cgbase.pas 26 KB

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  1. {
  2. Copyright (c) 1998-2002 by Florian Klaempfl
  3. Some basic types and constants for the code generation
  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. {# This unit exports some types which are used across the code generator }
  18. unit cgbase;
  19. {$i fpcdefs.inc}
  20. interface
  21. uses
  22. globtype,
  23. symconst;
  24. type
  25. { Location types where value can be stored }
  26. TCGLoc=(
  27. LOC_INVALID, { added for tracking problems}
  28. LOC_VOID, { no value is available }
  29. LOC_CONSTANT, { constant value }
  30. LOC_JUMP, { boolean results only, jump to false or true label }
  31. LOC_FLAGS, { boolean results only, flags are set }
  32. LOC_REGISTER, { in a processor register }
  33. LOC_CREGISTER, { Constant register which shouldn't be modified }
  34. LOC_FPUREGISTER, { FPU stack }
  35. LOC_CFPUREGISTER, { if it is a FPU register variable on the fpu stack }
  36. LOC_MMXREGISTER, { MMX register }
  37. { MMX register variable }
  38. LOC_CMMXREGISTER,
  39. { multimedia register }
  40. LOC_MMREGISTER,
  41. { Constant multimedia reg which shouldn't be modified }
  42. LOC_CMMREGISTER,
  43. { contiguous subset of bits of an integer register }
  44. LOC_SUBSETREG,
  45. LOC_CSUBSETREG,
  46. { contiguous subset of bits in memory }
  47. LOC_SUBSETREF,
  48. LOC_CSUBSETREF,
  49. { keep these last for range checking purposes }
  50. LOC_CREFERENCE, { in memory constant value reference (cannot change) }
  51. LOC_REFERENCE { in memory value }
  52. );
  53. TCGNonRefLoc=low(TCGLoc)..pred(LOC_CREFERENCE);
  54. TCGRefLoc=LOC_CREFERENCE..LOC_REFERENCE;
  55. { since we have only 16bit offsets, we need to be able to specify the high
  56. and lower 16 bits of the address of a symbol of up to 64 bit }
  57. trefaddr = (
  58. addr_no,
  59. addr_full,
  60. addr_pic,
  61. addr_pic_no_got
  62. {$IF defined(POWERPC) or defined(POWERPC64) or defined(SPARC) or defined(MIPS) or defined(SPARC64)}
  63. ,
  64. addr_low, // bits 48-63
  65. addr_high, // bits 32-47
  66. {$IF defined(POWERPC64)}
  67. addr_higher, // bits 16-31
  68. addr_highest, // bits 00-15
  69. {$ENDIF}
  70. addr_higha // bits 16-31, adjusted
  71. {$IF defined(POWERPC64)}
  72. ,
  73. addr_highera, // bits 32-47, adjusted
  74. addr_highesta // bits 48-63, adjusted
  75. {$ENDIF}
  76. {$ENDIF POWERPC or POWERPC64 or SPARC or MIPS or SPARC64}
  77. {$IFDEF MIPS}
  78. ,
  79. addr_pic_call16, // like addr_pic, but generates call16 reloc instead of got16
  80. addr_low_pic, // for large GOT model, generate got_hi16 and got_lo16 relocs
  81. addr_high_pic,
  82. addr_low_call, // counterpart of two above, generate call_hi16 and call_lo16 relocs
  83. addr_high_call
  84. {$ENDIF}
  85. {$IFDEF AVR}
  86. ,addr_lo8
  87. ,addr_lo8_gs
  88. ,addr_hi8
  89. ,addr_hi8_gs
  90. {$ENDIF}
  91. {$IFDEF i8086}
