1 //===--- CGStmt.cpp - Emit LLVM Code from Statements ----------------------===//
2 //
3 //                     The LLVM Compiler Infrastructure
4 //
5 // This file is distributed under the University of Illinois Open Source
6 // License. See LICENSE.TXT for details.
7 //
8 //===----------------------------------------------------------------------===//
9 //
10 // This contains code to emit Stmt nodes as LLVM code.
11 //
12 //===----------------------------------------------------------------------===//
13 
14 #include "CodeGenFunction.h"
15 #include "CGDebugInfo.h"
16 #include "CodeGenModule.h"
17 #include "TargetInfo.h"
18 #include "clang/AST/StmtVisitor.h"
19 #include "clang/Basic/Builtins.h"
20 #include "clang/Basic/PrettyStackTrace.h"
21 #include "clang/Basic/TargetInfo.h"
22 #include "clang/Sema/SemaDiagnostic.h"
23 #include "llvm/ADT/StringExtras.h"
24 #include "llvm/IR/CallSite.h"
25 #include "llvm/IR/DataLayout.h"
26 #include "llvm/IR/InlineAsm.h"
27 #include "llvm/IR/Intrinsics.h"
28 #include "llvm/IR/MDBuilder.h"
29 
30 using namespace clang;
31 using namespace CodeGen;
32 
33 //===----------------------------------------------------------------------===//
34 //                              Statement Emission
35 //===----------------------------------------------------------------------===//
36 
37 void CodeGenFunction::EmitStopPoint(const Stmt *S) {
38   if (CGDebugInfo *DI = getDebugInfo()) {
39     SourceLocation Loc;
40     Loc = S->getBeginLoc();
41     DI->EmitLocation(Builder, Loc);
42 
43     LastStopPoint = Loc;
44   }
45 }
46 
47 void CodeGenFunction::EmitStmt(const Stmt *S, ArrayRef<const Attr *> Attrs) {
48   assert(S && "Null statement?");
49   PGO.setCurrentStmt(S);
50 
51   // These statements have their own debug info handling.
52   if (EmitSimpleStmt(S))
53     return;
54 
55   // Check if we are generating unreachable code.
56   if (!HaveInsertPoint()) {
57     // If so, and the statement doesn't contain a label, then we do not need to
58     // generate actual code. This is safe because (1) the current point is
59     // unreachable, so we don't need to execute the code, and (2) we've already
60     // handled the statements which update internal data structures (like the
61     // local variable map) which could be used by subsequent statements.
62     if (!ContainsLabel(S)) {
63       // Verify that any decl statements were handled as simple, they may be in
64       // scope of subsequent reachable statements.
65       assert(!isa<DeclStmt>(*S) && "Unexpected DeclStmt!");
66       return;
67     }
68 
69     // Otherwise, make a new block to hold the code.
70     EnsureInsertPoint();
71   }
72 
73   // Generate a stoppoint if we are emitting debug info.
74   EmitStopPoint(S);
75 
76   // Ignore all OpenMP directives except for simd if OpenMP with Simd is
77   // enabled.
78   if (getLangOpts().OpenMP && getLangOpts().OpenMPSimd) {
79     if (const auto *D = dyn_cast<OMPExecutableDirective>(S)) {
80       EmitSimpleOMPExecutableDirective(*D);
81       return;
82     }
83   }
84 
85   switch (S->getStmtClass()) {
86   case Stmt::NoStmtClass:
87   case Stmt::CXXCatchStmtClass:
88   case Stmt::SEHExceptStmtClass:
89   case Stmt::SEHFinallyStmtClass:
90   case Stmt::MSDependentExistsStmtClass:
91     llvm_unreachable("invalid statement class to emit generically");
92   case Stmt::NullStmtClass:
93   case Stmt::CompoundStmtClass:
94   case Stmt::DeclStmtClass:
95   case Stmt::LabelStmtClass:
96   case Stmt::AttributedStmtClass:
97   case Stmt::GotoStmtClass:
98   case Stmt::BreakStmtClass:
99   case Stmt::ContinueStmtClass:
100   case Stmt::DefaultStmtClass:
101   case Stmt::CaseStmtClass:
102   case Stmt::SEHLeaveStmtClass:
103     llvm_unreachable("should have emitted these statements as simple");
104 
105 #define STMT(Type, Base)
106 #define ABSTRACT_STMT(Op)
107 #define EXPR(Type, Base) \
108   case Stmt::Type##Class:
109 #include "clang/AST/StmtNodes.inc"
110   {
111     // Remember the block we came in on.
112     llvm::BasicBlock *incoming = Builder.GetInsertBlock();
113     assert(incoming && "expression emission must have an insertion point");
114 
115     EmitIgnoredExpr(cast<Expr>(S));
116 
117     llvm::BasicBlock *outgoing = Builder.GetInsertBlock();
118     assert(outgoing && "expression emission cleared block!");
119 
120     // The expression emitters assume (reasonably!) that the insertion
121     // point is always set.  To maintain that, the call-emission code
122     // for noreturn functions has to enter a new block with no
123     // predecessors.  We want to kill that block and mark the current
124     // insertion point unreachable in the common case of a call like
125     // "exit();".  Since expression emission doesn't otherwise create
126     // blocks with no predecessors, we can just test for that.
127     // However, we must be careful not to do this to our incoming
128     // block, because *statement* emission does sometimes create
129     // reachable blocks which will have no predecessors until later in
130     // the function.  This occurs with, e.g., labels that are not
131     // reachable by fallthrough.
132     if (incoming != outgoing && outgoing->use_empty()) {
133       outgoing->eraseFromParent();
134       Builder.ClearInsertionPoint();
135     }
136     break;
137   }
138 
139   case Stmt::IndirectGotoStmtClass:
140     EmitIndirectGotoStmt(cast<IndirectGotoStmt>(*S)); break;
141 
142   case Stmt::IfStmtClass:      EmitIfStmt(cast<IfStmt>(*S));              break;
143   case Stmt::WhileStmtClass:   EmitWhileStmt(cast<WhileStmt>(*S), Attrs); break;
144   case Stmt::DoStmtClass:      EmitDoStmt(cast<DoStmt>(*S), Attrs);       break;
145   case Stmt::ForStmtClass:     EmitForStmt(cast<ForStmt>(*S), Attrs);     break;
146 
147   case Stmt::ReturnStmtClass:  EmitReturnStmt(cast<ReturnStmt>(*S));      break;
148 
149   case Stmt::SwitchStmtClass:  EmitSwitchStmt(cast<SwitchStmt>(*S));      break;
150   case Stmt::GCCAsmStmtClass:  // Intentional fall-through.
151   case Stmt::MSAsmStmtClass:   EmitAsmStmt(cast<AsmStmt>(*S));            break;
152   case Stmt::CoroutineBodyStmtClass:
153     EmitCoroutineBody(cast<CoroutineBodyStmt>(*S));
154     break;
155   case Stmt::CoreturnStmtClass:
156     EmitCoreturnStmt(cast<CoreturnStmt>(*S));
157     break;
158   case Stmt::CapturedStmtClass: {
159     const CapturedStmt *CS = cast<CapturedStmt>(S);
160     EmitCapturedStmt(*CS, CS->getCapturedRegionKind());
161     }
162     break;
163   case Stmt::ObjCAtTryStmtClass:
164     EmitObjCAtTryStmt(cast<ObjCAtTryStmt>(*S));
165     break;
166   case Stmt::ObjCAtCatchStmtClass:
167     llvm_unreachable(
168                     "@catch statements should be handled by EmitObjCAtTryStmt");
169   case Stmt::ObjCAtFinallyStmtClass:
170     llvm_unreachable(
171                   "@finally statements should be handled by EmitObjCAtTryStmt");
172   case Stmt::ObjCAtThrowStmtClass:
173     EmitObjCAtThrowStmt(cast<ObjCAtThrowStmt>(*S));
174     break;
175   case Stmt::ObjCAtSynchronizedStmtClass:
176     EmitObjCAtSynchronizedStmt(cast<ObjCAtSynchronizedStmt>(*S));
177     break;
178   case Stmt::ObjCForCollectionStmtClass:
179     EmitObjCForCollectionStmt(cast<ObjCForCollectionStmt>(*S));
180     break;
181   case Stmt::ObjCAutoreleasePoolStmtClass:
182     EmitObjCAutoreleasePoolStmt(cast<ObjCAutoreleasePoolStmt>(*S));
183     break;
184 
185   case Stmt::CXXTryStmtClass:
186     EmitCXXTryStmt(cast<CXXTryStmt>(*S));
187     break;
188   case Stmt::CXXForRangeStmtClass:
189     EmitCXXForRangeStmt(cast<CXXForRangeStmt>(*S), Attrs);
190     break;
191   case Stmt::SEHTryStmtClass:
192     EmitSEHTryStmt(cast<SEHTryStmt>(*S));
193     break;
194   case Stmt::OMPParallelDirectiveClass:
195     EmitOMPParallelDirective(cast<OMPParallelDirective>(*S));
196     break;
197   case Stmt::OMPSimdDirectiveClass:
198     EmitOMPSimdDirective(cast<OMPSimdDirective>(*S));
199     break;
200   case Stmt::OMPForDirectiveClass:
201     EmitOMPForDirective(cast<OMPForDirective>(*S));
202     break;
203   case Stmt::OMPForSimdDirectiveClass:
204     EmitOMPForSimdDirective(cast<OMPForSimdDirective>(*S));
205     break;
206   case Stmt::OMPSectionsDirectiveClass:
207     EmitOMPSectionsDirective(cast<OMPSectionsDirective>(*S));
208     break;
209   case Stmt::OMPSectionDirectiveClass:
210     EmitOMPSectionDirective(cast<OMPSectionDirective>(*S));
211     break;
212   case Stmt::OMPSingleDirectiveClass:
213     EmitOMPSingleDirective(cast<OMPSingleDirective>(*S));
214     break;
215   case Stmt::OMPMasterDirectiveClass:
216     EmitOMPMasterDirective(cast<OMPMasterDirective>(*S));
217     break;
218   case Stmt::OMPCriticalDirectiveClass:
219     EmitOMPCriticalDirective(cast<OMPCriticalDirective>(*S));
220     break;
221   case Stmt::OMPParallelForDirectiveClass:
222     EmitOMPParallelForDirective(cast<OMPParallelForDirective>(*S));
223     break;
224   case Stmt::OMPParallelForSimdDirectiveClass:
225     EmitOMPParallelForSimdDirective(cast<OMPParallelForSimdDirective>(*S));
226     break;
227   case Stmt::OMPParallelSectionsDirectiveClass:
228     EmitOMPParallelSectionsDirective(cast<OMPParallelSectionsDirective>(*S));
229     break;
230   case Stmt::OMPTaskDirectiveClass:
231     EmitOMPTaskDirective(cast<OMPTaskDirective>(*S));
232     break;
233   case Stmt::OMPTaskyieldDirectiveClass:
234     EmitOMPTaskyieldDirective(cast<OMPTaskyieldDirective>(*S));
235     break;
236   case Stmt::OMPBarrierDirectiveClass:
237     EmitOMPBarrierDirective(cast<OMPBarrierDirective>(*S));
238     break;
239   case Stmt::OMPTaskwaitDirectiveClass:
240     EmitOMPTaskwaitDirective(cast<OMPTaskwaitDirective>(*S));
241     break;
242   case Stmt::OMPTaskgroupDirectiveClass:
243     EmitOMPTaskgroupDirective(cast<OMPTaskgroupDirective>(*S));
244     break;
245   case Stmt::OMPFlushDirectiveClass:
246     EmitOMPFlushDirective(cast<OMPFlushDirective>(*S));
247     break;
248   case Stmt::OMPOrderedDirectiveClass:
249     EmitOMPOrderedDirective(cast<OMPOrderedDirective>(*S));
250     break;
251   case Stmt::OMPAtomicDirectiveClass:
252     EmitOMPAtomicDirective(cast<OMPAtomicDirective>(*S));
253     break;
254   case Stmt::OMPTargetDirectiveClass:
255     EmitOMPTargetDirective(cast<OMPTargetDirective>(*S));
256     break;
257   case Stmt::OMPTeamsDirectiveClass:
258     EmitOMPTeamsDirective(cast<OMPTeamsDirective>(*S));
259     break;
260   case Stmt::OMPCancellationPointDirectiveClass:
261     EmitOMPCancellationPointDirective(cast<OMPCancellationPointDirective>(*S));
262     break;
263   case Stmt::OMPCancelDirectiveClass:
264     EmitOMPCancelDirective(cast<OMPCancelDirective>(*S));
265     break;
266   case Stmt::OMPTargetDataDirectiveClass:
267     EmitOMPTargetDataDirective(cast<OMPTargetDataDirective>(*S));
268     break;
269   case Stmt::OMPTargetEnterDataDirectiveClass:
270     EmitOMPTargetEnterDataDirective(cast<OMPTargetEnterDataDirective>(*S));
271     break;
272   case Stmt::OMPTargetExitDataDirectiveClass:
273     EmitOMPTargetExitDataDirective(cast<OMPTargetExitDataDirective>(*S));
274     break;
275   case Stmt::OMPTargetParallelDirectiveClass:
276     EmitOMPTargetParallelDirective(cast<OMPTargetParallelDirective>(*S));
277     break;
278   case Stmt::OMPTargetParallelForDirectiveClass:
279     EmitOMPTargetParallelForDirective(cast<OMPTargetParallelForDirective>(*S));
280     break;
281   case Stmt::OMPTaskLoopDirectiveClass:
282     EmitOMPTaskLoopDirective(cast<OMPTaskLoopDirective>(*S));
283     break;
284   case Stmt::OMPTaskLoopSimdDirectiveClass:
285     EmitOMPTaskLoopSimdDirective(cast<OMPTaskLoopSimdDirective>(*S));
286     break;
