rax86.pas 74 KB

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  1. {
  2. Copyright (c) 1998-2002 by Carl Eric Codere and Peter Vreman
  3. Handles the common x86 assembler reader routines
  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. {
  18. Contains the common x86 (i386 and x86-64) assembler reader routines.
  19. }
  20. unit rax86;
  21. {$i fpcdefs.inc}
  22. interface
  23. uses
  24. aasmbase,aasmtai,aasmdata,aasmcpu,
  25. cpubase,rautils,cclasses;
  26. { Parser helpers }
  27. function is_prefix(t:tasmop):boolean;
  28. function is_override(t:tasmop):boolean;
  29. Function CheckPrefix(prefixop,op:tasmop): Boolean;
  30. Function CheckOverride(overrideop,op:tasmop): Boolean;
  31. Procedure FWaitWarning;
  32. type
  33. Tx86Operand=class(TOperand)
  34. opsize : topsize;
  35. vopext : smallint; // bitmask: vector-operand extention AVX512 (e.g. vaddps xmm0 {k1} {z})
  36. vbcst : byte;
  37. Procedure SetSize(_size:longint;force:boolean);override;
  38. Procedure SetCorrectSize(opcode:tasmop);override;
  39. Function CheckOperand: boolean; override;
  40. { handles the @Code symbol }
  41. Procedure SetupCode;
  42. { handles the @Data symbol }
  43. Procedure SetupData;
  44. constructor create; override;
  45. end;
  46. { Operands are always in AT&T order.
  47. Intel reader attaches them right-to-left, then shifts to start with 1 }
  48. { Tx86Instruction }
  49. Tx86Instruction=class(TInstruction)
  50. opsize : topsize;
  51. constructor Create(optype : tcoperand);override;
  52. { Operand sizes }
  53. procedure AddReferenceSizes; virtual;
  54. procedure SetInstructionOpsize;
  55. procedure CheckOperandSizes;
  56. procedure CheckNonCommutativeOpcodes;
  57. { Additional actions required by specific reader }
  58. procedure FixupOpcode;virtual;
  59. { opcode adding }
  60. function ConcatInstruction(p : TAsmList) : tai;override;
  61. function getstring: string;
  62. { returns true, if the opcode might have an extension as used by AVX512 }
  63. function MightHaveExtension : boolean;
  64. end;
  65. const
  66. AsmPrefixes = 8{$ifdef i8086}+2{$endif i8086};
  67. AsmPrefix : array[0..AsmPrefixes-1] of TasmOP =(
  68. A_LOCK,A_REP,A_REPE,A_REPNE,A_REPNZ,A_REPZ,A_XACQUIRE,A_XRELEASE{$ifdef i8086},A_REPC,A_REPNC{$endif i8086}
  69. );
  70. AsmOverrides = 6;
  71. AsmOverride : array[0..AsmOverrides-1] of TasmOP =(
  72. A_SEGCS,A_SEGES,A_SEGDS,A_SEGFS,A_SEGGS,A_SEGSS
  73. );
  74. CondAsmOps=3;
  75. CondAsmOp:array[0..CondAsmOps-1] of TasmOp=(
  76. A_CMOVcc, A_Jcc, A_SETcc
  77. );
  78. CondAsmOpStr:array[0..CondAsmOps-1] of string[4]=(
  79. 'CMOV','J','SET'
  80. );
  81. implementation
  82. uses
  83. globtype,globals,systems,verbose,
  84. procinfo,
  85. cgbase,cgutils,
  86. itcpugas,cgx86, cutils;
  87. {*****************************************************************************
  88. Parser Helpers
  89. *****************************************************************************}
  90. function is_prefix(t:tasmop):boolean;
  91. var
  92. i : longint;
  93. Begin
  94. is_prefix:=false;
  95. for i:=1 to AsmPrefixes do
  96. if t=AsmPrefix[i-1] then
  97. begin
  98. is_prefix:=true;
  99. exit;
  100. end;
  101. end;
  102. function is_override(t:tasmop):boolean;
  103. var
  104. i : longint;
  105. Begin
  106. is_override:=false;
  107. for i:=1 to AsmOverrides do
  108. if t=AsmOverride[i-1] then
  109. begin
  110. is_override:=true;
  111. exit;
  112. end;
  113. end;
  114. Function CheckPrefix(prefixop,op:tasmop): Boolean;
  115. { Checks if the prefix is valid with the following opcode }
  116. { return false if not, otherwise true }
  117. Begin
  118. CheckPrefix := TRUE;
  119. (* Case prefix of
  120. A_REP,A_REPNE,A_REPE:
  121. Case opcode Of
  122. A_SCASB,A_SCASW,A_SCASD,
  123. A_INS,A_OUTS,A_MOVS,A_CMPS,A_LODS,A_STOS:;
  124. Else
  125. Begin
  126. CheckPrefix := FALSE;
  127. exit;
  128. end;
  129. end; { case }
  130. A_LOCK:
  131. Case opcode Of
  132. A_BT,A_BTS,A_BTR,A_BTC,A_XCHG,A_ADD,A_OR,A_ADC,A_SBB,A_AND,A_SUB,
  133. A_XOR,A_NOT,A_NEG,A_INC,A_DEC:;
  134. Else
  135. Begin
  136. CheckPrefix := FALSE;
  137. Exit;
  138. end;
  139. end; { case }
  140. A_NONE: exit; { no prefix here }
  141. else
  142. CheckPrefix := FALSE;
  143. end; { end case } *)
  144. end;
  145. Function CheckOverride(overrideop,op:tasmop): Boolean;
  146. { Check if the override is valid, and if so then }
  147. { update the instr variable accordingly. }
  148. Begin
  149. CheckOverride := true;
  150. { Case instr.getinstruction of
  151. A_MOVS,A_XLAT,A_CMPS:
  152. Begin
  153. CheckOverride := TRUE;
  154. Message(assem_e_segment_override_not_supported);
  155. end
  156. end }
  157. end;
  158. Procedure FWaitWarning;
  159. begin
  160. if (target_info.system=system_i386_GO32V2) and (cs_fp_emulation in current_settings.moduleswitches) then
  161. Message(asmr_w_fwait_emu_prob);
  162. end;
  163. {*****************************************************************************
  164. TX86Operand
  165. *****************************************************************************}
  166. Procedure Tx86Operand.SetSize(_size:longint;force:boolean);
  167. begin
  168. inherited SetSize(_size,force);
  169. { OS_64 will be set to S_L and be fixed later
  170. in SetCorrectSize }
  171. // multimedia register
  172. case _size of
  173. 16: size := OS_M128;
  174. 32: size := OS_M256;
  175. 64: size := OS_M512;
  176. end;
  177. {$ifdef i8086}
  178. { allows e.g. using 32-bit registers in i8086 inline asm }
  179. if size in [OS_32,OS_S32] then
  180. opsize:=S_L
  181. else
  182. {$endif i8086}
  183. opsize:=TCGSize2Opsize[size];
  184. end;
  185. Procedure Tx86Operand.SetCorrectSize(opcode:tasmop);
  186. begin
  187. if gas_needsuffix[opcode]=attsufFPU then
  188. begin
  189. case size of
  190. OS_32 : opsize:=S_FS;
  191. OS_64 : opsize:=S_FL;
  192. else
  193. ;
  194. end;
  195. end
  196. else if gas_needsuffix[opcode]=attsufFPUint then
  197. begin
  198. case size of
  199. OS_16 : opsize:=S_IS;
  200. OS_32 : opsize:=S_IL;
  201. OS_64 : opsize:=S_IQ;
  202. else
  203. ;
  204. end;
  205. end
  206. else if gas_needsuffix[opcode]=AttSufMM then
  207. begin
  208. if (opr.typ=OPR_Reference) then
  209. begin
  210. case size of
  211. OS_32 : size := OS_M32;
  212. OS_64 : size := OS_M64;
  213. else
  214. ;
  215. end;
  216. end;
  217. end
  218. else
  219. begin
  220. if size=OS_64 then
  221. opsize:=S_Q;
  222. end;
  223. end;
  224. Function Tx86Operand.CheckOperand: boolean;
  225. var
  226. ErrorRefStr: string;
  227. begin
  228. result:=true;
  229. if (opr.typ=OPR_Reference) then
  230. begin
  231. if not hasvar then
  232. begin
  233. if (getsupreg(opr.ref.base)=RS_EBP) and (opr.ref.offset>0) then
  234. begin
  235. if current_settings.asmmode in asmmodes_x86_intel then
  236. begin
  237. case getsubreg(opr.ref.base) of
  238. R_SUBW:
  239. ErrorRefStr:='[BP+offset]';
  240. R_SUBD:
  241. ErrorRefStr:='[EBP+offset]';
  242. R_SUBQ:
  243. ErrorRefStr:='[RBP+offset]';
  244. else
  245. internalerror(2019061001);
  246. end;
  247. end
  248. else
  249. begin
  250. case getsubreg(opr.ref.base) of
  251. R_SUBW:
  252. ErrorRefStr:='+offset(%bp)';