  92. ,addr_dgroup // the data segment group
  93. ,addr_fardataseg // the far data segment of the current pascal module (unit or program)
  94. ,addr_seg // used for getting the segment of an object, e.g. 'mov ax, SEG symbol'
  95. {$ENDIF}
  96. {$IFDEF AARCH64}
  97. ,addr_page
  98. ,addr_pageoffset
  99. ,addr_gotpage
  100. ,addr_gotpageoffset
  101. {$ENDIF AARCH64}
  102. {$ifdef SPARC64}
  103. ,addr_gdop_hix22
  104. ,addr_gdop_lox22
  105. {$endif SPARC64}
  106. );
  107. {# Generic opcodes, which must be supported by all processors
  108. }
  109. topcg =
  110. (
  111. OP_NONE,
  112. OP_MOVE, { replaced operation with direct load }
  113. OP_ADD, { simple addition }
  114. OP_AND, { simple logical and }
  115. OP_DIV, { simple unsigned division }
  116. OP_IDIV, { simple signed division }
  117. OP_IMUL, { simple signed multiply }
  118. OP_MUL, { simple unsigned multiply }
  119. OP_NEG, { simple negate }
  120. OP_NOT, { simple logical not }
  121. OP_OR, { simple logical or }
  122. OP_SAR, { arithmetic shift-right }
  123. OP_SHL, { logical shift left }
  124. OP_SHR, { logical shift right }
  125. OP_SUB, { simple subtraction }
  126. OP_XOR, { simple exclusive or }
  127. OP_ROL, { rotate left }
  128. OP_ROR { rotate right }
  129. );
  130. {# Generic flag values - used for jump locations }
  131. TOpCmp =
  132. (
  133. OC_NONE,
  134. OC_EQ, { equality comparison }
  135. OC_GT, { greater than (signed) }
  136. OC_LT, { less than (signed) }
  137. OC_GTE, { greater or equal than (signed) }
  138. OC_LTE, { less or equal than (signed) }
  139. OC_NE, { not equal }
  140. OC_BE, { less or equal than (unsigned) }
  141. OC_B, { less than (unsigned) }
  142. OC_AE, { greater or equal than (unsigned) }
  143. OC_A { greater than (unsigned) }
  144. );
  145. { indirect symbol flags }
  146. tindsymflag = (is_data,is_weak);
  147. tindsymflags = set of tindsymflag;
  148. { OS_NO is also used memory references with large data that can
  149. not be loaded in a register directly }
  150. TCgSize = (OS_NO,
  151. OS_8, OS_16, OS_32, OS_64, OS_128,
  152. OS_S8, OS_S16, OS_S32, OS_S64, OS_S128,
  153. { single, double, extended, comp, float128 }
  154. OS_F32, OS_F64, OS_F80, OS_C64, OS_F128,
  155. { multi-media sizes: split in byte, word, dword, ... }
  156. { entities, then the signed counterparts }
  157. OS_M8, OS_M16, OS_M32, OS_M64, OS_M128, OS_M256, OS_M512,
  158. OS_MS8, OS_MS16, OS_MS32, OS_MS64, OS_MS128, OS_MS256, OS_MS512,
  159. { multi-media sizes: single-precision floating-point }
  160. OS_MF32, OS_MF128, OS_MF256, OS_MF512,
  161. { multi-media sizes: double-precision floating-point }
  162. OS_MD64, OS_MD128, OS_MD256, OS_MD512);
  163. { Register types }
  164. TRegisterType = (
  165. R_INVALIDREGISTER, { = 0 }
  166. R_INTREGISTER, { = 1 }
  167. R_FPUREGISTER, { = 2 }
  168. { used by Intel only }
  169. R_MMXREGISTER, { = 3 }
