1 //===--- InitPreprocessor.cpp - PP initialization code. ---------*- C++ -*-===// 2 // 3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 4 // See https://llvm.org/LICENSE.txt for license information. 5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 6 // 7 //===----------------------------------------------------------------------===// 8 // 9 // This file implements the clang::InitializePreprocessor function. 10 // 11 //===----------------------------------------------------------------------===// 12 13 #include "clang/Basic/DiagnosticLex.h" 14 #include "clang/Basic/HLSLRuntime.h" 15 #include "clang/Basic/MacroBuilder.h" 16 #include "clang/Basic/SourceManager.h" 17 #include "clang/Basic/SyncScope.h" 18 #include "clang/Basic/TargetInfo.h" 19 #include "clang/Basic/Version.h" 20 #include "clang/Frontend/FrontendDiagnostic.h" 21 #include "clang/Frontend/FrontendOptions.h" 22 #include "clang/Frontend/Utils.h" 23 #include "clang/Lex/HeaderSearch.h" 24 #include "clang/Lex/Preprocessor.h" 25 #include "clang/Lex/PreprocessorOptions.h" 26 #include "clang/Serialization/ASTReader.h" 27 #include "llvm/ADT/APFloat.h" 28 #include "llvm/IR/DataLayout.h" 29 #include "llvm/IR/DerivedTypes.h" 30 using namespace clang; 31 32 static bool MacroBodyEndsInBackslash(StringRef MacroBody) { 33 while (!MacroBody.empty() && isWhitespace(MacroBody.back())) 34 MacroBody = MacroBody.drop_back(); 35 return MacroBody.ends_with('\\'); 36 } 37 38 // Append a #define line to Buf for Macro. Macro should be of the form XXX, 39 // in which case we emit "#define XXX 1" or "XXX=Y z W" in which case we emit 40 // "#define XXX Y z W". To get a #define with no value, use "XXX=". 41 static void DefineBuiltinMacro(MacroBuilder &Builder, StringRef Macro, 42 DiagnosticsEngine &Diags) { 43 std::pair<StringRef, StringRef> MacroPair = Macro.split('='); 44 StringRef MacroName = MacroPair.first; 45 StringRef MacroBody = MacroPair.second; 46 if (MacroName.size() != Macro.size()) { 47 // Per GCC -D semantics, the macro ends at \n if it exists. 48 StringRef::size_type End = MacroBody.find_first_of("\n\r"); 49 if (End != StringRef::npos) 50 Diags.Report(diag::warn_fe_macro_contains_embedded_newline) 51 << MacroName; 52 MacroBody = MacroBody.substr(0, End); 53 // We handle macro bodies which end in a backslash by appending an extra 54 // backslash+newline. This makes sure we don't accidentally treat the 55 // backslash as a line continuation marker. 56 if (MacroBodyEndsInBackslash(MacroBody)) 57 Builder.defineMacro(MacroName, Twine(MacroBody) + "\\\n"); 58 else 59 Builder.defineMacro(MacroName, MacroBody); 60 } else { 61 // Push "macroname 1". 62 Builder.defineMacro(Macro); 63 } 64 } 65 66 /// AddImplicitInclude - Add an implicit \#include of the specified file to the 67 /// predefines buffer. 68 /// As these includes are generated by -include arguments the header search 69 /// logic is going to search relatively to the current working directory. 70 static void AddImplicitInclude(MacroBuilder &Builder, StringRef File) { 71 Builder.append(Twine("#include \"") + File + "\""); 72 } 73 74 static void AddImplicitIncludeMacros(MacroBuilder &Builder, StringRef File) { 75 Builder.append(Twine("#__include_macros \"") + File + "\""); 76 // Marker token to stop the __include_macros fetch loop. 77 Builder.append("##"); // ##? 78 } 79 80 /// Add an implicit \#include using the original file used to generate 81 /// a PCH file. 82 static void AddImplicitIncludePCH(MacroBuilder &Builder, Preprocessor &PP, 83 const PCHContainerReader &PCHContainerRdr, 84 StringRef ImplicitIncludePCH) { 85 std::string OriginalFile = ASTReader::getOriginalSourceFile( 86 std::string(ImplicitIncludePCH), PP.getFileManager(), PCHContainerRdr, 87 PP.getDiagnostics()); 88 if (OriginalFile.empty()) 89 return; 90 91 AddImplicitInclude(Builder, OriginalFile); 92 } 93 94 /// PickFP - This is used to pick a value based on the FP semantics of the 95 /// specified FP model. 96 template <typename T> 97 static T PickFP(const llvm::fltSemantics *Sem, T IEEEHalfVal, T IEEESingleVal, 98 T IEEEDoubleVal, T X87DoubleExtendedVal, T PPCDoubleDoubleVal, 99 T IEEEQuadVal) { 100 if (Sem == (const llvm::fltSemantics*)&llvm::APFloat::IEEEhalf()) 101 return IEEEHalfVal; 102 if (Sem == (const llvm::fltSemantics*)&llvm::APFloat::IEEEsingle()) 103 return IEEESingleVal; 104 if (Sem == (const llvm::fltSemantics*)&llvm::APFloat::IEEEdouble()) 105 return IEEEDoubleVal; 106 if (Sem == (const llvm::fltSemantics*)&llvm::APFloat::x87DoubleExtended()) 107 return X87DoubleExtendedVal; 108 if (Sem == (const llvm::fltSemantics*)&llvm::APFloat::PPCDoubleDouble()) 109 return PPCDoubleDoubleVal; 110 assert(Sem == (const llvm::fltSemantics*)&llvm::APFloat::IEEEquad()); 111 return IEEEQuadVal; 112 } 113 114 static void DefineFloatMacros(MacroBuilder &Builder, StringRef Prefix, 115 const llvm::fltSemantics *Sem, StringRef Ext) { 116 const char *DenormMin, *NormMax, *Epsilon, *Max, *Min; 117 NormMax = PickFP(Sem, "6.5504e+4", "3.40282347e+38", 118 "1.7976931348623157e+308", "1.18973149535723176502e+4932", 119 "8.98846567431157953864652595394501e+307", 120 "1.18973149535723176508575932662800702e+4932"); 121 DenormMin = PickFP(Sem, "5.9604644775390625e-8", "1.40129846e-45", 122 "4.9406564584124654e-324", "3.64519953188247460253e-4951", 123 "4.94065645841246544176568792868221e-324", 124 "6.47517511943802511092443895822764655e-4966"); 125 int Digits = PickFP(Sem, 3, 6, 15, 18, 31, 33); 126 int DecimalDigits = PickFP(Sem, 5, 9, 17, 21, 33, 36); 127 Epsilon = PickFP(Sem, "9.765625e-4", "1.19209290e-7", 128 "2.2204460492503131e-16", "1.08420217248550443401e-19", 129 "4.94065645841246544176568792868221e-324", 130 "1.92592994438723585305597794258492732e-34"); 131 int MantissaDigits = PickFP(Sem, 11, 24, 53, 64, 106, 113); 132 int Min10Exp = PickFP(Sem, -4, -37, -307, -4931, -291, -4931); 133 int Max10Exp = PickFP(Sem, 4, 38, 308, 4932, 308, 4932); 134 int MinExp = PickFP(Sem, -13, -125, -1021, -16381, -968, -16381); 135 int MaxExp = PickFP(Sem, 16, 128, 1024, 16384, 1024, 16384); 136 Min = PickFP(Sem, "6.103515625e-5", "1.17549435e-38", "2.2250738585072014e-308", 137 "3.36210314311209350626e-4932", 138 "2.00416836000897277799610805135016e-292", 139 "3.36210314311209350626267781732175260e-4932"); 140 Max = PickFP(Sem, "6.5504e+4", "3.40282347e+38", "1.7976931348623157e+308", 141 "1.18973149535723176502e+4932", 142 "1.79769313486231580793728971405301e+308", 143 "1.18973149535723176508575932662800702e+4932"); 144 145 SmallString<32> DefPrefix; 146 DefPrefix = "__"; 147 DefPrefix += Prefix; 148 DefPrefix += "_"; 149 150 Builder.defineMacro(DefPrefix + "DENORM_MIN__", Twine(DenormMin)+Ext); 151 Builder.defineMacro(DefPrefix + "NORM_MAX__", Twine(NormMax)+Ext); 152 Builder.defineMacro(DefPrefix + "HAS_DENORM__"); 153 Builder.defineMacro(DefPrefix + "DIG__", Twine(Digits)); 154 Builder.defineMacro(DefPrefix + "DECIMAL_DIG__", Twine(DecimalDigits)); 155 Builder.defineMacro(DefPrefix + "EPSILON__", Twine(Epsilon)+Ext); 156 Builder.defineMacro(DefPrefix + "HAS_INFINITY__"); 157 Builder.defineMacro(DefPrefix + "HAS_QUIET_NAN__"); 158 Builder.defineMacro(DefPrefix + "MANT_DIG__", Twine(MantissaDigits)); 159 160 Builder.defineMacro(DefPrefix + "MAX_10_EXP__", Twine(Max10Exp)); 161 Builder.defineMacro(DefPrefix + "MAX_EXP__", Twine(MaxExp)); 162 Builder.defineMacro(DefPrefix + "MAX__", Twine(Max)+Ext); 163 164 Builder.defineMacro(DefPrefix + "MIN_10_EXP__","("+Twine(Min10Exp)+")"); 165 Builder.defineMacro(DefPrefix + "MIN_EXP__", "("+Twine(MinExp)+")"); 166 Builder.defineMacro(DefPrefix + "MIN__", Twine(Min)+Ext); 167 } 168 169 170 /// DefineTypeSize - Emit a macro to the predefines buffer that declares a macro 171 /// named MacroName with the max value for a type with width 'TypeWidth' a 172 /// signedness of 'isSigned' and with a value suffix of 'ValSuffix' (e.g. LL). 