287   case Stmt::OMPDistributeDirectiveClass:
288     EmitOMPDistributeDirective(cast<OMPDistributeDirective>(*S));
289     break;
290   case Stmt::OMPTargetUpdateDirectiveClass:
291     EmitOMPTargetUpdateDirective(cast<OMPTargetUpdateDirective>(*S));
292     break;
293   case Stmt::OMPDistributeParallelForDirectiveClass:
294     EmitOMPDistributeParallelForDirective(
295         cast<OMPDistributeParallelForDirective>(*S));
296     break;
297   case Stmt::OMPDistributeParallelForSimdDirectiveClass:
298     EmitOMPDistributeParallelForSimdDirective(
299         cast<OMPDistributeParallelForSimdDirective>(*S));
300     break;
301   case Stmt::OMPDistributeSimdDirectiveClass:
302     EmitOMPDistributeSimdDirective(cast<OMPDistributeSimdDirective>(*S));
303     break;
304   case Stmt::OMPTargetParallelForSimdDirectiveClass:
305     EmitOMPTargetParallelForSimdDirective(
306         cast<OMPTargetParallelForSimdDirective>(*S));
307     break;
308   case Stmt::OMPTargetSimdDirectiveClass:
309     EmitOMPTargetSimdDirective(cast<OMPTargetSimdDirective>(*S));
310     break;
311   case Stmt::OMPTeamsDistributeDirectiveClass:
312     EmitOMPTeamsDistributeDirective(cast<OMPTeamsDistributeDirective>(*S));
313     break;
314   case Stmt::OMPTeamsDistributeSimdDirectiveClass:
315     EmitOMPTeamsDistributeSimdDirective(
316         cast<OMPTeamsDistributeSimdDirective>(*S));
317     break;
318   case Stmt::OMPTeamsDistributeParallelForSimdDirectiveClass:
319     EmitOMPTeamsDistributeParallelForSimdDirective(
320         cast<OMPTeamsDistributeParallelForSimdDirective>(*S));
321     break;
322   case Stmt::OMPTeamsDistributeParallelForDirectiveClass:
323     EmitOMPTeamsDistributeParallelForDirective(
324         cast<OMPTeamsDistributeParallelForDirective>(*S));
325     break;
326   case Stmt::OMPTargetTeamsDirectiveClass:
327     EmitOMPTargetTeamsDirective(cast<OMPTargetTeamsDirective>(*S));
328     break;
329   case Stmt::OMPTargetTeamsDistributeDirectiveClass:
330     EmitOMPTargetTeamsDistributeDirective(
331         cast<OMPTargetTeamsDistributeDirective>(*S));
332     break;
333   case Stmt::OMPTargetTeamsDistributeParallelForDirectiveClass:
334     EmitOMPTargetTeamsDistributeParallelForDirective(
335         cast<OMPTargetTeamsDistributeParallelForDirective>(*S));
336     break;
337   case Stmt::OMPTargetTeamsDistributeParallelForSimdDirectiveClass:
338     EmitOMPTargetTeamsDistributeParallelForSimdDirective(
339         cast<OMPTargetTeamsDistributeParallelForSimdDirective>(*S));
340     break;
341   case Stmt::OMPTargetTeamsDistributeSimdDirectiveClass:
342     EmitOMPTargetTeamsDistributeSimdDirective(
343         cast<OMPTargetTeamsDistributeSimdDirective>(*S));
344     break;
345   }
346 }
347 
348 bool CodeGenFunction::EmitSimpleStmt(const Stmt *S) {
349   switch (S->getStmtClass()) {
350   default: return false;
351   case Stmt::NullStmtClass: break;
352   case Stmt::CompoundStmtClass: EmitCompoundStmt(cast<CompoundStmt>(*S)); break;
353   case Stmt::DeclStmtClass:     EmitDeclStmt(cast<DeclStmt>(*S));         break;
354   case Stmt::LabelStmtClass:    EmitLabelStmt(cast<LabelStmt>(*S));       break;
355   case Stmt::AttributedStmtClass:
356                             EmitAttributedStmt(cast<AttributedStmt>(*S)); break;
357   case Stmt::GotoStmtClass:     EmitGotoStmt(cast<GotoStmt>(*S));         break;
358   case Stmt::BreakStmtClass:    EmitBreakStmt(cast<BreakStmt>(*S));       break;
359   case Stmt::ContinueStmtClass: EmitContinueStmt(cast<ContinueStmt>(*S)); break;
360   case Stmt::DefaultStmtClass:  EmitDefaultStmt(cast<DefaultStmt>(*S));   break;
361   case Stmt::CaseStmtClass:     EmitCaseStmt(cast<CaseStmt>(*S));         break;
362   case Stmt::SEHLeaveStmtClass: EmitSEHLeaveStmt(cast<SEHLeaveStmt>(*S)); break;
363   }
364 
365   return true;
366 }
367 
368 /// EmitCompoundStmt - Emit a compound statement {..} node.  If GetLast is true,
369 /// this captures the expression result of the last sub-statement and returns it
370 /// (for use by the statement expression extension).
371 Address CodeGenFunction::EmitCompoundStmt(const CompoundStmt &S, bool GetLast,
372                                           AggValueSlot AggSlot) {
373   PrettyStackTraceLoc CrashInfo(getContext().getSourceManager(),S.getLBracLoc(),
374                              "LLVM IR generation of compound statement ('{}')");
375 
376   // Keep track of the current cleanup stack depth, including debug scopes.
377   LexicalScope Scope(*this, S.getSourceRange());
378 
379   return EmitCompoundStmtWithoutScope(S, GetLast, AggSlot);
380 }
381 
382 Address
383 CodeGenFunction::EmitCompoundStmtWithoutScope(const CompoundStmt &S,
384                                               bool GetLast,
385                                               AggValueSlot AggSlot) {
386 
387   for (CompoundStmt::const_body_iterator I = S.body_begin(),
388        E = S.body_end()-GetLast; I != E; ++I)
389     EmitStmt(*I);
390 
391   Address RetAlloca = Address::invalid();
392   if (GetLast) {
393     // We have to special case labels here.  They are statements, but when put
394     // at the end of a statement expression, they yield the value of their
395     // subexpression.  Handle this by walking through all labels we encounter,
396     // emitting them before we evaluate the subexpr.
397     const Stmt *LastStmt = S.body_back();
398     while (const LabelStmt *LS = dyn_cast<LabelStmt>(LastStmt)) {
399       EmitLabel(LS->getDecl());
400       LastStmt = LS->getSubStmt();
401     }
402 
403     EnsureInsertPoint();
404 
405     QualType ExprTy = cast<Expr>(LastStmt)->getType();
406     if (hasAggregateEvaluationKind(ExprTy)) {
407       EmitAggExpr(cast<Expr>(LastStmt), AggSlot);
408     } else {
409       // We can't return an RValue here because there might be cleanups at
410       // the end of the StmtExpr.  Because of that, we have to emit the result
411       // here into a temporary alloca.
412       RetAlloca = CreateMemTemp(ExprTy);
413       EmitAnyExprToMem(cast<Expr>(LastStmt), RetAlloca, Qualifiers(),
414                        /*IsInit*/false);
415     }
416 
417   }
418 
419   return RetAlloca;
420 }
421 
422 void CodeGenFunction::SimplifyForwardingBlocks(llvm::BasicBlock *BB) {
423   llvm::BranchInst *BI = dyn_cast<llvm::BranchInst>(BB->getTerminator());
424 
425   // If there is a cleanup stack, then we it isn't worth trying to
426   // simplify this block (we would need to remove it from the scope map
427   // and cleanup entry).
428   if (!EHStack.empty())
429     return;
430 
431   // Can only simplify direct branches.
432   if (!BI || !BI->isUnconditional())
433     return;
434 
435   // Can only simplify empty blocks.
436   if (BI->getIterator() != BB->begin())
437     return;
438 
439   BB->replaceAllUsesWith(BI->getSuccessor(0));
440   BI->eraseFromParent();
441   BB->eraseFromParent();
442 }
443 
444 void CodeGenFunction::EmitBlock(llvm::BasicBlock *BB, bool IsFinished) {
445   llvm::BasicBlock *CurBB = Builder.GetInsertBlock();
446 
447   // Fall out of the current block (if necessary).
448   EmitBranch(BB);
449 
450   if (IsFinished && BB->use_empty()) {
451     delete BB;
452     return;
453   }
454 
455   // Place the block after the current block, if possible, or else at
456   // the end of the function.
457   if (CurBB && CurBB->getParent())
458     CurFn->getBasicBlockList().insertAfter(CurBB->getIterator(), BB);
459   else
460     CurFn->getBasicBlockList().push_back(BB);
461   Builder.SetInsertPoint(BB);
462 }
463 
464 void CodeGenFunction::EmitBranch(llvm::BasicBlock *Target) {
465   // Emit a branch from the current block to the target one if this
466   // was a real block.  If this was just a fall-through block after a
467   // terminator, don't emit it.
468   llvm::BasicBlock *CurBB = Builder.GetInsertBlock();
469 
470   if (!CurBB || CurBB->getTerminator()) {
471     // If there is no insert point or the previous block is already
472     // terminated, don't touch it.
473   } else {
474     // Otherwise, create a fall-through branch.
475     Builder.CreateBr(Target);
476   }
477 
478   Builder.ClearInsertionPoint();
479 }
480 
481 void CodeGenFunction::EmitBlockAfterUses(llvm::BasicBlock *block) {
482   bool inserted = false;
483   for (llvm::User *u : block->users()) {
484     if (llvm::Instruction *insn = dyn_cast<llvm::Instruction>(u)) {
485       CurFn->getBasicBlockList().insertAfter(insn->getParent()->getIterator(),
486                                              block);
487       inserted = true;
488       break;
489     }
490   }
491 
492   if (!inserted)
493     CurFn->getBasicBlockList().push_back(block);
494 
495   Builder.SetInsertPoint(block);
496 }
497 
498 CodeGenFunction::JumpDest
499 CodeGenFunction::getJumpDestForLabel(const LabelDecl *D) {
500   JumpDest &Dest = LabelMap[D];
501   if (Dest.isValid()) return Dest;
502 
503   // Create, but don't insert, the new block.
504   Dest = JumpDest(createBasicBlock(D->getName()),
505                   EHScopeStack::stable_iterator::invalid(),
506                   NextCleanupDestIndex++);
507   return Dest;
508 }
509 
510 void CodeGenFunction::EmitLabel(const LabelDecl *D) {
511   // Add this label to the current lexical scope if we're within any
512   // normal cleanups.  Jumps "in" to this label --- when permitted by
513   // the language --- may need to be routed around such cleanups.
514   if (EHStack.hasNormalCleanups() && CurLexicalScope)
515     CurLexicalScope->addLabel(D);
516 
517   JumpDest &Dest = LabelMap[D];
518 
519   // If we didn't need a forward reference to this label, just go
520   // ahead and create a destination at the current scope.
521   if (!Dest.isValid()) {
522     Dest = getJumpDestInCurrentScope(D->getName());
523 
524   // Otherwise, we need to give this label a target depth and remove
525   // it from the branch-fixups list.
526   } else {
527     assert(!Dest.getScopeDepth().isValid() && "already emitted label!");
528     Dest.setScopeDepth(EHStack.stable_begin());
529     ResolveBranchFixups(Dest.getBlock());
530   }
531 
532   EmitBlock(Dest.getBlock());
533   incrementProfileCounter(D->getStmt());
534 }
535 
536 /// Change the cleanup scope of the labels in this lexical scope to
537 /// match the scope of the enclosing context.
538 void CodeGenFunction::LexicalScope::rescopeLabels() {
539   assert(!Labels.empty());
540   EHScopeStack::stable_iterator innermostScope
541     = CGF.EHStack.getInnermostNormalCleanup();
542 
543   // Change the scope depth of all the labels.
544   for (SmallVectorImpl<const LabelDecl*>::const_iterator
545          i = Labels.begin(), e = Labels.end(); i != e; ++i) {
546     assert(CGF.LabelMap.count(*i));
547     JumpDest &dest = CGF.LabelMap.find(*i)->second;
548     assert(dest.getScopeDepth().isValid());
549     assert(innermostScope.encloses(dest.getScopeDepth()));
550     dest.setScopeDepth(innermostScope);
551   }
552 
553   // Reparent the labels if the new scope also has cleanups.
554   if (innermostScope != EHScopeStack::stable_end() && ParentScope) {
555     ParentScope->Labels.append(Labels.begin(), Labels.end());
556   }
557 }
558 
559 
560 void CodeGenFunction::EmitLabelStmt(const LabelStmt &S) {
561   EmitLabel(S.getDecl());
562   EmitStmt(S.getSubStmt());
563 }
564 
565 void CodeGenFunction::EmitAttributedStmt(const AttributedStmt &S) {
566   EmitStmt(S.getSubStmt(), S.getAttrs());
567 }
568 
569 void CodeGenFunction::EmitGotoStmt(const GotoStmt &S) {
570   // If this code is reachable then emit a stop point (if generating
571   // debug info). We have to do this ourselves because we are on the
572   // "simple" statement path.