  170. R_MMREGISTER, { = 4 }
  171. R_SPECIALREGISTER, { = 5 }
  172. R_ADDRESSREGISTER, { = 6 }
  173. { used on llvm, every temp gets its own "base register" }
  174. R_TEMPREGISTER { = 7 }
  175. );
  176. { Sub registers }
  177. TSubRegister = (
  178. R_SUBNONE, { = 0; no sub register possible }
  179. R_SUBL, { = 1; 8 bits, Like AL }
  180. R_SUBH, { = 2; 8 bits, Like AH }
  181. R_SUBW, { = 3; 16 bits, Like AX }
  182. R_SUBD, { = 4; 32 bits, Like EAX }
  183. R_SUBQ, { = 5; 64 bits, Like RAX }
  184. { For Sparc floats that use F0:F1 to store doubles }
  185. R_SUBFS, { = 6; Float that allocates 1 FPU register }
  186. R_SUBFD, { = 7; Float that allocates 2 FPU registers }
  187. R_SUBFQ, { = 8; Float that allocates 4 FPU registers }
  188. R_SUBMMS, { = 9; single scalar in multi media register }
  189. R_SUBMMD, { = 10; double scalar in multi media register }
  190. R_SUBMMWHOLE, { = 11; complete MM register, size depends on CPU }
  191. { For Intel X86 AVX-Register }
  192. R_SUBMMX, { = 12; 128 BITS }
  193. R_SUBMMY, { = 13; 256 BITS }
  194. R_SUBMMZ, { = 14; 512 BITS }
  195. { Subregisters for the flags register (x86) }
  196. R_SUBFLAGCARRY, { = 15; Carry flag }
  197. R_SUBFLAGPARITY, { = 16; Parity flag }
  198. R_SUBFLAGAUXILIARY, { = 17; Auxiliary flag }
  199. R_SUBFLAGZERO, { = 18; Zero flag }
  200. R_SUBFLAGSIGN, { = 19; Sign flag }
  201. R_SUBFLAGOVERFLOW, { = 20; Overflow flag }
  202. R_SUBFLAGINTERRUPT, { = 21; Interrupt enable flag }
  203. R_SUBFLAGDIRECTION { = 22; Direction flag }
  204. );
  205. TSubRegisterSet = set of TSubRegister;
  206. TSuperRegister = type word;
  207. {
  208. The new register coding:
  209. SuperRegister (bits 0..15)
  210. Subregister (bits 16..23)
  211. Register type (bits 24..31)
  212. TRegister is defined as an enum to make it incompatible
  213. with TSuperRegister to avoid mixing them
  214. }
  215. TRegister = (
  216. TRegisterLowEnum := Low(longint),
  217. TRegisterHighEnum := High(longint)
  218. );
  219. TRegisterRec=packed record
  220. {$ifdef FPC_BIG_ENDIAN}
  221. regtype : Tregistertype;
  222. subreg : Tsubregister;
  223. supreg : Tsuperregister;
  224. {$else FPC_BIG_ENDIAN}
  225. supreg : Tsuperregister;
  226. subreg : Tsubregister;
  227. regtype : Tregistertype;
  228. {$endif FPC_BIG_ENDIAN}
  229. end;
  230. { A type to store register locations for 64 Bit values. }
  231. {$ifdef cpu64bitalu}
  232. tregister64 = tregister;
  233. tregister128 = record
  234. reglo,reghi : tregister;
  235. end;
  236. {$else cpu64bitalu}
  237. tregister64 = record
  238. reglo,reghi : tregister;
  239. end;
  240. {$endif cpu64bitalu}
  241. Tregistermmxset = record
  242. reg0,reg1,reg2,reg3:Tregister
  243. end;
  244. { Set type definition for registers }
  245. tsuperregisterset = array[byte] of set of byte;
  246. pmmshuffle = ^tmmshuffle;
  247. { this record describes shuffle operations for mm operations; if a pointer a shuffle record
