1 //===- AsmParser.cpp - Parser for Assembly Files --------------------------===// 2 // 3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 4 // See https://llvm.org/LICENSE.txt for license information. 5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 6 // 7 //===----------------------------------------------------------------------===// 8 // 9 // This class implements the parser for assembly files. 10 // 11 //===----------------------------------------------------------------------===// 12 13 #include "llvm/ADT/APFloat.h" 14 #include "llvm/ADT/APInt.h" 15 #include "llvm/ADT/ArrayRef.h" 16 #include "llvm/ADT/None.h" 17 #include "llvm/ADT/STLExtras.h" 18 #include "llvm/ADT/SmallString.h" 19 #include "llvm/ADT/SmallVector.h" 20 #include "llvm/ADT/StringExtras.h" 21 #include "llvm/ADT/StringMap.h" 22 #include "llvm/ADT/StringRef.h" 23 #include "llvm/ADT/Twine.h" 24 #include "llvm/BinaryFormat/Dwarf.h" 25 #include "llvm/DebugInfo/CodeView/SymbolRecord.h" 26 #include "llvm/MC/MCAsmInfo.h" 27 #include "llvm/MC/MCCodeView.h" 28 #include "llvm/MC/MCContext.h" 29 #include "llvm/MC/MCDirectives.h" 30 #include "llvm/MC/MCDwarf.h" 31 #include "llvm/MC/MCExpr.h" 32 #include "llvm/MC/MCInstPrinter.h" 33 #include "llvm/MC/MCInstrDesc.h" 34 #include "llvm/MC/MCInstrInfo.h" 35 #include "llvm/MC/MCObjectFileInfo.h" 36 #include "llvm/MC/MCParser/AsmCond.h" 37 #include "llvm/MC/MCParser/AsmLexer.h" 38 #include "llvm/MC/MCParser/MCAsmLexer.h" 39 #include "llvm/MC/MCParser/MCAsmParser.h" 40 #include "llvm/MC/MCParser/MCAsmParserExtension.h" 41 #include "llvm/MC/MCParser/MCAsmParserUtils.h" 42 #include "llvm/MC/MCParser/MCParsedAsmOperand.h" 43 #include "llvm/MC/MCParser/MCTargetAsmParser.h" 44 #include "llvm/MC/MCRegisterInfo.h" 45 #include "llvm/MC/MCSection.h" 46 #include "llvm/MC/MCStreamer.h" 47 #include "llvm/MC/MCSymbol.h" 48 #include "llvm/MC/MCTargetOptions.h" 49 #include "llvm/MC/MCValue.h" 50 #include "llvm/Support/Casting.h" 51 #include "llvm/Support/CommandLine.h" 52 #include "llvm/Support/ErrorHandling.h" 53 #include "llvm/Support/MD5.h" 54 #include "llvm/Support/MathExtras.h" 55 #include "llvm/Support/MemoryBuffer.h" 56 #include "llvm/Support/SMLoc.h" 57 #include "llvm/Support/SourceMgr.h" 58 #include "llvm/Support/raw_ostream.h" 59 #include <algorithm> 60 #include <cassert> 61 #include <cctype> 62 #include <climits> 63 #include <cstddef> 64 #include <cstdint> 65 #include <deque> 66 #include <memory> 67 #include <sstream> 68 #include <string> 69 #include <tuple> 70 #include <utility> 71 #include <vector> 72 73 using namespace llvm; 74 75 MCAsmParserSemaCallback::~MCAsmParserSemaCallback() = default; 76 77 static cl::opt<unsigned> AsmMacroMaxNestingDepth( 78 "asm-macro-max-nesting-depth", cl::init(20), cl::Hidden, 79 cl::desc("The maximum nesting depth allowed for assembly macros.")); 80 81 namespace { 82 83 /// Helper types for tracking macro definitions. 84 typedef std::vector<AsmToken> MCAsmMacroArgument; 85 typedef std::vector<MCAsmMacroArgument> MCAsmMacroArguments; 86 87 /// Helper class for storing information about an active macro 88 /// instantiation. 89 struct MacroInstantiation { 90 /// The location of the instantiation. 91 SMLoc InstantiationLoc; 92 93 /// The buffer where parsing should resume upon instantiation completion. 94 unsigned ExitBuffer; 95 96 /// The location where parsing should resume upon instantiation completion. 97 SMLoc ExitLoc; 98 99 /// The depth of TheCondStack at the start of the instantiation. 100 size_t CondStackDepth; 101 }; 102 103 struct ParseStatementInfo { 104 /// The parsed operands from the last parsed statement. 105 SmallVector<std::unique_ptr<MCParsedAsmOperand>, 8> ParsedOperands; 106 107 /// The opcode from the last parsed instruction. 108 unsigned Opcode = ~0U; 109 110 /// Was there an error parsing the inline assembly? 111 bool ParseError = false; 112 113 SmallVectorImpl<AsmRewrite> *AsmRewrites = nullptr; 114 115 ParseStatementInfo() = delete; 116 ParseStatementInfo(SmallVectorImpl<AsmRewrite> *rewrites) 117 : AsmRewrites(rewrites) {} 118 }; 119 120 /// The concrete assembly parser instance. 121 class AsmParser : public MCAsmParser { 122 private: 123 AsmLexer Lexer; 124 MCContext &Ctx; 125 MCStreamer &Out; 126 const MCAsmInfo &MAI; 127 SourceMgr &SrcMgr; 128 SourceMgr::DiagHandlerTy SavedDiagHandler; 129 void *SavedDiagContext; 130 std::unique_ptr<MCAsmParserExtension> PlatformParser; 131 132 /// This is the current buffer index we're lexing from as managed by the 133 /// SourceMgr object. 134 unsigned CurBuffer; 135 136 AsmCond TheCondState; 137 std::vector<AsmCond> TheCondStack; 138 139 /// maps directive names to handler methods in parser 140 /// extensions. Extensions register themselves in this map by calling 141 /// addDirectiveHandler. 142 StringMap<ExtensionDirectiveHandler> ExtensionDirectiveMap; 143 144 /// Stack of active macro instantiations. 145 std::vector<MacroInstantiation*> ActiveMacros; 146 147 /// List of bodies of anonymous macros. 148 std::deque<MCAsmMacro> MacroLikeBodies; 149 150 /// Boolean tracking whether macro substitution is enabled. 151 unsigned MacrosEnabledFlag : 1; 152 153 /// Keeps track of how many .macro's have been instantiated. 154 unsigned NumOfMacroInstantiations; 155 156 /// The values from the last parsed cpp hash file line comment if any. 157 struct CppHashInfoTy { 158 StringRef Filename; 159 int64_t LineNumber; 160 SMLoc Loc; 161 unsigned Buf; 162 CppHashInfoTy() : Filename(), LineNumber(0), Loc(), Buf(0) {} 163 }; 164 CppHashInfoTy CppHashInfo; 165 166 /// The filename from the first cpp hash file line comment, if any. 167 StringRef FirstCppHashFilename; 168 169 /// List of forward directional labels for diagnosis at the end. 170 SmallVector<std::tuple<SMLoc, CppHashInfoTy, MCSymbol *>, 4> DirLabels; 171 172 /// AssemblerDialect. ~OU means unset value and use value provided by MAI. 173 unsigned AssemblerDialect = ~0U; 174 175 /// is Darwin compatibility enabled? 176 bool IsDarwin = false; 177 178 /// Are we parsing ms-style inline assembly? 179 bool ParsingInlineAsm = false; 180 181 /// Did we already inform the user about inconsistent MD5 usage? 182 bool ReportedInconsistentMD5 = false; 183 184 // Is alt macro mode enabled. 185 bool AltMacroMode = false; 186 187 public: 188 AsmParser(SourceMgr &SM, MCContext &Ctx, MCStreamer &Out, 189 const MCAsmInfo &MAI, unsigned CB); 190 AsmParser(const AsmParser &) = delete; 191 AsmParser &operator=(const AsmParser &) = delete; 192 ~AsmParser() override; 193 194 bool Run(bool NoInitialTextSection, bool NoFinalize = false) override; 195 196 void addDirectiveHandler(StringRef Directive, 197 ExtensionDirectiveHandler Handler) override { 198 ExtensionDirectiveMap[Directive] = Handler; 199 } 200 201 void addAliasForDirective(StringRef Directive, StringRef Alias) override { 202 DirectiveKindMap[Directive] = DirectiveKindMap[Alias]; 203 } 204 205 /// @name MCAsmParser Interface 206 /// { 207 208 SourceMgr &getSourceManager() override { return SrcMgr; } 209 MCAsmLexer &getLexer() override { return Lexer; } 210 MCContext &getContext() override { return Ctx; } 211 MCStreamer &getStreamer() override { return Out; } 212 213 CodeViewContext &getCVContext() { return Ctx.getCVContext(); } 214 215 unsigned getAssemblerDialect() override { 216 if (AssemblerDialect == ~0U) 217 return MAI.getAssemblerDialect(); 218 else 219 return AssemblerDialect; 220 } 221 void setAssemblerDialect(unsigned i) override { 222 AssemblerDialect = i; 223 } 224 225 void Note(SMLoc L, const Twine &Msg, SMRange Range = None) override; 226 bool Warning(SMLoc L, const Twine &Msg, SMRange Range = None) override; 227 bool printError(SMLoc L, const Twine &Msg, SMRange Range = None) override; 228 229 const AsmToken &Lex() override; 230 231 void setParsingInlineAsm(bool V) override { 232 ParsingInlineAsm = V; 233 // When parsing MS inline asm, we must lex 0b1101 and 0ABCH as binary and 234 // hex integer literals. 235 Lexer.setLexMasmIntegers(V); 236 } 237 bool isParsingInlineAsm() override { return ParsingInlineAsm; } 238 239 bool parseMSInlineAsm(void *AsmLoc, std::string &AsmString, 240 unsigned &NumOutputs, unsigned &NumInputs, 241 SmallVectorImpl<std::pair<void *,bool>> &OpDecls, 242 SmallVectorImpl<std::string> &Constraints, 243 SmallVectorImpl<std::string> &Clobbers, 244 const MCInstrInfo *MII, const MCInstPrinter *IP, 245 MCAsmParserSemaCallback &SI) override; 246 247 bool parseExpression(const MCExpr *&Res); 248 bool parseExpression(const MCExpr *&Res, SMLoc &EndLoc) override; 249 bool parsePrimaryExpr(const MCExpr *&Res, SMLoc &EndLoc) override; 250 bool parseParenExpression(const MCExpr *&Res, SMLoc &EndLoc) override; 251 bool parseParenExprOfDepth(unsigned ParenDepth, const MCExpr *&Res, 252 SMLoc &EndLoc) override; 253 bool parseAbsoluteExpression(int64_t &Res) override; 254 255 /// Parse a floating point expression using the float \p Semantics 256 /// and set \p Res to the value. 257 bool parseRealValue(const fltSemantics &Semantics, APInt &Res); 258 259 /// Parse an identifier or string (as a quoted identifier) 260 /// and set \p Res to the identifier contents. 261 bool parseIdentifier(StringRef &Res) override; 262 void eatToEndOfStatement() override; 263 264 bool checkForValidSection() override; 265 266 /// } 267 268 private: 269 bool parseStatement(ParseStatementInfo &Info, 270 MCAsmParserSemaCallback *SI); 271 bool parseCurlyBlockScope(SmallVectorImpl<AsmRewrite>& AsmStrRewrites); 272 bool parseCppHashLineFilenameComment(SMLoc L); 273 274 void checkForBadMacro(SMLoc DirectiveLoc, StringRef Name, StringRef Body, 275 ArrayRef<MCAsmMacroParameter> Parameters); 276 bool expandMacro(raw_svector_ostream &OS, StringRef Body, 277 ArrayRef<MCAsmMacroParameter> Parameters, 278 ArrayRef<MCAsmMacroArgument> A, bool EnableAtPseudoVariable, 279 SMLoc L); 280 281 /// Are macros enabled in the parser? 282 bool areMacrosEnabled() {return MacrosEnabledFlag;} 283 284 /// Control a flag in the parser that enables or disables macros. 285 void setMacrosEnabled(bool Flag) {MacrosEnabledFlag = Flag;} 286 287 /// Are we inside a macro instantiation? 288 bool isInsideMacroInstantiation() {return !ActiveMacros.empty();} 289 290 /// Handle entry to macro instantiation. 291 /// 292 /// \param M The macro. 293 /// \param NameLoc Instantiation location. 294 bool handleMacroEntry(const MCAsmMacro *M, SMLoc NameLoc); 295 296 /// Handle exit from macro instantiation. 297 void handleMacroExit(); 298 299 /// Extract AsmTokens for a macro argument. 300 bool parseMacroArgument(MCAsmMacroArgument &MA, bool Vararg); 301 302 /// Parse all macro arguments for a given macro. 303 bool parseMacroArguments(const MCAsmMacro *M, MCAsmMacroArguments &A); 304 305 void printMacroInstantiations(); 306 void printMessage(SMLoc Loc, SourceMgr::DiagKind Kind, const Twine &Msg, 307 SMRange Range = None) const { 308 ArrayRef<SMRange> Ranges(Range); 309 SrcMgr.PrintMessage(Loc, Kind, Msg, Ranges); 310 } 311 static void DiagHandler(const SMDiagnostic &Diag, void *Context); 312 313 /// Should we emit DWARF describing this assembler source? (Returns false if 314 /// the source has .file directives, which means we don't want to generate 315 /// info describing the assembler source itself.) 316 bool enabledGenDwarfForAssembly(); 317 318 /// Enter the specified file. This returns true on failure. 319 bool enterIncludeFile(const std::string &Filename); 320 321 /// Process the specified file for the .incbin directive. 322 /// This returns true on failure. 323 bool processIncbinFile(const std::string &Filename, int64_t Skip = 0, 324 const MCExpr *Count = nullptr, SMLoc Loc = SMLoc()); 325 326 /// Reset the current lexer position to that given by \p Loc. The 327 /// current token is not set; clients should ensure Lex() is called 328 /// subsequently. 329 /// 330 /// \param InBuffer If not 0, should be the known buffer id that contains the 331 /// location. 332 void jumpToLoc(SMLoc Loc, unsigned InBuffer = 0); 333 334 /// Parse up to the end of statement and a return the contents from the 335 /// current token until the end of the statement; the current token on exit 336 /// will be either the EndOfStatement or EOF. 337 StringRef parseStringToEndOfStatement() override; 338 339 /// Parse until the end of a statement or a comma is encountered, 340 /// return the contents from the current token up to the end or comma. 341 StringRef parseStringToComma(); 342 343 bool parseAssignment(StringRef Name, bool allow_redef, 344 bool NoDeadStrip = false); 345 346 unsigned getBinOpPrecedence(AsmToken::TokenKind K, 347 MCBinaryExpr::Opcode &Kind); 348 349 bool parseBinOpRHS(unsigned Precedence, const MCExpr *&Res, SMLoc &EndLoc); 350 bool parseParenExpr(const MCExpr *&Res, SMLoc &EndLoc); 351 bool parseBracketExpr(const MCExpr *&Res, SMLoc &EndLoc); 352 353 bool parseRegisterOrRegisterNumber(int64_t &Register, SMLoc DirectiveLoc); 354 355 bool parseCVFunctionId(int64_t &FunctionId, StringRef DirectiveName); 356 bool parseCVFileId(int64_t &FileId, StringRef DirectiveName); 357 358 // Generic (target and platform independent) directive parsing. 359 enum DirectiveKind { 360 DK_NO_DIRECTIVE, // Placeholder 361 DK_SET, 362 DK_EQU, 363 DK_EQUIV, 364 DK_ASCII, 365 DK_ASCIZ, 366 DK_STRING, 367 DK_BYTE, 368 DK_SHORT, 369 DK_RELOC, 370 DK_VALUE, 371 DK_2BYTE, 372 DK_LONG, 373 DK_INT, 374 DK_4BYTE, 375 DK_QUAD, 376 DK_8BYTE, 377 DK_OCTA, 378 DK_DC, 379 DK_DC_A, 380 DK_DC_B, 381 DK_DC_D, 382 DK_DC_L, 383 DK_DC_S, 384 DK_DC_W, 385 DK_DC_X, 386 DK_DCB, 387 DK_DCB_B, 388 DK_DCB_D, 389 DK_DCB_L, 390 DK_DCB_S, 391 DK_DCB_W, 392 DK_DCB_X, 393 DK_DS, 394 DK_DS_B, 395 DK_DS_D, 396 DK_DS_L, 397 DK_DS_P, 398 DK_DS_S, 399 DK_DS_W, 400 DK_DS_X, 401 DK_SINGLE, 402 DK_FLOAT, 403 DK_DOUBLE, 404 DK_ALIGN, 405 DK_ALIGN32, 406 DK_BALIGN, 407 DK_BALIGNW, 408 DK_BALIGNL, 409 DK_P2ALIGN, 410 DK_P2ALIGNW, 411 DK_P2ALIGNL, 412 DK_ORG, 413 DK_FILL, 414 DK_ENDR, 415 DK_BUNDLE_ALIGN_MODE, 416 DK_BUNDLE_LOCK, 417 DK_BUNDLE_UNLOCK, 418 DK_ZERO, 419 DK_EXTERN, 420 DK_GLOBL, 421 DK_GLOBAL, 422 DK_LAZY_REFERENCE, 423 DK_NO_DEAD_STRIP, 424 DK_SYMBOL_RESOLVER, 425 DK_PRIVATE_EXTERN, 426 DK_REFERENCE, 427 DK_WEAK_DEFINITION, 428 DK_WEAK_REFERENCE, 429 DK_WEAK_DEF_CAN_BE_HIDDEN, 430 DK_COLD, 431 DK_COMM, 432 DK_COMMON, 433 DK_LCOMM, 434 DK_ABORT, 435 DK_INCLUDE, 436 DK_INCBIN, 437 DK_CODE16, 438 DK_CODE16GCC, 439 DK_REPT, 440 DK_IRP, 441 DK_IRPC, 442 DK_IF, 443 DK_IFEQ, 444 DK_IFGE, 445 DK_IFGT, 446 DK_IFLE, 447 DK_IFLT, 448 DK_IFNE, 449 DK_IFB, 450 DK_IFNB, 451 DK_IFC, 452 DK_IFEQS, 453 DK_IFNC, 454 DK_IFNES, 455 DK_IFDEF, 456 DK_IFNDEF, 457 DK_IFNOTDEF, 458 DK_ELSEIF, 459 DK_ELSE, 460 DK_ENDIF, 461 DK_SPACE, 462 DK_SKIP, 463 DK_FILE, 464 DK_LINE, 465 DK_LOC, 466 DK_STABS, 467 DK_CV_FILE, 468 DK_CV_FUNC_ID, 469 DK_CV_INLINE_SITE_ID, 470 DK_CV_LOC, 471 DK_CV_LINETABLE, 472 DK_CV_INLINE_LINETABLE, 473 DK_CV_DEF_RANGE, 474 DK_CV_STRINGTABLE, 475 DK_CV_STRING, 476 DK_CV_FILECHECKSUMS, 477 DK_CV_FILECHECKSUM_OFFSET, 478 DK_CV_FPO_DATA, 479 DK_CFI_SECTIONS, 480 DK_CFI_STARTPROC, 481 DK_CFI_ENDPROC, 482 DK_CFI_DEF_CFA, 483 DK_CFI_DEF_CFA_OFFSET, 484 DK_CFI_ADJUST_CFA_OFFSET, 485 DK_CFI_DEF_CFA_REGISTER, 486 DK_CFI_OFFSET, 487 DK_CFI_REL_OFFSET, 488 DK_CFI_PERSONALITY, 489 DK_CFI_LSDA, 490 DK_CFI_REMEMBER_STATE, 491 DK_CFI_RESTORE_STATE, 492 DK_CFI_SAME_VALUE, 493 DK_CFI_RESTORE, 494 DK_CFI_ESCAPE, 495 DK_CFI_RETURN_COLUMN, 496 DK_CFI_SIGNAL_FRAME, 497 DK_CFI_UNDEFINED, 498 DK_CFI_REGISTER, 499 DK_CFI_WINDOW_SAVE, 500 DK_CFI_B_KEY_FRAME, 501 DK_MACROS_ON, 502 DK_MACROS_OFF, 503 DK_ALTMACRO, 504 DK_NOALTMACRO, 505 DK_MACRO, 506 DK_EXITM, 507 DK_ENDM, 508 DK_ENDMACRO, 509 DK_PURGEM, 510 DK_SLEB128, 511 DK_ULEB128, 512 DK_ERR, 513 DK_ERROR, 514 DK_WARNING, 515 DK_PRINT, 516 DK_ADDRSIG, 517 DK_ADDRSIG_SYM, 518 DK_END 519 }; 520 521 /// Maps directive name --> DirectiveKind enum, for 522 /// directives parsed by this class. 523 StringMap<DirectiveKind> DirectiveKindMap; 524 525 // Codeview def_range type parsing. 526 enum CVDefRangeType { 527 CVDR_DEFRANGE = 0, // Placeholder 528 CVDR_DEFRANGE_REGISTER, 529 CVDR_DEFRANGE_FRAMEPOINTER_REL, 530 CVDR_DEFRANGE_SUBFIELD_REGISTER, 531 CVDR_DEFRANGE_REGISTER_REL 532 }; 533 534 /// Maps Codeview def_range types --> CVDefRangeType enum, for 535 /// Codeview def_range types parsed by this class. 536 StringMap<CVDefRangeType> CVDefRangeTypeMap; 537 538 // ".ascii", ".asciz", ".string" 539 bool parseDirectiveAscii(StringRef IDVal, bool ZeroTerminated); 540 bool parseDirectiveReloc(SMLoc DirectiveLoc); // ".reloc" 541 bool parseDirectiveValue(StringRef IDVal, 542 unsigned Size); // ".byte", ".long", ... 543 bool parseDirectiveOctaValue(StringRef IDVal); // ".octa", ... 544 bool parseDirectiveRealValue(StringRef IDVal, 545 const fltSemantics &); // ".single", ... 546 bool parseDirectiveFill(); // ".fill" 547 bool parseDirectiveZero(); // ".zero" 548 // ".set", ".equ", ".equiv" 549 bool parseDirectiveSet(StringRef IDVal, bool allow_redef); 550 bool parseDirectiveOrg(); // ".org" 551 // ".align{,32}", ".p2align{,w,l}" 552 bool parseDirectiveAlign(bool IsPow2, unsigned ValueSize); 553 554 // ".file", ".line", ".loc", ".stabs" 555 bool parseDirectiveFile(SMLoc DirectiveLoc); 556 bool parseDirectiveLine(); 557 bool parseDirectiveLoc(); 558 bool parseDirectiveStabs(); 559 560 // ".cv_file", ".cv_func_id", ".cv_inline_site_id", ".cv_loc", ".cv_linetable", 561 // ".cv_inline_linetable", ".cv_def_range", ".cv_string" 562 bool parseDirectiveCVFile(); 563 bool parseDirectiveCVFuncId(); 564 bool parseDirectiveCVInlineSiteId(); 565 bool parseDirectiveCVLoc(); 566 bool parseDirectiveCVLinetable(); 567 bool parseDirectiveCVInlineLinetable(); 568 bool parseDirectiveCVDefRange(); 569 bool parseDirectiveCVString(); 570 bool parseDirectiveCVStringTable(); 571 bool parseDirectiveCVFileChecksums(); 572 bool parseDirectiveCVFileChecksumOffset(); 573 bool parseDirectiveCVFPOData(); 574 575 // .cfi directives 576 bool parseDirectiveCFIRegister(SMLoc DirectiveLoc); 577 bool parseDirectiveCFIWindowSave(); 578 bool parseDirectiveCFISections(); 579 bool parseDirectiveCFIStartProc(); 580 bool parseDirectiveCFIEndProc(); 581 bool parseDirectiveCFIDefCfaOffset(); 582 bool parseDirectiveCFIDefCfa(SMLoc DirectiveLoc); 583 bool parseDirectiveCFIAdjustCfaOffset(); 584 bool parseDirectiveCFIDefCfaRegister(SMLoc DirectiveLoc); 585 bool parseDirectiveCFIOffset(SMLoc DirectiveLoc); 586 bool parseDirectiveCFIRelOffset(SMLoc DirectiveLoc); 587 bool parseDirectiveCFIPersonalityOrLsda(bool IsPersonality); 588 bool parseDirectiveCFIRememberState(); 589 bool parseDirectiveCFIRestoreState(); 590 bool parseDirectiveCFISameValue(SMLoc DirectiveLoc); 591 bool parseDirectiveCFIRestore(SMLoc DirectiveLoc); 592 bool parseDirectiveCFIEscape(); 593 bool parseDirectiveCFIReturnColumn(SMLoc DirectiveLoc); 594 bool parseDirectiveCFISignalFrame(); 595 bool parseDirectiveCFIUndefined(SMLoc DirectiveLoc); 596 597 // macro directives 598 bool parseDirectivePurgeMacro(SMLoc DirectiveLoc); 599 bool parseDirectiveExitMacro(StringRef Directive); 600 bool parseDirectiveEndMacro(StringRef Directive); 601 bool parseDirectiveMacro(SMLoc DirectiveLoc); 602 bool parseDirectiveMacrosOnOff(StringRef Directive); 603 // alternate macro mode directives 604 bool parseDirectiveAltmacro(StringRef Directive); 605 // ".bundle_align_mode" 606 bool parseDirectiveBundleAlignMode(); 607 // ".bundle_lock" 608 bool parseDirectiveBundleLock(); 609 // ".bundle_unlock" 610 bool parseDirectiveBundleUnlock(); 611 612 // ".space", ".skip" 613 bool parseDirectiveSpace(StringRef IDVal); 614 615 // ".dcb" 616 bool parseDirectiveDCB(StringRef IDVal, unsigned Size); 617 bool parseDirectiveRealDCB(StringRef IDVal, const fltSemantics &); 618 // ".ds" 619 bool parseDirectiveDS(StringRef IDVal, unsigned Size); 620 621 // .sleb128 (Signed=true) and .uleb128 (Signed=false) 622 bool parseDirectiveLEB128(bool Signed); 623 624 /// Parse a directive like ".globl" which 625 /// accepts a single symbol (which should be a label or an external). 626 bool parseDirectiveSymbolAttribute(MCSymbolAttr Attr); 627 628 bool parseDirectiveComm(bool IsLocal); // ".comm" and ".lcomm" 629 630 bool parseDirectiveAbort(); // ".abort" 631 bool parseDirectiveInclude(); // ".include" 632 bool parseDirectiveIncbin(); // ".incbin" 633 634 // ".if", ".ifeq", ".ifge", ".ifgt" , ".ifle", ".iflt" or ".ifne" 635 bool parseDirectiveIf(SMLoc DirectiveLoc, DirectiveKind DirKind); 636 // ".ifb" or ".ifnb", depending on ExpectBlank. 637 bool parseDirectiveIfb(SMLoc DirectiveLoc, bool ExpectBlank); 638 // ".ifc" or ".ifnc", depending on ExpectEqual. 639 bool parseDirectiveIfc(SMLoc DirectiveLoc, bool ExpectEqual); 640 // ".ifeqs" or ".ifnes", depending on ExpectEqual. 641 bool parseDirectiveIfeqs(SMLoc DirectiveLoc, bool ExpectEqual); 642 // ".ifdef" or ".ifndef", depending on expect_defined 643 bool parseDirectiveIfdef(SMLoc DirectiveLoc, bool expect_defined); 644 bool parseDirectiveElseIf(SMLoc DirectiveLoc); // ".elseif" 645 bool parseDirectiveElse(SMLoc DirectiveLoc); // ".else" 646 bool parseDirectiveEndIf(SMLoc DirectiveLoc); // .endif 647 bool parseEscapedString(std::string &Data) override; 648 649 const MCExpr *applyModifierToExpr(const MCExpr *E, 650 MCSymbolRefExpr::VariantKind Variant); 651 652 // Macro-like directives 653 MCAsmMacro *parseMacroLikeBody(SMLoc DirectiveLoc); 654 void instantiateMacroLikeBody(MCAsmMacro *M, SMLoc DirectiveLoc, 655 raw_svector_ostream &OS); 656 bool parseDirectiveRept(SMLoc DirectiveLoc, StringRef Directive); 657 bool parseDirectiveIrp(SMLoc DirectiveLoc); // ".irp" 658 bool parseDirectiveIrpc(SMLoc DirectiveLoc); // ".irpc" 659 bool parseDirectiveEndr(SMLoc DirectiveLoc); // ".endr" 660 661 // "_emit" or "__emit" 662 bool parseDirectiveMSEmit(SMLoc DirectiveLoc, ParseStatementInfo &Info, 663 size_t Len); 664 665 // "align" 666 bool parseDirectiveMSAlign(SMLoc DirectiveLoc, ParseStatementInfo &Info); 667 668 // "end" 669 bool parseDirectiveEnd(SMLoc DirectiveLoc); 670 671 // ".err" or ".error" 672 bool parseDirectiveError(SMLoc DirectiveLoc, bool WithMessage); 673 674 // ".warning" 675 bool parseDirectiveWarning(SMLoc DirectiveLoc); 676 677 // .print <double-quotes-string> 678 bool parseDirectivePrint(SMLoc DirectiveLoc); 679 680 // Directives to support address-significance tables. 681 bool parseDirectiveAddrsig(); 682 bool parseDirectiveAddrsigSym(); 683 684 void initializeDirectiveKindMap(); 685 void initializeCVDefRangeTypeMap(); 686 }; 687 688 } // end anonymous namespace 689 690 namespace llvm { 691 692 extern MCAsmParserExtension *createDarwinAsmParser(); 693 extern MCAsmParserExtension *createELFAsmParser(); 694 extern MCAsmParserExtension *createCOFFAsmParser(); 695 extern MCAsmParserExtension *createWasmAsmParser(); 696 697 } // end namespace llvm 698 699 enum { DEFAULT_ADDRSPACE = 0 }; 700 701 AsmParser::AsmParser(SourceMgr &SM, MCContext &Ctx, MCStreamer &Out, 702 const MCAsmInfo &MAI, unsigned CB = 0) 703 : Lexer(MAI), Ctx(Ctx), Out(Out), MAI(MAI), SrcMgr(SM), 704 CurBuffer(CB ? CB : SM.getMainFileID()), MacrosEnabledFlag(true) { 705 HadError = false; 706 // Save the old handler. 707 SavedDiagHandler = SrcMgr.getDiagHandler(); 708 SavedDiagContext = SrcMgr.getDiagContext(); 709 // Set our own handler which calls the saved handler. 710 SrcMgr.setDiagHandler(DiagHandler, this); 711 Lexer.setBuffer(SrcMgr.getMemoryBuffer(CurBuffer)->getBuffer()); 712 713 // Initialize the platform / file format parser. 714 switch (Ctx.getObjectFileInfo()->getObjectFileType()) { 715 case MCObjectFileInfo::IsCOFF: 716 PlatformParser.reset(createCOFFAsmParser()); 717 break; 718 case MCObjectFileInfo::IsMachO: 719 PlatformParser.reset(createDarwinAsmParser()); 720 IsDarwin = true; 721 break; 722 case MCObjectFileInfo::IsELF: 723 PlatformParser.reset(createELFAsmParser()); 724 break; 725 case MCObjectFileInfo::IsWasm: 726 PlatformParser.reset(createWasmAsmParser()); 727 break; 728 case MCObjectFileInfo::IsXCOFF: 729 report_fatal_error( 730 "Need to implement createXCOFFAsmParser for XCOFF format."); 731 break; 732 } 733 734 PlatformParser->Initialize(*this); 735 initializeDirectiveKindMap(); 736 initializeCVDefRangeTypeMap(); 737 738 NumOfMacroInstantiations = 0; 739 } 740 741 AsmParser::~AsmParser() { 742 assert((HadError || ActiveMacros.empty()) && 743 "Unexpected active macro instantiation!"); 744 745 // Restore the saved diagnostics handler and context for use during 746 // finalization. 747 SrcMgr.setDiagHandler(SavedDiagHandler, SavedDiagContext); 748 } 749 750 void AsmParser::printMacroInstantiations() { 751 // Print the active macro instantiation stack. 752 for (std::vector<MacroInstantiation *>::const_reverse_iterator 753 it = ActiveMacros.rbegin(), 754 ie = ActiveMacros.rend(); 755 it != ie; ++it) 756 printMessage((*it)->InstantiationLoc, SourceMgr::DK_Note, 757 "while in macro instantiation"); 758 } 759 760 void AsmParser::Note(SMLoc L, const Twine &Msg, SMRange Range) { 761 printPendingErrors(); 762 printMessage(L, SourceMgr::DK_Note, Msg, Range); 763 printMacroInstantiations(); 764 } 765 766 bool AsmParser::Warning(SMLoc L, const Twine &Msg, SMRange Range) { 767 if(getTargetParser().getTargetOptions().MCNoWarn) 768 return false; 769 if (getTargetParser().getTargetOptions().MCFatalWarnings) 770 return Error(L, Msg, Range); 771 printMessage(L, SourceMgr::DK_Warning, Msg, Range); 772 printMacroInstantiations(); 773 return false; 774 } 775 776 bool AsmParser::printError(SMLoc L, const Twine &Msg, SMRange Range) { 777 HadError = true; 778 printMessage(L, SourceMgr::DK_Error, Msg, Range); 779 printMacroInstantiations(); 780 return true; 781 } 782 783 bool AsmParser::enterIncludeFile(const std::string &Filename) { 784 std::string IncludedFile; 785 unsigned NewBuf = 786 SrcMgr.AddIncludeFile(Filename, Lexer.getLoc(), IncludedFile); 787 if (!NewBuf) 788 return true; 789 790 CurBuffer = NewBuf; 791 Lexer.setBuffer(SrcMgr.getMemoryBuffer(CurBuffer)->getBuffer()); 792 return false; 793 } 794 795 /// Process the specified .incbin file by searching for it in the include paths 796 /// then just emitting the byte contents of the file to the streamer. This 797 /// returns true on failure. 