573   if (HaveInsertPoint())
574     EmitStopPoint(&S);
575 
576   EmitBranchThroughCleanup(getJumpDestForLabel(S.getLabel()));
577 }
578 
579 
580 void CodeGenFunction::EmitIndirectGotoStmt(const IndirectGotoStmt &S) {
581   if (const LabelDecl *Target = S.getConstantTarget()) {
582     EmitBranchThroughCleanup(getJumpDestForLabel(Target));
583     return;
584   }
585 
586   // Ensure that we have an i8* for our PHI node.
587   llvm::Value *V = Builder.CreateBitCast(EmitScalarExpr(S.getTarget()),
588                                          Int8PtrTy, "addr");
589   llvm::BasicBlock *CurBB = Builder.GetInsertBlock();
590 
591   // Get the basic block for the indirect goto.
592   llvm::BasicBlock *IndGotoBB = GetIndirectGotoBlock();
593 
594   // The first instruction in the block has to be the PHI for the switch dest,
595   // add an entry for this branch.
596   cast<llvm::PHINode>(IndGotoBB->begin())->addIncoming(V, CurBB);
597 
598   EmitBranch(IndGotoBB);
599 }
600 
601 void CodeGenFunction::EmitIfStmt(const IfStmt &S) {
602   // C99 6.8.4.1: The first substatement is executed if the expression compares
603   // unequal to 0.  The condition must be a scalar type.
604   LexicalScope ConditionScope(*this, S.getCond()->getSourceRange());
605 
606   if (S.getInit())
607     EmitStmt(S.getInit());
608 
609   if (S.getConditionVariable())
610     EmitDecl(*S.getConditionVariable());
611 
612   // If the condition constant folds and can be elided, try to avoid emitting
613   // the condition and the dead arm of the if/else.
614   bool CondConstant;
615   if (ConstantFoldsToSimpleInteger(S.getCond(), CondConstant,
616                                    S.isConstexpr())) {
617     // Figure out which block (then or else) is executed.
618     const Stmt *Executed = S.getThen();
619     const Stmt *Skipped  = S.getElse();
620     if (!CondConstant)  // Condition false?
621       std::swap(Executed, Skipped);
622 
623     // If the skipped block has no labels in it, just emit the executed block.
624     // This avoids emitting dead code and simplifies the CFG substantially.
625     if (S.isConstexpr() || !ContainsLabel(Skipped)) {
626       if (CondConstant)
627         incrementProfileCounter(&S);
628       if (Executed) {
629         RunCleanupsScope ExecutedScope(*this);
630         EmitStmt(Executed);
631       }
632       return;
633     }
634   }
635 
636   // Otherwise, the condition did not fold, or we couldn't elide it.  Just emit
637   // the conditional branch.
638   llvm::BasicBlock *ThenBlock = createBasicBlock("if.then");
639   llvm::BasicBlock *ContBlock = createBasicBlock("if.end");
640   llvm::BasicBlock *ElseBlock = ContBlock;
641   if (S.getElse())
642     ElseBlock = createBasicBlock("if.else");
643 
644   EmitBranchOnBoolExpr(S.getCond(), ThenBlock, ElseBlock,
645                        getProfileCount(S.getThen()));
646 
647   // Emit the 'then' code.
648   EmitBlock(ThenBlock);
649   incrementProfileCounter(&S);
650   {
651     RunCleanupsScope ThenScope(*this);
652     EmitStmt(S.getThen());
653   }
654   EmitBranch(ContBlock);
655 
656   // Emit the 'else' code if present.
657   if (const Stmt *Else = S.getElse()) {
658     {
659       // There is no need to emit line number for an unconditional branch.
660       auto NL = ApplyDebugLocation::CreateEmpty(*this);
661       EmitBlock(ElseBlock);
662     }
663     {
664       RunCleanupsScope ElseScope(*this);
665       EmitStmt(Else);
666     }
667     {
668       // There is no need to emit line number for an unconditional branch.
669       auto NL = ApplyDebugLocation::CreateEmpty(*this);
670       EmitBranch(ContBlock);
671     }
672   }
673 
674   // Emit the continuation block for code after the if.
675   EmitBlock(ContBlock, true);
676 }
677 
678 void CodeGenFunction::EmitWhileStmt(const WhileStmt &S,
679                                     ArrayRef<const Attr *> WhileAttrs) {
680   // Emit the header for the loop, which will also become
681   // the continue target.
682   JumpDest LoopHeader = getJumpDestInCurrentScope("while.cond");
683   EmitBlock(LoopHeader.getBlock());
684 
685   const SourceRange &R = S.getSourceRange();
686   LoopStack.push(LoopHeader.getBlock(), CGM.getContext(), WhileAttrs,
687                  SourceLocToDebugLoc(R.getBegin()),
688                  SourceLocToDebugLoc(R.getEnd()));
689 
690   // Create an exit block for when the condition fails, which will
691   // also become the break target.
692   JumpDest LoopExit = getJumpDestInCurrentScope("while.end");
693 
694   // Store the blocks to use for break and continue.
695   BreakContinueStack.push_back(BreakContinue(LoopExit, LoopHeader));
696 
697   // C++ [stmt.while]p2:
698   //   When the condition of a while statement is a declaration, the
699   //   scope of the variable that is declared extends from its point
700   //   of declaration (3.3.2) to the end of the while statement.
701   //   [...]
702   //   The object created in a condition is destroyed and created
703   //   with each iteration of the loop.
704   RunCleanupsScope ConditionScope(*this);
705 
706   if (S.getConditionVariable())
707     EmitDecl(*S.getConditionVariable());
708 
709   // Evaluate the conditional in the while header.  C99 6.8.5.1: The
710   // evaluation of the controlling expression takes place before each
711   // execution of the loop body.
712   llvm::Value *BoolCondVal = EvaluateExprAsBool(S.getCond());
713 
714   // while(1) is common, avoid extra exit blocks.  Be sure
715   // to correctly handle break/continue though.
716   bool EmitBoolCondBranch = true;
717   if (llvm::ConstantInt *C = dyn_cast<llvm::ConstantInt>(BoolCondVal))
718     if (C->isOne())
719       EmitBoolCondBranch = false;
720 
721   // As long as the condition is true, go to the loop body.
722   llvm::BasicBlock *LoopBody = createBasicBlock("while.body");
723   if (EmitBoolCondBranch) {
724     llvm::BasicBlock *ExitBlock = LoopExit.getBlock();
725     if (ConditionScope.requiresCleanups())
726       ExitBlock = createBasicBlock("while.exit");
727     Builder.CreateCondBr(
728         BoolCondVal, LoopBody, ExitBlock,
729         createProfileWeightsForLoop(S.getCond(), getProfileCount(S.getBody())));
730 
731     if (ExitBlock != LoopExit.getBlock()) {
732       EmitBlock(ExitBlock);
733       EmitBranchThroughCleanup(LoopExit);
734     }
735   }
736 
737   // Emit the loop body.  We have to emit this in a cleanup scope
738   // because it might be a singleton DeclStmt.
739   {
740     RunCleanupsScope BodyScope(*this);
741     EmitBlock(LoopBody);
742     incrementProfileCounter(&S);
743     EmitStmt(S.getBody());
744   }
745 
746   BreakContinueStack.pop_back();
747 
748   // Immediately force cleanup.
749   ConditionScope.ForceCleanup();
750 
751   EmitStopPoint(&S);
752   // Branch to the loop header again.
753   EmitBranch(LoopHeader.getBlock());
754 
755   LoopStack.pop();
756 
757   // Emit the exit block.
758   EmitBlock(LoopExit.getBlock(), true);
759 
760   // The LoopHeader typically is just a branch if we skipped emitting
761   // a branch, try to erase it.
762   if (!EmitBoolCondBranch)
763     SimplifyForwardingBlocks(LoopHeader.getBlock());
764 }
765 
766 void CodeGenFunction::EmitDoStmt(const DoStmt &S,
767                                  ArrayRef<const Attr *> DoAttrs) {
768   JumpDest LoopExit = getJumpDestInCurrentScope("do.end");
769   JumpDest LoopCond = getJumpDestInCurrentScope("do.cond");
770 
771   uint64_t ParentCount = getCurrentProfileCount();
772 
773   // Store the blocks to use for break and continue.
774   BreakContinueStack.push_back(BreakContinue(LoopExit, LoopCond));
775 
776   // Emit the body of the loop.
777   llvm::BasicBlock *LoopBody = createBasicBlock("do.body");
778 
779   EmitBlockWithFallThrough(LoopBody, &S);
780   {
781     RunCleanupsScope BodyScope(*this);
782     EmitStmt(S.getBody());
783   }
784 
785   EmitBlock(LoopCond.getBlock());
786 
787   const SourceRange &R = S.getSourceRange();
788   LoopStack.push(LoopBody, CGM.getContext(), DoAttrs,
789                  SourceLocToDebugLoc(R.getBegin()),
790                  SourceLocToDebugLoc(R.getEnd()));
791 
792   // C99 6.8.5.2: "The evaluation of the controlling expression takes place
793   // after each execution of the loop body."
794 
795   // Evaluate the conditional in the while header.
796   // C99 6.8.5p2/p4: The first substatement is executed if the expression
797   // compares unequal to 0.  The condition must be a scalar type.
798   llvm::Value *BoolCondVal = EvaluateExprAsBool(S.getCond());
799 
800   BreakContinueStack.pop_back();
801 
802   // "do {} while (0)" is common in macros, avoid extra blocks.  Be sure
803   // to correctly handle break/continue though.
804   bool EmitBoolCondBranch = true;
805   if (llvm::ConstantInt *C = dyn_cast<llvm::ConstantInt>(BoolCondVal))
806     if (C->isZero())
807       EmitBoolCondBranch = false;
808 
809   // As long as the condition is true, iterate the loop.
810   if (EmitBoolCondBranch) {
811     uint64_t BackedgeCount = getProfileCount(S.getBody()) - ParentCount;
812     Builder.CreateCondBr(
813         BoolCondVal, LoopBody, LoopExit.getBlock(),
814         createProfileWeightsForLoop(S.getCond(), BackedgeCount));
815   }
816 
817   LoopStack.pop();
818 
819   // Emit the exit block.
820   EmitBlock(LoopExit.getBlock());
821 
822   // The DoCond block typically is just a branch if we skipped
823   // emitting a branch, try to erase it.
824   if (!EmitBoolCondBranch)
825     SimplifyForwardingBlocks(LoopCond.getBlock());
826 }
827 
828 void CodeGenFunction::EmitForStmt(const ForStmt &S,
829                                   ArrayRef<const Attr *> ForAttrs) {
830   JumpDest LoopExit = getJumpDestInCurrentScope("for.end");
831 
832   LexicalScope ForScope(*this, S.getSourceRange());
833 
834   // Evaluate the first part before the loop.
835   if (S.getInit())
836     EmitStmt(S.getInit());
837 
838   // Start the loop with a block that tests the condition.
839   // If there's an increment, the continue scope will be overwritten
840   // later.
841   JumpDest Continue = getJumpDestInCurrentScope("for.cond");
842   llvm::BasicBlock *CondBlock = Continue.getBlock();
843   EmitBlock(CondBlock);
844 
845   const SourceRange &R = S.getSourceRange();
846   LoopStack.push(CondBlock, CGM.getContext(), ForAttrs,
847                  SourceLocToDebugLoc(R.getBegin()),
848                  SourceLocToDebugLoc(R.getEnd()));
849 
850   // If the for loop doesn't have an increment we can just use the
851   // condition as the continue block.  Otherwise we'll need to create
852   // a block for it (in the current scope, i.e. in the scope of the
853   // condition), and that we will become our continue block.
854   if (S.getInc())
855     Continue = getJumpDestInCurrentScope("for.inc");
856 
857   // Store the blocks to use for break and continue.
858   BreakContinueStack.push_back(BreakContinue(LoopExit, Continue));
859 
860   // Create a cleanup scope for the condition variable cleanups.
861   LexicalScope ConditionScope(*this, S.getSourceRange());
862 
863   if (S.getCond()) {
864     // If the for statement has a condition scope, emit the local variable
865     // declaration.
866     if (S.getConditionVariable()) {
867       EmitDecl(*S.getConditionVariable());
868     }
869 
870     llvm::BasicBlock *ExitBlock = LoopExit.getBlock();
871     // If there are any cleanups between here and the loop-exit scope,
872     // create a block to stage a loop exit along.
873     if (ForScope.requiresCleanups())
874       ExitBlock = createBasicBlock("for.cond.cleanup");
875 
876     // As long as the condition is true, iterate the loop.
877     llvm::BasicBlock *ForBody = createBasicBlock("for.body");
878 
879     // C99 6.8.5p2/p4: The first substatement is executed if the expression
880     // compares unequal to 0.  The condition must be a scalar type.
881     llvm::Value *BoolCondVal = EvaluateExprAsBool(S.getCond());
882     Builder.CreateCondBr(
883         BoolCondVal, ForBody, ExitBlock,
884         createProfileWeightsForLoop(S.getCond(), getProfileCount(S.getBody())));
885 
886     if (ExitBlock != LoopExit.getBlock()) {
887       EmitBlock(ExitBlock);
888       EmitBranchThroughCleanup(LoopExit);
889     }
890 
891     EmitBlock(ForBody);
892   } else {
893     // Treat it as a non-zero constant.  Don't even create a new block for the
894     // body, just fall into it.
895   }
896   incrementProfileCounter(&S);
897 
898   {
899     // Create a separate cleanup scope for the body, in case it is not
900     // a compound statement.
