symtable.pas 180 KB

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  1. {
  2. Copyright (c) 1998-2002 by Florian Klaempfl, Pierre Muller
  3. This unit handles the symbol tables
  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 symtable;
  18. {$i fpcdefs.inc}
  19. interface
  20. uses
  21. { common }
  22. cutils,cclasses,globtype,tokens,
  23. { symtable }
  24. symconst,symbase,symtype,symdef,symsym;
  25. {****************************************************************************
  26. Symtable types
  27. ****************************************************************************}
  28. type
  29. tstoredsymtable = class(TSymtable)
  30. private
  31. init_final_check_done : boolean;
  32. procedure _needs_init_final(sym:TObject;arg:pointer);
  33. procedure do_init_final_check;
  34. procedure check_forward(sym:TObject;arg:pointer);
  35. procedure check_block_valid(def: TObject;arg:pointer);
  36. procedure register_defs(def:tobject;arg:pointer);
  37. procedure register_syms(sym:tobject;arg:pointer);
  38. procedure labeldefined(sym:TObject;arg:pointer);
  39. procedure varsymbolused(sym:TObject;arg:pointer);
  40. procedure TestPrivate(sym:TObject;arg:pointer);
  41. procedure objectprivatesymbolused(sym:TObject;arg:pointer);
  42. procedure loaddefs(ppufile:tcompilerppufile);
  43. procedure loadsyms(ppufile:tcompilerppufile);
  44. procedure writedefs(ppufile:tcompilerppufile);
  45. procedure writesyms(ppufile:tcompilerppufile);
  46. public
  47. constructor create(const s:string);
  48. procedure insert(sym:TSymEntry;checkdup:boolean=true);override;
  49. procedure delete(sym:TSymEntry);override;
  50. { load/write }
  51. procedure ppuload(ppufile:tcompilerppufile);virtual;
  52. procedure ppuwrite(ppufile:tcompilerppufile);virtual;
  53. procedure buildderef;
  54. procedure buildderefimpl;
  55. { buildderef but only for (recursively) used symbols/defs }
  56. procedure buildderef_registered;
  57. procedure deref(only_registered: boolean);virtual;
  58. procedure derefimpl(only_registered: boolean);virtual;
  59. function checkduplicate(var hashedid:THashedIDString;sym:TSymEntry):boolean;override;
  60. procedure allsymbolsused;
  61. procedure allprivatesused;
  62. procedure check_forwards;
  63. procedure checklabels;
  64. function needs_init_final : boolean; virtual;
  65. function has_non_trivial_init:boolean;virtual;
  66. procedure testfordefaultproperty(sym:TObject;arg:pointer);
  67. procedure register_children;
  68. end;
  69. {$ifdef llvm}
  70. tllvmshadowsymtableentry = class
  71. constructor create(def: tdef; fieldoffset: aint);
  72. private
  73. ffieldoffset: aint;
  74. fdef: tdef;
  75. public
  76. property fieldoffset: aint read ffieldoffset;
  77. property def: tdef read fdef;
  78. end;
  79. tllvmshadowsymtable = class;
  80. {$endif llvm}
  81. tmanagementoperator_offset_entry = record
  82. pd : tprocdef;
  83. offset : asizeint;
  84. end;
  85. pmanagementoperator_offset_entry = ^tmanagementoperator_offset_entry;
  86. tabstractrecordsymtable = class(tstoredsymtable)
  87. {$ifdef llvm}
  88. private
  89. fllvmst: tllvmshadowsymtable;
  90. function getllvmshadowsymtabll: tllvmshadowsymtable;
  91. {$endif llvm}
  92. public
  93. usefieldalignment, { alignment to use for fields (PACKRECORDS value), C_alignment is C style }
  94. recordalignment, { alignment desired when inserting this record }
  95. fieldalignment, { alignment current alignment used when fields are inserted }
  96. padalignment : shortint; { size to a multiple of which the symtable has to be rounded up }
  97. recordalignmin: shortint; { local equivalentsof global settings, so that records can be created with custom settings internally }
  98. has_fields_with_mop : tmanagementoperators; { whether any of the fields has the need for a management operator (or one of the field's fields) }
  99. constructor create(const n:string;usealign,recordminalign:shortint);
  100. destructor destroy;override;
  101. procedure ppuload(ppufile:tcompilerppufile);override;
  102. procedure ppuwrite(ppufile:tcompilerppufile);override;
  103. procedure alignrecord(fieldoffset:asizeint;varalign:shortint);
  104. procedure addfield(sym:tfieldvarsym;vis:tvisibility);
  105. procedure addfieldlist(list: tfpobjectlist; maybereorder: boolean);
  106. { returns the field closest to this offset (may not be exact because
  107. of padding; internalerrors for variant records, assumes fields are
  108. ordered by increasing offset) }
  109. function findfieldbyoffset(offset:asizeint): tfieldvarsym;
  110. procedure addalignmentpadding;
  111. procedure insertdef(def:TDefEntry);override;
  112. function is_packed: boolean;
  113. function has_single_field(out def:tdef): boolean;
  114. function get_unit_symtable: tsymtable;
  115. { collects all management operators of the specified type in list (which
  116. is not cleared); the entries are copies and thus must be freed by the
  117. caller }
  118. procedure get_managementoperator_offset_list(mop:tmanagementoperator;list:tfplist);
  119. protected
  120. { size in bytes including padding }
  121. _datasize : asizeint;
  122. { size in bits of the data in case of bitpacked record. Only important during construction, }
  123. { no need to save in/restore from ppu file. datasize is always (databitsize+7) div 8. }
  124. databitsize : asizeint;
  125. { size in bytes of padding }
  126. _paddingsize : word;
  127. { array of tmanagementoperator_offset_entry lists; only assigned if
  128. they had been queried once by get_management_operator_list }
  129. mop_list : array[tmanagementoperator] of tfplist;
  130. procedure setdatasize(val: asizeint);
  131. function getfieldoffset(sym: tfieldvarsym; base: asizeint; var globalfieldalignment: shortint): asizeint;
  132. procedure do_get_managementoperator_offset_list(data:tobject;arg:pointer);
  133. public
  134. function iscurrentunit: boolean; override;
  135. property datasize : asizeint read _datasize write setdatasize;
  136. property paddingsize: word read _paddingsize write _paddingsize;
  137. {$ifdef llvm}
  138. property llvmst: tllvmshadowsymtable read getllvmshadowsymtabll;
  139. {$endif llvm}
  140. end;
  141. trecordsymtable = class(tabstractrecordsymtable)
  142. public
  143. { maybe someday is worth to move managementoperators to }
  144. { tabstractrecordsymtable to perform management class operators for }
  145. { object/classes. In XE5 and newer is possible to use class operator }
  146. { for classes (like for Delphi .NET before) only for Delphi NEXTGEN }
  147. managementoperators : tmanagementoperators;
  148. constructor create(const n:string;usealign,recordminalign:shortint);
  149. procedure insertunionst(unionst : trecordsymtable;offset : asizeint);
  150. procedure includemanagementoperator(mop:tmanagementoperator);
  151. end;
  152. tObjectSymtable = class(tabstractrecordsymtable)
  153. public
  154. constructor create(adefowner:tdef;const n:string;usealign,recordminalign:shortint);
  155. function checkduplicate(var hashedid:THashedIDString;sym:TSymEntry):boolean;override;
  156. end;
  157. {$ifdef llvm}
  158. { llvm record definitions cannot contain variant/union parts, }
  159. { you have to flatten them first. the tllvmshadowsymtable }
  160. { contains a flattened version of a record/object symtable }
  161. tllvmshadowsymtable = class
  162. private
  163. equivst: tabstractrecordsymtable;
  164. curroffset: aint;
  165. function get(f: tfieldvarsym): tllvmshadowsymtableentry;
  166. function get_by_llvm_index(index: longint): tllvmshadowsymtableentry;
  167. public
  168. symdeflist: TFPObjectList;
  169. constructor create(st: tabstractrecordsymtable);
  170. destructor destroy; override;
  171. property entries[index: tfieldvarsym]: tllvmshadowsymtableentry read get; default;
  172. { warning: do not call this with field.llvmfieldnr, as
  173. field.llvmfieldnr will only be initialised when the llvm shadow
  174. symtable is accessed for the first time. Use the default/entries
  175. property instead in this case }
  176. property entries_by_llvm_index[index: longint]: tllvmshadowsymtableentry read get_by_llvm_index;
  177. private
  178. // generate the table
  179. procedure generate;
  180. // helpers
  181. procedure appenddefoffset(vardef:tdef; fieldoffset: aint; derefclass: boolean);
  182. procedure findvariantstarts(variantstarts: tfplist);
  183. procedure addalignmentpadding(finalsize: aint);
  184. procedure buildmapping(variantstarts: tfplist);
  185. procedure buildtable(variantstarts: tfplist);
  186. end;
  187. {$endif llvm}
  188. { tabstractsubsymtable }
  189. tabstractsubsymtable = class(tstoredsymtable)
  190. public
  191. procedure ppuwrite(ppufile:tcompilerppufile);override;
  192. end;
  193. { tabstractlocalsymtable }
  194. tabstractlocalsymtable = class(tabstractsubsymtable)
  195. public
  196. function count_locals:longint;
  197. function iscurrentunit: boolean; override;
  198. end;
  199. tlocalsymtable = class(tabstractlocalsymtable)
  200. public
  201. constructor create(adefowner:tdef;level:byte);
  202. function checkduplicate(var hashedid:THashedIDString;sym:TSymEntry):boolean;override;
  203. end;
  204. { tparasymtable }
  205. tparasymtable = class(tabstractlocalsymtable)
  206. public
  207. readonly: boolean;
  208. constructor create(adefowner:tdef;level:byte);
  209. function checkduplicate(var hashedid:THashedIDString;sym:TSymEntry):boolean;override;
  210. procedure insertdef(def:TDefEntry);override;
  211. end;
  212. tabstractuniTSymtable = class(tstoredsymtable)
  213. public
  214. constructor create(const n : string;id:word);
  215. function checkduplicate(var hashedid:THashedIDString;sym:TSymEntry):boolean;override;
  216. function findnamespace(const n:string):TSymEntry;virtual;
  217. function iscurrentunit:boolean;override;
  218. function needs_init_final: boolean; override;
  219. procedure insertunit(sym:TSymEntry);
  220. function has_class_condestructors: boolean;
  221. end;
  222. tglobalsymtable = class(tabstractuniTSymtable)
  223. public
  224. unittypecount : word;
  225. constructor create(const n : string;id:word);
  226. procedure ppuload(ppufile:tcompilerppufile);override;
  227. procedure ppuwrite(ppufile:tcompilerppufile);override;
  228. end;
  229. tstaticsymtable = class(tabstractuniTSymtable)
  230. public
  231. constructor create(const n : string;id:word);
  232. procedure ppuload(ppufile:tcompilerppufile);override;
  233. procedure ppuwrite(ppufile:tcompilerppufile);override;
  234. function checkduplicate(var hashedid:THashedIDString;sym:TSymEntry):boolean;override;
  235. function findnamespace(const n:string):TSymEntry;override;
  236. end;
  237. tspecializesymtable = class(tglobalsymtable)
  238. public
  239. constructor create(const n : string;id:word);
  240. function iscurrentunit:boolean;override;
  241. end;
  242. twithsymtable = class(TSymtable)
  243. withrefnode : tobject; { tnode }
  244. constructor create(aowner:tdef;ASymList:TFPHashObjectList;refnode:tobject{tnode});
  245. destructor destroy;override;
  246. procedure clear;override;
  247. procedure insertdef(def:TDefEntry);override;
  248. end;
  249. tstt_excepTSymtable = class(TSymtable)
  250. public
  251. constructor create;
  252. end;
  253. tmacrosymtable = class(tstoredsymtable)
  254. public
  255. constructor create(exported: boolean);
  256. end;
  257. { tenumsymtable }
  258. tenumsymtable = class(tabstractsubsymtable)
  259. public
  260. procedure insert(sym: TSymEntry; checkdup: boolean = true); override;
  261. constructor create(adefowner:tdef);
  262. end;
  263. { tarraysymtable }
  264. tarraysymtable = class(tabstractsubsymtable)
  265. public
  266. procedure insertdef(def:TDefEntry);override;
  267. constructor create(adefowner:tdef);
  268. end;
  269. var
  270. systemunit : tglobalsymtable; { pointer to the system unit }
  271. type
  272. tsymbol_search_flag = (
  273. ssf_search_option,
  274. ssf_search_helper,
  275. ssf_has_inherited,
  276. ssf_no_addsymref
  277. );
  278. tsymbol_search_flags = set of tsymbol_search_flag;
  279. {****************************************************************************
  280. Functions
  281. ****************************************************************************}
  282. {*** Misc ***}
  283. function FullTypeName(def,otherdef:tdef):string;
  284. function generate_nested_name(symtable:tsymtable;delimiter:string):string;
  285. { def is the extended type of a helper }
  286. function generate_objectpascal_helper_key(def:tdef):string;
  287. procedure incompatibletypes(def1,def2:tdef);
  288. procedure hidesym(sym:TSymEntry);
  289. procedure duplicatesym(var hashedid: THashedIDString; dupsym, origsym:TSymEntry; warn: boolean);
  290. function handle_generic_dummysym(sym:TSymEntry;var symoptions:tsymoptions):boolean;
  291. { writes all declarations for the specified system unit symbol }
  292. procedure write_system_parameter_lists(const name:string);
  293. {*** Search ***}
  294. procedure addsymref(sym:tsym);
  295. function is_owned_by(nesteddef,ownerdef:tdef):boolean;
  296. function sym_is_owned_by(childsym:tsym;symtable:tsymtable):boolean;
  297. function defs_belong_to_same_generic(def1,def2:tdef):boolean;
  298. function get_generic_in_hierarchy_by_name(srsym:tsym;def:tdef):tdef;
  299. function return_specialization_of_generic(nesteddef,genericdef:tdef;out resultdef:tdef):boolean;
  300. function is_visible_for_object(symst:tsymtable;symvisibility:tvisibility;contextobjdef:tabstractrecorddef):boolean;
  301. function is_visible_for_object(pd:tprocdef;contextobjdef:tabstractrecorddef):boolean;
  302. function is_visible_for_object(sym:tsym;contextobjdef:tabstractrecorddef):boolean;
  303. function searchsym(const s : TIDString;out srsym:tsym;out srsymtable:TSymtable):boolean;
  304. function searchsym_with_flags(const s : TIDString;out srsym:tsym;out srsymtable:TSymtable;flags:tsymbol_search_flags):boolean;
  305. function searchsym_maybe_with_symoption(const s : TIDString;out srsym:tsym;out srsymtable:TSymtable;flags:tsymbol_search_flags;option:tsymoption):boolean;
  306. { searches for a symbol with the given name that has the given option in
  307. symoptions set }
  308. function searchsym_with_symoption(const s : TIDString;out srsym:tsym;out srsymtable:TSymtable;option:tsymoption):boolean;
  309. function searchsym_type(const s : TIDString;out srsym:tsym;out srsymtable:TSymtable):boolean;
  310. function searchsym_in_module(pm:pointer;const s : TIDString;out srsym:tsym;out srsymtable:TSymtable):boolean;
  311. function searchsym_in_named_module(const unitname, symname: TIDString; out srsym: tsym; out srsymtable: tsymtable): boolean;
  312. function searchsym_in_class(classh: tobjectdef; contextclassh:tabstractrecorddef;const s : TIDString;out srsym:tsym;out srsymtable:TSymtable;flags:tsymbol_search_flags):boolean;
  313. function searchsym_in_record(recordh:tabstractrecorddef;const s : TIDString;out srsym:tsym;out srsymtable:TSymtable):boolean;
  314. function searchsym_in_class_by_msgint(classh:tobjectdef;msgid:longint;out srdef : tdef;out srsym:tsym;out srsymtable:TSymtable):boolean;
  315. function searchsym_in_class_by_msgstr(classh:tobjectdef;const s:string;out srsym:tsym;out srsymtable:TSymtable):boolean;
  316. { searches symbols inside of a helper's implementation }
  317. function searchsym_in_helper(classh,contextclassh:tobjectdef;const s: TIDString;out srsym:tsym;out srsymtable:TSymtable;flags:tsymbol_search_flags):boolean;
  318. function search_system_type(const s: TIDString): ttypesym;
  319. function try_search_system_type(const s: TIDString): ttypesym;
  320. function try_search_current_module_type(const s: TIDString): ttypesym;
  321. function search_system_proc(const s: TIDString): tprocdef;
  322. function search_named_unit_globaltype(const unitname, typename: TIDString; throwerror: boolean): ttypesym;
  323. function search_struct_member(pd : tabstractrecorddef;const s : string):tsym;
  324. function search_struct_member_no_helper(pd : tabstractrecorddef;const s : string):tsym;
  325. function search_assignment_operator(from_def,to_def:Tdef;explicit:boolean):Tprocdef;
  326. function search_enumerator_operator(from_def,to_def:Tdef):Tprocdef;
  327. function search_management_operator(mop:tmanagementoperator;pd:Tdef):Tprocdef;
  328. { searches for the helper definition that's currently active for pd }
  329. function search_last_objectpascal_helper(pd : tdef;contextclassh : tabstractrecorddef;out odef : tobjectdef):boolean;
  330. { searches whether the symbol s is available in the currently active }
  331. { helper for pd }
  332. function search_objectpascal_helper(pd : tdef;contextclassh : tabstractrecorddef;const s : string; out srsym: tsym; out srsymtable: tsymtable):boolean;
  333. function search_objc_helper(pd : tobjectdef;const s : string; out srsym: tsym; out srsymtable: tsymtable):boolean;
  334. function search_objc_method(const s : string; out srsym: tsym; out srsymtable: tsymtable):boolean;
  335. {Looks for macro s (must be given in upper case) in the macrosymbolstack, }
  336. {and returns it if found. Returns nil otherwise.}
  337. function search_macro(const s : string):tsym;
  338. { Additionally to searching for a macro, also checks whether it's still }
  339. { actually defined (could be disable using "undef") }
  340. function defined_macro(const s : string):boolean;
  341. { Look for a system procedure (no overloads supported) }
  342. { returns a list of helpers in the current module for the def }
  343. function get_objectpascal_helpers(pd : tdef):TFPObjectList;
  344. {*** Object Helpers ***}
  345. function search_default_property(pd : tabstractrecorddef) : tpropertysym;
  346. function maybe_find_real_class_definition(pd: tdef; erroronfailure: boolean): tdef;
  347. function find_real_class_definition(pd: tobjectdef; erroronfailure: boolean): tobjectdef;
  348. {*** Macro Helpers ***}
  349. {If called initially, the following procedures manipulate macros in }
  350. {initialmacrotable, otherwise they manipulate system macros local to a module.}
  351. {Name can be given in any case (it will be converted to upper case).}
  352. procedure def_system_macro(const name : string);
  353. procedure set_system_macro(const name, value : string);
  354. procedure set_system_compvar(const name, value : string);
  355. procedure undef_system_macro(const name : string);
  356. {*** symtable stack ***}
  357. { $ifdef DEBUG
  358. procedure test_symtablestack;
  359. procedure list_symtablestack;
  360. $endif DEBUG}
  361. {$ifdef UNITALIASES}
  362. type
  363. punit_alias = ^tunit_alias;
  364. tunit_alias = object(TNamedIndexItem)
  365. newname : pshortstring;
  366. constructor init(const n:string);
  367. destructor done;virtual;
  368. end;
  369. var
  370. unitaliases : pdictionary;
  371. procedure addunitalias(const n:string);
  372. function getunitalias(const n:string):string;
  373. {$endif UNITALIASES}
  374. {*** Init / Done ***}
  375. procedure IniTSymtable;
  376. procedure DoneSymtable;
  377. const
  378. overloaded_names : array [NOTOKEN..last_overloaded] of string[16] = (
  379. { NOTOKEN } 'error',
  380. { _PLUS } 'plus',
  381. { _MINUS } 'minus',
  382. { _STAR } 'star',
  383. { _SLASH } 'slash',
  384. { _EQ } 'equal',
  385. { _GT } 'greater',
  386. { _LT } 'lower',
  387. { _GTE } 'greater_or_equal',
  388. { _LTE } 'lower_or_equal',
  389. { _NE } 'not_equal',
  390. { _SYMDIF } 'sym_diff',
  391. { _STARSTAR } 'starstar',
  392. { _OP_AS } 'as',
  393. { _OP_IN } 'in',
  394. { _OP_IS } 'is',
  395. { _OP_OR } 'or',
  396. { _OP_AND } 'and',
  397. { _OP_DIV } 'div',
  398. { _OP_MOD } 'mod',
  399. { _OP_NOT } 'not',
  400. { _OP_SHL } 'shl',
  401. { _OP_SHR } 'shr',
  402. { _OP_XOR } 'xor',
  403. { _ASSIGNMENT } 'assign',
  404. { _OP_EXPLICIT } 'explicit',
  405. { _OP_ENUMERATOR } 'enumerator',
  406. { _OP_INITIALIZE } 'initialize',
  407. { _OP_FINALIZE } 'finalize',
  408. { _OP_ADDREF } 'addref',
  409. { _OP_COPY } 'copy',
  410. { _OP_INC } 'inc',
  411. { _OP_DEC } 'dec');
  412. managementoperator2tok:array[tmanagementoperator] of ttoken = (
  413. { mop_none } NOTOKEN,
  414. { mop_initialize } _OP_INITIALIZE,
  415. { mop_finalize } _OP_FINALIZE,
  416. { mop_addref } _OP_ADDREF,
  417. { mop_copy } _OP_COPY
  418. );
  419. implementation
  420. uses
  421. { global }
  422. verbose,globals,
  423. { symtable }
  424. symutil,defutil,defcmp,objcdef,
  425. { module }
  426. fmodule,
  427. { codegen }
  428. procinfo,
  429. { ppu }
  430. entfile,
  431. { parser }
  432. scanner
  433. ;
  434. var
  435. dupnr : longint; { unique number for duplicate symbols }
  436. {*****************************************************************************
  437. TStoredSymtable
  438. *****************************************************************************}
  439. constructor tstoredsymtable.create(const s:string);
  440. begin
  441. inherited create(s);
  442. { Note: this happens for the initial macro symtable, so no error here }
  443. if not assigned(current_module) then
  444. comment(v_debug,'Current module not available for module id')
  445. else
  446. moduleid:=current_module.moduleid;
  447. end;
  448. procedure tstoredsymtable.insert(sym:TSymEntry;checkdup:boolean=true);
  449. begin
  450. inherited insert(sym,checkdup);
  451. init_final_check_done:=false;
  452. end;
  453. procedure tstoredsymtable.delete(sym:TSymEntry);
  454. begin
  455. inherited delete(sym);
  456. init_final_check_done:=false;
  457. end;
  458. procedure tstoredsymtable.ppuload(ppufile:tcompilerppufile);
  459. begin
  460. { load the table's flags }
  461. if ppufile.readentry<>ibsymtableoptions then
  462. Message(unit_f_ppu_read_error);
  463. ppufile.getsmallset(tableoptions);
  464. { load definitions }
  465. loaddefs(ppufile);
  466. { load symbols }
  467. loadsyms(ppufile);
  468. init_final_check_done:=true;
  469. end;
  470. procedure tstoredsymtable.ppuwrite(ppufile:tcompilerppufile);
  471. begin
  472. { ensure that we have the sto_needs_init_final flag set if needed }
  473. if not init_final_check_done then
  474. needs_init_final;
  475. { write the table's flags }
  476. ppufile.putsmallset(tableoptions);
  477. ppufile.writeentry(ibsymtableoptions);
  478. { write definitions }
  479. writedefs(ppufile);
  480. { write symbols }
  481. writesyms(ppufile);
  482. end;
  483. procedure tstoredsymtable.loaddefs(ppufile:tcompilerppufile);
  484. var
  485. def : tdef;
  486. b : byte;
  487. begin
  488. { load start of definition section, which holds the amount of defs }