798 bool AsmParser::processIncbinFile(const std::string &Filename, int64_t Skip, 799 const MCExpr *Count, SMLoc Loc) { 800 std::string IncludedFile; 801 unsigned NewBuf = 802 SrcMgr.AddIncludeFile(Filename, Lexer.getLoc(), IncludedFile); 803 if (!NewBuf) 804 return true; 805 806 // Pick up the bytes from the file and emit them. 807 StringRef Bytes = SrcMgr.getMemoryBuffer(NewBuf)->getBuffer(); 808 Bytes = Bytes.drop_front(Skip); 809 if (Count) { 810 int64_t Res; 811 if (!Count->evaluateAsAbsolute(Res, getStreamer().getAssemblerPtr())) 812 return Error(Loc, "expected absolute expression"); 813 if (Res < 0) 814 return Warning(Loc, "negative count has no effect"); 815 Bytes = Bytes.take_front(Res); 816 } 817 getStreamer().EmitBytes(Bytes); 818 return false; 819 } 820 821 void AsmParser::jumpToLoc(SMLoc Loc, unsigned InBuffer) { 822 CurBuffer = InBuffer ? InBuffer : SrcMgr.FindBufferContainingLoc(Loc); 823 Lexer.setBuffer(SrcMgr.getMemoryBuffer(CurBuffer)->getBuffer(), 824 Loc.getPointer()); 825 } 826 827 const AsmToken &AsmParser::Lex() { 828 if (Lexer.getTok().is(AsmToken::Error)) 829 Error(Lexer.getErrLoc(), Lexer.getErr()); 830 831 // if it's a end of statement with a comment in it 832 if (getTok().is(AsmToken::EndOfStatement)) { 833 // if this is a line comment output it. 834 if (!getTok().getString().empty() && getTok().getString().front() != '\n' && 835 getTok().getString().front() != '\r' && MAI.preserveAsmComments()) 836 Out.addExplicitComment(Twine(getTok().getString())); 837 } 838 839 const AsmToken *tok = &Lexer.Lex(); 840 841 // Parse comments here to be deferred until end of next statement. 842 while (tok->is(AsmToken::Comment)) { 843 if (MAI.preserveAsmComments()) 844 Out.addExplicitComment(Twine(tok->getString())); 845 tok = &Lexer.Lex(); 846 } 847 848 if (tok->is(AsmToken::Eof)) { 849 // If this is the end of an included file, pop the parent file off the 850 // include stack. 851 SMLoc ParentIncludeLoc = SrcMgr.getParentIncludeLoc(CurBuffer); 852 if (ParentIncludeLoc != SMLoc()) { 853 jumpToLoc(ParentIncludeLoc); 854 return Lex(); 855 } 856 } 857 858 return *tok; 859 } 860 861 bool AsmParser::enabledGenDwarfForAssembly() { 862 // Check whether the user specified -g. 863 if (!getContext().getGenDwarfForAssembly()) 864 return false; 865 // If we haven't encountered any .file directives (which would imply that 866 // the assembler source was produced with debug info already) then emit one 867 // describing the assembler source file itself. 868 if (getContext().getGenDwarfFileNumber() == 0) { 869 // Use the first #line directive for this, if any. It's preprocessed, so 870 // there is no checksum, and of course no source directive. 871 if (!FirstCppHashFilename.empty()) 872 getContext().setMCLineTableRootFile(/*CUID=*/0, 873 getContext().getCompilationDir(), 874 FirstCppHashFilename, 875 /*Cksum=*/None, /*Source=*/None); 876 const MCDwarfFile &RootFile = 877 getContext().getMCDwarfLineTable(/*CUID=*/0).getRootFile(); 878 getContext().setGenDwarfFileNumber(getStreamer().EmitDwarfFileDirective( 879 /*CUID=*/0, getContext().getCompilationDir(), RootFile.Name, 880 RootFile.Checksum, RootFile.Source)); 881 } 882 return true; 883 } 884 885 bool AsmParser::Run(bool NoInitialTextSection, bool NoFinalize) { 886 // Create the initial section, if requested. 887 if (!NoInitialTextSection) 888 Out.InitSections(false); 889 890 // Prime the lexer. 891 Lex(); 892 893 HadError = false; 894 AsmCond StartingCondState = TheCondState; 895 SmallVector<AsmRewrite, 4> AsmStrRewrites; 896 897 // If we are generating dwarf for assembly source files save the initial text 898 // section. (Don't use enabledGenDwarfForAssembly() here, as we aren't 899 // emitting any actual debug info yet and haven't had a chance to parse any 900 // embedded .file directives.) 901 if (getContext().getGenDwarfForAssembly()) { 902 MCSection *Sec = getStreamer().getCurrentSectionOnly(); 903 if (!Sec->getBeginSymbol()) { 904 MCSymbol *SectionStartSym = getContext().createTempSymbol(); 905 getStreamer().EmitLabel(SectionStartSym); 906 Sec->setBeginSymbol(SectionStartSym); 907 } 908 bool InsertResult = getContext().addGenDwarfSection(Sec); 909 assert(InsertResult && ".text section should not have debug info yet"); 910 (void)InsertResult; 911 } 912 913 // While we have input, parse each statement. 914 while (Lexer.isNot(AsmToken::Eof)) { 915 ParseStatementInfo Info(&AsmStrRewrites); 916 bool Parsed = parseStatement(Info, nullptr); 917 918 // If we have a Lexer Error we are on an Error Token. Load in Lexer Error 919 // for printing ErrMsg via Lex() only if no (presumably better) parser error 920 // exists. 921 if (Parsed && !hasPendingError() && Lexer.getTok().is(AsmToken::Error)) { 922 Lex(); 923 } 924 925 // parseStatement returned true so may need to emit an error. 926 printPendingErrors(); 927 928 // Skipping to the next line if needed. 929 if (Parsed && !getLexer().isAtStartOfStatement()) 930 eatToEndOfStatement(); 931 } 932 933 getTargetParser().onEndOfFile(); 934 printPendingErrors(); 935 936 // All errors should have been emitted. 937 assert(!hasPendingError() && "unexpected error from parseStatement"); 938 939 getTargetParser().flushPendingInstructions(getStreamer()); 940 941 if (TheCondState.TheCond != StartingCondState.TheCond || 942 TheCondState.Ignore != StartingCondState.Ignore) 943 printError(getTok().getLoc(), "unmatched .ifs or .elses"); 944 // Check to see there are no empty DwarfFile slots. 945 const auto &LineTables = getContext().getMCDwarfLineTables(); 946 if (!LineTables.empty()) { 947 unsigned Index = 0; 948 for (const auto &File : LineTables.begin()->second.getMCDwarfFiles()) { 949 if (File.Name.empty() && Index != 0) 950 printError(getTok().getLoc(), "unassigned file number: " + 951 Twine(Index) + 952 " for .file directives"); 953 ++Index; 954 } 955 } 956 957 // Check to see that all assembler local symbols were actually defined. 958 // Targets that don't do subsections via symbols may not want this, though, 959 // so conservatively exclude them. Only do this if we're finalizing, though, 960 // as otherwise we won't necessarilly have seen everything yet. 961 if (!NoFinalize) { 962 if (MAI.hasSubsectionsViaSymbols()) { 963 for (const auto &TableEntry : getContext().getSymbols()) { 964 MCSymbol *Sym = TableEntry.getValue(); 965 // Variable symbols may not be marked as defined, so check those 966 // explicitly. If we know it's a variable, we have a definition for 967 // the purposes of this check. 968 if (Sym->isTemporary() && !Sym->isVariable() && !Sym->isDefined()) 969 // FIXME: We would really like to refer back to where the symbol was 970 // first referenced for a source location. We need to add something 971 // to track that. Currently, we just point to the end of the file. 972 printError(getTok().getLoc(), "assembler local symbol '" + 973 Sym->getName() + "' not defined"); 974 } 975 } 976 977 // Temporary symbols like the ones for directional jumps don't go in the 978 // symbol table. They also need to be diagnosed in all (final) cases. 979 for (std::tuple<SMLoc, CppHashInfoTy, MCSymbol *> &LocSym : DirLabels) { 980 if (std::get<2>(LocSym)->isUndefined()) { 981 // Reset the state of any "# line file" directives we've seen to the 982 // context as it was at the diagnostic site. 983 CppHashInfo = std::get<1>(LocSym); 984 printError(std::get<0>(LocSym), "directional label undefined"); 985 } 986 } 987 } 988 989 // Finalize the output stream if there are no errors and if the client wants 990 // us to. 991 if (!HadError && !NoFinalize) 992 Out.Finish(); 993 994 return HadError || getContext().hadError(); 995 } 996 997 bool AsmParser::checkForValidSection() { 998 if (!ParsingInlineAsm && !getStreamer().getCurrentSectionOnly()) { 999 Out.InitSections(false); 1000 return Error(getTok().getLoc(), 1001 "expected section directive before assembly directive"); 1002 } 1003 return false; 1004 } 1005 1006 /// Throw away the rest of the line for testing purposes. 1007 void AsmParser::eatToEndOfStatement() { 1008 while (Lexer.isNot(AsmToken::EndOfStatement) && Lexer.isNot(AsmToken::Eof)) 1009 Lexer.Lex(); 1010 1011 // Eat EOL. 1012 if (Lexer.is(AsmToken::EndOfStatement)) 1013 Lexer.Lex(); 1014 } 1015 1016 StringRef AsmParser::parseStringToEndOfStatement() { 1017 const char *Start = getTok().getLoc().getPointer(); 1018 1019 while (Lexer.isNot(AsmToken::EndOfStatement) && Lexer.isNot(AsmToken::Eof)) 1020 Lexer.Lex(); 1021 1022 const char *End = getTok().getLoc().getPointer(); 1023 return StringRef(Start, End - Start); 1024 } 1025 1026 StringRef AsmParser::parseStringToComma() { 1027 const char *Start = getTok().getLoc().getPointer(); 1028 1029 while (Lexer.isNot(AsmToken::EndOfStatement) && 1030 Lexer.isNot(AsmToken::Comma) && Lexer.isNot(AsmToken::Eof)) 1031 Lexer.Lex(); 1032 1033 const char *End = getTok().getLoc().getPointer(); 1034 return StringRef(Start, End - Start); 1035 } 1036 1037 /// Parse a paren expression and return it. 1038 /// NOTE: This assumes the leading '(' has already been consumed. 1039 /// 1040 /// parenexpr ::= expr) 1041 /// 1042 bool AsmParser::parseParenExpr(const MCExpr *&Res, SMLoc &EndLoc) { 1043 if (parseExpression(Res)) 1044 return true; 1045 if (Lexer.isNot(AsmToken::RParen)) 1046 return TokError("expected ')' in parentheses expression"); 1047 EndLoc = Lexer.getTok().getEndLoc(); 1048 Lex(); 1049 return false; 1050 } 1051 1052 /// Parse a bracket expression and return it. 1053 /// NOTE: This assumes the leading '[' has already been consumed. 1054 /// 1055 /// bracketexpr ::= expr] 1056 /// 1057 bool AsmParser::parseBracketExpr(const MCExpr *&Res, SMLoc &EndLoc) { 1058 if (parseExpression(Res)) 1059 return true; 1060 EndLoc = getTok().getEndLoc(); 1061 if (parseToken(AsmToken::RBrac, "expected ']' in brackets expression")) 1062 return true; 1063 return false; 1064 } 1065 1066 /// Parse a primary expression and return it. 1067 /// primaryexpr ::= (parenexpr 1068 /// primaryexpr ::= symbol 1069 /// primaryexpr ::= number 1070 /// primaryexpr ::= '.' 1071 /// primaryexpr ::= ~,+,- primaryexpr 1072 bool AsmParser::parsePrimaryExpr(const MCExpr *&Res, SMLoc &EndLoc) { 1073 SMLoc FirstTokenLoc = getLexer().getLoc(); 1074 AsmToken::TokenKind FirstTokenKind = Lexer.getKind(); 1075 switch (FirstTokenKind) { 1076 default: 1077 return TokError("unknown token in expression"); 1078 // If we have an error assume that we've already handled it. 1079 case AsmToken::Error: 1080 return true; 1081 case AsmToken::Exclaim: 1082 Lex(); // Eat the operator. 1083 if (parsePrimaryExpr(Res, EndLoc)) 1084 return true; 1085 Res = MCUnaryExpr::createLNot(Res, getContext(), FirstTokenLoc); 1086 return false; 1087 case AsmToken::Dollar: 1088 case AsmToken::At: 1089 case AsmToken::String: 1090 case AsmToken::Identifier: { 1091 StringRef Identifier; 1092 if (parseIdentifier(Identifier)) { 1093 // We may have failed but $ may be a valid token. 1094 if (getTok().is(AsmToken::Dollar)) { 1095 if (Lexer.getMAI().getDollarIsPC()) { 1096 Lex(); 1097 // This is a '$' reference, which references the current PC. Emit a 1098 // temporary label to the streamer and refer to it. 1099 MCSymbol *Sym = Ctx.createTempSymbol(); 1100 Out.EmitLabel(Sym); 1101 Res = MCSymbolRefExpr::create(Sym, MCSymbolRefExpr::VK_None, 1102 getContext()); 1103 EndLoc = FirstTokenLoc; 1104 return false; 1105 } 1106 return Error(FirstTokenLoc, "invalid token in expression"); 1107 } 1108 } 1109 // Parse symbol variant 1110 std::pair<StringRef, StringRef> Split; 1111 if (!MAI.useParensForSymbolVariant()) { 1112 if (FirstTokenKind == AsmToken::String) { 1113 if (Lexer.is(AsmToken::At)) { 1114 Lex(); // eat @ 1115 SMLoc AtLoc = getLexer().getLoc(); 1116 StringRef VName; 1117 if (parseIdentifier(VName)) 1118 return Error(AtLoc, "expected symbol variant after '@'"); 1119 1120 Split = std::make_pair(Identifier, VName); 1121 } 1122 } else { 1123 Split = Identifier.split('@'); 1124 } 1125 } else if (Lexer.is(AsmToken::LParen)) { 1126 Lex(); // eat '('. 1127 StringRef VName; 1128 parseIdentifier(VName); 1129 // eat ')'. 1130 if (parseToken(AsmToken::RParen, 1131 "unexpected token in variant, expected ')'")) 1132 return true; 1133 Split = std::make_pair(Identifier, VName); 1134 } 1135 1136 EndLoc = SMLoc::getFromPointer(Identifier.end()); 1137 1138 // This is a symbol reference. 1139 StringRef SymbolName = Identifier; 1140 if (SymbolName.empty()) 1141 return Error(getLexer().getLoc(), "expected a symbol reference"); 1142 1143 MCSymbolRefExpr::VariantKind Variant = MCSymbolRefExpr::VK_None; 1144 1145 // Lookup the symbol variant if used. 1146 if (!Split.second.empty()) { 1147 Variant = MCSymbolRefExpr::getVariantKindForName(Split.second); 1148 if (Variant != MCSymbolRefExpr::VK_Invalid) { 1149 SymbolName = Split.first; 1150 } else if (MAI.doesAllowAtInName() && !MAI.useParensForSymbolVariant()) { 1151 Variant = MCSymbolRefExpr::VK_None; 1152 } else { 1153 return Error(SMLoc::getFromPointer(Split.second.begin()), 1154 "invalid variant '" + Split.second + "'"); 1155 } 1156 } 1157 1158 MCSymbol *Sym = getContext().getInlineAsmLabel(SymbolName); 1159 if (!Sym) 1160 Sym = getContext().getOrCreateSymbol(SymbolName); 1161 1162 // If this is an absolute variable reference, substitute it now to preserve 1163 // semantics in the face of reassignment. 1164 if (Sym->isVariable()) { 1165 auto V = Sym->getVariableValue(/*SetUsed*/ false); 1166 bool DoInline = isa<MCConstantExpr>(V) && !Variant; 1167 if (auto TV = dyn_cast<MCTargetExpr>(V)) 1168 DoInline = TV->inlineAssignedExpr(); 1169 if (DoInline) { 1170 if (Variant) 1171 return Error(EndLoc, "unexpected modifier on variable reference"); 1172 Res = Sym->getVariableValue(/*SetUsed*/ false); 1173 return false; 1174 } 1175 } 1176 1177 // Otherwise create a symbol ref. 1178 Res = MCSymbolRefExpr::create(Sym, Variant, getContext(), FirstTokenLoc); 1179 return false; 1180 } 1181 case AsmToken::BigNum: 1182 return TokError("literal value out of range for directive"); 1183 case AsmToken::Integer: { 1184 SMLoc Loc = getTok().getLoc(); 1185 int64_t IntVal = getTok().getIntVal(); 1186 Res = MCConstantExpr::create(IntVal, getContext()); 1187 EndLoc = Lexer.getTok().getEndLoc(); 1188 Lex(); // Eat token. 1189 // Look for 'b' or 'f' following an Integer as a directional label 1190 if (Lexer.getKind() == AsmToken::Identifier) { 1191 StringRef IDVal = getTok().getString(); 1192 // Lookup the symbol variant if used. 1193 std::pair<StringRef, StringRef> Split = IDVal.split('@'); 1194 MCSymbolRefExpr::VariantKind Variant = MCSymbolRefExpr::VK_None; 1195 if (Split.first.size() != IDVal.size()) { 1196 Variant = MCSymbolRefExpr::getVariantKindForName(Split.second); 1197 if (Variant == MCSymbolRefExpr::VK_Invalid) 1198 return TokError("invalid variant '" + Split.second + "'"); 1199 IDVal = Split.first; 1200 } 1201 if (IDVal == "f" || IDVal == "b") { 1202 MCSymbol *Sym = 1203 Ctx.getDirectionalLocalSymbol(IntVal, IDVal == "b"); 1204 Res = MCSymbolRefExpr::create(Sym, Variant, getContext()); 1205 if (IDVal == "b" && Sym->isUndefined()) 1206 return Error(Loc, "directional label undefined"); 1207 DirLabels.push_back(std::make_tuple(Loc, CppHashInfo, Sym)); 1208 EndLoc = Lexer.getTok().getEndLoc(); 1209 Lex(); // Eat identifier. 1210 } 1211 } 1212 return false; 1213 } 1214 case AsmToken::Real: { 1215 APFloat RealVal(APFloat::IEEEdouble(), getTok().getString()); 1216 uint64_t IntVal = RealVal.bitcastToAPInt().getZExtValue(); 1217 Res = MCConstantExpr::create(IntVal, getContext()); 1218 EndLoc = Lexer.getTok().getEndLoc(); 1219 Lex(); // Eat token. 1220 return false; 1221 } 1222 case AsmToken::Dot: { 1223 // This is a '.' reference, which references the current PC. Emit a 1224 // temporary label to the streamer and refer to it. 1225 MCSymbol *Sym = Ctx.createTempSymbol(); 1226 Out.EmitLabel(Sym); 1227 Res = MCSymbolRefExpr::create(Sym, MCSymbolRefExpr::VK_None, getContext()); 1228 EndLoc = Lexer.getTok().getEndLoc(); 1229 Lex(); // Eat identifier. 1230 return false; 1231 } 1232 case AsmToken::LParen: 1233 Lex(); // Eat the '('. 1234 return parseParenExpr(Res, EndLoc); 1235 case AsmToken::LBrac: 1236 if (!PlatformParser->HasBracketExpressions()) 1237 return TokError("brackets expression not supported on this target"); 1238 Lex(); // Eat the '['. 1239 return parseBracketExpr(Res, EndLoc); 1240 case AsmToken::Minus: 1241 Lex(); // Eat the operator. 1242 if (parsePrimaryExpr(Res, EndLoc)) 1243 return true; 1244 Res = MCUnaryExpr::createMinus(Res, getContext(), FirstTokenLoc); 1245 return false; 1246 case AsmToken::Plus: 1247 Lex(); // Eat the operator. 1248 if (parsePrimaryExpr(Res, EndLoc)) 1249 return true; 1250 Res = MCUnaryExpr::createPlus(Res, getContext(), FirstTokenLoc); 1251 return false; 1252 case AsmToken::Tilde: 1253 Lex(); // Eat the operator. 1254 if (parsePrimaryExpr(Res, EndLoc)) 1255 return true; 1256 Res = MCUnaryExpr::createNot(Res, getContext(), FirstTokenLoc); 1257 return false; 1258 // MIPS unary expression operators. The lexer won't generate these tokens if 1259 // MCAsmInfo::HasMipsExpressions is false for the target. 1260 case AsmToken::PercentCall16: 1261 case AsmToken::PercentCall_Hi: 1262 case AsmToken::PercentCall_Lo: 1263 case AsmToken::PercentDtprel_Hi: 1264 case AsmToken::PercentDtprel_Lo: 1265 case AsmToken::PercentGot: 1266 case AsmToken::PercentGot_Disp: 1267 case AsmToken::PercentGot_Hi: 1268 case AsmToken::PercentGot_Lo: 1269 case AsmToken::PercentGot_Ofst: 1270 case AsmToken::PercentGot_Page: 1271 case AsmToken::PercentGottprel: 1272 case AsmToken::PercentGp_Rel: 1273 case AsmToken::PercentHi: 1274 case AsmToken::PercentHigher: 1275 case AsmToken::PercentHighest: 1276 case AsmToken::PercentLo: 1277 case AsmToken::PercentNeg: 1278 case AsmToken::PercentPcrel_Hi: 1279 case AsmToken::PercentPcrel_Lo: 1280 case AsmToken::PercentTlsgd: 1281 case AsmToken::PercentTlsldm: 1282 case AsmToken::PercentTprel_Hi: 1283 case AsmToken::PercentTprel_Lo: 1284 Lex(); // Eat the operator. 1285 if (Lexer.isNot(AsmToken::LParen)) 1286 return TokError("expected '(' after operator"); 1287 Lex(); // Eat the operator. 1288 if (parseExpression(Res, EndLoc)) 1289 return true; 1290 if (Lexer.isNot(AsmToken::RParen)) 1291 return TokError("expected ')'"); 1292 Lex(); // Eat the operator. 1293 Res = getTargetParser().createTargetUnaryExpr(Res, FirstTokenKind, Ctx); 1294 return !Res; 1295 } 1296 } 1297 1298 bool AsmParser::parseExpression(const MCExpr *&Res) { 1299 SMLoc EndLoc; 1300 return parseExpression(Res, EndLoc); 1301 } 1302 1303 const MCExpr * 1304 AsmParser::applyModifierToExpr(const MCExpr *E, 1305 MCSymbolRefExpr::VariantKind Variant) { 1306 // Ask the target implementation about this expression first. 1307 const MCExpr *NewE = getTargetParser().applyModifierToExpr(E, Variant, Ctx); 1308 if (NewE) 1309 return NewE; 1310 // Recurse over the given expression, rebuilding it to apply the given variant 1311 // if there is exactly one symbol. 1312 switch (E->getKind()) { 1313 case MCExpr::Target: 1314 case MCExpr::Constant: 1315 return nullptr; 1316 1317 case MCExpr::SymbolRef: { 1318 const MCSymbolRefExpr *SRE = cast<MCSymbolRefExpr>(E); 1319 1320 if (SRE->getKind() != MCSymbolRefExpr::VK_None) { 1321 TokError("invalid variant on expression '" + getTok().getIdentifier() + 1322 "' (already modified)"); 1323 return E; 1324 } 1325 1326 return MCSymbolRefExpr::create(&SRE->getSymbol(), Variant, getContext()); 1327 } 1328 1329 case MCExpr::Unary: { 1330 const MCUnaryExpr *UE = cast<MCUnaryExpr>(E); 1331 const MCExpr *Sub = applyModifierToExpr(UE->getSubExpr(), Variant); 1332 if (!Sub) 1333 return nullptr; 1334 return MCUnaryExpr::create(UE->getOpcode(), Sub, getContext()); 1335 } 1336 1337 case MCExpr::Binary: { 1338 const MCBinaryExpr *BE = cast<MCBinaryExpr>(E); 1339 const MCExpr *LHS = applyModifierToExpr(BE->getLHS(), Variant); 1340 const MCExpr *RHS = applyModifierToExpr(BE->getRHS(), Variant); 1341 1342 if (!LHS && !RHS) 1343 return nullptr; 1344 1345 if (!LHS) 1346 LHS = BE->getLHS(); 1347 if (!RHS) 1348 RHS = BE->getRHS(); 1349 1350 return MCBinaryExpr::create(BE->getOpcode(), LHS, RHS, getContext()); 1351 } 1352 } 1353 1354 llvm_unreachable("Invalid expression kind!"); 1355 } 1356 1357 /// This function checks if the next token is <string> type or arithmetic. 1358 /// string that begin with character '<' must end with character '>'. 1359 /// otherwise it is arithmetics. 1360 /// If the function returns a 'true' value, 1361 /// the End argument will be filled with the last location pointed to the '>' 1362 /// character. 1363 1364 /// There is a gap between the AltMacro's documentation and the single quote 1365 /// implementation. GCC does not fully support this feature and so we will not 1366 /// support it. 1367 /// TODO: Adding single quote as a string. 1368 static bool isAltmacroString(SMLoc &StrLoc, SMLoc &EndLoc) { 1369 assert((StrLoc.getPointer() != nullptr) && 1370 "Argument to the function cannot be a NULL value"); 1371 const char *CharPtr = StrLoc.getPointer(); 1372 while ((*CharPtr != '>') && (*CharPtr != '\n') && (*CharPtr != '\r') && 1373 (*CharPtr != '\0')) { 1374 if (*CharPtr == '!') 1375 CharPtr++; 1376 CharPtr++; 1377 } 1378 if (*CharPtr == '>') { 1379 EndLoc = StrLoc.getFromPointer(CharPtr + 1); 1380 return true; 1381 } 1382 return false; 1383 } 1384 1385 /// creating a string without the escape characters '!'. 1386 static std::string altMacroString(StringRef AltMacroStr) { 1387 std::string Res; 1388 for (size_t Pos = 0; Pos < AltMacroStr.size(); Pos++) { 1389 if (AltMacroStr[Pos] == '!') 1390 Pos++; 1391 Res += AltMacroStr[Pos]; 1392 } 1393 return Res; 1394 } 1395 1396 /// Parse an expression and return it. 1397 /// 1398 /// expr ::= expr &&,|| expr -> lowest. 1399 /// expr ::= expr |,^,&,! expr 1400 /// expr ::= expr ==,!=,<>,<,<=,>,>= expr 1401 /// expr ::= expr <<,>> expr 1402 /// expr ::= expr +,- expr 1403 /// expr ::= expr *,/,% expr -> highest. 1404 /// expr ::= primaryexpr 1405 /// 1406 bool AsmParser::parseExpression(const MCExpr *&Res, SMLoc &EndLoc) { 1407 // Parse the expression. 1408 Res = nullptr; 1409 if (getTargetParser().parsePrimaryExpr(Res, EndLoc) || 1410 parseBinOpRHS(1, Res, EndLoc)) 1411 return true; 1412 1413 // As a special case, we support 'a op b @ modifier' by rewriting the 1414 // expression to include the modifier. This is inefficient, but in general we 1415 // expect users to use 'a@modifier op b'. 1416 if (Lexer.getKind() == AsmToken::At) { 1417 Lex(); 1418 1419 if (Lexer.isNot(AsmToken::Identifier)) 1420 return TokError("unexpected symbol modifier following '@'"); 1421 1422 MCSymbolRefExpr::VariantKind Variant = 1423 MCSymbolRefExpr::getVariantKindForName(getTok().getIdentifier()); 1424 if (Variant == MCSymbolRefExpr::VK_Invalid) 1425 return TokError("invalid variant '" + getTok().getIdentifier() + "'"); 1426 1427 const MCExpr *ModifiedRes = applyModifierToExpr(Res, Variant); 1428 if (!ModifiedRes) { 1429 return TokError("invalid modifier '" + getTok().getIdentifier() + 1430 "' (no symbols present)"); 1431 } 1432 1433 Res = ModifiedRes; 1434 Lex(); 1435 } 1436 1437 // Try to constant fold it up front, if possible. Do not exploit 1438 // assembler here. 1439 int64_t Value; 1440 if (Res->evaluateAsAbsolute(Value)) 1441 Res = MCConstantExpr::create(Value, getContext()); 1442 1443 return false; 1444 } 1445 1446 bool AsmParser::parseParenExpression(const MCExpr *&Res, SMLoc &EndLoc) { 1447 Res = nullptr; 1448 return parseParenExpr(Res, EndLoc) || parseBinOpRHS(1, Res, EndLoc); 1449 } 1450 1451 bool AsmParser::parseParenExprOfDepth(unsigned ParenDepth, const MCExpr *&Res, 1452 SMLoc &EndLoc) { 1453 if (parseParenExpr(Res, EndLoc)) 1454 return true; 1455 1456 for (; ParenDepth > 0; --ParenDepth) { 1457 if (parseBinOpRHS(1, Res, EndLoc)) 1458 return true; 1459 1460 // We don't Lex() the last RParen. 1461 // This is the same behavior as parseParenExpression(). 1462 if (ParenDepth - 1 > 0) { 1463 EndLoc = getTok().getEndLoc(); 1464 if (parseToken(AsmToken::RParen, 1465 "expected ')' in parentheses expression")) 1466 return true; 1467 } 1468 } 1469 return false; 1470 } 1471 1472 bool AsmParser::parseAbsoluteExpression(int64_t &Res) { 1473 const MCExpr *Expr; 1474 1475 SMLoc StartLoc = Lexer.getLoc(); 1476 if (parseExpression(Expr)) 1477 return true; 1478 1479 if (!Expr->evaluateAsAbsolute(Res, getStreamer().getAssemblerPtr())) 1480 return Error(StartLoc, "expected absolute expression"); 1481 1482 return false; 1483 } 1484 1485 static unsigned getDarwinBinOpPrecedence(AsmToken::TokenKind K, 1486 MCBinaryExpr::Opcode &Kind, 1487 bool ShouldUseLogicalShr) { 1488 switch (K) { 1489 default: 1490 return 0; // not a binop. 1491 1492 // Lowest Precedence: &&, || 1493 case AsmToken::AmpAmp: 1494 Kind = MCBinaryExpr::LAnd; 1495 return 1; 1496 case AsmToken::PipePipe: 1497 Kind = MCBinaryExpr::LOr; 1498 return 1; 1499 1500 // Low Precedence: |, &, ^ 1501 // 1502 // FIXME: gas seems to support '!' as an infix operator? 1503 case AsmToken::Pipe: 1504 Kind = MCBinaryExpr::Or; 1505 return 2; 1506 case AsmToken::Caret: 1507 Kind = MCBinaryExpr::Xor; 1508 return 2; 1509 case AsmToken::Amp: 1510 Kind = MCBinaryExpr::And; 1511 return 2; 1512 1513 // Low Intermediate Precedence: ==, !