  248. passed to an mm operation is nil, it means that the whole location is moved }
  249. tmmshuffle = record
  250. { describes how many shuffles are actually described, if len=0 then
  251. moving the scalar with index 0 to the scalar with index 0 is meant }
  252. len : byte;
  253. { lower nibble of each entry of this array describes index of the source data index while
  254. the upper nibble describes the destination index }
  255. shuffles : array[1..1] of byte;
  256. end;
  257. Tsuperregisterarray=array[0..$ffff] of Tsuperregister;
  258. Psuperregisterarray=^Tsuperregisterarray;
  259. Tsuperregisterworklist=object
  260. buflength,
  261. buflengthinc,
  262. length:word;
  263. buf:Psuperregisterarray;
  264. constructor init;
  265. constructor copyfrom(const x:Tsuperregisterworklist);
  266. destructor done;
  267. procedure clear;
  268. procedure add(s:tsuperregister);
  269. function addnodup(s:tsuperregister): boolean;
  270. function get:tsuperregister;
  271. function readidx(i:word):tsuperregister;
  272. procedure deleteidx(i:word);
  273. function delete(s:tsuperregister):boolean;
  274. end;
  275. psuperregisterworklist=^tsuperregisterworklist;
  276. const
  277. { alias for easier understanding }
  278. R_SSEREGISTER = R_MMREGISTER;
  279. { Invalid register number }
  280. RS_INVALID = high(tsuperregister);
  281. NR_INVALID = tregister($ffffffff);
  282. tcgsize2size : Array[tcgsize] of integer =
  283. (0,
  284. { integer values }
  285. 1, 2, 4, 8, 16,
  286. 1, 2, 4, 8, 16,
  287. { floating point values }
  288. 4, 8, 10, 8, 16,
  289. { multimedia values }
  290. 1, 2, 4, 8, 16, 32, 64,
  291. 1, 2, 4, 8, 16, 32, 64,
  292. { single-precision multimedia values }
  293. 4, 16, 32, 64,
  294. { double-precision multimedia values }
  295. 8, 16, 32, 64);
  296. tfloat2tcgsize: array[tfloattype] of tcgsize =
  297. (OS_F32,OS_F64,OS_F80,OS_F80,OS_C64,OS_C64,OS_F128);
  298. tcgsize2tfloat: array[OS_F32..OS_C64] of tfloattype =
  299. (s32real,s64real,s80real,s64comp);
  300. tvarregable2tcgloc : array[tvarregable] of tcgloc = (LOC_VOID,
  301. LOC_CREGISTER,LOC_CFPUREGISTER,LOC_CMMREGISTER,LOC_CREGISTER);
  302. {$if defined(cpu64bitalu)}
  303. { operand size describing an unsigned value in a pair of int registers }
  304. OS_PAIR = OS_128;
  305. { operand size describing an signed value in a pair of int registers }
  306. OS_SPAIR = OS_S128;
  307. {$elseif defined(cpu32bitalu)}
  308. { operand size describing an unsigned value in a pair of int registers }
  309. OS_PAIR = OS_64;
  310. { operand size describing an signed value in a pair of int registers }
  311. OS_SPAIR = OS_S64;
  312. {$elseif defined(cpu16bitalu)}
  313. { operand size describing an unsigned value in a pair of int registers }
  314. OS_PAIR = OS_32;
  315. { operand size describing an signed value in a pair of int registers }
