defutil.pas 61 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. globtype,globals,constexp,
  22. symconst,symtype,symdef,
  23. cgbase,cpubase;
  24. type
  25. tmmxtype = (mmxno,mmxu8bit,mmxs8bit,mmxu16bit,mmxs16bit,
  26. mmxu32bit,mmxs32bit,mmxfixed16,mmxsingle,mmxs64bit,mmxu64bit);
  27. {*****************************************************************************
  28. Basic type functions
  29. *****************************************************************************}
  30. {# Returns true, if definition defines an ordinal type }
  31. function is_ordinal(def : tdef) : boolean;
  32. {# Returns true, if definition defines a string type }
  33. function is_string(def : tdef): boolean;
  34. {# Returns True, if definition defines a type that behaves like a string,
  35. namely that can be joined and compared with another string-like type }
  36. function is_stringlike(def : tdef) : boolean;
  37. {# Returns True, if definition defines an enumeration type }
  38. function is_enum(def : tdef) : boolean;
  39. {# Returns True, if definition defines a set type }
  40. function is_set(def : tdef) : boolean;
  41. {# Returns the minimal integer value of the type }
  42. function get_min_value(def : tdef) : TConstExprInt;
  43. {# Returns the maximal integer value of the type }
  44. function get_max_value(def : tdef) : TConstExprInt;
  45. {# Returns basetype of the specified integer range }
  46. function range_to_basetype(const l,h:TConstExprInt):tordtype;
  47. procedure range_to_type(const l,h:TConstExprInt;var def:tdef);
  48. procedure int_to_type(const v:TConstExprInt;var def:tdef);
  49. {# Return true if the type (orddef or enumdef) spans its entire bitrange }
  50. function spans_entire_range(def: tdef): boolean;
  51. {# Returns true, if definition defines an integer type }
  52. function is_integer(def : tdef) : boolean;
  53. {# Returns true if definition is a boolean }
  54. function is_boolean(def : tdef) : boolean;
  55. {# Returns true if definition is a Pascal-style boolean (1 = true, zero = false) }
  56. function is_pasbool(def : tdef) : boolean;
  57. {# Returns true if definition is a C-style boolean (non-zero value = true, zero = false) }
  58. function is_cbool(def : tdef) : boolean;
  59. {# Returns true if definition is a char
  60. This excludes the unicode char.
  61. }
  62. function is_char(def : tdef) : boolean;
  63. {# Returns true if definition is a widechar }
  64. function is_widechar(def : tdef) : boolean;
  65. {# Returns true if definition is either an AnsiChar or a WideChar }
  66. function is_anychar(def : tdef) : boolean;
  67. {# Returns true if definition is a void}
  68. function is_void(def : tdef) : boolean;
  69. {# Returns true if definition is a smallset}
  70. function is_smallset(p : tdef) : boolean;
  71. {# Returns true, if def defines a signed data type
  72. (only for ordinal types)
  73. }
  74. function is_signed(def : tdef) : boolean;
  75. {# Returns an unsigned integer type of the same size as def; def must be
  76. an ordinal or enum }
  77. function get_unsigned_inttype(def: tdef): torddef;
  78. {# Returns whether def_from's range is comprised in def_to's if both are
  79. orddefs, false otherwise }
  80. function is_in_limit(def_from,def_to : tdef) : boolean;
  81. {# Returns whether def is reference counted }
  82. function is_managed_type(def: tdef) : boolean;{$ifdef USEINLINE}inline;{$endif}
  83. { # Returns whether def is needs to load RTTI for reference counting }
  84. function is_rtti_managed_type(def: tdef) : boolean;
  85. { function is_in_limit_value(val_from:TConstExprInt;def_from,def_to : tdef) : boolean;}
  86. {*****************************************************************************
  87. Array helper functions
  88. *****************************************************************************}
  89. {# Returns true, if p points to a zero based (non special like open or
  90. dynamic array def).
  91. This is mainly used to see if the array
  92. is convertable to a pointer
  93. }
  94. function is_zero_based_array(p : tdef) : boolean;
  95. {# Returns true if p points to an open array definition }
  96. function is_open_array(p : tdef) : boolean;
  97. {# Returns true if p points to a dynamic array definition }
  98. function is_dynamic_array(p : tdef) : boolean;
  99. {# Returns true, if p points to an array of const definition }
  100. function is_array_constructor(p : tdef) : boolean;
  101. {# Returns true, if p points to a variant array }
  102. function is_variant_array(p : tdef) : boolean;
  103. {# Returns true, if p points to an array of const }
  104. function is_array_of_const(p : tdef) : boolean;
  105. {# Returns true, if p points any kind of special array
  106. That is if the array is an open array, a variant
  107. array, an array constants constructor, or an
  108. array of const.
  109. Bitpacked arrays aren't special in this regard though.
  110. }
  111. function is_special_array(p : tdef) : boolean;
  112. {# Returns true, if p points to a normal array, bitpacked arrays are included }
  113. function is_normal_array(p : tdef) : boolean;
  114. {# Returns true if p is a bitpacked array }
  115. function is_packed_array(p: tdef) : boolean;
  116. {# Returns true if p is a bitpacked record }
  117. function is_packed_record_or_object(p: tdef) : boolean;
  118. {# Returns true if p is a char array def }
  119. function is_chararray(p : tdef) : boolean;
  120. {# Returns true if p is a wide char array def }
  121. function is_widechararray(p : tdef) : boolean;
  122. {# Returns true if p is a open char array def }
  123. function is_open_chararray(p : tdef) : boolean;
  124. {# Returns true if p is a open wide char array def }
  125. function is_open_widechararray(p : tdef) : boolean;
  126. {*****************************************************************************
  127. String helper functions
  128. *****************************************************************************}
  129. {# Returns true if p points to an open string type }
  130. function is_open_string(p : tdef) : boolean;
  131. {# Returns true if p is an ansi string type }
  132. function is_ansistring(p : tdef) : boolean;
  133. {# Returns true if p is an ansi string type with codepage 0 }
  134. function is_rawbytestring(p : tdef) : boolean;
  135. {# Returns true if p is a long string type }
  136. function is_longstring(p : tdef) : boolean;
  137. {# returns true if p is a wide string type }
  138. function is_widestring(p : tdef) : boolean;
  139. {# true if p is an unicode string def }
  140. function is_unicodestring(p : tdef) : boolean;
  141. {# true if p is an unicode/wide/ansistring string def }
  142. function is_dynamicstring(p : tdef) : boolean;
  143. {# returns true if p is a wide or unicode string type }
  144. function is_wide_or_unicode_string(p : tdef) : boolean;
  145. {# Returns true if p is a short string type }
  146. function is_shortstring(p : tdef) : boolean;
  147. {# Returns true if p is any pointer def }
  148. function is_pointer(p : tdef) : boolean;
  149. {# Returns true if p is a pchar def }
  150. function is_pchar(p : tdef) : boolean;
  151. {# Returns true if p is a pwidechar def }
  152. function is_pwidechar(p : tdef) : boolean;
  153. {# Returns true if p is a voidpointer def }
  154. function is_voidpointer(p : tdef) : boolean;
  155. {# Returns true, if definition is a float }
  156. function is_fpu(def : tdef) : boolean;
  157. {# Returns true, if def is a currency type }
  158. function is_currency(def : tdef) : boolean;
  159. {# Returns true, if def is a single type }
  160. function is_single(def : tdef) : boolean;
  161. {# Returns true, if def is a double type }
  162. function is_double(def : tdef) : boolean;
  163. {# Returns true, if def is an extended type }
  164. function is_extended(def : tdef) : boolean;
  165. {# Returns true, if definition is a "real" real (i.e. single/double/extended) }
  166. function is_real(def : tdef) : boolean;
  167. {# Returns true for single,double,extended and cextended }
  168. function is_real_or_cextended(def : tdef) : boolean;
  169. { true, if def is a 8 bit int type }
  170. function is_8bitint(def : tdef) : boolean;
  171. { true, if def is a 8 bit ordinal type }
  172. function is_8bit(def : tdef) : boolean;
  173. { true, if def is a 16 bit int type }
  174. function is_16bitint(def : tdef) : boolean;
  175. { true, if def is a 16 bit ordinal type }
  176. function is_16bit(def : tdef) : boolean;
  177. {# Returns true, if def is a 32 bit integer type }
  178. function is_32bitint(def : tdef) : boolean;
  179. {# Returns true, if def is a 32 bit ordinal type }
  180. function is_32bit(def : tdef) : boolean;
  181. {# Returns true, if def is a 64 bit integer type }
  182. function is_64bitint(def : tdef) : boolean;
  183. {# Returns true, if def is a 64 bit type }
  184. function is_64bit(def : tdef) : boolean;
  185. { true, if def1 and def2 are both integers of the same bit size and sign }
  186. function are_equal_ints(def1, def2: tdef): boolean;
  187. { true, if def is an int type, larger than the processor's native int size }
  188. function is_oversizedint(def : tdef) : boolean;
  189. { true, if def is an ordinal type, larger than the processor's native int size }
  190. function is_oversizedord(def : tdef) : boolean;
  191. { true, if def is an int type, equal in size to the processor's native int size }
  192. function is_nativeint(def : tdef) : boolean;
  193. { true, if def is an ordinal type, equal in size to the processor's native int size }
  194. function is_nativeord(def : tdef) : boolean;
  195. { true, if def is an unsigned int type, equal in size to the processor's native int size }
  196. function is_nativeuint(def : tdef) : boolean;
  197. { true, if def is a signed int type, equal in size to the processor's native int size }
  198. function is_nativesint(def : tdef) : boolean;
  199. type
  200. tperformrangecheck = (
  201. rc_internal, { nothing, internal conversion }
  202. rc_explicit, { no, but this is an explcit user conversion and hence can still give warnings in some cases (or errors in case of enums) }
  203. rc_implicit, { no, but this is an implicit conversion and hence can still give warnings/errors in some cases }
  204. rc_yes { yes }
  205. );
  206. {# If @var(l) isn't in the range of todef a range check error (if not explicit) is generated and
  207. the value is placed within the range
  208. }
  209. procedure adaptrange(todef : tdef;var l : tconstexprint; rangecheck: tperformrangecheck);
  210. { for when used with nf_explicit/nf_internal/cs_check_range nodeflags }
  211. procedure adaptrange(todef : tdef;var l : tconstexprint; internal, explicit, rangecheckstate: boolean);
  212. {# Returns the range of def, where @var(l) is the low-range and @var(h) is
  213. the high-range.