=, <>, <, <=, >, >= 1514 case AsmToken::EqualEqual: 1515 Kind = MCBinaryExpr::EQ; 1516 return 3; 1517 case AsmToken::ExclaimEqual: 1518 case AsmToken::LessGreater: 1519 Kind = MCBinaryExpr::NE; 1520 return 3; 1521 case AsmToken::Less: 1522 Kind = MCBinaryExpr::LT; 1523 return 3; 1524 case AsmToken::LessEqual: 1525 Kind = MCBinaryExpr::LTE; 1526 return 3; 1527 case AsmToken::Greater: 1528 Kind = MCBinaryExpr::GT; 1529 return 3; 1530 case AsmToken::GreaterEqual: 1531 Kind = MCBinaryExpr::GTE; 1532 return 3; 1533 1534 // Intermediate Precedence: <<, >> 1535 case AsmToken::LessLess: 1536 Kind = MCBinaryExpr::Shl; 1537 return 4; 1538 case AsmToken::GreaterGreater: 1539 Kind = ShouldUseLogicalShr ? MCBinaryExpr::LShr : MCBinaryExpr::AShr; 1540 return 4; 1541 1542 // High Intermediate Precedence: +, - 1543 case AsmToken::Plus: 1544 Kind = MCBinaryExpr::Add; 1545 return 5; 1546 case AsmToken::Minus: 1547 Kind = MCBinaryExpr::Sub; 1548 return 5; 1549 1550 // Highest Precedence: *, /, % 1551 case AsmToken::Star: 1552 Kind = MCBinaryExpr::Mul; 1553 return 6; 1554 case AsmToken::Slash: 1555 Kind = MCBinaryExpr::Div; 1556 return 6; 1557 case AsmToken::Percent: 1558 Kind = MCBinaryExpr::Mod; 1559 return 6; 1560 } 1561 } 1562 1563 static unsigned getGNUBinOpPrecedence(AsmToken::TokenKind K, 1564 MCBinaryExpr::Opcode &Kind, 1565 bool ShouldUseLogicalShr) { 1566 switch (K) { 1567 default: 1568 return 0; // not a binop. 1569 1570 // Lowest Precedence: &&, || 1571 case AsmToken::AmpAmp: 1572 Kind = MCBinaryExpr::LAnd; 1573 return 2; 1574 case AsmToken::PipePipe: 1575 Kind = MCBinaryExpr::LOr; 1576 return 1; 1577 1578 // Low Precedence: ==, !=, <>, <, <=, >, >= 1579 case AsmToken::EqualEqual: 1580 Kind = MCBinaryExpr::EQ; 1581 return 3; 1582 case AsmToken::ExclaimEqual: 1583 case AsmToken::LessGreater: 1584 Kind = MCBinaryExpr::NE; 1585 return 3; 1586 case AsmToken::Less: 1587 Kind = MCBinaryExpr::LT; 1588 return 3; 1589 case AsmToken::LessEqual: 1590 Kind = MCBinaryExpr::LTE; 1591 return 3; 1592 case AsmToken::Greater: 1593 Kind = MCBinaryExpr::GT; 1594 return 3; 1595 case AsmToken::GreaterEqual: 1596 Kind = MCBinaryExpr::GTE; 1597 return 3; 1598 1599 // Low Intermediate Precedence: +, - 1600 case AsmToken::Plus: 1601 Kind = MCBinaryExpr::Add; 1602 return 4; 1603 case AsmToken::Minus: 1604 Kind = MCBinaryExpr::Sub; 1605 return 4; 1606 1607 // High Intermediate Precedence: |, &, ^ 1608 // 1609 // FIXME: gas seems to support '!' as an infix operator? 1610 case AsmToken::Pipe: 1611 Kind = MCBinaryExpr::Or; 1612 return 5; 1613 case AsmToken::Caret: 1614 Kind = MCBinaryExpr::Xor; 1615 return 5; 1616 case AsmToken::Amp: 1617 Kind = MCBinaryExpr::And; 1618 return 5; 1619 1620 // Highest Precedence: *, /, %, <<, >> 1621 case AsmToken::Star: 1622 Kind = MCBinaryExpr::Mul; 1623 return 6; 1624 case AsmToken::Slash: 1625 Kind = MCBinaryExpr::Div; 1626 return 6; 1627 case AsmToken::Percent: 1628 Kind = MCBinaryExpr::Mod; 1629 return 6; 1630 case AsmToken::LessLess: 1631 Kind = MCBinaryExpr::Shl; 1632 return 6; 1633 case AsmToken::GreaterGreater: 1634 Kind = ShouldUseLogicalShr ? MCBinaryExpr::LShr : MCBinaryExpr::AShr; 1635 return 6; 1636 } 1637 } 1638 1639 unsigned AsmParser::getBinOpPrecedence(AsmToken::TokenKind K, 1640 MCBinaryExpr::Opcode &Kind) { 1641 bool ShouldUseLogicalShr = MAI.shouldUseLogicalShr(); 1642 return IsDarwin ? getDarwinBinOpPrecedence(K, Kind, ShouldUseLogicalShr) 1643 : getGNUBinOpPrecedence(K, Kind, ShouldUseLogicalShr); 1644 } 1645 1646 /// Parse all binary operators with precedence >= 'Precedence'. 1647 /// Res contains the LHS of the expression on input. 1648 bool AsmParser::parseBinOpRHS(unsigned Precedence, const MCExpr *&Res, 1649 SMLoc &EndLoc) { 1650 SMLoc StartLoc = Lexer.getLoc(); 1651 while (true) { 1652 MCBinaryExpr::Opcode Kind = MCBinaryExpr::Add; 1653 unsigned TokPrec = getBinOpPrecedence(Lexer.getKind(), Kind); 1654 1655 // If the next token is lower precedence than we are allowed to eat, return 1656 // successfully with what we ate already. 1657 if (TokPrec < Precedence) 1658 return false; 1659 1660 Lex(); 1661 1662 // Eat the next primary expression. 1663 const MCExpr *RHS; 1664 if (getTargetParser().parsePrimaryExpr(RHS, EndLoc)) 1665 return true; 1666 1667 // If BinOp binds less tightly with RHS than the operator after RHS, let 1668 // the pending operator take RHS as its LHS. 1669 MCBinaryExpr::Opcode Dummy; 1670 unsigned NextTokPrec = getBinOpPrecedence(Lexer.getKind(), Dummy); 1671 if (TokPrec < NextTokPrec && parseBinOpRHS(TokPrec + 1, RHS, EndLoc)) 1672 return true; 1673 1674 // Merge LHS and RHS according to operator. 1675 Res = MCBinaryExpr::create(Kind, Res, RHS, getContext(), StartLoc); 1676 } 1677 } 1678 1679 /// ParseStatement: 1680 /// ::= EndOfStatement 1681 /// ::= Label* Directive ...Operands... EndOfStatement 1682 /// ::= Label* Identifier OperandList* EndOfStatement 1683 bool AsmParser::parseStatement(ParseStatementInfo &Info, 1684 MCAsmParserSemaCallback *SI) { 1685 assert(!hasPendingError() && "parseStatement started with pending error"); 1686 // Eat initial spaces and comments 1687 while (Lexer.is(AsmToken::Space)) 1688 Lex(); 1689 if (Lexer.is(AsmToken::EndOfStatement)) { 1690 // if this is a line comment we can drop it safely 1691 if (getTok().getString().empty() || getTok().getString().front() == '\r' || 1692 getTok().getString().front() == '\n') 1693 Out.AddBlankLine(); 1694 Lex(); 1695 return false; 1696 } 1697 // Statements always start with an identifier. 1698 AsmToken ID = getTok(); 1699 SMLoc IDLoc = ID.getLoc(); 1700 StringRef IDVal; 1701 int64_t LocalLabelVal = -1; 1702 if (Lexer.is(AsmToken::HashDirective)) 1703 return parseCppHashLineFilenameComment(IDLoc); 1704 // Allow an integer followed by a ':' as a directional local label. 1705 if (Lexer.is(AsmToken::Integer)) { 1706 LocalLabelVal = getTok().getIntVal(); 1707 if (LocalLabelVal < 0) { 1708 if (!TheCondState.Ignore) { 1709 Lex(); // always eat a token 1710 return Error(IDLoc, "unexpected token at start of statement"); 1711 } 1712 IDVal = ""; 1713 } else { 1714 IDVal = getTok().getString(); 1715 Lex(); // Consume the integer token to be used as an identifier token. 1716 if (Lexer.getKind() != AsmToken::Colon) { 1717 if (!TheCondState.Ignore) { 1718 Lex(); // always eat a token 1719 return Error(IDLoc, "unexpected token at start of statement"); 1720 } 1721 } 1722 } 1723 } else if (Lexer.is(AsmToken::Dot)) { 1724 // Treat '.' as a valid identifier in this context. 1725 Lex(); 1726 IDVal = "."; 1727 } else if (Lexer.is(AsmToken::LCurly)) { 1728 // Treat '{' as a valid identifier in this context. 1729 Lex(); 1730 IDVal = "{"; 1731 1732 } else if (Lexer.is(AsmToken::RCurly)) { 1733 // Treat '}' as a valid identifier in this context. 1734 Lex(); 1735 IDVal = "}"; 1736 } else if (Lexer.is(AsmToken::Star) && 1737 getTargetParser().starIsStartOfStatement()) { 1738 // Accept '*' as a valid start of statement. 1739 Lex(); 1740 IDVal = "*"; 1741 } else if (parseIdentifier(IDVal)) { 1742 if (!TheCondState.Ignore) { 1743 Lex(); // always eat a token 1744 return Error(IDLoc, "unexpected token at start of statement"); 1745 } 1746 IDVal = ""; 1747 } 1748 1749 // Handle conditional assembly here before checking for skipping. We 1750 // have to do this so that .endif isn't skipped in a ".if 0" block for 1751 // example. 1752 StringMap<DirectiveKind>::const_iterator DirKindIt = 1753 DirectiveKindMap.find(IDVal); 1754 DirectiveKind DirKind = (DirKindIt == DirectiveKindMap.end()) 1755 1756 ? DK_NO_DIRECTIVE 1757 : DirKindIt->getValue(); 1758 switch (DirKind) { 1759 default: 1760 break; 1761 case DK_IF: 1762 case DK_IFEQ: 1763 case DK_IFGE: 1764 case DK_IFGT: 1765 case DK_IFLE: 1766 case DK_IFLT: 1767 case DK_IFNE: 1768 return parseDirectiveIf(IDLoc, DirKind); 1769 case DK_IFB: 1770 return parseDirectiveIfb(IDLoc, true); 1771 case DK_IFNB: 1772 return parseDirectiveIfb(IDLoc, false); 1773 case DK_IFC: 1774 return parseDirectiveIfc(IDLoc, true); 1775 case DK_IFEQS: 1776 return parseDirectiveIfeqs(IDLoc, true); 1777 case DK_IFNC: 1778 return parseDirectiveIfc(IDLoc, false); 1779 case DK_IFNES: 1780 return parseDirectiveIfeqs(IDLoc, false); 1781 case DK_IFDEF: 1782 return parseDirectiveIfdef(IDLoc, true); 1783 case DK_IFNDEF: 1784 case DK_IFNOTDEF: 1785 return parseDirectiveIfdef(IDLoc, false); 1786 case DK_ELSEIF: 1787 return parseDirectiveElseIf(IDLoc); 1788 case DK_ELSE: 1789 return parseDirectiveElse(IDLoc); 1790 case DK_ENDIF: 1791 return parseDirectiveEndIf(IDLoc); 1792 } 1793 1794 // Ignore the statement if in the middle of inactive conditional 1795 // (e.g. ".if 0"). 1796 if (TheCondState.Ignore) { 1797 eatToEndOfStatement(); 1798 return false; 1799 } 1800 1801 // FIXME: Recurse on local labels? 1802 1803 // See what kind of statement we have. 1804 switch (Lexer.getKind()) { 1805 case AsmToken::Colon: { 1806 if (!getTargetParser().isLabel(ID)) 1807 break; 1808 if (checkForValidSection()) 1809 return true; 1810 1811 // identifier ':' -> Label. 1812 Lex(); 1813 1814 // Diagnose attempt to use '.' as a label. 1815 if (IDVal == ".") 1816 return Error(IDLoc, "invalid use of pseudo-symbol '.' as a label"); 1817 1818 // Diagnose attempt to use a variable as a label. 1819 // 1820 // FIXME: Diagnostics. Note the location of the definition as a label. 1821 // FIXME: This doesn't diagnose assignment to a symbol which has been 1822 // implicitly marked as external. 1823 MCSymbol *Sym; 1824 if (LocalLabelVal == -1) { 1825 if (ParsingInlineAsm && SI) { 1826 StringRef RewrittenLabel = 1827 SI->LookupInlineAsmLabel(IDVal, getSourceManager(), IDLoc, true); 1828 assert(!RewrittenLabel.empty() && 1829 "We should have an internal name here."); 1830 Info.AsmRewrites->emplace_back(AOK_Label, IDLoc, IDVal.size(), 1831 RewrittenLabel); 1832 IDVal = RewrittenLabel; 1833 } 1834 Sym = getContext().getOrCreateSymbol(IDVal); 1835 } else 1836 Sym = Ctx.createDirectionalLocalSymbol(LocalLabelVal); 1837 // End of Labels should be treated as end of line for lexing 1838 // purposes but that information is not available to the Lexer who 1839 // does not understand Labels. This may cause us to see a Hash 1840 // here instead of a preprocessor line comment. 1841 if (getTok().is(AsmToken::Hash)) { 1842 StringRef CommentStr = parseStringToEndOfStatement(); 1843 Lexer.Lex(); 1844 Lexer.UnLex(AsmToken(AsmToken::EndOfStatement, CommentStr)); 1845 } 1846 1847 // Consume any end of statement token, if present, to avoid spurious 1848 // AddBlankLine calls(). 1849 if (getTok().is(AsmToken::EndOfStatement)) { 1850 Lex(); 1851 } 1852 1853 getTargetParser().doBeforeLabelEmit(Sym); 1854 1855 // Emit the label. 1856 if (!getTargetParser().isParsingInlineAsm()) 1857 Out.EmitLabel(Sym, IDLoc); 1858 1859 // If we are generating dwarf for assembly source files then gather the 1860 // info to make a dwarf label entry for this label if needed. 1861 if (enabledGenDwarfForAssembly()) 1862 MCGenDwarfLabelEntry::Make(Sym, &getStreamer(), getSourceManager(), 1863 IDLoc); 1864 1865 getTargetParser().onLabelParsed(Sym); 1866 1867 return false; 1868 } 1869 1870 case AsmToken::Equal: 1871 if (!getTargetParser().equalIsAsmAssignment()) 1872 break; 1873 // identifier '=' ... -> assignment statement 1874 Lex(); 1875 1876 return parseAssignment(IDVal, true); 1877 1878 default: // Normal instruction or directive. 1879 break; 1880 } 1881 1882 // If macros are enabled, check to see if this is a macro instantiation. 1883 if (areMacrosEnabled()) 1884 if (const MCAsmMacro *M = getContext().lookupMacro(IDVal)) { 1885 return handleMacroEntry(M, IDLoc); 1886 } 1887 1888 // Otherwise, we have a normal instruction or directive. 1889 1890 // Directives start with "." 1891 if (IDVal.startswith(".") && IDVal != ".") { 1892 // There are several entities interested in parsing directives: 1893 // 1894 // 1. The target-specific assembly parser. Some directives are target 1895 // specific or may potentially behave differently on certain targets. 1896 // 2. Asm parser extensions. For example, platform-specific parsers 1897 // (like the ELF parser) register themselves as extensions. 1898 // 3. The generic directive parser implemented by this class. These are 1899 // all the directives that behave in a target and platform independent 1900 // manner, or at least have a default behavior that's shared between 1901 // all targets and platforms. 1902 1903 getTargetParser().flushPendingInstructions(getStreamer()); 1904 1905 SMLoc StartTokLoc = getTok().getLoc(); 1906 bool TPDirectiveReturn = getTargetParser().ParseDirective(ID); 1907 1908 if (hasPendingError()) 1909 return true; 1910 // Currently the return value should be true if we are 1911 // uninterested but as this is at odds with the standard parsing 1912 // convention (return true = error) we have instances of a parsed 1913 // directive that fails returning true as an error. Catch these 1914 // cases as best as possible errors here. 1915 if (TPDirectiveReturn && StartTokLoc != getTok().getLoc()) 1916 return true; 1917 // Return if we did some parsing or believe we succeeded. 1918 if (!TPDirectiveReturn || StartTokLoc != getTok().getLoc()) 1919 return false; 1920 1921 // Next, check the extension directive map to see if any extension has 1922 // registered itself to parse this directive. 1923 std::pair<MCAsmParserExtension *, DirectiveHandler> Handler = 1924 ExtensionDirectiveMap.lookup(IDVal); 1925 if (Handler.first) 1926 return (*Handler.second)(Handler.first, IDVal, IDLoc); 1927 1928 // Finally, if no one else is interested in this directive, it must be 1929 // generic and familiar to this class. 1930 switch (DirKind) { 1931 default: 1932 break; 1933 case DK_SET: 1934 case DK_EQU: 1935 return parseDirectiveSet(IDVal, true); 1936 case DK_EQUIV: 1937 return parseDirectiveSet(IDVal, false); 1938 case DK_ASCII: 1939 return parseDirectiveAscii(IDVal, false); 1940 case DK_ASCIZ: 1941 case DK_STRING: 1942 return parseDirectiveAscii(IDVal, true); 1943 case DK_BYTE: 1944 case DK_DC_B: 1945 return parseDirectiveValue(IDVal, 1); 1946 case DK_DC: 1947 case DK_DC_W: 1948 case DK_SHORT: 1949 case DK_VALUE: 1950 case DK_2BYTE: 1951 return parseDirectiveValue(IDVal, 2); 1952 case DK_LONG: 1953 case DK_INT: 1954 case DK_4BYTE: 1955 case DK_DC_L: 1956 return parseDirectiveValue(IDVal, 4); 1957 case DK_QUAD: 1958 case DK_8BYTE: 1959 return parseDirectiveValue(IDVal, 8); 1960 case DK_DC_A: 1961 return parseDirectiveValue( 1962 IDVal, getContext().getAsmInfo()->getCodePointerSize()); 1963 case DK_OCTA: 1964 return parseDirectiveOctaValue(IDVal); 1965 case DK_SINGLE: 1966 case DK_FLOAT: 1967 case DK_DC_S: 1968 return parseDirectiveRealValue(IDVal, APFloat::IEEEsingle()); 1969 case DK_DOUBLE: 1970 case DK_DC_D: 1971 return parseDirectiveRealValue(IDVal, APFloat::IEEEdouble()); 1972 case DK_ALIGN: { 1973 bool IsPow2 = !getContext().getAsmInfo()->getAlignmentIsInBytes(); 1974 return parseDirectiveAlign(IsPow2, /*ExprSize=*/1); 1975 } 1976 case DK_ALIGN32: { 1977 bool IsPow2 = !getContext().getAsmInfo()->getAlignmentIsInBytes(); 1978 return parseDirectiveAlign(IsPow2, /*ExprSize=*/4); 1979 } 1980 case DK_BALIGN: 1981 return parseDirectiveAlign(/*IsPow2=*/false, /*ExprSize=*/1); 1982 case DK_BALIGNW: 1983 return parseDirectiveAlign(/*IsPow2=*/false, /*ExprSize=*/2); 1984 case DK_BALIGNL: 1985 return parseDirectiveAlign(/*IsPow2=*/false, /*ExprSize=*/4); 1986 case DK_P2ALIGN: 1987 return parseDirectiveAlign(/*IsPow2=*/true, /*ExprSize=*/1); 1988 case DK_P2ALIGNW: 1989 return parseDirectiveAlign(/*IsPow2=*/true, /*ExprSize=*/2); 1990 case DK_P2ALIGNL: 1991 return parseDirectiveAlign(/*IsPow2=*/true, /*ExprSize=*/4); 1992 case DK_ORG: 1993 return parseDirectiveOrg(); 1994 case DK_FILL: 1995 return parseDirectiveFill(); 1996 case DK_ZERO: 1997 return parseDirectiveZero(); 1998 case DK_EXTERN: 1999 eatToEndOfStatement(); // .extern is the default, ignore it. 2000 return false; 2001 case DK_GLOBL: 2002 case DK_GLOBAL: 2003 return parseDirectiveSymbolAttribute(MCSA_Global); 2004 case DK_LAZY_REFERENCE: 2005 return parseDirectiveSymbolAttribute(MCSA_LazyReference); 2006 case DK_NO_DEAD_STRIP: 2007 return parseDirectiveSymbolAttribute(MCSA_NoDeadStrip); 2008 case DK_SYMBOL_RESOLVER: 2009 return parseDirectiveSymbolAttribute(MCSA_SymbolResolver); 2010 case DK_PRIVATE_EXTERN: 2011 return parseDirectiveSymbolAttribute(MCSA_PrivateExtern); 2012 case DK_REFERENCE: 2013 return parseDirectiveSymbolAttribute(MCSA_Reference); 2014 case DK_WEAK_DEFINITION: 2015 return parseDirectiveSymbolAttribute(MCSA_WeakDefinition); 2016 case DK_WEAK_REFERENCE: 2017 return parseDirectiveSymbolAttribute(MCSA_WeakReference); 2018 case DK_WEAK_DEF_CAN_BE_HIDDEN: 2019 return parseDirectiveSymbolAttribute(MCSA_WeakDefAutoPrivate); 2020 case DK_COLD: 2021 return parseDirectiveSymbolAttribute(MCSA_Cold); 2022 case DK_COMM: 2023 case DK_COMMON: 2024 return parseDirectiveComm(/*IsLocal=*/false); 2025 case DK_LCOMM: 2026 return parseDirectiveComm(/*IsLocal=*/true); 2027 case DK_ABORT: 2028 return parseDirectiveAbort(); 2029 case DK_INCLUDE: 2030 return parseDirectiveInclude(); 2031 case DK_INCBIN: 2032 return parseDirectiveIncbin(); 2033 case DK_CODE16: 2034 case DK_CODE16GCC: 2035 return TokError(Twine(IDVal) + 2036 " not currently supported for this target"); 2037 case DK_REPT: 2038 return parseDirectiveRept(IDLoc, IDVal); 2039 case DK_IRP: 2040 return parseDirectiveIrp(IDLoc); 2041 case DK_IRPC: 2042 return parseDirectiveIrpc(IDLoc); 2043 case DK_ENDR: 2044 return parseDirectiveEndr(IDLoc); 2045 case DK_BUNDLE_ALIGN_MODE: 2046 return parseDirectiveBundleAlignMode(); 2047 case DK_BUNDLE_LOCK: 2048 return parseDirectiveBundleLock(); 2049 case DK_BUNDLE_UNLOCK: 2050 return parseDirectiveBundleUnlock(); 2051 case DK_SLEB128: 2052 return parseDirectiveLEB128(true); 2053 case DK_ULEB128: 2054 return parseDirectiveLEB128(false); 2055 case DK_SPACE: 2056 case DK_SKIP: 2057 return parseDirectiveSpace(IDVal); 2058 case DK_FILE: 2059 return parseDirectiveFile(IDLoc); 2060 case DK_LINE: 2061 return parseDirectiveLine(); 2062 case DK_LOC: 2063 return parseDirectiveLoc(); 2064 case DK_STABS: 2065 return parseDirectiveStabs(); 2066 case DK_CV_FILE: 2067 return parseDirectiveCVFile(); 2068 case DK_CV_FUNC_ID: 2069 return parseDirectiveCVFuncId(); 2070 case DK_CV_INLINE_SITE_ID: 2071 return parseDirectiveCVInlineSiteId(); 2072 case DK_CV_LOC: 2073 return parseDirectiveCVLoc(); 2074 case DK_CV_LINETABLE: 2075 return parseDirectiveCVLinetable(); 2076 case DK_CV_INLINE_LINETABLE: 2077 return parseDirectiveCVInlineLinetable(); 2078 case DK_CV_DEF_RANGE: 2079 return parseDirectiveCVDefRange(); 2080 case DK_CV_STRING: 2081 return parseDirectiveCVString(); 2082 case DK_CV_STRINGTABLE: 2083 return parseDirectiveCVStringTable(); 2084 case DK_CV_FILECHECKSUMS: 2085 return parseDirectiveCVFileChecksums(); 2086 case DK_CV_FILECHECKSUM_OFFSET: 2087 return parseDirectiveCVFileChecksumOffset(); 2088 case DK_CV_FPO_DATA: 2089 return parseDirectiveCVFPOData(); 2090 case DK_CFI_SECTIONS: 2091 return parseDirectiveCFISections(); 2092 case DK_CFI_STARTPROC: 2093 return parseDirectiveCFIStartProc(); 2094 case DK_CFI_ENDPROC: 2095 return parseDirectiveCFIEndProc(); 2096 case DK_CFI_DEF_CFA: 2097 return parseDirectiveCFIDefCfa(IDLoc); 2098 case DK_CFI_DEF_CFA_OFFSET: 2099 return parseDirectiveCFIDefCfaOffset(); 2100 case DK_CFI_ADJUST_CFA_OFFSET: 2101 return parseDirectiveCFIAdjustCfaOffset(); 2102 case DK_CFI_DEF_CFA_REGISTER: 2103 return parseDirectiveCFIDefCfaRegister(IDLoc); 2104 case DK_CFI_OFFSET: 2105 return parseDirectiveCFIOffset(IDLoc); 2106 case DK_CFI_REL_OFFSET: 2107 return parseDirectiveCFIRelOffset(IDLoc); 2108 case DK_CFI_PERSONALITY: 2109 return parseDirectiveCFIPersonalityOrLsda(true); 2110 case DK_CFI_LSDA: 2111 return parseDirectiveCFIPersonalityOrLsda(false); 2112 case DK_CFI_REMEMBER_STATE: 2113 return parseDirectiveCFIRememberState(); 2114 case DK_CFI_RESTORE_STATE: 2115 return parseDirectiveCFIRestoreState(); 2116 case DK_CFI_SAME_VALUE: 2117 return parseDirectiveCFISameValue(IDLoc); 2118 case DK_CFI_RESTORE: 2119 return parseDirectiveCFIRestore(IDLoc); 2120 case DK_CFI_ESCAPE: 2121 return parseDirectiveCFIEscape(); 2122 case DK_CFI_RETURN_COLUMN: 2123 return parseDirectiveCFIReturnColumn(IDLoc); 2124 case DK_CFI_SIGNAL_FRAME: 2125 return parseDirectiveCFISignalFrame(); 2126 case DK_CFI_UNDEFINED: 2127 return parseDirectiveCFIUndefined(IDLoc); 2128 case DK_CFI_REGISTER: 2129 return parseDirectiveCFIRegister(IDLoc); 2130 case DK_CFI_WINDOW_SAVE: 2131 return parseDirectiveCFIWindowSave(); 2132 case DK_MACROS_ON: 2133 case DK_MACROS_OFF: 2134 return parseDirectiveMacrosOnOff(IDVal); 2135 case DK_MACRO: 2136 return parseDirectiveMacro(IDLoc); 2137 case DK_ALTMACRO: 2138 case DK_NOALTMACRO: 2139 return parseDirectiveAltmacro(IDVal); 2140 case DK_EXITM: 2141 return parseDirectiveExitMacro(IDVal); 2142 case DK_ENDM: 2143 case DK_ENDMACRO: 2144 return parseDirectiveEndMacro(IDVal); 2145 case DK_PURGEM: 2146 return parseDirectivePurgeMacro(IDLoc); 2147 case DK_END: 2148 return parseDirectiveEnd(IDLoc); 2149 case DK_ERR: 2150 return parseDirectiveError(IDLoc, false); 2151 case DK_ERROR: 2152 return parseDirectiveError(IDLoc, true); 2153 case DK_WARNING: 2154 return parseDirectiveWarning(IDLoc); 2155 case DK_RELOC: 2156 return parseDirectiveReloc(IDLoc); 2157 case DK_DCB: 2158 case DK_DCB_W: 2159 return parseDirectiveDCB(IDVal, 2); 2160 case DK_DCB_B: 2161 return parseDirectiveDCB(IDVal, 1); 2162 case DK_DCB_D: 2163 return parseDirectiveRealDCB(IDVal, APFloat::IEEEdouble()); 2164 case DK_DCB_L: 2165 return parseDirectiveDCB(IDVal, 4); 2166 case DK_DCB_S: 2167 return parseDirectiveRealDCB(IDVal, APFloat::IEEEsingle()); 2168 case DK_DC_X: 2169 case DK_DCB_X: 2170 return TokError(Twine(IDVal) + 2171 " not currently supported for this target"); 2172 case DK_DS: 2173 case DK_DS_W: 2174 return parseDirectiveDS(IDVal, 2); 2175 case DK_DS_B: 2176 return parseDirectiveDS(IDVal, 1); 2177 case DK_DS_D: 2178 return parseDirectiveDS(IDVal, 8); 2179 case DK_DS_L: 2180 case DK_DS_S: 2181 return parseDirectiveDS(IDVal, 4); 2182 case DK_DS_P: 2183 case DK_DS_X: 2184 return parseDirectiveDS(IDVal, 12); 2185 case DK_PRINT: 2186 return parseDirectivePrint(IDLoc); 2187 case DK_ADDRSIG: 2188 return parseDirectiveAddrsig(); 2189 case DK_ADDRSIG_SYM: 2190 return parseDirectiveAddrsigSym(); 2191 } 2192 2193 return Error(IDLoc, "unknown directive"); 2194 } 2195 2196 // __asm _emit or __asm __emit 2197 if (ParsingInlineAsm && (IDVal == "_emit" || IDVal == "__emit" || 2198 IDVal == "_EMIT" || IDVal == "__EMIT")) 2199 return parseDirectiveMSEmit(IDLoc, Info, IDVal.size()); 2200 2201 // __asm align 2202 if (ParsingInlineAsm && (IDVal == "align" || IDVal == "ALIGN")) 2203 return parseDirectiveMSAlign(IDLoc, Info); 2204 2205 if (ParsingInlineAsm && (IDVal == "even" || IDVal == "EVEN")) 2206 Info.AsmRewrites->emplace_back(AOK_EVEN, IDLoc, 4); 2207 if (checkForValidSection()) 2208 return true; 2209 2210 // Canonicalize the opcode to lower case. 2211 std::string OpcodeStr = IDVal.lower(); 2212 ParseInstructionInfo IInfo(Info.AsmRewrites); 2213 bool ParseHadError = getTargetParser().ParseInstruction(IInfo, OpcodeStr, ID, 2214 Info.ParsedOperands); 2215 Info.ParseError = ParseHadError; 2216 2217 // Dump the parsed representation, if requested. 2218 if (getShowParsedOperands()) { 2219 SmallString<256> Str; 2220 raw_svector_ostream OS(Str); 2221 OS << "parsed instruction: ["; 2222 for (unsigned i = 0; i != Info.ParsedOperands.size(); ++i) { 2223 if (i != 0) 2224 OS << ", "; 2225 Info.ParsedOperands[i]->print(OS); 2226 } 2227 OS << "]"; 2228 2229 printMessage(IDLoc, SourceMgr::DK_Note, OS.str()); 2230 } 2231 2232 // Fail even if ParseInstruction erroneously returns false. 2233 if (hasPendingError() || ParseHadError) 2234 return true; 2235 2236 // If we are generating dwarf for the current section then generate a .loc 2237 // directive for the instruction. 2238 if (!ParseHadError && enabledGenDwarfForAssembly() && 2239 getContext().getGenDwarfSectionSyms().count( 2240 getStreamer().getCurrentSectionOnly())) { 2241 unsigned Line; 2242 if (ActiveMacros.empty()) 2243 Line = SrcMgr.FindLineNumber(IDLoc, CurBuffer); 2244 else 2245 Line = SrcMgr.FindLineNumber(ActiveMacros.front()->InstantiationLoc, 2246 ActiveMacros.front()->ExitBuffer); 2247 2248 // If we previously parsed a cpp hash file line comment then make sure the 2249 // current Dwarf File is for the CppHashFilename if not then emit the 2250 // Dwarf File table for it and adjust the line number for the .loc. 2251 if (!CppHashInfo.Filename.empty()) { 2252 unsigned FileNumber = getStreamer().EmitDwarfFileDirective( 2253 0, StringRef(), CppHashInfo.Filename); 2254 getContext().setGenDwarfFileNumber(FileNumber); 2255 2256 unsigned CppHashLocLineNo = 2257 SrcMgr.FindLineNumber(CppHashInfo.Loc, CppHashInfo.Buf); 2258 Line = CppHashInfo.LineNumber - 1 + (Line - CppHashLocLineNo); 2259 } 2260 2261 getStreamer().EmitDwarfLocDirective( 2262 getContext().getGenDwarfFileNumber(), Line, 0, 2263 DWARF2_LINE_DEFAULT_IS_STMT ? DWARF2_FLAG_IS_STMT : 0, 0, 0, 2264 StringRef()); 2265 } 2266 2267 // If parsing succeeded, match the instruction. 2268 if (!ParseHadError) { 2269 uint64_t ErrorInfo; 2270 if (getTargetParser().MatchAndEmitInstruction( 2271 IDLoc, Info.Opcode, Info.ParsedOperands, Out, ErrorInfo, 2272 getTargetParser().isParsingInlineAsm())) 2273 return true; 2274 } 2275 return false; 2276 } 2277 2278 // Parse and erase curly braces marking block start/end 2279 bool 2280 AsmParser::parseCurlyBlockScope(SmallVectorImpl<AsmRewrite> &AsmStrRewrites) { 2281 // Identify curly brace marking block start/end 2282 if (Lexer.isNot(AsmToken::LCurly) && Lexer.isNot(AsmToken::RCurly)) 2283 return false; 2284 2285 SMLoc StartLoc = Lexer.getLoc(); 2286 Lex(); // Eat the brace 2287 if (Lexer.is(AsmToken::EndOfStatement)) 2288 Lex(); // Eat EndOfStatement following the brace 2289 2290 // Erase the block start/end brace from the output asm string 2291 AsmStrRewrites.emplace_back(AOK_Skip, StartLoc, Lexer.getLoc().getPointer() - 2292 StartLoc.getPointer()); 2293 return true; 2294 } 2295 2296 /// parseCppHashLineFilenameComment as this: 2297 /// ::= # number "filename" 2298 bool AsmParser::parseCppHashLineFilenameComment(SMLoc L) { 2299 Lex(); // Eat the hash token. 2300 // Lexer only ever emits HashDirective if it fully formed if it's 2301 // done the checking already so this is an internal error. 2302 assert(getTok().is(AsmToken::Integer) && 2303 "Lexing Cpp line comment: Expected Integer"); 2304 int64_t LineNumber = getTok().getIntVal(); 2305 Lex(); 2306 assert(getTok().is(AsmToken::String) && 2307 "Lexing Cpp line comment: Expected String"); 2308 StringRef Filename = getTok().getString(); 2309 Lex(); 2310 2311 // Get rid of the enclosing quotes. 