1 //===- Attributes.cpp - Implement AttributesList --------------------------===// 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 // \file 10 // This file implements the Attribute, AttributeImpl, AttrBuilder, 11 // AttributeListImpl, and AttributeList classes. 12 // 13 //===----------------------------------------------------------------------===// 14 15 #include "llvm/IR/Attributes.h" 16 #include "AttributeImpl.h" 17 #include "LLVMContextImpl.h" 18 #include "llvm/ADT/ArrayRef.h" 19 #include "llvm/ADT/FoldingSet.h" 20 #include "llvm/ADT/Optional.h" 21 #include "llvm/ADT/STLExtras.h" 22 #include "llvm/ADT/SmallVector.h" 23 #include "llvm/ADT/StringExtras.h" 24 #include "llvm/ADT/StringRef.h" 25 #include "llvm/ADT/StringSwitch.h" 26 #include "llvm/ADT/Twine.h" 27 #include "llvm/Config/llvm-config.h" 28 #include "llvm/IR/Function.h" 29 #include "llvm/IR/LLVMContext.h" 30 #include "llvm/IR/Type.h" 31 #include "llvm/Support/Compiler.h" 32 #include "llvm/Support/Debug.h" 33 #include "llvm/Support/ErrorHandling.h" 34 #include "llvm/Support/MathExtras.h" 35 #include "llvm/Support/raw_ostream.h" 36 #include <algorithm> 37 #include <cassert> 38 #include <climits> 39 #include <cstddef> 40 #include <cstdint> 41 #include <limits> 42 #include <string> 43 #include <tuple> 44 #include <utility> 45 46 using namespace llvm; 47 48 //===----------------------------------------------------------------------===// 49 // Attribute Construction Methods 50 //===----------------------------------------------------------------------===// 51 52 // allocsize has two integer arguments, but because they're both 32 bits, we can 53 // pack them into one 64-bit value, at the cost of making said value 54 // nonsensical. 55 // 56 // In order to do this, we need to reserve one value of the second (optional) 57 // allocsize argument to signify "not present." 58 static const unsigned AllocSizeNumElemsNotPresent = -1; 59 60 static uint64_t packAllocSizeArgs(unsigned ElemSizeArg, 61 const Optional<unsigned> &NumElemsArg) { 62 assert((!NumElemsArg.hasValue() || 63 *NumElemsArg != AllocSizeNumElemsNotPresent) && 64 "Attempting to pack a reserved value"); 65 66 return uint64_t(ElemSizeArg) << 32 | 67 NumElemsArg.getValueOr(AllocSizeNumElemsNotPresent); 68 } 69 70 static std::pair<unsigned, Optional<unsigned>> 71 unpackAllocSizeArgs(uint64_t Num) { 72 unsigned NumElems = Num & std::numeric_limits<unsigned>::max(); 73 unsigned ElemSizeArg = Num >> 32; 74 75 Optional<unsigned> NumElemsArg; 76 if (NumElems != AllocSizeNumElemsNotPresent) 77 NumElemsArg = NumElems; 78 return std::make_pair(ElemSizeArg, NumElemsArg); 79 } 80 81 Attribute Attribute::get(LLVMContext &Context, Attribute::AttrKind Kind, 82 uint64_t Val) { 83 LLVMContextImpl *pImpl = Context.pImpl; 84 FoldingSetNodeID ID; 85 ID.AddInteger(Kind); 86 if (Val) ID.AddInteger(Val); 87 88 void *InsertPoint; 89 AttributeImpl *PA = pImpl->AttrsSet.FindNodeOrInsertPos(ID, InsertPoint); 90 91 if (!PA) { 92 // If we didn't find any existing attributes of the same shape then create a 93 // new one and insert it. 94 if (!Val) 95 PA = new (pImpl->Alloc) EnumAttributeImpl(Kind); 96 else 97 PA = new (pImpl->Alloc) IntAttributeImpl(Kind, Val); 98 pImpl->AttrsSet.InsertNode(PA, InsertPoint); 99 } 100 101 // Return the Attribute that we found or created. 102 return Attribute(PA); 103 } 104 105 Attribute Attribute::get(LLVMContext &Context, StringRef Kind, StringRef Val) { 106 LLVMContextImpl *pImpl = Context.pImpl; 107 FoldingSetNodeID ID; 108 ID.AddString(Kind); 109 if (!Val.empty()) ID.AddString(Val); 110 111 void *InsertPoint; 112 AttributeImpl *PA = pImpl->AttrsSet.FindNodeOrInsertPos(ID, InsertPoint); 113 114 if (!PA) { 115 // If we didn't find any existing attributes of the same shape then create a 116 // new one and insert it. 117 void *Mem = 118 pImpl->Alloc.Allocate(StringAttributeImpl::totalSizeToAlloc(Kind, Val), 119 alignof(StringAttributeImpl)); 120 PA = new (Mem) StringAttributeImpl(Kind, Val); 121 pImpl->AttrsSet.InsertNode(PA, InsertPoint); 122 } 123 124 // Return the Attribute that we found or created. 125 return Attribute(PA); 126 } 127 128 Attribute Attribute::get(LLVMContext &Context, Attribute::AttrKind Kind, 129 Type *Ty) { 130 LLVMContextImpl *pImpl = Context.pImpl; 131 FoldingSetNodeID ID; 132 ID.AddInteger(Kind); 133 ID.AddPointer(Ty); 134 135 void *InsertPoint; 136 AttributeImpl *PA = pImpl->AttrsSet.FindNodeOrInsertPos(ID, InsertPoint); 137 138 if (!PA) { 139 // If we didn't find any existing attributes of the same shape then create a 140 // new one and insert it. 141 PA = new (pImpl->Alloc) TypeAttributeImpl(Kind, Ty); 142 pImpl->AttrsSet.InsertNode(PA, InsertPoint); 143 } 144 145 // Return the Attribute that we found or created. 146 return Attribute(PA); 147 } 148 149 Attribute Attribute::getWithAlignment(LLVMContext &Context, Align A) { 150 assert(A <= llvm::Value::MaximumAlignment && "Alignment too large."); 151 return get(Context, Alignment, A.value()); 152 } 153 154 Attribute Attribute::getWithStackAlignment(LLVMContext &Context, Align A) { 155 assert(A <= 0x100 && "Alignment too large."); 156 return get(Context, StackAlignment, A.value()); 157 } 158 159 Attribute Attribute::getWithDereferenceableBytes(LLVMContext &Context, 160 uint64_t Bytes) { 161 assert(Bytes && "Bytes must be non-zero."); 162 return get(Context, Dereferenceable, Bytes); 163 } 164 165 Attribute Attribute::getWithDereferenceableOrNullBytes(LLVMContext &Context, 166 uint64_t Bytes) { 167 assert(Bytes && "Bytes must be non-zero."); 168 return get(Context, DereferenceableOrNull, Bytes); 169 } 170 171 Attribute Attribute::getWithByValType(LLVMContext &Context, Type *Ty) { 172 return get(Context, ByVal, Ty); 173 } 174 175 Attribute Attribute::getWithStructRetType(LLVMContext &Context, Type *Ty) { 176 return get(Context, StructRet, Ty); 177 } 178 179 Attribute Attribute::getWithByRefType(LLVMContext &Context, Type *Ty) { 180 return get(Context, ByRef, Ty); 181 } 182 183 Attribute Attribute::getWithPreallocatedType(LLVMContext &Context, Type *Ty) { 184 return get(Context, Preallocated, Ty); 185 } 186 187 Attribute 188 Attribute::getWithAllocSizeArgs(LLVMContext &Context, unsigned ElemSizeArg, 189 const Optional<unsigned> &NumElemsArg) { 190 assert(!(ElemSizeArg == 0 && NumElemsArg && *NumElemsArg == 0) && 191 "Invalid allocsize arguments -- given allocsize(0, 0)"); 192 return get(Context, AllocSize, packAllocSizeArgs(ElemSizeArg, NumElemsArg)); 193 } 194 195 Attribute::AttrKind Attribute::getAttrKindFromName(StringRef AttrName) { 196 return StringSwitch<Attribute::AttrKind>(AttrName) 197 #define GET_ATTR_NAMES 198 #define ATTRIBUTE_ENUM(ENUM_NAME, DISPLAY_NAME) \ 199 .Case(#DISPLAY_NAME, Attribute::ENUM_NAME) 200 #include "llvm/IR/Attributes.inc" 201 .Default(Attribute::None); 202 } 203 204 StringRef Attribute::getNameFromAttrKind(Attribute::AttrKind AttrKind) { 205 switch (AttrKind) { 206 #define GET_ATTR_NAMES 207 #define ATTRIBUTE_ENUM(ENUM_NAME, DISPLAY_NAME) \ 208 case Attribute::ENUM_NAME: \ 209 return #DISPLAY_NAME; 210 #include "llvm/IR/Attributes.inc" 211 case Attribute::None: 212 return "none"; 213 default: 214 llvm_unreachable("invalid Kind"); 215 } 216 } 217 218 bool Attribute::doesAttrKindHaveArgument(Attribute::AttrKind AttrKind) { 219 return AttrKind == Attribute::Alignment || 220 AttrKind == Attribute::StackAlignment || 221 AttrKind == Attribute::Dereferenceable || 222 AttrKind == Attribute::AllocSize || 223 AttrKind == Attribute::DereferenceableOrNull; 224 } 225 226 bool Attribute::isExistingAttribute(StringRef Name) { 227 return StringSwitch<bool>(Name) 228 #define GET_ATTR_NAMES 229 #define ATTRIBUTE_ALL(ENUM_NAME, DISPLAY_NAME) .Case(#DISPLAY_NAME, true) 230 #include "llvm/IR/Attributes.inc" 231 .Default(false); 232 } 233 234 //===----------------------------------------------------------------------===// 235 // Attribute Accessor Methods 236 //===----------------------------------------------------------------------===// 237 238 bool Attribute::isEnumAttribute() const { 239 return pImpl && pImpl->isEnumAttribute(); 240 } 241 242 bool Attribute::isIntAttribute() const { 243 return pImpl && pImpl->isIntAttribute(); 244 } 245 246 bool Attribute::isStringAttribute() const { 247 return pImpl && pImpl->isStringAttribute(); 248 } 249 250 bool Attribute::isTypeAttribute() const { 251 return pImpl && pImpl->isTypeAttribute(); 252 } 253 254 Attribute::AttrKind Attribute::getKindAsEnum() const { 255 if (!pImpl) return None; 256 assert((isEnumAttribute() || isIntAttribute() || isTypeAttribute()) && 257 "Invalid attribute type to get the kind as an enum!"); 258 