defutil.pas 32 KB

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  1. {
  2. Copyright (c) 1998-2006 by Florian Klaempfl
  3. This unit provides some help routines for type handling
  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 defutil;
  18. {$i fpcdefs.inc}
  19. interface
  20. uses
  21. cclasses,
  22. globtype,globals,constexp,
  23. symconst,symbase,symtype,symdef,
  24. cgbase,cpubase;
  25. type
  26. tmmxtype = (mmxno,mmxu8bit,mmxs8bit,mmxu16bit,mmxs16bit,
  27. mmxu32bit,mmxs32bit,mmxfixed16,mmxsingle);
  28. {*****************************************************************************
  29. Basic type functions
  30. *****************************************************************************}
  31. {# Returns true, if definition defines an ordinal type }
  32. function is_ordinal(def : tdef) : boolean;
  33. {# Returns the minimal integer value of the type }
  34. function get_min_value(def : tdef) : TConstExprInt;
  35. {# Returns the maximal integer value of the type }
  36. function get_max_value(def : tdef) : TConstExprInt;
  37. {# Returns basetype of the specified integer range }
  38. function range_to_basetype(l,h:TConstExprInt):tordtype;
  39. procedure range_to_type(l,h:TConstExprInt;var def:tdef);
  40. procedure int_to_type(v:TConstExprInt;var def:tdef);
  41. {# Returns true, if definition defines an integer type }
  42. function is_integer(def : tdef) : boolean;
  43. {# Returns true if definition is a boolean }
  44. function is_boolean(def : tdef) : boolean;
  45. {# Returns true if definition is a Pascal-style boolean (1 = true, zero = false) }
  46. function is_pasbool(def : tdef) : boolean;
  47. {# Returns true if definition is a C-style boolean (non-zero value = true, zero = false) }
  48. function is_cbool(def : tdef) : boolean;
  49. {# Returns true if definition is a char
  50. This excludes the unicode char.
  51. }
  52. function is_char(def : tdef) : boolean;
  53. {# Returns true if definition is a widechar }
  54. function is_widechar(def : tdef) : boolean;
  55. {# Returns true if definition is a void}
  56. function is_void(def : tdef) : boolean;
  57. {# Returns true if definition is a smallset}
  58. function is_smallset(p : tdef) : boolean;
  59. {# Returns true, if def defines a signed data type
  60. (only for ordinal types)
  61. }
  62. function is_signed(def : tdef) : boolean;
  63. {# Returns true whether def_from's range is comprised in def_to's if both are
  64. orddefs, false otherwise }
  65. function is_in_limit(def_from,def_to : tdef) : boolean;
  66. { function is_in_limit_value(val_from:TConstExprInt;def_from,def_to : tdef) : boolean;}
  67. {*****************************************************************************
  68. Array helper functions
  69. *****************************************************************************}
  70. {# Returns true, if p points to a zero based (non special like open or
  71. dynamic array def).
  72. This is mainly used to see if the array
  73. is convertable to a pointer
  74. }
  75. function is_zero_based_array(p : tdef) : boolean;
  76. {# Returns true if p points to an open array definition }
  77. function is_open_array(p : tdef) : boolean;
  78. {# Returns true if p points to a dynamic array definition }
  79. function is_dynamic_array(p : tdef) : boolean;
  80. {# Returns true, if p points to an array of const definition }
  81. function is_array_constructor(p : tdef) : boolean;
  82. {# Returns true, if p points to a variant array }
  83. function is_variant_array(p : tdef) : boolean;
  84. {# Returns true, if p points to an array of const }
  85. function is_array_of_const(p : tdef) : boolean;
  86. {# Returns true, if p points any kind of special array
  87. That is if the array is an open array, a variant
  88. array, an array constants constructor, or an
  89. array of const.
