1 //===- SampleProfile.cpp - Incorporate sample profiles into the IR --------===//
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 the SampleProfileLoader transformation. This pass
10 // reads a profile file generated by a sampling profiler (e.g. Linux Perf -
11 // http://perf.wiki.kernel.org/) and generates IR metadata to reflect the
12 // profile information in the given profile.
13 //
14 // This pass generates branch weight annotations on the IR:
15 //
16 // - prof: Represents branch weights. This annotation is added to branches
17 //      to indicate the weights of each edge coming out of the branch.
18 //      The weight of each edge is the weight of the target block for
19 //      that edge. The weight of a block B is computed as the maximum
20 //      number of samples found in B.
21 //
22 //===----------------------------------------------------------------------===//
23 
24 #include "llvm/Transforms/IPO/SampleProfile.h"
25 #include "llvm/ADT/ArrayRef.h"
26 #include "llvm/ADT/DenseMap.h"
27 #include "llvm/ADT/DenseSet.h"
28 #include "llvm/ADT/None.h"
29 #include "llvm/ADT/PriorityQueue.h"
30 #include "llvm/ADT/SCCIterator.h"
31 #include "llvm/ADT/SmallPtrSet.h"
32 #include "llvm/ADT/SmallSet.h"
33 #include "llvm/ADT/SmallVector.h"
34 #include "llvm/ADT/Statistic.h"
35 #include "llvm/ADT/StringMap.h"
36 #include "llvm/ADT/StringRef.h"
37 #include "llvm/ADT/Twine.h"
38 #include "llvm/Analysis/AssumptionCache.h"
39 #include "llvm/Analysis/BlockFrequencyInfoImpl.h"
40 #include "llvm/Analysis/CallGraph.h"
41 #include "llvm/Analysis/CallGraphSCCPass.h"
42 #include "llvm/Analysis/InlineAdvisor.h"
43 #include "llvm/Analysis/InlineCost.h"
44 #include "llvm/Analysis/LoopInfo.h"
45 #include "llvm/Analysis/OptimizationRemarkEmitter.h"
46 #include "llvm/Analysis/PostDominators.h"
47 #include "llvm/Analysis/ProfileSummaryInfo.h"
48 #include "llvm/Analysis/ReplayInlineAdvisor.h"
49 #include "llvm/Analysis/TargetLibraryInfo.h"
50 #include "llvm/Analysis/TargetTransformInfo.h"
51 #include "llvm/IR/BasicBlock.h"
52 #include "llvm/IR/CFG.h"
53 #include "llvm/IR/DebugInfoMetadata.h"
54 #include "llvm/IR/DebugLoc.h"
55 #include "llvm/IR/DiagnosticInfo.h"
56 #include "llvm/IR/Dominators.h"
57 #include "llvm/IR/Function.h"
58 #include "llvm/IR/GlobalValue.h"
59 #include "llvm/IR/InstrTypes.h"
60 #include "llvm/IR/Instruction.h"
61 #include "llvm/IR/Instructions.h"
62 #include "llvm/IR/IntrinsicInst.h"
63 #include "llvm/IR/LLVMContext.h"
64 #include "llvm/IR/MDBuilder.h"
65 #include "llvm/IR/Module.h"
66 #include "llvm/IR/PassManager.h"
67 #include "llvm/IR/ValueSymbolTable.h"
68 #include "llvm/InitializePasses.h"
69 #include "llvm/Pass.h"
70 #include "llvm/ProfileData/InstrProf.h"
71 #include "llvm/ProfileData/SampleProf.h"
72 #include "llvm/ProfileData/SampleProfReader.h"
73 #include "llvm/Support/Casting.h"
74 #include "llvm/Support/CommandLine.h"
75 #include "llvm/Support/Debug.h"
76 #include "llvm/Support/ErrorHandling.h"
77 #include "llvm/Support/ErrorOr.h"
78 #include "llvm/Support/GenericDomTree.h"
79 #include "llvm/Support/raw_ostream.h"
80 #include "llvm/Transforms/IPO.h"
81 #include "llvm/Transforms/IPO/ProfiledCallGraph.h"
82 #include "llvm/Transforms/IPO/SampleContextTracker.h"
83 #include "llvm/Transforms/IPO/SampleProfileProbe.h"
84 #include "llvm/Transforms/Instrumentation.h"
85 #include "llvm/Transforms/Utils/CallPromotionUtils.h"
86 #include "llvm/Transforms/Utils/Cloning.h"
87 #include "llvm/Transforms/Utils/SampleProfileInference.h"
88 #include "llvm/Transforms/Utils/SampleProfileLoaderBaseImpl.h"
89 #include "llvm/Transforms/Utils/SampleProfileLoaderBaseUtil.h"
90 #include <algorithm>
91 #include <cassert>
92 #include <cstdint>
93 #include <functional>
94 #include <limits>
95 #include <map>
96 #include <memory>
97 #include <queue>
98 #include <string>
99 #include <system_error>
100 #include <utility>
101 #include <vector>
102 
103 using namespace llvm;
104 using namespace sampleprof;
105 using namespace llvm::sampleprofutil;
106 using ProfileCount = Function::ProfileCount;
107 #define DEBUG_TYPE "sample-profile"
108 #define CSINLINE_DEBUG DEBUG_TYPE "-inline"
109 
110 STATISTIC(NumCSInlined,
111           "Number of functions inlined with context sensitive profile");
112 STATISTIC(NumCSNotInlined,
113           "Number of functions not inlined with context sensitive profile");
114 STATISTIC(NumMismatchedProfile,
115           "Number of functions with CFG mismatched profile");
116 STATISTIC(NumMatchedProfile, "Number of functions with CFG matched profile");
117 STATISTIC(NumDuplicatedInlinesite,
118           "Number of inlined callsites with a partial distribution factor");
119 
120 STATISTIC(NumCSInlinedHitMinLimit,
121           "Number of functions with FDO inline stopped due to min size limit");
122 STATISTIC(NumCSInlinedHitMaxLimit,
123           "Number of functions with FDO inline stopped due to max size limit");
124 STATISTIC(
125     NumCSInlinedHitGrowthLimit,
126     "Number of functions with FDO inline stopped due to growth size limit");
127 
128 // Command line option to specify the file to read samples from. This is
129 // mainly used for debugging.
130 static cl::opt<std::string> SampleProfileFile(
131     "sample-profile-file", cl::init(""), cl::value_desc("filename"),
132     cl::desc("Profile file loaded by -sample-profile"), cl::Hidden);
133 
134 // The named file contains a set of transformations that may have been applied
135 // to the symbol names between the program from which the sample data was
136 // collected and the current program's symbols.
137 static cl::opt<std::string> SampleProfileRemappingFile(
138     "sample-profile-remapping-file", cl::init(""), cl::value_desc("filename"),
139     cl::desc("Profile remapping file loaded by -sample-profile"), cl::Hidden);
140 
141 static cl::opt<bool> ProfileSampleAccurate(
142     "profile-sample-accurate", cl::Hidden, cl::init(false),
143     cl::desc("If the sample profile is accurate, we will mark all un-sampled "
144              "callsite and function as having 0 samples. Otherwise, treat "
145              "un-sampled callsites and functions conservatively as unknown. "));
146 
147 static cl::opt<bool> ProfileSampleBlockAccurate(
148     "profile-sample-block-accurate", cl::Hidden, cl::init(false),
149     cl::desc("If the sample profile is accurate, we will mark all un-sampled "
150              "branches and calls as having 0 samples. Otherwise, treat "
151              "them conservatively as unknown. "));
152 
153 static cl::opt<bool> ProfileAccurateForSymsInList(
154     "profile-accurate-for-symsinlist", cl::Hidden, cl::ZeroOrMore,
155     cl::init(true),
156     cl::desc("For symbols in profile symbol list, regard their profiles to "
157              "be accurate. It may be overriden by profile-sample-accurate. "));
158 
159 static cl::opt<bool> ProfileMergeInlinee(
160     "sample-profile-merge-inlinee", cl::Hidden, cl::init(true),
161     cl::desc("Merge past inlinee's profile to outline version if sample "
162              "profile loader decided not to inline a call site. It will "
163              "only be enabled when top-down order of profile loading is "
164              "enabled. "));
165 
166 static cl::opt<bool> ProfileTopDownLoad(
167     "sample-profile-top-down-load", cl::Hidden, cl::init(true),
168     cl::desc("Do profile annotation and inlining for functions in top-down "
169              "order of call graph during sample profile loading. It only "
170              "works for new pass manager. "));
171 
172 static cl::opt<bool>
173     UseProfiledCallGraph("use-profiled-call-graph", cl::init(true), cl::Hidden,
174                          cl::desc("Process functions in a top-down order "
175                                   "defined by the profiled call graph when "
176                                   "-sample-profile-top-down-load is on."));
177 cl::opt<bool>
178     SortProfiledSCC("sort-profiled-scc-member", cl::init(true), cl::Hidden,
179                     cl::desc("Sort profiled recursion by edge weights."));
180 
181 static cl::opt<bool> ProfileSizeInline(
182     "sample-profile-inline-size", cl::Hidden, cl::init(false),
183     cl::desc("Inline cold call sites in profile loader if it's beneficial "
184              "for code size."));
185 
186 cl::opt<int> ProfileInlineGrowthLimit(
187     "sample-profile-inline-growth-limit", cl::Hidden, cl::init(12),
188     cl::desc("The size growth ratio limit for proirity-based sample profile "
189              "loader inlining."));
190 
191 cl::opt<int> ProfileInlineLimitMin(
192     "sample-profile-inline-limit-min", cl::Hidden, cl::init(100),
193     cl::desc("The lower bound of size growth limit for "
194              "proirity-based sample profile loader inlining."));
195 
196 cl::opt<int> ProfileInlineLimitMax(
197     "sample-profile-inline-limit-max", cl::Hidden, cl::init(10000),
198     cl::desc("The upper bound of size growth limit for "
199              "proirity-based sample profile loader inlining."));
200 
201 cl::opt<int> SampleHotCallSiteThreshold(
202     "sample-profile-hot-inline-threshold", cl::Hidden, cl::init(3000),
203     cl::desc("Hot callsite threshold for proirity-based sample profile loader "
204              "inlining."));
205 
206 cl::opt<int> SampleColdCallSiteThreshold(
207     "sample-profile-cold-inline-threshold", cl::Hidden, cl::init(45),
208     cl::desc("Threshold for inlining cold callsites"));
209 
210 static cl::opt<unsigned> ProfileICPRelativeHotness(
211     "sample-profile-icp-relative-hotness", cl::Hidden, cl::init(25),
212     cl::desc(
213         "Relative hotness percentage threshold for indirect "
214         "call promotion in proirity-based sample profile loader inlining."));
215 
216 static cl::opt<unsigned> ProfileICPRelativeHotnessSkip(
217     "sample-profile-icp-relative-hotness-skip", cl::Hidden, cl::init(1),
218     cl::desc(
219         "Skip relative hotness check for ICP up to given number of targets."));
220 
221 static cl::opt<bool> CallsitePrioritizedInline(
222     "sample-profile-prioritized-inline", cl::Hidden, cl::ZeroOrMore,
223     cl::init(false),
224     cl::desc("Use call site prioritized inlining for sample profile loader."
