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Rong Xuf430ae42015-12-09 18:08:16 +00001//===-- PGOInstrumentation.cpp - MST-based PGO Instrumentation ------------===//
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 file implements PGO instrumentation using a minimum spanning tree based
11// on the following paper:
12// [1] Donald E. Knuth, Francis R. Stevenson. Optimal measurement of points
13// for program frequency counts. BIT Numerical Mathematics 1973, Volume 13,
14// Issue 3, pp 313-322
15// The idea of the algorithm based on the fact that for each node (except for
16// the entry and exit), the sum of incoming edge counts equals the sum of
17// outgoing edge counts. The count of edge on spanning tree can be derived from
18// those edges not on the spanning tree. Knuth proves this method instruments
19// the minimum number of edges.
20//
21// The minimal spanning tree here is actually a maximum weight tree -- on-tree
22// edges have higher frequencies (more likely to execute). The idea is to
23// instrument those less frequently executed edges to reduce the runtime
24// overhead of instrumented binaries.
25//
26// This file contains two passes:
27// (1) Pass PGOInstrumentationGen which instruments the IR to generate edge
28// count profile, and
29// (2) Pass PGOInstrumentationUse which reads the edge count profile and
30// annotates the branch weights.
31// To get the precise counter information, These two passes need to invoke at
32// the same compilation point (so they see the same IR). For pass
33// PGOInstrumentationGen, the real work is done in instrumentOneFunc(). For
34// pass PGOInstrumentationUse, the real work in done in class PGOUseFunc and
35// the profile is opened in module level and passed to each PGOUseFunc instance.
36// The shared code for PGOInstrumentationGen and PGOInstrumentationUse is put
37// in class FuncPGOInstrumentation.
38//
39// Class PGOEdge represents a CFG edge and some auxiliary information. Class
40// BBInfo contains auxiliary information for each BB. These two classes are used
41// in pass PGOInstrumentationGen. Class PGOUseEdge and UseBBInfo are the derived
42// class of PGOEdge and BBInfo, respectively. They contains extra data structure
43// used in populating profile counters.
44// The MST implementation is in Class CFGMST (CFGMST.h).
45//
46//===----------------------------------------------------------------------===//
47
Rong Xuf430ae42015-12-09 18:08:16 +000048#include "CFGMST.h"
49#include "llvm/ADT/DenseMap.h"
50#include "llvm/ADT/STLExtras.h"
51#include "llvm/ADT/Statistic.h"
52#include "llvm/Analysis/BlockFrequencyInfo.h"
53#include "llvm/Analysis/BranchProbabilityInfo.h"
54#include "llvm/Analysis/CFG.h"
Rong Xued9fec72016-01-21 18:11:44 +000055#include "llvm/IR/CallSite.h"
Rong Xuf430ae42015-12-09 18:08:16 +000056#include "llvm/IR/DiagnosticInfo.h"
57#include "llvm/IR/IRBuilder.h"
58#include "llvm/IR/InstIterator.h"
Rong Xued9fec72016-01-21 18:11:44 +000059#include "llvm/IR/InstVisitor.h"
Rong Xuf430ae42015-12-09 18:08:16 +000060#include "llvm/IR/Instructions.h"
61#include "llvm/IR/IntrinsicInst.h"
62#include "llvm/IR/MDBuilder.h"
63#include "llvm/IR/Module.h"
64#include "llvm/Pass.h"
65#include "llvm/ProfileData/InstrProfReader.h"
66#include "llvm/Support/BranchProbability.h"
67#include "llvm/Support/Debug.h"
68#include "llvm/Support/JamCRC.h"
Rong Xued9fec72016-01-21 18:11:44 +000069#include "llvm/Transforms/Instrumentation.h"
Rong Xuf430ae42015-12-09 18:08:16 +000070#include "llvm/Transforms/Utils/BasicBlockUtils.h"
71#include <string>
72#include <utility>
73#include <vector>
74
75using namespace llvm;
76
77#define DEBUG_TYPE "pgo-instrumentation"
78
79STATISTIC(NumOfPGOInstrument, "Number of edges instrumented.");
80STATISTIC(NumOfPGOEdge, "Number of edges.");
81STATISTIC(NumOfPGOBB, "Number of basic-blocks.");
82STATISTIC(NumOfPGOSplit, "Number of critical edge splits.");
83STATISTIC(NumOfPGOFunc, "Number of functions having valid profile counts.");
84STATISTIC(NumOfPGOMismatch, "Number of functions having mismatch profile.");
85STATISTIC(NumOfPGOMissing, "Number of functions without profile.");
Rong Xued9fec72016-01-21 18:11:44 +000086STATISTIC(NumOfPGOICall, "Number of indirect call value instrumentation.");
Rong Xuf430ae42015-12-09 18:08:16 +000087
88// Command line option to specify the file to read profile from. This is
89// mainly used for testing.
