1 //===- lib/Support/YAMLTraits.cpp -----------------------------------------===// 2 // 3 // The LLVM Linker 4 // 5 // This file is distributed under the University of Illinois Open Source 6 // License. See LICENSE.TXT for details. 7 // 8 //===----------------------------------------------------------------------===// 9 10 #include "llvm/Support/YAMLTraits.h" 11 #include "llvm/ADT/STLExtras.h" 12 #include "llvm/ADT/SmallString.h" 13 #include "llvm/ADT/StringExtras.h" 14 #include "llvm/ADT/StringRef.h" 15 #include "llvm/ADT/Twine.h" 16 #include "llvm/Support/Casting.h" 17 #include "llvm/Support/Errc.h" 18 #include "llvm/Support/ErrorHandling.h" 19 #include "llvm/Support/Format.h" 20 #include "llvm/Support/LineIterator.h" 21 #include "llvm/Support/MemoryBuffer.h" 22 #include "llvm/Support/YAMLParser.h" 23 #include "llvm/Support/raw_ostream.h" 24 #include <algorithm> 25 #include <cassert> 26 #include <cstdint> 27 #include <cstdlib> 28 #include <cstring> 29 #include <string> 30 #include <vector> 31 32 using namespace llvm; 33 using namespace yaml; 34 35 //===----------------------------------------------------------------------===// 36 // IO 37 //===----------------------------------------------------------------------===// 38 39 IO::IO(void *Context) : Ctxt(Context) {} 40 41 IO::~IO() = default; 42 43 void *IO::getContext() { 44 return Ctxt; 45 } 46 47 void IO::setContext(void *Context) { 48 Ctxt = Context; 49 } 50 51 //===----------------------------------------------------------------------===// 52 // Input 53 //===----------------------------------------------------------------------===// 54 55 Input::Input(StringRef InputContent, void *Ctxt, 56 SourceMgr::DiagHandlerTy DiagHandler, void *DiagHandlerCtxt) 57 : IO(Ctxt), Strm(new Stream(InputContent, SrcMgr, false, &EC)) { 58 if (DiagHandler) 59 SrcMgr.setDiagHandler(DiagHandler, DiagHandlerCtxt); 60 DocIterator = Strm->begin(); 61 } 62 63 Input::Input(MemoryBufferRef Input, void *Ctxt, 64 SourceMgr::DiagHandlerTy DiagHandler, void *DiagHandlerCtxt) 65 : IO(Ctxt), Strm(new Stream(Input, SrcMgr, false, &EC)) { 66 if (DiagHandler) 67 SrcMgr.setDiagHandler(DiagHandler, DiagHandlerCtxt); 68 DocIterator = Strm->begin(); 69 } 70 71 Input::~Input() = default; 72 73 std::error_code Input::error() { return EC; } 74 75 // Pin the vtables to this file. 76 void Input::HNode::anchor() {} 77 void Input::EmptyHNode::anchor() {} 78 void Input::ScalarHNode::anchor() {} 79 void Input::MapHNode::anchor() {} 80 void Input::SequenceHNode::anchor() {} 81 82 bool Input::outputting() { 83 return false; 84 } 85 86 bool Input::setCurrentDocument() { 87 if (DocIterator != Strm->end()) { 88 Node *N = DocIterator->getRoot(); 89 if (!N) { 90 assert(Strm->failed() && "Root is NULL iff parsing failed"); 91 EC = make_error_code(errc::invalid_argument); 92 return false; 93 } 94 95 if (isa<NullNode>(N)) { 96 // Empty files are allowed and ignored 97 ++DocIterator; 98 return setCurrentDocument(); 99 } 100 TopNode = this->createHNodes(N); 101 CurrentNode = TopNode.get(); 102 return true; 103 } 104 return false; 105 } 106 107 bool Input::nextDocument() { 108 return ++DocIterator != Strm->end(); 109 } 110 111 const Node *Input::getCurrentNode() const { 112 return CurrentNode ? CurrentNode->_node : nullptr; 113 } 114 115 bool Input::mapTag(StringRef Tag, bool Default) { 116 std::string foundTag = CurrentNode->_node->getVerbatimTag(); 117 if (foundTag.empty()) { 118 // If no tag found and 'Tag' is the default, say it was found. 