2312 Filename = Filename.substr(1, Filename.size() - 2); 2313 2314 // Save the SMLoc, Filename and LineNumber for later use by diagnostics 2315 // and possibly DWARF file info. 2316 CppHashInfo.Loc = L; 2317 CppHashInfo.Filename = Filename; 2318 CppHashInfo.LineNumber = LineNumber; 2319 CppHashInfo.Buf = CurBuffer; 2320 if (FirstCppHashFilename.empty()) 2321 FirstCppHashFilename = Filename; 2322 return false; 2323 } 2324 2325 /// will use the last parsed cpp hash line filename comment 2326 /// for the Filename and LineNo if any in the diagnostic. 2327 void AsmParser::DiagHandler(const SMDiagnostic &Diag, void *Context) { 2328 const AsmParser *Parser = static_cast<const AsmParser *>(Context); 2329 raw_ostream &OS = errs(); 2330 2331 const SourceMgr &DiagSrcMgr = *Diag.getSourceMgr(); 2332 SMLoc DiagLoc = Diag.getLoc(); 2333 unsigned DiagBuf = DiagSrcMgr.FindBufferContainingLoc(DiagLoc); 2334 unsigned CppHashBuf = 2335 Parser->SrcMgr.FindBufferContainingLoc(Parser->CppHashInfo.Loc); 2336 2337 // Like SourceMgr::printMessage() we need to print the include stack if any 2338 // before printing the message. 2339 unsigned DiagCurBuffer = DiagSrcMgr.FindBufferContainingLoc(DiagLoc); 2340 if (!Parser->SavedDiagHandler && DiagCurBuffer && 2341 DiagCurBuffer != DiagSrcMgr.getMainFileID()) { 2342 SMLoc ParentIncludeLoc = DiagSrcMgr.getParentIncludeLoc(DiagCurBuffer); 2343 DiagSrcMgr.PrintIncludeStack(ParentIncludeLoc, OS); 2344 } 2345 2346 // If we have not parsed a cpp hash line filename comment or the source 2347 // manager changed or buffer changed (like in a nested include) then just 2348 // print the normal diagnostic using its Filename and LineNo. 2349 if (!Parser->CppHashInfo.LineNumber || &DiagSrcMgr != &Parser->SrcMgr || 2350 DiagBuf != CppHashBuf) { 2351 if (Parser->SavedDiagHandler) 2352 Parser->SavedDiagHandler(Diag, Parser->SavedDiagContext); 2353 else 2354 Diag.print(nullptr, OS); 2355 return; 2356 } 2357 2358 // Use the CppHashFilename and calculate a line number based on the 2359 // CppHashInfo.Loc and CppHashInfo.LineNumber relative to this Diag's SMLoc 2360 // for the diagnostic. 2361 const std::string &Filename = Parser->CppHashInfo.Filename; 2362 2363 int DiagLocLineNo = DiagSrcMgr.FindLineNumber(DiagLoc, DiagBuf); 2364 int CppHashLocLineNo = 2365 Parser->SrcMgr.FindLineNumber(Parser->CppHashInfo.Loc, CppHashBuf); 2366 int LineNo = 2367 Parser->CppHashInfo.LineNumber - 1 + (DiagLocLineNo - CppHashLocLineNo); 2368 2369 SMDiagnostic NewDiag(*Diag.getSourceMgr(), Diag.getLoc(), Filename, LineNo, 2370 Diag.getColumnNo(), Diag.getKind(), Diag.getMessage(), 2371 Diag.getLineContents(), Diag.getRanges()); 2372 2373 if (Parser->SavedDiagHandler) 2374 Parser->SavedDiagHandler(NewDiag, Parser->SavedDiagContext); 2375 else 2376 NewDiag.print(nullptr, OS); 2377 } 2378 2379 // FIXME: This is mostly duplicated from the function in AsmLexer.cpp. The 2380 // difference being that that function accepts '@' as part of identifiers and 2381 // we can't do that. AsmLexer.cpp should probably be changed to handle 2382 // '@' as a special case when needed. 2383 static bool isIdentifierChar(char c) { 2384 return isalnum(static_cast<unsigned char>(c)) || c == '_' || c == '$' || 2385 c == '.'; 2386 } 2387 2388 bool AsmParser::expandMacro(raw_svector_ostream &OS, StringRef Body, 2389 ArrayRef<MCAsmMacroParameter> Parameters, 2390 ArrayRef<MCAsmMacroArgument> A, 2391 bool EnableAtPseudoVariable, SMLoc L) { 2392 unsigned NParameters = Parameters.size(); 2393 bool HasVararg = NParameters ? Parameters.back().Vararg : false; 2394 if ((!IsDarwin || NParameters != 0) && NParameters != A.size()) 2395 return Error(L, "Wrong number of arguments"); 2396 2397 // A macro without parameters is handled differently on Darwin: 2398 // gas accepts no arguments and does no substitutions 2399 while (!Body.empty()) { 2400 // Scan for the next substitution. 2401 std::size_t End = Body.size(), Pos = 0; 2402 for (; Pos != End; ++Pos) { 2403 // Check for a substitution or escape. 2404 if (IsDarwin && !NParameters) { 2405 // This macro has no parameters, look for $0, $1, etc. 2406 if (Body[Pos] != '$' || Pos + 1 == End) 2407 continue; 2408 2409 char Next = Body[Pos + 1]; 2410 if (Next == '$' || Next == 'n' || 2411 isdigit(static_cast<unsigned char>(Next))) 2412 break; 2413 } else { 2414 // This macro has parameters, look for \foo, \bar, etc. 2415 if (Body[Pos] == '\\' && Pos + 1 != End) 2416 break; 2417 } 2418 } 2419 2420 // Add the prefix. 2421 OS << Body.slice(0, Pos); 2422 2423 // Check if we reached the end. 2424 if (Pos == End) 2425 break; 2426 2427 if (IsDarwin && !NParameters) { 2428 switch (Body[Pos + 1]) { 2429 // $$ => $ 2430 case '$': 2431 OS << '$'; 2432 break; 2433 2434 // $n => number of arguments 2435 case 'n': 2436 OS << A.size(); 2437 break; 2438 2439 // $[0-9] => argument 2440 default: { 2441 // Missing arguments are ignored. 2442 unsigned Index = Body[Pos + 1] - '0'; 2443 if (Index >= A.size()) 2444 break; 2445 2446 // Otherwise substitute with the token values, with spaces eliminated. 2447 for (const AsmToken &Token : A[Index]) 2448 OS << Token.getString(); 2449 break; 2450 } 2451 } 2452 Pos += 2; 2453 } else { 2454 unsigned I = Pos + 1; 2455 2456 // Check for the \@ pseudo-variable. 2457 if (EnableAtPseudoVariable && Body[I] == '@' && I + 1 != End) 2458 ++I; 2459 else 2460 while (isIdentifierChar(Body[I]) && I + 1 != End) 2461 ++I; 2462 2463 const char *Begin = Body.data() + Pos + 1; 2464 StringRef Argument(Begin, I - (Pos + 1)); 2465 unsigned Index = 0; 2466 2467 if (Argument == "@") { 2468 OS << NumOfMacroInstantiations; 2469 Pos += 2; 2470 } else { 2471 for (; Index < NParameters; ++Index) 2472 if (Parameters[Index].Name == Argument) 2473 break; 2474 2475 if (Index == NParameters) { 2476 if (Body[Pos + 1] == '(' && Body[Pos + 2] == ')') 2477 Pos += 3; 2478 else { 2479 OS << '\\' << Argument; 2480 Pos = I; 2481 } 2482 } else { 2483 bool VarargParameter = HasVararg && Index == (NParameters - 1); 2484 for (const AsmToken &Token : A[Index]) 2485 // For altmacro mode, you can write '%expr'. 2486 // The prefix '%' evaluates the expression 'expr' 2487 // and uses the result as a string (e.g. replace %(1+2) with the 2488 // string "3"). 2489 // Here, we identify the integer token which is the result of the 2490 // absolute expression evaluation and replace it with its string 2491 // representation. 2492 if (AltMacroMode && Token.getString().front() == '%' && 2493 Token.is(AsmToken::Integer)) 2494 // Emit an integer value to the buffer. 2495 OS << Token.getIntVal(); 2496 // Only Token that was validated as a string and begins with '<' 2497 // is considered altMacroString!!! 2498 else if (AltMacroMode && Token.getString().front() == '<' && 2499 Token.is(AsmToken::String)) { 2500 OS << altMacroString(Token.getStringContents()); 2501 } 2502 // We expect no quotes around the string's contents when 2503 // parsing for varargs. 2504 else if (Token.isNot(AsmToken::String) || VarargParameter) 2505 OS << Token.getString(); 2506 else 2507 OS << Token.getStringContents(); 2508 2509 Pos += 1 + Argument.size(); 2510 } 2511 } 2512 } 2513 // Update the scan point. 2514 Body = Body.substr(Pos); 2515 } 2516 2517 return false; 2518 } 2519 2520 static bool isOperator(AsmToken::TokenKind kind) { 2521 switch (kind) { 2522 default: 2523 return false; 2524 case AsmToken::Plus: 2525 case AsmToken::Minus: 2526 case AsmToken::Tilde: 2527 case AsmToken::Slash: 2528 case AsmToken::Star: 2529 case AsmToken::Dot: 2530 case AsmToken::Equal: 2531 case AsmToken::EqualEqual: 2532 case AsmToken::Pipe: 2533 case AsmToken::PipePipe: 2534 case AsmToken::Caret: 2535 case AsmToken::Amp: 2536 case AsmToken::AmpAmp: 2537 case AsmToken::Exclaim: 2538 case AsmToken::ExclaimEqual: 2539 case AsmToken::Less: 2540 case AsmToken::LessEqual: 2541 case AsmToken::LessLess: 2542 case AsmToken::LessGreater: 2543 case AsmToken::Greater: 2544 case AsmToken::GreaterEqual: 2545 case AsmToken::GreaterGreater: 2546 return true; 2547 } 2548 } 2549 2550 namespace { 2551 2552 class AsmLexerSkipSpaceRAII { 2553 public: 2554 AsmLexerSkipSpaceRAII(AsmLexer &Lexer, bool SkipSpace) : Lexer(Lexer) { 2555 Lexer.setSkipSpace(SkipSpace); 2556 } 2557 2558 ~AsmLexerSkipSpaceRAII() { 2559 Lexer.setSkipSpace(true); 2560 } 2561 2562 private: 2563 AsmLexer &Lexer; 2564 }; 2565 2566 } // end anonymous namespace 2567 2568 bool AsmParser::parseMacroArgument(MCAsmMacroArgument &MA, bool Vararg) { 2569 2570 if (Vararg) { 2571 if (Lexer.isNot(AsmToken::EndOfStatement)) { 2572 StringRef Str = parseStringToEndOfStatement(); 2573 MA.emplace_back(AsmToken::String, Str); 2574 } 2575 return false; 2576 } 2577 2578 unsigned ParenLevel = 0; 2579 2580 // Darwin doesn't use spaces to delmit arguments. 2581 AsmLexerSkipSpaceRAII ScopedSkipSpace(Lexer, IsDarwin); 2582 2583 bool SpaceEaten; 2584 2585 while (true) { 2586 SpaceEaten = false; 2587 if (Lexer.is(AsmToken::Eof) || Lexer.is(AsmToken::Equal)) 2588 return TokError("unexpected token in macro instantiation"); 2589 2590 if (ParenLevel == 0) { 2591 2592 if (Lexer.is(AsmToken::Comma)) 2593 break; 2594 2595 if (Lexer.is(AsmToken::Space)) { 2596 SpaceEaten = true; 2597 Lexer.Lex(); // Eat spaces 2598 } 2599 2600 // Spaces can delimit parameters, but could also be part an expression. 2601 // If the token after a space is an operator, add the token and the next 2602 // one into this argument 2603 if (!IsDarwin) { 2604 if (isOperator(Lexer.getKind())) { 2605 MA.push_back(getTok()); 2606 Lexer.Lex(); 2607 2608 // Whitespace after an operator can be ignored. 2609 if (Lexer.is(AsmToken::Space)) 2610 Lexer.Lex(); 2611 2612 continue; 2613 } 2614 } 2615 if (SpaceEaten) 2616 break; 2617 } 2618 2619 // handleMacroEntry relies on not advancing the lexer here 2620 // to be able to fill in the remaining default parameter values 2621 if (Lexer.is(AsmToken::EndOfStatement)) 2622 break; 2623 2624 // Adjust the current parentheses level. 2625 if (Lexer.is(AsmToken::LParen)) 2626 ++ParenLevel; 2627 else if (Lexer.is(AsmToken::RParen) && ParenLevel) 2628 --ParenLevel; 2629 2630 // Append the token to the current argument list. 2631 MA.push_back(getTok()); 2632 Lexer.Lex(); 2633 } 2634 2635 if (ParenLevel != 0) 2636 return TokError("unbalanced parentheses in macro argument"); 2637 return false; 2638 } 2639 2640 // Parse the macro instantiation arguments. 2641 bool AsmParser::parseMacroArguments(const MCAsmMacro *M, 2642 MCAsmMacroArguments &A) { 2643 const unsigned NParameters = M ? M->Parameters.size() : 0; 2644 bool NamedParametersFound = false; 2645 SmallVector<SMLoc, 4> FALocs; 2646 2647 A.resize(NParameters); 2648 FALocs.resize(NParameters); 2649 2650 // Parse two kinds of macro invocations: 2651 // - macros defined without any parameters accept an arbitrary number of them 2652 // - macros defined with parameters accept at most that many of them 2653 bool HasVararg = NParameters ? M->Parameters.back().Vararg : false; 2654 for (unsigned Parameter = 0; !NParameters || Parameter < NParameters; 2655 ++Parameter) { 2656 SMLoc IDLoc = Lexer.getLoc(); 2657 MCAsmMacroParameter FA; 2658 2659 if (Lexer.is(AsmToken::Identifier) && Lexer.peekTok().is(AsmToken::Equal)) { 2660 if (parseIdentifier(FA.Name)) 2661 return Error(IDLoc, "invalid argument identifier for formal argument"); 2662 2663 if (Lexer.isNot(AsmToken::Equal)) 2664 return TokError("expected '=' after formal parameter identifier"); 2665 2666 Lex(); 2667 2668 NamedParametersFound = true; 2669 } 2670 bool Vararg = HasVararg && Parameter == (NParameters - 1); 2671 2672 if (NamedParametersFound && FA.Name.empty()) 2673 return Error(IDLoc, "cannot mix positional and keyword arguments"); 2674 2675 SMLoc StrLoc = Lexer.getLoc(); 2676 SMLoc EndLoc; 2677 if (AltMacroMode && Lexer.is(AsmToken::Percent)) { 2678 const MCExpr *AbsoluteExp; 2679 int64_t Value; 2680 /// Eat '%' 2681 Lex(); 2682 if (parseExpression(AbsoluteExp, EndLoc)) 2683 return false; 2684 if (!AbsoluteExp->evaluateAsAbsolute(Value, 2685 getStreamer().getAssemblerPtr())) 2686 return Error(StrLoc, "expected absolute expression"); 2687 const char *StrChar = StrLoc.getPointer(); 2688 const char *EndChar = EndLoc.getPointer(); 2689 AsmToken newToken(AsmToken::Integer, 2690 StringRef(StrChar, EndChar - StrChar), Value); 2691 FA.Value.push_back(newToken); 2692 } else if (AltMacroMode && Lexer.is(AsmToken::Less) && 2693 isAltmacroString(StrLoc, EndLoc)) { 2694 const char *StrChar = StrLoc.getPointer(); 2695 const char *EndChar = EndLoc.getPointer(); 2696 jumpToLoc(EndLoc, CurBuffer); 2697 /// Eat from '<' to '>' 2698 Lex(); 2699 AsmToken newToken(AsmToken::String, 2700 StringRef(StrChar, EndChar - StrChar)); 2701 FA.Value.push_back(newToken); 2702 } else if(parseMacroArgument(FA.Value, Vararg)) 2703 return true; 2704 2705 unsigned PI = Parameter; 2706 if (!FA.Name.empty()) { 2707 unsigned FAI = 0; 2708 for (FAI = 0; FAI < NParameters; ++FAI) 2709 if (M->Parameters[FAI].Name == FA.Name) 2710 break; 2711 2712 if (FAI >= NParameters) { 2713 assert(M && "expected macro to be defined"); 2714 return Error(IDLoc, "parameter named '" + FA.Name + 2715 "' does not exist for macro '" + M->Name + "'"); 2716 } 2717 PI = FAI; 2718 } 2719 2720 if (!FA.Value.empty()) { 2721 if (A.size() <= PI) 2722 A.resize(PI + 1); 2723 A[PI] = FA.Value; 2724 2725 if (FALocs.size() <= PI) 2726 FALocs.resize(PI + 1); 2727 2728 FALocs[PI] = Lexer.getLoc(); 2729 } 2730 2731 // At the end of the statement, fill in remaining arguments that have 2732 // default values. If there aren't any, then the next argument is 2733 // required but missing 2734 if (Lexer.is(AsmToken::EndOfStatement)) { 2735 bool Failure = false; 2736 for (unsigned FAI = 0; FAI < NParameters; ++FAI) { 2737 if (A[FAI].empty()) { 2738 if (M->Parameters[FAI].Required) { 2739 Error(FALocs[FAI].isValid() ? FALocs[FAI] : Lexer.getLoc(), 2740 "missing value for required parameter " 2741 "'" + M->Parameters[FAI].Name + "' in macro '" + M->Name + "'"); 2742 Failure = true; 2743 } 2744 2745 if (!M->Parameters[FAI].Value.empty()) 2746 A[FAI] = M->Parameters[FAI].Value; 2747 } 2748 } 2749 return Failure; 2750 } 2751 2752 if (Lexer.is(AsmToken::Comma)) 2753 Lex(); 2754 } 2755 2756 return TokError("too many positional arguments"); 2757 } 2758 2759 bool AsmParser::handleMacroEntry(const MCAsmMacro *M, SMLoc NameLoc) { 2760 // Arbitrarily limit macro nesting depth (default matches 'as'). We can 2761 // eliminate this, although we should protect against infinite loops. 2762 unsigned MaxNestingDepth = AsmMacroMaxNestingDepth; 2763 if (ActiveMacros.size() == MaxNestingDepth) { 2764 std::ostringstream MaxNestingDepthError; 2765 MaxNestingDepthError << "macros cannot be nested more than " 2766 << MaxNestingDepth << " levels deep." 2767 << " Use -asm-macro-max-nesting-depth to increase " 2768 "this limit."; 2769 return TokError(MaxNestingDepthError.str()); 2770 } 2771 2772 MCAsmMacroArguments A; 2773 if (parseMacroArguments(M, A)) 2774 return true; 2775 2776 // Macro instantiation is lexical, unfortunately. We construct a new buffer 2777 // to hold the macro body with substitutions. 2778 SmallString<256> Buf; 2779 StringRef Body = M->Body; 2780 raw_svector_ostream OS(Buf); 2781 2782 if (expandMacro(OS, Body, M->Parameters, A, true, getTok().getLoc())) 2783 return true; 2784 2785 // We include the .endmacro in the buffer as our cue to exit the macro 2786 // instantiation. 2787 OS << ".endmacro\n"; 2788 2789 std::unique_ptr<MemoryBuffer> Instantiation = 2790 MemoryBuffer::getMemBufferCopy(OS.str(), "<instantiation>"); 2791 2792 // Create the macro instantiation object and add to the current macro 2793 // instantiation stack. 2794 MacroInstantiation *MI = new MacroInstantiation{ 2795 NameLoc, CurBuffer, getTok().getLoc(), TheCondStack.size()}; 2796 ActiveMacros.push_back(MI); 2797 2798 ++NumOfMacroInstantiations; 2799 2800 // Jump to the macro instantiation and prime the lexer. 2801 CurBuffer = SrcMgr.AddNewSourceBuffer(std::move(Instantiation), SMLoc()); 2802 Lexer.setBuffer(SrcMgr.getMemoryBuffer(CurBuffer)->getBuffer()); 2803 Lex(); 2804 2805 return false; 2806 } 2807 2808 void AsmParser::handleMacroExit() { 2809 // Jump to the EndOfStatement we should return to, and consume it. 2810 jumpToLoc(ActiveMacros.back()->ExitLoc, ActiveMacros.back()->ExitBuffer); 2811 Lex(); 2812 2813 // Pop the instantiation entry. 2814 delete ActiveMacros.back(); 2815 ActiveMacros.pop_back(); 2816 } 2817 2818 bool AsmParser::parseAssignment(StringRef Name, bool allow_redef, 2819 bool NoDeadStrip) { 2820 MCSymbol *Sym; 2821 const MCExpr *Value; 2822 if (MCParserUtils::parseAssignmentExpression(Name, allow_redef, *this, Sym, 2823 Value)) 2824 return true; 2825 2826 if (!Sym) { 2827 // In the case where we parse an expression starting with a '.', we will 2828 // not generate an error, nor will we create a symbol. In this case we 2829 // should just return out. 2830 return false; 2831 } 2832 2833 // Do the assignment. 2834 Out.EmitAssignment(Sym, Value); 2835 if (NoDeadStrip) 2836 Out.EmitSymbolAttribute(Sym, MCSA_NoDeadStrip); 2837 2838 return false; 2839 } 2840 2841 /// parseIdentifier: 2842 /// ::= identifier 2843 /// ::= string 2844 bool AsmParser::parseIdentifier(StringRef &Res) { 2845 // The assembler has relaxed rules for accepting identifiers, in particular we 2846 // allow things like '.globl $foo' and '.def @feat.00', which would normally be 2847 // separate tokens. At this level, we have already lexed so we cannot (currently) 2848 // handle this as a context dependent token, instead we detect adjacent tokens 2849 // and return the combined identifier. 2850 if (Lexer.is(AsmToken::Dollar) || Lexer.is(AsmToken::At)) { 2851 SMLoc PrefixLoc = getLexer().getLoc(); 2852 2853 // Consume the prefix character, and check for a following identifier. 2854 2855 AsmToken Buf[1]; 2856 Lexer.peekTokens(Buf, false); 2857 2858 if (Buf[0].isNot(AsmToken::Identifier)) 2859 return true; 2860 2861 // We have a '$' or '@' followed by an identifier, make sure they are adjacent. 2862 if (PrefixLoc.getPointer() + 1 != Buf[0].getLoc().getPointer()) 2863 return true; 2864 2865 // eat $ or @ 2866 Lexer.Lex(); // Lexer's Lex guarantees consecutive token. 2867 // Construct the joined identifier and consume the token. 2868 Res = 2869 StringRef(PrefixLoc.getPointer(), getTok().getIdentifier().size() + 1); 2870 Lex(); // Parser Lex to maintain invariants. 2871 return false; 2872 } 2873 2874 if (Lexer.isNot(AsmToken::Identifier) && Lexer.isNot(AsmToken::String)) 2875 return true; 2876 2877 Res = getTok().getIdentifier(); 2878 2879 Lex(); // Consume the identifier token. 2880 2881 return false; 2882 } 2883 2884 /// parseDirectiveSet: 2885 /// ::= .equ identifier ',' expression 2886 /// ::= .equiv identifier ',' expression 2887 /// ::= .set identifier ',' expression 2888 bool AsmParser::parseDirectiveSet(StringRef IDVal, bool allow_redef) { 2889 StringRef Name; 2890 if (check(parseIdentifier(Name), "expected identifier") || 2891 parseToken(AsmToken::Comma) || parseAssignment(Name, allow_redef, true)) 2892 return addErrorSuffix(" in '" + Twine(IDVal) + "' directive"); 2893 return false; 2894 } 2895 2896 bool AsmParser::parseEscapedString(std::string &Data) { 2897 if (check(getTok().isNot(AsmToken::String), "expected string")) 2898 return true; 2899 2900 Data = ""; 2901 StringRef Str = getTok().getStringContents(); 2902 for (unsigned i = 0, e = Str.size(); i != e; ++i) { 2903 if (Str[i] != '\\') { 2904 Data += Str[i]; 2905 continue; 2906 } 2907 2908 // Recognize escaped characters. Note that this escape semantics currently 2909 // loosely follows Darwin 'as'. 2910 ++i; 2911 if (i == e) 2912 return TokError("unexpected backslash at end of string"); 2913 2914 // Recognize hex sequences similarly to GNU 'as'. 2915 if (Str[i] == 'x' || Str[i] == 'X') { 2916 size_t length = Str.size(); 2917 if (i + 1 >= length || !isHexDigit(Str[i + 1])) 2918 return TokError("invalid hexadecimal escape sequence"); 2919 2920 // Consume hex characters. GNU 'as' reads all hexadecimal characters and 2921 // then truncates to the lower 16 bits. Seems reasonable. 2922 unsigned Value = 0; 2923 while (i + 1 < length && isHexDigit(Str[i + 1])) 2924 Value = Value * 16 + hexDigitValue(Str[++i]); 2925 2926 Data += (unsigned char)(Value & 0xFF); 2927 continue; 2928 } 2929 2930 // Recognize octal sequences. 2931 if ((unsigned)(Str[i] - '0') <= 7) { 2932 // Consume up to three octal characters. 2933 unsigned Value = Str[i] - '0'; 2934 2935 if (i + 1 != e && ((unsigned)(Str[i + 1] - '0')) <= 7) { 2936 ++i; 2937 Value = Value * 8 + (Str[i] - '0'); 2938 2939 if (i + 1 != e && ((unsigned)(Str[i + 1] - '0')) <= 7) { 2940 ++i; 2941 Value = Value * 8 + (Str[i] - '0'); 2942 } 2943 } 2944 2945 if (Value > 255) 2946 return TokError("invalid octal escape sequence (out of range)"); 2947 2948 Data += (unsigned char)Value; 2949 continue; 2950 } 2951 2952 // Otherwise recognize individual escapes. 2953 switch (Str[i]) { 2954 default: 2955 // Just reject invalid escape sequences for now. 2956 return TokError("invalid escape sequence (unrecognized character)"); 2957 2958 case 'b': Data += '\b'; break; 2959 case 'f': Data += '\f'; break; 2960 case 'n': Data += '\n'; break; 2961 case 'r': Data += '\r'; break; 2962 case 't': Data += '\t'; break; 2963 case '"': Data += '"'; break; 2964 case '\\': Data += '\\'; break; 2965 } 2966 } 2967 2968 Lex(); 2969 return false; 2970 } 2971 2972 /// parseDirectiveAscii: 2973 /// ::= ( .ascii | .asciz | .string ) [ "string" ( , "string" )* ] 2974 bool AsmParser::parseDirectiveAscii(StringRef IDVal, bool ZeroTerminated) { 2975 auto parseOp = [&]() -> bool { 2976 std::string Data; 2977 if (checkForValidSection() || parseEscapedString(Data)) 2978 return true; 2979 getStreamer().EmitBytes(Data); 2980 if (ZeroTerminated) 2981 getStreamer().EmitBytes(StringRef("\0", 1)); 2982 return false; 2983 }; 2984 2985 if (parseMany(parseOp)) 2986 return addErrorSuffix(" in '" + Twine(IDVal) + "' directive"); 2987 return false; 2988 } 2989 2990 /// parseDirectiveReloc 2991 /// ::= .reloc expression , identifier [ , expression ] 2992 bool AsmParser::parseDirectiveReloc(SMLoc DirectiveLoc) { 2993 const MCExpr *Offset; 2994 const MCExpr *Expr = nullptr; 2995 int64_t OffsetValue; 2996 SMLoc OffsetLoc = Lexer.getTok().getLoc(); 2997 2998 if (parseExpression(Offset)) 2999 return true; 3000 3001 if ((Offset->evaluateAsAbsolute(OffsetValue, 3002 getStreamer().getAssemblerPtr()) && 3003 check(OffsetValue < 0, OffsetLoc, "expression is negative")) || 3004 (check(Offset->getKind() != llvm::MCExpr::Constant && 3005 Offset->getKind() != llvm::MCExpr::SymbolRef, 3006 OffsetLoc, "expected non-negative number or a label")) || 3007 (parseToken(AsmToken::Comma, "expected comma") || 3008 check(getTok().isNot(AsmToken::Identifier), "expected relocation name"))) 3009 return true; 3010 3011 SMLoc NameLoc = Lexer.getTok().getLoc(); 3012 StringRef Name = Lexer.getTok().getIdentifier(); 3013 Lex(); 3014 3015 if (Lexer.is(AsmToken::Comma)) { 3016 Lex(); 3017 SMLoc ExprLoc = Lexer.getLoc(); 3018 if (parseExpression(Expr)) 3019 return true; 3020 3021 MCValue Value; 3022 if (!Expr->evaluateAsRelocatable(Value, nullptr, nullptr)) 3023 return Error(ExprLoc, "expression must be relocatable"); 3024 } 3025 3026 if (parseToken(AsmToken::EndOfStatement, 3027 "unexpected token in .reloc directive")) 3028 return true; 3029 3030 const MCTargetAsmParser &MCT = getTargetParser(); 3031 const MCSubtargetInfo &STI = MCT.getSTI(); 3032 if (getStreamer().EmitRelocDirective(*Offset, Name, Expr, DirectiveLoc, STI)) 3033 return Error(NameLoc, "unknown relocation name"); 3034 3035 return false; 3036 } 3037 3038 /// parseDirectiveValue 3039 /// ::= (.byte | .short | ... ) [ expression (, expression)* ] 3040 bool AsmParser::parseDirectiveValue(StringRef IDVal, unsigned Size) { 3041 auto parseOp = [&]() -> bool { 3042 const MCExpr *Value; 3043 SMLoc ExprLoc = getLexer().getLoc(); 3044 if (checkForValidSection() || parseExpression(Value)) 3045 return true; 3046 // Special case constant expressions to match code generator. 3047 if (const MCConstantExpr *MCE = dyn_cast<MCConstantExpr>(Value)) { 3048 assert(Size <= 8 && "Invalid size"); 3049 uint64_t IntValue = MCE->getValue(); 3050 if (!isUIntN(8 * Size, IntValue) && !isIntN(8 * Size, IntValue)) 3051 return Error(ExprLoc, "out of range literal value"); 3052 getStreamer().EmitIntValue(IntValue, Size); 3053 } else 3054 getStreamer().EmitValue(Value, Size, ExprLoc); 3055 return false; 3056 }; 3057 3058 if (parseMany(parseOp)) 3059 return addErrorSuffix(" in '" + Twine(IDVal) + "' directive"); 3060 return false; 3061 } 3062 3063 static bool parseHexOcta(AsmParser &Asm, uint64_t &hi, uint64_t &lo) { 3064 if (Asm.getTok().isNot(AsmToken::Integer) && 3065 Asm.getTok().isNot(AsmToken::BigNum)) 3066 return Asm.TokError("unknown token in expression"); 3067 SMLoc ExprLoc = Asm.getTok().getLoc(); 3068 APInt IntValue = Asm.getTok().getAPIntVal(); 3069 Asm.Lex(); 3070 if (!IntValue.isIntN(128)) 3071 return Asm.Error(ExprLoc, "out of range literal value"); 3072 if (!IntValue.isIntN(64)) { 3073 hi = IntValue.getHiBits(IntValue.getBitWidth() - 64).getZExtValue(); 3074 lo = IntValue.getLoBits(64).getZExtValue(); 3075 } else { 3076 hi = 0; 3077 lo = IntValue.getZExtValue(); 3078 } 3079 return false; 3080 } 3081 3082 /// ParseDirectiveOctaValue 3083 /// ::= .octa [ hexconstant (, hexconstant)* ] 3084 3085 bool AsmParser::parseDirectiveOctaValue(StringRef IDVal) { 3086 auto parseOp = [&]() -> bool { 3087 if (checkForValidSection()) 3088 return true; 3089 uint64_t hi, lo; 3090 if (parseHexOcta(*this, hi, lo)) 3091 return true; 3092 if (MAI.isLittleEndian()) { 3093 getStreamer().EmitIntValue(lo, 8); 3094 getStreamer().EmitIntValue(hi, 8); 3095 } else { 3096 getStreamer().EmitIntValue(hi, 8); 3097 getStreamer().EmitIntValue(lo, 8); 3098 } 3099 return false; 3100 }; 3101 3102 if (parseMany(parseOp)) 3103 return addErrorSuffix(" in '" + Twine(IDVal) + "' directive"); 3104 return false; 3105 } 3106 3107 bool AsmParser::parseRealValue(const fltSemantics &Semantics, APInt &Res) { 3108 // We don't truly support arithmetic on floating point expressions, so we 3109 // have to manually parse unary prefixes. 