  489. if ppufile.readentry<>ibstartdefs then
  490. Message(unit_f_ppu_read_error);
  491. { read definitions }
  492. repeat
  493. b:=ppufile.readentry;
  494. def:=nil;
  495. case b of
  496. ibpointerdef : def:=cpointerdef.ppuload(ppufile);
  497. ibarraydef : def:=carraydef.ppuload(ppufile);
  498. iborddef : def:=corddef.ppuload(ppufile);
  499. ibfloatdef : def:=cfloatdef.ppuload(ppufile);
  500. ibprocdef : def:=cprocdef.ppuload(ppufile);
  501. ibshortstringdef : def:=cstringdef.loadshort(ppufile);
  502. iblongstringdef : def:=cstringdef.loadlong(ppufile);
  503. ibansistringdef : def:=cstringdef.loadansi(ppufile);
  504. ibwidestringdef : def:=cstringdef.loadwide(ppufile);
  505. ibunicodestringdef : def:=cstringdef.loadunicode(ppufile);
  506. ibrecorddef : def:=crecorddef.ppuload(ppufile);
  507. ibobjectdef : def:=cobjectdef.ppuload(ppufile);
  508. ibenumdef : def:=cenumdef.ppuload(ppufile);
  509. ibsetdef : def:=csetdef.ppuload(ppufile);
  510. ibprocvardef : def:=cprocvardef.ppuload(ppufile);
  511. ibfiledef : def:=cfiledef.ppuload(ppufile);
  512. ibclassrefdef : def:=cclassrefdef.ppuload(ppufile);
  513. ibformaldef : def:=cformaldef.ppuload(ppufile);
  514. ibvariantdef : def:=cvariantdef.ppuload(ppufile);
  515. ibundefineddef : def:=cundefineddef.ppuload(ppufile);
  516. ibenddefs : break;
  517. ibend : Message(unit_f_ppu_read_error);
  518. else
  519. Message1(unit_f_ppu_invalid_entry,tostr(b));
  520. end;
  521. if assigned(def) then
  522. tstoreddef(def).ppuload_subentries(ppufile);
  523. InsertDef(def);
  524. until false;
  525. end;
  526. procedure tstoredsymtable.loadsyms(ppufile:tcompilerppufile);
  527. var
  528. b : byte;
  529. sym : tsym;
  530. begin
  531. { load start of definition section, which holds the amount of defs }
  532. if ppufile.readentry<>ibstartsyms then
  533. Message(unit_f_ppu_read_error);
  534. { now read the symbols }
  535. repeat
  536. sym:=nil;
  537. b:=ppufile.readentry;
  538. case b of
  539. ibtypesym : sym:=ctypesym.ppuload(ppufile);
  540. ibprocsym : sym:=cprocsym.ppuload(ppufile);
  541. ibconstsym : sym:=cconstsym.ppuload(ppufile);
  542. ibstaticvarsym : sym:=cstaticvarsym.ppuload(ppufile);
  543. iblocalvarsym : sym:=clocalvarsym.ppuload(ppufile);
  544. ibparavarsym : sym:=cparavarsym.ppuload(ppufile);
  545. ibfieldvarsym : sym:=cfieldvarsym.ppuload(ppufile);
  546. ibabsolutevarsym : sym:=cabsolutevarsym.ppuload(ppufile);
  547. ibenumsym : sym:=cenumsym.ppuload(ppufile);
  548. ibpropertysym : sym:=cpropertysym.ppuload(ppufile);
  549. ibunitsym : sym:=cunitsym.ppuload(ppufile);
  550. iblabelsym : sym:=clabelsym.ppuload(ppufile);
  551. ibsyssym : sym:=csyssym.ppuload(ppufile);
  552. ibmacrosym : sym:=tmacro.ppuload(ppufile);
  553. ibnamespacesym : sym:=cnamespacesym.ppuload(ppufile);
  554. ibendsyms : break;
  555. ibend : Message(unit_f_ppu_read_error);
  556. else
  557. Message1(unit_f_ppu_invalid_entry,tostr(b));
  558. end;
  559. if assigned(sym) then
  560. tstoredsym(sym).ppuload_subentries(ppufile);
  561. Insert(sym,false);
  562. until false;
  563. end;
  564. procedure tstoredsymtable.writedefs(ppufile:tcompilerppufile);
  565. var
  566. defcount,
  567. i : longint;
  568. def : tstoreddef;
  569. begin
  570. defcount:=0;
  571. for i:=0 to DefList.Count-1 do
  572. if tstoreddef(DefList[i]).is_registered then
  573. inc(defcount);
  574. { each definition get a number, write then the amount of defs to the
  575. ibstartdef entry }
  576. ppufile.putlongint(defcount);
  577. ppufile.writeentry(ibstartdefs);
  578. { now write the definition }
  579. for i:=0 to DefList.Count-1 do
  580. begin
  581. def:=tstoreddef(DefList[i]);
  582. if def.is_registered then
  583. begin
  584. def.ppuwrite(ppufile);
  585. def.ppuwrite_subentries(ppufile);
  586. end;
  587. end;
  588. { write end of definitions }
  589. ppufile.writeentry(ibenddefs);
  590. end;
  591. procedure tstoredsymtable.writesyms(ppufile:tcompilerppufile);
  592. var
  593. symcount,
  594. i : longint;
  595. sym : Tstoredsym;
  596. begin
  597. symcount:=0;
  598. for i:=0 to SymList.Count-1 do
  599. if tstoredsym(SymList[i]).is_registered then
  600. inc(symcount);
  601. { each definition get a number, write then the amount of syms and the
  602. datasize to the ibsymdef entry }
  603. ppufile.putlongint(symcount);
  604. ppufile.writeentry(ibstartsyms);
  605. { foreach is used to write all symbols }
  606. for i:=0 to SymList.Count-1 do
  607. begin
  608. sym:=tstoredsym(SymList[i]);
  609. if sym.is_registered then
  610. begin
  611. sym.ppuwrite(ppufile);
  612. sym.ppuwrite_subentries(ppufile);
  613. end;
  614. end;
  615. { end of symbols }
  616. ppufile.writeentry(ibendsyms);
  617. end;
  618. procedure tstoredsymtable.buildderef;
  619. var
  620. i : longint;
  621. def : tstoreddef;
  622. sym : tstoredsym;
  623. begin
  624. { interface definitions }
  625. for i:=0 to DefList.Count-1 do
  626. begin
  627. def:=tstoreddef(DefList[i]);
  628. def.buildderef;
  629. end;
  630. { interface symbols }
  631. for i:=0 to SymList.Count-1 do
  632. begin
  633. sym:=tstoredsym(SymList[i]);
  634. sym.buildderef;
  635. end;
  636. end;
  637. procedure tstoredsymtable.buildderefimpl;
  638. var
  639. i : longint;
  640. def : tstoreddef;
  641. begin
  642. { implementation definitions }
  643. for i:=0 to DefList.Count-1 do
  644. begin
  645. def:=tstoreddef(DefList[i]);
  646. def.buildderefimpl;
  647. end;
  648. end;
  649. procedure tstoredsymtable.buildderef_registered;
  650. var
  651. def : tstoreddef;
  652. sym : tstoredsym;
  653. i : longint;
  654. defidmax,
  655. symidmax: longint;
  656. newbuiltdefderefs,
  657. builtdefderefs,
  658. builtsymderefs: array of boolean;
  659. changed: boolean;
  660. begin
  661. newbuiltdefderefs:=nil;
  662. builtdefderefs:=nil;
  663. builtsymderefs:=nil;
  664. { tdefs for which we already built the deref }
  665. setlength(builtdefderefs,deflist.count);
  666. { tdefs for which we built the deref in this iteration }
  667. setlength(newbuiltdefderefs,deflist.count);
  668. { syms for which we already built the deref }
  669. setlength(builtsymderefs,symlist.count);
  670. repeat
  671. { we only have to store the defs (recursively) referred by wpo info
  672. or inlined routines in the static symbtable }
  673. { current number of registered defs/syms }
  674. defidmax:=current_module.deflist.count;
  675. symidmax:=current_module.symlist.count;
  676. changed:=false;
  677. { build the derefs for the registered defs we haven't processed yet }
  678. for i:=0 to DefList.Count-1 do
  679. begin
  680. if not builtdefderefs[i] then
  681. begin
  682. def:=tstoreddef(DefList[i]);
  683. if def.is_registered then
  684. begin
  685. def.buildderef;
  686. newbuiltdefderefs[i]:=true;
  687. builtdefderefs[i]:=true;
  688. changed:=true;
  689. end;
  690. end;
  691. end;
  692. { same for the syms }
  693. for i:=0 to SymList.Count-1 do
  694. begin
  695. if not builtsymderefs[i] then
  696. begin
  697. sym:=tstoredsym(SymList[i]);
  698. if sym.is_registered then
  699. begin
  700. sym.buildderef;
  701. builtsymderefs[i]:=true;
  702. changed:=true;
  703. end;
  704. end;
  705. end;
  706. { now buildderefimpl for the defs we processed in this iteration }
  707. for i:=0 to DefList.Count-1 do
  708. begin
  709. if newbuiltdefderefs[i] then
  710. begin
  711. newbuiltdefderefs[i]:=false;
  712. tstoreddef(DefList[i]).buildderefimpl;
  713. changed:=true;
  714. end;
  715. end;
  716. { stop when no new defs or syms have been registered while processing
  717. the currently registered ones (defs/syms get added to the module's
  718. deflist/symlist when they are registered) }
  719. until not changed and
  720. (defidmax=current_module.deflist.count) and
  721. (symidmax=current_module.symlist.count);
  722. end;
  723. procedure tstoredsymtable.deref(only_registered: boolean);
  724. var
  725. i : longint;
  726. def : tstoreddef;
  727. sym : tstoredsym;
  728. begin
  729. { first deref the interface ttype symbols. This is needs
  730. to be done before the interface defs are derefed, because
  731. the interface defs can contain references to the type symbols
  732. which then already need to contain a resolved typedef field (PFV) }
  733. for i:=0 to SymList.Count-1 do
  734. begin
  735. sym:=tstoredsym(SymList[i]);
  736. if (sym.typ=typesym) and
  737. (not only_registered or
  738. sym.is_registered) then
  739. sym.deref;
  740. end;
  741. { interface definitions }
  742. for i:=0 to DefList.Count-1 do
  743. begin
  744. def:=tstoreddef(DefList[i]);
  745. if not only_registered or
  746. def.is_registered then
  747. def.deref;
  748. end;
  749. { interface symbols }
  750. for i:=0 to SymList.Count-1 do
  751. begin
  752. sym:=tstoredsym(SymList[i]);
  753. if (not only_registered or
  754. sym.is_registered) and
  755. (sym.typ<>typesym) then
  756. sym.deref;
  757. end;
  758. end;
  759. procedure tstoredsymtable.derefimpl(only_registered: boolean);
  760. var
  761. i : longint;
  762. def : tstoreddef;
  763. begin
  764. { implementation definitions }
  765. for i:=0 to DefList.Count-1 do
  766. begin
  767. def:=tstoreddef(DefList[i]);
  768. if not only_registered or
  769. def.is_registered then
  770. def.derefimpl;
  771. end;
  772. end;
  773. function tstoredsymtable.checkduplicate(var hashedid:THashedIDString;sym:TSymEntry):boolean;
  774. var
  775. hsym : tsym;
  776. begin
  777. hsym:=tsym(FindWithHash(hashedid));
  778. if assigned(hsym) then
  779. DuplicateSym(hashedid,sym,hsym,false);
  780. result:=assigned(hsym);
  781. end;
  782. {**************************************
  783. Callbacks
  784. **************************************}
  785. procedure TStoredSymtable.check_forward(sym:TObject;arg:pointer);
  786. begin
  787. if tsym(sym).typ=procsym then
  788. tprocsym(sym).check_forward
  789. { check also object method table }
  790. { we needn't to test the def list }
  791. { because each object has to have a type sym,
  792. only test objects declarations, not type renamings }
  793. else
  794. if (tsym(sym).typ=typesym) and
  795. assigned(ttypesym(sym).typedef) and
  796. (ttypesym(sym).typedef.typesym=ttypesym(sym)) and
  797. (ttypesym(sym).typedef.typ in [objectdef,recorddef]) then
  798. tabstractrecorddef(ttypesym(sym).typedef).check_forwards;
  799. end;
  800. procedure tstoredsymtable.check_block_valid(def: TObject; arg: pointer);
  801. var
  802. founderrordef: tdef;
  803. begin
  804. { all parameters passed to a block must be handled by the Objective-C
  805. runtime }
  806. if is_block(tdef(def)) and
  807. not objcchecktype(tdef(def),founderrordef) then
  808. if assigned(tdef(def).typesym) then
  809. MessagePos1(tdef(def).typesym.fileinfo,type_e_objc_type_unsupported,founderrordef.typename)
  810. else
  811. Message1(type_e_objc_type_unsupported,tprocvardef(def).typename)
  812. end;
  813. procedure tstoredsymtable.register_syms(sym:tobject;arg:pointer);
  814. begin
  815. tsym(sym).register_sym;
  816. end;
  817. procedure tstoredsymtable.register_defs(def:tobject;arg:pointer);
  818. begin
  819. tdef(def).register_def;
  820. end;
  821. procedure TStoredSymtable.labeldefined(sym:TObject;arg:pointer);
  822. begin
  823. if (tsym(sym).typ=labelsym) and
  824. not(tlabelsym(sym).defined) then
  825. begin
  826. if tlabelsym(sym).used then
  827. Message1(sym_e_label_used_and_not_defined,tlabelsym(sym).realname)
  828. else
  829. Message1(sym_w_label_not_defined,tlabelsym(sym).realname);
  830. end;
  831. end;
  832. procedure TStoredSymtable.varsymbolused(sym:TObject;arg:pointer);
  833. begin
  834. if (tsym(sym).typ in [staticvarsym,localvarsym,paravarsym,fieldvarsym]) and
  835. ((tsym(sym).owner.symtabletype in
  836. [parasymtable,localsymtable,ObjectSymtable,recordsymtable,staticsymtable])) then
  837. begin
  838. { unused symbol should be reported only if no }
  839. { error is reported }
  840. { if the symbol is in a register it is used }
  841. { also don't count the value parameters which have local copies }
  842. { also don't claim for high param of open parameters (PM) }
  843. { also don't complain about unused symbols in generic procedures }
  844. { and methods }
  845. { and neither in abstract methods }
  846. if (Errorcount<>0) or
  847. ([vo_is_hidden_para,vo_is_funcret] * tabstractvarsym(sym).varoptions = [vo_is_hidden_para]) or
  848. (sp_internal in tsym(sym).symoptions) or
  849. ((assigned(tsym(sym).owner.defowner) and
  850. (tsym(sym).owner.defowner.typ=procdef) and
  851. ((df_generic in tprocdef(tsym(sym).owner.defowner).defoptions) or
  852. (po_abstractmethod in tprocdef(tsym(sym).owner.defowner).procoptions)))) then
  853. exit;
  854. if (tstoredsym(sym).refs=0) then
  855. begin
  856. if (vo_is_funcret in tabstractvarsym(sym).varoptions) then
  857. begin
  858. { don't warn about the result of constructors }
  859. { or the synthetic helper functions for class-attributes }
  860. if ((tsym(sym).owner.symtabletype<>localsymtable) or
  861. (tprocdef(tsym(sym).owner.defowner).proctypeoption<>potype_constructor)) and
  862. not (po_noreturn in tprocdef(tsym(sym).owner.defowner).procoptions) and
  863. not(cs_opt_nodedfa in current_settings.optimizerswitches) then
  864. MessagePos(tsym(sym).fileinfo,sym_w_function_result_not_set)
  865. end
  866. else if (tsym(sym).owner.symtabletype=parasymtable) then
  867. MessagePos1(tsym(sym).fileinfo,sym_h_para_identifier_not_used,tsym(sym).prettyname)
  868. else if (tsym(sym).owner.symtabletype in [ObjectSymtable,recordsymtable]) then
  869. MessagePos2(tsym(sym).fileinfo,sym_n_private_identifier_not_used,tabstractrecorddef(tsym(sym).owner.defowner).GetTypeName,tsym(sym).prettyname)
  870. else
  871. MessagePos1(tsym(sym).fileinfo,sym_n_local_identifier_not_used,tsym(sym).prettyname);
  872. end
  873. else if tabstractvarsym(sym).varstate in [vs_written,vs_initialised] then
  874. begin
  875. if (tsym(sym).owner.symtabletype=parasymtable) then
  876. begin
  877. if not(tabstractvarsym(sym).varspez in [vs_var,vs_out,vs_constref]) and
  878. not(vo_is_funcret in tabstractvarsym(sym).varoptions) then
  879. MessagePos1(tsym(sym).fileinfo,sym_h_para_identifier_only_set,tsym(sym).prettyname)
  880. end
  881. else if (tsym(sym).owner.symtabletype in [ObjectSymtable,recordsymtable]) then
  882. MessagePos2(tsym(sym).fileinfo,sym_n_private_identifier_only_set,tabstractrecorddef(tsym(sym).owner.defowner).GetTypeName,tsym(sym).prettyname)
  883. else if tabstractvarsym(sym).varoptions*[vo_is_funcret,vo_is_public,vo_is_external]=[] then
  884. MessagePos1(tsym(sym).fileinfo,sym_n_local_identifier_only_set,tsym(sym).prettyname);
  885. end
  886. else if (tabstractvarsym(sym).varstate = vs_read_not_warned) and
  887. ([vo_is_public,vo_is_external] * tabstractvarsym(sym).varoptions = []) then
  888. MessagePos1(tsym(sym).fileinfo,sym_w_identifier_only_read,tsym(sym).prettyname)
  889. end
  890. else if ((tsym(sym).owner.symtabletype in
  891. [ObjectSymtable,parasymtable,localsymtable,staticsymtable,recordsymtable])) then
  892. begin
  893. if (Errorcount<>0) or
  894. (sp_internal in tsym(sym).symoptions) then
  895. exit;
  896. { do not claim for inherited private fields !! }
  897. if (tsym(sym).refs=0) and (tsym(sym).owner.symtabletype in [ObjectSymtable,recordsymtable]) then
  898. case tsym(sym).typ of
  899. typesym:
  900. MessagePos2(tsym(sym).fileinfo,sym_n_private_type_not_used,tabstractrecorddef(tsym(sym).owner.defowner).GetTypeName,tsym(sym).prettyname);
  901. constsym:
  902. MessagePos2(tsym(sym).fileinfo,sym_n_private_const_not_used,tabstractrecorddef(tsym(sym).owner.defowner).GetTypeName,tsym(sym).prettyname);
  903. propertysym:
  904. MessagePos2(tsym(sym).fileinfo,sym_n_private_property_not_used,tabstractrecorddef(tsym(sym).owner.defowner).GetTypeName,tsym(sym).prettyname);
  905. else
  906. MessagePos2(tsym(sym).fileinfo,sym_n_private_method_not_used,tabstractrecorddef(tsym(sym).owner.defowner).GetTypeName,tsym(sym).prettyname);
  907. end
  908. { units references are problematic }
  909. else
  910. begin
  911. if (tsym(sym).refs=0) and
  912. not(tsym(sym).typ in [enumsym,unitsym,namespacesym]) and
  913. not(is_funcret_sym(tsym(sym))) and
  914. { don't complain about compiler generated syms for specializations, see also #13405 }
  915. not((tsym(sym).typ=typesym) and (df_specialization in ttypesym(sym).typedef.defoptions) and
  916. (pos('$',ttypesym(sym).Realname)<>0)) and
  917. (
  918. (tsym(sym).typ<>procsym) or
  919. ((tsym(sym).owner.symtabletype=staticsymtable) and
  920. not current_module.is_unit)
  921. ) and
  922. { don't complain about alias for hidden _cmd parameter to
  923. obj-c methods }
  924. not((tsym(sym).typ in [localvarsym,paravarsym,absolutevarsym]) and
  925. (vo_is_msgsel in tabstractvarsym(sym).varoptions)) then
  926. MessagePos2(tsym(sym).fileinfo,sym_h_local_symbol_not_used,SymTypeName[tsym(sym).typ],tsym(sym).prettyname);
  927. end;
  928. end;
  929. end;
  930. procedure TStoredSymtable.TestPrivate(sym:TObject;arg:pointer);
  931. begin
  932. if tsym(sym).visibility in [vis_private,vis_strictprivate] then
  933. varsymbolused(sym,arg);
  934. end;
  935. procedure TStoredSymtable.objectprivatesymbolused(sym:TObject;arg:pointer);
  936. begin
  937. {
  938. Don't test simple object aliases PM
  939. }
  940. if (tsym(sym).typ=typesym) and
  941. (ttypesym(sym).typedef.typ in [objectdef,recorddef]) and
  942. (ttypesym(sym).typedef.typesym=tsym(sym)) then
  943. tabstractrecorddef(ttypesym(sym).typedef).symtable.SymList.ForEachCall(@TestPrivate,nil);
  944. end;
  945. procedure tstoredsymtable.testfordefaultproperty(sym:TObject;arg:pointer);
  946. begin
  947. if (tsym(sym).typ=propertysym) and
  948. (ppo_defaultproperty in tpropertysym(sym).propoptions) then
  949. ppointer(arg)^:=sym;
  950. end;
  951. procedure tstoredsymtable.register_children;
  952. begin
  953. SymList.ForEachCall(@register_syms,nil);
  954. DefList.ForEachCall(@register_defs,nil);
  955. end;
  956. {***********************************************
  957. Process all entries
  958. ***********************************************}
  959. { checks, if all procsyms and methods are defined }
  960. procedure tstoredsymtable.check_forwards;
  961. begin
  962. SymList.ForEachCall(@check_forward,nil);
  963. { check whether all block definitions contain valid Objective-C types
  964. (now that all forward definitions have been resolved) }
  965. DefList.ForEachCall(@check_block_valid,nil);
  966. end;
  967. procedure tstoredsymtable.checklabels;
  968. begin
  969. SymList.ForEachCall(@labeldefined,nil);
  970. end;
  971. procedure tstoredsymtable.allsymbolsused;
  972. begin
  973. SymList.ForEachCall(@varsymbolused,nil);
  974. end;
  975. procedure tstoredsymtable.allprivatesused;
  976. begin
  977. SymList.ForEachCall(@objectprivatesymbolused,nil);
  978. end;
  979. procedure TStoredSymtable._needs_init_final(sym:TObject;arg:pointer);
  980. begin
  981. if [sto_needs_init_final,sto_has_non_trivial_init] <= tableoptions then
  982. exit;
  983. { don't check static symbols - they can be present in structures only and
  984. always have a reference to a symbol defined on unit level }
  985. if sp_static in tsym(sym).symoptions then
  986. exit;
  987. case tsym(sym).typ of
  988. fieldvarsym,
  989. staticvarsym,
  990. localvarsym,
  991. paravarsym :
  992. begin
  993. if assigned(tabstractvarsym(sym).vardef) and
  994. is_managed_type(tabstractvarsym(sym).vardef) then
  995. include(tableoptions,sto_needs_init_final);
  996. if is_record((tabstractvarsym(sym).vardef)) and
  997. (mop_initialize in trecordsymtable(trecorddef(tabstractvarsym(sym).vardef).symtable).managementoperators) then
  998. include(tableoptions,sto_has_non_trivial_init);
  999. end;
  1000. else
  1001. ;
  1002. end;
  1003. end;
  1004. procedure tstoredsymtable.do_init_final_check;
  1005. begin
  1006. if not init_final_check_done then
  1007. begin
  1008. exclude(tableoptions,sto_needs_init_final);
  1009. exclude(tableoptions,sto_has_non_trivial_init);
  1010. SymList.ForEachCall(@_needs_init_final,nil);
  1011. init_final_check_done:=true;
  1012. end;
  1013. end;
  1014. { returns true, if p contains data which needs init/final code }
  1015. function tstoredsymtable.needs_init_final : boolean;
  1016. begin
  1017. do_init_final_check;
  1018. result:=sto_needs_init_final in tableoptions;
  1019. end;
  1020. function tstoredsymtable.has_non_trivial_init:boolean;
  1021. begin
  1022. do_init_final_check;
  1023. result:=sto_has_non_trivial_init in tableoptions;
  1024. end;
  1025. {****************************************************************************
  1026. TAbstractRecordSymtable
  1027. ****************************************************************************}
  1028. {$ifdef llvm}
  1029. function tabstractrecordsymtable.getllvmshadowsymtabll: tllvmshadowsymtable;
  1030. begin
  1031. if not assigned(fllvmst) then
  1032. fllvmst:=tllvmshadowsymtable.create(self);
  1033. result:=fllvmst;
  1034. end;
  1035. {$endif llvm}
  1036. constructor tabstractrecordsymtable.create(const n:string;usealign,recordminalign:shortint);
  1037. begin
  1038. inherited create(n);
  1039. _datasize:=0;
  1040. databitsize:=0;
  1041. recordalignment:=1;
  1042. usefieldalignment:=usealign;
  1043. recordalignmin:=recordminalign;
  1044. padalignment:=1;
  1045. { recordalign C_alignment means C record packing, that starts
  1046. with an alignment of 1 }
  1047. case usealign of
  1048. C_alignment,
  1049. bit_alignment:
  1050. fieldalignment:=1;
  1051. mac68k_alignment:
  1052. fieldalignment:=2;
  1053. else
  1054. fieldalignment:=usealign;
  1055. end;
  1056. end;
  1057. destructor tabstractrecordsymtable.destroy;
  1058. { for some reason a compiler built with 3.3.1 fails building the libxml2
  1059. package if the below define is not defined and thus the code snippet is
  1060. part of the destructor itself and not a nested procedure; until that bug
  1061. is fixed this is used as a workaround :/ }
  1062. {$define codegen_workaround}
  1063. {$ifdef codegen_workaround}
  1064. procedure free_mop_list(mop:tmanagementoperator);
  1065. var
  1066. i : longint;
  1067. begin
  1068. if assigned(mop_list[mop]) then
  1069. for i:=0 to mop_list[mop].count-1 do
  1070. dispose(pmanagementoperator_offset_entry(mop_list[mop][i]));
  1071. mop_list[mop].free;
  1072. end;
  1073. {$endif codegen_workaround}
  1074. var
  1075. mop : tmanagementoperator;
  1076. {$ifndef codegen_workaround}
