1 //===-- X86AsmParser.cpp - Parse X86 assembly to MCInst instructions ------===// 2 // 3 // The LLVM Compiler Infrastructure 4 // 5 // This file is distributed under the University of Illinois Open Source 6 // License. See LICENSE.TXT for details. 7 // 8 //===----------------------------------------------------------------------===// 9 10 #include "X86.h" 11 #include "llvm/ADT/SmallVector.h" 12 #include "llvm/ADT/Twine.h" 13 #include "llvm/MC/MCAsmLexer.h" 14 #include "llvm/MC/MCAsmParser.h" 15 #include "llvm/MC/MCInst.h" 16 #include "llvm/MC/MCValue.h" 17 #include "llvm/Support/SourceMgr.h" 18 #include "llvm/Target/TargetRegistry.h" 19 #include "llvm/Target/TargetAsmParser.h" 20 using namespace llvm; 21 22 namespace { 23 struct X86Operand; 24 25 class X86ATTAsmParser : public TargetAsmParser { 26 MCAsmParser &Parser; 27 28 private: 29 bool MatchInstruction(const StringRef &Name, 30 SmallVectorImpl<X86Operand> &Operands, 31 MCInst &Inst); 32 33 MCAsmParser &getParser() const { return Parser; } 34 35 MCAsmLexer &getLexer() const { return Parser.getLexer(); } 36 37 void Warning(SMLoc L, const Twine &Msg) { Parser.Warning(L, Msg); } 38 39 bool Error(SMLoc L, const Twine &Msg) { return Parser.Error(L, Msg); } 40 41 bool ParseRegister(X86Operand &Op); 42 43 bool ParseOperand(X86Operand &Op); 44 45 bool ParseMemOperand(X86Operand &Op); 46 47 /// @name Auto-generated Match Functions 48 /// { 49 50 bool MatchRegisterName(const StringRef &Name, unsigned &RegNo); 51 52 /// } 53 54 public: 55 X86ATTAsmParser(const Target &T, MCAsmParser &_Parser) 56 : TargetAsmParser(T), Parser(_Parser) {} 57 58 virtual bool ParseInstruction(const StringRef &Name, MCInst &Inst); 59 }; 60 61 } // end anonymous namespace 62 63 64 namespace { 65 66 /// X86Operand - Instances of this class represent a parsed X86 machine 67 /// instruction. 68 struct X86Operand { 69 enum { 70 Register, 71 Immediate, 72 Memory 73 } Kind; 74 75 union { 76 struct { 77 unsigned RegNo; 78 } Reg; 79 80 struct { 81 MCValue Val; 82 } Imm; 83 84 struct { 85 unsigned SegReg; 86 MCValue Disp; 87 unsigned BaseReg; 88 unsigned IndexReg; 89 unsigned Scale; 90 } Mem; 91 }; 92 93 unsigned getReg() const { 94 assert(Kind == Register && "Invalid access!"); 95 return Reg.RegNo; 96 } 97 98 const MCValue &getImm() const { 99 assert(Kind == Immediate && "Invalid access!"); 100 return Imm.Val; 101 } 102 103 const MCValue &getMemDisp() const { 104 assert(Kind == Memory && "Invalid access!"); 105 return Mem.Disp; 106 } 107 unsigned getMemSegReg() const { 108 assert(Kind == Memory && "Invalid access!"); 109 return Mem.SegReg; 110 } 111 unsigned getMemBaseReg() const { 112 assert(Kind == Memory && "Invalid access!"); 113 return Mem.BaseReg; 114 } 115 unsigned getMemIndexReg() const { 116 assert(Kind == Memory && "Invalid access!"); 117 return Mem.IndexReg; 118 } 119 unsigned getMemScale() const { 120 assert(Kind == Memory && "Invalid access!"); 121 return Mem.Scale; 122 } 123 124 static X86Operand CreateReg(unsigned RegNo) { 125 X86Operand Res; 126 Res.Kind = Register; 127 Res.Reg.RegNo = RegNo; 128 return Res; 129 } 130 static X86Operand CreateImm(MCValue Val) { 131 X86Operand Res; 132 Res.Kind = Immediate; 133 Res.Imm.Val = Val; 134 return Res; 135 } 136 static X86Operand CreateMem(unsigned SegReg, MCValue Disp, unsigned BaseReg, 137 unsigned IndexReg, unsigned Scale) { 138 // We should never just have a displacement, that would be an immediate. 