225              "Currently only CSSPGO is supported."));
226 
227 static cl::opt<bool> UsePreInlinerDecision(
228     "sample-profile-use-preinliner", cl::Hidden, cl::ZeroOrMore,
229     cl::init(false),
230     cl::desc("Use the preinliner decisions stored in profile context."));
231 
232 static cl::opt<bool> AllowRecursiveInline(
233     "sample-profile-recursive-inline", cl::Hidden, cl::ZeroOrMore,
234     cl::init(false),
235     cl::desc("Allow sample loader inliner to inline recursive calls."));
236 
237 static cl::opt<std::string> ProfileInlineReplayFile(
238     "sample-profile-inline-replay", cl::init(""), cl::value_desc("filename"),
239     cl::desc(
240         "Optimization remarks file containing inline remarks to be replayed "
241         "by inlining from sample profile loader."),
242     cl::Hidden);
243 
244 static cl::opt<ReplayInlinerSettings::Scope> ProfileInlineReplayScope(
245     "sample-profile-inline-replay-scope",
246     cl::init(ReplayInlinerSettings::Scope::Function),
247     cl::values(clEnumValN(ReplayInlinerSettings::Scope::Function, "Function",
248                           "Replay on functions that have remarks associated "
249                           "with them (default)"),
250                clEnumValN(ReplayInlinerSettings::Scope::Module, "Module",
251                           "Replay on the entire module")),
252     cl::desc("Whether inline replay should be applied to the entire "
253              "Module or just the Functions (default) that are present as "
254              "callers in remarks during sample profile inlining."),
255     cl::Hidden);
256 
257 static cl::opt<ReplayInlinerSettings::Fallback> ProfileInlineReplayFallback(
258     "sample-profile-inline-replay-fallback",
259     cl::init(ReplayInlinerSettings::Fallback::Original),
260     cl::values(
261         clEnumValN(
262             ReplayInlinerSettings::Fallback::Original, "Original",
263             "All decisions not in replay send to original advisor (default)"),
264         clEnumValN(ReplayInlinerSettings::Fallback::AlwaysInline,
265                    "AlwaysInline", "All decisions not in replay are inlined"),
266         clEnumValN(ReplayInlinerSettings::Fallback::NeverInline, "NeverInline",
267                    "All decisions not in replay are not inlined")),
268     cl::desc("How sample profile inline replay treats sites that don't come "
269              "from the replay. Original: defers to original advisor, "
270              "AlwaysInline: inline all sites not in replay, NeverInline: "
271              "inline no sites not in replay"),
272     cl::Hidden);
273 
274 static cl::opt<CallSiteFormat::Format> ProfileInlineReplayFormat(
275     "sample-profile-inline-replay-format",
276     cl::init(CallSiteFormat::Format::LineColumnDiscriminator),
277     cl::values(
278         clEnumValN(CallSiteFormat::Format::Line, "Line", "<Line Number>"),
279         clEnumValN(CallSiteFormat::Format::LineColumn, "LineColumn",
280                    "<Line Number>:<Column Number>"),
281         clEnumValN(CallSiteFormat::Format::LineDiscriminator,
282                    "LineDiscriminator", "<Line Number>.<Discriminator>"),
283         clEnumValN(CallSiteFormat::Format::LineColumnDiscriminator,
284                    "LineColumnDiscriminator",
285                    "<Line Number>:<Column Number>.<Discriminator> (default)")),
286     cl::desc("How sample profile inline replay file is formatted"), cl::Hidden);
287 
288 static cl::opt<unsigned>
289     MaxNumPromotions("sample-profile-icp-max-prom", cl::init(3), cl::Hidden,
290                      cl::ZeroOrMore,
291                      cl::desc("Max number of promotions for a single indirect "
292                               "call callsite in sample profile loader"));
293 
294 static cl::opt<bool> OverwriteExistingWeights(
295     "overwrite-existing-weights", cl::Hidden, cl::init(false),
296     cl::desc("Ignore existing branch weights on IR and always overwrite."));
297 
298 namespace {
299 
300 using BlockWeightMap = DenseMap<const BasicBlock *, uint64_t>;
301 using EquivalenceClassMap = DenseMap<const BasicBlock *, const BasicBlock *>;
302 using Edge = std::pair<const BasicBlock *, const BasicBlock *>;
303 using EdgeWeightMap = DenseMap<Edge, uint64_t>;
304 using BlockEdgeMap =
305     DenseMap<const BasicBlock *, SmallVector<const BasicBlock *, 8>>;
306 
307 class GUIDToFuncNameMapper {
308 public:
309   GUIDToFuncNameMapper(Module &M, SampleProfileReader &Reader,
310                        DenseMap<uint64_t, StringRef> &GUIDToFuncNameMap)
311       : CurrentReader(Reader), CurrentModule(M),
312         CurrentGUIDToFuncNameMap(GUIDToFuncNameMap) {
313     if (!CurrentReader.useMD5())
314       return;
315 
316     for (const auto &F : CurrentModule) {
317       StringRef OrigName = F.getName();
318       CurrentGUIDToFuncNameMap.insert(
319           {Function::getGUID(OrigName), OrigName});
320 
321       // Local to global var promotion used by optimization like thinlto
322       // will rename the var and add suffix like ".llvm.xxx" to the
323       // original local name. In sample profile, the suffixes of function
324       // names are all stripped. Since it is possible that the mapper is
325       // built in post-thin-link phase and var promotion has been done,
326       // we need to add the substring of function name without the suffix
327       // into the GUIDToFuncNameMap.
328       StringRef CanonName = FunctionSamples::getCanonicalFnName(F);
329       if (CanonName != OrigName)
330         CurrentGUIDToFuncNameMap.insert(
331             {Function::getGUID(CanonName), CanonName});
332     }
333 
334     // Update GUIDToFuncNameMap for each function including inlinees.
335     SetGUIDToFuncNameMapForAll(&CurrentGUIDToFuncNameMap);
336   }
337 
338   ~GUIDToFuncNameMapper() {
339     if (!CurrentReader.useMD5())
340       return;
341 
342     CurrentGUIDToFuncNameMap.clear();
343 
344     // Reset GUIDToFuncNameMap for of each function as they're no
345     // longer valid at this point.
346     SetGUIDToFuncNameMapForAll(nullptr);
347   }
348 
349 private:
350   void SetGUIDToFuncNameMapForAll(DenseMap<uint64_t, StringRef> *Map) {
351     std::queue<FunctionSamples *> FSToUpdate;
352     for (auto &IFS : CurrentReader.getProfiles()) {
353       FSToUpdate.push(&IFS.second);
354     }
355 
356     while (!FSToUpdate.empty()) {
357       FunctionSamples *FS = FSToUpdate.front();
358       FSToUpdate.pop();
359       FS->GUIDToFuncNameMap = Map;
360       for (const auto &ICS : FS->getCallsiteSamples()) {
361         const FunctionSamplesMap &FSMap = ICS.second;
362         for (auto &IFS : FSMap) {
363           FunctionSamples &FS = const_cast<FunctionSamples &>(IFS.second);
364           FSToUpdate.push(&FS);
365         }
366       }
367     }
368   }
369 
370   SampleProfileReader &CurrentReader;
371   Module &CurrentModule;
372   DenseMap<uint64_t, StringRef> &CurrentGUIDToFuncNameMap;
373 };
374 
375 // Inline candidate used by iterative callsite prioritized inliner
376 struct InlineCandidate {
377   CallBase *CallInstr;
378   const FunctionSamples *CalleeSamples;
379   // Prorated callsite count, which will be used to guide inlining. For example,
380   // if a callsite is duplicated in LTO prelink, then in LTO postlink the two
381   // copies will get their own distribution factors and their prorated counts
382   // will be used to decide if they should be inlined independently.
383   uint64_t CallsiteCount;
384   // Call site distribution factor to prorate the profile samples for a
385   // duplicated callsite. Default value is 1.0.
386   float CallsiteDistribution;
387 };
388 
389 // Inline candidate comparer using call site weight
390 struct CandidateComparer {
391   bool operator()(const InlineCandidate &LHS, const InlineCandidate &RHS) {
392     if (LHS.CallsiteCount != RHS.CallsiteCount)
393       return LHS.CallsiteCount < RHS.CallsiteCount;
394 
395     const FunctionSamples *LCS = LHS.CalleeSamples;
396     const FunctionSamples *RCS = RHS.CalleeSamples;
397     assert(LCS && RCS && "Expect non-null FunctionSamples");
398 
399     // Tie breaker using number of samples try to favor smaller functions first
400     if (LCS->getBodySamples().size() != RCS->getBodySamples().size())
401       return LCS->getBodySamples().size() > RCS->getBodySamples().size();
402 
403     // Tie breaker using GUID so we have stable/deterministic inlining order
404     return LCS->getGUID(LCS->getName()) < RCS->getGUID(RCS->getName());
405   }
406 };
407 
408 using CandidateQueue =
409     PriorityQueue<InlineCandidate, std::vector<InlineCandidate>,
410                   CandidateComparer>;
411 
412 /// Sample profile pass.
413 ///
414 /// This pass reads profile data from the file specified by
415 /// -sample-profile-file and annotates every affected function with the
416 /// profile information found in that file.
417 class SampleProfileLoader final
418     : public SampleProfileLoaderBaseImpl<BasicBlock> {
419 public:
420   SampleProfileLoader(
421       StringRef Name, StringRef RemapName, ThinOrFullLTOPhase LTOPhase,
422       std::function<AssumptionCache &(Function &)> GetAssumptionCache,
423       std::function<TargetTransformInfo &(Function &)> GetTargetTransformInfo,
424       std::function<const TargetLibraryInfo &(Function &)> GetTLI)
425       : SampleProfileLoaderBaseImpl(std::string(Name), std::string(RemapName)),
426         GetAC(std::move(GetAssumptionCache)),
427         GetTTI(std::move(GetTargetTransformInfo)), GetTLI(std::move(GetTLI)),
428         LTOPhase(LTOPhase) {}
429 
430   bool doInitialization(Module &M, FunctionAnalysisManager *FAM = nullptr);
431   bool runOnModule(Module &M, ModuleAnalysisManager *AM,
432                    ProfileSummaryInfo *_PSI, CallGraph *CG);
433 
434 protected:
435   bool runOnFunction(Function &F, ModuleAnalysisManager *AM);
436   bool emitAnnotations(Function &F);
437   ErrorOr<uint64_t> getInstWeight(const Instruction &I) override;
438   ErrorOr<uint64_t> getProbeWeight(const Instruction &I);
439   const FunctionSamples *findCalleeFunctionSamples(const CallBase &I) const;
440   const FunctionSamples *
441   findFunctionSamples(const Instruction &I) const override;
442   std::vector<const FunctionSamples *>
443   findIndirectCallFunctionSamples(const Instruction &I, uint64_t &Sum) const;
444   void findExternalInlineCandidate(CallBase *CB, const FunctionSamples *Samples,
445                                    DenseSet<GlobalValue::GUID> &InlinedGUIDs,
446                                    const StringMap<Function *> &SymbolMap,
447                                    uint64_t Threshold);
448   // Attempt to promote indirect call and also inline the promoted call
449   bool tryPromoteAndInlineCandidate(
450       Function &F, InlineCandidate &Candidate, uint64_t SumOrigin,
451       uint64_t &Sum, SmallVector<CallBase *, 8> *InlinedCallSites = nullptr);
452 
453   bool inlineHotFunctions(Function &F,
454                           DenseSet<GlobalValue::GUID> &InlinedGUIDs);
455   Optional<InlineCost> getExternalInlineAdvisorCost(CallBase &CB);
456   bool getExternalInlineAdvisorShouldInline(CallBase &CB);
457   InlineCost shouldInlineCandidate(InlineCandidate &Candidate);
458   bool getInlineCandidate(InlineCandidate *NewCandidate, CallBase *CB);
459   bool
460   tryInlineCandidate(InlineCandidate &Candidate,
461                      SmallVector<CallBase *, 8> *InlinedCallSites = nullptr);
462   bool
463   inlineHotFunctionsWithPriority(Function &F,
464                                  DenseSet<GlobalValue::GUID> &InlinedGUIDs);
465   // Inline cold/small functions in addition to hot ones
466   bool shouldInlineColdCallee(CallBase &CallInst);
467   void emitOptimizationRemarksForInlineCandidates(
468       const SmallVectorImpl<CallBase *> &Candidates, const Function &F,
469       bool Hot);
470   void promoteMergeNotInlinedContextSamples(
471       DenseMap<CallBase *, const FunctionSamples *> NonInlinedCallSites,
472       const Function &F);
473   std::vector<Function *> buildFunctionOrder(Module &M, CallGraph *CG);
474   std::unique_ptr<ProfiledCallGraph> buildProfiledCallGraph(CallGraph &CG);
475   void generateMDProfMetadata(Function &F);
476 
477   /// Map from function name to Function *. Used to find the function from
478   /// the function name. If the function name contains suffix, additional
479   /// entry is added to map from the stripped name to the function if there
480   /// is one-to-one mapping.
