1 //===- PGOInstrumentation.cpp - MST-based PGO Instrumentation -------------===//
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 file implements PGO instrumentation using a minimum spanning tree based
10 // on the following paper:
11 //   [1] Donald E. Knuth, Francis R. Stevenson. Optimal measurement of points
12 //   for program frequency counts. BIT Numerical Mathematics 1973, Volume 13,
13 //   Issue 3, pp 313-322
14 // The idea of the algorithm based on the fact that for each node (except for
15 // the entry and exit), the sum of incoming edge counts equals the sum of
16 // outgoing edge counts. The count of edge on spanning tree can be derived from
17 // those edges not on the spanning tree. Knuth proves this method instruments
18 // the minimum number of edges.
19 //
20 // The minimal spanning tree here is actually a maximum weight tree -- on-tree
21 // edges have higher frequencies (more likely to execute). The idea is to
22 // instrument those less frequently executed edges to reduce the runtime
23 // overhead of instrumented binaries.
24 //
25 // This file contains two passes:
26 // (1) Pass PGOInstrumentationGen which instruments the IR to generate edge
27 // count profile, and generates the instrumentation for indirect call
28 // profiling.
29 // (2) Pass PGOInstrumentationUse which reads the edge count profile and
30 // annotates the branch weights. It also reads the indirect call value
31 // profiling records and annotate the indirect call instructions.
32 //
33 // To get the precise counter information, These two passes need to invoke at
34 // the same compilation point (so they see the same IR). For pass
35 // PGOInstrumentationGen, the real work is done in instrumentOneFunc(). For
36 // pass PGOInstrumentationUse, the real work in done in class PGOUseFunc and
37 // the profile is opened in module level and passed to each PGOUseFunc instance.
38 // The shared code for PGOInstrumentationGen and PGOInstrumentationUse is put
39 // in class FuncPGOInstrumentation.
40 //
41 // Class PGOEdge represents a CFG edge and some auxiliary information. Class
42 // BBInfo contains auxiliary information for each BB. These two classes are used
43 // in pass PGOInstrumentationGen. Class PGOUseEdge and UseBBInfo are the derived
44 // class of PGOEdge and BBInfo, respectively. They contains extra data structure
45 // used in populating profile counters.
46 // The MST implementation is in Class CFGMST (CFGMST.h).
47 //
48 //===----------------------------------------------------------------------===//
49 
50 #include "CFGMST.h"
51 #include "llvm/ADT/APInt.h"
52 #include "llvm/ADT/ArrayRef.h"
53 #include "llvm/ADT/STLExtras.h"
54 #include "llvm/ADT/SmallVector.h"
55 #include "llvm/ADT/Statistic.h"
56 #include "llvm/ADT/StringRef.h"
57 #include "llvm/ADT/Triple.h"
58 #include "llvm/ADT/Twine.h"
59 #include "llvm/ADT/iterator.h"
60 #include "llvm/ADT/iterator_range.h"
61 #include "llvm/Analysis/BlockFrequencyInfo.h"
62 #include "llvm/Analysis/BranchProbabilityInfo.h"
63 #include "llvm/Analysis/CFG.h"
64 #include "llvm/Analysis/IndirectCallVisitor.h"
65 #include "llvm/Analysis/LoopInfo.h"
66 #include "llvm/Analysis/OptimizationRemarkEmitter.h"
67 #include "llvm/Analysis/ProfileSummaryInfo.h"
68 #include "llvm/IR/Attributes.h"
69 #include "llvm/IR/BasicBlock.h"
70 #include "llvm/IR/CFG.h"
71 #include "llvm/IR/CallSite.h"
72 #include "llvm/IR/Comdat.h"
73 #include "llvm/IR/Constant.h"
74 #include "llvm/IR/Constants.h"
75 #include "llvm/IR/DiagnosticInfo.h"
76 #include "llvm/IR/Dominators.h"
77 #include "llvm/IR/Function.h"
78 #include "llvm/IR/GlobalAlias.h"
79 #include "llvm/IR/GlobalValue.h"
80 #include "llvm/IR/GlobalVariable.h"
81 #include "llvm/IR/IRBuilder.h"
82 #include "llvm/IR/InstVisitor.h"
83 #include "llvm/IR/InstrTypes.h"
84 #include "llvm/IR/Instruction.h"
85 #include "llvm/IR/Instructions.h"
86 #include "llvm/IR/IntrinsicInst.h"
87 #include "llvm/IR/Intrinsics.h"
88 #include "llvm/IR/LLVMContext.h"
89 #include "llvm/IR/MDBuilder.h"
90 #include "llvm/IR/Module.h"
91 #include "llvm/IR/PassManager.h"
92 #include "llvm/IR/ProfileSummary.h"
93 #include "llvm/IR/Type.h"
94 #include "llvm/IR/Value.h"
95 #include "llvm/Pass.h"
96 #include "llvm/ProfileData/InstrProf.h"
97 #include "llvm/ProfileData/InstrProfReader.h"
98 #include "llvm/Support/BranchProbability.h"
99 #include "llvm/Support/Casting.h"
100 #include "llvm/Support/CommandLine.h"
101 #include "llvm/Support/DOTGraphTraits.h"
102 #include "llvm/Support/Debug.h"
103 #include "llvm/Support/Error.h"
104 #include "llvm/Support/ErrorHandling.h"
105 #include "llvm/Support/GraphWriter.h"
106 #include "llvm/Support/JamCRC.h"
107 #include "llvm/Support/raw_ostream.h"
108 #include "llvm/Transforms/Instrumentation.h"
109 #include "llvm/Transforms/Instrumentation/PGOInstrumentation.h"
110 #include "llvm/Transforms/Utils/BasicBlockUtils.h"
111 #include <algorithm>
112 #include <cassert>
113 #include <cstdint>
114 #include <memory>
115 #include <numeric>
116 #include <string>
117 #include <unordered_map>
118 #include <utility>
119 #include <vector>
120 
121 using namespace llvm;
122 using ProfileCount = Function::ProfileCount;
123 
124 #define DEBUG_TYPE "pgo-instrumentation"
125 
126 STATISTIC(NumOfPGOInstrument, "Number of edges instrumented.");
127 STATISTIC(NumOfPGOSelectInsts, "Number of select instruction instrumented.");
128 STATISTIC(NumOfPGOMemIntrinsics, "Number of mem intrinsics instrumented.");
129 STATISTIC(NumOfPGOEdge, "Number of edges.");
130 STATISTIC(NumOfPGOBB, "Number of basic-blocks.");
131 STATISTIC(NumOfPGOSplit, "Number of critical edge splits.");
132 STATISTIC(NumOfPGOFunc, "Number of functions having valid profile counts.");
133 STATISTIC(NumOfPGOMismatch, "Number of functions having mismatch profile.");
134 STATISTIC(NumOfPGOMissing, "Number of functions without profile.");
135 STATISTIC(NumOfPGOICall, "Number of indirect call value instrumentations.");
136 STATISTIC(NumOfCSPGOInstrument, "Number of edges instrumented in CSPGO.");
137 STATISTIC(NumOfCSPGOSelectInsts,
138           "Number of select instruction instrumented in CSPGO.");
139 STATISTIC(NumOfCSPGOMemIntrinsics,
140           "Number of mem intrinsics instrumented in CSPGO.");
141 STATISTIC(NumOfCSPGOEdge, "Number of edges in CSPGO.");
142 STATISTIC(NumOfCSPGOBB, "Number of basic-blocks in CSPGO.");
143 STATISTIC(NumOfCSPGOSplit, "Number of critical edge splits in CSPGO.");
144 STATISTIC(NumOfCSPGOFunc,
145           "Number of functions having valid profile counts in CSPGO.");
146 STATISTIC(NumOfCSPGOMismatch,
147           "Number of functions having mismatch profile in CSPGO.");
148 STATISTIC(NumOfCSPGOMissing, "Number of functions without profile in CSPGO.");
149 
150 // Command line option to specify the file to read profile from. This is
151 // mainly used for testing.
152 static cl::opt<std::string>
153     PGOTestProfileFile("pgo-test-profile-file", cl::init(""), cl::Hidden,
154                        cl::value_desc("filename"),
155                        cl::desc("Specify the path of profile data file. This is"
156                                 "mainly for test purpose."));
157 static cl::opt<std::string> PGOTestProfileRemappingFile(
158     "pgo-test-profile-remapping-file", cl::init(""), cl::Hidden,
159     cl::value_desc("filename"),
160     cl::desc("Specify the path of profile remapping file. This is mainly for "
161              "test purpose."));
162 
163 // Command line option to disable value profiling. The default is false:
164 // i.e. value profiling is enabled by default. This is for debug purpose.
165 static cl::opt<bool> DisableValueProfiling("disable-vp", cl::init(false),
166                                            cl::Hidden,
167                                            cl::desc("Disable Value Profiling"));
168 
169 // Command line option to set the maximum number of VP annotations to write to
170 // the metadata for a single indirect call callsite.
171 static cl::opt<unsigned> MaxNumAnnotations(
172     "icp-max-annotations", cl::init(3), cl::Hidden, cl::ZeroOrMore,
173     cl::desc("Max number of annotations for a single indirect "
174              "call callsite"));
175 
176 // Command line option to set the maximum number of value annotations
177 // to write to the metadata for a single memop intrinsic.
178 static cl::opt<unsigned> MaxNumMemOPAnnotations(
179     "memop-max-annotations", cl::init(4), cl::Hidden, cl::ZeroOrMore,
180     cl::desc("Max number of preicise value annotations for a single memop"
181              "intrinsic"));
182 
183 // Command line option to control appending FunctionHash to the name of a COMDAT
184 // function. This is to avoid the hash mismatch caused by the preinliner.
185 static cl::opt<bool> DoComdatRenaming(
186     "do-comdat-renaming", cl::init(false), cl::Hidden,
187     cl::desc("Append function hash to the name of COMDAT function to avoid "
188              "function hash mismatch due to the preinliner"));
189 
190 // Command line option to enable/disable the warning about missing profile
191 // information.
192 static cl::opt<bool>
193     PGOWarnMissing("pgo-warn-missing-function", cl::init(false), cl::Hidden,
194                    cl::desc("Use this option to turn on/off "
195                             "warnings about missing profile data for "
196                             "functions."));
197 
198 // Command line option to enable/disable the warning about a hash mismatch in
199 // the profile data.
