1 //===-- InstrProfiling.cpp - Frontend instrumentation based profiling -----===//
2 //
3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
4 // See https://llvm.org/LICENSE.txt for license information.
5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
6 //
7 //===----------------------------------------------------------------------===//
8 //
9 // This pass lowers instrprof_* intrinsics emitted by a frontend for profiling.
10 // It also builds the data structures and initialization code needed for
11 // updating execution counts and emitting the profile at runtime.
12 //
13 //===----------------------------------------------------------------------===//
14 
15 #include "llvm/Transforms/Instrumentation/InstrProfiling.h"
16 #include "llvm/ADT/ArrayRef.h"
17 #include "llvm/ADT/SmallVector.h"
18 #include "llvm/ADT/StringRef.h"
19 #include "llvm/ADT/Triple.h"
20 #include "llvm/ADT/Twine.h"
21 #include "llvm/Analysis/BlockFrequencyInfo.h"
22 #include "llvm/Analysis/BranchProbabilityInfo.h"
23 #include "llvm/Analysis/LoopInfo.h"
24 #include "llvm/Analysis/TargetLibraryInfo.h"
25 #include "llvm/IR/Attributes.h"
26 #include "llvm/IR/BasicBlock.h"
27 #include "llvm/IR/Constant.h"
28 #include "llvm/IR/Constants.h"
29 #include "llvm/IR/DIBuilder.h"
30 #include "llvm/IR/DerivedTypes.h"
31 #include "llvm/IR/DiagnosticInfo.h"
32 #include "llvm/IR/Dominators.h"
33 #include "llvm/IR/Function.h"
34 #include "llvm/IR/GlobalValue.h"
35 #include "llvm/IR/GlobalVariable.h"
36 #include "llvm/IR/IRBuilder.h"
37 #include "llvm/IR/Instruction.h"
38 #include "llvm/IR/Instructions.h"
39 #include "llvm/IR/IntrinsicInst.h"
40 #include "llvm/IR/Module.h"
41 #include "llvm/IR/Type.h"
42 #include "llvm/InitializePasses.h"
43 #include "llvm/Pass.h"
44 #include "llvm/ProfileData/InstrProf.h"
45 #include "llvm/ProfileData/InstrProfCorrelator.h"
46 #include "llvm/Support/Casting.h"
47 #include "llvm/Support/CommandLine.h"
48 #include "llvm/Support/Error.h"
49 #include "llvm/Support/ErrorHandling.h"
50 #include "llvm/Transforms/Utils/ModuleUtils.h"
51 #include "llvm/Transforms/Utils/SSAUpdater.h"
52 #include <algorithm>
53 #include <cassert>
54 #include <cstdint>
55 #include <string>
56 
57 using namespace llvm;
58 
59 #define DEBUG_TYPE "instrprof"
60 
61 namespace llvm {
62 cl::opt<bool>
63     DebugInfoCorrelate("debug-info-correlate", cl::ZeroOrMore,
64                        cl::desc("Use debug info to correlate profiles."),
65                        cl::init(false));
66 } // namespace llvm
67 
68 namespace {
69 
70 cl::opt<bool> DoHashBasedCounterSplit(
71     "hash-based-counter-split",
72     cl::desc("Rename counter variable of a comdat function based on cfg hash"),
73     cl::init(true));
74 
75 cl::opt<bool>
76     RuntimeCounterRelocation("runtime-counter-relocation",
77                              cl::desc("Enable relocating counters at runtime."),
78                              cl::init(false));
79 
80 cl::opt<bool> ValueProfileStaticAlloc(
81     "vp-static-alloc",
82     cl::desc("Do static counter allocation for value profiler"),
83     cl::init(true));
84 
85 cl::opt<double> NumCountersPerValueSite(
86     "vp-counters-per-site",
87     cl::desc("The average number of profile counters allocated "
88              "per value profiling site."),
89     // This is set to a very small value because in real programs, only
90     // a very small percentage of value sites have non-zero targets, e.g, 1/30.
91     // For those sites with non-zero profile, the average number of targets
92     // is usually smaller than 2.
93     cl::init(1.0));
94 
95 cl::opt<bool> AtomicCounterUpdateAll(
96     "instrprof-atomic-counter-update-all", cl::ZeroOrMore,
97     cl::desc("Make all profile counter updates atomic (for testing only)"),
98     cl::init(false));
99 
100 cl::opt<bool> AtomicCounterUpdatePromoted(
101     "atomic-counter-update-promoted", cl::ZeroOrMore,
102     cl::desc("Do counter update using atomic fetch add "
103              " for promoted counters only"),
104     cl::init(false));
105 
106 cl::opt<bool> AtomicFirstCounter(
107     "atomic-first-counter", cl::ZeroOrMore,
108     cl::desc("Use atomic fetch add for first counter in a function (usually "
109              "the entry counter)"),
110     cl::init(false));
111 
112 // If the option is not specified, the default behavior about whether
113 // counter promotion is done depends on how instrumentaiton lowering
114 // pipeline is setup, i.e., the default value of true of this option
115 // does not mean the promotion will be done by default. Explicitly
116 // setting this option can override the default behavior.
117 cl::opt<bool> DoCounterPromotion("do-counter-promotion", cl::ZeroOrMore,
118                                  cl::desc("Do counter register promotion"),
119                                  cl::init(false));
120 cl::opt<unsigned> MaxNumOfPromotionsPerLoop(
121     cl::ZeroOrMore, "max-counter-promotions-per-loop", cl::init(20),
122     cl::desc("Max number counter promotions per loop to avoid"
123              " increasing register pressure too much"));
124 
125 // A debug option
126 cl::opt<int>
127     MaxNumOfPromotions(cl::ZeroOrMore, "max-counter-promotions", cl::init(-1),
128                        cl::desc("Max number of allowed counter promotions"));
129 
130 cl::opt<unsigned> SpeculativeCounterPromotionMaxExiting(
131     cl::ZeroOrMore, "speculative-counter-promotion-max-exiting", cl::init(3),
132     cl::desc("The max number of exiting blocks of a loop to allow "
133              " speculative counter promotion"));
134 
135 cl::opt<bool> SpeculativeCounterPromotionToLoop(
136     cl::ZeroOrMore, "speculative-counter-promotion-to-loop", cl::init(false),
137     cl::desc("When the option is false, if the target block is in a loop, "
138              "the promotion will be disallowed unless the promoted counter "
139              " update can be further/iteratively promoted into an acyclic "
140              " region."));
141 
142 cl::opt<bool> IterativeCounterPromotion(
143     cl::ZeroOrMore, "iterative-counter-promotion", cl::init(true),
144     cl::desc("Allow counter promotion across the whole loop nest."));
145 
146 cl::opt<bool> SkipRetExitBlock(
147     cl::ZeroOrMore, "skip-ret-exit-block", cl::init(true),
148     cl::desc("Suppress counter promotion if exit blocks contain ret."));
149 
150 class InstrProfilingLegacyPass : public ModulePass {
151   InstrProfiling InstrProf;
152 
153 public:
154   static char ID;
155 
156   InstrProfilingLegacyPass() : ModulePass(ID) {}
157   InstrProfilingLegacyPass(const InstrProfOptions &Options, bool IsCS = false)
158       : ModulePass(ID), InstrProf(Options, IsCS) {
159     initializeInstrProfilingLegacyPassPass(*PassRegistry::getPassRegistry());
160   }
161 
162   StringRef getPassName() const override {
163     return "Frontend instrumentation-based coverage lowering";
164   }
165 
166   bool runOnModule(Module &M) override {
167     auto GetTLI = [this](Function &F) -> TargetLibraryInfo & {
168       return this->getAnalysis<TargetLibraryInfoWrapperPass>().getTLI(F);
169     };
170     return InstrProf.run(M, GetTLI);
171   }
172 
173   void getAnalysisUsage(AnalysisUsage &AU) const override {
174     AU.setPreservesCFG();
175     AU.addRequired<TargetLibraryInfoWrapperPass>();
176   }
177 };
178 
179 ///
180 /// A helper class to promote one counter RMW operation in the loop
181 /// into register update.