481   StringMap<Function *> SymbolMap;
482 
483   std::function<AssumptionCache &(Function &)> GetAC;
484   std::function<TargetTransformInfo &(Function &)> GetTTI;
485   std::function<const TargetLibraryInfo &(Function &)> GetTLI;
486 
487   /// Profile tracker for different context.
488   std::unique_ptr<SampleContextTracker> ContextTracker;
489 
490   /// Flag indicating whether input profile is context-sensitive
491   bool ProfileIsCSFlat = false;
492 
493   /// Flag indicating which LTO/ThinLTO phase the pass is invoked in.
494   ///
495   /// We need to know the LTO phase because for example in ThinLTOPrelink
496   /// phase, in annotation, we should not promote indirect calls. Instead,
497   /// we will mark GUIDs that needs to be annotated to the function.
498   ThinOrFullLTOPhase LTOPhase;
499 
500   /// Profle Symbol list tells whether a function name appears in the binary
501   /// used to generate the current profile.
502   std::unique_ptr<ProfileSymbolList> PSL;
503 
504   /// Total number of samples collected in this profile.
505   ///
506   /// This is the sum of all the samples collected in all the functions executed
507   /// at runtime.
508   uint64_t TotalCollectedSamples = 0;
509 
510   // Information recorded when we declined to inline a call site
511   // because we have determined it is too cold is accumulated for
512   // each callee function. Initially this is just the entry count.
513   struct NotInlinedProfileInfo {
514     uint64_t entryCount;
515   };
516   DenseMap<Function *, NotInlinedProfileInfo> notInlinedCallInfo;
517 
518   // GUIDToFuncNameMap saves the mapping from GUID to the symbol name, for
519   // all the function symbols defined or declared in current module.
520   DenseMap<uint64_t, StringRef> GUIDToFuncNameMap;
521 
522   // All the Names used in FunctionSamples including outline function
523   // names, inline instance names and call target names.
524   StringSet<> NamesInProfile;
525 
526   // For symbol in profile symbol list, whether to regard their profiles
527   // to be accurate. It is mainly decided by existance of profile symbol
528   // list and -profile-accurate-for-symsinlist flag, but it can be
529   // overriden by -profile-sample-accurate or profile-sample-accurate
530   // attribute.
531   bool ProfAccForSymsInList;
532 
533   // External inline advisor used to replay inline decision from remarks.
534   std::unique_ptr<InlineAdvisor> ExternalInlineAdvisor;
535 
536   // A pseudo probe helper to correlate the imported sample counts.
537   std::unique_ptr<PseudoProbeManager> ProbeManager;
538 };
539 
540 class SampleProfileLoaderLegacyPass : public ModulePass {
541 public:
542   // Class identification, replacement for typeinfo
543   static char ID;
544 
545   SampleProfileLoaderLegacyPass(
546       StringRef Name = SampleProfileFile,
547       ThinOrFullLTOPhase LTOPhase = ThinOrFullLTOPhase::None)
548       : ModulePass(ID), SampleLoader(
549                             Name, SampleProfileRemappingFile, LTOPhase,
550                             [&](Function &F) -> AssumptionCache & {
551                               return ACT->getAssumptionCache(F);
552                             },
553                             [&](Function &F) -> TargetTransformInfo & {
554                               return TTIWP->getTTI(F);
555                             },
556                             [&](Function &F) -> TargetLibraryInfo & {
557                               return TLIWP->getTLI(F);
558                             }) {
559     initializeSampleProfileLoaderLegacyPassPass(
560         *PassRegistry::getPassRegistry());
561   }
562 
563   void dump() { SampleLoader.dump(); }
564 
565   bool doInitialization(Module &M) override {
566     return SampleLoader.doInitialization(M);
567   }
568 
569   StringRef getPassName() const override { return "Sample profile pass"; }
570   bool runOnModule(Module &M) override;
571 
572   void getAnalysisUsage(AnalysisUsage &AU) const override {
573     AU.addRequired<AssumptionCacheTracker>();
574     AU.addRequired<TargetTransformInfoWrapperPass>();
575     AU.addRequired<TargetLibraryInfoWrapperPass>();
576     AU.addRequired<ProfileSummaryInfoWrapperPass>();
577   }
578 
579 private:
580   SampleProfileLoader SampleLoader;
581   AssumptionCacheTracker *ACT = nullptr;
582   TargetTransformInfoWrapperPass *TTIWP = nullptr;
583   TargetLibraryInfoWrapperPass *TLIWP = nullptr;
584 };
585 
586 } // end anonymous namespace
587 
588 ErrorOr<uint64_t> SampleProfileLoader::getInstWeight(const Instruction &Inst) {
589   if (FunctionSamples::ProfileIsProbeBased)
590     return getProbeWeight(Inst);
591 
592   const DebugLoc &DLoc = Inst.getDebugLoc();
593   if (!DLoc)
594     return std::error_code();
595 
596   // Ignore all intrinsics, phinodes and branch instructions.
597   // Branch and phinodes instruction usually contains debug info from sources
598   // outside of the residing basic block, thus we ignore them during annotation.
599   if (isa<BranchInst>(Inst) || isa<IntrinsicInst>(Inst) || isa<PHINode>(Inst))
600     return std::error_code();
601 
602   // For non-CS profile, if a direct call/invoke instruction is inlined in
603   // profile (findCalleeFunctionSamples returns non-empty result), but not
604   // inlined here, it means that the inlined callsite has no sample, thus the
605   // call instruction should have 0 count.
606   // For CS profile, the callsite count of previously inlined callees is
607   // populated with the entry count of the callees.
608   if (!ProfileIsCSFlat)
609     if (const auto *CB = dyn_cast<CallBase>(&Inst))
610       if (!CB->isIndirectCall() && findCalleeFunctionSamples(*CB))
611         return 0;
612 
613   return getInstWeightImpl(Inst);
614 }
615 
616 // Here use error_code to represent: 1) The dangling probe. 2) Ignore the weight
617 // of non-probe instruction. So if all instructions of the BB give error_code,
618 // tell the inference algorithm to infer the BB weight.
619 ErrorOr<uint64_t> SampleProfileLoader::getProbeWeight(const Instruction &Inst) {
620   assert(FunctionSamples::ProfileIsProbeBased &&
621          "Profile is not pseudo probe based");
622   Optional<PseudoProbe> Probe = extractProbe(Inst);
623   // Ignore the non-probe instruction. If none of the instruction in the BB is
624   // probe, we choose to infer the BB's weight.
625   if (!Probe)
626     return std::error_code();
627 
628   const FunctionSamples *FS = findFunctionSamples(Inst);
629   // If none of the instruction has FunctionSample, we choose to return zero
630   // value sample to indicate the BB is cold. This could happen when the
631   // instruction is from inlinee and no profile data is found.
632   // FIXME: This should not be affected by the source drift issue as 1) if the
633   // newly added function is top-level inliner, it won't match the CFG checksum
634   // in the function profile or 2) if it's the inlinee, the inlinee should have
635   // a profile, otherwise it wouldn't be inlined. For non-probe based profile,
636   // we can improve it by adding a switch for profile-sample-block-accurate for
637   // block level counts in the future.
638   if (!FS)
639     return 0;
640 
641   // For non-CS profile, If a direct call/invoke instruction is inlined in
642   // profile (findCalleeFunctionSamples returns non-empty result), but not
643   // inlined here, it means that the inlined callsite has no sample, thus the
644   // call instruction should have 0 count.
645   // For CS profile, the callsite count of previously inlined callees is
646   // populated with the entry count of the callees.
647   if (!ProfileIsCSFlat)
648     if (const auto *CB = dyn_cast<CallBase>(&Inst))
649       if (!CB->isIndirectCall() && findCalleeFunctionSamples(*CB))
650         return 0;
651 
652   const ErrorOr<uint64_t> &R = FS->findSamplesAt(Probe->Id, 0);
653   if (R) {
654     uint64_t Samples = R.get() * Probe->Factor;
655     bool FirstMark = CoverageTracker.markSamplesUsed(FS, Probe->Id, 0, Samples);
656     if (FirstMark) {
657       ORE->emit([&]() {
658         OptimizationRemarkAnalysis Remark(DEBUG_TYPE, "AppliedSamples", &Inst);
659         Remark << "Applied " << ore::NV("NumSamples", Samples);
660         Remark << " samples from profile (ProbeId=";
661         Remark << ore::NV("ProbeId", Probe->Id);
662         Remark << ", Factor=";
663         Remark << ore::NV("Factor", Probe->Factor);
664         Remark << ", OriginalSamples=";
665         Remark << ore::NV("OriginalSamples", R.get());
666         Remark << ")";
667         return Remark;
668       });
669     }
670     LLVM_DEBUG(dbgs() << "    " << Probe->Id << ":" << Inst
671                       << " - weight: " << R.get() << " - factor: "
672                       << format("%0.2f", Probe->Factor) << ")\n");
673     return Samples;
674   }
675   return R;
676 }
677 
678 /// Get the FunctionSamples for a call instruction.
679 ///
680 /// The FunctionSamples of a call/invoke instruction \p Inst is the inlined
681 /// instance in which that call instruction is calling to. It contains
682 /// all samples that resides in the inlined instance. We first find the
683 /// inlined instance in which the call instruction is from, then we
684 /// traverse its children to find the callsite with the matching
685 /// location.
686 ///
687 /// \param Inst Call/Invoke instruction to query.
688 ///
689 /// \returns The FunctionSamples pointer to the inlined instance.
690 const FunctionSamples *
691 SampleProfileLoader::findCalleeFunctionSamples(const CallBase &Inst) const {
692   const DILocation *DIL = Inst.getDebugLoc();
693   if (!DIL) {
694     return nullptr;
695   }
696 
697   StringRef CalleeName;
698   if (Function *Callee = Inst.getCalledFunction())
699     CalleeName = Callee->getName();
700 
701   if (ProfileIsCSFlat)
702     return ContextTracker->getCalleeContextSamplesFor(Inst, CalleeName);
703 
704   const FunctionSamples *FS = findFunctionSamples(Inst);
705   if (FS == nullptr)
706     return nullptr;
707 
708   return FS->findFunctionSamplesAt(FunctionSamples::getCallSiteIdentifier(DIL),
709                                    CalleeName, Reader->getRemapper());
710 }
711 
712 /// Returns a vector of FunctionSamples that are the indirect call targets
713 /// of \p Inst. The vector is sorted by the total number of samples. Stores
714 /// the total call count of the indirect call in \p Sum.
715 std::vector<const FunctionSamples *>
716 SampleProfileLoader::findIndirectCallFunctionSamples(
717     const Instruction &Inst, uint64_t &Sum) const {
718   const DILocation *DIL = Inst.getDebugLoc();
719   std::vector<const FunctionSamples *> R;
720 
721   if (!DIL) {
722     return R;
723   }
724 
725   auto FSCompare = [](const FunctionSamples *L, const FunctionSamples *R) {
726     assert(L && R && "Expect non-null FunctionSamples");
727     if (L->getEntrySamples() != R->getEntrySamples())
728       return L->getEntrySamples() > R->getEntrySamples();
729     return FunctionSamples::getGUID(L->getName()) <
730            FunctionSamples::getGUID(R->getName());
731   };
732 
733   if (ProfileIsCSFlat) {
734     auto CalleeSamples =
735         ContextTracker->getIndirectCalleeContextSamplesFor(DIL);
736     if (CalleeSamples.empty())
737       return R;
738 
739     // For CSSPGO, we only use target context profile's entry count
740     // as that already includes both inlined callee and non-inlined ones..