200 static cl::opt<bool>
201     NoPGOWarnMismatch("no-pgo-warn-mismatch", cl::init(false), cl::Hidden,
202                       cl::desc("Use this option to turn off/on "
203                                "warnings about profile cfg mismatch."));
204 
205 // Command line option to enable/disable the warning about a hash mismatch in
206 // the profile data for Comdat functions, which often turns out to be false
207 // positive due to the pre-instrumentation inline.
208 static cl::opt<bool>
209     NoPGOWarnMismatchComdat("no-pgo-warn-mismatch-comdat", cl::init(true),
210                             cl::Hidden,
211                             cl::desc("The option is used to turn on/off "
212                                      "warnings about hash mismatch for comdat "
213                                      "functions."));
214 
215 // Command line option to enable/disable select instruction instrumentation.
216 static cl::opt<bool>
217     PGOInstrSelect("pgo-instr-select", cl::init(true), cl::Hidden,
218                    cl::desc("Use this option to turn on/off SELECT "
219                             "instruction instrumentation. "));
220 
221 // Command line option to turn on CFG dot or text dump of raw profile counts
222 static cl::opt<PGOViewCountsType> PGOViewRawCounts(
223     "pgo-view-raw-counts", cl::Hidden,
224     cl::desc("A boolean option to show CFG dag or text "
225              "with raw profile counts from "
226              "profile data. See also option "
227              "-pgo-view-counts. To limit graph "
228              "display to only one function, use "
229              "filtering option -view-bfi-func-name."),
230     cl::values(clEnumValN(PGOVCT_None, "none", "do not show."),
231                clEnumValN(PGOVCT_Graph, "graph", "show a graph."),
232                clEnumValN(PGOVCT_Text, "text", "show in text.")));
233 
234 // Command line option to enable/disable memop intrinsic call.size profiling.
235 static cl::opt<bool>
236     PGOInstrMemOP("pgo-instr-memop", cl::init(true), cl::Hidden,
237                   cl::desc("Use this option to turn on/off "
238                            "memory intrinsic size profiling."));
239 
240 // Emit branch probability as optimization remarks.
241 static cl::opt<bool>
242     EmitBranchProbability("pgo-emit-branch-prob", cl::init(false), cl::Hidden,
243                           cl::desc("When this option is on, the annotated "
244                                    "branch probability will be emitted as "
245                                    "optimization remarks: -{Rpass|"
246                                    "pass-remarks}=pgo-instrumentation"));
247 
248 // Command line option to turn on CFG dot dump after profile annotation.
249 // Defined in Analysis/BlockFrequencyInfo.cpp:  -pgo-view-counts
250 extern cl::opt<PGOViewCountsType> PGOViewCounts;
251 
252 // Command line option to specify the name of the function for CFG dump
253 // Defined in Analysis/BlockFrequencyInfo.cpp:  -view-bfi-func-name=
254 extern cl::opt<std::string> ViewBlockFreqFuncName;
255 
256 // Return a string describing the branch condition that can be
257 // used in static branch probability heuristics:
258 static std::string getBranchCondString(Instruction *TI) {
259   BranchInst *BI = dyn_cast<BranchInst>(TI);
260   if (!BI || !BI->isConditional())
261     return std::string();
262 
263   Value *Cond = BI->getCondition();
264   ICmpInst *CI = dyn_cast<ICmpInst>(Cond);
265   if (!CI)
266     return std::string();
267 
268   std::string result;
269   raw_string_ostream OS(result);
270   OS << CmpInst::getPredicateName(CI->getPredicate()) << "_";
271   CI->getOperand(0)->getType()->print(OS, true);
272 
273   Value *RHS = CI->getOperand(1);
274   ConstantInt *CV = dyn_cast<ConstantInt>(RHS);
275   if (CV) {
276     if (CV->isZero())
277       OS << "_Zero";
278     else if (CV->isOne())
279       OS << "_One";
280     else if (CV->isMinusOne())
281       OS << "_MinusOne";
282     else
283       OS << "_Const";
284   }
285   OS.flush();
286   return result;
287 }
288 
289 namespace {
290 
291 /// The select instruction visitor plays three roles specified
292 /// by the mode. In \c VM_counting mode, it simply counts the number of
293 /// select instructions. In \c VM_instrument mode, it inserts code to count
294 /// the number times TrueValue of select is taken. In \c VM_annotate mode,
295 /// it reads the profile data and annotate the select instruction with metadata.
296 enum VisitMode { VM_counting, VM_instrument, VM_annotate };
297 class PGOUseFunc;
298 
299 /// Instruction Visitor class to visit select instructions.
300 struct SelectInstVisitor : public InstVisitor<SelectInstVisitor> {
301   Function &F;
302   unsigned NSIs = 0;             // Number of select instructions instrumented.
303   VisitMode Mode = VM_counting;  // Visiting mode.
304   unsigned *CurCtrIdx = nullptr; // Pointer to current counter index.
305   unsigned TotalNumCtrs = 0;     // Total number of counters
306   GlobalVariable *FuncNameVar = nullptr;
307   uint64_t FuncHash = 0;
308   PGOUseFunc *UseFunc = nullptr;
309 
310   SelectInstVisitor(Function &Func) : F(Func) {}
311 
312   void countSelects(Function &Func) {
313     NSIs = 0;
314     Mode = VM_counting;
315     visit(Func);
316   }
317 
318   // Visit the IR stream and instrument all select instructions. \p
319   // Ind is a pointer to the counter index variable; \p TotalNC
320   // is the total number of counters; \p FNV is the pointer to the
321   // PGO function name var; \p FHash is the function hash.
322   void instrumentSelects(Function &Func, unsigned *Ind, unsigned TotalNC,
323                          GlobalVariable *FNV, uint64_t FHash) {
324     Mode = VM_instrument;
325     CurCtrIdx = Ind;
326     TotalNumCtrs = TotalNC;
327     FuncHash = FHash;
328     FuncNameVar = FNV;
329     visit(Func);
330   }
331 
332   // Visit the IR stream and annotate all select instructions.
333   void annotateSelects(Function &Func, PGOUseFunc *UF, unsigned *Ind) {
334     Mode = VM_annotate;
335     UseFunc = UF;
336     CurCtrIdx = Ind;
337     visit(Func);
338   }
339 
340   void instrumentOneSelectInst(SelectInst &SI);
341   void annotateOneSelectInst(SelectInst &SI);
342 
343   // Visit \p SI instruction and perform tasks according to visit mode.
344   void visitSelectInst(SelectInst &SI);
345 
346   // Return the number of select instructions. This needs be called after
347   // countSelects().
348   unsigned getNumOfSelectInsts() const { return NSIs; }
349 };
350 
351 /// Instruction Visitor class to visit memory intrinsic calls.
352 struct MemIntrinsicVisitor : public InstVisitor<MemIntrinsicVisitor> {
353   Function &F;
354   unsigned NMemIs = 0;          // Number of memIntrinsics instrumented.
355   VisitMode Mode = VM_counting; // Visiting mode.
356   unsigned CurCtrId = 0;        // Current counter index.
357   unsigned TotalNumCtrs = 0;    // Total number of counters
358   GlobalVariable *FuncNameVar = nullptr;
359   uint64_t FuncHash = 0;
360   PGOUseFunc *UseFunc = nullptr;
361   std::vector<Instruction *> Candidates;
362 
363   MemIntrinsicVisitor(Function &Func) : F(Func) {}
364 
365   void countMemIntrinsics(Function &Func) {
366     NMemIs = 0;
367     Mode = VM_counting;
368     visit(Func);
369   }
370 
371   void instrumentMemIntrinsics(Function &Func, unsigned TotalNC,
372                                GlobalVariable *FNV, uint64_t FHash) {
373     Mode = VM_instrument;
374     TotalNumCtrs = TotalNC;
375     FuncHash = FHash;
376     FuncNameVar = FNV;
377     visit(Func);
378   }
379 
380   std::vector<Instruction *> findMemIntrinsics(Function &Func) {
381     Candidates.clear();
382     Mode = VM_annotate;
383     visit(Func);
384     return Candidates;
385   }
386 
387   // Visit the IR stream and annotate all mem intrinsic call instructions.
388   void instrumentOneMemIntrinsic(MemIntrinsic &MI);
389 
390   // Visit \p MI instruction and perform tasks according to visit mode.
391   void visitMemIntrinsic(MemIntrinsic &SI);
392 
393   unsigned getNumOfMemIntrinsics() const { return NMemIs; }
394 };
395 
396 class PGOInstrumentationGenLegacyPass : public ModulePass {
397 public:
398   static char ID;
399 
400   PGOInstrumentationGenLegacyPass(bool IsCS = false)
401       : ModulePass(ID), IsCS(IsCS) {
402     initializePGOInstrumentationGenLegacyPassPass(
403         *PassRegistry::getPassRegistry());
404   }
405 
406   StringRef getPassName() const override { return "PGOInstrumentationGenPass"; }
407 
408 private:
409   // Is this is context-sensitive instrumentation.
410   bool IsCS;
411   bool runOnModule(Module &M) override;
412 
413   void getAnalysisUsage(AnalysisUsage &AU) const override {
414     AU.addRequired<BlockFrequencyInfoWrapperPass>();
415   }
416 };
417 
418 class PGOInstrumentationUseLegacyPass : public ModulePass {
419 public:
420   static char ID;
421 
422   // Provide the profile filename as the parameter.
423   PGOInstrumentationUseLegacyPass(std::string Filename = "", bool IsCS = false)
424       : ModulePass(ID), ProfileFileName(std::move(Filename)), IsCS(IsCS) {
425     if (!PGOTestProfileFile.empty())
426       ProfileFileName = PGOTestProfileFile;
427     initializePGOInstrumentationUseLegacyPassPass(
428         *PassRegistry::getPassRegistry());
429   }
430 
431   StringRef getPassName() const override { return "PGOInstrumentationUsePass"; }
432 
433 private:
434   std::string ProfileFileName;
435   // Is this is context-sensitive instrumentation use.
