defcmp.pas 83 KB

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  1. {
  2. Copyright (c) 1998-2002 by Florian Klaempfl
  3. Compare definitions and parameter lists
  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 defcmp;
  18. {$i fpcdefs.inc}
  19. interface
  20. uses
  21. cclasses,
  22. globtype,globals,
  23. node,
  24. symconst,symtype,symdef;
  25. type
  26. { if acp is cp_all the var const or nothing are considered equal }
  27. tcompare_paras_type = ( cp_none, cp_value_equal_const, cp_all,cp_procvar);
  28. tcompare_paras_option = (
  29. cpo_allowdefaults,
  30. cpo_ignorehidden, // ignore hidden parameters
  31. cpo_allowconvert,
  32. cpo_comparedefaultvalue,
  33. cpo_openequalisexact,
  34. cpo_ignoreuniv,
  35. cpo_warn_incompatible_univ,
  36. cpo_ignorevarspez, // ignore parameter access type
  37. cpo_ignoreframepointer // ignore frame pointer parameter (for assignment-compatibility of global procedures to nested procvars)
  38. );
  39. tcompare_paras_options = set of tcompare_paras_option;
  40. tcompare_defs_option = (cdo_internal,cdo_explicit,cdo_check_operator,cdo_allow_variant,cdo_parameter,cdo_warn_incompatible_univ);
  41. tcompare_defs_options = set of tcompare_defs_option;
  42. tconverttype = (tc_none,
  43. tc_equal,
  44. tc_not_possible,
  45. tc_string_2_string,
  46. tc_char_2_string,
  47. tc_char_2_chararray,
  48. tc_pchar_2_string,
  49. tc_cchar_2_pchar,
  50. tc_cstring_2_pchar,
  51. tc_cstring_2_int,
  52. tc_ansistring_2_pchar,
  53. tc_string_2_chararray,
  54. tc_chararray_2_string,
  55. tc_array_2_pointer,
  56. tc_pointer_2_array,
  57. tc_int_2_int,
  58. tc_int_2_bool,
  59. tc_bool_2_bool,
  60. tc_bool_2_int,
  61. tc_real_2_real,
  62. tc_int_2_real,
  63. tc_real_2_currency,
  64. tc_proc_2_procvar,
  65. tc_nil_2_methodprocvar,
  66. tc_arrayconstructor_2_set,
  67. tc_set_to_set,
  68. tc_cord_2_pointer,
  69. tc_intf_2_string,
  70. tc_intf_2_guid,
  71. tc_class_2_intf,
  72. tc_char_2_char,
  73. tc_dynarray_2_openarray,
  74. tc_pwchar_2_string,
  75. tc_variant_2_dynarray,
  76. tc_dynarray_2_variant,
  77. tc_variant_2_enum,
  78. tc_enum_2_variant,
  79. tc_interface_2_variant,
  80. tc_variant_2_interface,
  81. tc_array_2_dynarray
  82. );
  83. function compare_defs_ext(def_from,def_to : tdef;
  84. fromtreetype : tnodetype;
  85. var doconv : tconverttype;
  86. var operatorpd : tprocdef;
  87. cdoptions:tcompare_defs_options):tequaltype;
  88. { Returns if the type def_from can be converted to def_to or if both types are equal }
  89. function compare_defs(def_from,def_to:tdef;fromtreetype:tnodetype):tequaltype;
  90. { Returns true, if def1 and def2 are semantically the same }
  91. function equal_defs(def_from,def_to:tdef):boolean;
  92. { Checks for type compatibility (subgroups of type)
  93. used for case statements... probably missing stuff
  94. to use on other types }
  95. function is_subequal(def1, def2: tdef): boolean;
  96. {# true, if two parameter lists are equal
  97. if acp is cp_all, all have to match exactly
  98. if acp is cp_value_equal_const call by value
  99. and call by const parameter are assumed as
  100. equal
  101. if acp is cp_procvar then the varspez have to match,
  102. and all parameter types must be at least te_equal
  103. if acp is cp_none, then we don't check the varspez at all
  104. allowdefaults indicates if default value parameters
  105. are allowed (in this case, the search order will first
  106. search for a routine with default parameters, before
  107. searching for the same definition with no parameters)
  108. }
  109. function compare_paras(para1,para2 : TFPObjectList; acp : tcompare_paras_type; cpoptions: tcompare_paras_options):tequaltype;
  110. { True if a function can be assigned to a procvar }
  111. { changed first argument type to pabstractprocdef so that it can also be }
  112. { used to test compatibility between two pprocvardefs (JM) }
  113. function proc_to_procvar_equal(def1:tabstractprocdef;def2:tprocvardef;checkincompatibleuniv: boolean):tequaltype;
  114. { Parentdef is the definition of a method defined in a parent class or interface }
  115. { Childdef is the definition of a method defined in a child class, interface or }
  116. { a class implementing an interface with parentdef. }
  117. { Returns true if the resultdef of childdef can be used to implement/override }
  118. { parentdef's resultdef }
  119. function compatible_childmethod_resultdef(parentretdef, childretdef: tdef): boolean;
  120. implementation
  121. uses
  122. verbose,systems,constexp,
  123. symtable,symsym,
  124. defutil,symutil;
  125. function compare_defs_ext(def_from,def_to : tdef;
  126. fromtreetype : tnodetype;
  127. var doconv : tconverttype;
  128. var operatorpd : tprocdef;
  129. cdoptions:tcompare_defs_options):tequaltype;
  130. { tordtype:
  131. uvoid,
  132. u8bit,u16bit,u32bit,u64bit,
  133. s8bit,s16bit,s32bit,s64bit,
  134. pasbool, bool8bit,bool16bit,bool32bit,bool64bit,
  135. uchar,uwidechar,scurrency }
  136. type
  137. tbasedef=(bvoid,bchar,bint,bbool);
  138. const
  139. basedeftbl:array[tordtype] of tbasedef =
  140. (bvoid,
  141. bint,bint,bint,bint,
  142. bint,bint,bint,bint,
  143. bbool,bbool,bbool,bbool,bbool,
  144. bchar,bchar,bint);
  145. basedefconvertsimplicit : array[tbasedef,tbasedef] of tconverttype =
  146. { void, char, int, bool }
  147. ((tc_not_possible,tc_not_possible,tc_not_possible,tc_not_possible),
  148. (tc_not_possible,tc_char_2_char,tc_not_possible,tc_not_possible),
  149. (tc_not_possible,tc_not_possible,tc_int_2_int,tc_not_possible),
  150. (tc_not_possible,tc_not_possible,tc_not_possible,tc_bool_2_bool));
  151. basedefconvertsexplicit : array[tbasedef,tbasedef] of tconverttype =
  152. { void, char, int, bool }
  153. ((tc_not_possible,tc_not_possible,tc_not_possible,tc_not_possible),
  154. (tc_not_possible,tc_char_2_char,tc_int_2_int,tc_int_2_bool),
  155. (tc_not_possible,tc_int_2_int,tc_int_2_int,tc_int_2_bool),
  156. (tc_not_possible,tc_bool_2_int,tc_bool_2_int,tc_bool_2_bool));
  157. var
  158. subeq,eq : tequaltype;
  159. hd1,hd2 : tdef;
  160. hct : tconverttype;
  161. hobjdef : tobjectdef;
  162. hpd : tprocdef;
  163. begin
  164. eq:=te_incompatible;
  165. doconv:=tc_not_possible;
  166. { safety check }
  167. if not(assigned(def_from) and assigned(def_to)) then
  168. begin
  169. compare_defs_ext:=te_incompatible;
  170. exit;
  171. end;
  172. { same def? then we've an exact match }
  173. if def_from=def_to then
  174. begin
  175. doconv:=tc_equal;
  176. compare_defs_ext:=te_exact;
  177. exit;
  178. end;
  179. { undefined def? then mark it as equal }
  180. if (def_from.typ=undefineddef) or
  181. (def_to.typ=undefineddef) then
  182. begin
  183. doconv:=tc_equal;
  184. compare_defs_ext:=te_exact;
  185. exit;
  186. end;
  187. { we walk the wanted (def_to) types and check then the def_from
  188. types if there is a conversion possible }
  189. case def_to.typ of
  190. orddef :
  191. begin
  192. case def_from.typ of
  193. orddef :
  194. begin
  195. if (torddef(def_from).ordtype=torddef(def_to).ordtype) then
  196. begin
  197. case torddef(def_from).ordtype of
  198. uchar,uwidechar,
  199. u8bit,u16bit,u32bit,u64bit,
  200. s8bit,s16bit,s32bit,s64bit:
  201. begin
  202. if (torddef(def_from).low>=torddef(def_to).low) and
