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