDSUPER2'
  1713. {$endif onlymacosx10_6 or arm}
  1714. else
  1715. msgsendname:='OBJC_MSGSENDSUPER';
  1716. { get the mangled name }
  1717. if not searchsym_in_named_module('OBJC',msgsendname,srsym,srsymtable) or
  1718. (srsym.typ<>procsym) or
  1719. (tprocsym(srsym).ProcdefList.count<>1) then
  1720. Message1(cg_f_unknown_compilerproc,'objc.'+msgsendname);
  1721. fobjcforcedprocname:=stringdup(tprocdef(tprocsym(srsym).ProcdefList[0]).mangledname);
  1722. { B) Handle self }
  1723. { 1) in case of sending a message to a superclass, self is a pointer to
  1724. an objc_super record
  1725. }
  1726. if (cnf_inherited in callnodeflags) then
  1727. begin
  1728. block:=internalstatements(statements);
  1729. objcsupertype:=search_named_unit_globaltype('OBJC','OBJC_SUPER',true).typedef;
  1730. if (objcsupertype.typ<>recorddef) then
  1731. internalerror(2009032901);
  1732. { temp for the for the objc_super record }
  1733. temp:=ctempcreatenode.create(objcsupertype,objcsupertype.size,tt_persistent,false);
  1734. addstatement(statements,temp);
  1735. { initialize objc_super record }
  1736. selftree:=load_self_node;
  1737. { we can call an inherited class static/method from a regular method
  1738. -> self node must change from instance pointer to vmt pointer)
  1739. }
  1740. if (po_classmethod in procdefinition.procoptions) and
  1741. (selftree.resultdef.typ<>classrefdef) then
  1742. begin
  1743. selftree:=cloadvmtaddrnode.create(selftree);
  1744. { since we're in a class method of the current class, its
  1745. information has already been initialized (and that of all of
  1746. its parent classes too) }
  1747. tloadvmtaddrnode(selftree).forcall:=true;
  1748. typecheckpass(selftree);
  1749. end;
  1750. selfrestype:=selftree.resultdef;
  1751. field:=tfieldvarsym(trecorddef(objcsupertype).symtable.find('RECEIVER'));
  1752. if not assigned(field) then
  1753. internalerror(2009032902);
  1754. { first the destination object/class instance }
  1755. addstatement(statements,
  1756. cassignmentnode.create(
  1757. csubscriptnode.create(field,ctemprefnode.create(temp)),
  1758. selftree
  1759. )
  1760. );
  1761. { and secondly, the class type in which the selector must be looked
  1762. up (the parent class in case of an instance method, the parent's
  1763. metaclass in case of a class method) }
  1764. field:=tfieldvarsym(trecorddef(objcsupertype).symtable.find('_CLASS'));
  1765. if not assigned(field) then
  1766. internalerror(2009032903);
  1767. addstatement(statements,
  1768. cassignmentnode.create(
  1769. csubscriptnode.create(field,ctemprefnode.create(temp)),
  1770. objcsuperclassnode(selftree.resultdef)
  1771. )
  1772. );
  1773. { result of this block is the address of this temp }
  1774. addstatement(statements,ctypeconvnode.create_internal(
  1775. caddrnode.create_internal(ctemprefnode.create(temp)),selfrestype)
  1776. );
  1777. { replace the method pointer with the address of this temp }
  1778. methodpointer.free;
  1779. methodpointer:=block;
  1780. typecheckpass(block);
  1781. end
  1782. else
  1783. { 2) regular call (not inherited) }
  1784. begin
  1785. { a) If we're calling a class method, use a class ref. }
  1786. if (po_classmethod in procdefinition.procoptions) and
  1787. ((methodpointer.nodetype=typen) or
  1788. (methodpointer.resultdef.typ<>classrefdef)) then
  1789. begin
  1790. methodpointer:=cloadvmtaddrnode.create(methodpointer);
  1791. { no need to obtain the class ref by calling class(), sending
  1792. this message will initialize it if necessary }
  1793. tloadvmtaddrnode(methodpointer).forcall:=true;
  1794. firstpass(methodpointer);
  1795. end;
  1796. end;
  1797. end;
  1798. function tcallnode.gen_vmt_tree:tnode;
  1799. var
  1800. vmttree : tnode;
  1801. begin
  1802. vmttree:=nil;
  1803. if not(procdefinition.proctypeoption in [potype_constructor,potype_destructor]) then
  1804. internalerror(200305051);
  1805. { When methodpointer was a callnode we must load it first into a
  1806. temp to prevent the processing callnode twice }
  1807. if (methodpointer.nodetype=calln) then
  1808. internalerror(200405122);
  1809. { Handle classes and legacy objects separate to make it
  1810. more maintainable }
  1811. if (methodpointer.resultdef.typ=classrefdef) then
  1812. begin
  1813. if not is_class(tclassrefdef(methodpointer.resultdef).pointeddef) then
  1814. internalerror(200501041);
  1815. { constructor call via classreference => allocate memory }
  1816. if (procdefinition.proctypeoption=potype_constructor) then
  1817. begin
  1818. vmttree:=methodpointer.getcopy;
  1819. { Only a typenode can be passed when it is called with <class of xx>.create }
  1820. if vmttree.nodetype=typen then
  1821. begin
  1822. vmttree:=cloadvmtaddrnode.create(vmttree);
  1823. tloadvmtaddrnode(vmttree).forcall:=true;
  1824. end;
  1825. end
  1826. else
  1827. begin
  1828. { Call afterconstruction }
  1829. vmttree:=cpointerconstnode.create(1,voidpointertype);
  1830. end;
  1831. end
  1832. else
  1833. { Class style objects }
  1834. if is_class(methodpointer.resultdef) then
  1835. begin
  1836. { inherited call, no create/destroy }
  1837. if (cnf_inherited in callnodeflags) then
  1838. vmttree:=cpointerconstnode.create(0,voidpointertype)
  1839. else
  1840. { do not create/destroy when called from member function
  1841. without specifying self explicit }
  1842. if (cnf_member_call in callnodeflags) then
  1843. begin
  1844. { destructor (in the same class, since cnf_member_call):
  1845. if not called from a destructor then
  1846. call beforedestruction and release instance, vmt=1
  1847. else
  1848. don't release instance, vmt=0
  1849. constructor (in the same class, since cnf_member_call):
  1850. if called from a constructor then
  1851. don't call afterconstruction, vmt=0
  1852. else
  1853. call afterconstrution, vmt=1 }
  1854. if (procdefinition.proctypeoption=potype_destructor) then
  1855. if (current_procinfo.procdef.proctypeoption<>potype_constructor) then
  1856. vmttree:=cpointerconstnode.create(1,voidpointertype)
  1857. else
  1858. vmttree:=cpointerconstnode.create(0,voidpointertype)
  1859. else if (current_procinfo.procdef.proctypeoption=potype_constructor) and
  1860. (procdefinition.proctypeoption=potype_constructor) then
  1861. vmttree:=cpointerconstnode.create(0,voidpointertype)
  1862. else
  1863. vmttree:=cpointerconstnode.create(1,voidpointertype);
  1864. end
  1865. else
  1866. { normal call to method like cl1.proc }
  1867. begin
  1868. { destructor:
  1869. if not called from exception block in constructor
  1870. call beforedestruction and release instance, vmt=1
  1871. else
  1872. don't call beforedestruction and release instance, vmt=-1
  1873. constructor:
  1874. if called from a constructor in the same class using self.create then
  1875. don't call afterconstruction, vmt=0
  1876. else
  1877. call afterconstruction, vmt=1 }
  1878. if (procdefinition.proctypeoption=potype_destructor) then
  1879. if not(cnf_create_failed in callnodeflags) then
  1880. vmttree:=cpointerconstnode.create(1,voidpointertype)
  1881. else
  1882. vmttree:=cpointerconstnode.create(TConstPtrUInt(-1),voidpointertype)
  1883. else
  1884. begin
  1885. if (current_procinfo.procdef.proctypeoption=potype_constructor) and
  1886. (procdefinition.proctypeoption=potype_constructor) and
  1887. (methodpointer.nodetype=loadn) and
  1888. (loadnf_is_self in tloadnode(methodpointer).loadnodeflags) then
  1889. vmttree:=cpointerconstnode.create(0,voidpointertype)
  1890. else
  1891. vmttree:=cpointerconstnode.create(1,voidpointertype);
  1892. end;
  1893. end;
  1894. end
  1895. else
  1896. { Old style object }
  1897. begin
  1898. { constructor with extended syntax called from new }
  1899. if (cnf_new_call in callnodeflags) then
  1900. vmttree:=cloadvmtaddrnode.create(ctypenode.create(methodpointer.resultdef))
  1901. else
  1902. { destructor with extended syntax called from dispose }
  1903. if (cnf_dispose_call in callnodeflags) then
  1904. vmttree:=cloadvmtaddrnode.create(methodpointer.getcopy)
  1905. else
  1906. { inherited call, no create/destroy }
  1907. if (cnf_inherited in callnodeflags) then
  1908. vmttree:=cpointerconstnode.create(0,voidpointertype)
  1909. else
  1910. { do not create/destroy when called from member function
  1911. without specifying self explicit }
  1912. if (cnf_member_call in callnodeflags) then
  1913. begin
  1914. { destructor: don't release instance, vmt=0
  1915. constructor: don't initialize instance, vmt=0 }
  1916. vmttree:=cpointerconstnode.create(0,voidpointertype)
  1917. end
  1918. else
  1919. { normal object call like obj.proc }
  1920. begin
  1921. { destructor: direct call, no dispose, vmt=0
  1922. constructor: initialize object, load vmt }
  1923. if (procdefinition.proctypeoption=potype_constructor) then
  1924. begin
  1925. { old styled inherited call? }
  1926. if (methodpointer.nodetype=typen) then
  1927. vmttree:=cpointerconstnode.create(0,voidpointertype)
  1928. else
  1929. vmttree:=cloadvmtaddrnode.create(ctypenode.create(methodpointer.resultdef))
  1930. end
  1931. else
  1932. vmttree:=cpointerconstnode.create(0,voidpointertype);
  1933. end;
  1934. end;
  1935. result:=vmttree;
  1936. end;
  1937. function check_funcret_used_as_para(var n: tnode; arg: pointer): foreachnoderesult;
  1938. var
  1939. destsym : tsym absolute arg;
  1940. begin
  1941. result := fen_false;
  1942. if (n.nodetype=loadn) and
  1943. (tloadnode(n).symtableentry = destsym) then
  1944. result := fen_norecurse_true;
  1945. end;
  1946. function tcallnode.funcret_can_be_reused:boolean;
  1947. var
  1948. realassignmenttarget: tnode;
  1949. alignment: longint;
  1950. begin
  1951. result:=false;
  1952. { we are processing an assignment node? }
  1953. if not(assigned(aktassignmentnode) and
  1954. (aktassignmentnode.right=self) and
  1955. (aktassignmentnode.left.resultdef=resultdef)) then
  1956. exit;
  1957. { destination must be able to be passed as var parameter }
  1958. if not valid_for_var(aktassignmentnode.left,false) then
  1959. exit;