  214. }
  215. procedure getrange(def : tdef;out l, h : TConstExprInt);
  216. procedure getrangedefmasksize(def: tdef; out rangedef: tdef; out mask: TConstExprInt; out size: longint);
  217. { Returns the range type of an ordinal type in the sense of ISO-10206 }
  218. function get_iso_range_type(def: tdef): tdef;
  219. { type being a vector? }
  220. function is_vector(p : tdef) : boolean;
  221. { some type helper routines for MMX support }
  222. function is_mmx_able_array(p : tdef) : boolean;
  223. {# returns the mmx type }
  224. function mmx_type(p : tdef) : tmmxtype;
  225. { returns if the passed type (array) fits into an mm register }
  226. function fits_in_mm_register(p : tdef) : boolean;
  227. {# From a definition return the abstract code generator size enum. It is
  228. to note that the value returned can be @var(OS_NO) }
  229. function def_cgsize(def: tdef): tcgsize;
  230. { #Return an orddef (integer) correspondig to a tcgsize }
  231. function cgsize_orddef(size: tcgsize): torddef;
  232. {# Same as def_cgsize, except that it will interpret certain arrays as
  233. vectors and return OS_M* sizes for them }
  234. function def_cgmmsize(def: tdef): tcgsize;
  235. {# returns true, if the type passed is can be used with windows automation }
  236. function is_automatable(p : tdef) : boolean;
  237. { # returns true if the procdef has no parameters and no specified return type }
  238. function is_bareprocdef(pd : tprocdef): boolean;
  239. { returns true if the procdef is a C-style variadic function }
  240. function is_c_variadic(pd: tabstractprocdef): boolean; {$ifdef USEINLINE}inline;{$endif}
  241. { # returns the smallest base integer type whose range encompasses that of
  242. both ld and rd; if keep_sign_if_equal, then if ld and rd have the same
  243. signdness, the result will also get that signdness }
  244. function get_common_intdef(ld, rd: torddef; keep_sign_if_equal: boolean): torddef;
  245. { # returns whether the type is potentially a valid type of/for an "univ" parameter
  246. (basically: it must have a compile-time size) }
  247. function is_valid_univ_para_type(def: tdef): boolean;
  248. { # returns whether the procdef/procvardef represents a nested procedure
  249. or not }
  250. function is_nested_pd(def: tabstractprocdef): boolean;{$ifdef USEINLINE}inline;{$endif}
  251. { # returns whether def is a type parameter of a generic }
  252. function is_typeparam(def : tdef) : boolean;{$ifdef USEINLINE}inline;{$endif}
  253. { returns true of def is a methodpointer }
  254. function is_methodpointer(def : tdef) : boolean;
  255. { returns true if def is a C "block" }
  256. function is_block(def: tdef): boolean;
  257. { returns the TTypeKind value of the def }
  258. function get_typekind(def: tdef): byte;
  259. implementation
  260. uses
  261. verbose,cutils,
  262. cpuinfo;
  263. { returns true, if def uses FPU }
  264. function is_fpu(def : tdef) : boolean;
  265. begin
  266. is_fpu:=(def.typ=floatdef);
  267. end;
  268. { returns true, if def is a currency type }
  269. function is_currency(def : tdef) : boolean;
  270. begin
  271. case s64currencytype.typ of
  272. orddef :
  273. result:=(def.typ=orddef) and
  274. (torddef(s64currencytype).ordtype=torddef(def).ordtype);
  275. floatdef :
  276. result:=(def.typ=floatdef) and
  277. (tfloatdef(s64currencytype).floattype=tfloatdef(def).floattype);
  278. else
  279. internalerror(200304222);
  280. end;
  281. end;
  282. { returns true, if def is a single type }
  283. function is_single(def : tdef) : boolean;
  284. begin
  285. result:=(def.typ=floatdef) and
  286. (tfloatdef(def).floattype=s32real);
  287. end;
  288. { returns true, if def is a double type }
  289. function is_double(def : tdef) : boolean;
  290. begin
  291. result:=(def.typ=floatdef) and
  292. (tfloatdef(def).floattype=s64real);
  293. end;
  294. function is_extended(def : tdef) : boolean;
  295. begin
  296. result:=(def.typ=floatdef) and
  297. (tfloatdef(def).floattype in [s80real,sc80real]);
  298. end;
  299. { returns true, if definition is a "real" real (i.e. single/double/extended) }
  300. function is_real(def : tdef) : boolean;
  301. begin
  302. result:=(def.typ=floatdef) and
  303. (tfloatdef(def).floattype in [s32real,s64real,s80real]);
  304. end;
  305. function is_real_or_cextended(def: tdef): boolean;
  306. begin
  307. result:=(def.typ=floatdef) and
  308. (tfloatdef(def).floattype in [s32real,s64real,s80real,sc80real]);
  309. end;
  310. function range_to_basetype(const l,h:TConstExprInt):tordtype;
  311. begin
  312. { prefer signed over unsigned }
  313. if (l>=int64(-128)) and (h<=127) then
  314. range_to_basetype:=s8bit
  315. else if (l>=0) and (h<=255) then
  316. range_to_basetype:=u8bit
  317. else if (l>=int64(-32768)) and (h<=32767) then
  318. range_to_basetype:=s16bit
  319. else if (l>=0) and (h<=65535) then
  320. range_to_basetype:=u16bit
  321. else if (l>=int64(low(longint))) and (h<=high(longint)) then
  322. range_to_basetype:=s32bit
  323. else if (l>=low(cardinal)) and (h<=high(cardinal)) then
  324. range_to_basetype:=u32bit
  325. else if (l>=low(int64)) and (h<=high(int64)) then
  326. range_to_basetype:=s64bit
  327. else
  328. range_to_basetype:=u64bit;
  329. end;
  330. procedure range_to_type(const l,h:TConstExprInt;var def:tdef);
  331. begin
  332. { prefer signed over unsigned }
  333. if (l>=int64(-128)) and (h<=127) then
  334. def:=s8inttype
  335. else if (l>=0) and (h<=255) then
  336. def:=u8inttype
  337. else if (l>=int64(-32768)) and (h<=32767) then
  338. def:=s16inttype
  339. else if (l>=0) and (h<=65535) then
  340. def:=u16inttype
  341. else if (l>=int64(low(longint))) and (h<=high(longint)) then
  342. def:=s32inttype
  343. else if (l>=low(cardinal)) and (h<=high(cardinal)) then
  344. def:=u32inttype
  345. else if (l>=low(int64)) and (h<=high(int64)) then
  346. def:=s64inttype
  347. else
  348. def:=u64inttype;
  349. end;
  350. procedure int_to_type(const v:TConstExprInt;var def:tdef);
  351. begin
  352. range_to_type(v,v,def);
  353. end;
  354. { true if p is an ordinal }
  355. function is_ordinal(def : tdef) : boolean;
  356. var
  357. dt : tordtype;
  358. begin
  359. case def.typ of
  360. orddef :
  361. begin
  362. dt:=torddef(def).ordtype;
  363. is_ordinal:=dt in [uchar,uwidechar,
  364. u8bit,u16bit,u32bit,u64bit,
  365. s8bit,s16bit,s32bit,s64bit,
  366. pasbool1,pasbool8,pasbool16,pasbool32,pasbool64,
  367. bool8bit,bool16bit,bool32bit,bool64bit,customint];
