1 //===- ClangAttrEmitter.cpp - Generate Clang attribute handling =-*- C++ -*--=// 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 // These tablegen backends emit Clang attribute processing code 11 // 12 //===----------------------------------------------------------------------===// 13 14 #include "llvm/ADT/ArrayRef.h" 15 #include "llvm/ADT/DenseMap.h" 16 #include "llvm/ADT/DenseSet.h" 17 #include "llvm/ADT/STLExtras.h" 18 #include "llvm/ADT/SmallString.h" 19 #include "llvm/ADT/StringExtras.h" 20 #include "llvm/ADT/StringRef.h" 21 #include "llvm/ADT/StringSet.h" 22 #include "llvm/ADT/StringSwitch.h" 23 #include "llvm/ADT/iterator_range.h" 24 #include "llvm/Support/ErrorHandling.h" 25 #include "llvm/Support/raw_ostream.h" 26 #include "llvm/TableGen/Error.h" 27 #include "llvm/TableGen/Record.h" 28 #include "llvm/TableGen/StringMatcher.h" 29 #include "llvm/TableGen/TableGenBackend.h" 30 #include <algorithm> 31 #include <cassert> 32 #include <cctype> 33 #include <cstddef> 34 #include <cstdint> 35 #include <map> 36 #include <memory> 37 #include <set> 38 #include <sstream> 39 #include <string> 40 #include <utility> 41 #include <vector> 42 43 using namespace llvm; 44 45 namespace { 46 47 class FlattenedSpelling { 48 std::string V, N, NS; 49 bool K; 50 51 public: 52 FlattenedSpelling(const std::string &Variety, const std::string &Name, 53 const std::string &Namespace, bool KnownToGCC) : 54 V(Variety), N(Name), NS(Namespace), K(KnownToGCC) {} 55 explicit FlattenedSpelling(const Record &Spelling) : 56 V(Spelling.getValueAsString("Variety")), 57 N(Spelling.getValueAsString("Name")) { 58 59 assert(V != "GCC" && V != "Clang" && 60 "Given a GCC spelling, which means this hasn't been flattened!"); 61 if (V == "CXX11" || V == "C2x" || V == "Pragma") 62 NS = Spelling.getValueAsString("Namespace"); 63 bool Unset; 64 K = Spelling.getValueAsBitOrUnset("KnownToGCC", Unset); 65 } 66 67 const std::string &variety() const { return V; } 68 const std::string &name() const { return N; } 69 const std::string &nameSpace() const { return NS; } 70 bool knownToGCC() const { return K; } 71 }; 72 73 } // end anonymous namespace 74 75 static std::vector<FlattenedSpelling> 76 GetFlattenedSpellings(const Record &Attr) { 77 std::vector<Record *> Spellings = Attr.getValueAsListOfDefs("Spellings"); 78 std::vector<FlattenedSpelling> Ret; 79 80 for (const auto &Spelling : Spellings) { 81 StringRef Variety = Spelling->getValueAsString("Variety"); 82 StringRef Name = Spelling->getValueAsString("Name"); 83 if (Variety == "GCC") { 84 // Gin up two new spelling objects to add into the list. 85 Ret.emplace_back("GNU", Name, "", true); 86 Ret.emplace_back("CXX11", Name, "gnu", true); 87 } else if (Variety == "Clang") { 88 Ret.emplace_back("GNU", Name, "", false); 89 Ret.emplace_back("CXX11", Name, "clang", false); 90 if (Spelling->getValueAsBit("AllowInC")) 91 Ret.emplace_back("C2x", Name, "clang", false); 92 } else 93 Ret.push_back(FlattenedSpelling(*Spelling)); 94 } 95 96 return Ret; 97 } 98 99 static std::string ReadPCHRecord(StringRef type) { 100 return StringSwitch<std::string>(type) 101 .EndsWith("Decl *", "Record.GetLocalDeclAs<" 102 + std::string(type, 0, type.size()-1) + ">(Record.readInt())") 103 .Case("TypeSourceInfo *", "Record.getTypeSourceInfo()") 104 .Case("Expr *", "Record.readExpr()") 105 .Case("IdentifierInfo *", "Record.getIdentifierInfo()") 106 .Case("StringRef", "Record.readString()") 107 .Case("ParamIdx", "ParamIdx::deserialize(Record.readInt())") 108 .Default("Record.readInt()"); 109 } 110 111 // Get a type that is suitable for storing an object of the specified type. 112 static StringRef getStorageType(StringRef type) { 113 return StringSwitch<StringRef>(type) 114 .Case("StringRef", "std::string") 115 .Default(type); 116 } 117 118 // Assumes that the way to get the value is SA->getname() 119 static std::string WritePCHRecord(StringRef type, StringRef name) { 120 return "Record." + StringSwitch<std::string>(type) 121 .EndsWith("Decl *", "AddDeclRef(" + std::string(name) + ");\n") 122 .Case("TypeSourceInfo *", "AddTypeSourceInfo(" + std::string(name) + ");\n") 123 .Case("Expr *", "AddStmt(" + std::string(name) + ");\n") 124 .Case("IdentifierInfo *", "AddIdentifierRef(" + std::string(name) + ");\n") 125 .Case("StringRef", "AddString(" + std::string(name) + ");\n") 126 .Case("ParamIdx", "push_back(" + std::string(name) + ".serialize());\n") 127 .Default("push_back(" + std::string(name) + ");\n"); 128 } 129 130 // Normalize attribute name by removing leading and trailing 131 // underscores. For example, __foo, foo__, __foo__ would 132 // become foo. 133 static StringRef NormalizeAttrName(StringRef AttrName) { 134 AttrName.consume_front("__"); 135 AttrName.consume_back("__"); 136 return AttrName; 137 } 138 139 // Normalize the name by removing any and all leading and trailing underscores. 140 // This is different from NormalizeAttrName in that it also handles names like 141 // _pascal and __pascal. 142 static StringRef NormalizeNameForSpellingComparison(StringRef Name) { 143 return Name.trim("_"); 144 } 145 146 // Normalize the spelling of a GNU attribute (i.e. "x" in "__attribute__((x))"), 147 // removing "__" if it appears at the beginning and end of the attribute's name. 148 static StringRef NormalizeGNUAttrSpelling(StringRef AttrSpelling) { 149 if (AttrSpelling.startswith("__") && AttrSpelling.endswith("__")) { 150 AttrSpelling = AttrSpelling.substr(2, AttrSpelling.size() - 4); 151 } 152 153 return AttrSpelling; 154 } 155 156 typedef std::vector<std::pair<std::string, const Record *>> ParsedAttrMap; 157 158 static ParsedAttrMap getParsedAttrList(const RecordKeeper &Records, 159 ParsedAttrMap *Dupes = nullptr) { 160 std::vector<Record *> Attrs = Records.getAllDerivedDefinitions("Attr"); 161 std::set<std::string> Seen; 162 ParsedAttrMap R; 163 for (const auto *Attr : Attrs) { 164 if (Attr->getValueAsBit("SemaHandler")) { 165 std::string AN; 166 if (Attr->isSubClassOf("TargetSpecificAttr") && 167 !Attr->isValueUnset("ParseKind")) { 168 AN = Attr->getValueAsString("ParseKind"); 169 170 // If this attribute has already been handled, it does not need to be 171 // handled again. 172 if (Seen.find(AN) != Seen.end()) { 173 if (Dupes) 174 Dupes->push_back(std::make_pair(AN, Attr)); 175 continue; 176 } 177 Seen.insert(AN); 178 } else 179 AN = NormalizeAttrName(Attr->getName()).str(); 180 181 R.push_back(std::make_pair(AN, Attr)); 182 } 183 } 184 return R; 185 } 186 187 namespace { 188 189 class Argument { 190 std::string lowerName, upperName; 191 StringRef attrName; 192 bool isOpt; 193 bool Fake; 194 195 public: 196 Argument(const Record &Arg, StringRef Attr) 197 : lowerName(Arg.getValueAsString("Name")), upperName(lowerName), 198 attrName(Attr), isOpt(false), Fake(false) { 199 if (!lowerName.empty()) { 200 lowerName[0] = std::tolower(lowerName[0]); 201 upperName[0] = std::toupper(upperName[0]); 202 } 203 // Work around MinGW's macro definition of 'interface' to 'struct'. We 204 // have an attribute argument called 'Interface', so only the lower case 205 // name conflicts with the macro definition. 206 if (lowerName == "interface") 207 lowerName = "interface_"; 208 } 209 virtual ~Argument() = default; 210 211 StringRef getLowerName() const { return lowerName; } 212 StringRef getUpperName() const { return upperName; } 213 StringRef getAttrName() const { return attrName; } 214 215 bool isOptional() const { return isOpt; } 216 void setOptional(bool set) { isOpt = set; } 217 218 bool isFake() const { return Fake; } 219 void setFake(bool fake) { Fake = fake; } 220 221 // These functions print the argument contents formatted in different ways. 222 virtual void writeAccessors(raw_ostream &OS) const = 0; 223 virtual void writeAccessorDefinitions(raw_ostream &OS) const {} 224 virtual void writeASTVisitorTraversal(raw_ostream &OS) const {} 225 virtual void writeCloneArgs(raw_ostream &OS) const = 0; 226 virtual void writeTemplateInstantiationArgs(raw_ostream &OS) const = 0; 227 virtual void writeTemplateInstantiation(raw_ostream &OS) const {} 228 virtual void writeCtorBody(raw_ostream &OS) const {} 229 virtual void writeCtorInitializers(raw_ostream &OS) const = 0; 230 virtual void writeCtorDefaultInitializers(raw_ostream &OS) const = 0; 231 virtual void writeCtorParameters(raw_ostream &OS) const = 0; 232 virtual void writeDeclarations(raw_ostream &OS) const = 0; 233 virtual void writePCHReadArgs(raw_ostream &OS) const = 0; 234 virtual void writePCHReadDecls(raw_ostream &OS) const = 0; 235 virtual void writePCHWrite(raw_ostream &OS) const = 0; 236 virtual std::string getIsOmitted() const { return "false"; } 237 virtual void writeValue(raw_ostream &OS) const = 0; 238 virtual void writeDump(raw_ostream &OS) const = 0; 239 virtual void writeDumpChildren(raw_ostream &OS) const {} 240 virtual void writeHasChildren(raw_ostream &OS) const { OS << "false"; } 241 242 virtual bool isEnumArg() const { return false; } 243 virtual bool isVariadicEnumArg() const { return false; } 244 virtual bool isVariadic() const { return false; } 245 246 virtual void writeImplicitCtorArgs(raw_ostream &OS) const { 247 OS << getUpperName(); 248 } 249 }; 250 251 class SimpleArgument : public Argument { 252 std::string type; 253 254 public: 255 SimpleArgument(const Record &Arg, StringRef Attr, std::string T) 256 : Argument(Arg, Attr), type(std::move(T)) {} 257 258 std::string getType() const { return type; } 259 260 void writeAccessors(raw_ostream &OS) const override { 261 OS << " " << type << " get" << getUpperName() << "() const {\n"; 262 OS << " return " << getLowerName() << ";\n"; 263 OS << " }"; 264 } 265 266 void writeCloneArgs(raw_ostream &OS) const override { 267 OS << getLowerName(); 268 } 269 270 void writeTemplateInstantiationArgs(raw_ostream &OS) const override { 271 OS << "A->get" << getUpperName() << "()"; 272 } 273 274 void writeCtorInitializers(raw_ostream &OS) const override { 275 OS << getLowerName() << "(" << getUpperName() << ")"; 276 } 277 278 void writeCtorDefaultInitializers(raw_ostream &OS) const override { 279 OS << getLowerName() << "()"; 280 } 281 282 void writeCtorParameters(raw_ostream &OS) const override { 283 OS << type << " " << getUpperName(); 284 } 285 286 void writeDeclarations(raw_ostream &OS) const override { 287 OS << type << " " << getLowerName() << ";"; 288 } 289 290 void writePCHReadDecls(raw_ostream &OS) const override { 291 std::string read = ReadPCHRecord(type); 292 OS << " " << type << " " << getLowerName() << " = " << read << ";\n"; 293 } 294 295 void writePCHReadArgs(raw_ostream &OS) const override { 296 OS << getLowerName(); 297 } 298 299 void writePCHWrite(raw_ostream &OS) const override { 300 OS << " " << WritePCHRecord(type, "SA->get" + 301 std::string(getUpperName()) + "()"); 302 } 303 304 std::string getIsOmitted() const override { 305 if (type == "IdentifierInfo *") 306 return "!get" + getUpperName().str() + "()"; 307 if (type == "ParamIdx") 308 return "!get" + getUpperName().str() + "().isValid()"; 309 return "false"; 310 } 311 312 void writeValue(raw_ostream &OS) const override { 313 if (type == "FunctionDecl *") 314 OS << "\" << get" << getUpperName() 315 << "()->getNameInfo().getAsString() << \""; 316 else if (type == "IdentifierInfo *") 317 // Some non-optional (comma required) identifier arguments can be the 318 // empty string but are then recorded as a nullptr. 319 OS << "\" << (get" << getUpperName() << "() ? get" << getUpperName() 320 << "()->getName() : \"\") << \""; 321 else if (type == "TypeSourceInfo *") 322 OS << "\" << get" << getUpperName() << "().getAsString() << \""; 323 else if (type == "ParamIdx") 324 OS << "\" << get" << getUpperName() << "().getSourceIndex() << \""; 325 else 326 OS << "\" << get" << getUpperName() << "() << \""; 327 } 328 329 void writeDump(raw_ostream &OS) const override { 330 if (type == "FunctionDecl *" || type == "NamedDecl *") { 331 OS << " OS << \" \";\n"; 332 OS << " dumpBareDeclRef(SA->get" << getUpperName() << "());\n"; 333 } else if (type == "IdentifierInfo *") { 334 // Some non-optional (comma required) identifier arguments can be the 335 // empty string but are then recorded as a nullptr. 336 OS << " if (SA->get" << getUpperName() << "())\n" 337 << " OS << \" \" << SA->get" << getUpperName() 338 << "()->getName();\n"; 339 } else if (type == "TypeSourceInfo *") { 340 OS << " OS << \" \" << SA->get" << getUpperName() 341 << "().getAsString();\n"; 342 } else if (type == "bool") { 343 OS << " if (SA->get" << getUpperName() << "()) OS << \" " 344 << getUpperName() << "\";\n"; 345 } else if (type == "int" || type == "unsigned") { 346 OS << " OS << \" \" << SA->get" << getUpperName() << "();\n"; 347 } else if (type == "ParamIdx") { 348 if (isOptional()) 349 OS << " if (SA->get" << getUpperName() << "().isValid())\n "; 350 OS << " OS << \" \" << SA->get" << getUpperName() 351 << "().getSourceIndex();\n"; 352 } else { 353 llvm_unreachable("Unknown SimpleArgument type!"); 354 } 355 } 356 }; 357 358 class DefaultSimpleArgument : public SimpleArgument { 359 int64_t Default; 360 361 public: 362 DefaultSimpleArgument(const Record &Arg, StringRef Attr, 363 std::string T, int64_t Default) 364 : SimpleArgument(Arg, Attr, T), Default(Default) {} 365 366 void writeAccessors(raw_ostream &OS) const override { 367 SimpleArgument::writeAccessors(OS); 368 369 OS << "\n\n static const " << getType() << " Default" << getUpperName() 370 << " = "; 371 if (getType() == "bool") 372 OS << (Default != 0 ? "true" : "false"); 373 else 374 OS << Default; 375 OS << ";"; 376 } 377 }; 378 379 class StringArgument : public Argument { 380 public: 381 StringArgument(const Record &Arg, StringRef Attr) 382 : Argument(Arg, Attr) 383 {} 384 385 void writeAccessors(raw_ostream &OS) const override { 386 OS << " llvm::StringRef get" << getUpperName() << "() const {\n"; 387 OS << " return llvm::StringRef(" << getLowerName() << ", " 388 << getLowerName() << "Length);\n"; 389 OS << " }\n"; 390 OS << " unsigned get" << getUpperName() << "Length() const {\n"; 391 OS << " return " << getLowerName() << "Length;\n"; 392 OS << " }\n"; 393 OS << " void set" << getUpperName() 394 << "(ASTContext &C, llvm::StringRef S) {\n"; 395 OS << " " << getLowerName() << "Length = S.size();\n"; 396 OS << " this->" << getLowerName() << " = new (C, 1) char [" 397 << getLowerName() << "Length];\n"; 398 OS << " if (!S.empty())\n"; 399 OS << " std::memcpy(this->" << getLowerName() << ", S.data(), " 400 << getLowerName() << "Length);\n"; 401 OS << " }"; 402 } 403 404 void writeCloneArgs(raw_ostream &OS) const override { 405 OS << "get" << getUpperName() << "()"; 406 } 407 408 void writeTemplateInstantiationArgs(raw_ostream &OS) const override { 409 OS << "A->get" << getUpperName() << "()"; 410 } 411 412 void writeCtorBody(raw_ostream &OS) const override { 413 OS << " if (!" << getUpperName() << ".empty())\n"; 414 OS << " std::memcpy(" << getLowerName() << ", " << getUpperName() 415 << ".data(), " << getLowerName() << "Length);\n"; 416 } 417 418 void writeCtorInitializers(raw_ostream &OS) const override { 419 OS << getLowerName() << "Length(" << getUpperName() << ".size())," 420 << getLowerName() << "(new (Ctx, 1) char[" << getLowerName() 421 << "Length])"; 422 } 423 424 void writeCtorDefaultInitializers(raw_ostream &OS) const override { 425 OS << getLowerName() << "Length(0)," << getLowerName() << "(nullptr)"; 426 } 427 428 void writeCtorParameters(raw_ostream &OS) const override { 429 OS << "llvm::StringRef " << getUpperName(); 430 } 431 432 void writeDeclarations(raw_ostream &OS) const override { 433 OS << "unsigned " << getLowerName() << "Length;\n"; 434 OS << "char *" << getLowerName() << ";"; 435 } 436 437 void writePCHReadDecls(raw_ostream &OS) const override { 438 OS << " std::string " << getLowerName() 439 << "= Record.readString();\n"; 440 } 441 442 void writePCHReadArgs(raw_ostream &OS) const override { 443 OS << getLowerName(); 444 } 445 446 void writePCHWrite(raw_ostream &OS) const override { 447 OS << " Record.AddString(SA->get" << getUpperName() << "());\n"; 448 } 449 450 void writeValue(raw_ostream &OS) const override { 451 OS << "\\\"\" << get" << getUpperName() << "() << \"\\\""; 452 } 453 454 void writeDump(raw_ostream &OS) const override { 455 OS << " OS << \" \\\"\" << SA->get" << getUpperName() 456 << "() << \"\\\"\";\n"; 457 } 458 }; 459 460 class AlignedArgument : public Argument { 461 public: 462 AlignedArgument(const Record &Arg, StringRef Attr) 463 : Argument(Arg, Attr) 464 {} 465 466 void writeAccessors(raw_ostream &OS) const override { 467 OS << " bool is" << getUpperName() << "Dependent() const;\n"; 468 469 OS << " unsigned get" << getUpperName() << "(ASTContext &Ctx) const;\n"; 470 471 OS << " bool is" << getUpperName() << "Expr() const {\n"; 472 OS << " return is" << getLowerName() << "Expr;\n"; 473 OS << " }\n"; 474 475 OS << " Expr *get" << getUpperName() << "Expr() const {\n"; 476 OS << " assert(is" << getLowerName() << "Expr);\n"; 477 OS << " return " << getLowerName() << "Expr;\n"; 478 OS << " }\n"; 479 480 OS << " TypeSourceInfo *get" << getUpperName() << "Type() const {\n"; 481 OS << " assert(!is" << getLowerName() << "Expr);\n"; 482 OS << " return " << getLowerName() << "Type;\n"; 483 OS << " }"; 484 } 485 486 void writeAccessorDefinitions(raw_ostream &OS) const override { 487 OS << "bool " << getAttrName() << "Attr::is" << getUpperName() 488 << "Dependent() const {\n"; 489 OS << " if (is" << getLowerName() << "Expr)\n"; 490 OS << " return " << getLowerName() << "Expr && (" << getLowerName() 491 << "Expr->isValueDependent() || " << getLowerName() 492 << "Expr->isTypeDependent());\n"; 493 OS << " else\n"; 494 OS << " return " << getLowerName() 495 << "Type->getType()->isDependentType();\n"; 496 OS << "}\n"; 497 498 // FIXME: Do not do the calculation here 499 // FIXME: Handle types correctly 500 // A null pointer means maximum alignment 501 OS << "unsigned " << getAttrName() << "Attr::get" << getUpperName() 502 << "(ASTContext &Ctx) const {\n"; 503 OS << " assert(!is" << getUpperName() << "Dependent());\n"; 504 OS << " if (is" << getLowerName() << "Expr)\n"; 505 OS << " return " << getLowerName() << "Expr ? " << getLowerName() 506 << "Expr->EvaluateKnownConstInt(Ctx).getZExtValue()" 507 << " * Ctx.getCharWidth() : " 508 << "Ctx.getTargetDefaultAlignForAttributeAligned();\n"; 509 OS << " else\n"; 510 OS << " return 0; // FIXME\n"; 511 OS << "}\n"; 512 } 513 514 void writeASTVisitorTraversal(raw_ostream &OS) const override { 515 StringRef Name = getUpperName(); 516 OS << " if (A->is" << Name << "Expr()) {\n" 517 << " if (!getDerived().TraverseStmt(A->get" << Name << "Expr()))\n" 518 << " return false;\n" 519 << " } else if (auto *TSI = A->get" << Name << "Type()) {\n" 520 << " if (!getDerived().TraverseTypeLoc(TSI->getTypeLoc()))\n" 521 << " return false;\n" 522 << " }\n"; 523 } 524 525 void writeCloneArgs(raw_ostream &OS) const override { 526 OS << "is" << getLowerName() << "Expr, is" << getLowerName() 527 << "Expr ? static_cast<void*>(" << getLowerName() 528 << "Expr) : " << getLowerName() 529 << "Type"; 530 } 531 532 void writeTemplateInstantiationArgs(raw_ostream &OS) const override { 533 // FIXME: move the definition in Sema::InstantiateAttrs to here. 534 // In the meantime, aligned attributes are cloned. 