  203. (torddef(def_from).high<=torddef(def_to).high) then
  204. eq:=te_equal
  205. else
  206. begin
  207. doconv:=tc_int_2_int;
  208. eq:=te_convert_l1;
  209. end;
  210. end;
  211. uvoid,
  212. pasbool,bool8bit,bool16bit,bool32bit,bool64bit:
  213. eq:=te_equal;
  214. else
  215. internalerror(200210061);
  216. end;
  217. end
  218. else
  219. begin
  220. if cdo_explicit in cdoptions then
  221. doconv:=basedefconvertsexplicit[basedeftbl[torddef(def_from).ordtype],basedeftbl[torddef(def_to).ordtype]]
  222. else
  223. doconv:=basedefconvertsimplicit[basedeftbl[torddef(def_from).ordtype],basedeftbl[torddef(def_to).ordtype]];
  224. if (doconv=tc_not_possible) then
  225. eq:=te_incompatible
  226. else if (not is_in_limit(def_from,def_to)) then
  227. { "punish" bad type conversions :) (JM) }
  228. eq:=te_convert_l3
  229. else
  230. eq:=te_convert_l1;
  231. end;
  232. end;
  233. enumdef :
  234. begin
  235. { needed for char(enum) }
  236. if cdo_explicit in cdoptions then
  237. begin
  238. doconv:=tc_int_2_int;
  239. eq:=te_convert_l1;
  240. end;
  241. end;
  242. floatdef :
  243. begin
  244. if is_currency(def_to) then
  245. begin
  246. doconv:=tc_real_2_currency;
  247. eq:=te_convert_l2;
  248. end;
  249. end;
  250. objectdef:
  251. begin
  252. if (m_delphi in current_settings.modeswitches) and
  253. is_implicit_pointer_object_type(def_from) and
  254. (cdo_explicit in cdoptions) then
  255. begin
  256. eq:=te_convert_l1;
  257. if (fromtreetype=niln) then
  258. begin
  259. { will be handled by the constant folding }
  260. doconv:=tc_equal;
  261. end
  262. else
  263. doconv:=tc_int_2_int;
  264. end;
  265. end;
  266. classrefdef,
  267. procvardef,
  268. pointerdef :
  269. begin
  270. if cdo_explicit in cdoptions then
  271. begin
  272. eq:=te_convert_l1;
  273. if (fromtreetype=niln) then
  274. begin
  275. { will be handled by the constant folding }
  276. doconv:=tc_equal;
  277. end
  278. else
  279. doconv:=tc_int_2_int;
  280. end;
  281. end;
  282. arraydef :
  283. begin
  284. if (m_mac in current_settings.modeswitches) and
  285. (fromtreetype=stringconstn) then
  286. begin
  287. eq:=te_convert_l3;
  288. doconv:=tc_cstring_2_int;
  289. end;
  290. end;
  291. end;
  292. end;
  293. stringdef :
  294. begin
  295. case def_from.typ of
  296. stringdef :
  297. begin
  298. { Constant string }
  299. if (fromtreetype=stringconstn) then
  300. begin
  301. if (tstringdef(def_from).stringtype=tstringdef(def_to).stringtype) then
  302. eq:=te_equal
  303. else
  304. begin
  305. doconv:=tc_string_2_string;
  306. { Don't prefer conversions from widestring to a
  307. normal string as we can lose information }
  308. if (tstringdef(def_from).stringtype in [st_widestring,st_unicodestring]) and
  309. not (tstringdef(def_to).stringtype in [st_widestring,st_unicodestring]) then
  310. eq:=te_convert_l3
  311. else if tstringdef(def_to).stringtype in [st_widestring,st_unicodestring] then
  312. eq:=te_convert_l2
  313. else
  314. eq:=te_equal;
  315. end;
  316. end
  317. else
  318. { Same string type, for shortstrings also the length must match }
  319. if (tstringdef(def_from).stringtype=tstringdef(def_to).stringtype) and
  320. ((tstringdef(def_from).stringtype<>st_shortstring) or
  321. (tstringdef(def_from).len=tstringdef(def_to).len)) then
  322. eq:=te_equal
  323. else
  324. begin
  325. doconv:=tc_string_2_string;
  326. case tstringdef(def_from).stringtype of
  327. st_widestring :
  328. begin
  329. { Prefer conversions to unicodestring }
  330. if tstringdef(def_to).stringtype=st_unicodestring then
  331. eq:=te_convert_l1
  332. { else prefer conversions to ansistring }
  333. else if tstringdef(def_to).stringtype=st_ansistring then
  334. eq:=te_convert_l2
  335. else
  336. eq:=te_convert_l3;
  337. end;
  338. st_unicodestring :
  339. begin
  340. { Prefer conversions to widestring }
  341. if tstringdef(def_to).stringtype=st_widestring then
  342. eq:=te_convert_l1
  343. { else prefer conversions to ansistring }
  344. else if tstringdef(def_to).stringtype=st_ansistring then
  345. eq:=te_convert_l2
  346. else
  347. eq:=te_convert_l3;
  348. end;
  349. st_shortstring :
  350. begin
  351. { Prefer shortstrings of different length or conversions
  352. from shortstring to ansistring }
  353. if (tstringdef(def_to).stringtype=st_shortstring) then
  354. eq:=te_convert_l1
  355. else if tstringdef(def_to).stringtype=st_ansistring then
  356. eq:=te_convert_l2
  357. else
  358. eq:=te_convert_l3;
  359. end;
  360. st_ansistring :
  361. begin
  362. { Prefer conversion to widestrings }
  363. if (tstringdef(def_to).stringtype in [st_widestring,st_unicodestring]) then
  364. eq:=te_convert_l2
  365. else
  366. eq:=te_convert_l3;
  367. end;
  368. end;
  369. end;
  370. end;
  371. orddef :
  372. begin
  373. { char to string}
  374. if is_char(def_from) or
  375. is_widechar(def_from) then
  376. begin
  377. doconv:=tc_char_2_string;
  378. eq:=te_convert_l1;
  379. end;
  380. end;
  381. arraydef :
  382. begin
  383. { array of char to string, the length check is done by the firstpass of this node }
  384. if is_chararray(def_from) or is_open_chararray(def_from) then
  385. begin
  386. { "Untyped" stringconstn is an array of char }
  387. if fromtreetype=stringconstn then
  388. begin
  389. doconv:=tc_string_2_string;
  390. { prefered string type depends on the $H switch }
  391. if not(cs_ansistrings in current_settings.localswitches) and
  392. (tstringdef(def_to).stringtype=st_shortstring) then
  393. eq:=te_equal
  394. else if (cs_ansistrings in current_settings.localswitches) and
  395. (tstringdef(def_to).stringtype=st_ansistring) then
  396. eq:=te_equal
  397. else if tstringdef(def_to).stringtype in [st_widestring,st_unicodestring] then
  398. eq:=te_convert_l3
  399. else
  400. eq:=te_convert_l1;
  401. end
  402. else
  403. begin
  404. doconv:=tc_chararray_2_string;
  405. if is_open_array(def_from) then
  406. begin
  407. if is_ansistring(def_to) then
  408. eq:=te_convert_l1
  409. else if is_widestring(def_to) or is_unicodestring(def_to) then
  410. eq:=te_convert_l3
  411. else
  412. eq:=te_convert_l2;
  413. end
  414. else
  415. begin
  416. if is_shortstring(def_to) then
  417. begin
  418. { Only compatible with arrays that fit
  419. smaller than 255 chars }
  420. if (def_from.size <= 255) then
  421. eq:=te_convert_l1;
  422. end
  423. else if is_ansistring(def_to) then
  424. begin
  425. if (def_from.size > 255) then
  426. eq:=te_convert_l1
  427. else
  428. eq:=te_convert_l2;
  429. end
  430. else if is_widestring(def_to) or is_unicodestring(def_to) then
  431. eq:=te_convert_l3
  432. else
  433. eq:=te_convert_l2;
  434. end;
  435. end;
  436. end
  437. else
  438. { array of widechar to string, the length check is done by the firstpass of this node }
  439. if is_widechararray(def_from) or is_open_widechararray(def_from) then
  440. begin
  441. doconv:=tc_chararray_2_string;
  442. if is_widestring(def_to) or is_unicodestring(def_to) then
  443. eq:=te_convert_l1
  444. else
  445. { size of widechar array is double due the sizeof a widechar }
  446. if not(is_shortstring(def_to) and (is_open_widechararray(def_from) or (def_from.size>255*sizeof(widechar)))) then
  447. eq:=te_convert_l3