173 static void DefineTypeSize(const Twine &MacroName, unsigned TypeWidth, 174 StringRef ValSuffix, bool isSigned, 175 MacroBuilder &Builder) { 176 llvm::APInt MaxVal = isSigned ? llvm::APInt::getSignedMaxValue(TypeWidth) 177 : llvm::APInt::getMaxValue(TypeWidth); 178 Builder.defineMacro(MacroName, toString(MaxVal, 10, isSigned) + ValSuffix); 179 } 180 181 /// DefineTypeSize - An overloaded helper that uses TargetInfo to determine 182 /// the width, suffix, and signedness of the given type 183 static void DefineTypeSize(const Twine &MacroName, TargetInfo::IntType Ty, 184 const TargetInfo &TI, MacroBuilder &Builder) { 185 DefineTypeSize(MacroName, TI.getTypeWidth(Ty), TI.getTypeConstantSuffix(Ty), 186 TI.isTypeSigned(Ty), Builder); 187 } 188 189 static void DefineFmt(const LangOptions &LangOpts, const Twine &Prefix, 190 TargetInfo::IntType Ty, const TargetInfo &TI, 191 MacroBuilder &Builder) { 192 StringRef FmtModifier = TI.getTypeFormatModifier(Ty); 193 auto Emitter = [&](char Fmt) { 194 Builder.defineMacro(Prefix + "_FMT" + Twine(Fmt) + "__", 195 Twine("\"") + FmtModifier + Twine(Fmt) + "\""); 196 }; 197 bool IsSigned = TI.isTypeSigned(Ty); 198 llvm::for_each(StringRef(IsSigned ? "di" : "ouxX"), Emitter); 199 200 // C23 added the b and B modifiers for printing binary output of unsigned 201 // integers. Conditionally define those if compiling in C23 mode. 202 if (LangOpts.C23 && !IsSigned) 203 llvm::for_each(StringRef("bB"), Emitter); 204 } 205 206 static void DefineType(const Twine &MacroName, TargetInfo::IntType Ty, 207 MacroBuilder &Builder) { 208 Builder.defineMacro(MacroName, TargetInfo::getTypeName(Ty)); 209 } 210 211 static void DefineTypeWidth(const Twine &MacroName, TargetInfo::IntType Ty, 212 const TargetInfo &TI, MacroBuilder &Builder) { 213 Builder.defineMacro(MacroName, Twine(TI.getTypeWidth(Ty))); 214 } 215 216 static void DefineTypeSizeof(StringRef MacroName, unsigned BitWidth, 217 const TargetInfo &TI, MacroBuilder &Builder) { 218 Builder.defineMacro(MacroName, 219 Twine(BitWidth / TI.getCharWidth())); 220 } 221 222 // This will generate a macro based on the prefix with `_MAX__` as the suffix 223 // for the max value representable for the type, and a macro with a `_WIDTH__` 224 // suffix for the width of the type. 225 static void DefineTypeSizeAndWidth(const Twine &Prefix, TargetInfo::IntType Ty, 226 const TargetInfo &TI, 227 MacroBuilder &Builder) { 228 DefineTypeSize(Prefix + "_MAX__", Ty, TI, Builder); 229 DefineTypeWidth(Prefix + "_WIDTH__", Ty, TI, Builder); 230 } 231 232 static void DefineExactWidthIntType(const LangOptions &LangOpts, 233 TargetInfo::IntType Ty, 234 const TargetInfo &TI, 235 MacroBuilder &Builder) { 236 int TypeWidth = TI.getTypeWidth(Ty); 237 bool IsSigned = TI.isTypeSigned(Ty); 238 239 // Use the target specified int64 type, when appropriate, so that [u]int64_t 240 // ends up being defined in terms of the correct type. 241 if (TypeWidth == 64) 242 Ty = IsSigned ? TI.getInt64Type() : TI.getUInt64Type(); 243 244 // Use the target specified int16 type when appropriate. Some MCU targets 245 // (such as AVR) have definition of [u]int16_t to [un]signed int. 246 if (TypeWidth == 16) 247 Ty = IsSigned ? TI.getInt16Type() : TI.getUInt16Type(); 248 249 const char *Prefix = IsSigned ? "__INT" : "__UINT"; 250 251 DefineType(Prefix + Twine(TypeWidth) + "_TYPE__", Ty, Builder); 252 DefineFmt(LangOpts, Prefix + Twine(TypeWidth), Ty, TI, Builder); 253 254 StringRef ConstSuffix(TI.getTypeConstantSuffix(Ty)); 255 Builder.defineMacro(Prefix + Twine(TypeWidth) + "_C_SUFFIX__", ConstSuffix); 256 Builder.defineMacro(Prefix + Twine(TypeWidth) + "_C(c)", 257 ConstSuffix.size() ? Twine("c##") + ConstSuffix : "c"); 258 } 259 260 static void DefineExactWidthIntTypeSize(TargetInfo::IntType Ty, 261 const TargetInfo &TI, 262 MacroBuilder &Builder) { 263 int TypeWidth = TI.getTypeWidth(Ty); 264 bool IsSigned = TI.isTypeSigned(Ty); 265 266 // Use the target specified int64 type, when appropriate, so that [u]int64_t 267 // ends up being defined in terms of the correct type. 268 if (TypeWidth == 64) 269 Ty = IsSigned ? TI.getInt64Type() : TI.getUInt64Type(); 270 271 // We don't need to define a _WIDTH macro for the exact-width types because 272 // we already know the width. 273 const char *Prefix = IsSigned ? "__INT" : "__UINT"; 274 DefineTypeSize(Prefix + Twine(TypeWidth) + "_MAX__", Ty, TI, Builder); 275 } 276 277 static void DefineLeastWidthIntType(const LangOptions &LangOpts, 278 unsigned TypeWidth, bool IsSigned, 279 const TargetInfo &TI, 280 MacroBuilder &Builder) { 281 TargetInfo::IntType Ty = TI.getLeastIntTypeByWidth(TypeWidth, IsSigned); 282 if (Ty == TargetInfo::NoInt) 283 return; 284 285 const char *Prefix = IsSigned ? "__INT_LEAST" : "__UINT_LEAST"; 286 DefineType(Prefix + Twine(TypeWidth) + "_TYPE__", Ty, Builder); 287 // We only want the *_WIDTH macro for the signed types to avoid too many 288 // predefined macros (the unsigned width and the signed width are identical.) 289 if (IsSigned) 290 DefineTypeSizeAndWidth(Prefix + Twine(TypeWidth), Ty, TI, Builder); 291 else 292 DefineTypeSize(Prefix + Twine(TypeWidth) + "_MAX__", Ty, TI, Builder); 293 DefineFmt(LangOpts, Prefix + Twine(TypeWidth), Ty, TI, Builder); 294 } 295 296 static void DefineFastIntType(const LangOptions &LangOpts, unsigned TypeWidth, 297 bool IsSigned, const TargetInfo &TI, 298 MacroBuilder &Builder) { 299 // stdint.h currently defines the fast int types as equivalent to the least 300 // types. 301 TargetInfo::IntType Ty = TI.getLeastIntTypeByWidth(TypeWidth, IsSigned); 302 if (Ty == TargetInfo::NoInt) 303 return; 304 305 const char *Prefix = IsSigned ? "__INT_FAST" : "__UINT_FAST"; 306 DefineType(Prefix + Twine(TypeWidth) + "_TYPE__", Ty, Builder); 307 // We only want the *_WIDTH macro for the signed types to avoid too many 308 // predefined macros (the unsigned width and the signed width are identical.) 309 if (IsSigned) 310 DefineTypeSizeAndWidth(Prefix + Twine(TypeWidth), Ty, TI, Builder); 311 else 312 DefineTypeSize(Prefix + Twine(TypeWidth) + "_MAX__", Ty, TI, Builder); 313 DefineFmt(LangOpts, Prefix + Twine(TypeWidth), Ty, TI, Builder); 314 } 315 316 317 /// Get the value the ATOMIC_*_LOCK_FREE macro should have for a type with 318 /// the specified properties. 319 static const char *getLockFreeValue(unsigned TypeWidth, const TargetInfo &TI) { 320 // Fully-aligned, power-of-2 sizes no larger than the inline 321 // width will be inlined as lock-free operations. 322 // Note: we do not need to check alignment since _Atomic(T) is always 323 // appropriately-aligned in clang. 324 if (TI.hasBuiltinAtomic(TypeWidth, TypeWidth)) 325 return "2"; // "always lock free" 326 // We cannot be certain what operations the lib calls might be 327 // able to implement as lock-free on future processors. 328 return "1"; // "sometimes lock free" 329 } 330 331 /// Add definitions required for a smooth interaction between 332 /// Objective-C++ automated reference counting and libstdc++ (4.2). 333 static void AddObjCXXARCLibstdcxxDefines(const LangOptions &LangOpts, 334 MacroBuilder &Builder) { 335 Builder.defineMacro("_GLIBCXX_PREDEFINED_OBJC_ARC_IS_SCALAR"); 336 337 std::string Result; 338 { 339 // Provide specializations for the __is_scalar type trait so that 340 // lifetime-qualified objects are not considered "scalar" types, which 341 // libstdc++ uses as an indicator of the presence of trivial copy, assign, 342 // default-construct, and destruct semantics (none of which hold for 343 // lifetime-qualified objects in ARC). 344 llvm::raw_string_ostream Out(Result); 345 346 Out << "namespace std {\n" 347 << "\n" 348 << "struct __true_type;\n" 349 << "struct __false_type;\n" 350 << "\n"; 351 352 Out << "template<typename _Tp> struct __is_scalar;\n" 353 << "\n"; 354 355 if (LangOpts.ObjCAutoRefCount) { 356 Out << "template<typename _Tp>\n" 357 << "struct __is_scalar<__attribute__((objc_ownership(strong))) _Tp> {\n" 358 << " enum { __value = 0 };\n" 359 << " typedef __false_type __type;\n" 360 << "};\n" 361 << "\n"; 362 } 363 364 if (LangOpts.ObjCWeak) { 365 Out << "template<typename _Tp>\n" 366 << "struct __is_scalar<__attribute__((objc_ownership(weak))) _Tp> {\n" 367 << " enum { __value = 0 };\n" 368 << " typedef __false_type __type;\n" 369 << "};\n" 370 << "\n"; 371 } 372 373 if (LangOpts.ObjCAutoRefCount) { 374 Out << "template<typename _Tp>\n" 375 << "struct __is_scalar<__attribute__((objc_ownership(autoreleasing)))" 376 << " _Tp> {\n" 377 << " enum { __value = 0 };\n" 378 << " typedef __false_type __type;\n" 379 << "};\n" 380 << "\n"; 381 } 382 383 Out << "}\n"; 384 } 385 Builder.append(Result); 386 } 387 388 static void InitializeStandardPredefinedMacros(const TargetInfo &TI, 389 const LangOptions &LangOpts, 390 const FrontendOptions &FEOpts, 391 MacroBuilder &Builder) { 392 if (LangOpts.HLSL) { 393 Builder.defineMacro("__hlsl_clang"); 394 // HLSL Version 395 Builder.defineMacro("__HLSL_VERSION", 396 Twine((unsigned)LangOpts.getHLSLVersion())); 397 Builder.defineMacro("__HLSL_202x", 398 Twine((unsigned)LangOptions::HLSLLangStd::HLSL_202x)); 399 Builder.defineMacro("__HLSL_202y", 400 Twine((unsigned)LangOptions::HLSLLangStd::HLSL_202y)); 401 402 if (LangOpts.NativeHalfType) 403 Builder.defineMacro("__HLSL_ENABLE_16_BIT", "1"); 404 405 // Shader target information 406 // "enums" for shader stages 407 Builder.defineMacro("__SHADER_STAGE_VERTEX", 408 Twine((uint32_t)ShaderStage::Vertex)); 409 Builder.defineMacro("__SHADER_STAGE_PIXEL", 410 Twine((uint32_t)ShaderStage::Pixel)); 411 Builder.defineMacro("__SHADER_STAGE_GEOMETRY", 412 Twine((uint32_t)ShaderStage::Geometry)); 413 Builder.defineMacro("__SHADER_STAGE_HULL", 414 Twine((uint32_t)ShaderStage::Hull)); 415 Builder.defineMacro("__SHADER_STAGE_DOMAIN", 416 Twine((uint32_t)ShaderStage::Domain)); 417 Builder.defineMacro("__SHADER_STAGE_COMPUTE", 418 Twine((uint32_t)ShaderStage::Compute)); 419 Builder.defineMacro("__SHADER_STAGE_AMPLIFICATION", 420 Twine((uint32_t)ShaderStage::Amplification)); 421 Builder.defineMacro("__SHADER_STAGE_MESH", 422 Twine((uint32_t)ShaderStage::Mesh)); 423 Builder.defineMacro("__SHADER_STAGE_LIBRARY", 424 Twine((uint32_t)ShaderStage::Library)); 425 // The current shader stage itself 426 uint32_t StageInteger = static_cast<uint32_t>( 427 hlsl::getStageFromEnvironment(TI.getTriple().getEnvironment())); 428 429 Builder.defineMacro("__SHADER_TARGET_STAGE", Twine(StageInteger)); 430 // Add target versions 431 if (TI.getTriple().getOS() == llvm::Triple::ShaderModel) { 432 VersionTuple Version = TI.getTriple().getOSVersion(); 433 Builder.defineMacro("__SHADER_TARGET_MAJOR", Twine(Version.getMajor())); 434 unsigned Minor = Version.getMinor().value_or(0); 435 Builder.defineMacro("__SHADER_TARGET_MINOR", Twine(Minor)); 436 } 437 return; 438 } 439 // C++ [cpp.predefined]p1: 440 // The following macro names shall be defined by the implementation: 441 442 // -- __STDC__ 443 // [C++] Whether __STDC__ is predefined and if so, what its value is, 444 // are implementation-defined. 