  368. end;
  369. enumdef :
  370. is_ordinal:=true;
  371. else
  372. is_ordinal:=false;
  373. end;
  374. end;
  375. { true if p is a string }
  376. function is_string(def : tdef) : boolean;
  377. begin
  378. is_string := (assigned(def) and (def.typ = stringdef));
  379. end;
  380. function is_stringlike(def : tdef) : boolean;
  381. begin
  382. result := is_string(def) or
  383. is_anychar(def) or
  384. is_pchar(def) or
  385. is_pwidechar(def) or
  386. is_chararray(def) or
  387. is_widechararray(def) or
  388. is_open_chararray(def) or
  389. is_open_widechararray(def) or
  390. (def=java_jlstring);
  391. end;
  392. function is_enum(def : tdef) : boolean;
  393. begin
  394. result:=def.typ=enumdef;
  395. end;
  396. function is_set(def : tdef) : boolean;
  397. begin
  398. result:=def.typ=setdef;
  399. end;
  400. { returns the min. value of the type }
  401. function get_min_value(def : tdef) : TConstExprInt;
  402. begin
  403. case def.typ of
  404. orddef:
  405. result:=torddef(def).low;
  406. enumdef:
  407. result:=int64(tenumdef(def).min);
  408. else
  409. result:=0;
  410. end;
  411. end;
  412. { returns the max. value of the type }
  413. function get_max_value(def : tdef) : TConstExprInt;
  414. begin
  415. case def.typ of
  416. orddef:
  417. result:=torddef(def).high;
  418. enumdef:
  419. result:=tenumdef(def).max;
  420. else
  421. result:=0;
  422. end;
  423. end;
  424. function spans_entire_range(def: tdef): boolean;
  425. var
  426. lv, hv: Tconstexprint;
  427. mask: qword;
  428. size: longint;
  429. begin
  430. case def.typ of
  431. orddef,
  432. enumdef:
  433. getrange(def,lv,hv);
  434. else
  435. internalerror(2019062203);
  436. end;
  437. size:=def.size;
  438. case size of
  439. 1: mask:=$ff;
  440. 2: mask:=$ffff;
  441. 4: mask:=$ffffffff;
  442. 8: mask:=qword(-1);
  443. else
  444. internalerror(2019062204);
  445. end;
  446. result:=false;
  447. if is_signed(def) then
  448. begin
  449. if (lv.uvalue and mask)<>(qword(1) shl (size*8-1)) then
  450. exit;
  451. if (hv.uvalue and mask)<>(mask shr 1) then
  452. exit;
  453. end
  454. else
  455. begin
  456. if lv<>0 then
  457. exit;
  458. if hv.uvalue<>mask then
  459. exit;
  460. end;
  461. result:=true;
  462. end;
  463. { true if p is an integer }
  464. function is_integer(def : tdef) : boolean;
  465. begin
  466. result:=(def.typ=orddef) and
  467. (torddef(def).ordtype in [u8bit,u16bit,u32bit,u64bit,
  468. s8bit,s16bit,s32bit,s64bit,
  469. customint]);
  470. end;
  471. { true if p is a boolean }
  472. function is_boolean(def : tdef) : boolean;
  473. begin
  474. result:=(def.typ=orddef) and
  475. (torddef(def).ordtype in [pasbool1,pasbool8,pasbool16,pasbool32,pasbool64,bool8bit,bool16bit,bool32bit,bool64bit]);
  476. end;
  477. function is_pasbool(def : tdef) : boolean;
  478. begin
  479. result:=(def.typ=orddef) and
  480. (torddef(def).ordtype in [pasbool1,pasbool8,pasbool16,pasbool32,pasbool64]);
  481. end;
  482. { true if def is a C-style boolean (non-zero value = true, zero = false) }
  483. function is_cbool(def : tdef) : boolean;
  484. begin
  485. result:=(def.typ=orddef) and
  486. (torddef(def).ordtype in [bool8bit,bool16bit,bool32bit,bool64bit]);
  487. end;
  488. { true if p is a void }
  489. function is_void(def : tdef) : boolean;
  490. begin
  491. result:=(def.typ=orddef) and
  492. (torddef(def).ordtype=uvoid);
  493. end;
  494. { true if p is a char }
  495. function is_char(def : tdef) : boolean;
  496. begin
  497. result:=(def.typ=orddef) and
  498. (torddef(def).ordtype=uchar);
  499. end;
  500. { true if p is a wchar }
  501. function is_widechar(def : tdef) : boolean;
  502. begin
  503. result:=(def.typ=orddef) and
  504. (torddef(def).ordtype=uwidechar);
  505. end;
  506. { true if p is a char or wchar }
  507. function is_anychar(def : tdef) : boolean;
  508. begin
  509. result:=(def.typ=orddef) and
  510. (torddef(def).ordtype in [uchar,uwidechar])
  511. end;
  512. { true if p is signed (integer) }
  513. function is_signed(def : tdef) : boolean;
  514. begin
  515. case def.typ of
  516. orddef :
  517. result:=torddef(def).low < 0;
  518. enumdef :
  519. result:=tenumdef(def).min < 0;
  520. arraydef :
  521. result:=is_signed(tarraydef(def).rangedef);
  522. else
  523. result:=false;
  524. end;
  525. end;
  526. function get_unsigned_inttype(def: tdef): torddef;
  527. begin
  528. case def.typ of
  529. orddef,
  530. enumdef:
  531. result:=cgsize_orddef(tcgsize2unsigned[def_cgsize(def)]);
  532. else
  533. internalerror(2016062001);
  534. end;
  535. end;
  536. function is_in_limit(def_from,def_to : tdef) : boolean;
  537. begin
  538. if (def_from.typ<>def_to.typ) or
  539. not(def_from.typ in [orddef,enumdef,setdef]) then
  540. begin
  541. is_in_limit := false;
  542. exit;
  543. end;
  544. case def_from.typ of
  545. orddef:
  546. is_in_limit:=(torddef(def_from).low>=torddef(def_to).low) and
  547. (torddef(def_from).high<=torddef(def_to).high);
  548. enumdef:
  549. is_in_limit:=(tenumdef(def_from).min>=tenumdef(def_to).min) and
  550. (tenumdef(def_from).max<=tenumdef(def_to).max);
  551. setdef:
  552. is_in_limit:=(tsetdef(def_from).setbase>=tsetdef(def_to).setbase) and
  553. (tsetdef(def_from).setmax<=tsetdef(def_to).setmax);
  554. else
  555. is_in_limit:=false;
  556. end;
  557. end;
  558. function is_managed_type(def: tdef): boolean;{$ifdef USEINLINE}inline;{$endif}
  559. begin
  560. result:=def.needs_inittable;
  561. end;
  562. function is_rtti_managed_type(def: tdef): boolean;
  563. begin
  564. result:=def.needs_inittable and not (
  565. is_interfacecom_or_dispinterface(def) or
  566. (def.typ=variantdef) or
  567. (
  568. (def.typ=stringdef) and
  569. (tstringdef(def).stringtype in [st_ansistring,st_widestring,st_unicodestring])
  570. )
  571. );
  572. end;
  573. { true, if p points to an open array def }
  574. function is_open_string(p : tdef) : boolean;
  575. begin
  576. is_open_string:=(p.typ=stringdef) and
  577. (tstringdef(p).stringtype=st_shortstring) and
  578. (tstringdef(p).len=0);
  579. end;
  580. { true, if p points to a zero based array def }
  581. function is_zero_based_array(p : tdef) : boolean;
  582. begin
  583. result:=(p.typ=arraydef) and
  584. (tarraydef(p).lowrange=0) and
  585. not(is_special_array(p));
  586. end;
  587. { true if p points to a dynamic array def }
  588. function is_dynamic_array(p : tdef) : boolean;
  589. begin
  590. result:=(p.typ=arraydef) and
