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