90static cl::opt<std::string>
91 PGOTestProfileFile("pgo-test-profile-file", cl::init(""), cl::Hidden,
92 cl::value_desc("filename"),
93 cl::desc("Specify the path of profile data file. This is"
94 "mainly for test purpose."));
95
Rong Xued9fec72016-01-21 18:11:44 +000096// Command line options to disable value profiling. The default is false:
97// i.e. vaule profiling is enabled by default. This is for debug purpose.
98static cl::opt<bool>
99DisableValueProfiling("disable-vp", cl::init(false),
100 cl::Hidden,
101 cl::desc("Disable Value Profiling"));
102
Rong Xuf430ae42015-12-09 18:08:16 +0000103namespace {
104class PGOInstrumentationGen : public ModulePass {
105public:
106 static char ID;
107
108 PGOInstrumentationGen() : ModulePass(ID) {
109 initializePGOInstrumentationGenPass(*PassRegistry::getPassRegistry());
110 }
111
112 const char *getPassName() const override {
113 return "PGOInstrumentationGenPass";
114 }
115
116private:
117 bool runOnModule(Module &M) override;
118
119 void getAnalysisUsage(AnalysisUsage &AU) const override {
120 AU.addRequired<BlockFrequencyInfoWrapperPass>();
121 }
122};
123
124class PGOInstrumentationUse : public ModulePass {
125public:
126 static char ID;
127
128 // Provide the profile filename as the parameter.
129 PGOInstrumentationUse(std::string Filename = "")
130 : ModulePass(ID), ProfileFileName(Filename) {
131 if (!PGOTestProfileFile.empty())
132 ProfileFileName = PGOTestProfileFile;
133 initializePGOInstrumentationUsePass(*PassRegistry::getPassRegistry());
134 }
135
136 const char *getPassName() const override {
137 return "PGOInstrumentationUsePass";
138 }
139
140private:
141 std::string ProfileFileName;
142 std::unique_ptr<IndexedInstrProfReader> PGOReader;
143 bool runOnModule(Module &M) override;
144
145 void getAnalysisUsage(AnalysisUsage &AU) const override {
146 AU.addRequired<BlockFrequencyInfoWrapperPass>();
147 }
148};
149} // end anonymous namespace
150
151char PGOInstrumentationGen::ID = 0;
152INITIALIZE_PASS_BEGIN(PGOInstrumentationGen, "pgo-instr-gen",
153 "PGO instrumentation.", false, false)
154INITIALIZE_PASS_DEPENDENCY(BlockFrequencyInfoWrapperPass)
155INITIALIZE_PASS_DEPENDENCY(BranchProbabilityInfoWrapperPass)
156INITIALIZE_PASS_END(PGOInstrumentationGen, "pgo-instr-gen",
157 "PGO instrumentation.", false, false)
158
159ModulePass *llvm::createPGOInstrumentationGenPass() {
160 return new PGOInstrumentationGen();
161}
162
163char PGOInstrumentationUse::ID = 0;
164INITIALIZE_PASS_BEGIN(PGOInstrumentationUse, "pgo-instr-use",
165 "Read PGO instrumentation profile.", false, false)
166INITIALIZE_PASS_DEPENDENCY(BlockFrequencyInfoWrapperPass)
167INITIALIZE_PASS_DEPENDENCY(BranchProbabilityInfoWrapperPass)
168INITIALIZE_PASS_END(PGOInstrumentationUse, "pgo-instr-use",
169 "Read PGO instrumentation profile.", false, false)
170
171ModulePass *llvm::createPGOInstrumentationUsePass(StringRef Filename) {
172 return new PGOInstrumentationUse(Filename.str());
173}
174
175namespace {
176/// \brief An MST based instrumentation for PGO
177///
178/// Implements a Minimum Spanning Tree (MST) based instrumentation for PGO
179/// in the function level.