535 } 536 537 void writeCtorBody(raw_ostream &OS) const override { 538 OS << " if (is" << getLowerName() << "Expr)\n"; 539 OS << " " << getLowerName() << "Expr = reinterpret_cast<Expr *>(" 540 << getUpperName() << ");\n"; 541 OS << " else\n"; 542 OS << " " << getLowerName() 543 << "Type = reinterpret_cast<TypeSourceInfo *>(" << getUpperName() 544 << ");\n"; 545 } 546 547 void writeCtorInitializers(raw_ostream &OS) const override { 548 OS << "is" << getLowerName() << "Expr(Is" << getUpperName() << "Expr)"; 549 } 550 551 void writeCtorDefaultInitializers(raw_ostream &OS) const override { 552 OS << "is" << getLowerName() << "Expr(false)"; 553 } 554 555 void writeCtorParameters(raw_ostream &OS) const override { 556 OS << "bool Is" << getUpperName() << "Expr, void *" << getUpperName(); 557 } 558 559 void writeImplicitCtorArgs(raw_ostream &OS) const override { 560 OS << "Is" << getUpperName() << "Expr, " << getUpperName(); 561 } 562 563 void writeDeclarations(raw_ostream &OS) const override { 564 OS << "bool is" << getLowerName() << "Expr;\n"; 565 OS << "union {\n"; 566 OS << "Expr *" << getLowerName() << "Expr;\n"; 567 OS << "TypeSourceInfo *" << getLowerName() << "Type;\n"; 568 OS << "};"; 569 } 570 571 void writePCHReadArgs(raw_ostream &OS) const override { 572 OS << "is" << getLowerName() << "Expr, " << getLowerName() << "Ptr"; 573 } 574 575 void writePCHReadDecls(raw_ostream &OS) const override { 576 OS << " bool is" << getLowerName() << "Expr = Record.readInt();\n"; 577 OS << " void *" << getLowerName() << "Ptr;\n"; 578 OS << " if (is" << getLowerName() << "Expr)\n"; 579 OS << " " << getLowerName() << "Ptr = Record.readExpr();\n"; 580 OS << " else\n"; 581 OS << " " << getLowerName() 582 << "Ptr = Record.getTypeSourceInfo();\n"; 583 } 584 585 void writePCHWrite(raw_ostream &OS) const override { 586 OS << " Record.push_back(SA->is" << getUpperName() << "Expr());\n"; 587 OS << " if (SA->is" << getUpperName() << "Expr())\n"; 588 OS << " Record.AddStmt(SA->get" << getUpperName() << "Expr());\n"; 589 OS << " else\n"; 590 OS << " Record.AddTypeSourceInfo(SA->get" << getUpperName() 591 << "Type());\n"; 592 } 593 594 std::string getIsOmitted() const override { 595 return "!is" + getLowerName().str() + "Expr || !" + getLowerName().str() 596 + "Expr"; 597 } 598 599 void writeValue(raw_ostream &OS) const override { 600 OS << "\";\n"; 601 OS << " " << getLowerName() 602 << "Expr->printPretty(OS, nullptr, Policy);\n"; 603 OS << " OS << \""; 604 } 605 606 void writeDump(raw_ostream &OS) const override {} 607 608 void writeDumpChildren(raw_ostream &OS) const override { 609 OS << " if (SA->is" << getUpperName() << "Expr())\n"; 610 OS << " dumpStmt(SA->get" << getUpperName() << "Expr());\n"; 611 OS << " else\n"; 612 OS << " dumpType(SA->get" << getUpperName() 613 << "Type()->getType());\n"; 614 } 615 616 void writeHasChildren(raw_ostream &OS) const override { 617 OS << "SA->is" << getUpperName() << "Expr()"; 618 } 619 }; 620 621 class VariadicArgument : public Argument { 622 std::string Type, ArgName, ArgSizeName, RangeName; 623 624 protected: 625 // Assumed to receive a parameter: raw_ostream OS. 626 virtual void writeValueImpl(raw_ostream &OS) const { 627 OS << " OS << Val;\n"; 628 } 629 // Assumed to receive a parameter: raw_ostream OS. 630 virtual void writeDumpImpl(raw_ostream &OS) const { 631 OS << " OS << \" \" << Val;\n"; 632 } 633 634 public: 635 VariadicArgument(const Record &Arg, StringRef Attr, std::string T) 636 : Argument(Arg, Attr), Type(std::move(T)), 637 ArgName(getLowerName().str() + "_"), ArgSizeName(ArgName + "Size"), 638 RangeName(getLowerName()) {} 639 640 const std::string &getType() const { return Type; } 641 const std::string &getArgName() const { return ArgName; } 642 const std::string &getArgSizeName() const { return ArgSizeName; } 643 bool isVariadic() const override { return true; } 644 645 void writeAccessors(raw_ostream &OS) const override { 646 std::string IteratorType = getLowerName().str() + "_iterator"; 647 std::string BeginFn = getLowerName().str() + "_begin()"; 648 std::string EndFn = getLowerName().str() + "_end()"; 649 650 OS << " typedef " << Type << "* " << IteratorType << ";\n"; 651 OS << " " << IteratorType << " " << BeginFn << " const {" 652 << " return " << ArgName << "; }\n"; 653 OS << " " << IteratorType << " " << EndFn << " const {" 654 << " return " << ArgName << " + " << ArgSizeName << "; }\n"; 655 OS << " unsigned " << getLowerName() << "_size() const {" 656 << " return " << ArgSizeName << "; }\n"; 657 OS << " llvm::iterator_range<" << IteratorType << "> " << RangeName 658 << "() const { return llvm::make_range(" << BeginFn << ", " << EndFn 659 << "); }\n"; 660 } 661 662 void writeCloneArgs(raw_ostream &OS) const override { 663 OS << ArgName << ", " << ArgSizeName; 664 } 665 666 void writeTemplateInstantiationArgs(raw_ostream &OS) const override { 667 // This isn't elegant, but we have to go through public methods... 668 OS << "A->" << getLowerName() << "_begin(), " 669 << "A->" << getLowerName() << "_size()"; 670 } 671 672 void writeASTVisitorTraversal(raw_ostream &OS) const override { 673 // FIXME: Traverse the elements. 674 } 675 676 void writeCtorBody(raw_ostream &OS) const override { 677 OS << " std::copy(" << getUpperName() << ", " << getUpperName() 678 << " + " << ArgSizeName << ", " << ArgName << ");\n"; 679 } 680 681 void writeCtorInitializers(raw_ostream &OS) const override { 682 OS << ArgSizeName << "(" << getUpperName() << "Size), " 683 << ArgName << "(new (Ctx, 16) " << getType() << "[" 684 << ArgSizeName << "])"; 685 } 686 687 void writeCtorDefaultInitializers(raw_ostream &OS) const override { 688 OS << ArgSizeName << "(0), " << ArgName << "(nullptr)"; 689 } 690 691 void writeCtorParameters(raw_ostream &OS) const override { 692 OS << getType() << " *" << getUpperName() << ", unsigned " 693 << getUpperName() << "Size"; 694 } 695 696 void writeImplicitCtorArgs(raw_ostream &OS) const override { 697 OS << getUpperName() << ", " << getUpperName() << "Size"; 698 } 699 700 void writeDeclarations(raw_ostream &OS) const override { 701 OS << " unsigned " << ArgSizeName << ";\n"; 702 OS << " " << getType() << " *" << ArgName << ";"; 703 } 704 705 void writePCHReadDecls(raw_ostream &OS) const override { 706 OS << " unsigned " << getLowerName() << "Size = Record.readInt();\n"; 707 OS << " SmallVector<" << getType() << ", 4> " 708 << getLowerName() << ";\n"; 709 OS << " " << getLowerName() << ".reserve(" << getLowerName() 710 << "Size);\n"; 711 712 // If we can't store the values in the current type (if it's something 713 // like StringRef), store them in a different type and convert the 714 // container afterwards. 715 std::string StorageType = getStorageType(getType()); 716 std::string StorageName = getLowerName(); 717 if (StorageType != getType()) { 718 StorageName += "Storage"; 719 OS << " SmallVector<" << StorageType << ", 4> " 720 << StorageName << ";\n"; 721 OS << " " << StorageName << ".reserve(" << getLowerName() 722 << "Size);\n"; 723 } 724 725 OS << " for (unsigned i = 0; i != " << getLowerName() << "Size; ++i)\n"; 726 std::string read = ReadPCHRecord(Type); 727 OS << " " << StorageName << ".push_back(" << read << ");\n"; 728 729 if (StorageType != getType()) { 730 OS << " for (unsigned i = 0; i != " << getLowerName() << "Size; ++i)\n"; 731 OS << " " << getLowerName() << ".push_back(" 732 << StorageName << "[i]);\n"; 733 } 734 } 735 736 void writePCHReadArgs(raw_ostream &OS) const override { 737 OS << getLowerName() << ".data(), " << getLowerName() << "Size"; 738 } 739 740 void writePCHWrite(raw_ostream &OS) const override { 741 OS << " Record.push_back(SA->" << getLowerName() << "_size());\n"; 742 OS << " for (auto &Val : SA->" << RangeName << "())\n"; 743 OS << " " << WritePCHRecord(Type, "Val"); 744 } 745 746 void writeValue(raw_ostream &OS) const override { 747 OS << "\";\n"; 748 OS << " bool isFirst = true;\n" 749 << " for (const auto &Val : " << RangeName << "()) {\n" 750 << " if (isFirst) isFirst = false;\n" 751 << " else OS << \", \";\n"; 752 writeValueImpl(OS); 753 OS << " }\n"; 754 OS << " OS << \""; 755 } 756 757 void writeDump(raw_ostream &OS) const override { 758 OS << " for (const auto &Val : SA->" << RangeName << "())\n"; 759 writeDumpImpl(OS); 760 } 761 }; 762 763 class VariadicParamIdxArgument : public VariadicArgument { 764 public: 765 VariadicParamIdxArgument(const Record &Arg, StringRef Attr) 766 : VariadicArgument(Arg, Attr, "ParamIdx") {} 767 768 public: 769 void writeValueImpl(raw_ostream &OS) const override { 770 OS << " OS << Val.getSourceIndex();\n"; 771 } 772 773 void writeDumpImpl(raw_ostream &OS) const override { 774 OS << " OS << \" \" << Val.getSourceIndex();\n"; 775 } 776 }; 777 778 // Unique the enums, but maintain the original declaration ordering. 779 std::vector<StringRef> 780 uniqueEnumsInOrder(const std::vector<StringRef> &enums) { 781 std::vector<StringRef> uniques; 782 SmallDenseSet<StringRef, 8> unique_set; 783 for (const auto &i : enums) { 784 if (unique_set.insert(i).second) 785 uniques.push_back(i); 786 } 787 return uniques; 788 } 789 790 class EnumArgument : public Argument { 791 std::string type; 792 std::vector<StringRef> values, enums, uniques; 793 794 public: 795 EnumArgument(const Record &Arg, StringRef Attr) 796 : Argument(Arg, Attr), type(Arg.getValueAsString("Type")), 797 values(Arg.getValueAsListOfStrings("Values")), 798 enums(Arg.getValueAsListOfStrings("Enums")), 799 uniques(uniqueEnumsInOrder(enums)) 800 { 801 // FIXME: Emit a proper error 802 assert(!uniques.empty()); 803 } 804 805 bool isEnumArg() const override { return true; } 806 807 void writeAccessors(raw_ostream &OS) const override { 808 OS << " " << type << " get" << getUpperName() << "() const {\n"; 809 OS << " return " << getLowerName() << ";\n"; 810 OS << " }"; 811 } 812 813 void writeCloneArgs(raw_ostream &OS) const override { 814 OS << getLowerName(); 815 } 816 817 void writeTemplateInstantiationArgs(raw_ostream &OS) const override { 818 OS << "A->get" << getUpperName() << "()"; 819 } 820 void writeCtorInitializers(raw_ostream &OS) const override { 821 OS << getLowerName() << "(" << getUpperName() << ")"; 822 } 823 void writeCtorDefaultInitializers(raw_ostream &OS) const override { 824 OS << getLowerName() << "(" << type << "(0))"; 825 } 826 void writeCtorParameters(raw_ostream &OS) const override { 827 OS << type << " " << getUpperName(); 828 } 829 void writeDeclarations(raw_ostream &OS) const override { 830 auto i = uniques.cbegin(), e = uniques.cend(); 831 // The last one needs to not have a comma. 832 --e; 833 834 OS << "public:\n"; 835 OS << " enum " << type << " {\n"; 836 for (; i != e; ++i) 837 OS << " " << *i << ",\n"; 838 OS << " " << *e << "\n"; 839 OS << " };\n"; 840 OS << "private:\n"; 841 OS << " " << type << " " << getLowerName() << ";"; 842 } 843 844 void writePCHReadDecls(raw_ostream &OS) const override { 845 OS << " " << getAttrName() << "Attr::" << type << " " << getLowerName() 846 << "(static_cast<" << getAttrName() << "Attr::" << type 847 << ">(Record.readInt()));\n"; 848 } 849 850 void writePCHReadArgs(raw_ostream &OS) const override { 851 OS << getLowerName(); 852 } 853 854 void writePCHWrite(raw_ostream &OS) const override { 855 OS << "Record.push_back(SA->get" << getUpperName() << "());\n"; 856 } 857 858 void writeValue(raw_ostream &OS) const override { 859 // FIXME: this isn't 100% correct -- some enum arguments require printing 860 // as a string literal, while others require printing as an identifier. 861 // Tablegen currently does not distinguish between the two forms. 862 OS << "\\\"\" << " << getAttrName() << "Attr::Convert" << type << "ToStr(get" 863 << getUpperName() << "()) << \"\\\""; 864 } 865 866 void writeDump(raw_ostream &OS) const override { 867 OS << " switch(SA->get" << getUpperName() << "()) {\n"; 868 for (const auto &I : uniques) { 869 OS << " case " << getAttrName() << "Attr::" << I << ":\n"; 870 OS << " OS << \" " << I << "\";\n"; 871 OS << " break;\n"; 872 } 873 OS << " }\n"; 874 } 875 876 void writeConversion(raw_ostream &OS) const { 877 OS << " static bool ConvertStrTo" << type << "(StringRef Val, "; 878 OS << type << " &Out) {\n"; 879 OS << " Optional<" << type << "> R = llvm::StringSwitch<Optional<"; 880 OS << type << ">>(Val)\n"; 881 for (size_t I = 0; I < enums.size(); ++I) { 882 OS << " .Case(\"" << values[I] << "\", "; 883 OS << getAttrName() << "Attr::" << enums[I] << ")\n"; 884 } 885 OS << " .Default(Optional<" << type << ">());\n"; 886 OS << " if (R) {\n"; 887 OS << " Out = *R;\n return true;\n }\n"; 888 OS << " return false;\n"; 889 OS << " }\n\n"; 890 891 // Mapping from enumeration values back to enumeration strings isn't 892 // trivial because some enumeration values have multiple named 893 // enumerators, such as type_visibility(internal) and 894 // type_visibility(hidden) both mapping to TypeVisibilityAttr::Hidden. 895 OS << " static const char *Convert" << type << "ToStr(" 896 << type << " Val) {\n" 897 << " switch(Val) {\n"; 898 SmallDenseSet<StringRef, 8> Uniques; 899 for (size_t I = 0; I < enums.size(); ++I) { 900 if (Uniques.insert(enums[I]).second) 901 OS << " case " << getAttrName() << "Attr::" << enums[I] 902 << ": return \"" << values[I] << "\";\n"; 903 } 904 OS << " }\n" 905 << " llvm_unreachable(\"No enumerator with that value\");\n" 906 << " }\n"; 907 } 908 }; 909 910 class VariadicEnumArgument: public VariadicArgument { 911 std::string type, QualifiedTypeName; 912 std::vector<StringRef> values, enums, uniques; 913 914 protected: 915 void writeValueImpl(raw_ostream &OS) const override { 916 // FIXME: this isn't 100% correct -- some enum arguments require printing 917 // as a string literal, while others require printing as an identifier. 918 // Tablegen currently does not distinguish between the two forms. 919 OS << " OS << \"\\\"\" << " << getAttrName() << "Attr::Convert" << type 920 << "ToStr(Val)" << "<< \"\\\"\";\n"; 921 } 922 923 public: 924 VariadicEnumArgument(const Record &Arg, StringRef Attr) 925 : VariadicArgument(Arg, Attr, Arg.getValueAsString("Type")), 926 type(Arg.getValueAsString("Type")), 927 values(Arg.getValueAsListOfStrings("Values")), 928 enums(Arg.getValueAsListOfStrings("Enums")), 929 uniques(uniqueEnumsInOrder(enums)) 930 { 931 QualifiedTypeName = getAttrName().str() + "Attr::" + type; 932 933 // FIXME: Emit a proper error 934 assert(!uniques.empty()); 935 } 936 937 bool isVariadicEnumArg() const override { return true; } 938 939 void writeDeclarations(raw_ostream &OS) const override { 940 auto i = uniques.cbegin(), e = uniques.cend(); 941 // The last one needs to not have a comma. 