return pImpl->getKindAsEnum(); 259 } 260 261 uint64_t Attribute::getValueAsInt() const { 262 if (!pImpl) return 0; 263 assert(isIntAttribute() && 264 "Expected the attribute to be an integer attribute!"); 265 return pImpl->getValueAsInt(); 266 } 267 268 StringRef Attribute::getKindAsString() const { 269 if (!pImpl) return {}; 270 assert(isStringAttribute() && 271 "Invalid attribute type to get the kind as a string!"); 272 return pImpl->getKindAsString(); 273 } 274 275 StringRef Attribute::getValueAsString() const { 276 if (!pImpl) return {}; 277 assert(isStringAttribute() && 278 "Invalid attribute type to get the value as a string!"); 279 return pImpl->getValueAsString(); 280 } 281 282 Type *Attribute::getValueAsType() const { 283 if (!pImpl) return {}; 284 assert(isTypeAttribute() && 285 "Invalid attribute type to get the value as a type!"); 286 return pImpl->getValueAsType(); 287 } 288 289 290 bool Attribute::hasAttribute(AttrKind Kind) const { 291 return (pImpl && pImpl->hasAttribute(Kind)) || (!pImpl && Kind == None); 292 } 293 294 bool Attribute::hasAttribute(StringRef Kind) const { 295 if (!isStringAttribute()) return false; 296 return pImpl && pImpl->hasAttribute(Kind); 297 } 298 299 MaybeAlign Attribute::getAlignment() const { 300 assert(hasAttribute(Attribute::Alignment) && 301 "Trying to get alignment from non-alignment attribute!"); 302 return MaybeAlign(pImpl->getValueAsInt()); 303 } 304 305 MaybeAlign Attribute::getStackAlignment() const { 306 assert(hasAttribute(Attribute::StackAlignment) && 307 "Trying to get alignment from non-alignment attribute!"); 308 return MaybeAlign(pImpl->getValueAsInt()); 309 } 310 311 uint64_t Attribute::getDereferenceableBytes() const { 312 assert(hasAttribute(Attribute::Dereferenceable) && 313 "Trying to get dereferenceable bytes from " 314 "non-dereferenceable attribute!"); 315 return pImpl->getValueAsInt(); 316 } 317 318 uint64_t Attribute::getDereferenceableOrNullBytes() const { 319 assert(hasAttribute(Attribute::DereferenceableOrNull) && 320 "Trying to get dereferenceable bytes from " 321 "non-dereferenceable attribute!"); 322 return pImpl->getValueAsInt(); 323 } 324 325 std::pair<unsigned, Optional<unsigned>> Attribute::getAllocSizeArgs() const { 326 assert(hasAttribute(Attribute::AllocSize) && 327 "Trying to get allocsize args from non-allocsize attribute"); 328 return unpackAllocSizeArgs(pImpl->getValueAsInt()); 329 } 330 331 std::string Attribute::getAsString(bool InAttrGrp) const { 332 if (!pImpl) return {}; 333 334 if (hasAttribute(Attribute::SanitizeAddress)) 335 return "sanitize_address"; 336 if (hasAttribute(Attribute::SanitizeHWAddress)) 337 return "sanitize_hwaddress"; 338 if (hasAttribute(Attribute::SanitizeMemTag)) 339 return "sanitize_memtag"; 340 if (hasAttribute(Attribute::AlwaysInline)) 341 return "alwaysinline"; 342 if (hasAttribute(Attribute::ArgMemOnly)) 343 return "argmemonly"; 344 if (hasAttribute(Attribute::Builtin)) 345 return "builtin"; 346 if (hasAttribute(Attribute::Convergent)) 347 return "convergent"; 348 if (hasAttribute(Attribute::SwiftError)) 349 return "swifterror"; 350 if (hasAttribute(Attribute::SwiftSelf)) 351 return "swiftself"; 352 if (hasAttribute(Attribute::InaccessibleMemOnly)) 353 return "inaccessiblememonly"; 354 if (hasAttribute(Attribute::InaccessibleMemOrArgMemOnly)) 355 return "inaccessiblemem_or_argmemonly"; 356 if (hasAttribute(Attribute::InAlloca)) 357 return "inalloca"; 358 if (hasAttribute(Attribute::InlineHint)) 359 return "inlinehint"; 360 if (hasAttribute(Attribute::InReg)) 361 return "inreg"; 362 if (hasAttribute(Attribute::JumpTable)) 363 return "jumptable"; 364 if (hasAttribute(Attribute::MinSize)) 365 return "minsize"; 366 if (hasAttribute(Attribute::Naked)) 367 return "naked"; 368 if (hasAttribute(Attribute::Nest)) 369 return "nest"; 370 if (hasAttribute(Attribute::NoAlias)) 371 return "noalias"; 372 if (hasAttribute(Attribute::NoBuiltin)) 373 return "nobuiltin"; 374 if (hasAttribute(Attribute::NoCapture)) 375 return "nocapture"; 376 if (hasAttribute(Attribute::NoDuplicate)) 377 return "noduplicate"; 378 if (hasAttribute(Attribute::NoFree)) 379 return "nofree"; 380 if (hasAttribute(Attribute::NoImplicitFloat)) 381 return "noimplicitfloat"; 382 if (hasAttribute(Attribute::NoInline)) 383 return "noinline"; 384 if (hasAttribute(Attribute::NonLazyBind)) 385 return "nonlazybind"; 386 if (hasAttribute(Attribute::NoMerge)) 387 return "nomerge"; 388 if (hasAttribute(Attribute::NonNull)) 389 return "nonnull"; 390 if (hasAttribute(Attribute::NoRedZone)) 391 return "noredzone"; 392 if (hasAttribute(Attribute::NoReturn)) 393 return "noreturn"; 394 if (hasAttribute(Attribute::NoSync)) 395 return "nosync"; 396 if (hasAttribute(Attribute::NullPointerIsValid)) 397 return "null_pointer_is_valid"; 398 if (hasAttribute(Attribute::WillReturn)) 399 return "willreturn"; 400 if (hasAttribute(Attribute::NoCfCheck)) 401 return "nocf_check"; 402 if (hasAttribute(Attribute::NoRecurse)) 403 return "norecurse"; 404 if (hasAttribute(Attribute::NoUnwind)) 405 return "nounwind"; 406 if (hasAttribute(Attribute::OptForFuzzing)) 407 return "optforfuzzing"; 408 if (hasAttribute(Attribute::OptimizeNone)) 409 return "optnone"; 410 if (hasAttribute(Attribute::OptimizeForSize)) 411 return "optsize"; 412 if (hasAttribute(Attribute::ReadNone)) 413 return "readnone"; 414 if (hasAttribute(Attribute::ReadOnly)) 415 return "readonly"; 416 if (hasAttribute(Attribute::WriteOnly)) 417 return "writeonly"; 418 if (hasAttribute(Attribute::Returned)) 419 return "returned"; 420 if (hasAttribute(Attribute::ReturnsTwice)) 421 return "returns_twice"; 422 if (hasAttribute(Attribute::SExt)) 423 return "signext"; 424 if (hasAttribute(Attribute::SpeculativeLoadHardening)) 425 return "speculative_load_hardening"; 426 if (hasAttribute(Attribute::Speculatable)) 427 return "speculatable"; 428 if (hasAttribute(Attribute::StackProtect)) 429 return "ssp"; 430 if (hasAttribute(Attribute::StackProtectReq)) 431 return "sspreq"; 432 if (hasAttribute(Attribute::StackProtectStrong)) 433 return "sspstrong"; 434 if (hasAttribute(Attribute::SafeStack)) 435 return "safestack"; 436 if (hasAttribute(Attribute::ShadowCallStack)) 437 return "shadowcallstack"; 438 if (hasAttribute(Attribute::StrictFP)) 439 return "strictfp"; 440 if (hasAttribute(Attribute::SanitizeThread)) 441 return "sanitize_thread"; 442 if (hasAttribute(Attribute::SanitizeMemory)) 443 return "sanitize_memory"; 444 if (hasAttribute(Attribute::UWTable)) 445 return "uwtable"; 446 if (hasAttribute(Attribute::ZExt)) 447 return "zeroext"; 448 if (hasAttribute(Attribute::Cold)) 449 return "cold"; 450 if (hasAttribute(Attribute::ImmArg)) 451 return "immarg"; 452 if (hasAttribute(Attribute::NoUndef)) 453 return "noundef"; 454 if (hasAttribute(Attribute::MustProgress)) 455 return "mustprogress"; 456 457 const bool IsByVal = hasAttribute(Attribute::ByVal); 458 if (IsByVal || hasAttribute(Attribute::StructRet)) { 459 std::string Result; 460 Result += IsByVal ? "byval" : "sret"; 461 if (Type *Ty = getValueAsType()) { 462 raw_string_ostream OS(Result); 463 Result += '('; 464 Ty->print(OS, false, true); 465 OS.flush(); 466 Result += ')'; 467 } 468 return Result; 469 } 470 471 const bool IsByRef = hasAttribute(Attribute::ByRef); 472 if (IsByRef || hasAttribute(Attribute::Preallocated)) { 473 std::string Result = IsByRef ? "byref" : "preallocated"; 474 raw_string_ostream OS(Result); 475 Result += '('; 476 getValueAsType()->print(OS, false, true); 477 OS.flush(); 478 Result += ')'; 479 return Result; 480 } 481 482 // FIXME: These should be output like this: 483 // 484 // align=4 485 // alignstack=8 486 // 487 if (hasAttribute(Attribute::Alignment)) { 488 std::string Result; 489 Result += "align"; 490 Result += (InAttrGrp) ? "=" : " "; 491 Result += utostr(getValueAsInt()); 492 return Result; 493 } 494 495 auto AttrWithBytesToString = [&](const char *Name) { 496 std::string Result; 497 Result += Name; 498 if (InAttrGrp) { 499 Result += "="; 500 Result += utostr(getValueAsInt()); 501 } else { 502 Result += "("; 503 Result += utostr(getValueAsInt()); 504 Result += ")"; 505 } 506 return Result; 507 }; 508 509 if (hasAttribute(Attribute::StackAlignment)) 510 return AttrWithBytesToString("alignstack"); 511 512 if (hasAttribute(Attribute::Dereferenceable)) 513 return AttrWithBytesToString("dereferenceable"); 514 515 if (hasAttribute(Attribute::DereferenceableOrNull)) 516 return AttrWithBytesToString("dereferenceable_or_null"); 517 518 if (hasAttribute(Attribute::AllocSize)) { 519 unsigned ElemSize; 520 Optional<unsigned> NumElems; 521 std::tie(ElemSize, NumElems) = getAllocSizeArgs(); 522 