445 // (Removed in C++20.) 446 if ((!LangOpts.MSVCCompat || LangOpts.MSVCEnableStdcMacro) && 447 !LangOpts.TraditionalCPP) 448 Builder.defineMacro("__STDC__"); 449 // -- __STDC_HOSTED__ 450 // The integer literal 1 if the implementation is a hosted 451 // implementation or the integer literal 0 if it is not. 452 if (LangOpts.Freestanding) 453 Builder.defineMacro("__STDC_HOSTED__", "0"); 454 else 455 Builder.defineMacro("__STDC_HOSTED__"); 456 457 // -- __STDC_VERSION__ 458 // [C++] Whether __STDC_VERSION__ is predefined and if so, what its 459 // value is, are implementation-defined. 460 // (Removed in C++20.) 461 if (!LangOpts.CPlusPlus) { 462 if (LangOpts.C2y) 463 Builder.defineMacro("__STDC_VERSION__", "202400L"); 464 else if (LangOpts.C23) 465 Builder.defineMacro("__STDC_VERSION__", "202311L"); 466 else if (LangOpts.C17) 467 Builder.defineMacro("__STDC_VERSION__", "201710L"); 468 else if (LangOpts.C11) 469 Builder.defineMacro("__STDC_VERSION__", "201112L"); 470 else if (LangOpts.C99) 471 Builder.defineMacro("__STDC_VERSION__", "199901L"); 472 else if (!LangOpts.GNUMode && LangOpts.Digraphs) 473 Builder.defineMacro("__STDC_VERSION__", "199409L"); 474 } else { 475 // -- __cplusplus 476 if (LangOpts.CPlusPlus26) 477 // FIXME: Use correct value for C++26. 478 Builder.defineMacro("__cplusplus", "202400L"); 479 else if (LangOpts.CPlusPlus23) 480 Builder.defineMacro("__cplusplus", "202302L"); 481 // [C++20] The integer literal 202002L. 482 else if (LangOpts.CPlusPlus20) 483 Builder.defineMacro("__cplusplus", "202002L"); 484 // [C++17] The integer literal 201703L. 485 else if (LangOpts.CPlusPlus17) 486 Builder.defineMacro("__cplusplus", "201703L"); 487 // [C++14] The name __cplusplus is defined to the value 201402L when 488 // compiling a C++ translation unit. 489 else if (LangOpts.CPlusPlus14) 490 Builder.defineMacro("__cplusplus", "201402L"); 491 // [C++11] The name __cplusplus is defined to the value 201103L when 492 // compiling a C++ translation unit. 493 else if (LangOpts.CPlusPlus11) 494 Builder.defineMacro("__cplusplus", "201103L"); 495 // [C++03] The name __cplusplus is defined to the value 199711L when 496 // compiling a C++ translation unit. 497 else 498 Builder.defineMacro("__cplusplus", "199711L"); 499 500 // -- __STDCPP_DEFAULT_NEW_ALIGNMENT__ 501 // [C++17] An integer literal of type std::size_t whose value is the 502 // alignment guaranteed by a call to operator new(std::size_t) 503 // 504 // We provide this in all language modes, since it seems generally useful. 505 Builder.defineMacro("__STDCPP_DEFAULT_NEW_ALIGNMENT__", 506 Twine(TI.getNewAlign() / TI.getCharWidth()) + 507 TI.getTypeConstantSuffix(TI.getSizeType())); 508 509 // -- __STDCPP_THREADS__ 510 // Defined, and has the value integer literal 1, if and only if a 511 // program can have more than one thread of execution. 512 if (LangOpts.getThreadModel() == LangOptions::ThreadModelKind::POSIX) 513 Builder.defineMacro("__STDCPP_THREADS__", "1"); 514 } 515 516 // In C11 these are environment macros. In C++11 they are only defined 517 // as part of <cuchar>. To prevent breakage when mixing C and C++ 518 // code, define these macros unconditionally. We can define them 519 // unconditionally, as Clang always uses UTF-16 and UTF-32 for 16-bit 520 // and 32-bit character literals. 521 Builder.defineMacro("__STDC_UTF_16__", "1"); 522 Builder.defineMacro("__STDC_UTF_32__", "1"); 523 524 // __has_embed definitions 525 Builder.defineMacro("__STDC_EMBED_NOT_FOUND__", 526 llvm::itostr(static_cast<int>(EmbedResult::NotFound))); 527 Builder.defineMacro("__STDC_EMBED_FOUND__", 528 llvm::itostr(static_cast<int>(EmbedResult::Found))); 529 Builder.defineMacro("__STDC_EMBED_EMPTY__", 530 llvm::itostr(static_cast<int>(EmbedResult::Empty))); 531 532 if (LangOpts.ObjC) 533 Builder.defineMacro("__OBJC__"); 534 535 // OpenCL v1.0/1.1 s6.9, v1.2/2.0 s6.10: Preprocessor Directives and Macros. 536 if (LangOpts.OpenCL) { 537 if (LangOpts.CPlusPlus) { 538 switch (LangOpts.OpenCLCPlusPlusVersion) { 539 case 100: 540 Builder.defineMacro("__OPENCL_CPP_VERSION__", "100"); 541 break; 542 case 202100: 543 Builder.defineMacro("__OPENCL_CPP_VERSION__", "202100"); 544 break; 545 default: 546 llvm_unreachable("Unsupported C++ version for OpenCL"); 547 } 548 Builder.defineMacro("__CL_CPP_VERSION_1_0__", "100"); 549 Builder.defineMacro("__CL_CPP_VERSION_2021__", "202100"); 550 } else { 551 // OpenCL v1.0 and v1.1 do not have a predefined macro to indicate the 552 // language standard with which the program is compiled. __OPENCL_VERSION__ 553 // is for the OpenCL version supported by the OpenCL device, which is not 554 // necessarily the language standard with which the program is compiled. 555 // A shared OpenCL header file requires a macro to indicate the language 556 // standard. As a workaround, __OPENCL_C_VERSION__ is defined for 557 // OpenCL v1.0 and v1.1. 558 switch (LangOpts.OpenCLVersion) { 559 case 100: 560 Builder.defineMacro("__OPENCL_C_VERSION__", "100"); 561 break; 562 case 110: 563 Builder.defineMacro("__OPENCL_C_VERSION__", "110"); 564 break; 565 case 120: 566 Builder.defineMacro("__OPENCL_C_VERSION__", "120"); 567 break; 568 case 200: 569 Builder.defineMacro("__OPENCL_C_VERSION__", "200"); 570 break; 571 case 300: 572 Builder.defineMacro("__OPENCL_C_VERSION__", "300"); 573 break; 574 default: 575 llvm_unreachable("Unsupported OpenCL version"); 576 } 577 } 578 Builder.defineMacro("CL_VERSION_1_0", "100"); 579 Builder.defineMacro("CL_VERSION_1_1", "110"); 580 Builder.defineMacro("CL_VERSION_1_2", "120"); 581 Builder.defineMacro("CL_VERSION_2_0", "200"); 582 Builder.defineMacro("CL_VERSION_3_0", "300"); 583 584 if (TI.isLittleEndian()) 585 Builder.defineMacro("__ENDIAN_LITTLE__"); 586 587 if (LangOpts.FastRelaxedMath) 588 Builder.defineMacro("__FAST_RELAXED_MATH__"); 589 } 590 591 if (LangOpts.SYCLIsDevice || LangOpts.SYCLIsHost) { 592 // SYCL Version is set to a value when building SYCL applications 593 if (LangOpts.getSYCLVersion() == LangOptions::SYCL_2017) 594 Builder.defineMacro("CL_SYCL_LANGUAGE_VERSION", "121"); 595 else if (LangOpts.getSYCLVersion() == LangOptions::SYCL_2020) 596 Builder.defineMacro("SYCL_LANGUAGE_VERSION", "202012L"); 597 } 598 599 // Not "standard" per se, but available even with the -undef flag. 600 if (LangOpts.AsmPreprocessor) 601 Builder.defineMacro("__ASSEMBLER__"); 602 if (LangOpts.CUDA) { 603 if (LangOpts.GPURelocatableDeviceCode) 604 Builder.defineMacro("__CLANG_RDC__"); 605 if (!LangOpts.HIP) 606 Builder.defineMacro("__CUDA__"); 607 if (LangOpts.GPUDefaultStream == 608 LangOptions::GPUDefaultStreamKind::PerThread) 609 Builder.defineMacro("CUDA_API_PER_THREAD_DEFAULT_STREAM"); 610 } 611 if (LangOpts.HIP) { 612 Builder.defineMacro("__HIP__"); 613 Builder.defineMacro("__HIPCC__"); 614 Builder.defineMacro("__HIP_MEMORY_SCOPE_SINGLETHREAD", "1"); 615 Builder.defineMacro("__HIP_MEMORY_SCOPE_WAVEFRONT", "2"); 616 Builder.defineMacro("__HIP_MEMORY_SCOPE_WORKGROUP", "3"); 617 Builder.defineMacro("__HIP_MEMORY_SCOPE_AGENT", "4"); 618 Builder.defineMacro("__HIP_MEMORY_SCOPE_SYSTEM", "5"); 619 if (LangOpts.HIPStdPar) { 620 Builder.defineMacro("__HIPSTDPAR__"); 621 if (LangOpts.HIPStdParInterposeAlloc) { 622 Builder.defineMacro("__HIPSTDPAR_INTERPOSE_ALLOC__"); 623 Builder.defineMacro("__HIPSTDPAR_INTERPOSE_ALLOC_V1__"); 624 } 625 } 626 if (LangOpts.CUDAIsDevice) { 627 Builder.defineMacro("__HIP_DEVICE_COMPILE__"); 628 if (!TI.hasHIPImageSupport()) { 629 Builder.defineMacro("__HIP_NO_IMAGE_SUPPORT__", "1"); 630 // Deprecated. 631 Builder.defineMacro("__HIP_NO_IMAGE_SUPPORT", "1"); 632 } 633 } 634 if (LangOpts.GPUDefaultStream == 635 LangOptions::GPUDefaultStreamKind::PerThread) { 636 Builder.defineMacro("__HIP_API_PER_THREAD_DEFAULT_STREAM__"); 637 // Deprecated. 638 Builder.defineMacro("HIP_API_PER_THREAD_DEFAULT_STREAM"); 639 } 640 } 641 642 if (LangOpts.OpenACC) { 643 // FIXME: When we have full support for OpenACC, we should set this to the 644 // version we support. Until then, set as '1' by default, but provide a 645 // temporary mechanism for users to override this so real-world examples can 646 // be tested against. 