  253. R_SUBD:
  254. ErrorRefStr:='+offset(%ebp)';
  255. R_SUBQ:
  256. ErrorRefStr:='+offset(%rbp)';
  257. else
  258. internalerror(2019061002);
  259. end;
  260. end;
  261. if current_procinfo.procdef.proccalloption=pocall_register then
  262. message1(asmr_w_no_direct_ebp_for_parameter,ErrorRefStr)
  263. else
  264. message1(asmr_w_direct_ebp_for_parameter_regcall,ErrorRefStr);
  265. end
  266. else if (getsupreg(opr.ref.base)=RS_EBP) and (opr.ref.offset<0) then
  267. begin
  268. if current_settings.asmmode in asmmodes_x86_intel then
  269. begin
  270. case getsubreg(opr.ref.base) of
  271. R_SUBW:
  272. ErrorRefStr:='[BP-offset]';
  273. R_SUBD:
  274. ErrorRefStr:='[EBP-offset]';
  275. R_SUBQ:
  276. ErrorRefStr:='[RBP-offset]';
  277. else
  278. internalerror(2019061003);
  279. end;
  280. end
  281. else
  282. begin
  283. case getsubreg(opr.ref.base) of
  284. R_SUBW:
  285. ErrorRefStr:='-offset(%bp)';
  286. R_SUBD:
  287. ErrorRefStr:='-offset(%ebp)';
  288. R_SUBQ:
  289. ErrorRefStr:='-offset(%rbp)';
  290. else
  291. internalerror(2019061004);
  292. end;
  293. end;
  294. message1(asmr_w_direct_ebp_neg_offset,ErrorRefStr);
  295. end
  296. else if (getsupreg(opr.ref.base)=RS_ESP) and (getsubreg(opr.ref.base)<>R_SUBW) and (opr.ref.offset<0) then
  297. begin
  298. if current_settings.asmmode in asmmodes_x86_intel then
  299. begin
  300. case getsubreg(opr.ref.base) of
  301. R_SUBD:
  302. ErrorRefStr:='[ESP-offset]';
  303. R_SUBQ:
  304. ErrorRefStr:='[RSP-offset]';
  305. else
  306. internalerror(2019061005);
  307. end;
  308. end
  309. else
  310. begin
  311. case getsubreg(opr.ref.base) of
  312. R_SUBD:
  313. ErrorRefStr:='-offset(%esp)';
  314. R_SUBQ:
  315. ErrorRefStr:='-offset(%rsp)';
  316. else
  317. internalerror(2019061006);
  318. end;
  319. end;
  320. message1(asmr_w_direct_esp_neg_offset,ErrorRefStr);
  321. end;
  322. end;
  323. if (cs_create_pic in current_settings.moduleswitches) and
  324. assigned(opr.ref.symbol) and
  325. not assigned(opr.ref.relsymbol) then
  326. begin
  327. if not(opr.ref.refaddr in [addr_pic,addr_pic_no_got]) then
  328. begin
  329. if (opr.ref.symbol.name <> '_GLOBAL_OFFSET_TABLE_') then
  330. begin
  331. message(asmr_e_need_pic_ref);
  332. result:=false;
  333. end
  334. else
  335. opr.ref.refaddr:=addr_pic;
  336. end
  337. else
  338. begin
  339. {$ifdef x86_64}
  340. { should probably be extended to i386, but there the situation
  341. is more complex and ELF-style PIC still need to be
  342. tested/debugged }
  343. if (opr.ref.symbol.bind in [AB_LOCAL,AB_PRIVATE_EXTERN]) and
  344. (opr.ref.refaddr=addr_pic) then
  345. message(asmr_w_useless_got_for_local)
  346. else if (opr.ref.symbol.bind in [AB_GLOBAL,AB_EXTERNAL,AB_COMMON,AB_WEAK_EXTERNAL]) and
  347. (opr.ref.refaddr=addr_pic_no_got) then
  348. message(asmr_w_global_access_without_got);
  349. {$endif x86_64}
  350. end;
  351. end;
  352. end;
  353. end;
  354. procedure Tx86Operand.SetupCode;
  355. begin
  356. {$ifdef i8086}
  357. opr.typ:=OPR_SYMBOL;
  358. opr.symofs:=0;
  359. opr.symbol:=current_asmdata.RefAsmSymbol(current_procinfo.procdef.mangledname,AT_FUNCTION);
  360. opr.symseg:=true;
  361. opr.sym_farproc_entry:=false;
  362. {$else i8086}
  363. Message(asmr_w_CODE_and_DATA_not_supported);
  364. {$endif i8086}
  365. end;
  366. procedure Tx86Operand.SetupData;
  367. begin
  368. {$ifdef i8086}
  369. InitRef;
  370. if current_settings.x86memorymodel=mm_huge then
  371. opr.ref.refaddr:=addr_fardataseg
  372. else
  373. opr.ref.refaddr:=addr_dgroup;
  374. {$else i8086}
  375. Message(asmr_w_CODE_and_DATA_not_supported);
  376. {$endif i8086}
  377. end;
  378. constructor Tx86Operand.create;
  379. begin
  380. inherited;
  381. vopext := 0;
  382. vbcst := 0;
  383. end;
  384. {*****************************************************************************
  385. T386Instruction
  386. *****************************************************************************}
  387. constructor Tx86Instruction.Create(optype : tcoperand);
  388. begin
  389. inherited Create(optype);
  390. Opsize:=S_NO;
  391. end;
  392. procedure Tx86Instruction.AddReferenceSizes;
  393. { this will add the sizes for references like [esi] which do not
  394. have the size set yet, it will take only the size if the other
  395. operand is a register }
  396. var
  397. operand2,i,j,k : longint;
  398. s : tasmsymbol;
  399. so : aint;
  400. ExistsMemRefNoSize: boolean;
  401. ExistsMemRef: boolean;
  402. ExistsConstNoSize: boolean;
  403. ExistConst: boolean;
  404. ExistsLocalSymSize: boolean;
  405. ExistsBCST: boolean;
  406. memrefsize: integer;
  407. memopsize: integer;
  408. memoffset: asizeint;
  409. vbcst: byte;
  410. mmregs: Set of TSubregister;
  411. multiplicator: integer;
  412. bcst1,bcst2: string;
  413. begin
  414. ExistsMemRefNoSize := false;
  415. ExistsMemRef := false;
  416. ExistsConstNoSize := false;
  417. ExistsLocalSymSize := false;
  418. ExistsBCST := false;
  419. // EXIST A MEMORY- OR CONSTANT-OPERAND WITHOUT SIZE ?
  420. for i := 1 to ops do
  421. begin
  422. if operands[i].Opr.Typ in [OPR_REFERENCE, OPR_LOCAL] then
  423. begin
  424. ExistsMemRef := true;
  425. ExistsBCST := (MemRefInfo(opcode).ExistsSSEAVX) and
  426. (tx86operand(operands[i]).vbcst <> 0);
  427. if (tx86operand(operands[i]).opsize = S_NO) then
  428. begin
  429. ExistsMemRefNoSize := true;
  430. case operands[i].opr.Typ of
  431. OPR_LOCAL: ExistsLocalSymSize := tx86operand(operands[i]).opr.localsym.getsize > 0;
  432. OPR_REFERENCE: ExistsLocalSymSize := true;
  433. else
  434. ;
  435. end;
  436. end;
  437. end
  438. else if operands[i].Opr.Typ in [OPR_CONSTANT] then
  439. begin
  440. ExistsConstNoSize := tx86operand(operands[i]).opsize = S_NO;
  441. end;
  442. end;
  443. // ONLY SUPPORTED OPCODES WITH SSE- OR AVX-REGISTERS
  444. if (ExistsMemRef) and
  445. (MemRefInfo(opcode).ExistsSSEAVX) then
  446. begin
  447. // 1. WE HAVE AN SSE- OR AVX-OPCODE WITH MEMORY OPERAND
  448. if (not(ExistsMemRefNoSize)) or
  449. (ExistsLocalSymSize) then
  450. begin
  451. // 2. WE KNOWN THE MEMORYSIZE OF THE MEMORY-OPERAND OR WE CAN
  452. // CALC THE MEMORYSIZE
  453. // 3. CALC THE SIZE OF THE MEMORYOPERAND BY OPCODE-DEFINITION
  454. // 4. COMPARE THE SIZE FROM OPCODE-DEFINITION AND THE REAL MEMORY-OPERAND-SIZE
  455. // - validate memory-reference-size
  456. for i := 1 to ops do
  457. begin
  458. if (operands[i].Opr.Typ in [OPR_REFERENCE, OPR_LOCAL]) then
  459. begin
  460. memrefsize := -1;
  461. if ExistsBCST then
  462. begin
  463. case MemRefInfo(opcode).MemRefSizeBCST of
  464. msbBCST32: memrefsize := 32;
  465. msbBCST64: memrefsize := 64;
  466. else
  467. Internalerror(2019081005);
  468. end;
  469. end
  470. else
  471. case MemRefInfo(opcode).MemRefSize of
  472. msiMem8: memrefsize := 8;
  473. msiMem16: memrefsize := 16;
  474. msiMem32: memrefsize := 32;
  475. msiMem64: memrefsize := 64;
  476. msiMem128: memrefsize := 128;
  477. msiMem256: memrefsize := 256;
  478. msiMem512: memrefsize := 512;
  479. msiMemRegx16y32:
  480. begin
  481. for j := 1 to ops do
  482. begin
  483. if operands[j].Opr.Typ = OPR_REGISTER then
  484. begin
  485. case getsubreg(operands[j].opr.reg) of