523 std::string Result = "allocsize("; 524 Result += utostr(ElemSize); 525 if (NumElems.hasValue()) { 526 Result += ','; 527 Result += utostr(*NumElems); 528 } 529 Result += ')'; 530 return Result; 531 } 532 533 // Convert target-dependent attributes to strings of the form: 534 // 535 // "kind" 536 // "kind" = "value" 537 // 538 if (isStringAttribute()) { 539 std::string Result; 540 { 541 raw_string_ostream OS(Result); 542 OS << '"' << getKindAsString() << '"'; 543 544 // Since some attribute strings contain special characters that cannot be 545 // printable, those have to be escaped to make the attribute value 546 // printable as is. e.g. "\01__gnu_mcount_nc" 547 const auto &AttrVal = pImpl->getValueAsString(); 548 if (!AttrVal.empty()) { 549 OS << "=\""; 550 printEscapedString(AttrVal, OS); 551 OS << "\""; 552 } 553 } 554 return Result; 555 } 556 557 llvm_unreachable("Unknown attribute"); 558 } 559 560 bool Attribute::operator<(Attribute A) const { 561 if (!pImpl && !A.pImpl) return false; 562 if (!pImpl) return true; 563 if (!A.pImpl) return false; 564 return *pImpl < *A.pImpl; 565 } 566 567 void Attribute::Profile(FoldingSetNodeID &ID) const { 568 ID.AddPointer(pImpl); 569 } 570 571 //===----------------------------------------------------------------------===// 572 // AttributeImpl Definition 573 //===----------------------------------------------------------------------===// 574 575 bool AttributeImpl::hasAttribute(Attribute::AttrKind A) const { 576 if (isStringAttribute()) return false; 577 return getKindAsEnum() == A; 578 } 579 580 bool AttributeImpl::hasAttribute(StringRef Kind) const { 581 if (!isStringAttribute()) return false; 582 return getKindAsString() == Kind; 583 } 584 585 Attribute::AttrKind AttributeImpl::getKindAsEnum() const { 586 assert(isEnumAttribute() || isIntAttribute() || isTypeAttribute()); 587 return static_cast<const EnumAttributeImpl *>(this)->getEnumKind(); 588 } 589 590 uint64_t AttributeImpl::getValueAsInt() const { 591 assert(isIntAttribute()); 592 return static_cast<const IntAttributeImpl *>(this)->getValue(); 593 } 594 595 StringRef AttributeImpl::getKindAsString() const { 596 assert(isStringAttribute()); 597 return static_cast<const StringAttributeImpl *>(this)->getStringKind(); 598 } 599 600 StringRef AttributeImpl::getValueAsString() const { 601 assert(isStringAttribute()); 602 return static_cast<const StringAttributeImpl *>(this)->getStringValue(); 603 } 604 605 Type *AttributeImpl::getValueAsType() const { 606 assert(isTypeAttribute()); 607 return static_cast<const TypeAttributeImpl *>(this)->getTypeValue(); 608 } 609 610 bool AttributeImpl::operator<(const AttributeImpl &AI) const { 611 if (this == &AI) 612 return false; 613 // This sorts the attributes with Attribute::AttrKinds coming first (sorted 614 // relative to their enum value) and then strings. 615 if (isEnumAttribute()) { 616 if (AI.isEnumAttribute()) return getKindAsEnum() < AI.getKindAsEnum(); 617 if (AI.isIntAttribute()) return true; 618 if (AI.isStringAttribute()) return true; 619 if (AI.isTypeAttribute()) return true; 620 } 621 622 if (isTypeAttribute()) { 623 if (AI.isEnumAttribute()) return false; 624 if (AI.isTypeAttribute()) { 625 assert(getKindAsEnum() != AI.getKindAsEnum() && 626 "Comparison of types would be unstable"); 627 return getKindAsEnum() < AI.getKindAsEnum(); 628 } 629 if (AI.isIntAttribute()) return true; 630 if (AI.isStringAttribute()) return true; 631 } 632 633 if (isIntAttribute()) { 634 if (AI.isEnumAttribute()) return false; 635 if (AI.isTypeAttribute()) return false; 636 if (AI.isIntAttribute()) { 637 if (getKindAsEnum() == AI.getKindAsEnum()) 638 return getValueAsInt() < AI.getValueAsInt(); 639 return getKindAsEnum() < AI.getKindAsEnum(); 640 } 641 if (AI.isStringAttribute()) return true; 642 } 643 644 assert(isStringAttribute()); 645 if (AI.isEnumAttribute()) return false; 646 if (AI.isTypeAttribute()) return false; 647 if (AI.isIntAttribute()) return false; 648 if (getKindAsString() == AI.getKindAsString()) 649 return getValueAsString() < AI.getValueAsString(); 650 return getKindAsString() < AI.getKindAsString(); 651 } 652 653 //===----------------------------------------------------------------------===// 654 // AttributeSet Definition 655 //===----------------------------------------------------------------------===// 656 657 AttributeSet AttributeSet::get(LLVMContext &C, const AttrBuilder &B) { 658 return AttributeSet(AttributeSetNode::get(C, B)); 659 } 660 661 AttributeSet AttributeSet::get(LLVMContext &C, ArrayRef<Attribute> Attrs) { 662 return AttributeSet(AttributeSetNode::get(C, Attrs)); 663 } 664 665 AttributeSet AttributeSet::addAttribute(LLVMContext &C, 666 Attribute::AttrKind Kind) const { 667 if (hasAttribute(Kind)) return *this; 668 AttrBuilder B; 669 B.addAttribute(Kind); 670 return addAttributes(C, AttributeSet::get(C, B)); 671 } 672 673 AttributeSet AttributeSet::addAttribute(LLVMContext &C, StringRef Kind, 674 StringRef Value) const { 675 AttrBuilder B; 676 B.addAttribute(Kind, Value); 677 return addAttributes(C, AttributeSet::get(C, B)); 678 } 679 680 AttributeSet AttributeSet::addAttributes(LLVMContext &C, 681 const AttributeSet AS) const { 682 if (!hasAttributes()) 683 return AS; 684 685 if (!AS.hasAttributes()) 686 return *this; 687 688 AttrBuilder B(AS); 689 for (const auto &I : *this) 690 B.addAttribute(I); 691 692 return get(C, B); 693 } 694 695 AttributeSet AttributeSet::removeAttribute(LLVMContext &C, 696 Attribute::AttrKind Kind) const { 697 if (!hasAttribute(Kind)) return *this; 698 AttrBuilder B(*this); 699 B.removeAttribute(Kind); 700 return get(C, B); 701 } 702 703 AttributeSet AttributeSet::removeAttribute(LLVMContext &C, 704 StringRef Kind) const { 705 if (!hasAttribute(Kind)) return *this; 706 AttrBuilder B(*this); 707 B.removeAttribute(Kind); 708 return get(C, B); 709 } 710 711 AttributeSet AttributeSet::removeAttributes(LLVMContext &C, 712 const AttrBuilder &Attrs) const { 713 AttrBuilder B(*this); 714 B.remove(Attrs); 715 return get(C, B); 716 } 717 718 unsigned AttributeSet::getNumAttributes() const { 719 return SetNode ? SetNode->getNumAttributes() : 0; 720 } 721 722 bool AttributeSet::hasAttribute(Attribute::AttrKind Kind) const { 723 return SetNode ? SetNode->hasAttribute(Kind) : false; 724 } 725 726 bool AttributeSet::hasAttribute(StringRef Kind) const { 727 return SetNode ? SetNode->hasAttribute(Kind) : false; 728 } 729 730 Attribute AttributeSet::getAttribute(Attribute::AttrKind Kind) const { 731 return SetNode ? SetNode->getAttribute(Kind) : Attribute(); 732 } 733 734 Attribute AttributeSet::getAttribute(StringRef Kind) const { 735 return SetNode ? SetNode->getAttribute(Kind) : Attribute(); 736 } 737 738 MaybeAlign AttributeSet::getAlignment() const { 739 return SetNode ? SetNode->getAlignment() : None; 740 } 741 742 MaybeAlign AttributeSet::getStackAlignment() const { 743 return SetNode ? SetNode->getStackAlignment() : None; 744 } 745 746 uint64_t AttributeSet::getDereferenceableBytes() const { 747 return SetNode ? SetNode->getDereferenceableBytes() : 0; 748 } 749 750 uint64_t AttributeSet::getDereferenceableOrNullBytes() const { 751 return SetNode ? SetNode->getDereferenceableOrNullBytes() : 0; 752 } 753 754 Type *AttributeSet::getByRefType() const { 755 return SetNode ? SetNode->getByRefType() : nullptr; 756 } 757 758 Type *AttributeSet::getByValType() const { 759 return SetNode ? SetNode->getByValType() : nullptr; 760 } 761 762 Type *AttributeSet::getStructRetType() const { 763 return SetNode ? SetNode->getStructRetType() : nullptr; 764 } 765 766 Type *AttributeSet::getPreallocatedType() const { 767 return SetNode ? SetNode->getPreallocatedType() : nullptr; 768 } 769 770 std::pair<unsigned, Optional<unsigned>> AttributeSet::getAllocSizeArgs() const { 771 return SetNode ? SetNode->getAllocSizeArgs() 772 : std::pair<unsigned, Optional<unsigned>>(0, 0); 773 } 774 775 std::string AttributeSet::getAsString(bool InAttrGrp) const { 776 return SetNode ? SetNode->getAsString(InAttrGrp) : ""; 777 } 778 779 AttributeSet::iterator AttributeSet::begin() const { 780 return SetNode ? SetNode->begin() : nullptr; 781 } 782 783 AttributeSet::iterator AttributeSet::end() const { 784 return SetNode ? SetNode->end() : nullptr; 785 } 786 787 #if !defined(NDEBUG) || defined(LLVM_ENABLE_DUMP) 788 LLVM_DUMP_METHOD void AttributeSet::dump() const { 789 dbgs() << "AS =\n"; 790 dbgs() << " { "; 791 dbgs() << getAsString(true) << " }\n"; 792 } 793 #endif 794 795 //===----------------------------------------------------------------------===// 796 // AttributeSetNode Definition 797 //===----------------------------------------------------------------------===// 798 799 AttributeSetNode::AttributeSetNode(ArrayRef<Attribute> Attrs) 800 : NumAttrs(Attrs.size()) { 801 // There's memory after the node where we can store the entries in. 802 llvm::copy(Attrs, getTrailingObjects<Attribute>()); 803 804 for (const auto &I : *this) { 805 if (I.isStringAttribute()) 806 StringAttrs.insert({ I.getKindAsString(), I }); 807 else 808 AvailableAttrs.addAttribute(I.getKindAsEnum()); 809 } 810 } 811 812 AttributeSetNode *AttributeSetNode::get(LLVMContext &C, 813 ArrayRef<Attribute> Attrs) { 814 SmallVector<Attribute, 8> SortedAttrs(Attrs.begin(), Attrs.end()); 815 llvm::sort(SortedAttrs); 816 return getSorted(C, SortedAttrs); 817 } 818 819 AttributeSetNode *AttributeSetNode::getSorted(LLVMContext &C, 820 ArrayRef<Attribute> SortedAttrs) { 821 if (SortedAttrs.empty()) 822 return nullptr; 823 824 // Build a key to look up the existing attributes. 