1 //===- IntrinsicEmitter.cpp - Generate intrinsic information --------------===// 2 // 3 // The LLVM Compiler Infrastructure 4 // 5 // This file is distributed under the University of Illinois Open Source 6 // License. See LICENSE.TXT for details. 7 // 8 //===----------------------------------------------------------------------===// 9 // 10 // This tablegen backend emits information about intrinsic functions. 11 // 12 //===----------------------------------------------------------------------===// 13 14 #include "CodeGenIntrinsics.h" 15 #include "CodeGenTarget.h" 16 #include "SequenceToOffsetTable.h" 17 #include "TableGenBackends.h" 18 #include "llvm/ADT/StringExtras.h" 19 #include "llvm/TableGen/Error.h" 20 #include "llvm/TableGen/Record.h" 21 #include "llvm/TableGen/StringMatcher.h" 22 #include "llvm/TableGen/TableGenBackend.h" 23 #include <algorithm> 24 using namespace llvm; 25 26 namespace { 27 class IntrinsicEmitter { 28 RecordKeeper &Records; 29 bool TargetOnly; 30 std::string TargetPrefix; 31 32 public: 33 IntrinsicEmitter(RecordKeeper &R, bool T) 34 : Records(R), TargetOnly(T) {} 35 36 void run(raw_ostream &OS); 37 38 void EmitPrefix(raw_ostream &OS); 39 40 void EmitEnumInfo(const std::vector<CodeGenIntrinsic> &Ints, 41 raw_ostream &OS); 42 43 void EmitFnNameRecognizer(const std::vector<CodeGenIntrinsic> &Ints, 44 raw_ostream &OS); 45 void EmitIntrinsicToNameTable(const std::vector<CodeGenIntrinsic> &Ints, 46 raw_ostream &OS); 47 void EmitIntrinsicToOverloadTable(const std::vector<CodeGenIntrinsic> &Ints, 48 raw_ostream &OS); 49 void EmitGenerator(const std::vector<CodeGenIntrinsic> &Ints, 50 raw_ostream &OS); 51 void EmitAttributes(const std::vector<CodeGenIntrinsic> &Ints, 52 raw_ostream &OS); 53 void EmitModRefBehavior(const std::vector<CodeGenIntrinsic> &Ints, 54 raw_ostream &OS); 55 void EmitIntrinsicToGCCBuiltinMap(const std::vector<CodeGenIntrinsic> &Ints, 56 raw_ostream &OS); 57 void EmitIntrinsicToMSBuiltinMap(const std::vector<CodeGenIntrinsic> &Ints, 58 raw_ostream &OS); 59 void EmitSuffix(raw_ostream &OS); 60 }; 61 } // End anonymous namespace 62 63 //===----------------------------------------------------------------------===// 64 // IntrinsicEmitter Implementation 65 //===----------------------------------------------------------------------===// 66 67 void IntrinsicEmitter::run(raw_ostream &OS) { 68 emitSourceFileHeader("Intrinsic Function Source Fragment", OS); 69 70 std::vector<CodeGenIntrinsic> Ints = LoadIntrinsics(Records, TargetOnly); 71 72 if (TargetOnly && !Ints.empty()) 73 TargetPrefix = Ints[0].TargetPrefix; 74 75 EmitPrefix(OS); 76 77 // Emit the enum information. 78 EmitEnumInfo(Ints, OS); 79 80 // Emit the intrinsic ID -> name table. 81 EmitIntrinsicToNameTable(Ints, OS); 82 83 // Emit the intrinsic ID -> overload table. 84 EmitIntrinsicToOverloadTable(Ints, OS); 85 86 // Emit the function name recognizer. 87 EmitFnNameRecognizer(Ints, OS); 88 89 // Emit the intrinsic declaration generator. 90 EmitGenerator(Ints, OS); 91 92 // Emit the intrinsic parameter attributes. 93 EmitAttributes(Ints, OS); 94 95 // Emit intrinsic alias analysis mod/ref behavior. 96 EmitModRefBehavior(Ints, OS); 97 98 // Emit code to translate GCC builtins into LLVM intrinsics. 99 EmitIntrinsicToGCCBuiltinMap(Ints, OS); 100 101 // Emit code to translate MS builtins into LLVM intrinsics. 