182 ///
183 /// RWM update for the counter will be sinked out of the loop after
184 /// the transformation.
185 ///
186 class PGOCounterPromoterHelper : public LoadAndStorePromoter {
187 public:
188   PGOCounterPromoterHelper(
189       Instruction *L, Instruction *S, SSAUpdater &SSA, Value *Init,
190       BasicBlock *PH, ArrayRef<BasicBlock *> ExitBlocks,
191       ArrayRef<Instruction *> InsertPts,
192       DenseMap<Loop *, SmallVector<LoadStorePair, 8>> &LoopToCands,
193       LoopInfo &LI)
194       : LoadAndStorePromoter({L, S}, SSA), Store(S), ExitBlocks(ExitBlocks),
195         InsertPts(InsertPts), LoopToCandidates(LoopToCands), LI(LI) {
196     assert(isa<LoadInst>(L));
197     assert(isa<StoreInst>(S));
198     SSA.AddAvailableValue(PH, Init);
199   }
200 
201   void doExtraRewritesBeforeFinalDeletion() override {
202     for (unsigned i = 0, e = ExitBlocks.size(); i != e; ++i) {
203       BasicBlock *ExitBlock = ExitBlocks[i];
204       Instruction *InsertPos = InsertPts[i];
205       // Get LiveIn value into the ExitBlock. If there are multiple
206       // predecessors, the value is defined by a PHI node in this
207       // block.
208       Value *LiveInValue = SSA.GetValueInMiddleOfBlock(ExitBlock);
209       Value *Addr = cast<StoreInst>(Store)->getPointerOperand();
210       Type *Ty = LiveInValue->getType();
211       IRBuilder<> Builder(InsertPos);
212       if (AtomicCounterUpdatePromoted)
213         // automic update currently can only be promoted across the current
214         // loop, not the whole loop nest.
215         Builder.CreateAtomicRMW(AtomicRMWInst::Add, Addr, LiveInValue,
216                                 MaybeAlign(),
217                                 AtomicOrdering::SequentiallyConsistent);
218       else {
219         LoadInst *OldVal = Builder.CreateLoad(Ty, Addr, "pgocount.promoted");
220         auto *NewVal = Builder.CreateAdd(OldVal, LiveInValue);
221         auto *NewStore = Builder.CreateStore(NewVal, Addr);
222 
223         // Now update the parent loop's candidate list:
224         if (IterativeCounterPromotion) {
225           auto *TargetLoop = LI.getLoopFor(ExitBlock);
226           if (TargetLoop)
227             LoopToCandidates[TargetLoop].emplace_back(OldVal, NewStore);
228         }
229       }
230     }
231   }
232 
233 private:
234   Instruction *Store;
235   ArrayRef<BasicBlock *> ExitBlocks;
236   ArrayRef<Instruction *> InsertPts;
237   DenseMap<Loop *, SmallVector<LoadStorePair, 8>> &LoopToCandidates;
238   LoopInfo &LI;
239 };
240 
241 /// A helper class to do register promotion for all profile counter
242 /// updates in a loop.
243 ///
244 class PGOCounterPromoter {
245 public:
246   PGOCounterPromoter(
247       DenseMap<Loop *, SmallVector<LoadStorePair, 8>> &LoopToCands,
248       Loop &CurLoop, LoopInfo &LI, BlockFrequencyInfo *BFI)
249       : LoopToCandidates(LoopToCands), L(CurLoop), LI(LI), BFI(BFI) {
250 
251     // Skip collection of ExitBlocks and InsertPts for loops that will not be
252     // able to have counters promoted.
253     SmallVector<BasicBlock *, 8> LoopExitBlocks;
254     SmallPtrSet<BasicBlock *, 8> BlockSet;
255 
256     L.getExitBlocks(LoopExitBlocks);
257     if (!isPromotionPossible(&L, LoopExitBlocks))
258       return;
259 
260     for (BasicBlock *ExitBlock : LoopExitBlocks) {
261       if (BlockSet.insert(ExitBlock).second) {
262         ExitBlocks.push_back(ExitBlock);
263         InsertPts.push_back(&*ExitBlock->getFirstInsertionPt());
264       }
265     }
266   }
267 
268   bool run(int64_t *NumPromoted) {
269     // Skip 'infinite' loops:
270     if (ExitBlocks.size() == 0)
271       return false;
272 
273     // Skip if any of the ExitBlocks contains a ret instruction.
274     // This is to prevent dumping of incomplete profile -- if the
275     // the loop is a long running loop and dump is called in the middle
276     // of the loop, the result profile is incomplete.
277     // FIXME: add other heuristics to detect long running loops.
278     if (SkipRetExitBlock) {
279       for (auto BB : ExitBlocks)
280         if (isa<ReturnInst>(BB->getTerminator()))
281           return false;
282     }
283 
284     unsigned MaxProm = getMaxNumOfPromotionsInLoop(&L);
285     if (MaxProm == 0)
286       return false;
287 
288     unsigned Promoted = 0;
289     for (auto &Cand : LoopToCandidates[&L]) {
290 
291       SmallVector<PHINode *, 4> NewPHIs;
292       SSAUpdater SSA(&NewPHIs);
293       Value *InitVal = ConstantInt::get(Cand.first->getType(), 0);
294 
295       // If BFI is set, we will use it to guide the promotions.
296       if (BFI) {
297         auto *BB = Cand.first->getParent();
298         auto InstrCount = BFI->getBlockProfileCount(BB);
299         if (!InstrCount)
300           continue;
301         auto PreheaderCount = BFI->getBlockProfileCount(L.getLoopPreheader());
302         // If the average loop trip count is not greater than 1.5, we skip
303         // promotion.
304         if (PreheaderCount &&
305             (PreheaderCount.getValue() * 3) >= (InstrCount.getValue() * 2))
306           continue;
307       }
308 
309       PGOCounterPromoterHelper Promoter(Cand.first, Cand.second, SSA, InitVal,
310                                         L.getLoopPreheader(), ExitBlocks,
311                                         InsertPts, LoopToCandidates, LI);
312       Promoter.run(SmallVector<Instruction *, 2>({Cand.first, Cand.second}));
313       Promoted++;
314       if (Promoted >= MaxProm)
315         break;
316 
317       (*NumPromoted)++;
318       if (MaxNumOfPromotions != -1 && *NumPromoted >= MaxNumOfPromotions)
319         break;
320     }
321 
322     LLVM_DEBUG(dbgs() << Promoted << " counters promoted for loop (depth="
323                       << L.getLoopDepth() << ")\n");
324     return Promoted != 0;
325   }
326 
327 private:
328   bool allowSpeculativeCounterPromotion(Loop *LP) {
329     SmallVector<BasicBlock *, 8> ExitingBlocks;
330     L.getExitingBlocks(ExitingBlocks);
331     // Not considierered speculative.
332     if (ExitingBlocks.size() == 1)
333       return true;
334     if (ExitingBlocks.size() > SpeculativeCounterPromotionMaxExiting)
335       return false;
336     return true;
337   }
338 
339   // Check whether the loop satisfies the basic conditions needed to perform
340   // Counter Promotions.
341   bool
342   isPromotionPossible(Loop *LP,
343                       const SmallVectorImpl<BasicBlock *> &LoopExitBlocks) {
344     // We can't insert into a catchswitch.
345     if (llvm::any_of(LoopExitBlocks, [](BasicBlock *Exit) {
346           return isa<CatchSwitchInst>(Exit->getTerminator());
347         }))
348       return false;
349 
350     if (!LP->hasDedicatedExits())
351       return false;
352 
353     BasicBlock *PH = LP->getLoopPreheader();
354     if (!PH)
355       return false;
356 
357     return true;
358   }
359 
360   // Returns the max number of Counter Promotions for LP.