825 LLVMContextImpl *pImpl = C.pImpl; 826 FoldingSetNodeID ID; 827 828 assert(llvm::is_sorted(SortedAttrs) && "Expected sorted attributes!"); 829 for (const auto &Attr : SortedAttrs) 830 Attr.Profile(ID); 831 832 void *InsertPoint; 833 AttributeSetNode *PA = 834 pImpl->AttrsSetNodes.FindNodeOrInsertPos(ID, InsertPoint); 835 836 // If we didn't find any existing attributes of the same shape then create a 837 // new one and insert it. 838 if (!PA) { 839 // Coallocate entries after the AttributeSetNode itself. 840 void *Mem = ::operator new(totalSizeToAlloc<Attribute>(SortedAttrs.size())); 841 PA = new (Mem) AttributeSetNode(SortedAttrs); 842 pImpl->AttrsSetNodes.InsertNode(PA, InsertPoint); 843 } 844 845 // Return the AttributeSetNode that we found or created. 846 return PA; 847 } 848 849 AttributeSetNode *AttributeSetNode::get(LLVMContext &C, const AttrBuilder &B) { 850 // Add target-independent attributes. 851 SmallVector<Attribute, 8> Attrs; 852 for (Attribute::AttrKind Kind = Attribute::None; 853 Kind != Attribute::EndAttrKinds; Kind = Attribute::AttrKind(Kind + 1)) { 854 if (!B.contains(Kind)) 855 continue; 856 857 Attribute Attr; 858 switch (Kind) { 859 case Attribute::ByVal: 860 Attr = Attribute::getWithByValType(C, B.getByValType()); 861 break; 862 case Attribute::StructRet: 863 Attr = Attribute::getWithStructRetType(C, B.getStructRetType()); 864 break; 865 case Attribute::ByRef: 866 Attr = Attribute::getWithByRefType(C, B.getByRefType()); 867 break; 868 case Attribute::Preallocated: 869 Attr = Attribute::getWithPreallocatedType(C, B.getPreallocatedType()); 870 break; 871 case Attribute::Alignment: 872 assert(B.getAlignment() && "Alignment must be set"); 873 Attr = Attribute::getWithAlignment(C, *B.getAlignment()); 874 break; 875 case Attribute::StackAlignment: 876 assert(B.getStackAlignment() && "StackAlignment must be set"); 877 Attr = Attribute::getWithStackAlignment(C, *B.getStackAlignment()); 878 break; 879 case Attribute::Dereferenceable: 880 Attr = Attribute::getWithDereferenceableBytes( 881 C, B.getDereferenceableBytes()); 882 break; 883 case Attribute::DereferenceableOrNull: 884 Attr = Attribute::getWithDereferenceableOrNullBytes( 885 C, B.getDereferenceableOrNullBytes()); 886 break; 887 case Attribute::AllocSize: { 888 auto A = B.getAllocSizeArgs(); 889 Attr = Attribute::getWithAllocSizeArgs(C, A.first, A.second); 890 break; 891 } 892 default: 893 Attr = Attribute::get(C, Kind); 894 } 895 Attrs.push_back(Attr); 896 } 897 898 // Add target-dependent (string) attributes. 899 for (const auto &TDA : B.td_attrs()) 900 Attrs.emplace_back(Attribute::get(C, TDA.first, TDA.second)); 901 902 return getSorted(C, Attrs); 903 } 904 905 bool AttributeSetNode::hasAttribute(StringRef Kind) const { 906 return StringAttrs.count(Kind); 907 } 908 909 Optional<Attribute> 910 AttributeSetNode::findEnumAttribute(Attribute::AttrKind Kind) const { 911 // Do a quick presence check. 912 if (!hasAttribute(Kind)) 913 return None; 914 915 // Attributes in a set are sorted by enum value, followed by string 916 // attributes. Binary search the one we want. 917 const Attribute *I = 918 std::lower_bound(begin(), end() - StringAttrs.size(), Kind, 919 [](Attribute A, Attribute::AttrKind Kind) { 920 return A.getKindAsEnum() < Kind; 921 }); 922 assert(I != end() && I->hasAttribute(Kind) && "Presence check failed?"); 923 return *I; 924 } 925 926 Attribute AttributeSetNode::getAttribute(Attribute::AttrKind Kind) const { 927 if (auto A = findEnumAttribute(Kind)) 928 return *A; 929 return {}; 930 } 931 932 Attribute AttributeSetNode::getAttribute(StringRef Kind) const { 933 return StringAttrs.lookup(Kind); 934 } 935 936 MaybeAlign AttributeSetNode::getAlignment() const { 937 if (auto A = findEnumAttribute(Attribute::Alignment)) 938 return A->getAlignment(); 939 return None; 940 } 941 942 MaybeAlign AttributeSetNode::getStackAlignment() const { 943 if (auto A = findEnumAttribute(Attribute::StackAlignment)) 944 return A->getStackAlignment(); 945 return None; 946 } 947 948 Type *AttributeSetNode::getByValType() const { 949 if (auto A = findEnumAttribute(Attribute::ByVal)) 950 return A->getValueAsType(); 951 return nullptr; 952 } 953 954 Type *AttributeSetNode::getStructRetType() const { 955 if (auto A = findEnumAttribute(Attribute::StructRet)) 956 return A->getValueAsType(); 957 return nullptr; 958 } 959 960 Type *AttributeSetNode::getByRefType() const { 961 if (auto A = findEnumAttribute(Attribute::ByRef)) 962 return A->getValueAsType(); 963 return nullptr; 964 } 965 966 Type *AttributeSetNode::getPreallocatedType() const { 967 if (auto A = findEnumAttribute(Attribute::Preallocated)) 968 return A->getValueAsType(); 969 return nullptr; 970 } 971 972 uint64_t AttributeSetNode::getDereferenceableBytes() const { 973 if (auto A = findEnumAttribute(Attribute::Dereferenceable)) 974 return A->getDereferenceableBytes(); 975 return 0; 976 } 977 978 uint64_t AttributeSetNode::getDereferenceableOrNullBytes() const { 979 if (auto A = findEnumAttribute(Attribute::DereferenceableOrNull)) 980 return A->getDereferenceableOrNullBytes(); 981 return 0; 982 } 983 984 std::pair<unsigned, Optional<unsigned>> 985 AttributeSetNode::getAllocSizeArgs() const { 986 if (auto A = findEnumAttribute(Attribute::AllocSize)) 987 return A->getAllocSizeArgs(); 988 return std::make_pair(0, 0); 989 } 990 991 std::string AttributeSetNode::getAsString(bool InAttrGrp) const { 992 std::string Str; 993 for (iterator I = begin(), E = end(); I != E; ++I) { 994 if (I != begin()) 995 Str += ' '; 996 Str += I->getAsString(InAttrGrp); 997 } 998 return Str; 999 } 1000 1001 //===----------------------------------------------------------------------===// 1002 // AttributeListImpl Definition 1003 //===----------------------------------------------------------------------===// 1004 1005 /// Map from AttributeList index to the internal array index. Adding one happens 1006 /// to work, because -1 wraps around to 0. 1007 static unsigned attrIdxToArrayIdx(unsigned Index) { 1008 return Index + 1; 1009 } 1010 1011 AttributeListImpl::AttributeListImpl(ArrayRef<AttributeSet> Sets) 1012 : NumAttrSets(Sets.size()) { 1013 assert(!Sets.empty() && "pointless AttributeListImpl"); 1014 1015 // There's memory after the node where we can store the entries in. 1016 llvm::copy(Sets, getTrailingObjects<AttributeSet>()); 1017 1018 // Initialize AvailableFunctionAttrs and AvailableSomewhereAttrs 1019 // summary bitsets. 1020 for (const auto &I : Sets[attrIdxToArrayIdx(AttributeList::FunctionIndex)]) 1021 if (!I.isStringAttribute()) 1022 AvailableFunctionAttrs.addAttribute(I.getKindAsEnum()); 1023 1024 for (const auto &Set : Sets) 1025 for (const auto &I : Set) 1026 if (!I.isStringAttribute()) 1027 AvailableSomewhereAttrs.addAttribute(I.getKindAsEnum()); 1028 } 1029 1030 void AttributeListImpl::Profile(FoldingSetNodeID &ID) const { 1031 Profile(ID, makeArrayRef(begin(), end())); 1032 } 1033 1034 void AttributeListImpl::Profile(FoldingSetNodeID &ID, 1035 ArrayRef<AttributeSet> Sets) { 1036 for (const auto &Set : Sets) 1037 ID.AddPointer(Set.SetNode); 1038 } 1039 1040 bool AttributeListImpl::hasAttrSomewhere(Attribute::AttrKind Kind, 1041 unsigned *Index) const { 1042 if (!AvailableSomewhereAttrs.hasAttribute(Kind)) 1043 return false; 1044 1045 if (Index) { 1046 for (unsigned I = 0, E = NumAttrSets; I != E; ++I) { 1047 if (begin()[I].hasAttribute(Kind)) { 1048 *Index = I - 1; 1049 break; 1050 } 1051 } 1052 } 1053 1054 return true; 1055 } 1056 1057 1058 #if !defined(NDEBUG) || defined(LLVM_ENABLE_DUMP) 1059 LLVM_DUMP_METHOD void AttributeListImpl::dump() const { 1060 AttributeList(const_cast<AttributeListImpl *>(this)).dump(); 1061 } 1062 #endif 1063 1064 //===----------------------------------------------------------------------===// 1065 // AttributeList Construction and Mutation Methods 1066 //===----------------------------------------------------------------------===// 1067 1068 AttributeList AttributeList::getImpl(LLVMContext &C, 1069 ArrayRef<AttributeSet> AttrSets) { 1070 assert(!AttrSets.empty() && "pointless AttributeListImpl"); 1071 1072 LLVMContextImpl *pImpl = C.pImpl; 1073 FoldingSetNodeID ID; 1074 AttributeListImpl::Profile(ID, AttrSets); 1075 1076 void *InsertPoint; 1077 AttributeListImpl *PA = 1078 pImpl->AttrsLists.FindNodeOrInsertPos(ID, InsertPoint); 1079 1080 // If we didn't find any existing attributes of the same shape then 1081 // create a new one and insert it. 1082 if (!PA) { 1083 // Coallocate entries after the AttributeListImpl itself. 