102 EmitIntrinsicToMSBuiltinMap(Ints, OS); 103 104 EmitSuffix(OS); 105 } 106 107 void IntrinsicEmitter::EmitPrefix(raw_ostream &OS) { 108 OS << "// VisualStudio defines setjmp as _setjmp\n" 109 "#if defined(_MSC_VER) && defined(setjmp) && \\\n" 110 " !defined(setjmp_undefined_for_msvc)\n" 111 "# pragma push_macro(\"setjmp\")\n" 112 "# undef setjmp\n" 113 "# define setjmp_undefined_for_msvc\n" 114 "#endif\n\n"; 115 } 116 117 void IntrinsicEmitter::EmitSuffix(raw_ostream &OS) { 118 OS << "#if defined(_MSC_VER) && defined(setjmp_undefined_for_msvc)\n" 119 "// let's return it to _setjmp state\n" 120 "# pragma pop_macro(\"setjmp\")\n" 121 "# undef setjmp_undefined_for_msvc\n" 122 "#endif\n\n"; 123 } 124 125 void IntrinsicEmitter::EmitEnumInfo(const std::vector<CodeGenIntrinsic> &Ints, 126 raw_ostream &OS) { 127 OS << "// Enum values for Intrinsics.h\n"; 128 OS << "#ifdef GET_INTRINSIC_ENUM_VALUES\n"; 129 for (unsigned i = 0, e = Ints.size(); i != e; ++i) { 130 OS << " " << Ints[i].EnumName; 131 OS << ((i != e-1) ? ", " : " "); 132 if (Ints[i].EnumName.size() < 40) 133 OS << std::string(40-Ints[i].EnumName.size(), ' '); 134 OS << " // " << Ints[i].Name << "\n"; 135 } 136 OS << "#endif\n\n"; 137 } 138 139 void IntrinsicEmitter:: 140 EmitFnNameRecognizer(const std::vector<CodeGenIntrinsic> &Ints, 141 raw_ostream &OS) { 142 // Build a 'first character of function name' -> intrinsic # mapping. 143 std::map<char, std::vector<unsigned> > IntMapping; 144 for (unsigned i = 0, e = Ints.size(); i != e; ++i) 145 IntMapping[Ints[i].Name[5]].push_back(i); 146 147 OS << "// Function name -> enum value recognizer code.\n"; 148 OS << "#ifdef GET_FUNCTION_RECOGNIZER\n"; 149 OS << " StringRef NameR(Name+6, Len-6); // Skip over 'llvm.'\n"; 150 OS << " switch (Name[5]) { // Dispatch on first letter.\n"; 151 OS << " default: break;\n"; 152 // Emit the intrinsic matching stuff by first letter. 153 for (std::map<char, std::vector<unsigned> >::iterator I = IntMapping.begin(), 154 E = IntMapping.end(); I != E; ++I) { 155 OS << " case '" << I->first << "':\n"; 156 std::vector<unsigned> &IntList = I->second; 157 158 // Sort in reverse order of intrinsic name so "abc.def" appears after 159 // "abd.def.ghi" in the overridden name matcher 160 std::sort(IntList.begin(), IntList.end(), [&](unsigned i, unsigned j) { 161 return Ints[i].Name > Ints[j].Name; 162 }); 163 164 // Emit all the overloaded intrinsics first, build a table of the 165 // non-overloaded ones. 166 std::vector<StringMatcher::StringPair> MatchTable; 167 168 for (unsigned i = 0, e = IntList.size(); i != e; ++i) { 169 unsigned IntNo = IntList[i]; 170 std::string Result = "return " + TargetPrefix + "Intrinsic::" + 171 Ints[IntNo].EnumName + ";"; 172 173 if (!Ints[IntNo].isOverloaded) { 174 MatchTable.push_back(std::make_pair(Ints[IntNo].Name.substr(6),Result)); 175 continue; 176 } 177 178 // For overloaded intrinsics, only the prefix needs to match 179 std::string TheStr = Ints[IntNo].Name.substr(6); 180 TheStr += '.'; // Require "bswap." instead of bswap. 181 OS << " if (NameR.startswith(\"" << TheStr << "\")) " 182 << Result << '\n'; 183 } 184 185 // Emit the matcher logic for the fixed length strings. 186 StringMatcher("NameR", MatchTable, OS).Emit(1); 187 OS << " break; // end of '" << I->first << "' case.\n"; 188 } 189 190 OS << " }\n"; 191 OS << "#endif\n\n"; 192 } 193 194 void IntrinsicEmitter:: 195 EmitIntrinsicToNameTable(const std::vector<CodeGenIntrinsic> &Ints, 196 raw_ostream &OS) { 197 OS << "// Intrinsic ID to name table\n"; 198 OS << "#ifdef GET_INTRINSIC_NAME_TABLE\n"; 199 OS << " // Note that entry #0 is the invalid intrinsic!