436   bool IsCS;
437 
438   bool runOnModule(Module &M) override;
439 
440   void getAnalysisUsage(AnalysisUsage &AU) const override {
441     AU.addRequired<ProfileSummaryInfoWrapperPass>();
442     AU.addRequired<BlockFrequencyInfoWrapperPass>();
443   }
444 };
445 
446 class PGOInstrumentationGenCreateVarLegacyPass : public ModulePass {
447 public:
448   static char ID;
449   StringRef getPassName() const override {
450     return "PGOInstrumentationGenCreateVarPass";
451   }
452   PGOInstrumentationGenCreateVarLegacyPass(std::string CSInstrName = "")
453       : ModulePass(ID), InstrProfileOutput(CSInstrName) {
454     initializePGOInstrumentationGenCreateVarLegacyPassPass(
455         *PassRegistry::getPassRegistry());
456   }
457 
458 private:
459   bool runOnModule(Module &M) override {
460     createProfileFileNameVar(M, InstrProfileOutput);
461     createIRLevelProfileFlagVar(M, true);
462     return false;
463   }
464   std::string InstrProfileOutput;
465 };
466 
467 } // end anonymous namespace
468 
469 char PGOInstrumentationGenLegacyPass::ID = 0;
470 
471 INITIALIZE_PASS_BEGIN(PGOInstrumentationGenLegacyPass, "pgo-instr-gen",
472                       "PGO instrumentation.", false, false)
473 INITIALIZE_PASS_DEPENDENCY(BlockFrequencyInfoWrapperPass)
474 INITIALIZE_PASS_DEPENDENCY(BranchProbabilityInfoWrapperPass)
475 INITIALIZE_PASS_END(PGOInstrumentationGenLegacyPass, "pgo-instr-gen",
476                     "PGO instrumentation.", false, false)
477 
478 ModulePass *llvm::createPGOInstrumentationGenLegacyPass(bool IsCS) {
479   return new PGOInstrumentationGenLegacyPass(IsCS);
480 }
481 
482 char PGOInstrumentationUseLegacyPass::ID = 0;
483 
484 INITIALIZE_PASS_BEGIN(PGOInstrumentationUseLegacyPass, "pgo-instr-use",
485                       "Read PGO instrumentation profile.", false, false)
486 INITIALIZE_PASS_DEPENDENCY(BlockFrequencyInfoWrapperPass)
487 INITIALIZE_PASS_DEPENDENCY(BranchProbabilityInfoWrapperPass)
488 INITIALIZE_PASS_DEPENDENCY(ProfileSummaryInfoWrapperPass)
489 INITIALIZE_PASS_END(PGOInstrumentationUseLegacyPass, "pgo-instr-use",
490                     "Read PGO instrumentation profile.", false, false)
491 
492 ModulePass *llvm::createPGOInstrumentationUseLegacyPass(StringRef Filename,
493                                                         bool IsCS) {
494   return new PGOInstrumentationUseLegacyPass(Filename.str(), IsCS);
495 }
496 
497 char PGOInstrumentationGenCreateVarLegacyPass::ID = 0;
498 
499 INITIALIZE_PASS(PGOInstrumentationGenCreateVarLegacyPass,
500                 "pgo-instr-gen-create-var",
501                 "Create PGO instrumentation version variable for CSPGO.", false,
502                 false)
503 
504 ModulePass *
505 llvm::createPGOInstrumentationGenCreateVarLegacyPass(StringRef CSInstrName) {
506   return new PGOInstrumentationGenCreateVarLegacyPass(CSInstrName);
507 }
508 
509 namespace {
510 
511 /// An MST based instrumentation for PGO
512 ///
513 /// Implements a Minimum Spanning Tree (MST) based instrumentation for PGO
514 /// in the function level.
515 struct PGOEdge {
516   // This class implements the CFG edges. Note the CFG can be a multi-graph.
517   // So there might be multiple edges with same SrcBB and DestBB.
518   const BasicBlock *SrcBB;
519   const BasicBlock *DestBB;
520   uint64_t Weight;
521   bool InMST = false;
522   bool Removed = false;
523   bool IsCritical = false;
524 
525   PGOEdge(const BasicBlock *Src, const BasicBlock *Dest, uint64_t W = 1)
526       : SrcBB(Src), DestBB(Dest), Weight(W) {}
527 
528   // Return the information string of an edge.
529   const std::string infoString() const {
530     return (Twine(Removed ? "-" : " ") + (InMST ? " " : "*") +
531             (IsCritical ? "c" : " ") + "  W=" + Twine(Weight)).str();
532   }
533 };
534 
535 // This class stores the auxiliary information for each BB.
536 struct BBInfo {
537   BBInfo *Group;
538   uint32_t Index;
539   uint32_t Rank = 0;
540 
541   BBInfo(unsigned IX) : Group(this), Index(IX) {}
542 
543   // Return the information string of this object.
544   const std::string infoString() const {
545     return (Twine("Index=") + Twine(Index)).str();
546   }
547 };
548 
549 // This class implements the CFG edges. Note the CFG can be a multi-graph.
550 template <class Edge, class BBInfo> class FuncPGOInstrumentation {
551 private:
552   Function &F;
553 
554   // Is this is context-sensitive instrumentation.
555   bool IsCS;
556 
557   // A map that stores the Comdat group in function F.
558   std::unordered_multimap<Comdat *, GlobalValue *> &ComdatMembers;
559 
560   void computeCFGHash();
561   void renameComdatFunction();
562 
563 public:
564   std::vector<std::vector<Instruction *>> ValueSites;
565   SelectInstVisitor SIVisitor;
566   MemIntrinsicVisitor MIVisitor;
567   std::string FuncName;
568   GlobalVariable *FuncNameVar;
569 
570   // CFG hash value for this function.
571   uint64_t FunctionHash = 0;
572 
573   // The Minimum Spanning Tree of function CFG.
574   CFGMST<Edge, BBInfo> MST;
575 
576   // Give an edge, find the BB that will be instrumented.
577   // Return nullptr if there is no BB to be instrumented.
578   BasicBlock *getInstrBB(Edge *E);
579 
580   // Return the auxiliary BB information.
581   BBInfo &getBBInfo(const BasicBlock *BB) const { return MST.getBBInfo(BB); }
582 
583   // Return the auxiliary BB information if available.
584   BBInfo *findBBInfo(const BasicBlock *BB) const { return MST.findBBInfo(BB); }
585 
586   // Dump edges and BB information.
587   void dumpInfo(std::string Str = "") const {
588     MST.dumpEdges(dbgs(), Twine("Dump Function ") + FuncName + " Hash: " +
589                               Twine(FunctionHash) + "\t" + Str);
590   }
591 
592   FuncPGOInstrumentation(
593       Function &Func,
594       std::unordered_multimap<Comdat *, GlobalValue *> &ComdatMembers,
595       bool CreateGlobalVar = false, BranchProbabilityInfo *BPI = nullptr,
596       BlockFrequencyInfo *BFI = nullptr, bool IsCS = false)
597       : F(Func), IsCS(IsCS), ComdatMembers(ComdatMembers),
598         ValueSites(IPVK_Last + 1), SIVisitor(Func), MIVisitor(Func),
599         MST(F, BPI, BFI) {
600     // This should be done before CFG hash computation.
601     SIVisitor.countSelects(Func);
602     MIVisitor.countMemIntrinsics(Func);
603     if (!IsCS) {
604       NumOfPGOSelectInsts += SIVisitor.getNumOfSelectInsts();
605       NumOfPGOMemIntrinsics += MIVisitor.getNumOfMemIntrinsics();
606       NumOfPGOBB += MST.BBInfos.size();
607       ValueSites[IPVK_IndirectCallTarget] = findIndirectCalls(Func);
608     } else {
609       NumOfCSPGOSelectInsts += SIVisitor.getNumOfSelectInsts();
610       NumOfCSPGOMemIntrinsics += MIVisitor.getNumOfMemIntrinsics();
611       NumOfCSPGOBB += MST.BBInfos.size();
612     }
613     ValueSites[IPVK_MemOPSize] = MIVisitor.findMemIntrinsics(Func);
614 
615     FuncName = getPGOFuncName(F);
616     computeCFGHash();
617     if (!ComdatMembers.empty())
618       renameComdatFunction();
619     LLVM_DEBUG(dumpInfo("after CFGMST"));
620 
621     for (auto &E : MST.AllEdges) {
622       if (E->Removed)
623         continue;
624       IsCS ? NumOfCSPGOEdge++ : NumOfPGOEdge++;
625       if (!E->InMST)
626         IsCS ? NumOfCSPGOInstrument++ : NumOfPGOInstrument++;
627     }
628 
629     if (CreateGlobalVar)
630       FuncNameVar = createPGOFuncNameVar(F, FuncName);
631   }
632 
633   // Return the number of profile counters needed for the function.
634   unsigned getNumCounters() {
635     unsigned NumCounters = 0;
636     for (auto &E : this->MST.AllEdges) {
637       if (!E->InMST && !E->Removed)
638         NumCounters++;
639     }
640     return NumCounters + SIVisitor.getNumOfSelectInsts();
641   }
642 };
643 
644 } // end anonymous namespace
645 
646 // Compute Hash value for the CFG: the lower 32 bits are CRC32 of the index
647 // value of each BB in the CFG. The higher 32 bits record the number of edges.
648 template <class Edge, class BBInfo>
649 void FuncPGOInstrumentation<Edge, BBInfo>::computeCFGHash() {
650   std::vector<char> Indexes;
651   JamCRC JC;
652   for (auto &BB : F) {
653     const Instruction *TI = BB.getTerminator();
654     for (unsigned I = 0, E = TI->getNumSuccessors(); I != E; ++I) {
655       BasicBlock *Succ = TI->getSuccessor(I);
656       auto BI = findBBInfo(Succ);
657       if (BI == nullptr)
658         continue;
659       uint32_t Index = BI->Index;
660       for (int J = 0; J < 4; J++)
661         Indexes.push_back((char)(Index >> (J * 8)));
662     }
663   }
664   JC.update(Indexes);
665 
666   // Hash format for context sensitive profile. Reserve 4 bits for other
667   // information.
668   FunctionHash = (uint64_t)SIVisitor.getNumOfSelectInsts() << 56 |
669                  (uint64_t)ValueSites[IPVK_IndirectCallTarget].size() << 48 |
670                  //(uint64_t)ValueSites[IPVK_MemOPSize].size() << 40 |
671                  (uint64_t)MST.AllEdges.size() << 32 | JC.getCRC();
672   // Reserve bit 60-63 for other information purpose.
673   FunctionHash &= 0x0FFFFFFFFFFFFFFF;
674   if (IsCS)
675     NamedInstrProfRecord::setCSFlagInHash(FunctionHash);
676   LLVM_DEBUG(dbgs() << "Function Hash Computation for " << F.getName() << ":\n"
677                     << " CRC = " << JC.getCRC()
678                     << ", Selects = " << SIVisitor.getNumOfSelectInsts()
679                     << ", Edges = " << MST.AllEdges.size() << ", ICSites = "
680                     << ValueSites[IPVK_IndirectCallTarget].size()
681                     << ", Hash = " << FunctionHash << "\n";);
682 }
683 
684 // Check if we can safely rename this Comdat function.