  1960. { destination must be a simple load so it doesn't need a temp when
  1961. it is evaluated }
  1962. if not is_simple_para_load(aktassignmentnode.left,false) then
  1963. exit;
  1964. { remove possible typecasts }
  1965. realassignmenttarget:=aktassignmentnode.left.actualtargetnode;
  1966. { when it is not passed in a parameter it will only be used after the
  1967. function call }
  1968. if not paramanager.ret_in_param(resultdef,procdefinition.proccalloption) then
  1969. begin
  1970. result:=true;
  1971. exit;
  1972. end;
  1973. { if the result is the same as the self parameter (in case of objects),
  1974. we can't optimise. We have to check this explicitly becaise
  1975. hidden parameters such as self have not yet been inserted at this
  1976. point
  1977. }
  1978. if assigned(methodpointer) and
  1979. realassignmenttarget.isequal(methodpointer.actualtargetnode) then
  1980. exit;
  1981. { when we substitute a function result inside an inlined function,
  1982. we may take the address of this function result. Therefore the
  1983. substituted function result may not be in a register, as we cannot
  1984. take its address in that case }
  1985. if (realassignmenttarget.nodetype=temprefn) and
  1986. not(ti_addr_taken in ttemprefnode(realassignmenttarget).tempinfo^.flags) and
  1987. not(ti_may_be_in_reg in ttemprefnode(realassignmenttarget).tempinfo^.flags) then
  1988. begin
  1989. result:=true;
  1990. exit;
  1991. end;
  1992. if (realassignmenttarget.nodetype=loadn) and
  1993. { nested procedures may access the current procedure's locals }
  1994. (procdefinition.parast.symtablelevel=normal_function_level) and
  1995. { must be a local variable, a value para or a hidden function result }
  1996. { parameter (which can be passed by address, but in that case it got }
  1997. { through these same checks at the caller side and is thus safe }
  1998. (
  1999. (tloadnode(realassignmenttarget).symtableentry.typ=localvarsym) or
  2000. (
  2001. (tloadnode(realassignmenttarget).symtableentry.typ=paravarsym) and
  2002. ((tparavarsym(tloadnode(realassignmenttarget).symtableentry).varspez = vs_value) or
  2003. (vo_is_funcret in tparavarsym(tloadnode(realassignmenttarget).symtableentry).varoptions))
  2004. )
  2005. ) and
  2006. { the address may not have been taken of the variable/parameter, because }
  2007. { otherwise it's possible that the called function can access it via a }
  2008. { global variable or other stored state }
  2009. (
  2010. not(tabstractvarsym(tloadnode(realassignmenttarget).symtableentry).addr_taken) and
  2011. (tabstractvarsym(tloadnode(realassignmenttarget).symtableentry).varregable in [vr_none,vr_addr])
  2012. ) then
  2013. begin
  2014. { If the funcret is also used as a parameter we can't optimize because the funcret
  2015. and the parameter will point to the same address. That means that a change of the result variable
  2016. will result also in a change of the parameter value }
  2017. result:=not foreachnodestatic(left,@check_funcret_used_as_para,tloadnode(realassignmenttarget).symtableentry);
  2018. { ensure that it is aligned using the default alignment }
  2019. alignment:=tabstractvarsym(tloadnode(realassignmenttarget).symtableentry).vardef.alignment;
  2020. if (used_align(alignment,target_info.alignment.localalignmin,target_info.alignment.localalignmax)<>
  2021. used_align(alignment,current_settings.alignment.localalignmin,current_settings.alignment.localalignmax)) then
  2022. result:=false;
  2023. exit;
  2024. end;
  2025. end;
  2026. procedure tcallnode.maybe_create_funcret_node;
  2027. var
  2028. temp : ttempcreatenode;
  2029. begin
  2030. { For the function result we need to create a temp node for:
  2031. - Inlined functions
  2032. - Types requiring initialization/finalization
  2033. - Types passed in parameters }
  2034. if not is_void(resultdef) and
  2035. not assigned(funcretnode) and
  2036. (
  2037. (cnf_do_inline in callnodeflags) or
  2038. is_managed_type(resultdef) or
  2039. paramanager.ret_in_param(resultdef,procdefinition.proccalloption)
  2040. ) then
  2041. begin
  2042. { Optimize calls like x:=f() where we can use x directly as
  2043. result instead of using a temp. Condition is that x cannot be accessed from f().
  2044. This implies that x is a local variable or value parameter of the current block
  2045. and its address is not passed to f. One problem: what if someone takes the
  2046. address of x, puts it in a pointer variable/field and then accesses it that way
  2047. from within the function? This is solved (in a conservative way) using the
  2048. ti_addr_taken flag.
  2049. When the result is not not passed in a parameter there are no problem because
  2050. then it means only reference counted types (eg. ansistrings) that need a decr
  2051. of the refcount before being assigned. This is all done after the call so there
  2052. is no issue with exceptions and possible use of the old value in the called
  2053. function }
  2054. if funcret_can_be_reused then
  2055. begin
  2056. funcretnode:=aktassignmentnode.left.getcopy;
  2057. include(funcretnode.flags,nf_is_funcret);
  2058. { notify the assignment node that the assignment can be removed }
  2059. include(aktassignmentnode.flags,nf_assign_done_in_right);
  2060. end
  2061. else
  2062. begin
  2063. temp:=ctempcreatenode.create(resultdef,resultdef.size,tt_persistent,
  2064. (cnf_do_inline in callnodeflags) and
  2065. not(tabstractvarsym(tprocdef(procdefinition).funcretsym).varregable in [vr_none,vr_addr]));
  2066. include(temp.flags,nf_is_funcret);
  2067. add_init_statement(temp);
  2068. { When the function result is not used in an inlined function
  2069. we need to delete the temp. This can currently only be done by
  2070. a tempdeletenode and not after converting it to a normal temp }
  2071. if not(cnf_return_value_used in callnodeflags) and
  2072. (cnf_do_inline in callnodeflags) then
  2073. add_done_statement(ctempdeletenode.create(temp))
  2074. else
  2075. add_done_statement(ctempdeletenode.create_normal_temp(temp));
  2076. funcretnode:=ctemprefnode.create(temp);
  2077. include(funcretnode.flags,nf_is_funcret);
  2078. end;
  2079. end;
  2080. end;
  2081. procedure tcallnode.gen_hidden_parameters;
  2082. var
  2083. para : tcallparanode;
  2084. begin
  2085. para:=tcallparanode(left);
  2086. while assigned(para) do
  2087. begin
  2088. { The processing of high() and typeinfo() is already
  2089. done in the typecheckpass. We only need to process the
  2090. nodes that still have a nothingn }
  2091. if (vo_is_hidden_para in para.parasym.varoptions) and
  2092. (para.left.nodetype=nothingn) then
  2093. begin
  2094. { remove dummy nothingn }
  2095. para.left.free;
  2096. para.left:=nil;
  2097. { generate the corresponding nodes for the hidden parameter type }
  2098. if (vo_is_funcret in para.parasym.varoptions) then
  2099. begin
  2100. if not assigned(funcretnode) then
  2101. internalerror(200709083);
  2102. para.left:=funcretnode;
  2103. funcretnode:=nil;
  2104. end
  2105. else
  2106. if vo_is_self in para.parasym.varoptions then
  2107. begin
  2108. if assigned(right) then
  2109. para.left:=gen_procvar_context_tree
  2110. else
  2111. para.left:=gen_self_tree;
  2112. end
  2113. else
  2114. if vo_is_vmt in para.parasym.varoptions then
  2115. begin
  2116. para.left:=gen_vmt_tree;
  2117. end
  2118. {$if defined(powerpc) or defined(m68k)}
  2119. else
  2120. if vo_is_syscall_lib in para.parasym.varoptions then
  2121. begin
  2122. { lib parameter has no special type but proccalloptions must be a syscall }
  2123. para.left:=cloadnode.create(tprocdef(procdefinition).libsym,tprocdef(procdefinition).libsym.owner);
  2124. end
  2125. {$endif powerpc or m68k}
  2126. else
  2127. if vo_is_parentfp in para.parasym.varoptions then
  2128. begin
  2129. if not assigned(right) then
  2130. begin
  2131. if not(assigned(procdefinition.owner.defowner)) then
  2132. internalerror(200309287);
  2133. para.left:=cloadparentfpnode.create(tprocdef(procdefinition.owner.defowner))
  2134. end
  2135. else
  2136. para.left:=gen_procvar_context_tree;
  2137. end
  2138. else
  2139. if vo_is_range_check in para.parasym.varoptions then
  2140. begin
  2141. para.left:=cordconstnode.create(Ord(cs_check_range in current_settings.localswitches),pasbool8type,false);
  2142. end
  2143. else
  2144. if vo_is_overflow_check in para.parasym.varoptions then
  2145. begin
  2146. para.left:=cordconstnode.create(Ord(cs_check_overflow in current_settings.localswitches),pasbool8type,false);
  2147. end
  2148. else
  2149. if vo_is_msgsel in para.parasym.varoptions then
  2150. begin
  2151. para.left:=cobjcselectornode.create(cstringconstnode.createstr(tprocdef(procdefinition).messageinf.str^));
  2152. end;
  2153. end;
  2154. if not assigned(para.left) then
  2155. internalerror(200709084);
  2156. para:=tcallparanode(para.right);
  2157. end;
  2158. end;
  2159. procedure tcallnode.verifyabstract(sym:TObject;arg:pointer);
  2160. var
  2161. pd : tprocdef;
  2162. i : longint;
  2163. j : integer;
  2164. hs : string;
  2165. begin
  2166. if (tsym(sym).typ<>procsym) then
  2167. exit;
  2168. for i:=0 to tprocsym(sym).ProcdefList.Count-1 do
  2169. begin
  2170. pd:=tprocdef(tprocsym(sym).ProcdefList[i]);
  2171. hs:=pd.procsym.name+pd.typename_paras(false);
  2172. j:=AbstractMethodsList.FindIndexOf(hs);
  2173. if j<>-1 then
  2174. AbstractMethodsList[j]:=pd
  2175. else
  2176. AbstractMethodsList.Add(hs,pd);
  2177. end;
  2178. end;
  2179. procedure tcallnode.verifyabstractcalls;
  2180. var
  2181. objectdf : tobjectdef;
  2182. parents : tlinkedlist;
  2183. objectinfo : tobjectinfoitem;
  2184. pd : tprocdef;
  2185. i : integer;
  2186. begin
  2187. objectdf := nil;
  2188. { verify if trying to create an instance of a class which contains
  2189. non-implemented abstract methods }
  2190. { first verify this class type, no class than exit }
  2191. { also, this checking can only be done if the constructor is directly
  2192. called, indirect constructor calls cannot be checked.