647 if (!LangOpts.OpenACCMacroOverride.empty()) 648 Builder.defineMacro("_OPENACC", LangOpts.OpenACCMacroOverride); 649 else 650 Builder.defineMacro("_OPENACC", "1"); 651 } 652 } 653 654 /// Initialize the predefined C++ language feature test macros defined in 655 /// ISO/IEC JTC1/SC22/WG21 (C++) SD-6: "SG10 Feature Test Recommendations". 656 static void InitializeCPlusPlusFeatureTestMacros(const LangOptions &LangOpts, 657 MacroBuilder &Builder) { 658 // C++98 features. 659 if (LangOpts.RTTI) 660 Builder.defineMacro("__cpp_rtti", "199711L"); 661 if (LangOpts.CXXExceptions) 662 Builder.defineMacro("__cpp_exceptions", "199711L"); 663 664 // C++11 features. 665 if (LangOpts.CPlusPlus11) { 666 Builder.defineMacro("__cpp_unicode_characters", "200704L"); 667 Builder.defineMacro("__cpp_raw_strings", "200710L"); 668 Builder.defineMacro("__cpp_unicode_literals", "200710L"); 669 Builder.defineMacro("__cpp_user_defined_literals", "200809L"); 670 Builder.defineMacro("__cpp_lambdas", "200907L"); 671 Builder.defineMacro("__cpp_constexpr", LangOpts.CPlusPlus26 ? "202406L" 672 : LangOpts.CPlusPlus23 ? "202211L" 673 : LangOpts.CPlusPlus20 ? "202002L" 674 : LangOpts.CPlusPlus17 ? "201603L" 675 : LangOpts.CPlusPlus14 ? "201304L" 676 : "200704"); 677 Builder.defineMacro("__cpp_constexpr_in_decltype", "201711L"); 678 Builder.defineMacro("__cpp_range_based_for", 679 LangOpts.CPlusPlus23 ? "202211L" 680 : LangOpts.CPlusPlus17 ? "201603L" 681 : "200907"); 682 // C++17 / C++26 static_assert supported as an extension in earlier language 683 // modes, so we use the C++26 value. 684 Builder.defineMacro("__cpp_static_assert", "202306L"); 685 Builder.defineMacro("__cpp_decltype", "200707L"); 686 Builder.defineMacro("__cpp_attributes", "200809L"); 687 Builder.defineMacro("__cpp_rvalue_references", "200610L"); 688 Builder.defineMacro("__cpp_variadic_templates", "200704L"); 689 Builder.defineMacro("__cpp_initializer_lists", "200806L"); 690 Builder.defineMacro("__cpp_delegating_constructors", "200604L"); 691 Builder.defineMacro("__cpp_nsdmi", "200809L"); 692 Builder.defineMacro("__cpp_inheriting_constructors", "201511L"); 693 Builder.defineMacro("__cpp_ref_qualifiers", "200710L"); 694 Builder.defineMacro("__cpp_alias_templates", "200704L"); 695 } 696 if (LangOpts.ThreadsafeStatics) 697 Builder.defineMacro("__cpp_threadsafe_static_init", "200806L"); 698 699 // C++14 features. 700 if (LangOpts.CPlusPlus14) { 701 Builder.defineMacro("__cpp_binary_literals", "201304L"); 702 Builder.defineMacro("__cpp_digit_separators", "201309L"); 703 Builder.defineMacro("__cpp_init_captures", 704 LangOpts.CPlusPlus20 ? "201803L" : "201304L"); 705 Builder.defineMacro("__cpp_generic_lambdas", 706 LangOpts.CPlusPlus20 ? "201707L" : "201304L"); 707 Builder.defineMacro("__cpp_decltype_auto", "201304L"); 708 Builder.defineMacro("__cpp_return_type_deduction", "201304L"); 709 Builder.defineMacro("__cpp_aggregate_nsdmi", "201304L"); 710 Builder.defineMacro("__cpp_variable_templates", "201304L"); 711 } 712 if (LangOpts.SizedDeallocation) 713 Builder.defineMacro("__cpp_sized_deallocation", "201309L"); 714 715 // C++17 features. 716 if (LangOpts.CPlusPlus17) { 717 Builder.defineMacro("__cpp_hex_float", "201603L"); 718 Builder.defineMacro("__cpp_inline_variables", "201606L"); 719 Builder.defineMacro("__cpp_noexcept_function_type", "201510L"); 720 Builder.defineMacro("__cpp_capture_star_this", "201603L"); 721 Builder.defineMacro("__cpp_if_constexpr", "201606L"); 722 Builder.defineMacro("__cpp_deduction_guides", "201703L"); // (not latest) 723 Builder.defineMacro("__cpp_template_auto", "201606L"); // (old name) 724 Builder.defineMacro("__cpp_namespace_attributes", "201411L"); 725 Builder.defineMacro("__cpp_enumerator_attributes", "201411L"); 726 Builder.defineMacro("__cpp_nested_namespace_definitions", "201411L"); 727 Builder.defineMacro("__cpp_variadic_using", "201611L"); 728 Builder.defineMacro("__cpp_aggregate_bases", "201603L"); 729 Builder.defineMacro("__cpp_structured_bindings", "202411L"); 730 Builder.defineMacro("__cpp_nontype_template_args", 731 "201411L"); // (not latest) 732 Builder.defineMacro("__cpp_fold_expressions", "201603L"); 733 Builder.defineMacro("__cpp_guaranteed_copy_elision", "201606L"); 734 Builder.defineMacro("__cpp_nontype_template_parameter_auto", "201606L"); 735 } 736 if (LangOpts.AlignedAllocation && !LangOpts.AlignedAllocationUnavailable) 737 Builder.defineMacro("__cpp_aligned_new", "201606L"); 738 739 Builder.defineMacro("__cpp_template_template_args", "201611L"); 740 741 // C++20 features. 742 if (LangOpts.CPlusPlus20) { 743 Builder.defineMacro("__cpp_aggregate_paren_init", "201902L"); 744 745 Builder.defineMacro("__cpp_concepts", "202002"); 746 Builder.defineMacro("__cpp_conditional_explicit", "201806L"); 747 Builder.defineMacro("__cpp_consteval", "202211L"); 748 Builder.defineMacro("__cpp_constexpr_dynamic_alloc", "201907L"); 749 Builder.defineMacro("__cpp_constinit", "201907L"); 750 Builder.defineMacro("__cpp_impl_coroutine", "201902L"); 751 Builder.defineMacro("__cpp_designated_initializers", "201707L"); 752 Builder.defineMacro("__cpp_impl_three_way_comparison", "201907L"); 753 //Builder.defineMacro("__cpp_modules", "201907L"); 754 Builder.defineMacro("__cpp_using_enum", "201907L"); 755 } 756 // C++23 features. 757 if (LangOpts.CPlusPlus23) { 758 Builder.defineMacro("__cpp_implicit_move", "202207L"); 759 Builder.defineMacro("__cpp_size_t_suffix", "202011L"); 760 Builder.defineMacro("__cpp_if_consteval", "202106L"); 761 Builder.defineMacro("__cpp_multidimensional_subscript", "202211L"); 762 Builder.defineMacro("__cpp_auto_cast", "202110L"); 763 Builder.defineMacro("__cpp_explicit_this_parameter", "202110L"); 764 } 765 766 // We provide those C++23 features as extensions in earlier language modes, so 767 // we also define their feature test macros. 768 if (LangOpts.CPlusPlus11) 769 Builder.defineMacro("__cpp_static_call_operator", "202207L"); 770 Builder.defineMacro("__cpp_named_character_escapes", "202207L"); 771 Builder.defineMacro("__cpp_placeholder_variables", "202306L"); 772 773 // C++26 features supported in earlier language modes. 774 Builder.defineMacro("__cpp_pack_indexing", "202311L"); 775 Builder.defineMacro("__cpp_deleted_function", "202403L"); 776 Builder.defineMacro("__cpp_variadic_friend", "202403L"); 777 // Builder.defineMacro("__cpp_trivial_relocatability", "202502L"); 778 779 if (LangOpts.Char8) 780 Builder.defineMacro("__cpp_char8_t", "202207L"); 781 Builder.defineMacro("__cpp_impl_destroying_delete", "201806L"); 782 } 783 784 /// InitializeOpenCLFeatureTestMacros - Define OpenCL macros based on target 785 /// settings and language version 786 void InitializeOpenCLFeatureTestMacros(const TargetInfo &TI, 787 const LangOptions &Opts, 788 MacroBuilder &Builder) { 789 const llvm::StringMap<bool> &OpenCLFeaturesMap = TI.getSupportedOpenCLOpts(); 790 // FIXME: OpenCL options which affect language semantics/syntax 791 // should be moved into LangOptions. 792 auto defineOpenCLExtMacro = [&](llvm::StringRef Name, auto... OptArgs) { 793 // Check if extension is supported by target and is available in this 794 // OpenCL version 795 if (TI.hasFeatureEnabled(OpenCLFeaturesMap, Name) && 796 OpenCLOptions::isOpenCLOptionAvailableIn(Opts, OptArgs...)) 797 Builder.defineMacro(Name); 798 }; 799 #define OPENCL_GENERIC_EXTENSION(Ext, ...) \ 800 defineOpenCLExtMacro(#Ext, __VA_ARGS__); 801 #include "clang/Basic/OpenCLExtensions.def" 802 803 // Assume compiling for FULL profile 804 Builder.defineMacro("__opencl_c_int64"); 805 } 806 807 llvm::SmallString<32> ConstructFixedPointLiteral(llvm::APFixedPoint Val, 808 llvm::StringRef Suffix) { 809 if (Val.isSigned() && Val == llvm::APFixedPoint::getMin(Val.getSemantics())) { 810 // When representing the min value of a signed fixed point type in source 811 // code, we cannot simply write `-<lowest value>`. For example, the min 812 // value of a `short _Fract` cannot be written as `-1.0hr`. This is because 813 // the parser will read this (and really any negative numerical literal) as 814 // a UnaryOperator that owns a FixedPointLiteral with a positive value 815 // rather than just a FixedPointLiteral with a negative value. Compiling 816 // `-1.0hr` results in an overflow to the maximal value of that fixed point 817 // type. The correct way to represent a signed min value is to instead split 818 // it into two halves, like `(-0.5hr-0.5hr)` which is what the standard 819 // defines SFRACT_MIN as. 820 llvm::SmallString<32> Literal; 821 Literal.push_back('('); 822 llvm::SmallString<32> HalfStr = 823 ConstructFixedPointLiteral(Val.shr(1), Suffix); 824 Literal += HalfStr; 825 Literal += HalfStr; 826 Literal.push_back(')'); 827 return Literal; 828 } 829 830 llvm::SmallString<32> Str(Val.toString()); 831 Str += Suffix; 832 return Str; 833 } 834 835 void DefineFixedPointMacros(const TargetInfo &TI, MacroBuilder &Builder, 836 llvm::StringRef TypeName, llvm::StringRef Suffix, 837 unsigned Width, unsigned Scale, bool Signed) { 838 // Saturation doesn't affect the size or scale of a fixed point type, so we 839 // don't need it here. 840 llvm::FixedPointSemantics FXSema( 841 Width, Scale, Signed, /*IsSaturated=*/false, 842 !Signed && TI.doUnsignedFixedPointTypesHavePadding()); 843 llvm::SmallString<32> MacroPrefix("__"); 844 MacroPrefix += TypeName; 845 Builder.defineMacro(MacroPrefix + "_EPSILON__", 846 ConstructFixedPointLiteral( 847 llvm::APFixedPoint::getEpsilon(FXSema), Suffix)); 848 Builder.defineMacro(MacroPrefix + "_FBIT__", Twine(Scale)); 849 Builder.defineMacro( 850 MacroPrefix + "_MAX__", 851 ConstructFixedPointLiteral(llvm::APFixedPoint::getMax(FXSema), Suffix)); 852 853 // ISO/IEC TR 18037:2008 doesn't specify MIN macros for unsigned types since 854 // they're all just zero. 855 if (Signed) 856 Builder.defineMacro( 857 MacroPrefix + "_MIN__", 858 ConstructFixedPointLiteral(llvm::APFixedPoint::getMin(FXSema), Suffix)); 859 } 860 861 static void InitializePredefinedMacros(const TargetInfo &TI, 862 const LangOptions &LangOpts, 863 const FrontendOptions &FEOpts, 864 const PreprocessorOptions &PPOpts, 865 MacroBuilder &Builder) { 866 // Compiler version introspection macros. 