139 assert((SegReg || BaseReg || IndexReg) && "Invalid memory operand!"); 140 141 // The scale should always be one of {1,2,4,8}. 142 assert(((Scale == 1 || Scale == 2 || Scale == 4 || Scale == 8)) && 143 "Invalid scale!"); 144 X86Operand Res; 145 Res.Kind = Memory; 146 Res.Mem.SegReg = SegReg; 147 Res.Mem.Disp = Disp; 148 Res.Mem.BaseReg = BaseReg; 149 Res.Mem.IndexReg = IndexReg; 150 Res.Mem.Scale = Scale; 151 return Res; 152 } 153 }; 154 155 } // end anonymous namespace. 156 157 158 bool X86ATTAsmParser::ParseRegister(X86Operand &Op) { 159 const AsmToken &Tok = getLexer().getTok(); 160 assert(Tok.is(AsmToken::Register) && "Invalid token kind!"); 161 162 // FIXME: Validate register for the current architecture; we have to do 163 // validation later, so maybe there is no need for this here. 164 unsigned RegNo; 165 assert(Tok.getString().startswith("%") && "Invalid register name!"); 166 if (MatchRegisterName(Tok.getString().substr(1), RegNo)) 167 return Error(Tok.getLoc(), "invalid register name"); 168 169 Op = X86Operand::CreateReg(RegNo); 170 getLexer().Lex(); // Eat register token. 171 172 return false; 173 } 174 175 bool X86ATTAsmParser::ParseOperand(X86Operand &Op) { 176 switch (getLexer().getKind()) { 177 default: 178 return ParseMemOperand(Op); 179 case AsmToken::Register: 180 // FIXME: if a segment register, this could either be just the seg reg, or 181 // the start of a memory operand. 182 return ParseRegister(Op); 183 case AsmToken::Dollar: { 184 // $42 -> immediate. 185 getLexer().Lex(); 186 MCValue Val; 187 if (getParser().ParseRelocatableExpression(Val)) 188 return true; 189 Op = X86Operand::CreateImm(Val); 190 return false; 191 } 192 case AsmToken::Star: 193 getLexer().Lex(); // Eat the star. 194 195 if (getLexer().is(AsmToken::Register)) { 196 if (ParseRegister(Op)) 197 return true; 198 } else if (ParseMemOperand(Op)) 199 return true; 200 201 // FIXME: Note the '*' in the operand for use by the matcher. 202 return false; 203 } 204 } 205 206 /// ParseMemOperand: segment: disp(basereg, indexreg, scale) 207 bool X86ATTAsmParser::ParseMemOperand(X86Operand &Op) { 208 // FIXME: If SegReg ':' (e.g. %gs:), eat and remember. 209 unsigned SegReg = 0; 210 211 // We have to disambiguate a parenthesized expression "(4+5)" from the start 212 // of a memory operand with a missing displacement "(%ebx)" or "(,%eax)". The 213 // only way to do this without lookahead is to eat the ( and see what is after 214 // it. 215 MCValue Disp = MCValue::get(0, 0, 0); 216 if (getLexer().isNot(AsmToken::LParen)) { 217 if (getParser().ParseRelocatableExpression(Disp)) return true; 218 219 // After parsing the base expression we could either have a parenthesized 220 // memory address or not. If not, return now. If so, eat the (. 221 if (getLexer().isNot(AsmToken::LParen)) { 222 // Unless we have a segment register, treat this as an immediate. 223 if (SegReg) 224 Op = X86Operand::CreateMem(SegReg, Disp, 0, 0, 1); 225 else 226 Op = X86Operand::CreateImm(Disp); 227 return false; 228 } 229 230 // Eat the '('. 231 getLexer().Lex(); 232 } else { 233 // Okay, we have a '('. We don't know if this is an expression or not, but 234 // so we have to eat the ( to see beyond it. 235 getLexer().Lex(); // Eat the '('. 236 237 if (getLexer().is(AsmToken::Register) || getLexer().is(AsmToken::Comma)) { 238 // Nothing to do here, fall into the code below with the '(' part of the 239 // memory operand consumed. 