685 static bool canRenameComdat(
686     Function &F,
687     std::unordered_multimap<Comdat *, GlobalValue *> &ComdatMembers) {
688   if (!DoComdatRenaming || !canRenameComdatFunc(F, true))
689     return false;
690 
691   // FIXME: Current only handle those Comdat groups that only containing one
692   // function and function aliases.
693   // (1) For a Comdat group containing multiple functions, we need to have a
694   // unique postfix based on the hashes for each function. There is a
695   // non-trivial code refactoring to do this efficiently.
696   // (2) Variables can not be renamed, so we can not rename Comdat function in a
697   // group including global vars.
698   Comdat *C = F.getComdat();
699   for (auto &&CM : make_range(ComdatMembers.equal_range(C))) {
700     if (dyn_cast<GlobalAlias>(CM.second))
701       continue;
702     Function *FM = dyn_cast<Function>(CM.second);
703     if (FM != &F)
704       return false;
705   }
706   return true;
707 }
708 
709 // Append the CFGHash to the Comdat function name.
710 template <class Edge, class BBInfo>
711 void FuncPGOInstrumentation<Edge, BBInfo>::renameComdatFunction() {
712   if (!canRenameComdat(F, ComdatMembers))
713     return;
714   std::string OrigName = F.getName().str();
715   std::string NewFuncName =
716       Twine(F.getName() + "." + Twine(FunctionHash)).str();
717   F.setName(Twine(NewFuncName));
718   GlobalAlias::create(GlobalValue::WeakAnyLinkage, OrigName, &F);
719   FuncName = Twine(FuncName + "." + Twine(FunctionHash)).str();
720   Comdat *NewComdat;
721   Module *M = F.getParent();
722   // For AvailableExternallyLinkage functions, change the linkage to
723   // LinkOnceODR and put them into comdat. This is because after renaming, there
724   // is no backup external copy available for the function.
725   if (!F.hasComdat()) {
726     assert(F.getLinkage() == GlobalValue::AvailableExternallyLinkage);
727     NewComdat = M->getOrInsertComdat(StringRef(NewFuncName));
728     F.setLinkage(GlobalValue::LinkOnceODRLinkage);
729     F.setComdat(NewComdat);
730     return;
731   }
732 
733   // This function belongs to a single function Comdat group.
734   Comdat *OrigComdat = F.getComdat();
735   std::string NewComdatName =
736       Twine(OrigComdat->getName() + "." + Twine(FunctionHash)).str();
737   NewComdat = M->getOrInsertComdat(StringRef(NewComdatName));
738   NewComdat->setSelectionKind(OrigComdat->getSelectionKind());
739 
740   for (auto &&CM : make_range(ComdatMembers.equal_range(OrigComdat))) {
741     if (GlobalAlias *GA = dyn_cast<GlobalAlias>(CM.second)) {
742       // For aliases, change the name directly.
743       assert(dyn_cast<Function>(GA->getAliasee()->stripPointerCasts()) == &F);
744       std::string OrigGAName = GA->getName().str();
745       GA->setName(Twine(GA->getName() + "." + Twine(FunctionHash)));
746       GlobalAlias::create(GlobalValue::WeakAnyLinkage, OrigGAName, GA);
747       continue;
748     }
749     // Must be a function.
750     Function *CF = dyn_cast<Function>(CM.second);
751     assert(CF);
752     CF->setComdat(NewComdat);
753   }
754 }
755 
756 // Given a CFG E to be instrumented, find which BB to place the instrumented
757 // code. The function will split the critical edge if necessary.
758 template <class Edge, class BBInfo>
759 BasicBlock *FuncPGOInstrumentation<Edge, BBInfo>::getInstrBB(Edge *E) {
760   if (E->InMST || E->Removed)
761     return nullptr;
762 
763   BasicBlock *SrcBB = const_cast<BasicBlock *>(E->SrcBB);
764   BasicBlock *DestBB = const_cast<BasicBlock *>(E->DestBB);
765   // For a fake edge, instrument the real BB.
766   if (SrcBB == nullptr)
767     return DestBB;
768   if (DestBB == nullptr)
769     return SrcBB;
770 
771   // Instrument the SrcBB if it has a single successor,
772   // otherwise, the DestBB if this is not a critical edge.
773   Instruction *TI = SrcBB->getTerminator();
774   if (TI->getNumSuccessors() <= 1)
775     return SrcBB;
776   if (!E->IsCritical)
777     return DestBB;
778 
779   // For a critical edge, we have to split. Instrument the newly
780   // created BB.
781   IsCS ? NumOfCSPGOSplit++ : NumOfPGOSplit++;
782   LLVM_DEBUG(dbgs() << "Split critical edge: " << getBBInfo(SrcBB).Index
783                     << " --> " << getBBInfo(DestBB).Index << "\n");
784   unsigned SuccNum = GetSuccessorNumber(SrcBB, DestBB);
785   BasicBlock *InstrBB = SplitCriticalEdge(TI, SuccNum);
786   assert(InstrBB && "Critical edge is not split");
787 
788   E->Removed = true;
789   return InstrBB;
790 }
791 
792 // Visit all edge and instrument the edges not in MST, and do value profiling.
793 // Critical edges will be split.
794 static void instrumentOneFunc(
795     Function &F, Module *M, BranchProbabilityInfo *BPI, BlockFrequencyInfo *BFI,
796     std::unordered_multimap<Comdat *, GlobalValue *> &ComdatMembers,
797     bool IsCS) {
798   // Split indirectbr critical edges here before computing the MST rather than
799   // later in getInstrBB() to avoid invalidating it.
800   SplitIndirectBrCriticalEdges(F, BPI, BFI);
801 
802   FuncPGOInstrumentation<PGOEdge, BBInfo> FuncInfo(F, ComdatMembers, true, BPI,
803                                                    BFI, IsCS);
804   unsigned NumCounters = FuncInfo.getNumCounters();
805 
806   uint32_t I = 0;
807   Type *I8PtrTy = Type::getInt8PtrTy(M->getContext());
808   for (auto &E : FuncInfo.MST.AllEdges) {
809     BasicBlock *InstrBB = FuncInfo.getInstrBB(E.get());
810     if (!InstrBB)
811       continue;
812 
813     IRBuilder<> Builder(InstrBB, InstrBB->getFirstInsertionPt());
814     assert(Builder.GetInsertPoint() != InstrBB->end() &&
815            "Cannot get the Instrumentation point");
816     Builder.CreateCall(
817         Intrinsic::getDeclaration(M, Intrinsic::instrprof_increment),
818         {ConstantExpr::getBitCast(FuncInfo.FuncNameVar, I8PtrTy),
819          Builder.getInt64(FuncInfo.FunctionHash), Builder.getInt32(NumCounters),
820          Builder.getInt32(I++)});
821   }
822 
823   // Now instrument select instructions:
824   FuncInfo.SIVisitor.instrumentSelects(F, &I, NumCounters, FuncInfo.FuncNameVar,
825                                        FuncInfo.FunctionHash);
826   assert(I == NumCounters);
827 
828   if (DisableValueProfiling)
829     return;
830 
831   unsigned NumIndirectCalls = 0;
832   for (auto &I : FuncInfo.ValueSites[IPVK_IndirectCallTarget]) {
833     CallSite CS(I);
834     Value *Callee = CS.getCalledValue();
835     LLVM_DEBUG(dbgs() << "Instrument one indirect call: CallSite Index = "
836                       << NumIndirectCalls << "\n");
837     IRBuilder<> Builder(I);
838     assert(Builder.GetInsertPoint() != I->getParent()->end() &&
839            "Cannot get the Instrumentation point");
840     Builder.CreateCall(
841         Intrinsic::getDeclaration(M, Intrinsic::instrprof_value_profile),
842         {ConstantExpr::getBitCast(FuncInfo.FuncNameVar, I8PtrTy),
843          Builder.getInt64(FuncInfo.FunctionHash),
844          Builder.CreatePtrToInt(Callee, Builder.getInt64Ty()),
845          Builder.getInt32(IPVK_IndirectCallTarget),
846          Builder.getInt32(NumIndirectCalls++)});
847   }
848   NumOfPGOICall += NumIndirectCalls;
849 
850   // Now instrument memop intrinsic calls.
851   FuncInfo.MIVisitor.instrumentMemIntrinsics(
852       F, NumCounters, FuncInfo.FuncNameVar, FuncInfo.FunctionHash);
853 }
854 
855 namespace {
856 
857 // This class represents a CFG edge in profile use compilation.
858 struct PGOUseEdge : public PGOEdge {
859   bool CountValid = false;
860   uint64_t CountValue = 0;
861 
862   PGOUseEdge(const BasicBlock *Src, const BasicBlock *Dest, uint64_t W = 1)
863       : PGOEdge(Src, Dest, W) {}
864 
865   // Set edge count value
866   void setEdgeCount(uint64_t Value) {
867     CountValue = Value;
868     CountValid = true;
869   }
870 
871   // Return the information string for this object.
872   const std::string infoString() const {
873     if (!CountValid)
874       return PGOEdge::infoString();
875     return (Twine(PGOEdge::infoString()) + "  Count=" + Twine(CountValue))
876         .str();
877   }
878 };
879 
880 using DirectEdges = SmallVector<PGOUseEdge *, 2>;
881 
882 // This class stores the auxiliary information for each BB.
883 struct UseBBInfo : public BBInfo {
884   uint64_t CountValue = 0;
885   bool CountValid;
886   int32_t UnknownCountInEdge = 0;
887   int32_t UnknownCountOutEdge = 0;
888   DirectEdges InEdges;
889   DirectEdges OutEdges;
890 
891   UseBBInfo(unsigned IX) : BBInfo(IX), CountValid(false) {}
892 
893   UseBBInfo(unsigned IX, uint64_t C)
894       : BBInfo(IX), CountValue(C), CountValid(true) {}
895 
896   // Set the profile count value for this BB.
897   void setBBInfoCount(uint64_t Value) {
898     CountValue = Value;
899     CountValid = true;
900   }
901 
902   // Return the information string of this object.
903   const std::string infoString() const {
904     if (!CountValid)
905       return BBInfo::infoString();
906     return (Twine(BBInfo::infoString()) + "  Count=" + Twine(CountValue)).str();
907   }
908 };
909 
910 } // end anonymous namespace
911 
912 // Sum up the count values for all the edges.