180struct PGOEdge {
181 // This class implements the CFG edges. Note the CFG can be a multi-graph.
182 // So there might be multiple edges with same SrcBB and DestBB.
183 const BasicBlock *SrcBB;
184 const BasicBlock *DestBB;
185 uint64_t Weight;
186 bool InMST;
187 bool Removed;
188 bool IsCritical;
189 PGOEdge(const BasicBlock *Src, const BasicBlock *Dest, unsigned W = 1)
190 : SrcBB(Src), DestBB(Dest), Weight(W), InMST(false), Removed(false),
191 IsCritical(false) {}
192 // Return the information string of an edge.
193 const std::string infoString() const {
194 return (Twine(Removed ? "-" : " ") + (InMST ? " " : "*") +
195 (IsCritical ? "c" : " ") + " W=" + Twine(Weight)).str();
196 }
197};
198
199// This class stores the auxiliary information for each BB.
200struct BBInfo {
201 BBInfo *Group;
202 uint32_t Index;
203 uint32_t Rank;
204
205 BBInfo(unsigned IX) : Group(this), Index(IX), Rank(0) {}
206
207 // Return the information string of this object.
208 const std::string infoString() const {
209 return (Twine("Index=") + Twine(Index)).str();
210 }
211};
212
213// This class implements the CFG edges. Note the CFG can be a multi-graph.
214template <class Edge, class BBInfo> class FuncPGOInstrumentation {
215private:
216 Function &F;
217 void computeCFGHash();
218
219public:
220 std::string FuncName;
221 GlobalVariable *FuncNameVar;
222 // CFG hash value for this function.
223 uint64_t FunctionHash;
224
225 // The Minimum Spanning Tree of function CFG.
226 CFGMST<Edge, BBInfo> MST;
227
228 // Give an edge, find the BB that will be instrumented.
229 // Return nullptr if there is no BB to be instrumented.
230 BasicBlock *getInstrBB(Edge *E);
231
232 // Return the auxiliary BB information.
233 BBInfo &getBBInfo(const BasicBlock *BB) const { return MST.getBBInfo(BB); }
234
235 // Dump edges and BB information.
236 void dumpInfo(std::string Str = "") const {
237 MST.dumpEdges(dbgs(), Twine("Dump Function ") + FuncName + " Hash: " +
Rong Xued9fec72016-01-21 18:11:44 +0000238 Twine(FunctionHash) + "\t" + Str);
Rong Xuf430ae42015-12-09 18:08:16 +0000239 }
240
241 FuncPGOInstrumentation(Function &Func, bool CreateGlobalVar = false,
242 BranchProbabilityInfo *BPI = nullptr,
243 BlockFrequencyInfo *BFI = nullptr)
244 : F(Func), FunctionHash(0), MST(F, BPI, BFI) {
245 FuncName = getPGOFuncName(F);
246 computeCFGHash();
247 DEBUG(dumpInfo("after CFGMST"));
248
249 NumOfPGOBB += MST.BBInfos.size();
250 for (auto &E : MST.AllEdges) {
251 if (E->Removed)
252 continue;
253 NumOfPGOEdge++;
254 if (!E->InMST)
255 NumOfPGOInstrument++;
256 }
257
258 if (CreateGlobalVar)
259 FuncNameVar = createPGOFuncNameVar(F, FuncName);
260 };
261};
262
263// Compute Hash value for the CFG: the lower 32 bits are CRC32 of the index
264// value of each BB in the CFG. The higher 32 bits record the number of edges.
265template <class Edge, class BBInfo>
266void FuncPGOInstrumentation<Edge, BBInfo>::computeCFGHash() {
267 std::vector<char> Indexes;
268 JamCRC JC;
269 for (auto &BB : F) {
270 const TerminatorInst *TI = BB.getTerminator();
271 for (unsigned I = 0, E = TI->getNumSuccessors(); I != E; ++I) {
272 BasicBlock *Succ = TI->getSuccessor(I);
273 uint32_t Index = getBBInfo(Succ).Index;
274 for (int J = 0; J < 4; J++)
275 Indexes.push_back((char)(Index >> (J * 8)));
276 }
277 }
278 JC.update(Indexes);
279 FunctionHash = (uint64_t)MST.AllEdges.size() << 32 | JC.getCRC();
280}
281
282// Given a CFG E to be instrumented, find which BB to place the instrumented
283// code. The function will split the critical edge if necessary.