  2193. }
  2194. if assigned(methodpointer) and
  2195. not((methodpointer.nodetype=loadn) and
  2196. (loadnf_is_self in tloadnode(methodpointer).loadnodeflags)) then
  2197. begin
  2198. if (methodpointer.resultdef.typ = objectdef) then
  2199. objectdf:=tobjectdef(methodpointer.resultdef)
  2200. else
  2201. if (methodpointer.resultdef.typ = classrefdef) and
  2202. (tclassrefdef(methodpointer.resultdef).pointeddef.typ = objectdef) and
  2203. (methodpointer.nodetype in [typen,loadvmtaddrn]) then
  2204. objectdf:=tobjectdef(tclassrefdef(methodpointer.resultdef).pointeddef);
  2205. end;
  2206. if not assigned(objectdf) then
  2207. exit;
  2208. parents := tlinkedlist.create;
  2209. AbstractMethodsList := TFPHashList.create;
  2210. { insert all parents in this class : the first item in the
  2211. list will be the base parent of the class .
  2212. }
  2213. while assigned(objectdf) do
  2214. begin
  2215. objectinfo:=tobjectinfoitem.create(objectdf);
  2216. parents.insert(objectinfo);
  2217. objectdf := objectdf.childof;
  2218. end;
  2219. { now all parents are in the correct order
  2220. insert all abstract methods in the list, and remove
  2221. those which are overridden by parent classes.
  2222. }
  2223. objectinfo:=tobjectinfoitem(parents.first);
  2224. while assigned(objectinfo) do
  2225. begin
  2226. objectdf := objectinfo.objinfo;
  2227. if assigned(objectdf.symtable) then
  2228. objectdf.symtable.SymList.ForEachCall(@verifyabstract,nil);
  2229. objectinfo:=tobjectinfoitem(objectinfo.next);
  2230. end;
  2231. if assigned(parents) then
  2232. parents.free;
  2233. { Finally give out a warning for each abstract method still in the list }
  2234. for i:=0 to AbstractMethodsList.Count-1 do
  2235. begin
  2236. pd:=tprocdef(AbstractMethodsList[i]);
  2237. if po_abstractmethod in pd.procoptions then
  2238. begin
  2239. Message2(type_w_instance_with_abstract,objectdf.objrealname^,pd.procsym.RealName);
  2240. MessagePos1(pd.fileinfo,sym_h_abstract_method_list,pd.fullprocname(true));
  2241. end;
  2242. end;
  2243. if assigned(AbstractMethodsList) then
  2244. AbstractMethodsList.Free;
  2245. end;
  2246. procedure tcallnode.convert_carg_array_of_const;
  2247. var
  2248. hp : tarrayconstructornode;
  2249. oldleft : tcallparanode;
  2250. begin
  2251. oldleft:=tcallparanode(left);
  2252. if oldleft.left.nodetype<>arrayconstructorn then
  2253. begin
  2254. CGMessage1(type_e_wrong_type_in_array_constructor,oldleft.left.resultdef.typename);
  2255. exit;
  2256. end;
  2257. include(callnodeflags,cnf_uses_varargs);
  2258. { Get arrayconstructor node and insert typeconvs }
  2259. hp:=tarrayconstructornode(oldleft.left);
  2260. { Add c args parameters }
  2261. { It could be an empty set }
  2262. if assigned(hp) and
  2263. assigned(hp.left) then
  2264. begin
  2265. while assigned(hp) do
  2266. begin
  2267. left:=ccallparanode.create(hp.left,left);
  2268. { set callparanode resultdef and flags }
  2269. left.resultdef:=hp.left.resultdef;
  2270. include(tcallparanode(left).callparaflags,cpf_varargs_para);
  2271. hp.left:=nil;
  2272. hp:=tarrayconstructornode(hp.right);
  2273. end;
  2274. end;
  2275. { Remove value of old array of const parameter, but keep it
  2276. in the list because it is required for bind_parasym.
  2277. Generate a nothign to keep callparanoed.left valid }
  2278. oldleft.left.free;
  2279. oldleft.left:=cnothingnode.create;
  2280. end;
  2281. procedure tcallnode.bind_parasym;
  2282. type
  2283. pcallparanode = ^tcallparanode;
  2284. var
  2285. i : integer;
  2286. pt : tcallparanode;
  2287. oldppt : pcallparanode;
  2288. varargspara,
  2289. currpara : tparavarsym;
  2290. hiddentree : tnode;
  2291. paradef : tdef;
  2292. begin
  2293. pt:=tcallparanode(left);
  2294. oldppt:=pcallparanode(@left);
  2295. { flag all callparanodes that belong to the varargs }
  2296. i:=paralength;
  2297. while (i>procdefinition.maxparacount) do
  2298. begin
  2299. include(pt.callparaflags,cpf_varargs_para);
  2300. oldppt:=pcallparanode(@pt.right);
  2301. pt:=tcallparanode(pt.right);
  2302. dec(i);
  2303. end;
  2304. { skip varargs that are inserted by array of const }
  2305. while assigned(pt) and
  2306. (cpf_varargs_para in pt.callparaflags) do
  2307. pt:=tcallparanode(pt.right);
  2308. { process normal parameters and insert hidden parameter nodes, the content
  2309. of the hidden parameters will be updated in pass1 }
  2310. for i:=procdefinition.paras.count-1 downto 0 do
  2311. begin
  2312. currpara:=tparavarsym(procdefinition.paras[i]);
  2313. if vo_is_hidden_para in currpara.varoptions then
  2314. begin
  2315. { Here we handle only the parameters that depend on
  2316. the types of the previous parameter. The typeconversion
  2317. can change the type in the next step. For example passing
  2318. an array can be change to a pointer and a deref }
  2319. if vo_is_high_para in currpara.varoptions then
  2320. begin
  2321. if not assigned(pt) or (i=0) then
  2322. internalerror(200304081);
  2323. { we need the information of the previous parameter }
  2324. paradef:=tparavarsym(procdefinition.paras[i-1]).vardef;
  2325. hiddentree:=gen_high_tree(pt.left,paradef);
  2326. { for open array of managed type, a copy of high parameter is
  2327. necessary to properly initialize before the call }
  2328. if is_open_array(paradef) and
  2329. (tparavarsym(procdefinition.paras[i-1]).varspez=vs_out) and
  2330. is_managed_type(tarraydef(paradef).elementdef) then
  2331. begin
  2332. typecheckpass(hiddentree);
  2333. {this eliminates double call to fpc_dynarray_high, if any}
  2334. maybe_load_in_temp(hiddentree);
  2335. oldppt^.third:=hiddentree.getcopy;
  2336. end;
  2337. end
  2338. else
  2339. if vo_is_typinfo_para in currpara.varoptions then
  2340. begin
  2341. if not assigned(pt) or (i=0) then
  2342. internalerror(200304082);
  2343. hiddentree:=caddrnode.create_internal(
  2344. crttinode.create(Tstoreddef(pt.resultdef),fullrtti,rdt_normal)
  2345. );
  2346. end
  2347. else
  2348. hiddentree:=cnothingnode.create;
  2349. pt:=ccallparanode.create(hiddentree,oldppt^);
  2350. oldppt^:=pt;
  2351. end;
  2352. if not assigned(pt) then
  2353. internalerror(200310052);
  2354. pt.parasym:=currpara;
  2355. oldppt:=pcallparanode(@pt.right);
  2356. pt:=tcallparanode(pt.right);
  2357. end;
  2358. { Create parasyms for varargs, first count the number of varargs paras,
  2359. then insert the parameters with numbering in reverse order. The SortParas
  2360. will set the correct order at the end}
  2361. pt:=tcallparanode(left);
  2362. i:=0;
  2363. while assigned(pt) do
  2364. begin
  2365. if cpf_varargs_para in pt.callparaflags then
  2366. inc(i);
  2367. pt:=tcallparanode(pt.right);
  2368. end;
  2369. if (i>0) then
  2370. begin
  2371. varargsparas:=tvarargsparalist.create;
  2372. pt:=tcallparanode(left);
  2373. while assigned(pt) do
  2374. begin
  2375. if cpf_varargs_para in pt.callparaflags then
  2376. begin
  2377. varargspara:=tparavarsym.create('va'+tostr(i),i,vs_value,pt.resultdef,[]);
  2378. dec(i);
  2379. { varargspara is left-right, use insert
  2380. instead of concat }
  2381. varargsparas.add(varargspara);
  2382. pt.parasym:=varargspara;
  2383. end;
  2384. pt:=tcallparanode(pt.right);
  2385. end;
  2386. varargsparas.sortparas;
  2387. end;
  2388. end;
  2389. function tcallnode.pass_typecheck:tnode;
  2390. var
  2391. candidates : tcallcandidates;
  2392. oldcallnode : tcallnode;
  2393. hpt : tnode;
  2394. pt : tcallparanode;
  2395. lastpara : longint;
  2396. paraidx,
  2397. cand_cnt : integer;
  2398. i : longint;
  2399. ignorevisibility,
  2400. is_const : boolean;
  2401. statements : tstatementnode;
  2402. converted_result_data : ttempcreatenode;
  2403. calltype: tdispcalltype;
  2404. label
  2405. errorexit;
  2406. begin
  2407. result:=nil;
  2408. candidates:=nil;
  2409. oldcallnode:=aktcallnode;
  2410. aktcallnode:=self;
  2411. { determine length of parameter list }
  2412. pt:=tcallparanode(left);
  2413. paralength:=0;
  2414. while assigned(pt) do
  2415. begin
  2416. inc(paralength);
  2417. pt:=tcallparanode(pt.right);
  2418. end;
  2419. { determine the type of the parameters }
  2420. if assigned(left) then
  2421. begin
  2422. tcallparanode(left).get_paratype;
  2423. if codegenerror then
  2424. goto errorexit;
  2425. end;
  2426. if assigned(methodpointer) then
  2427. typecheckpass(methodpointer);
  2428. { procedure variable ? }
  2429. if assigned(right) then
  2430. begin
  2431. set_varstate(right,vs_read,[vsf_must_be_valid]);
  2432. typecheckpass(right);
  2433. if codegenerror then
  2434. exit;
  2435. procdefinition:=tabstractprocdef(right.resultdef);
  2436. { Compare parameters from right to left }
  2437. paraidx:=procdefinition.Paras.count-1;
  2438. { Skip default parameters }
  2439. if not(po_varargs in procdefinition.procoptions) then
  2440. begin
  2441. { ignore hidden parameters }
  2442. while (paraidx>=0) and (vo_is_hidden_para in tparavarsym(procdefinition.paras[paraidx]).varoptions) do