867 Builder.defineMacro("__llvm__"); // LLVM Backend 868 Builder.defineMacro("__clang__"); // Clang Frontend 869 #define TOSTR2(X) #X 870 #define TOSTR(X) TOSTR2(X) 871 Builder.defineMacro("__clang_major__", TOSTR(CLANG_VERSION_MAJOR)); 872 Builder.defineMacro("__clang_minor__", TOSTR(CLANG_VERSION_MINOR)); 873 Builder.defineMacro("__clang_patchlevel__", TOSTR(CLANG_VERSION_PATCHLEVEL)); 874 #undef TOSTR 875 #undef TOSTR2 876 Builder.defineMacro("__clang_version__", 877 "\"" CLANG_VERSION_STRING " " 878 + getClangFullRepositoryVersion() + "\""); 879 880 if (LangOpts.GNUCVersion != 0) { 881 // Major, minor, patch, are given two decimal places each, so 4.2.1 becomes 882 // 40201. 883 unsigned GNUCMajor = LangOpts.GNUCVersion / 100 / 100; 884 unsigned GNUCMinor = LangOpts.GNUCVersion / 100 % 100; 885 unsigned GNUCPatch = LangOpts.GNUCVersion % 100; 886 Builder.defineMacro("__GNUC__", Twine(GNUCMajor)); 887 Builder.defineMacro("__GNUC_MINOR__", Twine(GNUCMinor)); 888 Builder.defineMacro("__GNUC_PATCHLEVEL__", Twine(GNUCPatch)); 889 Builder.defineMacro("__GXX_ABI_VERSION", "1002"); 890 891 if (LangOpts.CPlusPlus) { 892 Builder.defineMacro("__GNUG__", Twine(GNUCMajor)); 893 Builder.defineMacro("__GXX_WEAK__"); 894 } 895 } 896 897 // Define macros for the C11 / C++11 memory orderings 898 Builder.defineMacro("__ATOMIC_RELAXED", "0"); 899 Builder.defineMacro("__ATOMIC_CONSUME", "1"); 900 Builder.defineMacro("__ATOMIC_ACQUIRE", "2"); 901 Builder.defineMacro("__ATOMIC_RELEASE", "3"); 902 Builder.defineMacro("__ATOMIC_ACQ_REL", "4"); 903 Builder.defineMacro("__ATOMIC_SEQ_CST", "5"); 904 905 // Define macros for the clang atomic scopes. 906 Builder.defineMacro("__MEMORY_SCOPE_SYSTEM", "0"); 907 Builder.defineMacro("__MEMORY_SCOPE_DEVICE", "1"); 908 Builder.defineMacro("__MEMORY_SCOPE_WRKGRP", "2"); 909 Builder.defineMacro("__MEMORY_SCOPE_WVFRNT", "3"); 910 Builder.defineMacro("__MEMORY_SCOPE_SINGLE", "4"); 911 912 // Define macros for the OpenCL memory scope. 913 // The values should match AtomicScopeOpenCLModel::ID enum. 914 static_assert( 915 static_cast<unsigned>(AtomicScopeOpenCLModel::WorkGroup) == 1 && 916 static_cast<unsigned>(AtomicScopeOpenCLModel::Device) == 2 && 917 static_cast<unsigned>(AtomicScopeOpenCLModel::AllSVMDevices) == 3 && 918 static_cast<unsigned>(AtomicScopeOpenCLModel::SubGroup) == 4, 919 "Invalid OpenCL memory scope enum definition"); 920 Builder.defineMacro("__OPENCL_MEMORY_SCOPE_WORK_ITEM", "0"); 921 Builder.defineMacro("__OPENCL_MEMORY_SCOPE_WORK_GROUP", "1"); 922 Builder.defineMacro("__OPENCL_MEMORY_SCOPE_DEVICE", "2"); 923 Builder.defineMacro("__OPENCL_MEMORY_SCOPE_ALL_SVM_DEVICES", "3"); 924 Builder.defineMacro("__OPENCL_MEMORY_SCOPE_SUB_GROUP", "4"); 925 926 // Define macros for floating-point data classes, used in __builtin_isfpclass. 927 Builder.defineMacro("__FPCLASS_SNAN", "0x0001"); 928 Builder.defineMacro("__FPCLASS_QNAN", "0x0002"); 929 Builder.defineMacro("__FPCLASS_NEGINF", "0x0004"); 930 Builder.defineMacro("__FPCLASS_NEGNORMAL", "0x0008"); 931 Builder.defineMacro("__FPCLASS_NEGSUBNORMAL", "0x0010"); 932 Builder.defineMacro("__FPCLASS_NEGZERO", "0x0020"); 933 Builder.defineMacro("__FPCLASS_POSZERO", "0x0040"); 934 Builder.defineMacro("__FPCLASS_POSSUBNORMAL", "0x0080"); 935 Builder.defineMacro("__FPCLASS_POSNORMAL", "0x0100"); 936 Builder.defineMacro("__FPCLASS_POSINF", "0x0200"); 937 938 // Support for #pragma redefine_extname (Sun compatibility) 939 Builder.defineMacro("__PRAGMA_REDEFINE_EXTNAME", "1"); 940 941 // Previously this macro was set to a string aiming to achieve compatibility 942 // with GCC 4.2.1. Now, just return the full Clang version 943 Builder.defineMacro("__VERSION__", "\"" + 944 Twine(getClangFullCPPVersion()) + "\""); 945 946 // Initialize language-specific preprocessor defines. 947 948 // Standard conforming mode? 949 if (!LangOpts.GNUMode && !LangOpts.MSVCCompat) 950 Builder.defineMacro("__STRICT_ANSI__"); 951 952 if (LangOpts.GNUCVersion && LangOpts.CPlusPlus11) 953 Builder.defineMacro("__GXX_EXPERIMENTAL_CXX0X__"); 954 955 if (TI.getTriple().isWindowsGNUEnvironment()) { 956 // Set ABI defining macros for libstdc++ for MinGW, where the 957 // default in libstdc++ differs from the defaults for this target. 958 Builder.defineMacro("__GXX_TYPEINFO_EQUALITY_INLINE", "0"); 959 } 960 961 if (LangOpts.ObjC) { 962 if (LangOpts.ObjCRuntime.isNonFragile()) { 963 Builder.defineMacro("__OBJC2__"); 964 965 if (LangOpts.ObjCExceptions) 966 Builder.defineMacro("OBJC_ZEROCOST_EXCEPTIONS"); 967 } 968 969 if (LangOpts.getGC() != LangOptions::NonGC) 970 Builder.defineMacro("__OBJC_GC__"); 971 972 if (LangOpts.ObjCRuntime.isNeXTFamily()) 973 Builder.defineMacro("__NEXT_RUNTIME__"); 974 975 if (LangOpts.ObjCRuntime.getKind() == ObjCRuntime::GNUstep) { 976 auto version = LangOpts.ObjCRuntime.getVersion(); 977 // Don't rely on the tuple argument, because we can be asked to target 978 // later ABIs than we actually support, so clamp these values to those 979 // currently supported 980 if (version >= VersionTuple(2, 0)) 981 Builder.defineMacro("__OBJC_GNUSTEP_RUNTIME_ABI__", "20"); 982 else 983 Builder.defineMacro( 984 "__OBJC_GNUSTEP_RUNTIME_ABI__", 985 "1" + Twine(std::min(8U, version.getMinor().value_or(0)))); 986 } 987 988 if (LangOpts.ObjCRuntime.getKind() == ObjCRuntime::ObjFW) { 989 VersionTuple tuple = LangOpts.ObjCRuntime.getVersion(); 990 unsigned minor = tuple.getMinor().value_or(0); 991 unsigned subminor = tuple.getSubminor().value_or(0); 992 Builder.defineMacro("__OBJFW_RUNTIME_ABI__", 993 Twine(tuple.getMajor() * 10000 + minor * 100 + 994 subminor)); 995 } 996 997 Builder.defineMacro("IBOutlet", "__attribute__((iboutlet))"); 998 Builder.defineMacro("IBOutletCollection(ClassName)", 999 "__attribute__((iboutletcollection(ClassName)))"); 1000 Builder.defineMacro("IBAction", "void)__attribute__((ibaction)"); 1001 Builder.defineMacro("IBInspectable", ""); 1002 Builder.defineMacro("IB_DESIGNABLE", ""); 1003 } 1004 1005 // Define a macro that describes the Objective-C boolean type even for C 1006 // and C++ since BOOL can be used from non Objective-C code. 1007 Builder.defineMacro("__OBJC_BOOL_IS_BOOL", 1008 Twine(TI.useSignedCharForObjCBool() ? "0" : "1")); 1009 1010 if (LangOpts.CPlusPlus) 1011 InitializeCPlusPlusFeatureTestMacros(LangOpts, Builder); 1012 1013 // darwin_constant_cfstrings controls this. This is also dependent 1014 // on other things like the runtime I believe. This is set even for C code. 1015 if (!LangOpts.NoConstantCFStrings) 1016 Builder.defineMacro("__CONSTANT_CFSTRINGS__"); 1017 1018 if (LangOpts.ObjC) 1019 Builder.defineMacro("OBJC_NEW_PROPERTIES"); 1020 1021 if (LangOpts.PascalStrings) 1022 Builder.defineMacro("__PASCAL_STRINGS__"); 1023 1024 if (LangOpts.Blocks) { 1025 Builder.defineMacro("__block", "__attribute__((__blocks__(byref)))"); 1026 Builder.defineMacro("__BLOCKS__"); 1027 } 1028 1029 if (!LangOpts.MSVCCompat && LangOpts.Exceptions) 1030 Builder.defineMacro("__EXCEPTIONS"); 1031 if (LangOpts.GNUCVersion && LangOpts.RTTI) 1032 Builder.defineMacro("__GXX_RTTI"); 1033 1034 if (LangOpts.hasSjLjExceptions()) 1035 Builder.defineMacro("__USING_SJLJ_EXCEPTIONS__"); 1036 else if (LangOpts.hasSEHExceptions()) 1037 Builder.defineMacro("__SEH__"); 1038 else if (LangOpts.hasDWARFExceptions() && 1039 (TI.getTriple().isThumb() || TI.getTriple().isARM())) 1040 Builder.defineMacro("__ARM_DWARF_EH__"); 1041 else if (LangOpts.hasWasmExceptions() && TI.getTriple().isWasm()) 1042 Builder.defineMacro("__WASM_EXCEPTIONS__"); 1043 1044 if (LangOpts.Deprecated) 1045 Builder.defineMacro("__DEPRECATED"); 1046 1047 if (!LangOpts.MSVCCompat && LangOpts.CPlusPlus) 1048 Builder.defineMacro("__private_extern__", "extern"); 1049 1050 if (LangOpts.MicrosoftExt) { 1051 if (LangOpts.WChar) { 1052 // wchar_t supported as a keyword. 