119 return Default; 120 } 121 // Return true iff found tag matches supplied tag. 122 return Tag.equals(foundTag); 123 } 124 125 void Input::beginMapping() { 126 if (EC) 127 return; 128 // CurrentNode can be null if the document is empty. 129 MapHNode *MN = dyn_cast_or_null<MapHNode>(CurrentNode); 130 if (MN) { 131 MN->ValidKeys.clear(); 132 } 133 } 134 135 std::vector<StringRef> Input::keys() { 136 MapHNode *MN = dyn_cast<MapHNode>(CurrentNode); 137 std::vector<StringRef> Ret; 138 if (!MN) { 139 setError(CurrentNode, "not a mapping"); 140 return Ret; 141 } 142 for (auto &P : MN->Mapping) 143 Ret.push_back(P.first()); 144 return Ret; 145 } 146 147 bool Input::preflightKey(const char *Key, bool Required, bool, bool &UseDefault, 148 void *&SaveInfo) { 149 UseDefault = false; 150 if (EC) 151 return false; 152 153 // CurrentNode is null for empty documents, which is an error in case required 154 // nodes are present. 155 if (!CurrentNode) { 156 if (Required) 157 EC = make_error_code(errc::invalid_argument); 158 return false; 159 } 160 161 MapHNode *MN = dyn_cast<MapHNode>(CurrentNode); 162 if (!MN) { 163 if (Required || !isa<EmptyHNode>(CurrentNode)) 164 setError(CurrentNode, "not a mapping"); 165 return false; 166 } 167 MN->ValidKeys.push_back(Key); 168 HNode *Value = MN->Mapping[Key].get(); 169 if (!Value) { 170 if (Required) 171 setError(CurrentNode, Twine("missing required key '") + Key + "'"); 172 else 173 UseDefault = true; 174 return false; 175 } 176 SaveInfo = CurrentNode; 177 CurrentNode = Value; 178 return true; 179 } 180 181 void Input::postflightKey(void *saveInfo) { 182 CurrentNode = reinterpret_cast<HNode *>(saveInfo); 183 } 184 185 void Input::endMapping() { 186 if (EC) 187 return; 188 // CurrentNode can be null if the document is empty. 189 MapHNode *MN = dyn_cast_or_null<MapHNode>(CurrentNode); 190 if (!MN) 191 return; 192 for (const auto &NN : MN->Mapping) { 193 if (!is_contained(MN->ValidKeys, NN.first())) { 194 setError(NN.second.get(), Twine("unknown key '") + NN.first() + "'"); 195 break; 196 } 197 } 198 } 199 200 void Input::beginFlowMapping() { beginMapping(); } 201 202 void Input::endFlowMapping() { endMapping(); } 203 204 unsigned Input::beginSequence() { 205 if (SequenceHNode *SQ = dyn_cast<SequenceHNode>(CurrentNode)) 206 return SQ->Entries.size(); 207 if (isa<EmptyHNode>(CurrentNode)) 208 return 0; 209 // Treat case where there's a scalar "null" value as an empty sequence. 210 if (ScalarHNode *SN = dyn_cast<ScalarHNode>(CurrentNode)) { 211 if (isNull(SN->value())) 212 return 0; 213 } 214 // Any other type of HNode is an error. 215 setError(CurrentNode, "not a sequence"); 216 return 0; 217 } 218 219 void Input::endSequence() { 220 } 221 222 bool Input::preflightElement(unsigned Index, void *&SaveInfo) { 223 if (EC) 224 return false; 225 if (SequenceHNode *SQ = dyn_cast<SequenceHNode>(CurrentNode)) { 226 SaveInfo = CurrentNode; 227 CurrentNode = SQ->Entries[Index].get(); 228 return true; 229 } 230 return false; 231 } 232 233 void Input::postflightElement(void *SaveInfo) { 234 CurrentNode = reinterpret_cast<HNode *>(SaveInfo); 235 } 236 237 unsigned Input::beginFlowSequence() { return beginSequence(); } 238 239 bool Input::preflightFlowElement(unsigned index, void *&SaveInfo) { 240 if (EC) 241 return false; 242 if (SequenceHNode *SQ = dyn_cast<SequenceHNode>(CurrentNode)) { 243 SaveInfo = CurrentNode; 244 CurrentNode = SQ->Entries[index].get(); 245 return true; 246 } 247 return false; 248 } 249 250 void Input::postflightFlowElement(void *SaveInfo) { 251 CurrentNode = reinterpret_cast<HNode *>(SaveInfo); 252 } 253 254 void Input::endFlowSequence() { 255 } 256 257 void Input::beginEnumScalar() { 258 ScalarMatchFound = false; 259 } 260 261 bool Input::matchEnumScalar(const char *Str, bool) { 262 if (ScalarMatchFound) 263 return false; 264 if (ScalarHNode *SN = dyn_cast<ScalarHNode>(CurrentNode)) { 265 if (SN->value().equals(Str)) { 266 ScalarMatchFound = true; 267 return true; 268 } 269 } 270 return false; 271 } 272 273 bool Input::matchEnumFallback() { 274 if (ScalarMatchFound) 275 return false; 276 ScalarMatchFound = true; 277 return true; 278 } 279 280 void Input::endEnumScalar() { 281 if (!ScalarMatchFound) { 282 setError(CurrentNode, "unknown enumerated scalar"); 283 } 284 } 285 286 bool Input::beginBitSetScalar(bool &DoClear) { 287 BitValuesUsed.clear(); 288 if (SequenceHNode *SQ = dyn_cast<SequenceHNode>(CurrentNode)) { 289 BitValuesUsed.insert(BitValuesUsed.begin(), SQ->Entries.size(), false); 290 } else { 291 setError(CurrentNode, "expected sequence of bit values"); 292 } 293 DoClear = true; 294 return true; 295 } 296 297 bool Input::bitSetMatch(const char *Str, bool) { 298 if (EC) 299 return false; 300 if (SequenceHNode *SQ = dyn_cast<SequenceHNode>(CurrentNode)) { 301 unsigned Index = 0; 302 for (auto &N : SQ->Entries) { 303 if (ScalarHNode *SN = dyn_cast<ScalarHNode>(N.get())) { 304 if (SN->value().equals(Str)) { 305 BitValuesUsed[Index] = true; 306 return true; 307 } 308 } else { 309 setError(CurrentNode, "unexpected scalar in sequence of bit values"); 310 } 311 ++Index; 312 } 313 } else { 314 setError(CurrentNode, "expected sequence of bit values"); 315 } 316 return false; 317 } 318 319 void Input::endBitSetScalar() { 320 if (EC) 321 return; 322 if (SequenceHNode *SQ = dyn_cast<SequenceHNode>(CurrentNode)) { 323 assert(BitValuesUsed.size() == SQ->Entries.size()); 324 for (unsigned i = 0; i < SQ->Entries.size(); ++i) { 325 if (!BitValuesUsed[i]) { 326 setError(SQ->Entries[i].get(), "unknown bit value"); 327 return; 328 } 329 } 330 } 331 } 332 333 void Input::scalarString(StringRef &S, bool) { 334 if (ScalarHNode *SN = dyn_cast<ScalarHNode>(CurrentNode)) { 335 S = SN->value(); 336 } else { 337 setError(CurrentNode, "unexpected scalar"); 338 } 339 } 340 341 void Input::blockScalarString(StringRef &S) { scalarString(S, false); } 342 343 void Input::setError(HNode *hnode, const Twine &message) { 344 assert(hnode && "HNode must not be NULL"); 345 this->setError(hnode->_node, message); 346 } 347 348 void Input::setError(Node *node, const Twine &message) { 349 Strm->printError(node, message); 350 EC = make_error_code(errc::invalid_argument); 351 } 352 353 std::unique_ptr<Input::HNode> Input::createHNodes(Node *N) { 354 SmallString<128> StringStorage; 355 if (ScalarNode *SN = dyn_cast<ScalarNode>(N)) { 356 StringRef KeyStr = SN->getValue(StringStorage); 357 if (!StringStorage.empty()) { 358 // Copy string to permanent storage 359 KeyStr = StringStorage.str().copy(StringAllocator); 360 } 361 return llvm::make_unique<ScalarHNode>(N, KeyStr); 362 } else if (BlockScalarNode *BSN = dyn_cast<BlockScalarNode>(N)) { 363 StringRef ValueCopy = BSN->getValue().copy(StringAllocator); 364 return llvm::make_unique<ScalarHNode>(N, ValueCopy); 365 } else if (SequenceNode *SQ = dyn_cast<SequenceNode>(N)) { 366 auto