  2443. dec(paraidx);
  2444. for i:=1 to procdefinition.maxparacount-paralength do
  2445. begin
  2446. if paraidx<0 then
  2447. internalerror(200402261);
  2448. if not assigned(tparavarsym(procdefinition.paras[paraidx]).defaultconstsym) then
  2449. begin
  2450. CGMessage1(parser_e_wrong_parameter_size,'<Procedure Variable>');
  2451. goto errorexit;
  2452. end;
  2453. dec(paraidx);
  2454. end;
  2455. end;
  2456. while (paraidx>=0) and (vo_is_hidden_para in tparavarsym(procdefinition.paras[paraidx]).varoptions) do
  2457. dec(paraidx);
  2458. pt:=tcallparanode(left);
  2459. lastpara:=paralength;
  2460. while (paraidx>=0) and assigned(pt) do
  2461. begin
  2462. { only goto next para if we're out of the varargs }
  2463. if not(po_varargs in procdefinition.procoptions) or
  2464. (lastpara<=procdefinition.maxparacount) then
  2465. begin
  2466. repeat
  2467. dec(paraidx);
  2468. until (paraidx<0) or not(vo_is_hidden_para in tparavarsym(procdefinition.paras[paraidx]).varoptions);
  2469. end;
  2470. pt:=tcallparanode(pt.right);
  2471. dec(lastpara);
  2472. end;
  2473. if assigned(pt) or
  2474. ((paraidx>=0) and
  2475. not assigned(tparavarsym(procdefinition.paras[paraidx]).defaultconstsym)) then
  2476. begin
  2477. if assigned(pt) then
  2478. current_filepos:=pt.fileinfo;
  2479. CGMessage1(parser_e_wrong_parameter_size,'<Procedure Variable>');
  2480. goto errorexit;
  2481. end;
  2482. end
  2483. else
  2484. { not a procedure variable }
  2485. begin
  2486. { do we know the procedure to call ? }
  2487. if not(assigned(procdefinition)) then
  2488. begin
  2489. { ignore possible private for properties or in delphi mode for anon. inherited (FK) }
  2490. ignorevisibility:=(nf_isproperty in flags) or
  2491. ((m_delphi in current_settings.modeswitches) and (cnf_anon_inherited in callnodeflags));
  2492. candidates:=tcallcandidates.create(symtableprocentry,symtableproc,left,ignorevisibility,
  2493. not(nf_isproperty in flags),cnf_objc_id_call in callnodeflags,cnf_unit_specified in callnodeflags,
  2494. callnodeflags*[cnf_anon_inherited,cnf_inherited]=[],cnf_anon_inherited in callnodeflags);
  2495. { no procedures found? then there is something wrong
  2496. with the parameter size or the procedures are
  2497. not accessible }
  2498. if candidates.count=0 then
  2499. begin
  2500. { when it's an auto inherited call and there
  2501. is no procedure found, but the procedures
  2502. were defined with overload directive and at
  2503. least two procedures are defined then we ignore
  2504. this inherited by inserting a nothingn. Only
  2505. do this ugly hack in Delphi mode as it looks more
  2506. like a bug. It's also not documented }
  2507. if (m_delphi in current_settings.modeswitches) and
  2508. (cnf_anon_inherited in callnodeflags) and
  2509. (symtableprocentry.owner.symtabletype=ObjectSymtable) and
  2510. (po_overload in tprocdef(symtableprocentry.ProcdefList[0]).procoptions) and
  2511. (symtableprocentry.ProcdefList.Count>=2) then
  2512. result:=cnothingnode.create
  2513. else
  2514. begin
  2515. { in tp mode we can try to convert to procvar if
  2516. there are no parameters specified }
  2517. if not(assigned(left)) and
  2518. not(cnf_inherited in callnodeflags) and
  2519. ((m_tp_procvar in current_settings.modeswitches) or
  2520. (m_mac_procvar in current_settings.modeswitches)) and
  2521. (not assigned(methodpointer) or
  2522. (methodpointer.nodetype <> typen)) then
  2523. begin
  2524. hpt:=cloadnode.create(tprocsym(symtableprocentry),symtableproc);
  2525. if assigned(methodpointer) then
  2526. tloadnode(hpt).set_mp(methodpointer.getcopy);
  2527. typecheckpass(hpt);
  2528. result:=hpt;
  2529. end
  2530. else
  2531. begin
  2532. CGMessagePos1(fileinfo,parser_e_wrong_parameter_size,symtableprocentry.realname);
  2533. symtableprocentry.write_parameter_lists(nil);
  2534. end;
  2535. end;
  2536. candidates.free;
  2537. goto errorexit;
  2538. end;
  2539. { Retrieve information about the candidates }
  2540. candidates.get_information;
  2541. {$ifdef EXTDEBUG}
  2542. { Display info when multiple candidates are found }
  2543. if candidates.count>1 then
  2544. candidates.dump_info(V_Debug);
  2545. {$endif EXTDEBUG}
  2546. { Choose the best candidate and count the number of
  2547. candidates left }
  2548. cand_cnt:=candidates.choose_best(procdefinition,
  2549. assigned(left) and
  2550. not assigned(tcallparanode(left).right) and
  2551. (tcallparanode(left).left.resultdef.typ=variantdef));
  2552. { All parameters are checked, check if there are any
  2553. procedures left }
  2554. if cand_cnt>0 then
  2555. begin
  2556. { Multiple candidates left? }
  2557. if cand_cnt>1 then
  2558. begin
  2559. CGMessage(type_e_cant_choose_overload_function);
  2560. {$ifdef EXTDEBUG}
  2561. candidates.dump_info(V_Hint);
  2562. {$else EXTDEBUG}
  2563. candidates.list(false);
  2564. {$endif EXTDEBUG}
  2565. { we'll just use the first candidate to make the
  2566. call }
  2567. end;
  2568. { assign procdefinition }
  2569. if symtableproc=nil then
  2570. symtableproc:=procdefinition.owner;
  2571. end
  2572. else
  2573. begin
  2574. { No candidates left, this must be a type error,
  2575. because wrong size is already checked. procdefinition
  2576. is filled with the first (random) definition that is
  2577. found. We use this definition to display a nice error
  2578. message that the wrong type is passed }
  2579. candidates.find_wrong_para;
  2580. candidates.list(true);
  2581. {$ifdef EXTDEBUG}
  2582. candidates.dump_info(V_Hint);
  2583. {$endif EXTDEBUG}
  2584. { We can not proceed, release all procs and exit }
  2585. candidates.free;
  2586. goto errorexit;
  2587. end;
  2588. candidates.free;
  2589. end; { end of procedure to call determination }
  2590. end;
  2591. { check for hints (deprecated etc) }
  2592. if (procdefinition.typ = procdef) then
  2593. check_hints(tprocdef(procdefinition).procsym,tprocdef(procdefinition).symoptions,tprocdef(procdefinition).deprecatedmsg);
  2594. { add needed default parameters }
  2595. if assigned(procdefinition) and
  2596. (paralength<procdefinition.maxparacount) then
  2597. begin
  2598. paraidx:=0;
  2599. i:=0;
  2600. while (i<paralength) do
  2601. begin
  2602. if paraidx>=procdefinition.Paras.count then
  2603. internalerror(200306181);
  2604. if not(vo_is_hidden_para in tparavarsym(procdefinition.paras[paraidx]).varoptions) then
  2605. inc(i);
  2606. inc(paraidx);
  2607. end;
  2608. while (paraidx<procdefinition.paras.count) and (vo_is_hidden_para in tparavarsym(procdefinition.paras[paraidx]).varoptions) do
  2609. inc(paraidx);
  2610. while (paraidx<procdefinition.paras.count) do
  2611. begin
  2612. if not assigned(tparavarsym(procdefinition.paras[paraidx]).defaultconstsym) then
  2613. internalerror(200212142);
  2614. left:=ccallparanode.create(genconstsymtree(
  2615. tconstsym(tparavarsym(procdefinition.paras[paraidx]).defaultconstsym)),left);
  2616. { Ignore vs_hidden parameters }
  2617. repeat
  2618. inc(paraidx);
  2619. until (paraidx>=procdefinition.paras.count) or
  2620. not(vo_is_hidden_para in tparavarsym(procdefinition.paras[paraidx]).varoptions);
  2621. end;
  2622. end;
  2623. { recursive call? }
  2624. if assigned(current_procinfo) and
  2625. (procdefinition=current_procinfo.procdef) then
  2626. include(current_procinfo.flags,pi_is_recursive);
  2627. { handle predefined procedures }
  2628. is_const:=(po_internconst in procdefinition.procoptions) and
  2629. ((block_type in [bt_const,bt_type,bt_const_type,bt_var_type]) or
  2630. (assigned(left) and (tcallparanode(left).left.nodetype in [realconstn,ordconstn])));
  2631. if (procdefinition.proccalloption=pocall_internproc) or is_const then
  2632. begin
  2633. if assigned(left) then
  2634. begin
  2635. { convert types to those of the prototype, this is required by functions like ror, rol, sar
  2636. some use however a dummy type (Typedfile) so this would break them }
  2637. if not(tprocdef(procdefinition).extnumber in [fpc_in_Reset_TypedFile,fpc_in_Rewrite_TypedFile]) then
  2638. begin
  2639. { bind parasyms to the callparanodes and insert hidden parameters }
  2640. bind_parasym;
  2641. { insert type conversions for parameters }
  2642. if assigned(left) then
  2643. tcallparanode(left).insert_typeconv;
  2644. end;
  2645. { ptr and settextbuf need two args }
  2646. if assigned(tcallparanode(left).right) then
  2647. begin
  2648. hpt:=geninlinenode(tprocdef(procdefinition).extnumber,is_const,left);
  2649. left:=nil;
  2650. end
  2651. else
  2652. begin
  2653. hpt:=geninlinenode(tprocdef(procdefinition).extnumber,is_const,tcallparanode(left).left);
  2654. tcallparanode(left).left:=nil;
  2655. end;
  2656. end
  2657. else
  2658. hpt:=geninlinenode(tprocdef(procdefinition).extnumber,is_const,nil);
  2659. result:=hpt;
  2660. goto errorexit;
  2661. end;
  2662. { ensure that the result type is set }
  2663. if not(cnf_typedefset in callnodeflags) then