  448. else
  449. eq:=te_convert_l2;
  450. end;
  451. end;
  452. pointerdef :
  453. begin
  454. { pchar can be assigned to short/ansistrings,
  455. but not in tp7 compatible mode }
  456. if not(m_tp7 in current_settings.modeswitches) then
  457. begin
  458. if is_pchar(def_from) then
  459. begin
  460. doconv:=tc_pchar_2_string;
  461. { prefer ansistrings because pchars can overflow shortstrings, }
  462. { but only if ansistrings are the default (JM) }
  463. if (is_shortstring(def_to) and
  464. not(cs_ansistrings in current_settings.localswitches)) or
  465. (is_ansistring(def_to) and
  466. (cs_ansistrings in current_settings.localswitches)) then
  467. eq:=te_convert_l1
  468. else
  469. eq:=te_convert_l2;
  470. end
  471. else if is_pwidechar(def_from) then
  472. begin
  473. doconv:=tc_pwchar_2_string;
  474. if is_widestring(def_to) or is_unicodestring(def_to) then
  475. eq:=te_convert_l1
  476. else
  477. eq:=te_convert_l3;
  478. end;
  479. end;
  480. end;
  481. objectdef :
  482. begin
  483. { corba interface -> id string }
  484. if is_interfacecorba(def_from) then
  485. begin
  486. doconv:=tc_intf_2_string;
  487. eq:=te_convert_l1;
  488. end;
  489. end;
  490. end;
  491. end;
  492. floatdef :
  493. begin
  494. case def_from.typ of
  495. orddef :
  496. begin { ordinal to real }
  497. { only for implicit and internal typecasts in tp/delphi }
  498. if (([cdo_explicit,cdo_internal] * cdoptions <> [cdo_explicit]) or
  499. ([m_tp7,m_delphi] * current_settings.modeswitches = [])) and
  500. (is_integer(def_from) or
  501. (is_currency(def_from) and
  502. (s64currencytype.typ = floatdef))) then
  503. begin
  504. doconv:=tc_int_2_real;
  505. eq:=te_convert_l4;
  506. end
  507. else if is_currency(def_from)
  508. { and (s64currencytype.typ = orddef)) } then
  509. begin
  510. { prefer conversion to orddef in this case, unless }
  511. { the orddef < currency (then it will get convert l3, }
  512. { and conversion to float is favoured) }
  513. doconv:=tc_int_2_real;
  514. eq:=te_convert_l2;
  515. end;
  516. end;
  517. floatdef :
  518. begin
  519. if tfloatdef(def_from).floattype=tfloatdef(def_to).floattype then
  520. eq:=te_equal
  521. else
  522. begin
  523. { Delphi does not allow explicit type conversions for float types like:
  524. single_var:=single(double_var);
  525. But if such conversion is inserted by compiler (internal) for some purpose,
  526. it should be allowed even in Delphi mode. }
  527. if (fromtreetype=realconstn) or
  528. not((cdoptions*[cdo_explicit,cdo_internal]=[cdo_explicit]) and
  529. (m_delphi in current_settings.modeswitches)) then
  530. begin
  531. doconv:=tc_real_2_real;
  532. { do we lose precision? }
  533. if def_to.size<def_from.size then
  534. eq:=te_convert_l2
  535. else
  536. eq:=te_convert_l1;
  537. end;
  538. end;
  539. end;
  540. end;
  541. end;
  542. enumdef :
  543. begin
  544. case def_from.typ of
  545. enumdef :
  546. begin
  547. if cdo_explicit in cdoptions then
  548. begin
  549. eq:=te_convert_l1;
  550. doconv:=tc_int_2_int;
  551. end
  552. else
  553. begin
  554. hd1:=def_from;
  555. while assigned(tenumdef(hd1).basedef) do
  556. hd1:=tenumdef(hd1).basedef;
  557. hd2:=def_to;
  558. while assigned(tenumdef(hd2).basedef) do
  559. hd2:=tenumdef(hd2).basedef;
  560. if (hd1=hd2) then
  561. begin
  562. eq:=te_convert_l1;
  563. { because of packenum they can have different sizes! (JM) }
  564. doconv:=tc_int_2_int;
  565. end
  566. else
  567. begin
  568. { assignment of an enum symbol to an unique type? }
  569. if (fromtreetype=ordconstn) and
  570. (tenumsym(tenumdef(hd1).getfirstsym)=tenumsym(tenumdef(hd2).getfirstsym)) then
  571. begin
  572. { because of packenum they can have different sizes! (JM) }
  573. eq:=te_convert_l1;
  574. doconv:=tc_int_2_int;
  575. end;
  576. end;
  577. end;
  578. end;
  579. orddef :
  580. begin
  581. if cdo_explicit in cdoptions then
  582. begin
  583. eq:=te_convert_l1;
  584. doconv:=tc_int_2_int;
  585. end;
  586. end;
  587. variantdef :
  588. begin
  589. eq:=te_convert_l1;
  590. doconv:=tc_variant_2_enum;
  591. end;
  592. pointerdef :
  593. begin
  594. { ugly, but delphi allows it }
  595. if (cdo_explicit in cdoptions) and
  596. (m_delphi in current_settings.modeswitches) then
  597. begin
  598. doconv:=tc_int_2_int;
  599. eq:=te_convert_l1;
  600. end;
  601. end;
  602. objectdef:
  603. begin
  604. { ugly, but delphi allows it }
  605. if (m_delphi in current_settings.modeswitches) and
  606. is_class_or_interface_or_dispinterface(def_from) and
  607. (cdo_explicit in cdoptions) then
  608. begin
  609. doconv:=tc_int_2_int;
  610. eq:=te_convert_l1;
  611. end;
  612. end;
  613. end;
  614. end;
  615. arraydef :
  616. begin
  617. { open array is also compatible with a single element of its base type.
  618. the extra check for deftyp is needed because equal defs can also return
  619. true if the def types are not the same, for example with dynarray to pointer. }
  620. if is_open_array(def_to) and
  621. (def_from.typ=tarraydef(def_to).elementdef.typ) and
  622. equal_defs(def_from,tarraydef(def_to).elementdef) then
  623. begin
  624. doconv:=tc_equal;
  625. eq:=te_convert_l1;
  626. end
  627. else
  628. begin
  629. case def_from.typ of
  630. arraydef :
  631. begin
  632. { from/to packed array -- packed chararrays are }
  633. { strings in ISO Pascal (at least if the lower bound }
  634. { is 1, but GPC makes all equal-length chararrays }
  635. { compatible), so treat those the same as regular }
  636. { char arrays }
  637. if (is_packed_array(def_from) and
  638. not is_chararray(def_from) and
  639. not is_widechararray(def_from)) xor
  640. (is_packed_array(def_to) and
  641. not is_chararray(def_to) and
  642. not is_widechararray(def_to)) then
  643. { both must be packed }
  644. begin
  645. compare_defs_ext:=te_incompatible;
  646. exit;
  647. end
  648. { to dynamic array }
  649. else if is_dynamic_array(def_to) then
  650. begin
  651. if equal_defs(tarraydef(def_from).elementdef,tarraydef(def_to).elementdef) then
  652. begin
  653. { dynamic array -> dynamic array }
  654. if is_dynamic_array(def_from) then
  655. eq:=te_equal
  656. { fpc modes only: array -> dyn. array }
  657. else if (current_settings.modeswitches*[m_objfpc,m_fpc]<>[]) and
  658. not(is_special_array(def_from)) and
  659. is_zero_based_array(def_from) then
  660. begin
  661. eq:=te_convert_l2;
  662. doconv:=tc_array_2_dynarray;
  663. end;
  664. end
  665. end
  666. else
  667. { to open array }
  668. if is_open_array(def_to) then
  669. begin
  670. { array constructor -> open array }
  671. if is_array_constructor(def_from) then
  672. begin
  673. if is_void(tarraydef(def_from).elementdef) then
  674. begin
  675. doconv:=tc_equal;
  676. eq:=te_convert_l1;
  677. end
  678. else
  679. begin
  680. subeq:=compare_defs_ext(tarraydef(def_from).elementdef,
  681. tarraydef(def_to).elementdef,
  682. { reason for cdo_allow_variant: see webtbs/tw7070a and webtbs/tw7070b }
  683. arrayconstructorn,hct,hpd,[cdo_check_operator,cdo_allow_variant]);
  684. if (subeq>=te_equal) then
  685. begin
  686. doconv:=tc_equal;
  687. eq:=te_convert_l1;
  688. end
  689. else
  690. if (subeq>te_incompatible) then
  691. begin
  692. doconv:=hct;