1084 void *Mem = pImpl->Alloc.Allocate( 1085 AttributeListImpl::totalSizeToAlloc<AttributeSet>(AttrSets.size()), 1086 alignof(AttributeListImpl)); 1087 PA = new (Mem) AttributeListImpl(AttrSets); 1088 pImpl->AttrsLists.InsertNode(PA, InsertPoint); 1089 } 1090 1091 // Return the AttributesList that we found or created. 1092 return AttributeList(PA); 1093 } 1094 1095 AttributeList 1096 AttributeList::get(LLVMContext &C, 1097 ArrayRef<std::pair<unsigned, Attribute>> Attrs) { 1098 // If there are no attributes then return a null AttributesList pointer. 1099 if (Attrs.empty()) 1100 return {}; 1101 1102 assert(llvm::is_sorted(Attrs, 1103 [](const std::pair<unsigned, Attribute> &LHS, 1104 const std::pair<unsigned, Attribute> &RHS) { 1105 return LHS.first < RHS.first; 1106 }) && 1107 "Misordered Attributes list!"); 1108 assert(llvm::all_of(Attrs, 1109 [](const std::pair<unsigned, Attribute> &Pair) { 1110 return Pair.second.isValid(); 1111 }) && 1112 "Pointless attribute!"); 1113 1114 // Create a vector if (unsigned, AttributeSetNode*) pairs from the attributes 1115 // list. 1116 SmallVector<std::pair<unsigned, AttributeSet>, 8> AttrPairVec; 1117 for (ArrayRef<std::pair<unsigned, Attribute>>::iterator I = Attrs.begin(), 1118 E = Attrs.end(); I != E; ) { 1119 unsigned Index = I->first; 1120 SmallVector<Attribute, 4> AttrVec; 1121 while (I != E && I->first == Index) { 1122 AttrVec.push_back(I->second); 1123 ++I; 1124 } 1125 1126 AttrPairVec.emplace_back(Index, AttributeSet::get(C, AttrVec)); 1127 } 1128 1129 return get(C, AttrPairVec); 1130 } 1131 1132 AttributeList 1133 AttributeList::get(LLVMContext &C, 1134 ArrayRef<std::pair<unsigned, AttributeSet>> Attrs) { 1135 // If there are no attributes then return a null AttributesList pointer. 1136 if (Attrs.empty()) 1137 return {}; 1138 1139 assert(llvm::is_sorted(Attrs, 1140 [](const std::pair<unsigned, AttributeSet> &LHS, 1141 const std::pair<unsigned, AttributeSet> &RHS) { 1142 return LHS.first < RHS.first; 1143 }) && 1144 "Misordered Attributes list!"); 1145 assert(llvm::none_of(Attrs, 1146 [](const std::pair<unsigned, AttributeSet> &Pair) { 1147 return !Pair.second.hasAttributes(); 1148 }) && 1149 "Pointless attribute!"); 1150 1151 unsigned MaxIndex = Attrs.back().first; 1152 // If the MaxIndex is FunctionIndex and there are other indices in front 1153 // of it, we need to use the largest of those to get the right size. 1154 if (MaxIndex == FunctionIndex && Attrs.size() > 1) 1155 MaxIndex = Attrs[Attrs.size() - 2].first; 1156 1157 SmallVector<AttributeSet, 4> AttrVec(attrIdxToArrayIdx(MaxIndex) + 1); 1158 for (const auto &Pair : Attrs) 1159 AttrVec[attrIdxToArrayIdx(Pair.first)] = Pair.second; 1160 1161 return getImpl(C, AttrVec); 1162 } 1163 1164 AttributeList AttributeList::get(LLVMContext &C, AttributeSet FnAttrs, 1165 AttributeSet RetAttrs, 1166 ArrayRef<AttributeSet> ArgAttrs) { 1167 // Scan from the end to find the last argument with attributes. Most 1168 // arguments don't have attributes, so it's nice if we can have fewer unique 1169 // AttributeListImpls by dropping empty attribute sets at the end of the list. 1170 unsigned NumSets = 0; 1171 for (size_t I = ArgAttrs.size(); I != 0; --I) { 1172 if (ArgAttrs[I - 1].hasAttributes()) { 1173 NumSets = I + 2; 1174 break; 1175 } 1176 } 1177 if (NumSets == 0) { 1178 // Check function and return attributes if we didn't have argument 1179 // attributes. 1180 if (RetAttrs.hasAttributes()) 1181 NumSets = 2; 1182 else if (FnAttrs.hasAttributes()) 1183 NumSets = 1; 1184 } 1185 1186 // If all attribute sets were empty, we can use the empty attribute list. 1187 if (NumSets == 0) 1188 return {}; 1189 1190 SmallVector<AttributeSet, 8> AttrSets; 1191 AttrSets.reserve(NumSets); 1192 // If we have any attributes, we always have function attributes. 1193 AttrSets.push_back(FnAttrs); 1194 if (NumSets > 1) 1195 AttrSets.push_back(RetAttrs); 1196 if (NumSets > 2) { 1197 // Drop the empty argument attribute sets at the end. 1198 ArgAttrs = ArgAttrs.take_front(NumSets - 2); 1199 AttrSets.insert(AttrSets.end(), ArgAttrs.begin(), ArgAttrs.end()); 1200 } 1201 1202 return getImpl(C, AttrSets); 1203 } 1204 1205 AttributeList AttributeList::get(LLVMContext &C, unsigned Index, 1206 const AttrBuilder &B) { 1207 if (!B.hasAttributes()) 1208 return {}; 1209 Index = attrIdxToArrayIdx(Index); 1210 SmallVector<AttributeSet, 8> AttrSets(Index + 1); 1211 AttrSets[Index] = AttributeSet::get(C, B); 1212 return getImpl(C, AttrSets); 1213 } 1214 1215 AttributeList AttributeList::get(LLVMContext &C, unsigned Index, 1216 ArrayRef<Attribute::AttrKind> Kinds) { 1217 SmallVector<std::pair<unsigned, Attribute>, 8> Attrs; 1218 for (const auto K : Kinds) 1219 Attrs.emplace_back(Index, Attribute::get(C, K)); 1220 return get(C, Attrs); 1221 } 1222 1223 AttributeList AttributeList::get(LLVMContext &C, unsigned Index, 1224 ArrayRef<Attribute::AttrKind> Kinds, 1225 ArrayRef<uint64_t> Values) { 1226 assert(Kinds.size() == Values.size() && "Mismatched attribute values."); 1227 SmallVector<std::pair<unsigned, Attribute>, 8> Attrs; 1228 auto VI = Values.begin(); 1229 for (const auto K : Kinds) 1230 Attrs.emplace_back(Index, Attribute::get(C, K, *VI++)); 1231 return get(C, Attrs); 1232 } 1233 1234 AttributeList AttributeList::get(LLVMContext &C, unsigned Index, 1235 ArrayRef<StringRef> Kinds) { 1236 SmallVector<std::pair<unsigned, Attribute>, 8> Attrs; 1237 for (const auto &K : Kinds) 1238 Attrs.emplace_back(Index, Attribute::get(C, K)); 1239 return get(C, Attrs); 1240 } 1241 1242 AttributeList AttributeList::get(LLVMContext &C, 1243 ArrayRef<AttributeList> Attrs) { 1244 if (Attrs.empty()) 1245 return {}; 1246 if (Attrs.size() == 1) 1247 return Attrs[0]; 1248 1249 unsigned MaxSize = 0; 1250 for (const auto &List : Attrs) 1251 MaxSize = std::max(MaxSize, List.getNumAttrSets()); 1252 1253 // If every list was empty, there is no point in merging the lists. 1254 if (MaxSize == 0) 1255 return {}; 1256 1257 SmallVector<AttributeSet, 8> NewAttrSets(MaxSize); 1258 for (unsigned I = 0; I < MaxSize; ++I) { 1259 AttrBuilder CurBuilder; 1260 for (const auto &List : Attrs) 1261 CurBuilder.merge(List.getAttributes(I - 1)); 1262 NewAttrSets[I] = AttributeSet::get(C, CurBuilder); 1263 } 1264 1265 return getImpl(C, NewAttrSets); 1266 } 1267 1268 AttributeList AttributeList::addAttribute(LLVMContext &C, unsigned Index, 1269 Attribute::AttrKind Kind) const { 1270 if (hasAttribute(Index, Kind)) return *this; 1271 AttrBuilder B; 1272 B.addAttribute(Kind); 1273 return addAttributes(C, Index, B); 1274 } 1275 1276 AttributeList AttributeList::addAttribute(LLVMContext &C, unsigned Index, 1277 StringRef Kind, 1278 StringRef Value) const { 1279 AttrBuilder B; 1280 B.addAttribute(Kind, Value); 1281 return addAttributes(C, Index, B); 1282 } 1283 1284 AttributeList AttributeList::addAttribute(LLVMContext &C, unsigned Index, 1285 Attribute A) const { 1286 AttrBuilder B; 1287 B.addAttribute(A); 1288 return addAttributes(C, Index, B); 1289 } 1290 1291 AttributeList AttributeList::addAttributes(LLVMContext &C, unsigned Index, 1292 const AttrBuilder &B) const { 1293 if (!B.hasAttributes()) 1294 return *this; 1295 1296 if (!pImpl) 1297 return AttributeList::get(C, {{Index, AttributeSet::get(C, B)}}); 1298 1299 #ifndef NDEBUG 1300 // FIXME it is not obvious how this should work for alignment. For now, say 1301 // we can't change a known alignment. 