\n"; 200 for (unsigned i = 0, e = Ints.size(); i != e; ++i) 201 OS << " \"" << Ints[i].Name << "\",\n"; 202 OS << "#endif\n\n"; 203 } 204 205 void IntrinsicEmitter:: 206 EmitIntrinsicToOverloadTable(const std::vector<CodeGenIntrinsic> &Ints, 207 raw_ostream &OS) { 208 OS << "// Intrinsic ID to overload bitset\n"; 209 OS << "#ifdef GET_INTRINSIC_OVERLOAD_TABLE\n"; 210 OS << "static const uint8_t OTable[] = {\n"; 211 OS << " 0"; 212 for (unsigned i = 0, e = Ints.size(); i != e; ++i) { 213 // Add one to the index so we emit a null bit for the invalid #0 intrinsic. 214 if ((i+1)%8 == 0) 215 OS << ",\n 0"; 216 if (Ints[i].isOverloaded) 217 OS << " | (1<<" << (i+1)%8 << ')'; 218 } 219 OS << "\n};\n\n"; 220 // OTable contains a true bit at the position if the intrinsic is overloaded. 221 OS << "return (OTable[id/8] & (1 << (id%8))) != 0;\n"; 222 OS << "#endif\n\n"; 223 } 224 225 226 // NOTE: This must be kept in synch with the copy in lib/VMCore/Function.cpp! 227 enum IIT_Info { 228 // Common values should be encoded with 0-16. 229 IIT_Done = 0, 230 IIT_I1 = 1, 231 IIT_I8 = 2, 232 IIT_I16 = 3, 233 IIT_I32 = 4, 234 IIT_I64 = 5, 235 IIT_F16 = 6, 236 IIT_F32 = 7, 237 IIT_F64 = 8, 238 IIT_V2 = 9, 239 IIT_V4 = 10, 240 IIT_V8 = 11, 241 IIT_V16 = 12, 242 IIT_V32 = 13, 243 IIT_V64 = 14, 244 IIT_PTR = 15, 245 IIT_ARG = 16, 246 247 // Values from 17+ are only encodable with the inefficient encoding. 248 IIT_MMX = 17, 249 IIT_METADATA = 18, 250 IIT_EMPTYSTRUCT = 19, 251 IIT_STRUCT2 = 20, 252 IIT_STRUCT3 = 21, 253 IIT_STRUCT4 = 22, 254 IIT_STRUCT5 = 23, 255 IIT_EXTEND_ARG = 24, 256 IIT_TRUNC_ARG = 25, 257 IIT_ANYPTR = 26, 258 IIT_V1 = 27, 259 IIT_VARARG = 28, 260 IIT_HALF_VEC_ARG = 29 261 }; 262 263 264 static void EncodeFixedValueType(MVT::SimpleValueType VT, 265 std::vector<unsigned char> &Sig) { 266 if (MVT(VT).isInteger()) { 267 unsigned BitWidth = MVT(VT).getSizeInBits(); 268 switch (BitWidth) { 269 default: PrintFatalError("unhandled integer type width in intrinsic!"); 270 case 1: return Sig.push_back(IIT_I1); 271 case 8: return Sig.push_back(IIT_I8); 272 case 16: return Sig.push_back(IIT_I16); 273 case 32: return Sig.push_back(IIT_I32); 274 case 64: return Sig.push_back(IIT_I64); 275 } 276 } 277 278 switch (VT) { 279 default: PrintFatalError("unhandled MVT in intrinsic!"); 280 case MVT::f16: return Sig.push_back(IIT_F16); 281 case MVT::f32: return Sig.push_back(IIT_F32); 282 case MVT::f64: return Sig.push_back(IIT_F64); 283 case MVT::Metadata: return Sig.push_back(IIT_METADATA); 284 case MVT::x86mmx: return Sig.push_back(IIT_MMX); 285 // MVT::OtherVT is used to mean the empty struct type here. 286 case MVT::Other: return Sig.push_back(IIT_EMPTYSTRUCT); 287 // MVT::isVoid is used to represent varargs here. 288 case MVT::isVoid: return Sig.push_back(IIT_VARARG); 289 } 290 } 291 292 #ifdef _MSC_VER 293 #pragma optimize("",off) // MSVC 2010 optimizer can't deal with this function. 294 #endif 295 296 static void EncodeFixedType(Record *R, std::vector<unsigned char> &ArgCodes, 297 std::vector<unsigned char> &Sig) { 298 299 if (R->isSubClassOf("LLVMMatchType")) { 300 unsigned Number = R->getValueAsInt("Number"); 301 assert(Number < ArgCodes.size() && "Invalid matching number!"); 302 if (R->isSubClassOf("LLVMExtendedType")) 303 Sig.push_back(IIT_EXTEND_ARG); 304 else if (R->isSubClassOf("LLVMTruncatedType")) 305 Sig.push_back(IIT_TRUNC_ARG); 306 else if (R->isSubClassOf("LLVMHalfElementsVectorType")) 307 Sig.push_back(IIT_HALF_VEC_ARG); 308 else 309 Sig.push_back(IIT_ARG); 310 return Sig.push_back((Number << 2) | ArgCodes[Number]); 311 } 312 313 MVT::SimpleValueType VT = getValueType(R->getValueAsDef("VT")); 314 315 unsigned Tmp = 0; 316 switch (VT) { 317 default: break; 318 case MVT::iPTRAny: ++Tmp; // FALL THROUGH. 