361   unsigned getMaxNumOfPromotionsInLoop(Loop *LP) {
362     SmallVector<BasicBlock *, 8> LoopExitBlocks;
363     LP->getExitBlocks(LoopExitBlocks);
364     if (!isPromotionPossible(LP, LoopExitBlocks))
365       return 0;
366 
367     SmallVector<BasicBlock *, 8> ExitingBlocks;
368     LP->getExitingBlocks(ExitingBlocks);
369 
370     // If BFI is set, we do more aggressive promotions based on BFI.
371     if (BFI)
372       return (unsigned)-1;
373 
374     // Not considierered speculative.
375     if (ExitingBlocks.size() == 1)
376       return MaxNumOfPromotionsPerLoop;
377 
378     if (ExitingBlocks.size() > SpeculativeCounterPromotionMaxExiting)
379       return 0;
380 
381     // Whether the target block is in a loop does not matter:
382     if (SpeculativeCounterPromotionToLoop)
383       return MaxNumOfPromotionsPerLoop;
384 
385     // Now check the target block:
386     unsigned MaxProm = MaxNumOfPromotionsPerLoop;
387     for (auto *TargetBlock : LoopExitBlocks) {
388       auto *TargetLoop = LI.getLoopFor(TargetBlock);
389       if (!TargetLoop)
390         continue;
391       unsigned MaxPromForTarget = getMaxNumOfPromotionsInLoop(TargetLoop);
392       unsigned PendingCandsInTarget = LoopToCandidates[TargetLoop].size();
393       MaxProm =
394           std::min(MaxProm, std::max(MaxPromForTarget, PendingCandsInTarget) -
395                                 PendingCandsInTarget);
396     }
397     return MaxProm;
398   }
399 
400   DenseMap<Loop *, SmallVector<LoadStorePair, 8>> &LoopToCandidates;
401   SmallVector<BasicBlock *, 8> ExitBlocks;
402   SmallVector<Instruction *, 8> InsertPts;
403   Loop &L;
404   LoopInfo &LI;
405   BlockFrequencyInfo *BFI;
406 };
407 
408 enum class ValueProfilingCallType {
409   // Individual values are tracked. Currently used for indiret call target
410   // profiling.
411   Default,
412 
413   // MemOp: the memop size value profiling.
414   MemOp
415 };
416 
417 } // end anonymous namespace
418 
419 PreservedAnalyses InstrProfiling::run(Module &M, ModuleAnalysisManager &AM) {
420   FunctionAnalysisManager &FAM =
421       AM.getResult<FunctionAnalysisManagerModuleProxy>(M).getManager();
422   auto GetTLI = [&FAM](Function &F) -> TargetLibraryInfo & {
423     return FAM.getResult<TargetLibraryAnalysis>(F);
424   };
425   if (!run(M, GetTLI))
426     return PreservedAnalyses::all();
427 
428   return PreservedAnalyses::none();
429 }
430 
431 char InstrProfilingLegacyPass::ID = 0;
432 INITIALIZE_PASS_BEGIN(InstrProfilingLegacyPass, "instrprof",
433                       "Frontend instrumentation-based coverage lowering.",
434                       false, false)
435 INITIALIZE_PASS_DEPENDENCY(TargetLibraryInfoWrapperPass)
436 INITIALIZE_PASS_END(InstrProfilingLegacyPass, "instrprof",
437                     "Frontend instrumentation-based coverage lowering.", false,
438                     false)
439 
440 ModulePass *
441 llvm::createInstrProfilingLegacyPass(const InstrProfOptions &Options,
442                                      bool IsCS) {
443   return new InstrProfilingLegacyPass(Options, IsCS);
444 }
445 
446 bool InstrProfiling::lowerIntrinsics(Function *F) {
447   bool MadeChange = false;
448   PromotionCandidates.clear();
449   for (BasicBlock &BB : *F) {
450     for (Instruction &Instr : llvm::make_early_inc_range(BB)) {
451       if (auto *IPIS = dyn_cast<InstrProfIncrementInstStep>(&Instr)) {
452         lowerIncrement(IPIS);
453         MadeChange = true;
454       } else if (auto *IPI = dyn_cast<InstrProfIncrementInst>(&Instr)) {
455         lowerIncrement(IPI);
456         MadeChange = true;
457       } else if (auto *IPC = dyn_cast<InstrProfCoverInst>(&Instr)) {
458         lowerCover(IPC);
459         MadeChange = true;
460       } else if (auto *IPVP = dyn_cast<InstrProfValueProfileInst>(&Instr)) {
461         lowerValueProfileInst(IPVP);
462         MadeChange = true;
463       }
464     }
465   }
466 
467   if (!MadeChange)
468     return false;
469 
470   promoteCounterLoadStores(F);
471   return true;
472 }
473 
474 bool InstrProfiling::isRuntimeCounterRelocationEnabled() const {
475   // Mach-O don't support weak external references.
476   if (TT.isOSBinFormatMachO())
477     return false;
478 
479   if (RuntimeCounterRelocation.getNumOccurrences() > 0)
480     return RuntimeCounterRelocation;
481 
482   // Fuchsia uses runtime counter relocation by default.
483   return TT.isOSFuchsia();
484 }
485 
486 bool InstrProfiling::isCounterPromotionEnabled() const {
487   if (DoCounterPromotion.getNumOccurrences() > 0)
488     return DoCounterPromotion;
489 
490   return Options.DoCounterPromotion;
491 }
492 
493 void InstrProfiling::promoteCounterLoadStores(Function *F) {
494   if (!isCounterPromotionEnabled())
495     return;
496 
497   DominatorTree DT(*F);
498   LoopInfo LI(DT);
499   DenseMap<Loop *, SmallVector<LoadStorePair, 8>> LoopPromotionCandidates;
500 
501   std::unique_ptr<BlockFrequencyInfo> BFI;
502   if (Options.UseBFIInPromotion) {
503     std::unique_ptr<BranchProbabilityInfo> BPI;
504     BPI.reset(new BranchProbabilityInfo(*F, LI, &GetTLI(*F)));
505     BFI.reset(new BlockFrequencyInfo(*F, *BPI, LI));
506   }
507 
508   for (const auto &LoadStore : PromotionCandidates) {
509     auto *CounterLoad = LoadStore.first;
510     auto *CounterStore = LoadStore.second;
511     BasicBlock *BB = CounterLoad->getParent();
512     Loop *ParentLoop = LI.getLoopFor(BB);
513     if (!ParentLoop)
514       continue;
515     LoopPromotionCandidates[ParentLoop].emplace_back(CounterLoad, CounterStore);
516   }
517 
518   SmallVector<Loop *, 4> Loops = LI.getLoopsInPreorder();
519 
520   // Do a post-order traversal of the loops so that counter updates can be
521   // iteratively hoisted outside the loop nest.
522   for (auto *Loop : llvm::reverse(Loops)) {
523     PGOCounterPromoter Promoter(LoopPromotionCandidates, *Loop, LI, BFI.get());
524     Promoter.run(&TotalCountersPromoted);
525   }
526 }
527 
528 static bool needsRuntimeHookUnconditionally(const Triple &TT) {
529   // On Fuchsia, we only need runtime hook if any counters are present.
530   if (TT.isOSFuchsia())
531     return false;
532 
533   return true;
534 }
535 
536 /// Check if the module contains uses of any profiling intrinsics.