  486. R_SUBMMX: memrefsize := 16;
  487. R_SUBMMY: memrefsize := 32;
  488. else Message(asmr_e_unable_to_determine_reference_size);
  489. end;
  490. end;
  491. end;
  492. end;
  493. msiMemRegx32y64:
  494. begin
  495. for j := 1 to ops do
  496. begin
  497. if operands[j].Opr.Typ = OPR_REGISTER then
  498. begin
  499. case getsubreg(operands[j].opr.reg) of
  500. R_SUBMMX: memrefsize := 32;
  501. R_SUBMMY: memrefsize := 64;
  502. else Message(asmr_e_unable_to_determine_reference_size);
  503. end;
  504. end;
  505. end;
  506. end;
  507. msiMemRegx64y128:
  508. begin
  509. for j := 1 to ops do
  510. begin
  511. if operands[j].Opr.Typ = OPR_REGISTER then
  512. begin
  513. case getsubreg(operands[j].opr.reg) of
  514. R_SUBMMX: memrefsize := 64;
  515. R_SUBMMY: memrefsize := 128;
  516. else Message(asmr_e_unable_to_determine_reference_size);
  517. end;
  518. end;
  519. end;
  520. end;
  521. msiMemRegx64y256:
  522. begin
  523. for j := 1 to ops do
  524. begin
  525. if operands[j].Opr.Typ = OPR_REGISTER then
  526. begin
  527. case getsubreg(operands[j].opr.reg) of
  528. R_SUBMMX: memrefsize := 64;
  529. R_SUBMMY: memrefsize := 256;
  530. else Message(asmr_e_unable_to_determine_reference_size);
  531. end;
  532. end;
  533. end;
  534. end;
  535. msiMemRegx64y128z256:
  536. begin
  537. begin
  538. for j := 1 to ops do
  539. begin
  540. if operands[j].Opr.Typ = OPR_REGISTER then
  541. begin
  542. case getsubreg(operands[j].opr.reg) of
  543. R_SUBMMX: memrefsize := 64;
  544. R_SUBMMY: memrefsize := 128;
  545. R_SUBMMZ: memrefsize := 256;
  546. else Message(asmr_e_unable_to_determine_reference_size);
  547. end;
  548. end;
  549. end;
  550. end;
  551. end;
  552. msiMemRegx64y256z512:
  553. begin
  554. begin
  555. for j := 1 to ops do
  556. begin
  557. if operands[j].Opr.Typ = OPR_REGISTER then
  558. begin
  559. case getsubreg(operands[j].opr.reg) of
  560. R_SUBMMX: memrefsize := 64;
  561. R_SUBMMY: memrefsize := 256;
  562. R_SUBMMZ: memrefsize := 512;
  563. else Message(asmr_e_unable_to_determine_reference_size);
  564. end;
  565. end;
  566. end;
  567. end;
  568. end;
  569. msiMemRegSize:
  570. begin
  571. for j := 1 to ops do
  572. begin
  573. if operands[j].Opr.Typ = OPR_REGISTER then
  574. begin
  575. if (tx86operand(operands[j]).opsize <> S_NO) and
  576. (tx86operand(operands[j]).size <> OS_NO) then
  577. begin
  578. case tx86operand(operands[j]).opsize of
  579. S_B : memrefsize := 8;
  580. S_W : memrefsize := 16;
  581. S_L : memrefsize := 32;
  582. S_Q : memrefsize := 64;
  583. S_XMM : memrefsize := 128;
  584. S_YMM : memrefsize := 256;
  585. S_ZMM : memrefsize := 512;
  586. else Internalerror(2019081001);
  587. end;
  588. break;
  589. end;
  590. end;
  591. end;
  592. end;
  593. msiMemRegConst128,
  594. msiMemRegConst256,
  595. msiMemRegConst512:
  596. begin
  597. for j := 1 to ops do
  598. begin
  599. if operands[j].Opr.Typ = OPR_CONSTANT then
  600. begin
  601. for k := 1 to ops do
  602. begin
  603. if operands[k].Opr.Typ = OPR_REGISTER then
  604. begin
  605. if (tx86operand(operands[k]).opsize <> S_NO) and
  606. (tx86operand(operands[k]).size <> OS_NO) then
  607. begin
  608. case tx86operand(operands[k]).opsize of
  609. S_B : memrefsize := 8;
  610. S_W : memrefsize := 16;
  611. S_L : memrefsize := 32;
  612. S_Q : memrefsize := 64;
  613. S_XMM : memrefsize := 128;
  614. S_YMM : memrefsize := 256;
  615. S_ZMM : memrefsize := 512;
  616. else Internalerror(777200);
  617. end;
  618. break;
  619. end;
  620. end;
  621. end;
  622. break;
  623. end;
  624. end;
  625. // no exists const-operand
  626. if memrefsize = -1 then
  627. begin
  628. case MemRefInfo(opcode).MemRefSize of
  629. msiMemRegConst128: memrefsize := 128;
  630. msiMemRegConst256: memrefsize := 256;
  631. msiMemRegConst512: memrefsize := 512;
  632. else Internalerror(2019081002);
  633. end;
  634. end;
  635. end;
  636. msiXMem32,
  637. msiYMem32,
  638. msiZMem32,
  639. msiXMem64,
  640. msiYMem64,
  641. msiZMem64: ; // ignore; gather/scatter opcodes haven a fixed element-size, not a fixed memory-size
  642. // the vector-register have indices with base of the memory-address in the memory-operand
  643. msiMultipleMinSize8,
  644. msiMultipleMinSize16,
  645. msiMultipleMinSize32,
  646. msiMultipleMinSize64,
  647. msiMultipleMinSize128,
  648. msiMultipleMinSize256,
  649. msiMultipleMinSize512: ; // ignore
  650. msiNoSize,
  651. msiNoMemRef,
  652. msiUnknown,
  653. msiUnsupported,
  654. msiVMemMultiple,
  655. msiVMemRegSize,
  656. msiMultiple:
  657. ;
  658. else
  659. Internalerror(2019081005);
  660. end;
  661. if memrefsize > -1 then
  662. begin
  663. // CALC REAL-MEMORY-OPERAND-SIZE AND A POSSIBLE OFFSET
  664. // OFFSET:
  665. // e.g. PAND XMM0, [RAX + 16] =>> OFFSET = 16 BYTES
  666. // PAND XMM0, [RAX + a.b + 10] =>> OFFSET = 10 BYTES (a = record-variable)
  667. memopsize := 0;
  668. case operands[i].opr.typ of
  669. OPR_LOCAL: memopsize := operands[i].opr.localvarsize * 8;
  670. OPR_REFERENCE:
  671. if operands[i].opr.ref.refaddr = addr_pic then
  672. memopsize := sizeof(pint) * 8
  673. else
  674. memopsize := operands[i].opr.varsize * 8;
  675. else
  676. ;
  677. end;
  678. //if memopsize = 0 then memopsize := topsize2memsize[tx86operand(operands[i]).opsize];
  679. if memopsize = 0 then
  680. begin
  681. {$ifdef i386}
  682. { 64-bit operands are allowed for SSE and AVX instructions, so
  683. go by the byte size instead for these families of opcodes }
  684. if (MemRefInfo(opcode).ExistsSSEAVX) then
  685. begin
  686. memopsize := tx86operand(operands[i]).typesize * 8;
  687. if tx86operand(operands[i]).typesize = 8 then
  688. { Will be S_L otherwise and won't be corrected in time }
  689. tx86operand(operands[i]).opsize := S_Q;
  690. end
  691. else
  692. {$endif i386}
  693. memopsize := topsize2memsize[tx86operand(operands[i]).opsize];
  694. end;
  695. if (memopsize > 0) and
  696. (memrefsize > 0) then
  697. begin
  698. memoffset := 0;
  699. case operands[i].opr.typ of
  700. OPR_LOCAL:
  701. memoffset := operands[i].opr.localconstoffset;
  702. OPR_REFERENCE:
  703. memoffset := operands[i].opr.constoffset;
  704. else
  705. ;
  706. end;
  707. if memoffset < 0 then
  708. begin
  709. Message2(asmr_w_check_mem_operand_negative_offset,
  710. std_op2str[opcode],
  711. ToStr(memoffset));
  712. end
  713. else if ((tx86operand(operands[i]).hastype) and (memopsize < memrefsize)) or
  714. (memopsize < (memrefsize + memoffset * 8)) then
  715. begin
  716. if memopsize < memrefsize then
  717. begin
  718. if memoffset = 0 then
  719. begin
  720. Message3(asmr_w_check_mem_operand_size3,
  721. std_op2str[opcode],
  722. ToStr(memopsize),
  723. ToStr(memrefsize)
  724. );
  725. end
  726. else
  727. begin
  728. Message4(asmr_w_check_mem_operand_size_offset,
  729. std_op2str[opcode],
  730. ToStr(memopsize),
  731. ToStr(memrefsize),
  732. ToStr(memoffset)
  733. );
  734. end;
  735. end;
  736. end;
  737. end;
  738. end;
  739. end;
  740. end;
  741. end;
  742. end;
  743. if (ExistsMemRefNoSize or ExistsConstNoSize) and
  744. (MemRefInfo(opcode).ExistsSSEAVX) then
  745. begin
  746. for i := 1 to ops do