741     Sum = 0;
742     for (const auto *const FS : CalleeSamples) {
743       Sum += FS->getEntrySamples();
744       R.push_back(FS);
745     }
746     llvm::sort(R, FSCompare);
747     return R;
748   }
749 
750   const FunctionSamples *FS = findFunctionSamples(Inst);
751   if (FS == nullptr)
752     return R;
753 
754   auto CallSite = FunctionSamples::getCallSiteIdentifier(DIL);
755   auto T = FS->findCallTargetMapAt(CallSite);
756   Sum = 0;
757   if (T)
758     for (const auto &T_C : T.get())
759       Sum += T_C.second;
760   if (const FunctionSamplesMap *M = FS->findFunctionSamplesMapAt(CallSite)) {
761     if (M->empty())
762       return R;
763     for (const auto &NameFS : *M) {
764       Sum += NameFS.second.getEntrySamples();
765       R.push_back(&NameFS.second);
766     }
767     llvm::sort(R, FSCompare);
768   }
769   return R;
770 }
771 
772 const FunctionSamples *
773 SampleProfileLoader::findFunctionSamples(const Instruction &Inst) const {
774   if (FunctionSamples::ProfileIsProbeBased) {
775     Optional<PseudoProbe> Probe = extractProbe(Inst);
776     if (!Probe)
777       return nullptr;
778   }
779 
780   const DILocation *DIL = Inst.getDebugLoc();
781   if (!DIL)
782     return Samples;
783 
784   auto it = DILocation2SampleMap.try_emplace(DIL,nullptr);
785   if (it.second) {
786     if (ProfileIsCSFlat)
787       it.first->second = ContextTracker->getContextSamplesFor(DIL);
788     else
789       it.first->second =
790           Samples->findFunctionSamples(DIL, Reader->getRemapper());
791   }
792   return it.first->second;
793 }
794 
795 /// Check whether the indirect call promotion history of \p Inst allows
796 /// the promotion for \p Candidate.
797 /// If the profile count for the promotion candidate \p Candidate is
798 /// NOMORE_ICP_MAGICNUM, it means \p Candidate has already been promoted
799 /// for \p Inst. If we already have at least MaxNumPromotions
800 /// NOMORE_ICP_MAGICNUM count values in the value profile of \p Inst, we
801 /// cannot promote for \p Inst anymore.
802 static bool doesHistoryAllowICP(const Instruction &Inst, StringRef Candidate) {
803   uint32_t NumVals = 0;
804   uint64_t TotalCount = 0;
805   std::unique_ptr<InstrProfValueData[]> ValueData =
806       std::make_unique<InstrProfValueData[]>(MaxNumPromotions);
807   bool Valid =
808       getValueProfDataFromInst(Inst, IPVK_IndirectCallTarget, MaxNumPromotions,
809                                ValueData.get(), NumVals, TotalCount, true);
810   // No valid value profile so no promoted targets have been recorded
811   // before. Ok to do ICP.
812   if (!Valid)
813     return true;
814 
815   unsigned NumPromoted = 0;
816   for (uint32_t I = 0; I < NumVals; I++) {
817     if (ValueData[I].Count != NOMORE_ICP_MAGICNUM)
818       continue;
819 
820     // If the promotion candidate has NOMORE_ICP_MAGICNUM count in the
821     // metadata, it means the candidate has been promoted for this
822     // indirect call.
823     if (ValueData[I].Value == Function::getGUID(Candidate))
824       return false;
825     NumPromoted++;
826     // If already have MaxNumPromotions promotion, don't do it anymore.
827     if (NumPromoted == MaxNumPromotions)
828       return false;
829   }
830   return true;
831 }
832 
833 /// Update indirect call target profile metadata for \p Inst.
834 /// Usually \p Sum is the sum of counts of all the targets for \p Inst.
835 /// If it is 0, it means updateIDTMetaData is used to mark a
836 /// certain target to be promoted already. If it is not zero,
837 /// we expect to use it to update the total count in the value profile.
838 static void
839 updateIDTMetaData(Instruction &Inst,
840                   const SmallVectorImpl<InstrProfValueData> &CallTargets,
841                   uint64_t Sum) {
842   uint32_t NumVals = 0;
843   // OldSum is the existing total count in the value profile data.
844   uint64_t OldSum = 0;
845   std::unique_ptr<InstrProfValueData[]> ValueData =
846       std::make_unique<InstrProfValueData[]>(MaxNumPromotions);
847   bool Valid =
848       getValueProfDataFromInst(Inst, IPVK_IndirectCallTarget, MaxNumPromotions,
849                                ValueData.get(), NumVals, OldSum, true);
850 
851   DenseMap<uint64_t, uint64_t> ValueCountMap;
852   if (Sum == 0) {
853     assert((CallTargets.size() == 1 &&
854             CallTargets[0].Count == NOMORE_ICP_MAGICNUM) &&
855            "If sum is 0, assume only one element in CallTargets "
856            "with count being NOMORE_ICP_MAGICNUM");
857     // Initialize ValueCountMap with existing value profile data.
858     if (Valid) {
859       for (uint32_t I = 0; I < NumVals; I++)
860         ValueCountMap[ValueData[I].Value] = ValueData[I].Count;
861     }
862     auto Pair =
863         ValueCountMap.try_emplace(CallTargets[0].Value, CallTargets[0].Count);
864     // If the target already exists in value profile, decrease the total
865     // count OldSum and reset the target's count to NOMORE_ICP_MAGICNUM.
866     if (!Pair.second) {
867       OldSum -= Pair.first->second;
868       Pair.first->second = NOMORE_ICP_MAGICNUM;
869     }
870     Sum = OldSum;
871   } else {
872     // Initialize ValueCountMap with existing NOMORE_ICP_MAGICNUM
873     // counts in the value profile.
874     if (Valid) {
875       for (uint32_t I = 0; I < NumVals; I++) {
876         if (ValueData[I].Count == NOMORE_ICP_MAGICNUM)
877           ValueCountMap[ValueData[I].Value] = ValueData[I].Count;
878       }
879     }
880 
881     for (const auto &Data : CallTargets) {
882       auto Pair = ValueCountMap.try_emplace(Data.Value, Data.Count);
883       if (Pair.second)
884         continue;
885       // The target represented by Data.Value has already been promoted.
886       // Keep the count as NOMORE_ICP_MAGICNUM in the profile and decrease
887       // Sum by Data.Count.
888       assert(Sum >= Data.Count && "Sum should never be less than Data.Count");
889       Sum -= Data.Count;
890     }
891   }
892 
893   SmallVector<InstrProfValueData, 8> NewCallTargets;
894   for (const auto &ValueCount : ValueCountMap) {
895     NewCallTargets.emplace_back(
896         InstrProfValueData{ValueCount.first, ValueCount.second});
897   }
898 
899   llvm::sort(NewCallTargets,
900              [](const InstrProfValueData &L, const InstrProfValueData &R) {
901                if (L.Count != R.Count)
902                  return L.Count > R.Count;
903                return L.Value > R.Value;
904              });
905 
906   uint32_t MaxMDCount =
907       std::min(NewCallTargets.size(), static_cast<size_t>(MaxNumPromotions));
908   annotateValueSite(*Inst.getParent()->getParent()->getParent(), Inst,
909                     NewCallTargets, Sum, IPVK_IndirectCallTarget, MaxMDCount);
910 }
911 
912 /// Attempt to promote indirect call and also inline the promoted call.
913 ///
914 /// \param F  Caller function.
915 /// \param Candidate  ICP and inline candidate.
916 /// \param SumOrigin  Original sum of target counts for indirect call before
917 ///                   promoting given candidate.
918 /// \param Sum        Prorated sum of remaining target counts for indirect call
919 ///                   after promoting given candidate.
920 /// \param InlinedCallSite  Output vector for new call sites exposed after
921 /// inlining.
922 bool SampleProfileLoader::tryPromoteAndInlineCandidate(
923     Function &F, InlineCandidate &Candidate, uint64_t SumOrigin, uint64_t &Sum,
924     SmallVector<CallBase *, 8> *InlinedCallSite) {
925   auto CalleeFunctionName = Candidate.CalleeSamples->getFuncName();
926   auto R = SymbolMap.find(CalleeFunctionName);
927   if (R == SymbolMap.end() || !R->getValue())
928     return false;
929 
930   auto &CI = *Candidate.CallInstr;
931   if (!doesHistoryAllowICP(CI, R->getValue()->getName()))
932     return false;
933 
934   const char *Reason = "Callee function not available";
935   // R->getValue() != &F is to prevent promoting a recursive call.
936   // If it is a recursive call, we do not inline it as it could bloat
937   // the code exponentially. There is way to better handle this, e.g.
938   // clone the caller first, and inline the cloned caller if it is
939   // recursive. As llvm does not inline recursive calls, we will
940   // simply ignore it instead of handling it explicitly.
941   if (!R->getValue()->isDeclaration() && R->getValue()->getSubprogram() &&
942       R->getValue()->hasFnAttribute("use-sample-profile") &&
943       R->getValue() != &F && isLegalToPromote(CI, R->getValue(), &Reason)) {
944     // For promoted target, set its value with NOMORE_ICP_MAGICNUM count
945     // in the value profile metadata so the target won't be promoted again.
946     SmallVector<InstrProfValueData, 1> SortedCallTargets = {InstrProfValueData{
947         Function::getGUID(R->getValue()->getName()), NOMORE_ICP_MAGICNUM}};
948     updateIDTMetaData(CI, SortedCallTargets, 0);
949 
950     auto *DI = &pgo::promoteIndirectCall(
951         CI, R->getValue(), Candidate.CallsiteCount, Sum, false, ORE);
952     if (DI) {
953       Sum -= Candidate.CallsiteCount;
954       // Do not prorate the indirect callsite distribution since the original
955       // distribution will be used to scale down non-promoted profile target
956       // counts later. By doing this we lose track of the real callsite count
957       // for the leftover indirect callsite as a trade off for accurate call
958       // target counts.
959       // TODO: Ideally we would have two separate factors, one for call site
960       // counts and one is used to prorate call target counts.
961       // Do not update the promoted direct callsite distribution at this
962       // point since the original distribution combined with the callee profile
963       // will be used to prorate callsites from the callee if inlined. Once not
964       // inlined, the direct callsite distribution should be prorated so that
965       // the it will reflect the real callsite counts.
966       Candidate.CallInstr = DI;
967       if (isa<CallInst>(DI) || isa<InvokeInst>(DI)) {
968         bool Inlined = tryInlineCandidate(Candidate, InlinedCallSite);
969         if (!Inlined) {
970           // Prorate the direct callsite distribution so that it reflects real
971           // callsite counts.
972           setProbeDistributionFactor(
973               *DI, static_cast<float>(Candidate.CallsiteCount) / SumOrigin);
974         }
975         return Inlined;
976       }
977     }
978   } else {
979     LLVM_DEBUG(dbgs() << "\nFailed to promote indirect call to "
980                       << Candidate.CalleeSamples->getFuncName() << " because "
981                       << Reason << "\n");
982   }
983   return false;
984 }
985 
986 bool SampleProfileLoader::shouldInlineColdCallee(CallBase &CallInst) {
987   if (!ProfileSizeInline)
988     return false;
989 
990   Function *Callee = CallInst.getCalledFunction();
991   if (Callee == nullptr)
992     return false;
993 
994   InlineCost Cost = getInlineCost(CallInst, getInlineParams(), GetTTI(*Callee),
995                                   GetAC, GetTLI);
996 
997   if (Cost.isNever())
998     return false;
999 
1000   if (Cost.isAlways())
1001     return true;
1002 
1003   return Cost.getCost() <= SampleColdCallSiteThreshold;
1004 }
1005 
1006 void SampleProfileLoader::emitOptimizationRemarksForInlineCandidates(
1007     const SmallVectorImpl<CallBase *> &Candidates, const Function &F,
1008     bool Hot) {
1009   for (auto I : Candidates) {
1010     Function *CalledFunction = I->getCalledFunction();
1011     if (CalledFunction) {
1012       ORE->emit(OptimizationRemarkAnalysis(CSINLINE_DEBUG, "InlineAttempt",
1013                                            I->getDebugLoc(), I->getParent())
1014                 << "previous inlining reattempted for "
1015                 << (Hot ? "hotness: '" : "size: '")
1016                 << ore::NV("Callee", CalledFunction) << "' into '"
1017                 << ore::NV("Caller", &F) << "'");
1018     }
1019   }
1020 }
1021 
1022 void SampleProfileLoader::findExternalInlineCandidate(
1023     CallBase *CB, const FunctionSamples *Samples,
1024     DenseSet<GlobalValue::GUID> &InlinedGUIDs,
1025     const StringMap<Function *> &SymbolMap, uint64_t Threshold) {
1026 
1027   // If ExternalInlineAdvisor wants to inline an external function
1028   // make sure it's imported
1029   if (CB && getExternalInlineAdvisorShouldInline(*CB)) {
1030     // Samples may not exist for replayed function, if so
1031     // just add the direct GUID and move on
1032     if (!Samples) {
1033       InlinedGUIDs.insert(
1034           FunctionSamples::getGUID(CB->getCalledFunction()->getName()));
1035       return;
1036     }
1037     // Otherwise, drop the threshold to import everything that we can
1038     Threshold = 0;
1039   }
1040 
1041   assert(Samples && "expect non-null caller profile");
1042 
1043   // For AutoFDO profile, retrieve candidate profiles by walking over
1044   // the nested inlinee profiles.