  591. (ado_IsDynamicArray in tarraydef(p).arrayoptions);
  592. end;
  593. { true, if p points to an open array def }
  594. function is_open_array(p : tdef) : boolean;
  595. begin
  596. { check for sizesinttype is needed, because for unsigned the high
  597. range is also -1 ! (PFV) }
  598. result:=(p.typ=arraydef) and
  599. (tarraydef(p).rangedef=sizesinttype) and
  600. (tarraydef(p).lowrange=0) and
  601. (tarraydef(p).highrange=-1) and
  602. ((tarraydef(p).arrayoptions * [ado_IsVariant,ado_IsArrayOfConst,ado_IsConstructor,ado_IsDynamicArray])=[]);
  603. end;
  604. { true, if p points to an array of const def }
  605. function is_array_constructor(p : tdef) : boolean;
  606. begin
  607. result:=(p.typ=arraydef) and
  608. (ado_IsConstructor in tarraydef(p).arrayoptions);
  609. end;
  610. { true, if p points to a variant array }
  611. function is_variant_array(p : tdef) : boolean;
  612. begin
  613. result:=(p.typ=arraydef) and
  614. (ado_IsVariant in tarraydef(p).arrayoptions);
  615. end;
  616. { true, if p points to an array of const }
  617. function is_array_of_const(p : tdef) : boolean;
  618. begin
  619. result:=(p.typ=arraydef) and
  620. (ado_IsArrayOfConst in tarraydef(p).arrayoptions);
  621. end;
  622. { true, if p points to a special array, bitpacked arrays aren't special in this regard though }
  623. function is_special_array(p : tdef) : boolean;
  624. begin
  625. result:=(p.typ=arraydef) and
  626. (
  627. ((tarraydef(p).arrayoptions * [ado_IsVariant,ado_IsArrayOfConst,ado_IsConstructor,ado_IsDynamicArray])<>[]) or
  628. is_open_array(p)
  629. );
  630. end;
  631. { true, if p points to a normal array, bitpacked arrays are included }
  632. function is_normal_array(p : tdef) : boolean;
  633. begin
  634. result:=(p.typ=arraydef) and
  635. ((tarraydef(p).arrayoptions * [ado_IsVariant,ado_IsArrayOfConst,ado_IsConstructor,ado_IsDynamicArray])=[]) and
  636. not(is_open_array(p));
  637. end;
  638. { true if p is an ansi string def }
  639. function is_ansistring(p : tdef) : boolean;
  640. begin
  641. is_ansistring:=(p.typ=stringdef) and
  642. (tstringdef(p).stringtype=st_ansistring);
  643. end;
  644. { true if p is an ansi string def with codepage CP_NONE }
  645. function is_rawbytestring(p : tdef) : boolean;
  646. begin
  647. is_rawbytestring:=(p.typ=stringdef) and
  648. (tstringdef(p).stringtype=st_ansistring) and
  649. (tstringdef(p).encoding=globals.CP_NONE);
  650. end;
  651. { true if p is an long string def }
  652. function is_longstring(p : tdef) : boolean;
  653. begin
  654. is_longstring:=(p.typ=stringdef) and
  655. (tstringdef(p).stringtype=st_longstring);
  656. end;
  657. { true if p is an wide string def }
  658. function is_widestring(p : tdef) : boolean;
  659. begin
  660. is_widestring:=(p.typ=stringdef) and
  661. (tstringdef(p).stringtype=st_widestring);
  662. end;
  663. function is_dynamicstring(p: tdef): boolean;
  664. begin
  665. is_dynamicstring:=(p.typ=stringdef) and
  666. (tstringdef(p).stringtype in [st_ansistring,st_widestring,st_unicodestring]);
  667. end;
  668. { true if p is an wide string def }
  669. function is_wide_or_unicode_string(p : tdef) : boolean;
  670. begin
  671. is_wide_or_unicode_string:=(p.typ=stringdef) and
  672. (tstringdef(p).stringtype in [st_widestring,st_unicodestring]);
  673. end;
  674. { true if p is an unicode string def }
  675. function is_unicodestring(p : tdef) : boolean;
  676. begin
  677. is_unicodestring:=(p.typ=stringdef) and
  678. (tstringdef(p).stringtype=st_unicodestring);
  679. end;
  680. { true if p is an short string def }
  681. function is_shortstring(p : tdef) : boolean;
  682. begin
  683. is_shortstring:=(p.typ=stringdef) and
  684. (tstringdef(p).stringtype=st_shortstring);
  685. end;
  686. { true if p is bit packed array def }
  687. function is_packed_array(p: tdef) : boolean;
  688. begin
  689. is_packed_array :=
  690. (p.typ = arraydef) and
  691. (ado_IsBitPacked in tarraydef(p).arrayoptions);
  692. end;
  693. { true if p is bit packed record def }
  694. function is_packed_record_or_object(p: tdef) : boolean;
  695. begin
  696. is_packed_record_or_object :=
  697. (p.typ in [recorddef,objectdef]) and
  698. (tabstractrecorddef(p).is_packed);
  699. end;
  700. { true if p is a char array def }
  701. function is_chararray(p : tdef) : boolean;
  702. begin
  703. is_chararray:=(p.typ=arraydef) and
  704. is_char(tarraydef(p).elementdef) and
  705. not(is_special_array(p));
  706. end;
  707. { true if p is a widechar array def }
  708. function is_widechararray(p : tdef) : boolean;
  709. begin
  710. is_widechararray:=(p.typ=arraydef) and
  711. is_widechar(tarraydef(p).elementdef) and
  712. not(is_special_array(p));
  713. end;
  714. { true if p is a open char array def }
  715. function is_open_chararray(p : tdef) : boolean;
  716. begin
  717. is_open_chararray:= is_open_array(p) and
  718. is_char(tarraydef(p).elementdef);
  719. end;
  720. { true if p is a open wide char array def }
  721. function is_open_widechararray(p : tdef) : boolean;
  722. begin
  723. is_open_widechararray:= is_open_array(p) and
  724. is_widechar(tarraydef(p).elementdef);
  725. end;
  726. { true if p is any pointer def }
  727. function is_pointer(p : tdef) : boolean;
  728. begin
  729. is_pointer:=(p.typ=pointerdef);
  730. end;
  731. { true if p is a pchar def }
  732. function is_pchar(p : tdef) : boolean;
  733. begin
  734. is_pchar:=(p.typ=pointerdef) and
  735. (is_char(tpointerdef(p).pointeddef) or
  736. (is_zero_based_array(tpointerdef(p).pointeddef) and
  737. is_chararray(tpointerdef(p).pointeddef)));
  738. end;
  739. { true if p is a pchar def }
  740. function is_pwidechar(p : tdef) : boolean;
  741. begin
  742. is_pwidechar:=(p.typ=pointerdef) and
  743. (is_widechar(tpointerdef(p).pointeddef) or
  744. (is_zero_based_array(tpointerdef(p).pointeddef) and
  745. is_widechararray(tpointerdef(p).pointeddef)));
  746. end;
  747. { true if p is a voidpointer def }
  748. function is_voidpointer(p : tdef) : boolean;
  749. begin
  750. is_voidpointer:=(p.typ=pointerdef) and
  751. (tpointerdef(p).pointeddef.typ=orddef) and
  752. (torddef(tpointerdef(p).pointeddef).ordtype=uvoid);
  753. end;
  754. { true, if def is a 8 bit int type }
  755. function is_8bitint(def : tdef) : boolean;
  756. begin
  757. result:=(def.typ=orddef) and (torddef(def).ordtype in [u8bit,s8bit])
  758. end;
  759. { true, if def is a 8 bit ordinal type }