  1077. i : longint;
  1078. {$endif codegen_workaround}
  1079. begin
  1080. if refcount>1 then
  1081. exit;
  1082. {$ifdef llvm}
  1083. fllvmst.free;
  1084. {$endif llvm}
  1085. for mop:=low(tmanagementoperator) to high(tmanagementoperator) do
  1086. begin
  1087. {$ifdef codegen_workaround}
  1088. free_mop_list(mop);
  1089. {$else codegen_workaround}
  1090. if assigned(mop_list[mop]) then
  1091. for i:=0 to mop_list[mop].count-1 do
  1092. dispose(pmanagementoperator_offset_entry(mop_list[mop][i]));
  1093. mop_list[mop].free;
  1094. {$endif codegen_workaround}
  1095. end;
  1096. inherited destroy;
  1097. end;
  1098. procedure tabstractrecordsymtable.ppuload(ppufile:tcompilerppufile);
  1099. begin
  1100. if ppufile.readentry<>ibrecsymtableoptions then
  1101. Message(unit_f_ppu_read_error);
  1102. recordalignment:=shortint(ppufile.getbyte);
  1103. usefieldalignment:=shortint(ppufile.getbyte);
  1104. recordalignmin:=shortint(ppufile.getbyte);
  1105. if (usefieldalignment=C_alignment) then
  1106. fieldalignment:=shortint(ppufile.getbyte);
  1107. ppufile.getsmallset(has_fields_with_mop);
  1108. inherited ppuload(ppufile);
  1109. end;
  1110. procedure tabstractrecordsymtable.ppuwrite(ppufile:tcompilerppufile);
  1111. var
  1112. oldtyp : byte;
  1113. begin
  1114. oldtyp:=ppufile.entrytyp;
  1115. ppufile.entrytyp:=subentryid;
  1116. { in case of classes using C alignment, the alignment of the parent
  1117. affects the alignment of fields of the childs }
  1118. ppufile.putbyte(byte(recordalignment));
  1119. ppufile.putbyte(byte(usefieldalignment));
  1120. ppufile.putbyte(byte(recordalignmin));
  1121. if (usefieldalignment=C_alignment) then
  1122. ppufile.putbyte(byte(fieldalignment));
  1123. { it's not really a "symtableoption", but loading this from the record
  1124. def requires storing the set in the recorddef at least between
  1125. ppuload and deref/derefimpl }
  1126. ppufile.putsmallset(has_fields_with_mop);
  1127. ppufile.writeentry(ibrecsymtableoptions);
  1128. inherited ppuwrite(ppufile);
  1129. ppufile.entrytyp:=oldtyp;
  1130. end;
  1131. function field2recordalignment(fieldoffs, fieldalign: asizeint): asizeint;
  1132. begin
  1133. { optimal alignment of the record when declaring a variable of this }
  1134. { type is independent of the packrecords setting }
  1135. if (fieldoffs mod fieldalign) = 0 then
  1136. result:=fieldalign
  1137. else if (fieldalign >= 16) and
  1138. ((fieldoffs mod 16) = 0) and
  1139. ((fieldalign mod 16) = 0) then
  1140. result:=16
  1141. else if (fieldalign >= 8) and
  1142. ((fieldoffs mod 8) = 0) and
  1143. ((fieldalign mod 8) = 0) then
  1144. result:=8
  1145. else if (fieldalign >= 4) and
  1146. ((fieldoffs mod 4) = 0) and
  1147. ((fieldalign mod 4) = 0) then
  1148. result:=4
  1149. else if (fieldalign >= 2) and
  1150. ((fieldoffs mod 2) = 0) and
  1151. ((fieldalign mod 2) = 0) then
  1152. result:=2
  1153. else
  1154. result:=1;
  1155. end;
  1156. procedure tabstractrecordsymtable.alignrecord(fieldoffset:asizeint;varalign:shortint);
  1157. var
  1158. varalignrecord: shortint;
  1159. begin
  1160. case usefieldalignment of
  1161. C_alignment:
  1162. varalignrecord:=used_align(varalign,recordalignmin,current_settings.alignment.maxCrecordalign);
  1163. mac68k_alignment:
  1164. varalignrecord:=2;
  1165. else
  1166. varalignrecord:=field2recordalignment(fieldoffset,varalign);
  1167. end;
  1168. recordalignment:=max(recordalignment,varalignrecord);
  1169. end;
  1170. procedure tabstractrecordsymtable.addfield(sym:tfieldvarsym;vis:tvisibility);
  1171. var
  1172. l : asizeint;
  1173. varalign : shortint;
  1174. vardef : tdef;
  1175. begin
  1176. if (sym.owner<>self) then
  1177. internalerror(200602031);
  1178. if sym.fieldoffset<>-1 then
  1179. internalerror(200602032);
  1180. { set visibility for the symbol }
  1181. sym.visibility:=vis;
  1182. { this symbol can't be loaded to a register }
  1183. sym.varregable:=vr_none;
  1184. { management operators }
  1185. if sym.vardef.typ in [recorddef,objectdef] then
  1186. has_fields_with_mop:=has_fields_with_mop + tabstractrecordsymtable(tabstractrecorddef(sym.vardef).symtable).has_fields_with_mop;
  1187. if sym.vardef.typ=recorddef then
  1188. has_fields_with_mop:=has_fields_with_mop + trecordsymtable(trecorddef(sym.vardef).symtable).managementoperators;
  1189. { Calculate field offset }
  1190. l:=sym.getsize;
  1191. vardef:=sym.vardef;
  1192. varalign:=vardef.structalignment;
  1193. case usefieldalignment of
  1194. bit_alignment:
  1195. begin
  1196. { bitpacking only happens for ordinals, the rest is aligned at }
  1197. { 1 byte (compatible with GPC/GCC) }
  1198. if is_ordinal(vardef) then
  1199. begin
  1200. sym.fieldoffset:=databitsize;
  1201. l:=sym.getpackedbitsize;
  1202. end
  1203. else
  1204. begin
  1205. databitsize:=_datasize*8;
  1206. sym.fieldoffset:=databitsize;
  1207. if (l>high(asizeint) div 8) then
  1208. Message(sym_e_segment_too_large);
  1209. l:=l*8;
  1210. end;
  1211. if varalign=0 then
  1212. varalign:=size_2_align(l);
  1213. recordalignment:=max(recordalignment,field2recordalignment(databitsize mod 8,varalign));
  1214. { bit packed records are limited to high(aint) bits }
  1215. { instead of bytes to avoid double precision }
  1216. { arithmetic in offset calculations }
  1217. if int64(l)>high(asizeint)-sym.fieldoffset then
  1218. begin
  1219. Message(sym_e_segment_too_large);
  1220. _datasize:=high(asizeint);
  1221. databitsize:=high(asizeint);
  1222. end
  1223. else
  1224. begin
  1225. databitsize:=sym.fieldoffset+l;
  1226. _datasize:=(databitsize+7) div 8;
  1227. end;
  1228. { rest is not applicable }
  1229. exit;
  1230. end;
  1231. else
  1232. begin
  1233. sym.fieldoffset:=getfieldoffset(sym,_datasize,fieldalignment);
  1234. if l>high(asizeint)-sym.fieldoffset then
  1235. begin
  1236. Message(sym_e_segment_too_large);
  1237. _datasize:=high(asizeint);
  1238. end
  1239. else
  1240. _datasize:=sym.fieldoffset+l;
  1241. { Calc alignment needed for this record }
  1242. alignrecord(sym.fieldoffset,varalign);
  1243. end;
  1244. end;
  1245. end;
  1246. function field_alignment_compare(item1, item2: pointer): integer;
  1247. var
  1248. field1: tfieldvarsym absolute item1;
  1249. field2: tfieldvarsym absolute item2;
  1250. begin
  1251. { we don't care about static fields, those become global variables }
  1252. if (sp_static in field1.symoptions) or
  1253. (sp_static in field2.symoptions) then
  1254. exit(0);
  1255. { sort from large to small alignment, and in case of the same alignment
  1256. in declaration order (items declared close together are possibly
  1257. also related and hence possibly used together -> putting them next
  1258. to each other can improve cache behaviour) }
  1259. result:=field2.vardef.alignment-field1.vardef.alignment;
  1260. if result=0 then
  1261. result:=field1.fieldoffset-field2.fieldoffset;
  1262. end;
  1263. procedure tabstractrecordsymtable.addfieldlist(list: tfpobjectlist; maybereorder: boolean);
  1264. var
  1265. fieldvs, insertfieldvs: tfieldvarsym;
  1266. base, fieldoffset, space, insertfieldsize, insertfieldoffset, bestinsertfieldoffset, bestspaceleft: asizeint;
  1267. i, j, bestfieldindex: longint;
  1268. globalfieldalignment,
  1269. prevglobalfieldalignment,
  1270. newfieldalignment: shortint;
  1271. changed: boolean;
  1272. begin
  1273. if maybereorder and
  1274. (cs_opt_reorder_fields in current_settings.optimizerswitches) then
  1275. begin
  1276. { assign dummy field offsets so we can know their order in the
  1277. sorting routine }
  1278. for i:=0 to list.count-1 do
  1279. tfieldvarsym(list[i]).fieldoffset:=i;
  1280. { sort the non-class fields to minimise losses due to alignment }
  1281. list.sort(@field_alignment_compare);
  1282. { now fill up gaps caused by alignment skips with smaller fields
  1283. where possible }
  1284. repeat
  1285. i:=0;
  1286. base:=_datasize;
  1287. globalfieldalignment:=fieldalignment;
  1288. changed:=false;
  1289. while i<list.count do
  1290. begin
  1291. fieldvs:=tfieldvarsym(list[i]);
  1292. if sp_static in fieldvs.symoptions then
  1293. begin
  1294. inc(i);
  1295. continue;
  1296. end;
  1297. prevglobalfieldalignment:=globalfieldalignment;
  1298. fieldoffset:=getfieldoffset(fieldvs,base,globalfieldalignment);
  1299. newfieldalignment:=globalfieldalignment;
  1300. { size of the gap between the end of the previous field and
  1301. the start of the current one }
  1302. space:=fieldoffset-base;
  1303. bestspaceleft:=space;
  1304. while space>0 do
  1305. begin
  1306. bestfieldindex:=-1;
  1307. bestinsertfieldoffset:=-1;
  1308. for j:=i+1 to list.count-1 do
  1309. begin
  1310. insertfieldvs:=tfieldvarsym(list[j]);
  1311. if sp_static in insertfieldvs.symoptions then
  1312. continue;
  1313. insertfieldsize:=insertfieldvs.getsize;
  1314. { can the new field fit possibly in the gap? }
  1315. if insertfieldsize<=space then
  1316. begin
  1317. { restore globalfieldalignment to situation before
  1318. the original field was inserted }
  1319. globalfieldalignment:=prevglobalfieldalignment;
  1320. { at what offset would it be inserted? (this new
  1321. field has its own alignment requirements, which
  1322. may make it impossible to fit after all) }
  1323. insertfieldoffset:=getfieldoffset(insertfieldvs,base,globalfieldalignment);
  1324. globalfieldalignment:=prevglobalfieldalignment;
  1325. { taking into account the alignment, does it still
  1326. fit and if so, does it fit better than the
  1327. previously found best fit? }
  1328. if (insertfieldoffset+insertfieldsize<=fieldoffset) and
  1329. (fieldoffset-insertfieldoffset-insertfieldsize<bestspaceleft) then
  1330. begin
  1331. { new best fit }
  1332. bestfieldindex:=j;
  1333. bestinsertfieldoffset:=insertfieldoffset;
  1334. bestspaceleft:=fieldoffset-insertfieldoffset-insertfieldsize;
  1335. if bestspaceleft=0 then
  1336. break;
  1337. end;
  1338. end;
  1339. end;
  1340. { if we didn't find any field to fit, stop trying for this
  1341. gap }
  1342. if bestfieldindex=-1 then
  1343. break;
  1344. changed:=true;
  1345. { we found a field to insert -> adjust the new base
  1346. address }
  1347. base:=bestinsertfieldoffset+tfieldvarsym(list[bestfieldindex]).getsize;
  1348. { update globalfieldalignment for this newly inserted
  1349. field }
  1350. getfieldoffset(tfieldvarsym(list[bestfieldindex]),base,globalfieldalignment);
  1351. { move the new field before the current one }
  1352. list.move(bestfieldindex,i);
  1353. { and skip the new field (which is now at position i) }
  1354. inc(i);
  1355. { there may be more space left -> continue }
  1356. space:=bestspaceleft;
  1357. end;
  1358. if base>fieldoffset then
  1359. internalerror(2012071302);
  1360. { check the next field }
  1361. base:=fieldoffset+fieldvs.getsize;
  1362. { since the original field had the same or greater alignment
  1363. than anything we inserted before it, the global field
  1364. alignment is still the same now as it was originally after
  1365. inserting that field }
  1366. globalfieldalignment:=newfieldalignment;
  1367. inc(i);
  1368. end;
  1369. { there may be small gaps left *before* inserted fields }
  1370. until not changed;
  1371. end;
  1372. { reset the dummy field offsets }
  1373. for i:=0 to list.count-1 do
  1374. tfieldvarsym(list[i]).fieldoffset:=-1;
  1375. { finally, set the actual field offsets }
  1376. for i:=0 to list.count-1 do
  1377. begin
  1378. fieldvs:=tfieldvarsym(list[i]);
  1379. { static data fields are already inserted in the globalsymtable }
  1380. if not(sp_static in fieldvs.symoptions) then
  1381. begin
  1382. { read_record_fields already set the visibility of the fields,
  1383. because a single list can contain symbols with different
  1384. visibility }
  1385. addfield(fieldvs,fieldvs.visibility);
  1386. end;
  1387. end;
  1388. end;
  1389. function tabstractrecordsymtable.findfieldbyoffset(offset: asizeint): tfieldvarsym;
  1390. var
  1391. i: longint;
  1392. sym: tsym;
  1393. begin
  1394. { there could be multiple fields in case of a variant record }
  1395. if (defowner.typ=recorddef) and
  1396. trecorddef(defowner).isunion then
  1397. internalerror(2014090403);
  1398. for i:=0 to SymList.count-1 do
  1399. begin
  1400. sym:=tsym(symlist[i]);
  1401. if (sym.typ=fieldvarsym) and
  1402. not(sp_static in sym.symoptions) and
  1403. (tfieldvarsym(sym).fieldoffset>=offset) then
  1404. begin
  1405. result:=tfieldvarsym(sym);
  1406. exit;
  1407. end;
  1408. end;
  1409. result:=nil;
  1410. end;
  1411. procedure tabstractrecordsymtable.addalignmentpadding;
  1412. var
  1413. padded_datasize: asizeint;
  1414. begin
  1415. { make the record size aligned correctly so it can be
  1416. used as elements in an array. For C records we
  1417. use the fieldalignment, because that is updated with the
  1418. used alignment. }
  1419. if (padalignment = 1) then
  1420. case usefieldalignment of
  1421. C_alignment:
  1422. padalignment:=fieldalignment;
  1423. { bitpacked }
  1424. bit_alignment:
  1425. padalignment:=1;
  1426. { mac68k: always round to multiple of 2 }
  1427. mac68k_alignment:
  1428. padalignment:=2;
  1429. { default/no packrecords specified }
  1430. 0:
  1431. padalignment:=recordalignment
  1432. { specific packrecords setting -> use as upper limit }
  1433. else
  1434. padalignment:=min(recordalignment,usefieldalignment);
  1435. end;
  1436. padded_datasize:=align(_datasize,padalignment);
  1437. _paddingsize:=padded_datasize-_datasize;
  1438. _datasize:=padded_datasize;
  1439. end;
  1440. procedure tabstractrecordsymtable.insertdef(def:TDefEntry);
  1441. begin
  1442. { Enums must also be available outside the record scope,
  1443. insert in the owner of this symtable }
  1444. if def.typ=enumdef then
  1445. defowner.owner.insertdef(def)
  1446. else
  1447. inherited insertdef(def);
  1448. end;
  1449. function tabstractrecordsymtable.is_packed: boolean;
  1450. begin
  1451. result:=usefieldalignment=bit_alignment;
  1452. end;
  1453. function tabstractrecordsymtable.has_single_field(out def:tdef): boolean;
  1454. var
  1455. i: longint;
  1456. currentsymlist: TFPHashObjectList;
  1457. currentdef: tdef;
  1458. sym: tfieldvarsym;
  1459. begin
  1460. result:=false;
  1461. { If a record contains a union, it does not contain a "single
  1462. non-composite field" in the context of certain ABIs requiring
  1463. special treatment for such records }
  1464. if (defowner.typ=recorddef) and
  1465. trecorddef(defowner).isunion then
  1466. exit;
  1467. { a record/object can contain other things than fields }
  1468. currentsymlist:=symlist;
  1469. { recurse in arrays and records }
  1470. sym:=nil;
  1471. repeat
  1472. { record has one field? }
  1473. for i:=0 to currentsymlist.Count-1 do
  1474. begin
  1475. if (tsym(currentsymlist[i]).typ=fieldvarsym) and
  1476. not(sp_static in tsym(currentsymlist[i]).symoptions) then
  1477. begin
  1478. if result then
  1479. begin
  1480. result:=false;
  1481. exit;
  1482. end;
  1483. result:=true;
  1484. sym:=tfieldvarsym(currentsymlist[i])
  1485. end;
  1486. end;
  1487. if assigned(sym) then
  1488. begin
  1489. { if the field is an array, does it contain one element? }
  1490. currentdef:=sym.vardef;
  1491. while (currentdef.typ=arraydef) and
  1492. not is_special_array(currentdef) do
  1493. begin
  1494. if tarraydef(currentdef).elecount<>1 then
  1495. begin
  1496. result:=false;
  1497. exit;
  1498. end;
  1499. currentdef:=tarraydef(currentdef).elementdef;
  1500. end;
  1501. { if the array element is again a record, continue descending }
  1502. if currentdef.typ=recorddef then
  1503. currentsymlist:=trecorddef(currentdef).symtable.SymList
  1504. else
  1505. begin
  1506. { otherwise we found the type of the single element }
  1507. def:=currentdef;
  1508. exit;
  1509. end;
  1510. end
  1511. else
  1512. exit
  1513. until false;
  1514. end;
  1515. function tabstractrecordsymtable.get_unit_symtable: tsymtable;
  1516. begin
  1517. result:=defowner.owner;
  1518. while assigned(result) and (result.symtabletype in [ObjectSymtable,recordsymtable]) do
  1519. result:=result.defowner.owner;
  1520. end;
  1521. procedure tabstractrecordsymtable.do_get_managementoperator_offset_list(data:tobject;arg:pointer);
  1522. var
  1523. sym : tsym absolute data;
  1524. fsym : tfieldvarsym absolute data;
  1525. mop : tmanagementoperator;
  1526. entry : pmanagementoperator_offset_entry;
  1527. sublist : tfplist;
  1528. i : longint;
  1529. begin
  1530. if sym.typ<>fieldvarsym then
  1531. exit;
  1532. if not is_record(fsym.vardef) and not is_object(fsym.vardef) and not is_cppclass(fsym.vardef) then
  1533. exit;
  1534. mop:=tmanagementoperator(ptruint(arg));
  1535. if not assigned(mop_list[mop]) then
  1536. internalerror(2018082303);
  1537. if is_record(fsym.vardef) then
  1538. begin
  1539. if mop in trecordsymtable(trecorddef(fsym.vardef).symtable).managementoperators then
  1540. begin
  1541. new(entry);
  1542. entry^.pd:=search_management_operator(mop,fsym.vardef);
  1543. if not assigned(entry^.pd) then
  1544. internalerror(2018082302);
  1545. entry^.offset:=fsym.fieldoffset;
  1546. mop_list[mop].add(entry);
  1547. end;
  1548. end;
  1549. sublist:=tfplist.create;
  1550. tabstractrecordsymtable(tabstractrecorddef(fsym.vardef).symtable).get_managementoperator_offset_list(mop,sublist);
  1551. for i:=0 to sublist.count-1 do
  1552. begin
  1553. entry:=pmanagementoperator_offset_entry(sublist[i]);
  1554. entry^.offset:=entry^.offset+fsym.fieldoffset;
  1555. mop_list[mop].add(entry);
  1556. end;
  1557. { we don't need to remove the entries as they become part of list }
  1558. sublist.free;
  1559. end;
  1560. procedure tabstractrecordsymtable.get_managementoperator_offset_list(mop:tmanagementoperator;list:tfplist);
  1561. var
  1562. i : longint;
  1563. entry,entrycopy : pmanagementoperator_offset_entry;
  1564. begin
  1565. if not assigned(list) then
  1566. internalerror(2018082301);
  1567. if mop=mop_none then
  1568. exit;
  1569. if not (mop in has_fields_with_mop) then
  1570. { none of the fields or one of the field's fields has the requested operator }
  1571. exit;
  1572. if not assigned(mop_list[mop]) then
  1573. begin
  1574. mop_list[mop]:=tfplist.create;
  1575. SymList.ForEachCall(@do_get_managementoperator_offset_list,pointer(ptruint(mop)));
  1576. end;
  1577. for i:=0 to mop_list[mop].count-1 do
  1578. begin
  1579. entry:=pmanagementoperator_offset_entry(mop_list[mop][i]);
  1580. New(entrycopy);
  1581. entrycopy^:=entry^;
  1582. list.add(entrycopy);
  1583. end;
  1584. end;
  1585. procedure tabstractrecordsymtable.setdatasize(val: asizeint);
  1586. begin
  1587. _datasize:=val;
  1588. if (usefieldalignment=bit_alignment) then
  1589. { can overflow in non bitpacked records }
  1590. databitsize:=val*8;
  1591. end;
  1592. function tabstractrecordsymtable.getfieldoffset(sym: tfieldvarsym; base: asizeint; var globalfieldalignment: shortint): asizeint;
  1593. var
  1594. l : asizeint;
  1595. varalignfield,
  1596. varalign : shortint;
  1597. vardef : tdef;
  1598. begin
  1599. { Calculate field offset }
  1600. l:=sym.getsize;
  1601. vardef:=sym.vardef;
  1602. varalign:=vardef.structalignment;
  1603. case usefieldalignment of
  1604. bit_alignment:
  1605. { has to be handled separately }
  1606. internalerror(2012071301);
  1607. C_alignment:
  1608. begin
  1609. { Calc the alignment size for C style records }
  1610. if (varalign>4) and
  1611. ((varalign mod 4)<>0) and
  1612. (vardef.typ=arraydef) then
  1613. Message1(sym_w_wrong_C_pack,vardef.typename);
  1614. if varalign=0 then
  1615. varalign:=l;
  1616. if (globalfieldalignment<current_settings.alignment.maxCrecordalign) then
  1617. begin
  1618. if (varalign>16) and (globalfieldalignment<32) then
  1619. globalfieldalignment:=32
  1620. else if (varalign>12) and (globalfieldalignment<16) then
  1621. globalfieldalignment:=16
  1622. { 12 is needed for long double }
  1623. else if (varalign>8) and (globalfieldalignment<12) then
  1624. globalfieldalignment:=12
  1625. else if (varalign>4) and (globalfieldalignment<8) then
  1626. globalfieldalignment:=8
  1627. else if (varalign>2) and (globalfieldalignment<4) then
  1628. globalfieldalignment:=4
  1629. else if (varalign>1) and (globalfieldalignment<2) then
  1630. globalfieldalignment:=2;
  1631. end;
  1632. globalfieldalignment:=min(globalfieldalignment,current_settings.alignment.maxCrecordalign);
  1633. end;
  1634. mac68k_alignment:
  1635. begin
  1636. { mac68k alignment (C description):
  1637. * char is aligned to 1 byte
  1638. * everything else (except vector) is aligned to 2 bytes
  1639. * vector is aligned to 16 bytes
  1640. }
  1641. if l>1 then
  1642. globalfieldalignment:=2
  1643. else
  1644. globalfieldalignment:=1;
  1645. varalign:=2;
  1646. end;
  1647. end;
  1648. if varalign=0 then
  1649. varalign:=size_2_align(l);
  1650. varalignfield:=used_align(varalign,recordalignmin,globalfieldalignment);
  1651. result:=align(base,varalignfield);
  1652. end;
  1653. function tabstractrecordsymtable.iscurrentunit: boolean;
  1654. begin
  1655. Result:=assigned(current_module)and(current_module.moduleid=moduleid);
  1656. end;
  1657. {****************************************************************************
  1658. TRecordSymtable
  1659. ****************************************************************************}
  1660. constructor trecordsymtable.create(const n:string;usealign,recordminalign:shortint);
  1661. begin
  1662. inherited create(n,usealign,recordminalign);
  1663. symtabletype:=recordsymtable;
  1664. end;
  1665. { this procedure is reserved for inserting case variant into
  1666. a record symtable }
  1667. { the offset is the location of the start of the variant
  1668. and datasize and dataalignment corresponds to
  1669. the complete size (see code in pdecl unit) PM }
  1670. procedure trecordsymtable.insertunionst(unionst : trecordsymtable;offset : asizeint);
  1671. var
  1672. sym : tsym;
  1673. def : tdef;
  1674. i : integer;
  1675. varalignrecord,varalign,
  1676. storesize,storealign : asizeint;
  1677. bitsize: tcgint;
  1678. begin
  1679. storesize:=_datasize;
  1680. storealign:=fieldalignment;
  1681. _datasize:=offset;
  1682. if (usefieldalignment=bit_alignment) then
  1683. databitsize:=offset*8;
  1684. { We move the ownership of the defs and symbols to the new recordsymtable.