  90. Bitpacked arrays aren't special in this regard though.
  91. }
  92. function is_special_array(p : tdef) : boolean;
  93. {# Returns true if p is a bitpacked array }
  94. function is_packed_array(p: tdef) : boolean;
  95. {# Returns true if p is a bitpacked record }
  96. function is_packed_record_or_object(p: tdef) : boolean;
  97. {# Returns true if p is a char array def }
  98. function is_chararray(p : tdef) : boolean;
  99. {# Returns true if p is a wide char array def }
  100. function is_widechararray(p : tdef) : boolean;
  101. {# Returns true if p is a open char array def }
  102. function is_open_chararray(p : tdef) : boolean;
  103. {# Returns true if p is a open wide char array def }
  104. function is_open_widechararray(p : tdef) : boolean;
  105. {*****************************************************************************
  106. String helper functions
  107. *****************************************************************************}
  108. {# Returns true if p points to an open string type }
  109. function is_open_string(p : tdef) : boolean;
  110. {# Returns true if p is an ansi string type }
  111. function is_ansistring(p : tdef) : boolean;
  112. {# Returns true if p is a long string type }
  113. function is_longstring(p : tdef) : boolean;
  114. {# returns true if p is a wide string type }
  115. function is_widestring(p : tdef) : boolean;
  116. {# Returns true if p is a short string type }
  117. function is_shortstring(p : tdef) : boolean;
  118. {# Returns true if p is a pchar def }
  119. function is_pchar(p : tdef) : boolean;
  120. {# Returns true if p is a pwidechar def }
  121. function is_pwidechar(p : tdef) : boolean;
  122. {# Returns true if p is a voidpointer def }
  123. function is_voidpointer(p : tdef) : boolean;
  124. {# Returns true, if definition is a float }
  125. function is_fpu(def : tdef) : boolean;
  126. {# Returns true, if def is a currency type }
  127. function is_currency(def : tdef) : boolean;
  128. {# Returns true, if def is a single type }
  129. function is_single(def : tdef) : boolean;
  130. {# Returns true, if def is a double type }
  131. function is_double(def : tdef) : boolean;
  132. {# Returns true, if def is an extended type }
  133. function is_extended(def : tdef) : boolean;
  134. {# Returns true, if definition is a "real" real (i.e. single/double/extended) }
  135. function is_real(def : tdef) : boolean;
  136. {# Returns true, if def is a 32 bit integer type }
  137. function is_32bitint(def : tdef) : boolean;
  138. {# Returns true, if def is a 64 bit integer type }
  139. function is_64bitint(def : tdef) : boolean;
  140. {# Returns true, if def is a 64 bit type }
  141. function is_64bit(def : tdef) : boolean;
  142. {# If @var(l) isn't in the range of todef a range check error (if not explicit) is generated and
  143. the value is placed within the range
  144. }
  145. procedure testrange(todef : tdef;var l : tconstexprint;explicit:boolean);
  146. {# Returns the range of def, where @var(l) is the low-range and @var(h) is
  147. the high-range.
  148. }
  149. procedure getrange(def : tdef;out l, h : TConstExprInt);
  150. { type being a vector? }
  151. function is_vector(p : tdef) : boolean;
  152. { some type helper routines for MMX support }
  153. function is_mmx_able_array(p : tdef) : boolean;
  154. {# returns the mmx type }
  155. function mmx_type(p : tdef) : tmmxtype;
  156. { returns if the passed type (array) fits into an mm register }
  157. function fits_in_mm_register(p : tdef) : boolean;
  158. {# From a definition return the abstract code generator size enum. It is