  693. eq:=te_convert_l2;
  694. end;
  695. end;
  696. end
  697. else
  698. { dynamic array -> open array }
  699. if is_dynamic_array(def_from) and
  700. equal_defs(tarraydef(def_from).elementdef,tarraydef(def_to).elementdef) then
  701. begin
  702. doconv:=tc_dynarray_2_openarray;
  703. eq:=te_convert_l2;
  704. end
  705. else
  706. { open array -> open array }
  707. if is_open_array(def_from) and
  708. equal_defs(tarraydef(def_from).elementdef,tarraydef(def_to).elementdef) then
  709. if tarraydef(def_from).elementdef=tarraydef(def_to).elementdef then
  710. eq:=te_exact
  711. else
  712. eq:=te_equal
  713. else
  714. { array -> open array }
  715. if not(cdo_parameter in cdoptions) and
  716. equal_defs(tarraydef(def_from).elementdef,tarraydef(def_to).elementdef) then
  717. begin
  718. if fromtreetype=stringconstn then
  719. eq:=te_convert_l1
  720. else
  721. eq:=te_equal;
  722. end;
  723. end
  724. else
  725. { to array of const }
  726. if is_array_of_const(def_to) then
  727. begin
  728. if is_array_of_const(def_from) or
  729. is_array_constructor(def_from) then
  730. begin
  731. eq:=te_equal;
  732. end
  733. else
  734. { array of tvarrec -> array of const }
  735. if equal_defs(tarraydef(def_to).elementdef,tarraydef(def_from).elementdef) then
  736. begin
  737. doconv:=tc_equal;
  738. eq:=te_convert_l1;
  739. end;
  740. end
  741. else
  742. { to array of char, from "Untyped" stringconstn (array of char) }
  743. if (fromtreetype=stringconstn) and
  744. (is_chararray(def_to) or
  745. is_widechararray(def_to)) then
  746. begin
  747. eq:=te_convert_l1;
  748. doconv:=tc_string_2_chararray;
  749. end
  750. else
  751. { other arrays }
  752. begin
  753. { open array -> array }
  754. if not(cdo_parameter in cdoptions) and
  755. is_open_array(def_from) and
  756. equal_defs(tarraydef(def_from).elementdef,tarraydef(def_to).elementdef) then
  757. begin
  758. eq:=te_equal
  759. end
  760. else
  761. { array -> array }
  762. if not(m_tp7 in current_settings.modeswitches) and
  763. not(m_delphi in current_settings.modeswitches) and
  764. (tarraydef(def_from).lowrange=tarraydef(def_to).lowrange) and
  765. (tarraydef(def_from).highrange=tarraydef(def_to).highrange) and
  766. equal_defs(tarraydef(def_from).elementdef,tarraydef(def_to).elementdef) and
  767. equal_defs(tarraydef(def_from).rangedef,tarraydef(def_to).rangedef) then
  768. begin
  769. eq:=te_equal
  770. end;
  771. end;
  772. end;
  773. pointerdef :
  774. begin
  775. { nil and voidpointers are compatible with dyn. arrays }
  776. if is_dynamic_array(def_to) and
  777. ((fromtreetype=niln) or
  778. is_voidpointer(def_from)) then
  779. begin
  780. doconv:=tc_equal;
  781. eq:=te_convert_l1;
  782. end
  783. else
  784. if is_zero_based_array(def_to) and
  785. equal_defs(tpointerdef(def_from).pointeddef,tarraydef(def_to).elementdef) then
  786. begin
  787. doconv:=tc_pointer_2_array;
  788. eq:=te_convert_l1;
  789. end;
  790. end;
  791. stringdef :
  792. begin
  793. { string to char array }
  794. if (not is_special_array(def_to)) and
  795. (is_char(tarraydef(def_to).elementdef)or
  796. is_widechar(tarraydef(def_to).elementdef)) then
  797. begin
  798. doconv:=tc_string_2_chararray;
  799. eq:=te_convert_l1;
  800. end;
  801. end;
  802. orddef:
  803. begin
  804. if is_chararray(def_to) and
  805. is_char(def_from) then
  806. begin
  807. doconv:=tc_char_2_chararray;
  808. eq:=te_convert_l2;
  809. end;
  810. end;
  811. recorddef :
  812. begin
  813. { tvarrec -> array of const }
  814. if is_array_of_const(def_to) and
  815. equal_defs(def_from,tarraydef(def_to).elementdef) then
  816. begin
  817. doconv:=tc_equal;
  818. eq:=te_convert_l1;
  819. end;
  820. end;
  821. variantdef :
  822. begin
  823. if is_dynamic_array(def_to) then
  824. begin
  825. doconv:=tc_variant_2_dynarray;
  826. eq:=te_convert_l1;
  827. end;
  828. end;
  829. end;
  830. end;
  831. end;
  832. variantdef :
  833. begin
  834. if (cdo_allow_variant in cdoptions) then
  835. begin
  836. case def_from.typ of
  837. enumdef :
  838. begin
  839. doconv:=tc_enum_2_variant;
  840. eq:=te_convert_l1;
  841. end;
  842. arraydef :
  843. begin
  844. if is_dynamic_array(def_from) then
  845. begin
  846. doconv:=tc_dynarray_2_variant;
  847. eq:=te_convert_l1;
  848. end;
  849. end;
  850. objectdef :
  851. begin
  852. { corbainterfaces not accepted, until we have
  853. runtime support for them in Variants (sergei) }
  854. if is_interfacecom_or_dispinterface(def_from) then
  855. begin
  856. doconv:=tc_interface_2_variant;
  857. eq:=te_convert_l1;
  858. end;
  859. end;
  860. variantdef :
  861. begin
  862. { doing this in the compiler avoids a lot of unncessary
  863. copying }
  864. if (tvariantdef(def_from).varianttype=vt_olevariant) and
  865. (tvariantdef(def_to).varianttype=vt_normalvariant) then
  866. begin
  867. doconv:=tc_equal;
  868. eq:=te_convert_l1;
  869. end;
  870. end;
  871. end;
  872. end;
  873. end;
  874. pointerdef :
  875. begin
  876. case def_from.typ of
  877. stringdef :
  878. begin
  879. { string constant (which can be part of array constructor)
  880. to zero terminated string constant }
  881. if (fromtreetype = stringconstn) and
  882. (is_pchar(def_to) or is_pwidechar(def_to)) then
  883. begin
  884. doconv:=tc_cstring_2_pchar;
  885. eq:=te_convert_l2;
  886. end
  887. else
  888. if (cdo_explicit in cdoptions) or (fromtreetype = arrayconstructorn) then
  889. begin
  890. { pchar(ansistring) }
  891. if is_pchar(def_to) and
  892. is_ansistring(def_from) then
  893. begin
  894. doconv:=tc_ansistring_2_pchar;
  895. eq:=te_convert_l1;
  896. end
  897. else
  898. { pwidechar(widestring) }
  899. if is_pwidechar(def_to) and
  900. is_wide_or_unicode_string(def_from) then
  901. begin
  902. doconv:=tc_ansistring_2_pchar;
  903. eq:=te_convert_l1;
  904. end;
  905. end;
  906. end;
  907. orddef :
  908. begin
  909. { char constant to zero terminated string constant }
  910. if (fromtreetype in [ordconstn,arrayconstructorn]) then
  911. begin
  912. if (is_char(def_from) or is_widechar(def_from)) and
  913. (is_pchar(def_to) or is_pwidechar(def_to)) then
  914. begin
  915. doconv:=tc_cchar_2_pchar;
  916. eq:=te_convert_l1;
  917. end
  918. else
  919. if (m_delphi in current_settings.modeswitches) and is_integer(def_from) then
  920. begin
  921. doconv:=tc_cord_2_pointer;
  922. eq:=te_convert_l5;
  923. end;
  924. end;
  925. { allow explicit typecasts from ordinals to pointer.
  926. Support for delphi compatibility
  927. Support constructs like pointer(cardinal-cardinal) or pointer(longint+cardinal) where
  928. the result of the ordinal operation is int64 also on 32 bit platforms.
  929. It is also used by the compiler internally for inc(pointer,ordinal) }
  930. if (eq=te_incompatible) and
  931. not is_void(def_from) and
  932. (
  933. (
  934. (cdo_explicit in cdoptions) and
  935. (
  936. (m_delphi in current_settings.modeswitches) or
  937. { Don't allow pchar(char) in fpc modes }
  938. is_integer(def_from)
  939. )
  940. ) or
  941. (cdo_internal in cdoptions)
  942. ) then
  943. begin
  944. doconv:=tc_int_2_int;
  945. eq:=te_convert_l1;
  946. end;
  947. end;
  948. enumdef :
  949. begin
  950. { allow explicit typecasts from enums to pointer.