  1685. The old unionsymtable keeps the references, but doesn't own the
  1686. objects anymore }
  1687. unionst.DefList.OwnsObjects:=false;
  1688. unionst.SymList.OwnsObjects:=false;
  1689. { copy symbols }
  1690. for i:=0 to unionst.SymList.Count-1 do
  1691. begin
  1692. sym:=TSym(unionst.SymList[i]);
  1693. if sym.typ<>fieldvarsym then
  1694. internalerror(200601272);
  1695. if tfieldvarsym(sym).fieldoffset=0 then
  1696. include(tfieldvarsym(sym).varoptions,vo_is_first_field);
  1697. { add to this record symtable, checking for duplicate names }
  1698. // unionst.SymList.List.List^[i].Data:=nil;
  1699. insert(sym);
  1700. varalign:=tfieldvarsym(sym).vardef.alignment;
  1701. if varalign=0 then
  1702. varalign:=size_2_align(tfieldvarsym(sym).getsize);
  1703. { retrieve size }
  1704. if (usefieldalignment=bit_alignment) then
  1705. begin
  1706. { bit packed records are limited to high(aint) bits }
  1707. { instead of bytes to avoid double precision }
  1708. { arithmetic in offset calculations }
  1709. if is_ordinal(tfieldvarsym(sym).vardef) then
  1710. bitsize:=tfieldvarsym(sym).getpackedbitsize
  1711. else
  1712. begin
  1713. bitsize:=tfieldvarsym(sym).getsize;
  1714. if (bitsize>high(asizeint) div 8) then
  1715. Message(sym_e_segment_too_large);
  1716. bitsize:=bitsize*8;
  1717. end;
  1718. if bitsize>high(asizeint)-databitsize then
  1719. begin
  1720. Message(sym_e_segment_too_large);
  1721. _datasize:=high(asizeint);
  1722. databitsize:=high(asizeint);
  1723. end
  1724. else
  1725. begin
  1726. databitsize:=tfieldvarsym(sym).fieldoffset+offset*8;
  1727. _datasize:=(databitsize+7) div 8;
  1728. end;
  1729. tfieldvarsym(sym).fieldoffset:=databitsize;
  1730. varalignrecord:=field2recordalignment(tfieldvarsym(sym).fieldoffset div 8,varalign);
  1731. end
  1732. else
  1733. begin
  1734. if tfieldvarsym(sym).getsize>high(asizeint)-_datasize then
  1735. begin
  1736. Message(sym_e_segment_too_large);
  1737. _datasize:=high(asizeint);
  1738. end
  1739. else
  1740. _datasize:=tfieldvarsym(sym).fieldoffset+offset;
  1741. { update address }
  1742. tfieldvarsym(sym).fieldoffset:=_datasize;
  1743. varalignrecord:=field2recordalignment(tfieldvarsym(sym).fieldoffset,varalign);
  1744. end;
  1745. { update alignment of this record }
  1746. if (usefieldalignment<>C_alignment) and
  1747. (usefieldalignment<>mac68k_alignment) then
  1748. recordalignment:=max(recordalignment,varalignrecord);
  1749. end;
  1750. { update alignment for C records }
  1751. if (usefieldalignment=C_alignment) and
  1752. (usefieldalignment<>mac68k_alignment) then
  1753. recordalignment:=max(recordalignment,unionst.recordalignment);
  1754. { Register defs in the new record symtable }
  1755. for i:=0 to unionst.DefList.Count-1 do
  1756. begin
  1757. def:=TDef(unionst.DefList[i]);
  1758. def.ChangeOwner(self);
  1759. end;
  1760. _datasize:=storesize;
  1761. fieldalignment:=storealign;
  1762. { If a record contains a union, it does not contain a "single
  1763. non-composite field" in the context of certain ABIs requiring
  1764. special treatment for such records }
  1765. if defowner.typ=recorddef then
  1766. trecorddef(defowner).isunion:=true;
  1767. end;
  1768. procedure trecordsymtable.includemanagementoperator(mop:tmanagementoperator);
  1769. begin
  1770. if mop in managementoperators then
  1771. exit;
  1772. include(managementoperators,mop);
  1773. end;
  1774. {****************************************************************************
  1775. TObjectSymtable
  1776. ****************************************************************************}
  1777. constructor tObjectSymtable.create(adefowner:tdef;const n:string;usealign,recordminalign:shortint);
  1778. begin
  1779. inherited create(n,usealign,recordminalign);
  1780. symtabletype:=ObjectSymtable;
  1781. defowner:=adefowner;
  1782. end;
  1783. function tObjectSymtable.checkduplicate(var hashedid:THashedIDString;sym:TSymEntry):boolean;
  1784. var
  1785. hsym: tsym;
  1786. warn: boolean;
  1787. begin
  1788. result:=false;
  1789. if not assigned(defowner) then
  1790. internalerror(200602061);
  1791. { procsym and propertysym have special code
  1792. to override values in inherited classes. For other
  1793. symbols check for duplicates }
  1794. if not(sym.typ in [procsym,propertysym]) then
  1795. begin
  1796. { but private ids can be reused }
  1797. hsym:=search_struct_member(tobjectdef(defowner),hashedid.id);
  1798. if assigned(hsym) and
  1799. (
  1800. (
  1801. not(m_delphi in current_settings.modeswitches) and
  1802. is_visible_for_object(hsym,tobjectdef(defowner))
  1803. ) or
  1804. (
  1805. { In Delphi, you can repeat members of a parent class. You can't }
  1806. { do this for objects however, and you (obviouly) can't }
  1807. { declare two fields with the same name in a single class }
  1808. (m_delphi in current_settings.modeswitches) and
  1809. (
  1810. is_object(tdef(defowner)) or
  1811. (hsym.owner = self)
  1812. )
  1813. )
  1814. ) then
  1815. begin
  1816. { only watn when a parameter/local variable in a method
  1817. conflicts with a category method, because this can easily
  1818. happen due to all possible categories being imported via
  1819. CocoaAll }
  1820. warn:=
  1821. (is_objccategory(tdef(hsym.owner.defowner)) or
  1822. is_classhelper(tdef(hsym.owner.defowner))) and
  1823. (sym.typ in [paravarsym,localvarsym,fieldvarsym]);
  1824. DuplicateSym(hashedid,sym,hsym,warn);
  1825. result:=true;
  1826. end;
  1827. end
  1828. else
  1829. result:=inherited checkduplicate(hashedid,sym);
  1830. end;
  1831. {$ifdef llvm}
  1832. {****************************************************************************
  1833. tLlvmShadowSymtableEntry
  1834. ****************************************************************************}
  1835. constructor tllvmshadowsymtableentry.create(def: tdef; fieldoffset: aint);
  1836. begin
  1837. fdef:=def;
  1838. ffieldoffset:=fieldoffset;
  1839. end;
  1840. {****************************************************************************
  1841. TLlvmShadowSymtable
  1842. ****************************************************************************}
  1843. function tllvmshadowsymtable.get(f: tfieldvarsym): tllvmshadowsymtableentry;
  1844. begin
  1845. result:=get_by_llvm_index(f.llvmfieldnr)
  1846. end;
  1847. function tllvmshadowsymtable.get_by_llvm_index(index: longint): tllvmshadowsymtableentry;
  1848. begin
  1849. result:=tllvmshadowsymtableentry(symdeflist[index]);
  1850. end;
  1851. constructor tllvmshadowsymtable.create(st: tabstractrecordsymtable);
  1852. begin
  1853. equivst:=st;
  1854. curroffset:=0;
  1855. symdeflist:=tfpobjectlist.create(true);
  1856. generate;
  1857. end;
  1858. destructor tllvmshadowsymtable.destroy;
  1859. begin
  1860. symdeflist.free;
  1861. end;
  1862. procedure tllvmshadowsymtable.appenddefoffset(vardef:tdef; fieldoffset: aint; derefclass: boolean);
  1863. var
  1864. sizectr,
  1865. tmpsize: aint;
  1866. begin
  1867. case equivst.usefieldalignment of
  1868. bit_alignment:
  1869. begin
  1870. { curoffset: bit address after the previous field. }
  1871. { llvm has no special support for bitfields in records, }
  1872. { so we replace them with plain bytes. }
  1873. { as soon as a single bit of a byte is allocated, we }
  1874. { allocate the byte in the llvm shadow record }
  1875. if (fieldoffset>curroffset) then
  1876. curroffset:=align(curroffset,8);
  1877. { fields in bitpacked records always start either right }
  1878. { after the previous one, or at the next byte boundary. }
  1879. if (curroffset<>fieldoffset) then
  1880. internalerror(2008051002);
  1881. if is_ordinal(vardef) then
  1882. begin
  1883. tmpsize:=vardef.packedbitsize;
  1884. sizectr:=((curroffset+tmpsize+7) shr 3)-((curroffset+7) shr 3);
  1885. inc(curroffset,tmpsize);
  1886. tmpsize:=0;
  1887. while sizectr<>0 do
  1888. begin
  1889. symdeflist.add(tllvmshadowsymtableentry.create(u8inttype,fieldoffset+tmpsize*8));
  1890. dec(sizectr);
  1891. inc(tmpsize);
  1892. end;
  1893. end
  1894. else
  1895. begin
  1896. symdeflist.add(tllvmshadowsymtableentry.create(vardef,fieldoffset));
  1897. if not(derefclass) then
  1898. inc(curroffset,vardef.size*8)
  1899. else
  1900. inc(curroffset,tobjectsymtable(tobjectdef(vardef).symtable).datasize*8);
  1901. end;
  1902. end
  1903. else if not(df_llvm_no_struct_packing in tdef(equivst.defowner).defoptions) then
  1904. begin
  1905. { curoffset: address right after the previous field }
  1906. while (fieldoffset>curroffset) do
  1907. begin
  1908. symdeflist.add(tllvmshadowsymtableentry.create(u8inttype,curroffset));
  1909. inc(curroffset);
  1910. end;
  1911. symdeflist.add(tllvmshadowsymtableentry.create(vardef,fieldoffset));
  1912. if not(derefclass) then
  1913. inc(curroffset,vardef.size)
  1914. else
  1915. inc(curroffset,tobjectsymtable(tobjectdef(vardef).symtable).datasize);
  1916. end
  1917. else
  1918. { default for llvm, don't add explicit padding }
  1919. symdeflist.add(tllvmshadowsymtableentry.create(vardef,fieldoffset));
  1920. end
  1921. end;
  1922. procedure tllvmshadowsymtable.addalignmentpadding(finalsize: aint);
  1923. begin
  1924. case equivst.usefieldalignment of
  1925. { already correct in this case }
  1926. bit_alignment:
  1927. ;
  1928. else if not(df_llvm_no_struct_packing in tdef(equivst.defowner).defoptions) then
  1929. begin
  1930. { add padding fields }
  1931. while (finalsize>curroffset) do
  1932. begin
  1933. symdeflist.add(tllvmshadowsymtableentry.create(u8inttype,curroffset));
  1934. inc(curroffset);
  1935. end;
  1936. end;
  1937. end;
  1938. end;
  1939. procedure tllvmshadowsymtable.findvariantstarts(variantstarts: tfplist);
  1940. var
  1941. sym: tfieldvarsym;
  1942. lastoffset: aint;
  1943. newalignment: aint;
  1944. i, j: longint;
  1945. begin
  1946. i:=0;
  1947. while (i<equivst.symlist.count) do
  1948. begin
  1949. if (tsym(equivst.symlist[i]).typ<>fieldvarsym) or
  1950. (sp_static in tsym(equivst.symlist[i]).symoptions) then
  1951. begin
  1952. inc(i);
  1953. continue;
  1954. end;
  1955. sym:=tfieldvarsym(equivst.symlist[i]);
  1956. { a "better" algorithm might be to use the largest }
  1957. { variant in case of (bit)packing, since then }
  1958. { alignment doesn't matter }
  1959. if (vo_is_first_field in sym.varoptions) then
  1960. begin
  1961. { we assume that all fields are processed in order. }
  1962. if (variantstarts.count<>0) then
  1963. lastoffset:=tfieldvarsym(variantstarts[variantstarts.count-1]).fieldoffset
  1964. else
  1965. lastoffset:=-1;
  1966. { new variant at same level as last one: use if higher alignment }
  1967. if (lastoffset=sym.fieldoffset) then
  1968. begin
  1969. if (equivst.fieldalignment<>bit_alignment) then
  1970. newalignment:=used_align(sym.vardef.alignment,equivst.recordalignmin,equivst.fieldalignment)
  1971. else
  1972. newalignment:=1;
  1973. if (newalignment>tfieldvarsym(variantstarts[variantstarts.count-1]).vardef.alignment) then
  1974. variantstarts[variantstarts.count-1]:=sym;
  1975. end
  1976. { variant at deeper level than last one -> add }
  1977. else if (lastoffset<sym.fieldoffset) then
  1978. variantstarts.add(sym)
  1979. else
  1980. begin
  1981. { a variant at a less deep level, so backtrack }
  1982. j:=variantstarts.count-2;
  1983. while (j>=0) do
  1984. begin
  1985. if (tfieldvarsym(variantstarts[j]).fieldoffset=sym.fieldoffset) then
  1986. break;
  1987. dec(j);
  1988. end;
  1989. if (j<0) then
  1990. internalerror(2008051003);
  1991. { new variant has higher alignment? }
  1992. if (equivst.fieldalignment<>bit_alignment) then
  1993. newalignment:=used_align(sym.vardef.alignment,equivst.recordalignmin,equivst.fieldalignment)
  1994. else
  1995. newalignment:=1;
  1996. { yes, replace and remove previous nested variants }
  1997. if (newalignment>tfieldvarsym(variantstarts[j]).vardef.alignment) then
  1998. begin
  1999. variantstarts[j]:=sym;
  2000. variantstarts.count:=j+1;
  2001. end
  2002. { no, skip this variant }
  2003. else
  2004. begin
  2005. inc(i);
  2006. while (i<equivst.symlist.count) and
  2007. ((tsym(equivst.symlist[i]).typ<>fieldvarsym) or
  2008. (sp_static in tsym(equivst.symlist[i]).symoptions) or
  2009. (tfieldvarsym(equivst.symlist[i]).fieldoffset>sym.fieldoffset)) do
  2010. inc(i);
  2011. continue;
  2012. end;
  2013. end;
  2014. end;
  2015. inc(i);
  2016. end;
  2017. end;
  2018. procedure tllvmshadowsymtable.buildtable(variantstarts: tfplist);
  2019. var
  2020. lastvaroffsetprocessed: aint;
  2021. i, equivcount, varcount: longint;
  2022. begin
  2023. { if it's an object/class, the first entry is the parent (if there is one) }
  2024. if (equivst.symtabletype=objectsymtable) and
  2025. assigned(tobjectdef(equivst.defowner).childof) then
  2026. appenddefoffset(tobjectdef(equivst.defowner).childof,0,is_class_or_interface_or_dispinterface(tobjectdef(equivst.defowner).childof));
  2027. equivcount:=equivst.symlist.count;
  2028. varcount:=0;
  2029. i:=0;
  2030. lastvaroffsetprocessed:=-1;
  2031. while (i<equivcount) do
  2032. begin
  2033. if (tsym(equivst.symlist[i]).typ<>fieldvarsym) or
  2034. (sp_static in tsym(equivst.symlist[i]).symoptions) then
  2035. begin
  2036. inc(i);
  2037. continue;
  2038. end;
  2039. { start of a new variant? }
  2040. if (vo_is_first_field in tfieldvarsym(equivst.symlist[i]).varoptions) then
  2041. begin
  2042. { if we want to process the same variant offset twice, it means that we }
  2043. { got to the end and are trying to process the next variant part -> stop }
  2044. if (tfieldvarsym(equivst.symlist[i]).fieldoffset<=lastvaroffsetprocessed) then
  2045. break;
  2046. if (varcount>=variantstarts.count) then
  2047. internalerror(2008051005);
  2048. { new variant part -> use the one with the biggest alignment }
  2049. i:=equivst.symlist.indexof(tobject(variantstarts[varcount]));
  2050. lastvaroffsetprocessed:=tfieldvarsym(equivst.symlist[i]).fieldoffset;
  2051. inc(varcount);
  2052. if (i<0) then
  2053. internalerror(2008051004);
  2054. end;
  2055. appenddefoffset(tfieldvarsym(equivst.symlist[i]).vardef,tfieldvarsym(equivst.symlist[i]).fieldoffset,false);
  2056. inc(i);
  2057. end;
  2058. addalignmentpadding(equivst.datasize);
  2059. end;
  2060. procedure tllvmshadowsymtable.buildmapping(variantstarts: tfplist);
  2061. var
  2062. i, varcount: longint;
  2063. shadowindex: longint;
  2064. equivcount : longint;
  2065. begin
  2066. varcount:=0;
  2067. shadowindex:=0;
  2068. equivcount:=equivst.symlist.count;
  2069. i:=0;
  2070. while (i < equivcount) do
  2071. begin
  2072. if (tsym(equivst.symlist[i]).typ<>fieldvarsym) or
  2073. (sp_static in tsym(equivst.symlist[i]).symoptions) then
  2074. begin
  2075. inc(i);
  2076. continue;
  2077. end;
  2078. { start of a new variant? }
  2079. if (vo_is_first_field in tfieldvarsym(equivst.symlist[i]).varoptions) then
  2080. begin
  2081. { back up to a less deeply nested variant level? }
  2082. while (tfieldvarsym(equivst.symlist[i]).fieldoffset<tfieldvarsym(variantstarts[varcount]).fieldoffset) do
  2083. dec(varcount);
  2084. { it's possible that some variants are more deeply nested than the
  2085. one we recorded in the shadowsymtable (since we recorded the one
  2086. with the biggest alignment, not necessarily the biggest one in size
  2087. }
  2088. if (tfieldvarsym(equivst.symlist[i]).fieldoffset>tfieldvarsym(variantstarts[varcount]).fieldoffset) then
  2089. varcount:=variantstarts.count-1
  2090. else if (tfieldvarsym(equivst.symlist[i]).fieldoffset<>tfieldvarsym(variantstarts[varcount]).fieldoffset) then
  2091. internalerror(2008051006);
  2092. { reset the shadowindex to the start of this variant. }
  2093. { in case the llvmfieldnr is not (yet) set for this }
  2094. { field, shadowindex will simply be reset to zero and }