319 case MVT::vAny: ++Tmp; // FALL THROUGH. 320 case MVT::fAny: ++Tmp; // FALL THROUGH. 321 case MVT::iAny: { 322 // If this is an "any" valuetype, then the type is the type of the next 323 // type in the list specified to getIntrinsic(). 324 Sig.push_back(IIT_ARG); 325 326 // Figure out what arg # this is consuming, and remember what kind it was. 327 unsigned ArgNo = ArgCodes.size(); 328 ArgCodes.push_back(Tmp); 329 330 // Encode what sort of argument it must be in the low 2 bits of the ArgNo. 331 return Sig.push_back((ArgNo << 2) | Tmp); 332 } 333 334 case MVT::iPTR: { 335 unsigned AddrSpace = 0; 336 if (R->isSubClassOf("LLVMQualPointerType")) { 337 AddrSpace = R->getValueAsInt("AddrSpace"); 338 assert(AddrSpace < 256 && "Address space exceeds 255"); 339 } 340 if (AddrSpace) { 341 Sig.push_back(IIT_ANYPTR); 342 Sig.push_back(AddrSpace); 343 } else { 344 Sig.push_back(IIT_PTR); 345 } 346 return EncodeFixedType(R->getValueAsDef("ElTy"), ArgCodes, Sig); 347 } 348 } 349 350 if (MVT(VT).isVector()) { 351 MVT VVT = VT; 352 switch (VVT.getVectorNumElements()) { 353 default: PrintFatalError("unhandled vector type width in intrinsic!"); 354 case 1: Sig.push_back(IIT_V1); break; 355 case 2: Sig.push_back(IIT_V2); break; 356 case 4: Sig.push_back(IIT_V4); break; 357 case 8: Sig.push_back(IIT_V8); break; 358 case 16: Sig.push_back(IIT_V16); break; 359 case 32: Sig.push_back(IIT_V32); break; 360 case 64: Sig.push_back(IIT_V64); break; 361 } 362 363 return EncodeFixedValueType(VVT.getVectorElementType().SimpleTy, Sig); 364 } 365 366 EncodeFixedValueType(VT, Sig); 367 } 368 369 #ifdef _MSC_VER 370 #pragma optimize("",on) 371 #endif 372 373 /// ComputeFixedEncoding - If we can encode the type signature for this 374 /// intrinsic into 32 bits, return it. If not, return ~0U. 375 static void ComputeFixedEncoding(const CodeGenIntrinsic &Int, 376 std::vector<unsigned char> &TypeSig) { 377 std::vector<unsigned char> ArgCodes; 378 379 if (Int.IS.RetVTs.empty()) 380 TypeSig.push_back(IIT_Done); 381 else if (Int.IS.RetVTs.size() == 1 && 382 Int.IS.RetVTs[0] == MVT::isVoid) 383 TypeSig.push_back(IIT_Done); 384 else { 385 switch (Int.IS.RetVTs.size()) { 386 case 1: break; 387 case 2: TypeSig.push_back(IIT_STRUCT2); break; 388 case 3: TypeSig.push_back(IIT_STRUCT3); break; 389 case 4: TypeSig.push_back(IIT_STRUCT4); break; 390 case 5: TypeSig.push_back(IIT_STRUCT5); break; 391 default: llvm_unreachable("Unhandled case in struct"); 392 } 393 394 for (unsigned i = 0, e = Int.IS.RetVTs.size(); i != e; ++i) 395 EncodeFixedType(Int.IS.RetTypeDefs[i], ArgCodes, TypeSig); 396 } 397 398 for (unsigned i = 0, e = Int.IS.ParamTypeDefs.size(); i != e; ++i) 399 EncodeFixedType(Int.IS.ParamTypeDefs[i], ArgCodes, TypeSig); 400 } 401 402 static void printIITEntry(raw_ostream &OS, unsigned char X) { 403 OS << (unsigned)X; 404 } 405 406 void IntrinsicEmitter::EmitGenerator(const std::vector<CodeGenIntrinsic> &Ints, 407 raw_ostream &OS) { 408 // If we can compute a 32-bit fixed encoding for this intrinsic, do so and 409 // capture it in this vector, otherwise store a ~0U. 410 std::vector<unsigned> FixedEncodings; 411 412 SequenceToOffsetTable<std::vector<unsigned char> > LongEncodingTable; 413 414 std::vector<unsigned char> TypeSig; 415 416 // Compute the unique argument type info. 417 for (unsigned i = 0, e = Ints.size(); i != e; ++i) { 418 // Get the signature for the intrinsic. 