3110 bool IsNeg = false; 3111 if (getLexer().is(AsmToken::Minus)) { 3112 Lexer.Lex(); 3113 IsNeg = true; 3114 } else if (getLexer().is(AsmToken::Plus)) 3115 Lexer.Lex(); 3116 3117 if (Lexer.is(AsmToken::Error)) 3118 return TokError(Lexer.getErr()); 3119 if (Lexer.isNot(AsmToken::Integer) && Lexer.isNot(AsmToken::Real) && 3120 Lexer.isNot(AsmToken::Identifier)) 3121 return TokError("unexpected token in directive"); 3122 3123 // Convert to an APFloat. 3124 APFloat Value(Semantics); 3125 StringRef IDVal = getTok().getString(); 3126 if (getLexer().is(AsmToken::Identifier)) { 3127 if (!IDVal.compare_lower("infinity") || !IDVal.compare_lower("inf")) 3128 Value = APFloat::getInf(Semantics); 3129 else if (!IDVal.compare_lower("nan")) 3130 Value = APFloat::getNaN(Semantics, false, ~0); 3131 else 3132 return TokError("invalid floating point literal"); 3133 } else if (errorToBool( 3134 Value.convertFromString(IDVal, APFloat::rmNearestTiesToEven) 3135 .takeError())) 3136 return TokError("invalid floating point literal"); 3137 if (IsNeg) 3138 Value.changeSign(); 3139 3140 // Consume the numeric token. 3141 Lex(); 3142 3143 Res = Value.bitcastToAPInt(); 3144 3145 return false; 3146 } 3147 3148 /// parseDirectiveRealValue 3149 /// ::= (.single | .double) [ expression (, expression)* ] 3150 bool AsmParser::parseDirectiveRealValue(StringRef IDVal, 3151 const fltSemantics &Semantics) { 3152 auto parseOp = [&]() -> bool { 3153 APInt AsInt; 3154 if (checkForValidSection() || parseRealValue(Semantics, AsInt)) 3155 return true; 3156 getStreamer().EmitIntValue(AsInt.getLimitedValue(), 3157 AsInt.getBitWidth() / 8); 3158 return false; 3159 }; 3160 3161 if (parseMany(parseOp)) 3162 return addErrorSuffix(" in '" + Twine(IDVal) + "' directive"); 3163 return false; 3164 } 3165 3166 /// parseDirectiveZero 3167 /// ::= .zero expression 3168 bool AsmParser::parseDirectiveZero() { 3169 SMLoc NumBytesLoc = Lexer.getLoc(); 3170 const MCExpr *NumBytes; 3171 if (checkForValidSection() || parseExpression(NumBytes)) 3172 return true; 3173 3174 int64_t Val = 0; 3175 if (getLexer().is(AsmToken::Comma)) { 3176 Lex(); 3177 if (parseAbsoluteExpression(Val)) 3178 return true; 3179 } 3180 3181 if (parseToken(AsmToken::EndOfStatement, 3182 "unexpected token in '.zero' directive")) 3183 return true; 3184 getStreamer().emitFill(*NumBytes, Val, NumBytesLoc); 3185 3186 return false; 3187 } 3188 3189 /// parseDirectiveFill 3190 /// ::= .fill expression [ , expression [ , expression ] ] 3191 bool AsmParser::parseDirectiveFill() { 3192 SMLoc NumValuesLoc = Lexer.getLoc(); 3193 const MCExpr *NumValues; 3194 if (checkForValidSection() || parseExpression(NumValues)) 3195 return true; 3196 3197 int64_t FillSize = 1; 3198 int64_t FillExpr = 0; 3199 3200 SMLoc SizeLoc, ExprLoc; 3201 3202 if (parseOptionalToken(AsmToken::Comma)) { 3203 SizeLoc = getTok().getLoc(); 3204 if (parseAbsoluteExpression(FillSize)) 3205 return true; 3206 if (parseOptionalToken(AsmToken::Comma)) { 3207 ExprLoc = getTok().getLoc(); 3208 if (parseAbsoluteExpression(FillExpr)) 3209 return true; 3210 } 3211 } 3212 if (parseToken(AsmToken::EndOfStatement, 3213 "unexpected token in '.fill' directive")) 3214 return true; 3215 3216 if (FillSize < 0) { 3217 Warning(SizeLoc, "'.fill' directive with negative size has no effect"); 3218 return false; 3219 } 3220 if (FillSize > 8) { 3221 Warning(SizeLoc, "'.fill' directive with size greater than 8 has been truncated to 8"); 3222 FillSize = 8; 3223 } 3224 3225 if (!isUInt<32>(FillExpr) && FillSize > 4) 3226 Warning(ExprLoc, "'.fill' directive pattern has been truncated to 32-bits"); 3227 3228 getStreamer().emitFill(*NumValues, FillSize, FillExpr, NumValuesLoc); 3229 3230 return false; 3231 } 3232 3233 /// parseDirectiveOrg 3234 /// ::= .org expression [ , expression ] 3235 bool AsmParser::parseDirectiveOrg() { 3236 const MCExpr *Offset; 3237 SMLoc OffsetLoc = Lexer.getLoc(); 3238 if (checkForValidSection() || parseExpression(Offset)) 3239 return true; 3240 3241 // Parse optional fill expression. 3242 int64_t FillExpr = 0; 3243 if (parseOptionalToken(AsmToken::Comma)) 3244 if (parseAbsoluteExpression(FillExpr)) 3245 return addErrorSuffix(" in '.org' directive"); 3246 if (parseToken(AsmToken::EndOfStatement)) 3247 return addErrorSuffix(" in '.org' directive"); 3248 3249 getStreamer().emitValueToOffset(Offset, FillExpr, OffsetLoc); 3250 return false; 3251 } 3252 3253 /// parseDirectiveAlign 3254 /// ::= {.align, ...} expression [ , expression [ , expression ]] 3255 bool AsmParser::parseDirectiveAlign(bool IsPow2, unsigned ValueSize) { 3256 SMLoc AlignmentLoc = getLexer().getLoc(); 3257 int64_t Alignment; 3258 SMLoc MaxBytesLoc; 3259 bool HasFillExpr = false; 3260 int64_t FillExpr = 0; 3261 int64_t MaxBytesToFill = 0; 3262 3263 auto parseAlign = [&]() -> bool { 3264 if (parseAbsoluteExpression(Alignment)) 3265 return true; 3266 if (parseOptionalToken(AsmToken::Comma)) { 3267 // The fill expression can be omitted while specifying a maximum number of 3268 // alignment bytes, e.g: 3269 // .align 3,,4 3270 if (getTok().isNot(AsmToken::Comma)) { 3271 HasFillExpr = true; 3272 if (parseAbsoluteExpression(FillExpr)) 3273 return true; 3274 } 3275 if (parseOptionalToken(AsmToken::Comma)) 3276 if (parseTokenLoc(MaxBytesLoc) || 3277 parseAbsoluteExpression(MaxBytesToFill)) 3278 return true; 3279 } 3280 return parseToken(AsmToken::EndOfStatement); 3281 }; 3282 3283 if (checkForValidSection()) 3284 return addErrorSuffix(" in directive"); 3285 // Ignore empty '.p2align' directives for GNU-as compatibility 3286 if (IsPow2 && (ValueSize == 1) && getTok().is(AsmToken::EndOfStatement)) { 3287 Warning(AlignmentLoc, "p2align directive with no operand(s) is ignored"); 3288 return parseToken(AsmToken::EndOfStatement); 3289 } 3290 if (parseAlign()) 3291 return addErrorSuffix(" in directive"); 3292 3293 // Always emit an alignment here even if we thrown an error. 3294 bool ReturnVal = false; 3295 3296 // Compute alignment in bytes. 3297 if (IsPow2) { 3298 // FIXME: Diagnose overflow. 3299 if (Alignment >= 32) { 3300 ReturnVal |= Error(AlignmentLoc, "invalid alignment value"); 3301 Alignment = 31; 3302 } 3303 3304 Alignment = 1ULL << Alignment; 3305 } else { 3306 // Reject alignments that aren't either a power of two or zero, 3307 // for gas compatibility. Alignment of zero is silently rounded 3308 // up to one. 3309 if (Alignment == 0) 3310 Alignment = 1; 3311 if (!isPowerOf2_64(Alignment)) 3312 ReturnVal |= Error(AlignmentLoc, "alignment must be a power of 2"); 3313 } 3314 3315 // Diagnose non-sensical max bytes to align. 3316 if (MaxBytesLoc.isValid()) { 3317 if (MaxBytesToFill < 1) { 3318 ReturnVal |= Error(MaxBytesLoc, 3319 "alignment directive can never be satisfied in this " 3320 "many bytes, ignoring maximum bytes expression"); 3321 MaxBytesToFill = 0; 3322 } 3323 3324 if (MaxBytesToFill >= Alignment) { 3325 Warning(MaxBytesLoc, "maximum bytes expression exceeds alignment and " 3326 "has no effect"); 3327 MaxBytesToFill = 0; 3328 } 3329 } 3330 3331 // Check whether we should use optimal code alignment for this .align 3332 // directive. 3333 const MCSection *Section = getStreamer().getCurrentSectionOnly(); 3334 assert(Section && "must have section to emit alignment"); 3335 bool UseCodeAlign = Section->UseCodeAlign(); 3336 if ((!HasFillExpr || Lexer.getMAI().getTextAlignFillValue() == FillExpr) && 3337 ValueSize == 1 && UseCodeAlign) { 3338 getStreamer().EmitCodeAlignment(Alignment, MaxBytesToFill); 3339 } else { 3340 // FIXME: Target specific behavior about how the "extra" bytes are filled. 3341 getStreamer().EmitValueToAlignment(Alignment, FillExpr, ValueSize, 3342 MaxBytesToFill); 3343 } 3344 3345 return ReturnVal; 3346 } 3347 3348 /// parseDirectiveFile 3349 /// ::= .file filename 3350 /// ::= .file number [directory] filename [md5 checksum] [source source-text] 3351 bool AsmParser::parseDirectiveFile(SMLoc DirectiveLoc) { 3352 // FIXME: I'm not sure what this is. 3353 int64_t FileNumber = -1; 3354 if (getLexer().is(AsmToken::Integer)) { 3355 FileNumber = getTok().getIntVal(); 3356 Lex(); 3357 3358 if (FileNumber < 0) 3359 return TokError("negative file number"); 3360 } 3361 3362 std::string Path; 3363 3364 // Usually the directory and filename together, otherwise just the directory. 3365 // Allow the strings to have escaped octal character sequence. 3366 if (check(getTok().isNot(AsmToken::String), 3367 "unexpected token in '.file' directive") || 3368 parseEscapedString(Path)) 3369 return true; 3370 3371 StringRef Directory; 3372 StringRef Filename; 3373 std::string FilenameData; 3374 if (getLexer().is(AsmToken::String)) { 3375 if (check(FileNumber == -1, 3376 "explicit path specified, but no file number") || 3377 parseEscapedString(FilenameData)) 3378 return true; 3379 Filename = FilenameData; 3380 Directory = Path; 3381 } else { 3382 Filename = Path; 3383 } 3384 3385 uint64_t MD5Hi, MD5Lo; 3386 bool HasMD5 = false; 3387 3388 Optional<StringRef> Source; 3389 bool HasSource = false; 3390 std::string SourceString; 3391 3392 while (!parseOptionalToken(AsmToken::EndOfStatement)) { 3393 StringRef Keyword; 3394 if (check(getTok().isNot(AsmToken::Identifier), 3395 "unexpected token in '.file' directive") || 3396 parseIdentifier(Keyword)) 3397 return true; 3398 if (Keyword == "md5") { 3399 HasMD5 = true; 3400 if (check(FileNumber == -1, 3401 "MD5 checksum specified, but no file number") || 3402 parseHexOcta(*this, MD5Hi, MD5Lo)) 3403 return true; 3404 } else if (Keyword == "source") { 3405 HasSource = true; 3406 if (check(FileNumber == -1, 3407 "source specified, but no file number") || 3408 check(getTok().isNot(AsmToken::String), 3409 "unexpected token in '.file' directive") || 3410 parseEscapedString(SourceString)) 3411 return true; 3412 } else { 3413 return TokError("unexpected token in '.file' directive"); 3414 } 3415 } 3416 3417 if (FileNumber == -1) { 3418 // Ignore the directive if there is no number and the target doesn't support 3419 // numberless .file directives. This allows some portability of assembler 3420 // between different object file formats. 3421 if (getContext().getAsmInfo()->hasSingleParameterDotFile()) 3422 getStreamer().EmitFileDirective(Filename); 3423 } else { 3424 // In case there is a -g option as well as debug info from directive .file, 3425 // we turn off the -g option, directly use the existing debug info instead. 3426 // Throw away any implicit file table for the assembler source. 3427 if (Ctx.getGenDwarfForAssembly()) { 3428 Ctx.getMCDwarfLineTable(0).resetFileTable(); 3429 Ctx.setGenDwarfForAssembly(false); 3430 } 3431 3432 Optional<MD5::MD5Result> CKMem; 3433 if (HasMD5) { 3434 MD5::MD5Result Sum; 3435 for (unsigned i = 0; i != 8; ++i) { 3436 Sum.Bytes[i] = uint8_t(MD5Hi >> ((7 - i) * 8)); 3437 Sum.Bytes[i + 8] = uint8_t(MD5Lo >> ((7 - i) * 8)); 3438 } 3439 CKMem = Sum; 3440 } 3441 if (HasSource) { 3442 char *SourceBuf = static_cast<char *>(Ctx.allocate(SourceString.size())); 3443 memcpy(SourceBuf, SourceString.data(), SourceString.size()); 3444 Source = StringRef(SourceBuf, SourceString.size()); 3445 } 3446 if (FileNumber == 0) { 3447 if (Ctx.getDwarfVersion() < 5) 3448 return Warning(DirectiveLoc, "file 0 not supported prior to DWARF-5"); 3449 getStreamer().emitDwarfFile0Directive(Directory, Filename, CKMem, Source); 3450 } else { 3451 Expected<unsigned> FileNumOrErr = getStreamer().tryEmitDwarfFileDirective( 3452 FileNumber, Directory, Filename, CKMem, Source); 3453 if (!FileNumOrErr) 3454 return Error(DirectiveLoc, toString(FileNumOrErr.takeError())); 3455 } 3456 // Alert the user if there are some .file directives with MD5 and some not. 3457 // But only do that once. 3458 if (!ReportedInconsistentMD5 && !Ctx.isDwarfMD5UsageConsistent(0)) { 3459 ReportedInconsistentMD5 = true; 3460 return Warning(DirectiveLoc, "inconsistent use of MD5 checksums"); 3461 } 3462 } 3463 3464 return false; 3465 } 3466 3467 /// parseDirectiveLine 3468 /// ::= .line [number] 3469 bool AsmParser::parseDirectiveLine() { 3470 int64_t LineNumber; 3471 if (getLexer().is(AsmToken::Integer)) { 3472 if (parseIntToken(LineNumber, "unexpected token in '.line' directive")) 3473 return true; 3474 (void)LineNumber; 3475 // FIXME: Do something with the .line. 3476 } 3477 if (parseToken(AsmToken::EndOfStatement, 3478 "unexpected token in '.line' directive")) 3479 return true; 3480 3481 return false; 3482 } 3483 3484 /// parseDirectiveLoc 3485 /// ::= .loc FileNumber [LineNumber] [ColumnPos] [basic_block] [prologue_end] 3486 /// [epilogue_begin] [is_stmt VALUE] [isa VALUE] 3487 /// The first number is a file number, must have been previously assigned with 3488 /// a .file directive, the second number is the line number and optionally the 3489 /// third number is a column position (zero if not specified). The remaining 3490 /// optional items are .loc sub-directives. 3491 bool AsmParser::parseDirectiveLoc() { 3492 int64_t FileNumber = 0, LineNumber = 0; 3493 SMLoc Loc = getTok().getLoc(); 3494 if (parseIntToken(FileNumber, "unexpected token in '.loc' directive") || 3495 check(FileNumber < 1 && Ctx.getDwarfVersion() < 5, Loc, 3496 "file number less than one in '.loc' directive") || 3497 check(!getContext().isValidDwarfFileNumber(FileNumber), Loc, 3498 "unassigned file number in '.loc' directive")) 3499 return true; 3500 3501 // optional 3502 if (getLexer().is(AsmToken::Integer)) { 3503 LineNumber = getTok().getIntVal(); 3504 if (LineNumber < 0) 3505 return TokError("line number less than zero in '.loc' directive"); 3506 Lex(); 3507 } 3508 3509 int64_t ColumnPos = 0; 3510 if (getLexer().is(AsmToken::Integer)) { 3511 ColumnPos = getTok().getIntVal(); 3512 if (ColumnPos < 0) 3513 return TokError("column position less than zero in '.loc' directive"); 3514 Lex(); 3515 } 3516 3517 unsigned Flags = DWARF2_LINE_DEFAULT_IS_STMT ? DWARF2_FLAG_IS_STMT : 0; 3518 unsigned Isa = 0; 3519 int64_t Discriminator = 0; 3520 3521 auto parseLocOp = [&]() -> bool { 3522 StringRef Name; 3523 SMLoc Loc = getTok().getLoc(); 3524 if (parseIdentifier(Name)) 3525 return TokError("unexpected token in '.loc' directive"); 3526 3527 if (Name == "basic_block") 3528 Flags |= DWARF2_FLAG_BASIC_BLOCK; 3529 else if (Name == "prologue_end") 3530 Flags |= DWARF2_FLAG_PROLOGUE_END; 3531 else if (Name == "epilogue_begin") 3532 Flags |= DWARF2_FLAG_EPILOGUE_BEGIN; 3533 else if (Name == "is_stmt") { 3534 Loc = getTok().getLoc(); 3535 const MCExpr *Value; 3536 if (parseExpression(Value)) 3537 return true; 3538 // The expression must be the constant 0 or 1. 3539 if (const MCConstantExpr *MCE = dyn_cast<MCConstantExpr>(Value)) { 3540 int Value = MCE->getValue(); 3541 if (Value == 0) 3542 Flags &= ~DWARF2_FLAG_IS_STMT; 3543 else if (Value == 1) 3544 Flags |= DWARF2_FLAG_IS_STMT; 3545 else 3546 return Error(Loc, "is_stmt value not 0 or 1"); 3547 } else { 3548 return Error(Loc, "is_stmt value not the constant value of 0 or 1"); 3549 } 3550 } else if (Name == "isa") { 3551 Loc = getTok().getLoc(); 3552 const MCExpr *Value; 3553 if (parseExpression(Value)) 3554 return true; 3555 // The expression must be a constant greater or equal to 0. 3556 if (const MCConstantExpr *MCE = dyn_cast<MCConstantExpr>(Value)) { 3557 int Value = MCE->getValue(); 3558 if (Value < 0) 3559 return Error(Loc, "isa number less than zero"); 3560 Isa = Value; 3561 } else { 3562 return Error(Loc, "isa number not a constant value"); 3563 } 3564 } else if (Name == "discriminator") { 3565 if (parseAbsoluteExpression(Discriminator)) 3566 return true; 3567 } else { 3568 return Error(Loc, "unknown sub-directive in '.loc' directive"); 3569 } 3570 return false; 3571 }; 3572 3573 if (parseMany(parseLocOp, false /*hasComma*/)) 3574 return true; 3575 3576 getStreamer().EmitDwarfLocDirective(FileNumber, LineNumber, ColumnPos, Flags, 3577 Isa, Discriminator, StringRef()); 3578 3579 return false; 3580 } 3581 3582 /// parseDirectiveStabs 3583 /// ::= .stabs string, number, number, number 3584 bool AsmParser::parseDirectiveStabs() { 3585 return TokError("unsupported directive '.stabs'"); 3586 } 3587 3588 /// parseDirectiveCVFile 3589 /// ::= .cv_file number filename [checksum] [checksumkind] 3590 bool AsmParser::parseDirectiveCVFile() { 3591 SMLoc FileNumberLoc = getTok().getLoc(); 3592 int64_t FileNumber; 3593 std::string Filename; 3594 std::string Checksum; 3595 int64_t ChecksumKind = 0; 3596 3597 if (parseIntToken(FileNumber, 3598 "expected file number in '.cv_file' directive") || 3599 check(FileNumber < 1, FileNumberLoc, "file number less than one") || 3600 check(getTok().isNot(AsmToken::String), 3601 "unexpected token in '.cv_file' directive") || 3602 parseEscapedString(Filename)) 3603 return true; 3604 if (!parseOptionalToken(AsmToken::EndOfStatement)) { 3605 if (check(getTok().isNot(AsmToken::String), 3606 "unexpected token in '.cv_file' directive") || 3607 parseEscapedString(Checksum) || 3608 parseIntToken(ChecksumKind, 3609 "expected checksum kind in '.cv_file' directive") || 3610 parseToken(AsmToken::EndOfStatement, 3611 "unexpected token in '.cv_file' directive")) 3612 return true; 3613 } 3614 3615 Checksum = fromHex(Checksum); 3616 void *CKMem = Ctx.allocate(Checksum.size(), 1); 3617 memcpy(CKMem, Checksum.data(), Checksum.size()); 3618 ArrayRef<uint8_t> ChecksumAsBytes(reinterpret_cast<const uint8_t *>(CKMem), 3619 Checksum.size()); 3620 3621 if (!getStreamer().EmitCVFileDirective(FileNumber, Filename, ChecksumAsBytes, 3622 static_cast<uint8_t>(ChecksumKind))) 3623 return Error(FileNumberLoc, "file number already allocated"); 3624 3625 return false; 3626 } 3627 3628 bool AsmParser::parseCVFunctionId(int64_t &FunctionId, 3629 StringRef DirectiveName) { 3630 SMLoc Loc; 3631 return parseTokenLoc(Loc) || 3632 parseIntToken(FunctionId, "expected function id in '" + DirectiveName + 3633 "' directive") || 3634 check(FunctionId < 0 || FunctionId >= UINT_MAX, Loc, 3635 "expected function id within range [0, UINT_MAX)"); 3636 } 3637 3638 bool AsmParser::parseCVFileId(int64_t &FileNumber, StringRef DirectiveName) { 3639 SMLoc Loc; 3640 return parseTokenLoc(Loc) || 3641 parseIntToken(FileNumber, "expected integer in '" + DirectiveName + 3642 "' directive") || 3643 check(FileNumber < 1, Loc, "file number less than one in '" + 3644 DirectiveName + "' directive") || 3645 check(!getCVContext().isValidFileNumber(FileNumber), Loc, 3646 "unassigned file number in '" + DirectiveName + "' directive"); 3647 } 3648 3649 /// parseDirectiveCVFuncId 3650 /// ::= .cv_func_id FunctionId 3651 /// 3652 /// Introduces a function ID that can be used with .cv_loc. 3653 bool AsmParser::parseDirectiveCVFuncId() { 3654 SMLoc FunctionIdLoc = getTok().getLoc(); 3655 int64_t FunctionId; 3656 3657 if (parseCVFunctionId(FunctionId, ".cv_func_id") || 3658 parseToken(AsmToken::EndOfStatement, 3659 "unexpected token in '.cv_func_id' directive")) 3660 return true; 3661 3662 if (!getStreamer().EmitCVFuncIdDirective(FunctionId)) 3663 return Error(FunctionIdLoc, "function id already allocated"); 3664 3665 return false; 3666 } 3667 3668 /// parseDirectiveCVInlineSiteId 3669 /// ::= .cv_inline_site_id FunctionId 3670 /// "within" IAFunc 3671 /// "inlined_at" IAFile IALine [IACol] 3672 /// 3673 /// Introduces a function ID that can be used with .cv_loc. Includes "inlined 3674 /// at" source location information for use in the line table of the caller, 3675 /// whether the caller is a real function or another inlined call site. 3676 bool AsmParser::parseDirectiveCVInlineSiteId() { 3677 SMLoc FunctionIdLoc = getTok().getLoc(); 3678 int64_t FunctionId; 3679 int64_t IAFunc; 3680 int64_t IAFile; 3681 int64_t IALine; 3682 int64_t IACol = 0; 3683 3684 // FunctionId 3685 if (parseCVFunctionId(FunctionId, ".cv_inline_site_id")) 3686 return true; 3687 3688 // "within" 3689 if (check((getLexer().isNot(AsmToken::Identifier) || 3690 getTok().getIdentifier() != "within"), 3691 "expected 'within' identifier in '.cv_inline_site_id' directive")) 3692 return true; 3693 Lex(); 3694 3695 // IAFunc 3696 if (parseCVFunctionId(IAFunc, ".cv_inline_site_id")) 3697 return true; 3698 3699 // "inlined_at" 3700 if (check((getLexer().isNot(AsmToken::Identifier) || 3701 getTok().getIdentifier() != "inlined_at"), 3702 "expected 'inlined_at' identifier in '.cv_inline_site_id' " 3703 "directive") ) 3704 return true; 3705 Lex(); 3706 3707 // IAFile IALine 3708 if (parseCVFileId(IAFile, ".cv_inline_site_id") || 3709 parseIntToken(IALine, "expected line number after 'inlined_at'")) 3710 return true; 3711 3712 // [IACol] 3713 if (getLexer().is(AsmToken::Integer)) { 3714 IACol = getTok().getIntVal(); 3715 Lex(); 3716 } 3717 3718 if (parseToken(AsmToken::EndOfStatement, 3719 "unexpected token in '.cv_inline_site_id' directive")) 3720 return true; 3721 3722 if (!getStreamer().EmitCVInlineSiteIdDirective(FunctionId, IAFunc, IAFile, 3723 IALine, IACol, FunctionIdLoc)) 3724 return Error(FunctionIdLoc, "function id already allocated"); 3725 3726 return false; 3727 } 3728 3729 /// parseDirectiveCVLoc 3730 /// ::= .cv_loc FunctionId FileNumber [LineNumber] [ColumnPos] [prologue_end] 3731 /// [is_stmt VALUE] 3732 /// The first number is a file number, must have been previously assigned with 3733 /// a .file directive, the second number is the line number and optionally the 3734 /// third number is a column position (zero if not specified). The remaining 3735 /// optional items are .loc sub-directives. 3736 bool AsmParser::parseDirectiveCVLoc() { 3737 SMLoc DirectiveLoc = getTok().getLoc(); 3738 int64_t FunctionId, FileNumber; 3739 if (parseCVFunctionId(FunctionId, ".cv_loc") || 3740 parseCVFileId(FileNumber, ".cv_loc")) 3741 return true; 3742 3743 int64_t LineNumber = 0; 3744 if (getLexer().is(AsmToken::Integer)) { 3745 LineNumber = getTok().getIntVal(); 3746 if (LineNumber < 0) 3747 return TokError("line number less than zero in '.cv_loc' directive"); 3748 Lex(); 3749 } 3750 3751 int64_t ColumnPos = 0; 3752 if (getLexer().is(AsmToken::Integer)) { 3753 ColumnPos = getTok().getIntVal(); 3754 if (ColumnPos < 0) 3755 return TokError("column position less than zero in '.cv_loc' directive"); 3756 Lex(); 3757 } 3758 3759 bool PrologueEnd = false; 3760 uint64_t IsStmt = 0; 3761 3762 auto parseOp = [&]() -> bool { 3763 StringRef Name; 3764 SMLoc Loc = getTok().getLoc(); 3765 if (parseIdentifier(Name)) 3766 return TokError("unexpected token in '.cv_loc' directive"); 3767 if (Name == "prologue_end") 3768 PrologueEnd = true; 3769 else if (Name == "is_stmt") { 3770 Loc = getTok().getLoc(); 3771 const MCExpr *Value; 3772 if (parseExpression(Value)) 3773 return true; 3774 // The expression must be the constant 0 or 1. 