913 static uint64_t sumEdgeCount(const ArrayRef<PGOUseEdge *> Edges) {
914   uint64_t Total = 0;
915   for (auto &E : Edges) {
916     if (E->Removed)
917       continue;
918     Total += E->CountValue;
919   }
920   return Total;
921 }
922 
923 namespace {
924 
925 class PGOUseFunc {
926 public:
927   PGOUseFunc(Function &Func, Module *Modu,
928              std::unordered_multimap<Comdat *, GlobalValue *> &ComdatMembers,
929              BranchProbabilityInfo *BPI = nullptr,
930              BlockFrequencyInfo *BFIin = nullptr, bool IsCS = false)
931       : F(Func), M(Modu), BFI(BFIin),
932         FuncInfo(Func, ComdatMembers, false, BPI, BFIin, IsCS),
933         FreqAttr(FFA_Normal), IsCS(IsCS) {}
934 
935   // Read counts for the instrumented BB from profile.
936   bool readCounters(IndexedInstrProfReader *PGOReader, bool &AllZeros);
937 
938   // Populate the counts for all BBs.
939   void populateCounters();
940 
941   // Set the branch weights based on the count values.
942   void setBranchWeights();
943 
944   // Annotate the value profile call sites for all value kind.
945   void annotateValueSites();
946 
947   // Annotate the value profile call sites for one value kind.
948   void annotateValueSites(uint32_t Kind);
949 
950   // Annotate the irreducible loop header weights.
951   void annotateIrrLoopHeaderWeights();
952 
953   // The hotness of the function from the profile count.
954   enum FuncFreqAttr { FFA_Normal, FFA_Cold, FFA_Hot };
955 
956   // Return the function hotness from the profile.
957   FuncFreqAttr getFuncFreqAttr() const { return FreqAttr; }
958 
959   // Return the function hash.
960   uint64_t getFuncHash() const { return FuncInfo.FunctionHash; }
961 
962   // Return the profile record for this function;
963   InstrProfRecord &getProfileRecord() { return ProfileRecord; }
964 
965   // Return the auxiliary BB information.
966   UseBBInfo &getBBInfo(const BasicBlock *BB) const {
967     return FuncInfo.getBBInfo(BB);
968   }
969 
970   // Return the auxiliary BB information if available.
971   UseBBInfo *findBBInfo(const BasicBlock *BB) const {
972     return FuncInfo.findBBInfo(BB);
973   }
974 
975   Function &getFunc() const { return F; }
976 
977   void dumpInfo(std::string Str = "") const {
978     FuncInfo.dumpInfo(Str);
979   }
980 
981   uint64_t getProgramMaxCount() const { return ProgramMaxCount; }
982 private:
983   Function &F;
984   Module *M;
985   BlockFrequencyInfo *BFI;
986 
987   // This member stores the shared information with class PGOGenFunc.
988   FuncPGOInstrumentation<PGOUseEdge, UseBBInfo> FuncInfo;
989 
990   // The maximum count value in the profile. This is only used in PGO use
991   // compilation.
992   uint64_t ProgramMaxCount;
993 
994   // Position of counter that remains to be read.
995   uint32_t CountPosition = 0;
996 
997   // Total size of the profile count for this function.
998   uint32_t ProfileCountSize = 0;
999 
1000   // ProfileRecord for this function.
1001   InstrProfRecord ProfileRecord;
1002 
1003   // Function hotness info derived from profile.
1004   FuncFreqAttr FreqAttr;
1005 
1006   // Is to use the context sensitive profile.
1007   bool IsCS;
1008 
1009   // Find the Instrumented BB and set the value. Return false on error.
1010   bool setInstrumentedCounts(const std::vector<uint64_t> &CountFromProfile);
1011 
1012   // Set the edge counter value for the unknown edge -- there should be only
1013   // one unknown edge.
1014   void setEdgeCount(DirectEdges &Edges, uint64_t Value);
1015 
1016   // Return FuncName string;
1017   const std::string getFuncName() const { return FuncInfo.FuncName; }
1018 
1019   // Set the hot/cold inline hints based on the count values.
1020   // FIXME: This function should be removed once the functionality in
1021   // the inliner is implemented.
1022   void markFunctionAttributes(uint64_t EntryCount, uint64_t MaxCount) {
1023     if (ProgramMaxCount == 0)
1024       return;
1025     // Threshold of the hot functions.
1026     const BranchProbability HotFunctionThreshold(1, 100);
1027     // Threshold of the cold functions.
1028     const BranchProbability ColdFunctionThreshold(2, 10000);
1029     if (EntryCount >= HotFunctionThreshold.scale(ProgramMaxCount))
1030       FreqAttr = FFA_Hot;
1031     else if (MaxCount <= ColdFunctionThreshold.scale(ProgramMaxCount))
1032       FreqAttr = FFA_Cold;
1033   }
1034 };
1035 
1036 } // end anonymous namespace
1037 
1038 // Visit all the edges and assign the count value for the instrumented
1039 // edges and the BB. Return false on error.
1040 bool PGOUseFunc::setInstrumentedCounts(
1041     const std::vector<uint64_t> &CountFromProfile) {
1042   // The number of counters here should match the number of counters
1043   // in profile. Return if they mismatch.
1044   if (FuncInfo.getNumCounters() != CountFromProfile.size()) {
1045     return false;
1046   }
1047   // Use a worklist as we will update the vector during the iteration.
1048   std::vector<PGOUseEdge *> WorkList;
1049   for (auto &E : FuncInfo.MST.AllEdges)
1050     WorkList.push_back(E.get());
1051 
1052   uint32_t I = 0;
1053   for (auto &E : WorkList) {
1054     BasicBlock *InstrBB = FuncInfo.getInstrBB(E);
1055     if (!InstrBB)
1056       continue;
1057     uint64_t CountValue = CountFromProfile[I++];
1058     if (!E->Removed) {
1059       getBBInfo(InstrBB).setBBInfoCount(CountValue);
1060       E->setEdgeCount(CountValue);
1061       continue;
1062     }
1063 
1064     // Need to add two new edges.
1065     BasicBlock *SrcBB = const_cast<BasicBlock *>(E->SrcBB);
1066     BasicBlock *DestBB = const_cast<BasicBlock *>(E->DestBB);
1067     // Add new edge of SrcBB->InstrBB.
1068     PGOUseEdge &NewEdge = FuncInfo.MST.addEdge(SrcBB, InstrBB, 0);
1069     NewEdge.setEdgeCount(CountValue);
1070     // Add new edge of InstrBB->DestBB.
1071     PGOUseEdge &NewEdge1 = FuncInfo.MST.addEdge(InstrBB, DestBB, 0);
1072     NewEdge1.setEdgeCount(CountValue);
1073     NewEdge1.InMST = true;
1074     getBBInfo(InstrBB).setBBInfoCount(CountValue);
1075   }
1076   ProfileCountSize = CountFromProfile.size();
1077   CountPosition = I;
1078   return true;
1079 }
1080 
1081 // Set the count value for the unknown edge. There should be one and only one
1082 // unknown edge in Edges vector.
1083 void PGOUseFunc::setEdgeCount(DirectEdges &Edges, uint64_t Value) {
1084   for (auto &E : Edges) {
1085     if (E->CountValid)
1086       continue;
1087     E->setEdgeCount(Value);
1088 
1089     getBBInfo(E->SrcBB).UnknownCountOutEdge--;
1090     getBBInfo(E->DestBB).UnknownCountInEdge--;
1091     return;
1092   }
1093   llvm_unreachable("Cannot find the unknown count edge");
1094 }
1095 
1096 // Read the profile from ProfileFileName and assign the value to the
1097 // instrumented BB and the edges. This function also updates ProgramMaxCount.
1098 // Return true if the profile are successfully read, and false on errors.
1099 bool PGOUseFunc::readCounters(IndexedInstrProfReader *PGOReader, bool &AllZeros) {
1100   auto &Ctx = M->getContext();
1101   Expected<InstrProfRecord> Result =
1102       PGOReader->getInstrProfRecord(FuncInfo.FuncName, FuncInfo.FunctionHash);
1103   if (Error E = Result.takeError()) {
1104     handleAllErrors(std::move(E), [&](const InstrProfError &IPE) {
1105       auto Err = IPE.get();
1106       bool SkipWarning = false;
1107       LLVM_DEBUG(dbgs() << "Error in reading profile for Func "
1108                         << FuncInfo.FuncName << ": ");
1109       if (Err == instrprof_error::unknown_function) {
1110         IsCS ? NumOfCSPGOMissing++ : NumOfPGOMissing++;
1111         SkipWarning = !PGOWarnMissing;
1112         LLVM_DEBUG(dbgs() << "unknown function");
1113       } else if (Err == instrprof_error::hash_mismatch ||
1114                  Err == instrprof_error::malformed) {
1115         IsCS ? NumOfCSPGOMismatch++ : NumOfPGOMismatch++;
1116         SkipWarning =
1117             NoPGOWarnMismatch ||
1118             (NoPGOWarnMismatchComdat &&
1119              (F.hasComdat() ||
1120               F.getLinkage() == GlobalValue::AvailableExternallyLinkage));
1121         LLVM_DEBUG(dbgs() << "hash mismatch (skip=" << SkipWarning << ")");
1122       }
1123 
1124       LLVM_DEBUG(dbgs() << " IsCS=" << IsCS << "\n");
1125       if (SkipWarning)
1126         return;
1127 
1128       std::string Msg = IPE.message() + std::string(" ") + F.getName().str() +
1129                         std::string(" Hash = ") +
1130                         std::to_string(FuncInfo.FunctionHash);
1131 
1132       Ctx.diagnose(
1133           DiagnosticInfoPGOProfile(M->getName().data(), Msg, DS_Warning));
1134     });
1135     return false;
1136   }
1137   ProfileRecord = std::move(Result.get());
1138   std::vector<uint64_t> &CountFromProfile = ProfileRecord.Counts;
1139 
1140   IsCS ? NumOfCSPGOFunc++ : NumOfPGOFunc++;
1141   LLVM_DEBUG(dbgs() << CountFromProfile.size() << " counts\n");
1142   uint64_t ValueSum = 0;
1143   for (unsigned I = 0, S = CountFromProfile.size(); I < S; I++) {
1144     LLVM_DEBUG(dbgs() << "  " << I << ": " << CountFromProfile[I] << "\n");
1145     ValueSum += CountFromProfile[I];
1146   }
1147   AllZeros = (ValueSum == 0);
1148 
1149   LLVM_DEBUG(dbgs() << "SUM =  " << ValueSum << "\n");
1150 
1151   getBBInfo(nullptr).UnknownCountOutEdge = 2;
1152   getBBInfo(nullptr).UnknownCountInEdge = 2;
1153 
1154   if (!setInstrumentedCounts(CountFromProfile)) {
1155     LLVM_DEBUG(
1156         dbgs() << "Inconsistent number of counts, skipping this function");
1157     Ctx.diagnose(DiagnosticInfoPGOProfile(
1158         M->getName().data(),
1159         Twine("Inconsistent number of counts in ") + F.getName().str()
1160         + Twine(": the profile may be stale or there is a function name collision."),
1161         DS_Warning));
1162     return false;
1163   }
1164   ProgramMaxCount = PGOReader->getMaximumFunctionCount(IsCS);
1165   return true;
1166 }
1167 
1168 // Populate the counters from instrumented BBs to all BBs.