  951. Support for delphi compatibility
  952. }
  953. if (((cdo_explicit in cdoptions) and
  954. (m_delphi in current_settings.modeswitches)
  955. ) or
  956. (cdo_internal in cdoptions)
  957. ) then
  958. begin
  959. doconv:=tc_int_2_int;
  960. eq:=te_convert_l1;
  961. end;
  962. end;
  963. arraydef :
  964. begin
  965. { string constant (which can be part of array constructor)
  966. to zero terminated string constant }
  967. if (((fromtreetype = arrayconstructorn) and
  968. { can't use is_chararray, because returns false for }
  969. { array constructors }
  970. is_char(tarraydef(def_from).elementdef)) or
  971. (fromtreetype = stringconstn)) and
  972. (is_pchar(def_to) or is_pwidechar(def_to)) then
  973. begin
  974. doconv:=tc_cstring_2_pchar;
  975. eq:=te_convert_l2;
  976. end
  977. else
  978. { chararray to pointer }
  979. if (is_zero_based_array(def_from) or
  980. is_open_array(def_from)) and
  981. equal_defs(tarraydef(def_from).elementdef,tpointerdef(def_to).pointeddef) then
  982. begin
  983. doconv:=tc_array_2_pointer;
  984. { don't prefer the pchar overload when a constant
  985. string was passed }
  986. if fromtreetype=stringconstn then
  987. eq:=te_convert_l2
  988. else
  989. eq:=te_convert_l1;
  990. end
  991. else
  992. { dynamic array to pointer, delphi only }
  993. if (m_delphi in current_settings.modeswitches) and
  994. is_dynamic_array(def_from) and
  995. is_voidpointer(def_to) then
  996. begin
  997. eq:=te_equal;
  998. end;
  999. end;
  1000. pointerdef :
  1001. begin
  1002. { check for far pointers }
  1003. if (tpointerdef(def_from).is_far<>tpointerdef(def_to).is_far) then
  1004. begin
  1005. eq:=te_incompatible;
  1006. end
  1007. else
  1008. { the types can be forward type, handle before normal type check !! }
  1009. if assigned(def_to.typesym) and
  1010. (tpointerdef(def_to).pointeddef.typ=forwarddef) then
  1011. begin
  1012. if (def_from.typesym=def_to.typesym) then
  1013. eq:=te_equal
  1014. end
  1015. else
  1016. { same types }
  1017. if equal_defs(tpointerdef(def_from).pointeddef,tpointerdef(def_to).pointeddef) then
  1018. begin
  1019. eq:=te_equal
  1020. end
  1021. else
  1022. { child class pointer can be assigned to anchestor pointers }
  1023. if (
  1024. (tpointerdef(def_from).pointeddef.typ=objectdef) and
  1025. (tpointerdef(def_to).pointeddef.typ=objectdef) and
  1026. tobjectdef(tpointerdef(def_from).pointeddef).is_related(
  1027. tobjectdef(tpointerdef(def_to).pointeddef))
  1028. ) then
  1029. begin
  1030. doconv:=tc_equal;
  1031. eq:=te_convert_l1;
  1032. end
  1033. else
  1034. { all pointers can be assigned to void-pointer }
  1035. if is_void(tpointerdef(def_to).pointeddef) then
  1036. begin
  1037. doconv:=tc_equal;
  1038. { give pwidechar,pchar a penalty so it prefers
  1039. conversion to ansistring }
  1040. if is_pchar(def_from) or
  1041. is_pwidechar(def_from) then
  1042. eq:=te_convert_l2
  1043. else
  1044. eq:=te_convert_l1;
  1045. end
  1046. else
  1047. { all pointers can be assigned from void-pointer }
  1048. if is_void(tpointerdef(def_from).pointeddef) or
  1049. { all pointers can be assigned from void-pointer or formaldef pointer, check
  1050. tw3777.pp if you change this }
  1051. (tpointerdef(def_from).pointeddef.typ=formaldef) then
  1052. begin
  1053. doconv:=tc_equal;
  1054. { give pwidechar a penalty so it prefers
  1055. conversion to pchar }
  1056. if is_pwidechar(def_to) then
  1057. eq:=te_convert_l2
  1058. else
  1059. eq:=te_convert_l1;
  1060. end
  1061. { id = generic class instance. metaclasses are also
  1062. class instances themselves. }
  1063. else if ((def_from=objc_idtype) and
  1064. (def_to=objc_metaclasstype)) or
  1065. ((def_to=objc_idtype) and
  1066. (def_from=objc_metaclasstype)) then
  1067. begin
  1068. doconv:=tc_equal;
  1069. eq:=te_convert_l2;
  1070. end;
  1071. end;
  1072. procvardef :
  1073. begin
  1074. { procedure variable can be assigned to an void pointer,
  1075. this is not allowed for complex procvars }
  1076. if (is_void(tpointerdef(def_to).pointeddef) or
  1077. (m_mac_procvar in current_settings.modeswitches)) and
  1078. tprocvardef(def_from).is_addressonly then
  1079. begin
  1080. doconv:=tc_equal;
  1081. eq:=te_convert_l1;
  1082. end;
  1083. end;
  1084. procdef :
  1085. begin
  1086. { procedure variable can be assigned to an void pointer,
  1087. this not allowed for methodpointers }
  1088. if (m_mac_procvar in current_settings.modeswitches) and
  1089. tprocdef(def_from).is_addressonly then
  1090. begin
  1091. doconv:=tc_proc_2_procvar;
  1092. eq:=te_convert_l2;
  1093. end;
  1094. end;
  1095. classrefdef,
  1096. objectdef :
  1097. begin
  1098. { implicit pointer object and class reference types
  1099. can be assigned to void pointers, but it is less
  1100. preferred than assigning to a related objectdef }
  1101. if (
  1102. is_implicit_pointer_object_type(def_from) or
  1103. (def_from.typ=classrefdef)
  1104. ) and
  1105. (tpointerdef(def_to).pointeddef.typ=orddef) and
  1106. (torddef(tpointerdef(def_to).pointeddef).ordtype=uvoid) then
  1107. begin
  1108. doconv:=tc_equal;
  1109. eq:=te_convert_l2;
  1110. end
  1111. else if (is_objc_class_or_protocol(def_from) and
  1112. (def_to=objc_idtype)) or
  1113. { classrefs are also instances in Objective-C,
  1114. hence they're also assignment-cpmpatible with
  1115. id }
  1116. (is_objcclassref(def_from) and
  1117. ((def_to=objc_metaclasstype) or
  1118. (def_to=objc_idtype))) then
  1119. begin
  1120. doconv:=tc_equal;
  1121. eq:=te_convert_l2;
  1122. end;
  1123. end;
  1124. end;
  1125. end;
  1126. setdef :
  1127. begin
  1128. case def_from.typ of
  1129. setdef :
  1130. begin
  1131. if assigned(tsetdef(def_from).elementdef) and
  1132. assigned(tsetdef(def_to).elementdef) then
  1133. begin
  1134. { sets with the same element base type and the same range are equal }
  1135. if equal_defs(tsetdef(def_from).elementdef,tsetdef(def_to).elementdef) and
  1136. (tsetdef(def_from).setbase=tsetdef(def_to).setbase) and
  1137. (tsetdef(def_from).setmax=tsetdef(def_to).setmax) then
  1138. eq:=te_equal
  1139. else if is_subequal(tsetdef(def_from).elementdef,tsetdef(def_to).elementdef) then
  1140. begin
  1141. eq:=te_convert_l1;
  1142. doconv:=tc_set_to_set;
  1143. end;
  1144. end
  1145. else
  1146. begin
  1147. { empty set is compatible with everything }
  1148. eq:=te_convert_l1;
  1149. doconv:=tc_set_to_set;
  1150. end;
  1151. end;
  1152. arraydef :
  1153. begin
  1154. { automatic arrayconstructor -> set conversion }
  1155. if is_array_constructor(def_from) then
  1156. begin
  1157. doconv:=tc_arrayconstructor_2_set;
  1158. eq:=te_convert_l1;
  1159. end;
  1160. end;
  1161. end;
  1162. end;
  1163. procvardef :
  1164. begin
  1165. case def_from.typ of
  1166. procdef :
  1167. begin
  1168. { proc -> procvar }
  1169. if (m_tp_procvar in current_settings.modeswitches) or
  1170. (m_mac_procvar in current_settings.modeswitches) then
  1171. begin
  1172. subeq:=proc_to_procvar_equal(tprocdef(def_from),tprocvardef(def_to),cdo_warn_incompatible_univ in cdoptions);
  1173. if subeq>te_incompatible then
  1174. begin
  1175. doconv:=tc_proc_2_procvar;
  1176. if subeq>te_convert_l5 then
  1177. eq:=pred(subeq)
  1178. else
  1179. eq:=subeq;
  1180. end;
  1181. end;
  1182. end;
  1183. procvardef :
  1184. begin
  1185. { procvar -> procvar }
  1186. eq:=proc_to_procvar_equal(tprocvardef(def_from),tprocvardef(def_to),cdo_warn_incompatible_univ in cdoptions);
  1187. end;
  1188. pointerdef :
  1189. begin
  1190. { nil is compatible with procvars }
  1191. if (fromtreetype=niln) then
  1192. begin
  1193. if not Tprocvardef(def_to).is_addressonly then