1302 const MaybeAlign OldAlign = getAttributes(Index).getAlignment(); 1303 const MaybeAlign NewAlign = B.getAlignment(); 1304 assert((!OldAlign || !NewAlign || OldAlign == NewAlign) && 1305 "Attempt to change alignment!"); 1306 #endif 1307 1308 Index = attrIdxToArrayIdx(Index); 1309 SmallVector<AttributeSet, 4> AttrSets(this->begin(), this->end()); 1310 if (Index >= AttrSets.size()) 1311 AttrSets.resize(Index + 1); 1312 1313 AttrBuilder Merged(AttrSets[Index]); 1314 Merged.merge(B); 1315 AttrSets[Index] = AttributeSet::get(C, Merged); 1316 1317 return getImpl(C, AttrSets); 1318 } 1319 1320 AttributeList AttributeList::addParamAttribute(LLVMContext &C, 1321 ArrayRef<unsigned> ArgNos, 1322 Attribute A) const { 1323 assert(llvm::is_sorted(ArgNos)); 1324 1325 SmallVector<AttributeSet, 4> AttrSets(this->begin(), this->end()); 1326 unsigned MaxIndex = attrIdxToArrayIdx(ArgNos.back() + FirstArgIndex); 1327 if (MaxIndex >= AttrSets.size()) 1328 AttrSets.resize(MaxIndex + 1); 1329 1330 for (unsigned ArgNo : ArgNos) { 1331 unsigned Index = attrIdxToArrayIdx(ArgNo + FirstArgIndex); 1332 AttrBuilder B(AttrSets[Index]); 1333 B.addAttribute(A); 1334 AttrSets[Index] = AttributeSet::get(C, B); 1335 } 1336 1337 return getImpl(C, AttrSets); 1338 } 1339 1340 AttributeList AttributeList::removeAttribute(LLVMContext &C, unsigned Index, 1341 Attribute::AttrKind Kind) const { 1342 if (!hasAttribute(Index, Kind)) return *this; 1343 1344 Index = attrIdxToArrayIdx(Index); 1345 SmallVector<AttributeSet, 4> AttrSets(this->begin(), this->end()); 1346 assert(Index < AttrSets.size()); 1347 1348 AttrSets[Index] = AttrSets[Index].removeAttribute(C, Kind); 1349 1350 return getImpl(C, AttrSets); 1351 } 1352 1353 AttributeList AttributeList::removeAttribute(LLVMContext &C, unsigned Index, 1354 StringRef Kind) const { 1355 if (!hasAttribute(Index, Kind)) return *this; 1356 1357 Index = attrIdxToArrayIdx(Index); 1358 SmallVector<AttributeSet, 4> AttrSets(this->begin(), this->end()); 1359 assert(Index < AttrSets.size()); 1360 1361 AttrSets[Index] = AttrSets[Index].removeAttribute(C, Kind); 1362 1363 return getImpl(C, AttrSets); 1364 } 1365 1366 AttributeList 1367 AttributeList::removeAttributes(LLVMContext &C, unsigned Index, 1368 const AttrBuilder &AttrsToRemove) const { 1369 if (!pImpl) 1370 return {}; 1371 1372 Index = attrIdxToArrayIdx(Index); 1373 SmallVector<AttributeSet, 4> AttrSets(this->begin(), this->end()); 1374 if (Index >= AttrSets.size()) 1375 AttrSets.resize(Index + 1); 1376 1377 AttrSets[Index] = AttrSets[Index].removeAttributes(C, AttrsToRemove); 1378 1379 return getImpl(C, AttrSets); 1380 } 1381 1382 AttributeList AttributeList::removeAttributes(LLVMContext &C, 1383 unsigned WithoutIndex) const { 1384 if (!pImpl) 1385 return {}; 1386 WithoutIndex = attrIdxToArrayIdx(WithoutIndex); 1387 if (WithoutIndex >= getNumAttrSets()) 1388 return *this; 1389 SmallVector<AttributeSet, 4> AttrSets(this->begin(), this->end()); 1390 AttrSets[WithoutIndex] = AttributeSet(); 1391 return getImpl(C, AttrSets); 1392 } 1393 1394 AttributeList AttributeList::addDereferenceableAttr(LLVMContext &C, 1395 unsigned Index, 1396 uint64_t Bytes) const { 1397 AttrBuilder B; 1398 B.addDereferenceableAttr(Bytes); 1399 return addAttributes(C, Index, B); 1400 } 1401 1402 AttributeList 1403 AttributeList::addDereferenceableOrNullAttr(LLVMContext &C, unsigned Index, 1404 uint64_t Bytes) const { 1405 AttrBuilder B; 1406 B.addDereferenceableOrNullAttr(Bytes); 1407 return addAttributes(C, Index, B); 1408 } 1409 1410 AttributeList 1411 AttributeList::addAllocSizeAttr(LLVMContext &C, unsigned Index, 1412 unsigned ElemSizeArg, 1413 const Optional<unsigned> &NumElemsArg) { 1414 AttrBuilder B; 1415 B.addAllocSizeAttr(ElemSizeArg, NumElemsArg); 1416 return addAttributes(C, Index, B); 1417 } 1418 1419 //===----------------------------------------------------------------------===// 1420 // AttributeList Accessor Methods 1421 //===----------------------------------------------------------------------===// 1422 1423 AttributeSet AttributeList::getParamAttributes(unsigned ArgNo) const { 1424 return getAttributes(ArgNo + FirstArgIndex); 1425 } 1426 1427 AttributeSet AttributeList::getRetAttributes() const { 1428 return getAttributes(ReturnIndex); 1429 } 1430 1431 AttributeSet AttributeList::getFnAttributes() const { 1432 return getAttributes(FunctionIndex); 1433 } 1434 1435 bool AttributeList::hasAttribute(unsigned Index, 1436 Attribute::AttrKind Kind) const { 1437 return getAttributes(Index).hasAttribute(Kind); 1438 } 1439 1440 bool AttributeList::hasAttribute(unsigned Index, StringRef Kind) const { 1441 return getAttributes(Index).hasAttribute(Kind); 1442 } 1443 1444 bool AttributeList::hasAttributes(unsigned Index) const { 1445 return getAttributes(Index).hasAttributes(); 1446 } 1447 1448 bool AttributeList::hasFnAttribute(Attribute::AttrKind Kind) const { 1449 return pImpl && pImpl->hasFnAttribute(Kind); 1450 } 1451 1452 bool AttributeList::hasFnAttribute(StringRef Kind) const { 1453 return hasAttribute(AttributeList::FunctionIndex, Kind); 1454 } 1455 1456 bool AttributeList::hasParamAttribute(unsigned ArgNo, 1457 Attribute::AttrKind Kind) const { 1458 return hasAttribute(ArgNo + FirstArgIndex, Kind); 1459 } 1460 1461 bool AttributeList::hasAttrSomewhere(Attribute::AttrKind Attr, 1462 unsigned *Index) const { 1463 return pImpl && pImpl->hasAttrSomewhere(Attr, Index); 1464 } 1465 1466 Attribute AttributeList::getAttribute(unsigned Index, 1467 Attribute::AttrKind Kind) const { 1468 return getAttributes(Index).getAttribute(Kind); 1469 } 1470 1471 Attribute AttributeList::getAttribute(unsigned Index, StringRef Kind) const { 1472 return getAttributes(Index).getAttribute(Kind); 1473 } 1474 1475 MaybeAlign AttributeList::getRetAlignment() const { 1476 return getAttributes(ReturnIndex).getAlignment(); 1477 } 1478 1479 MaybeAlign AttributeList::getParamAlignment(unsigned ArgNo) const { 1480 return getAttributes(ArgNo + FirstArgIndex).getAlignment(); 1481 } 1482 1483 Type *AttributeList::getParamByValType(unsigned Index) const { 1484 return getAttributes(Index+FirstArgIndex).getByValType(); 1485 } 1486 1487 Type *AttributeList::getParamStructRetType(unsigned Index) const { 1488 return getAttributes(Index + FirstArgIndex).getStructRetType(); 1489 } 1490 1491 Type *AttributeList::getParamByRefType(unsigned Index) const { 1492 return getAttributes(Index + FirstArgIndex).getByRefType(); 1493 } 1494 1495 Type *AttributeList::getParamPreallocatedType(unsigned Index) const { 1496 return getAttributes(Index + FirstArgIndex).getPreallocatedType(); 1497 } 1498 1499 MaybeAlign AttributeList::getStackAlignment(unsigned Index) const { 1500 return getAttributes(Index).getStackAlignment(); 1501 } 1502 1503 uint64_t AttributeList::getDereferenceableBytes(unsigned Index) const { 1504 return getAttributes(Index).getDereferenceableBytes(); 1505 } 1506 1507 uint64_t AttributeList::getDereferenceableOrNullBytes(unsigned Index) const { 1508 return getAttributes(Index).getDereferenceableOrNullBytes(); 1509 } 1510 1511 std::pair<unsigned, Optional<unsigned>> 1512 AttributeList::getAllocSizeArgs(unsigned Index) const { 1513 return getAttributes(Index).getAllocSizeArgs(); 1514 } 1515 1516 std::string AttributeList::getAsString(unsigned Index, bool InAttrGrp) const { 1517 return getAttributes(Index).getAsString(InAttrGrp); 1518 } 1519 1520 AttributeSet AttributeList::getAttributes(unsigned Index) const { 1521 Index = attrIdxToArrayIdx(Index); 1522 if (!pImpl || Index >= getNumAttrSets()) 1523 return {}; 1524 return pImpl->begin()[Index]; 1525 } 1526 1527 AttributeList::iterator AttributeList::begin() const { 1528 return pImpl ? pImpl->begin() : nullptr; 1529 } 1530 1531 AttributeList::iterator AttributeList::end() const { 1532 return pImpl ? pImpl->end() : nullptr; 1533 } 1534 1535 //===----------------------------------------------------------------------===// 1536 // AttributeList Introspection Methods 1537 //===----------------------------------------------------------------------===// 1538 1539 unsigned AttributeList::getNumAttrSets() const { 1540 return pImpl ? pImpl->NumAttrSets : 0; 1541 } 1542 1543 #if !defined(NDEBUG) || defined(LLVM_ENABLE_DUMP) 1544 LLVM_DUMP_METHOD void AttributeList::dump() const { 1545 dbgs() << "PAL[\n"; 1546 1547 for (unsigned i = index_begin(), e = index_end(); i != e; ++i) { 1548 if (getAttributes(i).hasAttributes()) 1549 dbgs() << " { " << i << " => " << getAsString(i) << " }\n"; 1550 } 1551 1552 dbgs() << "]\n"; 1553 } 1554 #endif 1555 1556 //===----------------------------------------------------------------------===// 1557 // AttrBuilder Method Implementations 1558 //===----------------------------------------------------------------------===// 1559 1560 // FIXME: Remove this ctor, use AttributeSet. 