942 --e; 943 944 OS << "public:\n"; 945 OS << " enum " << type << " {\n"; 946 for (; i != e; ++i) 947 OS << " " << *i << ",\n"; 948 OS << " " << *e << "\n"; 949 OS << " };\n"; 950 OS << "private:\n"; 951 952 VariadicArgument::writeDeclarations(OS); 953 } 954 955 void writeDump(raw_ostream &OS) const override { 956 OS << " for (" << getAttrName() << "Attr::" << getLowerName() 957 << "_iterator I = SA->" << getLowerName() << "_begin(), E = SA->" 958 << getLowerName() << "_end(); I != E; ++I) {\n"; 959 OS << " switch(*I) {\n"; 960 for (const auto &UI : uniques) { 961 OS << " case " << getAttrName() << "Attr::" << UI << ":\n"; 962 OS << " OS << \" " << UI << "\";\n"; 963 OS << " break;\n"; 964 } 965 OS << " }\n"; 966 OS << " }\n"; 967 } 968 969 void writePCHReadDecls(raw_ostream &OS) const override { 970 OS << " unsigned " << getLowerName() << "Size = Record.readInt();\n"; 971 OS << " SmallVector<" << QualifiedTypeName << ", 4> " << getLowerName() 972 << ";\n"; 973 OS << " " << getLowerName() << ".reserve(" << getLowerName() 974 << "Size);\n"; 975 OS << " for (unsigned i = " << getLowerName() << "Size; i; --i)\n"; 976 OS << " " << getLowerName() << ".push_back(" << "static_cast<" 977 << QualifiedTypeName << ">(Record.readInt()));\n"; 978 } 979 980 void writePCHWrite(raw_ostream &OS) const override { 981 OS << " Record.push_back(SA->" << getLowerName() << "_size());\n"; 982 OS << " for (" << getAttrName() << "Attr::" << getLowerName() 983 << "_iterator i = SA->" << getLowerName() << "_begin(), e = SA->" 984 << getLowerName() << "_end(); i != e; ++i)\n"; 985 OS << " " << WritePCHRecord(QualifiedTypeName, "(*i)"); 986 } 987 988 void writeConversion(raw_ostream &OS) const { 989 OS << " static bool ConvertStrTo" << type << "(StringRef Val, "; 990 OS << type << " &Out) {\n"; 991 OS << " Optional<" << type << "> R = llvm::StringSwitch<Optional<"; 992 OS << type << ">>(Val)\n"; 993 for (size_t I = 0; I < enums.size(); ++I) { 994 OS << " .Case(\"" << values[I] << "\", "; 995 OS << getAttrName() << "Attr::" << enums[I] << ")\n"; 996 } 997 OS << " .Default(Optional<" << type << ">());\n"; 998 OS << " if (R) {\n"; 999 OS << " Out = *R;\n return true;\n }\n"; 1000 OS << " return false;\n"; 1001 OS << " }\n\n"; 1002 1003 OS << " static const char *Convert" << type << "ToStr(" 1004 << type << " Val) {\n" 1005 << " switch(Val) {\n"; 1006 SmallDenseSet<StringRef, 8> Uniques; 1007 for (size_t I = 0; I < enums.size(); ++I) { 1008 if (Uniques.insert(enums[I]).second) 1009 OS << " case " << getAttrName() << "Attr::" << enums[I] 1010 << ": return \"" << values[I] << "\";\n"; 1011 } 1012 OS << " }\n" 1013 << " llvm_unreachable(\"No enumerator with that value\");\n" 1014 << " }\n"; 1015 } 1016 }; 1017 1018 class VersionArgument : public Argument { 1019 public: 1020 VersionArgument(const Record &Arg, StringRef Attr) 1021 : Argument(Arg, Attr) 1022 {} 1023 1024 void writeAccessors(raw_ostream &OS) const override { 1025 OS << " VersionTuple get" << getUpperName() << "() const {\n"; 1026 OS << " return " << getLowerName() << ";\n"; 1027 OS << " }\n"; 1028 OS << " void set" << getUpperName() 1029 << "(ASTContext &C, VersionTuple V) {\n"; 1030 OS << " " << getLowerName() << " = V;\n"; 1031 OS << " }"; 1032 } 1033 1034 void writeCloneArgs(raw_ostream &OS) const override { 1035 OS << "get" << getUpperName() << "()"; 1036 } 1037 1038 void writeTemplateInstantiationArgs(raw_ostream &OS) const override { 1039 OS << "A->get" << getUpperName() << "()"; 1040 } 1041 1042 void writeCtorInitializers(raw_ostream &OS) const override { 1043 OS << getLowerName() << "(" << getUpperName() << ")"; 1044 } 1045 1046 void writeCtorDefaultInitializers(raw_ostream &OS) const override { 1047 OS << getLowerName() << "()"; 1048 } 1049 1050 void writeCtorParameters(raw_ostream &OS) const override { 1051 OS << "VersionTuple " << getUpperName(); 1052 } 1053 1054 void writeDeclarations(raw_ostream &OS) const override { 1055 OS << "VersionTuple " << getLowerName() << ";\n"; 1056 } 1057 1058 void writePCHReadDecls(raw_ostream &OS) const override { 1059 OS << " VersionTuple " << getLowerName() 1060 << "= Record.readVersionTuple();\n"; 1061 } 1062 1063 void writePCHReadArgs(raw_ostream &OS) const override { 1064 OS << getLowerName(); 1065 } 1066 1067 void writePCHWrite(raw_ostream &OS) const override { 1068 OS << " Record.AddVersionTuple(SA->get" << getUpperName() << "());\n"; 1069 } 1070 1071 void writeValue(raw_ostream &OS) const override { 1072 OS << getLowerName() << "=\" << get" << getUpperName() << "() << \""; 1073 } 1074 1075 void writeDump(raw_ostream &OS) const override { 1076 OS << " OS << \" \" << SA->get" << getUpperName() << "();\n"; 1077 } 1078 }; 1079 1080 class ExprArgument : public SimpleArgument { 1081 public: 1082 ExprArgument(const Record &Arg, StringRef Attr) 1083 : SimpleArgument(Arg, Attr, "Expr *") 1084 {} 1085 1086 void writeASTVisitorTraversal(raw_ostream &OS) const override { 1087 OS << " if (!" 1088 << "getDerived().TraverseStmt(A->get" << getUpperName() << "()))\n"; 1089 OS << " return false;\n"; 1090 } 1091 1092 void writeTemplateInstantiationArgs(raw_ostream &OS) const override { 1093 OS << "tempInst" << getUpperName(); 1094 } 1095 1096 void writeTemplateInstantiation(raw_ostream &OS) const override { 1097 OS << " " << getType() << " tempInst" << getUpperName() << ";\n"; 1098 OS << " {\n"; 1099 OS << " EnterExpressionEvaluationContext " 1100 << "Unevaluated(S, Sema::ExpressionEvaluationContext::Unevaluated);\n"; 1101 OS << " ExprResult " << "Result = S.SubstExpr(" 1102 << "A->get" << getUpperName() << "(), TemplateArgs);\n"; 1103 OS << " tempInst" << getUpperName() << " = " 1104 << "Result.getAs<Expr>();\n"; 1105 OS << " }\n"; 1106 } 1107 1108 void writeDump(raw_ostream &OS) const override {} 1109 1110 void writeDumpChildren(raw_ostream &OS) const override { 1111 OS << " dumpStmt(SA->get" << getUpperName() << "());\n"; 1112 } 1113 1114 void writeHasChildren(raw_ostream &OS) const override { OS << "true"; } 1115 }; 1116 1117 class VariadicExprArgument : public VariadicArgument { 1118 public: 1119 VariadicExprArgument(const Record &Arg, StringRef Attr) 1120 : VariadicArgument(Arg, Attr, "Expr *") 1121 {} 1122 1123 void writeASTVisitorTraversal(raw_ostream &OS) const override { 1124 OS << " {\n"; 1125 OS << " " << getType() << " *I = A->" << getLowerName() 1126 << "_begin();\n"; 1127 OS << " " << getType() << " *E = A->" << getLowerName() 1128 << "_end();\n"; 1129 OS << " for (; I != E; ++I) {\n"; 1130 OS << " if (!getDerived().TraverseStmt(*I))\n"; 1131 OS << " return false;\n"; 1132 OS << " }\n"; 1133 OS << " }\n"; 1134 } 1135 1136 void writeTemplateInstantiationArgs(raw_ostream &OS) const override { 1137 OS << "tempInst" << getUpperName() << ", " 1138 << "A->" << getLowerName() << "_size()"; 1139 } 1140 1141 void writeTemplateInstantiation(raw_ostream &OS) const override { 1142 OS << " auto *tempInst" << getUpperName() 1143 << " = new (C, 16) " << getType() 1144 << "[A->" << getLowerName() << "_size()];\n"; 1145 OS << " {\n"; 1146 OS << " EnterExpressionEvaluationContext " 1147 << "Unevaluated(S, Sema::ExpressionEvaluationContext::Unevaluated);\n"; 1148 OS << " " << getType() << " *TI = tempInst" << getUpperName() 1149 << ";\n"; 1150 OS << " " << getType() << " *I = A->" << getLowerName() 1151 << "_begin();\n"; 1152 OS << " " << getType() << " *E = A->" << getLowerName() 1153 << "_end();\n"; 1154 OS << " for (; I != E; ++I, ++TI) {\n"; 1155 OS << " ExprResult Result = S.SubstExpr(*I, TemplateArgs);\n"; 1156 OS << " *TI = Result.getAs<Expr>();\n"; 1157 OS << " }\n"; 1158 OS << " }\n"; 1159 } 1160 1161 void writeDump(raw_ostream &OS) const override {} 1162 1163 void writeDumpChildren(raw_ostream &OS) const override { 1164 OS << " for (" << getAttrName() << "Attr::" << getLowerName() 1165 << "_iterator I = SA->" << getLowerName() << "_begin(), E = SA->" 1166 << getLowerName() << "_end(); I != E; ++I)\n"; 1167 OS << " dumpStmt(*I);\n"; 1168 } 1169 1170 void writeHasChildren(raw_ostream &OS) const override { 1171 OS << "SA->" << getLowerName() << "_begin() != " 1172 << "SA->" << getLowerName() << "_end()"; 1173 } 1174 }; 1175 1176 class VariadicIdentifierArgument : public VariadicArgument { 1177 public: 1178 VariadicIdentifierArgument(const Record &Arg, StringRef Attr) 1179 : VariadicArgument(Arg, Attr, "IdentifierInfo *") 1180 {} 1181 }; 1182 1183 class VariadicStringArgument : public VariadicArgument { 1184 public: 1185 VariadicStringArgument(const Record &Arg, StringRef Attr) 1186 : VariadicArgument(Arg, Attr, "StringRef") 1187 {} 1188 1189 void writeCtorBody(raw_ostream &OS) const override { 1190 OS << " for (size_t I = 0, E = " << getArgSizeName() << "; I != E;\n" 1191 " ++I) {\n" 1192 " StringRef Ref = " << getUpperName() << "[I];\n" 1193 " if (!Ref.empty()) {\n" 1194 " char *Mem = new (Ctx, 1) char[Ref.size()];\n" 1195 " std::memcpy(Mem, Ref.data(), Ref.size());\n" 1196 " " << getArgName() << "[I] = StringRef(Mem, Ref.size());\n" 1197 " }\n" 1198 " }\n"; 1199 } 1200 1201 void writeValueImpl(raw_ostream &OS) const override { 1202 OS << " OS << \"\\\"\" << Val << \"\\\"\";\n"; 1203 } 1204 }; 1205 1206 class TypeArgument : public SimpleArgument { 1207 public: 1208 TypeArgument(const Record &Arg, StringRef Attr) 1209 : SimpleArgument(Arg, Attr, "TypeSourceInfo *") 1210 {} 1211 1212 void writeAccessors(raw_ostream &OS) const override { 1213 OS << " QualType get" << getUpperName() << "() const {\n"; 1214 OS << " return " << getLowerName() << "->getType();\n"; 1215 OS << " }"; 1216 OS << " " << getType() << " get" << getUpperName() << "Loc() const {\n"; 1217 OS << " return " << getLowerName() << ";\n"; 1218 OS << " }"; 1219 } 1220 1221 void writeASTVisitorTraversal(raw_ostream &OS) const override { 1222 OS << " if (auto *TSI = A->get" << getUpperName() << "Loc())\n"; 1223 OS << " if (!getDerived().TraverseTypeLoc(TSI->getTypeLoc()))\n"; 1224 OS << " return false;\n"; 1225 } 1226 1227 void writeTemplateInstantiationArgs(raw_ostream &OS) const override { 1228 OS << "A->get" << getUpperName() << "Loc()"; 1229 } 1230 1231 void writePCHWrite(raw_ostream &OS) const override { 1232 OS << " " << WritePCHRecord( 1233 getType(), "SA->get" + std::string(getUpperName()) + "Loc()"); 1234 } 1235 }; 1236 1237 } // end anonymous namespace 1238 1239 static std::unique_ptr<Argument> 1240 createArgument(const Record &Arg, StringRef Attr, 1241 const Record *Search = nullptr) { 1242 if (!Search) 1243 Search = &Arg; 1244 1245 std::unique_ptr<Argument> Ptr; 1246 llvm::StringRef ArgName = Search->getName(); 1247 1248 if (ArgName == "AlignedArgument") 1249 Ptr = llvm::make_unique<AlignedArgument>(Arg, Attr); 1250 else if (ArgName == "EnumArgument") 1251 Ptr = llvm::make_unique<EnumArgument>(Arg, Attr); 1252 else if (ArgName == "ExprArgument") 1253 Ptr = llvm::make_unique<ExprArgument>(Arg, Attr); 1254 else if (ArgName == "FunctionArgument") 1255 Ptr = llvm::make_unique<SimpleArgument>(Arg, Attr, "FunctionDecl *"); 1256 else if (ArgName == "NamedArgument") 1257 Ptr = llvm::make_unique<SimpleArgument>(Arg, Attr, "NamedDecl *"); 1258 else if (ArgName == "IdentifierArgument") 1259 Ptr = llvm::make_unique<SimpleArgument>(Arg, Attr, "IdentifierInfo *"); 1260 else if (ArgName == "DefaultBoolArgument") 1261 Ptr = llvm::make_unique<DefaultSimpleArgument>( 1262 Arg, Attr, "bool", Arg.getValueAsBit("Default")); 1263 else if (ArgName == "BoolArgument") 1264 Ptr = llvm::make_unique<SimpleArgument>(Arg, Attr, "bool"); 1265 else if (ArgName == "DefaultIntArgument") 1266 Ptr = llvm::make_unique<DefaultSimpleArgument>( 1267 Arg, Attr, "int", Arg.getValueAsInt("Default")); 1268 else if (ArgName == "IntArgument") 1269 Ptr = llvm::make_unique<SimpleArgument>(Arg, Attr, "int"); 1270 else if (ArgName == "StringArgument") 1271 Ptr = llvm::make_unique<StringArgument>(Arg, Attr); 1272 else if (ArgName == "TypeArgument") 1273 Ptr = llvm::make_unique<TypeArgument>(Arg, Attr); 1274 else if (ArgName == "UnsignedArgument") 1275 Ptr = llvm::make_unique<SimpleArgument>(Arg, Attr, "unsigned"); 1276 else if (ArgName == "VariadicUnsignedArgument") 1277 Ptr = llvm::make_unique<VariadicArgument>(Arg, Attr, "unsigned"); 1278 else if (ArgName == "VariadicStringArgument") 1279 Ptr = llvm::make_unique<VariadicStringArgument>(Arg, Attr); 1280 else if (ArgName == "VariadicEnumArgument") 1281 Ptr = llvm::make_unique<VariadicEnumArgument>(Arg, Attr); 1282 else if (ArgName == "VariadicExprArgument") 1283 Ptr = llvm::make_unique<VariadicExprArgument>(Arg, Attr); 1284 else if (ArgName == "VariadicParamIdxArgument") 1285 Ptr = llvm::make_unique<VariadicParamIdxArgument>(Arg, Attr); 1286 else if (ArgName == "ParamIdxArgument") 1287 Ptr = llvm::make_unique<SimpleArgument>(Arg, Attr, "ParamIdx"); 1288 else if (ArgName == "VariadicIdentifierArgument") 1289 Ptr = llvm::make_unique<VariadicIdentifierArgument>(Arg, Attr); 1290 else if (ArgName == "VersionArgument") 1291 Ptr = llvm::make_unique<VersionArgument>(Arg, Attr); 1292 1293 if (!Ptr) { 1294 // Search in reverse order so that the most-derived type is handled first. 1295 ArrayRef<std::pair<Record*, SMRange>> Bases = Search->getSuperClasses(); 1296 for (const auto &Base : llvm::reverse(Bases)) { 1297 if ((Ptr = createArgument(Arg, Attr, Base.first))) 1298 break; 1299 } 1300 } 1301 1302 if (Ptr && Arg.getValueAsBit("Optional")) 1303 Ptr->setOptional(true); 1304 1305 if (Ptr && Arg.getValueAsBit("Fake")) 1306 Ptr->setFake(true); 1307 1308 return Ptr; 1309 } 1310 1311 static void writeAvailabilityValue(raw_ostream &OS) { 1312 OS << "\" << getPlatform()->getName();\n" 1313 << " if (getStrict()) OS << \", strict\";\n" 1314 << " if (!getIntroduced().empty()) OS << \", introduced=\" << getIntroduced();\n" 1315 << " if (!getDeprecated().empty()) OS << \", deprecated=\" << getDeprecated();\n" 1316 << " if (!getObsoleted().empty()) OS << \", obsoleted=\" << getObsoleted();\n" 1317 << " if (getUnavailable()) OS << \", unavailable\";\n" 1318 << " OS << \""; 1319 } 1320 1321 static void writeDeprecatedAttrValue(raw_ostream &OS, std::string &Variety) { 1322 OS << "\\\"\" << getMessage() << \"\\\"\";\n"; 1323 // Only GNU deprecated has an optional fixit argument at the second position. 1324 if (Variety == "GNU") 1325 OS << " if (!getReplacement().empty()) OS << \", \\\"\"" 1326 " << getReplacement() << \"\\\"\";\n"; 1327 OS << " OS << \""; 1328 } 1329 1330 static void writeGetSpellingFunction(Record &R, raw_ostream &OS) { 1331 std::vector<FlattenedSpelling> Spellings = GetFlattenedSpellings(R); 1332 1333 OS << "const char *" << R.getName() << "Attr::getSpelling() const {\n"; 1334 if (Spellings.empty()) { 1335 OS << " return \"(No spelling)\";\n}\n\n"; 1336 return; 1337 } 1338 1339 OS << " switch (SpellingListIndex) {\n" 1340 " default:\n" 1341 " llvm_unreachable(\"Unknown attribute spelling!\");\n" 1342 " return \"(No spelling)\";\n"; 1343 1344 for (unsigned I = 0; I < Spellings.size(); ++I) 1345 OS << " case " << I << ":\n" 1346 " return \"" << Spellings[I].name() << "\";\n"; 1347 // End of the switch statement. 1348 OS << " }\n"; 1349 // End of the getSpelling function. 1350 OS << "}\n\n"; 1351 } 1352 1353 static void 1354 writePrettyPrintFunction(Record &R, 1355 const std::vector<std::unique_ptr<Argument>> &Args, 1356 raw_ostream &OS) { 1357 std::vector<FlattenedSpelling> Spellings = GetFlattenedSpellings(R); 1358 1359 OS << "void " << R.getName() << "Attr::printPretty(" 1360 << "raw_ostream &OS, const PrintingPolicy &Policy) const {\n"; 1361 1362 if (Spellings.empty()) { 1363 OS << "}\n\n"; 1364 return; 1365 } 1366 1367 OS << 1368 " switch (SpellingListIndex) {\n" 1369 " default:\n" 1370 " llvm_unreachable(\"Unknown attribute spelling!\");\n" 1371 " break;\n"; 1372 1373 for (unsigned I = 0; I < Spellings.size(); ++ I) { 1374 llvm::SmallString<16> Prefix; 1375 llvm::SmallString<8> Suffix; 1376 // The actual spelling of the name and namespace (if applicable) 1377 // of an attribute without considering prefix and suffix. 1378 llvm::SmallString<64> Spelling; 1379 std::string Name = Spellings[I].name(); 1380 std::string Variety = Spellings[I].variety(); 1381 1382 if (Variety == "GNU") { 1383 Prefix = " __attribute__(("; 1384 Suffix = "))"; 1385 } else if (Variety == "CXX11" || Variety == "C2x") { 1386 Prefix = " [["; 1387 Suffix = "]]"; 1388 std::string Namespace = Spellings[I].nameSpace(); 1389 if (!Namespace.empty()) { 1390 Spelling += Namespace; 1391 Spelling += "::"; 1392 } 1393 } else if (Variety == "Declspec") { 1394 Prefix = " __declspec("; 1395 Suffix = ")"; 1396 } else if (Variety == "Microsoft") { 1397 Prefix = "["; 1398 Suffix = "]"; 1399 } else if (Variety == "Keyword") { 1400 Prefix = " "; 1401 Suffix = ""; 1402 } else if (Variety == "Pragma") { 1403 Prefix = "#pragma "; 1404 Suffix = "\n"; 1405 std::string Namespace = Spellings[I].nameSpace(); 1406 if (!Namespace.empty()) { 1407 Spelling += Namespace; 1408 Spelling += " "; 1409 } 1410 } else { 1411 llvm_unreachable("Unknown attribute syntax variety!"); 1412 } 1413 1414 Spelling += Name; 1415 1416 OS << 1417 " case " << I << " : {\n" 1418 " OS << \"" << Prefix << Spelling; 1419 1420 if (Variety == "Pragma") { 1421 OS << "\";\n"; 1422 OS << " printPrettyPragma(OS, Policy);\n"; 1423 OS << " OS << \"\\n\";"; 1424 OS << " break;\n"; 1425 OS << " }\n"; 1426 continue; 1427 } 1428 1429 if (Spelling == "availability") { 1430 OS << "("; 1431 writeAvailabilityValue(OS); 1432 OS << ")"; 1433 } else if (Spelling == "deprecated" || Spelling == "gnu::deprecated") { 1434 OS << "("; 1435 writeDeprecatedAttrValue(OS, Variety); 1436 OS << ")"; 1437 } else { 1438 // To avoid printing parentheses around an empty argument list or 1439 // printing spurious commas at the end of an argument list, we need to 1440 // determine where the last provided non-fake argument is. 1441 unsigned NonFakeArgs = 0; 1442 unsigned TrailingOptArgs = 0; 1443 bool FoundNonOptArg = false; 1444 for (const auto &arg : llvm::reverse(Args)) { 1445 if (arg->isFake()) 1446 continue; 1447 ++NonFakeArgs; 1448 if (FoundNonOptArg) 1449 continue; 1450 // FIXME: arg->getIsOmitted() == "false" means we haven't implemented 1451 // any way to detect whether the argument was omitted. 1452 if (!arg->isOptional() || arg->getIsOmitted() == "false") { 1453 FoundNonOptArg = true; 1454 continue; 1455 } 1456 if (!TrailingOptArgs++) 1457 OS << "\";\n" 1458 << " unsigned TrailingOmittedArgs = 0;\n"; 1459 OS << " if (" << arg->getIsOmitted() << ")\n" 1460 << " ++TrailingOmittedArgs;\n"; 1461 } 1462 if (TrailingOptArgs) 1463 OS << " OS << \""; 1464 if (TrailingOptArgs < NonFakeArgs) 1465 OS << "("; 1466 else if (TrailingOptArgs) 1467 OS << "\";\n" 1468 << " if (TrailingOmittedArgs < " << NonFakeArgs << ")\n" 1469 << " OS << \"(\";\n" 1470 << " OS << \""; 1471 unsigned ArgIndex = 0; 1472 for (const auto &arg : Args) { 1473 if (arg->isFake()) 1474 continue; 1475 if (ArgIndex) { 1476 if (ArgIndex >= NonFakeArgs - TrailingOptArgs) 1477 OS << "\";\n" 1478 << " if (" << ArgIndex << " < " << NonFakeArgs 1479 << " - TrailingOmittedArgs)\n" 1480 << " OS << \", \";\n" 1481 << " OS << \""; 1482 else 1483 OS << ", "; 1484 } 1485 std::string IsOmitted = arg->getIsOmitted(); 1486 if (arg->isOptional() && IsOmitted != "false") 1487 OS << "\";\n" 1488 << " if (!(" << IsOmitted << ")) {\n" 1489 << " OS << \""; 1490 arg->writeValue(OS); 1491 if (arg->isOptional() && IsOmitted != "false") 1492 OS << "\";\n" 1493 << " }\n" 1494 << " OS << \""; 1495 ++ArgIndex; 1496 } 1497 if (TrailingOptArgs < NonFakeArgs) 1498 OS << ")"; 1499 else if (TrailingOptArgs) 1500 OS << "\";\n" 1501 << " if (TrailingOmittedArgs < " << NonFakeArgs << ")\n" 1502 << " OS << \")\";\n" 1503 << " OS << \""; 1504 } 1505 1506 OS << Suffix + "\";\n"; 1507 1508 OS << 1509 " break;\n" 1510 " }\n"; 1511 } 1512 1513 // End of the switch statement. 1514 OS << "}\n"; 1515 // End of the print function. 