1169 // In the end of this operation, all BBs should have a valid count value.
1170 void PGOUseFunc::populateCounters() {
1171   // First set up Count variable for all BBs.
1172   for (auto &E : FuncInfo.MST.AllEdges) {
1173     if (E->Removed)
1174       continue;
1175 
1176     const BasicBlock *SrcBB = E->SrcBB;
1177     const BasicBlock *DestBB = E->DestBB;
1178     UseBBInfo &SrcInfo = getBBInfo(SrcBB);
1179     UseBBInfo &DestInfo = getBBInfo(DestBB);
1180     SrcInfo.OutEdges.push_back(E.get());
1181     DestInfo.InEdges.push_back(E.get());
1182     SrcInfo.UnknownCountOutEdge++;
1183     DestInfo.UnknownCountInEdge++;
1184 
1185     if (!E->CountValid)
1186       continue;
1187     DestInfo.UnknownCountInEdge--;
1188     SrcInfo.UnknownCountOutEdge--;
1189   }
1190 
1191   bool Changes = true;
1192   unsigned NumPasses = 0;
1193   while (Changes) {
1194     NumPasses++;
1195     Changes = false;
1196 
1197     // For efficient traversal, it's better to start from the end as most
1198     // of the instrumented edges are at the end.
1199     for (auto &BB : reverse(F)) {
1200       UseBBInfo *Count = findBBInfo(&BB);
1201       if (Count == nullptr)
1202         continue;
1203       if (!Count->CountValid) {
1204         if (Count->UnknownCountOutEdge == 0) {
1205           Count->CountValue = sumEdgeCount(Count->OutEdges);
1206           Count->CountValid = true;
1207           Changes = true;
1208         } else if (Count->UnknownCountInEdge == 0) {
1209           Count->CountValue = sumEdgeCount(Count->InEdges);
1210           Count->CountValid = true;
1211           Changes = true;
1212         }
1213       }
1214       if (Count->CountValid) {
1215         if (Count->UnknownCountOutEdge == 1) {
1216           uint64_t Total = 0;
1217           uint64_t OutSum = sumEdgeCount(Count->OutEdges);
1218           // If the one of the successor block can early terminate (no-return),
1219           // we can end up with situation where out edge sum count is larger as
1220           // the source BB's count is collected by a post-dominated block.
1221           if (Count->CountValue > OutSum)
1222             Total = Count->CountValue - OutSum;
1223           setEdgeCount(Count->OutEdges, Total);
1224           Changes = true;
1225         }
1226         if (Count->UnknownCountInEdge == 1) {
1227           uint64_t Total = 0;
1228           uint64_t InSum = sumEdgeCount(Count->InEdges);
1229           if (Count->CountValue > InSum)
1230             Total = Count->CountValue - InSum;
1231           setEdgeCount(Count->InEdges, Total);
1232           Changes = true;
1233         }
1234       }
1235     }
1236   }
1237 
1238   LLVM_DEBUG(dbgs() << "Populate counts in " << NumPasses << " passes.\n");
1239 #ifndef NDEBUG
1240   // Assert every BB has a valid counter.
1241   for (auto &BB : F) {
1242     auto BI = findBBInfo(&BB);
1243     if (BI == nullptr)
1244       continue;
1245     assert(BI->CountValid && "BB count is not valid");
1246   }
1247 #endif
1248   uint64_t FuncEntryCount = getBBInfo(&*F.begin()).CountValue;
1249   F.setEntryCount(ProfileCount(FuncEntryCount, Function::PCT_Real));
1250   uint64_t FuncMaxCount = FuncEntryCount;
1251   for (auto &BB : F) {
1252     auto BI = findBBInfo(&BB);
1253     if (BI == nullptr)
1254       continue;
1255     FuncMaxCount = std::max(FuncMaxCount, BI->CountValue);
1256   }
1257   markFunctionAttributes(FuncEntryCount, FuncMaxCount);
1258 
1259   // Now annotate select instructions
1260   FuncInfo.SIVisitor.annotateSelects(F, this, &CountPosition);
1261   assert(CountPosition == ProfileCountSize);
1262 
1263   LLVM_DEBUG(FuncInfo.dumpInfo("after reading profile."));
1264 }
1265 
1266 // Assign the scaled count values to the BB with multiple out edges.
1267 void PGOUseFunc::setBranchWeights() {
1268   // Generate MD_prof metadata for every branch instruction.
1269   LLVM_DEBUG(dbgs() << "\nSetting branch weights for func " << F.getName()
1270                     << " IsCS=" << IsCS << "\n");
1271   for (auto &BB : F) {
1272     Instruction *TI = BB.getTerminator();
1273     if (TI->getNumSuccessors() < 2)
1274       continue;
1275     if (!(isa<BranchInst>(TI) || isa<SwitchInst>(TI) ||
1276           isa<IndirectBrInst>(TI)))
1277       continue;
1278 
1279     if (getBBInfo(&BB).CountValue == 0)
1280       continue;
1281 
1282     // We have a non-zero Branch BB.
1283     const UseBBInfo &BBCountInfo = getBBInfo(&BB);
1284     unsigned Size = BBCountInfo.OutEdges.size();
1285     SmallVector<uint64_t, 2> EdgeCounts(Size, 0);
1286     uint64_t MaxCount = 0;
1287     for (unsigned s = 0; s < Size; s++) {
1288       const PGOUseEdge *E = BBCountInfo.OutEdges[s];
1289       const BasicBlock *SrcBB = E->SrcBB;
1290       const BasicBlock *DestBB = E->DestBB;
1291       if (DestBB == nullptr)
1292         continue;
1293       unsigned SuccNum = GetSuccessorNumber(SrcBB, DestBB);
1294       uint64_t EdgeCount = E->CountValue;
1295       if (EdgeCount > MaxCount)
1296         MaxCount = EdgeCount;
1297       EdgeCounts[SuccNum] = EdgeCount;
1298     }
1299     setProfMetadata(M, TI, EdgeCounts, MaxCount);
1300   }
1301 }
1302 
1303 static bool isIndirectBrTarget(BasicBlock *BB) {
1304   for (pred_iterator PI = pred_begin(BB), E = pred_end(BB); PI != E; ++PI) {
1305     if (isa<IndirectBrInst>((*PI)->getTerminator()))
1306       return true;
1307   }
1308   return false;
1309 }
1310 
1311 void PGOUseFunc::annotateIrrLoopHeaderWeights() {
1312   LLVM_DEBUG(dbgs() << "\nAnnotating irreducible loop header weights.\n");
1313   // Find irr loop headers
1314   for (auto &BB : F) {
1315     // As a heuristic also annotate indrectbr targets as they have a high chance
1316     // to become an irreducible loop header after the indirectbr tail
1317     // duplication.
1318     if (BFI->isIrrLoopHeader(&BB) || isIndirectBrTarget(&BB)) {
1319       Instruction *TI = BB.getTerminator();
1320       const UseBBInfo &BBCountInfo = getBBInfo(&BB);
1321       setIrrLoopHeaderMetadata(M, TI, BBCountInfo.CountValue);
1322     }
1323   }
1324 }
1325 
1326 void SelectInstVisitor::instrumentOneSelectInst(SelectInst &SI) {
1327   Module *M = F.getParent();
1328   IRBuilder<> Builder(&SI);
1329   Type *Int64Ty = Builder.getInt64Ty();
1330   Type *I8PtrTy = Builder.getInt8PtrTy();
1331   auto *Step = Builder.CreateZExt(SI.getCondition(), Int64Ty);
1332   Builder.CreateCall(
1333       Intrinsic::getDeclaration(M, Intrinsic::instrprof_increment_step),
1334       {ConstantExpr::getBitCast(FuncNameVar, I8PtrTy),
1335        Builder.getInt64(FuncHash), Builder.getInt32(TotalNumCtrs),
1336        Builder.getInt32(*CurCtrIdx), Step});
1337   ++(*CurCtrIdx);
1338 }
1339 
1340 void SelectInstVisitor::annotateOneSelectInst(SelectInst &SI) {
1341   std::vector<uint64_t> &CountFromProfile = UseFunc->getProfileRecord().Counts;
1342   assert(*CurCtrIdx < CountFromProfile.size() &&
1343          "Out of bound access of counters");
1344   uint64_t SCounts[2];
1345   SCounts[0] = CountFromProfile[*CurCtrIdx]; // True count
1346   ++(*CurCtrIdx);
1347   uint64_t TotalCount = 0;
1348   auto BI = UseFunc->findBBInfo(SI.getParent());
1349   if (BI != nullptr)
1350     TotalCount = BI->CountValue;
1351   // False Count
1352   SCounts[1] = (TotalCount > SCounts[0] ? TotalCount - SCounts[0] : 0);
1353   uint64_t MaxCount = std::max(SCounts[0], SCounts[1]);
1354   if (MaxCount)
1355     setProfMetadata(F.getParent(), &SI, SCounts, MaxCount);
1356 }
1357 
1358 void SelectInstVisitor::visitSelectInst(SelectInst &SI) {
1359   if (!PGOInstrSelect)
1360     return;
1361   // FIXME: do not handle this yet.