SQHNode = llvm::make_unique<SequenceHNode>(N); 367 for (Node &SN : *SQ) { 368 auto Entry = this->createHNodes(&SN); 369 if (EC) 370 break; 371 SQHNode->Entries.push_back(std::move(Entry)); 372 } 373 return std::move(SQHNode); 374 } else if (MappingNode *Map = dyn_cast<MappingNode>(N)) { 375 auto mapHNode = llvm::make_unique<MapHNode>(N); 376 for (KeyValueNode &KVN : *Map) { 377 Node *KeyNode = KVN.getKey(); 378 ScalarNode *Key = dyn_cast<ScalarNode>(KeyNode); 379 Node *Value = KVN.getValue(); 380 if (!Key || !Value) { 381 if (!Key) 382 setError(KeyNode, "Map key must be a scalar"); 383 if (!Value) 384 setError(KeyNode, "Map value must not be empty"); 385 break; 386 } 387 StringStorage.clear(); 388 StringRef KeyStr = Key->getValue(StringStorage); 389 if (!StringStorage.empty()) { 390 // Copy string to permanent storage 391 KeyStr = StringStorage.str().copy(StringAllocator); 392 } 393 auto ValueHNode = this->createHNodes(Value); 394 if (EC) 395 break; 396 mapHNode->Mapping[KeyStr] = std::move(ValueHNode); 397 } 398 return std::move(mapHNode); 399 } else if (isa<NullNode>(N)) { 400 return llvm::make_unique<EmptyHNode>(N); 401 } else { 402 setError(N, "unknown node kind"); 403 return nullptr; 404 } 405 } 406 407 void Input::setError(const Twine &Message) { 408 this->setError(CurrentNode, Message); 409 } 410 411 bool Input::canElideEmptySequence() { 412 return false; 413 } 414 415 //===----------------------------------------------------------------------===// 416 // Output 417 //===----------------------------------------------------------------------===// 418 419 Output::Output(raw_ostream &yout, void *context, int WrapColumn) 420 : IO(context), Out(yout), WrapColumn(WrapColumn) {} 421 422 Output::~Output() = default; 423 424 bool Output::outputting() { 425 return true; 426 } 427 428 void Output::beginMapping() { 429 StateStack.push_back(inMapFirstKey); 430 NeedsNewLine = true; 431 } 432 433 bool Output::mapTag(StringRef Tag, bool Use) { 434 if (Use) { 435 // If this tag is being written inside a sequence we should write the start 436 // of the sequence before writing the tag, otherwise the tag won't be 437 // attached to the element in the sequence, but rather the sequence itself. 438 bool SequenceElement = 439 StateStack.size() > 1 && (StateStack[StateStack.size() - 2] == inSeq || 440 StateStack[StateStack.size() - 2] == inFlowSeq); 441 if (SequenceElement && StateStack.back() == inMapFirstKey) { 442 this->newLineCheck(); 443 } else { 444 this->output(" "); 445 } 446 this->output(Tag); 447 if (SequenceElement) { 448 // If we're writing the tag during the first element of a map, the tag 449 // takes the place of the first element in the sequence. 450 if (StateStack.back() == inMapFirstKey) { 451 StateStack.pop_back(); 452 StateStack.push_back(inMapOtherKey); 453 } 454 // Tags inside maps in sequences should act as keys in the map from a 455 // formatting perspective, so we always want a newline in a sequence. 