284template <class Edge, class BBInfo>
285BasicBlock *FuncPGOInstrumentation<Edge, BBInfo>::getInstrBB(Edge *E) {
286 if (E->InMST || E->Removed)
287 return nullptr;
288
289 BasicBlock *SrcBB = const_cast<BasicBlock *>(E->SrcBB);
290 BasicBlock *DestBB = const_cast<BasicBlock *>(E->DestBB);
291 // For a fake edge, instrument the real BB.
292 if (SrcBB == nullptr)
293 return DestBB;
294 if (DestBB == nullptr)
295 return SrcBB;
296
297 // Instrument the SrcBB if it has a single successor,
298 // otherwise, the DestBB if this is not a critical edge.
299 TerminatorInst *TI = SrcBB->getTerminator();
300 if (TI->getNumSuccessors() <= 1)
301 return SrcBB;
302 if (!E->IsCritical)
303 return DestBB;
304
305 // For a critical edge, we have to split. Instrument the newly
306 // created BB.
307 NumOfPGOSplit++;
308 DEBUG(dbgs() << "Split critical edge: " << getBBInfo(SrcBB).Index << " --> "
309 << getBBInfo(DestBB).Index << "\n");
310 unsigned SuccNum = GetSuccessorNumber(SrcBB, DestBB);
311 BasicBlock *InstrBB = SplitCriticalEdge(TI, SuccNum);
312 assert(InstrBB && "Critical edge is not split");
313
314 E->Removed = true;
315 return InstrBB;
316}
317
Rong Xued9fec72016-01-21 18:11:44 +0000318// Visitor class that finds all indirect call sites.
319struct PGOIndirectCallSiteVisitor
320 : public InstVisitor<PGOIndirectCallSiteVisitor> {
321 std::vector<CallInst *> IndirectCallInsts;
322 PGOIndirectCallSiteVisitor() {}
323
324 void visitCallInst(CallInst &I) {
325 CallSite CS(&I);
326 if (CS.getCalledFunction() || !CS.getCalledValue())
327 return;
328 IndirectCallInsts.push_back(&I);
329 }
330};
331
332// Visit all edge and instrument the edges not in MST, and do value profiling.
Rong Xuf430ae42015-12-09 18:08:16 +0000333// Critical edges will be split.
334static void instrumentOneFunc(Function &F, Module *M,
335 BranchProbabilityInfo *BPI,
336 BlockFrequencyInfo *BFI) {
337 unsigned NumCounters = 0;
338 FuncPGOInstrumentation<PGOEdge, BBInfo> FuncInfo(F, true, BPI, BFI);
339 for (auto &E : FuncInfo.MST.AllEdges) {
340 if (!E->InMST && !E->Removed)
341 NumCounters++;
342 }
343
344 uint32_t I = 0;
Rong Xued9fec72016-01-21 18:11:44 +0000345 Type *I8PtrTy = Type::getInt8PtrTy(M->getContext());
Rong Xuf430ae42015-12-09 18:08:16 +0000346 for (auto &E : FuncInfo.MST.AllEdges) {
347 BasicBlock *InstrBB = FuncInfo.getInstrBB(E.get());
348 if (!InstrBB)
349 continue;
350
351 IRBuilder<> Builder(InstrBB, InstrBB->getFirstInsertionPt());
352 assert(Builder.GetInsertPoint() != InstrBB->end() &&
353 "Cannot get the Instrumentation point");
Rong Xuf430ae42015-12-09 18:08:16 +0000354 Builder.CreateCall(
355 Intrinsic::getDeclaration(M, Intrinsic::instrprof_increment),
356 {llvm::ConstantExpr::getBitCast(FuncInfo.FuncNameVar, I8PtrTy),
357 Builder.getInt64(FuncInfo.FunctionHash), Builder.getInt32(NumCounters),
358 Builder.getInt32(I++)});
359 }
Rong Xued9fec72016-01-21 18:11:44 +0000360
361 if (DisableValueProfiling)
362 return;
363
364 unsigned NumIndirectCallSites = 0;
365 PGOIndirectCallSiteVisitor ICV;
366 ICV.visit(F);
367 for (auto &I : ICV.IndirectCallInsts) {
368 CallSite CS(I);
369 Value *Callee = CS.getCalledValue();
370 DEBUG(dbgs() << "Instrument one indirect call: CallSite Index = "
371 << NumIndirectCallSites << "\n");
372 IRBuilder<> Builder(I);
373 assert(Builder.GetInsertPoint() != I->getParent()->end() &&
374 "Cannot get the Instrumentation point");
375 Builder.CreateCall(
376 Intrinsic::getDeclaration(M, Intrinsic::instrprof_value_profile),
377 {llvm::ConstantExpr::getBitCast(FuncInfo.FuncNameVar, I8PtrTy),
378 Builder.getInt64(FuncInfo.FunctionHash),
379 Builder.CreatePtrToInt(Callee, Builder.getInt64Ty()),
380 Builder.getInt32(llvm::InstrProfValueKind::IPVK_IndirectCallTarget),
381 Builder.getInt32(NumIndirectCallSites++)});
382 }
383 NumOfPGOICall += NumIndirectCallSites;
Rong Xuf430ae42015-12-09 18:08:16 +0000384}
385
386// This class represents a CFG edge in profile use compilation.