1516 OS << "}\n\n"; 1517 } 1518 1519 /// Return the index of a spelling in a spelling list. 1520 static unsigned 1521 getSpellingListIndex(const std::vector<FlattenedSpelling> &SpellingList, 1522 const FlattenedSpelling &Spelling) { 1523 assert(!SpellingList.empty() && "Spelling list is empty!"); 1524 1525 for (unsigned Index = 0; Index < SpellingList.size(); ++Index) { 1526 const FlattenedSpelling &S = SpellingList[Index]; 1527 if (S.variety() != Spelling.variety()) 1528 continue; 1529 if (S.nameSpace() != Spelling.nameSpace()) 1530 continue; 1531 if (S.name() != Spelling.name()) 1532 continue; 1533 1534 return Index; 1535 } 1536 1537 llvm_unreachable("Unknown spelling!"); 1538 } 1539 1540 static void writeAttrAccessorDefinition(const Record &R, raw_ostream &OS) { 1541 std::vector<Record*> Accessors = R.getValueAsListOfDefs("Accessors"); 1542 if (Accessors.empty()) 1543 return; 1544 1545 const std::vector<FlattenedSpelling> SpellingList = GetFlattenedSpellings(R); 1546 assert(!SpellingList.empty() && 1547 "Attribute with empty spelling list can't have accessors!"); 1548 for (const auto *Accessor : Accessors) { 1549 const StringRef Name = Accessor->getValueAsString("Name"); 1550 std::vector<FlattenedSpelling> Spellings = GetFlattenedSpellings(*Accessor); 1551 1552 OS << " bool " << Name << "() const { return SpellingListIndex == "; 1553 for (unsigned Index = 0; Index < Spellings.size(); ++Index) { 1554 OS << getSpellingListIndex(SpellingList, Spellings[Index]); 1555 if (Index != Spellings.size() - 1) 1556 OS << " ||\n SpellingListIndex == "; 1557 else 1558 OS << "; }\n"; 1559 } 1560 } 1561 } 1562 1563 static bool 1564 SpellingNamesAreCommon(const std::vector<FlattenedSpelling>& Spellings) { 1565 assert(!Spellings.empty() && "An empty list of spellings was provided"); 1566 std::string FirstName = NormalizeNameForSpellingComparison( 1567 Spellings.front().name()); 1568 for (const auto &Spelling : 1569 llvm::make_range(std::next(Spellings.begin()), Spellings.end())) { 1570 std::string Name = NormalizeNameForSpellingComparison(Spelling.name()); 1571 if (Name != FirstName) 1572 return false; 1573 } 1574 return true; 1575 } 1576 1577 typedef std::map<unsigned, std::string> SemanticSpellingMap; 1578 static std::string 1579 CreateSemanticSpellings(const std::vector<FlattenedSpelling> &Spellings, 1580 SemanticSpellingMap &Map) { 1581 // The enumerants are automatically generated based on the variety, 1582 // namespace (if present) and name for each attribute spelling. However, 1583 // care is taken to avoid trampling on the reserved namespace due to 1584 // underscores. 1585 std::string Ret(" enum Spelling {\n"); 1586 std::set<std::string> Uniques; 1587 unsigned Idx = 0; 1588 for (auto I = Spellings.begin(), E = Spellings.end(); I != E; ++I, ++Idx) { 1589 const FlattenedSpelling &S = *I; 1590 const std::string &Variety = S.variety(); 1591 const std::string &Spelling = S.name(); 1592 const std::string &Namespace = S.nameSpace(); 1593 std::string EnumName; 1594 1595 EnumName += (Variety + "_"); 1596 if (!Namespace.empty()) 1597 EnumName += (NormalizeNameForSpellingComparison(Namespace).str() + 1598 "_"); 1599 EnumName += NormalizeNameForSpellingComparison(Spelling); 1600 1601 // Even if the name is not unique, this spelling index corresponds to a 1602 // particular enumerant name that we've calculated. 1603 Map[Idx] = EnumName; 1604 1605 // Since we have been stripping underscores to avoid trampling on the 1606 // reserved namespace, we may have inadvertently created duplicate 1607 // enumerant names. These duplicates are not considered part of the 1608 // semantic spelling, and can be elided. 1609 if (Uniques.find(EnumName) != Uniques.end()) 1610 continue; 1611 1612 Uniques.insert(EnumName); 1613 if (I != Spellings.begin()) 1614 Ret += ",\n"; 1615 // Duplicate spellings are not considered part of the semantic spelling 1616 // enumeration, but the spelling index and semantic spelling values are 1617 // meant to be equivalent, so we must specify a concrete value for each 1618 // enumerator. 1619 Ret += " " + EnumName + " = " + llvm::utostr(Idx); 1620 } 1621 Ret += "\n };\n\n"; 1622 return Ret; 1623 } 1624 1625 void WriteSemanticSpellingSwitch(const std::string &VarName, 1626 const SemanticSpellingMap &Map, 1627 raw_ostream &OS) { 1628 OS << " switch (" << VarName << ") {\n default: " 1629 << "llvm_unreachable(\"Unknown spelling list index\");\n"; 1630 for (const auto &I : Map) 1631 OS << " case " << I.first << ": return " << I.second << ";\n"; 1632 OS << " }\n"; 1633 } 1634 1635 // Emits the LateParsed property for attributes. 1636 static void emitClangAttrLateParsedList(RecordKeeper &Records, raw_ostream &OS) { 1637 OS << "#if defined(CLANG_ATTR_LATE_PARSED_LIST)\n"; 1638 std::vector<Record*> Attrs = Records.getAllDerivedDefinitions("Attr"); 1639 1640 for (const auto *Attr : Attrs) { 1641 bool LateParsed = Attr->getValueAsBit("LateParsed"); 1642 1643 if (LateParsed) { 1644 std::vector<FlattenedSpelling> Spellings = GetFlattenedSpellings(*Attr); 1645 1646 // FIXME: Handle non-GNU attributes 1647 for (const auto &I : Spellings) { 1648 if (I.variety() != "GNU") 1649 continue; 1650 OS << ".Case(\"" << I.name() << "\", " << LateParsed << ")\n"; 1651 } 1652 } 1653 } 1654 OS << "#endif // CLANG_ATTR_LATE_PARSED_LIST\n\n"; 1655 } 1656 1657 static bool hasGNUorCXX11Spelling(const Record &Attribute) { 1658 std::vector<FlattenedSpelling> Spellings = GetFlattenedSpellings(Attribute); 1659 for (const auto &I : Spellings) { 1660 if (I.variety() == "GNU" || I.variety() == "CXX11") 1661 return true; 1662 } 1663 return false; 1664 } 1665 1666 namespace { 1667 1668 struct AttributeSubjectMatchRule { 1669 const Record *MetaSubject; 1670 const Record *Constraint; 1671 1672 AttributeSubjectMatchRule(const Record *MetaSubject, const Record *Constraint) 1673 : MetaSubject(MetaSubject), Constraint(Constraint) { 1674 assert(MetaSubject && "Missing subject"); 1675 } 1676 1677 bool isSubRule() const { return Constraint != nullptr; } 1678 1679 std::vector<Record *> getSubjects() const { 1680 return (Constraint ? Constraint : MetaSubject) 1681 ->getValueAsListOfDefs("Subjects"); 1682 } 1683 1684 std::vector<Record *> getLangOpts() const { 1685 if (Constraint) { 1686 // Lookup the options in the sub-rule first, in case the sub-rule 1687 // overrides the rules options. 1688 std::vector<Record *> Opts = Constraint->getValueAsListOfDefs("LangOpts"); 1689 if (!Opts.empty()) 1690 return Opts; 1691 } 1692 return MetaSubject->getValueAsListOfDefs("LangOpts"); 1693 } 1694 1695 // Abstract rules are used only for sub-rules 1696 bool isAbstractRule() const { return getSubjects().empty(); } 1697 1698 StringRef getName() const { 1699 return (Constraint ? Constraint : MetaSubject)->getValueAsString("Name"); 1700 } 1701 1702 bool isNegatedSubRule() const { 1703 assert(isSubRule() && "Not a sub-rule"); 1704 return Constraint->getValueAsBit("Negated"); 1705 } 1706 1707 std::string getSpelling() const { 1708 std::string Result = MetaSubject->getValueAsString("Name"); 1709 if (isSubRule()) { 1710 Result += '('; 1711 if (isNegatedSubRule()) 1712 Result += "unless("; 1713 Result += getName(); 1714 if (isNegatedSubRule()) 1715 Result += ')'; 1716 Result += ')'; 1717 } 1718 return Result; 1719 } 1720 1721 std::string getEnumValueName() const { 1722 SmallString<128> Result; 1723 Result += "SubjectMatchRule_"; 1724 Result += MetaSubject->getValueAsString("Name"); 1725 if (isSubRule()) { 1726 Result += "_"; 1727 if (isNegatedSubRule()) 1728 Result += "not_"; 1729 Result += Constraint->getValueAsString("Name"); 1730 } 1731 if (isAbstractRule()) 1732 Result += "_abstract"; 1733 return Result.str(); 1734 } 1735 1736 std::string getEnumValue() const { return "attr::" + getEnumValueName(); } 1737 1738 static const char *EnumName; 1739 }; 1740 1741 const char *AttributeSubjectMatchRule::EnumName = "attr::SubjectMatchRule"; 1742 1743 struct PragmaClangAttributeSupport { 1744 std::vector<AttributeSubjectMatchRule> Rules; 1745 1746 class RuleOrAggregateRuleSet { 1747 std::vector<AttributeSubjectMatchRule> Rules; 1748 bool IsRule; 1749 RuleOrAggregateRuleSet(ArrayRef<AttributeSubjectMatchRule> Rules, 1750 bool IsRule) 1751 : Rules(Rules), IsRule(IsRule) {} 1752 1753 public: 1754 bool isRule() const { return IsRule; } 1755 1756 const AttributeSubjectMatchRule &getRule() const { 1757 assert(IsRule && "not a rule!"); 1758 return Rules[0]; 1759 } 1760 1761 ArrayRef<AttributeSubjectMatchRule> getAggregateRuleSet() const { 1762 return Rules; 1763 } 1764 1765 static RuleOrAggregateRuleSet 1766 getRule(const AttributeSubjectMatchRule &Rule) { 1767 return RuleOrAggregateRuleSet(Rule, /*IsRule=*/true); 1768 } 1769 static RuleOrAggregateRuleSet 1770 getAggregateRuleSet(ArrayRef<AttributeSubjectMatchRule> Rules) { 1771 return RuleOrAggregateRuleSet(Rules, /*IsRule=*/false); 1772 } 1773 }; 1774 llvm::DenseMap<const Record *, RuleOrAggregateRuleSet> SubjectsToRules; 1775 1776 PragmaClangAttributeSupport(RecordKeeper &Records); 1777 1778 bool isAttributedSupported(const Record &Attribute); 1779 1780 void emitMatchRuleList(raw_ostream &OS); 1781 1782 std::string generateStrictConformsTo(const Record &Attr, raw_ostream &OS); 1783 1784 void generateParsingHelpers(raw_ostream &OS); 1785 }; 1786 1787 } // end anonymous namespace 1788 1789 static bool doesDeclDeriveFrom(const Record *D, const Record *Base) { 1790 const Record *CurrentBase = D->getValueAsDef("Base"); 1791 if (!CurrentBase) 1792 return false; 1793 if (CurrentBase == Base) 1794 return true; 1795 return doesDeclDeriveFrom(CurrentBase, Base); 1796 } 1797 1798 PragmaClangAttributeSupport::PragmaClangAttributeSupport( 1799 RecordKeeper &Records) { 1800 std::vector<Record *> MetaSubjects = 1801 Records.getAllDerivedDefinitions("AttrSubjectMatcherRule"); 1802 auto MapFromSubjectsToRules = [this](const Record *SubjectContainer, 1803 const Record *MetaSubject, 1804 const Record *Constraint) { 1805 Rules.emplace_back(MetaSubject, Constraint); 1806 std::vector<Record *> ApplicableSubjects = 1807 SubjectContainer->getValueAsListOfDefs("Subjects"); 1808 for (const auto *Subject : ApplicableSubjects) { 1809 bool Inserted = 1810 SubjectsToRules 1811 .try_emplace(Subject, RuleOrAggregateRuleSet::getRule( 1812 AttributeSubjectMatchRule(MetaSubject, 1813 Constraint))) 1814 .second; 1815 if (!Inserted) { 1816 PrintFatalError("Attribute subject match rules should not represent" 1817 "same attribute subjects."); 1818 } 1819 } 1820 }; 1821 for (const auto *MetaSubject : MetaSubjects) { 1822 MapFromSubjectsToRules(MetaSubject, MetaSubject, /*Constraints=*/nullptr); 1823 std::vector<Record *> Constraints = 1824 MetaSubject->getValueAsListOfDefs("Constraints"); 1825 for (const auto *Constraint : Constraints) 1826 MapFromSubjectsToRules(Constraint, MetaSubject, Constraint); 1827 } 1828 1829 std::vector<Record *> Aggregates = 1830 Records.getAllDerivedDefinitions("AttrSubjectMatcherAggregateRule"); 1831 std::vector<Record *> DeclNodes = Records.getAllDerivedDefinitions("DDecl"); 1832 for (const auto *Aggregate : Aggregates) { 1833 Record *SubjectDecl = Aggregate->getValueAsDef("Subject"); 1834 1835 // Gather sub-classes of the aggregate subject that act as attribute 1836 // subject rules. 1837 std::vector<AttributeSubjectMatchRule> Rules; 1838 for (const auto *D : DeclNodes) { 1839 if (doesDeclDeriveFrom(D, SubjectDecl)) { 1840 auto It = SubjectsToRules.find(D); 1841 if (It == SubjectsToRules.end()) 1842 continue; 1843 if (!It->second.isRule() || It->second.getRule().isSubRule()) 1844 continue; // Assume that the rule will be included as well. 1845 Rules.push_back(It->second.getRule()); 1846 } 1847 } 1848 1849 bool Inserted = 1850 SubjectsToRules 1851 .try_emplace(SubjectDecl, 1852 RuleOrAggregateRuleSet::getAggregateRuleSet(Rules)) 1853 .second; 1854 if (!Inserted) { 1855 PrintFatalError("Attribute subject match rules should not represent" 1856 "same attribute subjects."); 1857 } 1858 } 1859 } 1860 1861 static PragmaClangAttributeSupport & 1862 getPragmaAttributeSupport(RecordKeeper &Records) { 1863 static PragmaClangAttributeSupport Instance(Records); 1864 return Instance; 1865 } 1866 1867 void PragmaClangAttributeSupport::emitMatchRuleList(raw_ostream &OS) { 1868 OS << "#ifndef ATTR_MATCH_SUB_RULE\n"; 1869 OS << "#define ATTR_MATCH_SUB_RULE(Value, Spelling, IsAbstract, Parent, " 1870 "IsNegated) " 1871 << "ATTR_MATCH_RULE(Value, Spelling, IsAbstract)\n"; 1872 OS << "#endif\n"; 1873 for (const auto &Rule : Rules) { 1874 OS << (Rule.isSubRule() ? "ATTR_MATCH_SUB_RULE" : "ATTR_MATCH_RULE") << '('; 1875 OS << Rule.getEnumValueName() << ", \"" << Rule.getSpelling() << "\", " 1876 << Rule.isAbstractRule(); 1877 if (Rule.isSubRule()) 1878 OS << ", " 1879 << AttributeSubjectMatchRule(Rule.MetaSubject, nullptr).getEnumValue() 1880 << ", " << Rule.isNegatedSubRule(); 1881 OS << ")\n"; 1882 } 1883 OS << "#undef ATTR_MATCH_SUB_RULE\n"; 1884 } 1885 1886 bool PragmaClangAttributeSupport::isAttributedSupported( 1887 const Record &Attribute) { 1888 // If the attribute explicitly specified whether to support #pragma clang 1889 // attribute, use that setting. 1890 bool Unset; 1891 bool SpecifiedResult = 1892 Attribute.getValueAsBitOrUnset("PragmaAttributeSupport", Unset); 1893 if (!Unset) 1894 return SpecifiedResult; 1895 1896 // Opt-out rules: 1897 // An attribute requires delayed parsing (LateParsed is on) 1898 if (Attribute.getValueAsBit("LateParsed")) 1899 return false; 1900 // An attribute has no GNU/CXX11 spelling 1901 if (!hasGNUorCXX11Spelling(Attribute)) 1902 return false; 1903 // An attribute subject list has a subject that isn't covered by one of the 1904 // subject match rules or has no subjects at all. 1905 if (Attribute.isValueUnset("Subjects")) 1906 return false; 1907 const Record *SubjectObj = Attribute.getValueAsDef("Subjects"); 1908 std::vector<Record *> Subjects = SubjectObj->getValueAsListOfDefs("Subjects"); 1909 if (Subjects.empty()) 1910 return false; 1911 for (const auto *Subject : Subjects) { 1912 if (SubjectsToRules.find(Subject) == SubjectsToRules.end()) 1913 return false; 1914 } 1915 return true; 1916 } 1917 1918 std::string 1919 PragmaClangAttributeSupport::generateStrictConformsTo(const Record &Attr, 1920 raw_ostream &OS) { 1921 if (!isAttributedSupported(Attr)) 1922 return "nullptr"; 1923 // Generate a function that constructs a set of matching rules that describe 1924 // to which declarations the attribute should apply to. 1925 std::string FnName = "matchRulesFor" + Attr.getName().str(); 1926 OS << "static void " << FnName << "(llvm::SmallVectorImpl<std::pair<" 1927 << AttributeSubjectMatchRule::EnumName 1928 << ", bool>> &MatchRules, const LangOptions &LangOpts) {\n"; 1929 if (Attr.isValueUnset("Subjects")) { 1930 OS << "}\n\n"; 1931 return FnName; 1932 } 1933 const Record *SubjectObj = Attr.getValueAsDef("Subjects"); 1934 std::vector<Record *> Subjects = SubjectObj->getValueAsListOfDefs("Subjects"); 1935 for (const auto *Subject : Subjects) { 1936 auto It = SubjectsToRules.find(Subject); 1937 assert(It != SubjectsToRules.end() && 1938 "This attribute is unsupported by #pragma clang attribute"); 1939 for (const auto &Rule : It->getSecond().getAggregateRuleSet()) { 1940 // The rule might be language specific, so only subtract it from the given 1941 // rules if the specific language options are specified. 1942 std::vector<Record *> LangOpts = Rule.getLangOpts(); 1943 OS << " MatchRules.push_back(std::make_pair(" << Rule.getEnumValue() 1944 << ", /*IsSupported=*/"; 1945 if (!LangOpts.empty()) { 1946 for (auto I = LangOpts.begin(), E = LangOpts.end(); I != E; ++I) { 1947 const StringRef Part = (*I)->getValueAsString("Name"); 1948 if ((*I)->getValueAsBit("Negated")) 1949 OS << "!"; 1950 OS << "LangOpts." << Part; 1951 if (I + 1 != E) 1952 OS << " || "; 1953 } 1954 } else 1955 OS << "true"; 1956 OS << "));\n"; 1957 } 1958 } 1959 OS << "}\n\n"; 1960 return FnName; 1961 } 1962 1963 void PragmaClangAttributeSupport::generateParsingHelpers(raw_ostream &OS) { 1964 // Generate routines that check the names of sub-rules. 1965 OS << "Optional<attr::SubjectMatchRule> " 1966 "defaultIsAttributeSubjectMatchSubRuleFor(StringRef, bool) {\n"; 1967 OS << " return None;\n"; 1968 OS << "}\n\n"; 1969 1970 std::map<const Record *, std::vector<AttributeSubjectMatchRule>> 1971 SubMatchRules; 1972 for (const auto &Rule : Rules) { 1973 if (!Rule.isSubRule()) 1974 continue; 1975 SubMatchRules[Rule.MetaSubject].push_back(Rule); 1976 } 1977 1978 for (const auto &SubMatchRule : SubMatchRules) { 1979 OS << "Optional<attr::SubjectMatchRule> isAttributeSubjectMatchSubRuleFor_" 1980 << SubMatchRule.first->getValueAsString("Name") 1981 << "(StringRef Name, bool IsUnless) {\n"; 1982 OS << " if (IsUnless)\n"; 1983 OS << " return " 1984 "llvm::StringSwitch<Optional<attr::SubjectMatchRule>>(Name).\n"; 1985 for (const auto &Rule : SubMatchRule.second) { 1986 if (Rule.isNegatedSubRule()) 1987 OS << " Case(\"" << Rule.getName() << "\", " << Rule.getEnumValue() 1988 << ").\n"; 1989 } 1990 OS << " Default(None);\n"; 1991 OS << " return " 1992 "llvm::StringSwitch<Optional<attr::SubjectMatchRule>>(Name).\n"; 1993 for (const auto &Rule : SubMatchRule.second) { 1994 if (!Rule.isNegatedSubRule()) 1995 OS << " Case(\"" << Rule.getName() << "\", " << Rule.getEnumValue() 1996 << ").\n"; 1997 } 1998 OS << " Default(None);\n"; 1999 OS << "}\n\n"; 2000 } 2001 2002 // Generate the function that checks for the top-level rules. 2003 OS << "std::pair<Optional<attr::SubjectMatchRule>, " 2004 "Optional<attr::SubjectMatchRule> (*)(StringRef, " 2005 "bool)> isAttributeSubjectMatchRule(StringRef Name) {\n"; 2006 OS << " return " 2007 "llvm::StringSwitch<std::pair<Optional<attr::SubjectMatchRule>, " 2008 "Optional<attr::SubjectMatchRule> (*) (StringRef, " 2009 "bool)>>(Name).\n"; 2010 for (const auto &Rule : Rules) { 2011 if (Rule.isSubRule()) 2012 continue; 2013 std::string SubRuleFunction; 2014 if (SubMatchRules.count(Rule.MetaSubject)) 2015 SubRuleFunction = 2016 ("isAttributeSubjectMatchSubRuleFor_" + Rule.getName()).str(); 2017 else 2018 SubRuleFunction = "defaultIsAttributeSubjectMatchSubRuleFor"; 2019 OS << " Case(\"" << Rule.getName() << "\", std::make_pair(" 2020 << Rule.getEnumValue() << ", " << SubRuleFunction << ")).\n"; 2021 } 2022 OS << " Default(std::make_pair(None, " 2023 "defaultIsAttributeSubjectMatchSubRuleFor));\n"; 2024 OS << "}\n\n"; 2025 2026 // Generate the function that checks for the submatch rules. 