1 //===- AsmMatcherEmitter.cpp - Generate an assembly matcher ---------------===// 2 // 3 // The LLVM Compiler Infrastructure 4 // 5 // This file is distributed under the University of Illinois Open Source 6 // License. See LICENSE.TXT for details. 7 // 8 //===----------------------------------------------------------------------===// 9 // 10 // This tablegen backend emits a target specifier matcher for converting parsed 11 // assembly operands in the MCInst structures. 12 // 13 // The input to the target specific matcher is a list of literal tokens and 14 // operands. The target specific parser should generally eliminate any syntax 15 // which is not relevant for matching; for example, comma tokens should have 16 // already been consumed and eliminated by the parser. Most instructions will 17 // end up with a single literal token (the instruction name) and some number of 18 // operands. 19 // 20 // Some example inputs, for X86: 21 // 'addl' (immediate ...) (register ...) 22 // 'add' (immediate ...) (memory ...) 23 // 'call' '*' %epc 24 // 25 // The assembly matcher is responsible for converting this input into a precise 26 // machine instruction (i.e., an instruction with a well defined encoding). This 27 // mapping has several properties which complicate matching: 28 // 29 // - It may be ambiguous; many architectures can legally encode particular 30 // variants of an instruction in different ways (for example, using a smaller 31 // encoding for small immediates). Such ambiguities should never be 32 // arbitrarily resolved by the assembler, the assembler is always responsible 33 // for choosing the "best" available instruction. 34 // 35 // - It may depend on the subtarget or the assembler context. Instructions 36 // which are invalid for the current mode, but otherwise unambiguous (e.g., 37 // an SSE instruction in a file being assembled for i486) should be accepted 38 // and rejected by the assembler front end. However, if the proper encoding 39 // for an instruction is dependent on the assembler context then the matcher 40 // is responsible for selecting the correct machine instruction for the 41 // current mode. 42 // 43 // The core matching algorithm attempts to exploit the regularity in most 44 // instruction sets to quickly determine the set of possibly matching 45 // instructions, and the simplify the generated code. Additionally, this helps 46 // to ensure that the ambiguities are intentionally resolved by the user. 47 // 48 // The matching is divided into two distinct phases: 49 // 50 // 1. Classification: Each operand is mapped to the unique set which (a) 51 // contains it, and (b) is the largest such subset for which a single 52 // instruction could match all members. 53 // 54 // For register classes, we can generate these subgroups automatically. For 55 // arbitrary operands, we expect the user to define the classes and their 56 // relations to one another (for example, 8-bit signed immediates as a 57 // subset of 32-bit immediates). 58 // 59 // By partitioning the operands in this way, we guarantee that for any 60 // tuple of classes, any single instruction must match either all or none 61 // of the sets of operands which could classify to that tuple. 62 // 63 // In addition, the subset relation amongst classes induces a partial order 64 // on such tuples, which we use to resolve ambiguities. 65 // 66 // FIXME: What do we do if a crazy case shows up where this is the wrong 67 // resolution? 68 // 69 // 2. The input can now be treated as a tuple of classes (static tokens are 70 // simple singleton sets). Each such tuple should generally map to a single 71 // instruction (we currently ignore cases where this isn't true, whee!!!), 72 // which we can emit a simple matcher for. 73 // 74 //===----------------------------------------------------------------------===// 75 76 #include "AsmMatcherEmitter.h" 77 #include "CodeGenTarget.h" 78 #include "Record.h" 79 #include "llvm/ADT/OwningPtr.h" 80 #include "llvm/ADT/SmallVector.h" 81 #include "llvm/ADT/STLExtras.h" 82 #include "llvm/ADT/StringExtras.h" 83 #include "llvm/Support/CommandLine.h" 84 #include "llvm/Support/Debug.h" 85 #include <list> 86 #include <map> 87 #include <set> 88 using namespace llvm; 89 90 static cl::opt<std::string> 91 MatchPrefix("match-prefix", cl::init(""), 92 cl::desc("Only match instructions with the given prefix")); 93 94 /// FlattenVariants - Flatten an .td file assembly string by selecting the 95 /// variant at index \arg N. 96 static std::string FlattenVariants(const std::string &AsmString, 97 unsigned N) { 98 StringRef Cur = AsmString; 99 std::string Res = ""; 100 101 for (;;) { 102 // Find the start of the next variant string. 103 size_t VariantsStart = 0; 104 for (size_t e = Cur.size(); VariantsStart != e; ++VariantsStart) 105 if (Cur[VariantsStart] == '{' && 106 (VariantsStart == 0 || (Cur[VariantsStart-1] != '$' && 107 Cur[VariantsStart-1] != '\\'))) 108 break; 109 110 // Add the prefix to the result. 111 Res += Cur.slice(0, VariantsStart); 112 if (VariantsStart == Cur.size()) 113 break; 114 115 ++VariantsStart; // Skip the '{'. 116 117 // Scan to the end of the variants string. 118 size_t VariantsEnd = VariantsStart; 119 unsigned NestedBraces = 1; 120 for (size_t e = Cur.size(); VariantsEnd != e; ++VariantsEnd) { 121 if (Cur[VariantsEnd] == '}' && Cur[VariantsEnd-1] != '\\') { 122 if (--NestedBraces == 0) 123 break; 124 } else if (Cur[VariantsEnd] == '{') 125 ++NestedBraces; 126 } 127 128 // Select the Nth variant (or empty). 129 StringRef Selection = Cur.slice(VariantsStart, VariantsEnd); 130 for (unsigned i = 0; i != N; ++i) 131 Selection = Selection.split('|').second; 132 Res += Selection.split('|').first; 133 134 assert(VariantsEnd != Cur.size() && 135 "Unterminated variants in assembly string!"); 136 Cur = Cur.substr(VariantsEnd + 1); 137 } 138 139 return Res; 140 } 141 142 /// TokenizeAsmString - Tokenize a simplified assembly string. 143 static void TokenizeAsmString(StringRef AsmString, 144 SmallVectorImpl<StringRef> &Tokens) { 145 unsigned Prev = 0; 146 bool InTok = true; 147 for (unsigned i = 0, e = AsmString.size(); i != e; ++i) { 148 switch (AsmString[i]) { 149 case '[': 150 case ']': 151 case '*': 152 case '!': 153 case ' ': 154 case '\t': 155 case ',': 156 if (InTok) { 157 Tokens.push_back(AsmString.slice(Prev, i)); 158 InTok = false; 159 } 160 if (!isspace(AsmString[i]) && AsmString[i] != ',') 161 Tokens.push_back(AsmString.substr(i, 1)); 162 Prev = i + 1; 163 break; 164 165 case '\\': 166 if (InTok) { 167 Tokens.push_back(AsmString.slice(Prev, i)); 168 InTok = false; 169 } 170 ++i; 171 assert(i != AsmString.size() && "Invalid quoted character"); 172 Tokens.push_back(AsmString.substr(i, 1)); 173 Prev = i + 1; 174 break; 175 176 case '$': { 177 // If this isn't "${", treat like a normal token. 178 if (i + 1 == AsmString.size() || AsmString[i + 1] != '{') { 179 if (InTok) { 180 Tokens.push_back(AsmString.slice(Prev, i)); 181 InTok = false; 182 } 183 Prev = i; 184 break; 185 } 186 187 if (InTok) { 188 Tokens.push_back(AsmString.slice(Prev, i)); 189 InTok = false; 190 } 191 192 StringRef::iterator End = 193 std::find(AsmString.begin() + i, AsmString.end(), '}'); 194 assert(End != AsmString.end() && "Missing brace in operand reference!"); 195 size_t EndPos = End - AsmString.begin(); 196 Tokens.push_back(AsmString.slice(i, EndPos+1)); 197 Prev = EndPos + 1; 198 i = EndPos; 199 break; 200 } 201 202 case '.': 203 if (InTok) { 204 Tokens.push_back(AsmString.slice(Prev, i)); 205 } 206 Prev = i; 207 InTok = true; 208 break; 209 210 default: 211 InTok = true; 212 } 213 } 214 if (InTok && Prev != AsmString.size()) 215 Tokens.push_back(AsmString.substr(Prev)); 216 } 217 218 static bool IsAssemblerInstruction(StringRef Name, 219 const CodeGenInstruction &CGI, 220 const SmallVectorImpl<StringRef> &Tokens) { 221 // Ignore "codegen only" instructions. 222 if (CGI.TheDef->getValueAsBit("isCodeGenOnly")) 223 return false; 224 225 // Ignore pseudo ops. 226 // 227 // FIXME: This is a hack; can we convert these instructions to set the 228 // "codegen only" bit instead? 