3775 IsStmt = ~0ULL; 3776 if (const auto *MCE = dyn_cast<MCConstantExpr>(Value)) 3777 IsStmt = MCE->getValue(); 3778 3779 if (IsStmt > 1) 3780 return Error(Loc, "is_stmt value not 0 or 1"); 3781 } else { 3782 return Error(Loc, "unknown sub-directive in '.cv_loc' directive"); 3783 } 3784 return false; 3785 }; 3786 3787 if (parseMany(parseOp, false /*hasComma*/)) 3788 return true; 3789 3790 getStreamer().EmitCVLocDirective(FunctionId, FileNumber, LineNumber, 3791 ColumnPos, PrologueEnd, IsStmt, StringRef(), 3792 DirectiveLoc); 3793 return false; 3794 } 3795 3796 /// parseDirectiveCVLinetable 3797 /// ::= .cv_linetable FunctionId, FnStart, FnEnd 3798 bool AsmParser::parseDirectiveCVLinetable() { 3799 int64_t FunctionId; 3800 StringRef FnStartName, FnEndName; 3801 SMLoc Loc = getTok().getLoc(); 3802 if (parseCVFunctionId(FunctionId, ".cv_linetable") || 3803 parseToken(AsmToken::Comma, 3804 "unexpected token in '.cv_linetable' directive") || 3805 parseTokenLoc(Loc) || check(parseIdentifier(FnStartName), Loc, 3806 "expected identifier in directive") || 3807 parseToken(AsmToken::Comma, 3808 "unexpected token in '.cv_linetable' directive") || 3809 parseTokenLoc(Loc) || check(parseIdentifier(FnEndName), Loc, 3810 "expected identifier in directive")) 3811 return true; 3812 3813 MCSymbol *FnStartSym = getContext().getOrCreateSymbol(FnStartName); 3814 MCSymbol *FnEndSym = getContext().getOrCreateSymbol(FnEndName); 3815 3816 getStreamer().EmitCVLinetableDirective(FunctionId, FnStartSym, FnEndSym); 3817 return false; 3818 } 3819 3820 /// parseDirectiveCVInlineLinetable 3821 /// ::= .cv_inline_linetable PrimaryFunctionId FileId LineNum FnStart FnEnd 3822 bool AsmParser::parseDirectiveCVInlineLinetable() { 3823 int64_t PrimaryFunctionId, SourceFileId, SourceLineNum; 3824 StringRef FnStartName, FnEndName; 3825 SMLoc Loc = getTok().getLoc(); 3826 if (parseCVFunctionId(PrimaryFunctionId, ".cv_inline_linetable") || 3827 parseTokenLoc(Loc) || 3828 parseIntToken( 3829 SourceFileId, 3830 "expected SourceField in '.cv_inline_linetable' directive") || 3831 check(SourceFileId <= 0, Loc, 3832 "File id less than zero in '.cv_inline_linetable' directive") || 3833 parseTokenLoc(Loc) || 3834 parseIntToken( 3835 SourceLineNum, 3836 "expected SourceLineNum in '.cv_inline_linetable' directive") || 3837 check(SourceLineNum < 0, Loc, 3838 "Line number less than zero in '.cv_inline_linetable' directive") || 3839 parseTokenLoc(Loc) || check(parseIdentifier(FnStartName), Loc, 3840 "expected identifier in directive") || 3841 parseTokenLoc(Loc) || check(parseIdentifier(FnEndName), Loc, 3842 "expected identifier in directive")) 3843 return true; 3844 3845 if (parseToken(AsmToken::EndOfStatement, "Expected End of Statement")) 3846 return true; 3847 3848 MCSymbol *FnStartSym = getContext().getOrCreateSymbol(FnStartName); 3849 MCSymbol *FnEndSym = getContext().getOrCreateSymbol(FnEndName); 3850 getStreamer().EmitCVInlineLinetableDirective(PrimaryFunctionId, SourceFileId, 3851 SourceLineNum, FnStartSym, 3852 FnEndSym); 3853 return false; 3854 } 3855 3856 void AsmParser::initializeCVDefRangeTypeMap() { 3857 CVDefRangeTypeMap["reg"] = CVDR_DEFRANGE_REGISTER; 3858 CVDefRangeTypeMap["frame_ptr_rel"] = CVDR_DEFRANGE_FRAMEPOINTER_REL; 3859 CVDefRangeTypeMap["subfield_reg"] = CVDR_DEFRANGE_SUBFIELD_REGISTER; 3860 CVDefRangeTypeMap["reg_rel"] = CVDR_DEFRANGE_REGISTER_REL; 3861 } 3862 3863 /// parseDirectiveCVDefRange 3864 /// ::= .cv_def_range RangeStart RangeEnd (GapStart GapEnd)*, bytes* 3865 bool AsmParser::parseDirectiveCVDefRange() { 3866 SMLoc Loc; 3867 std::vector<std::pair<const MCSymbol *, const MCSymbol *>> Ranges; 3868 while (getLexer().is(AsmToken::Identifier)) { 3869 Loc = getLexer().getLoc(); 3870 StringRef GapStartName; 3871 if (parseIdentifier(GapStartName)) 3872 return Error(Loc, "expected identifier in directive"); 3873 MCSymbol *GapStartSym = getContext().getOrCreateSymbol(GapStartName); 3874 3875 Loc = getLexer().getLoc(); 3876 StringRef GapEndName; 3877 if (parseIdentifier(GapEndName)) 3878 return Error(Loc, "expected identifier in directive"); 3879 MCSymbol *GapEndSym = getContext().getOrCreateSymbol(GapEndName); 3880 3881 Ranges.push_back({GapStartSym, GapEndSym}); 3882 } 3883 3884 StringRef CVDefRangeTypeStr; 3885 if (parseToken( 3886 AsmToken::Comma, 3887 "expected comma before def_range type in .cv_def_range directive") || 3888 parseIdentifier(CVDefRangeTypeStr)) 3889 return Error(Loc, "expected def_range type in directive"); 3890 3891 StringMap<CVDefRangeType>::const_iterator CVTypeIt = 3892 CVDefRangeTypeMap.find(CVDefRangeTypeStr); 3893 CVDefRangeType CVDRType = (CVTypeIt == CVDefRangeTypeMap.end()) 3894 ? CVDR_DEFRANGE 3895 : CVTypeIt->getValue(); 3896 switch (CVDRType) { 3897 case CVDR_DEFRANGE_REGISTER: { 3898 int64_t DRRegister; 3899 if (parseToken(AsmToken::Comma, "expected comma before register number in " 3900 ".cv_def_range directive") || 3901 parseAbsoluteExpression(DRRegister)) 3902 return Error(Loc, "expected register number"); 3903 3904 codeview::DefRangeRegisterHeader DRHdr; 3905 DRHdr.Register = DRRegister; 3906 DRHdr.MayHaveNoName = 0; 3907 getStreamer().EmitCVDefRangeDirective(Ranges, DRHdr); 3908 break; 3909 } 3910 case CVDR_DEFRANGE_FRAMEPOINTER_REL: { 3911 int64_t DROffset; 3912 if (parseToken(AsmToken::Comma, 3913 "expected comma before offset in .cv_def_range directive") || 3914 parseAbsoluteExpression(DROffset)) 3915 return Error(Loc, "expected offset value"); 3916 3917 codeview::DefRangeFramePointerRelHeader DRHdr; 3918 DRHdr.Offset = DROffset; 3919 getStreamer().EmitCVDefRangeDirective(Ranges, DRHdr); 3920 break; 3921 } 3922 case CVDR_DEFRANGE_SUBFIELD_REGISTER: { 3923 int64_t DRRegister; 3924 int64_t DROffsetInParent; 3925 if (parseToken(AsmToken::Comma, "expected comma before register number in " 3926 ".cv_def_range directive") || 3927 parseAbsoluteExpression(DRRegister)) 3928 return Error(Loc, "expected register number"); 3929 if (parseToken(AsmToken::Comma, 3930 "expected comma before offset in .cv_def_range directive") || 3931 parseAbsoluteExpression(DROffsetInParent)) 3932 return Error(Loc, "expected offset value"); 3933 3934 codeview::DefRangeSubfieldRegisterHeader DRHdr; 3935 DRHdr.Register = DRRegister; 3936 DRHdr.MayHaveNoName = 0; 3937 DRHdr.OffsetInParent = DROffsetInParent; 3938 getStreamer().EmitCVDefRangeDirective(Ranges, DRHdr); 3939 break; 3940 } 3941 case CVDR_DEFRANGE_REGISTER_REL: { 3942 int64_t DRRegister; 3943 int64_t DRFlags; 3944 int64_t DRBasePointerOffset; 3945 if (parseToken(AsmToken::Comma, "expected comma before register number in " 3946 ".cv_def_range directive") || 3947 parseAbsoluteExpression(DRRegister)) 3948 return Error(Loc, "expected register value"); 3949 if (parseToken( 3950 AsmToken::Comma, 3951 "expected comma before flag value in .cv_def_range directive") || 3952 parseAbsoluteExpression(DRFlags)) 3953 return Error(Loc, "expected flag value"); 3954 if (parseToken(AsmToken::Comma, "expected comma before base pointer offset " 3955 "in .cv_def_range directive") || 3956 parseAbsoluteExpression(DRBasePointerOffset)) 3957 return Error(Loc, "expected base pointer offset value"); 3958 3959 codeview::DefRangeRegisterRelHeader DRHdr; 3960 DRHdr.Register = DRRegister; 3961 DRHdr.Flags = DRFlags; 3962 DRHdr.BasePointerOffset = DRBasePointerOffset; 3963 getStreamer().EmitCVDefRangeDirective(Ranges, DRHdr); 3964 break; 3965 } 3966 default: 3967 return Error(Loc, "unexpected def_range type in .cv_def_range directive"); 3968 } 3969 return true; 3970 } 3971 3972 /// parseDirectiveCVString 3973 /// ::= .cv_stringtable "string" 3974 bool AsmParser::parseDirectiveCVString() { 3975 std::string Data; 3976 if (checkForValidSection() || parseEscapedString(Data)) 3977 return addErrorSuffix(" in '.cv_string' directive"); 3978 3979 // Put the string in the table and emit the offset. 3980 std::pair<StringRef, unsigned> Insertion = 3981 getCVContext().addToStringTable(Data); 3982 getStreamer().EmitIntValue(Insertion.second, 4); 3983 return false; 3984 } 3985 3986 /// parseDirectiveCVStringTable 3987 /// ::= .cv_stringtable 3988 bool AsmParser::parseDirectiveCVStringTable() { 3989 getStreamer().EmitCVStringTableDirective(); 3990 return false; 3991 } 3992 3993 /// parseDirectiveCVFileChecksums 3994 /// ::= .cv_filechecksums 3995 bool AsmParser::parseDirectiveCVFileChecksums() { 3996 getStreamer().EmitCVFileChecksumsDirective(); 3997 return false; 3998 } 3999 4000 /// parseDirectiveCVFileChecksumOffset 4001 /// ::= .cv_filechecksumoffset fileno 4002 bool AsmParser::parseDirectiveCVFileChecksumOffset() { 4003 int64_t FileNo; 4004 if (parseIntToken(FileNo, "expected identifier in directive")) 4005 return true; 4006 if (parseToken(AsmToken::EndOfStatement, "Expected End of Statement")) 4007 return true; 4008 getStreamer().EmitCVFileChecksumOffsetDirective(FileNo); 4009 return false; 4010 } 4011 4012 /// parseDirectiveCVFPOData 4013 /// ::= .cv_fpo_data procsym 4014 bool AsmParser::parseDirectiveCVFPOData() { 4015 SMLoc DirLoc = getLexer().getLoc(); 4016 StringRef ProcName; 4017 if (parseIdentifier(ProcName)) 4018 return TokError("expected symbol name"); 4019 if (parseEOL("unexpected tokens")) 4020 return addErrorSuffix(" in '.cv_fpo_data' directive"); 4021 MCSymbol *ProcSym = getContext().getOrCreateSymbol(ProcName); 4022 getStreamer().EmitCVFPOData(ProcSym, DirLoc); 4023 return false; 4024 } 4025 4026 /// parseDirectiveCFISections 4027 /// ::= .cfi_sections section [, section] 4028 bool AsmParser::parseDirectiveCFISections() { 4029 StringRef Name; 4030 bool EH = false; 4031 bool Debug = false; 4032 4033 if (parseIdentifier(Name)) 4034 return TokError("Expected an identifier"); 4035 4036 if (Name == ".eh_frame") 4037 EH = true; 4038 else if (Name == ".debug_frame") 4039 Debug = true; 4040 4041 if (getLexer().is(AsmToken::Comma)) { 4042 Lex(); 4043 4044 if (parseIdentifier(Name)) 4045 return TokError("Expected an identifier"); 4046 4047 if (Name == ".eh_frame") 4048 EH = true; 4049 else if (Name == ".debug_frame") 4050 Debug = true; 4051 } 4052 4053 getStreamer().EmitCFISections(EH, Debug); 4054 return false; 4055 } 4056 4057 /// parseDirectiveCFIStartProc 4058 /// ::= .cfi_startproc [simple] 4059 bool AsmParser::parseDirectiveCFIStartProc() { 4060 StringRef Simple; 4061 if (!parseOptionalToken(AsmToken::EndOfStatement)) { 4062 if (check(parseIdentifier(Simple) || Simple != "simple", 4063 "unexpected token") || 4064 parseToken(AsmToken::EndOfStatement)) 4065 return addErrorSuffix(" in '.cfi_startproc' directive"); 4066 } 4067 4068 // TODO(kristina): Deal with a corner case of incorrect diagnostic context 4069 // being produced if this directive is emitted as part of preprocessor macro 4070 // expansion which can *ONLY* happen if Clang's cc1as is the API consumer. 4071 // Tools like llvm-mc on the other hand are not affected by it, and report 4072 // correct context information. 4073 getStreamer().EmitCFIStartProc(!Simple.empty(), Lexer.getLoc()); 4074 return false; 4075 } 4076 4077 /// parseDirectiveCFIEndProc 4078 /// ::= .cfi_endproc 4079 bool AsmParser::parseDirectiveCFIEndProc() { 4080 getStreamer().EmitCFIEndProc(); 4081 return false; 4082 } 4083 4084 /// parse register name or number. 4085 bool AsmParser::parseRegisterOrRegisterNumber(int64_t &Register, 4086 SMLoc DirectiveLoc) { 4087 unsigned RegNo; 4088 4089 if (getLexer().isNot(AsmToken::Integer)) { 4090 if (getTargetParser().ParseRegister(RegNo, DirectiveLoc, DirectiveLoc)) 4091 return true; 4092 Register = getContext().getRegisterInfo()->getDwarfRegNum(RegNo, true); 4093 } else 4094 return parseAbsoluteExpression(Register); 4095 4096 return false; 4097 } 4098 4099 /// parseDirectiveCFIDefCfa 4100 /// ::= .cfi_def_cfa register, offset 4101 bool AsmParser::parseDirectiveCFIDefCfa(SMLoc DirectiveLoc) { 4102 int64_t Register = 0, Offset = 0; 4103 if (parseRegisterOrRegisterNumber(Register, DirectiveLoc) || 4104 parseToken(AsmToken::Comma, "unexpected token in directive") || 4105 parseAbsoluteExpression(Offset)) 4106 return true; 4107 4108 getStreamer().EmitCFIDefCfa(Register, Offset); 4109 return false; 4110 } 4111 4112 /// parseDirectiveCFIDefCfaOffset 4113 /// ::= .cfi_def_cfa_offset offset 4114 bool AsmParser::parseDirectiveCFIDefCfaOffset() { 4115 int64_t Offset = 0; 4116 if (parseAbsoluteExpression(Offset)) 4117 return true; 4118 4119 getStreamer().EmitCFIDefCfaOffset(Offset); 4120 return false; 4121 } 4122 4123 /// parseDirectiveCFIRegister 4124 /// ::= .cfi_register register, register 4125 bool AsmParser::parseDirectiveCFIRegister(SMLoc DirectiveLoc) { 4126 int64_t Register1 = 0, Register2 = 0; 4127 if (parseRegisterOrRegisterNumber(Register1, DirectiveLoc) || 4128 parseToken(AsmToken::Comma, "unexpected token in directive") || 4129 parseRegisterOrRegisterNumber(Register2, DirectiveLoc)) 4130 return true; 4131 4132 getStreamer().EmitCFIRegister(Register1, Register2); 4133 return false; 4134 } 4135 4136 /// parseDirectiveCFIWindowSave 4137 /// ::= .cfi_window_save 4138 bool AsmParser::parseDirectiveCFIWindowSave() { 4139 getStreamer().EmitCFIWindowSave(); 4140 return false; 4141 } 4142 4143 /// parseDirectiveCFIAdjustCfaOffset 4144 /// ::= .cfi_adjust_cfa_offset adjustment 4145 bool AsmParser::parseDirectiveCFIAdjustCfaOffset() { 4146 int64_t Adjustment = 0; 4147 if (parseAbsoluteExpression(Adjustment)) 4148 return true; 4149 4150 getStreamer().EmitCFIAdjustCfaOffset(Adjustment); 4151 return false; 4152 } 4153 4154 /// parseDirectiveCFIDefCfaRegister 4155 /// ::= .cfi_def_cfa_register register 4156 bool AsmParser::parseDirectiveCFIDefCfaRegister(SMLoc DirectiveLoc) { 4157 int64_t Register = 0; 4158 if (parseRegisterOrRegisterNumber(Register, DirectiveLoc)) 4159 return true; 4160 4161 getStreamer().EmitCFIDefCfaRegister(Register); 4162 return false; 4163 } 4164 4165 /// parseDirectiveCFIOffset 4166 /// ::= .cfi_offset register, offset 4167 bool AsmParser::parseDirectiveCFIOffset(SMLoc DirectiveLoc) { 4168 int64_t Register = 0; 4169 int64_t Offset = 0; 4170 4171 if (parseRegisterOrRegisterNumber(Register, DirectiveLoc) || 4172 parseToken(AsmToken::Comma, "unexpected token in directive") || 4173 parseAbsoluteExpression(Offset)) 4174 return true; 4175 4176 getStreamer().EmitCFIOffset(Register, Offset); 4177 return false; 4178 } 4179 4180 /// parseDirectiveCFIRelOffset 4181 /// ::= .cfi_rel_offset register, offset 4182 bool AsmParser::parseDirectiveCFIRelOffset(SMLoc DirectiveLoc) { 4183 int64_t Register = 0, Offset = 0; 4184 4185 if (parseRegisterOrRegisterNumber(Register, DirectiveLoc) || 4186 parseToken(AsmToken::Comma, "unexpected token in directive") || 4187 parseAbsoluteExpression(Offset)) 4188 return true; 4189 4190 getStreamer().EmitCFIRelOffset(Register, Offset); 4191 return false; 4192 } 4193 4194 static bool isValidEncoding(int64_t Encoding) { 4195 if (Encoding & ~0xff) 4196 return false; 4197 4198 if (Encoding == dwarf::DW_EH_PE_omit) 4199 return true; 4200 4201 const unsigned Format = Encoding & 0xf; 4202 if (Format != dwarf::DW_EH_PE_absptr && Format != dwarf::DW_EH_PE_udata2 && 4203 Format != dwarf::DW_EH_PE_udata4 && Format != dwarf::DW_EH_PE_udata8 && 4204 Format != dwarf::DW_EH_PE_sdata2 && Format != dwarf::DW_EH_PE_sdata4 && 4205 Format != dwarf::DW_EH_PE_sdata8 && Format != dwarf::DW_EH_PE_signed) 4206 return false; 4207 4208 const unsigned Application = Encoding & 0x70; 4209 if (Application != dwarf::DW_EH_PE_absptr && 4210 Application != dwarf::DW_EH_PE_pcrel) 4211 return false; 4212 4213 return true; 4214 } 4215 4216 /// parseDirectiveCFIPersonalityOrLsda 4217 /// IsPersonality true for cfi_personality, false for cfi_lsda 4218 /// ::= .cfi_personality encoding, [symbol_name] 4219 /// ::= .cfi_lsda encoding, [symbol_name] 4220 bool AsmParser::parseDirectiveCFIPersonalityOrLsda(bool IsPersonality) { 4221 int64_t Encoding = 0; 4222 if (parseAbsoluteExpression(Encoding)) 4223 return true; 4224 if (Encoding == dwarf::DW_EH_PE_omit) 4225 return false; 4226 4227 StringRef Name; 4228 if (check(!isValidEncoding(Encoding), "unsupported encoding.") || 4229 parseToken(AsmToken::Comma, "unexpected token in directive") || 4230 check(parseIdentifier(Name), "expected identifier in directive")) 4231 return true; 4232 4233 MCSymbol *Sym = getContext().getOrCreateSymbol(Name); 4234 4235 if (IsPersonality) 4236 getStreamer().EmitCFIPersonality(Sym, Encoding); 4237 else 4238 getStreamer().EmitCFILsda(Sym, Encoding); 4239 return false; 4240 } 4241 4242 /// parseDirectiveCFIRememberState 4243 /// ::= .cfi_remember_state 4244 bool AsmParser::parseDirectiveCFIRememberState() { 4245 getStreamer().EmitCFIRememberState(); 4246 return false; 4247 } 4248 4249 /// parseDirectiveCFIRestoreState 4250 /// ::= .cfi_remember_state 4251 bool AsmParser::parseDirectiveCFIRestoreState() { 4252 getStreamer().EmitCFIRestoreState(); 4253 return false; 4254 } 4255 4256 /// parseDirectiveCFISameValue 4257 /// ::= .cfi_same_value register 4258 bool AsmParser::parseDirectiveCFISameValue(SMLoc DirectiveLoc) { 4259 int64_t Register = 0; 4260 4261 if (parseRegisterOrRegisterNumber(Register, DirectiveLoc)) 4262 return true; 4263 4264 getStreamer().EmitCFISameValue(Register); 4265 return false; 4266 } 4267 4268 /// parseDirectiveCFIRestore 4269 /// ::= .cfi_restore register 4270 bool AsmParser::parseDirectiveCFIRestore(SMLoc DirectiveLoc) { 4271 int64_t Register = 0; 4272 if (parseRegisterOrRegisterNumber(Register, DirectiveLoc)) 4273 return true; 4274 4275 getStreamer().EmitCFIRestore(Register); 4276 return false; 4277 } 4278 4279 /// parseDirectiveCFIEscape 4280 /// ::= .cfi_escape expression[,...] 4281 bool AsmParser::parseDirectiveCFIEscape() { 4282 std::string Values; 4283 int64_t CurrValue; 4284 if (parseAbsoluteExpression(CurrValue)) 4285 return true; 4286 4287 Values.push_back((uint8_t)CurrValue); 4288 4289 while (getLexer().is(AsmToken::Comma)) { 4290 Lex(); 4291 4292 if (parseAbsoluteExpression(CurrValue)) 4293 return true; 4294 4295 Values.push_back((uint8_t)CurrValue); 4296 } 4297 4298 getStreamer().EmitCFIEscape(Values); 4299 return false; 4300 } 4301 4302 /// parseDirectiveCFIReturnColumn 4303 /// ::= .cfi_return_column register 4304 bool AsmParser::parseDirectiveCFIReturnColumn(SMLoc DirectiveLoc) { 4305 int64_t Register = 0; 4306 if (parseRegisterOrRegisterNumber(Register, DirectiveLoc)) 4307 return true; 4308 getStreamer().EmitCFIReturnColumn(Register); 4309 return false; 4310 } 4311 4312 /// parseDirectiveCFISignalFrame 4313 /// ::= .cfi_signal_frame 4314 bool AsmParser::parseDirectiveCFISignalFrame() { 4315 if (parseToken(AsmToken::EndOfStatement, 4316 "unexpected token in '.cfi_signal_frame'")) 4317 return true; 4318 4319 getStreamer().EmitCFISignalFrame(); 4320 return false; 4321 } 4322 4323 /// parseDirectiveCFIUndefined 4324 /// ::= .cfi_undefined register 4325 bool AsmParser::parseDirectiveCFIUndefined(SMLoc DirectiveLoc) { 4326 int64_t Register = 0; 4327 4328 if (parseRegisterOrRegisterNumber(Register, DirectiveLoc)) 4329 return true; 4330 4331 getStreamer().EmitCFIUndefined(Register); 4332 return false; 4333 } 4334 4335 /// parseDirectiveAltmacro 4336 /// ::= .altmacro 4337 /// ::= .noaltmacro 4338 bool AsmParser::parseDirectiveAltmacro(StringRef Directive) { 4339 if (getLexer().isNot(AsmToken::EndOfStatement)) 4340 return TokError("unexpected token in '" + Directive + "' directive"); 4341 AltMacroMode = (Directive == ".altmacro"); 4342 return false; 4343 } 4344 4345 /// parseDirectiveMacrosOnOff 4346 /// ::= .macros_on 4347 /// ::= .macros_off 4348 bool AsmParser::parseDirectiveMacrosOnOff(StringRef Directive) { 4349 if (parseToken(AsmToken::EndOfStatement, 4350 "unexpected token in '" + Directive + "' directive")) 4351 return true; 4352 4353 setMacrosEnabled(Directive == ".macros_on"); 4354 return false; 4355 } 4356 4357 /// parseDirectiveMacro 4358 /// ::= .macro name[,] [parameters] 4359 bool AsmParser::parseDirectiveMacro(SMLoc DirectiveLoc) { 4360 StringRef Name; 4361 if (parseIdentifier(Name)) 4362 return TokError("expected identifier in '.macro' directive"); 4363 4364 if (getLexer().is(AsmToken::Comma)) 4365 Lex(); 4366 4367 MCAsmMacroParameters Parameters; 4368 while (getLexer().isNot(AsmToken::EndOfStatement)) { 4369 4370 if (!Parameters.empty() && Parameters.back().Vararg) 4371 return Error(Lexer.getLoc(), 4372 "Vararg parameter '" + Parameters.back().Name + 4373 "' should be last one in the list of parameters."); 4374 4375 MCAsmMacroParameter Parameter; 4376 if (parseIdentifier(Parameter.Name)) 4377 return TokError("expected identifier in '.macro' directive"); 4378 4379 // Emit an error if two (or more) named parameters share the same name 4380 for (const MCAsmMacroParameter& CurrParam : Parameters) 4381 if (CurrParam.Name.equals(Parameter.Name)) 4382 return TokError("macro '" + Name + "' has multiple parameters" 4383 " named '" + Parameter.Name + "'"); 4384 4385 if (Lexer.is(AsmToken::Colon)) { 4386 Lex(); // consume ':' 4387 4388 SMLoc QualLoc; 4389 StringRef Qualifier; 4390 4391 QualLoc = Lexer.getLoc(); 4392 if (parseIdentifier(Qualifier)) 4393 return Error(QualLoc, "missing parameter qualifier for " 4394 "'" + Parameter.Name + "' in macro '" + Name + "'"); 4395 4396 if (Qualifier == "req") 4397 Parameter.Required = true; 4398 else if (Qualifier == "vararg") 4399 Parameter.Vararg = true; 4400 else 4401 return Error(QualLoc, Qualifier + " is not a valid parameter qualifier " 4402 "for '" + Parameter.Name + "' in macro '" + Name + "'"); 4403 } 4404 4405 if (getLexer().is(AsmToken::Equal)) { 4406 Lex(); 4407 4408 SMLoc ParamLoc; 4409 4410 ParamLoc = Lexer.getLoc(); 4411 if (parseMacroArgument(Parameter.Value, /*Vararg=*/false )) 4412 return true; 4413 4414 if (Parameter.Required) 4415 Warning(ParamLoc, "pointless default value for required parameter " 4416 "'" + Parameter.Name + "' in macro '" + Name + "'"); 4417 } 4418 4419 Parameters.push_back(std::move(Parameter)); 4420 4421 if (getLexer().is(AsmToken::Comma)) 4422 Lex(); 4423 } 4424 4425 // Eat just the end of statement. 4426 Lexer.Lex(); 4427 4428 // Consuming deferred text, so use Lexer.Lex to ignore Lexing Errors 4429 AsmToken EndToken, StartToken = getTok(); 4430 unsigned MacroDepth = 0; 4431 // Lex the macro definition. 4432 while (true) { 4433 // Ignore Lexing errors in macros. 4434 while (Lexer.is(AsmToken::Error)) { 4435 Lexer.Lex(); 4436 } 4437 4438 // Check whether we have reached the end of the file. 4439 if (getLexer().is(AsmToken::Eof)) 4440 return Error(DirectiveLoc, "no matching '.endmacro' in definition"); 4441 4442 // Otherwise, check whether we have reach the .endmacro. 4443 if (getLexer().is(AsmToken::Identifier)) { 4444 if (getTok().getIdentifier() == ".endm" || 4445 getTok().getIdentifier() == ".endmacro") { 4446 if (MacroDepth == 0) { // Outermost macro. 4447 EndToken = getTok(); 4448 Lexer.Lex(); 4449 if (getLexer().isNot(AsmToken::EndOfStatement)) 4450 return TokError("unexpected token in '" + EndToken.getIdentifier() + 4451 "' directive"); 4452 break; 4453 } else { 4454 // Otherwise we just found the end of an inner macro. 4455 --MacroDepth; 4456 } 4457 } else if (getTok().getIdentifier() == ".macro") { 4458 // We allow nested macros. Those aren't instantiated until the outermost 4459 // macro is expanded so just ignore them for now. 4460 ++MacroDepth; 4461 } 4462 } 4463 4464 // Otherwise, scan til the end of the statement. 4465 eatToEndOfStatement(); 4466 } 4467 4468 if (getContext().lookupMacro(Name)) { 4469 return Error(DirectiveLoc, "macro '" + Name + "' is already defined"); 4470 } 4471 4472 const char *BodyStart = StartToken.getLoc().getPointer(); 4473 const char *BodyEnd = EndToken.getLoc().getPointer(); 4474 StringRef Body = StringRef(BodyStart, BodyEnd - BodyStart); 4475 checkForBadMacro(DirectiveLoc, Name, Body, Parameters); 4476 MCAsmMacro Macro(Name, Body, std::move(Parameters)); 4477 DEBUG_WITH_TYPE("asm-macros", dbgs() << "Defining new macro:\n"; 4478 Macro.dump()); 4479 getContext().defineMacro(Name, std::move(Macro)); 4480 return false; 4481 } 4482 4483 /// checkForBadMacro 4484 /// 4485 /// With the support added for named parameters there may be code out there that 4486 /// is transitioning from positional parameters. In versions of gas that did 4487 /// not support named parameters they would be ignored on the macro definition. 4488 /// But to support both styles of parameters this is not possible so if a macro 4489 /// definition has named parameters but does not use them and has what appears 4490 /// to be positional parameters, strings like $1, $2, ... and $n, then issue a 4491 /// warning that the positional parameter found in body which have no effect. 4492 /// Hoping the developer will either remove the named parameters from the macro 4493 /// definition so the positional parameters get used if that was what was 4494 /// intended or change the macro to use the named parameters. It is possible 4495 /// this warning will trigger when the none of the named parameters are used 4496 /// and the strings like $1 are infact to simply to be passed trough unchanged. 4497 void AsmParser::checkForBadMacro(SMLoc DirectiveLoc, StringRef Name, 4498 StringRef Body, 4499 ArrayRef<MCAsmMacroParameter> Parameters) { 4500 // If this macro is not defined with named parameters the warning we are 4501 // checking for here doesn't apply. 4502 unsigned NParameters = Parameters.size(); 4503 if (NParameters == 0) 4504 return; 4505 4506 bool NamedParametersFound = false; 4507 bool PositionalParametersFound = false; 4508 4509 // Look at the body of the macro for use of both the named parameters and what 4510 // are likely to be positional parameters. This is what expandMacro() is 4511 // doing when it finds the parameters in the body. 4512 while (!Body.empty()) { 4513 // Scan for the next possible parameter. 4514 std::size_t End = Body.size(), Pos = 0; 4515 for (; Pos != End; ++Pos) { 4516 // Check for a substitution or escape. 4517 // This macro is defined with parameters, look for \foo, \bar, etc. 4518 if (Body[Pos] == '\\' && Pos + 1 != End) 4519 break; 4520 4521 // This macro should have parameters, but look for $0, $1, ..., $n too. 4522 if (Body[Pos] != '$' || Pos + 1 == End) 4523 continue; 4524 char Next = Body[Pos + 1]; 4525 if (Next == '$' || Next == 'n' || 4526 isdigit(static_cast<unsigned char>(Next))) 4527 break; 4528 } 4529 4530 // Check if we reached the end. 4531 if (Pos == End) 4532 break; 4533 4534 if (Body[Pos] == '$') { 4535 switch (Body[Pos + 1]) { 4536 // $$ => $ 4537 case '$': 4538 break; 4539 4540 // $n => number of arguments 4541 case 'n': 4542 PositionalParametersFound = true; 4543 break; 4544 4545 // $[0-9] => argument 4546 default: { 4547 PositionalParametersFound = true; 4548 break; 4549 } 4550 } 4551 Pos += 2; 4552 } else { 4553 unsigned I = Pos + 1; 4554 while (isIdentifierChar(Body[I]) && I + 1 != End) 4555 ++I; 4556 4557 const char *Begin = Body.data() + Pos + 1; 4558 StringRef Argument(Begin, I - (Pos + 1)); 4559 unsigned Index = 0; 4560 for (; Index < NParameters; ++Index) 4561 if (Parameters[Index].Name == Argument) 4562 break; 4563 4564 if (Index == NParameters) { 4565 if (Body[Pos + 1] == '(' && Body[Pos + 2] == ')') 4566 Pos += 3; 4567 else { 4568 Pos = I; 4569 } 4570 } else { 4571 NamedParametersFound = true; 4572 Pos += 1 + Argument.size(); 4573 } 4574 } 4575 // Update the scan point. 4576 Body = Body.substr(Pos); 4577 } 4578 4579 if (!NamedParametersFound && PositionalParametersFound) 4580 Warning(DirectiveLoc, "macro defined with named parameters which are not " 4581 "used in macro body, possible positional parameter " 4582 "found in body which will have no effect"); 4583 } 4584 4585 /// parseDirectiveExitMacro 4586 /// ::= .exitm 4587 bool AsmParser::parseDirectiveExitMacro(StringRef Directive) { 4588 if (parseToken(AsmToken::EndOfStatement, 4589 "unexpected token in '" + Directive + "' directive")) 4590 return true; 4591 4592 if (!isInsideMacroInstantiation()) 4593 return TokError("unexpected '" + Directive + "' in file, " 4594 "no current macro definition"); 4595 4596 // Exit all conditionals that are active in the current macro. 4597 while (TheCondStack.size() != ActiveMacros.back()->CondStackDepth) { 4598 TheCondState = TheCondStack.back(); 4599 TheCondStack.pop_back(); 4600 } 4601 4602 handleMacroExit(); 4603 return false; 4604 } 4605 4606 /// parseDirectiveEndMacro 4607 /// ::= .endm 4608 /// ::= .endmacro 4609 bool AsmParser::parseDirectiveEndMacro(StringRef Directive) { 4610 if (getLexer().isNot(AsmToken::EndOfStatement)) 4611 return TokError("unexpected token in '" + Directive + "' directive"); 4612 4613 // If we are inside a macro instantiation, terminate the current 4614 // instantiation. 4615 if (isInsideMacroInstantiation()) { 4616 handleMacroExit(); 4617 return false; 4618 } 4619 4620 // Otherwise, this .endmacro is a stray entry in the file; well formed 4621 // .endmacro directives are handled during the macro definition parsing. 