419 TypeSig.clear(); 420 ComputeFixedEncoding(Ints[i], TypeSig); 421 422 // Check to see if we can encode it into a 32-bit word. We can only encode 423 // 8 nibbles into a 32-bit word. 424 if (TypeSig.size() <= 8) { 425 bool Failed = false; 426 unsigned Result = 0; 427 for (unsigned i = 0, e = TypeSig.size(); i != e; ++i) { 428 // If we had an unencodable argument, bail out. 429 if (TypeSig[i] > 15) { 430 Failed = true; 431 break; 432 } 433 Result = (Result << 4) | TypeSig[e-i-1]; 434 } 435 436 // If this could be encoded into a 31-bit word, return it. 437 if (!Failed && (Result >> 31) == 0) { 438 FixedEncodings.push_back(Result); 439 continue; 440 } 441 } 442 443 // Otherwise, we're going to unique the sequence into the 444 // LongEncodingTable, and use its offset in the 32-bit table instead. 445 LongEncodingTable.add(TypeSig); 446 447 // This is a placehold that we'll replace after the table is laid out. 448 FixedEncodings.push_back(~0U); 449 } 450 451 LongEncodingTable.layout(); 452 453 OS << "// Global intrinsic function declaration type table.\n"; 454 OS << "#ifdef GET_INTRINSIC_GENERATOR_GLOBAL\n"; 455 456 OS << "static const unsigned IIT_Table[] = {\n "; 457 458 for (unsigned i = 0, e = FixedEncodings.size(); i != e; ++i) { 459 if ((i & 7) == 7) 460 OS << "\n "; 461 462 // If the entry fit in the table, just emit it. 463 if (FixedEncodings[i] != ~0U) { 464 OS << "0x" << utohexstr(FixedEncodings[i]) << ", "; 465 continue; 466 } 467 468 TypeSig.clear(); 469 ComputeFixedEncoding(Ints[i], TypeSig); 470 471 472 // Otherwise, emit the offset into the long encoding table. We emit it this 473 // way so that it is easier to read the offset in the .def file. 474 OS << "(1U<<31) | " << LongEncodingTable.get(TypeSig) << ", "; 475 } 476 477 OS << "0\n};\n\n"; 478 479 // Emit the shared table of register lists. 480 OS << "static const unsigned char IIT_LongEncodingTable[] = {\n"; 481 if (!LongEncodingTable.empty()) 482 LongEncodingTable.emit(OS, printIITEntry); 483 OS << " 255\n};\n\n"; 484 485 OS << "#endif\n\n"; // End of GET_INTRINSIC_GENERATOR_GLOBAL 486 } 487 488 namespace { 489 enum ModRefKind { 490 MRK_none, 491 MRK_readonly, 492 MRK_readnone 493 }; 494 } 495 496 static ModRefKind getModRefKind(const CodeGenIntrinsic &intrinsic) { 497 switch (intrinsic.ModRef) { 498 case CodeGenIntrinsic::NoMem: 499 return MRK_readnone; 500 case CodeGenIntrinsic::ReadArgMem: 501 case CodeGenIntrinsic::ReadMem: 502 return MRK_readonly; 503 case CodeGenIntrinsic::ReadWriteArgMem: 504 case CodeGenIntrinsic::ReadWriteMem: 505 return MRK_none; 506 } 507 llvm_unreachable("bad mod-ref kind"); 508 } 509 510 namespace { 511 struct AttributeComparator { 512 bool operator()(const CodeGenIntrinsic *L, const CodeGenIntrinsic *R) const { 513 // Sort throwing intrinsics after non-throwing intrinsics. 514 if (L->canThrow != R->canThrow) 515 return R->canThrow; 516 517 if (L->isNoDuplicate != R->isNoDuplicate) 518 return R->isNoDuplicate; 519 520 if (L->isNoReturn != R->isNoReturn) 521 return R->isNoReturn; 522 523 // Try to order by readonly/readnone attribute. 524 ModRefKind LK = getModRefKind(*L); 525 ModRefKind RK = getModRefKind(*R); 526 if (LK != RK) return (LK > RK); 527 528 // Order by argument attributes. 529 // This is reliable because each side is already sorted internally. 530 return (L->ArgumentAttributes < R->ArgumentAttributes); 531 } 532 }; 533 } // End anonymous namespace 534 535 /// EmitAttributes - This emits the Intrinsic::getAttributes method. 