387struct PGOUseEdge : public PGOEdge {
388 bool CountValid;
389 uint64_t CountValue;
390 PGOUseEdge(const BasicBlock *Src, const BasicBlock *Dest, unsigned W = 1)
391 : PGOEdge(Src, Dest, W), CountValid(false), CountValue(0) {}
392
393 // Set edge count value
394 void setEdgeCount(uint64_t Value) {
395 CountValue = Value;
396 CountValid = true;
397 }
398
399 // Return the information string for this object.
400 const std::string infoString() const {
401 if (!CountValid)
402 return PGOEdge::infoString();
403 return (Twine(PGOEdge::infoString()) + " Count=" + Twine(CountValue)).str();
404 }
405};
406
407typedef SmallVector<PGOUseEdge *, 2> DirectEdges;
408
409// This class stores the auxiliary information for each BB.
410struct UseBBInfo : public BBInfo {
411 uint64_t CountValue;
412 bool CountValid;
413 int32_t UnknownCountInEdge;
414 int32_t UnknownCountOutEdge;
415 DirectEdges InEdges;
416 DirectEdges OutEdges;
417 UseBBInfo(unsigned IX)
418 : BBInfo(IX), CountValue(0), CountValid(false), UnknownCountInEdge(0),
419 UnknownCountOutEdge(0) {}
420 UseBBInfo(unsigned IX, uint64_t C)
421 : BBInfo(IX), CountValue(C), CountValid(true), UnknownCountInEdge(0),
422 UnknownCountOutEdge(0) {}
423
424 // Set the profile count value for this BB.
425 void setBBInfoCount(uint64_t Value) {
426 CountValue = Value;
427 CountValid = true;
428 }
429
430 // Return the information string of this object.
431 const std::string infoString() const {
432 if (!CountValid)
433 return BBInfo::infoString();
434 return (Twine(BBInfo::infoString()) + " Count=" + Twine(CountValue)).str();
435 }
436};
437
438// Sum up the count values for all the edges.
439static uint64_t sumEdgeCount(const ArrayRef<PGOUseEdge *> Edges) {
440 uint64_t Total = 0;
441 for (auto &E : Edges) {
442 if (E->Removed)
443 continue;
444 Total += E->CountValue;
445 }
446 return Total;
447}
448
449class PGOUseFunc {
450private:
451 Function &F;
452 Module *M;
453 // This member stores the shared information with class PGOGenFunc.
454 FuncPGOInstrumentation<PGOUseEdge, UseBBInfo> FuncInfo;
455
456 // Return the auxiliary BB information.
457 UseBBInfo &getBBInfo(const BasicBlock *BB) const {
458 return FuncInfo.getBBInfo(BB);
459 }
460
461 // The maximum count value in the profile. This is only used in PGO use
462 // compilation.
463 uint64_t ProgramMaxCount;
464
465 // Find the Instrumented BB and set the value.
466 void setInstrumentedCounts(const std::vector<uint64_t> &CountFromProfile);
467
468 // Set the edge counter value for the unknown edge -- there should be only
469 // one unknown edge.
470 void setEdgeCount(DirectEdges &Edges, uint64_t Value);
471
472 // Return FuncName string;
473 const std::string getFuncName() const { return FuncInfo.FuncName; }
474
475 // Set the hot/cold inline hints based on the count values.