1045   if (!ProfileIsCSFlat) {
1046     Samples->findInlinedFunctions(InlinedGUIDs, SymbolMap, Threshold);
1047     return;
1048   }
1049 
1050   ContextTrieNode *Caller =
1051       ContextTracker->getContextFor(Samples->getContext());
1052   std::queue<ContextTrieNode *> CalleeList;
1053   CalleeList.push(Caller);
1054   while (!CalleeList.empty()) {
1055     ContextTrieNode *Node = CalleeList.front();
1056     CalleeList.pop();
1057     FunctionSamples *CalleeSample = Node->getFunctionSamples();
1058     // For CSSPGO profile, retrieve candidate profile by walking over the
1059     // trie built for context profile. Note that also take call targets
1060     // even if callee doesn't have a corresponding context profile.
1061     if (!CalleeSample)
1062       continue;
1063 
1064     // If pre-inliner decision is used, honor that for importing as well.
1065     bool PreInline =
1066         UsePreInlinerDecision &&
1067         CalleeSample->getContext().hasAttribute(ContextShouldBeInlined);
1068     if (!PreInline && CalleeSample->getEntrySamples() < Threshold)
1069       continue;
1070 
1071     StringRef Name = CalleeSample->getFuncName();
1072     Function *Func = SymbolMap.lookup(Name);
1073     // Add to the import list only when it's defined out of module.
1074     if (!Func || Func->isDeclaration())
1075       InlinedGUIDs.insert(FunctionSamples::getGUID(CalleeSample->getName()));
1076 
1077     // Import hot CallTargets, which may not be available in IR because full
1078     // profile annotation cannot be done until backend compilation in ThinLTO.
1079     for (const auto &BS : CalleeSample->getBodySamples())
1080       for (const auto &TS : BS.second.getCallTargets())
1081         if (TS.getValue() > Threshold) {
1082           StringRef CalleeName = CalleeSample->getFuncName(TS.getKey());
1083           const Function *Callee = SymbolMap.lookup(CalleeName);
1084           if (!Callee || Callee->isDeclaration())
1085             InlinedGUIDs.insert(FunctionSamples::getGUID(TS.getKey()));
1086         }
1087 
1088     // Import hot child context profile associted with callees. Note that this
1089     // may have some overlap with the call target loop above, but doing this
1090     // based child context profile again effectively allow us to use the max of
1091     // entry count and call target count to determine importing.
1092     for (auto &Child : Node->getAllChildContext()) {
1093       ContextTrieNode *CalleeNode = &Child.second;
1094       CalleeList.push(CalleeNode);
1095     }
1096   }
1097 }
1098 
1099 /// Iteratively inline hot callsites of a function.
1100 ///
1101 /// Iteratively traverse all callsites of the function \p F, and find if
1102 /// the corresponding inlined instance exists and is hot in profile. If
1103 /// it is hot enough, inline the callsites and adds new callsites of the
1104 /// callee into the caller. If the call is an indirect call, first promote
1105 /// it to direct call. Each indirect call is limited with a single target.
1106 ///
1107 /// \param F function to perform iterative inlining.
1108 /// \param InlinedGUIDs a set to be updated to include all GUIDs that are
1109 ///     inlined in the profiled binary.
1110 ///
1111 /// \returns True if there is any inline happened.
1112 bool SampleProfileLoader::inlineHotFunctions(
1113     Function &F, DenseSet<GlobalValue::GUID> &InlinedGUIDs) {
1114   // ProfAccForSymsInList is used in callsiteIsHot. The assertion makes sure
1115   // Profile symbol list is ignored when profile-sample-accurate is on.
1116   assert((!ProfAccForSymsInList ||
1117           (!ProfileSampleAccurate &&
1118            !F.hasFnAttribute("profile-sample-accurate"))) &&
1119          "ProfAccForSymsInList should be false when profile-sample-accurate "
1120          "is enabled");
1121 
1122   DenseMap<CallBase *, const FunctionSamples *> LocalNotInlinedCallSites;
1123   bool Changed = false;
1124   bool LocalChanged = true;
1125   while (LocalChanged) {
1126     LocalChanged = false;
1127     SmallVector<CallBase *, 10> CIS;
1128     for (auto &BB : F) {
1129       bool Hot = false;
1130       SmallVector<CallBase *, 10> AllCandidates;
1131       SmallVector<CallBase *, 10> ColdCandidates;
1132       for (auto &I : BB.getInstList()) {
1133         const FunctionSamples *FS = nullptr;
1134         if (auto *CB = dyn_cast<CallBase>(&I)) {
1135           if (!isa<IntrinsicInst>(I)) {
1136             if ((FS = findCalleeFunctionSamples(*CB))) {
1137               assert((!FunctionSamples::UseMD5 || FS->GUIDToFuncNameMap) &&
1138                      "GUIDToFuncNameMap has to be populated");
1139               AllCandidates.push_back(CB);
1140               if (FS->getEntrySamples() > 0 || ProfileIsCSFlat)
1141                 LocalNotInlinedCallSites.try_emplace(CB, FS);
1142               if (callsiteIsHot(FS, PSI, ProfAccForSymsInList))
1143                 Hot = true;
1144               else if (shouldInlineColdCallee(*CB))
1145                 ColdCandidates.push_back(CB);
1146             } else if (getExternalInlineAdvisorShouldInline(*CB)) {
1147               AllCandidates.push_back(CB);
1148             }
1149           }
1150         }
1151       }
1152       if (Hot || ExternalInlineAdvisor) {
1153         CIS.insert(CIS.begin(), AllCandidates.begin(), AllCandidates.end());
1154         emitOptimizationRemarksForInlineCandidates(AllCandidates, F, true);
1155       } else {
1156         CIS.insert(CIS.begin(), ColdCandidates.begin(), ColdCandidates.end());
1157         emitOptimizationRemarksForInlineCandidates(ColdCandidates, F, false);
1158       }
1159     }
1160     for (CallBase *I : CIS) {
1161       Function *CalledFunction = I->getCalledFunction();
1162       InlineCandidate Candidate = {
1163           I,
1164           LocalNotInlinedCallSites.count(I) ? LocalNotInlinedCallSites[I]
1165                                             : nullptr,
1166           0 /* dummy count */, 1.0 /* dummy distribution factor */};
1167       // Do not inline recursive calls.
1168       if (CalledFunction == &F)
1169         continue;
1170       if (I->isIndirectCall()) {
1171         uint64_t Sum;
1172         for (const auto *FS : findIndirectCallFunctionSamples(*I, Sum)) {
1173           uint64_t SumOrigin = Sum;
1174           if (LTOPhase == ThinOrFullLTOPhase::ThinLTOPreLink) {
1175             findExternalInlineCandidate(I, FS, InlinedGUIDs, SymbolMap,
1176                                         PSI->getOrCompHotCountThreshold());
1177             continue;
1178           }
1179           if (!callsiteIsHot(FS, PSI, ProfAccForSymsInList))
1180             continue;
1181 
1182           Candidate = {I, FS, FS->getEntrySamples(), 1.0};
1183           if (tryPromoteAndInlineCandidate(F, Candidate, SumOrigin, Sum)) {
1184             LocalNotInlinedCallSites.erase(I);
1185             LocalChanged = true;
1186           }
1187         }
1188       } else if (CalledFunction && CalledFunction->getSubprogram() &&
1189                  !CalledFunction->isDeclaration()) {
1190         if (tryInlineCandidate(Candidate)) {
1191           LocalNotInlinedCallSites.erase(I);
1192           LocalChanged = true;
1193         }
1194       } else if (LTOPhase == ThinOrFullLTOPhase::ThinLTOPreLink) {
1195         findExternalInlineCandidate(I, findCalleeFunctionSamples(*I),
1196                                     InlinedGUIDs, SymbolMap,
1197                                     PSI->getOrCompHotCountThreshold());
1198       }
1199     }
1200     Changed |= LocalChanged;
1201   }
1202 
1203   // For CS profile, profile for not inlined context will be merged when
1204   // base profile is being retrieved.
1205   if (!FunctionSamples::ProfileIsCSFlat)
1206     promoteMergeNotInlinedContextSamples(LocalNotInlinedCallSites, F);
1207   return Changed;
1208 }
1209 
1210 bool SampleProfileLoader::tryInlineCandidate(
1211     InlineCandidate &Candidate, SmallVector<CallBase *, 8> *InlinedCallSites) {
1212 
1213   CallBase &CB = *Candidate.CallInstr;
1214   Function *CalledFunction = CB.getCalledFunction();
1215   assert(CalledFunction && "Expect a callee with definition");
1216   DebugLoc DLoc = CB.getDebugLoc();
1217   BasicBlock *BB = CB.getParent();
1218 
1219   InlineCost Cost = shouldInlineCandidate(Candidate);
1220   if (Cost.isNever()) {
1221     ORE->emit(OptimizationRemarkAnalysis(CSINLINE_DEBUG, "InlineFail", DLoc, BB)
1222               << "incompatible inlining");
1223     return false;
1224   }
1225 
1226   if (!Cost)
1227     return false;
1228 
1229   InlineFunctionInfo IFI(nullptr, GetAC);
1230   IFI.UpdateProfile = false;
1231   if (InlineFunction(CB, IFI).isSuccess()) {
1232     // Merge the attributes based on the inlining.
1233     AttributeFuncs::mergeAttributesForInlining(*BB->getParent(),
1234                                                *CalledFunction);
1235 
1236     // The call to InlineFunction erases I, so we can't pass it here.
1237     emitInlinedIntoBasedOnCost(*ORE, DLoc, BB, *CalledFunction,
1238                                *BB->getParent(), Cost, true, CSINLINE_DEBUG);
1239 
1240     // Now populate the list of newly exposed call sites.
1241     if (InlinedCallSites) {
1242       InlinedCallSites->clear();
1243       for (auto &I : IFI.InlinedCallSites)
1244         InlinedCallSites->push_back(I);
1245     }
1246 
1247     if (ProfileIsCSFlat)
1248       ContextTracker->markContextSamplesInlined(Candidate.CalleeSamples);
1249     ++NumCSInlined;
1250 
1251     // Prorate inlined probes for a duplicated inlining callsite which probably
1252     // has a distribution less than 100%. Samples for an inlinee should be
1253     // distributed among the copies of the original callsite based on each
1254     // callsite's distribution factor for counts accuracy. Note that an inlined
1255     // probe may come with its own distribution factor if it has been duplicated
1256     // in the inlinee body. The two factor are multiplied to reflect the
1257     // aggregation of duplication.
1258     if (Candidate.CallsiteDistribution < 1) {
1259       for (auto &I : IFI.InlinedCallSites) {
1260         if (Optional<PseudoProbe> Probe = extractProbe(*I))
1261           setProbeDistributionFactor(*I, Probe->Factor *
1262                                              Candidate.CallsiteDistribution);
1263       }
1264       NumDuplicatedInlinesite++;
1265     }
1266 
1267     return true;
1268   }
1269   return false;
1270 }
1271 
1272 bool SampleProfileLoader::getInlineCandidate(InlineCandidate *NewCandidate,
1273                                              CallBase *CB) {
1274   assert(CB && "Expect non-null call instruction");
1275 
1276   if (isa<IntrinsicInst>(CB))
1277     return false;
1278 
1279   // Find the callee's profile. For indirect call, find hottest target profile.