  1194. {Nil to method pointers requires to convert a single
  1195. pointer nil value to a two pointer procvardef.}
  1196. doconv:=tc_nil_2_methodprocvar
  1197. else
  1198. doconv:=tc_equal;
  1199. eq:=te_convert_l1;
  1200. end
  1201. else
  1202. { for example delphi allows the assignement from pointers }
  1203. { to procedure variables }
  1204. if (m_pointer_2_procedure in current_settings.modeswitches) and
  1205. is_void(tpointerdef(def_from).pointeddef) and
  1206. tprocvardef(def_to).is_addressonly then
  1207. begin
  1208. doconv:=tc_equal;
  1209. eq:=te_convert_l1;
  1210. end;
  1211. end;
  1212. end;
  1213. end;
  1214. objectdef :
  1215. begin
  1216. { Objective-C classes (handle anonymous externals) }
  1217. if (def_from.typ=objectdef) and
  1218. (find_real_objcclass_definition(tobjectdef(def_from),false) =
  1219. find_real_objcclass_definition(tobjectdef(def_to),false)) then
  1220. begin
  1221. doconv:=tc_equal;
  1222. { exact, not equal, because can change between interface
  1223. and implementation }
  1224. eq:=te_exact;
  1225. end
  1226. { object pascal objects }
  1227. else if (def_from.typ=objectdef) and
  1228. (tobjectdef(def_from).is_related(tobjectdef(def_to))) then
  1229. begin
  1230. doconv:=tc_equal;
  1231. eq:=te_convert_l1;
  1232. end
  1233. else
  1234. { specific to implicit pointer object types }
  1235. if is_implicit_pointer_object_type(def_to) then
  1236. begin
  1237. { void pointer also for delphi mode }
  1238. if (m_delphi in current_settings.modeswitches) and
  1239. is_voidpointer(def_from) then
  1240. begin
  1241. doconv:=tc_equal;
  1242. { prefer pointer-pointer assignments }
  1243. eq:=te_convert_l2;
  1244. end
  1245. else
  1246. { nil is compatible with class instances and interfaces }
  1247. if (fromtreetype=niln) then
  1248. begin
  1249. doconv:=tc_equal;
  1250. eq:=te_convert_l1;
  1251. end
  1252. { All Objective-C classes are compatible with ID }
  1253. else if is_objc_class_or_protocol(def_to) and
  1254. (def_from=objc_idtype) then
  1255. begin
  1256. doconv:=tc_equal;
  1257. eq:=te_convert_l2;
  1258. end
  1259. { classes can be assigned to interfaces
  1260. (same with objcclass and objcprotocol) }
  1261. else if ((is_interface(def_to) and
  1262. is_class(def_from)) or
  1263. (is_objcprotocol(def_to) and
  1264. is_objcclass(def_from))) and
  1265. assigned(tobjectdef(def_from).ImplementedInterfaces) then
  1266. begin
  1267. { we've to search in parent classes as well }
  1268. hobjdef:=tobjectdef(def_from);
  1269. while assigned(hobjdef) do
  1270. begin
  1271. if hobjdef.find_implemented_interface(tobjectdef(def_to))<>nil then
  1272. begin
  1273. if is_interface(def_to) then
  1274. doconv:=tc_class_2_intf
  1275. else
  1276. { for Objective-C, we don't have to do anything special }
  1277. doconv:=tc_equal;
  1278. { don't prefer this over objectdef->objectdef }
  1279. eq:=te_convert_l2;
  1280. break;
  1281. end;
  1282. hobjdef:=hobjdef.childof;
  1283. end;
  1284. end
  1285. { Interface 2 GUID handling }
  1286. else if (def_to=tdef(rec_tguid)) and
  1287. (fromtreetype=typen) and
  1288. is_interface(def_from) and
  1289. assigned(tobjectdef(def_from).iidguid) then
  1290. begin
  1291. eq:=te_convert_l1;
  1292. doconv:=tc_equal;
  1293. end
  1294. else if (def_from.typ=variantdef) and is_interfacecom_or_dispinterface(def_to) then
  1295. begin
  1296. { corbainterfaces not accepted, until we have
  1297. runtime support for them in Variants (sergei) }
  1298. doconv:=tc_variant_2_interface;
  1299. eq:=te_convert_l2;
  1300. end
  1301. { ugly, but delphi allows it }
  1302. else if (def_from.typ in [orddef,enumdef]) and
  1303. (m_delphi in current_settings.modeswitches) and
  1304. (cdo_explicit in cdoptions) then
  1305. begin
  1306. doconv:=tc_int_2_int;
  1307. eq:=te_convert_l1;
  1308. end;
  1309. end;
  1310. end;
  1311. classrefdef :
  1312. begin
  1313. { similar to pointerdef wrt forwards }
  1314. if assigned(def_to.typesym) and
  1315. (tclassrefdef(def_to).pointeddef.typ=forwarddef) then
  1316. begin
  1317. if (def_from.typesym=def_to.typesym) then
  1318. eq:=te_equal;
  1319. end
  1320. else
  1321. { class reference types }
  1322. if (def_from.typ=classrefdef) then
  1323. begin
  1324. if equal_defs(tclassrefdef(def_from).pointeddef,tclassrefdef(def_to).pointeddef) then
  1325. begin
  1326. eq:=te_equal;
  1327. end
  1328. else
  1329. begin
  1330. doconv:=tc_equal;
  1331. if (cdo_explicit in cdoptions) or
  1332. tobjectdef(tclassrefdef(def_from).pointeddef).is_related(
  1333. tobjectdef(tclassrefdef(def_to).pointeddef)) then
  1334. eq:=te_convert_l1;
  1335. end;
  1336. end
  1337. else
  1338. if (m_delphi in current_settings.modeswitches) and
  1339. is_voidpointer(def_from) then
  1340. begin
  1341. doconv:=tc_equal;
  1342. { prefer pointer-pointer assignments }
  1343. eq:=te_convert_l2;
  1344. end
  1345. else
  1346. { nil is compatible with class references }
  1347. if (fromtreetype=niln) then
  1348. begin
  1349. doconv:=tc_equal;
  1350. eq:=te_convert_l1;
  1351. end
  1352. else
  1353. { id is compatible with all classref types }
  1354. if (def_from=objc_idtype) then
  1355. begin
  1356. doconv:=tc_equal;
  1357. eq:=te_convert_l1;
  1358. end;
  1359. end;
  1360. filedef :
  1361. begin
  1362. { typed files are all equal to the abstract file type
  1363. name TYPEDFILE in system.pp in is_equal in types.pas
  1364. the problem is that it sholud be also compatible to FILE
  1365. but this would leed to a problem for ASSIGN RESET and REWRITE
  1366. when trying to find the good overloaded function !!
  1367. so all file function are doubled in system.pp
  1368. this is not very beautiful !!}
  1369. if (def_from.typ=filedef) then
  1370. begin
  1371. if (tfiledef(def_from).filetyp=tfiledef(def_to).filetyp) then
  1372. begin
  1373. if
  1374. (
  1375. (tfiledef(def_from).typedfiledef=nil) and
  1376. (tfiledef(def_to).typedfiledef=nil)
  1377. ) or
  1378. (
  1379. (tfiledef(def_from).typedfiledef<>nil) and
  1380. (tfiledef(def_to).typedfiledef<>nil) and
  1381. equal_defs(tfiledef(def_from).typedfiledef,tfiledef(def_to).typedfiledef)
  1382. ) or
  1383. (
  1384. (tfiledef(def_from).filetyp = ft_typed) and
  1385. (tfiledef(def_to).filetyp = ft_typed) and
  1386. (
  1387. (tfiledef(def_from).typedfiledef = tdef(voidtype)) or
  1388. (tfiledef(def_to).typedfiledef = tdef(voidtype))
  1389. )
  1390. ) then
  1391. begin
  1392. eq:=te_equal;
  1393. end;
  1394. end
  1395. else
  1396. if ((tfiledef(def_from).filetyp = ft_untyped) and
  1397. (tfiledef(def_to).filetyp = ft_typed)) or
  1398. ((tfiledef(def_from).filetyp = ft_typed) and
  1399. (tfiledef(def_to).filetyp = ft_untyped)) then
  1400. begin
  1401. doconv:=tc_equal;
  1402. eq:=te_convert_l1;
  1403. end;
  1404. end;
  1405. end;
  1406. recorddef :
  1407. begin
  1408. { interface -> guid }
  1409. if (def_to=rec_tguid) and
  1410. (is_interfacecom_or_dispinterface(def_from)) then
  1411. begin
  1412. doconv:=tc_intf_2_guid;
  1413. eq:=te_convert_l1;
  1414. end;
  1415. end;
  1416. formaldef :
  1417. begin
  1418. doconv:=tc_equal;
  1419. if (def_from.typ=formaldef) then
  1420. eq:=te_equal
  1421. else
  1422. { Just about everything can be converted to a formaldef...}
  1423. if not (def_from.typ in [abstractdef,errordef]) then
  1424. eq:=te_convert_l2;
  1425. end;
  1426. end;
  1427. { if we didn't find an appropriate type conversion yet
  1428. then we search also the := operator }
  1429. if (eq=te_incompatible) and
  1430. { make sure there is not a single variant if variants }
  1431. { are not allowed (otherwise if only cdo_check_operator }