  747. begin
  748. if (tx86operand(operands[i]).opsize = S_NO) then
  749. begin
  750. case operands[i].Opr.Typ of
  751. OPR_REFERENCE:
  752. begin
  753. if ExistsBCST then
  754. begin
  755. case MemRefInfo(opcode).MemRefSizeBCST of
  756. msbBCST32: begin
  757. tx86operand(operands[i]).opsize := S_L;
  758. tx86operand(operands[i]).size := OS_32;
  759. end;
  760. msbBCST64: begin
  761. tx86operand(operands[i]).opsize := S_Q;
  762. tx86operand(operands[i]).size := OS_M64;
  763. end;
  764. else
  765. Internalerror(2019081006);
  766. end;
  767. end
  768. else
  769. case MemRefInfo(opcode).MemRefSize of
  770. msiMem8:
  771. begin
  772. tx86operand(operands[i]).opsize := S_B;
  773. tx86operand(operands[i]).size := OS_8;
  774. end;
  775. msiMultipleMinSize8:
  776. begin
  777. tx86operand(operands[i]).opsize := S_B;
  778. tx86operand(operands[i]).size := OS_8;
  779. Message2(asmr_w_check_mem_operand_automap_multiple_size, std_op2str[opcode], '"8 bit memory operand"');
  780. end;
  781. msiMem16:
  782. begin
  783. tx86operand(operands[i]).opsize := S_W;
  784. tx86operand(operands[i]).size := OS_16;
  785. end;
  786. msiMultipleMinSize16:
  787. begin
  788. tx86operand(operands[i]).opsize := S_W;
  789. tx86operand(operands[i]).size := OS_16;
  790. Message2(asmr_w_check_mem_operand_automap_multiple_size, std_op2str[opcode], '"16 bit memory operand"');
  791. end;
  792. msiMem32:
  793. begin
  794. tx86operand(operands[i]).opsize := S_L;
  795. tx86operand(operands[i]).size := OS_32;
  796. end;
  797. msiMultipleMinSize32:
  798. begin
  799. tx86operand(operands[i]).opsize := S_L;
  800. tx86operand(operands[i]).size := OS_32;
  801. Message2(asmr_w_check_mem_operand_automap_multiple_size, std_op2str[opcode], '"32 bit memory operand"');
  802. end;
  803. msiMem64:
  804. begin
  805. tx86operand(operands[i]).opsize := S_Q;
  806. tx86operand(operands[i]).size := OS_M64;
  807. end;
  808. msiMultipleMinSize64:
  809. begin
  810. tx86operand(operands[i]).opsize := S_Q;
  811. tx86operand(operands[i]).size := OS_M64;
  812. Message2(asmr_w_check_mem_operand_automap_multiple_size, std_op2str[opcode], '"64 bit memory operand"');
  813. end;
  814. msiMem128:
  815. begin
  816. tx86operand(operands[i]).opsize := S_XMM;
  817. tx86operand(operands[i]).size := OS_M128;
  818. end;
  819. msiMultipleMinSize128:
  820. begin
  821. tx86operand(operands[i]).opsize := S_XMM;
  822. tx86operand(operands[i]).size := OS_M128;
  823. Message2(asmr_w_check_mem_operand_automap_multiple_size, std_op2str[opcode], '"128 bit memory operand"');
  824. end;
  825. msiMem256:
  826. begin
  827. tx86operand(operands[i]).opsize := S_YMM;
  828. tx86operand(operands[i]).size := OS_M256;
  829. opsize := S_YMM;
  830. end;
  831. msiMultipleMinSize256:
  832. begin
  833. tx86operand(operands[i]).opsize := S_YMM;
  834. tx86operand(operands[i]).size := OS_M256;
  835. opsize := S_YMM;
  836. Message2(asmr_w_check_mem_operand_automap_multiple_size, std_op2str[opcode], '"256 bit memory operand"');
  837. end;
  838. msiMem512:
  839. begin
  840. tx86operand(operands[i]).opsize := S_ZMM;
  841. tx86operand(operands[i]).size := OS_M512;
  842. opsize := S_ZMM;
  843. end;
  844. msiMultipleMinSize512:
  845. begin
  846. tx86operand(operands[i]).opsize := S_ZMM;
  847. tx86operand(operands[i]).size := OS_M512;
  848. opsize := S_ZMM;
  849. Message2(asmr_w_check_mem_operand_automap_multiple_size, std_op2str[opcode], '"512 bit memory operand"');
  850. end;
  851. msiMemRegSize:
  852. begin
  853. // mem-ref-size = register size
  854. for j := 1 to ops do
  855. begin
  856. if operands[j].Opr.Typ = OPR_REGISTER then
  857. begin
  858. if (tx86operand(operands[j]).opsize <> S_NO) and
  859. (tx86operand(operands[j]).size <> OS_NO) then
  860. begin
  861. tx86operand(operands[i]).opsize := tx86operand(operands[j]).opsize;
  862. tx86operand(operands[i]).size := tx86operand(operands[j]).size;
  863. break;
  864. end
  865. else Message(asmr_e_unable_to_determine_reference_size);
  866. end;
  867. end;
  868. end;
  869. msiMemRegx16y32:
  870. begin
  871. for j := 1 to ops do
  872. begin
  873. if operands[j].Opr.Typ = OPR_REGISTER then
  874. begin
  875. case getsubreg(operands[j].opr.reg) of
  876. R_SUBMMX: begin
  877. tx86operand(operands[i]).opsize := S_W;
  878. tx86operand(operands[i]).size := OS_M16;
  879. break;
  880. end;
  881. R_SUBMMY: begin
  882. tx86operand(operands[i]).opsize := S_L;
  883. tx86operand(operands[i]).size := OS_M32;
  884. break;
  885. end;
  886. else Message(asmr_e_unable_to_determine_reference_size);
  887. end;
  888. end;
  889. end;
  890. end;
  891. msiMemRegx16y32z64:
  892. begin
  893. for j := 1 to ops do
  894. begin
  895. if operands[j].Opr.Typ = OPR_REGISTER then
  896. begin
  897. case getsubreg(operands[j].opr.reg) of
  898. R_SUBMMX: begin
  899. tx86operand(operands[i]).opsize := S_W;
  900. tx86operand(operands[i]).size := OS_M16;
  901. break;
  902. end;
  903. R_SUBMMY: begin
  904. tx86operand(operands[i]).opsize := S_L;
  905. tx86operand(operands[i]).size := OS_M32;
  906. break;
  907. end;
  908. R_SUBMMZ: begin
  909. tx86operand(operands[i]).opsize := S_Q;
  910. tx86operand(operands[i]).size := OS_M64;
  911. break;
  912. end;
  913. else Message(asmr_e_unable_to_determine_reference_size);
  914. end;
  915. end;
  916. end;
  917. end;
  918. msiMemRegx32y64:
  919. begin
  920. for j := 1 to ops do
  921. begin
  922. if operands[j].Opr.Typ = OPR_REGISTER then
  923. begin
  924. case getsubreg(operands[j].opr.reg) of
  925. R_SUBMMX: begin
  926. tx86operand(operands[i]).opsize := S_L;
  927. tx86operand(operands[i]).size := OS_M32;
  928. break;
  929. end;
  930. R_SUBMMY: begin
  931. tx86operand(operands[i]).opsize := S_Q;
  932. tx86operand(operands[i]).size := OS_M64;
  933. break;
  934. end;
  935. else Message(asmr_e_unable_to_determine_reference_size);
  936. end;
  937. end;
  938. end;
  939. end;
  940. msiMemRegx32y64z128:
  941. for j := 1 to ops do
  942. begin
  943. if operands[j].Opr.Typ = OPR_REGISTER then
  944. begin
  945. case getsubreg(operands[j].opr.reg) of
  946. R_SUBMMX: begin
  947. tx86operand(operands[i]).opsize := S_L;
  948. tx86operand(operands[i]).size := OS_M32;
  949. break;
  950. end;
  951. R_SUBMMY: begin
  952. tx86operand(operands[i]).opsize := S_Q;
  953. tx86operand(operands[i]).size := OS_M64;
  954. break;
  955. end;
  956. R_SUBMMZ: begin
  957. tx86operand(operands[i]).opsize := S_XMM;
  958. tx86operand(operands[i]).size := OS_M128;
  959. break;
  960. end;
  961. else Message(asmr_e_unable_to_determine_reference_size);
  962. end;
  963. end;
  964. end;
  965. msiMemRegx64y128:
  966. begin
  967. for j := 1 to ops do
  968. begin
  969. if operands[j].Opr.Typ = OPR_REGISTER then
  970. begin
  971. case getsubreg(operands[j].opr.reg) of
  972. R_SUBMMX: begin
  973. tx86operand(operands[i]).opsize := S_Q;
  974. tx86operand(operands[i]).size := OS_M64;
  975. break;
  976. end;
  977. R_SUBMMY: begin
  978. tx86operand(operands[i]).opsize := S_XMM;
  979. tx86operand(operands[i]).size := OS_M128;
  980. break;
  981. end;
  982. else Message(asmr_e_unable_to_determine_reference_size);
  983. end;
  984. end;
  985. end;
  986. end;
