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