  316. OS_SPAIR = OS_S32;
  317. {$elseif defined(cpu8bitalu)}
  318. { operand size describing an unsigned value in a pair of int registers }
  319. OS_PAIR = OS_16;
  320. { operand size describing an signed value in a pair of int registers }
  321. OS_SPAIR = OS_S16;
  322. {$endif}
  323. { Table to convert tcgsize variables to the correspondending
  324. unsigned types }
  325. tcgsize2unsigned : array[tcgsize] of tcgsize = (OS_NO,
  326. OS_8, OS_16, OS_32, OS_64, OS_128,
  327. OS_8, OS_16, OS_32, OS_64, OS_128,
  328. OS_F32, OS_F64, OS_F80, OS_C64, OS_F128,
  329. OS_M8, OS_M16, OS_M32, OS_M64, OS_M128, OS_M256, OS_M512,
  330. OS_M8, OS_M16, OS_M32, OS_M64, OS_M128, OS_M256, OS_M512,
  331. OS_MF32, OS_MF128,OS_MF256,OS_MF512,
  332. OS_MD64, OS_MD128,OS_MD256,OS_MD512);
  333. tcgsize2signed : array[tcgsize] of tcgsize = (OS_NO,
  334. OS_S8, OS_S16, OS_S32, OS_S64, OS_S128,
  335. OS_S8, OS_S16, OS_S32, OS_S64, OS_S128,
  336. OS_F32, OS_F64, OS_F80, OS_C64, OS_F128,
  337. OS_MS8, OS_MS16, OS_MS32, OS_MS64, OS_MS128,OS_MS256,OS_MS512,
  338. OS_MS8, OS_MS16, OS_MS32, OS_MS64, OS_MS128,OS_MS256,OS_MS512,
  339. OS_MF32, OS_MF128,OS_MF256,OS_MF512,
  340. OS_MD64, OS_MD128,OS_MD256,OS_MD512);
  341. tcgloc2str : array[TCGLoc] of string[12] = (
  342. 'LOC_INVALID',
  343. 'LOC_VOID',
  344. 'LOC_CONST',
  345. 'LOC_JUMP',
  346. 'LOC_FLAGS',
  347. 'LOC_REG',
  348. 'LOC_CREG',
  349. 'LOC_FPUREG',
  350. 'LOC_CFPUREG',
  351. 'LOC_MMXREG',
  352. 'LOC_CMMXREG',
  353. 'LOC_MMREG',
  354. 'LOC_CMMREG',
  355. 'LOC_SSETREG',
  356. 'LOC_CSSETREG',
  357. 'LOC_SSETREF',
  358. 'LOC_CSSETREF',
  359. 'LOC_CREF',
  360. 'LOC_REF'
  361. );
  362. var
  363. mms_movescalar : pmmshuffle;
  364. procedure supregset_reset(var regs:tsuperregisterset;setall:boolean;
  365. maxreg:Tsuperregister);{$ifdef USEINLINE}inline;{$endif}
  366. procedure supregset_include(var regs:tsuperregisterset;s:tsuperregister);{$ifdef USEINLINE}inline;{$endif}
  367. procedure supregset_exclude(var regs:tsuperregisterset;s:tsuperregister);{$ifdef USEINLINE}inline;{$endif}
  368. function supregset_in(const regs:tsuperregisterset;s:tsuperregister):boolean;{$ifdef USEINLINE}inline;{$endif}
  369. function newreg(rt:tregistertype;sr:tsuperregister;sb:tsubregister):tregister;{$ifdef USEINLINE}inline;{$endif}
  370. function getsubreg(r:tregister):tsubregister;{$ifdef USEINLINE}inline;{$endif}
  371. function getsupreg(r:tregister):tsuperregister;{$ifdef USEINLINE}inline;{$endif}
  372. function getregtype(r:tregister):tregistertype;{$ifdef USEINLINE}inline;{$endif}
  373. procedure setsubreg(var r:tregister;sr:tsubregister);{$ifdef USEINLINE}inline;{$endif}
  374. procedure setsupreg(var r:tregister;sr:tsuperregister);{$ifdef USEINLINE}inline;{$endif}
  375. function generic_regname(r:tregister):string;
  376. {# From a constant numeric value, return the abstract code generator
  377. size.