456 NeedsNewLine = true; 457 } 458 } 459 return Use; 460 } 461 462 void Output::endMapping() { 463 StateStack.pop_back(); 464 } 465 466 std::vector<StringRef> Output::keys() { 467 report_fatal_error("invalid call"); 468 } 469 470 bool Output::preflightKey(const char *Key, bool Required, bool SameAsDefault, 471 bool &UseDefault, void *&) { 472 UseDefault = false; 473 if (Required || !SameAsDefault || WriteDefaultValues) { 474 auto State = StateStack.back(); 475 if (State == inFlowMapFirstKey || State == inFlowMapOtherKey) { 476 flowKey(Key); 477 } else { 478 this->newLineCheck(); 479 this->paddedKey(Key); 480 } 481 return true; 482 } 483 return false; 484 } 485 486 void Output::postflightKey(void *) { 487 if (StateStack.back() == inMapFirstKey) { 488 StateStack.pop_back(); 489 StateStack.push_back(inMapOtherKey); 490 } else if (StateStack.back() == inFlowMapFirstKey) { 491 StateStack.pop_back(); 492 StateStack.push_back(inFlowMapOtherKey); 493 } 494 } 495 496 void Output::beginFlowMapping() { 497 StateStack.push_back(inFlowMapFirstKey); 498 this->newLineCheck(); 499 ColumnAtMapFlowStart = Column; 500 output("{ "); 501 } 502 503 void Output::endFlowMapping() { 504 StateStack.pop_back(); 505 this->outputUpToEndOfLine(" }"); 506 } 507 508 void Output::beginDocuments() { 509 this->outputUpToEndOfLine("---"); 510 } 511 512 bool Output::preflightDocument(unsigned index) { 513 if (index > 0) 514 this->outputUpToEndOfLine("\n---"); 515 return true; 516 } 517 518 void Output::postflightDocument() { 519 } 520 521 void Output::endDocuments() { 522 output("\n...\n"); 523 } 524 525 unsigned Output::beginSequence() { 526 StateStack.push_back(inSeq); 527 NeedsNewLine = true; 528 return 0; 529 } 530 531 void Output::endSequence() { 532 StateStack.pop_back(); 533 } 534 535 bool Output::preflightElement(unsigned, void *&) { 536 return true; 537 } 538 539 void Output::postflightElement(void *) { 540 } 541 542 unsigned Output::beginFlowSequence() { 543 StateStack.push_back(inFlowSeq); 544 this->newLineCheck(); 545 ColumnAtFlowStart = Column; 546 output("[ "); 547 NeedFlowSequenceComma = false; 548 return 0; 549 } 550 551 void Output::endFlowSequence() { 552 StateStack.pop_back(); 553 this->outputUpToEndOfLine(" ]"); 554 } 555 556 bool Output::preflightFlowElement(unsigned, void *&) { 557 if (NeedFlowSequenceComma) 558 output(", "); 559 if (WrapColumn && Column > WrapColumn) { 560 output("\n"); 561 for (int i = 0; i < ColumnAtFlowStart; ++i) 562 output(" "); 563 Column = ColumnAtFlowStart; 564 output(" "); 565 } 566 return true; 567 } 568 569 void Output::postflightFlowElement(void *) { 570 NeedFlowSequenceComma = true; 571 } 572 573 void Output::beginEnumScalar() { 574 EnumerationMatchFound = false; 575 } 576 577 bool Output::matchEnumScalar(const char *Str, bool Match) { 578 if (Match && !EnumerationMatchFound) { 579 this->newLineCheck(); 580 this->outputUpToEndOfLine(Str); 581 EnumerationMatchFound = true; 582 } 583 return false; 584 } 585 586 bool Output::matchEnumFallback() { 587 if (EnumerationMatchFound) 588 return false; 589 EnumerationMatchFound = true; 590 return true; 591 } 592 593 void Output::endEnumScalar() { 594 if (!EnumerationMatchFound) 595 llvm_unreachable("bad runtime enum value"); 596 } 597 598 bool Output::beginBitSetScalar(bool &DoClear) { 599 this->newLineCheck(); 600 output("[ "); 601 NeedBitValueComma = false; 602 DoClear = false; 603 return true; 604 } 605 606 bool Output::bitSetMatch(const char *Str, bool Matches) { 607 if (Matches) { 608 if (NeedBitValueComma) 609 output(", "); 610 this->output(Str); 611 NeedBitValueComma = true; 612 } 613 return false; 614 } 615 616 void Output::endBitSetScalar() { 617 this->outputUpToEndOfLine(" ]"); 618 } 619 620 void Output::scalarString(StringRef &S, bool MustQuote) { 621 this->newLineCheck(); 622 if (S.empty()) { 623 // Print '' for the empty string because leaving the field empty is not 624 // allowed. 