476 // FIXME: This function should be removed once the functionality in
477 // the inliner is implemented.
478 void applyFunctionAttributes(uint64_t EntryCount, uint64_t MaxCount) {
479 if (ProgramMaxCount == 0)
480 return;
481 // Threshold of the hot functions.
482 const BranchProbability HotFunctionThreshold(1, 100);
483 // Threshold of the cold functions.
484 const BranchProbability ColdFunctionThreshold(2, 10000);
485 if (EntryCount >= HotFunctionThreshold.scale(ProgramMaxCount))
486 F.addFnAttr(llvm::Attribute::InlineHint);
487 else if (MaxCount <= ColdFunctionThreshold.scale(ProgramMaxCount))
488 F.addFnAttr(llvm::Attribute::Cold);
489 }
490
491public:
492 PGOUseFunc(Function &Func, Module *Modu, BranchProbabilityInfo *BPI = nullptr,
493 BlockFrequencyInfo *BFI = nullptr)
494 : F(Func), M(Modu), FuncInfo(Func, false, BPI, BFI) {}
495
496 // Read counts for the instrumented BB from profile.
497 bool readCounters(IndexedInstrProfReader *PGOReader);
498
499 // Populate the counts for all BBs.
500 void populateCounters();
501
502 // Set the branch weights based on the count values.
503 void setBranchWeights();
504};
505
506// Visit all the edges and assign the count value for the instrumented
507// edges and the BB.
508void PGOUseFunc::setInstrumentedCounts(
509 const std::vector<uint64_t> &CountFromProfile) {
510
511 // Use a worklist as we will update the vector during the iteration.
512 std::vector<PGOUseEdge *> WorkList;
513 for (auto &E : FuncInfo.MST.AllEdges)
514 WorkList.push_back(E.get());
515
516 uint32_t I = 0;
517 for (auto &E : WorkList) {
518 BasicBlock *InstrBB = FuncInfo.getInstrBB(E);
519 if (!InstrBB)
520 continue;
521 uint64_t CountValue = CountFromProfile[I++];
522 if (!E->Removed) {
523 getBBInfo(InstrBB).setBBInfoCount(CountValue);
524 E->setEdgeCount(CountValue);
525 continue;
526 }
527
528 // Need to add two new edges.
529 BasicBlock *SrcBB = const_cast<BasicBlock *>(E->SrcBB);
530 BasicBlock *DestBB = const_cast<BasicBlock *>(E->DestBB);
531 // Add new edge of SrcBB->InstrBB.
532 PGOUseEdge &NewEdge = FuncInfo.MST.addEdge(SrcBB, InstrBB, 0);
533 NewEdge.setEdgeCount(CountValue);
534 // Add new edge of InstrBB->DestBB.
535 PGOUseEdge &NewEdge1 = FuncInfo.MST.addEdge(InstrBB, DestBB, 0);
536 NewEdge1.setEdgeCount(CountValue);
537 NewEdge1.InMST = true;
538 getBBInfo(InstrBB).setBBInfoCount(CountValue);
539 }
540}
541
542// Set the count value for the unknown edge. There should be one and only one
543// unknown edge in Edges vector.
544void PGOUseFunc::setEdgeCount(DirectEdges &Edges, uint64_t Value) {
545 for (auto &E : Edges) {
546 if (E->CountValid)
547 continue;
548 E->setEdgeCount(Value);
549
550 getBBInfo(E->SrcBB).UnknownCountOutEdge--;
551 getBBInfo(E->DestBB).UnknownCountInEdge--;
552 return;
553 }
554 llvm_unreachable("Cannot find the unknown count edge");
555}
556
557// Read the profile from ProfileFileName and assign the value to the
558// instrumented BB and the edges. This function also updates ProgramMaxCount.
559// Return true if the profile are successfully read, and false on errors.