537 static bool containsProfilingIntrinsics(Module &M) {
538   auto containsIntrinsic = [&](int ID) {
539     if (auto *F = M.getFunction(Intrinsic::getName(ID)))
540       return !F->use_empty();
541     return false;
542   };
543   return containsIntrinsic(llvm::Intrinsic::instrprof_cover) ||
544          containsIntrinsic(llvm::Intrinsic::instrprof_increment) ||
545          containsIntrinsic(llvm::Intrinsic::instrprof_increment_step) ||
546          containsIntrinsic(llvm::Intrinsic::instrprof_value_profile);
547 }
548 
549 bool InstrProfiling::run(
550     Module &M, std::function<const TargetLibraryInfo &(Function &F)> GetTLI) {
551   this->M = &M;
552   this->GetTLI = std::move(GetTLI);
553   NamesVar = nullptr;
554   NamesSize = 0;
555   ProfileDataMap.clear();
556   CompilerUsedVars.clear();
557   UsedVars.clear();
558   TT = Triple(M.getTargetTriple());
559 
560   bool MadeChange = false;
561   bool NeedsRuntimeHook = needsRuntimeHookUnconditionally(TT);
562   if (NeedsRuntimeHook)
563     MadeChange = emitRuntimeHook();
564 
565   // Improve compile time by avoiding linear scans when there is no work.
566   GlobalVariable *CoverageNamesVar =
567       M.getNamedGlobal(getCoverageUnusedNamesVarName());
568   if (!containsProfilingIntrinsics(M)) {
569     if (!CoverageNamesVar || !NeedsRuntimeHook) {
570       return MadeChange;
571     }
572   }
573 
574   // We did not know how many value sites there would be inside
575   // the instrumented function. This is counting the number of instrumented
576   // target value sites to enter it as field in the profile data variable.
577   for (Function &F : M) {
578     InstrProfIncrementInst *FirstProfIncInst = nullptr;
579     for (BasicBlock &BB : F)
580       for (auto I = BB.begin(), E = BB.end(); I != E; I++)
581         if (auto *Ind = dyn_cast<InstrProfValueProfileInst>(I))
582           computeNumValueSiteCounts(Ind);
583         else if (FirstProfIncInst == nullptr)
584           FirstProfIncInst = dyn_cast<InstrProfIncrementInst>(I);
585 
586     // Value profiling intrinsic lowering requires per-function profile data
587     // variable to be created first.
588     if (FirstProfIncInst != nullptr)
589       static_cast<void>(getOrCreateRegionCounters(FirstProfIncInst));
590   }
591 
592   for (Function &F : M)
593     MadeChange |= lowerIntrinsics(&F);
594 
595   if (CoverageNamesVar) {
596     lowerCoverageData(CoverageNamesVar);
597     MadeChange = true;
598   }
599 
600   if (!MadeChange)
601     return false;
602 
603   emitVNodes();
604   emitNameData();
605   emitRuntimeHook();
606   emitRegistration();
607   emitUses();
608   emitInitialization();
609   return true;
610 }
611 
612 static FunctionCallee getOrInsertValueProfilingCall(
613     Module &M, const TargetLibraryInfo &TLI,
614     ValueProfilingCallType CallType = ValueProfilingCallType::Default) {
615   LLVMContext &Ctx = M.getContext();
616   auto *ReturnTy = Type::getVoidTy(M.getContext());
617 
618   AttributeList AL;
619   if (auto AK = TLI.getExtAttrForI32Param(false))
620     AL = AL.addParamAttribute(M.getContext(), 2, AK);
621 
622   assert((CallType == ValueProfilingCallType::Default ||
623           CallType == ValueProfilingCallType::MemOp) &&
624          "Must be Default or MemOp");
625   Type *ParamTypes[] = {
626 #define VALUE_PROF_FUNC_PARAM(ParamType, ParamName, ParamLLVMType) ParamLLVMType
627 #include "llvm/ProfileData/InstrProfData.inc"
628   };
629   auto *ValueProfilingCallTy =
630       FunctionType::get(ReturnTy, makeArrayRef(ParamTypes), false);
631   StringRef FuncName = CallType == ValueProfilingCallType::Default
632                            ? getInstrProfValueProfFuncName()
633                            : getInstrProfValueProfMemOpFuncName();
634   return M.getOrInsertFunction(FuncName, ValueProfilingCallTy, AL);
635 }
636 
637 void InstrProfiling::computeNumValueSiteCounts(InstrProfValueProfileInst *Ind) {
638   GlobalVariable *Name = Ind->getName();
639   uint64_t ValueKind = Ind->getValueKind()->getZExtValue();
640   uint64_t Index = Ind->getIndex()->getZExtValue();
641   auto &PD = ProfileDataMap[Name];
642   PD.NumValueSites[ValueKind] =
643       std::max(PD.NumValueSites[ValueKind], (uint32_t)(Index + 1));
644 }
645 
646 void InstrProfiling::lowerValueProfileInst(InstrProfValueProfileInst *Ind) {
647   // TODO: Value profiling heavily depends on the data section which is omitted
648   // in lightweight mode. We need to move the value profile pointer to the
649   // Counter struct to get this working.
650   assert(
651       !DebugInfoCorrelate &&
652       "Value profiling is not yet supported with lightweight instrumentation");
653   GlobalVariable *Name = Ind->getName();
654   auto It = ProfileDataMap.find(Name);
655   assert(It != ProfileDataMap.end() && It->second.DataVar &&
656          "value profiling detected in function with no counter incerement");
657 
658   GlobalVariable *DataVar = It->second.DataVar;
659   uint64_t ValueKind = Ind->getValueKind()->getZExtValue();
660   uint64_t Index = Ind->getIndex()->getZExtValue();
661   for (uint32_t Kind = IPVK_First; Kind < ValueKind; ++Kind)
662     Index += It->second.NumValueSites[Kind];
663 
664   IRBuilder<> Builder(Ind);
665   bool IsMemOpSize = (Ind->getValueKind()->getZExtValue() ==
666                       llvm::InstrProfValueKind::IPVK_MemOPSize);
667   CallInst *Call = nullptr;
668   auto *TLI = &GetTLI(*Ind->getFunction());
669 
670   // To support value profiling calls within Windows exception handlers, funclet
671   // information contained within operand bundles needs to be copied over to
672   // the library call. This is required for the IR to be processed by the
673   // WinEHPrepare pass.
674   SmallVector<OperandBundleDef, 1> OpBundles;
675   Ind->getOperandBundlesAsDefs(OpBundles);
676   if (!IsMemOpSize) {
677     Value *Args[3] = {Ind->getTargetValue(),
678                       Builder.CreateBitCast(DataVar, Builder.getInt8PtrTy()),
679                       Builder.getInt32(Index)};
680     Call = Builder.CreateCall(getOrInsertValueProfilingCall(*M, *TLI), Args,
681                               OpBundles);
682   } else {
683     Value *Args[3] = {Ind->getTargetValue(),
684                       Builder.CreateBitCast(DataVar, Builder.getInt8PtrTy()),
685                       Builder.getInt32(Index)};
686     Call = Builder.CreateCall(
687         getOrInsertValueProfilingCall(*M, *TLI, ValueProfilingCallType::MemOp),
688         Args, OpBundles);
689   }
690   if (auto AK = TLI->getExtAttrForI32Param(false))
691     Call->addParamAttr(2, AK);
692   Ind->replaceAllUsesWith(Call);
693   Ind->eraseFromParent();
694 }
695 
696 Value *InstrProfiling::getCounterAddress(InstrProfInstBase *I) {
697   auto *Counters = getOrCreateRegionCounters(I);
698   IRBuilder<> Builder(I);
699 
700   auto *Addr = Builder.CreateConstInBoundsGEP2_32(
701       Counters->getValueType(), Counters, 0, I->getIndex()->getZExtValue());
702 
703   if (!isRuntimeCounterRelocationEnabled())
704     return Addr;
705 
706   Type *Int64Ty = Type::getInt64Ty(M->getContext());
707   Function *Fn = I->getParent()->getParent();
708   Instruction &EntryI = Fn->getEntryBlock().front();
709   LoadInst *LI = dyn_cast<LoadInst>(&EntryI);
710   if (!LI) {
711     IRBuilder<> EntryBuilder(&EntryI);
712     auto *Bias = M->getGlobalVariable(getInstrProfCounterBiasVarName());
713     if (!Bias) {
714       // Compiler must define this variable when runtime counter relocation
715       // is being used. Runtime has a weak external reference that is used
716       // to check whether that's the case or not.