2027 OS << "const char *validAttributeSubjectMatchSubRules(" 2028 << AttributeSubjectMatchRule::EnumName << " Rule) {\n"; 2029 OS << " switch (Rule) {\n"; 2030 for (const auto &SubMatchRule : SubMatchRules) { 2031 OS << " case " 2032 << AttributeSubjectMatchRule(SubMatchRule.first, nullptr).getEnumValue() 2033 << ":\n"; 2034 OS << " return \"'"; 2035 bool IsFirst = true; 2036 for (const auto &Rule : SubMatchRule.second) { 2037 if (!IsFirst) 2038 OS << ", '"; 2039 IsFirst = false; 2040 if (Rule.isNegatedSubRule()) 2041 OS << "unless("; 2042 OS << Rule.getName(); 2043 if (Rule.isNegatedSubRule()) 2044 OS << ')'; 2045 OS << "'"; 2046 } 2047 OS << "\";\n"; 2048 } 2049 OS << " default: return nullptr;\n"; 2050 OS << " }\n"; 2051 OS << "}\n\n"; 2052 } 2053 2054 template <typename Fn> 2055 static void forEachUniqueSpelling(const Record &Attr, Fn &&F) { 2056 std::vector<FlattenedSpelling> Spellings = GetFlattenedSpellings(Attr); 2057 SmallDenseSet<StringRef, 8> Seen; 2058 for (const FlattenedSpelling &S : Spellings) { 2059 if (Seen.insert(S.name()).second) 2060 F(S); 2061 } 2062 } 2063 2064 /// Emits the first-argument-is-type property for attributes. 2065 static void emitClangAttrTypeArgList(RecordKeeper &Records, raw_ostream &OS) { 2066 OS << "#if defined(CLANG_ATTR_TYPE_ARG_LIST)\n"; 2067 std::vector<Record *> Attrs = Records.getAllDerivedDefinitions("Attr"); 2068 2069 for (const auto *Attr : Attrs) { 2070 // Determine whether the first argument is a type. 2071 std::vector<Record *> Args = Attr->getValueAsListOfDefs("Args"); 2072 if (Args.empty()) 2073 continue; 2074 2075 if (Args[0]->getSuperClasses().back().first->getName() != "TypeArgument") 2076 continue; 2077 2078 // All these spellings take a single type argument. 2079 forEachUniqueSpelling(*Attr, [&](const FlattenedSpelling &S) { 2080 OS << ".Case(\"" << S.name() << "\", " << "true" << ")\n"; 2081 }); 2082 } 2083 OS << "#endif // CLANG_ATTR_TYPE_ARG_LIST\n\n"; 2084 } 2085 2086 /// Emits the parse-arguments-in-unevaluated-context property for 2087 /// attributes. 2088 static void emitClangAttrArgContextList(RecordKeeper &Records, raw_ostream &OS) { 2089 OS << "#if defined(CLANG_ATTR_ARG_CONTEXT_LIST)\n"; 2090 ParsedAttrMap Attrs = getParsedAttrList(Records); 2091 for (const auto &I : Attrs) { 2092 const Record &Attr = *I.second; 2093 2094 if (!Attr.getValueAsBit("ParseArgumentsAsUnevaluated")) 2095 continue; 2096 2097 // All these spellings take are parsed unevaluated. 2098 forEachUniqueSpelling(Attr, [&](const FlattenedSpelling &S) { 2099 OS << ".Case(\"" << S.name() << "\", " << "true" << ")\n"; 2100 }); 2101 } 2102 OS << "#endif // CLANG_ATTR_ARG_CONTEXT_LIST\n\n"; 2103 } 2104 2105 static bool isIdentifierArgument(Record *Arg) { 2106 return !Arg->getSuperClasses().empty() && 2107 llvm::StringSwitch<bool>(Arg->getSuperClasses().back().first->getName()) 2108 .Case("IdentifierArgument", true) 2109 .Case("EnumArgument", true) 2110 .Case("VariadicEnumArgument", true) 2111 .Default(false); 2112 } 2113 2114 static bool isVariadicIdentifierArgument(Record *Arg) { 2115 return !Arg->getSuperClasses().empty() && 2116 llvm::StringSwitch<bool>( 2117 Arg->getSuperClasses().back().first->getName()) 2118 .Case("VariadicIdentifierArgument", true) 2119 .Default(false); 2120 } 2121 2122 static void emitClangAttrVariadicIdentifierArgList(RecordKeeper &Records, 2123 raw_ostream &OS) { 2124 OS << "#if defined(CLANG_ATTR_VARIADIC_IDENTIFIER_ARG_LIST)\n"; 2125 std::vector<Record *> Attrs = Records.getAllDerivedDefinitions("Attr"); 2126 for (const auto *A : Attrs) { 2127 // Determine whether the first argument is a variadic identifier. 2128 std::vector<Record *> Args = A->getValueAsListOfDefs("Args"); 2129 if (Args.empty() || !isVariadicIdentifierArgument(Args[0])) 2130 continue; 2131 2132 // All these spellings take an identifier argument. 2133 forEachUniqueSpelling(*A, [&](const FlattenedSpelling &S) { 2134 OS << ".Case(\"" << S.name() << "\", " 2135 << "true" 2136 << ")\n"; 2137 }); 2138 } 2139 OS << "#endif // CLANG_ATTR_VARIADIC_IDENTIFIER_ARG_LIST\n\n"; 2140 } 2141 2142 // Emits the first-argument-is-identifier property for attributes. 2143 static void emitClangAttrIdentifierArgList(RecordKeeper &Records, raw_ostream &OS) { 2144 OS << "#if defined(CLANG_ATTR_IDENTIFIER_ARG_LIST)\n"; 2145 std::vector<Record*> Attrs = Records.getAllDerivedDefinitions("Attr"); 2146 2147 for (const auto *Attr : Attrs) { 2148 // Determine whether the first argument is an identifier. 2149 std::vector<Record *> Args = Attr->getValueAsListOfDefs("Args"); 2150 if (Args.empty() || !isIdentifierArgument(Args[0])) 2151 continue; 2152 2153 // All these spellings take an identifier argument. 2154 forEachUniqueSpelling(*Attr, [&](const FlattenedSpelling &S) { 2155 OS << ".Case(\"" << S.name() << "\", " << "true" << ")\n"; 2156 }); 2157 } 2158 OS << "#endif // CLANG_ATTR_IDENTIFIER_ARG_LIST\n\n"; 2159 } 2160 2161 namespace clang { 2162 2163 // Emits the class definitions for attributes. 2164 void EmitClangAttrClass(RecordKeeper &Records, raw_ostream &OS) { 2165 emitSourceFileHeader("Attribute classes' definitions", OS); 2166 2167 OS << "#ifndef LLVM_CLANG_ATTR_CLASSES_INC\n"; 2168 OS << "#define LLVM_CLANG_ATTR_CLASSES_INC\n\n"; 2169 2170 std::vector<Record*> Attrs = Records.getAllDerivedDefinitions("Attr"); 2171 2172 for (const auto *Attr : Attrs) { 2173 const Record &R = *Attr; 2174 2175 // FIXME: Currently, documentation is generated as-needed due to the fact 2176 // that there is no way to allow a generated project "reach into" the docs 2177 // directory (for instance, it may be an out-of-tree build). However, we want 2178 // to ensure that every attribute has a Documentation field, and produce an 2179 // error if it has been neglected. Otherwise, the on-demand generation which 2180 // happens server-side will fail. This code is ensuring that functionality, 2181 // even though this Emitter doesn't technically need the documentation. 2182 // When attribute documentation can be generated as part of the build 2183 // itself, this code can be removed. 2184 (void)R.getValueAsListOfDefs("Documentation"); 2185 2186 if (!R.getValueAsBit("ASTNode")) 2187 continue; 2188 2189 ArrayRef<std::pair<Record *, SMRange>> Supers = R.getSuperClasses(); 2190 assert(!Supers.empty() && "Forgot to specify a superclass for the attr"); 2191 std::string SuperName; 2192 bool Inheritable = false; 2193 for (const auto &Super : llvm::reverse(Supers)) { 2194 const Record *R = Super.first; 2195 if (R->getName() != "TargetSpecificAttr" && 2196 R->getName() != "DeclOrTypeAttr" && SuperName.empty()) 2197 SuperName = R->getName(); 2198 if (R->getName() == "InheritableAttr") 2199 Inheritable = true; 2200 } 2201 2202 OS << "class " << R.getName() << "Attr : public " << SuperName << " {\n"; 2203 2204 std::vector<Record*> ArgRecords = R.getValueAsListOfDefs("Args"); 2205 std::vector<std::unique_ptr<Argument>> Args; 2206 Args.reserve(ArgRecords.size()); 2207 2208 bool HasOptArg = false; 2209 bool HasFakeArg = false; 2210 for (const auto *ArgRecord : ArgRecords) { 2211 Args.emplace_back(createArgument(*ArgRecord, R.getName())); 2212 Args.back()->writeDeclarations(OS); 2213 OS << "\n\n"; 2214 2215 // For these purposes, fake takes priority over optional. 2216 if (Args.back()->isFake()) { 2217 HasFakeArg = true; 2218 } else if (Args.back()->isOptional()) { 2219 HasOptArg = true; 2220 } 2221 } 2222 2223 OS << "public:\n"; 2224 2225 std::vector<FlattenedSpelling> Spellings = GetFlattenedSpellings(R); 2226 2227 // If there are zero or one spellings, all spelling-related functionality 2228 // can be elided. If all of the spellings share the same name, the spelling 2229 // functionality can also be elided. 2230 bool ElideSpelling = (Spellings.size() <= 1) || 2231 SpellingNamesAreCommon(Spellings); 2232 2233 // This maps spelling index values to semantic Spelling enumerants. 2234 SemanticSpellingMap SemanticToSyntacticMap; 2235 2236 if (!ElideSpelling) 2237 OS << CreateSemanticSpellings(Spellings, SemanticToSyntacticMap); 2238 2239 // Emit CreateImplicit factory methods. 2240 auto emitCreateImplicit = [&](bool emitFake) { 2241 OS << " static " << R.getName() << "Attr *CreateImplicit("; 2242 OS << "ASTContext &Ctx"; 2243 if (!ElideSpelling) 2244 OS << ", Spelling S"; 2245 for (auto const &ai : Args) { 2246 if (ai->isFake() && !emitFake) continue; 2247 OS << ", "; 2248 ai->writeCtorParameters(OS); 2249 } 2250 OS << ", SourceRange Loc = SourceRange()"; 2251 OS << ") {\n"; 2252 OS << " auto *A = new (Ctx) " << R.getName(); 2253 OS << "Attr(Loc, Ctx, "; 2254 for (auto const &ai : Args) { 2255 if (ai->isFake() && !emitFake) continue; 2256 ai->writeImplicitCtorArgs(OS); 2257 OS << ", "; 2258 } 2259 OS << (ElideSpelling ? "0" : "S") << ");\n"; 2260 OS << " A->setImplicit(true);\n"; 2261 OS << " return A;\n }\n\n"; 2262 }; 2263 2264 // Emit a CreateImplicit that takes all the arguments. 2265 emitCreateImplicit(true); 2266 2267 // Emit a CreateImplicit that takes all the non-fake arguments. 2268 if (HasFakeArg) { 2269 emitCreateImplicit(false); 2270 } 2271 2272 // Emit constructors. 2273 auto emitCtor = [&](bool emitOpt, bool emitFake) { 2274 auto shouldEmitArg = [=](const std::unique_ptr<Argument> &arg) { 2275 if (arg->isFake()) return emitFake; 2276 if (arg->isOptional()) return emitOpt; 2277 return true; 2278 }; 2279 2280 OS << " " << R.getName() << "Attr(SourceRange R, ASTContext &Ctx\n"; 2281 for (auto const &ai : Args) { 2282 if (!shouldEmitArg(ai)) continue; 2283 OS << " , "; 2284 ai->writeCtorParameters(OS); 2285 OS << "\n"; 2286 } 2287 2288 OS << " , "; 2289 OS << "unsigned SI\n"; 2290 2291 OS << " )\n"; 2292 OS << " : " << SuperName << "(attr::" << R.getName() << ", R, SI, " 2293 << ( R.getValueAsBit("LateParsed") ? "true" : "false" ); 2294 if (Inheritable) { 2295 OS << ", " 2296 << (R.getValueAsBit("InheritEvenIfAlreadyPresent") ? "true" 2297 : "false"); 2298 } 2299 OS << ")\n"; 2300 2301 for (auto const &ai : Args) { 2302 OS << " , "; 2303 if (!shouldEmitArg(ai)) { 2304 ai->writeCtorDefaultInitializers(OS); 2305 } else { 2306 ai->writeCtorInitializers(OS); 2307 } 2308 OS << "\n"; 2309 } 2310 2311 OS << " {\n"; 2312 2313 for (auto const &ai : Args) { 2314 if (!shouldEmitArg(ai)) continue; 2315 ai->writeCtorBody(OS); 2316 } 2317 OS << " }\n\n"; 2318 }; 2319 2320 // Emit a constructor that includes all the arguments. 2321 // This is necessary for cloning. 2322 emitCtor(true, true); 2323 2324 // Emit a constructor that takes all the non-fake arguments. 2325 if (HasFakeArg) { 2326 emitCtor(true, false); 2327 } 2328 2329 // Emit a constructor that takes all the non-fake, non-optional arguments. 2330 if (HasOptArg) { 2331 emitCtor(false, false); 2332 } 2333 2334 OS << " " << R.getName() << "Attr *clone(ASTContext &C) const;\n"; 2335 OS << " void printPretty(raw_ostream &OS,\n" 2336 << " const PrintingPolicy &Policy) const;\n"; 2337 OS << " const char *getSpelling() const;\n"; 2338 2339 if (!ElideSpelling) { 2340 assert(!SemanticToSyntacticMap.empty() && "Empty semantic mapping list"); 2341 OS << " Spelling getSemanticSpelling() const {\n"; 2342 WriteSemanticSpellingSwitch("SpellingListIndex", SemanticToSyntacticMap, 2343 OS); 2344 OS << " }\n"; 2345 } 2346 2347 writeAttrAccessorDefinition(R, OS); 2348 2349 for (auto const &ai : Args) { 2350 ai->writeAccessors(OS); 2351 OS << "\n\n"; 2352 2353 // Don't write conversion routines for fake arguments. 2354 if (ai->isFake()) continue; 2355 2356 if (ai->isEnumArg()) 2357 static_cast<const EnumArgument *>(ai.get())->writeConversion(OS); 2358 else if (ai->isVariadicEnumArg()) 2359 static_cast<const VariadicEnumArgument *>(ai.get()) 2360 ->writeConversion(OS); 2361 } 2362 2363 OS << R.getValueAsString("AdditionalMembers"); 2364 OS << "\n\n"; 2365 2366 OS << " static bool classof(const Attr *A) { return A->getKind() == " 2367 << "attr::" << R.getName() << "; }\n"; 2368 2369 OS << "};\n\n"; 2370 } 2371 2372 OS << "#endif // LLVM_CLANG_ATTR_CLASSES_INC\n"; 2373 } 2374 2375 // Emits the class method definitions for attributes. 2376 void EmitClangAttrImpl(RecordKeeper &Records, raw_ostream &OS) { 2377 emitSourceFileHeader("Attribute classes' member function definitions", OS); 2378 2379 std::vector<Record*> Attrs = Records.getAllDerivedDefinitions("Attr"); 2380 2381 for (auto *Attr : Attrs) { 2382 Record &R = *Attr; 2383 2384 if (!R.getValueAsBit("ASTNode")) 2385 continue; 2386 2387 std::vector<Record*> ArgRecords = R.getValueAsListOfDefs("Args"); 2388 std::vector<std::unique_ptr<Argument>> Args; 2389 for (const auto *Arg : ArgRecords) 2390 Args.emplace_back(createArgument(*Arg, R.getName())); 2391 2392 for (auto const &ai : Args) 2393 ai->writeAccessorDefinitions(OS); 2394 2395 OS << R.getName() << "Attr *" << R.getName() 2396 << "Attr::clone(ASTContext &C) const {\n"; 2397 OS << " auto *A = new (C) " << R.getName() << "Attr(getLocation(), C"; 2398 for (auto const &ai : Args) { 2399 OS << ", "; 2400 ai->writeCloneArgs(OS); 2401 } 2402 OS << ", getSpellingListIndex());\n"; 2403 OS << " A->Inherited = Inherited;\n"; 2404 OS << " A->IsPackExpansion = IsPackExpansion;\n"; 2405 OS << " A->Implicit = Implicit;\n"; 2406 OS << " return A;\n}\n\n"; 2407 2408 writePrettyPrintFunction(R, Args, OS); 2409 writeGetSpellingFunction(R, OS); 2410 } 2411 2412 // Instead of relying on virtual dispatch we just create a huge dispatch 2413 // switch. This is both smaller and faster than virtual functions. 2414 auto EmitFunc = [&](const char *Method) { 2415 OS << " switch (getKind()) {\n"; 2416 for (const auto *Attr : Attrs) { 2417 const Record &R = *Attr; 2418 if (!R.getValueAsBit("ASTNode")) 2419 continue; 2420 2421 OS << " case attr::" << R.getName() << ":\n"; 2422 OS << " return cast<" << R.getName() << "Attr>(this)->" << Method 2423 << ";\n"; 2424 } 2425 OS << " }\n"; 2426 OS << " llvm_unreachable(\"Unexpected attribute kind!\");\n"; 2427 OS << "}\n\n"; 2428 }; 2429 2430 OS << "const char *Attr::getSpelling() const {\n"; 2431 EmitFunc("getSpelling()"); 2432 2433 OS << "Attr *Attr::clone(ASTContext &C) const {\n"; 2434 EmitFunc("clone(C)"); 2435 2436 OS << "void Attr::printPretty(raw_ostream &OS, " 2437 "const PrintingPolicy &Policy) const {\n"; 2438 EmitFunc("printPretty(OS, Policy)"); 2439 } 2440 2441 } // end namespace clang 2442 2443 static void emitAttrList(raw_ostream &OS, StringRef Class, 2444 const std::vector<Record*> &AttrList) { 2445 for (auto Cur : AttrList) { 2446 OS << Class << "(" << Cur->getName() << ")\n"; 2447 } 2448 } 2449 2450 // Determines if an attribute has a Pragma spelling. 2451 static bool AttrHasPragmaSpelling(const Record *R) { 2452 std::vector<FlattenedSpelling> Spellings = GetFlattenedSpellings(*R); 2453 return llvm::find_if(Spellings, [](const FlattenedSpelling &S) { 2454 return S.variety() == "Pragma"; 2455 }) != Spellings.end(); 2456 } 2457 2458 namespace { 2459 2460 struct AttrClassDescriptor { 2461 const char * const MacroName; 2462 const char * const TableGenName; 2463 }; 2464 2465 } // end anonymous namespace 2466 2467 static const AttrClassDescriptor AttrClassDescriptors[] = { 2468 { "ATTR", "Attr" }, 2469 { "TYPE_ATTR", "TypeAttr" }, 2470 { "STMT_ATTR", "StmtAttr" }, 2471 { "INHERITABLE_ATTR", "InheritableAttr" }, 2472 { "DECL_OR_TYPE_ATTR", "DeclOrTypeAttr" }, 2473 { "INHERITABLE_PARAM_ATTR", "InheritableParamAttr" }, 2474 { "PARAMETER_ABI_ATTR", "ParameterABIAttr" } 2475 }; 2476 2477 static void emitDefaultDefine(raw_ostream &OS, StringRef name, 2478 const char *superName) { 2479 OS << "#ifndef " << name << "\n"; 2480 OS << "#define " << name << "(NAME) "; 2481 if (superName) OS << superName << "(NAME)"; 2482 OS << "\n#endif\n\n"; 2483 } 2484 2485 namespace { 2486 2487 /// A class of attributes. 2488 struct AttrClass { 2489 const AttrClassDescriptor &Descriptor; 2490 Record *TheRecord; 2491 AttrClass *SuperClass = nullptr; 2492 std::vector<AttrClass*> SubClasses; 2493 std::vector<Record*> Attrs; 2494 2495 AttrClass(const AttrClassDescriptor &Descriptor, Record *R) 2496 : Descriptor(Descriptor), TheRecord(R) {} 2497 2498 void emitDefaultDefines(raw_ostream &OS) const { 2499 // Default the macro unless this is a root class (i.e. Attr). 2500 if (SuperClass) { 2501 emitDefaultDefine(OS, Descriptor.MacroName, 2502 SuperClass->Descriptor.MacroName); 2503 } 2504 } 2505 2506 void emitUndefs(raw_ostream &OS) const { 2507 OS << "#undef " << Descriptor.MacroName << "\n"; 2508 } 2509 2510 void emitAttrList(raw_ostream &OS) const { 2511 for (auto SubClass : SubClasses) { 2512 SubClass->emitAttrList(OS); 2513 } 2514 2515 ::emitAttrList(OS, Descriptor.MacroName, Attrs); 2516 } 2517 2518 void classifyAttrOnRoot(Record *Attr) { 2519 bool result = classifyAttr(Attr); 2520 assert(result && "failed to classify on root"); (void) result; 2521 } 2522 2523 void emitAttrRange(raw_ostream &OS) const { 2524 OS << "ATTR_RANGE(" << Descriptor.TableGenName 2525 << ", " << getFirstAttr()->getName() 2526 << ", " << getLastAttr()->getName() << ")\n"; 2527 } 2528 2529 private: 2530 bool classifyAttr(Record *Attr) { 2531 // Check all the subclasses. 2532 for (auto SubClass : SubClasses) { 2533 if (SubClass->classifyAttr(Attr)) 2534 return true; 2535 } 2536 2537 // It's not more specific than this class, but it might still belong here. 2538 if (Attr->isSubClassOf(TheRecord)) { 2539 Attrs.push_back(Attr); 2540 return true; 2541 } 2542 2543 return false; 2544 } 2545 2546 Record *getFirstAttr() const { 2547 if (!SubClasses.empty()) 2548 return SubClasses.front()->getFirstAttr(); 2549 return Attrs.front(); 2550 } 2551 2552 Record *getLastAttr() const { 2553 if (!Attrs.empty()) 2554 return Attrs.back(); 2555 return SubClasses.back()->getLastAttr(); 2556 } 2557 }; 2558 2559 /// The entire hierarchy of attribute classes. 2560 class AttrClassHierarchy { 2561 std::vector<std::unique_ptr<AttrClass>> Classes; 2562 2563 public: 2564 AttrClassHierarchy(RecordKeeper &Records) { 2565 // Find records for all the classes. 2566 for (auto &Descriptor : AttrClassDescriptors) { 2567 Record *ClassRecord = Records.getClass(Descriptor.TableGenName); 2568 AttrClass *Class = new AttrClass(Descriptor, ClassRecord); 2569 Classes.emplace_back(Class); 2570 } 2571 2572 // Link up the hierarchy. 