  159. to note that the value returned can be @var(OS_NO) }
  160. function def_cgsize(def: tdef): tcgsize;
  161. {# returns true, if the type passed is can be used with windows automation }
  162. function is_automatable(p : tdef) : boolean;
  163. {# returns true, if the type passed is a varset }
  164. function is_varset(p : tdef) : boolean;
  165. { # returns true if the procdef has no parameters and no specified return type }
  166. function is_bareprocdef(pd : tprocdef): boolean;
  167. implementation
  168. uses
  169. systems,verbose;
  170. { returns true, if def uses FPU }
  171. function is_fpu(def : tdef) : boolean;
  172. begin
  173. is_fpu:=(def.typ=floatdef);
  174. end;
  175. { returns true, if def is a currency type }
  176. function is_currency(def : tdef) : boolean;
  177. begin
  178. case s64currencytype.typ of
  179. orddef :
  180. result:=(def.typ=orddef) and
  181. (torddef(s64currencytype).ordtype=torddef(def).ordtype);
  182. floatdef :
  183. result:=(def.typ=floatdef) and
  184. (tfloatdef(s64currencytype).floattype=tfloatdef(def).floattype);
  185. else
  186. internalerror(200304222);
  187. end;
  188. end;
  189. { returns true, if def is a single type }
  190. function is_single(def : tdef) : boolean;
  191. begin
  192. result:=(def.typ=floatdef) and
  193. (tfloatdef(def).floattype=s32real);
  194. end;
  195. { returns true, if def is a double type }
  196. function is_double(def : tdef) : boolean;
  197. begin
  198. result:=(def.typ=floatdef) and
  199. (tfloatdef(def).floattype=s64real);
  200. end;
  201. function is_extended(def : tdef) : boolean;
  202. begin
  203. result:=(def.typ=floatdef) and
  204. (tfloatdef(def).floattype=s80real);
  205. end;
  206. { returns true, if definition is a "real" real (i.e. single/double/extended) }
  207. function is_real(def : tdef) : boolean;
  208. begin
  209. result:=(def.typ=floatdef) and
  210. (tfloatdef(def).floattype in [s32real,s64real,s80real]);
  211. end;
  212. function range_to_basetype(l,h:TConstExprInt):tordtype;
  213. begin
  214. { prefer signed over unsigned }
  215. if (l>=int64(-128)) and (h<=127) then
  216. range_to_basetype:=s8bit
  217. else if (l>=0) and (h<=255) then
  218. range_to_basetype:=u8bit
  219. else if (l>=int64(-32768)) and (h<=32767) then
  220. range_to_basetype:=s16bit
  221. else if (l>=0) and (h<=65535) then
  222. range_to_basetype:=u16bit
  223. else if (l>=int64(low(longint))) and (h<=high(longint)) then
  224. range_to_basetype:=s32bit
  225. else if (l>=low(cardinal)) and (h<=high(cardinal)) then
  226. range_to_basetype:=u32bit
  227. else
  228. range_to_basetype:=s64bit;
  229. end;
  230. procedure range_to_type(l,h:TConstExprInt;var def:tdef);
  231. begin
  232. { prefer signed over unsigned }
  233. if (l>=int64(-128)) and (h<=127) then
  234. def:=s8inttype
  235. else if (l>=0) and (h<=255) then
  236. def:=u8inttype
  237. else if (l>=int64(-32768)) and (h<=32767) then
  238. def:=s16inttype
  239. else if (l>=0) and (h<=65535) then
  240. def:=u16inttype
  241. else if (l>=int64(low(longint))) and (h<=high(longint)) then
  242. def:=s32inttype
  243. else if (l>=low(cardinal)) and (h<=high(cardinal)) then
  244. def:=u32inttype
  245. else if (l>=low(int64)) and (h<=high(int64)) then
  246. def:=s64inttype
  247. else
  248. def:=u64inttype;
  249. end;
  250. procedure int_to_type(v:TConstExprInt;var def:tdef);
  251. begin
  252. range_to_type(v,v,def);
  253. end;
  254. { true if p is an ordinal }
  255. function is_ordinal(def : tdef) : boolean;
  256. var
  257. dt : tordtype;