4622 return TokError("unexpected '" + Directive + "' in file, " 4623 "no current macro definition"); 4624 } 4625 4626 /// parseDirectivePurgeMacro 4627 /// ::= .purgem 4628 bool AsmParser::parseDirectivePurgeMacro(SMLoc DirectiveLoc) { 4629 StringRef Name; 4630 SMLoc Loc; 4631 if (parseTokenLoc(Loc) || 4632 check(parseIdentifier(Name), Loc, 4633 "expected identifier in '.purgem' directive") || 4634 parseToken(AsmToken::EndOfStatement, 4635 "unexpected token in '.purgem' directive")) 4636 return true; 4637 4638 if (!getContext().lookupMacro(Name)) 4639 return Error(DirectiveLoc, "macro '" + Name + "' is not defined"); 4640 4641 getContext().undefineMacro(Name); 4642 DEBUG_WITH_TYPE("asm-macros", dbgs() 4643 << "Un-defining macro: " << Name << "\n"); 4644 return false; 4645 } 4646 4647 /// parseDirectiveBundleAlignMode 4648 /// ::= {.bundle_align_mode} expression 4649 bool AsmParser::parseDirectiveBundleAlignMode() { 4650 // Expect a single argument: an expression that evaluates to a constant 4651 // in the inclusive range 0-30. 4652 SMLoc ExprLoc = getLexer().getLoc(); 4653 int64_t AlignSizePow2; 4654 if (checkForValidSection() || parseAbsoluteExpression(AlignSizePow2) || 4655 parseToken(AsmToken::EndOfStatement, "unexpected token after expression " 4656 "in '.bundle_align_mode' " 4657 "directive") || 4658 check(AlignSizePow2 < 0 || AlignSizePow2 > 30, ExprLoc, 4659 "invalid bundle alignment size (expected between 0 and 30)")) 4660 return true; 4661 4662 // Because of AlignSizePow2's verified range we can safely truncate it to 4663 // unsigned. 4664 getStreamer().EmitBundleAlignMode(static_cast<unsigned>(AlignSizePow2)); 4665 return false; 4666 } 4667 4668 /// parseDirectiveBundleLock 4669 /// ::= {.bundle_lock} [align_to_end] 4670 bool AsmParser::parseDirectiveBundleLock() { 4671 if (checkForValidSection()) 4672 return true; 4673 bool AlignToEnd = false; 4674 4675 StringRef Option; 4676 SMLoc Loc = getTok().getLoc(); 4677 const char *kInvalidOptionError = 4678 "invalid option for '.bundle_lock' directive"; 4679 4680 if (!parseOptionalToken(AsmToken::EndOfStatement)) { 4681 if (check(parseIdentifier(Option), Loc, kInvalidOptionError) || 4682 check(Option != "align_to_end", Loc, kInvalidOptionError) || 4683 parseToken(AsmToken::EndOfStatement, 4684 "unexpected token after '.bundle_lock' directive option")) 4685 return true; 4686 AlignToEnd = true; 4687 } 4688 4689 getStreamer().EmitBundleLock(AlignToEnd); 4690 return false; 4691 } 4692 4693 /// parseDirectiveBundleLock 4694 /// ::= {.bundle_lock} 4695 bool AsmParser::parseDirectiveBundleUnlock() { 4696 if (checkForValidSection() || 4697 parseToken(AsmToken::EndOfStatement, 4698 "unexpected token in '.bundle_unlock' directive")) 4699 return true; 4700 4701 getStreamer().EmitBundleUnlock(); 4702 return false; 4703 } 4704 4705 /// parseDirectiveSpace 4706 /// ::= (.skip | .space) expression [ , expression ] 4707 bool AsmParser::parseDirectiveSpace(StringRef IDVal) { 4708 SMLoc NumBytesLoc = Lexer.getLoc(); 4709 const MCExpr *NumBytes; 4710 if (checkForValidSection() || parseExpression(NumBytes)) 4711 return true; 4712 4713 int64_t FillExpr = 0; 4714 if (parseOptionalToken(AsmToken::Comma)) 4715 if (parseAbsoluteExpression(FillExpr)) 4716 return addErrorSuffix("in '" + Twine(IDVal) + "' directive"); 4717 if (parseToken(AsmToken::EndOfStatement)) 4718 return addErrorSuffix("in '" + Twine(IDVal) + "' directive"); 4719 4720 // FIXME: Sometimes the fill expr is 'nop' if it isn't supplied, instead of 0. 4721 getStreamer().emitFill(*NumBytes, FillExpr, NumBytesLoc); 4722 4723 return false; 4724 } 4725 4726 /// parseDirectiveDCB 4727 /// ::= .dcb.{b, l, w} expression, expression 4728 bool AsmParser::parseDirectiveDCB(StringRef IDVal, unsigned Size) { 4729 SMLoc NumValuesLoc = Lexer.getLoc(); 4730 int64_t NumValues; 4731 if (checkForValidSection() || parseAbsoluteExpression(NumValues)) 4732 return true; 4733 4734 if (NumValues < 0) { 4735 Warning(NumValuesLoc, "'" + Twine(IDVal) + "' directive with negative repeat count has no effect"); 4736 return false; 4737 } 4738 4739 if (parseToken(AsmToken::Comma, 4740 "unexpected token in '" + Twine(IDVal) + "' directive")) 4741 return true; 4742 4743 const MCExpr *Value; 4744 SMLoc ExprLoc = getLexer().getLoc(); 4745 if (parseExpression(Value)) 4746 return true; 4747 4748 // Special case constant expressions to match code generator. 4749 if (const MCConstantExpr *MCE = dyn_cast<MCConstantExpr>(Value)) { 4750 assert(Size <= 8 && "Invalid size"); 4751 uint64_t IntValue = MCE->getValue(); 4752 if (!isUIntN(8 * Size, IntValue) && !isIntN(8 * Size, IntValue)) 4753 return Error(ExprLoc, "literal value out of range for directive"); 4754 for (uint64_t i = 0, e = NumValues; i != e; ++i) 4755 getStreamer().EmitIntValue(IntValue, Size); 4756 } else { 4757 for (uint64_t i = 0, e = NumValues; i != e; ++i) 4758 getStreamer().EmitValue(Value, Size, ExprLoc); 4759 } 4760 4761 if (parseToken(AsmToken::EndOfStatement, 4762 "unexpected token in '" + Twine(IDVal) + "' directive")) 4763 return true; 4764 4765 return false; 4766 } 4767 4768 /// parseDirectiveRealDCB 4769 /// ::= .dcb.{d, s} expression, expression 4770 bool AsmParser::parseDirectiveRealDCB(StringRef IDVal, const fltSemantics &Semantics) { 4771 SMLoc NumValuesLoc = Lexer.getLoc(); 4772 int64_t NumValues; 4773 if (checkForValidSection() || parseAbsoluteExpression(NumValues)) 4774 return true; 4775 4776 if (NumValues < 0) { 4777 Warning(NumValuesLoc, "'" + Twine(IDVal) + "' directive with negative repeat count has no effect"); 4778 return false; 4779 } 4780 4781 if (parseToken(AsmToken::Comma, 4782 "unexpected token in '" + Twine(IDVal) + "' directive")) 4783 return true; 4784 4785 APInt AsInt; 4786 if (parseRealValue(Semantics, AsInt)) 4787 return true; 4788 4789 if (parseToken(AsmToken::EndOfStatement, 4790 "unexpected token in '" + Twine(IDVal) + "' directive")) 4791 return true; 4792 4793 for (uint64_t i = 0, e = NumValues; i != e; ++i) 4794 getStreamer().EmitIntValue(AsInt.getLimitedValue(), 4795 AsInt.getBitWidth() / 8); 4796 4797 return false; 4798 } 4799 4800 /// parseDirectiveDS 4801 /// ::= .ds.{b, d, l, p, s, w, x} expression 4802 bool AsmParser::parseDirectiveDS(StringRef IDVal, unsigned Size) { 4803 SMLoc NumValuesLoc = Lexer.getLoc(); 4804 int64_t NumValues; 4805 if (checkForValidSection() || parseAbsoluteExpression(NumValues)) 4806 return true; 4807 4808 if (NumValues < 0) { 4809 Warning(NumValuesLoc, "'" + Twine(IDVal) + "' directive with negative repeat count has no effect"); 4810 return false; 4811 } 4812 4813 if (parseToken(AsmToken::EndOfStatement, 4814 "unexpected token in '" + Twine(IDVal) + "' directive")) 4815 return true; 4816 4817 for (uint64_t i = 0, e = NumValues; i != e; ++i) 4818 getStreamer().emitFill(Size, 0); 4819 4820 return false; 4821 } 4822 4823 /// parseDirectiveLEB128 4824 /// ::= (.sleb128 | .uleb128) [ expression (, expression)* ] 4825 bool AsmParser::parseDirectiveLEB128(bool Signed) { 4826 if (checkForValidSection()) 4827 return true; 4828 4829 auto parseOp = [&]() -> bool { 4830 const MCExpr *Value; 4831 if (parseExpression(Value)) 4832 return true; 4833 if (Signed) 4834 getStreamer().EmitSLEB128Value(Value); 4835 else 4836 getStreamer().EmitULEB128Value(Value); 4837 return false; 4838 }; 4839 4840 if (parseMany(parseOp)) 4841 return addErrorSuffix(" in directive"); 4842 4843 return false; 4844 } 4845 4846 /// parseDirectiveSymbolAttribute 4847 /// ::= { ".globl", ".weak", ... } [ identifier ( , identifier )* ] 4848 bool AsmParser::parseDirectiveSymbolAttribute(MCSymbolAttr Attr) { 4849 auto parseOp = [&]() -> bool { 4850 StringRef Name; 4851 SMLoc Loc = getTok().getLoc(); 4852 if (parseIdentifier(Name)) 4853 return Error(Loc, "expected identifier"); 4854 MCSymbol *Sym = getContext().getOrCreateSymbol(Name); 4855 4856 // Assembler local symbols don't make any sense here. Complain loudly. 4857 if (Sym->isTemporary()) 4858 return Error(Loc, "non-local symbol required"); 4859 4860 if (!getStreamer().EmitSymbolAttribute(Sym, Attr)) 4861 return Error(Loc, "unable to emit symbol attribute"); 4862 return false; 4863 }; 4864 4865 if (parseMany(parseOp)) 4866 return addErrorSuffix(" in directive"); 4867 return false; 4868 } 4869 4870 /// parseDirectiveComm 4871 /// ::= ( .comm | .lcomm ) identifier , size_expression [ , align_expression ] 4872 bool AsmParser::parseDirectiveComm(bool IsLocal) { 4873 if (checkForValidSection()) 4874 return true; 4875 4876 SMLoc IDLoc = getLexer().getLoc(); 4877 StringRef Name; 4878 if (parseIdentifier(Name)) 4879 return TokError("expected identifier in directive"); 4880 4881 // Handle the identifier as the key symbol. 4882 MCSymbol *Sym = getContext().getOrCreateSymbol(Name); 4883 4884 if (getLexer().isNot(AsmToken::Comma)) 4885 return TokError("unexpected token in directive"); 4886 Lex(); 4887 4888 int64_t Size; 4889 SMLoc SizeLoc = getLexer().getLoc(); 4890 if (parseAbsoluteExpression(Size)) 4891 return true; 4892 4893 int64_t Pow2Alignment = 0; 4894 SMLoc Pow2AlignmentLoc; 4895 if (getLexer().is(AsmToken::Comma)) { 4896 Lex(); 4897 Pow2AlignmentLoc = getLexer().getLoc(); 4898 if (parseAbsoluteExpression(Pow2Alignment)) 4899 return true; 4900 4901 LCOMM::LCOMMType LCOMM = Lexer.getMAI().getLCOMMDirectiveAlignmentType(); 4902 if (IsLocal && LCOMM == LCOMM::NoAlignment) 4903 return Error(Pow2AlignmentLoc, "alignment not supported on this target"); 4904 4905 // If this target takes alignments in bytes (not log) validate and convert. 4906 if ((!IsLocal && Lexer.getMAI().getCOMMDirectiveAlignmentIsInBytes()) || 4907 (IsLocal && LCOMM == LCOMM::ByteAlignment)) { 4908 if (!isPowerOf2_64(Pow2Alignment)) 4909 return Error(Pow2AlignmentLoc, "alignment must be a power of 2"); 4910 Pow2Alignment = Log2_64(Pow2Alignment); 4911 } 4912 } 4913 4914 if (parseToken(AsmToken::EndOfStatement, 4915 "unexpected token in '.comm' or '.lcomm' directive")) 4916 return true; 4917 4918 // NOTE: a size of zero for a .comm should create a undefined symbol 4919 // but a size of .lcomm creates a bss symbol of size zero. 4920 if (Size < 0) 4921 return Error(SizeLoc, "invalid '.comm' or '.lcomm' directive size, can't " 4922 "be less than zero"); 4923 4924 // NOTE: The alignment in the directive is a power of 2 value, the assembler 4925 // may internally end up wanting an alignment in bytes. 4926 // FIXME: Diagnose overflow. 4927 if (Pow2Alignment < 0) 4928 return Error(Pow2AlignmentLoc, "invalid '.comm' or '.lcomm' directive " 4929 "alignment, can't be less than zero"); 4930 4931 Sym->redefineIfPossible(); 4932 if (!Sym->isUndefined()) 4933 return Error(IDLoc, "invalid symbol redefinition"); 4934 4935 // Create the Symbol as a common or local common with Size and Pow2Alignment 4936 if (IsLocal) { 4937 getStreamer().EmitLocalCommonSymbol(Sym, Size, 1 << Pow2Alignment); 4938 return false; 4939 } 4940 4941 getStreamer().EmitCommonSymbol(Sym, Size, 1 << Pow2Alignment); 4942 return false; 4943 } 4944 4945 /// parseDirectiveAbort 4946 /// ::= .abort [... message ...] 4947 bool AsmParser::parseDirectiveAbort() { 4948 // FIXME: Use loc from directive. 4949 SMLoc Loc = getLexer().getLoc(); 4950 4951 StringRef Str = parseStringToEndOfStatement(); 4952 if (parseToken(AsmToken::EndOfStatement, 4953 "unexpected token in '.abort' directive")) 4954 return true; 4955 4956 if (Str.empty()) 4957 return Error(Loc, ".abort detected. Assembly stopping."); 4958 else 4959 return Error(Loc, ".abort '" + Str + "' detected. Assembly stopping."); 4960 // FIXME: Actually abort assembly here. 4961 4962 return false; 4963 } 4964 4965 /// parseDirectiveInclude 4966 /// ::= .include "filename" 4967 bool AsmParser::parseDirectiveInclude() { 4968 // Allow the strings to have escaped octal character sequence. 4969 std::string Filename; 4970 SMLoc IncludeLoc = getTok().getLoc(); 4971 4972 if (check(getTok().isNot(AsmToken::String), 4973 "expected string in '.include' directive") || 4974 parseEscapedString(Filename) || 4975 check(getTok().isNot(AsmToken::EndOfStatement), 4976 "unexpected token in '.include' directive") || 4977 // Attempt to switch the lexer to the included file before consuming the 4978 // end of statement to avoid losing it when we switch. 4979 check(enterIncludeFile(Filename), IncludeLoc, 4980 "Could not find include file '" + Filename + "'")) 4981 return true; 4982 4983 return false; 4984 } 4985 4986 /// parseDirectiveIncbin 4987 /// ::= .incbin "filename" [ , skip [ , count ] ] 4988 bool AsmParser::parseDirectiveIncbin() { 4989 // Allow the strings to have escaped octal character sequence. 4990 std::string Filename; 4991 SMLoc IncbinLoc = getTok().getLoc(); 4992 if (check(getTok().isNot(AsmToken::String), 4993 "expected string in '.incbin' directive") || 4994 parseEscapedString(Filename)) 4995 return true; 4996 4997 int64_t Skip = 0; 4998 const MCExpr *Count = nullptr; 4999 SMLoc SkipLoc, CountLoc; 5000 if (parseOptionalToken(AsmToken::Comma)) { 5001 // The skip expression can be omitted while specifying the count, e.g: 5002 // .incbin "filename",,4 5003 if (getTok().isNot(AsmToken::Comma)) { 5004 if (parseTokenLoc(SkipLoc) || parseAbsoluteExpression(Skip)) 5005 return true; 5006 } 5007 if (parseOptionalToken(AsmToken::Comma)) { 5008 CountLoc = getTok().getLoc(); 5009 if (parseExpression(Count)) 5010 return true; 5011 } 5012 } 5013 5014 if (parseToken(AsmToken::EndOfStatement, 5015 "unexpected token in '.incbin' directive")) 5016 return true; 5017 5018 if (check(Skip < 0, SkipLoc, "skip is negative")) 5019 return true; 5020 5021 // Attempt to process the included file. 5022 if (processIncbinFile(Filename, Skip, Count, CountLoc)) 5023 return Error(IncbinLoc, "Could not find incbin file '" + Filename + "'"); 5024 return false; 5025 } 5026 5027 /// parseDirectiveIf 5028 /// ::= .if{,eq,ge,gt,le,lt,ne} expression 5029 bool AsmParser::parseDirectiveIf(SMLoc DirectiveLoc, DirectiveKind DirKind) { 5030 TheCondStack.push_back(TheCondState); 5031 TheCondState.TheCond = AsmCond::IfCond; 5032 if (TheCondState.Ignore) { 5033 eatToEndOfStatement(); 5034 } else { 5035 int64_t ExprValue; 5036 if (parseAbsoluteExpression(ExprValue) || 5037 parseToken(AsmToken::EndOfStatement, 5038 "unexpected token in '.if' directive")) 5039 return true; 5040 5041 switch (DirKind) { 5042 default: 5043 llvm_unreachable("unsupported directive"); 5044 case DK_IF: 5045 case DK_IFNE: 5046 break; 5047 case DK_IFEQ: 5048 ExprValue = ExprValue == 0; 5049 break; 5050 case DK_IFGE: 5051 ExprValue = ExprValue >= 0; 5052 break; 5053 case DK_IFGT: 5054 ExprValue = ExprValue > 0; 5055 break; 5056 case DK_IFLE: 5057 ExprValue = ExprValue <= 0; 5058 break; 5059 case DK_IFLT: 5060 ExprValue = ExprValue < 0; 5061 break; 5062 } 5063 5064 TheCondState.CondMet = ExprValue; 5065 TheCondState.Ignore = !TheCondState.CondMet; 5066 } 5067 5068 return false; 5069 } 5070 5071 /// parseDirectiveIfb 5072 /// ::= .ifb string 5073 bool AsmParser::parseDirectiveIfb(SMLoc DirectiveLoc, bool ExpectBlank) { 5074 TheCondStack.push_back(TheCondState); 5075 TheCondState.TheCond = AsmCond::IfCond; 5076 5077 if (TheCondState.Ignore) { 5078 eatToEndOfStatement(); 5079 } else { 5080 StringRef Str = parseStringToEndOfStatement(); 5081 5082 if (parseToken(AsmToken::EndOfStatement, 5083 "unexpected token in '.ifb' directive")) 5084 return true; 5085 5086 TheCondState.CondMet = ExpectBlank == Str.empty(); 5087 TheCondState.Ignore = !TheCondState.CondMet; 5088 } 5089 5090 return false; 5091 } 5092 5093 /// parseDirectiveIfc 5094 /// ::= .ifc string1, string2 5095 /// ::= .ifnc string1, string2 5096 bool AsmParser::parseDirectiveIfc(SMLoc DirectiveLoc, bool ExpectEqual) { 5097 TheCondStack.push_back(TheCondState); 5098 TheCondState.TheCond = AsmCond::IfCond; 5099 5100 if (TheCondState.Ignore) { 5101 eatToEndOfStatement(); 5102 } else { 5103 StringRef Str1 = parseStringToComma(); 5104 5105 if (parseToken(AsmToken::Comma, "unexpected token in '.ifc' directive")) 5106 return true; 5107 5108 StringRef Str2 = parseStringToEndOfStatement(); 5109 5110 if (parseToken(AsmToken::EndOfStatement, 5111 "unexpected token in '.ifc' directive")) 5112 return true; 5113 5114 TheCondState.CondMet = ExpectEqual == (Str1.trim() == Str2.trim()); 5115 TheCondState.Ignore = !TheCondState.CondMet; 5116 } 5117 5118 return false; 5119 } 5120 5121 /// parseDirectiveIfeqs 5122 /// ::= .ifeqs string1, string2 5123 bool AsmParser::parseDirectiveIfeqs(SMLoc DirectiveLoc, bool ExpectEqual) { 5124 if (Lexer.isNot(AsmToken::String)) { 5125 if (ExpectEqual) 5126 return TokError("expected string parameter for '.ifeqs' directive"); 5127 return TokError("expected string parameter for '.ifnes' directive"); 5128 } 5129 5130 StringRef String1 = getTok().getStringContents(); 5131 Lex(); 5132 5133 if (Lexer.isNot(AsmToken::Comma)) { 5134 if (ExpectEqual) 5135 return TokError( 5136 "expected comma after first string for '.ifeqs' directive"); 5137 return TokError("expected comma after first string for '.ifnes' directive"); 5138 } 5139 5140 Lex(); 5141 5142 if (Lexer.isNot(AsmToken::String)) { 5143 if (ExpectEqual) 5144 return TokError("expected string parameter for '.ifeqs' directive"); 5145 return TokError("expected string parameter for '.ifnes' directive"); 5146 } 5147 5148 StringRef String2 = getTok().getStringContents(); 5149 Lex(); 5150 5151 TheCondStack.push_back(TheCondState); 5152 TheCondState.TheCond = AsmCond::IfCond; 5153 TheCondState.CondMet = ExpectEqual == (String1 == String2); 5154 TheCondState.Ignore = !TheCondState.CondMet; 5155 5156 return false; 5157 } 5158 5159 /// parseDirectiveIfdef 5160 /// ::= .ifdef symbol 5161 bool AsmParser::parseDirectiveIfdef(SMLoc DirectiveLoc, bool expect_defined) { 5162 StringRef Name; 5163 TheCondStack.push_back(TheCondState); 5164 TheCondState.TheCond = AsmCond::IfCond; 5165 5166 if (TheCondState.Ignore) { 5167 eatToEndOfStatement(); 5168 } else { 5169 if (check(parseIdentifier(Name), "expected identifier after '.ifdef'") || 5170 parseToken(AsmToken::EndOfStatement, "unexpected token in '.ifdef'")) 5171 return true; 5172 5173 MCSymbol *Sym = getContext().lookupSymbol(Name); 5174 5175 if (expect_defined) 5176 TheCondState.CondMet = (Sym && !Sym->isUndefined(false)); 5177 else 5178 TheCondState.CondMet = (!Sym || Sym->isUndefined(false)); 5179 TheCondState.Ignore = !TheCondState.CondMet; 5180 } 5181 5182 return false; 5183 } 5184 5185 /// parseDirectiveElseIf 5186 /// ::= .elseif expression 5187 bool AsmParser::parseDirectiveElseIf(SMLoc DirectiveLoc) { 5188 if (TheCondState.TheCond != AsmCond::IfCond && 5189 TheCondState.TheCond != AsmCond::ElseIfCond) 5190 return Error(DirectiveLoc, "Encountered a .elseif that doesn't follow an" 5191 " .if or an .elseif"); 5192 TheCondState.TheCond = AsmCond::ElseIfCond; 5193 5194 bool LastIgnoreState = false; 5195 if (!TheCondStack.empty()) 5196 LastIgnoreState = TheCondStack.back().Ignore; 5197 if (LastIgnoreState || TheCondState.CondMet) { 5198 TheCondState.Ignore = true; 5199 eatToEndOfStatement(); 5200 } else { 5201 int64_t ExprValue; 5202 if (parseAbsoluteExpression(ExprValue)) 5203 return true; 5204 5205 if (parseToken(AsmToken::EndOfStatement, 5206 "unexpected token in '.elseif' directive")) 5207 return true; 5208 5209 TheCondState.CondMet = ExprValue; 5210 TheCondState.Ignore = !TheCondState.CondMet; 5211 } 5212 5213 return false; 5214 } 5215 5216 /// parseDirectiveElse 5217 /// ::= .else 5218 bool AsmParser::parseDirectiveElse(SMLoc DirectiveLoc) { 5219 if (parseToken(AsmToken::EndOfStatement, 5220 "unexpected token in '.else' directive")) 5221 return true; 5222 5223 if (TheCondState.TheCond != AsmCond::IfCond && 5224 TheCondState.TheCond != AsmCond::ElseIfCond) 5225 return Error(DirectiveLoc, "Encountered a .else that doesn't follow " 5226 " an .if or an .elseif"); 5227 TheCondState.TheCond = AsmCond::ElseCond; 5228 bool LastIgnoreState = false; 5229 if (!TheCondStack.empty()) 5230 LastIgnoreState = TheCondStack.back().Ignore; 5231 if (LastIgnoreState || TheCondState.CondMet) 5232 TheCondState.Ignore = true; 5233 else 5234 TheCondState.Ignore = false; 5235 5236 return false; 5237 } 5238 5239 /// parseDirectiveEnd 5240 /// ::= .end 5241 bool AsmParser::parseDirectiveEnd(SMLoc DirectiveLoc) { 5242 if (parseToken(AsmToken::EndOfStatement, 5243 "unexpected token in '.end' directive")) 5244 return true; 5245 5246 while (Lexer.isNot(AsmToken::Eof)) 5247 Lexer.Lex(); 5248 5249 return false; 5250 } 5251 5252 /// parseDirectiveError 5253 /// ::= .err 5254 /// ::= .error [string] 5255 bool AsmParser::parseDirectiveError(SMLoc L, bool WithMessage) { 5256 if (!TheCondStack.empty()) { 5257 if (TheCondStack.back().Ignore) { 5258 eatToEndOfStatement(); 5259 return false; 5260 } 5261 } 5262 5263 if (!WithMessage) 5264 return Error(L, ".err encountered"); 5265 5266 StringRef Message = ".error directive invoked in source file"; 5267 if (Lexer.isNot(AsmToken::EndOfStatement)) { 5268 if (Lexer.isNot(AsmToken::String)) 5269 return TokError(".error argument must be a string"); 5270 5271 Message = getTok().getStringContents(); 5272 Lex(); 5273 } 5274 5275 return Error(L, Message); 5276 } 5277 5278 /// parseDirectiveWarning 5279 /// ::= .warning [string] 5280 bool AsmParser::parseDirectiveWarning(SMLoc L) { 5281 if (!TheCondStack.empty()) { 5282 if (TheCondStack.back().Ignore) { 5283 eatToEndOfStatement(); 5284 return false; 5285 } 5286 } 5287 5288 StringRef Message = ".warning directive invoked in source file"; 5289 5290 if (!parseOptionalToken(AsmToken::EndOfStatement)) { 5291 if (Lexer.isNot(AsmToken::String)) 5292 return TokError(".warning argument must be a string"); 5293 5294 Message = getTok().getStringContents(); 5295 Lex(); 5296 if (parseToken(AsmToken::EndOfStatement, 5297 "expected end of statement in '.warning' directive")) 5298 return true; 5299 } 5300 5301 return Warning(L, Message); 5302 } 5303 5304 /// parseDirectiveEndIf 5305 /// ::= .endif 5306 bool AsmParser::parseDirectiveEndIf(SMLoc DirectiveLoc) { 5307 if (parseToken(AsmToken::EndOfStatement, 5308 "unexpected token in '.endif' directive")) 5309 return true; 5310 5311 if ((TheCondState.TheCond == AsmCond::NoCond) || TheCondStack.empty()) 5312 return Error(DirectiveLoc, "Encountered a .endif that doesn't follow " 5313 "an .if or .else"); 5314 if (!TheCondStack.empty()) { 5315 TheCondState = TheCondStack.back(); 5316 TheCondStack.pop_back(); 5317 } 5318 5319 return false; 5320 } 5321 5322 void AsmParser::initializeDirectiveKindMap() { 5323 DirectiveKindMap[".set"] = DK_SET; 5324 DirectiveKindMap[".equ"] = DK_EQU; 5325 DirectiveKindMap[".equiv"] = DK_EQUIV; 5326 DirectiveKindMap[".ascii"] = DK_ASCII; 5327 DirectiveKindMap[".asciz"] = DK_ASCIZ; 5328 DirectiveKindMap[".string"] = DK_STRING; 5329 DirectiveKindMap[".byte"] = DK_BYTE; 5330 DirectiveKindMap[".short"] = DK_SHORT; 5331 DirectiveKindMap[".value"] = DK_VALUE; 5332 DirectiveKindMap[".2byte"] = DK_2BYTE; 5333 DirectiveKindMap[".long"] = DK_LONG; 5334 DirectiveKindMap[".int"] = DK_INT; 5335 DirectiveKindMap[".4byte"] = DK_4BYTE; 5336 DirectiveKindMap[".quad"] = DK_QUAD; 5337 DirectiveKindMap[".8byte"] = DK_8BYTE; 5338 DirectiveKindMap[".octa"] = DK_OCTA; 5339 DirectiveKindMap[".single"] = DK_SINGLE; 5340 DirectiveKindMap[".float"] = DK_FLOAT; 5341 DirectiveKindMap[".double"] = DK_DOUBLE; 5342 DirectiveKindMap[".align"] = DK_ALIGN; 5343 DirectiveKindMap[".align32"] = DK_ALIGN32; 5344 DirectiveKindMap[".balign"] = DK_BALIGN; 5345 DirectiveKindMap[".balignw"] = DK_BALIGNW; 5346 DirectiveKindMap[".balignl"] = DK_BALIGNL; 5347 DirectiveKindMap[".p2align"] = DK_P2ALIGN; 5348 DirectiveKindMap[".p2alignw"] = DK_P2ALIGNW; 5349 DirectiveKindMap[".p2alignl"] = DK_P2ALIGNL; 5350 DirectiveKindMap[".org"] = DK_ORG; 5351 DirectiveKindMap[".fill"] = DK_FILL; 5352 DirectiveKindMap[".zero"] = DK_ZERO; 5353 DirectiveKindMap[".extern"] = DK_EXTERN; 5354 DirectiveKindMap[".globl"] = DK_GLOBL; 5355 DirectiveKindMap[".global"] = DK_GLOBAL; 5356 DirectiveKindMap[".lazy_reference"] = DK_LAZY_REFERENCE; 5357 DirectiveKindMap[".no_dead_strip"] = DK_NO_DEAD_STRIP; 5358 DirectiveKindMap[".symbol_resolver"] = DK_SYMBOL_RESOLVER; 5359 DirectiveKindMap[".private_extern"] = DK_PRIVATE_EXTERN; 5360 DirectiveKindMap[".reference"] = DK_REFERENCE; 5361 DirectiveKindMap[".weak_definition"] = DK_WEAK_DEFINITION; 5362 DirectiveKindMap[".weak_reference"] = DK_WEAK_REFERENCE; 5363 DirectiveKindMap[".weak_def_can_be_hidden"] = DK_WEAK_DEF_CAN_BE_HIDDEN; 5364 DirectiveKindMap[".cold"] = DK_COLD; 5365 DirectiveKindMap[".comm"] = DK_COMM; 5366 DirectiveKindMap[".common"] = DK_COMMON; 5367 DirectiveKindMap[".lcomm"] = DK_LCOMM; 5368 DirectiveKindMap[".abort"] = DK_ABORT; 5369 DirectiveKindMap[".include"] = DK_INCLUDE; 5370 DirectiveKindMap[".incbin"] = DK_INCBIN; 5371 DirectiveKindMap[".code16"] = DK_CODE16; 5372 DirectiveKindMap[".code16gcc"] = DK_CODE16GCC; 5373 DirectiveKindMap[".rept"] = DK_REPT; 5374 DirectiveKindMap[".rep"] = DK_REPT; 5375 DirectiveKindMap[".irp"] = DK_IRP; 5376 DirectiveKindMap[".irpc"] = DK_IRPC; 5377 DirectiveKindMap[".endr"] = DK_ENDR; 5378 DirectiveKindMap[".bundle_align_mode"] = DK_BUNDLE_ALIGN_MODE; 5379 DirectiveKindMap[".bundle_lock"] = DK_BUNDLE_LOCK; 5380 DirectiveKindMap[".bundle_unlock"] = DK_BUNDLE_UNLOCK; 5381 DirectiveKindMap[".if"] = DK_IF; 5382 DirectiveKindMap[".ifeq"] = DK_IFEQ; 5383 DirectiveKindMap[".ifge"] = DK_IFGE; 5384 DirectiveKindMap[".ifgt"] = DK_IFGT; 5385 DirectiveKindMap[".ifle"] = DK_IFLE; 5386 DirectiveKindMap[".iflt"] = DK_IFLT; 5387 DirectiveKindMap[".ifne"] = DK_IFNE; 5388 DirectiveKindMap[".ifb"] = DK_IFB; 5389 DirectiveKindMap[".ifnb"] = DK_IFNB; 5390 DirectiveKindMap[".ifc"] = DK_IFC; 5391 DirectiveKindMap[".ifeqs"] = DK_IFEQS; 5392 DirectiveKindMap[".ifnc"] = DK_IFNC; 5393 DirectiveKindMap[".ifnes"] = DK_IFNES; 5394 DirectiveKindMap[".ifdef"] = DK_IFDEF; 5395 DirectiveKindMap[".ifndef"] = DK_IFNDEF; 5396 DirectiveKindMap[".ifnotdef"] = DK_IFNOTDEF; 5397 DirectiveKindMap[".elseif"] = DK_ELSEIF; 5398 DirectiveKindMap[".else"] = DK_ELSE; 5399 DirectiveKindMap[".end"] = DK_END; 5400 DirectiveKindMap[".endif"] = DK_ENDIF; 5401 DirectiveKindMap[".skip"] = DK_SKIP; 5402 DirectiveKindMap[".space"] = DK_SPACE; 5403 DirectiveKindMap[".file"] = DK_FILE; 5404 DirectiveKindMap[".line"] = DK_LINE; 5405 DirectiveKindMap[".loc"] = DK_LOC; 