1561 AttrBuilder::AttrBuilder(AttributeList AL, unsigned Index) { 1562 AttributeSet AS = AL.getAttributes(Index); 1563 for (const auto &A : AS) 1564 addAttribute(A); 1565 } 1566 1567 AttrBuilder::AttrBuilder(AttributeSet AS) { 1568 for (const auto &A : AS) 1569 addAttribute(A); 1570 } 1571 1572 void AttrBuilder::clear() { 1573 Attrs.reset(); 1574 TargetDepAttrs.clear(); 1575 Alignment.reset(); 1576 StackAlignment.reset(); 1577 DerefBytes = DerefOrNullBytes = 0; 1578 AllocSizeArgs = 0; 1579 ByValType = nullptr; 1580 StructRetType = nullptr; 1581 ByRefType = nullptr; 1582 PreallocatedType = nullptr; 1583 } 1584 1585 AttrBuilder &AttrBuilder::addAttribute(Attribute Attr) { 1586 if (Attr.isStringAttribute()) { 1587 addAttribute(Attr.getKindAsString(), Attr.getValueAsString()); 1588 return *this; 1589 } 1590 1591 Attribute::AttrKind Kind = Attr.getKindAsEnum(); 1592 Attrs[Kind] = true; 1593 1594 if (Kind == Attribute::Alignment) 1595 Alignment = Attr.getAlignment(); 1596 else if (Kind == Attribute::StackAlignment) 1597 StackAlignment = Attr.getStackAlignment(); 1598 else if (Kind == Attribute::ByVal) 1599 ByValType = Attr.getValueAsType(); 1600 else if (Kind == Attribute::StructRet) 1601 StructRetType = Attr.getValueAsType(); 1602 else if (Kind == Attribute::ByRef) 1603 ByRefType = Attr.getValueAsType(); 1604 else if (Kind == Attribute::Preallocated) 1605 PreallocatedType = Attr.getValueAsType(); 1606 else if (Kind == Attribute::Dereferenceable) 1607 DerefBytes = Attr.getDereferenceableBytes(); 1608 else if (Kind == Attribute::DereferenceableOrNull) 1609 DerefOrNullBytes = Attr.getDereferenceableOrNullBytes(); 1610 else if (Kind == Attribute::AllocSize) 1611 AllocSizeArgs = Attr.getValueAsInt(); 1612 return *this; 1613 } 1614 1615 AttrBuilder &AttrBuilder::addAttribute(StringRef A, StringRef V) { 1616 TargetDepAttrs[std::string(A)] = std::string(V); 1617 return *this; 1618 } 1619 1620 AttrBuilder &AttrBuilder::removeAttribute(Attribute::AttrKind Val) { 1621 assert((unsigned)Val < Attribute::EndAttrKinds && "Attribute out of range!"); 1622 Attrs[Val] = false; 1623 1624 if (Val == Attribute::Alignment) 1625 Alignment.reset(); 1626 else if (Val == Attribute::StackAlignment) 1627 StackAlignment.reset(); 1628 else if (Val == Attribute::ByVal) 1629 ByValType = nullptr; 1630 else if (Val == Attribute::StructRet) 1631 StructRetType = nullptr; 1632 else if (Val == Attribute::ByRef) 1633 ByRefType = nullptr; 1634 else if (Val == Attribute::Preallocated) 1635 PreallocatedType = nullptr; 1636 else if (Val == Attribute::Dereferenceable) 1637 DerefBytes = 0; 1638 else if (Val == Attribute::DereferenceableOrNull) 1639 DerefOrNullBytes = 0; 1640 else if (Val == Attribute::AllocSize) 1641 AllocSizeArgs = 0; 1642 1643 return *this; 1644 } 1645 1646 AttrBuilder &AttrBuilder::removeAttributes(AttributeList A, uint64_t Index) { 1647 remove(A.getAttributes(Index)); 1648 return *this; 1649 } 1650 1651 AttrBuilder &AttrBuilder::removeAttribute(StringRef A) { 1652 auto I = TargetDepAttrs.find(A); 1653 if (I != TargetDepAttrs.end()) 1654 TargetDepAttrs.erase(I); 1655 return *this; 1656 } 1657 1658 std::pair<unsigned, Optional<unsigned>> AttrBuilder::getAllocSizeArgs() const { 1659 return unpackAllocSizeArgs(AllocSizeArgs); 1660 } 1661 1662 AttrBuilder &AttrBuilder::addAlignmentAttr(MaybeAlign Align) { 1663 if (!Align) 1664 return *this; 1665 1666 assert(*Align <= llvm::Value::MaximumAlignment && "Alignment too large."); 1667 1668 Attrs[Attribute::Alignment] = true; 1669 Alignment = Align; 1670 return *this; 1671 } 1672 1673 AttrBuilder &AttrBuilder::addStackAlignmentAttr(MaybeAlign Align) { 1674 // Default alignment, allow the target to define how to align it. 1675 if (!Align) 1676 return *this; 1677 1678 assert(*Align <= 0x100 && "Alignment too large."); 1679 1680 Attrs[Attribute::StackAlignment] = true; 1681 StackAlignment = Align; 1682 return *this; 1683 } 1684 1685 AttrBuilder &AttrBuilder::addDereferenceableAttr(uint64_t Bytes) { 1686 if (Bytes == 0) return *this; 1687 1688 Attrs[Attribute::Dereferenceable] = true; 1689 DerefBytes = Bytes; 1690 return *this; 1691 } 1692 1693 AttrBuilder &AttrBuilder::addDereferenceableOrNullAttr(uint64_t Bytes) { 1694 if (Bytes == 0) 1695 return *this; 1696 1697 Attrs[Attribute::DereferenceableOrNull] = true; 1698 DerefOrNullBytes = Bytes; 1699 return *this; 1700 } 1701 1702 AttrBuilder &AttrBuilder::addAllocSizeAttr(unsigned ElemSize, 1703 const Optional<unsigned> &NumElems) { 1704 return addAllocSizeAttrFromRawRepr(packAllocSizeArgs(ElemSize, NumElems)); 1705 } 1706 1707 AttrBuilder &AttrBuilder::addAllocSizeAttrFromRawRepr(uint64_t RawArgs) { 1708 // (0, 0) is our "not present" value, so we need to check for it here. 1709 assert(RawArgs && "Invalid allocsize arguments -- given allocsize(0, 0)"); 1710 1711 Attrs[Attribute::AllocSize] = true; 1712 // Reuse existing machinery to store this as a single 64-bit integer so we can 1713 // save a few bytes over using a pair<unsigned, Optional<unsigned>>. 1714 AllocSizeArgs = RawArgs; 1715 return *this; 1716 } 1717 1718 AttrBuilder &AttrBuilder::addByValAttr(Type *Ty) { 1719 Attrs[Attribute::ByVal] = true; 1720 ByValType = Ty; 1721 return *this; 1722 } 1723 1724 AttrBuilder &AttrBuilder::addStructRetAttr(Type *Ty) { 1725 Attrs[Attribute::StructRet] = true; 1726 StructRetType = Ty; 1727 return *this; 1728 } 1729 1730 AttrBuilder &AttrBuilder::addByRefAttr(Type *Ty) { 1731 Attrs[Attribute::ByRef] = true; 1732 ByRefType = Ty; 1733 return *this; 1734 } 1735 1736 AttrBuilder &AttrBuilder::addPreallocatedAttr(Type *Ty) { 1737 Attrs[Attribute::Preallocated] = true; 1738 PreallocatedType = Ty; 1739 return *this; 1740 } 1741 1742 AttrBuilder &AttrBuilder::merge(const AttrBuilder &B) { 1743 // FIXME: What if both have alignments, but they don't match?! 1744 if (!Alignment) 1745 Alignment = B.Alignment; 1746 1747 if (!StackAlignment) 1748 StackAlignment = B.StackAlignment; 1749 1750 if (!DerefBytes) 1751 DerefBytes = B.DerefBytes; 1752 1753 if (!DerefOrNullBytes) 1754 DerefOrNullBytes = B.DerefOrNullBytes; 1755 1756 if (!AllocSizeArgs) 1757 AllocSizeArgs = B.AllocSizeArgs; 1758 1759 if (!ByValType) 1760 ByValType = B.ByValType; 1761 1762 if (!StructRetType) 1763 StructRetType = B.StructRetType; 1764 1765 if (!ByRefType) 1766 ByRefType = B.ByRefType; 1767 1768 if (!PreallocatedType) 1769 PreallocatedType = B.PreallocatedType; 1770 1771 Attrs |= B.Attrs; 1772 1773 for (const auto &I : B.td_attrs()) 1774 TargetDepAttrs[I.first] = I.second; 1775 1776 return *this; 1777 } 1778 1779 AttrBuilder &AttrBuilder::remove(const AttrBuilder &B) { 1780 // FIXME: What if both have alignments, but they don't match?! 1781 if (B.Alignment) 1782 Alignment.reset(); 1783 1784 if (B.StackAlignment) 1785 StackAlignment.reset(); 1786 1787 if (B.DerefBytes) 1788 DerefBytes = 0; 1789 1790 if (B.DerefOrNullBytes) 1791 DerefOrNullBytes = 0; 1792 1793 if (B.AllocSizeArgs) 1794 AllocSizeArgs = 0; 1795 1796 if (B.ByValType) 1797 ByValType = nullptr; 1798 1799 if (B.StructRetType) 1800 StructRetType = nullptr; 1801 1802 if (B.ByRefType) 1803 ByRefType = nullptr; 1804 1805 if (B.PreallocatedType) 1806 PreallocatedType = nullptr; 1807 1808 Attrs &= ~B.Attrs; 1809 1810 for (const auto &I : B.td_attrs()) 1811 TargetDepAttrs.erase(I.first); 1812 1813 return *this; 1814 } 1815 1816 bool AttrBuilder::overlaps(const AttrBuilder &B) const { 1817 // First check if any of the target independent attributes overlap. 1818 if ((Attrs & B.Attrs).any()) 1819 return true; 1820 1821 // Then check if any target dependent ones do. 1822 for (const auto &I : td_attrs()) 1823 if (B.contains(I.first)) 1824 return true; 1825 1826 return false; 1827 } 1828 1829 bool AttrBuilder::contains(StringRef A) const { 1830 return TargetDepAttrs.find(A) != TargetDepAttrs.end(); 1831 } 1832 1833 bool AttrBuilder::hasAttributes() const { 1834 return !Attrs.none() || !TargetDepAttrs.empty(); 1835 } 1836 1837 bool AttrBuilder::hasAttributes(AttributeList AL, uint64_t Index) const { 1838 AttributeSet AS = AL.getAttributes(Index); 1839 1840 for (const auto &Attr : AS) { 1841 if (Attr.isEnumAttribute() || Attr.isIntAttribute()) { 1842 if (contains(Attr.getKindAsEnum())) 1843 return true; 1844 } else { 1845 assert(Attr.isStringAttribute() && "Invalid attribute kind!"); 1846 return contains(Attr.getKindAsString()); 1847 } 1848 } 1849 1850 return false; 1851 } 1852 1853 bool AttrBuilder::hasAlignmentAttr() const { 1854 return Alignment != 0; 1855 } 1856 1857 bool AttrBuilder::operator==(const AttrBuilder &B) { 1858 if (Attrs != B.Attrs) 1859 return false; 1860 1861 for (td_const_iterator I = TargetDepAttrs.begin(), 1862 E = TargetDepAttrs.end(); I != E; ++I) 1863 if (B.TargetDepAttrs.find(I->first) == B.TargetDepAttrs.end()) 1864 return false; 1865 1866 return Alignment == B.Alignment && StackAlignment == B.StackAlignment && 1867 DerefBytes == B.DerefBytes && ByValType == B.ByValType && 1868 StructRetType == B.StructRetType && ByRefType == B.ByRefType && 1869 PreallocatedType == B.PreallocatedType; 1870 } 1871 1872 //===----------------------------------------------------------------------===// 1873 // AttributeFuncs Function Defintions 1874 //===----------------------------------------------------------------------===// 1875 1876 /// Which attributes cannot be applied to a type. 1877 AttrBuilder AttributeFuncs::typeIncompatible(Type *Ty) { 1878 AttrBuilder Incompatible; 1879 1880 if (!Ty->isIntegerTy()) 1881 // Attribute that only apply to integers. 