  258. begin
  259. case def.typ of
  260. orddef :
  261. begin
  262. dt:=torddef(def).ordtype;
  263. is_ordinal:=dt in [uchar,uwidechar,
  264. u8bit,u16bit,u32bit,u64bit,
  265. s8bit,s16bit,s32bit,s64bit,
  266. pasbool,bool8bit,bool16bit,bool32bit,bool64bit];
  267. end;
  268. enumdef :
  269. is_ordinal:=true;
  270. else
  271. is_ordinal:=false;
  272. end;
  273. end;
  274. { returns the min. value of the type }
  275. function get_min_value(def : tdef) : TConstExprInt;
  276. begin
  277. case def.typ of
  278. orddef:
  279. result:=torddef(def).low;
  280. enumdef:
  281. result:=int64(tenumdef(def).min);
  282. else
  283. result:=0;
  284. end;
  285. end;
  286. { returns the max. value of the type }
  287. function get_max_value(def : tdef) : TConstExprInt;
  288. begin
  289. case def.typ of
  290. orddef:
  291. result:=torddef(def).high;
  292. enumdef:
  293. result:=tenumdef(def).max;
  294. else
  295. result:=0;
  296. end;
  297. end;
  298. { true if p is an integer }
  299. function is_integer(def : tdef) : boolean;
  300. begin
  301. result:=(def.typ=orddef) and
  302. (torddef(def).ordtype in [u8bit,u16bit,u32bit,u64bit,
  303. s8bit,s16bit,s32bit,s64bit]);
  304. end;
  305. { true if p is a boolean }
  306. function is_boolean(def : tdef) : boolean;
  307. begin
  308. result:=(def.typ=orddef) and
  309. (torddef(def).ordtype in [pasbool,bool8bit,bool16bit,bool32bit,bool64bit]);
  310. end;
  311. function is_pasbool(def : tdef) : boolean;
  312. begin
  313. result:=(def.typ=orddef) and
  314. (torddef(def).ordtype = pasbool);
  315. end;
  316. { true if def is a C-style boolean (non-zero value = true, zero = false) }
  317. function is_cbool(def : tdef) : boolean;
  318. begin
  319. result:=(def.typ=orddef) and
  320. (torddef(def).ordtype in [bool8bit,bool16bit,bool32bit,bool64bit]);
  321. end;
  322. { true if p is a void }
  323. function is_void(def : tdef) : boolean;
  324. begin
  325. result:=(def.typ=orddef) and
  326. (torddef(def).ordtype=uvoid);
  327. end;
  328. { true if p is a char }
  329. function is_char(def : tdef) : boolean;
  330. begin
  331. result:=(def.typ=orddef) and
  332. (torddef(def).ordtype=uchar);
  333. end;
  334. { true if p is a wchar }
  335. function is_widechar(def : tdef) : boolean;
  336. begin
  337. result:=(def.typ=orddef) and
  338. (torddef(def).ordtype=uwidechar);
  339. end;
  340. { true if p is signed (integer) }
  341. function is_signed(def : tdef) : boolean;
  342. begin
  343. case def.typ of
  344. orddef :
  345. result:=torddef(def).low < 0;
  346. enumdef :
  347. result:=tenumdef(def).min < 0;
  348. arraydef :
  349. result:=is_signed(tarraydef(def).rangedef);
  350. else
  351. result:=false;
  352. end;
  353. end;
  354. function is_in_limit(def_from,def_to : tdef) : boolean;
  355. begin
  356. if (def_from.typ<>def_to.typ) or
  357. not(def_from.typ in [orddef,enumdef,setdef]) then
  358. begin
  359. is_in_limit := false;
  360. exit;
  361. end;
  362. case def_from.typ of
  363. orddef:
  364. is_in_limit:=(torddef(def_from).low>=torddef(def_to).low) and
  365. (torddef(def_from).high<=torddef(def_to).high);
  366. enumdef:
  367. is_in_limit:=(tenumdef(def_from).min>=tenumdef(def_to).min) and
  368. (tenumdef(def_from).max<=tenumdef(def_to).max);
  369. setdef:
  370. is_in_limit:=(tsetdef(def_from).setbase>=tsetdef(def_to).setbase) and
  371. (tsetdef(def_from).setmax<=tsetdef(def_to).setmax);
  372. end;
  373. end;
  374. { true, if p points to an open array def }
  375. function is_open_string(p : tdef) : boolean;
  376. begin