  378. }
  379. function int_cgsize(const a: tcgint): tcgsize;{$ifdef USEINLINE}inline;{$endif}
  380. function int_float_cgsize(const a: tcgint): tcgsize;
  381. function float_array_cgsize(const a: tcgint): tcgsize;{$ifdef USEINLINE}inline;{$endif}
  382. function double_array_cgsize(const a: tcgint): tcgsize;{$ifdef USEINLINE}inline;{$endif}
  383. function tcgsize2str(cgsize: tcgsize):string;
  384. { return the inverse condition of opcmp }
  385. function inverse_opcmp(opcmp: topcmp): topcmp;{$ifdef USEINLINE}inline;{$endif}
  386. { return the opcmp needed when swapping the operands }
  387. function swap_opcmp(opcmp: topcmp): topcmp;{$ifdef USEINLINE}inline;{$endif}
  388. { return whether op is commutative }
  389. function commutativeop(op: topcg): boolean;{$ifdef USEINLINE}inline;{$endif}
  390. { returns true, if shuffle describes a real shuffle operation and not only a move }
  391. function realshuffle(shuffle : pmmshuffle) : boolean;
  392. { returns true, if the shuffle describes only a move of the scalar at index 0 }
  393. function shufflescalar(shuffle : pmmshuffle) : boolean;
  394. { removes shuffling from shuffle, this means that the destenation index of each shuffle is copied to
  395. the source }
  396. procedure removeshuffles(var shuffle : tmmshuffle);
  397. implementation
  398. uses
  399. verbose;
  400. {******************************************************************************
  401. tsuperregisterworklist
  402. ******************************************************************************}
  403. constructor tsuperregisterworklist.init;
  404. begin
  405. length:=0;
  406. buflength:=0;
  407. buflengthinc:=16;
  408. buf:=nil;
  409. end;
  410. constructor Tsuperregisterworklist.copyfrom(const x:Tsuperregisterworklist);
  411. begin
  412. self:=x;
  413. if x.buf<>nil then
  414. begin
  415. getmem(buf,buflength*sizeof(Tsuperregister));
  416. move(x.buf^,buf^,length*sizeof(Tsuperregister));
  417. end;
  418. end;
  419. destructor tsuperregisterworklist.done;
  420. begin
  421. if assigned(buf) then
  422. freemem(buf);
  423. end;
  424. procedure tsuperregisterworklist.add(s:tsuperregister);
  425. begin
  426. inc(length);
  427. { Need to increase buffer length? }
  428. if length>=buflength then
  429. begin
  430. inc(buflength,buflengthinc);
  431. buflengthinc:=buflengthinc*2;
  432. if buflengthinc>256 then
  433. buflengthinc:=256;
  434. reallocmem(buf,buflength*sizeof(Tsuperregister));
  435. end;
  436. buf^[length-1]:=s;
  437. end;
  438. function tsuperregisterworklist.addnodup(s:tsuperregister): boolean;
  439. begin
  440. addnodup := false;
  441. if indexword(buf^,length,s) = -1 then
  442. begin
  443. add(s);
  444. addnodup := true;
  445. end;
  446. end;
  447. procedure tsuperregisterworklist.clear;
  448. begin
  449. length:=0;
  450. end;
  451. procedure tsuperregisterworklist.deleteidx(i:word);
  452. begin
  453. if i>=length then
  454. internalerror(200310144);
  455. buf^[i]:=buf^[length-1];
  456. dec(length);
  457. end;
  458. function tsuperregisterworklist.readidx(i:word):tsuperregister;
  459. begin
  460. if (i >= length) then
  461. internalerror(2005010601);
  462. result := buf^[i];
  463. end;
  464. function tsuperregisterworklist.get:tsuperregister;
  465. begin
  466. if length=0 then
  467. internalerror(200310142);
  468. get:=buf^[0];