1280   const FunctionSamples *CalleeSamples = findCalleeFunctionSamples(*CB);
1281   // If ExternalInlineAdvisor wants to inline this site, do so even
1282   // if Samples are not present.
1283   if (!CalleeSamples && !getExternalInlineAdvisorShouldInline(*CB))
1284     return false;
1285 
1286   float Factor = 1.0;
1287   if (Optional<PseudoProbe> Probe = extractProbe(*CB))
1288     Factor = Probe->Factor;
1289 
1290   uint64_t CallsiteCount = 0;
1291   ErrorOr<uint64_t> Weight = getBlockWeight(CB->getParent());
1292   if (Weight)
1293     CallsiteCount = Weight.get();
1294   if (CalleeSamples)
1295     CallsiteCount = std::max(
1296         CallsiteCount, uint64_t(CalleeSamples->getEntrySamples() * Factor));
1297 
1298   *NewCandidate = {CB, CalleeSamples, CallsiteCount, Factor};
1299   return true;
1300 }
1301 
1302 Optional<InlineCost>
1303 SampleProfileLoader::getExternalInlineAdvisorCost(CallBase &CB) {
1304   std::unique_ptr<InlineAdvice> Advice = nullptr;
1305   if (ExternalInlineAdvisor) {
1306     Advice = ExternalInlineAdvisor->getAdvice(CB);
1307     if (Advice) {
1308       if (!Advice->isInliningRecommended()) {
1309         Advice->recordUnattemptedInlining();
1310         return InlineCost::getNever("not previously inlined");
1311       }
1312       Advice->recordInlining();
1313       return InlineCost::getAlways("previously inlined");
1314     }
1315   }
1316 
1317   return {};
1318 }
1319 
1320 bool SampleProfileLoader::getExternalInlineAdvisorShouldInline(CallBase &CB) {
1321   Optional<InlineCost> Cost = getExternalInlineAdvisorCost(CB);
1322   return Cost ? !!Cost.getValue() : false;
1323 }
1324 
1325 InlineCost
1326 SampleProfileLoader::shouldInlineCandidate(InlineCandidate &Candidate) {
1327   if (Optional<InlineCost> ReplayCost =
1328           getExternalInlineAdvisorCost(*Candidate.CallInstr))
1329     return ReplayCost.getValue();
1330   // Adjust threshold based on call site hotness, only do this for callsite
1331   // prioritized inliner because otherwise cost-benefit check is done earlier.
1332   int SampleThreshold = SampleColdCallSiteThreshold;
1333   if (CallsitePrioritizedInline) {
1334     if (Candidate.CallsiteCount > PSI->getHotCountThreshold())
1335       SampleThreshold = SampleHotCallSiteThreshold;
1336     else if (!ProfileSizeInline)
1337       return InlineCost::getNever("cold callsite");
1338   }
1339 
1340   Function *Callee = Candidate.CallInstr->getCalledFunction();
1341   assert(Callee && "Expect a definition for inline candidate of direct call");
1342 
1343   InlineParams Params = getInlineParams();
1344   // We will ignore the threshold from inline cost, so always get full cost.
1345   Params.ComputeFullInlineCost = true;
1346   Params.AllowRecursiveCall = AllowRecursiveInline;
1347   // Checks if there is anything in the reachable portion of the callee at
1348   // this callsite that makes this inlining potentially illegal. Need to
1349   // set ComputeFullInlineCost, otherwise getInlineCost may return early
1350   // when cost exceeds threshold without checking all IRs in the callee.
1351   // The acutal cost does not matter because we only checks isNever() to
1352   // see if it is legal to inline the callsite.
1353   InlineCost Cost = getInlineCost(*Candidate.CallInstr, Callee, Params,
1354                                   GetTTI(*Callee), GetAC, GetTLI);
1355 
1356   // Honor always inline and never inline from call analyzer
1357   if (Cost.isNever() || Cost.isAlways())
1358     return Cost;
1359 
1360   // With CSSPGO, the preinliner in llvm-profgen can estimate global inline
1361   // decisions based on hotness as well as accurate function byte sizes for
1362   // given context using function/inlinee sizes from previous build. It
1363   // stores the decision in profile, and also adjust/merge context profile
1364   // aiming at better context-sensitive post-inline profile quality, assuming
1365   // all inline decision estimates are going to be honored by compiler. Here
1366   // we replay that inline decision under `sample-profile-use-preinliner`.
1367   // Note that we don't need to handle negative decision from preinliner as
1368   // context profile for not inlined calls are merged by preinliner already.
1369   if (UsePreInlinerDecision && Candidate.CalleeSamples) {
1370     // Once two node are merged due to promotion, we're losing some context
1371     // so the original context-sensitive preinliner decision should be ignored
1372     // for SyntheticContext.
1373     SampleContext &Context = Candidate.CalleeSamples->getContext();
1374     if (!Context.hasState(SyntheticContext) &&
1375         Context.hasAttribute(ContextShouldBeInlined))
1376       return InlineCost::getAlways("preinliner");
1377   }
1378 
1379   // For old FDO inliner, we inline the call site as long as cost is not
1380   // "Never". The cost-benefit check is done earlier.
1381   if (!CallsitePrioritizedInline) {
1382     return InlineCost::get(Cost.getCost(), INT_MAX);
1383   }
1384 
1385   // Otherwise only use the cost from call analyzer, but overwite threshold with
1386   // Sample PGO threshold.
1387   return InlineCost::get(Cost.getCost(), SampleThreshold);
1388 }
1389 
1390 bool SampleProfileLoader::inlineHotFunctionsWithPriority(
1391     Function &F, DenseSet<GlobalValue::GUID> &InlinedGUIDs) {
1392 
1393   // ProfAccForSymsInList is used in callsiteIsHot. The assertion makes sure
1394   // Profile symbol list is ignored when profile-sample-accurate is on.
1395   assert((!ProfAccForSymsInList ||
1396           (!ProfileSampleAccurate &&
1397            !F.hasFnAttribute("profile-sample-accurate"))) &&
1398          "ProfAccForSymsInList should be false when profile-sample-accurate "
1399          "is enabled");
1400 
1401   // Populating worklist with initial call sites from root inliner, along
1402   // with call site weights.
1403   CandidateQueue CQueue;
1404   InlineCandidate NewCandidate;
1405   for (auto &BB : F) {
1406     for (auto &I : BB.getInstList()) {
1407       auto *CB = dyn_cast<CallBase>(&I);
1408       if (!CB)
1409         continue;
1410       if (getInlineCandidate(&NewCandidate, CB))
1411         CQueue.push(NewCandidate);
1412     }
1413   }
1414 
1415   // Cap the size growth from profile guided inlining. This is needed even
1416   // though cost of each inline candidate already accounts for callee size,
1417   // because with top-down inlining, we can grow inliner size significantly
1418   // with large number of smaller inlinees each pass the cost check.
1419   assert(ProfileInlineLimitMax >= ProfileInlineLimitMin &&
1420          "Max inline size limit should not be smaller than min inline size "
1421          "limit.");
1422   unsigned SizeLimit = F.getInstructionCount() * ProfileInlineGrowthLimit;
1423   SizeLimit = std::min(SizeLimit, (unsigned)ProfileInlineLimitMax);
1424   SizeLimit = std::max(SizeLimit, (unsigned)ProfileInlineLimitMin);
1425   if (ExternalInlineAdvisor)
1426     SizeLimit = std::numeric_limits<unsigned>::max();
1427 
1428   DenseMap<CallBase *, const FunctionSamples *> LocalNotInlinedCallSites;
1429 
1430   // Perform iterative BFS call site prioritized inlining
1431   bool Changed = false;
1432   while (!CQueue.empty() && F.getInstructionCount() < SizeLimit) {
1433     InlineCandidate Candidate = CQueue.top();
1434     CQueue.pop();
1435     CallBase *I = Candidate.CallInstr;
1436     Function *CalledFunction = I->getCalledFunction();
1437 
1438     if (CalledFunction == &F)
1439       continue;
1440     if (I->isIndirectCall()) {
1441       uint64_t Sum = 0;
1442       auto CalleeSamples = findIndirectCallFunctionSamples(*I, Sum);
1443       uint64_t SumOrigin = Sum;
1444       Sum *= Candidate.CallsiteDistribution;
1445       unsigned ICPCount = 0;
1446       for (const auto *FS : CalleeSamples) {
1447         // TODO: Consider disable pre-lTO ICP for MonoLTO as well
1448         if (LTOPhase == ThinOrFullLTOPhase::ThinLTOPreLink) {
1449           findExternalInlineCandidate(I, FS, InlinedGUIDs, SymbolMap,
1450                                       PSI->getOrCompHotCountThreshold());
1451           continue;
1452         }
1453         uint64_t EntryCountDistributed =
1454             FS->getEntrySamples() * Candidate.CallsiteDistribution;
1455         // In addition to regular inline cost check, we also need to make sure
1456         // ICP isn't introducing excessive speculative checks even if individual
1457         // target looks beneficial to promote and inline. That means we should
1458         // only do ICP when there's a small number dominant targets.
1459         if (ICPCount >= ProfileICPRelativeHotnessSkip &&
1460             EntryCountDistributed * 100 < SumOrigin * ProfileICPRelativeHotness)
1461           break;
1462         // TODO: Fix CallAnalyzer to handle all indirect calls.
1463         // For indirect call, we don't run CallAnalyzer to get InlineCost
1464         // before actual inlining. This is because we could see two different
1465         // types from the same definition, which makes CallAnalyzer choke as
1466         // it's expecting matching parameter type on both caller and callee
1467         // side. See example from PR18962 for the triggering cases (the bug was
1468         // fixed, but we generate different types).
1469         if (!PSI->isHotCount(EntryCountDistributed))
1470           break;
1471         SmallVector<CallBase *, 8> InlinedCallSites;
1472         // Attach function profile for promoted indirect callee, and update
1473         // call site count for the promoted inline candidate too.
1474         Candidate = {I, FS, EntryCountDistributed,
1475                      Candidate.CallsiteDistribution};
1476         if (tryPromoteAndInlineCandidate(F, Candidate, SumOrigin, Sum,
1477                                          &InlinedCallSites)) {
1478           for (auto *CB : InlinedCallSites) {
1479             if (getInlineCandidate(&NewCandidate, CB))
1480               CQueue.emplace(NewCandidate);
1481           }
1482           ICPCount++;
1483           Changed = true;
1484         } else if (!ContextTracker) {
1485           LocalNotInlinedCallSites.try_emplace(I, FS);
1486         }
1487       }
1488     } else if (CalledFunction && CalledFunction->getSubprogram() &&
1489                !CalledFunction->isDeclaration()) {
1490       SmallVector<CallBase *, 8> InlinedCallSites;
1491       if (tryInlineCandidate(Candidate, &InlinedCallSites)) {
1492         for (auto *CB : InlinedCallSites) {
1493           if (getInlineCandidate(&NewCandidate, CB))
1494             CQueue.emplace(NewCandidate);
1495         }
1496         Changed = true;
1497       } else if (!ContextTracker) {
1498         LocalNotInlinedCallSites.try_emplace(I, Candidate.CalleeSamples);
1499       }
1500     } else if (LTOPhase == ThinOrFullLTOPhase::ThinLTOPreLink) {
1501       findExternalInlineCandidate(I, findCalleeFunctionSamples(*I),
1502                                   InlinedGUIDs, SymbolMap,
1503                                   PSI->getOrCompHotCountThreshold());
1504     }
1505   }
1506 
1507   if (!CQueue.empty()) {
1508     if (SizeLimit == (unsigned)ProfileInlineLimitMax)
1509       ++NumCSInlinedHitMaxLimit;
1510     else if (SizeLimit == (unsigned)ProfileInlineLimitMin)
1511       ++NumCSInlinedHitMinLimit;
1512     else
1513       ++NumCSInlinedHitGrowthLimit;
1514   }
1515 
1516   // For CS profile, profile for not inlined context will be merged when
1517   // base profile is being retrieved.