  377. is_open_string:=(p.typ=stringdef) and
  378. (tstringdef(p).stringtype=st_shortstring) and
  379. (tstringdef(p).len=0);
  380. end;
  381. { true, if p points to a zero based array def }
  382. function is_zero_based_array(p : tdef) : boolean;
  383. begin
  384. result:=(p.typ=arraydef) and
  385. (tarraydef(p).lowrange=0) and
  386. not(is_special_array(p));
  387. end;
  388. { true if p points to a dynamic array def }
  389. function is_dynamic_array(p : tdef) : boolean;
  390. begin
  391. result:=(p.typ=arraydef) and
  392. (ado_IsDynamicArray in tarraydef(p).arrayoptions);
  393. end;
  394. { true, if p points to an open array def }
  395. function is_open_array(p : tdef) : boolean;
  396. begin
  397. { check for s32inttype is needed, because for u32bit the high
  398. range is also -1 ! (PFV) }
  399. result:=(p.typ=arraydef) and
  400. (tarraydef(p).rangedef=s32inttype) and
  401. (tarraydef(p).lowrange=0) and
  402. (tarraydef(p).highrange=-1) and
  403. ((tarraydef(p).arrayoptions * [ado_IsVariant,ado_IsArrayOfConst,ado_IsConstructor,ado_IsDynamicArray])=[]);
  404. end;
  405. { true, if p points to an array of const def }
  406. function is_array_constructor(p : tdef) : boolean;
  407. begin
  408. result:=(p.typ=arraydef) and
  409. (ado_IsConstructor in tarraydef(p).arrayoptions);
  410. end;
  411. { true, if p points to a variant array }
  412. function is_variant_array(p : tdef) : boolean;
  413. begin
  414. result:=(p.typ=arraydef) and
  415. (ado_IsVariant in tarraydef(p).arrayoptions);
  416. end;
  417. { true, if p points to an array of const }
  418. function is_array_of_const(p : tdef) : boolean;
  419. begin
  420. result:=(p.typ=arraydef) and
  421. (ado_IsArrayOfConst in tarraydef(p).arrayoptions);
  422. end;
  423. { true, if p points to a special array, bitpacked arrays aren't special in this regard though }
  424. function is_special_array(p : tdef) : boolean;
  425. begin
  426. result:=(p.typ=arraydef) and
  427. (
  428. ((tarraydef(p).arrayoptions * [ado_IsVariant,ado_IsArrayOfConst,ado_IsConstructor,ado_IsDynamicArray])<>[]) or
  429. is_open_array(p)
  430. );
  431. end;
  432. { true if p is an ansi string def }
  433. function is_ansistring(p : tdef) : boolean;
  434. begin
  435. is_ansistring:=(p.typ=stringdef) and
  436. (tstringdef(p).stringtype=st_ansistring);
  437. end;
  438. { true if p is an long string def }
  439. function is_longstring(p : tdef) : boolean;
  440. begin
  441. is_longstring:=(p.typ=stringdef) and
  442. (tstringdef(p).stringtype=st_longstring);
  443. end;
  444. { true if p is an wide string def }
  445. function is_widestring(p : tdef) : boolean;
  446. begin
  447. is_widestring:=(p.typ=stringdef) and
  448. (tstringdef(p).stringtype=st_widestring);
  449. end;
  450. { true if p is an short string def }
  451. function is_shortstring(p : tdef) : boolean;
  452. begin
  453. is_shortstring:=(p.typ=stringdef) and
  454. (tstringdef(p).stringtype=st_shortstring);
  455. end;
  456. { true if p is bit packed array def }
  457. function is_packed_array(p: tdef) : boolean;
  458. begin
  459. is_packed_array :=
  460. (p.typ = arraydef) and
  461. (ado_IsBitPacked in tarraydef(p).arrayoptions);
  462. end;
  463. { true if p is bit packed record def }
  464. function is_packed_record_or_object(p: tdef) : boolean;
  465. begin
  466. is_packed_record_or_object :=
  467. (p.typ in [recorddef,objectdef]) and
  468. (tabstractrecorddef(p).is_packed);
  469. end;
  470. { true if p is a char array def }
  471. function is_chararray(p : tdef) : boolean;
  472. begin
  473. is_chararray:=(p.typ=arraydef) and