  987. msiMemRegx64y128z256:
  988. begin
  989. for j := 1 to ops do
  990. begin
  991. if operands[j].Opr.Typ = OPR_REGISTER then
  992. begin
  993. case getsubreg(operands[j].opr.reg) of
  994. R_SUBMMX: begin
  995. tx86operand(operands[i]).opsize := S_Q;
  996. tx86operand(operands[i]).size := OS_M64;
  997. break;
  998. end;
  999. R_SUBMMY: begin
  1000. tx86operand(operands[i]).opsize := S_XMM;
  1001. tx86operand(operands[i]).size := OS_M128;
  1002. break;
  1003. end;
  1004. R_SUBMMZ: begin
  1005. tx86operand(operands[i]).opsize := S_YMM;
  1006. tx86operand(operands[i]).size := OS_M256;
  1007. break;
  1008. end;
  1009. else Message(asmr_e_unable_to_determine_reference_size);
  1010. end;
  1011. end;
  1012. end;
  1013. end;
  1014. msiMemRegx64y256:
  1015. begin
  1016. for j := 1 to ops do
  1017. begin
  1018. if operands[j].Opr.Typ = OPR_REGISTER then
  1019. begin
  1020. case getsubreg(operands[j].opr.reg) of
  1021. R_SUBMMX: begin
  1022. tx86operand(operands[i]).opsize := S_Q;
  1023. tx86operand(operands[i]).size := OS_M64;
  1024. break;
  1025. end;
  1026. R_SUBMMY: begin
  1027. tx86operand(operands[i]).opsize := S_YMM;
  1028. tx86operand(operands[i]).size := OS_M256;
  1029. break;
  1030. end;
  1031. else Message(asmr_e_unable_to_determine_reference_size);
  1032. end;
  1033. end;
  1034. end;
  1035. end;
  1036. msiMemRegx64y256z512:
  1037. begin
  1038. for j := 1 to ops do
  1039. begin
  1040. if operands[j].Opr.Typ = OPR_REGISTER then
  1041. begin
  1042. case getsubreg(operands[j].opr.reg) of
  1043. R_SUBMMX: begin
  1044. tx86operand(operands[i]).opsize := S_Q;
  1045. tx86operand(operands[i]).size := OS_M64;
  1046. break;
  1047. end;
  1048. R_SUBMMY: begin
  1049. tx86operand(operands[i]).opsize := S_YMM;
  1050. tx86operand(operands[i]).size := OS_M256;
  1051. break;
  1052. end;
  1053. R_SUBMMZ: begin
  1054. tx86operand(operands[i]).opsize := S_ZMM;
  1055. tx86operand(operands[i]).size := OS_M512;
  1056. break;
  1057. end;
  1058. else Message(asmr_e_unable_to_determine_reference_size);
  1059. end;
  1060. end;
  1061. end;
  1062. end;
  1063. msiMemRegConst128,
  1064. msiMemRegConst256,
  1065. msiMemRegConst512:
  1066. begin
  1067. ExistConst := false;
  1068. for j := 1 to ops do
  1069. begin
  1070. if operands[j].Opr.Typ = OPR_CONSTANT then
  1071. begin
  1072. ExistConst := true;
  1073. break;
  1074. end;
  1075. end;
  1076. if ExistConst then
  1077. begin
  1078. for j := 1 to ops do
  1079. begin
  1080. if operands[j].Opr.Typ = OPR_REGISTER then
  1081. begin
  1082. if (tx86operand(operands[j]).opsize <> S_NO) and
  1083. (tx86operand(operands[j]).size <> OS_NO) then
  1084. begin
  1085. tx86operand(operands[i]).opsize := tx86operand(operands[j]).opsize;
  1086. tx86operand(operands[i]).size := tx86operand(operands[j]).size;
  1087. break;
  1088. end
  1089. else Message(asmr_e_unable_to_determine_reference_size);
  1090. end;
  1091. end;
  1092. end
  1093. else
  1094. begin
  1095. case MemRefInfo(opcode).MemRefSize of
  1096. msiMemRegConst128: begin
  1097. tx86operand(operands[i]).opsize := S_XMM;
  1098. tx86operand(operands[i]).size := OS_M128;
  1099. break;
  1100. end;
  1101. msiMemRegConst256: begin
  1102. tx86operand(operands[i]).opsize := S_YMM;
  1103. tx86operand(operands[i]).size := OS_M256;
  1104. break;
  1105. end;
  1106. msiMemRegConst512: begin
  1107. tx86operand(operands[i]).opsize := S_ZMM;
  1108. tx86operand(operands[i]).size := OS_M512;
  1109. break;
  1110. end;
  1111. else
  1112. Internalerror(2019081007);
  1113. end;
  1114. end;
  1115. end;
  1116. msiXMem32,
  1117. msiYMem32,
  1118. msiZMem32,
  1119. msiXMem64,
  1120. msiYMem64,
  1121. msiZMem64: ; // ignore; gather/scatter opcodes haven a fixed element-size, not a fixed memory-size
  1122. // the vector-register have indices with base of the memory-address in the memory-operand
  1123. msiNoSize: ; // all memory-sizes are ok
  1124. msiNoMemRef:; // ignore;
  1125. msiVMemMultiple,
  1126. msiVMemRegSize: ; // ignore
  1127. msiUnknown,
  1128. msiUnsupported,
  1129. msiMultiple: Message(asmr_e_unable_to_determine_reference_size); // TODO individual message
  1130. else
  1131. Internalerror(2019081008);
  1132. end;
  1133. end;
  1134. OPR_CONSTANT:
  1135. case MemRefInfo(opcode).ConstSize of
  1136. csiMem8: begin
  1137. tx86operand(operands[i]).opsize := S_B;
  1138. tx86operand(operands[i]).size := OS_8;
  1139. end;
  1140. csiMem16: begin
  1141. tx86operand(operands[i]).opsize := S_W;
  1142. tx86operand(operands[i]).size := OS_16;
  1143. end;
  1144. csiMem32: begin
  1145. tx86operand(operands[i]).opsize := S_L;
  1146. tx86operand(operands[i]).size := OS_32;
  1147. end;
  1148. {$ifdef x86_64}
  1149. csiMem64: begin
  1150. tx86operand(operands[i]).opsize := S_Q;
  1151. tx86operand(operands[i]).size := OS_64;
  1152. end;
  1153. {$else}
  1154. csiMem64: begin
  1155. internalerror(2019050910);
  1156. end;
  1157. {$endif}
  1158. csiUnknown, csiMultiple, csiNoSize:
  1159. ;
  1160. end;
  1161. else
  1162. ;
  1163. end;
  1164. end;
  1165. end;
  1166. end;
  1167. for i:=1 to ops do
  1168. begin
  1169. operands[i].SetCorrectSize(opcode);
  1170. if tx86operand(operands[i]).opsize=S_NO then
  1171. begin
  1172. {$ifdef x86_64}
  1173. if (opcode=A_MOVQ) and
  1174. (ops=2) and
  1175. (operands[1].opr.typ=OPR_CONSTANT) then
  1176. opsize:=S_Q
  1177. else
  1178. {$endif x86_64}
  1179. case operands[i].Opr.Typ of
  1180. OPR_LOCAL,
  1181. OPR_REFERENCE :
  1182. begin
  1183. { for 3-operand opcodes, operand #1 (in ATT order) is always an immediate,
  1184. don't consider it. }
  1185. if i=ops then
  1186. operand2:=i-1
  1187. else
  1188. operand2:=i+1;
  1189. if operand2>0 then
  1190. begin
  1191. { Only allow register as operand to take the size from }
  1192. if operands[operand2].opr.typ=OPR_REGISTER then
  1193. begin
  1194. if ((opcode<>A_MOVD) and
  1195. (opcode<>A_CVTSI2SS)) then
  1196. begin
  1197. //tx86operand(operands[i]).opsize:=tx86operand(operands[operand2]).opsize;
  1198. // torsten - 31.01.2012
  1199. // old: xmm/ymm-register operands have a opsize = "S_NO"
  1200. // new: xmm/ymm-register operands have a opsize = "S_XMM/S_YMM"
  1201. // any SSE- and AVX-opcodes have mixed operand sizes (e.g. cvtsd2ss xmmreg, xmmreg/m32)
  1202. // in this case is we need the old handling ("S_NO")
  1203. // =>> ignore
  1204. if (tx86operand(operands[operand2]).opsize <> S_XMM) and
  1205. (tx86operand(operands[operand2]).opsize <> S_YMM) and
  1206. (tx86operand(operands[operand2]).opsize <> S_ZMM) then
  1207. tx86operand(operands[i]).opsize:=tx86operand(operands[operand2]).opsize
  1208. else tx86operand(operands[operand2]).opsize := S_NO;
  1209. end;
  1210. end
  1211. else
  1212. begin
  1213. { if no register then take the opsize (which is available with ATT),
  1214. if not availble then give an error }
  1215. if opsize<>S_NO then
  1216. tx86operand(operands[i]).opsize:=opsize
  1217. else
  1218. begin
  1219. if (m_delphi in current_settings.modeswitches) then
  1220. Message(asmr_w_unable_to_determine_reference_size_using_dword)
  1221. else
  1222. Message(asmr_e_unable_to_determine_reference_size);
  1223. { recovery }