229 if (const RecordVal *Form = CGI.TheDef->getValue("Form")) 230 if (Form->getValue()->getAsString() == "Pseudo") 231 return false; 232 233 // Ignore "Int_*" and "*_Int" instructions, which are internal aliases. 234 // 235 // FIXME: This is a total hack. 236 if (StringRef(Name).startswith("Int_") || StringRef(Name).endswith("_Int")) 237 return false; 238 239 // Ignore instructions with no .s string. 240 // 241 // FIXME: What are these? 242 if (CGI.AsmString.empty()) 243 return false; 244 245 // FIXME: Hack; ignore any instructions with a newline in them. 246 if (std::find(CGI.AsmString.begin(), 247 CGI.AsmString.end(), '\n') != CGI.AsmString.end()) 248 return false; 249 250 // Ignore instructions with attributes, these are always fake instructions for 251 // simplifying codegen. 252 // 253 // FIXME: Is this true? 254 // 255 // Also, check for instructions which reference the operand multiple times; 256 // this implies a constraint we would not honor. 257 std::set<std::string> OperandNames; 258 for (unsigned i = 1, e = Tokens.size(); i < e; ++i) { 259 if (Tokens[i][0] == '$' && 260 std::find(Tokens[i].begin(), 261 Tokens[i].end(), ':') != Tokens[i].end()) { 262 DEBUG({ 263 errs() << "warning: '" << Name << "': " 264 << "ignoring instruction; operand with attribute '" 265 << Tokens[i] << "'\n"; 266 }); 267 return false; 268 } 269 270 if (Tokens[i][0] == '$' && !OperandNames.insert(Tokens[i]).second) { 271 DEBUG({ 272 errs() << "warning: '" << Name << "': " 273 << "ignoring instruction with tied operand '" 274 << Tokens[i].str() << "'\n"; 275 }); 276 return false; 277 } 278 } 279 280 return true; 281 } 282 283 namespace { 284 285 struct SubtargetFeatureInfo; 286 287 /// ClassInfo - Helper class for storing the information about a particular 288 /// class of operands which can be matched. 289 struct ClassInfo { 290 enum ClassInfoKind { 291 /// Invalid kind, for use as a sentinel value. 292 Invalid = 0, 293 294 /// The class for a particular token. 295 Token, 296 297 /// The (first) register class, subsequent register classes are 298 /// RegisterClass0+1, and so on. 299 RegisterClass0, 300 301 /// The (first) user defined class, subsequent user defined classes are 302 /// UserClass0+1, and so on. 303 UserClass0 = 1<<16 304 }; 305 306 /// Kind - The class kind, which is either a predefined kind, or (UserClass0 + 307 /// N) for the Nth user defined class. 308 unsigned Kind; 309 310 /// SuperClasses - The super classes of this class. Note that for simplicities 311 /// sake user operands only record their immediate super class, while register 312 /// operands include all superclasses. 313 std::vector<ClassInfo*> SuperClasses; 314 315 /// Name - The full class name, suitable for use in an enum. 316 std::string Name; 317 318 /// ClassName - The unadorned generic name for this class (e.g., Token). 319 std::string ClassName; 320 321 /// ValueName - The name of the value this class represents; for a token this 322 /// is the literal token string, for an operand it is the TableGen class (or 323 /// empty if this is a derived class). 324 std::string ValueName; 325 326 /// PredicateMethod - The name of the operand method to test whether the 327 /// operand matches this class; this is not valid for Token or register kinds. 328 std::string PredicateMethod; 329 330 /// RenderMethod - The name of the operand method to add this operand to an 331 /// MCInst; this is not valid for Token or register kinds. 332 std::string RenderMethod; 333 334 /// For register classes, the records for all the registers in this class. 335 std::set<Record*> Registers; 336 337 public: 338 /// isRegisterClass() - Check if this is a register class. 339 bool isRegisterClass() const { 340 return Kind >= RegisterClass0 && Kind < UserClass0; 341 } 342 343 /// isUserClass() - Check if this is a user defined class. 344 bool isUserClass() const { 345 return Kind >= UserClass0; 346 } 347 348 /// isRelatedTo - Check whether this class is "related" to \arg RHS. Classes 349 /// are related if they are in the same class hierarchy. 350 bool isRelatedTo(const ClassInfo &RHS) const { 351 // Tokens are only related to tokens. 352 if (Kind == Token || RHS.Kind == Token) 353 return Kind == Token && RHS.Kind == Token; 354 355 // Registers classes are only related to registers classes, and only if 356 // their intersection is non-empty. 357 if (isRegisterClass() || RHS.isRegisterClass()) { 358 if (!isRegisterClass() || !RHS.isRegisterClass()) 359 return false; 360 361 std::set<Record*> Tmp; 362 std::insert_iterator< std::set<Record*> > II(Tmp, Tmp.begin()); 363 std::set_intersection(Registers.begin(), Registers.end(), 364 RHS.Registers.begin(), RHS.Registers.end(), 365 II); 366 367 return !Tmp.empty(); 368 } 369 370 // Otherwise we have two users operands; they are related if they are in the 371 // same class hierarchy. 372 // 373 // FIXME: This is an oversimplification, they should only be related if they 374 // intersect, however we don't have that information. 375 assert(isUserClass() && RHS.isUserClass() && "Unexpected class!"); 376 const ClassInfo *Root = this; 377 while (!Root->SuperClasses.empty()) 378 Root = Root->SuperClasses.front(); 379 380 const ClassInfo *RHSRoot = &RHS; 381 while (!RHSRoot->SuperClasses.empty()) 382 RHSRoot = RHSRoot->SuperClasses.front(); 383 384 return Root == RHSRoot; 385 } 386 387 /// isSubsetOf - Test whether this class is a subset of \arg RHS; 388 bool isSubsetOf(const ClassInfo &RHS) const { 389 // This is a subset of RHS if it is the same class... 390 if (this == &RHS) 391 return true; 392 393 // ... or if any of its super classes are a subset of RHS. 394 for (std::vector<ClassInfo*>::const_iterator it = SuperClasses.begin(), 395 ie = SuperClasses.end(); it != ie; ++it) 396 if ((*it)->isSubsetOf(RHS)) 397 return true; 398 399 return false; 400 } 401 402 /// operator< - Compare two classes. 403 bool operator<(const ClassInfo &RHS) const { 404 if (this == &RHS) 405 return false; 406 407 // Unrelated classes can be ordered by kind. 408 if (!isRelatedTo(RHS)) 409 return Kind < RHS.Kind; 410 411 switch (Kind) { 412 case Invalid: 413 assert(0 && "Invalid kind!"); 414 case Token: 415 // Tokens are comparable by value. 416 // 417 // FIXME: Compare by enum value. 418 return ValueName < RHS.ValueName; 419 420 default: 421 // This class preceeds the RHS if it is a proper subset of the RHS. 422 if (isSubsetOf(RHS)) 423 return true; 424 if (RHS.isSubsetOf(*this)) 425 return false; 426 427 // Otherwise, order by name to ensure we have a total ordering. 428 return ValueName < RHS.ValueName; 429 } 430 } 431 }; 432 433 /// InstructionInfo - Helper class for storing the necessary information for an 434 /// instruction which is capable of being matched. 435 struct InstructionInfo { 436 struct Operand { 437 /// The unique class instance this operand should match. 438 ClassInfo *Class; 439 440 /// The original operand this corresponds to, if any. 441 const CodeGenInstruction::OperandInfo *OperandInfo; 442 }; 443 444 /// InstrName - The target name for this instruction. 445 std::string InstrName; 446 447 /// Instr - The instruction this matches. 448 const CodeGenInstruction *Instr; 449 450 /// AsmString - The assembly string for this instruction (with variants 451 /// removed). 452 std::string AsmString; 453 454 /// Tokens - The tokenized assembly pattern that this instruction matches. 455 SmallVector<StringRef, 4> Tokens; 456 457 /// Operands - The operands that this instruction matches. 458 SmallVector<Operand, 4> Operands; 459 460 /// Predicates - The required subtarget features to match this instruction. 461 SmallVector<SubtargetFeatureInfo*, 4> RequiredFeatures; 462 463 /// ConversionFnKind - The enum value which is passed to the generated 464 /// ConvertToMCInst to convert parsed operands into an MCInst for this 465 /// function. 466 std::string ConversionFnKind; 467 468 /// operator< - Compare two instructions. 