1053 Builder.defineMacro("_WCHAR_T_DEFINED"); 1054 Builder.defineMacro("_NATIVE_WCHAR_T_DEFINED"); 1055 } 1056 } 1057 1058 // Macros to help identify the narrow and wide character sets 1059 // FIXME: clang currently ignores -fexec-charset=. If this changes, 1060 // then this may need to be updated. 1061 Builder.defineMacro("__clang_literal_encoding__", "\"UTF-8\""); 1062 if (TI.getTypeWidth(TI.getWCharType()) >= 32) { 1063 // FIXME: 32-bit wchar_t signals UTF-32. This may change 1064 // if -fwide-exec-charset= is ever supported. 1065 Builder.defineMacro("__clang_wide_literal_encoding__", "\"UTF-32\""); 1066 } else { 1067 // FIXME: Less-than 32-bit wchar_t generally means UTF-16 1068 // (e.g., Windows, 32-bit IBM). This may need to be 1069 // updated if -fwide-exec-charset= is ever supported. 1070 Builder.defineMacro("__clang_wide_literal_encoding__", "\"UTF-16\""); 1071 } 1072 1073 if (LangOpts.Optimize) 1074 Builder.defineMacro("__OPTIMIZE__"); 1075 if (LangOpts.OptimizeSize) 1076 Builder.defineMacro("__OPTIMIZE_SIZE__"); 1077 1078 if (LangOpts.FastMath) 1079 Builder.defineMacro("__FAST_MATH__"); 1080 1081 // Initialize target-specific preprocessor defines. 1082 1083 // __BYTE_ORDER__ was added in GCC 4.6. It's analogous 1084 // to the macro __BYTE_ORDER (no trailing underscores) 1085 // from glibc's <endian.h> header. 1086 // We don't support the PDP-11 as a target, but include 1087 // the define so it can still be compared against. 1088 Builder.defineMacro("__ORDER_LITTLE_ENDIAN__", "1234"); 1089 Builder.defineMacro("__ORDER_BIG_ENDIAN__", "4321"); 1090 Builder.defineMacro("__ORDER_PDP_ENDIAN__", "3412"); 1091 if (TI.isBigEndian()) { 1092 Builder.defineMacro("__BYTE_ORDER__", "__ORDER_BIG_ENDIAN__"); 1093 Builder.defineMacro("__BIG_ENDIAN__"); 1094 } else { 1095 Builder.defineMacro("__BYTE_ORDER__", "__ORDER_LITTLE_ENDIAN__"); 1096 Builder.defineMacro("__LITTLE_ENDIAN__"); 1097 } 1098 1099 if (TI.getPointerWidth(LangAS::Default) == 64 && TI.getLongWidth() == 64 && 1100 TI.getIntWidth() == 32) { 1101 Builder.defineMacro("_LP64"); 1102 Builder.defineMacro("__LP64__"); 1103 } 1104 1105 if (TI.getPointerWidth(LangAS::Default) == 32 && TI.getLongWidth() == 32 && 1106 TI.getIntWidth() == 32) { 1107 Builder.defineMacro("_ILP32"); 1108 Builder.defineMacro("__ILP32__"); 1109 } 1110 1111 // Define type sizing macros based on the target properties. 1112 assert(TI.getCharWidth() == 8 && "Only support 8-bit char so far"); 1113 Builder.defineMacro("__CHAR_BIT__", Twine(TI.getCharWidth())); 1114 1115 // The macro is specifying the number of bits in the width, not the number of 1116 // bits the object requires for its in-memory representation, which is what 1117 // getBoolWidth() will return. The bool/_Bool data type is only ever one bit 1118 // wide. See C23 6.2.6.2p2 for the rules in C. Note that 1119 // C++23 [basic.fundamental]p10 allows an implementation-defined value 1120 // representation for bool; when lowering to LLVM, Clang represents bool as an 1121 // i8 in memory but as an i1 when the value is needed, so '1' is also correct 1122 // for C++. 1123 Builder.defineMacro("__BOOL_WIDTH__", "1"); 1124 Builder.defineMacro("__SHRT_WIDTH__", Twine(TI.getShortWidth())); 1125 Builder.defineMacro("__INT_WIDTH__", Twine(TI.getIntWidth())); 1126 Builder.defineMacro("__LONG_WIDTH__", Twine(TI.getLongWidth())); 1127 Builder.defineMacro("__LLONG_WIDTH__", Twine(TI.getLongLongWidth())); 1128 1129 size_t BitIntMaxWidth = TI.getMaxBitIntWidth(); 1130 assert(BitIntMaxWidth <= llvm::IntegerType::MAX_INT_BITS && 1131 "Target defined a max bit width larger than LLVM can support!"); 1132 assert(BitIntMaxWidth >= TI.getLongLongWidth() && 1133 "Target defined a max bit width smaller than the C standard allows!"); 1134 Builder.defineMacro("__BITINT_MAXWIDTH__", Twine(BitIntMaxWidth)); 1135 1136 DefineTypeSize("__SCHAR_MAX__", TargetInfo::SignedChar, TI, Builder); 1137 DefineTypeSize("__SHRT_MAX__", TargetInfo::SignedShort, TI, Builder); 1138 DefineTypeSize("__INT_MAX__", TargetInfo::SignedInt, TI, Builder); 1139 DefineTypeSize("__LONG_MAX__", TargetInfo::SignedLong, TI, Builder); 1140 DefineTypeSize("__LONG_LONG_MAX__", TargetInfo::SignedLongLong, TI, Builder); 1141 DefineTypeSizeAndWidth("__WCHAR", TI.getWCharType(), TI, Builder); 1142 DefineTypeSizeAndWidth("__WINT", TI.getWIntType(), TI, Builder); 1143 DefineTypeSizeAndWidth("__INTMAX", TI.getIntMaxType(), TI, Builder); 1144 DefineTypeSizeAndWidth("__SIZE", TI.getSizeType(), TI, Builder); 1145 1146 DefineTypeSizeAndWidth("__UINTMAX", TI.getUIntMaxType(), TI, Builder); 1147 DefineTypeSizeAndWidth("__PTRDIFF", TI.getPtrDiffType(LangAS::Default), TI, 1148 Builder); 1149 DefineTypeSizeAndWidth("__INTPTR", TI.getIntPtrType(), TI, Builder); 1150 DefineTypeSizeAndWidth("__UINTPTR", TI.getUIntPtrType(), TI, Builder); 1151 1152 DefineTypeSizeof("__SIZEOF_DOUBLE__", TI.getDoubleWidth(), TI, Builder); 1153 DefineTypeSizeof("__SIZEOF_FLOAT__", TI.getFloatWidth(), TI, Builder); 1154 DefineTypeSizeof("__SIZEOF_INT__", TI.getIntWidth(), TI, Builder); 1155 DefineTypeSizeof("__SIZEOF_LONG__", TI.getLongWidth(), TI, Builder); 1156 DefineTypeSizeof("__SIZEOF_LONG_DOUBLE__",TI.getLongDoubleWidth(),TI,Builder); 1157 DefineTypeSizeof("__SIZEOF_LONG_LONG__", TI.getLongLongWidth(), TI, Builder); 1158 DefineTypeSizeof("__SIZEOF_POINTER__", TI.getPointerWidth(LangAS::Default), 1159 TI, Builder); 1160 DefineTypeSizeof("__SIZEOF_SHORT__", TI.getShortWidth(), TI, Builder); 1161 DefineTypeSizeof("__SIZEOF_PTRDIFF_T__", 1162 TI.getTypeWidth(TI.getPtrDiffType(LangAS::Default)), TI, 1163 Builder); 1164 DefineTypeSizeof("__SIZEOF_SIZE_T__", 1165 TI.getTypeWidth(TI.getSizeType()), TI, Builder); 1166 DefineTypeSizeof("__SIZEOF_WCHAR_T__", 1167 TI.getTypeWidth(TI.getWCharType()), TI, Builder); 1168 DefineTypeSizeof("__SIZEOF_WINT_T__", 1169 TI.getTypeWidth(TI.getWIntType()), TI, Builder); 1170 if (TI.hasInt128Type()) 1171 DefineTypeSizeof("__SIZEOF_INT128__", 128, TI, Builder); 1172 1173 DefineType("__INTMAX_TYPE__", TI.getIntMaxType(), Builder); 1174 DefineFmt(LangOpts, "__INTMAX", TI.getIntMaxType(), TI, Builder); 1175 StringRef ConstSuffix(TI.getTypeConstantSuffix(TI.getIntMaxType())); 1176 Builder.defineMacro("__INTMAX_C_SUFFIX__", ConstSuffix); 1177 Builder.defineMacro("__INTMAX_C(c)", 1178 ConstSuffix.size() ? Twine("c##") + ConstSuffix : "c"); 1179 DefineType("__UINTMAX_TYPE__", TI.getUIntMaxType(), Builder); 1180 DefineFmt(LangOpts, "__UINTMAX", TI.getUIntMaxType(), TI, Builder); 1181 ConstSuffix = TI.getTypeConstantSuffix(TI.getUIntMaxType()); 1182 Builder.defineMacro("__UINTMAX_C_SUFFIX__", ConstSuffix); 1183 Builder.defineMacro("__UINTMAX_C(c)", 1184 ConstSuffix.size() ? Twine("c##") + ConstSuffix : "c"); 1185 DefineType("__PTRDIFF_TYPE__", TI.getPtrDiffType(LangAS::Default), Builder); 1186 DefineFmt(LangOpts, "__PTRDIFF", TI.getPtrDiffType(LangAS::Default), TI, 1187 Builder); 1188 DefineType("__INTPTR_TYPE__", TI.getIntPtrType(), Builder); 1189 DefineFmt(LangOpts, "__INTPTR", TI.getIntPtrType(), TI, Builder); 1190 DefineType("__SIZE_TYPE__", TI.getSizeType(), Builder); 1191 DefineFmt(LangOpts, "__SIZE", TI.getSizeType(), TI, Builder); 1192 DefineType("__WCHAR_TYPE__", TI.getWCharType(), Builder); 1193 DefineType("__WINT_TYPE__", TI.getWIntType(), Builder); 1194 DefineTypeSizeAndWidth("__SIG_ATOMIC", TI.getSigAtomicType(), TI, Builder); 1195 if (LangOpts.C23) 1196 DefineType("__CHAR8_TYPE__", TI.UnsignedChar, Builder); 1197 DefineType("__CHAR16_TYPE__", TI.getChar16Type(), Builder); 1198 DefineType("__CHAR32_TYPE__", TI.getChar32Type(), Builder); 1199 1200 DefineType("__UINTPTR_TYPE__", TI.getUIntPtrType(), Builder); 1201 DefineFmt(LangOpts, "__UINTPTR", TI.getUIntPtrType(), TI, Builder); 1202 1203 // The C standard requires the width of uintptr_t and intptr_t to be the same, 1204 // per 7.20.2.4p1. Same for intmax_t and uintmax_t, per 7.20.2.5p1. 