717       Bias = new GlobalVariable(
718           *M, Int64Ty, false, GlobalValue::LinkOnceODRLinkage,
719           Constant::getNullValue(Int64Ty), getInstrProfCounterBiasVarName());
720       Bias->setVisibility(GlobalVariable::HiddenVisibility);
721       // A definition that's weak (linkonce_odr) without being in a COMDAT
722       // section wouldn't lead to link errors, but it would lead to a dead
723       // data word from every TU but one. Putting it in COMDAT ensures there
724       // will be exactly one data slot in the link.
725       if (TT.supportsCOMDAT())
726         Bias->setComdat(M->getOrInsertComdat(Bias->getName()));
727     }
728     LI = EntryBuilder.CreateLoad(Int64Ty, Bias);
729   }
730   auto *Add = Builder.CreateAdd(Builder.CreatePtrToInt(Addr, Int64Ty), LI);
731   return Builder.CreateIntToPtr(Add, Addr->getType());
732 }
733 
734 void InstrProfiling::lowerCover(InstrProfCoverInst *CoverInstruction) {
735   auto *Addr = getCounterAddress(CoverInstruction);
736   IRBuilder<> Builder(CoverInstruction);
737   // We store zero to represent that this block is covered.
738   Builder.CreateStore(Builder.getInt8(0), Addr);
739   CoverInstruction->eraseFromParent();
740 }
741 
742 void InstrProfiling::lowerIncrement(InstrProfIncrementInst *Inc) {
743   auto *Addr = getCounterAddress(Inc);
744 
745   IRBuilder<> Builder(Inc);
746   if (Options.Atomic || AtomicCounterUpdateAll ||
747       (Inc->getIndex()->isZeroValue() && AtomicFirstCounter)) {
748     Builder.CreateAtomicRMW(AtomicRMWInst::Add, Addr, Inc->getStep(),
749                             MaybeAlign(), AtomicOrdering::Monotonic);
750   } else {
751     Value *IncStep = Inc->getStep();
752     Value *Load = Builder.CreateLoad(IncStep->getType(), Addr, "pgocount");
753     auto *Count = Builder.CreateAdd(Load, Inc->getStep());
754     auto *Store = Builder.CreateStore(Count, Addr);
755     if (isCounterPromotionEnabled())
756       PromotionCandidates.emplace_back(cast<Instruction>(Load), Store);
757   }
758   Inc->eraseFromParent();
759 }
760 
761 void InstrProfiling::lowerCoverageData(GlobalVariable *CoverageNamesVar) {
762   ConstantArray *Names =
763       cast<ConstantArray>(CoverageNamesVar->getInitializer());
764   for (unsigned I = 0, E = Names->getNumOperands(); I < E; ++I) {
765     Constant *NC = Names->getOperand(I);
766     Value *V = NC->stripPointerCasts();
767     assert(isa<GlobalVariable>(V) && "Missing reference to function name");
768     GlobalVariable *Name = cast<GlobalVariable>(V);
769 
770     Name->setLinkage(GlobalValue::PrivateLinkage);
771     ReferencedNames.push_back(Name);
772     if (isa<ConstantExpr>(NC))
773       NC->dropAllReferences();
774   }
775   CoverageNamesVar->eraseFromParent();
776 }
777 
778 /// Get the name of a profiling variable for a particular function.
779 static std::string getVarName(InstrProfInstBase *Inc, StringRef Prefix,
780                               bool &Renamed) {
781   StringRef NamePrefix = getInstrProfNameVarPrefix();
782   StringRef Name = Inc->getName()->getName().substr(NamePrefix.size());
783   Function *F = Inc->getParent()->getParent();
784   Module *M = F->getParent();
785   if (!DoHashBasedCounterSplit || !isIRPGOFlagSet(M) ||
786       !canRenameComdatFunc(*F)) {
787     Renamed = false;
788     return (Prefix + Name).str();
789   }
790   Renamed = true;
791   uint64_t FuncHash = Inc->getHash()->getZExtValue();
792   SmallVector<char, 24> HashPostfix;
793   if (Name.endswith((Twine(".") + Twine(FuncHash)).toStringRef(HashPostfix)))
794     return (Prefix + Name).str();
795   return (Prefix + Name + "." + Twine(FuncHash)).str();
796 }
797 
798 static uint64_t getIntModuleFlagOrZero(const Module &M, StringRef Flag) {
799   auto *MD = dyn_cast_or_null<ConstantAsMetadata>(M.getModuleFlag(Flag));
800   if (!MD)
801     return 0;
802 
803   // If the flag is a ConstantAsMetadata, it should be an integer representable
804   // in 64-bits.
805   return cast<ConstantInt>(MD->getValue())->getZExtValue();
806 }
807 
808 static bool enablesValueProfiling(const Module &M) {
809   return isIRPGOFlagSet(&M) ||
810          getIntModuleFlagOrZero(M, "EnableValueProfiling") != 0;
811 }
812 
813 // Conservatively returns true if data variables may be referenced by code.
814 static bool profDataReferencedByCode(const Module &M) {
815   return enablesValueProfiling(M);
816 }
817 
818 static inline bool shouldRecordFunctionAddr(Function *F) {
819   // Only record function addresses if IR PGO is enabled or if clang value
820   // profiling is enabled. Recording function addresses greatly increases object
821   // file size, because it prevents the inliner from deleting functions that
822   // have been inlined everywhere.
823   if (!profDataReferencedByCode(*F->getParent()))
824     return false;
825 
826   // Check the linkage
827   bool HasAvailableExternallyLinkage = F->hasAvailableExternallyLinkage();
828   if (!F->hasLinkOnceLinkage() && !F->hasLocalLinkage() &&
829       !HasAvailableExternallyLinkage)
830     return true;
831 
832   // A function marked 'alwaysinline' with available_externally linkage can't
833   // have its address taken. Doing so would create an undefined external ref to
834   // the function, which would fail to link.
835   if (HasAvailableExternallyLinkage &&
836       F->hasFnAttribute(Attribute::AlwaysInline))
837     return false;
838 
839   // Prohibit function address recording if the function is both internal and
840   // COMDAT. This avoids the profile data variable referencing internal symbols
841   // in COMDAT.
842   if (F->hasLocalLinkage() && F->hasComdat())
843     return false;
844 
845   // Check uses of this function for other than direct calls or invokes to it.
846   // Inline virtual functions have linkeOnceODR linkage. When a key method
847   // exists, the vtable will only be emitted in the TU where the key method
848   // is defined. In a TU where vtable is not available, the function won't
849   // be 'addresstaken'. If its address is not recorded here, the profile data
850   // with missing address may be picked by the linker leading  to missing
851   // indirect call target info.
852   return F->hasAddressTaken() || F->hasLinkOnceLinkage();
853 }
854 
855 static bool needsRuntimeRegistrationOfSectionRange(const Triple &TT) {
856   // Don't do this for Darwin.  compiler-rt uses linker magic.
857   if (TT.isOSDarwin())
858     return false;
859   // Use linker script magic to get data/cnts/name start/end.