  2095. { we'll start searching from the start of the record }
  2096. shadowindex:=tfieldvarsym(variantstarts[varcount]).llvmfieldnr;
  2097. if (varcount<pred(variantstarts.count)) then
  2098. inc(varcount);
  2099. end;
  2100. { find the last shadowfield whose offset <= the current field's offset }
  2101. while (tllvmshadowsymtableentry(symdeflist[shadowindex]).fieldoffset<tfieldvarsym(equivst.symlist[i]).fieldoffset) and
  2102. (shadowindex<symdeflist.count-1) and
  2103. (tllvmshadowsymtableentry(symdeflist[shadowindex+1]).fieldoffset<=tfieldvarsym(equivst.symlist[i]).fieldoffset) do
  2104. inc(shadowindex);
  2105. { set the field number and potential offset from that field (in case }
  2106. { of overlapping variants) }
  2107. tfieldvarsym(equivst.symlist[i]).llvmfieldnr:=shadowindex;
  2108. tfieldvarsym(equivst.symlist[i]).offsetfromllvmfield:=
  2109. tfieldvarsym(equivst.symlist[i]).fieldoffset-tllvmshadowsymtableentry(symdeflist[shadowindex]).fieldoffset;
  2110. inc(i);
  2111. end;
  2112. end;
  2113. procedure tllvmshadowsymtable.generate;
  2114. var
  2115. variantstarts: tfplist;
  2116. begin
  2117. variantstarts:=tfplist.create;
  2118. { first go through the entire record and }
  2119. { store the fieldvarsyms of the variants }
  2120. { with the highest alignment }
  2121. findvariantstarts(variantstarts);
  2122. { now go through the regular fields and the selected variants, }
  2123. { and add them to the llvm shadow record symtable }
  2124. buildtable(variantstarts);
  2125. { finally map all original fields to the llvm definition }
  2126. buildmapping(variantstarts);
  2127. variantstarts.free;
  2128. end;
  2129. {$endif llvm}
  2130. {****************************************************************************
  2131. TAbstractSubSymtable
  2132. ****************************************************************************}
  2133. procedure tabstractsubsymtable.ppuwrite(ppufile:tcompilerppufile);
  2134. var
  2135. oldtyp : byte;
  2136. begin
  2137. oldtyp:=ppufile.entrytyp;
  2138. ppufile.entrytyp:=subentryid;
  2139. inherited ppuwrite(ppufile);
  2140. ppufile.entrytyp:=oldtyp;
  2141. end;
  2142. {****************************************************************************
  2143. TAbstractLocalSymtable
  2144. ****************************************************************************}
  2145. function tabstractlocalsymtable.count_locals:longint;
  2146. var
  2147. i : longint;
  2148. sym : tsym;
  2149. begin
  2150. result:=0;
  2151. for i:=0 to SymList.Count-1 do
  2152. begin
  2153. sym:=tsym(SymList[i]);
  2154. { Count only varsyms, but ignore the funcretsym }
  2155. if (tsym(sym).typ in [localvarsym,paravarsym]) and
  2156. (tsym(sym)<>current_procinfo.procdef.funcretsym) and
  2157. (not(vo_is_parentfp in tabstractvarsym(sym).varoptions) or
  2158. (tstoredsym(sym).refs>0)) then
  2159. inc(result);
  2160. end;
  2161. end;
  2162. function tabstractlocalsymtable.iscurrentunit: boolean;
  2163. begin
  2164. Result:=
  2165. assigned(defowner) and
  2166. defowner.owner.iscurrentunit;
  2167. end;
  2168. {****************************************************************************
  2169. TLocalSymtable
  2170. ****************************************************************************}
  2171. constructor tlocalsymtable.create(adefowner:tdef;level:byte);
  2172. begin
  2173. inherited create('');
  2174. defowner:=adefowner;
  2175. symtabletype:=localsymtable;
  2176. symtablelevel:=level;
  2177. end;
  2178. function tlocalsymtable.checkduplicate(var hashedid:THashedIDString;sym:TSymEntry):boolean;
  2179. var
  2180. hsym : tsym;
  2181. begin
  2182. if not assigned(defowner) or
  2183. (defowner.typ<>procdef) then
  2184. internalerror(200602042);
  2185. result:=false;
  2186. hsym:=tsym(FindWithHash(hashedid));
  2187. if assigned(hsym) then
  2188. begin
  2189. { a local and the function can have the same
  2190. name in TP and Delphi, but RESULT not }
  2191. if (m_duplicate_names in current_settings.modeswitches) and
  2192. (hsym.typ in [absolutevarsym,localvarsym]) and
  2193. (vo_is_funcret in tabstractvarsym(hsym).varoptions) and
  2194. not((m_result in current_settings.modeswitches) and
  2195. (vo_is_result in tabstractvarsym(hsym).varoptions)) then
  2196. HideSym(hsym)
  2197. else
  2198. DuplicateSym(hashedid,sym,hsym,false);
  2199. result:=true;
  2200. exit;
  2201. end;
  2202. { check also parasymtable, this needs to be done here because
  2203. of the special situation with the funcret sym that needs to be
  2204. hidden for tp and delphi modes }
  2205. hsym:=tsym(tabstractprocdef(defowner).parast.FindWithHash(hashedid));
  2206. if assigned(hsym) then
  2207. begin
  2208. { a local and the function can have the same
  2209. name in TP and Delphi, but RESULT not }
  2210. if (m_duplicate_names in current_settings.modeswitches) and
  2211. (sym.typ in [absolutevarsym,localvarsym]) and
  2212. (vo_is_funcret in tabstractvarsym(sym).varoptions) and
  2213. not((m_result in current_settings.modeswitches) and
  2214. (vo_is_result in tabstractvarsym(sym).varoptions)) then
  2215. Hidesym(sym)
  2216. else
  2217. DuplicateSym(hashedid,sym,hsym,false);
  2218. result:=true;
  2219. exit;
  2220. end;
  2221. { check ObjectSymtable, skip this for funcret sym because
  2222. that will always be positive because it has the same name
  2223. as the procsym }
  2224. if not is_funcret_sym(sym) and
  2225. (defowner.typ=procdef) and
  2226. assigned(tprocdef(defowner).struct) and
  2227. (tprocdef(defowner).owner.defowner=tprocdef(defowner).struct) and
  2228. (
  2229. not(m_delphi in current_settings.modeswitches) or
  2230. is_object(tprocdef(defowner).struct)
  2231. ) then
  2232. result:=tprocdef(defowner).struct.symtable.checkduplicate(hashedid,sym);
  2233. end;
  2234. {****************************************************************************
  2235. TParaSymtable
  2236. ****************************************************************************}
  2237. constructor tparasymtable.create(adefowner:tdef;level:byte);
  2238. begin
  2239. inherited create('');
  2240. readonly:=false;
  2241. defowner:=adefowner;
  2242. symtabletype:=parasymtable;
  2243. symtablelevel:=level;
  2244. end;
  2245. function tparasymtable.checkduplicate(var hashedid:THashedIDString;sym:TSymEntry):boolean;
  2246. begin
  2247. result:=inherited checkduplicate(hashedid,sym);
  2248. if result then
  2249. exit;
  2250. if not(m_duplicate_names in current_settings.modeswitches) and
  2251. assigned(defowner) and (defowner.typ=procdef) and
  2252. assigned(tprocdef(defowner).struct) and
  2253. assigned(tprocdef(defowner).owner) and
  2254. (tprocdef(defowner).owner.defowner=tprocdef(defowner).struct) and
  2255. (
  2256. not(m_delphi in current_settings.modeswitches) or
  2257. is_object(tprocdef(defowner).struct)
  2258. ) then
  2259. result:=tprocdef(defowner).struct.symtable.checkduplicate(hashedid,sym);
  2260. end;
  2261. procedure tparasymtable.insertdef(def: TDefEntry);
  2262. begin
  2263. if readonly then
  2264. defowner.owner.insertdef(def)
  2265. else
  2266. inherited insertdef(def);
  2267. end;
  2268. {****************************************************************************
  2269. TAbstractUniTSymtable
  2270. ****************************************************************************}
  2271. constructor tabstractuniTSymtable.create(const n : string;id:word);
  2272. begin
  2273. inherited create(n);
  2274. moduleid:=id;
  2275. end;
  2276. function tabstractuniTSymtable.checkduplicate(var hashedid:THashedIDString;sym:TSymEntry):boolean;
  2277. var
  2278. hsym : tsym;
  2279. begin
  2280. result:=false;
  2281. hsym:=tsym(FindWithHash(hashedid));
  2282. if assigned(hsym) then
  2283. begin
  2284. if (sym is tstoredsym) and handle_generic_dummysym(hsym,tstoredsym(sym).symoptions) then
  2285. exit;
  2286. if hsym.typ=symconst.namespacesym then
  2287. begin
  2288. case sym.typ of
  2289. symconst.namespacesym:;
  2290. symconst.unitsym:
  2291. begin
  2292. HideSym(sym); { if we add a unit and there is a namespace with the same name then hide the unit name and not the namespace }
  2293. tnamespacesym(hsym).unitsym:=tsym(sym);
  2294. end
  2295. else
  2296. HideSym(hsym);
  2297. end;
  2298. end
  2299. else
  2300. { In delphi (contrary to TP) you can have a symbol with the same name as the
  2301. unit, the unit can then not be accessed anymore using
  2302. <unit>.<id>, so we can hide the symbol.
  2303. Do the same if we add a namespace and there is a unit with the same name }
  2304. if (hsym.typ=symconst.unitsym) and
  2305. ((m_delphi in current_settings.modeswitches) or (sym.typ=symconst.namespacesym)) then
  2306. begin
  2307. HideSym(hsym);
  2308. if sym.typ=symconst.namespacesym then
  2309. tnamespacesym(sym).unitsym:=tsym(hsym);
  2310. end
  2311. { iso mode program parameters: staticvarsyms might have the same name as a program parameters,
  2312. in this case, copy the isoindex and make the original symbol invisible }
  2313. else if (m_isolike_program_para in current_settings.modeswitches) and (hsym.typ=programparasym) and (sym.typ=staticvarsym)
  2314. and (tprogramparasym(hsym).isoindex<>0) then
  2315. begin
  2316. HideSym(hsym);
  2317. tstaticvarsym(sym).isoindex:=tprogramparasym(hsym).isoindex;
  2318. end
  2319. else
  2320. DuplicateSym(hashedid,sym,hsym,false);
  2321. result:=true;
  2322. exit;
  2323. end;
  2324. end;
  2325. function tabstractuniTSymtable.findnamespace(const n:string):TSymEntry;
  2326. begin
  2327. result:=find(n);
  2328. if assigned(result)and(result.typ<>namespacesym)then
  2329. result:=nil;
  2330. end;
  2331. function tabstractuniTSymtable.iscurrentunit:boolean;
  2332. begin
  2333. result:=assigned(current_module) and
  2334. (
  2335. (current_module.globalsymtable=self) or
  2336. (current_module.localsymtable=self)
  2337. );
  2338. end;
  2339. function tabstractuniTSymtable.needs_init_final: boolean;
  2340. begin
  2341. if not init_final_check_done then
  2342. begin
  2343. result:=inherited needs_init_final;
  2344. if not result then
  2345. begin
  2346. result:=has_class_condestructors;
  2347. if result then
  2348. include(tableoptions,sto_needs_init_final);
  2349. end;
  2350. end;
  2351. result:=sto_needs_init_final in tableoptions;
  2352. end;
  2353. procedure tabstractuniTSymtable.insertunit(sym:TSymEntry);
  2354. var
  2355. p:integer;
  2356. n,ns:string;
  2357. oldsym:TSymEntry;
  2358. begin
  2359. insert(sym);
  2360. n:=sym.realname;
  2361. p:=pos('.',n);
  2362. ns:='';
  2363. while p>0 do
  2364. begin
  2365. if ns='' then
  2366. ns:=copy(n,1,p-1)
  2367. else
  2368. ns:=ns+'.'+copy(n,1,p-1);
  2369. system.delete(n,1,p);
  2370. oldsym:=findnamespace(upper(ns));
  2371. if not assigned(oldsym) then
  2372. insert(cnamespacesym.create(ns));
  2373. p:=pos('.',n);
  2374. end;
  2375. end;
  2376. procedure CheckForClassConDestructors(p:TObject;arg:pointer);
  2377. var
  2378. result: pboolean absolute arg;
  2379. begin
  2380. if result^ then
  2381. exit;
  2382. if (tdef(p).typ in [objectdef,recorddef]) and
  2383. not (df_generic in tdef(p).defoptions) then
  2384. begin
  2385. { first check the class... }
  2386. if ([oo_has_class_constructor,oo_has_class_destructor] * tabstractrecorddef(p).objectoptions <> []) then
  2387. result^:=true;;
  2388. { ... and then also check all subclasses }
  2389. if not result^ then
  2390. tabstractrecorddef(p).symtable.deflist.foreachcall(@CheckForClassConDestructors,arg);
  2391. end;
  2392. end;
  2393. function tabstractuniTSymtable.has_class_condestructors: boolean;
  2394. begin
  2395. result:=false;
  2396. deflist.foreachcall(@CheckForClassConDestructors,@result);
  2397. end;
  2398. {****************************************************************************
  2399. TStaticSymtable
  2400. ****************************************************************************}
  2401. constructor tstaticsymtable.create(const n : string;id:word);
  2402. begin
  2403. inherited create(n,id);
  2404. symtabletype:=staticsymtable;
  2405. symtablelevel:=main_program_level;
  2406. currentvisibility:=vis_private;
  2407. end;
  2408. procedure tstaticsymtable.ppuload(ppufile:tcompilerppufile);
  2409. begin
  2410. inherited ppuload(ppufile);
  2411. { now we can deref the syms and defs }
  2412. deref(false);
  2413. end;
  2414. procedure tstaticsymtable.ppuwrite(ppufile:tcompilerppufile);
  2415. begin
  2416. inherited ppuwrite(ppufile);
  2417. end;
  2418. function tstaticsymtable.checkduplicate(var hashedid:THashedIDString;sym:TSymEntry):boolean;
  2419. begin
  2420. result:=inherited checkduplicate(hashedid,sym);
  2421. if not result and
  2422. (current_module.localsymtable=self) and
  2423. assigned(current_module.globalsymtable) then
  2424. result:=tglobalsymtable(current_module.globalsymtable).checkduplicate(hashedid,sym);
  2425. end;
  2426. function tstaticsymtable.findnamespace(const n:string):TSymEntry;
  2427. begin
  2428. result:=inherited findnamespace(n);
  2429. if not assigned(result) and
  2430. (current_module.localsymtable=self) and
  2431. assigned(current_module.globalsymtable) then
  2432. result:=tglobalsymtable(current_module.globalsymtable).findnamespace(n);
  2433. end;
  2434. {****************************************************************************
  2435. TGlobalSymtable
  2436. ****************************************************************************}
  2437. constructor tglobalsymtable.create(const n : string;id:word);
  2438. begin
  2439. inherited create(n,id);
  2440. symtabletype:=globalsymtable;
  2441. symtablelevel:=main_program_level;
  2442. end;
  2443. procedure tglobalsymtable.ppuload(ppufile:tcompilerppufile);
  2444. begin
  2445. inherited ppuload(ppufile);
  2446. { now we can deref the syms and defs }
  2447. deref(false);
  2448. end;
  2449. procedure tglobalsymtable.ppuwrite(ppufile:tcompilerppufile);
  2450. begin
  2451. { write the symtable entries }
  2452. inherited ppuwrite(ppufile);
  2453. end;
  2454. {*****************************************************************************
  2455. tspecializesymtable
  2456. *****************************************************************************}
  2457. constructor tspecializesymtable.create(const n : string;id:word);
  2458. begin
  2459. inherited create(n,id);
  2460. { the specialize symtable does not own the syms and defs as they are all
  2461. moved to a different symtable before the symtable is destroyed; this
  2462. avoids calls to "extract" }
  2463. symlist.ownsobjects:=false;
  2464. deflist.ownsobjects:=false;
  2465. end;
  2466. function tspecializesymtable.iscurrentunit: boolean;
  2467. begin
  2468. Result:=true;
  2469. end;
  2470. {****************************************************************************
  2471. TWITHSYMTABLE
  2472. ****************************************************************************}
  2473. constructor twithsymtable.create(aowner:tdef;ASymList:TFPHashObjectList;refnode:tobject{tnode});
  2474. begin
  2475. inherited create('');
  2476. symtabletype:=withsymtable;
  2477. withrefnode:=refnode;
  2478. { Replace SymList with the passed symlist }
  2479. SymList.free;
  2480. SymList:=ASymList;
  2481. defowner:=aowner;
  2482. end;
  2483. destructor twithsymtable.destroy;
  2484. begin
  2485. if refcount>1 then
  2486. exit;
  2487. withrefnode.free;
  2488. { Disable SymList because we don't Own it }
  2489. SymList:=nil;
  2490. inherited destroy;
  2491. end;
  2492. procedure twithsymtable.clear;
  2493. begin
  2494. { remove no entry from a withsymtable as it is only a pointer to the
  2495. recorddef or objectdef symtable }
  2496. end;
  2497. procedure twithsymtable.insertdef(def:TDefEntry);
  2498. begin
  2499. { Definitions can't be registered in the withsymtable
  2500. because the withsymtable is removed after the with block.