1205 assert(TI.getTypeWidth(TI.getUIntPtrType()) == 1206 TI.getTypeWidth(TI.getIntPtrType()) && 1207 "uintptr_t and intptr_t have different widths?"); 1208 assert(TI.getTypeWidth(TI.getUIntMaxType()) == 1209 TI.getTypeWidth(TI.getIntMaxType()) && 1210 "uintmax_t and intmax_t have different widths?"); 1211 1212 if (LangOpts.FixedPoint) { 1213 // Each unsigned type has the same width as their signed type. 1214 DefineFixedPointMacros(TI, Builder, "SFRACT", "HR", TI.getShortFractWidth(), 1215 TI.getShortFractScale(), /*Signed=*/true); 1216 DefineFixedPointMacros(TI, Builder, "USFRACT", "UHR", 1217 TI.getShortFractWidth(), 1218 TI.getUnsignedShortFractScale(), /*Signed=*/false); 1219 DefineFixedPointMacros(TI, Builder, "FRACT", "R", TI.getFractWidth(), 1220 TI.getFractScale(), /*Signed=*/true); 1221 DefineFixedPointMacros(TI, Builder, "UFRACT", "UR", TI.getFractWidth(), 1222 TI.getUnsignedFractScale(), /*Signed=*/false); 1223 DefineFixedPointMacros(TI, Builder, "LFRACT", "LR", TI.getLongFractWidth(), 1224 TI.getLongFractScale(), /*Signed=*/true); 1225 DefineFixedPointMacros(TI, Builder, "ULFRACT", "ULR", 1226 TI.getLongFractWidth(), 1227 TI.getUnsignedLongFractScale(), /*Signed=*/false); 1228 DefineFixedPointMacros(TI, Builder, "SACCUM", "HK", TI.getShortAccumWidth(), 1229 TI.getShortAccumScale(), /*Signed=*/true); 1230 DefineFixedPointMacros(TI, Builder, "USACCUM", "UHK", 1231 TI.getShortAccumWidth(), 1232 TI.getUnsignedShortAccumScale(), /*Signed=*/false); 1233 DefineFixedPointMacros(TI, Builder, "ACCUM", "K", TI.getAccumWidth(), 1234 TI.getAccumScale(), /*Signed=*/true); 1235 DefineFixedPointMacros(TI, Builder, "UACCUM", "UK", TI.getAccumWidth(), 1236 TI.getUnsignedAccumScale(), /*Signed=*/false); 1237 DefineFixedPointMacros(TI, Builder, "LACCUM", "LK", TI.getLongAccumWidth(), 1238 TI.getLongAccumScale(), /*Signed=*/true); 1239 DefineFixedPointMacros(TI, Builder, "ULACCUM", "ULK", 1240 TI.getLongAccumWidth(), 1241 TI.getUnsignedLongAccumScale(), /*Signed=*/false); 1242 1243 Builder.defineMacro("__SACCUM_IBIT__", Twine(TI.getShortAccumIBits())); 1244 Builder.defineMacro("__USACCUM_IBIT__", 1245 Twine(TI.getUnsignedShortAccumIBits())); 1246 Builder.defineMacro("__ACCUM_IBIT__", Twine(TI.getAccumIBits())); 1247 Builder.defineMacro("__UACCUM_IBIT__", Twine(TI.getUnsignedAccumIBits())); 1248 Builder.defineMacro("__LACCUM_IBIT__", Twine(TI.getLongAccumIBits())); 1249 Builder.defineMacro("__ULACCUM_IBIT__", 1250 Twine(TI.getUnsignedLongAccumIBits())); 1251 } 1252 1253 if (TI.hasFloat16Type()) 1254 DefineFloatMacros(Builder, "FLT16", &TI.getHalfFormat(), "F16"); 1255 DefineFloatMacros(Builder, "FLT", &TI.getFloatFormat(), "F"); 1256 DefineFloatMacros(Builder, "DBL", &TI.getDoubleFormat(), ""); 1257 DefineFloatMacros(Builder, "LDBL", &TI.getLongDoubleFormat(), "L"); 1258 1259 // Define a __POINTER_WIDTH__ macro for stdint.h. 1260 Builder.defineMacro("__POINTER_WIDTH__", 1261 Twine((int)TI.getPointerWidth(LangAS::Default))); 1262 1263 // Define __BIGGEST_ALIGNMENT__ to be compatible with gcc. 1264 Builder.defineMacro("__BIGGEST_ALIGNMENT__", 1265 Twine(TI.getSuitableAlign() / TI.getCharWidth()) ); 1266 1267 if (!LangOpts.CharIsSigned) 1268 Builder.defineMacro("__CHAR_UNSIGNED__"); 1269 1270 if (!TargetInfo::isTypeSigned(TI.getWCharType())) 1271 Builder.defineMacro("__WCHAR_UNSIGNED__"); 1272 1273 if (!TargetInfo::isTypeSigned(TI.getWIntType())) 1274 Builder.defineMacro("__WINT_UNSIGNED__"); 1275 1276 // Define exact-width integer types for stdint.h 1277 DefineExactWidthIntType(LangOpts, TargetInfo::SignedChar, TI, Builder); 1278 1279 if (TI.getShortWidth() > TI.getCharWidth()) 1280 DefineExactWidthIntType(LangOpts, TargetInfo::SignedShort, TI, Builder); 1281 1282 if (TI.getIntWidth() > TI.getShortWidth()) 1283 DefineExactWidthIntType(LangOpts, TargetInfo::SignedInt, TI, Builder); 1284 1285 if (TI.getLongWidth() > TI.getIntWidth()) 1286 DefineExactWidthIntType(LangOpts, TargetInfo::SignedLong, TI, Builder); 1287 1288 if (TI.getLongLongWidth() > TI.getLongWidth()) 1289 DefineExactWidthIntType(LangOpts, TargetInfo::SignedLongLong, TI, Builder); 1290 1291 DefineExactWidthIntType(LangOpts, TargetInfo::UnsignedChar, TI, Builder); 1292 DefineExactWidthIntTypeSize(TargetInfo::UnsignedChar, TI, Builder); 1293 DefineExactWidthIntTypeSize(TargetInfo::SignedChar, TI, Builder); 1294 1295 if (TI.getShortWidth() > TI.getCharWidth()) { 1296 DefineExactWidthIntType(LangOpts, TargetInfo::UnsignedShort, TI, Builder); 1297 DefineExactWidthIntTypeSize(TargetInfo::UnsignedShort, TI, Builder); 1298 DefineExactWidthIntTypeSize(TargetInfo::SignedShort, TI, Builder); 1299 } 1300 1301 if (TI.getIntWidth() > TI.getShortWidth()) { 1302 DefineExactWidthIntType(LangOpts, TargetInfo::UnsignedInt, TI, Builder); 1303 DefineExactWidthIntTypeSize(TargetInfo::UnsignedInt, TI, Builder); 1304 DefineExactWidthIntTypeSize(TargetInfo::SignedInt, TI, Builder); 1305 } 1306 1307 if (TI.getLongWidth() > TI.getIntWidth()) { 1308 DefineExactWidthIntType(LangOpts, TargetInfo::UnsignedLong, TI, Builder); 1309 DefineExactWidthIntTypeSize(TargetInfo::UnsignedLong, TI, Builder); 1310 DefineExactWidthIntTypeSize(TargetInfo::SignedLong, TI, Builder); 1311 } 1312 1313 if (TI.getLongLongWidth() > TI.getLongWidth()) { 1314 DefineExactWidthIntType(LangOpts, TargetInfo::UnsignedLongLong, TI, 1315 Builder); 1316 DefineExactWidthIntTypeSize(TargetInfo::UnsignedLongLong, TI, Builder); 1317 DefineExactWidthIntTypeSize(TargetInfo::SignedLongLong, TI, Builder); 1318 } 1319 1320 DefineLeastWidthIntType(LangOpts, 8, true, TI, Builder); 1321 DefineLeastWidthIntType(LangOpts, 8, false, TI, Builder); 1322 DefineLeastWidthIntType(LangOpts, 16, true, TI, Builder); 1323 DefineLeastWidthIntType(LangOpts, 16, false, TI, Builder); 1324 DefineLeastWidthIntType(LangOpts, 32, true, TI, Builder); 1325 DefineLeastWidthIntType(LangOpts, 32, false, TI, Builder); 1326 DefineLeastWidthIntType(LangOpts, 64, true, TI, Builder); 1327 DefineLeastWidthIntType(LangOpts, 64, false, TI, Builder); 1328 1329 DefineFastIntType(LangOpts, 8, true, TI, Builder); 1330 DefineFastIntType(LangOpts, 8, false, TI, Builder); 1331 DefineFastIntType(LangOpts, 16, true, TI, Builder); 1332 DefineFastIntType(LangOpts, 16, false, TI, Builder); 1333 DefineFastIntType(LangOpts, 32, true, TI, Builder); 1334 DefineFastIntType(LangOpts, 32, false, TI, Builder); 1335 DefineFastIntType(LangOpts, 64, true, TI, Builder); 1336 DefineFastIntType(LangOpts, 64, false, TI, Builder); 1337 1338 Builder.defineMacro("__USER_LABEL_PREFIX__", TI.getUserLabelPrefix()); 1339 1340 if (!LangOpts.MathErrno) 1341 Builder.defineMacro("__NO_MATH_ERRNO__"); 1342 1343 if (LangOpts.FastMath || (LangOpts.NoHonorInfs && LangOpts.NoHonorNaNs)) 1344 Builder.defineMacro("__FINITE_MATH_ONLY__", "1"); 1345 else 1346 Builder.defineMacro("__FINITE_MATH_ONLY__", "0"); 1347 1348 if (LangOpts.GNUCVersion) { 1349 if (LangOpts.GNUInline || LangOpts.CPlusPlus) 1350 Builder.defineMacro("__GNUC_GNU_INLINE__"); 1351 else 1352 Builder.defineMacro("__GNUC_STDC_INLINE__"); 1353 1354 // The value written by __atomic_test_and_set. 1355 // FIXME: This is target-dependent. 1356 Builder.defineMacro("__GCC_ATOMIC_TEST_AND_SET_TRUEVAL", "1"); 1357 } 1358 1359 // GCC defines these macros in both C and C++ modes despite them being needed 1360 // mostly for STL implementations in C++. 1361 auto [Destructive, Constructive] = TI.hardwareInterferenceSizes(); 1362 Builder.defineMacro("__GCC_DESTRUCTIVE_SIZE", Twine(Destructive)); 1363 Builder.defineMacro("__GCC_CONSTRUCTIVE_SIZE", Twine(Constructive)); 1364 // We need to use push_macro to allow users to redefine these macros from the 1365 // command line with -D and not issue a -Wmacro-redefined warning. 1366 Builder.append("#pragma push_macro(\"__GCC_DESTRUCTIVE_SIZE\")"); 1367 Builder.append("#pragma push_macro(\"__GCC_CONSTRUCTIVE_SIZE\")"); 1368 1369 auto addLockFreeMacros = [&](const llvm::Twine &Prefix) { 1370 // Used by libc++ and libstdc++ to implement ATOMIC_<foo>_LOCK_FREE. 1371 #define DEFINE_LOCK_FREE_MACRO(TYPE, Type) \ 1372 Builder.defineMacro(Prefix + #TYPE "_LOCK_FREE", \ 1373 getLockFreeValue(TI.get##Type##Width(), TI)); 1374 DEFINE_LOCK_FREE_MACRO(BOOL, Bool); 1375 DEFINE_LOCK_FREE_MACRO(CHAR, Char); 1376 // char8_t has the same representation / width as unsigned 1377 // char in C++ and is a typedef for unsigned char in C23 1378 if (LangOpts.Char8 || LangOpts.C23) 1379 DEFINE_LOCK_FREE_MACRO(CHAR8_T, Char); 1380 DEFINE_LOCK_FREE_MACRO(CHAR16_T, Char16); 1381 DEFINE_LOCK_FREE_MACRO(CHAR32_T, Char32); 1382 DEFINE_LOCK_FREE_MACRO(WCHAR_T, WChar); 1383 DEFINE_LOCK_FREE_MACRO(SHORT, Short); 1384 DEFINE_LOCK_FREE_MACRO(INT, Int); 1385 DEFINE_LOCK_FREE_MACRO(LONG, Long); 1386 DEFINE_LOCK_FREE_MACRO(LLONG, LongLong); 1387 Builder.defineMacro( 1388 Prefix + "POINTER_LOCK_FREE", 1389 getLockFreeValue(TI.getPointerWidth(LangAS::Default), TI)); 1390 #undef DEFINE_LOCK_FREE_MACRO 1391 }; 1392 addLockFreeMacros("__CLANG_ATOMIC_"); 1393 if (LangOpts.GNUCVersion) 1394 addLockFreeMacros("__GCC_ATOMIC_"); 1395 1396 if (LangOpts.NoInlineDefine) 1397 Builder.defineMacro("__NO_INLINE__"); 1398 1399 if (unsigned PICLevel = LangOpts.PICLevel) { 1400 Builder.defineMacro("__PIC__", Twine(PICLevel)); 1401 Builder.defineMacro("__pic__", Twine(PICLevel)); 1402 if (LangOpts.PIE) { 1403 Builder.defineMacro("__PIE__", Twine(PICLevel)); 1404 Builder.defineMacro("__pie__", Twine(PICLevel)); 1405 } 1406 } 1407 1408 // Macros to control C99 numerics and <float.h> 1409 Builder.defineMacro("__FLT_RADIX__", "2"); 1410 Builder.defineMacro("__DECIMAL_DIG__", "__LDBL_DECIMAL_DIG__"); 1411 1412 if (LangOpts.getStackProtector() == LangOptions::SSPOn) 1413 Builder.defineMacro("__SSP__"); 1414 else if (LangOpts.getStackProtector() == LangOptions::SSPStrong) 1415 Builder.defineMacro("__SSP_STRONG__", "2"); 1416 else if (LangOpts.getStackProtector() == LangOptions::SSPReq) 1417 Builder.defineMacro("__SSP_ALL__", "3"); 1418 1419 if (PPOpts.SetUpStaticAnalyzer) 1420 Builder.defineMacro("__clang_analyzer__"); 1421 1422 if (LangOpts.FastRelaxedMath) 1423 Builder.defineMacro("__FAST_RELAXED_MATH__"); 1424 1425 if (FEOpts.ProgramAction == frontend::RewriteObjC || 1426 LangOpts.getGC() != LangOptions::NonGC) { 1427 Builder.defineMacro("__weak", "__attribute__((objc_gc(weak)))"); 1428 Builder.defineMacro("__strong", "__attribute__((objc_gc(strong)))"); 1429 Builder.defineMacro("__autoreleasing", ""); 1430 Builder.defineMacro("__unsafe_unretained", ""); 1431 } else if (LangOpts.ObjC) { 1432 Builder.defineMacro("__weak", "__attribute__((objc_ownership(weak)))"); 1433 Builder.defineMacro("__strong", "__attribute__((objc_ownership(strong)))"); 1434 Builder.defineMacro("__autoreleasing", 1435 "__attribute__((objc_ownership(autoreleasing)))"); 1436 Builder.defineMacro("__unsafe_unretained", 1437 "__attribute__((objc_ownership(none)))"); 1438 } 1439 1440 // On Darwin, there are __double_underscored variants of the type 1441 // nullability qualifiers. 