536 void IntrinsicEmitter:: 537 EmitAttributes(const std::vector<CodeGenIntrinsic> &Ints, raw_ostream &OS) { 538 OS << "// Add parameter attributes that are not common to all intrinsics.\n"; 539 OS << "#ifdef GET_INTRINSIC_ATTRIBUTES\n"; 540 if (TargetOnly) 541 OS << "static AttributeSet getAttributes(LLVMContext &C, " << TargetPrefix 542 << "Intrinsic::ID id) {\n"; 543 else 544 OS << "AttributeSet Intrinsic::getAttributes(LLVMContext &C, ID id) {\n"; 545 546 // Compute the maximum number of attribute arguments and the map 547 typedef std::map<const CodeGenIntrinsic*, unsigned, 548 AttributeComparator> UniqAttrMapTy; 549 UniqAttrMapTy UniqAttributes; 550 unsigned maxArgAttrs = 0; 551 unsigned AttrNum = 0; 552 for (unsigned i = 0, e = Ints.size(); i != e; ++i) { 553 const CodeGenIntrinsic &intrinsic = Ints[i]; 554 maxArgAttrs = 555 std::max(maxArgAttrs, unsigned(intrinsic.ArgumentAttributes.size())); 556 unsigned &N = UniqAttributes[&intrinsic]; 557 if (N) continue; 558 assert(AttrNum < 256 && "Too many unique attributes for table!"); 559 N = ++AttrNum; 560 } 561 562 // Emit an array of AttributeSet. Most intrinsics will have at least one 563 // entry, for the function itself (index ~1), which is usually nounwind. 564 OS << " static const uint8_t IntrinsicsToAttributesMap[] = {\n"; 565 566 for (unsigned i = 0, e = Ints.size(); i != e; ++i) { 567 const CodeGenIntrinsic &intrinsic = Ints[i]; 568 569 OS << " " << UniqAttributes[&intrinsic] << ", // " 570 << intrinsic.Name << "\n"; 571 } 572 OS << " };\n\n"; 573 574 OS << " AttributeSet AS[" << maxArgAttrs+1 << "];\n"; 575 OS << " unsigned NumAttrs = 0;\n"; 576 OS << " if (id != 0) {\n"; 577 OS << " switch(IntrinsicsToAttributesMap[id - "; 578 if (TargetOnly) 579 OS << "Intrinsic::num_intrinsics"; 580 else 581 OS << "1"; 582 OS << "]) {\n"; 583 OS << " default: llvm_unreachable(\"Invalid attribute number\");\n"; 584 for (UniqAttrMapTy::const_iterator I = UniqAttributes.begin(), 585 E = UniqAttributes.end(); I != E; ++I) { 586 OS << " case " << I->second << ": {\n"; 587 588 const CodeGenIntrinsic &intrinsic = *(I->first); 589 590 // Keep track of the number of attributes we're writing out. 591 unsigned numAttrs = 0; 592 593 // The argument attributes are alreadys sorted by argument index. 594 unsigned ai = 0, ae = intrinsic.ArgumentAttributes.size(); 595 if (ae) { 596 while (ai != ae) { 597 unsigned argNo = intrinsic.ArgumentAttributes[ai].first; 598 599 OS << " const Attribute::AttrKind AttrParam" << argNo + 1 <<"[]= {"; 600 bool addComma = false; 601 602 do { 603 switch (intrinsic.ArgumentAttributes[ai].second) { 604 case CodeGenIntrinsic::NoCapture: 605 if (addComma) 606 OS << ","; 607 OS << "Attribute::NoCapture"; 608 addComma = true; 609 break; 610 case CodeGenIntrinsic::ReadOnly: 611 if (addComma) 612 OS << ","; 613 OS << "Attribute::ReadOnly"; 614 addComma = true; 615 break; 616 case CodeGenIntrinsic::ReadNone: 617 if (addComma) 618 OS << ","; 619 OS << "Attributes::ReadNone"; 620 addComma = true; 621 break; 622 } 623 624 ++ai; 625 } while (ai != ae && intrinsic.ArgumentAttributes[ai].first == argNo); 626 OS << "};\n"; 627 OS << " AS[" << numAttrs++ << "] = AttributeSet::get(C, " 628 << argNo+1 << ", AttrParam" << argNo +1 << ");\n"; 629 } 630 } 631 632 ModRefKind modRef = getModRefKind(intrinsic); 633 634 if (!intrinsic.canThrow || modRef || intrinsic.isNoReturn || 635 intrinsic.isNoDuplicate) { 636 OS << " const Attribute::AttrKind Atts[] = {"; 637 bool addComma = false; 638 if (!intrinsic.canThrow) { 639 OS << "Attribute::NoUnwind"; 640 