  2501. We can't easily solve it here because the next symtable in the
  2502. stack is not known. }
  2503. internalerror(200602046);
  2504. end;
  2505. {****************************************************************************
  2506. TSTT_ExceptionSymtable
  2507. ****************************************************************************}
  2508. constructor tstt_excepTSymtable.create;
  2509. begin
  2510. inherited create('');
  2511. symtabletype:=stt_excepTSymtable;
  2512. end;
  2513. {****************************************************************************
  2514. TMacroSymtable
  2515. ****************************************************************************}
  2516. constructor tmacrosymtable.create(exported: boolean);
  2517. begin
  2518. inherited create('');
  2519. if exported then
  2520. symtabletype:=exportedmacrosymtable
  2521. else
  2522. symtabletype:=localmacrosymtable;
  2523. symtablelevel:=main_program_level;
  2524. end;
  2525. {****************************************************************************
  2526. TEnumSymtable
  2527. ****************************************************************************}
  2528. procedure tenumsymtable.insert(sym: TSymEntry; checkdup: boolean);
  2529. var
  2530. value: longint;
  2531. def: tenumdef;
  2532. begin
  2533. // defowner = nil only when we are loading from ppu
  2534. if defowner<>nil then
  2535. begin
  2536. { First entry? Then we need to set the minval }
  2537. value:=tenumsym(sym).value;
  2538. def:=tenumdef(defowner);
  2539. if SymList.count=0 then
  2540. begin
  2541. if value>0 then
  2542. def.has_jumps:=true;
  2543. def.setmin(value);
  2544. def.setmax(value);
  2545. end
  2546. else
  2547. begin
  2548. { check for jumps }
  2549. if value>def.max+1 then
  2550. def.has_jumps:=true;
  2551. { update low and high }
  2552. if def.min>value then
  2553. def.setmin(value);
  2554. if def.max<value then
  2555. def.setmax(value);
  2556. end;
  2557. end;
  2558. inherited insert(sym, checkdup);
  2559. end;
  2560. constructor tenumsymtable.create(adefowner: tdef);
  2561. begin
  2562. inherited Create('');
  2563. symtabletype:=enumsymtable;
  2564. defowner:=adefowner;
  2565. end;
  2566. {****************************************************************************
  2567. TArraySymtable
  2568. ****************************************************************************}
  2569. procedure tarraysymtable.insertdef(def: TDefEntry);
  2570. begin
  2571. { Enums must also be available outside the record scope,
  2572. insert in the owner of this symtable }
  2573. if def.typ=enumdef then
  2574. defowner.owner.insertdef(def)
  2575. else
  2576. inherited insertdef(def);
  2577. end;
  2578. constructor tarraysymtable.create(adefowner: tdef);
  2579. begin
  2580. inherited Create('');
  2581. symtabletype:=arraysymtable;
  2582. defowner:=adefowner;
  2583. end;
  2584. {*****************************************************************************
  2585. Helper Routines
  2586. *****************************************************************************}
  2587. function FullTypeName(def,otherdef:tdef):string;
  2588. var
  2589. s1,s2 : string;
  2590. begin
  2591. if def.typ in [objectdef,recorddef] then
  2592. s1:=tabstractrecorddef(def).RttiName
  2593. else
  2594. s1:=def.typename;
  2595. { When the names are the same try to include the unit name }
  2596. if assigned(otherdef) and
  2597. (def.owner.symtabletype in [globalsymtable,staticsymtable]) then
  2598. begin
  2599. s2:=otherdef.typename;
  2600. if upper(s1)=upper(s2) then
  2601. s1:=def.owner.realname^+'.'+s1;
  2602. end;
  2603. FullTypeName:=s1;
  2604. end;
  2605. function generate_nested_name(symtable:tsymtable;delimiter:string):string;
  2606. begin
  2607. result:='';
  2608. while assigned(symtable) and (symtable.symtabletype in [ObjectSymtable,recordsymtable]) do
  2609. begin
  2610. if (result='') then
  2611. if symtable.name<>nil then
  2612. result:=symtable.name^
  2613. else
  2614. else
  2615. if symtable.name<>nil then
  2616. result:=symtable.name^+delimiter+result
  2617. else
  2618. result:=delimiter+result;
  2619. symtable:=symtable.defowner.owner;
  2620. end;
  2621. end;
  2622. function generate_objectpascal_helper_key(def:tdef):string;
  2623. begin
  2624. if not assigned(def) then
  2625. internalerror(2013020501);
  2626. if def.typ in [recorddef,objectdef] then
  2627. result:=make_mangledname('',tabstractrecorddef(def).symtable,'')
  2628. else
  2629. result:=make_mangledname('',def.owner,def.typesym.name);
  2630. end;
  2631. procedure incompatibletypes(def1,def2:tdef);
  2632. begin
  2633. { When there is an errordef there is already an error message show }
  2634. if (def2.typ=errordef) or
  2635. (def1.typ=errordef) then
  2636. exit;
  2637. CGMessage2(type_e_incompatible_types,FullTypeName(def1,def2),FullTypeName(def2,def1));
  2638. end;
  2639. procedure hidesym(sym:TSymEntry);
  2640. begin
  2641. sym.realname:='$hidden'+sym.realname;
  2642. tsym(sym).visibility:=vis_hidden;
  2643. end;
  2644. procedure duplicatesym(var hashedid: THashedIDString; dupsym, origsym: TSymEntry; warn: boolean);
  2645. var
  2646. st : TSymtable;
  2647. filename : TIDString;
  2648. begin
  2649. if not warn then
  2650. Message1(sym_e_duplicate_id,tsym(origsym).realname)
  2651. else
  2652. Message1(sym_w_duplicate_id,tsym(origsym).realname);
  2653. { Write hint where the original symbol was found }
  2654. st:=finduniTSymtable(origsym.owner);
  2655. with tsym(origsym).fileinfo do
  2656. begin
  2657. if assigned(st) and
  2658. (st.symtabletype=globalsymtable) and
  2659. st.iscurrentunit then
  2660. Message2(sym_h_duplicate_id_where,current_module.sourcefiles.get_file_name(fileindex),tostr(line))
  2661. else if assigned(st.name) then
  2662. begin
  2663. filename:=find_module_from_symtable(st).sourcefiles.get_file_name(fileindex);
  2664. if filename<>'' then
  2665. Message2(sym_h_duplicate_id_where,'unit '+st.name^+': '+filename,tostr(line))
  2666. else
  2667. Message2(sym_h_duplicate_id_where,'unit '+st.name^,tostr(line))
  2668. end;
  2669. end;
  2670. { Rename duplicate sym to an unreachable name, but it can be
  2671. inserted in the symtable without errors }
  2672. inc(dupnr);
  2673. hashedid.id:='dup'+tostr(dupnr)+hashedid.id;
  2674. if assigned(dupsym) then
  2675. include(tsym(dupsym).symoptions,sp_implicitrename);
  2676. end;
  2677. function handle_generic_dummysym(sym:TSymEntry;var symoptions:tsymoptions):boolean;
  2678. begin
  2679. result:=false;
  2680. if not assigned(sym) or not (sym is tstoredsym) then
  2681. Internalerror(2011081101);
  2682. { For generics a dummy symbol without the parameter count is created
  2683. if such a symbol not yet exists so that different parts of the
  2684. parser can find that symbol. If that symbol is still a
  2685. undefineddef we replace the generic dummy symbol's
  2686. name with a "dup" name and use the new symbol as the generic dummy
  2687. symbol }
  2688. if (sp_generic_dummy in tstoredsym(sym).symoptions) and
  2689. (sym.typ=typesym) and (ttypesym(sym).typedef.typ=undefineddef) and
  2690. (m_delphi in current_settings.modeswitches) then
  2691. begin
  2692. inc(dupnr);
  2693. sym.Owner.SymList.Rename(upper(sym.realname),'dup_'+tostr(dupnr)+sym.realname);
  2694. include(tsym(sym).symoptions,sp_implicitrename);
  2695. { we need to find the new symbol now if checking for a dummy }
  2696. include(symoptions,sp_generic_dummy);
  2697. result:=true;
  2698. end;
  2699. end;
  2700. procedure write_system_parameter_lists(const name:string);
  2701. var
  2702. srsym:tprocsym;
  2703. begin
  2704. srsym:=tprocsym(systemunit.find(name));
  2705. if not assigned(srsym) or not (srsym.typ=procsym) then
  2706. internalerror(2016060302);
  2707. srsym.write_parameter_lists(nil);
  2708. end;
  2709. {*****************************************************************************
  2710. Search
  2711. *****************************************************************************}
  2712. procedure addsymref(sym:tsym);
  2713. var
  2714. owner: tsymtable;
  2715. begin
  2716. { for symbols used in preprocessor expressions, we don't want to
  2717. increase references count (for smaller final binaries) }
  2718. if not assigned(current_scanner) then
  2719. internalerror(2017050601);
  2720. if current_scanner.in_preproc_comp_expr then
  2721. exit;
  2722. { symbol uses count }
  2723. sym.IncRefCount;
  2724. owner:=sym.owner;
  2725. while owner.symtabletype in [objectsymtable,recordsymtable,enumsymtable] do
  2726. owner:=tdef(owner.defowner).owner;
  2727. if assigned(current_module) and
  2728. (owner.symtabletype=globalsymtable) then
  2729. begin
  2730. if tglobalsymtable(owner).moduleid>=current_module.unitmapsize then
  2731. internalerror(200501152);
  2732. { unit uses count }
  2733. inc(current_module.unitmap[tglobalsymtable(owner).moduleid].refs);
  2734. { Note: don't check the symtable directly as owner might be
  2735. a specialize symtable which is a globalsymtable as well }
  2736. if (
  2737. assigned(current_module.globalsymtable) and
  2738. (current_module.globalsymtable.moduleid<>owner.moduleid)
  2739. ) or (
  2740. assigned(current_module.localsymtable) and
  2741. (current_module.localsymtable.moduleid<>owner.moduleid)
  2742. ) then
  2743. { symbol is imported from another unit }
  2744. current_module.addimportedsym(sym);
  2745. end;
  2746. end;
  2747. function is_owned_by(nesteddef,ownerdef:tdef):boolean;
  2748. begin
  2749. result:=nesteddef=ownerdef;
  2750. if not result and
  2751. { types declared locally in a record method are not defined in the
  2752. record itself }
  2753. not(nesteddef.owner.symtabletype in [localsymtable,parasymtable]) and
  2754. assigned(nesteddef.owner.defowner) then
  2755. result:=is_owned_by(tdef(nesteddef.owner.defowner),ownerdef);
  2756. end;
  2757. function sym_is_owned_by(childsym:tsym;symtable:tsymtable):boolean;
  2758. begin
  2759. result:=assigned(childsym) and (childsym.owner=symtable);
  2760. if not result and assigned(childsym) and
  2761. (childsym.owner.symtabletype in [objectsymtable,recordsymtable]) then
  2762. result:=sym_is_owned_by(tabstractrecorddef(childsym.owner.defowner).typesym,symtable);
  2763. end;
  2764. function defs_belong_to_same_generic(def1, def2: tdef): boolean;
  2765. begin
  2766. result:=false;
  2767. if not assigned(def1) or not assigned(def2) then
  2768. exit;
  2769. { for both defs walk to the topmost generic }
  2770. while assigned(def1.owner.defowner) and (df_generic in tstoreddef(def1.owner.defowner).defoptions) do
  2771. def1:=tdef(def1.owner.defowner);
  2772. while assigned(def2.owner.defowner) and (df_generic in tstoreddef(def2.owner.defowner).defoptions) do
  2773. def2:=tdef(def2.owner.defowner);
  2774. result:=def1=def2;
  2775. end;
  2776. function get_generic_in_hierarchy_by_name(srsym: tsym; def: tdef): tdef;
  2777. var
  2778. uname : string;
  2779. begin
  2780. { TODO : check regarding arrays and records declared as their type }
  2781. if not (def.typ in [recorddef,objectdef]) then
  2782. internalerror(2012051501);
  2783. uname:=upper(srsym.realname);
  2784. repeat
  2785. if uname=copy(tabstractrecorddef(def).objname^,1,pos('$',tabstractrecorddef(def).objname^)-1) then
  2786. begin
  2787. result:=def;
  2788. exit;
  2789. end;
  2790. def:=tdef(def.owner.defowner);
  2791. until not assigned(def) or not (def.typ in [recorddef,objectdef]);
  2792. result:=nil;
  2793. end;
  2794. function return_specialization_of_generic(nesteddef,genericdef:tdef; out resultdef:tdef):boolean;
  2795. begin
  2796. { TODO : check regarding arrays and records declared as their type }
  2797. if not (nesteddef.typ in [recorddef,objectdef]) then
  2798. internalerror(2012051601);
  2799. repeat
  2800. if tstoreddef(nesteddef).genericdef=genericdef then
  2801. begin
  2802. resultdef:=nesteddef;
  2803. result:=true;
  2804. exit;
  2805. end;
  2806. nesteddef:=tdef(nesteddef.owner.defowner);
  2807. until not assigned(nesteddef) or not (nesteddef.typ in [recorddef,objectdef]);
  2808. resultdef:=nil;
  2809. result:=false;
  2810. end;
  2811. { symst: symboltable that contains the symbol (-> symowner def: record/objectdef in which the symbol is defined)
  2812. symvisibility: visibility of the symbol
  2813. contextobjdef: via which def the symbol is accessed, e.g.:
  2814. fieldname:=1 -> contextobjdef = current_structdef
  2815. objfield.fieldname:=1 -> contextobjdef = def of objfield
  2816. }
  2817. function is_visible_for_object(symst:tsymtable;symvisibility:tvisibility;contextobjdef:tabstractrecorddef):boolean;
  2818. var
  2819. symownerdef : tabstractrecorddef;
  2820. nonlocalst : tsymtable;
  2821. isspezproc : boolean;
  2822. begin
  2823. result:=false;
  2824. { Get objdectdef owner of the symtable for the is_related checks }
  2825. if not assigned(symst) or
  2826. not (symst.symtabletype in [objectsymtable,recordsymtable]) then
  2827. internalerror(200810285);
  2828. symownerdef:=tabstractrecorddef(symst.defowner);
  2829. { specializations might belong to a localsymtable or parasymtable }
  2830. nonlocalst:=symownerdef.owner;
  2831. if tstoreddef(symst.defowner).is_specialization then
  2832. while nonlocalst.symtabletype in [localsymtable,parasymtable] do
  2833. nonlocalst:=nonlocalst.defowner.owner;
  2834. isspezproc:=false;
  2835. if assigned(current_procinfo) then
  2836. begin
  2837. if current_procinfo.procdef.is_specialization and
  2838. assigned(current_procinfo.procdef.struct) then
  2839. isspezproc:=true;
  2840. end;
  2841. case symvisibility of
  2842. vis_private :
  2843. begin
  2844. { private symbols are allowed when we are in the same
  2845. module as they are defined }
  2846. result:=(
  2847. (nonlocalst.symtabletype in [globalsymtable,staticsymtable]) and
  2848. (nonlocalst.iscurrentunit)
  2849. ) or
  2850. ( // the case of specialize inside the generic declaration and nested types
  2851. (nonlocalst.symtabletype in [objectsymtable,recordsymtable]) and
  2852. (
  2853. assigned(current_structdef) and
  2854. (
  2855. (current_structdef=symownerdef) or
  2856. (current_structdef.owner.iscurrentunit)
  2857. )
  2858. ) or
  2859. (
  2860. not assigned(current_structdef) and
  2861. (symownerdef.owner.iscurrentunit)
  2862. ) or
  2863. { access from a generic method that belongs to the class
  2864. but that is specialized elsewere }
  2865. (
  2866. isspezproc and
  2867. (current_procinfo.procdef.struct=current_structdef)
  2868. ) or
  2869. { specializations may access private symbols that their
  2870. generics are allowed to access }
  2871. (
  2872. assigned(current_structdef) and
  2873. (df_specialization in current_structdef.defoptions) and
  2874. (symst.moduleid=current_structdef.genericdef.owner.moduleid)
  2875. )
  2876. );
  2877. end;
  2878. vis_strictprivate :
  2879. begin
  2880. result:=assigned(current_structdef) and
  2881. is_owned_by(current_structdef,symownerdef);
  2882. end;
  2883. vis_strictprotected :
  2884. begin
  2885. result:=(
  2886. { access from nested class }
  2887. assigned(current_structdef) and
  2888. is_owned_by(current_structdef,symownerdef)
  2889. ) or
  2890. (
  2891. { access from child class }
  2892. assigned(contextobjdef) and
  2893. assigned(current_structdef) and
  2894. def_is_related(contextobjdef,symownerdef) and
  2895. def_is_related(current_structdef,contextobjdef)
  2896. ) or
  2897. (
  2898. { helpers can access strict protected symbols }
  2899. is_objectpascal_helper(contextobjdef) and
  2900. def_is_related(tobjectdef(contextobjdef).extendeddef,symownerdef)
  2901. ) or
  2902. (
  2903. { same as above, but from context of call node inside
  2904. helper method }
  2905. is_objectpascal_helper(current_structdef) and
  2906. def_is_related(tobjectdef(current_structdef).extendeddef,symownerdef)
  2907. );
  2908. end;
  2909. vis_protected :
  2910. begin
  2911. { protected symbols are visible in the module that defines them and
  2912. also visible to related objects. The related object must be defined
  2913. in the current module }
  2914. result:=(
  2915. (
  2916. (nonlocalst.symtabletype in [globalsymtable,staticsymtable]) and
  2917. (nonlocalst.iscurrentunit)
  2918. ) or
  2919. (
  2920. assigned(contextobjdef) and
  2921. (contextobjdef.owner.symtabletype in [globalsymtable,staticsymtable,ObjectSymtable,recordsymtable]) and
  2922. (contextobjdef.owner.iscurrentunit) and
  2923. def_is_related(contextobjdef,symownerdef)
  2924. ) or
  2925. ( // the case of specialize inside the generic declaration and nested types
  2926. (nonlocalst.symtabletype in [objectsymtable,recordsymtable]) and
  2927. (
  2928. assigned(current_structdef) and
  2929. (
  2930. (current_structdef=symownerdef) or
  2931. (current_structdef.owner.iscurrentunit)
  2932. )
  2933. ) or
  2934. (
  2935. not assigned(current_structdef) and
  2936. (symownerdef.owner.iscurrentunit)
  2937. ) or
  2938. (
  2939. { helpers can access protected symbols }
  2940. is_objectpascal_helper(contextobjdef) and
  2941. def_is_related(tobjectdef(contextobjdef).extendeddef,symownerdef)
  2942. )
  2943. ) or
  2944. { access from a generic method that belongs to the class
  2945. but that is specialized elsewere }
  2946. (
  2947. isspezproc and
  2948. (current_procinfo.procdef.struct=current_structdef)
  2949. ) or
  2950. { specializations may access private symbols that their
  2951. generics are allowed to access }
  2952. (
  2953. assigned(current_structdef) and
  2954. (df_specialization in current_structdef.defoptions) and
  2955. (symst.moduleid=current_structdef.genericdef.owner.moduleid)
  2956. )
  2957. );
  2958. end;
  2959. vis_public,
  2960. vis_published :
  2961. result:=true;
  2962. else
  2963. internalerror(2019050702);
  2964. end;
  2965. end;
  2966. function is_visible_for_object(pd:tprocdef;contextobjdef:tabstractrecorddef):boolean;
  2967. begin
  2968. result:=is_visible_for_object(pd.owner,pd.visibility,contextobjdef);
  2969. end;
  2970. function is_visible_for_object(sym:tsym;contextobjdef:tabstractrecorddef):boolean;
  2971. var
  2972. i : longint;
  2973. pd : tprocdef;
  2974. begin
  2975. if sym.typ=procsym then
  2976. begin
  2977. { A procsym is visible, when there is at least one of the procdefs visible }
  2978. result:=false;
  2979. for i:=0 to tprocsym(sym).ProcdefList.Count-1 do
  2980. begin
  2981. pd:=tprocdef(tprocsym(sym).ProcdefList[i]);
  2982. if (pd.owner=sym.owner) and
  2983. is_visible_for_object(pd,contextobjdef) then
  2984. begin
  2985. result:=true;
  2986. exit;
  2987. end;
  2988. end;
  2989. end
  2990. else
  2991. result:=is_visible_for_object(sym.owner,sym.visibility,contextobjdef);
  2992. end;
  2993. function searchsym(const s : TIDString;out srsym:tsym;out srsymtable:TSymtable):boolean;
  2994. begin
  2995. result:=searchsym_maybe_with_symoption(s,srsym,srsymtable,[],sp_none);
  2996. end;
  2997. function searchsym_with_flags(const s : TIDString;out srsym:tsym;out srsymtable:TSymtable;flags:tsymbol_search_flags):boolean;
  2998. begin
  2999. result:=searchsym_maybe_with_symoption(s,srsym,srsymtable,flags,sp_none);
  3000. end;
  3001. function searchsym_maybe_with_symoption(const s : TIDString;out srsym:tsym;out srsymtable:TSymtable;flags:tsymbol_search_flags;option:tsymoption):boolean;
  3002. var
  3003. hashedid: THashedIDString;
  3004. contextstructdef: tabstractrecorddef;
  3005. stackitem: psymtablestackitem;
  3006. begin
  3007. result:=false;
  3008. hashedid.id:=s;
  3009. stackitem:=symtablestack.stack;
  3010. while assigned(stackitem) do
  3011. begin
  3012. srsymtable:=stackitem^.symtable;
  3013. if (srsymtable.symtabletype=objectsymtable) then
  3014. begin
  3015. { TODO : implement the search for an option in classes as well }
  3016. if ssf_search_option in flags then
  3017. begin
  3018. result:=false;
  3019. exit;
  3020. end;
  3021. if searchsym_in_class(tobjectdef(srsymtable.defowner),tobjectdef(srsymtable.defowner),s,srsym,srsymtable,flags+[ssf_search_helper]) then
  3022. begin
  3023. result:=true;
  3024. exit;
  3025. end;
  3026. end
  3027. else if not((srsymtable.symtabletype=withsymtable) and assigned(srsymtable.defowner) and
  3028. (srsymtable.defowner.typ=undefineddef)) then
  3029. begin
  3030. srsym:=tsym(srsymtable.FindWithHash(hashedid));
  3031. { First check if it is a unit/namespace symbol.
  3032. They are visible only if they are from the current unit or
  3033. unit of generic of currently processed specialization. }
  3034. if assigned(srsym) and
  3035. (
  3036. not(srsym.typ in [unitsym,namespacesym]) or
  3037. srsymtable.iscurrentunit or
  3038. (assigned(current_specializedef)and(current_specializedef.genericdef.owner.moduleid=srsymtable.moduleid)) or
  3039. (
  3040. assigned(current_procinfo) and
  3041. (df_specialization in current_procinfo.procdef.defoptions) and
  3042. (current_procinfo.procdef.genericdef.owner.moduleid=srsymtable.moduleid)
  3043. )
  3044. ) and
  3045. (not (ssf_search_option in flags) or (option in srsym.symoptions))then
  3046. begin
  3047. { use the class from withsymtable only when it is
  3048. defined in this unit }
  3049. if (srsymtable.symtabletype=withsymtable) and
  3050. assigned(srsymtable.defowner) and
  3051. (srsymtable.defowner.typ in [recorddef,objectdef]) and
  3052. (srsymtable.defowner.owner.symtabletype in [globalsymtable,staticsymtable,objectsymtable,recordsymtable]) and
  3053. (srsymtable.defowner.owner.iscurrentunit) then
  3054. contextstructdef:=tabstractrecorddef(srsymtable.defowner)
  3055. else
  3056. contextstructdef:=current_structdef;
  3057. if not(srsym.owner.symtabletype in [objectsymtable,recordsymtable]) or
  3058. is_visible_for_object(srsym,contextstructdef) then
  3059. begin
  3060. { we need to know if a procedure references symbols
  3061. in the static symtable, because then it can't be
  3062. inlined from outside this unit }
  3063. if assigned(current_procinfo) and
  3064. (srsym.owner.symtabletype=staticsymtable) then
  3065. include(current_procinfo.flags,pi_uses_static_symtable);
  3066. if not (ssf_no_addsymref in flags) then
  3067. addsymref(srsym);
  3068. result:=true;
  3069. exit;
  3070. end;
  3071. end;
  3072. end;
  3073. stackitem:=stackitem^.next;
  3074. end;
  3075. srsym:=nil;
  3076. srsymtable:=nil;
  3077. end;
  3078. function searchsym_with_symoption(const s: TIDString;out srsym:tsym;out
  3079. srsymtable:TSymtable;option:tsymoption):boolean;
  3080. begin
  3081. result:=searchsym_maybe_with_symoption(s,srsym,srsymtable,[ssf_search_option],option);
  3082. end;
  3083. function searchsym_type(const s : TIDString;out srsym:tsym;out srsymtable:TSymtable):boolean;
  3084. var
  3085. hashedid : THashedIDString;
  3086. stackitem : psymtablestackitem;
  3087. classh : tobjectdef;
  3088. begin
  3089. result:=false;
  3090. hashedid.id:=s;
  3091. stackitem:=symtablestack.stack;
  3092. while assigned(stackitem) do
  3093. begin
  3094. {
  3095. It is not possible to have type symbols in:
  3096. parameters
  3097. Exception are classes, objects, records, generic definitions and specializations
  3098. that have the parameterized types inserted in the symtable.