  474. is_char(tarraydef(p).elementdef) and
  475. not(is_special_array(p));
  476. end;
  477. { true if p is a widechar array def }
  478. function is_widechararray(p : tdef) : boolean;
  479. begin
  480. is_widechararray:=(p.typ=arraydef) and
  481. is_widechar(tarraydef(p).elementdef) and
  482. not(is_special_array(p));
  483. end;
  484. { true if p is a open char array def }
  485. function is_open_chararray(p : tdef) : boolean;
  486. begin
  487. is_open_chararray:= is_open_array(p) and
  488. is_char(tarraydef(p).elementdef);
  489. end;
  490. { true if p is a open wide char array def }
  491. function is_open_widechararray(p : tdef) : boolean;
  492. begin
  493. is_open_widechararray:= is_open_array(p) and
  494. is_widechar(tarraydef(p).elementdef);
  495. end;
  496. { true if p is a pchar def }
  497. function is_pchar(p : tdef) : boolean;
  498. begin
  499. is_pchar:=(p.typ=pointerdef) and
  500. (is_char(tpointerdef(p).pointeddef) or
  501. (is_zero_based_array(tpointerdef(p).pointeddef) and
  502. is_chararray(tpointerdef(p).pointeddef)));
  503. end;
  504. { true if p is a pchar def }
  505. function is_pwidechar(p : tdef) : boolean;
  506. begin
  507. is_pwidechar:=(p.typ=pointerdef) and
  508. (is_widechar(tpointerdef(p).pointeddef) or
  509. (is_zero_based_array(tpointerdef(p).pointeddef) and
  510. is_widechararray(tpointerdef(p).pointeddef)));
  511. end;
  512. { true if p is a voidpointer def }
  513. function is_voidpointer(p : tdef) : boolean;
  514. begin
  515. is_voidpointer:=(p.typ=pointerdef) and
  516. (tpointerdef(p).pointeddef.typ=orddef) and
  517. (torddef(tpointerdef(p).pointeddef).ordtype=uvoid);
  518. end;
  519. { true if p is a smallset def }
  520. function is_smallset(p : tdef) : boolean;
  521. begin
  522. is_smallset:=(p.typ=setdef) and
  523. (tsetdef(p).settype=smallset);
  524. end;
  525. { true, if def is a 32 bit int type }
  526. function is_32bitint(def : tdef) : boolean;
  527. begin
  528. result:=(def.typ=orddef) and (torddef(def).ordtype in [u32bit,s32bit])
  529. end;
  530. { true, if def is a 64 bit int type }
  531. function is_64bitint(def : tdef) : boolean;
  532. begin
  533. is_64bitint:=(def.typ=orddef) and (torddef(def).ordtype in [u64bit,s64bit])
  534. end;
  535. { true, if def is a 64 bit type }
  536. function is_64bit(def : tdef) : boolean;
  537. begin
  538. is_64bit:=(def.typ=orddef) and (torddef(def).ordtype in [u64bit,s64bit,scurrency])
  539. end;
  540. { if l isn't in the range of todef a range check error (if not explicit) is generated and
  541. the value is placed within the range }
  542. procedure testrange(todef : tdef;var l : tconstexprint;explicit:boolean);
  543. var
  544. lv,hv: TConstExprInt;
  545. begin
  546. { for 64 bit types we need only to check if it is less than }
  547. { zero, if def is a qword node }
  548. getrange(todef,lv,hv);
  549. if (l<lv) or (l>hv) then
  550. begin
  551. if not explicit then
  552. begin
  553. if ((todef.typ=enumdef) and
  554. { delphi allows range check errors in
  555. enumeration type casts FK }
  556. not(m_delphi in current_settings.modeswitches)) or
  557. (cs_check_range in current_settings.localswitches) then
  558. Message(parser_e_range_check_error)
  559. else
  560. Message(parser_w_range_check_error);
  561. end;
  562. { Fix the value to fit in the allocated space for this type of variable }
  563. case longint(todef.size) of
  564. 1: l := l and $ff;
  565. 2: l := l and $ffff;
  566. 4: l := l and $ffffffff;
  567. end;
  568. {reset sign, i.e. converting -1 to qword changes the value to high(qword)}