240 } else { 241 // It must be an parenthesized expression, parse it now. 242 if (getParser().ParseParenRelocatableExpression(Disp)) 243 return true; 244 245 // After parsing the base expression we could either have a parenthesized 246 // memory address or not. If not, return now. If so, eat the (. 247 if (getLexer().isNot(AsmToken::LParen)) { 248 // Unless we have a segment register, treat this as an immediate. 249 if (SegReg) 250 Op = X86Operand::CreateMem(SegReg, Disp, 0, 0, 1); 251 else 252 Op = X86Operand::CreateImm(Disp); 253 return false; 254 } 255 256 // Eat the '('. 257 getLexer().Lex(); 258 } 259 } 260 261 // If we reached here, then we just ate the ( of the memory operand. Process 262 // the rest of the memory operand. 263 unsigned BaseReg = 0, IndexReg = 0, Scale = 1; 264 265 if (getLexer().is(AsmToken::Register)) { 266 if (ParseRegister(Op)) 267 return true; 268 BaseReg = Op.getReg(); 269 } 270 271 if (getLexer().is(AsmToken::Comma)) { 272 getLexer().Lex(); // Eat the comma. 273 274 // Following the comma we should have either an index register, or a scale 275 // value. We don't support the later form, but we want to parse it 276 // correctly. 277 // 278 // Not that even though it would be completely consistent to support syntax 279 // like "1(%eax,,1)", the assembler doesn't. 280 if (getLexer().is(AsmToken::Register)) { 281 if (ParseRegister(Op)) 282 return true; 283 IndexReg = Op.getReg(); 284 285 if (getLexer().isNot(AsmToken::RParen)) { 286 // Parse the scale amount: 287 // ::= ',' [scale-expression] 288 if (getLexer().isNot(AsmToken::Comma)) 289 return true; 290 getLexer().Lex(); // Eat the comma. 291 292 if (getLexer().isNot(AsmToken::RParen)) { 293 SMLoc Loc = getLexer().getTok().getLoc(); 294 295 int64_t ScaleVal; 296 if (getParser().ParseAbsoluteExpression(ScaleVal)) 297 return true; 298 299 // Validate the scale amount. 300 if (ScaleVal != 1 && ScaleVal != 2 && ScaleVal != 4 && ScaleVal != 8) 301 return Error(Loc, "scale factor in address must be 1, 2, 4 or 8"); 302 Scale = (unsigned)ScaleVal; 303 } 304 } 305 } else if (getLexer().isNot(AsmToken::RParen)) { 306 // Otherwise we have the unsupported form of a scale amount without an 307 // index. 308 SMLoc Loc = getLexer().getTok().getLoc(); 309 310 int64_t Value; 311 if (getParser().ParseAbsoluteExpression(Value)) 312 return true; 313 314 return Error(Loc, "cannot have scale factor without index register"); 315 } 316 } 317 318 // Ok, we've eaten the memory operand, verify we have a ')' and eat it too. 319 if (getLexer().isNot(AsmToken::RParen)) 320 return Error(getLexer().getTok().getLoc(), 321 "unexpected token in memory operand"); 322 getLexer().Lex(); // Eat the ')'. 323 324 Op = X86Operand::CreateMem(SegReg, Disp, BaseReg, IndexReg, Scale); 325 return false; 326 } 327 328 bool X86ATTAsmParser::ParseInstruction(const StringRef &Name, MCInst &Inst) { 329 SmallVector<X86Operand, 3> Operands; 330 331 SMLoc Loc = getLexer().getTok().getLoc(); 332 if (getLexer().isNot(AsmToken::EndOfStatement)) { 333 // Read the first operand. 334 Operands.push_back(X86Operand()); 335 if (ParseOperand(Operands.back())) 336 return true; 337 338 while (getLexer().is(AsmToken::Comma)) { 339 getLexer().Lex(); // Eat the comma. 340 341 // Parse and remember the operand. 342 Operands.push_back(X86Operand()); 343 if (ParseOperand(Operands.back())) 344 return true; 345 } 346 } 347 348 if (!MatchInstruction(Name, Operands, Inst)) 349 return false; 350 351 // FIXME: We should give nicer diagnostics about the exact failure. 352 353 // FIXME: For now we just treat unrecognized instructions as "warnings". 