625 this->outputUpToEndOfLine("''"); 626 return; 627 } 628 if (!MustQuote) { 629 // Only quote if we must. 630 this->outputUpToEndOfLine(S); 631 return; 632 } 633 unsigned i = 0; 634 unsigned j = 0; 635 unsigned End = S.size(); 636 output("'"); // Starting single quote. 637 const char *Base = S.data(); 638 while (j < End) { 639 // Escape a single quote by doubling it. 640 if (S[j] == '\'') { 641 output(StringRef(&Base[i], j - i + 1)); 642 output("'"); 643 i = j + 1; 644 } 645 ++j; 646 } 647 output(StringRef(&Base[i], j - i)); 648 this->outputUpToEndOfLine("'"); // Ending single quote. 649 } 650 651 void Output::blockScalarString(StringRef &S) { 652 if (!StateStack.empty()) 653 newLineCheck(); 654 output(" |"); 655 outputNewLine(); 656 657 unsigned Indent = StateStack.empty() ? 1 : StateStack.size(); 658 659 auto Buffer = MemoryBuffer::getMemBuffer(S, "", false); 660 for (line_iterator Lines(*Buffer, false); !Lines.is_at_end(); ++Lines) { 661 for (unsigned I = 0; I < Indent; ++I) { 662 output(" "); 663 } 664 output(*Lines); 665 outputNewLine(); 666 } 667 } 668 669 void Output::setError(const Twine &message) { 670 } 671 672 bool Output::canElideEmptySequence() { 673 // Normally, with an optional key/value where the value is an empty sequence, 674 // the whole key/value can be not written. But, that produces wrong yaml 675 // if the key/value is the only thing in the map and the map is used in 676 // a sequence. This detects if the this sequence is the first key/value 677 // in map that itself is embedded in a sequnce. 678 if (StateStack.size() < 2) 679 return true; 680 if (StateStack.back() != inMapFirstKey) 681 return true; 682 return (StateStack[StateStack.size()-2] != inSeq); 683 } 684 685 void Output::output(StringRef s) { 686 Column += s.size(); 687 Out << s; 688 } 689 690 void Output::outputUpToEndOfLine(StringRef s) { 691 this->output(s); 692 if (StateStack.empty() || (StateStack.back() != inFlowSeq && 693 StateStack.back() != inFlowMapFirstKey && 694 StateStack.back() != inFlowMapOtherKey)) 695 NeedsNewLine = true; 696 } 697 698 void Output::outputNewLine() { 699 Out << "\n"; 700 Column = 0; 701 } 702 703 // if seq at top, indent as if map, then add "- " 704 // if seq in middle, use "- " if firstKey, else use " " 705 // 706 707 void Output::newLineCheck() { 708 if (!NeedsNewLine) 709 return; 710 NeedsNewLine = false; 711 712 this->outputNewLine(); 713 714 assert(StateStack.size() > 0); 715 unsigned Indent = StateStack.size() - 1; 716 bool OutputDash = false; 717 718 if (StateStack.back() == inSeq) { 719 OutputDash = true; 720 } else if ((StateStack.size() > 1) && ((StateStack.back() == inMapFirstKey) || 721 (StateStack.back() == inFlowSeq) || 722 (StateStack.back() == inFlowMapFirstKey)) && 723 (StateStack[StateStack.size() - 2] == inSeq)) { 724 --Indent; 725 OutputDash = true; 726 } 727 728 for (unsigned i = 0; i < Indent; ++i) { 729 output(" "); 730 } 731 if (OutputDash) { 732 output("- "); 733 } 734 735 } 736 737 void Output::paddedKey(StringRef key) { 738 output(key); 739 output(":"); 740 const char *spaces = " "; 741 if (key.size() < strlen(spaces)) 742 output(&spaces[key.size()]); 743 else 744 output(" "); 745 } 746 747 void Output::flowKey(StringRef Key) { 748 if (StateStack.back() == inFlowMapOtherKey) 749 output(", "); 750 if (WrapColumn && Column > WrapColumn) { 751 output("\n"); 752 for (int I = 0; I < ColumnAtMapFlowStart; ++I) 753 output(" "); 754 Column = ColumnAtMapFlowStart; 755 