  569. l.signed:=false;
  570. { do sign extension if necessary (JM) }
  571. if is_signed(todef) then
  572. begin
  573. case longint(todef.size) of
  574. 1: l.svalue := shortint(l.svalue);
  575. 2: l.svalue := smallint(l.svalue);
  576. 4: l.svalue := longint(l.svalue);
  577. end;
  578. l.signed:=true;
  579. end;
  580. end;
  581. end;
  582. { return the range from def in l and h }
  583. procedure getrange(def : tdef;out l, h : TConstExprInt);
  584. begin
  585. case def.typ of
  586. orddef :
  587. begin
  588. l:=torddef(def).low;
  589. h:=torddef(def).high;
  590. end;
  591. enumdef :
  592. begin
  593. l:=int64(tenumdef(def).min);
  594. h:=int64(tenumdef(def).max);
  595. end;
  596. arraydef :
  597. begin
  598. l:=int64(tarraydef(def).lowrange);
  599. h:=int64(tarraydef(def).highrange);
  600. end;
  601. else
  602. internalerror(200611054);
  603. end;
  604. end;
  605. function mmx_type(p : tdef) : tmmxtype;
  606. begin
  607. mmx_type:=mmxno;
  608. if is_mmx_able_array(p) then
  609. begin
  610. if tarraydef(p).elementdef.typ=floatdef then
  611. case tfloatdef(tarraydef(p).elementdef).floattype of
  612. s32real:
  613. mmx_type:=mmxsingle;
  614. end
  615. else
  616. case torddef(tarraydef(p).elementdef).ordtype of
  617. u8bit:
  618. mmx_type:=mmxu8bit;
  619. s8bit:
  620. mmx_type:=mmxs8bit;
  621. u16bit:
  622. mmx_type:=mmxu16bit;
  623. s16bit:
  624. mmx_type:=mmxs16bit;
  625. u32bit:
  626. mmx_type:=mmxu32bit;
  627. s32bit:
  628. mmx_type:=mmxs32bit;
  629. end;
  630. end;
  631. end;
  632. function is_vector(p : tdef) : boolean;
  633. begin
  634. result:=(p.typ=arraydef) and
  635. not(is_special_array(p)) and
  636. (tarraydef(p).elementdef.typ=floatdef) and
  637. (tfloatdef(tarraydef(p).elementdef).floattype in [s32real,s64real]);
  638. end;
  639. { returns if the passed type (array) fits into an mm register }
  640. function fits_in_mm_register(p : tdef) : boolean;
  641. begin
  642. {$ifdef x86}
  643. result:= is_vector(p) and
  644. (
  645. (tarraydef(p).elementdef.typ=floatdef) and
  646. (
  647. (tarraydef(p).lowrange=0) and
  648. (tarraydef(p).highrange=3) and
  649. (tfloatdef(tarraydef(p).elementdef).floattype=s32real)
  650. )
  651. ) or
  652. (
  653. (tarraydef(p).elementdef.typ=floatdef) and
  654. (
  655. (tarraydef(p).lowrange=0) and
  656. (tarraydef(p).highrange=1) and
  657. (tfloatdef(tarraydef(p).elementdef).floattype=s64real)
  658. )
  659. );
  660. {$else x86}
  661. result:=false;
  662. {$endif x86}
  663. end;
  664. function is_mmx_able_array(p : tdef) : boolean;
  665. begin
  666. {$ifdef SUPPORT_MMX}
  667. if (cs_mmx_saturation in current_settings.localswitches) then
  668. begin
  669. is_mmx_able_array:=(p.typ=arraydef) and
  670. not(is_special_array(p)) and
  671. (
  672. (
  673. (tarraydef(p).elementdef.typ=orddef) and
  674. (
  675. (
  676. (tarraydef(p).lowrange=0) and
  677. (tarraydef(p).highrange=1) and
  678. (torddef(tarraydef(p).elementdef).ordtype in [u32bit,s32bit])
  679. )
  680. or
  681. (
  682. (tarraydef(p).lowrange=0) and
  683. (tarraydef(p).highrange=3) and
  684. (torddef(tarraydef(p).elementdef).ordtype in [u16bit,s16bit])
  685. )
  686. )
  687. )
  688. or
  689. (
  690. (
  691. (tarraydef(p).elementdef.typ=floatdef) and
  692. (
  693. (tarraydef(p).lowrange=0) and
  694. (tarraydef(p).highrange=1) and
  695. (tfloatdef(tarraydef(p).elementdef).floattype=s32real)
  696. )
  697. )
  698. )
  699. );
  700. end
  701. else
  702. begin
  703. is_mmx_able_array:=(p.typ=arraydef) and