354 Warning(Loc, "unrecognized instruction"); 355 356 return false; 357 } 358 359 // Force static initialization. 360 extern "C" void LLVMInitializeX86AsmParser() { 361 RegisterAsmParser<X86ATTAsmParser> X(TheX86_32Target); 362 RegisterAsmParser<X86ATTAsmParser> Y(TheX86_64Target); 363 } 364 365 // FIXME: These should come from tblgen? 366 367 static bool 368 Match_X86_Op_REG(const X86Operand &Op, MCOperand *MCOps, unsigned NumOps) { 369 assert(NumOps == 1 && "Invalid number of ops!"); 370 371 // FIXME: Match correct registers. 372 if (Op.Kind != X86Operand::Register) 373 return true; 374 375 MCOps[0] = MCOperand::CreateReg(Op.getReg()); 376 return false; 377 } 378 379 static bool 380 Match_X86_Op_IMM(const X86Operand &Op, MCOperand *MCOps, unsigned NumOps) { 381 assert(NumOps == 1 && "Invalid number of ops!"); 382 383 // FIXME: We need to check widths. 384 if (Op.Kind != X86Operand::Immediate) 385 return true; 386 387 MCOps[0] = MCOperand::CreateMCValue(Op.getImm()); 388 return false; 389 } 390 391 static bool Match_X86_Op_LMEM(const X86Operand &Op, 392 MCOperand *MCOps, 393 unsigned NumMCOps) { 394 assert(NumMCOps == 4 && "Invalid number of ops!"); 395 396 if (Op.Kind != X86Operand::Memory) 397 return true; 398 399 MCOps[0] = MCOperand::CreateReg(Op.getMemBaseReg()); 400 MCOps[1] = MCOperand::CreateImm(Op.getMemScale()); 401 MCOps[2] = MCOperand::CreateReg(Op.getMemIndexReg()); 402 MCOps[3] = MCOperand::CreateMCValue(Op.getMemDisp()); 403 404 return false; 405 } 406 407 static bool Match_X86_Op_MEM(const X86Operand &Op, 408 MCOperand *MCOps, 409 unsigned NumMCOps) { 410 assert(NumMCOps == 5 && "Invalid number of ops!"); 411 412 if (Match_X86_Op_LMEM(Op, MCOps, 4)) 413 return true; 414 415 MCOps[4] = MCOperand::CreateReg(Op.getMemSegReg()); 416 417 return false; 418 } 419 420 #define REG(name) \ 421 static bool Match_X86_Op_##name(const X86Operand &Op, \ 422 MCOperand *MCOps, \ 423 unsigned NumMCOps) { \ 424 return Match_X86_Op_REG(Op, MCOps, NumMCOps); \ 425 } 426 427 REG(GR64) 428 REG(GR32) 429 REG(GR16) 430 REG(GR8) 431 432 #define IMM(name) \ 433 static bool Match_X86_Op_##name(const X86Operand &Op, \ 434 MCOperand *MCOps, \ 435 unsigned NumMCOps) { \ 436 return Match_X86_Op_IMM(Op, MCOps, NumMCOps); \ 437 } 438 439 IMM(brtarget) 440 IMM(brtarget8) 441 IMM(i16i8imm) 442 IMM(i16imm) 443 IMM(i32i8imm) 444 IMM(i32imm) 445 IMM(i32imm_pcrel) 446 IMM(i64i32imm) 447 IMM(i64i32imm_pcrel) 448 IMM(i64i8imm) 449 IMM(i64imm) 450 IMM(i8imm) 451 452 #define LMEM(name) \ 453 static bool Match_X86_Op_##name(const X86Operand &Op, \ 454 MCOperand *MCOps, \ 455 unsigned NumMCOps) { \ 456 return Match_X86_Op_LMEM(Op, MCOps, NumMCOps); \ 457 } 458 459 LMEM(lea32mem) 460 LMEM(lea64_32mem) 461 LMEM(lea64mem) 462 463 #define MEM(name) \ 464 static bool Match_X86_Op_##name(const X86Operand &Op, \ 465 MCOperand *MCOps, \ 466 unsigned NumMCOps) { \ 467 return Match_X86_Op_MEM(Op, MCOps, NumMCOps); \ 468 } 469 470 MEM(f128mem) 471 MEM(f32mem) 472 MEM(f64mem) 473 MEM(f80mem) 474 MEM(i128mem) 475 MEM(i16mem) 476 MEM(i32mem) 477 MEM(i64mem) 478 MEM(i8mem) 479 MEM(sdmem) 480 MEM(ssmem) 481 482 #define DUMMY(name) \ 483 static bool Match_X86_Op_##name(const X86Operand &Op, \ 484 MCOperand *MCOps, \ 485 unsigned NumMCOps) { \ 486 return true; \ 487 } 488 489 DUMMY(FR32) 490 DUMMY(FR64) 491 DUMMY(GR32_NOREX) 492 DUMMY(GR8_NOREX) 493 DUMMY(RST) 494 DUMMY(VR128) 495 DUMMY(VR64) 496 DUMMY(i8mem_NOREX) 497 498 #include "X86GenAsmMatcher.inc" 499