  2664. begin
  2665. { constructors return their current class type, not the type where the
  2666. constructor is declared, this can be different because of inheritance }
  2667. if (procdefinition.proctypeoption=potype_constructor) and
  2668. assigned(methodpointer) and
  2669. assigned(methodpointer.resultdef) and
  2670. (methodpointer.resultdef.typ=classrefdef) then
  2671. resultdef:=tclassrefdef(methodpointer.resultdef).pointeddef
  2672. else
  2673. { Member call to a (inherited) constructor from the class, the return
  2674. value is always self, so we change it to voidtype to generate an
  2675. error and to prevent users from generating non-working code
  2676. when they expect to clone the current instance, see bug 3662 (PFV) }
  2677. if (procdefinition.proctypeoption=potype_constructor) and
  2678. is_class(tprocdef(procdefinition).struct) and
  2679. assigned(methodpointer) and
  2680. (methodpointer.nodetype=loadn) and
  2681. (loadnf_is_self in tloadnode(methodpointer).loadnodeflags) then
  2682. resultdef:=voidtype
  2683. else
  2684. resultdef:=procdefinition.returndef;
  2685. end
  2686. else
  2687. resultdef:=typedef;
  2688. { Check object/class for methods }
  2689. if assigned(methodpointer) then
  2690. begin
  2691. { direct call to inherited abstract method, then we
  2692. can already give a error in the compiler instead
  2693. of a runtime error }
  2694. if (cnf_inherited in callnodeflags) and
  2695. (po_abstractmethod in procdefinition.procoptions) then
  2696. begin
  2697. if (m_delphi in current_settings.modeswitches) and
  2698. (cnf_anon_inherited in callnodeflags) then
  2699. begin
  2700. CGMessage(cg_h_inherited_ignored);
  2701. result:=cnothingnode.create;
  2702. exit;
  2703. end
  2704. else
  2705. CGMessage(cg_e_cant_call_abstract_method);
  2706. end;
  2707. { directly calling an interface/protocol/category/class helper
  2708. method via its type is not possible (always must be called via
  2709. the actual instance) }
  2710. if (methodpointer.nodetype=typen) and
  2711. (is_interface(methodpointer.resultdef) or
  2712. is_objc_protocol_or_category(methodpointer.resultdef)) then
  2713. CGMessage1(type_e_class_type_expected,methodpointer.resultdef.typename);
  2714. { if an inherited con- or destructor should be }
  2715. { called in a con- or destructor then a warning }
  2716. { will be made }
  2717. { con- and destructors need a pointer to the vmt }
  2718. if (cnf_inherited in callnodeflags) and
  2719. (procdefinition.proctypeoption in [potype_constructor,potype_destructor]) and
  2720. is_object(methodpointer.resultdef) and
  2721. not(current_procinfo.procdef.proctypeoption in [potype_constructor,potype_destructor]) then
  2722. CGMessage(cg_w_member_cd_call_from_method);
  2723. if methodpointer.nodetype<>typen then
  2724. begin
  2725. { Remove all postfix operators }
  2726. hpt:=methodpointer;
  2727. while assigned(hpt) and (hpt.nodetype in [subscriptn,vecn]) do
  2728. hpt:=tunarynode(hpt).left;
  2729. if ((hpt.nodetype=loadvmtaddrn) or
  2730. ((hpt.nodetype=loadn) and assigned(tloadnode(hpt).resultdef) and (tloadnode(hpt).resultdef.typ=classrefdef))) and
  2731. not (procdefinition.proctypeoption=potype_constructor) and
  2732. not (po_classmethod in procdefinition.procoptions) and
  2733. not (po_staticmethod in procdefinition.procoptions) then
  2734. { error: we are calling instance method from the class method/static method }
  2735. CGMessage(parser_e_only_class_members);
  2736. if (procdefinition.proctypeoption=potype_constructor) and
  2737. assigned(symtableproc) and
  2738. (symtableproc.symtabletype=withsymtable) and
  2739. (tnode(twithsymtable(symtableproc).withrefnode).nodetype=temprefn) then
  2740. CGmessage(cg_e_cannot_call_cons_dest_inside_with);
  2741. { R.Init then R will be initialized by the constructor,
  2742. Also allow it for simple loads }
  2743. if (procdefinition.proctypeoption=potype_constructor) or
  2744. ((hpt.nodetype=loadn) and
  2745. (methodpointer.resultdef.typ=objectdef) and
  2746. not(oo_has_virtual in tobjectdef(methodpointer.resultdef).objectoptions)
  2747. ) then
  2748. { a constructor will and a method may write something to }
  2749. { the fields }
  2750. set_varstate(methodpointer,vs_readwritten,[])
  2751. else
  2752. set_varstate(methodpointer,vs_read,[vsf_must_be_valid]);
  2753. end;
  2754. { if we are calling the constructor check for abstract
  2755. methods. Ignore inherited and member calls, because the
  2756. class is then already created }
  2757. if (procdefinition.proctypeoption=potype_constructor) and
  2758. not(cnf_inherited in callnodeflags) and
  2759. not(cnf_member_call in callnodeflags) then
  2760. verifyabstractcalls;
  2761. end
  2762. else
  2763. begin
  2764. { When this is method the methodpointer must be available }
  2765. if (right=nil) and
  2766. (procdefinition.owner.symtabletype in [ObjectSymtable,recordsymtable]) and
  2767. not procdefinition.no_self_node then
  2768. internalerror(200305061);
  2769. end;
  2770. { Set flag that the procedure uses varargs, also if they are not passed it is still
  2771. needed for x86_64 to pass the number of SSE registers used }
  2772. if po_varargs in procdefinition.procoptions then
  2773. include(callnodeflags,cnf_uses_varargs);
  2774. { Change loading of array of const to varargs }
  2775. if assigned(left) and
  2776. is_array_of_const(tparavarsym(procdefinition.paras[procdefinition.paras.count-1]).vardef) and
  2777. (procdefinition.proccalloption in cdecl_pocalls) then
  2778. convert_carg_array_of_const;
  2779. { bind parasyms to the callparanodes and insert hidden parameters }
  2780. bind_parasym;
  2781. { insert type conversions for parameters }
  2782. if assigned(left) then
  2783. tcallparanode(left).insert_typeconv;
  2784. { dispinterface methode invoke? }
  2785. if assigned(methodpointer) and is_dispinterface(methodpointer.resultdef) then
  2786. begin
  2787. case procdefinition.proctypeoption of
  2788. potype_propgetter: calltype:=dct_propget;
  2789. potype_propsetter: calltype:=dct_propput;
  2790. else
  2791. calltype:=dct_method;
  2792. end;
  2793. { if the result is used, we've to insert a call to convert the type to be on the "safe side" }
  2794. if (cnf_return_value_used in callnodeflags) and not is_void(procdefinition.returndef) then
  2795. begin
  2796. result:=internalstatements(statements);
  2797. converted_result_data:=ctempcreatenode.create(procdefinition.returndef,sizeof(procdefinition.returndef),
  2798. tt_persistent,true);
  2799. addstatement(statements,converted_result_data);
  2800. addstatement(statements,cassignmentnode.create(ctemprefnode.create(converted_result_data),
  2801. ctypeconvnode.create_internal(
  2802. translate_disp_call(methodpointer,parameters,calltype,'',tprocdef(procdefinition).dispid,procdefinition.returndef),
  2803. procdefinition.returndef)));
  2804. addstatement(statements,ctempdeletenode.create_normal_temp(converted_result_data));
  2805. addstatement(statements,ctemprefnode.create(converted_result_data));
  2806. end
  2807. else
  2808. result:=translate_disp_call(methodpointer,parameters,calltype,'',tprocdef(procdefinition).dispid,voidtype);
  2809. { don't free reused nodes }
  2810. methodpointer:=nil;
  2811. parameters:=nil;
  2812. end;
  2813. errorexit:
  2814. aktcallnode:=oldcallnode;
  2815. end;
  2816. procedure tcallnode.order_parameters;
  2817. var
  2818. hp,hpcurr,hpnext,hpfirst,hpprev : tcallparanode;
  2819. currloc : tcgloc;
  2820. begin
  2821. hpfirst:=nil;
  2822. hpcurr:=tcallparanode(left);
  2823. { cache all info about parameters containing stack tainting calls,
  2824. since we will need it a lot below and calculting it can be expensive }
  2825. while assigned(hpcurr) do
  2826. begin
  2827. hpcurr.init_contains_stack_tainting_call_cache;
  2828. hpcurr:=tcallparanode(hpcurr.right);
  2829. end;
  2830. hpcurr:=tcallparanode(left);
  2831. while assigned(hpcurr) do
  2832. begin
  2833. { pull out }
  2834. hpnext:=tcallparanode(hpcurr.right);
  2835. { pull in at the correct place.
  2836. Used order:
  2837. 1. LOC_REFERENCE with smallest offset (i386 only)
  2838. 2. LOC_REFERENCE with least complexity (non-i386 only)
  2839. 3. LOC_REFERENCE with most complexity (non-i386 only)
  2840. 4. LOC_REGISTER with most complexity
  2841. 5. LOC_REGISTER with least complexity
  2842. For the moment we only look at the first parameter field. Combining it
  2843. with multiple parameter fields will make things a lot complexer (PFV)
  2844. The reason for the difference regarding complexity ordering
  2845. between LOC_REFERENCE and LOC_REGISTER is mainly for calls:
  2846. we first want to treat the LOC_REFERENCE destinations whose
  2847. calculation does not require a call, because their location
  2848. may contain registers which might otherwise have to be saved
  2849. if a call has to be evaluated first. The calculated value is
  2850. stored on the stack and will thus no longer occupy any
  2851. register.