560bool PGOUseFunc::readCounters(IndexedInstrProfReader *PGOReader) {
561 auto &Ctx = M->getContext();
562 ErrorOr<InstrProfRecord> Result =
563 PGOReader->getInstrProfRecord(FuncInfo.FuncName, FuncInfo.FunctionHash);
564 if (std::error_code EC = Result.getError()) {
565 if (EC == instrprof_error::unknown_function)
566 NumOfPGOMissing++;
567 else if (EC == instrprof_error::hash_mismatch ||
568 EC == llvm::instrprof_error::malformed)
569 NumOfPGOMismatch++;
570
571 std::string Msg = EC.message() + std::string(" ") + F.getName().str();
572 Ctx.diagnose(
573 DiagnosticInfoPGOProfile(M->getName().data(), Msg, DS_Warning));
574 return false;
575 }
576 std::vector<uint64_t> &CountFromProfile = Result.get().Counts;
577
578 NumOfPGOFunc++;
579 DEBUG(dbgs() << CountFromProfile.size() << " counts\n");
580 uint64_t ValueSum = 0;
581 for (unsigned I = 0, S = CountFromProfile.size(); I < S; I++) {
582 DEBUG(dbgs() << " " << I << ": " << CountFromProfile[I] << "\n");
583 ValueSum += CountFromProfile[I];
584 }
585
586 DEBUG(dbgs() << "SUM = " << ValueSum << "\n");
587
588 getBBInfo(nullptr).UnknownCountOutEdge = 2;
589 getBBInfo(nullptr).UnknownCountInEdge = 2;
590
591 setInstrumentedCounts(CountFromProfile);
592 ProgramMaxCount = PGOReader->getMaximumFunctionCount();
593 return true;
594}
595
596// Populate the counters from instrumented BBs to all BBs.
597// In the end of this operation, all BBs should have a valid count value.
598void PGOUseFunc::populateCounters() {
599 // First set up Count variable for all BBs.
600 for (auto &E : FuncInfo.MST.AllEdges) {
601 if (E->Removed)
602 continue;
603
604 const BasicBlock *SrcBB = E->SrcBB;
605 const BasicBlock *DestBB = E->DestBB;
606 UseBBInfo &SrcInfo = getBBInfo(SrcBB);
607 UseBBInfo &DestInfo = getBBInfo(DestBB);
608 SrcInfo.OutEdges.push_back(E.get());
609 DestInfo.InEdges.push_back(E.get());
610 SrcInfo.UnknownCountOutEdge++;
611 DestInfo.UnknownCountInEdge++;
612
613 if (!E->CountValid)
614 continue;
615 DestInfo.UnknownCountInEdge--;
616 SrcInfo.UnknownCountOutEdge--;
617 }
618
619 bool Changes = true;
620 unsigned NumPasses = 0;
621 while (Changes) {
622 NumPasses++;
623 Changes = false;
624
625 // For efficient traversal, it's better to start from the end as most
626 // of the instrumented edges are at the end.
627 for (auto &BB : reverse(F)) {
628 UseBBInfo &Count = getBBInfo(&BB);
629 if (!Count.CountValid) {
630 if (Count.UnknownCountOutEdge == 0) {
631 Count.CountValue = sumEdgeCount(Count.OutEdges);
632 Count.CountValid = true;
633 Changes = true;
634 } else if (Count.UnknownCountInEdge == 0) {
635 Count.CountValue = sumEdgeCount(Count.InEdges);
636 Count.CountValid = true;
637 Changes = true;
638 }
639 }
640 if (Count.CountValid) {
641 if (Count.UnknownCountOutEdge == 1) {
642 uint64_t Total = Count.CountValue - sumEdgeCount(Count.OutEdges);
643 setEdgeCount(Count.OutEdges, Total);
644 Changes = true;
645 }
646 if (Count.UnknownCountInEdge == 1) {
647 uint64_t Total = Count.CountValue - sumEdgeCount(Count.InEdges);
648 setEdgeCount(Count.InEdges, Total);
649 Changes = true;
650 }
651 }
652 }
653 }
654
655 DEBUG(dbgs() << "Populate counts in " << NumPasses << " passes.\n");
656 // Assert every BB has a valid counter.
657 uint64_t FuncEntryCount = getBBInfo(&*F.begin()).CountValue;
658 uint64_t FuncMaxCount = FuncEntryCount;
659 for (auto &BB : F) {
660 assert(getBBInfo(&BB).CountValid && "BB count is not valid");
661 uint64_t Count = getBBInfo(&BB).CountValue;
662 if (Count > FuncMaxCount)
663 FuncMaxCount = Count;
664 }
665 applyFunctionAttributes(FuncEntryCount, FuncMaxCount);
666
667 DEBUG(FuncInfo.dumpInfo("after reading profile."));
668}
669
670// Assign the scaled count values to the BB with multiple out edges.