  760. function is_8bit(def : tdef) : boolean;
  761. begin
  762. result:=(def.typ=orddef) and (torddef(def).ordtype in [u8bit,s8bit,pasbool1,pasbool8,bool8bit,uchar])
  763. end;
  764. { true, if def is a 16 bit int type }
  765. function is_16bitint(def : tdef) : boolean;
  766. begin
  767. result:=(def.typ=orddef) and (torddef(def).ordtype in [u16bit,s16bit])
  768. end;
  769. { true, if def is a 16 bit ordinal type }
  770. function is_16bit(def : tdef) : boolean;
  771. begin
  772. result:=(def.typ=orddef) and (torddef(def).ordtype in [u16bit,s16bit,pasbool16,bool16bit,uwidechar])
  773. end;
  774. { true, if def is a 32 bit int type }
  775. function is_32bitint(def : tdef) : boolean;
  776. begin
  777. result:=(def.typ=orddef) and (torddef(def).ordtype in [u32bit,s32bit])
  778. end;
  779. { true, if def is a 32 bit ordinal type }
  780. function is_32bit(def: tdef): boolean;
  781. begin
  782. result:=(def.typ=orddef) and (torddef(def).ordtype in [u32bit,s32bit,pasbool32,bool32bit])
  783. end;
  784. { true, if def is a 64 bit int type }
  785. function is_64bitint(def : tdef) : boolean;
  786. begin
  787. is_64bitint:=(def.typ=orddef) and (torddef(def).ordtype in [u64bit,s64bit])
  788. end;
  789. { true, if def is a 64 bit type }
  790. function is_64bit(def : tdef) : boolean;
  791. begin
  792. is_64bit:=(def.typ=orddef) and (torddef(def).ordtype in [u64bit,s64bit,scurrency,pasbool64,bool64bit])
  793. end;
  794. { true, if def1 and def2 are both integers of the same bit size and sign }
  795. function are_equal_ints(def1, def2: tdef): boolean;
  796. begin
  797. result:=(def1.typ=orddef) and (def2.typ=orddef) and
  798. (torddef(def1).ordtype in [u8bit,u16bit,u32bit,u64bit,
  799. s8bit,s16bit,s32bit,s64bit,customint]) and
  800. (torddef(def1).ordtype=torddef(def2).ordtype) and
  801. ((torddef(def1).ordtype<>customint) or
  802. ((torddef(def1).low=torddef(def2).low) and
  803. (torddef(def1).high=torddef(def2).high)));
  804. end;
  805. { true, if def is an int type, larger than the processor's native int size }
  806. function is_oversizedint(def : tdef) : boolean;
  807. begin
  808. {$if defined(cpu8bitalu)}
  809. result:=is_64bitint(def) or is_32bitint(def) or is_16bitint(def);
  810. {$elseif defined(cpu16bitalu)}
  811. result:=is_64bitint(def) or is_32bitint(def);
  812. {$elseif defined(cpu32bitaddr)}
  813. result:=is_64bitint(def);
  814. {$elseif defined(cpu64bitaddr)}
  815. result:=false;
  816. {$endif}
  817. end;
  818. { true, if def is an ordinal type, larger than the processor's native int size }
  819. function is_oversizedord(def : tdef) : boolean;
  820. begin
  821. {$if defined(cpu8bitalu)}
  822. result:=is_64bit(def) or is_32bit(def) or is_16bit(def);
  823. {$elseif defined(cpu16bitalu)}
  824. result:=is_64bit(def) or is_32bit(def);
  825. {$elseif defined(cpu32bitaddr)}
  826. result:=is_64bit(def);
  827. {$elseif defined(cpu64bitaddr)}
  828. result:=false;
  829. {$endif}
  830. end;
  831. { true, if def is an int type, equal in size to the processor's native int size }
  832. function is_nativeint(def: tdef): boolean;
  833. begin
  834. {$if defined(cpu8bitalu)}
  835. result:=is_8bitint(def);
  836. {$elseif defined(cpu16bitalu)}
  837. result:=is_16bitint(def);
  838. {$elseif defined(cpu32bitaddr)}
  839. result:=is_32bitint(def);
  840. {$elseif defined(cpu64bitaddr)}
  841. result:=is_64bitint(def);
  842. {$endif}
  843. end;
  844. { true, if def is an ordinal type, equal in size to the processor's native int size }
  845. function is_nativeord(def: tdef): boolean;
  846. begin
  847. {$if defined(cpu8bitalu)}
  848. result:=is_8bit(def);
  849. {$elseif defined(cpu16bitalu)}
  850. result:=is_16bit(def);
  851. {$elseif defined(cpu32bitaddr)}
  852. result:=is_32bit(def);
  853. {$elseif defined(cpu64bitaddr)}
  854. result:=is_64bit(def);
  855. {$endif}
  856. end;
  857. { true, if def is an unsigned int type, equal in size to the processor's native int size }
  858. function is_nativeuint(def: tdef): boolean;
  859. begin
  860. result:=is_nativeint(def) and (def.typ=orddef) and (torddef(def).ordtype in [u64bit,u32bit,u16bit,u8bit]);
  861. end;
  862. { true, if def is a signed int type, equal in size to the processor's native int size }
  863. function is_nativesint(def: tdef): boolean;
  864. begin
  865. result:=is_nativeint(def) and (def.typ=orddef) and (torddef(def).ordtype in [s64bit,s32bit,s16bit,s8bit]);
  866. end;
  867. { if l isn't in the range of todef a range check error (if not explicit) is generated and
  868. the value is placed within the range }
  869. procedure adaptrange(todef : tdef;var l : tconstexprint; rangecheck: tperformrangecheck);
  870. var
  871. lv,hv,oldval,sextval,mask: TConstExprInt;
  872. rangedef: tdef;
  873. rangedefsize: longint;
  874. warned: boolean;
  875. begin
  876. getrange(todef,lv,hv);
  877. if (l<lv) or (l>hv) then
  878. begin
  879. warned:=false;
  880. if rangecheck in [rc_implicit,rc_yes] then
  881. begin
  882. if (rangecheck=rc_yes) or
  883. (todef.typ=enumdef) then
  884. Message3(type_e_range_check_error_bounds,tostr(l),tostr(lv),tostr(hv))
  885. else
  886. Message3(type_w_range_check_error_bounds,tostr(l),tostr(lv),tostr(hv));
  887. warned:=true;
  888. end
  889. { give warnings about range errors with explicit typeconversions if the target
  890. type does not span the entire range that can be represented by its bits
  891. (subrange type or enum), because then the result is undefined }
  892. else if (rangecheck<>rc_internal) and
  893. (not is_pasbool(todef) and
  894. not spans_entire_range(todef)) then
  895. begin
  896. Message3(type_w_range_check_error_bounds,tostr(l),tostr(lv),tostr(hv));
  897. warned:=true;
  898. end;
  899. { Fix the value to fit in the allocated space for this type of variable }
  900. oldval:=l;
  901. getrangedefmasksize(todef,rangedef,mask,rangedefsize);
  902. l:=l and mask;
  903. {reset sign, i.e. converting -1 to qword changes the value to high(qword)}
  904. l.signed:=false;
  905. sextval:=0;
  906. { do sign extension if necessary (JM) }
  907. case rangedefsize of
  908. 1: sextval.svalue:=shortint(l.svalue);
  909. 2: sextval.svalue:=smallint(l.svalue);
  910. 4: sextval.svalue:=longint(l.svalue);
  911. 8: sextval.svalue:=l.svalue;
  912. else
  913. internalerror(201906230);
  914. end;
  915. sextval.signed:=true;
  916. { Detect if the type spans the entire range, but more bits were specified than
  917. the type can contain, e.g. shortint($fff).