  3099. }
  3100. srsymtable:=stackitem^.symtable;
  3101. if (srsymtable.symtabletype=ObjectSymtable) then
  3102. begin
  3103. classh:=tobjectdef(srsymtable.defowner);
  3104. while assigned(classh) do
  3105. begin
  3106. srsymtable:=classh.symtable;
  3107. srsym:=tsym(srsymtable.FindWithHash(hashedid));
  3108. if assigned(srsym) and
  3109. not(srsym.typ in [fieldvarsym,paravarsym,propertysym,procsym,labelsym]) and
  3110. is_visible_for_object(srsym,current_structdef) then
  3111. begin
  3112. addsymref(srsym);
  3113. result:=true;
  3114. exit;
  3115. end;
  3116. classh:=classh.childof;
  3117. end;
  3118. end
  3119. else
  3120. begin
  3121. srsym:=tsym(srsymtable.FindWithHash(hashedid));
  3122. if assigned(srsym) and
  3123. (
  3124. not(srsym.typ in [unitsym,namespacesym]) or
  3125. srsymtable.iscurrentunit or
  3126. (assigned(current_specializedef)and(current_specializedef.genericdef.owner.moduleid=srsymtable.moduleid))
  3127. ) and
  3128. not(srsym.typ in [fieldvarsym,paravarsym,propertysym,procsym,labelsym]) and
  3129. (not (srsym.owner.symtabletype in [objectsymtable,recordsymtable]) or is_visible_for_object(srsym,current_structdef)) then
  3130. begin
  3131. { we need to know if a procedure references symbols
  3132. in the static symtable, because then it can't be
  3133. inlined from outside this unit }
  3134. if assigned(current_procinfo) and
  3135. (srsym.owner.symtabletype=staticsymtable) then
  3136. include(current_procinfo.flags,pi_uses_static_symtable);
  3137. addsymref(srsym);
  3138. result:=true;
  3139. exit;
  3140. end;
  3141. end;
  3142. stackitem:=stackitem^.next;
  3143. end;
  3144. result:=false;
  3145. srsym:=nil;
  3146. srsymtable:=nil;
  3147. end;
  3148. function searchsym_in_module(pm:pointer;const s : TIDString;out srsym:tsym;out srsymtable:TSymtable):boolean;
  3149. var
  3150. pmod : tmodule;
  3151. begin
  3152. pmod:=tmodule(pm);
  3153. result:=false;
  3154. if assigned(pmod.globalsymtable) then
  3155. begin
  3156. srsym:=tsym(pmod.globalsymtable.Find(s));
  3157. if assigned(srsym) then
  3158. begin
  3159. srsymtable:=pmod.globalsymtable;
  3160. addsymref(srsym);
  3161. result:=true;
  3162. exit;
  3163. end;
  3164. end;
  3165. { If the module is the current unit we also need
  3166. to search the local symtable }
  3167. if (pmod=current_module) and
  3168. assigned(pmod.localsymtable) then
  3169. begin
  3170. srsym:=tsym(pmod.localsymtable.Find(s));
  3171. if assigned(srsym) then
  3172. begin
  3173. srsymtable:=pmod.localsymtable;
  3174. addsymref(srsym);
  3175. result:=true;
  3176. exit;
  3177. end;
  3178. end;
  3179. srsym:=nil;
  3180. srsymtable:=nil;
  3181. end;
  3182. function searchsym_in_named_module(const unitname, symname: TIDString; out srsym: tsym; out srsymtable: tsymtable): boolean;
  3183. var
  3184. stackitem : psymtablestackitem;
  3185. begin
  3186. result:=false;
  3187. stackitem:=symtablestack.stack;
  3188. while assigned(stackitem) do
  3189. begin
  3190. srsymtable:=stackitem^.symtable;
  3191. if (srsymtable.symtabletype=globalsymtable) and
  3192. (srsymtable.name^=unitname) then
  3193. begin
  3194. srsym:=tsym(srsymtable.find(symname));
  3195. if not assigned(srsym) then
  3196. break;
  3197. result:=true;
  3198. exit;
  3199. end;
  3200. stackitem:=stackitem^.next;
  3201. end;
  3202. { If the module is the current unit we also need
  3203. to search the local symtable }
  3204. if assigned(current_module.localsymtable) and
  3205. (current_module.localsymtable.name^=unitname) then
  3206. begin
  3207. srsymtable:=current_module.localsymtable;
  3208. srsym:=tsym(srsymtable.find(symname));
  3209. if assigned(srsym) then
  3210. begin
  3211. result:=true;
  3212. exit;
  3213. end;
  3214. end;
  3215. end;
  3216. function maybe_find_real_class_definition(pd: tdef; erroronfailure: boolean): tdef;
  3217. begin
  3218. result:=pd;
  3219. if pd.typ<>objectdef then
  3220. exit;
  3221. result:=find_real_class_definition(tobjectdef(pd),erroronfailure);
  3222. end;
  3223. function find_real_class_definition(pd: tobjectdef; erroronfailure: boolean): tobjectdef;
  3224. var
  3225. hashedid : THashedIDString;
  3226. stackitem : psymtablestackitem;
  3227. srsymtable : tsymtable;
  3228. srsym : tsym;
  3229. formalname,
  3230. foundname : shortstring;
  3231. formalnameptr,
  3232. foundnameptr: pshortstring;
  3233. begin
  3234. { not a formal definition -> return it }
  3235. if not(oo_is_formal in pd.objectoptions) then
  3236. begin
  3237. result:=pd;
  3238. exit;
  3239. end;
  3240. hashedid.id:=pd.typesym.name;
  3241. stackitem:=symtablestack.stack;
  3242. while assigned(stackitem) do
  3243. begin
  3244. srsymtable:=stackitem^.symtable;
  3245. { ObjC classes can't appear in generics or as nested class
  3246. definitions. Java classes can. }
  3247. if not(srsymtable.symtabletype in [recordsymtable,parasymtable]) or
  3248. (is_java_class_or_interface(pd) and
  3249. (srsymtable.symtabletype=ObjectSymtable)) then
  3250. begin
  3251. srsym:=tsym(srsymtable.FindWithHash(hashedid));
  3252. if assigned(srsym) and
  3253. (srsym.typ=typesym) and
  3254. (ttypesym(srsym).typedef.typ=objectdef) and
  3255. (tobjectdef(ttypesym(srsym).typedef).objecttype=pd.objecttype) and
  3256. not(oo_is_formal in tobjectdef(ttypesym(srsym).typedef).objectoptions) then
  3257. begin
  3258. if not(oo_is_forward in tobjectdef(ttypesym(srsym).typedef).objectoptions) then
  3259. begin
  3260. { the external name for the formal and the real
  3261. definition must match }
  3262. if assigned(tobjectdef(ttypesym(srsym).typedef).import_lib) or
  3263. assigned(pd.import_lib) then
  3264. begin
  3265. if assigned(pd.import_lib) then
  3266. formalname:=pd.import_lib^+'.'
  3267. else
  3268. formalname:='';
  3269. formalname:=formalname+pd.objextname^;
  3270. if assigned(tobjectdef(ttypesym(srsym).typedef).import_lib) then
  3271. foundname:=tobjectdef(ttypesym(srsym).typedef).import_lib^+'.'
  3272. else
  3273. foundname:='';
  3274. foundname:=foundname+tobjectdef(ttypesym(srsym).typedef).objextname^;
  3275. formalnameptr:=@formalname;
  3276. foundnameptr:=@foundname;
  3277. end
  3278. else
  3279. begin
  3280. formalnameptr:=pd.objextname;
  3281. foundnameptr:=tobjectdef(ttypesym(srsym).typedef).objextname;
  3282. end;
  3283. if foundnameptr^<>formalnameptr^ then
  3284. begin
  3285. MessagePos2(pd.typesym.fileinfo,sym_e_external_class_name_mismatch1,formalnameptr^,pd.typename);
  3286. MessagePos1(srsym.fileinfo,sym_e_external_class_name_mismatch2,foundnameptr^);
  3287. end;
  3288. end;
  3289. result:=tobjectdef(ttypesym(srsym).typedef);
  3290. if assigned(current_procinfo) and
  3291. (srsym.owner.symtabletype=staticsymtable) then
  3292. include(current_procinfo.flags,pi_uses_static_symtable);
  3293. addsymref(srsym);
  3294. exit;
  3295. end;
  3296. end;
  3297. stackitem:=stackitem^.next;
  3298. end;
  3299. { nothing found: optionally give an error and return the original
  3300. (empty) one }
  3301. if erroronfailure then
  3302. Message1(sym_e_formal_class_not_resolved,pd.objrealname^);
  3303. result:=pd;
  3304. end;
  3305. function searchsym_in_class(classh: tobjectdef;contextclassh:tabstractrecorddef;const s : TIDString;out srsym:tsym;out srsymtable:TSymtable;flags:tsymbol_search_flags):boolean;
  3306. var
  3307. hashedid : THashedIDString;
  3308. orgclass : tobjectdef;
  3309. i : longint;
  3310. begin
  3311. orgclass:=classh;
  3312. { in case this is a formal class, first find the real definition }
  3313. if assigned(classh) then
  3314. begin
  3315. if (oo_is_formal in classh.objectoptions) then
  3316. classh:=find_real_class_definition(classh,true);
  3317. { The contextclassh is used for visibility. The classh must be equal to
  3318. or be a parent of contextclassh. E.g. for inherited searches the classh is the
  3319. parent or a class helper. }
  3320. if not (def_is_related(contextclassh,classh) or
  3321. (is_classhelper(contextclassh) and
  3322. assigned(tobjectdef(contextclassh).extendeddef) and
  3323. (tobjectdef(contextclassh).extendeddef.typ=objectdef) and
  3324. def_is_related(tobjectdef(contextclassh).extendeddef,classh))) then
  3325. internalerror(200811161);
  3326. end;
  3327. result:=false;
  3328. hashedid.id:=s;
  3329. { an Objective-C protocol or Java interface can inherit from multiple
  3330. other protocols/interfaces -> use ImplementedInterfaces instead }
  3331. if is_objcprotocol(classh) or
  3332. is_javainterface(classh) then
  3333. begin
  3334. srsymtable:=classh.symtable;
  3335. srsym:=tsym(srsymtable.FindWithHash(hashedid));
  3336. if assigned(srsym) and
  3337. is_visible_for_object(srsym,contextclassh) then
  3338. begin
  3339. if not (ssf_no_addsymref in flags) then
  3340. addsymref(srsym);
  3341. result:=true;
  3342. exit;
  3343. end;
  3344. for i:=0 to classh.ImplementedInterfaces.count-1 do
  3345. begin
  3346. if searchsym_in_class(TImplementedInterface(classh.ImplementedInterfaces[i]).intfdef,contextclassh,s,srsym,srsymtable,flags-[ssf_search_helper]) then
  3347. begin
  3348. result:=true;
  3349. exit;
  3350. end;
  3351. end;
  3352. end
  3353. else
  3354. if is_objectpascal_helper(classh) then
  3355. begin
  3356. { helpers have their own obscure search logic... }
  3357. result:=searchsym_in_helper(classh,tobjectdef(contextclassh),s,srsym,srsymtable,flags-[ssf_has_inherited]);
  3358. if result then
  3359. exit;
  3360. end
  3361. else
  3362. begin
  3363. while assigned(classh) do
  3364. begin
  3365. { search for a class helper method first if this is an Object
  3366. Pascal class and we haven't yet found a helper symbol }
  3367. if (classh.objecttype in objecttypes_with_helpers) and
  3368. (ssf_search_helper in flags) then
  3369. begin
  3370. result:=search_objectpascal_helper(classh,contextclassh,s,srsym,srsymtable);
  3371. { an eventual overload inside the extended type's hierarchy
  3372. will be found by tcallcandidates }
  3373. if result then
  3374. exit;
  3375. end;
  3376. srsymtable:=classh.symtable;
  3377. srsym:=tsym(srsymtable.FindWithHash(hashedid));
  3378. if assigned(srsym) and
  3379. is_visible_for_object(srsym,contextclassh) then
  3380. begin
  3381. if not (ssf_no_addsymref in flags) then
  3382. addsymref(srsym);
  3383. result:=true;
  3384. exit;
  3385. end;
  3386. classh:=classh.childof;
  3387. end;
  3388. end;
  3389. if is_objcclass(orgclass) then
  3390. result:=search_objc_helper(orgclass,s,srsym,srsymtable)
  3391. else
  3392. begin
  3393. srsym:=nil;
  3394. srsymtable:=nil;
  3395. end;
  3396. end;
  3397. function searchsym_in_record(recordh:tabstractrecorddef;const s : TIDString;out srsym:tsym;out srsymtable:TSymtable):boolean;
  3398. var
  3399. hashedid : THashedIDString;
  3400. begin
  3401. result:=false;
  3402. hashedid.id:=s;
  3403. { search for a record helper method first }
  3404. result:=search_objectpascal_helper(recordh,recordh,s,srsym,srsymtable);
  3405. if result then
  3406. { an eventual overload inside the extended type's hierarchy
  3407. will be found by tcallcandidates }
  3408. exit;
  3409. srsymtable:=recordh.symtable;
  3410. srsym:=tsym(srsymtable.FindWithHash(hashedid));
  3411. if assigned(srsym) and is_visible_for_object(srsym,recordh) then
  3412. begin
  3413. addsymref(srsym);
  3414. result:=true;
  3415. exit;
  3416. end;
  3417. srsym:=nil;
  3418. srsymtable:=nil;
  3419. end;
  3420. function searchsym_in_class_by_msgint(classh:tobjectdef;msgid:longint;out srdef : tdef;out srsym:tsym;out srsymtable:TSymtable):boolean;
  3421. var
  3422. def : tdef;
  3423. i : longint;
  3424. begin
  3425. { in case this is a formal class, first find the real definition }
  3426. if assigned(classh) and
  3427. (oo_is_formal in classh.objectoptions) then
  3428. classh:=find_real_class_definition(classh,true);
  3429. result:=false;
  3430. def:=nil;
  3431. while assigned(classh) do
  3432. begin
  3433. for i:=0 to classh.symtable.DefList.Count-1 do
  3434. begin
  3435. def:=tstoreddef(classh.symtable.DefList[i]);
  3436. { Find also all hidden private methods to
  3437. be compatible with delphi, see tw6203 (PFV) }
  3438. if (def.typ=procdef) and
  3439. (po_msgint in tprocdef(def).procoptions) and
  3440. (tprocdef(def).messageinf.i=msgid) then
  3441. begin
  3442. srdef:=def;
  3443. srsym:=tprocdef(def).procsym;
  3444. srsymtable:=classh.symtable;
  3445. addsymref(srsym);
  3446. result:=true;
  3447. exit;
  3448. end;
  3449. end;
  3450. classh:=classh.childof;
  3451. end;
  3452. srdef:=nil;
  3453. srsym:=nil;
  3454. srsymtable:=nil;
  3455. end;
  3456. function searchsym_in_class_by_msgstr(classh:tobjectdef;const s:string;out srsym:tsym;out srsymtable:TSymtable):boolean;
  3457. var
  3458. def : tdef;
  3459. i : longint;
  3460. begin
  3461. { in case this is a formal class, first find the real definition }
  3462. if assigned(classh) and
  3463. (oo_is_formal in classh.objectoptions) then
  3464. classh:=find_real_class_definition(classh,true);
  3465. result:=false;
  3466. def:=nil;
  3467. while assigned(classh) do
  3468. begin
  3469. for i:=0 to classh.symtable.DefList.Count-1 do
  3470. begin
  3471. def:=tstoreddef(classh.symtable.DefList[i]);
  3472. { Find also all hidden private methods to
  3473. be compatible with delphi, see tw6203 (PFV) }
  3474. if (def.typ=procdef) and
  3475. (po_msgstr in tprocdef(def).procoptions) and
  3476. (tprocdef(def).messageinf.str^=s) then
  3477. begin
  3478. srsym:=tprocdef(def).procsym;
  3479. srsymtable:=classh.symtable;
  3480. addsymref(srsym);
  3481. result:=true;
  3482. exit;
  3483. end;
  3484. end;
  3485. classh:=classh.childof;
  3486. end;
  3487. srsym:=nil;
  3488. srsymtable:=nil;
  3489. end;
  3490. function search_best_objectpascal_helper(const name: string;pd : tdef;contextclassh : tabstractrecorddef;out srsym: tsym;out srsymtable: tsymtable):boolean;forward;
  3491. function searchsym_in_helper(classh,contextclassh:tobjectdef;const s: TIDString;out srsym:tsym;out srsymtable:TSymtable;flags:tsymbol_search_flags):boolean;
  3492. var
  3493. hashedid : THashedIDString;
  3494. parentclassh : tobjectdef;
  3495. begin
  3496. result:=false;
  3497. if not is_objectpascal_helper(classh) then
  3498. Internalerror(2011030101);
  3499. hashedid.id:=s;
  3500. { in a helper things are a bit more complex:
  3501. 1. search the symbol in the helper (if not "inherited")
  3502. 2. search the symbol in the extended type
  3503. 3. search the symbol in the parent helpers
  3504. 4. only classes: search the symbol in the parents of the extended type
  3505. }
  3506. if not (ssf_has_inherited in flags) then
  3507. begin
  3508. { search in the helper itself }
  3509. srsymtable:=classh.symtable;
  3510. srsym:=tsym(srsymtable.FindWithHash(hashedid));
  3511. if assigned(srsym) and
  3512. is_visible_for_object(srsym,contextclassh) then
  3513. begin
  3514. if not (ssf_no_addsymref in flags) then
  3515. addsymref(srsym);
  3516. result:=true;
  3517. exit;
  3518. end;
  3519. end;
  3520. { now search in the extended type itself }
  3521. { Note: the extendeddef might be Nil if we are currently parsing the
  3522. extended type itself and the identifier was not found }
  3523. if assigned(classh.extendeddef) and (classh.extendeddef.typ in [recorddef,objectdef]) then
  3524. begin
  3525. srsymtable:=tabstractrecorddef(classh.extendeddef).symtable;
  3526. srsym:=tsym(srsymtable.FindWithHash(hashedid));
  3527. if assigned(srsym) and
  3528. is_visible_for_object(srsym,contextclassh) then
  3529. begin
  3530. if not (ssf_no_addsymref in flags) then
  3531. addsymref(srsym);
  3532. result:=true;
  3533. exit;
  3534. end;
  3535. end;
  3536. { now search in the parent helpers }
  3537. parentclassh:=classh.childof;
  3538. while assigned(parentclassh) do
  3539. begin
  3540. srsymtable:=parentclassh.symtable;
  3541. srsym:=tsym(srsymtable.FindWithHash(hashedid));
  3542. if assigned(srsym) and
  3543. is_visible_for_object(srsym,contextclassh) then
  3544. begin
  3545. if not (ssf_no_addsymref in flags) then
  3546. addsymref(srsym);
  3547. result:=true;
  3548. exit;
  3549. end;
  3550. parentclassh:=parentclassh.childof;
  3551. end;
  3552. { now search in the parents of the extended class (with helpers!) }
  3553. if is_class(classh.extendeddef) then
  3554. begin
  3555. result:=searchsym_in_class(tobjectdef(classh.extendeddef).childof,contextclassh,s,srsym,srsymtable,flags+[ssf_search_helper]);
  3556. { addsymref is already called by searchsym_in_class }
  3557. if result then
  3558. exit;
  3559. end;
  3560. { now search all helpers using the extendeddef as the starting point }
  3561. if m_multi_helpers in current_settings.modeswitches then
  3562. result:=search_best_objectpascal_helper(s,classh.extendeddef,contextclassh,srsym,srsymtable);
  3563. end;
  3564. function search_specific_assignment_operator(assignment_type:ttoken;from_def,to_def:Tdef):Tprocdef;
  3565. var
  3566. sym : Tprocsym;
  3567. hashedid : THashedIDString;
  3568. curreq,
  3569. besteq : tequaltype;
  3570. currpd,
  3571. bestpd : tprocdef;
  3572. stackitem : psymtablestackitem;
  3573. begin
  3574. hashedid.id:=overloaded_names[assignment_type];
  3575. besteq:=te_incompatible;
  3576. bestpd:=nil;
  3577. stackitem:=symtablestack.stack;
  3578. while assigned(stackitem) do
  3579. begin
  3580. sym:=Tprocsym(stackitem^.symtable.FindWithHash(hashedid));
  3581. if sym<>nil then
  3582. begin
  3583. if sym.typ<>procsym then
  3584. internalerror(200402031);
  3585. { if the source type is an alias then this is only the second choice,
  3586. if you mess with this code, check tw4093 }
  3587. currpd:=sym.find_procdef_assignment_operator(from_def,to_def,curreq);
  3588. if curreq>besteq then
  3589. begin
  3590. besteq:=curreq;
  3591. bestpd:=currpd;
  3592. if (besteq=te_exact) then
  3593. break;
  3594. end;
  3595. end;
  3596. stackitem:=stackitem^.next;
  3597. end;
  3598. result:=bestpd;
  3599. end;
  3600. function search_assignment_operator(from_def,to_def:Tdef;explicit:boolean):Tprocdef;
  3601. begin
  3602. { search record/object symtable first for a suitable operator }
  3603. if from_def.typ in [recorddef,objectdef] then
  3604. symtablestack.push(tabstractrecorddef(from_def).symtable);
  3605. if to_def.typ in [recorddef,objectdef] then
  3606. symtablestack.push(tabstractrecorddef(to_def).symtable);
  3607. { if type conversion is explicit then search first for explicit
  3608. operator overload and if not found then use implicit operator }
  3609. if explicit then
  3610. result:=search_specific_assignment_operator(_OP_EXPLICIT,from_def,to_def)
  3611. else
  3612. result:=nil;
  3613. if result=nil then
  3614. result:=search_specific_assignment_operator(_ASSIGNMENT,from_def,to_def);
  3615. { restore symtable stack }
  3616. if to_def.typ in [recorddef,objectdef] then
  3617. symtablestack.pop(tabstractrecorddef(to_def).symtable);
  3618. if from_def.typ in [recorddef,objectdef] then
  3619. symtablestack.pop(tabstractrecorddef(from_def).symtable);
  3620. end;
  3621. function search_enumerator_operator(from_def,to_def:Tdef): Tprocdef;
  3622. var
  3623. sym : Tprocsym;
  3624. hashedid : THashedIDString;
  3625. curreq,
  3626. besteq : tequaltype;
  3627. currpd,
  3628. bestpd : tprocdef;
  3629. stackitem : psymtablestackitem;
  3630. begin
  3631. hashedid.id:='enumerator';
  3632. besteq:=te_incompatible;
  3633. bestpd:=nil;
  3634. stackitem:=symtablestack.stack;
  3635. while assigned(stackitem) do
  3636. begin
  3637. sym:=Tprocsym(stackitem^.symtable.FindWithHash(hashedid));
  3638. if sym<>nil then
  3639. begin
  3640. if sym.typ<>procsym then
  3641. internalerror(200910241);
  3642. { if the source type is an alias then this is only the second choice,
  3643. if you mess with this code, check tw4093 }
  3644. currpd:=sym.find_procdef_enumerator_operator(from_def,to_def,curreq);
  3645. if curreq>besteq then
  3646. begin
  3647. besteq:=curreq;
  3648. bestpd:=currpd;
  3649. if (besteq=te_exact) then
  3650. break;
  3651. end;
  3652. end;
  3653. stackitem:=stackitem^.next;
  3654. end;
  3655. result:=bestpd;
  3656. end;
  3657. function search_management_operator(mop:tmanagementoperator;pd:Tdef):Tprocdef;
  3658. var
  3659. sym : Tprocsym;
  3660. hashedid : THashedIDString;
  3661. optoken: ttoken;
  3662. begin
  3663. optoken := managementoperator2tok[mop];
  3664. if (optoken<first_managment_operator) or
  3665. (optoken>last_managment_operator) then
  3666. internalerror(201602280);
  3667. hashedid.id:=overloaded_names[optoken];
  3668. if not (pd.typ in [recorddef]) then
  3669. internalerror(201602281);
  3670. sym:=Tprocsym(tabstractrecorddef(pd).symtable.FindWithHash(hashedid));
  3671. if sym<>nil then
  3672. begin
  3673. if sym.typ<>procsym then
  3674. internalerror(201602282);
  3675. result:=sym.find_procdef_bytype(potype_operator);
  3676. end
  3677. else
  3678. result:=nil;
  3679. end;
  3680. function search_system_type(const s: TIDString): ttypesym;
  3681. var
  3682. sym : tsym;
  3683. begin
  3684. sym:=tsym(systemunit.Find(s));
  3685. if not assigned(sym) or
  3686. (sym.typ<>typesym) then
  3687. message1(cg_f_unknown_system_type,s);
  3688. result:=ttypesym(sym);