671void PGOUseFunc::setBranchWeights() {
672 // Generate MD_prof metadata for every branch instruction.
673 DEBUG(dbgs() << "\nSetting branch weights.\n");
674 MDBuilder MDB(M->getContext());
675 for (auto &BB : F) {
676 TerminatorInst *TI = BB.getTerminator();
677 if (TI->getNumSuccessors() < 2)
678 continue;
679 if (!isa<BranchInst>(TI) && !isa<SwitchInst>(TI))
680 continue;
681 if (getBBInfo(&BB).CountValue == 0)
682 continue;
683
684 // We have a non-zero Branch BB.
685 const UseBBInfo &BBCountInfo = getBBInfo(&BB);
686 unsigned Size = BBCountInfo.OutEdges.size();
687 SmallVector<unsigned, 2> EdgeCounts(Size, 0);
688 uint64_t MaxCount = 0;
689 for (unsigned s = 0; s < Size; s++) {
690 const PGOUseEdge *E = BBCountInfo.OutEdges[s];
691 const BasicBlock *SrcBB = E->SrcBB;
692 const BasicBlock *DestBB = E->DestBB;
693 if (DestBB == 0)
694 continue;
695 unsigned SuccNum = GetSuccessorNumber(SrcBB, DestBB);
696 uint64_t EdgeCount = E->CountValue;
697 if (EdgeCount > MaxCount)
698 MaxCount = EdgeCount;
699 EdgeCounts[SuccNum] = EdgeCount;
700 }
701 assert(MaxCount > 0 && "Bad max count");
702 uint64_t Scale = calculateCountScale(MaxCount);
703 SmallVector<unsigned, 4> Weights;
704 for (const auto &ECI : EdgeCounts)
705 Weights.push_back(scaleBranchCount(ECI, Scale));
706
707 TI->setMetadata(llvm::LLVMContext::MD_prof,
708 MDB.createBranchWeights(Weights));
709 DEBUG(dbgs() << "Weight is: ";
710 for (const auto &W : Weights) { dbgs() << W << " "; }
711 dbgs() << "\n";);
712 }
713}
714} // end anonymous namespace
715
716bool PGOInstrumentationGen::runOnModule(Module &M) {
717 for (auto &F : M) {
718 if (F.isDeclaration())
719 continue;
720 BranchProbabilityInfo *BPI =
721 &(getAnalysis<BranchProbabilityInfoWrapperPass>(F).getBPI());
722 BlockFrequencyInfo *BFI =
723 &(getAnalysis<BlockFrequencyInfoWrapperPass>(F).getBFI());
724 instrumentOneFunc(F, &M, BPI, BFI);
725 }
726 return true;
727}
728
729static void setPGOCountOnFunc(PGOUseFunc &Func,
730 IndexedInstrProfReader *PGOReader) {
731 if (Func.readCounters(PGOReader)) {
732 Func.populateCounters();
733 Func.setBranchWeights();
734 }
735}
736
737bool PGOInstrumentationUse::runOnModule(Module &M) {
738 DEBUG(dbgs() << "Read in profile counters: ");
739 auto &Ctx = M.getContext();
740 // Read the counter array from file.
741 auto ReaderOrErr = IndexedInstrProfReader::create(ProfileFileName);
742 if (std::error_code EC = ReaderOrErr.getError()) {
743 Ctx.diagnose(
744 DiagnosticInfoPGOProfile(ProfileFileName.data(), EC.message()));
745 return false;
746 }
747
748 PGOReader = std::move(ReaderOrErr.get());
749 if (!PGOReader) {
750 Ctx.diagnose(DiagnosticInfoPGOProfile(ProfileFileName.data(),
751 "Cannot get PGOReader"));
752 return false;
753 }
754
755 for (auto &F : M) {
756 if (F.isDeclaration())
757 continue;
758 BranchProbabilityInfo *BPI =
759 &(getAnalysis<BranchProbabilityInfoWrapperPass>(F).getBPI());
760 BlockFrequencyInfo *BFI =
761 &(getAnalysis<BlockFrequencyInfoWrapperPass>(F).getBFI());
762 PGOUseFunc Func(F, &M, BPI, BFI);
763 setPGOCountOnFunc(Func, PGOReader.get());
764 }
765 return true;
766}