  469. buf^[0]:=buf^[length-1];
  470. dec(length);
  471. end;
  472. function tsuperregisterworklist.delete(s:tsuperregister):boolean;
  473. var
  474. i:longint;
  475. begin
  476. delete:=false;
  477. { indexword in 1.0.x and 1.9.4 is broken }
  478. i:=indexword(buf^,length,s);
  479. if i<>-1 then
  480. begin
  481. deleteidx(i);
  482. delete := true;
  483. end;
  484. end;
  485. procedure supregset_reset(var regs:tsuperregisterset;setall:boolean;
  486. maxreg:Tsuperregister);{$ifdef USEINLINE}inline;{$endif}
  487. begin
  488. fillchar(regs,(maxreg+7) shr 3,-byte(setall));
  489. end;
  490. procedure supregset_include(var regs:tsuperregisterset;s:tsuperregister);{$ifdef USEINLINE}inline;{$endif}
  491. begin
  492. include(regs[s shr 8],(s and $ff));
  493. end;
  494. procedure supregset_exclude(var regs:tsuperregisterset;s:tsuperregister);{$ifdef USEINLINE}inline;{$endif}
  495. begin
  496. exclude(regs[s shr 8],(s and $ff));
  497. end;
  498. function supregset_in(const regs:tsuperregisterset;s:tsuperregister):boolean;{$ifdef USEINLINE}inline;{$endif}
  499. begin
  500. result:=(s and $ff) in regs[s shr 8];
  501. end;
  502. function newreg(rt:tregistertype;sr:tsuperregister;sb:tsubregister):tregister;{$ifdef USEINLINE}inline;{$endif}
  503. begin
  504. tregisterrec(result).regtype:=rt;
  505. tregisterrec(result).supreg:=sr;
  506. tregisterrec(result).subreg:=sb;
  507. end;
  508. function getsubreg(r:tregister):tsubregister;{$ifdef USEINLINE}inline;{$endif}
  509. begin
  510. result:=tregisterrec(r).subreg;
  511. end;
  512. function getsupreg(r:tregister):tsuperregister;{$ifdef USEINLINE}inline;{$endif}
  513. begin
  514. result:=tregisterrec(r).supreg;
  515. end;
  516. function getregtype(r:tregister):tregistertype;{$ifdef USEINLINE}inline;{$endif}
  517. begin
  518. result:=tregisterrec(r).regtype;
  519. end;
  520. procedure setsubreg(var r:tregister;sr:tsubregister);{$ifdef USEINLINE}inline;{$endif}
  521. begin
  522. tregisterrec(r).subreg:=sr;
  523. end;
  524. procedure setsupreg(var r:tregister;sr:tsuperregister);{$ifdef USEINLINE}inline;{$endif}
  525. begin
  526. tregisterrec(r).supreg:=sr;
  527. end;
  528. function generic_regname(r:tregister):string;
  529. var
  530. nr : string[12];
  531. begin
  532. str(getsupreg(r),nr);
  533. case getregtype(r) of
  534. R_INTREGISTER:
  535. result:='ireg'+nr;
  536. R_FPUREGISTER:
  537. result:='freg'+nr;
  538. R_MMREGISTER:
  539. result:='mreg'+nr;
  540. R_MMXREGISTER:
  541. result:='xreg'+nr;
  542. R_ADDRESSREGISTER:
  543. result:='areg'+nr;
  544. R_SPECIALREGISTER:
  545. result:='sreg'+nr;
  546. else
  547. begin
  548. result:='INVALID';
  549. exit;
  550. end;
  551. end;
  552. case getsubreg(r) of
  553. R_SUBNONE:
  554. ;
  555. R_SUBL:
  556. result:=result+'l';
  557. R_SUBH:
  558. result:=result+'h';
  559. R_SUBW:
  560. result:=result+'w';
  561. R_SUBD:
  562. result:=result+'d';
  563. R_SUBQ:
  564. result:=result+'q';
  565. R_SUBFS:
  566. result:=result+'fs';
  567. R_SUBFD:
  568. result:=result+'fd';
  569. R_SUBMMD:
  570. result:=result+'md';
  571. R_SUBMMS:
  572. result:=result+'ms';
  573. R_SUBMMWHOLE:
  574. result:=result+'ma';
  575. R_SUBMMX:
  576. result:=result+'mx';
  577. R_SUBMMY:
  578. result:=result+'my';
  579. R_SUBMMZ:
  580. result:=result+'mz';
  581. else
  582. internalerror(200308252);
  583. end;
  584. end;