output(" "); 756 } 757 output(Key); 758 output(": "); 759 } 760 761 //===----------------------------------------------------------------------===// 762 // traits for built-in types 763 //===----------------------------------------------------------------------===// 764 765 void ScalarTraits<bool>::output(const bool &Val, void *, raw_ostream &Out) { 766 Out << (Val ? "true" : "false"); 767 } 768 769 StringRef ScalarTraits<bool>::input(StringRef Scalar, void *, bool &Val) { 770 if (Scalar.equals("true")) { 771 Val = true; 772 return StringRef(); 773 } else if (Scalar.equals("false")) { 774 Val = false; 775 return StringRef(); 776 } 777 return "invalid boolean"; 778 } 779 780 void ScalarTraits<StringRef>::output(const StringRef &Val, void *, 781 raw_ostream &Out) { 782 Out << Val; 783 } 784 785 StringRef ScalarTraits<StringRef>::input(StringRef Scalar, void *, 786 StringRef &Val) { 787 Val = Scalar; 788 return StringRef(); 789 } 790 791 void ScalarTraits<std::string>::output(const std::string &Val, void *, 792 raw_ostream &Out) { 793 Out << Val; 794 } 795 796 StringRef ScalarTraits<std::string>::input(StringRef Scalar, void *, 797 std::string &Val) { 798 Val = Scalar.str(); 799 return StringRef(); 800 } 801 802 void ScalarTraits<uint8_t>::output(const uint8_t &Val, void *, 803 raw_ostream &Out) { 804 // use temp uin32_t because ostream thinks uint8_t is a character 805 uint32_t Num = Val; 806 Out << Num; 807 } 808 809 StringRef ScalarTraits<uint8_t>::input(StringRef Scalar, void *, uint8_t &Val) { 810 unsigned long long n; 811 if (getAsUnsignedInteger(Scalar, 0, n)) 812 return "invalid number"; 813 if (n > 0xFF) 814 return "out of range number"; 815 Val = n; 816 return StringRef(); 817 } 818 819 void ScalarTraits<uint16_t>::output(const uint16_t &Val, void *, 820 raw_ostream &Out) { 821 Out << Val; 822 } 823 824 StringRef ScalarTraits<uint16_t>::input(StringRef Scalar, void *, 825 uint16_t &Val) { 826 unsigned long long n; 827 if (getAsUnsignedInteger(Scalar, 0, n)) 828 return "invalid number"; 829 if (n > 0xFFFF) 830 return "out of range number"; 831 Val = n; 832 return StringRef(); 833 } 834 835 void ScalarTraits<uint32_t>::output(const uint32_t &Val, void *, 836 raw_ostream &Out) { 837 Out << Val; 838 } 839 840 StringRef ScalarTraits<uint32_t>::input(StringRef Scalar, void *, 841 uint32_t &Val) { 842 unsigned long long n; 843 if (getAsUnsignedInteger(Scalar, 0, n)) 844 return "invalid number"; 845 if (n > 0xFFFFFFFFUL) 846 return "out of range number"; 847 Val = n; 848 return StringRef(); 849 } 850 851 void ScalarTraits<uint64_t>::output(const uint64_t &Val, void *, 852 raw_ostream &Out) { 853 Out << Val; 854 } 855 856 StringRef ScalarTraits<uint64_t>::input(StringRef Scalar, void *, 857 uint64_t &Val) { 858 unsigned long long N; 859 if (getAsUnsignedInteger(Scalar, 0, N)) 860 return "invalid number"; 861 Val = N; 862 return StringRef(); 863 } 864 865 void ScalarTraits<int8_t>::output(const int8_t &Val, void *, raw_ostream &Out) { 866 // use temp in32_t because ostream thinks int8_t is a character 867 int32_t Num = Val; 868 Out << Num; 869 } 870 871 StringRef ScalarTraits<int8_t>::input(StringRef Scalar, void *, int8_t &Val) { 872 long long N; 873 if (getAsSignedInteger(Scalar, 0, N)) 874 return "invalid number"; 875 if ((N > 127) || (N < -128)) 876 return "out of range number"; 877 Val = N; 878 return StringRef(); 879 } 880 881 void ScalarTraits<int16_t>::output(const int16_t &Val, void *, 882 