  1224. tx86operand(operands[i]).opsize:=S_L;
  1225. end;
  1226. end;
  1227. end
  1228. else
  1229. begin
  1230. if opsize<>S_NO then
  1231. tx86operand(operands[i]).opsize:=opsize
  1232. end;
  1233. end;
  1234. OPR_SYMBOL :
  1235. begin
  1236. { Fix lea which need a reference }
  1237. if opcode=A_LEA then
  1238. begin
  1239. s:=operands[i].opr.symbol;
  1240. so:=operands[i].opr.symofs;
  1241. operands[i].opr.typ:=OPR_REFERENCE;
  1242. Fillchar(operands[i].opr.ref,sizeof(treference),0);
  1243. operands[i].opr.ref.symbol:=s;
  1244. operands[i].opr.ref.offset:=so;
  1245. end;
  1246. {$if defined(x86_64)}
  1247. tx86operand(operands[i]).opsize:=S_Q;
  1248. {$elseif defined(i386)}
  1249. tx86operand(operands[i]).opsize:=S_L;
  1250. {$elseif defined(i8086)}
  1251. tx86operand(operands[i]).opsize:=S_W;
  1252. {$endif}
  1253. end;
  1254. else
  1255. ;
  1256. end;
  1257. end;
  1258. end;
  1259. if MemRefInfo(opcode).ExistsSSEAVX then
  1260. begin
  1261. // validate broadcast-memory-operands
  1262. vbcst := 0;
  1263. mmregs := [];
  1264. for i := 1 to ops do
  1265. if operands[i].Opr.Typ in [OPR_REFERENCE, OPR_LOCAL] then vbcst := tx86operand(operands[i]).vbcst
  1266. else if operands[i].Opr.Typ = OPR_REGISTER then
  1267. begin
  1268. if getsubreg(operands[i].opr.reg) in [R_SUBMMX, R_SUBMMY, R_SUBMMZ] then
  1269. begin
  1270. include(mmregs, getsubreg(operands[i].opr.reg));
  1271. end;
  1272. end;
  1273. if vbcst <> 0 then
  1274. begin
  1275. // found broadcast-memory-operand (e.g. "{1to8}")
  1276. // check is correct
  1277. multiplicator := 0;
  1278. if mmregs = [R_SUBMMX] then multiplicator := 1
  1279. else if mmregs = [R_SUBMMY] then multiplicator := 2
  1280. else if mmregs = [R_SUBMMZ] then multiplicator := 4
  1281. else
  1282. begin
  1283. //TG TODO
  1284. end;
  1285. if MemRefInfo(opcode).BCSTTypes <> [] then
  1286. begin
  1287. str(MemRefInfo(opcode).BCSTXMMMultiplicator * multiplicator, bcst1);
  1288. str(vbcst, bcst2);
  1289. case vbcst of
  1290. 2: if not(bt1to2 in MemRefInfo(opcode).BCSTTypes) then
  1291. Message2(asmr_e_mismatch_broadcasting_elements, '1to' + bcst1, '1to' + bcst2);
  1292. 4: if not(bt1to4 in MemRefInfo(opcode).BCSTTypes) then
  1293. Message2(asmr_e_mismatch_broadcasting_elements, '1to' + bcst1, '1to' + bcst2);
  1294. 8: if not(bt1to8 in MemRefInfo(opcode).BCSTTypes) then
  1295. Message2(asmr_e_mismatch_broadcasting_elements, '1to' + bcst1, '1to' + bcst2);
  1296. 16: if not(bt1to16 in MemRefInfo(opcode).BCSTTypes) then
  1297. Message2(asmr_e_mismatch_broadcasting_elements, '1to' + bcst1, '1to' + bcst2);
  1298. end;
  1299. end
  1300. else if MemRefInfo(opcode).BCSTXMMMultiplicator * multiplicator <> vbcst then
  1301. begin
  1302. str(MemRefInfo(opcode).BCSTXMMMultiplicator * multiplicator, bcst1);
  1303. str(vbcst, bcst2);
  1304. Message2(asmr_e_mismatch_broadcasting_elements, '1to' + bcst1, '1to' + bcst2);
  1305. end;
  1306. end;
  1307. end;
  1308. end;
  1309. procedure Tx86Instruction.SetInstructionOpsize;
  1310. begin
  1311. if opsize<>S_NO then
  1312. exit;
  1313. case ops of
  1314. 0 : ;
  1315. 1 :
  1316. begin
  1317. { "push es" must be stored as a long PM }
  1318. if ((opcode=A_PUSH) or
  1319. (opcode=A_POP)) and
  1320. (operands[1].opr.typ=OPR_REGISTER) and
  1321. is_segment_reg(operands[1].opr.reg) then
  1322. {$ifdef i8086}
  1323. opsize:=S_W
  1324. {$else i8086}
  1325. opsize:=S_L
  1326. {$endif i8086}
  1327. else
  1328. opsize:=tx86operand(operands[1]).opsize;
  1329. end;
  1330. 2 :
  1331. begin
  1332. case opcode of
  1333. A_MOVZX,A_MOVSX :
  1334. begin
  1335. if tx86operand(operands[1]).opsize=S_NO then
  1336. begin
  1337. tx86operand(operands[1]).opsize:=S_B;
  1338. if (m_delphi in current_settings.modeswitches) then
  1339. Message(asmr_w_unable_to_determine_reference_size_using_byte)
  1340. else
  1341. Message(asmr_e_unable_to_determine_reference_size);
  1342. end;
  1343. case tx86operand(operands[1]).opsize of
  1344. S_W :
  1345. case tx86operand(operands[2]).opsize of
  1346. S_L :
  1347. opsize:=S_WL;
  1348. {$ifdef x86_64}
  1349. S_Q :
  1350. opsize:=S_WQ;
  1351. {$endif}
  1352. else
  1353. ;
  1354. end;
  1355. S_B :
  1356. begin
  1357. case tx86operand(operands[2]).opsize of
  1358. S_W :
  1359. opsize:=S_BW;
  1360. S_L :
  1361. opsize:=S_BL;
  1362. {$ifdef x86_64}
  1363. S_Q :
  1364. opsize:=S_BQ;
  1365. {$endif}
  1366. else
  1367. ;
  1368. end;
  1369. end;
  1370. else
  1371. ;
  1372. end;
  1373. end;
  1374. A_MOVSS,
  1375. A_VMOVSS,
  1376. A_MOVD : { movd is a move from a mmx register to a
  1377. 32 bit register or memory, so no opsize is correct here PM }
  1378. exit;
  1379. A_MOVQ :
  1380. opsize:=S_IQ;
  1381. A_CVTSI2SS,
  1382. A_CVTSI2SD,
  1383. A_OUT :
  1384. opsize:=tx86operand(operands[1]).opsize;
  1385. else
  1386. opsize:=tx86operand(operands[2]).opsize;
  1387. end;
  1388. end;
  1389. 3 :
  1390. begin
  1391. case opcode of
  1392. A_VCVTSI2SS,
  1393. A_VCVTSI2SD:
  1394. opsize:=tx86operand(operands[1]).opsize;
  1395. else
  1396. opsize:=tx86operand(operands[ops]).opsize;
  1397. end;
  1398. end;
  1399. 4 :
  1400. opsize:=tx86operand(operands[ops]).opsize;
  1401. end;
  1402. end;
  1403. procedure Tx86Instruction.CheckOperandSizes;
  1404. var
  1405. sizeerr : boolean;
  1406. i : longint;
  1407. begin
  1408. { Check only the most common opcodes here, the others are done in
  1409. the assembler pass }
  1410. case opcode of
  1411. A_PUSH,A_POP,A_DEC,A_INC,A_NOT,A_NEG,
  1412. A_CMP,A_MOV,
  1413. A_ADD,A_SUB,A_ADC,A_SBB,
  1414. A_AND,A_OR,A_TEST,A_XOR: ;
  1415. else
  1416. exit;
  1417. end;
  1418. { Handle the BW,BL,WL separatly }
  1419. sizeerr:=false;
  1420. { special push/pop selector case }
  1421. if ((opcode=A_PUSH) or
  1422. (opcode=A_POP)) and
  1423. (operands[1].opr.typ=OPR_REGISTER) and
  1424. is_segment_reg(operands[1].opr.reg) then
  1425. exit;
  1426. if opsize in [S_BW,S_BL,S_WL] then
  1427. begin
  1428. if ops<>2 then
  1429. sizeerr:=true
  1430. else
  1431. begin
  1432. case opsize of
  1433. S_BW :
  1434. sizeerr:=(tx86operand(operands[1]).opsize<>S_B) or (tx86operand(operands[2]).opsize<>S_W);
  1435. S_BL :
  1436. sizeerr:=(tx86operand(operands[1]).opsize<>S_B) or (tx86operand(operands[2]).opsize<>S_L);
  1437. S_WL :
  1438. sizeerr:=(tx86operand(operands[1]).opsize<>S_W) or (tx86operand(operands[2]).opsize<>S_L);
  1439. {$ifdef x86_64}
  1440. S_BQ:
  1441. sizeerr:=(tx86operand(operands[1]).opsize<>S_B) or (tx86operand(operands[2]).opsize<>S_Q);
  1442. S_WQ:
  1443. sizeerr:=(tx86operand(operands[1]).opsize<>S_W) or (tx86operand(operands[2]).opsize<>S_Q);
  1444. S_LQ:
  1445. sizeerr:=(tx86operand(operands[1]).opsize<>S_L) or (tx86operand(operands[2]).opsize<>S_Q);
  1446. {$endif}
  1447. else
  1448. ;
  1449. end;
  1450. end;
  1451. end
  1452. else
  1453. begin
  1454. for i:=1 to ops do
  1455. begin
  1456. if (operands[i].opr.typ<>OPR_CONSTANT) and
  1457. (tx86operand(operands[i]).opsize in [S_B,S_W,S_L]) and
  1458. (tx86operand(operands[i]).opsize<>opsize) then
  1459. sizeerr:=true;
  1460. end;
  1461. end;
  1462. if sizeerr then
  1463. begin
  1464. { if range checks are on then generate an error }