2573 for (auto &Class : Classes) { 2574 if (AttrClass *SuperClass = findSuperClass(Class->TheRecord)) { 2575 Class->SuperClass = SuperClass; 2576 SuperClass->SubClasses.push_back(Class.get()); 2577 } 2578 } 2579 2580 #ifndef NDEBUG 2581 for (auto i = Classes.begin(), e = Classes.end(); i != e; ++i) { 2582 assert((i == Classes.begin()) == ((*i)->SuperClass == nullptr) && 2583 "only the first class should be a root class!"); 2584 } 2585 #endif 2586 } 2587 2588 void emitDefaultDefines(raw_ostream &OS) const { 2589 for (auto &Class : Classes) { 2590 Class->emitDefaultDefines(OS); 2591 } 2592 } 2593 2594 void emitUndefs(raw_ostream &OS) const { 2595 for (auto &Class : Classes) { 2596 Class->emitUndefs(OS); 2597 } 2598 } 2599 2600 void emitAttrLists(raw_ostream &OS) const { 2601 // Just start from the root class. 2602 Classes[0]->emitAttrList(OS); 2603 } 2604 2605 void emitAttrRanges(raw_ostream &OS) const { 2606 for (auto &Class : Classes) 2607 Class->emitAttrRange(OS); 2608 } 2609 2610 void classifyAttr(Record *Attr) { 2611 // Add the attribute to the root class. 2612 Classes[0]->classifyAttrOnRoot(Attr); 2613 } 2614 2615 private: 2616 AttrClass *findClassByRecord(Record *R) const { 2617 for (auto &Class : Classes) { 2618 if (Class->TheRecord == R) 2619 return Class.get(); 2620 } 2621 return nullptr; 2622 } 2623 2624 AttrClass *findSuperClass(Record *R) const { 2625 // TableGen flattens the superclass list, so we just need to walk it 2626 // in reverse. 2627 auto SuperClasses = R->getSuperClasses(); 2628 for (signed i = 0, e = SuperClasses.size(); i != e; ++i) { 2629 auto SuperClass = findClassByRecord(SuperClasses[e - i - 1].first); 2630 if (SuperClass) return SuperClass; 2631 } 2632 return nullptr; 2633 } 2634 }; 2635 2636 } // end anonymous namespace 2637 2638 namespace clang { 2639 2640 // Emits the enumeration list for attributes. 2641 void EmitClangAttrList(RecordKeeper &Records, raw_ostream &OS) { 2642 emitSourceFileHeader("List of all attributes that Clang recognizes", OS); 2643 2644 AttrClassHierarchy Hierarchy(Records); 2645 2646 // Add defaulting macro definitions. 2647 Hierarchy.emitDefaultDefines(OS); 2648 emitDefaultDefine(OS, "PRAGMA_SPELLING_ATTR", nullptr); 2649 2650 std::vector<Record *> Attrs = Records.getAllDerivedDefinitions("Attr"); 2651 std::vector<Record *> PragmaAttrs; 2652 for (auto *Attr : Attrs) { 2653 if (!Attr->getValueAsBit("ASTNode")) 2654 continue; 2655 2656 // Add the attribute to the ad-hoc groups. 2657 if (AttrHasPragmaSpelling(Attr)) 2658 PragmaAttrs.push_back(Attr); 2659 2660 // Place it in the hierarchy. 2661 Hierarchy.classifyAttr(Attr); 2662 } 2663 2664 // Emit the main attribute list. 2665 Hierarchy.emitAttrLists(OS); 2666 2667 // Emit the ad hoc groups. 2668 emitAttrList(OS, "PRAGMA_SPELLING_ATTR", PragmaAttrs); 2669 2670 // Emit the attribute ranges. 2671 OS << "#ifdef ATTR_RANGE\n"; 2672 Hierarchy.emitAttrRanges(OS); 2673 OS << "#undef ATTR_RANGE\n"; 2674 OS << "#endif\n"; 2675 2676 Hierarchy.emitUndefs(OS); 2677 OS << "#undef PRAGMA_SPELLING_ATTR\n"; 2678 } 2679 2680 // Emits the enumeration list for attributes. 2681 void EmitClangAttrSubjectMatchRuleList(RecordKeeper &Records, raw_ostream &OS) { 2682 emitSourceFileHeader( 2683 "List of all attribute subject matching rules that Clang recognizes", OS); 2684 PragmaClangAttributeSupport &PragmaAttributeSupport = 2685 getPragmaAttributeSupport(Records); 2686 emitDefaultDefine(OS, "ATTR_MATCH_RULE", nullptr); 2687 PragmaAttributeSupport.emitMatchRuleList(OS); 2688 OS << "#undef ATTR_MATCH_RULE\n"; 2689 } 2690 2691 // Emits the code to read an attribute from a precompiled header. 2692 void EmitClangAttrPCHRead(RecordKeeper &Records, raw_ostream &OS) { 2693 emitSourceFileHeader("Attribute deserialization code", OS); 2694 2695 Record *InhClass = Records.getClass("InheritableAttr"); 2696 std::vector<Record*> Attrs = Records.getAllDerivedDefinitions("Attr"), 2697 ArgRecords; 2698 std::vector<std::unique_ptr<Argument>> Args; 2699 2700 OS << " switch (Kind) {\n"; 2701 for (const auto *Attr : Attrs) { 2702 const Record &R = *Attr; 2703 if (!R.getValueAsBit("ASTNode")) 2704 continue; 2705 2706 OS << " case attr::" << R.getName() << ": {\n"; 2707 if (R.isSubClassOf(InhClass)) 2708 OS << " bool isInherited = Record.readInt();\n"; 2709 OS << " bool isImplicit = Record.readInt();\n"; 2710 OS << " unsigned Spelling = Record.readInt();\n"; 2711 ArgRecords = R.getValueAsListOfDefs("Args"); 2712 Args.clear(); 2713 for (const auto *Arg : ArgRecords) { 2714 Args.emplace_back(createArgument(*Arg, R.getName())); 2715 Args.back()->writePCHReadDecls(OS); 2716 } 2717 OS << " New = new (Context) " << R.getName() << "Attr(Range, Context"; 2718 for (auto const &ri : Args) { 2719 OS << ", "; 2720 ri->writePCHReadArgs(OS); 2721 } 2722 OS << ", Spelling);\n"; 2723 if (R.isSubClassOf(InhClass)) 2724 OS << " cast<InheritableAttr>(New)->setInherited(isInherited);\n"; 2725 OS << " New->setImplicit(isImplicit);\n"; 2726 OS << " break;\n"; 2727 OS << " }\n"; 2728 } 2729 OS << " }\n"; 2730 } 2731 2732 // Emits the code to write an attribute to a precompiled header. 2733 void EmitClangAttrPCHWrite(RecordKeeper &Records, raw_ostream &OS) { 2734 emitSourceFileHeader("Attribute serialization code", OS); 2735 2736 Record *InhClass = Records.getClass("InheritableAttr"); 2737 std::vector<Record*> Attrs = Records.getAllDerivedDefinitions("Attr"), Args; 2738 2739 OS << " switch (A->getKind()) {\n"; 2740 for (const auto *Attr : Attrs) { 2741 const Record &R = *Attr; 2742 if (!R.getValueAsBit("ASTNode")) 2743 continue; 2744 OS << " case attr::" << R.getName() << ": {\n"; 2745 Args = R.getValueAsListOfDefs("Args"); 2746 if (R.isSubClassOf(InhClass) || !Args.empty()) 2747 OS << " const auto *SA = cast<" << R.getName() 2748 << "Attr>(A);\n"; 2749 if (R.isSubClassOf(InhClass)) 2750 OS << " Record.push_back(SA->isInherited());\n"; 2751 OS << " Record.push_back(A->isImplicit());\n"; 2752 OS << " Record.push_back(A->getSpellingListIndex());\n"; 2753 2754 for (const auto *Arg : Args) 2755 createArgument(*Arg, R.getName())->writePCHWrite(OS); 2756 OS << " break;\n"; 2757 OS << " }\n"; 2758 } 2759 OS << " }\n"; 2760 } 2761 2762 // Helper function for GenerateTargetSpecificAttrChecks that alters the 'Test' 2763 // parameter with only a single check type, if applicable. 2764 static void GenerateTargetSpecificAttrCheck(const Record *R, std::string &Test, 2765 std::string *FnName, 2766 StringRef ListName, 2767 StringRef CheckAgainst, 2768 StringRef Scope) { 2769 if (!R->isValueUnset(ListName)) { 2770 Test += " && ("; 2771 std::vector<StringRef> Items = R->getValueAsListOfStrings(ListName); 2772 for (auto I = Items.begin(), E = Items.end(); I != E; ++I) { 2773 StringRef Part = *I; 2774 Test += CheckAgainst; 2775 Test += " == "; 2776 Test += Scope; 2777 Test += Part; 2778 if (I + 1 != E) 2779 Test += " || "; 2780 if (FnName) 2781 *FnName += Part; 2782 } 2783 Test += ")"; 2784 } 2785 } 2786 2787 // Generate a conditional expression to check if the current target satisfies 2788 // the conditions for a TargetSpecificAttr record, and append the code for 2789 // those checks to the Test string. If the FnName string pointer is non-null, 2790 // append a unique suffix to distinguish this set of target checks from other 2791 // TargetSpecificAttr records. 2792 static void GenerateTargetSpecificAttrChecks(const Record *R, 2793 std::vector<StringRef> &Arches, 2794 std::string &Test, 2795 std::string *FnName) { 2796 // It is assumed that there will be an llvm::Triple object 2797 // named "T" and a TargetInfo object named "Target" within 2798 // scope that can be used to determine whether the attribute exists in 2799 // a given target. 2800 Test += "true"; 2801 // If one or more architectures is specified, check those. Arches are handled 2802 // differently because GenerateTargetRequirements needs to combine the list 2803 // with ParseKind. 2804 if (!Arches.empty()) { 2805 Test += " && ("; 2806 for (auto I = Arches.begin(), E = Arches.end(); I != E; ++I) { 2807 StringRef Part = *I; 2808 Test += "T.getArch() == llvm::Triple::"; 2809 Test += Part; 2810 if (I + 1 != E) 2811 Test += " || "; 2812 if (FnName) 2813 *FnName += Part; 2814 } 2815 Test += ")"; 2816 } 2817 2818 // If the attribute is specific to particular OSes, check those. 2819 GenerateTargetSpecificAttrCheck(R, Test, FnName, "OSes", "T.getOS()", 2820 "llvm::Triple::"); 2821 2822 // If one or more CXX ABIs are specified, check those as well. 2823 GenerateTargetSpecificAttrCheck(R, Test, FnName, "CXXABIs", 2824 "Target.getCXXABI().getKind()", 2825 "TargetCXXABI::"); 2826 // If one or more object formats is specified, check those. 2827 GenerateTargetSpecificAttrCheck(R, Test, FnName, "ObjectFormats", 2828 "T.getObjectFormat()", "llvm::Triple::"); 2829 } 2830 2831 static void GenerateHasAttrSpellingStringSwitch( 2832 const std::vector<Record *> &Attrs, raw_ostream &OS, 2833 const std::string &Variety = "", const std::string &Scope = "") { 2834 for (const auto *Attr : Attrs) { 2835 // C++11-style attributes have specific version information associated with 2836 // them. If the attribute has no scope, the version information must not 2837 // have the default value (1), as that's incorrect. Instead, the unscoped 2838 // attribute version information should be taken from the SD-6 standing 2839 // document, which can be found at: 2840 // https://isocpp.org/std/standing-documents/sd-6-sg10-feature-test-recommendations 2841 int Version = 1; 2842 2843 if (Variety == "CXX11") { 2844 std::vector<Record *> Spellings = Attr->getValueAsListOfDefs("Spellings"); 2845 for (const auto &Spelling : Spellings) { 2846 if (Spelling->getValueAsString("Variety") == "CXX11") { 2847 Version = static_cast<int>(Spelling->getValueAsInt("Version")); 2848 if (Scope.empty() && Version == 1) 2849 PrintError(Spelling->getLoc(), "C++ standard attributes must " 2850 "have valid version information."); 2851 break; 2852 } 2853 } 2854 } 2855 2856 std::string Test; 2857 if (Attr->isSubClassOf("TargetSpecificAttr")) { 2858 const Record *R = Attr->getValueAsDef("Target"); 2859 std::vector<StringRef> Arches = R->getValueAsListOfStrings("Arches"); 2860 GenerateTargetSpecificAttrChecks(R, Arches, Test, nullptr); 2861 2862 // If this is the C++11 variety, also add in the LangOpts test. 2863 if (Variety == "CXX11") 2864 Test += " && LangOpts.CPlusPlus11"; 2865 else if (Variety == "C2x") 2866 Test += " && LangOpts.DoubleSquareBracketAttributes"; 2867 } else if (Variety == "CXX11") 2868 // C++11 mode should be checked against LangOpts, which is presumed to be 2869 // present in the caller. 2870 Test = "LangOpts.CPlusPlus11"; 2871 else if (Variety == "C2x") 2872 Test = "LangOpts.DoubleSquareBracketAttributes"; 2873 2874 std::string TestStr = 2875 !Test.empty() ? Test + " ? " + llvm::itostr(Version) + " : 0" : "1"; 2876 std::vector<FlattenedSpelling> Spellings = GetFlattenedSpellings(*Attr); 2877 for (const auto &S : Spellings) 2878 if (Variety.empty() || (Variety == S.variety() && 2879 (Scope.empty() || Scope == S.nameSpace()))) 2880 OS << " .Case(\"" << S.name() << "\", " << TestStr << ")\n"; 2881 } 2882 OS << " .Default(0);\n"; 2883 } 2884 2885 // Emits the list of spellings for attributes. 2886 void EmitClangAttrHasAttrImpl(RecordKeeper &Records, raw_ostream &OS) { 2887 emitSourceFileHeader("Code to implement the __has_attribute logic", OS); 2888 2889 // Separate all of the attributes out into four group: generic, C++11, GNU, 2890 // and declspecs. Then generate a big switch statement for each of them. 2891 std::vector<Record *> Attrs = Records.getAllDerivedDefinitions("Attr"); 2892 std::vector<Record *> Declspec, Microsoft, GNU, Pragma; 2893 std::map<std::string, std::vector<Record *>> CXX, C2x; 2894 2895 // Walk over the list of all attributes, and split them out based on the 2896 // spelling variety. 2897 for (auto *R : Attrs) { 2898 std::vector<FlattenedSpelling> Spellings = GetFlattenedSpellings(*R); 2899 for (const auto &SI : Spellings) { 2900 const std::string &Variety = SI.variety(); 2901 if (Variety == "GNU") 2902 GNU.push_back(R); 2903 else if (Variety == "Declspec") 2904 Declspec.push_back(R); 2905 else if (Variety == "Microsoft") 2906 Microsoft.push_back(R); 2907 else if (Variety == "CXX11") 2908 CXX[SI.nameSpace()].push_back(R); 2909 else if (Variety == "C2x") 2910 C2x[SI.nameSpace()].push_back(R); 2911 else if (Variety == "Pragma") 2912 Pragma.push_back(R); 2913 } 2914 } 2915 2916 OS << "const llvm::Triple &T = Target.getTriple();\n"; 2917 OS << "switch (Syntax) {\n"; 2918 OS << "case AttrSyntax::GNU:\n"; 2919 OS << " return llvm::StringSwitch<int>(Name)\n"; 2920 GenerateHasAttrSpellingStringSwitch(GNU, OS, "GNU"); 2921 OS << "case AttrSyntax::Declspec:\n"; 2922 OS << " return llvm::StringSwitch<int>(Name)\n"; 2923 GenerateHasAttrSpellingStringSwitch(Declspec, OS, "Declspec"); 2924 OS << "case AttrSyntax::Microsoft:\n"; 2925 OS << " return llvm::StringSwitch<int>(Name)\n"; 2926 GenerateHasAttrSpellingStringSwitch(Microsoft, OS, "Microsoft"); 2927 OS << "case AttrSyntax::Pragma:\n"; 2928 OS << " return llvm::StringSwitch<int>(Name)\n"; 2929 GenerateHasAttrSpellingStringSwitch(Pragma, OS, "Pragma"); 2930 auto fn = [&OS](const char *Spelling, const char *Variety, 2931 const std::map<std::string, std::vector<Record *>> &List) { 2932 OS << "case AttrSyntax::" << Variety << ": {\n"; 2933 // C++11-style attributes are further split out based on the Scope. 2934 for (auto I = List.cbegin(), E = List.cend(); I != E; ++I) { 2935 if (I != List.cbegin()) 2936 OS << " else "; 2937 if (I->first.empty()) 2938 OS << "if (ScopeName == \"\") {\n"; 2939 else 2940 OS << "if (ScopeName == \"" << I->first << "\") {\n"; 2941 OS << " return llvm::StringSwitch<int>(Name)\n"; 2942 GenerateHasAttrSpellingStringSwitch(I->second, OS, Spelling, I->first); 2943 OS << "}"; 2944 } 2945 OS << "\n} break;\n"; 2946 }; 2947 fn("CXX11", "CXX", CXX); 2948 fn("C2x", "C", C2x); 2949 OS << "}\n"; 2950 } 2951 2952 void EmitClangAttrSpellingListIndex(RecordKeeper &Records, raw_ostream &OS) { 2953 emitSourceFileHeader("Code to translate different attribute spellings " 2954 "into internal identifiers", OS); 2955 2956 OS << " switch (AttrKind) {\n"; 2957 2958 ParsedAttrMap Attrs = getParsedAttrList(Records); 2959 for (const auto &I : Attrs) { 2960 const Record &R = *I.second; 2961 std::vector<FlattenedSpelling> Spellings = GetFlattenedSpellings(R); 2962 OS << " case AT_" << I.first << ": {\n"; 2963 for (unsigned I = 0; I < Spellings.size(); ++ I) { 2964 OS << " if (Name == \"" << Spellings[I].name() << "\" && " 2965 << "SyntaxUsed == " 2966 << StringSwitch<unsigned>(Spellings[I].variety()) 2967 .Case("GNU", 0) 2968 .Case("CXX11", 1) 2969 .Case("C2x", 2) 2970 .Case("Declspec", 3) 2971 .Case("Microsoft", 4) 2972 .Case("Keyword", 5) 2973 .Case("Pragma", 6) 2974 .Default(0) 2975 << " && Scope == \"" << Spellings[I].nameSpace() << "\")\n" 2976 << " return " << I << ";\n"; 2977 } 2978 2979 OS << " break;\n"; 2980 OS << " }\n"; 2981 } 2982 2983 OS << " }\n"; 2984 OS << " return 0;\n"; 2985 } 2986 2987 // Emits code used by RecursiveASTVisitor to visit attributes 2988 void EmitClangAttrASTVisitor(RecordKeeper &Records, raw_ostream &OS) { 2989 emitSourceFileHeader("Used by RecursiveASTVisitor to visit attributes.", OS); 2990 2991 std::vector<Record*> Attrs = Records.getAllDerivedDefinitions("Attr"); 2992 2993 // Write method declarations for Traverse* methods. 2994 // We emit this here because we only generate methods for attributes that 2995 // are declared as ASTNodes. 2996 OS << "#ifdef ATTR_VISITOR_DECLS_ONLY\n\n"; 2997 for (const auto *Attr : Attrs) { 2998 const Record &R = *Attr; 2999 if (!R.getValueAsBit("ASTNode")) 3000 continue; 3001 OS << " bool Traverse" 3002 << R.getName() << "Attr(" << R.getName() << "Attr *A);\n"; 3003 OS << " bool Visit" 3004 << R.getName() << "Attr(" << R.getName() << "Attr *A) {\n" 3005 << " return true; \n" 3006 << " }\n"; 3007 } 3008 OS << "\n#else // ATTR_VISITOR_DECLS_ONLY\n\n"; 3009 3010 // Write individual Traverse* methods for each attribute class. 3011 for (const auto *Attr : Attrs) { 3012 const Record &R = *Attr; 3013 if (!R.getValueAsBit("ASTNode")) 3014 continue; 3015 3016 OS << "template <typename Derived>\n" 3017 << "bool VISITORCLASS<Derived>::Traverse" 3018 << R.getName() << "Attr(" << R.getName() << "Attr *A) {\n" 3019 << " if (!getDerived().VisitAttr(A))\n" 3020 << " return false;\n" 3021 << " if (!getDerived().Visit" << R.getName() << "Attr(A))\n" 3022 << " return false;\n"; 3023 3024 std::vector<Record*> ArgRecords = R.getValueAsListOfDefs("Args"); 3025 for (const auto *Arg : ArgRecords) 3026 createArgument(*Arg, R.getName())->writeASTVisitorTraversal(OS); 3027 3028 OS << " return true;\n"; 3029 OS << "}\n\n"; 3030 } 3031 3032 // Write generic Traverse routine 3033 OS << "template <typename Derived>\n" 3034 << "bool VISITORCLASS<Derived>::TraverseAttr(Attr *A) {\n" 3035 << " if (!A)\n" 3036 << " return true;\n" 3037 << "\n" 3038 << " switch (A->getKind()) {\n"; 3039 3040 for (const auto *Attr : Attrs) { 3041 const Record &R = *Attr; 3042 if (!R.getValueAsBit("ASTNode")) 3043 continue; 3044 3045 OS << " case attr::" << R.getName() << ":\n" 3046 << " return getDerived().Traverse" << R.getName() << "Attr(" 3047 << "cast<" << R.getName() << "Attr>(A));\n"; 3048 } 3049 OS << " }\n"; // end switch 3050 OS << " llvm_unreachable(\"bad attribute kind\");\n"; 3051 OS << "}\n"; // end function 3052 OS << "#endif // ATTR_VISITOR_DECLS_ONLY\n"; 3053 } 3054 3055 void EmitClangAttrTemplateInstantiateHelper(const std::vector<Record *> &Attrs, 3056 raw_ostream &OS, 3057 bool AppliesToDecl) { 3058 3059 OS << " switch (At->getKind()) {\n"; 3060 for (const auto *Attr : Attrs) { 3061 const Record &R = *Attr; 3062 if (!R.getValueAsBit("ASTNode")) 3063 continue; 3064 OS << " case attr::" << R.getName() << ": {\n"; 3065 bool ShouldClone = R.getValueAsBit("Clone") && 3066 (!AppliesToDecl || 3067 R.getValueAsBit("MeaningfulToClassTemplateDefinition")); 3068 3069 if (!ShouldClone) { 3070 OS << " return nullptr;\n"; 3071 OS << " }\n"; 3072 continue; 3073 } 3074 3075 OS << " const auto *A = cast<" 3076 << R.getName() << "Attr>(At);\n"; 3077 bool TDependent = R.getValueAsBit("TemplateDependent"); 3078 3079 if (!TDependent) { 3080 OS << " return A->clone(C);\n"; 3081 OS << " }\n"; 3082 continue; 3083 } 3084 3085 std::vector<Record*> ArgRecords = R.getValueAsListOfDefs("Args"); 3086 std::vector<std::unique_ptr<Argument>> Args; 3087 Args.reserve(ArgRecords.size()); 3088 3089 for (const auto *ArgRecord : ArgRecords) 3090 Args.emplace_back(createArgument(*ArgRecord, R.getName())); 3091 3092 for (auto const &ai : Args) 3093 ai->writeTemplateInstantiation(OS); 3094 3095 OS << " return new (C) " << R.getName() << "Attr(A->getLocation(), C"; 3096 for (auto const &ai : Args) { 3097 OS << ", "; 3098 ai->writeTemplateInstantiationArgs(OS); 3099 } 3100 OS << ", A->getSpellingListIndex());\n }\n"; 3101 } 3102 OS << " } // end switch\n" 3103 << " llvm_unreachable(\"Unknown attribute!