901     RunCleanupsScope BodyScope(*this);
902     EmitStmt(S.getBody());
903   }
904 
905   // If there is an increment, emit it next.
906   if (S.getInc()) {
907     EmitBlock(Continue.getBlock());
908     EmitStmt(S.getInc());
909   }
910 
911   BreakContinueStack.pop_back();
912 
913   ConditionScope.ForceCleanup();
914 
915   EmitStopPoint(&S);
916   EmitBranch(CondBlock);
917 
918   ForScope.ForceCleanup();
919 
920   LoopStack.pop();
921 
922   // Emit the fall-through block.
923   EmitBlock(LoopExit.getBlock(), true);
924 }
925 
926 void
927 CodeGenFunction::EmitCXXForRangeStmt(const CXXForRangeStmt &S,
928                                      ArrayRef<const Attr *> ForAttrs) {
929   JumpDest LoopExit = getJumpDestInCurrentScope("for.end");
930 
931   LexicalScope ForScope(*this, S.getSourceRange());
932 
933   // Evaluate the first pieces before the loop.
934   if (S.getInit())
935     EmitStmt(S.getInit());
936   EmitStmt(S.getRangeStmt());
937   EmitStmt(S.getBeginStmt());
938   EmitStmt(S.getEndStmt());
939 
940   // Start the loop with a block that tests the condition.
941   // If there's an increment, the continue scope will be overwritten
942   // later.
943   llvm::BasicBlock *CondBlock = createBasicBlock("for.cond");
944   EmitBlock(CondBlock);
945 
946   const SourceRange &R = S.getSourceRange();
947   LoopStack.push(CondBlock, CGM.getContext(), ForAttrs,
948                  SourceLocToDebugLoc(R.getBegin()),
949                  SourceLocToDebugLoc(R.getEnd()));
950 
951   // If there are any cleanups between here and the loop-exit scope,
952   // create a block to stage a loop exit along.
953   llvm::BasicBlock *ExitBlock = LoopExit.getBlock();
954   if (ForScope.requiresCleanups())
955     ExitBlock = createBasicBlock("for.cond.cleanup");
956 
957   // The loop body, consisting of the specified body and the loop variable.
958   llvm::BasicBlock *ForBody = createBasicBlock("for.body");
959 
960   // The body is executed if the expression, contextually converted
961   // to bool, is true.
962   llvm::Value *BoolCondVal = EvaluateExprAsBool(S.getCond());
963   Builder.CreateCondBr(
964       BoolCondVal, ForBody, ExitBlock,
965       createProfileWeightsForLoop(S.getCond(), getProfileCount(S.getBody())));
966 
967   if (ExitBlock != LoopExit.getBlock()) {
968     EmitBlock(ExitBlock);
969     EmitBranchThroughCleanup(LoopExit);
970   }
971 
972   EmitBlock(ForBody);
973   incrementProfileCounter(&S);
974 
975   // Create a block for the increment. In case of a 'continue', we jump there.
976   JumpDest Continue = getJumpDestInCurrentScope("for.inc");
977 
978   // Store the blocks to use for break and continue.
979   BreakContinueStack.push_back(BreakContinue(LoopExit, Continue));
980 
981   {
982     // Create a separate cleanup scope for the loop variable and body.
983     LexicalScope BodyScope(*this, S.getSourceRange());
984     EmitStmt(S.getLoopVarStmt());
985     EmitStmt(S.getBody());
986   }
987 
988   EmitStopPoint(&S);
989   // If there is an increment, emit it next.
990   EmitBlock(Continue.getBlock());
991   EmitStmt(S.getInc());
992 
993   BreakContinueStack.pop_back();
994 
995   EmitBranch(CondBlock);
996 
997   ForScope.ForceCleanup();
998 
999   LoopStack.pop();
1000 
1001   // Emit the fall-through block.
1002   EmitBlock(LoopExit.getBlock(), true);
1003 }
1004 
1005 void CodeGenFunction::EmitReturnOfRValue(RValue RV, QualType Ty) {
1006   if (RV.isScalar()) {
1007     Builder.CreateStore(RV.getScalarVal(), ReturnValue);
1008   } else if (RV.isAggregate()) {
1009     LValue Dest = MakeAddrLValue(ReturnValue, Ty);
1010     LValue Src = MakeAddrLValue(RV.getAggregateAddress(), Ty);
1011     EmitAggregateCopy(Dest, Src, Ty, overlapForReturnValue());
1012   } else {
1013     EmitStoreOfComplex(RV.getComplexVal(), MakeAddrLValue(ReturnValue, Ty),
1014                        /*init*/ true);
1015   }
1016   EmitBranchThroughCleanup(ReturnBlock);
1017 }
1018 
1019 /// EmitReturnStmt - Note that due to GCC extensions, this can have an operand
1020 /// if the function returns void, or may be missing one if the function returns
1021 /// non-void.  Fun stuff :).
1022 void CodeGenFunction::EmitReturnStmt(const ReturnStmt &S) {
1023   if (requiresReturnValueCheck()) {
1024     llvm::Constant *SLoc = EmitCheckSourceLocation(S.getBeginLoc());
1025     auto *SLocPtr =
1026         new llvm::GlobalVariable(CGM.getModule(), SLoc->getType(), false,
1027                                  llvm::GlobalVariable::PrivateLinkage, SLoc);
1028     SLocPtr->setUnnamedAddr(llvm::GlobalValue::UnnamedAddr::Global);
1029     CGM.getSanitizerMetadata()->disableSanitizerForGlobal(SLocPtr);
1030     assert(ReturnLocation.isValid() && "No valid return location");
1031     Builder.CreateStore(Builder.CreateBitCast(SLocPtr, Int8PtrTy),
1032                         ReturnLocation);
1033   }
1034 
1035   // Returning from an outlined SEH helper is UB, and we already warn on it.
1036   if (IsOutlinedSEHHelper) {
1037     Builder.CreateUnreachable();
1038     Builder.ClearInsertionPoint();
1039   }
1040 
1041   // Emit the result value, even if unused, to evaluate the side effects.
1042   const Expr *RV = S.getRetValue();
1043 
1044   // Treat block literals in a return expression as if they appeared
1045   // in their own scope.  This permits a small, easily-implemented
1046   // exception to our over-conservative rules about not jumping to
1047   // statements following block literals with non-trivial cleanups.
1048   RunCleanupsScope cleanupScope(*this);
1049   if (const FullExpr *fe = dyn_cast_or_null<FullExpr>(RV)) {
1050     enterFullExpression(fe);
1051     RV = fe->getSubExpr();
1052   }
1053 
1054   // FIXME: Clean this up by using an LValue for ReturnTemp,
1055   // EmitStoreThroughLValue, and EmitAnyExpr.
1056   if (getLangOpts().ElideConstructors &&
1057       S.getNRVOCandidate() && S.getNRVOCandidate()->isNRVOVariable()) {
1058     // Apply the named return value optimization for this return statement,
1059     // which means doing nothing: the appropriate result has already been
1060     // constructed into the NRVO variable.
1061 
1062     // If there is an NRVO flag for this variable, set it to 1 into indicate
1063     // that the cleanup code should not destroy the variable.
1064     if (llvm::Value *NRVOFlag = NRVOFlags[S.getNRVOCandidate()])
1065       Builder.CreateFlagStore(Builder.getTrue(), NRVOFlag);
1066   } else if (!ReturnValue.isValid() || (RV && RV->getType()->isVoidType())) {
1067     // Make sure not to return anything, but evaluate the expression
1068     // for side effects.
1069     if (RV)
1070       EmitAnyExpr(RV);
1071   } else if (!RV) {
1072     // Do nothing (return value is left uninitialized)
1073   } else if (FnRetTy->isReferenceType()) {
1074     // If this function returns a reference, take the address of the expression
1075     // rather than the value.
1076     RValue Result = EmitReferenceBindingToExpr(RV);
1077     Builder.CreateStore(Result.getScalarVal(), ReturnValue);
1078   } else {
1079     switch (getEvaluationKind(RV->getType())) {
1080     case TEK_Scalar:
1081       Builder.CreateStore(EmitScalarExpr(RV), ReturnValue);
1082       break;
1083     case TEK_Complex:
1084       EmitComplexExprIntoLValue(RV, MakeAddrLValue(ReturnValue, RV->getType()),
1085                                 /*isInit*/ true);
1086       break;
1087     case TEK_Aggregate:
1088       EmitAggExpr(RV, AggValueSlot::forAddr(
1089                           ReturnValue, Qualifiers(),
1090                           AggValueSlot::IsDestructed,
1091                           AggValueSlot::DoesNotNeedGCBarriers,
1092                           AggValueSlot::IsNotAliased,
1093                           overlapForReturnValue()));
1094       break;
1095     }
1096   }
1097 
1098   ++NumReturnExprs;
1099   if (!RV || RV->isEvaluatable(getContext()))
1100     ++NumSimpleReturnExprs;
1101 
1102   cleanupScope.ForceCleanup();
1103   EmitBranchThroughCleanup(ReturnBlock);
1104 }
1105 
1106 void CodeGenFunction::EmitDeclStmt(const DeclStmt &S) {
1107   // As long as debug info is modeled with instructions, we have to ensure we
1108   // have a place to insert here and write the stop point here.
1109   if (HaveInsertPoint())
1110     EmitStopPoint(&S);
1111 
1112   for (const auto *I : S.decls())
1113     EmitDecl(*I);
1114 }
1115 
1116 void CodeGenFunction::EmitBreakStmt(const BreakStmt &S) {
1117   assert(!BreakContinueStack.empty() && "break stmt not in a loop or switch!");
1118 
1119   // If this code is reachable then emit a stop point (if generating
1120   // debug info). We have to do this ourselves because we are on the
1121   // "simple" statement path.
1122   if (HaveInsertPoint())
1123     EmitStopPoint(&S);
1124 
1125   EmitBranchThroughCleanup(BreakContinueStack.back().BreakBlock);
1126 }
1127 
1128 void CodeGenFunction::EmitContinueStmt(const ContinueStmt &S) {
1129   assert(!BreakContinueStack.empty() && "continue stmt not in a loop!");
1130 
1131   // If this code is reachable then emit a stop point (if generating
1132   // debug info). We have to do this ourselves because we are on the
1133   // "simple" statement path.
1134   if (HaveInsertPoint())
1135     EmitStopPoint(&S);
1136 
1137   EmitBranchThroughCleanup(BreakContinueStack.back().ContinueBlock);
1138 }
1139 
1140 /// EmitCaseStmtRange - If case statement range is not too big then
1141 /// add multiple cases to switch instruction, one for each value within
1142 /// the range. If range is too big then emit "if" condition check.
1143 void CodeGenFunction::EmitCaseStmtRange(const CaseStmt &S) {
1144   assert(S.getRHS() && "Expected RHS value in CaseStmt");
1145 
1146   llvm::APSInt LHS = S.getLHS()->EvaluateKnownConstInt(getContext());
1147   llvm::APSInt RHS = S.getRHS()->EvaluateKnownConstInt(getContext());
1148 
1149   // Emit the code for this case. We do this first to make sure it is
1150   // properly chained from our predecessor before generating the
1151   // switch machinery to enter this block.
1152   llvm::BasicBlock *CaseDest = createBasicBlock("sw.bb");
1153   EmitBlockWithFallThrough(CaseDest, &S);
1154   EmitStmt(S.getSubStmt());
1155 
1156   // If range is empty, do nothing.
1157   if (LHS.isSigned() ? RHS.slt(LHS) : RHS.ult(LHS))
1158     return;
1159 
1160   llvm::APInt Range = RHS - LHS;
1161   // FIXME: parameters such as this should not be hardcoded.
1162   if (Range.ult(llvm::APInt(Range.getBitWidth(), 64))) {
1163     // Range is small enough to add multiple switch instruction cases.
1164     uint64_t Total = getProfileCount(&S);
1165     unsigned NCases = Range.getZExtValue() + 1;
1166     // We only have one region counter for the entire set of cases here, so we
1167     // need to divide the weights evenly between the generated cases, ensuring
1168     // that the total weight is preserved. E.g., a weight of 5 over three cases
1169     // will be distributed as weights of 2, 2, and 1.
1170     uint64_t Weight = Total / NCases, Rem = Total % NCases;
1171     for (unsigned I = 0; I != NCases; ++I) {
1172       if (SwitchWeights)
1173         SwitchWeights->push_back(Weight + (Rem ? 1 : 0));
1174       if (Rem)
1175         Rem--;
1176       SwitchInsn->addCase(Builder.getInt(LHS), CaseDest);
1177       ++LHS;
1178     }
1179     return;
1180   }
1181 
1182   // The range is too big. Emit "if" condition into a new block,
1183   // making sure to save and restore the current insertion point.
1184   llvm::BasicBlock *RestoreBB = Builder.GetInsertBlock();
1185 
1186   // Push this test onto the chain of range checks (which terminates
1187   // in the default basic block). The switch's default will be changed
1188   // to the top of this chain after switch emission is complete.
1189   llvm::BasicBlock *FalseDest = CaseRangeBlock;
1190   CaseRangeBlock = createBasicBlock("sw.caserange");
1191 
1192   CurFn->getBasicBlockList().push_back(CaseRangeBlock);
1193   Builder.SetInsertPoint(CaseRangeBlock);
1194 
1195   // Emit range check.