  1465. if (cs_compilesystem in current_settings.moduleswitches) or
  1466. not (cs_check_range in current_settings.localswitches) then
  1467. Message(asmr_w_size_suffix_and_dest_dont_match)
  1468. else
  1469. Message(asmr_e_size_suffix_and_dest_dont_match);
  1470. end;
  1471. end;
  1472. { This check must be done with the operand in ATT order
  1473. i.e.after swapping in the intel reader
  1474. but before swapping in the NASM and TASM writers PM }
  1475. procedure Tx86Instruction.CheckNonCommutativeOpcodes;
  1476. begin
  1477. if (
  1478. (ops=2) and
  1479. (operands[1].opr.typ=OPR_REGISTER) and
  1480. (operands[2].opr.typ=OPR_REGISTER) and
  1481. { if the first is ST and the second is also a register
  1482. it is necessarily ST1 .. ST7 }
  1483. ((operands[1].opr.reg=NR_ST) or
  1484. (operands[1].opr.reg=NR_ST0))
  1485. ) or
  1486. (ops=0) then
  1487. if opcode=A_FSUBR then
  1488. opcode:=A_FSUB
  1489. else if opcode=A_FSUB then
  1490. opcode:=A_FSUBR
  1491. else if opcode=A_FDIVR then
  1492. opcode:=A_FDIV
  1493. else if opcode=A_FDIV then
  1494. opcode:=A_FDIVR
  1495. else if opcode=A_FSUBRP then
  1496. opcode:=A_FSUBP
  1497. else if opcode=A_FSUBP then
  1498. opcode:=A_FSUBRP
  1499. else if opcode=A_FDIVRP then
  1500. opcode:=A_FDIVP
  1501. else if opcode=A_FDIVP then
  1502. opcode:=A_FDIVRP;
  1503. if (
  1504. (ops=1) and
  1505. (operands[1].opr.typ=OPR_REGISTER) and
  1506. (getregtype(operands[1].opr.reg)=R_FPUREGISTER) and
  1507. (operands[1].opr.reg<>NR_ST) and
  1508. (operands[1].opr.reg<>NR_ST0)
  1509. ) then
  1510. if opcode=A_FSUBRP then
  1511. opcode:=A_FSUBP
  1512. else if opcode=A_FSUBP then
  1513. opcode:=A_FSUBRP
  1514. else if opcode=A_FDIVRP then
  1515. opcode:=A_FDIVP
  1516. else if opcode=A_FDIVP then
  1517. opcode:=A_FDIVRP;
  1518. end;
  1519. procedure Tx86Instruction.FixupOpcode;
  1520. begin
  1521. { does nothing by default }
  1522. end;
  1523. {*****************************************************************************
  1524. opcode Adding
  1525. *****************************************************************************}
  1526. function Tx86Instruction.ConcatInstruction(p : TAsmList) : tai;
  1527. var
  1528. siz : topsize;
  1529. i : longint;
  1530. asize : int64;
  1531. ai : taicpu;
  1532. begin
  1533. ConcatInstruction:=nil;
  1534. ai:=nil;
  1535. for i:=1 to Ops do
  1536. if not operands[i].CheckOperand then
  1537. exit;
  1538. { Get Opsize }
  1539. if (opsize<>S_NO) or (Ops=0) then
  1540. siz:=opsize
  1541. else
  1542. begin
  1543. if (Ops=2) and (operands[1].opr.typ=OPR_REGISTER) then
  1544. siz:=tx86operand(operands[1]).opsize
  1545. else
  1546. siz:=tx86operand(operands[Ops]).opsize;
  1547. { MOVD should be of size S_LQ or S_QL, but these do not exist PM }
  1548. if (ops=2) and
  1549. (tx86operand(operands[1]).opsize<>S_NO) and
  1550. (tx86operand(operands[2]).opsize<>S_NO) and
  1551. (tx86operand(operands[1]).opsize<>tx86operand(operands[2]).opsize) then
  1552. siz:=S_NO;
  1553. end;
  1554. if ((opcode=A_MOVD)or
  1555. (opcode=A_CVTSI2SS)) and
  1556. ((tx86operand(operands[1]).opsize=S_NO) or
  1557. (tx86operand(operands[2]).opsize=S_NO)) then
  1558. siz:=S_NO;
  1559. { NASM does not support FADD without args
  1560. as alias of FADDP
  1561. and GNU AS interprets FADD without operand differently
  1562. for version 2.9.1 and 2.9.5 !! }
  1563. if (ops=0) and
  1564. ((opcode=A_FADD) or
  1565. (opcode=A_FMUL) or
  1566. (opcode=A_FSUB) or
  1567. (opcode=A_FSUBR) or
  1568. (opcode=A_FDIV) or
  1569. (opcode=A_FDIVR)) then
  1570. begin
  1571. if opcode=A_FADD then
  1572. opcode:=A_FADDP
  1573. else if opcode=A_FMUL then
  1574. opcode:=A_FMULP
  1575. else if opcode=A_FSUB then
  1576. opcode:=A_FSUBP
  1577. else if opcode=A_FSUBR then
  1578. opcode:=A_FSUBRP
  1579. else if opcode=A_FDIV then
  1580. opcode:=A_FDIVP
  1581. else if opcode=A_FDIVR then
  1582. opcode:=A_FDIVRP;
  1583. message1(asmr_w_fadd_to_faddp,std_op2str[opcode]);
  1584. end;
  1585. {It is valid to specify some instructions without operand size.}
  1586. if siz=S_NO then
  1587. begin
  1588. if (ops=1) and (opcode=A_INT) then
  1589. siz:=S_B;
  1590. if (ops=1) and (opcode=A_XABORT) then
  1591. siz:=S_B;
  1592. {$ifdef i8086}
  1593. if (ops=1) and (opcode=A_BRKEM) then
  1594. siz:=S_B;
  1595. {$endif i8086}
  1596. if (ops=1) and (opcode=A_RET) or (opcode=A_RETN) or (opcode=A_RETF) or
  1597. (opcode=A_RETW) or (opcode=A_RETNW) or (opcode=A_RETFW) or
  1598. {$ifndef x86_64}
  1599. (opcode=A_RETD) or (opcode=A_RETND) or
  1600. {$endif x86_64}
  1601. (opcode=A_RETFD)
  1602. {$ifdef x86_64}
  1603. or (opcode=A_RETQ) or (opcode=A_RETNQ) or (opcode=A_RETFQ)
  1604. {$endif x86_64}
  1605. then
  1606. siz:=S_W;
  1607. if (ops=1) and (opcode=A_PUSH) then
  1608. begin
  1609. {$ifdef i8086}
  1610. if (tx86operand(operands[1]).opr.val>=-128) and (tx86operand(operands[1]).opr.val<=127) then
  1611. begin
  1612. siz:=S_B;
  1613. message(asmr_w_unable_to_determine_constant_size_using_byte);
  1614. end
  1615. else
  1616. begin
  1617. siz:=S_W;
  1618. message(asmr_w_unable_to_determine_constant_size_using_word);
  1619. end;
  1620. {$else i8086}
  1621. { We are a 32 compiler, assume 32-bit by default. This is Delphi
  1622. compatible but bad coding practise.}
  1623. siz:=S_L;
  1624. message(asmr_w_unable_to_determine_reference_size_using_dword);
  1625. {$endif i8086}
  1626. end;
  1627. if (opcode=A_JMP) or (opcode=A_JCC) or (opcode=A_CALL) then
  1628. if ops=1 then
  1629. siz:=S_NEAR
  1630. else
  1631. siz:=S_FAR;
  1632. end;
  1633. { GNU AS interprets FDIV without operand differently
  1634. for version 2.9.1 and 2.10
  1635. we add explicit args to it !! }
  1636. if (ops=0) and
  1637. ((opcode=A_FSUBP) or
  1638. (opcode=A_FSUBRP) or
  1639. (opcode=A_FDIVP) or
  1640. (opcode=A_FDIVRP) or
  1641. (opcode=A_FSUB) or
  1642. (opcode=A_FSUBR) or
  1643. (opcode=A_FADD) or
  1644. (opcode=A_FADDP) or
  1645. (opcode=A_FDIV) or
  1646. (opcode=A_FDIVR)) then
  1647. begin
  1648. message1(asmr_w_adding_explicit_args_fXX,std_op2str[opcode]);
  1649. ops:=2;
  1650. operands[1].opr.typ:=OPR_REGISTER;
  1651. operands[2].opr.typ:=OPR_REGISTER;
  1652. operands[1].opr.reg:=NR_ST0;
  1653. operands[2].opr.reg:=NR_ST1;
  1654. end;
  1655. if (ops=1) and
  1656. (
  1657. (operands[1].opr.typ=OPR_REGISTER) and
  1658. (getregtype(operands[1].opr.reg)=R_FPUREGISTER) and
  1659. (operands[1].opr.reg<>NR_ST) and
  1660. (operands[1].opr.reg<>NR_ST0)
  1661. ) and
  1662. (
  1663. (opcode=A_FSUBP) or
  1664. (opcode=A_FSUBRP) or
  1665. (opcode=A_FDIVP) or
  1666. (opcode=A_FDIVRP) or
  1667. (opcode=A_FADDP) or
  1668. (opcode=A_FMULP)
  1669. ) then
  1670. begin
  1671. message1(asmr_w_adding_explicit_first_arg_fXX,std_op2str[opcode]);
  1672. ops:=2;
  1673. operands[2].opr.typ:=OPR_REGISTER;
  1674. operands[2].opr.reg:=operands[1].opr.reg;
  1675. operands[1].opr.reg:=NR_ST0;
  1676. end;
  1677. if (ops=1) and
  1678. (
  1679. (operands[1].opr.typ=OPR_REGISTER) and
  1680. (getregtype(operands[1].opr.reg)=R_FPUREGISTER) and
  1681. (operands[1].opr.reg<>NR_ST) and
  1682. (operands[1].opr.reg<>NR_ST0)
  1683. ) and
  1684. (