1362   if (SI.getCondition()->getType()->isVectorTy())
1363     return;
1364 
1365   switch (Mode) {
1366   case VM_counting:
1367     NSIs++;
1368     return;
1369   case VM_instrument:
1370     instrumentOneSelectInst(SI);
1371     return;
1372   case VM_annotate:
1373     annotateOneSelectInst(SI);
1374     return;
1375   }
1376 
1377   llvm_unreachable("Unknown visiting mode");
1378 }
1379 
1380 void MemIntrinsicVisitor::instrumentOneMemIntrinsic(MemIntrinsic &MI) {
1381   Module *M = F.getParent();
1382   IRBuilder<> Builder(&MI);
1383   Type *Int64Ty = Builder.getInt64Ty();
1384   Type *I8PtrTy = Builder.getInt8PtrTy();
1385   Value *Length = MI.getLength();
1386   assert(!isa<ConstantInt>(Length));
1387   Builder.CreateCall(
1388       Intrinsic::getDeclaration(M, Intrinsic::instrprof_value_profile),
1389       {ConstantExpr::getBitCast(FuncNameVar, I8PtrTy),
1390        Builder.getInt64(FuncHash), Builder.CreateZExtOrTrunc(Length, Int64Ty),
1391        Builder.getInt32(IPVK_MemOPSize), Builder.getInt32(CurCtrId)});
1392   ++CurCtrId;
1393 }
1394 
1395 void MemIntrinsicVisitor::visitMemIntrinsic(MemIntrinsic &MI) {
1396   if (!PGOInstrMemOP)
1397     return;
1398   Value *Length = MI.getLength();
1399   // Not instrument constant length calls.
1400   if (dyn_cast<ConstantInt>(Length))
1401     return;
1402 
1403   switch (Mode) {
1404   case VM_counting:
1405     NMemIs++;
1406     return;
1407   case VM_instrument:
1408     instrumentOneMemIntrinsic(MI);
1409     return;
1410   case VM_annotate:
1411     Candidates.push_back(&MI);
1412     return;
1413   }
1414   llvm_unreachable("Unknown visiting mode");
1415 }
1416 
1417 // Traverse all valuesites and annotate the instructions for all value kind.
1418 void PGOUseFunc::annotateValueSites() {
1419   if (DisableValueProfiling)
1420     return;
1421 
1422   // Create the PGOFuncName meta data.
1423   createPGOFuncNameMetadata(F, FuncInfo.FuncName);
1424 
1425   for (uint32_t Kind = IPVK_First; Kind <= IPVK_Last; ++Kind)
1426     annotateValueSites(Kind);
1427 }
1428 
1429 static const char *ValueProfKindDescr[] = {
1430 #define VALUE_PROF_KIND(Enumerator, Value, Descr) Descr,
1431 #include "llvm/ProfileData/InstrProfData.inc"
1432 };
1433 
1434 // Annotate the instructions for a specific value kind.
1435 void PGOUseFunc::annotateValueSites(uint32_t Kind) {
1436   assert(Kind <= IPVK_Last);
1437   unsigned ValueSiteIndex = 0;
1438   auto &ValueSites = FuncInfo.ValueSites[Kind];
1439   unsigned NumValueSites = ProfileRecord.getNumValueSites(Kind);
1440   if (NumValueSites != ValueSites.size()) {
1441     auto &Ctx = M->getContext();
1442     Ctx.diagnose(DiagnosticInfoPGOProfile(
1443         M->getName().data(),
1444         Twine("Inconsistent number of value sites for ") +
1445             Twine(ValueProfKindDescr[Kind]) +
1446             Twine(" profiling in \"") + F.getName().str() +
1447             Twine("\", possibly due to the use of a stale profile."),
1448         DS_Warning));
1449     return;
1450   }
1451 
1452   for (auto &I : ValueSites) {
1453     LLVM_DEBUG(dbgs() << "Read one value site profile (kind = " << Kind
1454                       << "): Index = " << ValueSiteIndex << " out of "
1455                       << NumValueSites << "\n");
1456     annotateValueSite(*M, *I, ProfileRecord,
1457                       static_cast<InstrProfValueKind>(Kind), ValueSiteIndex,
1458                       Kind == IPVK_MemOPSize ? MaxNumMemOPAnnotations
1459                                              : MaxNumAnnotations);
1460     ValueSiteIndex++;
1461   }
1462 }
1463 
1464 // Collect the set of members for each Comdat in module M and store
1465 // in ComdatMembers.
1466 static void collectComdatMembers(
1467     Module &M,
1468     std::unordered_multimap<Comdat *, GlobalValue *> &ComdatMembers) {
1469   if (!DoComdatRenaming)
1470     return;
1471   for (Function &F : M)
1472     if (Comdat *C = F.getComdat())
1473       ComdatMembers.insert(std::make_pair(C, &F));
1474   for (GlobalVariable &GV : M.globals())
1475     if (Comdat *C = GV.getComdat())
1476       ComdatMembers.insert(std::make_pair(C, &GV));
1477   for (GlobalAlias &GA : M.aliases())
1478     if (Comdat *C = GA.getComdat())
1479       ComdatMembers.insert(std::make_pair(C, &GA));
1480 }
1481 
1482 static bool InstrumentAllFunctions(
1483     Module &M, function_ref<BranchProbabilityInfo *(Function &)> LookupBPI,
1484     function_ref<BlockFrequencyInfo *(Function &)> LookupBFI, bool IsCS) {
1485   // For the context-sensitve instrumentation, we should have a separated pass
1486   // (before LTO/ThinLTO linking) to create these variables.
1487   if (!IsCS)
1488     createIRLevelProfileFlagVar(M, /* IsCS */ false);
1489   std::unordered_multimap<Comdat *, GlobalValue *> ComdatMembers;
1490   collectComdatMembers(M, ComdatMembers);
1491 
1492   for (auto &F : M) {
1493     if (F.isDeclaration())
1494       continue;
1495     auto *BPI = LookupBPI(F);
1496     auto *BFI = LookupBFI(F);
1497     instrumentOneFunc(F, &M, BPI, BFI, ComdatMembers, IsCS);
1498   }
1499   return true;
1500 }
1501 
1502 PreservedAnalyses
1503 PGOInstrumentationGenCreateVar::run(Module &M, ModuleAnalysisManager &AM) {
1504   createProfileFileNameVar(M, CSInstrName);
1505   createIRLevelProfileFlagVar(M, /* IsCS */ true);
1506   return PreservedAnalyses::all();
1507 }
1508 
1509 bool PGOInstrumentationGenLegacyPass::runOnModule(Module &M) {
1510   if (skipModule(M))
1511     return false;
1512 
1513   auto LookupBPI = [this](Function &F) {
1514     return &this->getAnalysis<BranchProbabilityInfoWrapperPass>(F).getBPI();
1515   };
1516   auto LookupBFI = [this](Function &F) {
1517     return &this->getAnalysis<BlockFrequencyInfoWrapperPass>(F).getBFI();
1518   };
1519   return InstrumentAllFunctions(M, LookupBPI, LookupBFI, IsCS);
1520 }
1521 
1522 PreservedAnalyses PGOInstrumentationGen::run(Module &M,
1523                                              ModuleAnalysisManager &AM) {
1524   auto &FAM = AM.getResult<FunctionAnalysisManagerModuleProxy>(M).getManager();
1525   auto LookupBPI = [&FAM](Function &F) {
1526     return &FAM.getResult<BranchProbabilityAnalysis>(F);
1527   };
1528 
1529   auto LookupBFI = [&FAM](Function &F) {
1530     return &FAM.getResult<BlockFrequencyAnalysis>(F);
1531   };
1532 
1533   if (!InstrumentAllFunctions(M, LookupBPI, LookupBFI, IsCS))
1534     return PreservedAnalyses::all();
1535 
1536   return PreservedAnalyses::none();
1537 }
1538 
1539 static bool annotateAllFunctions(
1540     Module &M, StringRef ProfileFileName, StringRef ProfileRemappingFileName,
1541     function_ref<BranchProbabilityInfo *(Function &)> LookupBPI,
1542     function_ref<BlockFrequencyInfo *(Function &)> LookupBFI, bool IsCS) {
1543   LLVM_DEBUG(dbgs() << "Read in profile counters: ");
1544   auto &Ctx = M.getContext();
1545   // Read the counter array from file.
1546   auto ReaderOrErr =
1547       IndexedInstrProfReader::create(ProfileFileName, ProfileRemappingFileName);
1548   if (Error E = ReaderOrErr.takeError()) {
1549     handleAllErrors(std::move(E), [&](const ErrorInfoBase &EI) {
1550       Ctx.diagnose(
1551           DiagnosticInfoPGOProfile(ProfileFileName.data(), EI.message()));
1552     });
1553     return false;
1554   }
1555 
1556   std::unique_ptr<IndexedInstrProfReader> PGOReader =
1557       std::move(ReaderOrErr.get());
1558   if (!PGOReader) {
1559     Ctx.diagnose(DiagnosticInfoPGOProfile(ProfileFileName.data(),
1560                                           StringRef("Cannot get PGOReader")));
1561     return false;
1562   }
1563   if (!PGOReader->hasCSIRLevelProfile() && IsCS)
1564     return false;
1565 
1566   // TODO: might need to change the warning once the clang option is finalized.
1567   if (!PGOReader->isIRLevelProfile()) {
1568     Ctx.diagnose(DiagnosticInfoPGOProfile(
1569         ProfileFileName.data(), "Not an IR level instrumentation profile"));
1570     return false;
1571   }
1572 
1573   std::unordered_multimap<Comdat *, GlobalValue *> ComdatMembers;
1574   collectComdatMembers(M, ComdatMembers);
1575   std::vector<Function *> HotFunctions;
1576   std::vector<Function *> ColdFunctions;
1577   for (auto &F : M) {
1578     if (F.isDeclaration())
1579       continue;
1580     auto *BPI = LookupBPI(F);
1581     auto *BFI = LookupBFI(F);
1582     // Split indirectbr critical edges here before computing the MST rather than
1583     // later in getInstrBB() to avoid invalidating it.