  704. (
  705. (
  706. (tarraydef(p).elementdef.typ=orddef) and
  707. (
  708. (
  709. (tarraydef(p).lowrange=0) and
  710. (tarraydef(p).highrange=1) and
  711. (torddef(tarraydef(p).elementdef).ordtype in [u32bit,s32bit])
  712. )
  713. or
  714. (
  715. (tarraydef(p).lowrange=0) and
  716. (tarraydef(p).highrange=3) and
  717. (torddef(tarraydef(p).elementdef).ordtype in [u16bit,s16bit])
  718. )
  719. or
  720. (
  721. (tarraydef(p).lowrange=0) and
  722. (tarraydef(p).highrange=7) and
  723. (torddef(tarraydef(p).elementdef).ordtype in [u8bit,s8bit])
  724. )
  725. )
  726. )
  727. or
  728. (
  729. (tarraydef(p).elementdef.typ=floatdef) and
  730. (
  731. (tarraydef(p).lowrange=0) and
  732. (tarraydef(p).highrange=1) and
  733. (tfloatdef(tarraydef(p).elementdef).floattype=s32real)
  734. )
  735. )
  736. );
  737. end;
  738. {$else SUPPORT_MMX}
  739. is_mmx_able_array:=false;
  740. {$endif SUPPORT_MMX}
  741. end;
  742. function def_cgsize(def: tdef): tcgsize;
  743. begin
  744. case def.typ of
  745. orddef,
  746. enumdef,
  747. setdef:
  748. begin
  749. result:=int_cgsize(def.size);
  750. if is_signed(def) then
  751. result:=tcgsize(ord(result)+(ord(OS_S8)-ord(OS_8)));
  752. end;
  753. classrefdef,
  754. pointerdef:
  755. result := OS_ADDR;
  756. procvardef:
  757. begin
  758. if tprocvardef(def).is_methodpointer and
  759. (not tprocvardef(def).is_addressonly) then
  760. if (sizeof(pint) = 4) then
  761. result:=OS_64
  762. else if (sizeof(pint) = 8) then
  763. result:=OS_128
  764. else
  765. internalerror(200707141)
  766. else
  767. result:=OS_ADDR;
  768. end;
  769. stringdef :
  770. begin
  771. if is_ansistring(def) or is_widestring(def) then
  772. result := OS_ADDR
  773. else
  774. result:=int_cgsize(def.size);
  775. end;
  776. objectdef :
  777. begin
  778. if is_class_or_interface(def) then
  779. result := OS_ADDR
  780. else
  781. result:=int_cgsize(def.size);
  782. end;
  783. floatdef:
  784. if cs_fp_emulation in current_settings.moduleswitches then
  785. result:=int_cgsize(def.size)
  786. else
  787. result:=tfloat2tcgsize[tfloatdef(def).floattype];
  788. recorddef :
  789. result:=int_cgsize(def.size);
  790. arraydef :
  791. begin
  792. if not is_special_array(def) then
  793. result := int_cgsize(def.size)
  794. else
  795. begin
  796. if is_dynamic_array(def) then
  797. result := OS_ADDR
  798. else
  799. result := OS_NO;
  800. end;
  801. end;
  802. else
  803. begin
  804. { undefined size }
  805. result:=OS_NO;
  806. end;
  807. end;
  808. end;
  809. function is_automatable(p : tdef) : boolean;
  810. begin
  811. result:=false;
  812. case p.typ of
  813. orddef:
  814. result:=torddef(p).ordtype in [u8bit,s32bit,s16bit,bool16bit];
  815. floatdef:
  816. result:=tfloatdef(p).floattype in [s64currency,s64real,s32real];
  817. stringdef:
  818. result:=tstringdef(p).stringtype in [st_ansistring,st_widestring];
  819. variantdef:
  820. result:=true;
  821. arraydef:
  822. result:=(ado_IsConstString in tarraydef(p).arrayoptions);
  823. objectdef:
  824. result:=tobjectdef(p).objecttype in [odt_interfacecom,odt_dispinterface,odt_interfacecorba];
  825. end;
  826. end;
  827. {# returns true, if the type passed is a varset }
  828. function is_varset(p : tdef) : boolean;
  829. begin
  830. result:=(p.typ=setdef) and not(p.size in [1,2,4])
  831. end;
  832. function is_bareprocdef(pd : tprocdef): boolean;
  833. begin
  834. result:=(pd.maxparacount=0) and
  835. (is_void(pd.returndef) or
  836. (pd.proctypeoption = potype_constructor));
  837. end;
  838. end.