1196   llvm::Value *Diff =
1197     Builder.CreateSub(SwitchInsn->getCondition(), Builder.getInt(LHS));
1198   llvm::Value *Cond =
1199     Builder.CreateICmpULE(Diff, Builder.getInt(Range), "inbounds");
1200 
1201   llvm::MDNode *Weights = nullptr;
1202   if (SwitchWeights) {
1203     uint64_t ThisCount = getProfileCount(&S);
1204     uint64_t DefaultCount = (*SwitchWeights)[0];
1205     Weights = createProfileWeights(ThisCount, DefaultCount);
1206 
1207     // Since we're chaining the switch default through each large case range, we
1208     // need to update the weight for the default, ie, the first case, to include
1209     // this case.
1210     (*SwitchWeights)[0] += ThisCount;
1211   }
1212   Builder.CreateCondBr(Cond, CaseDest, FalseDest, Weights);
1213 
1214   // Restore the appropriate insertion point.
1215   if (RestoreBB)
1216     Builder.SetInsertPoint(RestoreBB);
1217   else
1218     Builder.ClearInsertionPoint();
1219 }
1220 
1221 void CodeGenFunction::EmitCaseStmt(const CaseStmt &S) {
1222   // If there is no enclosing switch instance that we're aware of, then this
1223   // case statement and its block can be elided.  This situation only happens
1224   // when we've constant-folded the switch, are emitting the constant case,
1225   // and part of the constant case includes another case statement.  For
1226   // instance: switch (4) { case 4: do { case 5: } while (1); }
1227   if (!SwitchInsn) {
1228     EmitStmt(S.getSubStmt());
1229     return;
1230   }
1231 
1232   // Handle case ranges.
1233   if (S.getRHS()) {
1234     EmitCaseStmtRange(S);
1235     return;
1236   }
1237 
1238   llvm::ConstantInt *CaseVal =
1239     Builder.getInt(S.getLHS()->EvaluateKnownConstInt(getContext()));
1240 
1241   // If the body of the case is just a 'break', try to not emit an empty block.
1242   // If we're profiling or we're not optimizing, leave the block in for better
1243   // debug and coverage analysis.
1244   if (!CGM.getCodeGenOpts().hasProfileClangInstr() &&
1245       CGM.getCodeGenOpts().OptimizationLevel > 0 &&
1246       isa<BreakStmt>(S.getSubStmt())) {
1247     JumpDest Block = BreakContinueStack.back().BreakBlock;
1248 
1249     // Only do this optimization if there are no cleanups that need emitting.
1250     if (isObviouslyBranchWithoutCleanups(Block)) {
1251       if (SwitchWeights)
1252         SwitchWeights->push_back(getProfileCount(&S));
1253       SwitchInsn->addCase(CaseVal, Block.getBlock());
1254 
1255       // If there was a fallthrough into this case, make sure to redirect it to
1256       // the end of the switch as well.
1257       if (Builder.GetInsertBlock()) {
1258         Builder.CreateBr(Block.getBlock());
1259         Builder.ClearInsertionPoint();
1260       }
1261       return;
1262     }
1263   }
1264 
1265   llvm::BasicBlock *CaseDest = createBasicBlock("sw.bb");
1266   EmitBlockWithFallThrough(CaseDest, &S);
1267   if (SwitchWeights)
1268     SwitchWeights->push_back(getProfileCount(&S));
1269   SwitchInsn->addCase(CaseVal, CaseDest);
1270 
1271   // Recursively emitting the statement is acceptable, but is not wonderful for
1272   // code where we have many case statements nested together, i.e.:
1273   //  case 1:
1274   //    case 2:
1275   //      case 3: etc.
1276   // Handling this recursively will create a new block for each case statement
1277   // that falls through to the next case which is IR intensive.  It also causes
1278   // deep recursion which can run into stack depth limitations.  Handle
1279   // sequential non-range case statements specially.
1280   const CaseStmt *CurCase = &S;
1281   const CaseStmt *NextCase = dyn_cast<CaseStmt>(S.getSubStmt());
1282 
1283   // Otherwise, iteratively add consecutive cases to this switch stmt.
1284   while (NextCase && NextCase->getRHS() == nullptr) {
1285     CurCase = NextCase;
1286     llvm::ConstantInt *CaseVal =
1287       Builder.getInt(CurCase->getLHS()->EvaluateKnownConstInt(getContext()));
1288 
1289     if (SwitchWeights)
1290       SwitchWeights->push_back(getProfileCount(NextCase));
1291     if (CGM.getCodeGenOpts().hasProfileClangInstr()) {
1292       CaseDest = createBasicBlock("sw.bb");
1293       EmitBlockWithFallThrough(CaseDest, &S);
1294     }
1295 
1296     SwitchInsn->addCase(CaseVal, CaseDest);
1297     NextCase = dyn_cast<CaseStmt>(CurCase->getSubStmt());
1298   }
1299 
1300   // Normal default recursion for non-cases.
1301   EmitStmt(CurCase->getSubStmt());
1302 }
1303 
1304 void CodeGenFunction::EmitDefaultStmt(const DefaultStmt &S) {
1305   // If there is no enclosing switch instance that we're aware of, then this
1306   // default statement can be elided. This situation only happens when we've
1307   // constant-folded the switch.
1308   if (!SwitchInsn) {
1309     EmitStmt(S.getSubStmt());
1310     return;
1311   }
1312 
1313   llvm::BasicBlock *DefaultBlock = SwitchInsn->getDefaultDest();
1314   assert(DefaultBlock->empty() &&
1315          "EmitDefaultStmt: Default block already defined?");
1316 
1317   EmitBlockWithFallThrough(DefaultBlock, &S);
1318 
1319   EmitStmt(S.getSubStmt());
1320 }
1321 
1322 /// CollectStatementsForCase - Given the body of a 'switch' statement and a
1323 /// constant value that is being switched on, see if we can dead code eliminate
1324 /// the body of the switch to a simple series of statements to emit.  Basically,
1325 /// on a switch (5) we want to find these statements:
1326 ///    case 5:
1327 ///      printf(...);    <--
1328 ///      ++i;            <--
1329 ///      break;
1330 ///
1331 /// and add them to the ResultStmts vector.  If it is unsafe to do this
1332 /// transformation (for example, one of the elided statements contains a label
1333 /// that might be jumped to), return CSFC_Failure.  If we handled it and 'S'
1334 /// should include statements after it (e.g. the printf() line is a substmt of
1335 /// the case) then return CSFC_FallThrough.  If we handled it and found a break
1336 /// statement, then return CSFC_Success.
1337 ///
1338 /// If Case is non-null, then we are looking for the specified case, checking
1339 /// that nothing we jump over contains labels.  If Case is null, then we found
1340 /// the case and are looking for the break.
1341 ///
1342 /// If the recursive walk actually finds our Case, then we set FoundCase to
1343 /// true.
1344 ///
1345 enum CSFC_Result { CSFC_Failure, CSFC_FallThrough, CSFC_Success };
1346 static CSFC_Result CollectStatementsForCase(const Stmt *S,
1347                                             const SwitchCase *Case,
1348                                             bool &FoundCase,
1349                               SmallVectorImpl<const Stmt*> &ResultStmts) {
1350   // If this is a null statement, just succeed.
1351   if (!S)
1352     return Case ? CSFC_Success : CSFC_FallThrough;
1353 
1354   // If this is the switchcase (case 4: or default) that we're looking for, then
1355   // we're in business.  Just add the substatement.
1356   if (const SwitchCase *SC = dyn_cast<SwitchCase>(S)) {
1357     if (S == Case) {
1358       FoundCase = true;
1359       return CollectStatementsForCase(SC->getSubStmt(), nullptr, FoundCase,
1360                                       ResultStmts);
1361     }
1362 
1363     // Otherwise, this is some other case or default statement, just ignore it.
1364     return CollectStatementsForCase(SC->getSubStmt(), Case, FoundCase,
1365                                     ResultStmts);
1366   }
1367 
1368   // If we are in the live part of the code and we found our break statement,
1369   // return a success!
1370   if (!Case && isa<BreakStmt>(S))
1371     return CSFC_Success;
1372 
1373   // If this is a switch statement, then it might contain the SwitchCase, the
1374   // break, or neither.
1375   if (const CompoundStmt *CS = dyn_cast<CompoundStmt>(S)) {
1376     // Handle this as two cases: we might be looking for the SwitchCase (if so
1377     // the skipped statements must be skippable) or we might already have it.
1378     CompoundStmt::const_body_iterator I = CS->body_begin(), E = CS->body_end();
1379     bool StartedInLiveCode = FoundCase;
1380     unsigned StartSize = ResultStmts.size();
1381 
1382     // If we've not found the case yet, scan through looking for it.
1383     if (Case) {
1384       // Keep track of whether we see a skipped declaration.  The code could be
1385       // using the declaration even if it is skipped, so we can't optimize out
1386       // the decl if the kept statements might refer to it.
1387       bool HadSkippedDecl = false;
1388 
1389       // If we're looking for the case, just see if we can skip each of the
1390       // substatements.
1391       for (; Case && I != E; ++I) {
1392         HadSkippedDecl |= CodeGenFunction::mightAddDeclToScope(*I);
1393 
1394         switch (CollectStatementsForCase(*I, Case, FoundCase, ResultStmts)) {
1395         case CSFC_Failure: return CSFC_Failure;
1396         case CSFC_Success:
1397           // A successful result means that either 1) that the statement doesn't
1398           // have the case and is skippable, or 2) does contain the case value
1399           // and also contains the break to exit the switch.  In the later case,
1400           // we just verify the rest of the statements are elidable.
1401           if (FoundCase) {
1402             // If we found the case and skipped declarations, we can't do the
1403             // optimization.
1404             if (HadSkippedDecl)
1405               return CSFC_Failure;
1406 
1407             for (++I; I != E; ++I)
1408               if (CodeGenFunction::ContainsLabel(*I, true))
1409                 return CSFC_Failure;
1410             return CSFC_Success;
1411           }
1412           break;
1413         case CSFC_FallThrough:
1414           // If we have a fallthrough condition, then we must have found the
1415           // case started to include statements.  Consider the rest of the
1416           // statements in the compound statement as candidates for inclusion.
1417           assert(FoundCase && "Didn't find case but returned fallthrough?");
1418           // We recursively found Case, so we're not looking for it anymore.
1419           Case = nullptr;
1420 
1421           // If we found the case and skipped declarations, we can't do the
1422           // optimization.
1423           if (HadSkippedDecl)
1424             return CSFC_Failure;
1425           break;
1426         }
1427       }
1428 
1429       if (!FoundCase)
1430         return CSFC_Success;
1431 
1432       assert(!HadSkippedDecl && "fallthrough after skipping decl");
1433     }
1434 
1435     // If we have statements in our range, then we know that the statements are
1436     // live and need to be added to the set of statements we're tracking.
1437     bool AnyDecls = false;
1438     for (; I != E; ++I) {
1439       AnyDecls |= CodeGenFunction::mightAddDeclToScope(*I);
1440 
1441       switch (CollectStatementsForCase(*I, nullptr, FoundCase, ResultStmts)) {
1442       case CSFC_Failure: return CSFC_Failure;
1443       case CSFC_FallThrough:
1444         // A fallthrough result means that the statement was simple and just
1445         // included in ResultStmt, keep adding them afterwards.
1446         break;
1447       case CSFC_Success:
1448         // A successful result means that we found the break statement and
1449         // stopped statement inclusion.  We just ensure that any leftover stmts
1450         // are skippable and return success ourselves.
1451         for (++I; I != E; ++I)
1452           if (CodeGenFunction::ContainsLabel(*I, true))
1453             return CSFC_Failure;
1454         return CSFC_Success;
1455       }
1456     }
1457 
1458     // If we're about to fall out of a scope without hitting a 'break;', we
1459     // can't perform the optimization if there were any decls in that scope
1460     // (we'd lose their end-of-lifetime).
1461     if (AnyDecls) {
1462       // If the entire compound statement was live, there's one more thing we
1463       // can try before giving up: emit the whole thing as a single statement.
1464       // We can do that unless the statement contains a 'break;'.
1465       // FIXME: Such a break must be at the end of a construct within this one.
1466       // We could emit this by just ignoring the BreakStmts entirely.
1467       if (StartedInLiveCode && !CodeGenFunction::containsBreak(S)) {
1468         ResultStmts.resize(StartSize);
1469         ResultStmts.push_back(S);
1470       } else {
1471         return CSFC_Failure;
1472       }
1473     }
1474 
1475     return CSFC_FallThrough;
1476   }
1477 
1478   // Okay, this is some other statement that we don't handle explicitly, like a
1479   // for statement or increment etc.  If we are skipping over this statement,
1480   // just verify it doesn't have labels, which would make it invalid to elide.
1481   if (Case) {
1482     if (CodeGenFunction::ContainsLabel(S, true))
1483       return CSFC_Failure;
1484     return CSFC_Success;
1485   }
1486 
1487   // Otherwise, we want to include this statement.  Everything is cool with that
1488   // so long as it doesn't contain a break out of the switch we're in.
1489   if (CodeGenFunction::containsBreak(S)) return CSFC_Failure;
1490 
1491   // Otherwise, everything is great.  Include the statement and tell the caller
1492   // that we fall through and include the next statement as well.
1493   ResultStmts.push_back(S);
1494   return CSFC_FallThrough;
1495 }
1496 
1497 /// FindCaseStatementsForValue - Find the case statement being jumped to and
1498 /// then invoke CollectStatementsForCase to find the list of statements to emit
1499 /// for a switch on constant.  See the comment above CollectStatementsForCase
1500 /// for more details.