  585. function int_cgsize(const a: tcgint): tcgsize;{$ifdef USEINLINE}inline;{$endif}
  586. const
  587. size2cgsize : array[0..8] of tcgsize = (
  588. OS_NO,OS_8,OS_16,OS_NO,OS_32,OS_NO,OS_NO,OS_NO,OS_64
  589. );
  590. begin
  591. {$ifdef cpu64bitalu}
  592. if a=16 then
  593. result:=OS_128
  594. else
  595. {$endif cpu64bitalu}
  596. if a>8 then
  597. result:=OS_NO
  598. else
  599. result:=size2cgsize[a];
  600. end;
  601. function int_float_cgsize(const a: tcgint): tcgsize;
  602. begin
  603. case a of
  604. 4 :
  605. result:=OS_F32;
  606. 8 :
  607. result:=OS_F64;
  608. 10 :
  609. result:=OS_F80;
  610. 16 :
  611. result:=OS_F128;
  612. else
  613. internalerror(200603211);
  614. end;
  615. end;
  616. function float_array_cgsize(const a: tcgint): tcgsize;{$ifdef USEINLINE}inline;{$endif}
  617. begin
  618. case a of
  619. 4:
  620. result := OS_MF32;
  621. 16:
  622. result := OS_MF128;
  623. 32:
  624. result := OS_MF256;
  625. 64:
  626. result := OS_MF512;
  627. else
  628. result := int_cgsize(a);
  629. end;
  630. end;
  631. function double_array_cgsize(const a: tcgint): tcgsize;{$ifdef USEINLINE}inline;{$endif}
  632. begin
  633. case a of
  634. 8:
  635. result := OS_MD64;
  636. 16:
  637. result := OS_MD128;
  638. 32:
  639. result := OS_MD256;
  640. 64:
  641. result := OS_MD512;
  642. else
  643. result := int_cgsize(a);
  644. end;
  645. end;
  646. function tcgsize2str(cgsize: tcgsize):string;
  647. begin
  648. Str(cgsize, Result);
  649. end;
  650. function inverse_opcmp(opcmp: topcmp): topcmp;{$ifdef USEINLINE}inline;{$endif}
  651. const
  652. list: array[TOpCmp] of TOpCmp =
  653. (OC_NONE,OC_NE,OC_LTE,OC_GTE,OC_LT,OC_GT,OC_EQ,OC_A,OC_AE,
  654. OC_B,OC_BE);
  655. begin
  656. inverse_opcmp := list[opcmp];
  657. end;
  658. function swap_opcmp(opcmp: topcmp): topcmp;{$ifdef USEINLINE}inline;{$endif}
  659. const
  660. list: array[TOpCmp] of TOpCmp =
  661. (OC_NONE,OC_EQ,OC_LT,OC_GT,OC_LTE,OC_GTE,OC_NE,OC_AE,OC_A,
  662. OC_BE,OC_B);
  663. begin
  664. swap_opcmp := list[opcmp];
  665. end;
  666. function commutativeop(op: topcg): boolean;{$ifdef USEINLINE}inline;{$endif}
  667. const
  668. list: array[topcg] of boolean =
  669. (true,false,true,true,false,false,true,true,false,false,
  670. true,false,false,false,false,true,false,false);
  671. begin
  672. commutativeop := list[op];
  673. end;
  674. function realshuffle(shuffle : pmmshuffle) : boolean;
  675. var
  676. i : longint;
  677. begin
  678. realshuffle:=true;
  679. if (shuffle=nil) or (shuffle^.len=0) then
  680. realshuffle:=false
  681. else
  682. begin
  683. for i:=1 to shuffle^.len do
  684. begin
  685. if (shuffle^.shuffles[i] and $f)<>((shuffle^.shuffles[i] and $f0) shr 4) then
  686. exit;
  687. end;
  688. realshuffle:=false;
  689. end;
  690. end;
  691. function shufflescalar(shuffle : pmmshuffle) : boolean;
  692. begin
  693. result:=shuffle^.len=0;
  694. end;
  695. procedure removeshuffles(var shuffle : tmmshuffle);
  696. var
  697. i : longint;
  698. begin
  699. if shuffle.len=0 then
  700. exit;
  701. for i:=1 to shuffle.len do
  702. shuffle.shuffles[i]:=(shuffle.shuffles[i] and $f) or ((shuffle.shuffles[i] and $f0) shr 4);
  703. end;
  704. initialization
  705. new(mms_movescalar);
  706. mms_movescalar^.len:=0;
  707. finalization
  708. dispose(mms_movescalar);
  709. end.