1518   if (!FunctionSamples::ProfileIsCSFlat)
1519     promoteMergeNotInlinedContextSamples(LocalNotInlinedCallSites, F);
1520   return Changed;
1521 }
1522 
1523 void SampleProfileLoader::promoteMergeNotInlinedContextSamples(
1524     DenseMap<CallBase *, const FunctionSamples *> NonInlinedCallSites,
1525     const Function &F) {
1526   // Accumulate not inlined callsite information into notInlinedSamples
1527   for (const auto &Pair : NonInlinedCallSites) {
1528     CallBase *I = Pair.getFirst();
1529     Function *Callee = I->getCalledFunction();
1530     if (!Callee || Callee->isDeclaration())
1531       continue;
1532 
1533     ORE->emit(OptimizationRemarkAnalysis(CSINLINE_DEBUG, "NotInline",
1534                                          I->getDebugLoc(), I->getParent())
1535               << "previous inlining not repeated: '"
1536               << ore::NV("Callee", Callee) << "' into '"
1537               << ore::NV("Caller", &F) << "'");
1538 
1539     ++NumCSNotInlined;
1540     const FunctionSamples *FS = Pair.getSecond();
1541     if (FS->getTotalSamples() == 0 && FS->getEntrySamples() == 0) {
1542       continue;
1543     }
1544 
1545     if (ProfileMergeInlinee) {
1546       // A function call can be replicated by optimizations like callsite
1547       // splitting or jump threading and the replicates end up sharing the
1548       // sample nested callee profile instead of slicing the original
1549       // inlinee's profile. We want to do merge exactly once by filtering out
1550       // callee profiles with a non-zero head sample count.
1551       if (FS->getHeadSamples() == 0) {
1552         // Use entry samples as head samples during the merge, as inlinees
1553         // don't have head samples.
1554         const_cast<FunctionSamples *>(FS)->addHeadSamples(
1555             FS->getEntrySamples());
1556 
1557         // Note that we have to do the merge right after processing function.
1558         // This allows OutlineFS's profile to be used for annotation during
1559         // top-down processing of functions' annotation.
1560         FunctionSamples *OutlineFS = Reader->getOrCreateSamplesFor(*Callee);
1561         OutlineFS->merge(*FS, 1);
1562         // Set outlined profile to be synthetic to not bias the inliner.
1563         OutlineFS->SetContextSynthetic();
1564       }
1565     } else {
1566       auto pair =
1567           notInlinedCallInfo.try_emplace(Callee, NotInlinedProfileInfo{0});
1568       pair.first->second.entryCount += FS->getEntrySamples();
1569     }
1570   }
1571 }
1572 
1573 /// Returns the sorted CallTargetMap \p M by count in descending order.
1574 static SmallVector<InstrProfValueData, 2>
1575 GetSortedValueDataFromCallTargets(const SampleRecord::CallTargetMap &M) {
1576   SmallVector<InstrProfValueData, 2> R;
1577   for (const auto &I : SampleRecord::SortCallTargets(M)) {
1578     R.emplace_back(
1579         InstrProfValueData{FunctionSamples::getGUID(I.first), I.second});
1580   }
1581   return R;
1582 }
1583 
1584 // Generate MD_prof metadata for every branch instruction using the
1585 // edge weights computed during propagation.
1586 void SampleProfileLoader::generateMDProfMetadata(Function &F) {
1587   // Generate MD_prof metadata for every branch instruction using the
1588   // edge weights computed during propagation.
1589   LLVM_DEBUG(dbgs() << "\nPropagation complete. Setting branch weights\n");
1590   LLVMContext &Ctx = F.getContext();
1591   MDBuilder MDB(Ctx);
1592   for (auto &BI : F) {
1593     BasicBlock *BB = &BI;
1594 
1595     if (BlockWeights[BB]) {
1596       for (auto &I : BB->getInstList()) {
1597         if (!isa<CallInst>(I) && !isa<InvokeInst>(I))
1598           continue;
1599         if (!cast<CallBase>(I).getCalledFunction()) {
1600           const DebugLoc &DLoc = I.getDebugLoc();
1601           if (!DLoc)
1602             continue;
1603           const DILocation *DIL = DLoc;
1604           const FunctionSamples *FS = findFunctionSamples(I);
1605           if (!FS)
1606             continue;
1607           auto CallSite = FunctionSamples::getCallSiteIdentifier(DIL);
1608           auto T = FS->findCallTargetMapAt(CallSite);
1609           if (!T || T.get().empty())
1610             continue;
1611           if (FunctionSamples::ProfileIsProbeBased) {
1612             // Prorate the callsite counts based on the pre-ICP distribution
1613             // factor to reflect what is already done to the callsite before
1614             // ICP, such as calliste cloning.
1615             if (Optional<PseudoProbe> Probe = extractProbe(I)) {
1616               if (Probe->Factor < 1)
1617                 T = SampleRecord::adjustCallTargets(T.get(), Probe->Factor);
1618             }
1619           }
1620           SmallVector<InstrProfValueData, 2> SortedCallTargets =
1621               GetSortedValueDataFromCallTargets(T.get());
1622           uint64_t Sum = 0;
1623           for (const auto &C : T.get())
1624             Sum += C.second;
1625           // With CSSPGO all indirect call targets are counted torwards the
1626           // original indirect call site in the profile, including both
1627           // inlined and non-inlined targets.
1628           if (!FunctionSamples::ProfileIsCSFlat) {
1629             if (const FunctionSamplesMap *M =
1630                     FS->findFunctionSamplesMapAt(CallSite)) {
1631               for (const auto &NameFS : *M)
1632                 Sum += NameFS.second.getEntrySamples();
1633             }
1634           }
1635           if (Sum)
1636             updateIDTMetaData(I, SortedCallTargets, Sum);
1637           else if (OverwriteExistingWeights)
1638             I.setMetadata(LLVMContext::MD_prof, nullptr);
1639         } else if (!isa<IntrinsicInst>(&I)) {
1640           I.setMetadata(LLVMContext::MD_prof,
1641                         MDB.createBranchWeights(
1642                             {static_cast<uint32_t>(BlockWeights[BB])}));
1643         }
1644       }
1645     } else if (OverwriteExistingWeights || ProfileSampleBlockAccurate) {
1646       // Set profile metadata (possibly annotated by LTO prelink) to zero or
1647       // clear it for cold code.
1648       for (auto &I : BB->getInstList()) {
1649         if (isa<CallInst>(I) || isa<InvokeInst>(I)) {
1650           if (cast<CallBase>(I).isIndirectCall())
1651             I.setMetadata(LLVMContext::MD_prof, nullptr);
1652           else
1653             I.setMetadata(LLVMContext::MD_prof, MDB.createBranchWeights(0));
1654         }
1655       }
1656     }
1657 
1658     Instruction *TI = BB->getTerminator();
1659     if (TI->getNumSuccessors() == 1)
1660       continue;
1661     if (!isa<BranchInst>(TI) && !isa<SwitchInst>(TI) &&
1662         !isa<IndirectBrInst>(TI))
1663       continue;
1664 
1665     DebugLoc BranchLoc = TI->getDebugLoc();
1666     LLVM_DEBUG(dbgs() << "\nGetting weights for branch at line "
1667                       << ((BranchLoc) ? Twine(BranchLoc.getLine())
1668                                       : Twine("<UNKNOWN LOCATION>"))
1669                       << ".\n");
1670     SmallVector<uint32_t, 4> Weights;
1671     uint32_t MaxWeight = 0;
1672     Instruction *MaxDestInst;
1673     // Since profi treats multiple edges (multiway branches) as a single edge,
1674     // we need to distribute the computed weight among the branches. We do
1675     // this by evenly splitting the edge weight among destinations.
1676     DenseMap<const BasicBlock *, uint64_t> EdgeMultiplicity;
1677     std::vector<uint64_t> EdgeIndex;
1678     if (SampleProfileUseProfi) {
1679       EdgeIndex.resize(TI->getNumSuccessors());
1680       for (unsigned I = 0; I < TI->getNumSuccessors(); ++I) {
1681         const BasicBlock *Succ = TI->getSuccessor(I);
1682         EdgeIndex[I] = EdgeMultiplicity[Succ];
1683         EdgeMultiplicity[Succ]++;
1684       }
1685     }
1686     for (unsigned I = 0; I < TI->getNumSuccessors(); ++I) {
1687       BasicBlock *Succ = TI->getSuccessor(I);
1688       Edge E = std::make_pair(BB, Succ);
1689       uint64_t Weight = EdgeWeights[E];
1690       LLVM_DEBUG(dbgs() << "\t"; printEdgeWeight(dbgs(), E));
1691       // Use uint32_t saturated arithmetic to adjust the incoming weights,
1692       // if needed. Sample counts in profiles are 64-bit unsigned values,
1693       // but internally branch weights are expressed as 32-bit values.
1694       if (Weight > std::numeric_limits<uint32_t>::max()) {
1695         LLVM_DEBUG(dbgs() << " (saturated due to uint32_t overflow)");
1696         Weight = std::numeric_limits<uint32_t>::max();
1697       }
1698       if (!SampleProfileUseProfi) {
1699         // Weight is added by one to avoid propagation errors introduced by
1700         // 0 weights.
1701         Weights.push_back(static_cast<uint32_t>(Weight + 1));
1702       } else {
1703         // Profi creates proper weights that do not require "+1" adjustments but
1704         // we evenly split the weight among branches with the same destination.
1705         uint64_t W = Weight / EdgeMultiplicity[Succ];
1706         // Rounding up, if needed, so that first branches are hotter.
1707         if (EdgeIndex[I] < Weight % EdgeMultiplicity[Succ])
1708           W++;
1709         Weights.push_back(static_cast<uint32_t>(W));
1710       }
1711       if (Weight != 0) {
1712         if (Weight > MaxWeight) {
1713           MaxWeight = Weight;
1714           MaxDestInst = Succ->getFirstNonPHIOrDbgOrLifetime();
1715         }
1716       }
1717     }
1718 
1719     uint64_t TempWeight;
1720     // Only set weights if there is at least one non-zero weight.
1721     // In any other case, let the analyzer set weights.
1722     // Do not set weights if the weights are present unless under
1723     // OverwriteExistingWeights. In ThinLTO, the profile annotation is done
1724     // twice. If the first annotation already set the weights, the second pass
1725     // does not need to set it. With OverwriteExistingWeights, Blocks with zero
1726     // weight should have their existing metadata (possibly annotated by LTO
1727     // prelink) cleared.
1728     if (MaxWeight > 0 &&
1729         (!TI->extractProfTotalWeight(TempWeight) || OverwriteExistingWeights)) {
1730       LLVM_DEBUG(dbgs() << "SUCCESS. Found non-zero weights.\n");
1731       TI->setMetadata(LLVMContext::MD_prof, MDB.createBranchWeights(Weights));
1732       ORE->emit([&]() {
1733         return OptimizationRemark(DEBUG_TYPE, "PopularDest", MaxDestInst)
1734                << "most popular destination for conditional branches at "
1735                << ore::NV("CondBranchesLoc", BranchLoc);
1736       });
1737     } else {
1738       if (OverwriteExistingWeights) {
1739         TI->setMetadata(LLVMContext::MD_prof, nullptr);
1740         LLVM_DEBUG(dbgs() << "CLEARED. All branch weights are zero.\n");
1741       } else {
1742         LLVM_DEBUG(dbgs() << "SKIPPED. All branch weights are zero.\n");
1743       }
1744     }
1745   }
1746 }
1747 
1748 /// Once all the branch weights are computed, we emit the MD_prof
1749 /// metadata on BB using the computed values for each of its branches.
1750 ///
1751 /// \param F The function to query.
1752 ///
1753 /// \returns true if \p F was modified. Returns false, otherwise.