raw_ostream &Out) { 883 Out << Val; 884 } 885 886 StringRef ScalarTraits<int16_t>::input(StringRef Scalar, void *, int16_t &Val) { 887 long long N; 888 if (getAsSignedInteger(Scalar, 0, N)) 889 return "invalid number"; 890 if ((N > INT16_MAX) || (N < INT16_MIN)) 891 return "out of range number"; 892 Val = N; 893 return StringRef(); 894 } 895 896 void ScalarTraits<int32_t>::output(const int32_t &Val, void *, 897 raw_ostream &Out) { 898 Out << Val; 899 } 900 901 StringRef ScalarTraits<int32_t>::input(StringRef Scalar, void *, int32_t &Val) { 902 long long N; 903 if (getAsSignedInteger(Scalar, 0, N)) 904 return "invalid number"; 905 if ((N > INT32_MAX) || (N < INT32_MIN)) 906 return "out of range number"; 907 Val = N; 908 return StringRef(); 909 } 910 911 void ScalarTraits<int64_t>::output(const int64_t &Val, void *, 912 raw_ostream &Out) { 913 Out << Val; 914 } 915 916 StringRef ScalarTraits<int64_t>::input(StringRef Scalar, void *, int64_t &Val) { 917 long long N; 918 if (getAsSignedInteger(Scalar, 0, N)) 919 return "invalid number"; 920 Val = N; 921 return StringRef(); 922 } 923 924 void ScalarTraits<double>::output(const double &Val, void *, raw_ostream &Out) { 925 Out << format("%g", Val); 926 } 927 928 StringRef ScalarTraits<double>::input(StringRef Scalar, void *, double &Val) { 929 if (to_float(Scalar, Val)) 930 return StringRef(); 931 return "invalid floating point number"; 932 } 933 934 void ScalarTraits<float>::output(const float &Val, void *, raw_ostream &Out) { 935 Out << format("%g", Val); 936 } 937 938 StringRef ScalarTraits<float>::input(StringRef Scalar, void *, float &Val) { 939 if (to_float(Scalar, Val)) 940 return StringRef(); 941 return "invalid floating point number"; 942 } 943 944 void ScalarTraits<Hex8>::output(const Hex8 &Val, void *, raw_ostream &Out) { 945 uint8_t Num = Val; 946 Out << format("0x%02X", Num); 947 } 948 949 StringRef ScalarTraits<Hex8>::input(StringRef Scalar, void *, Hex8 &Val) { 950 unsigned long long n; 951 if (getAsUnsignedInteger(Scalar, 0, n)) 952 return "invalid hex8 number"; 953 if (n > 0xFF) 954 return "out of range hex8 number"; 955 Val = n; 956 return StringRef(); 957 } 958 959 void ScalarTraits<Hex16>::output(const Hex16 &Val, void *, raw_ostream &Out) { 960 uint16_t Num = Val; 961 Out << format("0x%04X", Num); 962 } 963 964 StringRef ScalarTraits<Hex16>::input(StringRef Scalar, void *, Hex16 &Val) { 965 unsigned long long n; 966 if (getAsUnsignedInteger(Scalar, 0, n)) 967 return "invalid hex16 number"; 968 if (n > 0xFFFF) 969 return "out of range hex16 number"; 970 Val = n; 971 return StringRef(); 972 } 973 974 void ScalarTraits<Hex32>::output(const Hex32 &Val, void *, raw_ostream &Out) { 975 uint32_t Num = Val; 976 Out << format("0x%08X", Num); 977 } 978 979 StringRef ScalarTraits<Hex32>::input(StringRef Scalar, void *, Hex32 &Val) { 980 unsigned long long n; 981 if (getAsUnsignedInteger(Scalar, 0, n)) 982 return "invalid hex32 number"; 983 if (n > 0xFFFFFFFFUL) 984 return "out of range hex32 number"; 985 Val = n; 986 return StringRef(); 987 } 988 989 void ScalarTraits<Hex64>::output(const Hex64 &Val, void *, raw_ostream &Out) { 990 uint64_t Num = Val; 991 Out << format("0x%016llX", Num); 992 } 993 994 StringRef ScalarTraits<Hex64>::input(StringRef Scalar, void *, Hex64 &Val) { 995 unsigned long long Num; 996 if (getAsUnsignedInteger(Scalar, 0, Num)) 997 return "invalid hex64 number"; 998 Val = Num; 999 return StringRef(); 1000 } 1001