1442 if (TI.getTriple().isOSDarwin()) { 1443 Builder.defineMacro("__nonnull", "_Nonnull"); 1444 Builder.defineMacro("__null_unspecified", "_Null_unspecified"); 1445 Builder.defineMacro("__nullable", "_Nullable"); 1446 } 1447 1448 // Add a macro to differentiate between regular iOS/tvOS/watchOS targets and 1449 // the corresponding simulator targets. 1450 if (TI.getTriple().isOSDarwin() && TI.getTriple().isSimulatorEnvironment()) 1451 Builder.defineMacro("__APPLE_EMBEDDED_SIMULATOR__", "1"); 1452 1453 // OpenMP definition 1454 // OpenMP 2.2: 1455 // In implementations that support a preprocessor, the _OPENMP 1456 // macro name is defined to have the decimal value yyyymm where 1457 // yyyy and mm are the year and the month designations of the 1458 // version of the OpenMP API that the implementation support. 1459 if (!LangOpts.OpenMPSimd) { 1460 switch (LangOpts.OpenMP) { 1461 case 0: 1462 break; 1463 case 31: 1464 Builder.defineMacro("_OPENMP", "201107"); 1465 break; 1466 case 40: 1467 Builder.defineMacro("_OPENMP", "201307"); 1468 break; 1469 case 45: 1470 Builder.defineMacro("_OPENMP", "201511"); 1471 break; 1472 case 50: 1473 Builder.defineMacro("_OPENMP", "201811"); 1474 break; 1475 case 51: 1476 Builder.defineMacro("_OPENMP", "202011"); 1477 break; 1478 case 52: 1479 Builder.defineMacro("_OPENMP", "202111"); 1480 break; 1481 case 60: 1482 Builder.defineMacro("_OPENMP", "202411"); 1483 break; 1484 default: // case 51: 1485 // Default version is OpenMP 5.1 1486 Builder.defineMacro("_OPENMP", "202011"); 1487 break; 1488 } 1489 } 1490 1491 // CUDA device path compilaton 1492 if (LangOpts.CUDAIsDevice && !LangOpts.HIP) { 1493 // The CUDA_ARCH value is set for the GPU target specified in the NVPTX 1494 // backend's target defines. 1495 Builder.defineMacro("__CUDA_ARCH__"); 1496 } 1497 1498 // We need to communicate this to our CUDA/HIP header wrapper, which in turn 1499 // informs the proper CUDA/HIP headers of this choice. 1500 if (LangOpts.GPUDeviceApproxTranscendentals) 1501 Builder.defineMacro("__CLANG_GPU_APPROX_TRANSCENDENTALS__"); 1502 1503 // Define a macro indicating that the source file is being compiled with a 1504 // SYCL device compiler which doesn't produce host binary. 1505 if (LangOpts.SYCLIsDevice) { 1506 Builder.defineMacro("__SYCL_DEVICE_ONLY__", "1"); 1507 } 1508 1509 // OpenCL definitions. 1510 if (LangOpts.OpenCL) { 1511 InitializeOpenCLFeatureTestMacros(TI, LangOpts, Builder); 1512 1513 if (TI.getTriple().isSPIR() || TI.getTriple().isSPIRV()) 1514 Builder.defineMacro("__IMAGE_SUPPORT__"); 1515 } 1516 1517 if (TI.hasInt128Type() && LangOpts.CPlusPlus && LangOpts.GNUMode) { 1518 // For each extended integer type, g++ defines a macro mapping the 1519 // index of the type (0 in this case) in some list of extended types 1520 // to the type. 1521 Builder.defineMacro("__GLIBCXX_TYPE_INT_N_0", "__int128"); 1522 Builder.defineMacro("__GLIBCXX_BITSIZE_INT_N_0", "128"); 1523 } 1524 1525 // ELF targets define __ELF__ 1526 if (TI.getTriple().isOSBinFormatELF()) 1527 Builder.defineMacro("__ELF__"); 1528 1529 // Target OS macro definitions. 1530 if (PPOpts.DefineTargetOSMacros) { 1531 const llvm::Triple &Triple = TI.getTriple(); 1532 #define TARGET_OS(Name, Predicate) \ 1533 Builder.defineMacro(#Name, (Predicate) ? "1" : "0"); 1534 #include "clang/Basic/TargetOSMacros.def" 1535 #undef TARGET_OS 1536 } 1537 1538 // Get other target #defines. 1539 TI.getTargetDefines(LangOpts, Builder); 1540 } 1541 1542 static void InitializePGOProfileMacros(const CodeGenOptions &CodeGenOpts, 1543 MacroBuilder &Builder) { 1544 if (CodeGenOpts.hasProfileInstr()) 1545 Builder.defineMacro("__LLVM_INSTR_PROFILE_GENERATE"); 1546 1547 if (CodeGenOpts.hasProfileIRUse() || CodeGenOpts.hasProfileClangUse()) 1548 Builder.defineMacro("__LLVM_INSTR_PROFILE_USE"); 1549 } 1550 1551 /// InitializePreprocessor - Initialize the preprocessor getting it and the 1552 /// environment ready to process a single file. 1553 void clang::InitializePreprocessor(Preprocessor &PP, 1554 const PreprocessorOptions &InitOpts, 1555 const PCHContainerReader &PCHContainerRdr, 1556 const FrontendOptions &FEOpts, 1557 const CodeGenOptions &CodeGenOpts) { 1558 const LangOptions &LangOpts = PP.getLangOpts(); 1559 std::string PredefineBuffer; 1560 PredefineBuffer.reserve(4080); 1561 llvm::raw_string_ostream Predefines(PredefineBuffer); 1562 MacroBuilder Builder(Predefines); 1563 1564 // Emit line markers for various builtin sections of the file. The 3 here 1565 // marks <built-in> as being a system header, which suppresses warnings when 1566 // the same macro is defined multiple times. 1567 Builder.append("# 1 \"<built-in>\" 3"); 1568 1569 // Install things like __POWERPC__, __GNUC__, etc into the macro table. 1570 if (InitOpts.UsePredefines) { 1571 // FIXME: This will create multiple definitions for most of the predefined 1572 // macros. This is not the right way to handle this. 1573 if ((LangOpts.CUDA || LangOpts.isTargetDevice()) && PP.getAuxTargetInfo()) 1574 InitializePredefinedMacros(*PP.getAuxTargetInfo(), LangOpts, FEOpts, 1575 PP.getPreprocessorOpts(), Builder); 1576 1577 InitializePredefinedMacros(PP.getTargetInfo(), LangOpts, FEOpts, 1578 PP.getPreprocessorOpts(), Builder); 1579 1580 // Install definitions to make Objective-C++ ARC work well with various 1581 // C++ Standard Library implementations. 1582 if (LangOpts.ObjC && LangOpts.CPlusPlus && 1583 (LangOpts.ObjCAutoRefCount || LangOpts.ObjCWeak)) { 1584 switch (InitOpts.ObjCXXARCStandardLibrary) { 1585 case ARCXX_nolib: 1586 case ARCXX_libcxx: 1587 break; 1588 1589 case ARCXX_libstdcxx: 1590 AddObjCXXARCLibstdcxxDefines(LangOpts, Builder); 1591 break; 1592 } 1593 } 1594 } 1595 1596 // Even with predefines off, some macros are still predefined. 1597 // These should all be defined in the preprocessor according to the 1598 // current language configuration. 1599 InitializeStandardPredefinedMacros(PP.getTargetInfo(), PP.getLangOpts(), 1600 FEOpts, Builder); 1601 1602 // The PGO instrumentation profile macros are driven by options 1603 // -fprofile[-instr]-generate/-fcs-profile-generate/-fprofile[-instr]-use, 1604 // hence they are not guarded by InitOpts.UsePredefines. 1605 InitializePGOProfileMacros(CodeGenOpts, Builder); 1606 1607 // Add on the predefines from the driver. Wrap in a #line directive to report 1608 // that they come from the command line. 1609 Builder.append("# 1 \"<command line>\" 1"); 1610 1611 // Process #define's and #undef's in the order they are given. 1612 for (unsigned i = 0, e = InitOpts.Macros.size(); i != e; ++i) { 1613 if (InitOpts.Macros[i].second) // isUndef 1614 Builder.undefineMacro(InitOpts.Macros[i].first); 1615 else 1616 DefineBuiltinMacro(Builder, InitOpts.Macros[i].first, 1617 PP.getDiagnostics()); 1618 } 1619 1620 // Exit the command line and go back to <built-in> (2 is LC_LEAVE). 1621 Builder.append("# 1 \"<built-in>\" 2"); 1622 1623 // If -imacros are specified, include them now. These are processed before 1624 // any -include directives. 1625 for (unsigned i = 0, e = InitOpts.MacroIncludes.size(); i != e; ++i) 1626 AddImplicitIncludeMacros(Builder, InitOpts.MacroIncludes[i]); 1627 1628 // Process -include-pch/-include-pth directives. 1629 if (!InitOpts.ImplicitPCHInclude.empty()) 1630 AddImplicitIncludePCH(Builder, PP, PCHContainerRdr, 1631 InitOpts.ImplicitPCHInclude); 1632 1633 // Process -include directives. 1634 for (unsigned i = 0, e = InitOpts.Includes.size(); i != e; ++i) { 1635 const std::string &Path = InitOpts.Includes[i]; 1636 AddImplicitInclude(Builder, Path); 1637 } 1638 1639 // Instruct the preprocessor to skip the preamble. 1640 PP.setSkipMainFilePreamble(InitOpts.PrecompiledPreambleBytes.first, 1641 InitOpts.PrecompiledPreambleBytes.second); 1642 1643 // Copy PredefinedBuffer into the Preprocessor. 1644 PP.setPredefines(std::move(PredefineBuffer)); 1645 1646 // Match gcc behavior regarding gnu-line-directive diagnostics, assuming that 1647 // '-x <*>-cpp-output' is analogous to '-fpreprocessed'. 1648 if (FEOpts.DashX.isPreprocessed()) { 1649 PP.getDiagnostics().setSeverity(diag::ext_pp_gnu_line_directive, 1650 diag::Severity::Ignored, SourceLocation()); 1651 } 1652 } 1653