860   if (TT.isOSLinux() || TT.isOSFreeBSD() || TT.isOSNetBSD() ||
861       TT.isOSSolaris() || TT.isOSFuchsia() || TT.isPS4() || TT.isOSWindows())
862     return false;
863 
864   return true;
865 }
866 
867 GlobalVariable *
868 InstrProfiling::createRegionCounters(InstrProfInstBase *Inc, StringRef Name,
869                                      GlobalValue::LinkageTypes Linkage) {
870   uint64_t NumCounters = Inc->getNumCounters()->getZExtValue();
871   auto &Ctx = M->getContext();
872   GlobalVariable *GV;
873   if (isa<InstrProfCoverInst>(Inc)) {
874     auto *CounterTy = Type::getInt8Ty(Ctx);
875     auto *CounterArrTy = ArrayType::get(CounterTy, NumCounters);
876     // TODO: `Constant::getAllOnesValue()` does not yet accept an array type.
877     std::vector<Constant *> InitialValues(NumCounters,
878                                           Constant::getAllOnesValue(CounterTy));
879     GV = new GlobalVariable(*M, CounterArrTy, false, Linkage,
880                             ConstantArray::get(CounterArrTy, InitialValues),
881                             Name);
882     GV->setAlignment(Align(1));
883   } else {
884     auto *CounterTy = ArrayType::get(Type::getInt64Ty(Ctx), NumCounters);
885     GV = new GlobalVariable(*M, CounterTy, false, Linkage,
886                             Constant::getNullValue(CounterTy), Name);
887     GV->setAlignment(Align(8));
888   }
889   return GV;
890 }
891 
892 GlobalVariable *
893 InstrProfiling::getOrCreateRegionCounters(InstrProfInstBase *Inc) {
894   GlobalVariable *NamePtr = Inc->getName();
895   auto &PD = ProfileDataMap[NamePtr];
896   if (PD.RegionCounters)
897     return PD.RegionCounters;
898 
899   // Match the linkage and visibility of the name global.
900   Function *Fn = Inc->getParent()->getParent();
901   GlobalValue::LinkageTypes Linkage = NamePtr->getLinkage();
902   GlobalValue::VisibilityTypes Visibility = NamePtr->getVisibility();
903 
904   // Use internal rather than private linkage so the counter variable shows up
905   // in the symbol table when using debug info for correlation.
906   if (DebugInfoCorrelate && TT.isOSBinFormatMachO() &&
907       Linkage == GlobalValue::PrivateLinkage)
908     Linkage = GlobalValue::InternalLinkage;
909 
910   // Due to the limitation of binder as of 2021/09/28, the duplicate weak
911   // symbols in the same csect won't be discarded. When there are duplicate weak
912   // symbols, we can NOT guarantee that the relocations get resolved to the
913   // intended weak symbol, so we can not ensure the correctness of the relative
914   // CounterPtr, so we have to use private linkage for counter and data symbols.
915   if (TT.isOSBinFormatXCOFF()) {
916     Linkage = GlobalValue::PrivateLinkage;
917     Visibility = GlobalValue::DefaultVisibility;
918   }
919   // Move the name variable to the right section. Place them in a COMDAT group
920   // if the associated function is a COMDAT. This will make sure that only one
921   // copy of counters of the COMDAT function will be emitted after linking. Keep
922   // in mind that this pass may run before the inliner, so we need to create a
923   // new comdat group for the counters and profiling data. If we use the comdat
924   // of the parent function, that will result in relocations against discarded
925   // sections.
926   //
927   // If the data variable is referenced by code,  counters and data have to be
928   // in different comdats for COFF because the Visual C++ linker will report
929   // duplicate symbol errors if there are multiple external symbols with the
930   // same name marked IMAGE_COMDAT_SELECT_ASSOCIATIVE.
931   //
932   // For ELF, when not using COMDAT, put counters, data and values into a
933   // nodeduplicate COMDAT which is lowered to a zero-flag section group. This
934   // allows -z start-stop-gc to discard the entire group when the function is
935   // discarded.
936   bool DataReferencedByCode = profDataReferencedByCode(*M);
937   bool NeedComdat = needsComdatForCounter(*Fn, *M);
938   bool Renamed;
939   std::string CntsVarName =
940       getVarName(Inc, getInstrProfCountersVarPrefix(), Renamed);
941   std::string DataVarName =
942       getVarName(Inc, getInstrProfDataVarPrefix(), Renamed);
943   auto MaybeSetComdat = [&](GlobalVariable *GV) {
944     bool UseComdat = (NeedComdat || TT.isOSBinFormatELF());
945     if (UseComdat) {
946       StringRef GroupName = TT.isOSBinFormatCOFF() && DataReferencedByCode
947                                 ? GV->getName()
948                                 : CntsVarName;
949       Comdat *C = M->getOrInsertComdat(GroupName);
950       if (!NeedComdat)
951         C->setSelectionKind(Comdat::NoDeduplicate);
952       GV->setComdat(C);
953     }
954   };
955 
956   uint64_t NumCounters = Inc->getNumCounters()->getZExtValue();
957   LLVMContext &Ctx = M->getContext();
958 
959   auto *CounterPtr = createRegionCounters(Inc, CntsVarName, Linkage);
960   CounterPtr->setVisibility(Visibility);
961   CounterPtr->setSection(
962       getInstrProfSectionName(IPSK_cnts, TT.getObjectFormat()));
963   MaybeSetComdat(CounterPtr);
964   CounterPtr->setLinkage(Linkage);
965   PD.RegionCounters = CounterPtr;
966   if (DebugInfoCorrelate) {
967     if (auto *SP = Fn->getSubprogram()) {
968       DIBuilder DB(*M, true, SP->getUnit());
969       Metadata *FunctionNameAnnotation[] = {
970           MDString::get(Ctx, InstrProfCorrelator::FunctionNameAttributeName),
971           MDString::get(Ctx, getPGOFuncNameVarInitializer(NamePtr)),
972       };
973       Metadata *CFGHashAnnotation[] = {
974           MDString::get(Ctx, InstrProfCorrelator::CFGHashAttributeName),
975           ConstantAsMetadata::get(Inc->getHash()),
976       };
977       Metadata *NumCountersAnnotation[] = {
978           MDString::get(Ctx, InstrProfCorrelator::NumCountersAttributeName),
979           ConstantAsMetadata::get(Inc->getNumCounters()),
980       };
981       auto Annotations = DB.getOrCreateArray({
982           MDNode::get(Ctx, FunctionNameAnnotation),
983           MDNode::get(Ctx, CFGHashAnnotation),
984           MDNode::get(Ctx, NumCountersAnnotation),
985       });
986       auto *DICounter = DB.createGlobalVariableExpression(
987           SP, CounterPtr->getName(), /*LinkageName=*/StringRef(), SP->getFile(),
988           /*LineNo=*/0, DB.createUnspecifiedType("Profile Data Type"),
989           CounterPtr->hasLocalLinkage(), /*IsDefined=*/true, /*Expr=*/nullptr,
990           /*Decl=*/nullptr, /*TemplateParams=*/nullptr, /*AlignInBits=*/0,
991           Annotations);
992       CounterPtr->addDebugInfo(DICounter);
993       DB.finalize();
994     } else {
995       std::string Msg = ("Missing debug info for function " + Fn->getName() +
996                          "; required for profile correlation.")
997                             .str();
998       Ctx.diagnose(
999           DiagnosticInfoPGOProfile(M->getName().data(), Msg, DS_Warning));
1000     }
1001   }
1002 
1003   auto *Int8PtrTy = Type::getInt8PtrTy(Ctx);
1004   // Allocate statically the array of pointers to value profile nodes for
1005   // the current function.