  1432. { and e.g. fromdef=stringdef and todef=variantdef, then }
  1433. { the test will still succeed }
  1434. ((cdo_allow_variant in cdoptions) or
  1435. ((def_from.typ<>variantdef) and (def_to.typ<>variantdef))
  1436. ) and
  1437. (
  1438. { Check for variants? }
  1439. (
  1440. (cdo_allow_variant in cdoptions) and
  1441. ((def_from.typ=variantdef) or (def_to.typ=variantdef))
  1442. ) or
  1443. { Check for operators? }
  1444. (
  1445. (cdo_check_operator in cdoptions) and
  1446. ((def_from.typ<>variantdef) or (def_to.typ<>variantdef))
  1447. )
  1448. ) then
  1449. begin
  1450. operatorpd:=search_assignment_operator(def_from,def_to,cdo_explicit in cdoptions);
  1451. if assigned(operatorpd) then
  1452. eq:=te_convert_operator;
  1453. end;
  1454. { update convtype for te_equal when it is not yet set }
  1455. if (eq=te_equal) and
  1456. (doconv=tc_not_possible) then
  1457. doconv:=tc_equal;
  1458. compare_defs_ext:=eq;
  1459. end;
  1460. function equal_defs(def_from,def_to:tdef):boolean;
  1461. var
  1462. convtyp : tconverttype;
  1463. pd : tprocdef;
  1464. begin
  1465. { Compare defs with nothingn and no explicit typecasts and
  1466. searching for overloaded operators is not needed }
  1467. equal_defs:=(compare_defs_ext(def_from,def_to,nothingn,convtyp,pd,[])>=te_equal);
  1468. end;
  1469. function compare_defs(def_from,def_to:tdef;fromtreetype:tnodetype):tequaltype;
  1470. var
  1471. doconv : tconverttype;
  1472. pd : tprocdef;
  1473. begin
  1474. compare_defs:=compare_defs_ext(def_from,def_to,fromtreetype,doconv,pd,[cdo_check_operator,cdo_allow_variant]);
  1475. end;
  1476. function is_subequal(def1, def2: tdef): boolean;
  1477. var
  1478. basedef1,basedef2 : tenumdef;
  1479. Begin
  1480. is_subequal := false;
  1481. if assigned(def1) and assigned(def2) then
  1482. Begin
  1483. if (def1.typ = orddef) and (def2.typ = orddef) then
  1484. Begin
  1485. { see p.47 of Turbo Pascal 7.01 manual for the separation of types }
  1486. { range checking for case statements is done with testrange }
  1487. case torddef(def1).ordtype of
  1488. u8bit,u16bit,u32bit,u64bit,
  1489. s8bit,s16bit,s32bit,s64bit :
  1490. is_subequal:=(torddef(def2).ordtype in [s64bit,u64bit,s32bit,u32bit,u8bit,s8bit,s16bit,u16bit]);
  1491. pasbool,bool8bit,bool16bit,bool32bit,bool64bit :
  1492. is_subequal:=(torddef(def2).ordtype in [pasbool,bool8bit,bool16bit,bool32bit,bool64bit]);
  1493. uchar :
  1494. is_subequal:=(torddef(def2).ordtype=uchar);
  1495. uwidechar :
  1496. is_subequal:=(torddef(def2).ordtype=uwidechar);
  1497. end;
  1498. end
  1499. else
  1500. Begin
  1501. { Check if both basedefs are equal }
  1502. if (def1.typ=enumdef) and (def2.typ=enumdef) then
  1503. Begin
  1504. { get both basedefs }
  1505. basedef1:=tenumdef(def1);
  1506. while assigned(basedef1.basedef) do
  1507. basedef1:=basedef1.basedef;
  1508. basedef2:=tenumdef(def2);
  1509. while assigned(basedef2.basedef) do
  1510. basedef2:=basedef2.basedef;
  1511. is_subequal:=(basedef1=basedef2);
  1512. end;
  1513. end;
  1514. end;
  1515. end;
  1516. function potentially_incompatible_univ_paras(def1, def2: tdef): boolean;
  1517. begin
  1518. result :=
  1519. { not entirely safe: different records can be passed differently
  1520. depending on the types of their fields, but they're hard to compare
  1521. (variant records, bitpacked vs non-bitpacked) }
  1522. ((def1.typ in [floatdef,recorddef,arraydef,filedef,variantdef]) and
  1523. (def1.typ<>def2.typ)) or
  1524. { pointers, ordinals and small sets are all passed the same}
  1525. (((def1.typ in [orddef,enumdef,pointerdef,procvardef,classrefdef]) or
  1526. (is_class_or_interface_or_objc(def1)) or
  1527. is_dynamic_array(def1) or
  1528. is_smallset(def1) or
  1529. is_ansistring(def1) or
  1530. is_unicodestring(def1)) <>
  1531. (def2.typ in [orddef,enumdef,pointerdef,procvardef,classrefdef]) or
  1532. (is_class_or_interface_or_objc(def2)) or
  1533. is_dynamic_array(def2) or
  1534. is_smallset(def2) or
  1535. is_ansistring(def2) or
  1536. is_unicodestring(def2)) or
  1537. { shortstrings }
  1538. (is_shortstring(def1)<>
  1539. is_shortstring(def2)) or
  1540. { winlike widestrings }
  1541. (is_widestring(def1)<>
  1542. is_widestring(def2)) or
  1543. { TP-style objects }
  1544. (is_object(def1) <>
  1545. is_object(def2));
  1546. end;
  1547. function compare_paras(para1,para2 : TFPObjectList; acp : tcompare_paras_type; cpoptions: tcompare_paras_options):tequaltype;
  1548. var
  1549. currpara1,
  1550. currpara2 : tparavarsym;
  1551. eq,lowesteq : tequaltype;
  1552. hpd : tprocdef;
  1553. convtype : tconverttype;
  1554. cdoptions : tcompare_defs_options;
  1555. i1,i2 : byte;
  1556. begin
  1557. compare_paras:=te_incompatible;
  1558. cdoptions:=[cdo_parameter,cdo_check_operator,cdo_allow_variant];
  1559. { we need to parse the list from left-right so the
  1560. not-default parameters are checked first }
  1561. lowesteq:=high(tequaltype);
  1562. i1:=0;
  1563. i2:=0;
  1564. if cpo_ignorehidden in cpoptions then
  1565. begin
  1566. while (i1<para1.count) and
  1567. (vo_is_hidden_para in tparavarsym(para1[i1]).varoptions) do
  1568. inc(i1);
  1569. while (i2<para2.count) and
  1570. (vo_is_hidden_para in tparavarsym(para2[i2]).varoptions) do
  1571. inc(i2);
  1572. end;
  1573. if cpo_ignoreframepointer in cpoptions then
  1574. begin
  1575. if (i1<para1.count) and
  1576. (vo_is_parentfp in tparavarsym(para1[i1]).varoptions) then
  1577. inc(i1);
  1578. if (i2<para2.count) and
  1579. (vo_is_parentfp in tparavarsym(para2[i2]).varoptions) then
  1580. inc(i2);
  1581. end;
  1582. while (i1<para1.count) and (i2<para2.count) do
  1583. begin
  1584. eq:=te_incompatible;
  1585. currpara1:=tparavarsym(para1[i1]);
  1586. currpara2:=tparavarsym(para2[i2]);
  1587. { Unique types must match exact }
  1588. if ((df_unique in currpara1.vardef.defoptions) or (df_unique in currpara2.vardef.defoptions)) and
  1589. (currpara1.vardef<>currpara2.vardef) then
  1590. exit;
  1591. { Handle hidden parameters separately, because self is
  1592. defined as voidpointer for methodpointers }
  1593. if (vo_is_hidden_para in currpara1.varoptions) or
  1594. (vo_is_hidden_para in currpara2.varoptions) then
  1595. begin
  1596. { both must be hidden }
  1597. if (vo_is_hidden_para in currpara1.varoptions)<>(vo_is_hidden_para in currpara2.varoptions) then
  1598. exit;
  1599. eq:=te_exact;
  1600. if not(vo_is_self in currpara1.varoptions) and
  1601. not(vo_is_self in currpara2.varoptions) then
  1602. begin
  1603. if not(cpo_ignorevarspez in cpoptions) and
  1604. (currpara1.varspez<>currpara2.varspez) then
  1605. exit;
  1606. eq:=compare_defs_ext(currpara1.vardef,currpara2.vardef,nothingn,
  1607. convtype,hpd,cdoptions);
  1608. end;
  1609. end
  1610. else
  1611. begin
  1612. case acp of
  1613. cp_value_equal_const :
  1614. begin
  1615. { this one is used for matching parameters from a call
  1616. statement to a procdef -> univ state can't be equal
  1617. in any case since the call statement does not contain
  1618. any information about that }
  1619. if (
  1620. not(cpo_ignorevarspez in cpoptions) and
  1621. (currpara1.varspez<>currpara2.varspez) and
  1622. ((currpara1.varspez in [vs_var,vs_out,vs_constref]) or
  1623. (currpara2.varspez in [vs_var,vs_out,vs_constref]))
  1624. ) then
  1625. exit;
  1626. eq:=compare_defs_ext(currpara1.vardef,currpara2.vardef,nothingn,
  1627. convtype,hpd,cdoptions);
  1628. end;
  1629. cp_all :
  1630. begin
  1631. { used to resolve forward definitions -> headers must
  1632. match exactly, including the "univ" specifier }
  1633. if (not(cpo_ignorevarspez in cpoptions) and
  1634. (currpara1.varspez<>currpara2.varspez)) or