  1685. (opcode=A_FSUB) or
  1686. (opcode=A_FSUBR) or
  1687. (opcode=A_FDIV) or
  1688. (opcode=A_FDIVR) or
  1689. (opcode=A_FADD) or
  1690. (opcode=A_FMUL)
  1691. ) then
  1692. begin
  1693. message1(asmr_w_adding_explicit_second_arg_fXX,std_op2str[opcode]);
  1694. ops:=2;
  1695. operands[2].opr.typ:=OPR_REGISTER;
  1696. operands[2].opr.reg:=NR_ST0;
  1697. end;
  1698. { Check for 'POP CS' }
  1699. if (opcode=A_POP) and (ops=1) and (operands[1].opr.typ=OPR_REGISTER) and
  1700. (operands[1].opr.reg=NR_CS) then
  1701. {$ifdef i8086}
  1702. { On i8086 we print only a warning, because 'POP CS' works on 8086 and 8088
  1703. CPUs, but isn't supported on any later CPU }
  1704. Message(asmr_w_pop_cs_not_portable);
  1705. {$else i8086}
  1706. { On the i386 and x86_64 targets, we print out an error, because no CPU,
  1707. supported by these targets support 'POP CS' }
  1708. Message(asmr_e_pop_cs_not_valid);
  1709. {$endif i8086}
  1710. { I tried to convince Linus Torvalds to add
  1711. code to support ENTER instruction
  1712. (when raising a stack page fault)
  1713. but he replied that ENTER is a bad instruction and
  1714. Linux does not need to support it
  1715. So I think its at least a good idea to add a warning
  1716. if someone uses this in assembler code
  1717. FPC itself does not use it at all PM }
  1718. if (opcode=A_ENTER) and
  1719. (target_info.system in [system_i386_linux,system_i386_FreeBSD,system_i386_android]) then
  1720. Message(asmr_w_enter_not_supported_by_linux);
  1721. ai:=taicpu.op_none(opcode,siz);
  1722. ai.fileinfo:=filepos;
  1723. ai.SetOperandOrder(op_att);
  1724. ai.Ops:=Ops;
  1725. ai.Allocate_oper(Ops);
  1726. for i:=1 to Ops do
  1727. begin
  1728. ai.oper[i-1]^.vopext := (operands[i] as tx86operand).vopext;
  1729. case operands[i].opr.typ of
  1730. OPR_CONSTANT :
  1731. ai.loadconst(i-1,operands[i].opr.val);
  1732. OPR_REGISTER:
  1733. ai.loadreg(i-1,operands[i].opr.reg);
  1734. OPR_SYMBOL:
  1735. {$ifdef i8086}
  1736. if operands[i].opr.symseg then
  1737. taicpu(ai).loadsegsymbol(i-1,operands[i].opr.symbol)
  1738. else
  1739. {$endif i8086}
  1740. ai.loadsymbol(i-1,operands[i].opr.symbol,operands[i].opr.symofs);
  1741. OPR_LOCAL :
  1742. with operands[i].opr do
  1743. begin
  1744. ai.loadlocal(i-1,localsym,localsymofs,localindexreg,
  1745. localscale,localgetoffset,localforceref);
  1746. ai.oper[i-1]^.localoper^.localsegment:=localsegment;
  1747. end;
  1748. OPR_REFERENCE:
  1749. begin
  1750. if current_settings.optimizerswitches <> [] then
  1751. if (not(MemRefInfo(opcode).MemRefSize in MemRefSizeInfoVMems)) and (opcode<>A_XLAT) and not is_x86_string_op(opcode) then
  1752. optimize_ref(operands[i].opr.ref,true);
  1753. ai.loadref(i-1,operands[i].opr.ref);
  1754. if operands[i].size<>OS_NO then
  1755. begin
  1756. asize:=0;
  1757. case operands[i].size of
  1758. OS_8,OS_S8 :
  1759. asize:=OT_BITS8;
  1760. OS_16,OS_S16, OS_M16:
  1761. asize:=OT_BITS16;
  1762. OS_32,OS_S32 :
  1763. {$ifdef i8086}
  1764. if siz=S_FAR then
  1765. asize:=OT_FAR
  1766. else
  1767. asize:=OT_BITS32;
  1768. {$else i8086}
  1769. asize:=OT_BITS32;
  1770. {$endif i8086}
  1771. OS_F32,OS_M32 :
  1772. asize:=OT_BITS32;
  1773. OS_64,OS_S64:
  1774. begin
  1775. { Only FPU and SSE/AVX operations know about 64bit
  1776. values, for all integer operations it is seen as 32bit
  1777. this applies only to i386, see tw16622}
  1778. if (gas_needsuffix[opcode] in [attsufFPU,attsufFPUint]) or (MemRefInfo(opcode).ExistsSSEAVX) then
  1779. asize:=OT_BITS64
  1780. {$ifdef i386}
  1781. else
  1782. asize:=OT_BITS32
  1783. {$endif i386}
  1784. ;
  1785. end;
  1786. OS_F64,OS_C64, OS_M64 :
  1787. asize:=OT_BITS64;
  1788. OS_F80 :
  1789. asize:=OT_BITS80;
  1790. OS_128,OS_M128:
  1791. asize := OT_BITS128;
  1792. OS_M256:
  1793. asize := OT_BITS256;
  1794. OS_M512:
  1795. asize := OT_BITS512;
  1796. else
  1797. ;
  1798. end;
  1799. if asize<>0 then
  1800. ai.oper[i-1]^.ot:=(ai.oper[i-1]^.ot and OT_NON_SIZE) or asize;
  1801. end;
  1802. end;
  1803. else
  1804. ;
  1805. end;
  1806. end;
  1807. { Condition ? }
  1808. if condition<>C_None then
  1809. ai.SetCondition(condition);
  1810. { Set is_jmp, it enables asmwriter to emit short jumps if appropriate }
  1811. if (opcode=A_JMP) or (opcode=A_JCC) then
  1812. ai.is_jmp := True;
  1813. { Concat the opcode or give an error }
  1814. if assigned(ai) then
  1815. p.concat(ai)
  1816. else
  1817. Message(asmr_e_invalid_opcode_and_operand);
  1818. result:=ai;
  1819. end;
  1820. function Tx86Instruction.getstring: string;
  1821. var
  1822. i : longint;
  1823. s, sval : string;
  1824. regnr: string;
  1825. addsize : boolean;
  1826. begin
  1827. s:='['+std_op2str[opcode];
  1828. for i:=1 to ops do
  1829. begin
  1830. with operands[i] as Tx86Operand do
  1831. begin
  1832. if i=0 then
  1833. s:=s+' '
  1834. else
  1835. s:=s+',';
  1836. { type }
  1837. addsize:=false;
  1838. case operands[i].opr.typ of
  1839. OPR_CONSTANT : begin
  1840. str(operands[i].opr.val, sval);
  1841. s:=s+ sval;
  1842. end;
  1843. OPR_REGISTER : begin
  1844. regnr := '';
  1845. str(getsupreg(opr.reg),regnr);
  1846. if getsubreg(opr.reg)= R_SUBMMX then
  1847. s:=s+'xmmreg' + regnr
  1848. else
  1849. if getsubreg(opr.reg)= R_SUBMMY then
  1850. s:=s+'ymmreg' + regnr
  1851. else
  1852. if getsubreg(opr.reg)= R_SUBMMZ then
  1853. s:=s+'zmmreg' + regnr
  1854. else
  1855. if getregtype(opr.reg)= R_MMXREGISTER then
  1856. s:=s+'mmxreg'
  1857. else
  1858. if getregtype(opr.reg)= R_FPUREGISTER then
  1859. s:=s+'fpureg'
  1860. else
  1861. if getregtype(opr.reg)=R_INTREGISTER then
  1862. begin
  1863. s:=s+'reg';
  1864. addsize:=true;
  1865. end;
  1866. end;
  1867. OPR_LOCAL,
  1868. OPR_REFERENCE: begin
  1869. s:=s + 'mem';
  1870. addsize:=true;
  1871. end;
  1872. else s:=s + '???';
  1873. end;
  1874. if addsize then
  1875. begin
  1876. sval := '';
  1877. str(tcgsize2size[size], sval);
  1878. s := s + sval;
  1879. end;
  1880. if vopext <> 0 then
  1881. begin
  1882. str(vopext and $07, regnr);
  1883. if vopext and OTVE_VECTOR_WRITEMASK = OTVE_VECTOR_WRITEMASK then
  1884. s := s + ' {k' + regnr + '}';
  1885. if vopext and OTVE_VECTOR_ZERO = OTVE_VECTOR_ZERO then
  1886. s := s + ' {z}';
  1887. if vopext and OTVE_VECTOR_SAE = OTVE_VECTOR_SAE then
  1888. s := s + ' {sae}';
  1889. if vopext and OTVE_VECTOR_BCST = OTVE_VECTOR_BCST then
  1890. case vopext and OTVE_VECTOR_BCST_MASK of
  1891. OTVE_VECTOR_BCST2: s := s + ' {1to2}';
  1892. OTVE_VECTOR_BCST4: s := s + ' {1to4}';
  1893. OTVE_VECTOR_BCST8: s := s + ' {1to8}';
  1894. OTVE_VECTOR_BCST16: s := s + ' {1to16}';
  1895. end;
  1896. if vopext and OTVE_VECTOR_ER = OTVE_VECTOR_ER then
  1897. case vopext and OTVE_VECTOR_ER_MASK of
  1898. OTVE_VECTOR_RNSAE: s := s + ' {rn-sae}';
  1899. OTVE_VECTOR_RDSAE: s := s + ' {rd-sae}';
  1900. OTVE_VECTOR_RUSAE: s := s + ' {ru-sae}';
  1901. OTVE_VECTOR_RZSAE: s := s + ' {rz-sae}';
  1902. end;
  1903. end;
  1904. end;
  1905. end;
  1906. GetString:=s+']';
  1907. end;
  1908. function Tx86Instruction.MightHaveExtension: boolean;
  1909. begin
  1910. Result:=aasmcpu.MightHaveExtension(opcode);
  1911. end;
  1912. end.