\");\n" 3104 << " return nullptr;\n"; 3105 } 3106 3107 // Emits code to instantiate dependent attributes on templates. 3108 void EmitClangAttrTemplateInstantiate(RecordKeeper &Records, raw_ostream &OS) { 3109 emitSourceFileHeader("Template instantiation code for attributes", OS); 3110 3111 std::vector<Record*> Attrs = Records.getAllDerivedDefinitions("Attr"); 3112 3113 OS << "namespace clang {\n" 3114 << "namespace sema {\n\n" 3115 << "Attr *instantiateTemplateAttribute(const Attr *At, ASTContext &C, " 3116 << "Sema &S,\n" 3117 << " const MultiLevelTemplateArgumentList &TemplateArgs) {\n"; 3118 EmitClangAttrTemplateInstantiateHelper(Attrs, OS, /*AppliesToDecl*/false); 3119 OS << "}\n\n" 3120 << "Attr *instantiateTemplateAttributeForDecl(const Attr *At,\n" 3121 << " ASTContext &C, Sema &S,\n" 3122 << " const MultiLevelTemplateArgumentList &TemplateArgs) {\n"; 3123 EmitClangAttrTemplateInstantiateHelper(Attrs, OS, /*AppliesToDecl*/true); 3124 OS << "}\n\n" 3125 << "} // end namespace sema\n" 3126 << "} // end namespace clang\n"; 3127 } 3128 3129 // Emits the list of parsed attributes. 3130 void EmitClangAttrParsedAttrList(RecordKeeper &Records, raw_ostream &OS) { 3131 emitSourceFileHeader("List of all attributes that Clang recognizes", OS); 3132 3133 OS << "#ifndef PARSED_ATTR\n"; 3134 OS << "#define PARSED_ATTR(NAME) NAME\n"; 3135 OS << "#endif\n\n"; 3136 3137 ParsedAttrMap Names = getParsedAttrList(Records); 3138 for (const auto &I : Names) { 3139 OS << "PARSED_ATTR(" << I.first << ")\n"; 3140 } 3141 } 3142 3143 static bool isArgVariadic(const Record &R, StringRef AttrName) { 3144 return createArgument(R, AttrName)->isVariadic(); 3145 } 3146 3147 static void emitArgInfo(const Record &R, raw_ostream &OS) { 3148 // This function will count the number of arguments specified for the 3149 // attribute and emit the number of required arguments followed by the 3150 // number of optional arguments. 3151 std::vector<Record *> Args = R.getValueAsListOfDefs("Args"); 3152 unsigned ArgCount = 0, OptCount = 0; 3153 bool HasVariadic = false; 3154 for (const auto *Arg : Args) { 3155 // If the arg is fake, it's the user's job to supply it: general parsing 3156 // logic shouldn't need to know anything about it. 3157 if (Arg->getValueAsBit("Fake")) 3158 continue; 3159 Arg->getValueAsBit("Optional") ? ++OptCount : ++ArgCount; 3160 if (!HasVariadic && isArgVariadic(*Arg, R.getName())) 3161 HasVariadic = true; 3162 } 3163 3164 // If there is a variadic argument, we will set the optional argument count 3165 // to its largest value. Since it's currently a 4-bit number, we set it to 15. 3166 OS << ArgCount << ", " << (HasVariadic ? 15 : OptCount); 3167 } 3168 3169 static void GenerateDefaultAppertainsTo(raw_ostream &OS) { 3170 OS << "static bool defaultAppertainsTo(Sema &, const ParsedAttr &,"; 3171 OS << "const Decl *) {\n"; 3172 OS << " return true;\n"; 3173 OS << "}\n\n"; 3174 } 3175 3176 static std::string GetDiagnosticSpelling(const Record &R) { 3177 std::string Ret = R.getValueAsString("DiagSpelling"); 3178 if (!Ret.empty()) 3179 return Ret; 3180 3181 // If we couldn't find the DiagSpelling in this object, we can check to see 3182 // if the object is one that has a base, and if it is, loop up to the Base 3183 // member recursively. 3184 std::string Super = R.getSuperClasses().back().first->getName(); 3185 if (Super == "DDecl" || Super == "DStmt") 3186 return GetDiagnosticSpelling(*R.getValueAsDef("Base")); 3187 3188 return ""; 3189 } 3190 3191 static std::string CalculateDiagnostic(const Record &S) { 3192 // If the SubjectList object has a custom diagnostic associated with it, 3193 // return that directly. 3194 const StringRef CustomDiag = S.getValueAsString("CustomDiag"); 3195 if (!CustomDiag.empty()) 3196 return ("\"" + Twine(CustomDiag) + "\"").str(); 3197 3198 std::vector<std::string> DiagList; 3199 std::vector<Record *> Subjects = S.getValueAsListOfDefs("Subjects"); 3200 for (const auto *Subject : Subjects) { 3201 const Record &R = *Subject; 3202 // Get the diagnostic text from the Decl or Stmt node given. 3203 std::string V = GetDiagnosticSpelling(R); 3204 if (V.empty()) { 3205 PrintError(R.getLoc(), 3206 "Could not determine diagnostic spelling for the node: " + 3207 R.getName() + "; please add one to DeclNodes.td"); 3208 } else { 3209 // The node may contain a list of elements itself, so split the elements 3210 // by a comma, and trim any whitespace. 3211 SmallVector<StringRef, 2> Frags; 3212 llvm::SplitString(V, Frags, ","); 3213 for (auto Str : Frags) { 3214 DiagList.push_back(Str.trim()); 3215 } 3216 } 3217 } 3218 3219 if (DiagList.empty()) { 3220 PrintFatalError(S.getLoc(), 3221 "Could not deduce diagnostic argument for Attr subjects"); 3222 return ""; 3223 } 3224 3225 // FIXME: this is not particularly good for localization purposes and ideally 3226 // should be part of the diagnostics engine itself with some sort of list 3227 // specifier. 3228 3229 // A single member of the list can be returned directly. 3230 if (DiagList.size() == 1) 3231 return '"' + DiagList.front() + '"'; 3232 3233 if (DiagList.size() == 2) 3234 return '"' + DiagList[0] + " and " + DiagList[1] + '"'; 3235 3236 // If there are more than two in the list, we serialize the first N - 1 3237 // elements with a comma. This leaves the string in the state: foo, bar, 3238 // baz (but misses quux). We can then add ", and " for the last element 3239 // manually. 3240 std::string Diag = llvm::join(DiagList.begin(), DiagList.end() - 1, ", "); 3241 return '"' + Diag + ", and " + *(DiagList.end() - 1) + '"'; 3242 } 3243 3244 static std::string GetSubjectWithSuffix(const Record *R) { 3245 const std::string &B = R->getName(); 3246 if (B == "DeclBase") 3247 return "Decl"; 3248 return B + "Decl"; 3249 } 3250 3251 static std::string functionNameForCustomAppertainsTo(const Record &Subject) { 3252 return "is" + Subject.getName().str(); 3253 } 3254 3255 static std::string GenerateCustomAppertainsTo(const Record &Subject, 3256 raw_ostream &OS) { 3257 std::string FnName = functionNameForCustomAppertainsTo(Subject); 3258 3259 // If this code has already been generated, simply return the previous 3260 // instance of it. 3261 static std::set<std::string> CustomSubjectSet; 3262 auto I = CustomSubjectSet.find(FnName); 3263 if (I != CustomSubjectSet.end()) 3264 return *I; 3265 3266 Record *Base = Subject.getValueAsDef("Base"); 3267 3268 // Not currently support custom subjects within custom subjects. 3269 if (Base->isSubClassOf("SubsetSubject")) { 3270 PrintFatalError(Subject.getLoc(), 3271 "SubsetSubjects within SubsetSubjects is not supported"); 3272 return ""; 3273 } 3274 3275 OS << "static bool " << FnName << "(const Decl *D) {\n"; 3276 OS << " if (const auto *S = dyn_cast<"; 3277 OS << GetSubjectWithSuffix(Base); 3278 OS << ">(D))\n"; 3279 OS << " return " << Subject.getValueAsString("CheckCode") << ";\n"; 3280 OS << " return false;\n"; 3281 OS << "}\n\n"; 3282 3283 CustomSubjectSet.insert(FnName); 3284 return FnName; 3285 } 3286 3287 static std::string GenerateAppertainsTo(const Record &Attr, raw_ostream &OS) { 3288 // If the attribute does not contain a Subjects definition, then use the 3289 // default appertainsTo logic. 3290 if (Attr.isValueUnset("Subjects")) 3291 return "defaultAppertainsTo"; 3292 3293 const Record *SubjectObj = Attr.getValueAsDef("Subjects"); 3294 std::vector<Record*> Subjects = SubjectObj->getValueAsListOfDefs("Subjects"); 3295 3296 // If the list of subjects is empty, it is assumed that the attribute 3297 // appertains to everything. 3298 if (Subjects.empty()) 3299 return "defaultAppertainsTo"; 3300 3301 bool Warn = SubjectObj->getValueAsDef("Diag")->getValueAsBit("Warn"); 3302 3303 // Otherwise, generate an appertainsTo check specific to this attribute which 3304 // checks all of the given subjects against the Decl passed in. Return the 3305 // name of that check to the caller. 3306 // 3307 // If D is null, that means the attribute was not applied to a declaration 3308 // at all (for instance because it was applied to a type), or that the caller 3309 // has determined that the check should fail (perhaps prior to the creation 3310 // of the declaration). 3311 std::string FnName = "check" + Attr.getName().str() + "AppertainsTo"; 3312 std::stringstream SS; 3313 SS << "static bool " << FnName << "(Sema &S, const ParsedAttr &Attr, "; 3314 SS << "const Decl *D) {\n"; 3315 SS << " if (!D || ("; 3316 for (auto I = Subjects.begin(), E = Subjects.end(); I != E; ++I) { 3317 // If the subject has custom code associated with it, generate a function 3318 // for it. The function cannot be inlined into this check (yet) because it 3319 // requires the subject to be of a specific type, and were that information 3320 // inlined here, it would not support an attribute with multiple custom 3321 // subjects. 3322 if ((*I)->isSubClassOf("SubsetSubject")) { 3323 SS << "!" << GenerateCustomAppertainsTo(**I, OS) << "(D)"; 3324 } else { 3325 SS << "!isa<" << GetSubjectWithSuffix(*I) << ">(D)"; 3326 } 3327 3328 if (I + 1 != E) 3329 SS << " && "; 3330 } 3331 SS << ")) {\n"; 3332 SS << " S.Diag(Attr.getLoc(), diag::"; 3333 SS << (Warn ? "warn_attribute_wrong_decl_type_str" : 3334 "err_attribute_wrong_decl_type_str"); 3335 SS << ")\n"; 3336 SS << " << Attr << "; 3337 SS << CalculateDiagnostic(*SubjectObj) << ";\n"; 3338 SS << " return false;\n"; 3339 SS << " }\n"; 3340 SS << " return true;\n"; 3341 SS << "}\n\n"; 3342 3343 OS << SS.str(); 3344 return FnName; 3345 } 3346 3347 static void 3348 emitAttributeMatchRules(PragmaClangAttributeSupport &PragmaAttributeSupport, 3349 raw_ostream &OS) { 3350 OS << "static bool checkAttributeMatchRuleAppliesTo(const Decl *D, " 3351 << AttributeSubjectMatchRule::EnumName << " rule) {\n"; 3352 OS << " switch (rule) {\n"; 3353 for (const auto &Rule : PragmaAttributeSupport.Rules) { 3354 if (Rule.isAbstractRule()) { 3355 OS << " case " << Rule.getEnumValue() << ":\n"; 3356 OS << " assert(false && \"Abstract matcher rule isn't allowed\");\n"; 3357 OS << " return false;\n"; 3358 continue; 3359 } 3360 std::vector<Record *> Subjects = Rule.getSubjects(); 3361 assert(!Subjects.empty() && "Missing subjects"); 3362 OS << " case " << Rule.getEnumValue() << ":\n"; 3363 OS << " return "; 3364 for (auto I = Subjects.begin(), E = Subjects.end(); I != E; ++I) { 3365 // If the subject has custom code associated with it, use the function 3366 // that was generated for GenerateAppertainsTo to check if the declaration 3367 // is valid. 3368 if ((*I)->isSubClassOf("SubsetSubject")) 3369 OS << functionNameForCustomAppertainsTo(**I) << "(D)"; 3370 else 3371 OS << "isa<" << GetSubjectWithSuffix(*I) << ">(D)"; 3372 3373 if (I + 1 != E) 3374 OS << " || "; 3375 } 3376 OS << ";\n"; 3377 } 3378 OS << " }\n"; 3379 OS << " llvm_unreachable(\"Invalid match rule\");\nreturn false;\n"; 3380 OS << "}\n\n"; 3381 } 3382 3383 static void GenerateDefaultLangOptRequirements(raw_ostream &OS) { 3384 OS << "static bool defaultDiagnoseLangOpts(Sema &, "; 3385 OS << "const ParsedAttr &) {\n"; 3386 OS << " return true;\n"; 3387 OS << "}\n\n"; 3388 } 3389 3390 static std::string GenerateLangOptRequirements(const Record &R, 3391 raw_ostream &OS) { 3392 // If the attribute has an empty or unset list of language requirements, 3393 // return the default handler. 3394 std::vector<Record *> LangOpts = R.getValueAsListOfDefs("LangOpts"); 3395 if (LangOpts.empty()) 3396 return "defaultDiagnoseLangOpts"; 3397 3398 // Generate the test condition, as well as a unique function name for the 3399 // diagnostic test. The list of options should usually be short (one or two 3400 // options), and the uniqueness isn't strictly necessary (it is just for 3401 // codegen efficiency). 3402 std::string FnName = "check", Test; 3403 for (auto I = LangOpts.begin(), E = LangOpts.end(); I != E; ++I) { 3404 const StringRef Part = (*I)->getValueAsString("Name"); 3405 if ((*I)->getValueAsBit("Negated")) { 3406 FnName += "Not"; 3407 Test += "!"; 3408 } 3409 Test += "S.LangOpts."; 3410 Test += Part; 3411 if (I + 1 != E) 3412 Test += " || "; 3413 FnName += Part; 3414 } 3415 FnName += "LangOpts"; 3416 3417 // If this code has already been generated, simply return the previous 3418 // instance of it. 3419 static std::set<std::string> CustomLangOptsSet; 3420 auto I = CustomLangOptsSet.find(FnName); 3421 if (I != CustomLangOptsSet.end()) 3422 return *I; 3423 3424 OS << "static bool " << FnName << "(Sema &S, const ParsedAttr &Attr) {\n"; 3425 OS << " if (" << Test << ")\n"; 3426 OS << " return true;\n\n"; 3427 OS << " S.Diag(Attr.getLoc(), diag::warn_attribute_ignored) "; 3428 OS << "<< Attr.getName();\n"; 3429 OS << " return false;\n"; 3430 OS << "}\n\n"; 3431 3432 CustomLangOptsSet.insert(FnName); 3433 return FnName; 3434 } 3435 3436 static void GenerateDefaultTargetRequirements(raw_ostream &OS) { 3437 OS << "static bool defaultTargetRequirements(const TargetInfo &) {\n"; 3438 OS << " return true;\n"; 3439 OS << "}\n\n"; 3440 } 3441 3442 static std::string GenerateTargetRequirements(const Record &Attr, 3443 const ParsedAttrMap &Dupes, 3444 raw_ostream &OS) { 3445 // If the attribute is not a target specific attribute, return the default 3446 // target handler. 3447 if (!Attr.isSubClassOf("TargetSpecificAttr")) 3448 return "defaultTargetRequirements"; 3449 3450 // Get the list of architectures to be tested for. 3451 const Record *R = Attr.getValueAsDef("Target"); 3452 std::vector<StringRef> Arches = R->getValueAsListOfStrings("Arches"); 3453 3454 // If there are other attributes which share the same parsed attribute kind, 3455 // such as target-specific attributes with a shared spelling, collapse the 3456 // duplicate architectures. This is required because a shared target-specific 3457 // attribute has only one ParsedAttr::Kind enumeration value, but it 3458 // applies to multiple target architectures. In order for the attribute to be 3459 // considered valid, all of its architectures need to be included. 3460 if (!Attr.isValueUnset("ParseKind")) { 3461 const StringRef APK = Attr.getValueAsString("ParseKind"); 3462 for (const auto &I : Dupes) { 3463 if (I.first == APK) { 3464 std::vector<StringRef> DA = 3465 I.second->getValueAsDef("Target")->getValueAsListOfStrings( 3466 "Arches"); 3467 Arches.insert(Arches.end(), DA.begin(), DA.end()); 3468 } 3469 } 3470 } 3471 3472 std::string FnName = "isTarget"; 3473 std::string Test; 3474 GenerateTargetSpecificAttrChecks(R, Arches, Test, &FnName); 3475 3476 // If this code has already been generated, simply return the previous 3477 // instance of it. 3478 static std::set<std::string> CustomTargetSet; 3479 auto I = CustomTargetSet.find(FnName); 3480 if (I != CustomTargetSet.end()) 3481 return *I; 3482 3483 OS << "static bool " << FnName << "(const TargetInfo &Target) {\n"; 3484 OS << " const llvm::Triple &T = Target.getTriple();\n"; 3485 OS << " return " << Test << ";\n"; 3486 OS << "}\n\n"; 3487 3488 CustomTargetSet.insert(FnName); 3489 return FnName; 3490 } 3491 3492 static void GenerateDefaultSpellingIndexToSemanticSpelling(raw_ostream &OS) { 3493 OS << "static unsigned defaultSpellingIndexToSemanticSpelling(" 3494 << "const ParsedAttr &Attr) {\n"; 3495 OS << " return UINT_MAX;\n"; 3496 OS << "}\n\n"; 3497 } 3498 3499 static std::string GenerateSpellingIndexToSemanticSpelling(const Record &Attr, 3500 raw_ostream &OS) { 3501 // If the attribute does not have a semantic form, we can bail out early. 3502 if (!Attr.getValueAsBit("ASTNode")) 3503 return "defaultSpellingIndexToSemanticSpelling"; 3504 3505 std::vector<FlattenedSpelling> Spellings = GetFlattenedSpellings(Attr); 3506 3507 // If there are zero or one spellings, or all of the spellings share the same 3508 // name, we can also bail out early. 3509 if (Spellings.size() <= 1 || SpellingNamesAreCommon(Spellings)) 3510 return "defaultSpellingIndexToSemanticSpelling"; 3511 3512 // Generate the enumeration we will use for the mapping. 3513 SemanticSpellingMap SemanticToSyntacticMap; 3514 std::string Enum = CreateSemanticSpellings(Spellings, SemanticToSyntacticMap); 3515 std::string Name = Attr.getName().str() + "AttrSpellingMap"; 3516 3517 OS << "static unsigned " << Name << "(const ParsedAttr &Attr) {\n"; 3518 OS << Enum; 3519 OS << " unsigned Idx = Attr.getAttributeSpellingListIndex();\n"; 3520 WriteSemanticSpellingSwitch("Idx", SemanticToSyntacticMap, OS); 3521 OS << "}\n\n"; 3522 3523 return Name; 3524 } 3525 3526 static bool IsKnownToGCC(const Record &Attr) { 3527 // Look at the spellings for this subject; if there are any spellings which 3528 // claim to be known to GCC, the attribute is known to GCC. 3529 return llvm::any_of( 3530 GetFlattenedSpellings(Attr), 3531 [](const FlattenedSpelling &S) { return S.knownToGCC(); }); 3532 } 3533 3534 /// Emits the parsed attribute helpers 3535 void EmitClangAttrParsedAttrImpl(RecordKeeper &Records, raw_ostream &OS) { 3536 emitSourceFileHeader("Parsed attribute helpers", OS); 3537 3538 PragmaClangAttributeSupport &PragmaAttributeSupport = 3539 getPragmaAttributeSupport(Records); 3540 3541 // Get the list of parsed attributes, and accept the optional list of 3542 // duplicates due to the ParseKind. 