1006   Constant *ValuesPtrExpr = ConstantPointerNull::get(Int8PtrTy);
1007   uint64_t NS = 0;
1008   for (uint32_t Kind = IPVK_First; Kind <= IPVK_Last; ++Kind)
1009     NS += PD.NumValueSites[Kind];
1010   if (NS > 0 && ValueProfileStaticAlloc &&
1011       !needsRuntimeRegistrationOfSectionRange(TT)) {
1012     ArrayType *ValuesTy = ArrayType::get(Type::getInt64Ty(Ctx), NS);
1013     auto *ValuesVar = new GlobalVariable(
1014         *M, ValuesTy, false, Linkage, Constant::getNullValue(ValuesTy),
1015         getVarName(Inc, getInstrProfValuesVarPrefix(), Renamed));
1016     ValuesVar->setVisibility(Visibility);
1017     ValuesVar->setSection(
1018         getInstrProfSectionName(IPSK_vals, TT.getObjectFormat()));
1019     ValuesVar->setAlignment(Align(8));
1020     MaybeSetComdat(ValuesVar);
1021     ValuesPtrExpr =
1022         ConstantExpr::getBitCast(ValuesVar, Type::getInt8PtrTy(Ctx));
1023   }
1024 
1025   if (DebugInfoCorrelate) {
1026     // Mark the counter variable as used so that it isn't optimized out.
1027     CompilerUsedVars.push_back(PD.RegionCounters);
1028     return PD.RegionCounters;
1029   }
1030 
1031   // Create data variable.
1032   auto *IntPtrTy = M->getDataLayout().getIntPtrType(M->getContext());
1033   auto *Int16Ty = Type::getInt16Ty(Ctx);
1034   auto *Int16ArrayTy = ArrayType::get(Int16Ty, IPVK_Last + 1);
1035   Type *DataTypes[] = {
1036 #define INSTR_PROF_DATA(Type, LLVMType, Name, Init) LLVMType,
1037 #include "llvm/ProfileData/InstrProfData.inc"
1038   };
1039   auto *DataTy = StructType::get(Ctx, makeArrayRef(DataTypes));
1040 
1041   Constant *FunctionAddr = shouldRecordFunctionAddr(Fn)
1042                                ? ConstantExpr::getBitCast(Fn, Int8PtrTy)
1043                                : ConstantPointerNull::get(Int8PtrTy);
1044 
1045   Constant *Int16ArrayVals[IPVK_Last + 1];
1046   for (uint32_t Kind = IPVK_First; Kind <= IPVK_Last; ++Kind)
1047     Int16ArrayVals[Kind] = ConstantInt::get(Int16Ty, PD.NumValueSites[Kind]);
1048 
1049   // If the data variable is not referenced by code (if we don't emit
1050   // @llvm.instrprof.value.profile, NS will be 0), and the counter keeps the
1051   // data variable live under linker GC, the data variable can be private. This
1052   // optimization applies to ELF.
1053   //
1054   // On COFF, a comdat leader cannot be local so we require DataReferencedByCode
1055   // to be false.
1056   //
1057   // If profd is in a deduplicate comdat, NS==0 with a hash suffix guarantees
1058   // that other copies must have the same CFG and cannot have value profiling.
1059   // If no hash suffix, other profd copies may be referenced by code.
1060   if (NS == 0 && !(DataReferencedByCode && NeedComdat && !Renamed) &&
1061       (TT.isOSBinFormatELF() ||
1062        (!DataReferencedByCode && TT.isOSBinFormatCOFF()))) {
1063     Linkage = GlobalValue::PrivateLinkage;
1064     Visibility = GlobalValue::DefaultVisibility;
1065   }
1066   auto *Data =
1067       new GlobalVariable(*M, DataTy, false, Linkage, nullptr, DataVarName);
1068   // Reference the counter variable with a label difference (link-time
1069   // constant).
1070   auto *RelativeCounterPtr =
1071       ConstantExpr::getSub(ConstantExpr::getPtrToInt(CounterPtr, IntPtrTy),
1072                            ConstantExpr::getPtrToInt(Data, IntPtrTy));
1073 
1074   Constant *DataVals[] = {
1075 #define INSTR_PROF_DATA(Type, LLVMType, Name, Init) Init,
1076 #include "llvm/ProfileData/InstrProfData.inc"
1077   };
1078   Data->setInitializer(ConstantStruct::get(DataTy, DataVals));
1079 
1080   Data->setVisibility(Visibility);
1081   Data->setSection(getInstrProfSectionName(IPSK_data, TT.getObjectFormat()));
1082   Data->setAlignment(Align(INSTR_PROF_DATA_ALIGNMENT));
1083   MaybeSetComdat(Data);
1084   Data->setLinkage(Linkage);
1085 
1086   PD.DataVar = Data;
1087 
1088   // Mark the data variable as used so that it isn't stripped out.
1089   CompilerUsedVars.push_back(Data);
1090   // Now that the linkage set by the FE has been passed to the data and counter
1091   // variables, reset Name variable's linkage and visibility to private so that
1092   // it can be removed later by the compiler.
1093   NamePtr->setLinkage(GlobalValue::PrivateLinkage);
1094   // Collect the referenced names to be used by emitNameData.
1095   ReferencedNames.push_back(NamePtr);
1096 
1097   return PD.RegionCounters;
1098 }
1099 
1100 void InstrProfiling::emitVNodes() {
1101   if (!ValueProfileStaticAlloc)
1102     return;
1103 
1104   // For now only support this on platforms that do
1105   // not require runtime registration to discover
1106   // named section start/end.
1107   if (needsRuntimeRegistrationOfSectionRange(TT))
1108     return;
1109 
1110   size_t TotalNS = 0;
1111   for (auto &PD : ProfileDataMap) {
1112     for (uint32_t Kind = IPVK_First; Kind <= IPVK_Last; ++Kind)
1113       TotalNS += PD.second.NumValueSites[Kind];
1114   }
1115 
1116   if (!TotalNS)
1117     return;
1118 
1119   uint64_t NumCounters = TotalNS * NumCountersPerValueSite;
1120 // Heuristic for small programs with very few total value sites.
1121 // The default value of vp-counters-per-site is chosen based on
1122 // the observation that large apps usually have a low percentage
1123 // of value sites that actually have any profile data, and thus
1124 // the average number of counters per site is low. For small
1125 // apps with very few sites, this may not be true. Bump up the
1126 // number of counters in this case.
1127 #define INSTR_PROF_MIN_VAL_COUNTS 10
1128   if (NumCounters < INSTR_PROF_MIN_VAL_COUNTS)
1129     NumCounters = std::max(INSTR_PROF_MIN_VAL_COUNTS, (int)NumCounters * 2);
1130 
1131   auto &Ctx = M->getContext();
1132   Type *VNodeTypes[] = {
1133 #define INSTR_PROF_VALUE_NODE(Type, LLVMType, Name, Init) LLVMType,
1134 #include "llvm/ProfileData/InstrProfData.inc"
1135   };
1136   auto *VNodeTy = StructType::get(Ctx, makeArrayRef(VNodeTypes));
1137 
1138   ArrayType *VNodesTy = ArrayType::get(VNodeTy, NumCounters);
1139   auto *VNodesVar = new GlobalVariable(
1140       *M, VNodesTy, false, GlobalValue::PrivateLinkage,
1141       Constant::getNullValue(VNodesTy), getInstrProfVNodesVarName());
1142   VNodesVar->setSection(
1143       getInstrProfSectionName(IPSK_vnodes, TT.getObjectFormat()));
1144   // VNodesVar is used by runtime but not referenced via relocation by other
1145   // sections. Conservatively make it linker retained.
1146   UsedVars.push_back(VNodesVar);
1147 }
1148 
1149 void InstrProfiling::emitNameData() {
1150   std::string UncompressedData;
1151 
1152   if (ReferencedNames.empty())
1153     return;
1154 
1155   std::string CompressedNameStr;
1156   if (Error E = collectPGOFuncNameStrings(ReferencedNames, CompressedNameStr,
1157                                           DoInstrProfNameCompression)) {
1158     report_fatal_error(Twine(toString(std::move(E))), false);
1159   }
1160 
1161   auto &Ctx = M->getContext();
1162   auto *NamesVal =
1163       ConstantDataArray::getString(Ctx, StringRef(CompressedNameStr), false);
1164   NamesVar = new GlobalVariable(*M, NamesVal->getType(), true,
1165                                 GlobalValue::PrivateLinkage, NamesVal,
1166                                 getInstrProfNamesVarName());
1167   NamesSize = CompressedNameStr.size();
1168   NamesVar->setSection(
1169       getInstrProfSectionName(IPSK_name, TT.getObjectFormat()));
1170   // On COFF, it's important to reduce the alignment down to 1 to prevent the
1171   // linker from inserting padding before the start of the names section or
1172   // between names entries.