  918. However, none of the following should result in a warning:
  919. 1) shortint($ff) (-> $ff -> $ff -> $ffff ffff ffff ffff)
  920. 2) shortint(longint(-1)) ($ffff ffff ffff ffff ffff -> $ff -> $ffff ffff ffff ffff
  921. 3) cardinal(-1) (-> $ffff ffff ffff ffff -> $ffff ffff)
  922. }
  923. if not warned and
  924. (rangecheck<>rc_internal) and
  925. (oldval.uvalue<>l.uvalue) and
  926. (oldval.uvalue<>sextval.uvalue) then
  927. begin
  928. Message3(type_w_range_check_error_bounds,tostr(oldval),tostr(lv),tostr(hv));
  929. end;
  930. if is_signed(rangedef) then
  931. l:=sextval;
  932. end;
  933. end;
  934. procedure adaptrange(todef: tdef; var l: tconstexprint; internal, explicit, rangecheckstate: boolean);
  935. begin
  936. if internal then
  937. adaptrange(todef, l, rc_internal)
  938. else if explicit then
  939. adaptrange(todef, l, rc_explicit)
  940. else if not rangecheckstate then
  941. adaptrange(todef, l, rc_implicit)
  942. else
  943. adaptrange(todef, l, rc_yes)
  944. end;
  945. { return the range from def in l and h }
  946. procedure getrange(def : tdef;out l, h : TConstExprInt);
  947. begin
  948. case def.typ of
  949. orddef :
  950. begin
  951. l:=torddef(def).low;
  952. h:=torddef(def).high;
  953. end;
  954. enumdef :
  955. begin
  956. l:=int64(tenumdef(def).min);
  957. h:=int64(tenumdef(def).max);
  958. end;
  959. arraydef :
  960. begin
  961. l:=int64(tarraydef(def).lowrange);
  962. h:=int64(tarraydef(def).highrange);
  963. end;
  964. undefineddef:
  965. begin
  966. l:=torddef(sizesinttype).low;
  967. h:=torddef(sizesinttype).high;
  968. end;
  969. else
  970. internalerror(200611054);
  971. end;
  972. end;
  973. procedure getrangedefmasksize(def: tdef; out rangedef: tdef; out mask: TConstExprInt; out size: longint);
  974. begin
  975. case def.typ of
  976. orddef, enumdef:
  977. begin
  978. rangedef:=def;
  979. size:=def.size;
  980. case size of
  981. 1: mask:=$ff;
  982. 2: mask:=$ffff;
  983. 4: mask:=$ffffffff;
  984. 8: mask:=$ffffffffffffffff;
  985. else
  986. internalerror(2019062305);
  987. end;
  988. end;
  989. arraydef:
  990. begin
  991. rangedef:=tarraydef(def).rangedef;
  992. getrangedefmasksize(rangedef,rangedef,mask,size);
  993. end;
  994. undefineddef:
  995. begin
  996. rangedef:=sizesinttype;
  997. size:=rangedef.size;
  998. mask:=-1;
  999. end;
  1000. else
  1001. internalerror(2019062306);
  1002. end;
  1003. end;
  1004. function mmx_type(p : tdef) : tmmxtype;
  1005. begin
  1006. mmx_type:=mmxno;
  1007. if is_mmx_able_array(p) then
  1008. begin
  1009. if tarraydef(p).elementdef.typ=floatdef then
  1010. case tfloatdef(tarraydef(p).elementdef).floattype of
  1011. s32real:
  1012. mmx_type:=mmxsingle;
  1013. else
  1014. ;
  1015. end
  1016. else
  1017. case torddef(tarraydef(p).elementdef).ordtype of
  1018. u8bit:
  1019. mmx_type:=mmxu8bit;
  1020. s8bit:
  1021. mmx_type:=mmxs8bit;
  1022. u16bit:
  1023. mmx_type:=mmxu16bit;
  1024. s16bit:
  1025. mmx_type:=mmxs16bit;
  1026. u32bit:
  1027. mmx_type:=mmxu32bit;
  1028. s32bit:
  1029. mmx_type:=mmxs32bit;
  1030. else
  1031. ;
  1032. end;
  1033. end;
  1034. end;
  1035. { The range-type of an ordinal-type that is a subrange-type shall be the host-type (see 6.4.2.4) of the subrange-type.
  1036. The range-type of an ordinal-type that is not a subrange-type shall be the ordinal-type.
  1037. The subrange-bounds shall be of compatible ordinal-types, and the range-type (see 6.4.2.1) of the ordinal-types shall
  1038. be designated the host-type of the subrange-type. }
  1039. function get_iso_range_type(def: tdef): tdef;
  1040. begin
  1041. result:=nil;
  1042. case def.typ of
  1043. orddef:
  1044. begin
  1045. if is_integer(def) then
  1046. begin
  1047. if (torddef(def).low>=torddef(sinttype).low) and
  1048. (torddef(def).high<=torddef(sinttype).high) then
  1049. result:=sinttype
  1050. else
  1051. range_to_type(torddef(def).low,torddef(def).high,result);
  1052. end
  1053. else case torddef(def).ordtype of
  1054. pasbool1:
  1055. result:=pasbool1type;
  1056. pasbool8:
  1057. result:=pasbool8type;
  1058. pasbool16:
  1059. result:=pasbool16type;
  1060. pasbool32:
  1061. result:=pasbool32type;
  1062. pasbool64:
  1063. result:=pasbool64type;
  1064. bool8bit:
  1065. result:=bool8type;
  1066. bool16bit:
  1067. result:=bool16type;
  1068. bool32bit:
  1069. result:=bool32type;
  1070. bool64bit:
  1071. result:=bool64type;
  1072. uchar:
  1073. result:=cansichartype;
  1074. uwidechar:
  1075. result:=cwidechartype;
  1076. scurrency:
  1077. result:=s64currencytype;
  1078. else
  1079. internalerror(2018010901);
  1080. end;
  1081. end;
  1082. enumdef:
  1083. begin
  1084. while assigned(tenumdef(def).basedef) do
  1085. def:=tenumdef(def).basedef;
  1086. result:=def;
  1087. end
  1088. else
  1089. internalerror(2018010701);
  1090. end;
  1091. end;
  1092. function is_vector(p : tdef) : boolean;
  1093. begin
  1094. result:=(p.typ=arraydef) and
  1095. not(is_special_array(p)) and
  1096. (tarraydef(p).elementdef.typ in [floatdef,orddef]) {and
  1097. (tarraydef(p).elementdef.typ=floatdef) and
  1098. (tfloatdef(tarraydef(p).elementdef).floattype in [s32real,s64real])};
  1099. end;
  1100. { returns if the passed type (array) fits into an mm register }
  1101. function fits_in_mm_register(p : tdef) : boolean;
  1102. begin
  1103. {$ifdef x86}
  1104. result:= is_vector(p) and
  1105. (
  1106. (
  1107. (tarraydef(p).elementdef.typ=floatdef) and
  1108. (
  1109. (tarraydef(p).lowrange=0) and
  1110. (tarraydef(p).highrange=3) and
  1111. (tfloatdef(tarraydef(p).elementdef).floattype=s32real)
  1112. )
  1113. ) or
  1114. (
  1115. (tarraydef(p).elementdef.typ=floatdef) and
  1116. (
  1117. (tarraydef(p).lowrange=0) and
  1118. (tarraydef(p).highrange=1) and
  1119. (tfloatdef(tarraydef(p).elementdef).floattype=s64real)
  1120. )
  1121. ) {or
  1122. // MMX registers
  1123. (
  1124. (tarraydef(p).elementdef.typ=floatdef) and
  1125. (
  1126. (tarraydef(p).lowrange=0) and
  1127. (tarraydef(p).highrange=1) and
  1128. (tfloatdef(tarraydef(p).elementdef).floattype=s32real)
  1129. )
  1130. ) or
  1131. (
  1132. (tarraydef(p).elementdef.typ=orddef) and
  1133. (
  1134. (tarraydef(p).lowrange=0) and
  1135. (tarraydef(p).highrange=1) and
  1136. (torddef(tarraydef(p).elementdef).ordtype in [s32bit,u32bit])
  1137. )
  1138. ) or
  1139. (