1501 static bool FindCaseStatementsForValue(const SwitchStmt &S,
1502                                        const llvm::APSInt &ConstantCondValue,
1503                                 SmallVectorImpl<const Stmt*> &ResultStmts,
1504                                        ASTContext &C,
1505                                        const SwitchCase *&ResultCase) {
1506   // First step, find the switch case that is being branched to.  We can do this
1507   // efficiently by scanning the SwitchCase list.
1508   const SwitchCase *Case = S.getSwitchCaseList();
1509   const DefaultStmt *DefaultCase = nullptr;
1510 
1511   for (; Case; Case = Case->getNextSwitchCase()) {
1512     // It's either a default or case.  Just remember the default statement in
1513     // case we're not jumping to any numbered cases.
1514     if (const DefaultStmt *DS = dyn_cast<DefaultStmt>(Case)) {
1515       DefaultCase = DS;
1516       continue;
1517     }
1518 
1519     // Check to see if this case is the one we're looking for.
1520     const CaseStmt *CS = cast<CaseStmt>(Case);
1521     // Don't handle case ranges yet.
1522     if (CS->getRHS()) return false;
1523 
1524     // If we found our case, remember it as 'case'.
1525     if (CS->getLHS()->EvaluateKnownConstInt(C) == ConstantCondValue)
1526       break;
1527   }
1528 
1529   // If we didn't find a matching case, we use a default if it exists, or we
1530   // elide the whole switch body!
1531   if (!Case) {
1532     // It is safe to elide the body of the switch if it doesn't contain labels
1533     // etc.  If it is safe, return successfully with an empty ResultStmts list.
1534     if (!DefaultCase)
1535       return !CodeGenFunction::ContainsLabel(&S);
1536     Case = DefaultCase;
1537   }
1538 
1539   // Ok, we know which case is being jumped to, try to collect all the
1540   // statements that follow it.  This can fail for a variety of reasons.  Also,
1541   // check to see that the recursive walk actually found our case statement.
1542   // Insane cases like this can fail to find it in the recursive walk since we
1543   // don't handle every stmt kind:
1544   // switch (4) {
1545   //   while (1) {
1546   //     case 4: ...
1547   bool FoundCase = false;
1548   ResultCase = Case;
1549   return CollectStatementsForCase(S.getBody(), Case, FoundCase,
1550                                   ResultStmts) != CSFC_Failure &&
1551          FoundCase;
1552 }
1553 
1554 void CodeGenFunction::EmitSwitchStmt(const SwitchStmt &S) {
1555   // Handle nested switch statements.
1556   llvm::SwitchInst *SavedSwitchInsn = SwitchInsn;
1557   SmallVector<uint64_t, 16> *SavedSwitchWeights = SwitchWeights;
1558   llvm::BasicBlock *SavedCRBlock = CaseRangeBlock;
1559 
1560   // See if we can constant fold the condition of the switch and therefore only
1561   // emit the live case statement (if any) of the switch.
1562   llvm::APSInt ConstantCondValue;
1563   if (ConstantFoldsToSimpleInteger(S.getCond(), ConstantCondValue)) {
1564     SmallVector<const Stmt*, 4> CaseStmts;
1565     const SwitchCase *Case = nullptr;
1566     if (FindCaseStatementsForValue(S, ConstantCondValue, CaseStmts,
1567                                    getContext(), Case)) {
1568       if (Case)
1569         incrementProfileCounter(Case);
1570       RunCleanupsScope ExecutedScope(*this);
1571 
1572       if (S.getInit())
1573         EmitStmt(S.getInit());
1574 
1575       // Emit the condition variable if needed inside the entire cleanup scope
1576       // used by this special case for constant folded switches.
1577       if (S.getConditionVariable())
1578         EmitDecl(*S.getConditionVariable());
1579 
1580       // At this point, we are no longer "within" a switch instance, so
1581       // we can temporarily enforce this to ensure that any embedded case
1582       // statements are not emitted.
1583       SwitchInsn = nullptr;
1584 
1585       // Okay, we can dead code eliminate everything except this case.  Emit the
1586       // specified series of statements and we're good.
1587       for (unsigned i = 0, e = CaseStmts.size(); i != e; ++i)
1588         EmitStmt(CaseStmts[i]);
1589       incrementProfileCounter(&S);
1590 
1591       // Now we want to restore the saved switch instance so that nested
1592       // switches continue to function properly
1593       SwitchInsn = SavedSwitchInsn;
1594 
1595       return;
1596     }
1597   }
1598 
1599   JumpDest SwitchExit = getJumpDestInCurrentScope("sw.epilog");
1600 
1601   RunCleanupsScope ConditionScope(*this);
1602 
1603   if (S.getInit())
1604     EmitStmt(S.getInit());
1605 
1606   if (S.getConditionVariable())
1607     EmitDecl(*S.getConditionVariable());
1608   llvm::Value *CondV = EmitScalarExpr(S.getCond());
1609 
1610   // Create basic block to hold stuff that comes after switch
1611   // statement. We also need to create a default block now so that
1612   // explicit case ranges tests can have a place to jump to on
1613   // failure.
1614   llvm::BasicBlock *DefaultBlock = createBasicBlock("sw.default");
1615   SwitchInsn = Builder.CreateSwitch(CondV, DefaultBlock);
1616   if (PGO.haveRegionCounts()) {
1617     // Walk the SwitchCase list to find how many there are.
1618     uint64_t DefaultCount = 0;
1619     unsigned NumCases = 0;
1620     for (const SwitchCase *Case = S.getSwitchCaseList();
1621          Case;
1622          Case = Case->getNextSwitchCase()) {
1623       if (isa<DefaultStmt>(Case))
1624         DefaultCount = getProfileCount(Case);
1625       NumCases += 1;
1626     }
1627     SwitchWeights = new SmallVector<uint64_t, 16>();
1628     SwitchWeights->reserve(NumCases);
1629     // The default needs to be first. We store the edge count, so we already
1630     // know the right weight.
1631     SwitchWeights->push_back(DefaultCount);
1632   }
1633   CaseRangeBlock = DefaultBlock;
1634 
1635   // Clear the insertion point to indicate we are in unreachable code.
1636   Builder.ClearInsertionPoint();
1637 
1638   // All break statements jump to NextBlock. If BreakContinueStack is non-empty
1639   // then reuse last ContinueBlock.
1640   JumpDest OuterContinue;
1641   if (!BreakContinueStack.empty())
1642     OuterContinue = BreakContinueStack.back().ContinueBlock;
1643 
1644   BreakContinueStack.push_back(BreakContinue(SwitchExit, OuterContinue));
1645 
1646   // Emit switch body.
1647   EmitStmt(S.getBody());
1648 
1649   BreakContinueStack.pop_back();
1650 
1651   // Update the default block in case explicit case range tests have
1652   // been chained on top.
1653   SwitchInsn->setDefaultDest(CaseRangeBlock);
1654 
1655   // If a default was never emitted:
1656   if (!DefaultBlock->getParent()) {
1657     // If we have cleanups, emit the default block so that there's a
1658     // place to jump through the cleanups from.
1659     if (ConditionScope.requiresCleanups()) {
1660       EmitBlock(DefaultBlock);
1661 
1662     // Otherwise, just forward the default block to the switch end.
1663     } else {
1664       DefaultBlock->replaceAllUsesWith(SwitchExit.getBlock());
1665       delete DefaultBlock;
1666     }
1667   }
1668 
1669   ConditionScope.ForceCleanup();
1670 
1671   // Emit continuation.
1672   EmitBlock(SwitchExit.getBlock(), true);
1673   incrementProfileCounter(&S);
1674 
1675   // If the switch has a condition wrapped by __builtin_unpredictable,
1676   // create metadata that specifies that the switch is unpredictable.
1677   // Don't bother if not optimizing because that metadata would not be used.
1678   auto *Call = dyn_cast<CallExpr>(S.getCond());
1679   if (Call && CGM.getCodeGenOpts().OptimizationLevel != 0) {
1680     auto *FD = dyn_cast_or_null<FunctionDecl>(Call->getCalleeDecl());
1681     if (FD && FD->getBuiltinID() == Builtin::BI__builtin_unpredictable) {
1682       llvm::MDBuilder MDHelper(getLLVMContext());
1683       SwitchInsn->setMetadata(llvm::LLVMContext::MD_unpredictable,
1684                               MDHelper.createUnpredictable());
1685     }
1686   }
1687 
1688   if (SwitchWeights) {
1689     assert(SwitchWeights->size() == 1 + SwitchInsn->getNumCases() &&
1690            "switch weights do not match switch cases");
1691     // If there's only one jump destination there's no sense weighting it.
1692     if (SwitchWeights->size() > 1)
1693       SwitchInsn->setMetadata(llvm::LLVMContext::MD_prof,
1694                               createProfileWeights(*SwitchWeights));
1695     delete SwitchWeights;
1696   }
1697   SwitchInsn = SavedSwitchInsn;
1698   SwitchWeights = SavedSwitchWeights;
1699   CaseRangeBlock = SavedCRBlock;
1700 }
1701 
1702 static std::string
1703 SimplifyConstraint(const char *Constraint, const TargetInfo &Target,
1704                  SmallVectorImpl<TargetInfo::ConstraintInfo> *OutCons=nullptr) {
1705   std::string Result;
1706 
1707   while (*Constraint) {
1708     switch (*Constraint) {
1709     default:
1710       Result += Target.convertConstraint(Constraint);
1711       break;
1712     // Ignore these
1713     case '*':
1714     case '?':
1715     case '!':
1716     case '=': // Will see this and the following in mult-alt constraints.
1717     case '+':
1718       break;
1719     case '#': // Ignore the rest of the constraint alternative.
1720       while (Constraint[1] && Constraint[1] != ',')
1721         Constraint++;
1722       break;
1723     case '&':
1724     case '%':
1725       Result += *Constraint;
1726       while (Constraint[1] && Constraint[1] == *Constraint)
1727         Constraint++;
1728       break;
1729     case ',':
1730       Result += "|";
1731       break;
1732     case 'g':
1733       Result += "imr";
1734       break;
1735     case '[': {
1736       assert(OutCons &&
1737              "Must pass output names to constraints with a symbolic name");
1738       unsigned Index;
1739       bool result = Target.resolveSymbolicName(Constraint, *OutCons, Index);
1740       assert(result && "Could not resolve symbolic name"); (void)result;
1741       Result += llvm::utostr(Index);
1742       break;
1743     }
1744     }
1745 
1746     Constraint++;
1747   }
1748 
1749   return Result;
1750 }
1751 
1752 /// AddVariableConstraints - Look at AsmExpr and if it is a variable declared
1753 /// as using a particular register add that as a constraint that will be used
1754 /// in this asm stmt.
1755 static std::string
1756 AddVariableConstraints(const std::string &Constraint, const Expr &AsmExpr,
1757                        const TargetInfo &Target, CodeGenModule &CGM,
1758                        const AsmStmt &Stmt, const bool EarlyClobber) {
1759   const DeclRefExpr *AsmDeclRef = dyn_cast<DeclRefExpr>(&AsmExpr);
1760   if (!AsmDeclRef)
1761     return Constraint;
1762   const ValueDecl &Value = *AsmDeclRef->getDecl();
1763   const VarDecl *Variable = dyn_cast<VarDecl>(&Value);
1764   if (!Variable)
1765     return Constraint;
1766   if (Variable->getStorageClass() != SC_Register)
1767     return Constraint;
1768   AsmLabelAttr *Attr = Variable->getAttr<AsmLabelAttr>();
1769   if (!Attr)
1770     return Constraint;
1771   StringRef Register = Attr->getLabel();
1772   assert(Target.isValidGCCRegisterName(Register));
1773   // We're using validateOutputConstraint here because we only care if
1774   // this is a register constraint.
1775   TargetInfo::ConstraintInfo Info(Constraint, "");
1776   if (Target.validateOutputConstraint(Info) &&
1777       !Info.allowsRegister()) {
1778     CGM.ErrorUnsupported(&Stmt, "__asm__");
1779     return Constraint;
1780   }
1781   // Canonicalize the register here before returning it.
1782   Register = Target.getNormalizedGCCRegisterName(Register);
1783   return (EarlyClobber ? "&{" : "{") + Register.str() + "}";
1784 }
1785 
1786 llvm::Value*
1787 CodeGenFunction::EmitAsmInputLValue(const TargetInfo::ConstraintInfo &Info,
1788                                     LValue InputValue, QualType InputType,
1789                                     std::string &ConstraintStr,
1790                                     SourceLocation Loc) {
1791   llvm::Value *Arg;
1792   if (Info.allowsRegister() || !Info.allowsMemory()) {
1793     if (CodeGenFunction::hasScalarEvaluationKind(InputType)) {
1794       Arg = EmitLoadOfLValue(InputValue, Loc).getScalarVal();
1795     } else {
1796       llvm::Type *Ty = ConvertType(InputType);
1797       uint64_t Size = CGM.getDataLayout().getTypeSizeInBits(Ty);
1798       if (Size <= 64 && llvm::isPowerOf2_64(Size)) {
1799         Ty = llvm::IntegerType::get(getLLVMContext(), Size);
1800         Ty = llvm::PointerType::getUnqual(Ty);
1801 
1802         Arg = Builder.CreateLoad(Builder.CreateBitCast(InputValue.getAddress(),
1803                                                        Ty));
1804       } else {
1805         Arg = InputValue.getPointer();
1806         ConstraintStr += '*';
1807       }
1808     }
1809   } else {
1810     Arg = InputValue.getPointer();
1811     ConstraintStr += '*';
1812   }
1813 
1814   return Arg;
1815 }
1816 
1817 llvm::Value* CodeGenFunction::EmitAsmInput(
1818                                          const TargetInfo::ConstraintInfo &Info,
1819                                            const Expr *InputExpr,
1820                                            std::string &ConstraintStr) {
1821   // If this can't be a register or memory, i.e., has to be a constant
1822   // (immediate or symbolic), try to emit it as such.