5406 DirectiveKindMap[".stabs"] = DK_STABS; 5407 DirectiveKindMap[".cv_file"] = DK_CV_FILE; 5408 DirectiveKindMap[".cv_func_id"] = DK_CV_FUNC_ID; 5409 DirectiveKindMap[".cv_loc"] = DK_CV_LOC; 5410 DirectiveKindMap[".cv_linetable"] = DK_CV_LINETABLE; 5411 DirectiveKindMap[".cv_inline_linetable"] = DK_CV_INLINE_LINETABLE; 5412 DirectiveKindMap[".cv_inline_site_id"] = DK_CV_INLINE_SITE_ID; 5413 DirectiveKindMap[".cv_def_range"] = DK_CV_DEF_RANGE; 5414 DirectiveKindMap[".cv_string"] = DK_CV_STRING; 5415 DirectiveKindMap[".cv_stringtable"] = DK_CV_STRINGTABLE; 5416 DirectiveKindMap[".cv_filechecksums"] = DK_CV_FILECHECKSUMS; 5417 DirectiveKindMap[".cv_filechecksumoffset"] = DK_CV_FILECHECKSUM_OFFSET; 5418 DirectiveKindMap[".cv_fpo_data"] = DK_CV_FPO_DATA; 5419 DirectiveKindMap[".sleb128"] = DK_SLEB128; 5420 DirectiveKindMap[".uleb128"] = DK_ULEB128; 5421 DirectiveKindMap[".cfi_sections"] = DK_CFI_SECTIONS; 5422 DirectiveKindMap[".cfi_startproc"] = DK_CFI_STARTPROC; 5423 DirectiveKindMap[".cfi_endproc"] = DK_CFI_ENDPROC; 5424 DirectiveKindMap[".cfi_def_cfa"] = DK_CFI_DEF_CFA; 5425 DirectiveKindMap[".cfi_def_cfa_offset"] = DK_CFI_DEF_CFA_OFFSET; 5426 DirectiveKindMap[".cfi_adjust_cfa_offset"] = DK_CFI_ADJUST_CFA_OFFSET; 5427 DirectiveKindMap[".cfi_def_cfa_register"] = DK_CFI_DEF_CFA_REGISTER; 5428 DirectiveKindMap[".cfi_offset"] = DK_CFI_OFFSET; 5429 DirectiveKindMap[".cfi_rel_offset"] = DK_CFI_REL_OFFSET; 5430 DirectiveKindMap[".cfi_personality"] = DK_CFI_PERSONALITY; 5431 DirectiveKindMap[".cfi_lsda"] = DK_CFI_LSDA; 5432 DirectiveKindMap[".cfi_remember_state"] = DK_CFI_REMEMBER_STATE; 5433 DirectiveKindMap[".cfi_restore_state"] = DK_CFI_RESTORE_STATE; 5434 DirectiveKindMap[".cfi_same_value"] = DK_CFI_SAME_VALUE; 5435 DirectiveKindMap[".cfi_restore"] = DK_CFI_RESTORE; 5436 DirectiveKindMap[".cfi_escape"] = DK_CFI_ESCAPE; 5437 DirectiveKindMap[".cfi_return_column"] = DK_CFI_RETURN_COLUMN; 5438 DirectiveKindMap[".cfi_signal_frame"] = DK_CFI_SIGNAL_FRAME; 5439 DirectiveKindMap[".cfi_undefined"] = DK_CFI_UNDEFINED; 5440 DirectiveKindMap[".cfi_register"] = DK_CFI_REGISTER; 5441 DirectiveKindMap[".cfi_window_save"] = DK_CFI_WINDOW_SAVE; 5442 DirectiveKindMap[".cfi_b_key_frame"] = DK_CFI_B_KEY_FRAME; 5443 DirectiveKindMap[".macros_on"] = DK_MACROS_ON; 5444 DirectiveKindMap[".macros_off"] = DK_MACROS_OFF; 5445 DirectiveKindMap[".macro"] = DK_MACRO; 5446 DirectiveKindMap[".exitm"] = DK_EXITM; 5447 DirectiveKindMap[".endm"] = DK_ENDM; 5448 DirectiveKindMap[".endmacro"] = DK_ENDMACRO; 5449 DirectiveKindMap[".purgem"] = DK_PURGEM; 5450 DirectiveKindMap[".err"] = DK_ERR; 5451 DirectiveKindMap[".error"] = DK_ERROR; 5452 DirectiveKindMap[".warning"] = DK_WARNING; 5453 DirectiveKindMap[".altmacro"] = DK_ALTMACRO; 5454 DirectiveKindMap[".noaltmacro"] = DK_NOALTMACRO; 5455 DirectiveKindMap[".reloc"] = DK_RELOC; 5456 DirectiveKindMap[".dc"] = DK_DC; 5457 DirectiveKindMap[".dc.a"] = DK_DC_A; 5458 DirectiveKindMap[".dc.b"] = DK_DC_B; 5459 DirectiveKindMap[".dc.d"] = DK_DC_D; 5460 DirectiveKindMap[".dc.l"] = DK_DC_L; 5461 DirectiveKindMap[".dc.s"] = DK_DC_S; 5462 DirectiveKindMap[".dc.w"] = DK_DC_W; 5463 DirectiveKindMap[".dc.x"] = DK_DC_X; 5464 DirectiveKindMap[".dcb"] = DK_DCB; 5465 DirectiveKindMap[".dcb.b"] = DK_DCB_B; 5466 DirectiveKindMap[".dcb.d"] = DK_DCB_D; 5467 DirectiveKindMap[".dcb.l"] = DK_DCB_L; 5468 DirectiveKindMap[".dcb.s"] = DK_DCB_S; 5469 DirectiveKindMap[".dcb.w"] = DK_DCB_W; 5470 DirectiveKindMap[".dcb.x"] = DK_DCB_X; 5471 DirectiveKindMap[".ds"] = DK_DS; 5472 DirectiveKindMap[".ds.b"] = DK_DS_B; 5473 DirectiveKindMap[".ds.d"] = DK_DS_D; 5474 DirectiveKindMap[".ds.l"] = DK_DS_L; 5475 DirectiveKindMap[".ds.p"] = DK_DS_P; 5476 DirectiveKindMap[".ds.s"] = DK_DS_S; 5477 DirectiveKindMap[".ds.w"] = DK_DS_W; 5478 DirectiveKindMap[".ds.x"] = DK_DS_X; 5479 DirectiveKindMap[".print"] = DK_PRINT; 5480 DirectiveKindMap[".addrsig"] = DK_ADDRSIG; 5481 DirectiveKindMap[".addrsig_sym"] = DK_ADDRSIG_SYM; 5482 } 5483 5484 MCAsmMacro *AsmParser::parseMacroLikeBody(SMLoc DirectiveLoc) { 5485 AsmToken EndToken, StartToken = getTok(); 5486 5487 unsigned NestLevel = 0; 5488 while (true) { 5489 // Check whether we have reached the end of the file. 5490 if (getLexer().is(AsmToken::Eof)) { 5491 printError(DirectiveLoc, "no matching '.endr' in definition"); 5492 return nullptr; 5493 } 5494 5495 if (Lexer.is(AsmToken::Identifier) && 5496 (getTok().getIdentifier() == ".rep" || 5497 getTok().getIdentifier() == ".rept" || 5498 getTok().getIdentifier() == ".irp" || 5499 getTok().getIdentifier() == ".irpc")) { 5500 ++NestLevel; 5501 } 5502 5503 // Otherwise, check whether we have reached the .endr. 5504 if (Lexer.is(AsmToken::Identifier) && getTok().getIdentifier() == ".endr") { 5505 if (NestLevel == 0) { 5506 EndToken = getTok(); 5507 Lex(); 5508 if (Lexer.isNot(AsmToken::EndOfStatement)) { 5509 printError(getTok().getLoc(), 5510 "unexpected token in '.endr' directive"); 5511 return nullptr; 5512 } 5513 break; 5514 } 5515 --NestLevel; 5516 } 5517 5518 // Otherwise, scan till the end of the statement. 5519 eatToEndOfStatement(); 5520 } 5521 5522 const char *BodyStart = StartToken.getLoc().getPointer(); 5523 const char *BodyEnd = EndToken.getLoc().getPointer(); 5524 StringRef Body = StringRef(BodyStart, BodyEnd - BodyStart); 5525 5526 // We Are Anonymous. 5527 MacroLikeBodies.emplace_back(StringRef(), Body, MCAsmMacroParameters()); 5528 return &MacroLikeBodies.back(); 5529 } 5530 5531 void AsmParser::instantiateMacroLikeBody(MCAsmMacro *M, SMLoc DirectiveLoc, 5532 raw_svector_ostream &OS) { 5533 OS << ".endr\n"; 5534 5535 std::unique_ptr<MemoryBuffer> Instantiation = 5536 MemoryBuffer::getMemBufferCopy(OS.str(), "<instantiation>"); 5537 5538 // Create the macro instantiation object and add to the current macro 5539 // instantiation stack. 5540 MacroInstantiation *MI = new MacroInstantiation{ 5541 DirectiveLoc, CurBuffer, getTok().getLoc(), TheCondStack.size()}; 5542 ActiveMacros.push_back(MI); 5543 5544 // Jump to the macro instantiation and prime the lexer. 5545 CurBuffer = SrcMgr.AddNewSourceBuffer(std::move(Instantiation), SMLoc()); 5546 Lexer.setBuffer(SrcMgr.getMemoryBuffer(CurBuffer)->getBuffer()); 5547 Lex(); 5548 } 5549 5550 /// parseDirectiveRept 5551 /// ::= .rep | .rept count 5552 bool AsmParser::parseDirectiveRept(SMLoc DirectiveLoc, StringRef Dir) { 5553 const MCExpr *CountExpr; 5554 SMLoc CountLoc = getTok().getLoc(); 5555 if (parseExpression(CountExpr)) 5556 return true; 5557 5558 int64_t Count; 5559 if (!CountExpr->evaluateAsAbsolute(Count, getStreamer().getAssemblerPtr())) { 5560 return Error(CountLoc, "unexpected token in '" + Dir + "' directive"); 5561 } 5562 5563 if (check(Count < 0, CountLoc, "Count is negative") || 5564 parseToken(AsmToken::EndOfStatement, 5565 "unexpected token in '" + Dir + "' directive")) 5566 return true; 5567 5568 // Lex the rept definition. 5569 MCAsmMacro *M = parseMacroLikeBody(DirectiveLoc); 5570 if (!M) 5571 return true; 5572 5573 // Macro instantiation is lexical, unfortunately. We construct a new buffer 5574 // to hold the macro body with substitutions. 5575 SmallString<256> Buf; 5576 raw_svector_ostream OS(Buf); 5577 while (Count--) { 5578 // Note that the AtPseudoVariable is disabled for instantiations of .rep(t). 5579 if (expandMacro(OS, M->Body, None, None, false, getTok().getLoc())) 5580 return true; 5581 } 5582 instantiateMacroLikeBody(M, DirectiveLoc, OS); 5583 5584 return false; 5585 } 5586 5587 /// parseDirectiveIrp 5588 /// ::= .irp symbol,values 5589 bool AsmParser::parseDirectiveIrp(SMLoc DirectiveLoc) { 5590 MCAsmMacroParameter Parameter; 5591 MCAsmMacroArguments A; 5592 if (check(parseIdentifier(Parameter.Name), 5593 "expected identifier in '.irp' directive") || 5594 parseToken(AsmToken::Comma, "expected comma in '.irp' directive") || 5595 parseMacroArguments(nullptr, A) || 5596 parseToken(AsmToken::EndOfStatement, "expected End of Statement")) 5597 return true; 5598 5599 // Lex the irp definition. 5600 MCAsmMacro *M = parseMacroLikeBody(DirectiveLoc); 5601 if (!M) 5602 return true; 5603 5604 // Macro instantiation is lexical, unfortunately. We construct a new buffer 5605 // to hold the macro body with substitutions. 5606 SmallString<256> Buf; 5607 raw_svector_ostream OS(Buf); 5608 5609 for (const MCAsmMacroArgument &Arg : A) { 5610 // Note that the AtPseudoVariable is enabled for instantiations of .irp. 5611 // This is undocumented, but GAS seems to support it. 5612 if (expandMacro(OS, M->Body, Parameter, Arg, true, getTok().getLoc())) 5613 return true; 5614 } 5615 5616 instantiateMacroLikeBody(M, DirectiveLoc, OS); 5617 5618 return false; 5619 } 5620 5621 /// parseDirectiveIrpc 5622 /// ::= .irpc symbol,values 5623 bool AsmParser::parseDirectiveIrpc(SMLoc DirectiveLoc) { 5624 MCAsmMacroParameter Parameter; 5625 MCAsmMacroArguments A; 5626 5627 if (check(parseIdentifier(Parameter.Name), 5628 "expected identifier in '.irpc' directive") || 5629 parseToken(AsmToken::Comma, "expected comma in '.irpc' directive") || 5630 parseMacroArguments(nullptr, A)) 5631 return true; 5632 5633 if (A.size() != 1 || A.front().size() != 1) 5634 return TokError("unexpected token in '.irpc' directive"); 5635 5636 // Eat the end of statement. 5637 if (parseToken(AsmToken::EndOfStatement, "expected end of statement")) 5638 return true; 5639 5640 // Lex the irpc definition. 5641 MCAsmMacro *M = parseMacroLikeBody(DirectiveLoc); 5642 if (!M) 5643 return true; 5644 5645 // Macro instantiation is lexical, unfortunately. We construct a new buffer 5646 // to hold the macro body with substitutions. 5647 SmallString<256> Buf; 5648 raw_svector_ostream OS(Buf); 5649 5650 StringRef Values = A.front().front().getString(); 5651 for (std::size_t I = 0, End = Values.size(); I != End; ++I) { 5652 MCAsmMacroArgument Arg; 5653 Arg.emplace_back(AsmToken::Identifier, Values.slice(I, I + 1)); 5654 5655 // Note that the AtPseudoVariable is enabled for instantiations of .irpc. 5656 // This is undocumented, but GAS seems to support it. 5657 if (expandMacro(OS, M->Body, Parameter, Arg, true, getTok().getLoc())) 5658 return true; 5659 } 5660 5661 instantiateMacroLikeBody(M, DirectiveLoc, OS); 5662 5663 return false; 5664 } 5665 5666 bool AsmParser::parseDirectiveEndr(SMLoc DirectiveLoc) { 5667 if (ActiveMacros.empty()) 5668 return TokError("unmatched '.endr' directive"); 5669 5670 // The only .repl that should get here are the ones created by 5671 // instantiateMacroLikeBody. 5672 assert(getLexer().is(AsmToken::EndOfStatement)); 5673 5674 handleMacroExit(); 5675 return false; 5676 } 5677 5678 bool AsmParser::parseDirectiveMSEmit(SMLoc IDLoc, ParseStatementInfo &Info, 5679 size_t Len) { 5680 const MCExpr *Value; 5681 SMLoc ExprLoc = getLexer().getLoc(); 5682 if (parseExpression(Value)) 5683 return true; 5684 const MCConstantExpr *MCE = dyn_cast<MCConstantExpr>(Value); 5685 if (!MCE) 5686 return Error(ExprLoc, "unexpected expression in _emit"); 5687 uint64_t IntValue = MCE->getValue(); 5688 if (!isUInt<8>(IntValue) && !isInt<8>(IntValue)) 5689 return Error(ExprLoc, "literal value out of range for directive"); 5690 5691 Info.AsmRewrites->emplace_back(AOK_Emit, IDLoc, Len); 5692 return false; 5693 } 5694 5695 bool AsmParser::parseDirectiveMSAlign(SMLoc IDLoc, ParseStatementInfo &Info) { 5696 const MCExpr *Value; 5697 SMLoc ExprLoc = getLexer().getLoc(); 5698 if (parseExpression(Value)) 5699 return true; 5700 const MCConstantExpr *MCE = dyn_cast<MCConstantExpr>(Value); 5701 if (!MCE) 5702 return Error(ExprLoc, "unexpected expression in align"); 5703 uint64_t IntValue = MCE->getValue(); 5704 if (!isPowerOf2_64(IntValue)) 5705 return Error(ExprLoc, "literal value not a power of two greater then zero"); 5706 5707 Info.AsmRewrites->emplace_back(AOK_Align, IDLoc, 5, Log2_64(IntValue)); 5708 return false; 5709 } 5710 5711 bool AsmParser::parseDirectivePrint(SMLoc DirectiveLoc) { 5712 const AsmToken StrTok = getTok(); 5713 Lex(); 5714 if (StrTok.isNot(AsmToken::String) || StrTok.getString().front() != '"') 5715 return Error(DirectiveLoc, "expected double quoted string after .print"); 5716 if (parseToken(AsmToken::EndOfStatement, "expected end of statement")) 5717 return true; 5718 llvm::outs() << StrTok.getStringContents() << '\n'; 5719 return false; 5720 } 5721 5722 bool AsmParser::parseDirectiveAddrsig() { 5723 getStreamer().EmitAddrsig(); 5724 return false; 5725 } 5726 5727 bool AsmParser::parseDirectiveAddrsigSym() { 5728 StringRef Name; 5729 if (check(parseIdentifier(Name), 5730 "expected identifier in '.addrsig_sym' directive")) 5731 return true; 5732 MCSymbol *Sym = getContext().getOrCreateSymbol(Name); 5733 getStreamer().EmitAddrsigSym(Sym); 5734 return false; 5735 } 5736 5737 // We are comparing pointers, but the pointers are relative to a single string. 5738 // Thus, this should always be deterministic. 5739 static int rewritesSort(const AsmRewrite *AsmRewriteA, 5740 const AsmRewrite *AsmRewriteB) { 5741 if (AsmRewriteA->Loc.getPointer() < AsmRewriteB->Loc.getPointer()) 5742 return -1; 5743 if (AsmRewriteB->Loc.getPointer() < AsmRewriteA->Loc.getPointer()) 5744 return 1; 5745 5746 // It's possible to have a SizeDirective, Imm/ImmPrefix and an Input/Output 5747 // rewrite to the same location. Make sure the SizeDirective rewrite is 5748 // performed first, then the Imm/ImmPrefix and finally the Input/Output. This 5749 // ensures the sort algorithm is stable. 5750 if (AsmRewritePrecedence[AsmRewriteA->Kind] > 5751 AsmRewritePrecedence[AsmRewriteB->Kind]) 5752 return -1; 5753 5754 if (AsmRewritePrecedence[AsmRewriteA->Kind] < 5755 AsmRewritePrecedence[AsmRewriteB->Kind]) 5756 return 1; 5757 llvm_unreachable("Unstable rewrite sort."); 5758 } 5759 5760 bool AsmParser::parseMSInlineAsm( 5761 void *AsmLoc, std::string &AsmString, unsigned &NumOutputs, 5762 unsigned &NumInputs, SmallVectorImpl<std::pair<void *, bool>> &OpDecls, 5763 SmallVectorImpl<std::string> &Constraints, 5764 SmallVectorImpl<std::string> &Clobbers, const MCInstrInfo *MII, 5765 const MCInstPrinter *IP, MCAsmParserSemaCallback &SI) { 5766 SmallVector<void *, 4> InputDecls; 5767 SmallVector<void *, 4> OutputDecls; 5768 SmallVector<bool, 4> InputDeclsAddressOf; 5769 SmallVector<bool, 4> OutputDeclsAddressOf; 5770 SmallVector<std::string, 4> InputConstraints; 5771 SmallVector<std::string, 4> OutputConstraints; 5772 SmallVector<unsigned, 4> ClobberRegs; 5773 5774 SmallVector<AsmRewrite, 4> AsmStrRewrites; 5775 5776 // Prime the lexer. 5777 Lex(); 5778 5779 // While we have input, parse each statement. 5780 unsigned InputIdx = 0; 5781 unsigned OutputIdx = 0; 5782 while (getLexer().isNot(AsmToken::Eof)) { 5783 // Parse curly braces marking block start/end 5784 if (parseCurlyBlockScope(AsmStrRewrites)) 5785 continue; 5786 5787 ParseStatementInfo Info(&AsmStrRewrites); 5788 bool StatementErr = parseStatement(Info, &SI); 5789 5790 if (StatementErr || Info.ParseError) { 5791 // Emit pending errors if any exist. 5792 printPendingErrors(); 5793 return true; 5794 } 5795 5796 // No pending error should exist here. 5797 assert(!hasPendingError() && "unexpected error from parseStatement"); 5798 5799 if (Info.Opcode == ~0U) 5800 continue; 5801 5802 const MCInstrDesc &Desc = MII->get(Info.Opcode); 5803 5804 // Build the list of clobbers, outputs and inputs. 5805 for (unsigned i = 1, e = Info.ParsedOperands.size(); i != e; ++i) { 5806 MCParsedAsmOperand &Operand = *Info.ParsedOperands[i]; 5807 5808 // Register operand. 5809 if (Operand.isReg() && !Operand.needAddressOf() && 5810 !getTargetParser().OmitRegisterFromClobberLists(Operand.getReg())) { 5811 unsigned NumDefs = Desc.getNumDefs(); 5812 // Clobber. 5813 if (NumDefs && Operand.getMCOperandNum() < NumDefs) 5814 ClobberRegs.push_back(Operand.getReg()); 5815 continue; 5816 } 5817 5818 // Expr/Input or Output. 5819 StringRef SymName = Operand.getSymName(); 5820 if (SymName.empty()) 5821 continue; 5822 5823 void *OpDecl = Operand.getOpDecl(); 5824 if (!OpDecl) 5825 continue; 5826 5827 StringRef Constraint = Operand.getConstraint(); 5828 if (Operand.isImm()) { 5829 // Offset as immediate 5830 if (Operand.isOffsetOfLocal()) 5831 Constraint = "r"; 5832 else 5833 Constraint = "i"; 5834 } 5835 5836 bool isOutput = (i == 1) && Desc.mayStore(); 5837 SMLoc Start = SMLoc::getFromPointer(SymName.data()); 5838 if (isOutput) { 5839 ++InputIdx; 5840 OutputDecls.push_back(OpDecl); 5841 OutputDeclsAddressOf.push_back(Operand.needAddressOf()); 5842 OutputConstraints.push_back(("=" + Constraint).str()); 5843 AsmStrRewrites.emplace_back(AOK_Output, Start, SymName.size()); 5844 } else { 5845 InputDecls.push_back(OpDecl); 5846 InputDeclsAddressOf.push_back(Operand.needAddressOf()); 5847 InputConstraints.push_back(Constraint.str()); 5848 if (Desc.OpInfo[i - 1].isBranchTarget()) 5849 AsmStrRewrites.emplace_back(AOK_CallInput, Start, SymName.size()); 5850 else 5851 AsmStrRewrites.emplace_back(AOK_Input, Start, SymName.size()); 5852 } 5853 } 5854 5855 // Consider implicit defs to be clobbers. Think of cpuid and push. 5856 ArrayRef<MCPhysReg> ImpDefs(Desc.getImplicitDefs(), 5857 Desc.getNumImplicitDefs()); 5858 ClobberRegs.insert(ClobberRegs.end(), ImpDefs.begin(), ImpDefs.end()); 5859 } 5860 5861 // Set the number of Outputs and Inputs. 5862 NumOutputs = OutputDecls.size(); 5863 NumInputs = InputDecls.size(); 5864 5865 // Set the unique clobbers. 5866 array_pod_sort(ClobberRegs.begin(), ClobberRegs.end()); 5867 ClobberRegs.erase(std::unique(ClobberRegs.begin(), ClobberRegs.end()), 5868 ClobberRegs.end()); 5869 Clobbers.assign(ClobberRegs.size(), std::string()); 5870 for (unsigned I = 0, E = ClobberRegs.size(); I != E; ++I) { 5871 raw_string_ostream OS(Clobbers[I]); 5872 IP->printRegName(OS, ClobberRegs[I]); 5873 } 5874 5875 // Merge the various outputs and inputs. Output are expected first. 5876 if (NumOutputs || NumInputs) { 5877 unsigned NumExprs = NumOutputs + NumInputs; 5878 OpDecls.resize(NumExprs); 5879 Constraints.resize(NumExprs); 5880 for (unsigned i = 0; i < NumOutputs; ++i) { 5881 OpDecls[i] = std::make_pair(OutputDecls[i], OutputDeclsAddressOf[i]); 5882 Constraints[i] = OutputConstraints[i]; 5883 } 5884 for (unsigned i = 0, j = NumOutputs; i < NumInputs; ++i, ++j) { 5885 OpDecls[j] = std::make_pair(InputDecls[i], InputDeclsAddressOf[i]); 5886 Constraints[j] = InputConstraints[i]; 5887 } 5888 } 5889 5890 // Build the IR assembly string. 5891 std::string AsmStringIR; 5892 raw_string_ostream OS(AsmStringIR); 5893 StringRef ASMString = 5894 SrcMgr.getMemoryBuffer(SrcMgr.getMainFileID())->getBuffer(); 5895 const char *AsmStart = ASMString.begin(); 5896 const char *AsmEnd = ASMString.end(); 5897 array_pod_sort(AsmStrRewrites.begin(), AsmStrRewrites.end(), rewritesSort); 5898 for (auto it = AsmStrRewrites.begin(); it != AsmStrRewrites.end(); ++it) { 5899 const AsmRewrite &AR = *it; 5900 // Check if this has already been covered by another rewrite... 5901 if (AR.Done) 5902 continue; 5903 AsmRewriteKind Kind = AR.Kind; 5904 5905 const char *Loc = AR.Loc.getPointer(); 5906 assert(Loc >= AsmStart && "Expected Loc to be at or after Start!"); 5907 5908 // Emit everything up to the immediate/expression. 5909 if (unsigned Len = Loc - AsmStart) 5910 OS << StringRef(AsmStart, Len); 5911 5912 // Skip the original expression. 5913 if (Kind == AOK_Skip) { 5914 AsmStart = Loc + AR.Len; 5915 continue; 5916 } 5917 5918 unsigned AdditionalSkip = 0; 5919 // Rewrite expressions in $N notation. 5920 switch (Kind) { 5921 default: 5922 break; 5923 case AOK_IntelExpr: 5924 assert(AR.IntelExp.isValid() && "cannot write invalid intel expression"); 5925 if (AR.IntelExp.NeedBracs) 5926 OS << "["; 5927 if (AR.IntelExp.hasBaseReg()) 5928 OS << AR.IntelExp.BaseReg; 5929 if (AR.IntelExp.hasIndexReg()) 5930 OS << (AR.IntelExp.hasBaseReg() ? " + " : "") 5931 << AR.IntelExp.IndexReg; 5932 if (AR.IntelExp.Scale > 1) 5933 OS << " * $$" << AR.IntelExp.Scale; 5934 if (AR.IntelExp.hasOffset()) { 5935 if (AR.IntelExp.hasRegs()) 5936 OS << " + "; 5937 // Fuse this rewrite with a rewrite of the offset name, if present. 5938 StringRef OffsetName = AR.IntelExp.OffsetName; 5939 SMLoc OffsetLoc = SMLoc::getFromPointer(AR.IntelExp.OffsetName.data()); 5940 size_t OffsetLen = OffsetName.size(); 5941 auto rewrite_it = std::find_if( 5942 it, AsmStrRewrites.end(), [&](const AsmRewrite &FusingAR) { 5943 return FusingAR.Loc == OffsetLoc && FusingAR.Len == OffsetLen && 5944 (FusingAR.Kind == AOK_Input || 5945 FusingAR.Kind == AOK_CallInput); 5946 }); 5947 if (rewrite_it == AsmStrRewrites.end()) { 5948 OS << "offset " << OffsetName; 5949 } else if (rewrite_it->Kind == AOK_CallInput) { 5950 OS << "${" << InputIdx++ << ":P}"; 5951 rewrite_it->Done = true; 5952 } else { 5953 OS << '$' << InputIdx++; 5954 rewrite_it->Done = true; 5955 } 5956 } 5957 if (AR.IntelExp.Imm || AR.IntelExp.emitImm()) 5958 OS << (AR.IntelExp.emitImm() ? "$$" : " + $$") << AR.IntelExp.Imm; 5959 if (AR.IntelExp.NeedBracs) 5960 OS << "]"; 5961 break; 5962 case AOK_Label: 5963 OS << Ctx.getAsmInfo()->getPrivateLabelPrefix() << AR.Label; 5964 break; 5965 case AOK_Input: 5966 OS << '$' << InputIdx++; 5967 break; 5968 case AOK_CallInput: 5969 OS << "${" << InputIdx++ << ":P}"; 5970 break; 5971 case AOK_Output: 5972 OS << '$' << OutputIdx++; 5973 break; 5974 case AOK_SizeDirective: 5975 switch (AR.Val) { 5976 default: break; 5977 case 8: OS << "byte ptr "; break; 5978 case 16: OS << "word ptr "; break; 5979 case 32: OS << "dword ptr "; break; 5980 case 64: OS << "qword ptr "; break; 5981 case 80: OS << "xword ptr "; break; 5982 case 128: OS << "xmmword ptr "; break; 5983 case 256: OS << "ymmword ptr "; break; 5984 } 5985 break; 5986 case AOK_Emit: 5987 OS << ".byte"; 5988 break; 5989 case AOK_Align: { 5990 // MS alignment directives are measured in bytes. If the native assembler 5991 // measures alignment in bytes, we can pass it straight through. 5992 OS << ".align"; 5993 if (getContext().getAsmInfo()->getAlignmentIsInBytes()) 5994 break; 5995 5996 // Alignment is in log2 form, so print that instead and skip the original 5997 // immediate. 5998 unsigned Val = AR.Val; 5999 OS << ' ' << Val; 6000 assert(Val < 10 && "Expected alignment less then 2^10."); 6001 AdditionalSkip = (Val < 4) ? 2 : Val < 7 ? 3 : 4; 6002 break; 6003 } 6004 case AOK_EVEN: 6005 OS << ".even"; 6006 break; 6007 case AOK_EndOfStatement: 6008 OS << "\n\t"; 6009 break; 6010 } 6011 6012 // Skip the original expression. 6013 AsmStart = Loc + AR.Len + AdditionalSkip; 6014 } 6015 6016 // Emit the remainder of the asm string. 6017 if (AsmStart != AsmEnd) 6018 OS << StringRef(AsmStart, AsmEnd - AsmStart); 6019 6020 AsmString = OS.str(); 6021 return false; 6022 } 6023 6024 namespace llvm { 6025 namespace MCParserUtils { 6026 6027 /// Returns whether the given symbol is used anywhere in the given expression, 6028 /// or subexpressions. 6029 static bool isSymbolUsedInExpression(const MCSymbol *Sym, const MCExpr *Value) { 6030 switch (Value->getKind()) { 6031 case MCExpr::Binary: { 6032 const MCBinaryExpr *BE = static_cast<const MCBinaryExpr *>(Value); 6033 return isSymbolUsedInExpression(Sym, BE->getLHS()) || 6034 isSymbolUsedInExpression(Sym, BE->getRHS()); 6035 } 6036 case MCExpr::Target: 6037 case MCExpr::Constant: 6038 return false; 6039 case MCExpr::SymbolRef: { 6040 const MCSymbol &S = 6041 static_cast<const MCSymbolRefExpr *>(Value)->getSymbol(); 6042 if (S.isVariable()) 6043 return isSymbolUsedInExpression(Sym, S.getVariableValue()); 6044 return &S == Sym; 6045 } 6046 case MCExpr::Unary: 6047 return isSymbolUsedInExpression( 6048 Sym, static_cast<const MCUnaryExpr *>(Value)->getSubExpr()); 6049 } 6050 6051 llvm_unreachable("Unknown expr kind!"); 6052 } 6053 6054 bool parseAssignmentExpression(StringRef Name, bool allow_redef, 6055 MCAsmParser &Parser, MCSymbol *&Sym, 6056 const MCExpr *&Value) { 6057 6058 // FIXME: Use better location, we should use proper tokens. 6059 SMLoc EqualLoc = Parser.getTok().getLoc(); 6060 if (Parser.parseExpression(Value)) 6061 return Parser.TokError("missing expression"); 6062 6063 // Note: we don't count b as used in "a = b". This is to allow 6064 // a = b 6065 // b = c 6066 6067 if (Parser.parseToken(AsmToken::EndOfStatement)) 6068 return true; 6069 6070 // Validate that the LHS is allowed to be a variable (either it has not been 6071 // used as a symbol, or it is an absolute symbol). 6072 Sym = Parser.getContext().lookupSymbol(Name); 6073 if (Sym) { 6074 // Diagnose assignment to a label. 6075 // 6076 // FIXME: Diagnostics. Note the location of the definition as a label. 6077 // FIXME: Diagnose assignment to protected identifier (e.g., register name). 6078 if (isSymbolUsedInExpression(Sym, Value)) 6079 return Parser.Error(EqualLoc, "Recursive use of '" + Name + "'"); 6080 else if (Sym->isUndefined(/*SetUsed*/ false) && !Sym->isUsed() && 6081 !Sym->isVariable()) 6082 ; // Allow redefinitions of undefined symbols only used in directives. 6083 else if (Sym->isVariable() && !Sym->isUsed() && allow_redef) 6084 ; // Allow redefinitions of variables that haven't yet been used. 6085 else if (!Sym->isUndefined() && (!Sym->isVariable() || !allow_redef)) 6086 return Parser.Error(EqualLoc, "redefinition of '" + Name + "'"); 6087 else if (!Sym->isVariable()) 6088 return Parser.Error(EqualLoc, "invalid assignment to '" + Name + "'"); 6089 else if (!isa<MCConstantExpr>(Sym->getVariableValue())) 6090 return Parser.Error(EqualLoc, 6091 "invalid reassignment of non-absolute variable '" + 6092 Name + "'"); 6093 } else if (Name == ".") { 6094 Parser.getStreamer().emitValueToOffset(Value, 0, EqualLoc); 6095 return false; 6096 } else 6097 Sym = Parser.getContext().getOrCreateSymbol(Name); 6098 6099 Sym->setRedefinable(allow_redef); 6100 6101 return false; 6102 } 6103 6104 } // end namespace MCParserUtils 6105 } // end namespace llvm 6106 6107 /// Create an MCAsmParser instance. 6108 MCAsmParser *llvm::createMCAsmParser(SourceMgr &SM, MCContext &C, 6109 MCStreamer &Out, const MCAsmInfo &MAI, 6110 unsigned CB) { 6111 return new AsmParser(SM, C, Out, MAI, CB); 6112 } 6113