  2852. Similarly, for the register parameters we first want to
  2853. evaluate the calls, because otherwise the already loaded
  2854. register parameters will have to be saved so the intermediate
  2855. call can be evaluated (JM) }
  2856. if not assigned(hpcurr.parasym.paraloc[callerside].location) then
  2857. internalerror(200412152);
  2858. currloc:=hpcurr.parasym.paraloc[callerside].location^.loc;
  2859. hpprev:=nil;
  2860. hp:=hpfirst;
  2861. { on fixed_stack targets, always evaluate parameters containing
  2862. a call with stack parameters before all other parameters,
  2863. because they will prevent any other parameters from being put
  2864. in their final place; if both the current and the next para
  2865. contain a stack tainting call, don't do anything to prevent
  2866. them from keeping on chasing eachother's tail }
  2867. while assigned(hp) do
  2868. begin
  2869. if paramanager.use_fixed_stack and
  2870. hpcurr.contains_stack_tainting_call_cached then
  2871. break;
  2872. case currloc of
  2873. LOC_REFERENCE :
  2874. begin
  2875. case hp.parasym.paraloc[callerside].location^.loc of
  2876. LOC_REFERENCE :
  2877. begin
  2878. { Offset is calculated like:
  2879. sub esp,12
  2880. mov [esp+8],para3
  2881. mov [esp+4],para2
  2882. mov [esp],para1
  2883. call function
  2884. That means the for pushes the para with the
  2885. highest offset (see para3) needs to be pushed first
  2886. }
  2887. {$ifdef i386}
  2888. { the i386 code generator expects all reference }
  2889. { parameter to be in this order so it can use }
  2890. { pushes in case of no fixed stack }
  2891. if (not paramanager.use_fixed_stack and
  2892. (hpcurr.parasym.paraloc[callerside].location^.reference.offset>
  2893. hp.parasym.paraloc[callerside].location^.reference.offset)) or
  2894. (paramanager.use_fixed_stack and
  2895. (node_complexity(hpcurr)<node_complexity(hp))) then
  2896. {$else i386}
  2897. if (node_complexity(hpcurr)<node_complexity(hp)) then
  2898. {$endif i386}
  2899. break;
  2900. end;
  2901. LOC_MMREGISTER,
  2902. LOC_REGISTER,
  2903. LOC_FPUREGISTER :
  2904. break;
  2905. end;
  2906. end;
  2907. LOC_MMREGISTER,
  2908. LOC_FPUREGISTER,
  2909. LOC_REGISTER :
  2910. begin
  2911. if (hp.parasym.paraloc[callerside].location^.loc<>LOC_REFERENCE) and
  2912. (node_complexity(hpcurr)>node_complexity(hp)) then
  2913. break;
  2914. end;
  2915. end;
  2916. hpprev:=hp;
  2917. hp:=tcallparanode(hp.right);
  2918. end;
  2919. hpcurr.right:=hp;
  2920. if assigned(hpprev) then
  2921. hpprev.right:=hpcurr
  2922. else
  2923. hpfirst:=hpcurr;
  2924. { next }
  2925. hpcurr:=hpnext;
  2926. end;
  2927. left:=hpfirst;
  2928. { now mark each parameter that is followed by a stack-tainting call,
  2929. to determine on use_fixed_stack targets which ones can immediately be
  2930. put in their final destination. Unforunately we can never put register
  2931. parameters immediately in their final destination (even on register-
  2932. rich architectures such as the PowerPC), because the code generator
  2933. can still insert extra calls that only make use of register
  2934. parameters (fpc_move() etc. }
  2935. hpcurr:=hpfirst;
  2936. while assigned(hpcurr) do
  2937. begin
  2938. if hpcurr.contains_stack_tainting_call_cached then
  2939. begin
  2940. { all parameters before this one are followed by a stack
  2941. tainting call }
  2942. hp:=hpfirst;
  2943. while hp<>hpcurr do
  2944. begin
  2945. hp.ffollowed_by_stack_tainting_call_cached:=true;
  2946. hp:=tcallparanode(hp.right);
  2947. end;
  2948. hpfirst:=hpcurr;
  2949. end;
  2950. hpcurr:=tcallparanode(hpcurr.right);
  2951. end;
  2952. end;
  2953. procedure tcallnode.check_stack_parameters;
  2954. var
  2955. hp : tcallparanode;
  2956. begin
  2957. hp:=tcallparanode(left);
  2958. while assigned(hp) do
  2959. begin
  2960. if assigned(hp.parasym) and
  2961. assigned(hp.parasym.paraloc[callerside].location) and
  2962. (hp.parasym.paraloc[callerside].location^.loc=LOC_REFERENCE) then
  2963. include(current_procinfo.flags,pi_has_stackparameter);
  2964. hp:=tcallparanode(hp.right);
  2965. end;
  2966. end;
  2967. procedure tcallnode.check_inlining;
  2968. var
  2969. st : tsymtable;
  2970. para : tcallparanode;
  2971. begin
  2972. { Can we inline the procedure? }
  2973. if ([po_inline,po_has_inlininginfo] <= procdefinition.procoptions) then
  2974. begin
  2975. include(callnodeflags,cnf_do_inline);
  2976. { Check if we can inline the procedure when it references proc/var that
  2977. are not in the globally available }
  2978. st:=procdefinition.owner;
  2979. if (st.symtabletype=ObjectSymtable) then
  2980. st:=st.defowner.owner;
  2981. if (pi_uses_static_symtable in tprocdef(procdefinition).inlininginfo^.flags) and
  2982. (st.symtabletype=globalsymtable) and
  2983. (not st.iscurrentunit) then
  2984. begin
  2985. Comment(V_lineinfo+V_Debug,'Not inlining "'+tprocdef(procdefinition).procsym.realname+'", references static symtable');
  2986. exclude(callnodeflags,cnf_do_inline);
  2987. end;
  2988. para:=tcallparanode(parameters);
  2989. while assigned(para) do
  2990. begin
  2991. if not para.can_be_inlined then
  2992. begin
  2993. Comment(V_lineinfo+V_Debug,'Not inlining "'+tprocdef(procdefinition).procsym.realname+
  2994. '", invocation parameter contains an unsafe/unsupported construct');
  2995. exclude(callnodeflags,cnf_do_inline);
  2996. break;
  2997. end;
  2998. para:=tcallparanode(para.nextpara);
  2999. end;
  3000. end;
  3001. end;
  3002. function tcallnode.pass_1 : tnode;
  3003. begin
  3004. result:=nil;
  3005. { as pass_1 is never called on the methodpointer node, we must check
  3006. here that it's not a helper type }
  3007. if assigned(methodpointer) and
  3008. (methodpointer.nodetype=typen) and
  3009. is_objectpascal_helper(ttypenode(methodpointer).typedef) and
  3010. not ttypenode(methodpointer).helperallowed then
  3011. Message(parser_e_no_category_as_types);
  3012. { convert Objective-C calls into a message call }
  3013. if (procdefinition.typ=procdef) and
  3014. (po_objc in tprocdef(procdefinition).procoptions) then
  3015. begin
  3016. if not(cnf_objc_processed in callnodeflags) then
  3017. objc_convert_to_message_send;
  3018. end
  3019. else
  3020. begin
  3021. { The following don't apply to obj-c: obj-c methods can never be
  3022. inlined because they're always virtual and the destination can
  3023. change at run, and for the same reason we also can't perform
  3024. WPO on them (+ they have no constructors) }
  3025. { Check if the call can be inlined, sets the cnf_do_inline flag }
  3026. check_inlining;
  3027. { must be called before maybe_load_in_temp(methodpointer), because
  3028. it converts the methodpointer into a temp in case it's a call
  3029. (and we want to know the original call)
  3030. }
  3031. register_created_object_types;
  3032. end;
  3033. { Maybe optimize the loading of the methodpointer using a temp. When the methodpointer
  3034. is a calln this is even required to not execute the calln twice.