1823   if (!Info.allowsRegister() && !Info.allowsMemory()) {
1824     Expr::EvalResult Result;
1825     if (InputExpr->EvaluateAsInt(Result, getContext()))
1826       return llvm::ConstantInt::get(getLLVMContext(), Result.Val.getInt());
1827     assert(!Info.requiresImmediateConstant() &&
1828            "Required-immediate inlineasm arg isn't constant?");
1829   }
1830 
1831   if (Info.allowsRegister() || !Info.allowsMemory())
1832     if (CodeGenFunction::hasScalarEvaluationKind(InputExpr->getType()))
1833       return EmitScalarExpr(InputExpr);
1834   if (InputExpr->getStmtClass() == Expr::CXXThisExprClass)
1835     return EmitScalarExpr(InputExpr);
1836   InputExpr = InputExpr->IgnoreParenNoopCasts(getContext());
1837   LValue Dest = EmitLValue(InputExpr);
1838   return EmitAsmInputLValue(Info, Dest, InputExpr->getType(), ConstraintStr,
1839                             InputExpr->getExprLoc());
1840 }
1841 
1842 /// getAsmSrcLocInfo - Return the !srcloc metadata node to attach to an inline
1843 /// asm call instruction.  The !srcloc MDNode contains a list of constant
1844 /// integers which are the source locations of the start of each line in the
1845 /// asm.
1846 static llvm::MDNode *getAsmSrcLocInfo(const StringLiteral *Str,
1847                                       CodeGenFunction &CGF) {
1848   SmallVector<llvm::Metadata *, 8> Locs;
1849   // Add the location of the first line to the MDNode.
1850   Locs.push_back(llvm::ConstantAsMetadata::get(llvm::ConstantInt::get(
1851       CGF.Int32Ty, Str->getBeginLoc().getRawEncoding())));
1852   StringRef StrVal = Str->getString();
1853   if (!StrVal.empty()) {
1854     const SourceManager &SM = CGF.CGM.getContext().getSourceManager();
1855     const LangOptions &LangOpts = CGF.CGM.getLangOpts();
1856     unsigned StartToken = 0;
1857     unsigned ByteOffset = 0;
1858 
1859     // Add the location of the start of each subsequent line of the asm to the
1860     // MDNode.
1861     for (unsigned i = 0, e = StrVal.size() - 1; i != e; ++i) {
1862       if (StrVal[i] != '\n') continue;
1863       SourceLocation LineLoc = Str->getLocationOfByte(
1864           i + 1, SM, LangOpts, CGF.getTarget(), &StartToken, &ByteOffset);
1865       Locs.push_back(llvm::ConstantAsMetadata::get(
1866           llvm::ConstantInt::get(CGF.Int32Ty, LineLoc.getRawEncoding())));
1867     }
1868   }
1869 
1870   return llvm::MDNode::get(CGF.getLLVMContext(), Locs);
1871 }
1872 
1873 void CodeGenFunction::EmitAsmStmt(const AsmStmt &S) {
1874   // Assemble the final asm string.
1875   std::string AsmString = S.generateAsmString(getContext());
1876 
1877   // Get all the output and input constraints together.
1878   SmallVector<TargetInfo::ConstraintInfo, 4> OutputConstraintInfos;
1879   SmallVector<TargetInfo::ConstraintInfo, 4> InputConstraintInfos;
1880 
1881   for (unsigned i = 0, e = S.getNumOutputs(); i != e; i++) {
1882     StringRef Name;
1883     if (const GCCAsmStmt *GAS = dyn_cast<GCCAsmStmt>(&S))
1884       Name = GAS->getOutputName(i);
1885     TargetInfo::ConstraintInfo Info(S.getOutputConstraint(i), Name);
1886     bool IsValid = getTarget().validateOutputConstraint(Info); (void)IsValid;
1887     assert(IsValid && "Failed to parse output constraint");
1888     OutputConstraintInfos.push_back(Info);
1889   }
1890 
1891   for (unsigned i = 0, e = S.getNumInputs(); i != e; i++) {
1892     StringRef Name;
1893     if (const GCCAsmStmt *GAS = dyn_cast<GCCAsmStmt>(&S))
1894       Name = GAS->getInputName(i);
1895     TargetInfo::ConstraintInfo Info(S.getInputConstraint(i), Name);
1896     bool IsValid =
1897       getTarget().validateInputConstraint(OutputConstraintInfos, Info);
1898     assert(IsValid && "Failed to parse input constraint"); (void)IsValid;
1899     InputConstraintInfos.push_back(Info);
1900   }
1901 
1902   std::string Constraints;
1903 
1904   std::vector<LValue> ResultRegDests;
1905   std::vector<QualType> ResultRegQualTys;
1906   std::vector<llvm::Type *> ResultRegTypes;
1907   std::vector<llvm::Type *> ResultTruncRegTypes;
1908   std::vector<llvm::Type *> ArgTypes;
1909   std::vector<llvm::Value*> Args;
1910 
1911   // Keep track of inout constraints.
1912   std::string InOutConstraints;
1913   std::vector<llvm::Value*> InOutArgs;
1914   std::vector<llvm::Type*> InOutArgTypes;
1915 
1916   // An inline asm can be marked readonly if it meets the following conditions:
1917   //  - it doesn't have any sideeffects
1918   //  - it doesn't clobber memory
1919   //  - it doesn't return a value by-reference
1920   // It can be marked readnone if it doesn't have any input memory constraints
1921   // in addition to meeting the conditions listed above.
1922   bool ReadOnly = true, ReadNone = true;
1923 
1924   for (unsigned i = 0, e = S.getNumOutputs(); i != e; i++) {
1925     TargetInfo::ConstraintInfo &Info = OutputConstraintInfos[i];
1926 
1927     // Simplify the output constraint.
1928     std::string OutputConstraint(S.getOutputConstraint(i));
1929     OutputConstraint = SimplifyConstraint(OutputConstraint.c_str() + 1,
1930                                           getTarget(), &OutputConstraintInfos);
1931 
1932     const Expr *OutExpr = S.getOutputExpr(i);
1933     OutExpr = OutExpr->IgnoreParenNoopCasts(getContext());
1934 
1935     OutputConstraint = AddVariableConstraints(OutputConstraint, *OutExpr,
1936                                               getTarget(), CGM, S,
1937                                               Info.earlyClobber());
1938 
1939     LValue Dest = EmitLValue(OutExpr);
1940     if (!Constraints.empty())
1941       Constraints += ',';
1942 
1943     // If this is a register output, then make the inline asm return it
1944     // by-value.  If this is a memory result, return the value by-reference.
1945     if (!Info.allowsMemory() && hasScalarEvaluationKind(OutExpr->getType())) {
1946       Constraints += "=" + OutputConstraint;
1947       ResultRegQualTys.push_back(OutExpr->getType());
1948       ResultRegDests.push_back(Dest);
1949       ResultRegTypes.push_back(ConvertTypeForMem(OutExpr->getType()));
1950       ResultTruncRegTypes.push_back(ResultRegTypes.back());
1951 
1952       // If this output is tied to an input, and if the input is larger, then
1953       // we need to set the actual result type of the inline asm node to be the
1954       // same as the input type.
1955       if (Info.hasMatchingInput()) {
1956         unsigned InputNo;
1957         for (InputNo = 0; InputNo != S.getNumInputs(); ++InputNo) {
1958           TargetInfo::ConstraintInfo &Input = InputConstraintInfos[InputNo];
1959           if (Input.hasTiedOperand() && Input.getTiedOperand() == i)
1960             break;
1961         }
1962         assert(InputNo != S.getNumInputs() && "Didn't find matching input!");
1963 
1964         QualType InputTy = S.getInputExpr(InputNo)->getType();
1965         QualType OutputType = OutExpr->getType();
1966 
1967         uint64_t InputSize = getContext().getTypeSize(InputTy);
1968         if (getContext().getTypeSize(OutputType) < InputSize) {
1969           // Form the asm to return the value as a larger integer or fp type.
1970           ResultRegTypes.back() = ConvertType(InputTy);
1971         }
1972       }
1973       if (llvm::Type* AdjTy =
1974             getTargetHooks().adjustInlineAsmType(*this, OutputConstraint,
1975                                                  ResultRegTypes.back()))
1976         ResultRegTypes.back() = AdjTy;
1977       else {
1978         CGM.getDiags().Report(S.getAsmLoc(),
1979                               diag::err_asm_invalid_type_in_input)
1980             << OutExpr->getType() << OutputConstraint;
1981       }
1982 
1983       // Update largest vector width for any vector types.
1984       if (auto *VT = dyn_cast<llvm::VectorType>(ResultRegTypes.back()))
1985         LargestVectorWidth = std::max(LargestVectorWidth,
1986                                       VT->getPrimitiveSizeInBits());
1987     } else {
1988       ArgTypes.push_back(Dest.getAddress().getType());
1989       Args.push_back(Dest.getPointer());
1990       Constraints += "=*";
1991       Constraints += OutputConstraint;
1992       ReadOnly = ReadNone = false;
1993     }
1994 
1995     if (Info.isReadWrite()) {
1996       InOutConstraints += ',';
1997 
1998       const Expr *InputExpr = S.getOutputExpr(i);
1999       llvm::Value *Arg = EmitAsmInputLValue(Info, Dest, InputExpr->getType(),
2000                                             InOutConstraints,
2001                                             InputExpr->getExprLoc());
2002 
2003       if (llvm::Type* AdjTy =
2004           getTargetHooks().adjustInlineAsmType(*this, OutputConstraint,
2005                                                Arg->getType()))
2006         Arg = Builder.CreateBitCast(Arg, AdjTy);
2007 
2008       // Update largest vector width for any vector types.
2009       if (auto *VT = dyn_cast<llvm::VectorType>(Arg->getType()))
2010         LargestVectorWidth = std::max(LargestVectorWidth,
2011                                       VT->getPrimitiveSizeInBits());
2012       if (Info.allowsRegister())
2013         InOutConstraints += llvm::utostr(i);
2014       else
2015         InOutConstraints += OutputConstraint;
2016 
2017       InOutArgTypes.push_back(Arg->getType());
2018       InOutArgs.push_back(Arg);
2019     }
2020   }
2021 
2022   // If this is a Microsoft-style asm blob, store the return registers (EAX:EDX)
2023   // to the return value slot. Only do this when returning in registers.
2024   if (isa<MSAsmStmt>(&S)) {
2025     const ABIArgInfo &RetAI = CurFnInfo->getReturnInfo();
2026     if (RetAI.isDirect() || RetAI.isExtend()) {
2027       // Make a fake lvalue for the return value slot.
2028       LValue ReturnSlot = MakeAddrLValue(ReturnValue, FnRetTy);
2029       CGM.getTargetCodeGenInfo().addReturnRegisterOutputs(
2030           *this, ReturnSlot, Constraints, ResultRegTypes, ResultTruncRegTypes,
2031           ResultRegDests, AsmString, S.getNumOutputs());
2032       SawAsmBlock = true;
2033     }
2034   }
2035 
2036   for (unsigned i = 0, e = S.getNumInputs(); i != e; i++) {
2037     const Expr *InputExpr = S.getInputExpr(i);
2038 
2039     TargetInfo::ConstraintInfo &Info = InputConstraintInfos[i];
2040 
2041     if (Info.allowsMemory())
2042       ReadNone = false;
2043 
2044     if (!Constraints.empty())
2045       Constraints += ',';
2046 
2047     // Simplify the input constraint.
2048     std::string InputConstraint(S.getInputConstraint(i));
2049     InputConstraint = SimplifyConstraint(InputConstraint.c_str(), getTarget(),
2050                                          &OutputConstraintInfos);
2051 
2052     InputConstraint = AddVariableConstraints(
2053         InputConstraint, *InputExpr->IgnoreParenNoopCasts(getContext()),
2054         getTarget(), CGM, S, false /* No EarlyClobber */);
2055 
2056     llvm::Value *Arg = EmitAsmInput(Info, InputExpr, Constraints);
2057 
2058     // If this input argument is tied to a larger output result, extend the
2059     // input to be the same size as the output.  The LLVM backend wants to see
2060     // the input and output of a matching constraint be the same size.  Note
2061     // that GCC does not define what the top bits are here.  We use zext because
2062     // that is usually cheaper, but LLVM IR should really get an anyext someday.
2063     if (Info.hasTiedOperand()) {
2064       unsigned Output = Info.getTiedOperand();
2065       QualType OutputType = S.getOutputExpr(Output)->getType();
2066       QualType InputTy = InputExpr->getType();
2067 
2068       if (getContext().getTypeSize(OutputType) >
2069           getContext().getTypeSize(InputTy)) {
2070         // Use ptrtoint as appropriate so that we can do our extension.