469 bool operator<(const InstructionInfo &RHS) const { 470 if (Operands.size() != RHS.Operands.size()) 471 return Operands.size() < RHS.Operands.size(); 472 473 // Compare lexicographically by operand. The matcher validates that other 474 // orderings wouldn't be ambiguous using \see CouldMatchAmiguouslyWith(). 475 for (unsigned i = 0, e = Operands.size(); i != e; ++i) { 476 if (*Operands[i].Class < *RHS.Operands[i].Class) 477 return true; 478 if (*RHS.Operands[i].Class < *Operands[i].Class) 479 return false; 480 } 481 482 return false; 483 } 484 485 /// CouldMatchAmiguouslyWith - Check whether this instruction could 486 /// ambiguously match the same set of operands as \arg RHS (without being a 487 /// strictly superior match). 488 bool CouldMatchAmiguouslyWith(const InstructionInfo &RHS) { 489 // The number of operands is unambiguous. 490 if (Operands.size() != RHS.Operands.size()) 491 return false; 492 493 // Otherwise, make sure the ordering of the two instructions is unambiguous 494 // by checking that either (a) a token or operand kind discriminates them, 495 // or (b) the ordering among equivalent kinds is consistent. 496 497 // Tokens and operand kinds are unambiguous (assuming a correct target 498 // specific parser). 499 for (unsigned i = 0, e = Operands.size(); i != e; ++i) 500 if (Operands[i].Class->Kind != RHS.Operands[i].Class->Kind || 501 Operands[i].Class->Kind == ClassInfo::Token) 502 if (*Operands[i].Class < *RHS.Operands[i].Class || 503 *RHS.Operands[i].Class < *Operands[i].Class) 504 return false; 505 506 // Otherwise, this operand could commute if all operands are equivalent, or 507 // there is a pair of operands that compare less than and a pair that 508 // compare greater than. 509 bool HasLT = false, HasGT = false; 510 for (unsigned i = 0, e = Operands.size(); i != e; ++i) { 511 if (*Operands[i].Class < *RHS.Operands[i].Class) 512 HasLT = true; 513 if (*RHS.Operands[i].Class < *Operands[i].Class) 514 HasGT = true; 515 } 516 517 return !(HasLT ^ HasGT); 518 } 519 520 public: 521 void dump(); 522 }; 523 524 /// SubtargetFeatureInfo - Helper class for storing information on a subtarget 525 /// feature which participates in instruction matching. 526 struct SubtargetFeatureInfo { 527 /// \brief The predicate record for this feature. 528 Record *TheDef; 529 530 /// \brief An unique index assigned to represent this feature. 531 unsigned Index; 532 533 /// \brief The name of the enumerated constant identifying this feature. 534 std::string EnumName; 535 }; 536 537 class AsmMatcherInfo { 538 public: 539 /// The tablegen AsmParser record. 540 Record *AsmParser; 541 542 /// The AsmParser "CommentDelimiter" value. 543 std::string CommentDelimiter; 544 545 /// The AsmParser "RegisterPrefix" value. 546 std::string RegisterPrefix; 547 548 /// The classes which are needed for matching. 549 std::vector<ClassInfo*> Classes; 550 551 /// The information on the instruction to match. 552 std::vector<InstructionInfo*> Instructions; 553 554 /// Map of Register records to their class information. 555 std::map<Record*, ClassInfo*> RegisterClasses; 556 557 /// Map of Predicate records to their subtarget information. 558 std::map<Record*, SubtargetFeatureInfo*> SubtargetFeatures; 559 560 private: 561 /// Map of token to class information which has already been constructed. 562 std::map<std::string, ClassInfo*> TokenClasses; 563 564 /// Map of RegisterClass records to their class information. 565 std::map<Record*, ClassInfo*> RegisterClassClasses; 566 567 /// Map of AsmOperandClass records to their class information. 568 std::map<Record*, ClassInfo*> AsmOperandClasses; 569 570 private: 571 /// getTokenClass - Lookup or create the class for the given token. 572 ClassInfo *getTokenClass(StringRef Token); 573 574 /// getOperandClass - Lookup or create the class for the given operand. 575 ClassInfo *getOperandClass(StringRef Token, 576 const CodeGenInstruction::OperandInfo &OI); 577 578 /// getSubtargetFeature - Lookup or create the subtarget feature info for the 579 /// given operand. 580 SubtargetFeatureInfo *getSubtargetFeature(Record *Def) { 581 assert(Def->isSubClassOf("Predicate") && "Invalid predicate type!"); 582 583 SubtargetFeatureInfo *&Entry = SubtargetFeatures[Def]; 584 if (!Entry) { 585 Entry = new SubtargetFeatureInfo; 586 Entry->TheDef = Def; 587 Entry->Index = SubtargetFeatures.size() - 1; 588 Entry->EnumName = "Feature_" + Def->getName(); 589 assert(Entry->Index < 32 && "Too many subtarget features!"); 590 } 591 592 return Entry; 593 } 594 595 /// BuildRegisterClasses - Build the ClassInfo* instances for register 596 /// classes. 597 void BuildRegisterClasses(CodeGenTarget &Target, 598 std::set<std::string> &SingletonRegisterNames); 599 600 /// BuildOperandClasses - Build the ClassInfo* instances for user defined 601 /// operand classes. 602 void BuildOperandClasses(CodeGenTarget &Target); 603 604 public: 605 AsmMatcherInfo(Record *_AsmParser); 606 607 /// BuildInfo - Construct the various tables used during matching. 608 void BuildInfo(CodeGenTarget &Target); 609 }; 610 611 } 612 613 void InstructionInfo::dump() { 614 errs() << InstrName << " -- " << "flattened:\"" << AsmString << '\"' 615 << ", tokens:["; 616 for (unsigned i = 0, e = Tokens.size(); i != e; ++i) { 617 errs() << Tokens[i]; 618 if (i + 1 != e) 619 errs() << ", "; 620 } 621 errs() << "]\n"; 622 623 for (unsigned i = 0, e = Operands.size(); i != e; ++i) { 624 Operand &Op = Operands[i]; 625 errs() << " op[" << i << "] = " << Op.Class->ClassName << " - "; 626 if (Op.Class->Kind == ClassInfo::Token) { 627 errs() << '\"' << Tokens[i] << "\"\n"; 628 continue; 629 } 630 631 if (!Op.OperandInfo) { 632 errs() << "(singleton register)\n"; 633 continue; 634 } 635 636 const CodeGenInstruction::OperandInfo &OI = *Op.OperandInfo; 637 errs() << OI.Name << " " << OI.Rec->getName() 638 << " (" << OI.MIOperandNo << ", " << OI.MINumOperands << ")\n"; 639 } 640 } 641 642 static std::string getEnumNameForToken(StringRef Str) { 643 std::string Res; 644 645 for (StringRef::iterator it = Str.begin(), ie = Str.end(); it != ie; ++it) { 646 switch (*it) { 647 case '*': Res += "_STAR_"; break; 648 case '%': Res += "_PCT_"; break; 649 case ':': Res += "_COLON_"; break; 650 651 default: 652 if (isalnum(*it)) { 653 Res += *it; 654 } else { 655 Res += "_" + utostr((unsigned) *it) + "_"; 656 } 657 } 658 } 659 660 return Res; 661 } 662 663 /// getRegisterRecord - Get the register record for \arg name, or 0. 664 static Record *getRegisterRecord(CodeGenTarget &Target, StringRef Name) { 665 for (unsigned i = 0, e = Target.getRegisters().size(); i != e; ++i) { 666 const CodeGenRegister &Reg = Target.getRegisters()[i]; 667 if (Name == Reg.TheDef->getValueAsString("AsmName")) 668 return Reg.TheDef; 669 } 670 671 return 0; 672 } 673 674 ClassInfo *AsmMatcherInfo::getTokenClass(StringRef Token) { 675 ClassInfo *&Entry = TokenClasses[Token]; 676 677 if (!Entry) { 678 Entry = new ClassInfo(); 679 Entry->Kind = ClassInfo::Token; 680 Entry->ClassName = "Token"; 681 Entry->Name = "MCK_" + getEnumNameForToken(Token); 682 Entry->ValueName = Token; 683 Entry->PredicateMethod = "<invalid>"; 684 Entry->RenderMethod = "<invalid>"; 685 Classes.push_back(Entry); 686 } 687 688 return Entry; 689 } 690 691 ClassInfo * 692 AsmMatcherInfo::getOperandClass(StringRef Token, 693 const CodeGenInstruction::OperandInfo &OI) { 694 if (OI.Rec->isSubClassOf("RegisterClass")) { 695 ClassInfo *CI = RegisterClassClasses[OI.Rec]; 696 697 if (!CI) { 698 PrintError(OI.Rec->getLoc(), "register class has no class info!"); 699 throw std::string("ERROR: Missing register class!"); 700 } 701 702 return CI; 703 } 704 705 assert(OI.Rec->isSubClassOf("Operand") && "Unexpected operand!"); 706 Record *MatchClass = OI.Rec->getValueAsDef("ParserMatchClass"); 707 ClassInfo *CI = AsmOperandClasses[MatchClass]; 708 709 if (!CI) { 710 PrintError(OI.Rec->getLoc(), "operand has no match class!"); 711 throw std::string("ERROR: Missing match class!"); 712 } 713 714 return CI; 715 } 716 717 void AsmMatcherInfo::BuildRegisterClasses(CodeGenTarget &Target, 718 std::set<std::string> 719 &SingletonRegisterNames) { 720 std::vector<CodeGenRegisterClass> RegisterClasses; 721 std::vector<CodeGenRegister> Registers; 722 723 RegisterClasses = Target.getRegisterClasses(); 724 Registers = Target.getRegisters(); 725 726 // The register sets used for matching. 