  3035. This needs to be done after the resulttype pass, because in the resulttype we can still convert the
  3036. calln to a loadn (PFV) }
  3037. if assigned(methodpointer) then
  3038. maybe_load_in_temp(methodpointer);
  3039. { Create destination (temp or assignment-variable reuse) for function result if it not yet set }
  3040. maybe_create_funcret_node;
  3041. { Insert the self,vmt,function result in the parameters }
  3042. gen_hidden_parameters;
  3043. { Remove useless nodes from init/final blocks }
  3044. { (simplify depends on typecheck info) }
  3045. if assigned(callinitblock) then
  3046. begin
  3047. typecheckpass(tnode(callinitblock));
  3048. doinlinesimplify(tnode(callinitblock));
  3049. end;
  3050. if assigned(callcleanupblock) then
  3051. begin
  3052. typecheckpass(tnode(callcleanupblock));
  3053. doinlinesimplify(tnode(callcleanupblock));
  3054. end;
  3055. { Continue with checking a normal call or generate the inlined code }
  3056. if cnf_do_inline in callnodeflags then
  3057. result:=pass1_inline
  3058. else
  3059. result:=pass1_normal;
  3060. end;
  3061. function tcallnode.pass1_normal : tnode;
  3062. begin
  3063. result:=nil;
  3064. { calculate the parameter info for the procdef }
  3065. procdefinition.init_paraloc_info(callerside);
  3066. { calculate the parameter size needed for this call include varargs if they are available }
  3067. if assigned(varargsparas) then
  3068. pushedparasize:=paramanager.create_varargs_paraloc_info(procdefinition,varargsparas)
  3069. else
  3070. pushedparasize:=procdefinition.callerargareasize;
  3071. { record maximum parameter size used in this proc }
  3072. current_procinfo.allocate_push_parasize(pushedparasize);
  3073. { check for stacked parameters }
  3074. if assigned(left) and
  3075. (current_settings.optimizerswitches*[cs_opt_stackframe,cs_opt_level1]<>[]) then
  3076. check_stack_parameters;
  3077. if assigned(callinitblock) then
  3078. firstpass(tnode(callinitblock));
  3079. { function result node (tempref or simple load) }
  3080. if assigned(funcretnode) then
  3081. firstpass(funcretnode);
  3082. { parameters }
  3083. if assigned(left) then
  3084. tcallparanode(left).firstcallparan;
  3085. { procedure variable ? }
  3086. if assigned(right) then
  3087. firstpass(right);
  3088. if assigned(methodpointer) and
  3089. (methodpointer.nodetype<>typen) then
  3090. firstpass(methodpointer);
  3091. if assigned(callcleanupblock) then
  3092. firstpass(tnode(callcleanupblock));
  3093. if not (block_type in [bt_const,bt_type,bt_const_type,bt_var_type]) then
  3094. include(current_procinfo.flags,pi_do_call);
  3095. { order parameters }
  3096. order_parameters;
  3097. { get a register for the return value }
  3098. if (not is_void(resultdef)) then
  3099. begin
  3100. if paramanager.ret_in_param(resultdef,procdefinition.proccalloption) then
  3101. begin
  3102. expectloc:=LOC_REFERENCE;
  3103. end
  3104. else
  3105. { ansi/widestrings must be registered, so we can dispose them }
  3106. if is_ansistring(resultdef) or
  3107. is_widestring(resultdef) or
  3108. is_unicodestring(resultdef) then
  3109. begin
  3110. expectloc:=LOC_REFERENCE;
  3111. end
  3112. else
  3113. { we have only to handle the result if it is used }
  3114. if (cnf_return_value_used in callnodeflags) then
  3115. expectloc:=get_expect_loc
  3116. else
  3117. expectloc:=LOC_VOID;
  3118. end
  3119. else
  3120. expectloc:=LOC_VOID;
  3121. end;
  3122. {$ifdef state_tracking}
  3123. function Tcallnode.track_state_pass(exec_known:boolean):boolean;
  3124. var hp:Tcallparanode;
  3125. value:Tnode;
  3126. begin
  3127. track_state_pass:=false;
  3128. hp:=Tcallparanode(left);
  3129. while assigned(hp) do
  3130. begin
  3131. if left.track_state_pass(exec_known) then
  3132. begin
  3133. left.resultdef:=nil;
  3134. do_typecheckpass(left);
  3135. end;
  3136. value:=aktstate.find_fact(hp.left);
  3137. if value<>nil then
  3138. begin
  3139. track_state_pass:=true;
  3140. hp.left.destroy;
  3141. hp.left:=value.getcopy;
  3142. do_typecheckpass(hp.left);
  3143. end;
  3144. hp:=Tcallparanode(hp.right);
  3145. end;
  3146. end;
  3147. {$endif}
  3148. {**************************************************************************
  3149. INLINING SUPPORT
  3150. **************************************************************************}
  3151. function tcallnode.replaceparaload(var n: tnode; arg: pointer): foreachnoderesult;
  3152. var
  3153. paras: tcallparanode;
  3154. temp: tnode;
  3155. indexnr : integer;
  3156. begin
  3157. result := fen_false;
  3158. n.fileinfo := pfileposinfo(arg)^;
  3159. if (n.nodetype = loadn) then
  3160. begin
  3161. case tloadnode(n).symtableentry.typ of
  3162. paravarsym :
  3163. begin
  3164. paras := tcallparanode(left);
  3165. while assigned(paras) and
  3166. (paras.parasym <> tloadnode(n).symtableentry) do
  3167. paras := tcallparanode(paras.right);
  3168. if assigned(paras) then
  3169. begin
  3170. n.free;
  3171. n := paras.left.getcopy;
  3172. typecheckpass(n);
  3173. result := fen_true;
  3174. end;
  3175. end;
  3176. localvarsym :
  3177. begin
  3178. { local? }
  3179. if (tloadnode(n).symtableentry.owner <> tprocdef(procdefinition).localst) then
  3180. exit;
  3181. indexnr:=tloadnode(n).symtableentry.owner.SymList.IndexOf(tloadnode(n).symtableentry);
  3182. if (indexnr >= inlinelocals.count) or
  3183. not assigned(inlinelocals[indexnr]) then
  3184. internalerror(20040720);
  3185. temp := tnode(inlinelocals[indexnr]).getcopy;
  3186. n.free;
  3187. n := temp;
  3188. typecheckpass(n);
  3189. result := fen_true;
  3190. end;
  3191. end;
  3192. end;
  3193. end;
  3194. procedure tcallnode.createlocaltemps(p:TObject;arg:pointer);
  3195. var
  3196. tempnode: ttempcreatenode;
  3197. indexnr : integer;
  3198. begin
  3199. if (TSym(p).typ <> localvarsym) then
  3200. exit;
  3201. indexnr:=TSym(p).Owner.SymList.IndexOf(p);
  3202. if (indexnr >= inlinelocals.count) then
  3203. inlinelocals.count:=indexnr+10;
  3204. if (vo_is_funcret in tabstractvarsym(p).varoptions) then
  3205. begin
  3206. if not assigned(funcretnode) then
  3207. internalerror(200709081);
  3208. inlinelocals[indexnr] := funcretnode.getcopy
  3209. end
  3210. else
  3211. begin
  3212. tempnode :=ctempcreatenode.create(tabstractvarsym(p).vardef,
  3213. tabstractvarsym(p).vardef.size,tt_persistent,tabstractvarsym(p).is_regvar(false));
  3214. addstatement(inlineinitstatement,tempnode);
  3215. addstatement(inlinecleanupstatement,ctempdeletenode.create(tempnode));
  3216. { inherit addr_taken flag }
  3217. if (tabstractvarsym(p).addr_taken) then
  3218. include(tempnode.tempinfo^.flags,ti_addr_taken);
  3219. inlinelocals[indexnr] := ctemprefnode.create(tempnode);
  3220. end;
  3221. end;
  3222. function nonlocalvars(var n: tnode; arg: pointer): foreachnoderesult;
  3223. begin
  3224. result := fen_false;
  3225. { this is just to play it safe, there are more safe situations }
  3226. if (n.nodetype = derefn) or
  3227. ((n.nodetype = loadn) and
  3228. { globals and fields of (possibly global) objects could always be changed in the callee }
  3229. ((tloadnode(n).symtable.symtabletype in [globalsymtable,ObjectSymtable]) or
  3230. { statics can only be modified by functions in the same unit }
  3231. ((tloadnode(n).symtable.symtabletype = staticsymtable) and
  3232. (tloadnode(n).symtable = TSymtable(arg))))) or
  3233. ((n.nodetype = subscriptn) and
  3234. (tsubscriptnode(n).vs.owner.symtabletype = ObjectSymtable)) then
  3235. result := fen_norecurse_true;
  3236. end;
  3237. procedure tcallnode.createinlineparas;
  3238. var
  3239. para: tcallparanode;
  3240. tempnode: ttempcreatenode;
  3241. n: tnode;
  3242. paraaddr: taddrnode;
  3243. ptrtype: tpointerdef;
  3244. paracomplexity: longint;
  3245. begin
  3246. { parameters }
  3247. para := tcallparanode(left);
  3248. while assigned(para) do
  3249. begin
  3250. if (para.parasym.typ = paravarsym) then
  3251. begin
  3252. { must take copy of para.left, because if it contains a }
  3253. { temprefn pointing to a copied temp (e.g. methodpointer), }
  3254. { then this parameter must be changed to point to the copy of }
  3255. { that temp (JM) }
  3256. n := para.left.getcopy;
  3257. para.left.free;
  3258. para.left := n;
  3259. firstpass(para.left);
  3260. { create temps for value parameters, function result and also for }
  3261. { const parameters which are passed by value instead of by reference }
  3262. { we need to take care that we use the type of the defined parameter and not of the
  3263. passed parameter, because these can be different in case of a formaldef (PFV) }
  3264. paracomplexity := node_complexity(para.left);
  3265. { check if we have to create a temp, assign the parameter's }
  3266. { contents to that temp and then substitute the paramter }
  3267. { with the temp everywhere in the function }
  3268. if
  3269. ((tparavarsym(para.parasym).varregable in [vr_none,vr_addr]) and
  3270. not(para.left.expectloc in [LOC_REFERENCE,LOC_CREFERENCE])) or
  3271. { we can't assign to formaldef temps }
  3272. ((para.parasym.vardef.typ<>formaldef) and
  3273. (
  3274. { if paracomplexity > 1, we normally take the address of }
  3275. { the parameter expression, store it in a temp and }
  3276. { substitute the dereferenced temp in the inlined function }
  3277. { We can't do this if we can't take the address of the }
  3278. { parameter expression, so in that case assign to a temp }
  3279. not(para.left.expectloc in [LOC_REFERENCE,LOC_CREFERENCE,LOC_CONSTANT]) or
  3280. ((paracomplexity > 1) and
  3281. (not valid_for_addr(para.left,false) or
  3282. (para.left.nodetype = calln) or
  3283. is_constnode(para.left))) or
  3284. { we do not need to create a temp for value parameters }
  3285. { which are not modified in the inlined function }
  3286. { const parameters can get vs_readwritten if their }
  3287. { address is taken }
  3288. ((((para.parasym.varspez = vs_value) and
  3289. (para.parasym.varstate in [vs_initialised,vs_declared,vs_read])) or
  3290. { in case of const, this is only necessary if the }
  3291. { variable would be passed by value normally, or if }
  3292. { there is such a variable somewhere in an expression }
  3293. ((para.parasym.varspez = vs_const) and
  3294. (not paramanager.push_addr_param(vs_const,para.parasym.vardef,procdefinition.proccalloption) or
  3295. (paracomplexity > 1)))) and
  3296. { however, if we pass a global variable, an object field or}
  3297. { an expression containing a pointer dereference as }
  3298. { parameter, this value could be modified in other ways as }
  3299. { well and in such cases create a temp to be on the safe }
  3300. { side }
  3301. foreachnodestatic(para.left,@nonlocalvars,pointer(symtableproc))) or
  3302. { value parameters of which we know they are modified by }
  3303. { definition have to be copied to a temp }
  3304. { the same goes for cases of "x:=f(x)" where x is passed }
  3305. { as value parameter to f(), at least if we optimized }
  3306. { invocation by setting the funcretnode to x to avoid }
  3307. { assignment afterwards (since x may be read inside the }
  3308. { function after it modified result==x) }
  3309. ((para.parasym.varspez = vs_value) and
  3310. (not(para.parasym.varstate in [vs_initialised,vs_declared,vs_read]) or
  3311. (assigned(aktassignmentnode) and
  3312. (aktassignmentnode.right=self) and
  3313. (nf_assign_done_in_right in aktassignmentnode.flags) and
  3314. aktassignmentnode.left.isequal(para.left)))) or
  3315. { the compiler expects that it can take the address of parameters passed by reference in
  3316. the case of const so we can't replace the node simply by a constant node
  3317. When playing with this code, ensure that
  3318. function f(const a,b : longint) : longint;inline;
  3319. begin
  3320. result:=a*b;
  3321. end;
  3322. [...]