addComma = true; 641 } 642 if (intrinsic.isNoReturn) { 643 if (addComma) 644 OS << ","; 645 OS << "Attribute::NoReturn"; 646 addComma = true; 647 } 648 if (intrinsic.isNoDuplicate) { 649 if (addComma) 650 OS << ","; 651 OS << "Attribute::NoDuplicate"; 652 addComma = true; 653 } 654 655 switch (modRef) { 656 case MRK_none: break; 657 case MRK_readonly: 658 if (addComma) 659 OS << ","; 660 OS << "Attribute::ReadOnly"; 661 break; 662 case MRK_readnone: 663 if (addComma) 664 OS << ","; 665 OS << "Attribute::ReadNone"; 666 break; 667 } 668 OS << "};\n"; 669 OS << " AS[" << numAttrs++ << "] = AttributeSet::get(C, " 670 << "AttributeSet::FunctionIndex, Atts);\n"; 671 } 672 673 if (numAttrs) { 674 OS << " NumAttrs = " << numAttrs << ";\n"; 675 OS << " break;\n"; 676 OS << " }\n"; 677 } else { 678 OS << " return AttributeSet();\n"; 679 OS << " }\n"; 680 } 681 } 682 683 OS << " }\n"; 684 OS << " }\n"; 685 OS << " return AttributeSet::get(C, makeArrayRef(AS, NumAttrs));\n"; 686 OS << "}\n"; 687 OS << "#endif // GET_INTRINSIC_ATTRIBUTES\n\n"; 688 } 689 690 /// EmitModRefBehavior - Determine intrinsic alias analysis mod/ref behavior. 691 void IntrinsicEmitter:: 692 EmitModRefBehavior(const std::vector<CodeGenIntrinsic> &Ints, raw_ostream &OS){ 693 OS << "// Determine intrinsic alias analysis mod/ref behavior.\n" 694 << "#ifdef GET_INTRINSIC_MODREF_BEHAVIOR\n" 695 << "assert(iid <= Intrinsic::" << Ints.back().EnumName << " && " 696 << "\"Unknown intrinsic.\");\n\n"; 697 698 OS << "static const uint8_t IntrinsicModRefBehavior[] = {\n" 699 << " /* invalid */ UnknownModRefBehavior,\n"; 700 for (unsigned i = 0, e = Ints.size(); i != e; ++i) { 701 OS << " /* " << TargetPrefix << Ints[i].EnumName << " */ "; 702 switch (Ints[i].ModRef) { 703 case CodeGenIntrinsic::NoMem: 704 OS << "DoesNotAccessMemory,\n"; 705 break; 706 case CodeGenIntrinsic::ReadArgMem: 707 OS << "OnlyReadsArgumentPointees,\n"; 708 break; 709 case CodeGenIntrinsic::ReadMem: 710 OS << "OnlyReadsMemory,\n"; 711 break; 712 case CodeGenIntrinsic::ReadWriteArgMem: 713 OS << "OnlyAccessesArgumentPointees,\n"; 714 break; 715 case CodeGenIntrinsic::ReadWriteMem: 716 OS << "UnknownModRefBehavior,\n"; 717 break; 718 } 719 } 720 OS << "};\n\n" 721 << "return static_cast<ModRefBehavior>(IntrinsicModRefBehavior[iid]);\n" 722 << "#endif // GET_INTRINSIC_MODREF_BEHAVIOR\n\n"; 723 } 724 725 /// EmitTargetBuiltins - All of the builtins in the specified map are for the 726 /// same target, and we already checked it. 727 static void EmitTargetBuiltins(const std::map<std::string, std::string> &BIM, 728 const std::string &TargetPrefix, 729 raw_ostream &OS) { 730 731 std::vector<StringMatcher::StringPair> Results; 732 733 for (std::map<std::string, std::string>::const_iterator I = BIM.begin(), 734 E = BIM.end(); I != E; ++I) { 735 std::string ResultCode = 736 "return " + TargetPrefix + "Intrinsic::" + I->second + ";"; 737 Results.push_back(StringMatcher::StringPair(I->first, ResultCode)); 738 } 739 740 StringMatcher("BuiltinName", Results, OS).Emit(); 741 } 742 743 744 void IntrinsicEmitter:: 745 EmitIntrinsicToGCCBuiltinMap(const std::vector<CodeGenIntrinsic> &Ints, 746 raw_ostream &OS) { 747 typedef std::map<std::string, std::map<std::string, std::string> > BIMTy; 748 BIMTy BuiltinMap; 749 for (unsigned i = 0, e = Ints.size(); i != e; ++i) { 750 if (!Ints[i].GCCBuiltinName.empty()) { 751 // Get the map for this target prefix. 