3543 ParsedAttrMap Dupes; 3544 ParsedAttrMap Attrs = getParsedAttrList(Records, &Dupes); 3545 3546 // Generate the default appertainsTo, target and language option diagnostic, 3547 // and spelling list index mapping methods. 3548 GenerateDefaultAppertainsTo(OS); 3549 GenerateDefaultLangOptRequirements(OS); 3550 GenerateDefaultTargetRequirements(OS); 3551 GenerateDefaultSpellingIndexToSemanticSpelling(OS); 3552 3553 // Generate the appertainsTo diagnostic methods and write their names into 3554 // another mapping. At the same time, generate the AttrInfoMap object 3555 // contents. Due to the reliance on generated code, use separate streams so 3556 // that code will not be interleaved. 3557 std::string Buffer; 3558 raw_string_ostream SS {Buffer}; 3559 for (auto I = Attrs.begin(), E = Attrs.end(); I != E; ++I) { 3560 // TODO: If the attribute's kind appears in the list of duplicates, that is 3561 // because it is a target-specific attribute that appears multiple times. 3562 // It would be beneficial to test whether the duplicates are "similar 3563 // enough" to each other to not cause problems. For instance, check that 3564 // the spellings are identical, and custom parsing rules match, etc. 3565 3566 // We need to generate struct instances based off ParsedAttrInfo from 3567 // ParsedAttr.cpp. 3568 SS << " { "; 3569 emitArgInfo(*I->second, SS); 3570 SS << ", " << I->second->getValueAsBit("HasCustomParsing"); 3571 SS << ", " << I->second->isSubClassOf("TargetSpecificAttr"); 3572 SS << ", " 3573 << (I->second->isSubClassOf("TypeAttr") || 3574 I->second->isSubClassOf("DeclOrTypeAttr")); 3575 SS << ", " << I->second->isSubClassOf("StmtAttr"); 3576 SS << ", " << IsKnownToGCC(*I->second); 3577 SS << ", " << PragmaAttributeSupport.isAttributedSupported(*I->second); 3578 SS << ", " << GenerateAppertainsTo(*I->second, OS); 3579 SS << ", " << GenerateLangOptRequirements(*I->second, OS); 3580 SS << ", " << GenerateTargetRequirements(*I->second, Dupes, OS); 3581 SS << ", " << GenerateSpellingIndexToSemanticSpelling(*I->second, OS); 3582 SS << ", " 3583 << PragmaAttributeSupport.generateStrictConformsTo(*I->second, OS); 3584 SS << " }"; 3585 3586 if (I + 1 != E) 3587 SS << ","; 3588 3589 SS << " // AT_" << I->first << "\n"; 3590 } 3591 3592 OS << "static const ParsedAttrInfo AttrInfoMap[ParsedAttr::UnknownAttribute " 3593 "+ 1] = {\n"; 3594 OS << SS.str(); 3595 OS << "};\n\n"; 3596 3597 // Generate the attribute match rules. 3598 emitAttributeMatchRules(PragmaAttributeSupport, OS); 3599 } 3600 3601 // Emits the kind list of parsed attributes 3602 void EmitClangAttrParsedAttrKinds(RecordKeeper &Records, raw_ostream &OS) { 3603 emitSourceFileHeader("Attribute name matcher", OS); 3604 3605 std::vector<Record *> Attrs = Records.getAllDerivedDefinitions("Attr"); 3606 std::vector<StringMatcher::StringPair> GNU, Declspec, Microsoft, CXX11, 3607 Keywords, Pragma, C2x; 3608 std::set<std::string> Seen; 3609 for (const auto *A : Attrs) { 3610 const Record &Attr = *A; 3611 3612 bool SemaHandler = Attr.getValueAsBit("SemaHandler"); 3613 bool Ignored = Attr.getValueAsBit("Ignored"); 3614 if (SemaHandler || Ignored) { 3615 // Attribute spellings can be shared between target-specific attributes, 3616 // and can be shared between syntaxes for the same attribute. For 3617 // instance, an attribute can be spelled GNU<"interrupt"> for an ARM- 3618 // specific attribute, or MSP430-specific attribute. Additionally, an 3619 // attribute can be spelled GNU<"dllexport"> and Declspec<"dllexport"> 3620 // for the same semantic attribute. Ultimately, we need to map each of 3621 // these to a single ParsedAttr::Kind value, but the StringMatcher 3622 // class cannot handle duplicate match strings. So we generate a list of 3623 // string to match based on the syntax, and emit multiple string matchers 3624 // depending on the syntax used. 3625 std::string AttrName; 3626 if (Attr.isSubClassOf("TargetSpecificAttr") && 3627 !Attr.isValueUnset("ParseKind")) { 3628 AttrName = Attr.getValueAsString("ParseKind"); 3629 if (Seen.find(AttrName) != Seen.end()) 3630 continue; 3631 Seen.insert(AttrName); 3632 } else 3633 AttrName = NormalizeAttrName(StringRef(Attr.getName())).str(); 3634 3635 std::vector<FlattenedSpelling> Spellings = GetFlattenedSpellings(Attr); 3636 for (const auto &S : Spellings) { 3637 const std::string &RawSpelling = S.name(); 3638 std::vector<StringMatcher::StringPair> *Matches = nullptr; 3639 std::string Spelling; 3640 const std::string &Variety = S.variety(); 3641 if (Variety == "CXX11") { 3642 Matches = &CXX11; 3643 Spelling += S.nameSpace(); 3644 Spelling += "::"; 3645 } else if (Variety == "C2x") { 3646 Matches = &C2x; 3647 Spelling += S.nameSpace(); 3648 Spelling += "::"; 3649 } else if (Variety == "GNU") 3650 Matches = &GNU; 3651 else if (Variety == "Declspec") 3652 Matches = &Declspec; 3653 else if (Variety == "Microsoft") 3654 Matches = &Microsoft; 3655 else if (Variety == "Keyword") 3656 Matches = &Keywords; 3657 else if (Variety == "Pragma") 3658 Matches = &Pragma; 3659 3660 assert(Matches && "Unsupported spelling variety found"); 3661 3662 if (Variety == "GNU") 3663 Spelling += NormalizeGNUAttrSpelling(RawSpelling); 3664 else 3665 Spelling += RawSpelling; 3666 3667 if (SemaHandler) 3668 Matches->push_back(StringMatcher::StringPair( 3669 Spelling, "return ParsedAttr::AT_" + AttrName + ";")); 3670 else 3671 Matches->push_back(StringMatcher::StringPair( 3672 Spelling, "return ParsedAttr::IgnoredAttribute;")); 3673 } 3674 } 3675 } 3676 3677 OS << "static ParsedAttr::Kind getAttrKind(StringRef Name, "; 3678 OS << "ParsedAttr::Syntax Syntax) {\n"; 3679 OS << " if (ParsedAttr::AS_GNU == Syntax) {\n"; 3680 StringMatcher("Name", GNU, OS).Emit(); 3681 OS << " } else if (ParsedAttr::AS_Declspec == Syntax) {\n"; 3682 StringMatcher("Name", Declspec, OS).Emit(); 3683 OS << " } else if (ParsedAttr::AS_Microsoft == Syntax) {\n"; 3684 StringMatcher("Name", Microsoft, OS).Emit(); 3685 OS << " } else if (ParsedAttr::AS_CXX11 == Syntax) {\n"; 3686 StringMatcher("Name", CXX11, OS).Emit(); 3687 OS << " } else if (ParsedAttr::AS_C2x == Syntax) {\n"; 3688 StringMatcher("Name", C2x, OS).Emit(); 3689 OS << " } else if (ParsedAttr::AS_Keyword == Syntax || "; 3690 OS << "ParsedAttr::AS_ContextSensitiveKeyword == Syntax) {\n"; 3691 StringMatcher("Name", Keywords, OS).Emit(); 3692 OS << " } else if (ParsedAttr::AS_Pragma == Syntax) {\n"; 3693 StringMatcher("Name", Pragma, OS).Emit(); 3694 OS << " }\n"; 3695 OS << " return ParsedAttr::UnknownAttribute;\n" 3696 << "}\n"; 3697 } 3698 3699 // Emits the code to dump an attribute. 3700 void EmitClangAttrDump(RecordKeeper &Records, raw_ostream &OS) { 3701 emitSourceFileHeader("Attribute dumper", OS); 3702 3703 OS << " switch (A->getKind()) {\n"; 3704 std::vector<Record*> Attrs = Records.getAllDerivedDefinitions("Attr"), Args; 3705 for (const auto *Attr : Attrs) { 3706 const Record &R = *Attr; 3707 if (!R.getValueAsBit("ASTNode")) 3708 continue; 3709 OS << " case attr::" << R.getName() << ": {\n"; 3710 3711 // If the attribute has a semantically-meaningful name (which is determined 3712 // by whether there is a Spelling enumeration for it), then write out the 3713 // spelling used for the attribute. 3714 std::vector<FlattenedSpelling> Spellings = GetFlattenedSpellings(R); 3715 if (Spellings.size() > 1 && !SpellingNamesAreCommon(Spellings)) 3716 OS << " OS << \" \" << A->getSpelling();\n"; 3717 3718 Args = R.getValueAsListOfDefs("Args"); 3719 if (!Args.empty()) { 3720 OS << " const auto *SA = cast<" << R.getName() 3721 << "Attr>(A);\n"; 3722 for (const auto *Arg : Args) 3723 createArgument(*Arg, R.getName())->writeDump(OS); 3724 3725 for (const auto *AI : Args) 3726 createArgument(*AI, R.getName())->writeDumpChildren(OS); 3727 } 3728 OS << 3729 " break;\n" 3730 " }\n"; 3731 } 3732 OS << " }\n"; 3733 } 3734 3735 void EmitClangAttrParserStringSwitches(RecordKeeper &Records, 3736 raw_ostream &OS) { 3737 emitSourceFileHeader("Parser-related llvm::StringSwitch cases", OS); 3738 emitClangAttrArgContextList(Records, OS); 3739 emitClangAttrIdentifierArgList(Records, OS); 3740 emitClangAttrVariadicIdentifierArgList(Records, OS); 3741 emitClangAttrTypeArgList(Records, OS); 3742 emitClangAttrLateParsedList(Records, OS); 3743 } 3744 3745 void EmitClangAttrSubjectMatchRulesParserStringSwitches(RecordKeeper &Records, 3746 raw_ostream &OS) { 3747 getPragmaAttributeSupport(Records).generateParsingHelpers(OS); 3748 } 3749 3750 enum class SpellingKind { 3751 GNU, 3752 CXX11, 3753 C2x, 3754 Declspec, 3755 Microsoft, 3756 Keyword, 3757 Pragma, 3758 }; 3759 static const size_t NumSpellingKinds = (size_t)SpellingKind::Pragma + 1; 3760 3761 class SpellingList { 3762 std::vector<std::string> Spellings[NumSpellingKinds]; 3763 3764 public: 3765 ArrayRef<std::string> operator[](SpellingKind K) const { 3766 return Spellings[(size_t)K]; 3767 } 3768 3769 void add(const Record &Attr, FlattenedSpelling Spelling) { 3770 SpellingKind Kind = StringSwitch<SpellingKind>(Spelling.variety()) 3771 .Case("GNU", SpellingKind::GNU) 3772 .Case("CXX11", SpellingKind::CXX11) 3773 .Case("C2x", SpellingKind::C2x) 3774 .Case("Declspec", SpellingKind::Declspec) 3775 .Case("Microsoft", SpellingKind::Microsoft) 3776 .Case("Keyword", SpellingKind::Keyword) 3777 .Case("Pragma", SpellingKind::Pragma); 3778 std::string Name; 3779 if (!Spelling.nameSpace().empty()) { 3780 switch (Kind) { 3781 case SpellingKind::CXX11: 3782 case SpellingKind::C2x: 3783 Name = Spelling.nameSpace() + "::"; 3784 break; 3785 case SpellingKind::Pragma: 3786 Name = Spelling.nameSpace() + " "; 3787 break; 3788 default: 3789 PrintFatalError(Attr.getLoc(), "Unexpected namespace in spelling"); 3790 } 3791 } 3792 Name += Spelling.name(); 3793 3794 Spellings[(size_t)Kind].push_back(Name); 3795 } 3796 }; 3797 3798 class DocumentationData { 3799 public: 3800 const Record *Documentation; 3801 const Record *Attribute; 3802 std::string Heading; 3803 SpellingList SupportedSpellings; 3804 3805 DocumentationData(const Record &Documentation, const Record &Attribute, 3806 std::pair<std::string, SpellingList> HeadingAndSpellings) 3807 : Documentation(&Documentation), Attribute(&Attribute), 3808 Heading(std::move(HeadingAndSpellings.first)), 3809 SupportedSpellings(std::move(HeadingAndSpellings.second)) {} 3810 }; 3811 3812 static void WriteCategoryHeader(const Record *DocCategory, 3813 raw_ostream &OS) { 3814 const StringRef Name = DocCategory->getValueAsString("Name"); 3815 OS << Name << "\n" << std::string(Name.size(), '=') << "\n"; 3816 3817 // If there is content, print that as well. 3818 const StringRef ContentStr = DocCategory->getValueAsString("Content"); 3819 // Trim leading and trailing newlines and spaces. 3820 OS << ContentStr.trim(); 3821 3822 OS << "\n\n"; 3823 } 3824 3825 static std::pair<std::string, SpellingList> 3826 GetAttributeHeadingAndSpellings(const Record &Documentation, 3827 const Record &Attribute) { 3828 // FIXME: there is no way to have a per-spelling category for the attribute 3829 // documentation. This may not be a limiting factor since the spellings 3830 // should generally be consistently applied across the category. 3831 3832 std::vector<FlattenedSpelling> Spellings = GetFlattenedSpellings(Attribute); 3833 if (Spellings.empty()) 3834 PrintFatalError(Attribute.getLoc(), 3835 "Attribute has no supported spellings; cannot be " 3836 "documented"); 3837 3838 // Determine the heading to be used for this attribute. 3839 std::string Heading = Documentation.getValueAsString("Heading"); 3840 if (Heading.empty()) { 3841 // If there's only one spelling, we can simply use that. 3842 if (Spellings.size() == 1) 3843 Heading = Spellings.begin()->name(); 3844 else { 3845 std::set<std::string> Uniques; 3846 for (auto I = Spellings.begin(), E = Spellings.end(); 3847 I != E && Uniques.size() <= 1; ++I) { 3848 std::string Spelling = NormalizeNameForSpellingComparison(I->name()); 3849 Uniques.insert(Spelling); 3850 } 3851 // If the semantic map has only one spelling, that is sufficient for our 3852 // needs. 3853 if (Uniques.size() == 1) 3854 Heading = *Uniques.begin(); 3855 } 3856 } 3857 3858 // If the heading is still empty, it is an error. 3859 if (Heading.empty()) 3860 PrintFatalError(Attribute.getLoc(), 3861 "This attribute requires a heading to be specified"); 3862 3863 SpellingList SupportedSpellings; 3864 for (const auto &I : Spellings) 3865 SupportedSpellings.add(Attribute, I); 3866 3867 return std::make_pair(std::move(Heading), std::move(SupportedSpellings)); 3868 } 3869 3870 static void WriteDocumentation(RecordKeeper &Records, 3871 const DocumentationData &Doc, raw_ostream &OS) { 3872 OS << Doc.Heading << "\n" << std::string(Doc.Heading.length(), '-') << "\n"; 3873 3874 // List what spelling syntaxes the attribute supports. 3875 OS << ".. csv-table:: Supported Syntaxes\n"; 3876 OS << " :header: \"GNU\", \"C++11\", \"C2x\", \"``__declspec``\","; 3877 OS << " \"Keyword\", \"``#pragma``\", \"``#pragma clang attribute``\"\n\n"; 3878 OS << " \""; 3879 for (size_t Kind = 0; Kind != NumSpellingKinds; ++Kind) { 3880 SpellingKind K = (SpellingKind)Kind; 3881 // TODO: List Microsoft (IDL-style attribute) spellings once we fully 3882 // support them. 3883 if (K == SpellingKind::Microsoft) 3884 continue; 3885 3886 bool PrintedAny = false; 3887 for (StringRef Spelling : Doc.SupportedSpellings[K]) { 3888 if (PrintedAny) 3889 OS << " |br| "; 3890 OS << "``" << Spelling << "``"; 3891 PrintedAny = true; 3892 } 3893 3894 OS << "\",\""; 3895 } 3896 3897 if (getPragmaAttributeSupport(Records).isAttributedSupported( 3898 *Doc.Attribute)) 3899 OS << "Yes"; 3900 OS << "\"\n\n"; 3901 3902 // If the attribute is deprecated, print a message about it, and possibly 3903 // provide a replacement attribute. 3904 if (!Doc.Documentation->isValueUnset("Deprecated")) { 3905 OS << "This attribute has been deprecated, and may be removed in a future " 3906 << "version of Clang."; 3907 const Record &Deprecated = *Doc.Documentation->getValueAsDef("Deprecated"); 3908 const StringRef Replacement = Deprecated.getValueAsString("Replacement"); 3909 if (!Replacement.empty()) 3910 OS << " This attribute has been superseded by ``" << Replacement 3911 << "``."; 3912 OS << "\n\n"; 3913 } 3914 3915 const StringRef ContentStr = Doc.Documentation->getValueAsString("Content"); 3916 // Trim leading and trailing newlines and spaces. 3917 OS << ContentStr.trim(); 3918 3919 OS << "\n\n\n"; 3920 } 3921 3922 void EmitClangAttrDocs(RecordKeeper &Records, raw_ostream &OS) { 3923 // Get the documentation introduction paragraph. 3924 const Record *Documentation = Records.getDef("GlobalDocumentation"); 3925 if (!Documentation) { 3926 PrintFatalError("The Documentation top-level definition is missing, " 3927 "no documentation will be generated."); 3928 return; 3929 } 3930 3931 OS << Documentation->getValueAsString("Intro") << "\n"; 3932 3933 // Gather the Documentation lists from each of the attributes, based on the 3934 // category provided. 3935 std::vector<Record *> Attrs = Records.getAllDerivedDefinitions("Attr"); 3936 std::map<const Record *, std::vector<DocumentationData>> SplitDocs; 3937 for (const auto *A : Attrs) { 3938 const Record &Attr = *A; 3939 std::vector<Record *> Docs = Attr.getValueAsListOfDefs("Documentation"); 3940 for (const auto *D : Docs) { 3941 const Record &Doc = *D; 3942 const Record *Category = Doc.getValueAsDef("Category"); 3943 // If the category is "undocumented", then there cannot be any other 3944 // documentation categories (otherwise, the attribute would become 3945 // documented). 3946 const StringRef Cat = Category->getValueAsString("Name"); 3947 bool Undocumented = Cat == "Undocumented"; 3948 if (Undocumented && Docs.size() > 1) 3949 PrintFatalError(Doc.getLoc(), 3950 "Attribute is \"Undocumented\", but has multiple " 3951 "documentation categories"); 3952 3953 if (!Undocumented) 3954 SplitDocs[Category].push_back(DocumentationData( 3955 Doc, Attr, GetAttributeHeadingAndSpellings(Doc, Attr))); 3956 } 3957 } 3958 3959 // Having split the attributes out based on what documentation goes where, 3960 // we can begin to generate sections of documentation. 3961 for (auto &I : SplitDocs) { 3962 WriteCategoryHeader(I.first, OS); 3963 3964 llvm::sort(I.second, 3965 [](const DocumentationData &D1, const DocumentationData &D2) { 3966 return D1.Heading < D2.Heading; 3967 }); 3968 3969 // Walk over each of the attributes in the category and write out their 3970 // documentation. 3971 for (const auto &Doc : I.second) 3972 WriteDocumentation(Records, Doc, OS); 3973 } 3974 } 3975 3976 void EmitTestPragmaAttributeSupportedAttributes(RecordKeeper &Records, 3977 raw_ostream &OS) { 3978 PragmaClangAttributeSupport Support = getPragmaAttributeSupport(Records); 3979 ParsedAttrMap Attrs = getParsedAttrList(Records); 3980 unsigned NumAttrs = 0; 3981 for (const auto &I : Attrs) { 3982 if (Support.isAttributedSupported(*I.second)) 3983 ++NumAttrs; 3984 } 3985 OS << "#pragma clang attribute supports " << NumAttrs << " attributes:\n"; 3986 for (const auto &I : Attrs) { 3987 if (!Support.isAttributedSupported(*I.second)) 3988 continue; 3989 OS << I.first; 3990 if (I.second->isValueUnset("Subjects")) { 3991 OS << " ()\n"; 3992 continue; 3993 } 3994 const Record *SubjectObj = I.second->getValueAsDef("Subjects"); 3995 std::vector<Record *> Subjects = 3996 SubjectObj->getValueAsListOfDefs("Subjects"); 3997 OS << " ("; 3998 for (const auto &Subject : llvm::enumerate(Subjects)) { 3999 if (Subject.index()) 4000 OS << ", "; 4001 PragmaClangAttributeSupport::RuleOrAggregateRuleSet &RuleSet = 4002 Support.SubjectsToRules.find(Subject.value())->getSecond(); 4003 if (RuleSet.isRule()) { 4004 OS << RuleSet.getRule().getEnumValueName(); 4005 continue; 4006 } 4007 OS << "("; 4008 for (const auto &Rule : llvm::enumerate(RuleSet.getAggregateRuleSet())) { 4009 if (Rule.index()) 4010 OS << ", "; 4011 OS << Rule.value().getEnumValueName(); 4012 } 4013 OS << ")"; 4014 } 4015 OS << ")\n"; 4016 } 4017 } 4018 4019 } // end namespace clang 4020