727 std::set< std::set<Record*> > RegisterSets; 728 729 // Gather the defined sets. 730 for (std::vector<CodeGenRegisterClass>::iterator it = RegisterClasses.begin(), 731 ie = RegisterClasses.end(); it != ie; ++it) 732 RegisterSets.insert(std::set<Record*>(it->Elements.begin(), 733 it->Elements.end())); 734 735 // Add any required singleton sets. 736 for (std::set<std::string>::iterator it = SingletonRegisterNames.begin(), 737 ie = SingletonRegisterNames.end(); it != ie; ++it) 738 if (Record *Rec = getRegisterRecord(Target, *it)) 739 RegisterSets.insert(std::set<Record*>(&Rec, &Rec + 1)); 740 741 // Introduce derived sets where necessary (when a register does not determine 742 // a unique register set class), and build the mapping of registers to the set 743 // they should classify to. 744 std::map<Record*, std::set<Record*> > RegisterMap; 745 for (std::vector<CodeGenRegister>::iterator it = Registers.begin(), 746 ie = Registers.end(); it != ie; ++it) { 747 CodeGenRegister &CGR = *it; 748 // Compute the intersection of all sets containing this register. 749 std::set<Record*> ContainingSet; 750 751 for (std::set< std::set<Record*> >::iterator it = RegisterSets.begin(), 752 ie = RegisterSets.end(); it != ie; ++it) { 753 if (!it->count(CGR.TheDef)) 754 continue; 755 756 if (ContainingSet.empty()) { 757 ContainingSet = *it; 758 } else { 759 std::set<Record*> Tmp; 760 std::swap(Tmp, ContainingSet); 761 std::insert_iterator< std::set<Record*> > II(ContainingSet, 762 ContainingSet.begin()); 763 std::set_intersection(Tmp.begin(), Tmp.end(), it->begin(), it->end(), 764 II); 765 } 766 } 767 768 if (!ContainingSet.empty()) { 769 RegisterSets.insert(ContainingSet); 770 RegisterMap.insert(std::make_pair(CGR.TheDef, ContainingSet)); 771 } 772 } 773 774 // Construct the register classes. 775 std::map<std::set<Record*>, ClassInfo*> RegisterSetClasses; 776 unsigned Index = 0; 777 for (std::set< std::set<Record*> >::iterator it = RegisterSets.begin(), 778 ie = RegisterSets.end(); it != ie; ++it, ++Index) { 779 ClassInfo *CI = new ClassInfo(); 780 CI->Kind = ClassInfo::RegisterClass0 + Index; 781 CI->ClassName = "Reg" + utostr(Index); 782 CI->Name = "MCK_Reg" + utostr(Index); 783 CI->ValueName = ""; 784 CI->PredicateMethod = ""; // unused 785 CI->RenderMethod = "addRegOperands"; 786 CI->Registers = *it; 787 Classes.push_back(CI); 788 RegisterSetClasses.insert(std::make_pair(*it, CI)); 789 } 790 791 // Find the superclasses; we could compute only the subgroup lattice edges, 792 // but there isn't really a point. 793 for (std::set< std::set<Record*> >::iterator it = RegisterSets.begin(), 794 ie = RegisterSets.end(); it != ie; ++it) { 795 ClassInfo *CI = RegisterSetClasses[*it]; 796 for (std::set< std::set<Record*> >::iterator it2 = RegisterSets.begin(), 797 ie2 = RegisterSets.end(); it2 != ie2; ++it2) 798 if (*it != *it2 && 799 std::includes(it2->begin(), it2->end(), it->begin(), it->end())) 800 CI->SuperClasses.push_back(RegisterSetClasses[*it2]); 801 } 802 803 // Name the register classes which correspond to a user defined RegisterClass. 804 for (std::vector<CodeGenRegisterClass>::iterator it = RegisterClasses.begin(), 805 ie = RegisterClasses.end(); it != ie; ++it) { 806 ClassInfo *CI = RegisterSetClasses[std::set<Record*>(it->Elements.begin(), 807 it->Elements.end())]; 808 if (CI->ValueName.empty()) { 809 CI->ClassName = it->getName(); 810 CI->Name = "MCK_" + it->getName(); 811 CI->ValueName = it->getName(); 812 } else 813 CI->ValueName = CI->ValueName + "," + it->getName(); 814 815 RegisterClassClasses.insert(std::make_pair(it->TheDef, CI)); 816 } 817 818 // Populate the map for individual registers. 819 for (std::map<Record*, std::set<Record*> >::iterator it = RegisterMap.begin(), 820 ie = RegisterMap.end(); it != ie; ++it) 821 this->RegisterClasses[it->first] = RegisterSetClasses[it->second]; 822 823 // Name the register classes which correspond to singleton registers. 824 for (std::set<std::string>::iterator it = SingletonRegisterNames.begin(), 825 ie = SingletonRegisterNames.end(); it != ie; ++it) { 826 if (Record *Rec = getRegisterRecord(Target, *it)) { 827 ClassInfo *CI = this->RegisterClasses[Rec]; 828 assert(CI && "Missing singleton register class info!"); 829 830 if (CI->ValueName.empty()) { 831 CI->ClassName = Rec->getName(); 832 CI->Name = "MCK_" + Rec->getName(); 833 CI->ValueName = Rec->getName(); 834 } else 835 CI->ValueName = CI->ValueName + "," + Rec->getName(); 836 } 837 } 838 } 839 840 void AsmMatcherInfo::BuildOperandClasses(CodeGenTarget &Target) { 841 std::vector<Record*> AsmOperands; 842 AsmOperands = Records.getAllDerivedDefinitions("AsmOperandClass"); 843 844 // Pre-populate AsmOperandClasses map. 845 for (std::vector<Record*>::iterator it = AsmOperands.begin(), 846 ie = AsmOperands.end(); it != ie; ++it) 847 AsmOperandClasses[*it] = new ClassInfo(); 848 849 unsigned Index = 0; 850 for (std::vector<Record*>::iterator it = AsmOperands.begin(), 851 ie = AsmOperands.end(); it != ie; ++it, ++Index) { 852 ClassInfo *CI = AsmOperandClasses[*it]; 853 CI->Kind = ClassInfo::UserClass0 + Index; 854 855 ListInit *Supers = (*it)->getValueAsListInit("SuperClasses"); 856 for (unsigned i = 0, e = Supers->getSize(); i != e; ++i) { 857 DefInit *DI = dynamic_cast<DefInit*>(Supers->getElement(i)); 858 if (!DI) { 859 PrintError((*it)->getLoc(), "Invalid super class reference!"); 860 continue; 861 } 862 863 ClassInfo *SC = AsmOperandClasses[DI->getDef()]; 864 if (!SC) 865 PrintError((*it)->getLoc(), "Invalid super class reference!"); 866 else 867 CI->SuperClasses.push_back(SC); 868 } 869 CI->ClassName = (*it)->getValueAsString("Name"); 870 CI->Name = "MCK_" + CI->ClassName; 871 CI->ValueName = (*it)->getName(); 872 873 // Get or construct the predicate method name. 874 Init *PMName = (*it)->getValueInit("PredicateMethod"); 875 if (StringInit *SI = dynamic_cast<StringInit*>(PMName)) { 876 CI->PredicateMethod = SI->getValue(); 877 } else { 878 assert(dynamic_cast<UnsetInit*>(PMName) && 879 "Unexpected PredicateMethod field!"); 880 CI->PredicateMethod = "is" + CI->ClassName; 881 } 882 883 // Get or construct the render method name. 884 Init *RMName = (*it)->getValueInit("RenderMethod"); 885 if (StringInit *SI = dynamic_cast<StringInit*>(RMName)) { 886 CI->RenderMethod = SI->getValue(); 887 } else { 888 assert(dynamic_cast<UnsetInit*>(RMName) && 889 "Unexpected RenderMethod field!"); 890 CI->RenderMethod = "add" + CI->ClassName + "Operands"; 891 } 892 893 AsmOperandClasses[*it] = CI; 894 Classes.push_back(CI); 895 } 896 } 897 898 AsmMatcherInfo::AsmMatcherInfo(Record *_AsmParser) 899 : AsmParser(_AsmParser), 900 CommentDelimiter(AsmParser->getValueAsString("CommentDelimiter")), 901 RegisterPrefix(AsmParser->getValueAsString("RegisterPrefix")) 902 { 903 } 904 905 void AsmMatcherInfo::BuildInfo(CodeGenTarget &Target) { 906 // Parse the instructions; we need to do this first so that we can gather the 907 // singleton register classes. 908 std::set<std::string> SingletonRegisterNames; 909 910 const std::vector<const CodeGenInstruction*> &InstrList = 911 Target.getInstructionsByEnumValue(); 912 913 for (unsigned i = 0, e = InstrList.size(); i != e; ++i) { 914 const CodeGenInstruction &CGI = *InstrList[i]; 915 916 if (!StringRef(CGI.TheDef->getName()).startswith(MatchPrefix)) 917 continue; 918 919 OwningPtr<InstructionInfo> II(new InstructionInfo()); 920 921 II->InstrName = CGI.TheDef->getName(); 922 II->Instr = &CGI; 923 II->AsmString = FlattenVariants(CGI.AsmString, 0); 924 925 // Remove comments from the asm string. 