  3323. ...:=f(10,20));
  3324. [...]
  3325. is still folded. (FK)
  3326. }
  3327. ((para.parasym.varspez = vs_const) and
  3328. { const para's can get vs_readwritten if their address }
  3329. { is taken }
  3330. ((para.parasym.varstate = vs_readwritten) or
  3331. { call-by-reference const's may need to be passed by }
  3332. { reference to function called in the inlined code }
  3333. (paramanager.push_addr_param(vs_const,para.parasym.vardef,procdefinition.proccalloption) and
  3334. not valid_for_addr(para.left,false))
  3335. ))
  3336. )
  3337. ) then
  3338. begin
  3339. { don't create a new temp unnecessarily, but make sure we
  3340. do create a new one if the old one could be a regvar and
  3341. the new one cannot be one }
  3342. if (para.left.nodetype<>temprefn) or
  3343. (((tparavarsym(para.parasym).varregable in [vr_none,vr_addr])) and
  3344. (ti_may_be_in_reg in ttemprefnode(para.left).tempinfo^.flags)) then
  3345. begin
  3346. tempnode := ctempcreatenode.create(para.parasym.vardef,para.parasym.vardef.size,
  3347. tt_persistent,tparavarsym(para.parasym).is_regvar(false));
  3348. addstatement(inlineinitstatement,tempnode);
  3349. addstatement(inlinecleanupstatement,ctempdeletenode.create(tempnode));
  3350. addstatement(inlineinitstatement,cassignmentnode.create(ctemprefnode.create(tempnode),
  3351. para.left));
  3352. para.left := ctemprefnode.create(tempnode);
  3353. { inherit addr_taken flag }
  3354. if (tabstractvarsym(para.parasym).addr_taken) then
  3355. include(tempnode.tempinfo^.flags,ti_addr_taken);
  3356. end;
  3357. end
  3358. { otherwise if the parameter is "complex", take the address }
  3359. { of the parameter expression, store it in a temp and replace }
  3360. { occurrences of the parameter with dereferencings of this }
  3361. { temp }
  3362. else if (paracomplexity > 1) then
  3363. begin
  3364. ptrtype:=tpointerdef.create(para.left.resultdef);
  3365. tempnode := ctempcreatenode.create(ptrtype,ptrtype.size,tt_persistent,tparavarsym(para.parasym).is_regvar(true));
  3366. addstatement(inlineinitstatement,tempnode);
  3367. addstatement(inlinecleanupstatement,ctempdeletenode.create(tempnode));
  3368. { inherit addr_taken flag }
  3369. if (tabstractvarsym(para.parasym).addr_taken) then
  3370. include(tempnode.tempinfo^.flags,ti_addr_taken);
  3371. paraaddr:=caddrnode.create_internal(para.left);
  3372. include(paraaddr.flags,nf_typedaddr);
  3373. addstatement(inlineinitstatement,cassignmentnode.create(ctemprefnode.create(tempnode),
  3374. paraaddr));
  3375. para.left:=cderefnode.create(ctemprefnode.create(tempnode));
  3376. end;
  3377. end;
  3378. para := tcallparanode(para.right);
  3379. end;
  3380. { local variables }
  3381. if not assigned(tprocdef(procdefinition).localst) or
  3382. (tprocdef(procdefinition).localst.SymList.count = 0) then
  3383. exit;
  3384. inlinelocals.count:=tprocdef(procdefinition).localst.SymList.count;
  3385. tprocdef(procdefinition).localst.SymList.ForEachCall(@createlocaltemps,nil);
  3386. end;
  3387. function tcallnode.optimize_funcret_assignment(inlineblock: tblocknode): tnode;
  3388. var
  3389. hp : tstatementnode;
  3390. hp2 : tnode;
  3391. resassign : tassignmentnode;
  3392. begin
  3393. result:=nil;
  3394. if not assigned(funcretnode) or
  3395. not(cnf_return_value_used in callnodeflags) then
  3396. exit;
  3397. { tempcreatenode for the function result }
  3398. hp:=tstatementnode(inlineblock.left);
  3399. if not(assigned(hp)) or
  3400. (hp.left.nodetype <> tempcreaten) or
  3401. not(nf_is_funcret in hp.left.flags) then
  3402. exit;
  3403. { constant assignment? right must be a constant (mainly to avoid trying
  3404. to reuse local temps which may already be freed afterwards once these
  3405. checks are made looser) }
  3406. hp:=tstatementnode(hp.right);
  3407. if not(assigned(hp)) or
  3408. (hp.left.nodetype<>assignn) or
  3409. not is_constnode(tassignmentnode(hp.left).right) then
  3410. exit;
  3411. { left must be function result }
  3412. resassign:=tassignmentnode(hp.left);
  3413. hp2:=resassign.left;
  3414. { can have extra type conversion due to absolute mapping
  3415. of <fucntionname> on function result var }
  3416. if (hp2.nodetype=typeconvn) and (ttypeconvnode(hp2).convtype=tc_equal) then
  3417. hp2:=ttypeconvnode(hp2).left;
  3418. if (hp2.nodetype<>temprefn) or
  3419. not(nf_is_funcret in hp2.flags) then
  3420. exit;
  3421. { tempdelete to normal of the function result }
  3422. hp:=tstatementnode(hp.right);
  3423. if not(assigned(hp)) or
  3424. (hp.left.nodetype <> tempdeleten) then
  3425. exit;
  3426. { the function result once more }
  3427. hp:=tstatementnode(hp.right);
  3428. if not(assigned(hp)) or
  3429. (hp.left.nodetype<>temprefn) or
  3430. not(nf_is_funcret in hp.left.flags) then
  3431. exit;
  3432. { should be the end }
  3433. if assigned(hp.right) then
  3434. exit;
  3435. { we made it! }
  3436. result:=tassignmentnode(resassign).right.getcopy;
  3437. firstpass(result);
  3438. end;
  3439. function tcallnode.pass1_inline:tnode;
  3440. var
  3441. n,
  3442. body : tnode;
  3443. para : tcallparanode;
  3444. inlineblock,
  3445. inlinecleanupblock : tblocknode;
  3446. begin
  3447. result:=nil;
  3448. if not(assigned(tprocdef(procdefinition).inlininginfo) and
  3449. assigned(tprocdef(procdefinition).inlininginfo^.code)) then
  3450. internalerror(200412021);
  3451. inlinelocals:=TFPObjectList.create(true);
  3452. { inherit flags }
  3453. current_procinfo.flags:=current_procinfo.flags+
  3454. ((procdefinition as tprocdef).inlininginfo^.flags*inherited_inlining_flags);
  3455. { Create new code block for inlining }
  3456. inlineblock:=internalstatements(inlineinitstatement);
  3457. inlinecleanupblock:=internalstatements(inlinecleanupstatement);
  3458. if assigned(callinitblock) then
  3459. addstatement(inlineinitstatement,callinitblock.getcopy);
  3460. { replace complex parameters with temps }
  3461. createinlineparas;
  3462. { create a copy of the body and replace parameter loads with the parameter values }
  3463. body:=tprocdef(procdefinition).inlininginfo^.code.getcopy;
  3464. foreachnode(pm_preprocess,body,@replaceparaload,@fileinfo);
  3465. { Concat the body and finalization parts }
  3466. addstatement(inlineinitstatement,body);
  3467. addstatement(inlineinitstatement,inlinecleanupblock);
  3468. inlinecleanupblock:=nil;
  3469. if assigned(callcleanupblock) then
  3470. addstatement(inlineinitstatement,callcleanupblock.getcopy);
  3471. { the last statement of the new inline block must return the
  3472. location and type of the function result.
  3473. This is not needed when the result is not used, also the tempnode is then
  3474. already destroyed by a tempdelete in the callcleanupblock tree }
  3475. if not is_void(resultdef) and
  3476. (cnf_return_value_used in callnodeflags) then
  3477. begin
  3478. if assigned(funcretnode) then
  3479. addstatement(inlineinitstatement,funcretnode.getcopy)
  3480. else
  3481. begin
  3482. para:=tcallparanode(left);
  3483. while assigned(para) do
  3484. begin
  3485. if (vo_is_hidden_para in para.parasym.varoptions) and
  3486. (vo_is_funcret in para.parasym.varoptions) then
  3487. begin
  3488. addstatement(inlineinitstatement,para.left.getcopy);
  3489. break;
  3490. end;
  3491. para:=tcallparanode(para.right);
  3492. end;
  3493. end;
  3494. end;
  3495. { consider it must not be inlined if called
  3496. again inside the args or itself }
  3497. exclude(procdefinition.procoptions,po_inline);
  3498. typecheckpass(tnode(inlineblock));
  3499. doinlinesimplify(tnode(inlineblock));
  3500. firstpass(tnode(inlineblock));
  3501. include(procdefinition.procoptions,po_inline);
  3502. result:=inlineblock;
  3503. { if the function result is used then verify that the blocknode
  3504. returns the same result type as the original callnode }
  3505. if (cnf_return_value_used in callnodeflags) and
  3506. (result.resultdef<>resultdef) then
  3507. internalerror(200709171);
  3508. { free the temps for the locals }
  3509. inlinelocals.free;
  3510. inlinelocals:=nil;
  3511. inlineinitstatement:=nil;
  3512. inlinecleanupstatement:=nil;
  3513. { if all that's left of the inlined function is an constant assignment
  3514. to the result, replace the whole block with the constant only }
  3515. n:=optimize_funcret_assignment(inlineblock);
  3516. if assigned(n) then
  3517. begin
  3518. inlineblock.free;
  3519. result:=n;
  3520. end;
  3521. {$ifdef DEBUGINLINE}
  3522. writeln;
  3523. writeln('**************************',tprocdef(procdefinition).mangledname);
  3524. printnode(output,result);
  3525. {$endif DEBUGINLINE}
  3526. end;
  3527. end.