  1140. (tarraydef(p).elementdef.typ=orddef) and
  1141. (
  1142. (tarraydef(p).lowrange=0) and
  1143. (tarraydef(p).highrange=3) and
  1144. (torddef(tarraydef(p).elementdef).ordtype in [s16bit,u16bit])
  1145. )
  1146. ) or
  1147. (
  1148. (tarraydef(p).elementdef.typ=orddef) and
  1149. (
  1150. (tarraydef(p).lowrange=0) and
  1151. (tarraydef(p).highrange=7) and
  1152. (torddef(tarraydef(p).elementdef).ordtype in [s8bit,u8bit])
  1153. )
  1154. ) }
  1155. );
  1156. {$else x86}
  1157. result:=false;
  1158. {$endif x86}
  1159. end;
  1160. function is_mmx_able_array(p : tdef) : boolean;
  1161. begin
  1162. {$ifdef SUPPORT_MMX}
  1163. if (cs_mmx_saturation in current_settings.localswitches) then
  1164. begin
  1165. is_mmx_able_array:=(p.typ=arraydef) and
  1166. not(is_special_array(p)) and
  1167. (
  1168. (
  1169. (tarraydef(p).elementdef.typ=orddef) and
  1170. (
  1171. (
  1172. (tarraydef(p).lowrange=0) and
  1173. (tarraydef(p).highrange=1) and
  1174. (torddef(tarraydef(p).elementdef).ordtype in [u32bit,s32bit])
  1175. )
  1176. or
  1177. (
  1178. (tarraydef(p).lowrange=0) and
  1179. (tarraydef(p).highrange=3) and
  1180. (torddef(tarraydef(p).elementdef).ordtype in [u16bit,s16bit])
  1181. )
  1182. )
  1183. )
  1184. or
  1185. (
  1186. (
  1187. (tarraydef(p).elementdef.typ=floatdef) and
  1188. (
  1189. (tarraydef(p).lowrange=0) and
  1190. (tarraydef(p).highrange=1) and
  1191. (tfloatdef(tarraydef(p).elementdef).floattype=s32real)
  1192. )
  1193. )
  1194. )
  1195. );
  1196. end
  1197. else
  1198. begin
  1199. is_mmx_able_array:=(p.typ=arraydef) and
  1200. (
  1201. (
  1202. (tarraydef(p).elementdef.typ=orddef) and
  1203. (
  1204. (
  1205. (tarraydef(p).lowrange=0) and
  1206. (tarraydef(p).highrange=1) and
  1207. (torddef(tarraydef(p).elementdef).ordtype in [u32bit,s32bit])
  1208. )
  1209. or
  1210. (
  1211. (tarraydef(p).lowrange=0) and
  1212. (tarraydef(p).highrange=3) and
  1213. (torddef(tarraydef(p).elementdef).ordtype in [u16bit,s16bit])
  1214. )
  1215. or
  1216. (
  1217. (tarraydef(p).lowrange=0) and
  1218. (tarraydef(p).highrange=7) and
  1219. (torddef(tarraydef(p).elementdef).ordtype in [u8bit,s8bit])
  1220. )
  1221. )
  1222. )
  1223. or
  1224. (
  1225. (tarraydef(p).elementdef.typ=floatdef) and
  1226. (
  1227. (tarraydef(p).lowrange=0) and
  1228. (tarraydef(p).highrange=1) and
  1229. (tfloatdef(tarraydef(p).elementdef).floattype=s32real)
  1230. )
  1231. )
  1232. );
  1233. end;
  1234. {$else SUPPORT_MMX}
  1235. is_mmx_able_array:=false;
  1236. {$endif SUPPORT_MMX}
  1237. end;
  1238. function def_cgsize(def: tdef): tcgsize;
  1239. begin
  1240. case def.typ of
  1241. orddef,
  1242. enumdef,
  1243. setdef:
  1244. begin
  1245. result:=int_cgsize(def.size);
  1246. if is_signed(def) then
  1247. result:=tcgsize(ord(result)+(ord(OS_S8)-ord(OS_8)));
  1248. end;
  1249. classrefdef,
  1250. pointerdef:
  1251. begin
  1252. result:=int_cgsize(def.size);
  1253. { can happen for far/huge pointers on non-i8086 }
  1254. if result=OS_NO then
  1255. internalerror(2013052201);
  1256. end;
  1257. formaldef:
  1258. result := int_cgsize(voidpointertype.size);
  1259. procvardef:
  1260. result:=int_cgsize(def.size);
  1261. stringdef :
  1262. result:=int_cgsize(def.size);
  1263. objectdef :
  1264. result:=int_cgsize(def.size);
  1265. floatdef:
  1266. if (cs_fp_emulation in current_settings.moduleswitches)
  1267. {$ifdef xtensa}
  1268. or not(tfloatdef(def).floattype=s32real)
  1269. or not(FPUXTENSA_SINGLE in fpu_capabilities[current_settings.fputype])
  1270. {$endif xtensa}
  1271. then
  1272. result:=int_cgsize(def.size)
  1273. else
  1274. result:=tfloat2tcgsize[tfloatdef(def).floattype];
  1275. recorddef :
  1276. result:=int_cgsize(def.size);
  1277. arraydef :
  1278. begin
  1279. if is_dynamic_array(def) or not is_special_array(def) then
  1280. begin
  1281. if is_vector(def) and ((TArrayDef(def).elementdef.typ = floatdef) and not (cs_fp_emulation in current_settings.moduleswitches)) then
  1282. begin
  1283. { Determine if, based on the floating-point type and the size
  1284. of the array, if it can be made into a vector }
  1285. case tfloatdef(tarraydef(def).elementdef).floattype of
  1286. s32real:
  1287. result := float_array_cgsize(def.size);
  1288. s64real:
  1289. result := double_array_cgsize(def.size);
  1290. else
  1291. { If not, fall back }
  1292. result := int_cgsize(def.size);
  1293. end;
  1294. end
  1295. else
  1296. result := int_cgsize(def.size);
  1297. end
  1298. else
  1299. result := OS_NO;
  1300. end;
  1301. else
  1302. begin
  1303. { undefined size }
  1304. result:=OS_NO;
  1305. end;
  1306. end;
  1307. end;
  1308. function cgsize_orddef(size: tcgsize): torddef;
  1309. begin
  1310. case size of
  1311. OS_8:
  1312. result:=torddef(u8inttype);
  1313. OS_S8:
  1314. result:=torddef(s8inttype);
  1315. OS_16:
  1316. result:=torddef(u16inttype);
  1317. OS_S16:
  1318. result:=torddef(s16inttype);
  1319. OS_32:
  1320. result:=torddef(u32inttype);
  1321. OS_S32:
  1322. result:=torddef(s32inttype);
  1323. OS_64:
  1324. result:=torddef(u64inttype);
  1325. OS_S64:
  1326. result:=torddef(s64inttype);
  1327. else
  1328. internalerror(2012050401);
  1329. end;
  1330. end;
  1331. function def_cgmmsize(def: tdef): tcgsize;
  1332. begin
  1333. case def.typ of
  1334. arraydef:
  1335. begin
  1336. case tarraydef(def).elementdef.typ of
  1337. orddef:
  1338. begin
  1339. { this is not correct, OS_MX normally mean that the vector
  1340. contains elements of size X. However, vectors themselves
  1341. can also have different sizes (e.g. a vector of 2 singles on
  1342. SSE) and the total size is currently more important }
  1343. case def.size of
  1344. 1: result:=OS_M8;
  1345. 2: result:=OS_M16;
  1346. 4: result:=OS_M32;
  1347. 8: result:=OS_M64;
  1348. 16: result:=OS_M128;
  1349. 32: result:=OS_M256;
  1350. 64: result:=OS_M512;
  1351. else
  1352. internalerror(2013060103);
  1353. end;
  1354. end;
  1355. floatdef:
  1356. begin
  1357. case TFloatDef(tarraydef(def).elementdef).floattype of
  1358. s32real:
  1359. case def.size of
  1360. 4: result:=OS_M32;
  1361. 16: result:=OS_M128;
  1362. 32: result:=OS_M256;
  1363. 64: result:=OS_M512;
  1364. else
  1365. internalerror(2017121400);
  1366. end;
  1367. s64real:
  1368. case def.size of
  1369. 8: result:=OS_M64;
  1370. 16: result:=OS_M128;