1882 Incompatible.addAttribute(Attribute::SExt) 1883 .addAttribute(Attribute::ZExt); 1884 1885 if (!Ty->isPointerTy()) 1886 // Attribute that only apply to pointers. 1887 Incompatible.addAttribute(Attribute::Nest) 1888 .addAttribute(Attribute::NoAlias) 1889 .addAttribute(Attribute::NoCapture) 1890 .addAttribute(Attribute::NonNull) 1891 .addAlignmentAttr(1) // the int here is ignored 1892 .addDereferenceableAttr(1) // the int here is ignored 1893 .addDereferenceableOrNullAttr(1) // the int here is ignored 1894 .addAttribute(Attribute::ReadNone) 1895 .addAttribute(Attribute::ReadOnly) 1896 .addAttribute(Attribute::InAlloca) 1897 .addPreallocatedAttr(Ty) 1898 .addByValAttr(Ty) 1899 .addStructRetAttr(Ty) 1900 .addByRefAttr(Ty); 1901 1902 // Some attributes can apply to all "values" but there are no `void` values. 1903 if (Ty->isVoidTy()) 1904 Incompatible.addAttribute(Attribute::NoUndef); 1905 1906 return Incompatible; 1907 } 1908 1909 template<typename AttrClass> 1910 static bool isEqual(const Function &Caller, const Function &Callee) { 1911 return Caller.getFnAttribute(AttrClass::getKind()) == 1912 Callee.getFnAttribute(AttrClass::getKind()); 1913 } 1914 1915 /// Compute the logical AND of the attributes of the caller and the 1916 /// callee. 1917 /// 1918 /// This function sets the caller's attribute to false if the callee's attribute 1919 /// is false. 1920 template<typename AttrClass> 1921 static void setAND(Function &Caller, const Function &Callee) { 1922 if (AttrClass::isSet(Caller, AttrClass::getKind()) && 1923 !AttrClass::isSet(Callee, AttrClass::getKind())) 1924 AttrClass::set(Caller, AttrClass::getKind(), false); 1925 } 1926 1927 /// Compute the logical OR of the attributes of the caller and the 1928 /// callee. 1929 /// 1930 /// This function sets the caller's attribute to true if the callee's attribute 1931 /// is true. 1932 template<typename AttrClass> 1933 static void setOR(Function &Caller, const Function &Callee) { 1934 if (!AttrClass::isSet(Caller, AttrClass::getKind()) && 1935 AttrClass::isSet(Callee, AttrClass::getKind())) 1936 AttrClass::set(Caller, AttrClass::getKind(), true); 1937 } 1938 1939 /// If the inlined function had a higher stack protection level than the 1940 /// calling function, then bump up the caller's stack protection level. 1941 static void adjustCallerSSPLevel(Function &Caller, const Function &Callee) { 1942 // If upgrading the SSP attribute, clear out the old SSP Attributes first. 1943 // Having multiple SSP attributes doesn't actually hurt, but it adds useless 1944 // clutter to the IR. 1945 AttrBuilder OldSSPAttr; 1946 OldSSPAttr.addAttribute(Attribute::StackProtect) 1947 .addAttribute(Attribute::StackProtectStrong) 1948 .addAttribute(Attribute::StackProtectReq); 1949 1950 if (Callee.hasFnAttribute(Attribute::StackProtectReq)) { 1951 Caller.removeAttributes(AttributeList::FunctionIndex, OldSSPAttr); 1952 Caller.addFnAttr(Attribute::StackProtectReq); 1953 } else if (Callee.hasFnAttribute(Attribute::StackProtectStrong) && 1954 !Caller.hasFnAttribute(Attribute::StackProtectReq)) { 1955 Caller.removeAttributes(AttributeList::FunctionIndex, OldSSPAttr); 1956 Caller.addFnAttr(Attribute::StackProtectStrong); 1957 } else if (Callee.hasFnAttribute(Attribute::StackProtect) && 1958 !Caller.hasFnAttribute(Attribute::StackProtectReq) && 1959 !Caller.hasFnAttribute(Attribute::StackProtectStrong)) 1960 Caller.addFnAttr(Attribute::StackProtect); 1961 } 1962 1963 /// If the inlined function required stack probes, then ensure that 1964 /// the calling function has those too. 1965 static void adjustCallerStackProbes(Function &Caller, const Function &Callee) { 1966 if (!Caller.hasFnAttribute("probe-stack") && 1967 Callee.hasFnAttribute("probe-stack")) { 1968 Caller.addFnAttr(Callee.getFnAttribute("probe-stack")); 1969 } 1970 } 1971 1972 /// If the inlined function defines the size of guard region 1973 /// on the stack, then ensure that the calling function defines a guard region 1974 /// that is no larger. 1975 static void 1976 adjustCallerStackProbeSize(Function &Caller, const Function &Callee) { 1977 Attribute CalleeAttr = Callee.getFnAttribute("stack-probe-size"); 1978 if (CalleeAttr.isValid()) { 1979 Attribute CallerAttr = Caller.getFnAttribute("stack-probe-size"); 1980 if (CallerAttr.isValid()) { 1981 uint64_t CallerStackProbeSize, CalleeStackProbeSize; 1982 CallerAttr.getValueAsString().getAsInteger(0, CallerStackProbeSize); 1983 CalleeAttr.getValueAsString().getAsInteger(0, CalleeStackProbeSize); 1984 1985 if (CallerStackProbeSize > CalleeStackProbeSize) { 1986 Caller.addFnAttr(CalleeAttr); 1987 } 1988 } else { 1989 Caller.addFnAttr(CalleeAttr); 1990 } 1991 } 1992 } 1993 1994 /// If the inlined function defines a min legal vector width, then ensure 1995 /// the calling function has the same or larger min legal vector width. If the 1996 /// caller has the attribute, but the callee doesn't, we need to remove the 1997 /// attribute from the caller since we can't make any guarantees about the 1998 /// caller's requirements. 1999 /// This function is called after the inlining decision has been made so we have 2000 /// to merge the attribute this way. Heuristics that would use 2001 /// min-legal-vector-width to determine inline compatibility would need to be 2002 /// handled as part of inline cost analysis. 2003 static void 2004 adjustMinLegalVectorWidth(Function &Caller, const Function &Callee) { 2005 Attribute CallerAttr = Caller.getFnAttribute("min-legal-vector-width"); 2006 if (CallerAttr.isValid()) { 2007 Attribute CalleeAttr = Callee.getFnAttribute("min-legal-vector-width"); 2008 if (CalleeAttr.isValid()) { 2009 uint64_t CallerVectorWidth, CalleeVectorWidth; 2010 CallerAttr.getValueAsString().getAsInteger(0, CallerVectorWidth); 2011 CalleeAttr.getValueAsString().getAsInteger(0, CalleeVectorWidth); 2012 if (CallerVectorWidth < CalleeVectorWidth) 2013 Caller.addFnAttr(CalleeAttr); 2014 } else { 2015 // If the callee doesn't have the attribute then we don't know anything 2016 // and must drop the attribute from the caller. 2017 Caller.removeFnAttr("min-legal-vector-width"); 2018 } 2019 } 2020 } 2021 2022 /// If the inlined function has null_pointer_is_valid attribute, 2023 /// set this attribute in the caller post inlining. 2024 static void 2025 adjustNullPointerValidAttr(Function &Caller, const Function &Callee) { 2026 if (Callee.nullPointerIsDefined() && !Caller.nullPointerIsDefined()) { 2027 Caller.addFnAttr(Attribute::NullPointerIsValid); 2028 } 2029 } 2030 2031 struct EnumAttr { 2032 static bool isSet(const Function &Fn, 2033 Attribute::AttrKind Kind) { 2034 return Fn.hasFnAttribute(Kind); 2035 } 2036 2037 static void set(Function &Fn, 2038 Attribute::AttrKind Kind, bool Val) { 2039 if (Val) 2040 Fn.addFnAttr(Kind); 2041 else 2042 Fn.removeFnAttr(Kind); 2043 } 2044 }; 2045 2046 struct StrBoolAttr { 2047 static bool isSet(const Function &Fn, 2048 StringRef Kind) { 2049 auto A = Fn.getFnAttribute(Kind); 2050 return A.getValueAsString().equals("true"); 2051 } 2052 2053 static void set(Function &Fn, 2054 StringRef Kind, bool Val) { 2055 Fn.addFnAttr(Kind, Val ? "true" : "false"); 2056 } 2057 }; 2058 2059 #define GET_ATTR_NAMES 2060 #define ATTRIBUTE_ENUM(ENUM_NAME, DISPLAY_NAME) \ 2061 struct ENUM_NAME##Attr : EnumAttr { \ 2062 static enum Attribute::AttrKind getKind() { \ 2063 return llvm::Attribute::ENUM_NAME; \ 2064 } \ 2065 }; 2066 #define ATTRIBUTE_STRBOOL(ENUM_NAME, DISPLAY_NAME) \ 2067 struct ENUM_NAME##Attr : StrBoolAttr { \ 2068 static StringRef getKind() { return #DISPLAY_NAME; } \ 2069 }; 2070 #include "llvm/IR/Attributes.inc" 2071 2072 #define GET_ATTR_COMPAT_FUNC 2073 #include "llvm/IR/Attributes.inc" 2074 2075 bool AttributeFuncs::areInlineCompatible(const Function &Caller, 2076 const Function &Callee) { 2077 return hasCompatibleFnAttrs(Caller, Callee); 2078 } 2079 2080 void AttributeFuncs::mergeAttributesForInlining(Function &Caller, 2081 const Function &Callee) { 2082 mergeFnAttrs(Caller, Callee); 2083 } 2084