1173   NamesVar->setAlignment(Align(1));
1174   // NamesVar is used by runtime but not referenced via relocation by other
1175   // sections. Conservatively make it linker retained.
1176   UsedVars.push_back(NamesVar);
1177 
1178   for (auto *NamePtr : ReferencedNames)
1179     NamePtr->eraseFromParent();
1180 }
1181 
1182 void InstrProfiling::emitRegistration() {
1183   if (!needsRuntimeRegistrationOfSectionRange(TT))
1184     return;
1185 
1186   // Construct the function.
1187   auto *VoidTy = Type::getVoidTy(M->getContext());
1188   auto *VoidPtrTy = Type::getInt8PtrTy(M->getContext());
1189   auto *Int64Ty = Type::getInt64Ty(M->getContext());
1190   auto *RegisterFTy = FunctionType::get(VoidTy, false);
1191   auto *RegisterF = Function::Create(RegisterFTy, GlobalValue::InternalLinkage,
1192                                      getInstrProfRegFuncsName(), M);
1193   RegisterF->setUnnamedAddr(GlobalValue::UnnamedAddr::Global);
1194   if (Options.NoRedZone)
1195     RegisterF->addFnAttr(Attribute::NoRedZone);
1196 
1197   auto *RuntimeRegisterTy = FunctionType::get(VoidTy, VoidPtrTy, false);
1198   auto *RuntimeRegisterF =
1199       Function::Create(RuntimeRegisterTy, GlobalVariable::ExternalLinkage,
1200                        getInstrProfRegFuncName(), M);
1201 
1202   IRBuilder<> IRB(BasicBlock::Create(M->getContext(), "", RegisterF));
1203   for (Value *Data : CompilerUsedVars)
1204     if (!isa<Function>(Data))
1205       IRB.CreateCall(RuntimeRegisterF, IRB.CreateBitCast(Data, VoidPtrTy));
1206   for (Value *Data : UsedVars)
1207     if (Data != NamesVar && !isa<Function>(Data))
1208       IRB.CreateCall(RuntimeRegisterF, IRB.CreateBitCast(Data, VoidPtrTy));
1209 
1210   if (NamesVar) {
1211     Type *ParamTypes[] = {VoidPtrTy, Int64Ty};
1212     auto *NamesRegisterTy =
1213         FunctionType::get(VoidTy, makeArrayRef(ParamTypes), false);
1214     auto *NamesRegisterF =
1215         Function::Create(NamesRegisterTy, GlobalVariable::ExternalLinkage,
1216                          getInstrProfNamesRegFuncName(), M);
1217     IRB.CreateCall(NamesRegisterF, {IRB.CreateBitCast(NamesVar, VoidPtrTy),
1218                                     IRB.getInt64(NamesSize)});
1219   }
1220 
1221   IRB.CreateRetVoid();
1222 }
1223 
1224 bool InstrProfiling::emitRuntimeHook() {
1225   // We expect the linker to be invoked with -u<hook_var> flag for Linux
1226   // in which case there is no need to emit the external variable.
1227   if (TT.isOSLinux())
1228     return false;
1229 
1230   // If the module's provided its own runtime, we don't need to do anything.
1231   if (M->getGlobalVariable(getInstrProfRuntimeHookVarName()))
1232     return false;
1233 
1234   // Declare an external variable that will pull in the runtime initialization.
1235   auto *Int32Ty = Type::getInt32Ty(M->getContext());
1236   auto *Var =
1237       new GlobalVariable(*M, Int32Ty, false, GlobalValue::ExternalLinkage,
1238                          nullptr, getInstrProfRuntimeHookVarName());
1239 
1240   if (TT.isOSBinFormatELF()) {
1241     // Mark the user variable as used so that it isn't stripped out.
1242     CompilerUsedVars.push_back(Var);
1243   } else {
1244     // Make a function that uses it.
1245     auto *User = Function::Create(FunctionType::get(Int32Ty, false),
1246                                   GlobalValue::LinkOnceODRLinkage,
1247                                   getInstrProfRuntimeHookVarUseFuncName(), M);
1248     User->addFnAttr(Attribute::NoInline);
1249     if (Options.NoRedZone)
1250       User->addFnAttr(Attribute::NoRedZone);
1251     User->setVisibility(GlobalValue::HiddenVisibility);
1252     if (TT.supportsCOMDAT())
1253       User->setComdat(M->getOrInsertComdat(User->getName()));
1254 
1255     IRBuilder<> IRB(BasicBlock::Create(M->getContext(), "", User));
1256     auto *Load = IRB.CreateLoad(Int32Ty, Var);
1257     IRB.CreateRet(Load);
1258 
1259     // Mark the function as used so that it isn't stripped out.
1260     CompilerUsedVars.push_back(User);
1261   }
1262   return true;
1263 }
1264 
1265 void InstrProfiling::emitUses() {
1266   // The metadata sections are parallel arrays. Optimizers (e.g.
1267   // GlobalOpt/ConstantMerge) may not discard associated sections as a unit, so
1268   // we conservatively retain all unconditionally in the compiler.
1269   //
1270   // On ELF and Mach-O, the linker can guarantee the associated sections will be
1271   // retained or discarded as a unit, so llvm.compiler.used is sufficient.
1272   // Similarly on COFF, if prof data is not referenced by code we use one comdat
1273   // and ensure this GC property as well. Otherwise, we have to conservatively
1274   // make all of the sections retained by the linker.
1275   if (TT.isOSBinFormatELF() || TT.isOSBinFormatMachO() ||
1276       (TT.isOSBinFormatCOFF() && !profDataReferencedByCode(*M)))
1277     appendToCompilerUsed(*M, CompilerUsedVars);
1278   else
1279     appendToUsed(*M, CompilerUsedVars);
1280 
1281   // We do not add proper references from used metadata sections to NamesVar and
1282   // VNodesVar, so we have to be conservative and place them in llvm.used
1283   // regardless of the target,
1284   appendToUsed(*M, UsedVars);
1285 }
1286 
1287 void InstrProfiling::emitInitialization() {
1288   // Create ProfileFileName variable. Don't don't this for the
1289   // context-sensitive instrumentation lowering: This lowering is after
1290   // LTO/ThinLTO linking. Pass PGOInstrumentationGenCreateVar should
1291   // have already create the variable before LTO/ThinLTO linking.
1292   if (!IsCS)
1293     createProfileFileNameVar(*M, Options.InstrProfileOutput);
1294   Function *RegisterF = M->getFunction(getInstrProfRegFuncsName());
1295   if (!RegisterF)
1296     return;
1297 
1298   // Create the initialization function.
1299   auto *VoidTy = Type::getVoidTy(M->getContext());
1300   auto *F = Function::Create(FunctionType::get(VoidTy, false),
1301                              GlobalValue::InternalLinkage,
1302                              getInstrProfInitFuncName(), M);
1303   F->setUnnamedAddr(GlobalValue::UnnamedAddr::Global);
1304   F->addFnAttr(Attribute::NoInline);
1305   if (Options.NoRedZone)
1306     F->addFnAttr(Attribute::NoRedZone);
1307 
1308   // Add the basic block and the necessary calls.
1309   IRBuilder<> IRB(BasicBlock::Create(M->getContext(), "", F));
1310   IRB.CreateCall(RegisterF, {});
1311   IRB.CreateRetVoid();
1312 
1313   appendToGlobalCtors(*M, F, 0);
1314 }
1315