1584     SplitIndirectBrCriticalEdges(F, BPI, BFI);
1585     PGOUseFunc Func(F, &M, ComdatMembers, BPI, BFI, IsCS);
1586     bool AllZeros = false;
1587     if (!Func.readCounters(PGOReader.get(), AllZeros))
1588       continue;
1589     if (AllZeros) {
1590       F.setEntryCount(ProfileCount(0, Function::PCT_Real));
1591       if (Func.getProgramMaxCount() != 0)
1592         ColdFunctions.push_back(&F);
1593       continue;
1594     }
1595     Func.populateCounters();
1596     Func.setBranchWeights();
1597     Func.annotateValueSites();
1598     Func.annotateIrrLoopHeaderWeights();
1599     PGOUseFunc::FuncFreqAttr FreqAttr = Func.getFuncFreqAttr();
1600     if (FreqAttr == PGOUseFunc::FFA_Cold)
1601       ColdFunctions.push_back(&F);
1602     else if (FreqAttr == PGOUseFunc::FFA_Hot)
1603       HotFunctions.push_back(&F);
1604     if (PGOViewCounts != PGOVCT_None &&
1605         (ViewBlockFreqFuncName.empty() ||
1606          F.getName().equals(ViewBlockFreqFuncName))) {
1607       LoopInfo LI{DominatorTree(F)};
1608       std::unique_ptr<BranchProbabilityInfo> NewBPI =
1609           llvm::make_unique<BranchProbabilityInfo>(F, LI);
1610       std::unique_ptr<BlockFrequencyInfo> NewBFI =
1611           llvm::make_unique<BlockFrequencyInfo>(F, *NewBPI, LI);
1612       if (PGOViewCounts == PGOVCT_Graph)
1613         NewBFI->view();
1614       else if (PGOViewCounts == PGOVCT_Text) {
1615         dbgs() << "pgo-view-counts: " << Func.getFunc().getName() << "\n";
1616         NewBFI->print(dbgs());
1617       }
1618     }
1619     if (PGOViewRawCounts != PGOVCT_None &&
1620         (ViewBlockFreqFuncName.empty() ||
1621          F.getName().equals(ViewBlockFreqFuncName))) {
1622       if (PGOViewRawCounts == PGOVCT_Graph)
1623         if (ViewBlockFreqFuncName.empty())
1624           WriteGraph(&Func, Twine("PGORawCounts_") + Func.getFunc().getName());
1625         else
1626           ViewGraph(&Func, Twine("PGORawCounts_") + Func.getFunc().getName());
1627       else if (PGOViewRawCounts == PGOVCT_Text) {
1628         dbgs() << "pgo-view-raw-counts: " << Func.getFunc().getName() << "\n";
1629         Func.dumpInfo();
1630       }
1631     }
1632   }
1633   M.setProfileSummary(PGOReader->getSummary(IsCS).getMD(M.getContext()),
1634                       IsCS ? ProfileSummary::PSK_CSInstr
1635                            : ProfileSummary::PSK_Instr);
1636 
1637   // Set function hotness attribute from the profile.
1638   // We have to apply these attributes at the end because their presence
1639   // can affect the BranchProbabilityInfo of any callers, resulting in an
1640   // inconsistent MST between prof-gen and prof-use.
1641   for (auto &F : HotFunctions) {
1642     F->addFnAttr(Attribute::InlineHint);
1643     LLVM_DEBUG(dbgs() << "Set inline attribute to function: " << F->getName()
1644                       << "\n");
1645   }
1646   for (auto &F : ColdFunctions) {
1647     F->addFnAttr(Attribute::Cold);
1648     LLVM_DEBUG(dbgs() << "Set cold attribute to function: " << F->getName()
1649                       << "\n");
1650   }
1651   return true;
1652 }
1653 
1654 PGOInstrumentationUse::PGOInstrumentationUse(std::string Filename,
1655                                              std::string RemappingFilename,
1656                                              bool IsCS)
1657     : ProfileFileName(std::move(Filename)),
1658       ProfileRemappingFileName(std::move(RemappingFilename)), IsCS(IsCS) {
1659   if (!PGOTestProfileFile.empty())
1660     ProfileFileName = PGOTestProfileFile;
1661   if (!PGOTestProfileRemappingFile.empty())
1662     ProfileRemappingFileName = PGOTestProfileRemappingFile;
1663 }
1664 
1665 PreservedAnalyses PGOInstrumentationUse::run(Module &M,
1666                                              ModuleAnalysisManager &AM) {
1667 
1668   auto &FAM = AM.getResult<FunctionAnalysisManagerModuleProxy>(M).getManager();
1669   auto LookupBPI = [&FAM](Function &F) {
1670     return &FAM.getResult<BranchProbabilityAnalysis>(F);
1671   };
1672 
1673   auto LookupBFI = [&FAM](Function &F) {
1674     return &FAM.getResult<BlockFrequencyAnalysis>(F);
1675   };
1676 
1677   if (!annotateAllFunctions(M, ProfileFileName, ProfileRemappingFileName,
1678                             LookupBPI, LookupBFI, IsCS))
1679     return PreservedAnalyses::all();
1680 
1681   return PreservedAnalyses::none();
1682 }
1683 
1684 bool PGOInstrumentationUseLegacyPass::runOnModule(Module &M) {
1685   if (skipModule(M))
1686     return false;
1687 
1688   auto LookupBPI = [this](Function &F) {
1689     return &this->getAnalysis<BranchProbabilityInfoWrapperPass>(F).getBPI();
1690   };
1691   auto LookupBFI = [this](Function &F) {
1692     return &this->getAnalysis<BlockFrequencyInfoWrapperPass>(F).getBFI();
1693   };
1694 
1695   return annotateAllFunctions(M, ProfileFileName, "", LookupBPI, LookupBFI,
1696                               IsCS);
1697 }
1698 
1699 static std::string getSimpleNodeName(const BasicBlock *Node) {
1700   if (!Node->getName().empty())
1701     return Node->getName();
1702 
1703   std::string SimpleNodeName;
1704   raw_string_ostream OS(SimpleNodeName);
1705   Node->printAsOperand(OS, false);
1706   return OS.str();
1707 }
1708 
1709 void llvm::setProfMetadata(Module *M, Instruction *TI,
1710                            ArrayRef<uint64_t> EdgeCounts,
1711                            uint64_t MaxCount) {
1712   MDBuilder MDB(M->getContext());
1713   assert(MaxCount > 0 && "Bad max count");
1714   uint64_t Scale = calculateCountScale(MaxCount);
1715   SmallVector<unsigned, 4> Weights;
1716   for (const auto &ECI : EdgeCounts)
1717     Weights.push_back(scaleBranchCount(ECI, Scale));
1718 
1719   LLVM_DEBUG(dbgs() << "Weight is: "; for (const auto &W
1720                                            : Weights) {
1721     dbgs() << W << " ";
1722   } dbgs() << "\n";);
1723   TI->setMetadata(LLVMContext::MD_prof, MDB.createBranchWeights(Weights));
1724   if (EmitBranchProbability) {
1725     std::string BrCondStr = getBranchCondString(TI);
1726     if (BrCondStr.empty())
1727       return;
1728 
1729     uint64_t WSum =
1730         std::accumulate(Weights.begin(), Weights.end(), (uint64_t)0,
1731                         [](uint64_t w1, uint64_t w2) { return w1 + w2; });
1732     uint64_t TotalCount =
1733         std::accumulate(EdgeCounts.begin(), EdgeCounts.end(), (uint64_t)0,
1734                         [](uint64_t c1, uint64_t c2) { return c1 + c2; });
1735     Scale = calculateCountScale(WSum);
1736     BranchProbability BP(scaleBranchCount(Weights[0], Scale),
1737                          scaleBranchCount(WSum, Scale));
1738     std::string BranchProbStr;
1739     raw_string_ostream OS(BranchProbStr);
1740     OS << BP;
1741     OS << " (total count : " << TotalCount << ")";
1742     OS.flush();
1743     Function *F = TI->getParent()->getParent();
1744     OptimizationRemarkEmitter ORE(F);
1745     ORE.emit([&]() {
1746       return OptimizationRemark(DEBUG_TYPE, "pgo-instrumentation", TI)
1747              << BrCondStr << " is true with probability : " << BranchProbStr;
1748     });
1749   }
1750 }
1751 
1752 namespace llvm {
1753 
1754 void setIrrLoopHeaderMetadata(Module *M, Instruction *TI, uint64_t Count) {
1755   MDBuilder MDB(M->getContext());
1756   TI->setMetadata(llvm::LLVMContext::MD_irr_loop,
1757                   MDB.createIrrLoopHeaderWeight(Count));
1758 }
1759 
1760 template <> struct GraphTraits<PGOUseFunc *> {
1761   using NodeRef = const BasicBlock *;
1762   using ChildIteratorType = succ_const_iterator;
1763   using nodes_iterator = pointer_iterator<Function::const_iterator>;
1764 
1765   static NodeRef getEntryNode(const PGOUseFunc *G) {
1766     return &G->getFunc().front();
1767   }
1768 
1769   static ChildIteratorType child_begin(const NodeRef N) {
1770     return succ_begin(N);
1771   }
1772 
1773   static ChildIteratorType child_end(const NodeRef N) { return succ_end(N); }
1774 
1775   static nodes_iterator nodes_begin(const PGOUseFunc *G) {
1776     return nodes_iterator(G->getFunc().begin());
1777   }
1778 
1779   static nodes_iterator nodes_end(const PGOUseFunc *G) {
1780     return nodes_iterator(G->getFunc().end());
1781   }
1782 };
1783 
1784 template <> struct DOTGraphTraits<PGOUseFunc *> : DefaultDOTGraphTraits {
1785   explicit DOTGraphTraits(bool isSimple = false)
1786       : DefaultDOTGraphTraits(isSimple) {}
1787 
1788   static std::string getGraphName(const PGOUseFunc *G) {
1789     return G->getFunc().getName();
1790   }
1791 
1792   std::string getNodeLabel(const BasicBlock *Node, const PGOUseFunc *Graph) {
1793     std::string Result;
1794     raw_string_ostream OS(Result);
1795 
1796     OS << getSimpleNodeName(Node) << ":\\l";
1797     UseBBInfo *BI = Graph->findBBInfo(Node);
1798     OS << "Count : ";
1799     if (BI && BI->CountValid)
1800       OS << BI->CountValue << "\\l";
1801     else
1802       OS << "Unknown\\l";
1803 
1804     if (!PGOInstrSelect)
1805       return Result;
1806 
1807     for (auto BI = Node->begin(); BI != Node->end(); ++BI) {
1808       auto *I = &*BI;
1809       if (!isa<SelectInst>(I))
1810         continue;
1811       // Display scaled counts for SELECT instruction:
1812       OS << "SELECT : { T = ";
1813       uint64_t TC, FC;
1814       bool HasProf = I->extractProfMetadata(TC, FC);
1815       if (!HasProf)
1816         OS << "Unknown, F = Unknown }\\l";
1817       else
1818         OS << TC << ", F = " << FC << " }\\l";
1819     }
1820     return Result;
1821   }
1822 };
1823 
1824 } // end namespace llvm
1825