926 if (!CommentDelimiter.empty()) { 927 size_t Idx = StringRef(II->AsmString).find(CommentDelimiter); 928 if (Idx != StringRef::npos) 929 II->AsmString = II->AsmString.substr(0, Idx); 930 } 931 932 TokenizeAsmString(II->AsmString, II->Tokens); 933 934 // Ignore instructions which shouldn't be matched. 935 if (!IsAssemblerInstruction(CGI.TheDef->getName(), CGI, II->Tokens)) 936 continue; 937 938 // Collect singleton registers, if used. 939 if (!RegisterPrefix.empty()) { 940 for (unsigned i = 0, e = II->Tokens.size(); i != e; ++i) { 941 if (II->Tokens[i].startswith(RegisterPrefix)) { 942 StringRef RegName = II->Tokens[i].substr(RegisterPrefix.size()); 943 Record *Rec = getRegisterRecord(Target, RegName); 944 945 if (!Rec) { 946 std::string Err = "unable to find register for '" + RegName.str() + 947 "' (which matches register prefix)"; 948 throw TGError(CGI.TheDef->getLoc(), Err); 949 } 950 951 SingletonRegisterNames.insert(RegName); 952 } 953 } 954 } 955 956 // Compute the require features. 957 ListInit *Predicates = CGI.TheDef->getValueAsListInit("Predicates"); 958 for (unsigned i = 0, e = Predicates->getSize(); i != e; ++i) { 959 if (DefInit *Pred = dynamic_cast<DefInit*>(Predicates->getElement(i))) { 960 // Ignore OptForSize and OptForSpeed, they aren't really requirements, 961 // rather they are hints to isel. 962 // 963 // FIXME: Find better way to model this. 964 if (Pred->getDef()->getName() == "OptForSize" || 965 Pred->getDef()->getName() == "OptForSpeed") 966 continue; 967 968 // FIXME: Total hack; for now, we just limit ourselves to In32BitMode 969 // and In64BitMode, because we aren't going to have the right feature 970 // masks for SSE and friends. We need to decide what we are going to do 971 // about CPU subtypes to implement this the right way. 972 if (Pred->getDef()->getName() != "In32BitMode" && 973 Pred->getDef()->getName() != "In64BitMode") 974 continue; 975 976 II->RequiredFeatures.push_back(getSubtargetFeature(Pred->getDef())); 977 } 978 } 979 980 Instructions.push_back(II.take()); 981 } 982 983 // Build info for the register classes. 984 BuildRegisterClasses(Target, SingletonRegisterNames); 985 986 // Build info for the user defined assembly operand classes. 987 BuildOperandClasses(Target); 988 989 // Build the instruction information. 990 for (std::vector<InstructionInfo*>::iterator it = Instructions.begin(), 991 ie = Instructions.end(); it != ie; ++it) { 992 InstructionInfo *II = *it; 993 994 for (unsigned i = 0, e = II->Tokens.size(); i != e; ++i) { 995 StringRef Token = II->Tokens[i]; 996 997 // Check for singleton registers. 998 if (!RegisterPrefix.empty() && Token.startswith(RegisterPrefix)) { 999 StringRef RegName = II->Tokens[i].substr(RegisterPrefix.size()); 1000 InstructionInfo::Operand Op; 1001 Op.Class = RegisterClasses[getRegisterRecord(Target, RegName)]; 1002 Op.OperandInfo = 0; 1003 assert(Op.Class && Op.Class->Registers.size() == 1 && 1004 "Unexpected class for singleton register"); 1005 II->Operands.push_back(Op); 1006 continue; 1007 } 1008 1009 // Check for simple tokens. 1010 if (Token[0] != '$') { 1011 InstructionInfo::Operand Op; 1012 Op.Class = getTokenClass(Token); 1013 Op.OperandInfo = 0; 1014 II->Operands.push_back(Op); 1015 continue; 1016 } 1017 1018 // Otherwise this is an operand reference. 1019 StringRef OperandName; 1020 if (Token[1] == '{') 1021 OperandName = Token.substr(2, Token.size() - 3); 1022 else 1023 OperandName = Token.substr(1); 1024 1025 // Map this token to an operand. FIXME: Move elsewhere. 1026 unsigned Idx; 1027 try { 1028 Idx = II->Instr->getOperandNamed(OperandName); 1029 } catch(...) { 1030 throw std::string("error: unable to find operand: '" + 1031 OperandName.str() + "'"); 1032 } 1033 1034 // FIXME: This is annoying, the named operand may be tied (e.g., 1035 // XCHG8rm). What we want is the untied operand, which we now have to 1036 // grovel for. Only worry about this for single entry operands, we have to 1037 // clean this up anyway. 1038 const CodeGenInstruction::OperandInfo *OI = &II->Instr->OperandList[Idx]; 1039 if (OI->Constraints[0].isTied()) { 1040 unsigned TiedOp = OI->Constraints[0].getTiedOperand(); 1041 1042 // The tied operand index is an MIOperand index, find the operand that 1043 // contains it. 1044 for (unsigned i = 0, e = II->Instr->OperandList.size(); i != e; ++i) { 1045 if (II->Instr->OperandList[i].MIOperandNo == TiedOp) { 1046 OI = &II->Instr->OperandList[i]; 1047 break; 1048 } 1049 } 1050 1051 assert(OI && "Unable to find tied operand target!"); 1052 } 1053 1054 InstructionInfo::Operand Op; 1055 Op.Class = getOperandClass(Token, *OI); 1056 Op.OperandInfo = OI; 1057 II->Operands.push_back(Op); 1058 } 1059 } 1060 1061 // Reorder classes so that classes preceed super classes. 1062 std::sort(Classes.begin(), Classes.end(), less_ptr<ClassInfo>()); 1063 } 1064 1065 static std::pair<unsigned, unsigned> * 1066 GetTiedOperandAtIndex(SmallVectorImpl<std::pair<unsigned, unsigned> > &List, 1067 unsigned Index) { 1068 for (unsigned i = 0, e = List.size(); i != e; ++i) 1069 if (Index == List[i].first) 1070 return &List[i]; 1071 1072 return 0; 1073 } 1074 1075 static void EmitConvertToMCInst(CodeGenTarget &Target, 1076 std::vector<InstructionInfo*> &Infos, 1077 raw_ostream &OS) { 1078 // Write the convert function to a separate stream, so we can drop it after 1079 // the enum. 1080 std::string ConvertFnBody; 1081 raw_string_ostream CvtOS(ConvertFnBody); 1082 1083 // Function we have already generated. 1084 std::set<std::string> GeneratedFns; 1085 1086 // Start the unified conversion function. 1087 1088 CvtOS << "static void ConvertToMCInst(ConversionKind Kind, MCInst &Inst, " 1089 << "unsigned Opcode,\n" 1090 << " const SmallVectorImpl<MCParsedAsmOperand*" 1091 << "> &Operands) {\n"; 1092 CvtOS << " Inst.setOpcode(Opcode);\n"; 1093 CvtOS << " switch (Kind) {\n"; 1094 CvtOS << " default:\n"; 1095 1096 // Start the enum, which we will generate inline. 1097 1098 OS << "// Unified function for converting operants to MCInst instances.\n\n"; 1099 OS << "enum ConversionKind {\n"; 1100 1101 // TargetOperandClass - This is the target's operand class, like X86Operand. 1102 std::string TargetOperandClass = Target.getName() + "Operand"; 1103 1104 for (std::vector<InstructionInfo*>::const_iterator it = Infos.begin(), 1105 ie = Infos.end(); it != ie; ++it) { 1106 InstructionInfo &II = **it; 1107 1108 // Order the (class) operands by the order to convert them into an MCInst. 1109 SmallVector<std::pair<unsigned, unsigned>, 4> MIOperandList; 1110 for (unsigned i = 0, e = II.Operands.size(); i != e; ++i) { 1111 InstructionInfo::Operand &Op = II.Operands[i]; 1112 if (Op.OperandInfo) 1113 MIOperandList.push_back(std::make_pair(Op.OperandInfo->MIOperandNo, i)); 1114 } 1115 1116 // Find any tied operands. 1117 SmallVector<std::pair<unsigned, unsigned>, 4> TiedOperands; 1118 for (unsigned i = 0, e = II.Instr->OperandList.size(); i != e; ++i) { 1119 const CodeGenInstruction::OperandInfo &OpInfo = II.Instr->OperandList[i]; 1120 for (unsigned j = 0, e = OpInfo.Constraints.size(); j != e; ++j) { 1121 const CodeGenInstruction::ConstraintInfo &CI = OpInfo.Constraints[j]; 1122 if (CI.isTied()) 1123 TiedOperands.push_back(std::make_pair(OpInfo.MIOperandNo + j, 1124 CI.getTiedOperand())); 1125 } 1126 } 1127 1128 std::sort(MIOperandList.begin(), MIOperandList.end()); 1129 1130 // Compute the total number of operands. 1131 unsigned NumMIOperands = 0; 1132 for (unsigned i = 0, e = II.Instr->OperandList.size(); i != e; ++i) { 1133 const CodeGenInstruction::OperandInfo &OI = II.Instr->OperandList[i]; 1134 NumMIOperands = std::max(NumMIOperands, 1135 OI.MIOperandNo + OI.MINumOperands); 1136 } 1137 1138 // Build the conversion function signature. 1139 std::string Signature = "Convert"; 1140 unsigned CurIndex = 0; 1141 for (unsigned i = 0, e = MIOperandList.size(); i != e; ++i) { 1142 InstructionInfo::Operand &Op = II.Operands[MIOperandList[i].second]; 1143 assert(CurIndex <= Op.OperandInfo->MIOperandNo && 1144 "Duplicate match for instruction operand!"); 1145 1146 // Skip operands which weren't matched by anything, this occurs when the 1147 // .td file encodes "implicit" operands as explicit ones. 1148 // 1149 // FIXME: This should be removed from the MCInst structure. 