2071         if (isa<llvm::PointerType>(Arg->getType()))
2072           Arg = Builder.CreatePtrToInt(Arg, IntPtrTy);
2073         llvm::Type *OutputTy = ConvertType(OutputType);
2074         if (isa<llvm::IntegerType>(OutputTy))
2075           Arg = Builder.CreateZExt(Arg, OutputTy);
2076         else if (isa<llvm::PointerType>(OutputTy))
2077           Arg = Builder.CreateZExt(Arg, IntPtrTy);
2078         else {
2079           assert(OutputTy->isFloatingPointTy() && "Unexpected output type");
2080           Arg = Builder.CreateFPExt(Arg, OutputTy);
2081         }
2082       }
2083     }
2084     if (llvm::Type* AdjTy =
2085               getTargetHooks().adjustInlineAsmType(*this, InputConstraint,
2086                                                    Arg->getType()))
2087       Arg = Builder.CreateBitCast(Arg, AdjTy);
2088     else
2089       CGM.getDiags().Report(S.getAsmLoc(), diag::err_asm_invalid_type_in_input)
2090           << InputExpr->getType() << InputConstraint;
2091 
2092     // Update largest vector width for any vector types.
2093     if (auto *VT = dyn_cast<llvm::VectorType>(Arg->getType()))
2094       LargestVectorWidth = std::max(LargestVectorWidth,
2095                                     VT->getPrimitiveSizeInBits());
2096 
2097     ArgTypes.push_back(Arg->getType());
2098     Args.push_back(Arg);
2099     Constraints += InputConstraint;
2100   }
2101 
2102   // Append the "input" part of inout constraints last.
2103   for (unsigned i = 0, e = InOutArgs.size(); i != e; i++) {
2104     ArgTypes.push_back(InOutArgTypes[i]);
2105     Args.push_back(InOutArgs[i]);
2106   }
2107   Constraints += InOutConstraints;
2108 
2109   // Clobbers
2110   for (unsigned i = 0, e = S.getNumClobbers(); i != e; i++) {
2111     StringRef Clobber = S.getClobber(i);
2112 
2113     if (Clobber == "memory")
2114       ReadOnly = ReadNone = false;
2115     else if (Clobber != "cc")
2116       Clobber = getTarget().getNormalizedGCCRegisterName(Clobber);
2117 
2118     if (!Constraints.empty())
2119       Constraints += ',';
2120 
2121     Constraints += "~{";
2122     Constraints += Clobber;
2123     Constraints += '}';
2124   }
2125 
2126   // Add machine specific clobbers
2127   std::string MachineClobbers = getTarget().getClobbers();
2128   if (!MachineClobbers.empty()) {
2129     if (!Constraints.empty())
2130       Constraints += ',';
2131     Constraints += MachineClobbers;
2132   }
2133 
2134   llvm::Type *ResultType;
2135   if (ResultRegTypes.empty())
2136     ResultType = VoidTy;
2137   else if (ResultRegTypes.size() == 1)
2138     ResultType = ResultRegTypes[0];
2139   else
2140     ResultType = llvm::StructType::get(getLLVMContext(), ResultRegTypes);
2141 
2142   llvm::FunctionType *FTy =
2143     llvm::FunctionType::get(ResultType, ArgTypes, false);
2144 
2145   bool HasSideEffect = S.isVolatile() || S.getNumOutputs() == 0;
2146   llvm::InlineAsm::AsmDialect AsmDialect = isa<MSAsmStmt>(&S) ?
2147     llvm::InlineAsm::AD_Intel : llvm::InlineAsm::AD_ATT;
2148   llvm::InlineAsm *IA =
2149     llvm::InlineAsm::get(FTy, AsmString, Constraints, HasSideEffect,
2150                          /* IsAlignStack */ false, AsmDialect);
2151   llvm::CallInst *Result =
2152       Builder.CreateCall(IA, Args, getBundlesForFunclet(IA));
2153   Result->addAttribute(llvm::AttributeList::FunctionIndex,
2154                        llvm::Attribute::NoUnwind);
2155 
2156   // Attach readnone and readonly attributes.
2157   if (!HasSideEffect) {
2158     if (ReadNone)
2159       Result->addAttribute(llvm::AttributeList::FunctionIndex,
2160                            llvm::Attribute::ReadNone);
2161     else if (ReadOnly)
2162       Result->addAttribute(llvm::AttributeList::FunctionIndex,
2163                            llvm::Attribute::ReadOnly);
2164   }
2165 
2166   // Slap the source location of the inline asm into a !srcloc metadata on the
2167   // call.
2168   if (const GCCAsmStmt *gccAsmStmt = dyn_cast<GCCAsmStmt>(&S)) {
2169     Result->setMetadata("srcloc", getAsmSrcLocInfo(gccAsmStmt->getAsmString(),
2170                                                    *this));
2171   } else {
2172     // At least put the line number on MS inline asm blobs.
2173     auto Loc = llvm::ConstantInt::get(Int32Ty, S.getAsmLoc().getRawEncoding());
2174     Result->setMetadata("srcloc",
2175                         llvm::MDNode::get(getLLVMContext(),
2176                                           llvm::ConstantAsMetadata::get(Loc)));
2177   }
2178 
2179   if (getLangOpts().assumeFunctionsAreConvergent()) {
2180     // Conservatively, mark all inline asm blocks in CUDA or OpenCL as
2181     // convergent (meaning, they may call an intrinsically convergent op, such
2182     // as bar.sync, and so can't have certain optimizations applied around
2183     // them).
2184     Result->addAttribute(llvm::AttributeList::FunctionIndex,
2185                          llvm::Attribute::Convergent);
2186   }
2187 
2188   // Extract all of the register value results from the asm.
2189   std::vector<llvm::Value*> RegResults;
2190   if (ResultRegTypes.size() == 1) {
2191     RegResults.push_back(Result);
2192   } else {
2193     for (unsigned i = 0, e = ResultRegTypes.size(); i != e; ++i) {
2194       llvm::Value *Tmp = Builder.CreateExtractValue(Result, i, "asmresult");
2195       RegResults.push_back(Tmp);
2196     }
2197   }
2198 
2199   assert(RegResults.size() == ResultRegTypes.size());
2200   assert(RegResults.size() == ResultTruncRegTypes.size());
2201   assert(RegResults.size() == ResultRegDests.size());
2202   for (unsigned i = 0, e = RegResults.size(); i != e; ++i) {
2203     llvm::Value *Tmp = RegResults[i];
2204 
2205     // If the result type of the LLVM IR asm doesn't match the result type of
2206     // the expression, do the conversion.
2207     if (ResultRegTypes[i] != ResultTruncRegTypes[i]) {
2208       llvm::Type *TruncTy = ResultTruncRegTypes[i];
2209 
2210       // Truncate the integer result to the right size, note that TruncTy can be
2211       // a pointer.
2212       if (TruncTy->isFloatingPointTy())
2213         Tmp = Builder.CreateFPTrunc(Tmp, TruncTy);
2214       else if (TruncTy->isPointerTy() && Tmp->getType()->isIntegerTy()) {
2215         uint64_t ResSize = CGM.getDataLayout().getTypeSizeInBits(TruncTy);
2216         Tmp = Builder.CreateTrunc(Tmp,
2217                    llvm::IntegerType::get(getLLVMContext(), (unsigned)ResSize));
2218         Tmp = Builder.CreateIntToPtr(Tmp, TruncTy);
2219       } else if (Tmp->getType()->isPointerTy() && TruncTy->isIntegerTy()) {
2220         uint64_t TmpSize =CGM.getDataLayout().getTypeSizeInBits(Tmp->getType());
2221         Tmp = Builder.CreatePtrToInt(Tmp,
2222                    llvm::IntegerType::get(getLLVMContext(), (unsigned)TmpSize));
2223         Tmp = Builder.CreateTrunc(Tmp, TruncTy);
2224       } else if (TruncTy->isIntegerTy()) {
2225         Tmp = Builder.CreateZExtOrTrunc(Tmp, TruncTy);
2226       } else if (TruncTy->isVectorTy()) {
2227         Tmp = Builder.CreateBitCast(Tmp, TruncTy);
2228       }
2229     }
2230 
2231     EmitStoreThroughLValue(RValue::get(Tmp), ResultRegDests[i]);
2232   }
2233 }
2234 
2235 LValue CodeGenFunction::InitCapturedStruct(const CapturedStmt &S) {
2236   const RecordDecl *RD = S.getCapturedRecordDecl();
2237   QualType RecordTy = getContext().getRecordType(RD);
2238 
2239   // Initialize the captured struct.
2240   LValue SlotLV =
2241     MakeAddrLValue(CreateMemTemp(RecordTy, "agg.captured"), RecordTy);
2242 
2243   RecordDecl::field_iterator CurField = RD->field_begin();
2244   for (CapturedStmt::const_capture_init_iterator I = S.capture_init_begin(),
2245                                                  E = S.capture_init_end();
2246        I != E; ++I, ++CurField) {
2247     LValue LV = EmitLValueForFieldInitialization(SlotLV, *CurField);
2248     if (CurField->hasCapturedVLAType()) {
2249       auto VAT = CurField->getCapturedVLAType();
2250       EmitStoreThroughLValue(RValue::get(VLASizeMap[VAT->getSizeExpr()]), LV);
2251     } else {
2252       EmitInitializerForField(*CurField, LV, *I);
2253     }
2254   }
2255 
2256   return SlotLV;
2257 }
2258 
2259 /// Generate an outlined function for the body of a CapturedStmt, store any
2260 /// captured variables into the captured struct, and call the outlined function.
2261 llvm::Function *
2262 CodeGenFunction::EmitCapturedStmt(const CapturedStmt &S, CapturedRegionKind K) {
2263   LValue CapStruct = InitCapturedStruct(S);
2264 
2265   // Emit the CapturedDecl
2266   CodeGenFunction CGF(CGM, true);
2267   CGCapturedStmtRAII CapInfoRAII(CGF, new CGCapturedStmtInfo(S, K));
2268   llvm::Function *F = CGF.GenerateCapturedStmtFunction(S);
2269   delete CGF.CapturedStmtInfo;
2270 
2271   // Emit call to the helper function.
2272   EmitCallOrInvoke(F, CapStruct.getPointer());
2273 
2274   return F;
2275 }
2276 
2277 Address CodeGenFunction::GenerateCapturedStmtArgument(const CapturedStmt &S) {
2278   LValue CapStruct = InitCapturedStruct(S);
2279   return CapStruct.getAddress();
2280 }
2281 
2282 /// Creates the outlined function for a CapturedStmt.
2283 llvm::Function *
2284 CodeGenFunction::GenerateCapturedStmtFunction(const CapturedStmt &S) {
2285   assert(CapturedStmtInfo &&
2286     "CapturedStmtInfo should be set when generating the captured function");
2287   const CapturedDecl *CD = S.getCapturedDecl();
2288   const RecordDecl *RD = S.getCapturedRecordDecl();
2289   SourceLocation Loc = S.getBeginLoc();
2290   assert(CD->hasBody() && "missing CapturedDecl body");
2291 
2292   // Build the argument list.
2293   ASTContext &Ctx = CGM.getContext();
2294   FunctionArgList Args;
2295   Args.append(CD->param_begin(), CD->param_end());
2296 
2297   // Create the function declaration.
2298   const CGFunctionInfo &FuncInfo =
2299     CGM.getTypes().arrangeBuiltinFunctionDeclaration(Ctx.VoidTy, Args);
2300   llvm::FunctionType *FuncLLVMTy = CGM.getTypes().GetFunctionType(FuncInfo);
2301 
2302   llvm::Function *F =
2303     llvm::Function::Create(FuncLLVMTy, llvm::GlobalValue::InternalLinkage,
2304                            CapturedStmtInfo->getHelperName(), &CGM.getModule());
2305   CGM.SetInternalFunctionAttributes(CD, F, FuncInfo);
2306   if (CD->isNothrow())
2307     F->addFnAttr(llvm::Attribute::NoUnwind);
2308 
2309   // Generate the function.
2310   StartFunction(CD, Ctx.VoidTy, F, FuncInfo, Args, CD->getLocation(),
2311                 CD->getBody()->getBeginLoc());
2312   // Set the context parameter in CapturedStmtInfo.
2313   Address DeclPtr = GetAddrOfLocalVar(CD->getContextParam());
2314   CapturedStmtInfo->setContextValue(Builder.CreateLoad(DeclPtr));
2315 
2316   // Initialize variable-length arrays.
2317   LValue Base = MakeNaturalAlignAddrLValue(CapturedStmtInfo->getContextValue(),
2318                                            Ctx.getTagDeclType(RD));
2319   for (auto *FD : RD->fields()) {
2320     if (FD->hasCapturedVLAType()) {
2321       auto *ExprArg =
2322           EmitLoadOfLValue(EmitLValueForField(Base, FD), S.getBeginLoc())
2323               .getScalarVal();
2324       auto VAT = FD->getCapturedVLAType();
2325       VLASizeMap[VAT->getSizeExpr()] = ExprArg;
2326     }
2327   }
2328 
2329   // If 'this' is captured, load it into CXXThisValue.
2330   if (CapturedStmtInfo->isCXXThisExprCaptured()) {
2331     FieldDecl *FD = CapturedStmtInfo->getThisFieldDecl();
2332     LValue ThisLValue = EmitLValueForField(Base, FD);
2333     CXXThisValue = EmitLoadOfLValue(ThisLValue, Loc).getScalarVal();
2334   }
2335 
2336   PGO.assignRegionCounters(GlobalDecl(CD), F);
2337   CapturedStmtInfo->EmitBody(*this, CD->getBody());
2338   FinishFunction(CD->getBodyRBrace());
2339 
2340   return F;
2341 }
2342