752 std::map<std::string, std::string> &BIM =BuiltinMap[Ints[i].TargetPrefix]; 753 754 if (!BIM.insert(std::make_pair(Ints[i].GCCBuiltinName, 755 Ints[i].EnumName)).second) 756 PrintFatalError("Intrinsic '" + Ints[i].TheDef->getName() + 757 "': duplicate GCC builtin name!"); 758 } 759 } 760 761 OS << "// Get the LLVM intrinsic that corresponds to a GCC builtin.\n"; 762 OS << "// This is used by the C front-end. The GCC builtin name is passed\n"; 763 OS << "// in as BuiltinName, and a target prefix (e.g. 'ppc') is passed\n"; 764 OS << "// in as TargetPrefix. The result is assigned to 'IntrinsicID'.\n"; 765 OS << "#ifdef GET_LLVM_INTRINSIC_FOR_GCC_BUILTIN\n"; 766 767 if (TargetOnly) { 768 OS << "static " << TargetPrefix << "Intrinsic::ID " 769 << "getIntrinsicForGCCBuiltin(const char " 770 << "*TargetPrefixStr, const char *BuiltinNameStr) {\n"; 771 } else { 772 OS << "Intrinsic::ID Intrinsic::getIntrinsicForGCCBuiltin(const char " 773 << "*TargetPrefixStr, const char *BuiltinNameStr) {\n"; 774 } 775 776 OS << " StringRef BuiltinName(BuiltinNameStr);\n"; 777 OS << " StringRef TargetPrefix(TargetPrefixStr);\n\n"; 778 779 // Note: this could emit significantly better code if we cared. 780 for (BIMTy::iterator I = BuiltinMap.begin(), E = BuiltinMap.end();I != E;++I){ 781 OS << " "; 782 if (!I->first.empty()) 783 OS << "if (TargetPrefix == \"" << I->first << "\") "; 784 else 785 OS << "/* Target Independent Builtins */ "; 786 OS << "{\n"; 787 788 // Emit the comparisons for this target prefix. 789 EmitTargetBuiltins(I->second, TargetPrefix, OS); 790 OS << " }\n"; 791 } 792 OS << " return "; 793 if (!TargetPrefix.empty()) 794 OS << "(" << TargetPrefix << "Intrinsic::ID)"; 795 OS << "Intrinsic::not_intrinsic;\n"; 796 OS << "}\n"; 797 OS << "#endif\n\n"; 798 } 799 800 void IntrinsicEmitter:: 801 EmitIntrinsicToMSBuiltinMap(const std::vector<CodeGenIntrinsic> &Ints, 802 raw_ostream &OS) { 803 std::map<std::string, std::map<std::string, std::string>> TargetBuiltins; 804 805 for (const auto &Intrinsic : Ints) { 806 if (Intrinsic.MSBuiltinName.empty()) 807 continue; 808 809 auto &Builtins = TargetBuiltins[Intrinsic.TargetPrefix]; 810 if (!Builtins.insert(std::make_pair(Intrinsic.MSBuiltinName, 811 Intrinsic.EnumName)).second) 812 PrintFatalError("Intrinsic '" + Intrinsic.TheDef->getName() + "': " 813 "duplicate MS builtin name!"); 814 } 815 816 OS << "// Get the LLVM intrinsic that corresponds to a MS builtin.\n" 817 "// This is used by the C front-end. The MS builtin name is passed\n" 818 "// in as a BuiltinName, and a target prefix (e.g. 'arm') is passed\n" 819 "// in as a TargetPrefix. The result is assigned to 'IntrinsicID'.\n" 820 "#ifdef GET_LLVM_INTRINSIC_FOR_MS_BUILTIN\n"; 821 822 OS << (TargetOnly ? "static " + TargetPrefix : "") << "Intrinsic::ID " 823 << (TargetOnly ? "" : "Intrinsic::") 824 << "getIntrinsicForMSBuiltin(const char *TP, const char *BN) {\n"; 825 OS << " StringRef BuiltinName(BN);\n" 826 " StringRef TargetPrefix(TP);\n" 827 "\n"; 828 829 for (const auto &Builtins : TargetBuiltins) { 830 OS << " "; 831 if (Builtins.first.empty()) 832 OS << "/* Target Independent Builtins */ "; 833 else 834 OS << "if (TargetPrefix == \"" << Builtins.first << "\") "; 835 OS << "{\n"; 836 EmitTargetBuiltins(Builtins.second, TargetPrefix, OS); 837 OS << "}"; 838 } 839 840 OS << " return "; 841 if (!TargetPrefix.empty()) 842 OS << "(" << TargetPrefix << "Intrinsic::ID)"; 843 OS << "Intrinsic::not_intrinsic;\n"; 844 OS << "}\n"; 845 846 OS << "#endif\n\n"; 847 } 848 849 void llvm::EmitIntrinsics(RecordKeeper &RK, raw_ostream &OS, bool TargetOnly) { 850 IntrinsicEmitter(RK, TargetOnly).run(OS); 851 } 852