1150 for (; CurIndex != Op.OperandInfo->MIOperandNo; ++CurIndex) { 1151 std::pair<unsigned, unsigned> *Tie = GetTiedOperandAtIndex(TiedOperands, 1152 CurIndex); 1153 if (!Tie) 1154 Signature += "__Imp"; 1155 else 1156 Signature += "__Tie" + utostr(Tie->second); 1157 } 1158 1159 Signature += "__"; 1160 1161 // Registers are always converted the same, don't duplicate the conversion 1162 // function based on them. 1163 // 1164 // FIXME: We could generalize this based on the render method, if it 1165 // mattered. 1166 if (Op.Class->isRegisterClass()) 1167 Signature += "Reg"; 1168 else 1169 Signature += Op.Class->ClassName; 1170 Signature += utostr(Op.OperandInfo->MINumOperands); 1171 Signature += "_" + utostr(MIOperandList[i].second); 1172 1173 CurIndex += Op.OperandInfo->MINumOperands; 1174 } 1175 1176 // Add any trailing implicit operands. 1177 for (; CurIndex != NumMIOperands; ++CurIndex) { 1178 std::pair<unsigned, unsigned> *Tie = GetTiedOperandAtIndex(TiedOperands, 1179 CurIndex); 1180 if (!Tie) 1181 Signature += "__Imp"; 1182 else 1183 Signature += "__Tie" + utostr(Tie->second); 1184 } 1185 1186 II.ConversionFnKind = Signature; 1187 1188 // Check if we have already generated this signature. 1189 if (!GeneratedFns.insert(Signature).second) 1190 continue; 1191 1192 // If not, emit it now. 1193 1194 // Add to the enum list. 1195 OS << " " << Signature << ",\n"; 1196 1197 // And to the convert function. 1198 CvtOS << " case " << Signature << ":\n"; 1199 CurIndex = 0; 1200 for (unsigned i = 0, e = MIOperandList.size(); i != e; ++i) { 1201 InstructionInfo::Operand &Op = II.Operands[MIOperandList[i].second]; 1202 1203 // Add the implicit operands. 1204 for (; CurIndex != Op.OperandInfo->MIOperandNo; ++CurIndex) { 1205 // See if this is a tied operand. 1206 std::pair<unsigned, unsigned> *Tie = GetTiedOperandAtIndex(TiedOperands, 1207 CurIndex); 1208 1209 if (!Tie) { 1210 // If not, this is some implicit operand. Just assume it is a register 1211 // for now. 1212 CvtOS << " Inst.addOperand(MCOperand::CreateReg(0));\n"; 1213 } else { 1214 // Copy the tied operand. 1215 assert(Tie->first>Tie->second && "Tied operand preceeds its target!"); 1216 CvtOS << " Inst.addOperand(Inst.getOperand(" 1217 << Tie->second << "));\n"; 1218 } 1219 } 1220 1221 CvtOS << " ((" << TargetOperandClass << "*)Operands[" 1222 << MIOperandList[i].second 1223 << "])->" << Op.Class->RenderMethod 1224 << "(Inst, " << Op.OperandInfo->MINumOperands << ");\n"; 1225 CurIndex += Op.OperandInfo->MINumOperands; 1226 } 1227 1228 // And add trailing implicit operands. 1229 for (; CurIndex != NumMIOperands; ++CurIndex) { 1230 std::pair<unsigned, unsigned> *Tie = GetTiedOperandAtIndex(TiedOperands, 1231 CurIndex); 1232 1233 if (!Tie) { 1234 // If not, this is some implicit operand. Just assume it is a register 1235 // for now. 1236 CvtOS << " Inst.addOperand(MCOperand::CreateReg(0));\n"; 1237 } else { 1238 // Copy the tied operand. 1239 assert(Tie->first>Tie->second && "Tied operand preceeds its target!"); 1240 CvtOS << " Inst.addOperand(Inst.getOperand(" 1241 << Tie->second << "));\n"; 1242 } 1243 } 1244 1245 CvtOS << " return;\n"; 1246 } 1247 1248 // Finish the convert function. 1249 1250 CvtOS << " }\n"; 1251 CvtOS << "}\n\n"; 1252 1253 // Finish the enum, and drop the convert function after it. 1254 1255 OS << " NumConversionVariants\n"; 1256 OS << "};\n\n"; 1257 1258 OS << CvtOS.str(); 1259 } 1260 1261 /// EmitMatchClassEnumeration - Emit the enumeration for match class kinds. 1262 static void EmitMatchClassEnumeration(CodeGenTarget &Target, 1263 std::vector<ClassInfo*> &Infos, 1264 raw_ostream &OS) { 1265 OS << "namespace {\n\n"; 1266 1267 OS << "/// MatchClassKind - The kinds of classes which participate in\n" 1268 << "/// instruction matching.\n"; 1269 OS << "enum MatchClassKind {\n"; 1270 OS << " InvalidMatchClass = 0,\n"; 1271 for (std::vector<ClassInfo*>::iterator it = Infos.begin(), 1272 ie = Infos.end(); it != ie; ++it) { 1273 ClassInfo &CI = **it; 1274 OS << " " << CI.Name << ", // "; 1275 if (CI.Kind == ClassInfo::Token) { 1276 OS << "'" << CI.ValueName << "'\n"; 1277 } else if (CI.isRegisterClass()) { 1278 if (!CI.ValueName.empty()) 1279 OS << "register class '" << CI.ValueName << "'\n"; 1280 else 1281 OS << "derived register class\n"; 1282 } else { 1283 OS << "user defined class '" << CI.ValueName << "'\n"; 1284 } 1285 } 1286 OS << " NumMatchClassKinds\n"; 1287 OS << "};\n\n"; 1288 1289 OS << "}\n\n"; 1290 } 1291 1292 /// EmitClassifyOperand - Emit the function to classify an operand. 1293 static void EmitClassifyOperand(CodeGenTarget &Target, 1294 AsmMatcherInfo &Info, 1295 raw_ostream &OS) { 1296 OS << "static MatchClassKind ClassifyOperand(MCParsedAsmOperand *GOp) {\n" 1297 << " " << Target.getName() << "Operand &Operand = *(" 1298 << Target.getName() << "Operand*)GOp;\n"; 1299 1300 // Classify tokens. 1301 OS << " if (Operand.isToken())\n"; 1302 OS << " return MatchTokenString(Operand.getToken());\n\n"; 1303 1304 // Classify registers. 1305 // 1306 // FIXME: Don't hardcode isReg, getReg. 1307 OS << " if (Operand.isReg()) {\n"; 1308 OS << " switch (Operand.getReg()) {\n"; 1309 OS << " default: return InvalidMatchClass;\n"; 1310 for (std::map<Record*, ClassInfo*>::iterator 1311 it = Info.RegisterClasses.begin(), ie = Info.RegisterClasses.end(); 1312 it != ie; ++it) 1313 OS << " case " << Target.getName() << "::" 1314 << it->first->getName() << ": return " << it->second->Name << ";\n"; 1315 OS << " }\n"; 1316 OS << " }\n\n"; 1317 1318 // Classify user defined operands. 1319 for (std::vector<ClassInfo*>::iterator it = Info.Classes.begin(), 1320 ie = Info.Classes.end(); it != ie; ++it) { 1321 ClassInfo &CI = **it; 1322 1323 if (!CI.isUserClass()) 1324 continue; 1325 1326 OS << " // '" << CI.ClassName << "' class"; 1327 if (!CI.SuperClasses.empty()) { 1328 OS << ", subclass of "; 1329 for (unsigned i = 0, e = CI.SuperClasses.size(); i != e; ++i) { 1330 if (i) OS << ", "; 1331 OS << "'" << CI.SuperClasses[i]->ClassName << "'"; 1332 assert(CI < *CI.SuperClasses[i] && "Invalid class relation!"); 1333 } 1334 } 1335 OS << "\n"; 1336 1337 OS << " if (Operand." << CI.PredicateMethod << "()) {\n"; 1338 1339 // Validate subclass relationships. 1340 if (!CI.SuperClasses.empty()) { 1341 for (unsigned i = 0, e = CI.SuperClasses.size(); i != e; ++i) 1342 OS << " assert(Operand." << CI.SuperClasses[i]->PredicateMethod 1343 << "() && \"Invalid class relationship!\");\n"; 1344 } 1345 1346 OS << " return " << CI.Name << ";\n"; 1347 OS << " }\n\n"; 1348 } 1349 OS << " return InvalidMatchClass;\n"; 1350 OS << "}\n\n"; 1351 } 1352 1353 /// EmitIsSubclass - Emit the subclass predicate function. 1354 static void EmitIsSubclass(CodeGenTarget &Target, 1355 std::vector<ClassInfo*> &Infos, 1356 raw_ostream &OS) { 1357 OS << "/// IsSubclass - Compute whether \\arg A is a subclass of \\arg B.\n"; 1358 OS << "static bool IsSubclass(MatchClassKind A, MatchClassKind B) {\n"; 1359 OS << " if (A == B)\n"; 1360 OS << " return true;\n\n"; 1361 1362 OS << " switch (A) {\n"; 1363 OS << " default:\n"; 1364 OS << " return false;\n"; 1365 for (std::vector<ClassInfo*>::iterator it = Infos.begin(), 1366 ie = Infos.end(); it != ie; ++it) { 1367 ClassInfo &A = **it; 1368 1369 if (A.Kind != ClassInfo::Token) { 1370 std::vector<StringRef> SuperClasses; 1371 for (std::vector<ClassInfo*>::iterator it = Infos.begin(), 1372 ie = Infos.end(); it != ie; ++it) { 1373 ClassInfo &B = **it; 1374 1375 if (&A != &B && A.isSubsetOf(B)) 1376 SuperClasses.push_back(B.Name); 1377 } 1378 1379 if (SuperClasses.empty()) 1380 continue; 1381 1382 OS << "\n case " << A.Name << ":\n"; 1383 1384 if (SuperClasses.size() == 1) { 1385 OS << " return B == " << SuperClasses.back() << ";\n"; 1386 continue; 1387 } 1388 1389 OS << " switch (B) {\n"; 1390 OS << " default: return false;\n"; 1391 for (unsigned i = 0, e = SuperClasses.size(); i != e; ++i) 1392 OS << " case " << SuperClasses[i] << ": return true;\n"; 1393 OS << " }\n"; 1394 } 1395 } 1396 OS << " }\n"; 1397 OS << "}\n\n"; 1398 } 1399 1400 typedef std::pair<std::string, std::string> StringPair; 1401 1402 /// FindFirstNonCommonLetter - Find the first character in the keys of the 1403 /// string pairs that is not shared across the whole set of strings. All 1404 /// strings are assumed to have the same length. 