  3689. end;
  3690. function try_search_system_type(const s: TIDString): ttypesym;
  3691. var
  3692. sym : tsym;
  3693. begin
  3694. sym:=tsym(systemunit.Find(s));
  3695. if not assigned(sym) then
  3696. result:=nil
  3697. else
  3698. begin
  3699. if sym.typ<>typesym then
  3700. message1(cg_f_unknown_system_type,s);
  3701. result:=ttypesym(sym);
  3702. end;
  3703. end;
  3704. function try_search_current_module_type(const s: TIDString): ttypesym;
  3705. var
  3706. found: boolean;
  3707. srsymtable: tsymtable;
  3708. srsym: tsym;
  3709. begin
  3710. if s[1]='$' then
  3711. found:=searchsym_in_module(current_module,copy(s,2,length(s)),srsym,srsymtable)
  3712. else
  3713. found:=searchsym_in_module(current_module,s,srsym,srsymtable);
  3714. if found then
  3715. begin
  3716. if (srsym.typ<>typesym) then
  3717. internalerror(2014091207);
  3718. result:=ttypesym(srsym);
  3719. end
  3720. else
  3721. result:=nil;
  3722. end;
  3723. function search_system_proc(const s: TIDString): tprocdef;
  3724. var
  3725. srsym: tsym;
  3726. begin
  3727. srsym:=tsym(systemunit.find(s));
  3728. if not assigned(srsym) and
  3729. (cs_compilesystem in current_settings.moduleswitches) then
  3730. srsym:=tsym(systemunit.Find(upper(s)));
  3731. if not assigned(srsym) or
  3732. (srsym.typ<>procsym) then
  3733. message1(cg_f_unknown_compilerproc,s);
  3734. result:=tprocdef(tprocsym(srsym).procdeflist[0]);
  3735. end;
  3736. function search_named_unit_globaltype(const unitname, typename: TIDString; throwerror: boolean): ttypesym;
  3737. var
  3738. srsymtable: tsymtable;
  3739. sym: tsym;
  3740. begin
  3741. sym:=nil;
  3742. if searchsym_in_named_module(unitname,typename,sym,srsymtable) and
  3743. (sym.typ=typesym) then
  3744. begin
  3745. result:=ttypesym(sym);
  3746. exit;
  3747. end
  3748. else
  3749. begin
  3750. if throwerror then
  3751. message2(cg_f_unknown_type_in_unit,typename,unitname);
  3752. result:=nil;
  3753. end;
  3754. end;
  3755. function search_sym_in_helperdef(const s: string;classh : tobjectdef;contextclassh : tabstractrecorddef;out srsym: tsym;out srsymtable: tsymtable): boolean;
  3756. var
  3757. hashedid : THashedIDString;
  3758. pdef : tprocdef;
  3759. i : integer;
  3760. begin
  3761. hashedid.id:=s;
  3762. result:=false;
  3763. repeat
  3764. srsymtable:=classh.symtable;
  3765. srsym:=tsym(srsymtable.FindWithHash(hashedid));
  3766. if srsym<>nil then
  3767. begin
  3768. case srsym.typ of
  3769. procsym:
  3770. begin
  3771. for i:=0 to tprocsym(srsym).procdeflist.count-1 do
  3772. begin
  3773. pdef:=tprocdef(tprocsym(srsym).procdeflist[i]);
  3774. if not is_visible_for_object(pdef.owner,pdef.visibility,contextclassh) then
  3775. continue;
  3776. srsym:=tprocdef(tprocsym(srsym).procdeflist[i]).procsym;
  3777. srsymtable:=srsym.owner;
  3778. result:=true;
  3779. exit;
  3780. end;
  3781. end;
  3782. typesym,
  3783. fieldvarsym,
  3784. constsym,
  3785. enumsym,
  3786. undefinedsym,
  3787. propertysym:
  3788. begin
  3789. result:=true;
  3790. exit;
  3791. end;
  3792. else
  3793. internalerror(2014041101);
  3794. end;
  3795. end;
  3796. { try the helper parent if available }
  3797. classh:=classh.childof;
  3798. until classh=nil;
  3799. end;
  3800. function get_objectpascal_helpers(pd : tdef):TFPObjectList;
  3801. var
  3802. s : string;
  3803. st : tsymtable;
  3804. begin
  3805. result:=nil;
  3806. { when there are no helpers active currently then we don't need to do
  3807. anything }
  3808. if current_module.extendeddefs.count=0 then
  3809. exit;
  3810. { no helpers for anonymous types }
  3811. if ((pd.typ in [recorddef,objectdef]) and
  3812. (
  3813. not assigned(tabstractrecorddef(pd).objrealname) or
  3814. (tabstractrecorddef(pd).objrealname^='')
  3815. )
  3816. ) or
  3817. not assigned(pd.typesym) then
  3818. exit;
  3819. { if pd is defined inside a procedure we must not use make_mangledname
  3820. (as a helper may not be defined in a procedure this is no problem...)}
  3821. st:=pd.owner;
  3822. while st.symtabletype in [objectsymtable,recordsymtable] do
  3823. st:=st.defowner.owner;
  3824. if st.symtabletype=localsymtable then
  3825. exit;
  3826. { the mangled name is used as the key for tmodule.extendeddefs }
  3827. s:=generate_objectpascal_helper_key(pd);
  3828. result:=TFPObjectList(current_module.extendeddefs.Find(s));
  3829. end;
  3830. function search_best_objectpascal_helper(const name: string;pd : tdef;contextclassh : tabstractrecorddef;out srsym: tsym;out srsymtable: tsymtable):boolean;
  3831. var
  3832. s : string;
  3833. list : TFPObjectList;
  3834. i : integer;
  3835. st : tsymtable;
  3836. odef : tobjectdef;
  3837. begin
  3838. result:=false;
  3839. list:=get_objectpascal_helpers(pd);
  3840. if assigned(list) and (list.count>0) then
  3841. begin
  3842. i:=list.count-1;
  3843. repeat
  3844. odef:=tobjectdef(list[i]);
  3845. result:=(odef.owner.symtabletype in [staticsymtable,globalsymtable]) or
  3846. is_visible_for_object(tobjectdef(list[i]).typesym,contextclassh);
  3847. if result then
  3848. result:=search_sym_in_helperdef(name,odef,contextclassh,srsym,srsymtable);
  3849. dec(i);
  3850. until result or (i<0);
  3851. end;
  3852. end;
  3853. function search_last_objectpascal_helper(pd : tdef;contextclassh : tabstractrecorddef;out odef : tobjectdef):boolean;
  3854. var
  3855. s : string;
  3856. list : TFPObjectList;
  3857. i : integer;
  3858. begin
  3859. result:=false;
  3860. odef:=nil;
  3861. list:=get_objectpascal_helpers(pd);
  3862. if assigned(list) and (list.count>0) then
  3863. begin
  3864. i:=list.count-1;
  3865. repeat
  3866. odef:=tobjectdef(list[list.count-1]);
  3867. result:=(odef.owner.symtabletype in [staticsymtable,globalsymtable]) or
  3868. is_visible_for_object(tobjectdef(list[i]).typesym,contextclassh);
  3869. dec(i);
  3870. until result or (i<0);
  3871. if not result then
  3872. { just to be sure that noone uses odef }
  3873. odef:=nil;
  3874. end;
  3875. end;
  3876. function search_objectpascal_helper(pd : tdef;contextclassh : tabstractrecorddef;const s: string; out srsym: tsym; out srsymtable: tsymtable):boolean;
  3877. var
  3878. classh : tobjectdef;
  3879. begin
  3880. result:=false;
  3881. { if there is no class helper for the class then there is no need to
  3882. search further }
  3883. if m_multi_helpers in current_settings.modeswitches then
  3884. result:=search_best_objectpascal_helper(s,pd,contextclassh,srsym,srsymtable)
  3885. else
  3886. begin
  3887. if search_last_objectpascal_helper(pd,contextclassh,classh) and
  3888. search_sym_in_helperdef(s,classh,contextclassh,srsym,srsymtable) then
  3889. result:=true;
  3890. end;
  3891. if result then
  3892. begin
  3893. { we need to know if a procedure references symbols
  3894. in the static symtable, because then it can't be
  3895. inlined from outside this unit }
  3896. if (srsym.typ=procsym) and
  3897. assigned(current_procinfo) and
  3898. (srsym.owner.symtabletype=staticsymtable) then
  3899. include(current_procinfo.flags,pi_uses_static_symtable);
  3900. addsymref(srsym);
  3901. end
  3902. else
  3903. begin
  3904. srsym:=nil;
  3905. srsymtable:=nil;
  3906. end;
  3907. end;
  3908. function search_objc_helper(pd : tobjectdef;const s : string; out srsym: tsym; out srsymtable: tsymtable):boolean;
  3909. var
  3910. hashedid : THashedIDString;
  3911. stackitem : psymtablestackitem;
  3912. i : longint;
  3913. defowner : tobjectdef;
  3914. begin
  3915. hashedid.id:=class_helper_prefix+s;
  3916. stackitem:=symtablestack.stack;
  3917. while assigned(stackitem) do
  3918. begin
  3919. srsymtable:=stackitem^.symtable;
  3920. srsym:=tsym(srsymtable.FindWithHash(hashedid));
  3921. if assigned(srsym) then
  3922. begin
  3923. if not(srsymtable.symtabletype in [globalsymtable,staticsymtable]) or
  3924. not(srsym.owner.symtabletype in [globalsymtable,staticsymtable]) or
  3925. (srsym.typ<>procsym) then
  3926. internalerror(2009111505);
  3927. { check whether this procsym includes a helper for this particular class }
  3928. for i:=0 to tprocsym(srsym).procdeflist.count-1 do
  3929. begin
  3930. { does pd inherit from (or is the same as) the class
  3931. that this method's category extended?
  3932. Warning: this list contains both category and objcclass methods
  3933. (for id.randommethod), so only check category methods here
  3934. }
  3935. defowner:=tobjectdef(tprocdef(tprocsym(srsym).procdeflist[i]).owner.defowner);
  3936. if is_objccategory(defowner) and
  3937. def_is_related(pd,defowner.childof) then
  3938. begin
  3939. { we need to know if a procedure references symbols
  3940. in the static symtable, because then it can't be
  3941. inlined from outside this unit }
  3942. if assigned(current_procinfo) and
  3943. (srsym.owner.symtabletype=staticsymtable) then
  3944. include(current_procinfo.flags,pi_uses_static_symtable);
  3945. { no need to keep looking. There might be other
  3946. categories that extend this, a parent or child
  3947. class with a method with the same name (either
  3948. overriding this one, or overridden by this one),
  3949. but that doesn't matter as far as the basic
  3950. procsym is concerned.
  3951. }
  3952. srsym:=tprocdef(tprocsym(srsym).procdeflist[i]).procsym;
  3953. srsymtable:=srsym.owner;
  3954. addsymref(srsym);
  3955. result:=true;
  3956. exit;
  3957. end;
  3958. end;
  3959. end;
  3960. stackitem:=stackitem^.next;
  3961. end;
  3962. srsym:=nil;
  3963. srsymtable:=nil;
  3964. result:=false;
  3965. end;
  3966. function search_objc_method(const s : string; out srsym: tsym; out srsymtable: tsymtable):boolean;
  3967. var
  3968. hashedid : THashedIDString;
  3969. stackitem : psymtablestackitem;
  3970. i : longint;
  3971. begin
  3972. hashedid.id:=class_helper_prefix+s;
  3973. stackitem:=symtablestack.stack;
  3974. while assigned(stackitem) do
  3975. begin
  3976. srsymtable:=stackitem^.symtable;
  3977. srsym:=tsym(srsymtable.FindWithHash(hashedid));
  3978. if assigned(srsym) then
  3979. begin
  3980. if not(srsymtable.symtabletype in [globalsymtable,staticsymtable]) or
  3981. not(srsym.owner.symtabletype in [globalsymtable,staticsymtable]) or
  3982. (srsym.typ<>procsym) then
  3983. internalerror(2009112005);
  3984. { check whether this procsym includes a helper for this particular class }
  3985. for i:=0 to tprocsym(srsym).procdeflist.count-1 do
  3986. begin
  3987. { we need to know if a procedure references symbols
  3988. in the static symtable, because then it can't be
  3989. inlined from outside this unit }
  3990. if assigned(current_procinfo) and
  3991. (srsym.owner.symtabletype=staticsymtable) then
  3992. include(current_procinfo.flags,pi_uses_static_symtable);
  3993. { no need to keep looking. There might be other
  3994. methods with the same name, but that doesn't matter
  3995. as far as the basic procsym is concerned.
  3996. }
  3997. srsym:=tprocdef(tprocsym(srsym).procdeflist[i]).procsym;
  3998. { We need the symtable in which the classhelper-like sym
  3999. is located, not the objectdef. The reason is that the
  4000. callnode will climb the symtablestack until it encounters
  4001. this symtable to start looking for overloads (and it won't
  4002. find the objectsymtable in which this method sym is
  4003. located
  4004. srsymtable:=srsym.owner;
  4005. }
  4006. addsymref(srsym);
  4007. result:=true;
  4008. exit;
  4009. end;
  4010. end;
  4011. stackitem:=stackitem^.next;
  4012. end;
  4013. srsym:=nil;
  4014. srsymtable:=nil;
  4015. result:=false;
  4016. end;
  4017. function search_struct_member(pd : tabstractrecorddef;const s : string):tsym;
  4018. { searches n in symtable of pd and all anchestors }
  4019. var
  4020. srsymtable : tsymtable;
  4021. begin
  4022. { in case this is a formal class, first find the real definition }
  4023. if (oo_is_formal in pd.objectoptions) then
  4024. pd:=find_real_class_definition(tobjectdef(pd),true);
  4025. if search_objectpascal_helper(pd, pd, s, result, srsymtable) then
  4026. exit;
  4027. result:=search_struct_member_no_helper(pd,s);
  4028. if assigned(result) then
  4029. exit;
  4030. { not found, now look for class helpers }
  4031. if is_objcclass(pd) then
  4032. search_objc_helper(tobjectdef(pd),s,result,srsymtable)
  4033. end;
  4034. function search_struct_member_no_helper(pd: tabstractrecorddef; const s: string): tsym;
  4035. var
  4036. hashedid : THashedIDString;
  4037. srsym : tsym;
  4038. begin
  4039. hashedid.id:=s;
  4040. while assigned(pd) do
  4041. begin
  4042. srsym:=tsym(pd.symtable.FindWithHash(hashedid));
  4043. if assigned(srsym) then
  4044. begin
  4045. result:=srsym;
  4046. exit;
  4047. end;
  4048. if pd.typ=objectdef then
  4049. pd:=tobjectdef(pd).childof
  4050. else
  4051. pd:=nil;
  4052. end;
  4053. result:=nil;
  4054. end;
  4055. function search_macro(const s : string):tsym;
  4056. var
  4057. stackitem : psymtablestackitem;
  4058. hashedid : THashedIDString;
  4059. srsym : tsym;
  4060. begin
  4061. hashedid.id:=s;
  4062. { First search the localmacrosymtable before searching the
  4063. global macrosymtables from the units }
  4064. if assigned(current_module) then
  4065. begin
  4066. srsym:=tsym(current_module.localmacrosymtable.FindWithHash(hashedid));
  4067. if assigned(srsym) then
  4068. begin
  4069. result:= srsym;
  4070. exit;
  4071. end;
  4072. end;
  4073. stackitem:=macrosymtablestack.stack;
  4074. while assigned(stackitem) do
  4075. begin
  4076. srsym:=tsym(stackitem^.symtable.FindWithHash(hashedid));
  4077. if assigned(srsym) then
  4078. begin
  4079. result:= srsym;
  4080. exit;
  4081. end;
  4082. stackitem:=stackitem^.next;
  4083. end;
  4084. result:= nil;
  4085. end;
  4086. function defined_macro(const s : string):boolean;
  4087. var
  4088. mac: tmacro;
  4089. begin
  4090. mac:=tmacro(search_macro(s));
  4091. if assigned(mac) then
  4092. begin
  4093. mac.is_used:=true;
  4094. defined_macro:=mac.defined;
  4095. end
  4096. else
  4097. defined_macro:=false;
  4098. end;
  4099. {****************************************************************************
  4100. Object Helpers
  4101. ****************************************************************************}
  4102. function search_default_property(pd : tabstractrecorddef) : tpropertysym;
  4103. { returns the default property of a class, searches also anchestors }
  4104. var
  4105. _defaultprop : tpropertysym;
  4106. helperpd : tobjectdef;
  4107. begin
  4108. _defaultprop:=nil;
  4109. { first search in helper's hierarchy }
  4110. if search_last_objectpascal_helper(pd,nil,helperpd) then
  4111. while assigned(helperpd) do
  4112. begin
  4113. helperpd.symtable.SymList.ForEachCall(@tstoredsymtable(helperpd.symtable).testfordefaultproperty,@_defaultprop);
  4114. if assigned(_defaultprop) then
  4115. break;
  4116. helperpd:=helperpd.childof;
  4117. end;
  4118. if assigned(_defaultprop) then
  4119. begin
  4120. search_default_property:=_defaultprop;
  4121. exit;
  4122. end;
  4123. { now search in the type's hierarchy itself }
  4124. while assigned(pd) do
  4125. begin
  4126. pd.symtable.SymList.ForEachCall(@tstoredsymtable(pd.symtable).testfordefaultproperty,@_defaultprop);
  4127. if assigned(_defaultprop) then
  4128. break;
  4129. if (pd.typ=objectdef) then
  4130. pd:=tobjectdef(pd).childof
  4131. else
  4132. break;
  4133. end;
  4134. search_default_property:=_defaultprop;
  4135. end;
  4136. {****************************************************************************
  4137. Macro Helpers
  4138. ****************************************************************************}
  4139. procedure def_system_macro(const name : string);
  4140. var
  4141. mac : tmacro;
  4142. s: string;
  4143. begin
  4144. if name = '' then
  4145. internalerror(2004121202);
  4146. s:= upper(name);
  4147. mac:=tmacro(search_macro(s));
  4148. if not assigned(mac) then
  4149. begin
  4150. mac:=tmacro.create(s);
  4151. if assigned(current_module) then
  4152. current_module.localmacrosymtable.insert(mac)
  4153. else
  4154. initialmacrosymtable.insert(mac);
  4155. end;
  4156. Message1(parser_c_macro_defined,mac.name);
  4157. mac.defined:=true;
  4158. end;
  4159. procedure set_system_macro(const name, value : string);
  4160. var
  4161. mac : tmacro;
  4162. s: string;
  4163. begin
  4164. if name = '' then
  4165. internalerror(2004121203);
  4166. s:= upper(name);
  4167. mac:=tmacro(search_macro(s));
  4168. if not assigned(mac) then
  4169. begin
  4170. mac:=tmacro.create(s);
  4171. if assigned(current_module) then
  4172. current_module.localmacrosymtable.insert(mac)
  4173. else
  4174. initialmacrosymtable.insert(mac);
  4175. end
  4176. else
  4177. begin
  4178. mac.is_compiler_var:=false;
  4179. if assigned(mac.buftext) then
  4180. freemem(mac.buftext,mac.buflen);
  4181. end;
  4182. Message2(parser_c_macro_set_to,mac.name,value);
  4183. mac.buflen:=length(value);
  4184. getmem(mac.buftext,mac.buflen);
  4185. move(value[1],mac.buftext^,mac.buflen);
  4186. mac.defined:=true;
  4187. end;
  4188. procedure set_system_compvar(const name, value : string);
  4189. var
  4190. mac : tmacro;
  4191. s: string;
  4192. begin
  4193. if name = '' then
  4194. internalerror(2004121204);
  4195. s:= upper(name);
  4196. mac:=tmacro(search_macro(s));
  4197. if not assigned(mac) then
  4198. begin
  4199. mac:=tmacro.create(s);
  4200. mac.is_compiler_var:=true;
  4201. if assigned(current_module) then
  4202. current_module.localmacrosymtable.insert(mac)
  4203. else
  4204. initialmacrosymtable.insert(mac);
  4205. end
  4206. else
  4207. begin
  4208. mac.is_compiler_var:=true;
  4209. if assigned(mac.buftext) then
  4210. freemem(mac.buftext,mac.buflen);
  4211. end;
  4212. Message2(parser_c_macro_set_to,mac.name,value);
  4213. mac.buflen:=length(value);
  4214. getmem(mac.buftext,mac.buflen);
  4215. move(value[1],mac.buftext^,mac.buflen);
  4216. mac.defined:=true;
  4217. end;
  4218. procedure undef_system_macro(const name : string);
  4219. var
  4220. mac : tmacro;
  4221. s: string;
  4222. begin
  4223. if name = '' then
  4224. internalerror(2004121205);
  4225. s:= upper(name);
  4226. mac:=tmacro(search_macro(s));
  4227. if not assigned(mac) then
  4228. {If not found, then it's already undefined.}
  4229. else
  4230. begin
  4231. Message1(parser_c_macro_undefined,mac.name);
  4232. mac.defined:=false;
  4233. mac.is_compiler_var:=false;
  4234. { delete old definition }
  4235. if assigned(mac.buftext) then
  4236. begin
  4237. freemem(mac.buftext,mac.buflen);
  4238. mac.buftext:=nil;
  4239. end;
  4240. end;
  4241. end;
  4242. {$ifdef UNITALIASES}
  4243. {****************************************************************************
  4244. TUNIT_ALIAS
  4245. ****************************************************************************}
  4246. constructor tunit_alias.create(const n:string);
  4247. var
  4248. i : longint;
  4249. begin
  4250. i:=pos('=',n);
  4251. if i=0 then
  4252. fail;
  4253. inherited createname(Copy(n,1,i-1));
  4254. newname:=stringdup(Copy(n,i+1,255));
  4255. end;
  4256. destructor tunit_alias.destroy;
  4257. begin
  4258. stringdispose(newname);
  4259. inherited destroy;
  4260. end;
  4261. procedure addunitalias(const n:string);
  4262. begin
  4263. unitaliases^.insert(tunit_alias,init(Upper(n))));
  4264. end;
  4265. function getunitalias(const n:string):string;
  4266. var
  4267. p : punit_alias;
  4268. begin
  4269. p:=punit_alias(unitaliases^.Find(Upper(n)));
  4270. if assigned(p) then
  4271. getunitalias:=punit_alias(p).newname^
  4272. else
  4273. getunitalias:=n;
  4274. end;
  4275. {$endif UNITALIASES}
  4276. {****************************************************************************
  4277. Init/Done Symtable
  4278. ****************************************************************************}
  4279. procedure InitSymtable;
  4280. begin
  4281. { Reset symbolstack }
  4282. symtablestack:=nil;
  4283. systemunit:=nil;
  4284. { create error syms and def }
  4285. generrorsym:=terrorsym.create;
  4286. generrordef:=cerrordef.create;
  4287. { macros }
  4288. initialmacrosymtable:=tmacrosymtable.create(false);
  4289. macrosymtablestack:=TSymtablestack.create;
  4290. macrosymtablestack.push(initialmacrosymtable);
  4291. {$ifdef UNITALIASES}
  4292. { unit aliases }
  4293. unitaliases:=TFPHashObjectList.create;
  4294. {$endif}
  4295. { set some global vars to nil, might be important for the ide }
  4296. class_tobject:=nil;
  4297. class_tcustomattribute:=nil;
  4298. interface_iunknown:=nil;
  4299. interface_idispatch:=nil;
  4300. rec_tguid:=nil;
  4301. rec_jmp_buf:=nil;
  4302. rec_exceptaddr:=nil;
  4303. objc_metaclasstype:=nil;
  4304. objc_superclasstype:=nil;
  4305. objc_idtype:=nil;
  4306. objc_seltype:=nil;
  4307. objc_objecttype:=nil;
  4308. dupnr:=0;
  4309. end;
  4310. procedure DoneSymtable;
  4311. begin
  4312. generrorsym.owner:=nil;
  4313. generrorsym.free;
  4314. generrordef.owner:=nil;
  4315. generrordef.free;
  4316. initialmacrosymtable.free;
  4317. macrosymtablestack.free;
  4318. {$ifdef UNITALIASES}
  4319. unitaliases.free;
  4320. {$endif}
  4321. end;
  4322. end.