  1371. 32: result:=OS_M256;
  1372. 64: result:=OS_M512;
  1373. else
  1374. internalerror(2017121401);
  1375. end;
  1376. else
  1377. internalerror(2017121402);
  1378. end;
  1379. end;
  1380. else
  1381. result:=def_cgsize(def);
  1382. end;
  1383. end
  1384. else
  1385. result:=def_cgsize(def);
  1386. end;
  1387. end;
  1388. { In Windows 95 era, ordinals were restricted to [u8bit,s32bit,s16bit,bool16bit]
  1389. As of today, both signed and unsigned types from 8 to 64 bits are supported. }
  1390. function is_automatable(p : tdef) : boolean;
  1391. begin
  1392. case p.typ of
  1393. orddef:
  1394. result:=torddef(p).ordtype in [u8bit,s8bit,u16bit,s16bit,u32bit,s32bit,
  1395. u64bit,s64bit,bool16bit,scurrency];
  1396. floatdef:
  1397. result:=tfloatdef(p).floattype in [s64currency,s64real,s32real];
  1398. stringdef:
  1399. result:=tstringdef(p).stringtype in [st_ansistring,st_widestring,st_unicodestring];
  1400. variantdef:
  1401. result:=true;
  1402. objectdef:
  1403. result:=tobjectdef(p).objecttype in [odt_interfacecom,odt_dispinterface,odt_interfacecorba];
  1404. else
  1405. result:=false;
  1406. end;
  1407. end;
  1408. {# returns true, if the type passed is a varset }
  1409. function is_smallset(p : tdef) : boolean;
  1410. begin
  1411. {$if defined(cpu8bitalu)}
  1412. result:=(p.typ=setdef) and (p.size = 1)
  1413. {$elseif defined(cpu16bitalu)}
  1414. result:=(p.typ=setdef) and (p.size in [1,2])
  1415. {$else}
  1416. result:=(p.typ=setdef) and (p.size in [1,2,4])
  1417. {$endif}
  1418. end;
  1419. function is_bareprocdef(pd : tprocdef): boolean;
  1420. begin
  1421. result:=(pd.maxparacount=0) and
  1422. (is_void(pd.returndef) or
  1423. (pd.proctypeoption = potype_constructor));
  1424. end;
  1425. function is_c_variadic(pd: tabstractprocdef): boolean;
  1426. begin
  1427. result:=
  1428. (po_varargs in pd.procoptions) or
  1429. (po_variadic in pd.procoptions);
  1430. end;
  1431. function get_common_intdef(ld, rd: torddef; keep_sign_if_equal: boolean): torddef;
  1432. var
  1433. llow, lhigh: tconstexprint;
  1434. begin
  1435. llow:=min(ld.low,rd.low);
  1436. lhigh:=max(ld.high,rd.high);
  1437. case range_to_basetype(llow,lhigh) of
  1438. s8bit:
  1439. result:=torddef(s8inttype);
  1440. u8bit:
  1441. result:=torddef(u8inttype);
  1442. s16bit:
  1443. result:=torddef(s16inttype);
  1444. u16bit:
  1445. result:=torddef(u16inttype);
  1446. s32bit:
  1447. result:=torddef(s32inttype);
  1448. u32bit:
  1449. result:=torddef(u32inttype);
  1450. s64bit:
  1451. result:=torddef(s64inttype);
  1452. u64bit:
  1453. result:=torddef(u64inttype);
  1454. else
  1455. begin
  1456. { avoid warning }
  1457. result:=nil;
  1458. internalerror(200802291);
  1459. end;
  1460. end;
  1461. if keep_sign_if_equal and
  1462. (is_signed(ld)=is_signed(rd)) and
  1463. (is_signed(result)<>is_signed(ld)) then
  1464. case result.ordtype of
  1465. s8bit:
  1466. result:=torddef(u8inttype);
  1467. u8bit:
  1468. result:=torddef(s16inttype);
  1469. s16bit:
  1470. result:=torddef(u16inttype);
  1471. u16bit:
  1472. result:=torddef(s32inttype);
  1473. s32bit:
  1474. result:=torddef(u32inttype);
  1475. u32bit:
  1476. result:=torddef(s64inttype);
  1477. s64bit:
  1478. result:=torddef(u64inttype);
  1479. else
  1480. ;
  1481. end;
  1482. end;
  1483. function is_valid_univ_para_type(def: tdef): boolean;
  1484. begin
  1485. result:=
  1486. not is_open_array(def) and
  1487. not is_void(def) and
  1488. (def.typ<>formaldef);
  1489. end;
  1490. function is_nested_pd(def: tabstractprocdef): boolean;{$ifdef USEINLINE}inline;{$endif}
  1491. begin
  1492. result:=def.parast.symtablelevel>normal_function_level;
  1493. end;
  1494. function is_typeparam(def : tdef) : boolean;{$ifdef USEINLINE}inline;{$endif}
  1495. begin
  1496. result:=(def.typ=undefineddef);
  1497. end;
  1498. function is_methodpointer(def: tdef): boolean;
  1499. begin
  1500. result:=(def.typ=procvardef) and (po_methodpointer in tprocvardef(def).procoptions);
  1501. end;
  1502. function is_block(def: tdef): boolean;
  1503. begin
  1504. result:=(def.typ=procvardef) and (po_is_block in tprocvardef(def).procoptions)
  1505. end;
  1506. function get_typekind(def:tdef):byte;
  1507. begin
  1508. case def.typ of
  1509. arraydef:
  1510. if ado_IsDynamicArray in tarraydef(def).arrayoptions then
  1511. result:=tkDynArray
  1512. else
  1513. result:=tkArray;
  1514. recorddef:
  1515. result:=tkRecord;
  1516. pointerdef:
  1517. result:=tkPointer;
  1518. orddef:
  1519. case torddef(def).ordtype of
  1520. u8bit,
  1521. u16bit,
  1522. u32bit,
  1523. s8bit,
  1524. s16bit,
  1525. s32bit:
  1526. result:=tkInteger;
  1527. u64bit:
  1528. result:=tkQWord;
  1529. s64bit:
  1530. result:=tkInt64;
  1531. pasbool1,
  1532. pasbool8,
  1533. pasbool16,
  1534. pasbool32,
  1535. pasbool64,
  1536. bool8bit,
  1537. bool16bit,
  1538. bool32bit,
  1539. bool64bit:
  1540. result:=tkBool;
  1541. uchar:
  1542. result:=tkChar;
  1543. uwidechar:
  1544. result:=tkWChar;
  1545. scurrency:
  1546. result:=tkFloat;
  1547. else
  1548. result:=tkUnknown;
  1549. end;
  1550. stringdef:
  1551. case tstringdef(def).stringtype of
  1552. st_shortstring:
  1553. result:=tkSString;
  1554. st_longstring:
  1555. result:=tkLString;
  1556. st_ansistring:
  1557. result:=tkAString;
  1558. st_widestring:
  1559. result:=tkWString;
  1560. st_unicodestring:
  1561. result:=tkUString;
  1562. end;
  1563. enumdef:
  1564. result:=tkEnumeration;
  1565. objectdef:
  1566. case tobjectdef(def).objecttype of
  1567. odt_class,
  1568. odt_javaclass:
  1569. result:=tkClass;
  1570. odt_object:
  1571. result:=tkObject;
  1572. odt_interfacecom,
  1573. odt_dispinterface,
  1574. odt_interfacejava:
  1575. result:=tkInterface;
  1576. odt_interfacecorba:
  1577. result:=tkInterfaceCorba;
  1578. odt_helper:
  1579. result:=tkHelper;
  1580. else
  1581. result:=tkUnknown;
  1582. end;
  1583. { currently tkFile is not used }
  1584. {filedef:
  1585. result:=tkFile;}
  1586. setdef:
  1587. result:=tkSet;
  1588. procvardef:
  1589. if tprocvardef(def).is_methodpointer then
  1590. result:=tkMethod
  1591. else
  1592. result:=tkProcVar;
  1593. floatdef:
  1594. result:=tkFloat;
  1595. classrefdef:
  1596. result:=tkClassRef;
  1597. variantdef:
  1598. result:=tkVariant;
  1599. else
  1600. result:=tkUnknown;
  1601. end;
  1602. end;
  1603. end.