1405 static unsigned 1406 FindFirstNonCommonLetter(const std::vector<const StringPair*> &Matches) { 1407 assert(!Matches.empty()); 1408 for (unsigned i = 0, e = Matches[0]->first.size(); i != e; ++i) { 1409 // Check to see if letter i is the same across the set. 1410 char Letter = Matches[0]->first[i]; 1411 1412 for (unsigned str = 0, e = Matches.size(); str != e; ++str) 1413 if (Matches[str]->first[i] != Letter) 1414 return i; 1415 } 1416 1417 return Matches[0]->first.size(); 1418 } 1419 1420 /// EmitStringMatcherForChar - Given a set of strings that are known to be the 1421 /// same length and whose characters leading up to CharNo are the same, emit 1422 /// code to verify that CharNo and later are the same. 1423 /// 1424 /// \return - True if control can leave the emitted code fragment. 1425 static bool EmitStringMatcherForChar(const std::string &StrVariableName, 1426 const std::vector<const StringPair*> &Matches, 1427 unsigned CharNo, unsigned IndentCount, 1428 raw_ostream &OS) { 1429 assert(!Matches.empty() && "Must have at least one string to match!"); 1430 std::string Indent(IndentCount*2+4, ' '); 1431 1432 // If we have verified that the entire string matches, we're done: output the 1433 // matching code. 1434 if (CharNo == Matches[0]->first.size()) { 1435 assert(Matches.size() == 1 && "Had duplicate keys to match on"); 1436 1437 // FIXME: If Matches[0].first has embeded \n, this will be bad. 1438 OS << Indent << Matches[0]->second << "\t // \"" << Matches[0]->first 1439 << "\"\n"; 1440 return false; 1441 } 1442 1443 // Bucket the matches by the character we are comparing. 1444 std::map<char, std::vector<const StringPair*> > MatchesByLetter; 1445 1446 for (unsigned i = 0, e = Matches.size(); i != e; ++i) 1447 MatchesByLetter[Matches[i]->first[CharNo]].push_back(Matches[i]); 1448 1449 1450 // If we have exactly one bucket to match, see how many characters are common 1451 // across the whole set and match all of them at once. 1452 if (MatchesByLetter.size() == 1) { 1453 unsigned FirstNonCommonLetter = FindFirstNonCommonLetter(Matches); 1454 unsigned NumChars = FirstNonCommonLetter-CharNo; 1455 1456 // Emit code to break out if the prefix doesn't match. 1457 if (NumChars == 1) { 1458 // Do the comparison with if (Str[1] != 'f') 1459 // FIXME: Need to escape general characters. 1460 OS << Indent << "if (" << StrVariableName << "[" << CharNo << "] != '" 1461 << Matches[0]->first[CharNo] << "')\n"; 1462 OS << Indent << " break;\n"; 1463 } else { 1464 // Do the comparison with if (Str.substr(1,3) != "foo"). 1465 // FIXME: Need to escape general strings. 1466 OS << Indent << "if (" << StrVariableName << ".substr(" << CharNo << "," 1467 << NumChars << ") != \""; 1468 OS << Matches[0]->first.substr(CharNo, NumChars) << "\")\n"; 1469 OS << Indent << " break;\n"; 1470 } 1471 1472 return EmitStringMatcherForChar(StrVariableName, Matches, 1473 FirstNonCommonLetter, IndentCount, OS); 1474 } 1475 1476 // Otherwise, we have multiple possible things, emit a switch on the 1477 // character. 1478 OS << Indent << "switch (" << StrVariableName << "[" << CharNo << "]) {\n"; 1479 OS << Indent << "default: break;\n"; 1480 1481 for (std::map<char, std::vector<const StringPair*> >::iterator LI = 1482 MatchesByLetter.begin(), E = MatchesByLetter.end(); LI != E; ++LI) { 1483 // TODO: escape hard stuff (like \n) if we ever care about it. 1484 OS << Indent << "case '" << LI->first << "':\t // " 1485 << LI->second.size() << " strings to match.\n"; 1486 if (EmitStringMatcherForChar(StrVariableName, LI->second, CharNo+1, 1487 IndentCount+1, OS)) 1488 OS << Indent << " break;\n"; 1489 } 1490 1491 OS << Indent << "}\n"; 1492 return true; 1493 } 1494 1495 1496 /// EmitStringMatcher - Given a list of strings and code to execute when they 1497 /// match, output a simple switch tree to classify the input string. 1498 /// 1499 /// If a match is found, the code in Vals[i].second is executed; control must 1500 /// not exit this code fragment. If nothing matches, execution falls through. 1501 /// 1502 /// \param StrVariableName - The name of the variable to test. 1503 static void EmitStringMatcher(const std::string &StrVariableName, 1504 const std::vector<StringPair> &Matches, 1505 raw_ostream &OS) { 1506 // First level categorization: group strings by length. 1507 std::map<unsigned, std::vector<const StringPair*> > MatchesByLength; 1508 1509 for (unsigned i = 0, e = Matches.size(); i != e; ++i) 1510 MatchesByLength[Matches[i].first.size()].push_back(&Matches[i]); 1511 1512 // Output a switch statement on length and categorize the elements within each 1513 // bin. 1514 OS << " switch (" << StrVariableName << ".size()) {\n"; 1515 OS << " default: break;\n"; 1516 1517 for (std::map<unsigned, std::vector<const StringPair*> >::iterator LI = 1518 MatchesByLength.begin(), E = MatchesByLength.end(); LI != E; ++LI) { 1519 OS << " case " << LI->first << ":\t // " << LI->second.size() 1520 << " strings to match.\n"; 1521 if (EmitStringMatcherForChar(StrVariableName, LI->second, 0, 0, OS)) 1522 OS << " break;\n"; 1523 } 1524 1525 OS << " }\n"; 1526 } 1527 1528 1529 /// EmitMatchTokenString - Emit the function to match a token string to the 1530 /// appropriate match class value. 1531 static void EmitMatchTokenString(CodeGenTarget &Target, 1532 std::vector<ClassInfo*> &Infos, 1533 raw_ostream &OS) { 1534 // Construct the match list. 1535 std::vector<StringPair> Matches; 1536 for (std::vector<ClassInfo*>::iterator it = Infos.begin(), 1537 ie = Infos.end(); it != ie; ++it) { 1538 ClassInfo &CI = **it; 1539 1540 if (CI.Kind == ClassInfo::Token) 1541 Matches.push_back(StringPair(CI.ValueName, "return " + CI.Name + ";")); 1542 } 1543 1544 OS << "static MatchClassKind MatchTokenString(StringRef Name) {\n"; 1545 1546 EmitStringMatcher("Name", Matches, OS); 1547 1548 OS << " return InvalidMatchClass;\n"; 1549 OS << "}\n\n"; 1550 } 1551 1552 /// EmitMatchRegisterName - Emit the function to match a string to the target 1553 /// specific register enum. 1554 static void EmitMatchRegisterName(CodeGenTarget &Target, Record *AsmParser, 1555 raw_ostream &OS) { 1556 // Construct the match list. 1557 std::vector<StringPair> Matches; 1558 for (unsigned i = 0, e = Target.getRegisters().size(); i != e; ++i) { 1559 const CodeGenRegister &Reg = Target.getRegisters()[i]; 1560 if (Reg.TheDef->getValueAsString("AsmName").empty()) 1561 continue; 1562 1563 Matches.push_back(StringPair(Reg.TheDef->getValueAsString("AsmName"), 1564 "return " + utostr(i + 1) + ";")); 1565 } 1566 1567 OS << "static unsigned MatchRegisterName(StringRef Name) {\n"; 1568 1569 EmitStringMatcher("Name", Matches, OS); 1570 1571 OS << " return 0;\n"; 1572 OS << "}\n\n"; 1573 } 1574 1575 /// EmitSubtargetFeatureFlagEnumeration - Emit the subtarget feature flag 1576 /// definitions. 1577 static void EmitSubtargetFeatureFlagEnumeration(CodeGenTarget &Target, 1578 AsmMatcherInfo &Info, 1579 raw_ostream &OS) { 1580 OS << "// Flags for subtarget features that participate in " 1581 << "instruction matching.\n"; 1582 OS << "enum SubtargetFeatureFlag {\n"; 1583 for (std::map<Record*, SubtargetFeatureInfo*>::const_iterator 1584 it = Info.SubtargetFeatures.begin(), 1585 ie = Info.SubtargetFeatures.end(); it != ie; ++it) { 1586 SubtargetFeatureInfo &SFI = *it->second; 1587 OS << " " << SFI.EnumName << " = (1 << " << SFI.Index << "),\n"; 1588 } 1589 OS << " Feature_None = 0\n"; 1590 OS << "};\n\n"; 1591 } 1592 1593 /// EmitComputeAvailableFeatures - Emit the function to compute the list of 1594 /// available features given a subtarget. 