  1635. (currpara1.univpara<>currpara2.univpara) then
  1636. exit;
  1637. eq:=compare_defs_ext(currpara1.vardef,currpara2.vardef,nothingn,
  1638. convtype,hpd,cdoptions);
  1639. end;
  1640. cp_procvar :
  1641. begin
  1642. if not(cpo_ignorevarspez in cpoptions) and
  1643. (currpara1.varspez<>currpara2.varspez) then
  1644. exit;
  1645. { "univ" state doesn't matter here: from univ to non-univ
  1646. matches if the types are compatible (i.e., as usual),
  1647. from from non-univ to univ also matches if the types
  1648. have the same size (checked below) }
  1649. eq:=compare_defs_ext(currpara1.vardef,currpara2.vardef,nothingn,
  1650. convtype,hpd,cdoptions);
  1651. { Parameters must be at least equal otherwise the are incompatible }
  1652. if (eq<te_equal) then
  1653. eq:=te_incompatible;
  1654. end;
  1655. else
  1656. eq:=compare_defs_ext(currpara1.vardef,currpara2.vardef,nothingn,
  1657. convtype,hpd,cdoptions);
  1658. end;
  1659. end;
  1660. { check type }
  1661. if eq=te_incompatible then
  1662. begin
  1663. { special case: "univ" parameters match if their size is equal }
  1664. if not(cpo_ignoreuniv in cpoptions) and
  1665. currpara2.univpara and
  1666. is_valid_univ_para_type(currpara1.vardef) and
  1667. (currpara1.vardef.size=currpara2.vardef.size) then
  1668. begin
  1669. { only pick as last choice }
  1670. eq:=te_convert_l5;
  1671. if (acp=cp_procvar) and
  1672. (cpo_warn_incompatible_univ in cpoptions) then
  1673. begin
  1674. { if the types may be passed in different ways by the
  1675. calling convention then this can lead to crashes
  1676. (note: not an exhaustive check, and failing this
  1677. this check does not mean things will crash on all
  1678. platforms) }
  1679. if potentially_incompatible_univ_paras(currpara1.vardef,currpara2.vardef) then
  1680. Message2(type_w_procvar_univ_conflicting_para,currpara1.vardef.typename,currpara2.vardef.typename)
  1681. end;
  1682. end
  1683. else
  1684. exit;
  1685. end;
  1686. { open strings can never match exactly, since you cannot define }
  1687. { a separate "open string" type -> we have to be able to }
  1688. { consider those as exact when resolving forward definitions. }
  1689. { The same goes for array of const. Open arrays are handled }
  1690. { already (if their element types match exactly, they are }
  1691. { considered to be an exact match) }
  1692. { And also for "inline defined" function parameter definitions }
  1693. { (i.e., function types directly declared in a parameter list) }
  1694. if (is_array_of_const(currpara1.vardef) or
  1695. is_open_string(currpara1.vardef) or
  1696. ((currpara1.vardef.typ = procvardef) and
  1697. not(assigned(currpara1.vardef.typesym)))) and
  1698. (eq=te_equal) and
  1699. (cpo_openequalisexact in cpoptions) then
  1700. eq:=te_exact;
  1701. if eq<lowesteq then
  1702. lowesteq:=eq;
  1703. { also check default value if both have it declared }
  1704. if (cpo_comparedefaultvalue in cpoptions) and
  1705. assigned(currpara1.defaultconstsym) and
  1706. assigned(currpara2.defaultconstsym) then
  1707. begin
  1708. if not equal_constsym(tconstsym(currpara1.defaultconstsym),tconstsym(currpara2.defaultconstsym)) then
  1709. exit;
  1710. end;
  1711. inc(i1);
  1712. inc(i2);
  1713. if cpo_ignorehidden in cpoptions then
  1714. begin
  1715. while (i1<para1.count) and
  1716. (vo_is_hidden_para in tparavarsym(para1[i1]).varoptions) do
  1717. inc(i1);
  1718. while (i2<para2.count) and
  1719. (vo_is_hidden_para in tparavarsym(para2[i2]).varoptions) do
  1720. inc(i2);
  1721. end;
  1722. if cpo_ignoreframepointer in cpoptions then
  1723. begin
  1724. if (i1<para1.count) and
  1725. (vo_is_parentfp in tparavarsym(para1[i1]).varoptions) then
  1726. inc(i1);
  1727. if (i2<para2.count) and
  1728. (vo_is_parentfp in tparavarsym(para2[i2]).varoptions) then
  1729. inc(i2);
  1730. end;
  1731. end;
  1732. { when both lists are empty then the parameters are equal. Also
  1733. when one list is empty and the other has a parameter with default
  1734. value assigned then the parameters are also equal }
  1735. if ((i1>=para1.count) and (i2>=para2.count)) or
  1736. ((cpo_allowdefaults in cpoptions) and
  1737. (((i1<para1.count) and assigned(tparavarsym(para1[i1]).defaultconstsym)) or
  1738. ((i2<para2.count) and assigned(tparavarsym(para2[i2]).defaultconstsym)))) then
  1739. compare_paras:=lowesteq;
  1740. end;
  1741. function proc_to_procvar_equal(def1:tabstractprocdef;def2:tprocvardef;checkincompatibleuniv: boolean):tequaltype;
  1742. var
  1743. eq : tequaltype;
  1744. po_comp : tprocoptions;
  1745. pa_comp: tcompare_paras_options;
  1746. begin
  1747. proc_to_procvar_equal:=te_incompatible;
  1748. if not(assigned(def1)) or not(assigned(def2)) then
  1749. exit;
  1750. { check for method pointer and local procedure pointer:
  1751. a) if one is a procedure of object, the other also has to be one
  1752. b) if one is a pure address, the other also has to be one
  1753. except if def1 is a global proc and def2 is a nested procdef
  1754. (global procedures can be converted into nested procvars)
  1755. c) if def1 is a nested procedure, then def2 has to be a nested
  1756. procvar and def1 has to have the po_delphi_nested_cc option
  1757. d) if def1 is a procvar, def1 and def2 both have to be nested or
  1758. non-nested (we don't allow assignments from non-nested to
  1759. nested procvars to make sure that we can still implement
  1760. nested procvars using trampolines -- e.g., this would be
  1761. necessary for LLVM or CIL as long as they do not have support
  1762. for Delphi-style frame pointer parameter passing) }
  1763. if (def1.is_methodpointer<>def2.is_methodpointer) or { a) }
  1764. ((def1.is_addressonly<>def2.is_addressonly) and { b) }
  1765. (is_nested_pd(def1) or
  1766. not is_nested_pd(def2))) or
  1767. ((def1.typ=procdef) and { c) }
  1768. is_nested_pd(def1) and
  1769. (not(po_delphi_nested_cc in def1.procoptions) or
  1770. not is_nested_pd(def2))) or
  1771. ((def1.typ=procvardef) and { d) }
  1772. (is_nested_pd(def1)<>is_nested_pd(def2))) then
  1773. exit;
  1774. pa_comp:=[cpo_ignoreframepointer];
  1775. if checkincompatibleuniv then
  1776. include(pa_comp,cpo_warn_incompatible_univ);
  1777. { check return value and options, methodpointer is already checked }
  1778. po_comp:=[po_staticmethod,po_interrupt,
  1779. po_iocheck,po_varargs];
  1780. if (m_delphi in current_settings.modeswitches) then
  1781. exclude(po_comp,po_varargs);
  1782. if (def1.proccalloption=def2.proccalloption) and
  1783. ((po_comp * def1.procoptions)= (po_comp * def2.procoptions)) and
  1784. equal_defs(def1.returndef,def2.returndef) then
  1785. begin
  1786. { return equal type based on the parameters, but a proc->procvar
  1787. is never exact, so map an exact match of the parameters to
  1788. te_equal }
  1789. eq:=compare_paras(def1.paras,def2.paras,cp_procvar,pa_comp);
  1790. if eq=te_exact then
  1791. eq:=te_equal;
  1792. if (eq=te_equal) then
  1793. begin
  1794. { prefer non-nested to non-nested over non-nested to nested }
  1795. if (is_nested_pd(def1)<>is_nested_pd(def2)) then
  1796. eq:=te_convert_l1;
  1797. end;
  1798. proc_to_procvar_equal:=eq;
  1799. end;
  1800. end;
  1801. function compatible_childmethod_resultdef(parentretdef, childretdef: tdef): boolean;
  1802. begin
  1803. compatible_childmethod_resultdef :=
  1804. (equal_defs(parentretdef,childretdef)) or
  1805. ((parentretdef.typ=objectdef) and
  1806. (childretdef.typ=objectdef) and
  1807. is_class_or_interface_or_objc(parentretdef) and
  1808. is_class_or_interface_or_objc(childretdef) and
  1809. (tobjectdef(childretdef).is_related(tobjectdef(parentretdef))))
  1810. end;
  1811. end.