1595 static void EmitComputeAvailableFeatures(CodeGenTarget &Target, 1596 AsmMatcherInfo &Info, 1597 raw_ostream &OS) { 1598 std::string ClassName = 1599 Info.AsmParser->getValueAsString("AsmParserClassName"); 1600 1601 OS << "unsigned " << Target.getName() << ClassName << "::\n" 1602 << "ComputeAvailableFeatures(const " << Target.getName() 1603 << "Subtarget *Subtarget) const {\n"; 1604 OS << " unsigned Features = 0;\n"; 1605 for (std::map<Record*, SubtargetFeatureInfo*>::const_iterator 1606 it = Info.SubtargetFeatures.begin(), 1607 ie = Info.SubtargetFeatures.end(); it != ie; ++it) { 1608 SubtargetFeatureInfo &SFI = *it->second; 1609 OS << " if (" << SFI.TheDef->getValueAsString("CondString") 1610 << ")\n"; 1611 OS << " Features |= " << SFI.EnumName << ";\n"; 1612 } 1613 OS << " return Features;\n"; 1614 OS << "}\n\n"; 1615 } 1616 1617 void AsmMatcherEmitter::run(raw_ostream &OS) { 1618 CodeGenTarget Target; 1619 Record *AsmParser = Target.getAsmParser(); 1620 std::string ClassName = AsmParser->getValueAsString("AsmParserClassName"); 1621 1622 // Compute the information on the instructions to match. 1623 AsmMatcherInfo Info(AsmParser); 1624 Info.BuildInfo(Target); 1625 1626 // Sort the instruction table using the partial order on classes. We use 1627 // stable_sort to ensure that ambiguous instructions are still 1628 // deterministically ordered. 1629 std::stable_sort(Info.Instructions.begin(), Info.Instructions.end(), 1630 less_ptr<InstructionInfo>()); 1631 1632 DEBUG_WITH_TYPE("instruction_info", { 1633 for (std::vector<InstructionInfo*>::iterator 1634 it = Info.Instructions.begin(), ie = Info.Instructions.end(); 1635 it != ie; ++it) 1636 (*it)->dump(); 1637 }); 1638 1639 // Check for ambiguous instructions. 1640 unsigned NumAmbiguous = 0; 1641 for (unsigned i = 0, e = Info.Instructions.size(); i != e; ++i) { 1642 for (unsigned j = i + 1; j != e; ++j) { 1643 InstructionInfo &A = *Info.Instructions[i]; 1644 InstructionInfo &B = *Info.Instructions[j]; 1645 1646 if (A.CouldMatchAmiguouslyWith(B)) { 1647 DEBUG_WITH_TYPE("ambiguous_instrs", { 1648 errs() << "warning: ambiguous instruction match:\n"; 1649 A.dump(); 1650 errs() << "\nis incomparable with:\n"; 1651 B.dump(); 1652 errs() << "\n\n"; 1653 }); 1654 ++NumAmbiguous; 1655 } 1656 } 1657 } 1658 if (NumAmbiguous) 1659 DEBUG_WITH_TYPE("ambiguous_instrs", { 1660 errs() << "warning: " << NumAmbiguous 1661 << " ambiguous instructions!\n"; 1662 }); 1663 1664 // Write the output. 1665 1666 EmitSourceFileHeader("Assembly Matcher Source Fragment", OS); 1667 1668 // Emit the subtarget feature enumeration. 1669 EmitSubtargetFeatureFlagEnumeration(Target, Info, OS); 1670 1671 // Emit the function to match a register name to number. 1672 EmitMatchRegisterName(Target, AsmParser, OS); 1673 1674 OS << "#ifndef REGISTERS_ONLY\n\n"; 1675 1676 // Generate the unified function to convert operands into an MCInst. 1677 EmitConvertToMCInst(Target, Info.Instructions, OS); 1678 1679 // Emit the enumeration for classes which participate in matching. 1680 EmitMatchClassEnumeration(Target, Info.Classes, OS); 1681 1682 // Emit the routine to match token strings to their match class. 1683 EmitMatchTokenString(Target, Info.Classes, OS); 1684 1685 // Emit the routine to classify an operand. 1686 EmitClassifyOperand(Target, Info, OS); 1687 1688 // Emit the subclass predicate routine. 1689 EmitIsSubclass(Target, Info.Classes, OS); 1690 1691 // Emit the available features compute function. 1692 EmitComputeAvailableFeatures(Target, Info, OS); 1693 1694 // Finally, build the match function. 1695 1696 size_t MaxNumOperands = 0; 1697 for (std::vector<InstructionInfo*>::const_iterator it = 1698 Info.Instructions.begin(), ie = Info.Instructions.end(); 1699 it != ie; ++it) 1700 MaxNumOperands = std::max(MaxNumOperands, (*it)->Operands.size()); 1701 1702 OS << "bool " << Target.getName() << ClassName << "::\n" 1703 << "MatchInstructionImpl(const SmallVectorImpl<MCParsedAsmOperand*>" 1704 << " &Operands,\n"; 1705 OS << " MCInst &Inst) {\n"; 1706 1707 // Emit the static match table; unused classes get initalized to 0 which is 1708 // guaranteed to be InvalidMatchClass. 1709 // 1710 // FIXME: We can reduce the size of this table very easily. First, we change 1711 // it so that store the kinds in separate bit-fields for each index, which 1712 // only needs to be the max width used for classes at that index (we also need 1713 // to reject based on this during classification). If we then make sure to 1714 // order the match kinds appropriately (putting mnemonics last), then we 1715 // should only end up using a few bits for each class, especially the ones 1716 // following the mnemonic. 1717 OS << " static const struct MatchEntry {\n"; 1718 OS << " unsigned Opcode;\n"; 1719 OS << " ConversionKind ConvertFn;\n"; 1720 OS << " MatchClassKind Classes[" << MaxNumOperands << "];\n"; 1721 OS << " unsigned RequiredFeatures;\n"; 1722 OS << " } MatchTable[" << Info.Instructions.size() << "] = {\n"; 1723 1724 for (std::vector<InstructionInfo*>::const_iterator it = 1725 Info.Instructions.begin(), ie = Info.Instructions.end(); 1726 it != ie; ++it) { 1727 InstructionInfo &II = **it; 1728 1729 OS << " { " << Target.getName() << "::" << II.InstrName 1730 << ", " << II.ConversionFnKind << ", { "; 1731 for (unsigned i = 0, e = II.Operands.size(); i != e; ++i) { 1732 InstructionInfo::Operand &Op = II.Operands[i]; 1733 1734 if (i) OS << ", "; 1735 OS << Op.Class->Name; 1736 } 1737 OS << " }, "; 1738 1739 // Write the required features mask. 1740 if (!II.RequiredFeatures.empty()) { 1741 for (unsigned i = 0, e = II.RequiredFeatures.size(); i != e; ++i) { 1742 if (i) OS << "|"; 1743 OS << II.RequiredFeatures[i]->EnumName; 1744 } 1745 } else 1746 OS << "0"; 1747 1748 OS << "},\n"; 1749 } 1750 1751 OS << " };\n\n"; 1752 1753 1754 // Emit code to get the available features. 1755 OS << " // Get the current feature set.\n"; 1756 OS << " unsigned AvailableFeatures = getAvailableFeatures();\n\n"; 1757 1758 // Emit code to compute the class list for this operand vector. 1759 OS << " // Eliminate obvious mismatches.\n"; 1760 OS << " if (Operands.size() > " << MaxNumOperands << ")\n"; 1761 OS << " return true;\n\n"; 1762 1763 OS << " // Compute the class list for this operand vector.\n"; 1764 OS << " MatchClassKind Classes[" << MaxNumOperands << "];\n"; 1765 OS << " for (unsigned i = 0, e = Operands.size(); i != e; ++i) {\n"; 1766 OS << " Classes[i] = ClassifyOperand(Operands[i]);\n\n"; 1767 1768 OS << " // Check for invalid operands before matching.\n"; 1769 OS << " if (Classes[i] == InvalidMatchClass)\n"; 1770 OS << " return true;\n"; 1771 OS << " }\n\n"; 1772 1773 OS << " // Mark unused classes.\n"; 1774 OS << " for (unsigned i = Operands.size(), e = " << MaxNumOperands << "; " 1775 << "i != e; ++i)\n"; 1776 OS << " Classes[i] = InvalidMatchClass;\n\n"; 1777 1778 // Emit code to search the table. 1779 OS << " // Search the table.\n"; 1780 OS << " for (const MatchEntry *it = MatchTable, " 1781 << "*ie = MatchTable + " << Info.Instructions.size() 1782 << "; it != ie; ++it) {\n"; 1783 1784 // Emit check that the required features are available. 1785 OS << " if ((AvailableFeatures & it->RequiredFeatures) " 1786 << "!= it->RequiredFeatures)\n"; 1787 OS << " continue;\n"; 1788 1789 // Emit check that the subclasses match. 1790 for (unsigned i = 0; i != MaxNumOperands; ++i) { 1791 OS << " if (!IsSubclass(Classes[" 1792 << i << "], it->Classes[" << i << "]))\n"; 1793 OS << " continue;\n"; 1794 } 1795 OS << "\n"; 1796 OS << " ConvertToMCInst(it->ConvertFn, Inst, it->Opcode, Operands);\n"; 1797 1798 // Call the post-processing function, if used. 1799 std::string InsnCleanupFn = 1800 AsmParser->getValueAsString("AsmParserInstCleanup"); 1801 if (!InsnCleanupFn.empty()) 1802 OS << " " << InsnCleanupFn << "(Inst);\n"; 1803 1804 OS << " return false;\n"; 1805 OS << " }\n\n"; 1806 1807 OS << " return true;\n"; 1808 OS << "}\n\n"; 1809 1810 OS << "#endif // REGISTERS_ONLY\n"; 1811 } 1812