1754 bool SampleProfileLoader::emitAnnotations(Function &F) {
1755   bool Changed = false;
1756 
1757   if (FunctionSamples::ProfileIsProbeBased) {
1758     if (!ProbeManager->profileIsValid(F, *Samples)) {
1759       LLVM_DEBUG(
1760           dbgs() << "Profile is invalid due to CFG mismatch for Function "
1761                  << F.getName());
1762       ++NumMismatchedProfile;
1763       return false;
1764     }
1765     ++NumMatchedProfile;
1766   } else {
1767     if (getFunctionLoc(F) == 0)
1768       return false;
1769 
1770     LLVM_DEBUG(dbgs() << "Line number for the first instruction in "
1771                       << F.getName() << ": " << getFunctionLoc(F) << "\n");
1772   }
1773 
1774   DenseSet<GlobalValue::GUID> InlinedGUIDs;
1775   if (CallsitePrioritizedInline)
1776     Changed |= inlineHotFunctionsWithPriority(F, InlinedGUIDs);
1777   else
1778     Changed |= inlineHotFunctions(F, InlinedGUIDs);
1779 
1780   Changed |= computeAndPropagateWeights(F, InlinedGUIDs);
1781 
1782   if (Changed)
1783     generateMDProfMetadata(F);
1784 
1785   emitCoverageRemarks(F);
1786   return Changed;
1787 }
1788 
1789 char SampleProfileLoaderLegacyPass::ID = 0;
1790 
1791 INITIALIZE_PASS_BEGIN(SampleProfileLoaderLegacyPass, "sample-profile",
1792                       "Sample Profile loader", false, false)
1793 INITIALIZE_PASS_DEPENDENCY(AssumptionCacheTracker)
1794 INITIALIZE_PASS_DEPENDENCY(TargetTransformInfoWrapperPass)
1795 INITIALIZE_PASS_DEPENDENCY(TargetLibraryInfoWrapperPass)
1796 INITIALIZE_PASS_DEPENDENCY(ProfileSummaryInfoWrapperPass)
1797 INITIALIZE_PASS_END(SampleProfileLoaderLegacyPass, "sample-profile",
1798                     "Sample Profile loader", false, false)
1799 
1800 std::unique_ptr<ProfiledCallGraph>
1801 SampleProfileLoader::buildProfiledCallGraph(CallGraph &CG) {
1802   std::unique_ptr<ProfiledCallGraph> ProfiledCG;
1803   if (ProfileIsCSFlat)
1804     ProfiledCG = std::make_unique<ProfiledCallGraph>(*ContextTracker);
1805   else
1806     ProfiledCG = std::make_unique<ProfiledCallGraph>(Reader->getProfiles());
1807 
1808   // Add all functions into the profiled call graph even if they are not in
1809   // the profile. This makes sure functions missing from the profile still
1810   // gets a chance to be processed.
1811   for (auto &Node : CG) {
1812     const auto *F = Node.first;
1813     if (!F || F->isDeclaration() || !F->hasFnAttribute("use-sample-profile"))
1814       continue;
1815     ProfiledCG->addProfiledFunction(FunctionSamples::getCanonicalFnName(*F));
1816   }
1817 
1818   return ProfiledCG;
1819 }
1820 
1821 std::vector<Function *>
1822 SampleProfileLoader::buildFunctionOrder(Module &M, CallGraph *CG) {
1823   std::vector<Function *> FunctionOrderList;
1824   FunctionOrderList.reserve(M.size());
1825 
1826   if (!ProfileTopDownLoad && UseProfiledCallGraph)
1827     errs() << "WARNING: -use-profiled-call-graph ignored, should be used "
1828               "together with -sample-profile-top-down-load.\n";
1829 
1830   if (!ProfileTopDownLoad || CG == nullptr) {
1831     if (ProfileMergeInlinee) {
1832       // Disable ProfileMergeInlinee if profile is not loaded in top down order,
1833       // because the profile for a function may be used for the profile
1834       // annotation of its outline copy before the profile merging of its
1835       // non-inlined inline instances, and that is not the way how
1836       // ProfileMergeInlinee is supposed to work.
1837       ProfileMergeInlinee = false;
1838     }
1839 
1840     for (Function &F : M)
1841       if (!F.isDeclaration() && F.hasFnAttribute("use-sample-profile"))
1842         FunctionOrderList.push_back(&F);
1843     return FunctionOrderList;
1844   }
1845 
1846   assert(&CG->getModule() == &M);
1847 
1848   if (UseProfiledCallGraph ||
1849       (ProfileIsCSFlat && !UseProfiledCallGraph.getNumOccurrences())) {
1850     // Use profiled call edges to augment the top-down order. There are cases
1851     // that the top-down order computed based on the static call graph doesn't
1852     // reflect real execution order. For example
1853     //
1854     // 1. Incomplete static call graph due to unknown indirect call targets.
1855     //    Adjusting the order by considering indirect call edges from the
1856     //    profile can enable the inlining of indirect call targets by allowing
1857     //    the caller processed before them.
1858     // 2. Mutual call edges in an SCC. The static processing order computed for
1859     //    an SCC may not reflect the call contexts in the context-sensitive
1860     //    profile, thus may cause potential inlining to be overlooked. The
1861     //    function order in one SCC is being adjusted to a top-down order based
1862     //    on the profile to favor more inlining. This is only a problem with CS
1863     //    profile.
1864     // 3. Transitive indirect call edges due to inlining. When a callee function
1865     //    (say B) is inlined into into a caller function (say A) in LTO prelink,
1866     //    every call edge originated from the callee B will be transferred to
1867     //    the caller A. If any transferred edge (say A->C) is indirect, the
1868     //    original profiled indirect edge B->C, even if considered, would not
1869     //    enforce a top-down order from the caller A to the potential indirect
1870     //    call target C in LTO postlink since the inlined callee B is gone from
1871     //    the static call graph.
1872     // 4. #3 can happen even for direct call targets, due to functions defined
1873     //    in header files. A header function (say A), when included into source
1874     //    files, is defined multiple times but only one definition survives due
1875     //    to ODR. Therefore, the LTO prelink inlining done on those dropped
1876     //    definitions can be useless based on a local file scope. More
1877     //    importantly, the inlinee (say B), once fully inlined to a
1878     //    to-be-dropped A, will have no profile to consume when its outlined
1879     //    version is compiled. This can lead to a profile-less prelink
1880     //    compilation for the outlined version of B which may be called from
1881     //    external modules. while this isn't easy to fix, we rely on the
1882     //    postlink AutoFDO pipeline to optimize B. Since the survived copy of
1883     //    the A can be inlined in its local scope in prelink, it may not exist
1884     //    in the merged IR in postlink, and we'll need the profiled call edges
1885     //    to enforce a top-down order for the rest of the functions.
1886     //
1887     // Considering those cases, a profiled call graph completely independent of
1888     // the static call graph is constructed based on profile data, where
1889     // function objects are not even needed to handle case #3 and case 4.
1890     //
1891     // Note that static callgraph edges are completely ignored since they
1892     // can be conflicting with profiled edges for cyclic SCCs and may result in
1893     // an SCC order incompatible with profile-defined one. Using strictly
1894     // profile order ensures a maximum inlining experience. On the other hand,
1895     // static call edges are not so important when they don't correspond to a
1896     // context in the profile.
1897 
1898     std::unique_ptr<ProfiledCallGraph> ProfiledCG = buildProfiledCallGraph(*CG);
1899     scc_iterator<ProfiledCallGraph *> CGI = scc_begin(ProfiledCG.get());
1900     while (!CGI.isAtEnd()) {
1901       auto Range = *CGI;
1902       if (SortProfiledSCC) {
1903         // Sort nodes in one SCC based on callsite hotness.
1904         scc_member_iterator<ProfiledCallGraph *> SI(*CGI);
1905         Range = *SI;
1906       }
1907       for (auto *Node : Range) {
1908         Function *F = SymbolMap.lookup(Node->Name);
1909         if (F && !F->isDeclaration() && F->hasFnAttribute("use-sample-profile"))
1910           FunctionOrderList.push_back(F);
1911       }
1912       ++CGI;
1913     }
1914   } else {
1915     scc_iterator<CallGraph *> CGI = scc_begin(CG);
1916     while (!CGI.isAtEnd()) {
1917       for (CallGraphNode *Node : *CGI) {
1918         auto *F = Node->getFunction();
1919         if (F && !F->isDeclaration() && F->hasFnAttribute("use-sample-profile"))
1920           FunctionOrderList.push_back(F);
1921       }
1922       ++CGI;
1923     }
1924   }
1925 
1926   LLVM_DEBUG({
1927     dbgs() << "Function processing order:\n";
1928     for (auto F : reverse(FunctionOrderList)) {
1929       dbgs() << F->getName() << "\n";
1930     }
1931   });
1932 
1933   std::reverse(FunctionOrderList.begin(), FunctionOrderList.end());
1934   return FunctionOrderList;
1935 }
1936 
1937 bool SampleProfileLoader::doInitialization(Module &M,
1938                                            FunctionAnalysisManager *FAM) {
1939   auto &Ctx = M.getContext();
1940 
1941   auto ReaderOrErr = SampleProfileReader::create(
1942       Filename, Ctx, FSDiscriminatorPass::Base, RemappingFilename);
1943   if (std::error_code EC = ReaderOrErr.getError()) {
1944     std::string Msg = "Could not open profile: " + EC.message();
1945     Ctx.diagnose(DiagnosticInfoSampleProfile(Filename, Msg));
1946     return false;
1947   }
1948   Reader = std::move(ReaderOrErr.get());
1949   Reader->setSkipFlatProf(LTOPhase == ThinOrFullLTOPhase::ThinLTOPostLink);
1950   // set module before reading the profile so reader may be able to only
1951   // read the function profiles which are used by the current module.
1952   Reader->setModule(&M);
1953   if (std::error_code EC = Reader->read()) {
1954     std::string Msg = "profile reading failed: " + EC.message();
1955     Ctx.diagnose(DiagnosticInfoSampleProfile(Filename, Msg));
1956     return false;
1957   }
1958 
1959   PSL = Reader->getProfileSymbolList();
1960 
1961   // While profile-sample-accurate is on, ignore symbol list.
1962   ProfAccForSymsInList =
1963       ProfileAccurateForSymsInList && PSL && !ProfileSampleAccurate;
1964   if (ProfAccForSymsInList) {
1965     NamesInProfile.clear();
1966     if (auto NameTable = Reader->getNameTable())
1967       NamesInProfile.insert(NameTable->begin(), NameTable->end());
1968     CoverageTracker.setProfAccForSymsInList(true);
1969   }
1970 
1971   if (FAM && !ProfileInlineReplayFile.empty()) {
1972     ExternalInlineAdvisor = getReplayInlineAdvisor(
1973         M, *FAM, Ctx, /*OriginalAdvisor=*/nullptr,
1974         ReplayInlinerSettings{ProfileInlineReplayFile,
1975                               ProfileInlineReplayScope,
1976                               ProfileInlineReplayFallback,
1977                               {ProfileInlineReplayFormat}},
1978         /*EmitRemarks=*/false);
1979   }
1980 
1981   // Apply tweaks if context-sensitive profile is available.
1982   if (Reader->profileIsCSFlat() || Reader->profileIsCSNested()) {
1983     ProfileIsCSFlat = Reader->profileIsCSFlat();
1984     // Enable priority-base inliner and size inline by default for CSSPGO.
1985     if (!ProfileSizeInline.getNumOccurrences())
1986       ProfileSizeInline = true;
1987     if (!CallsitePrioritizedInline.getNumOccurrences())
1988       CallsitePrioritizedInline = true;
1989 
1990     // For CSSPGO, use preinliner decision by default when available.
1991     if (!UsePreInlinerDecision.getNumOccurrences())
1992       UsePreInlinerDecision = true;
1993 
1994     // For CSSPGO, we also allow recursive inline to best use context profile.
1995     if (!AllowRecursiveInline.getNumOccurrences())
1996       AllowRecursiveInline = true;
1997 
1998     // Enable iterative-BFI by default for CSSPGO.
1999     if (!UseIterativeBFIInference.getNumOccurrences())
2000       UseIterativeBFIInference = true;
2001     // Enable Profi by default for CSSPGO.
2002     if (!SampleProfileUseProfi.getNumOccurrences())
2003       SampleProfileUseProfi = true;
2004 
2005     if (FunctionSamples::ProfileIsCSFlat) {
2006       // Tracker for profiles under different context
2007       ContextTracker = std::make_unique<SampleContextTracker>(
2008           Reader->getProfiles(), &GUIDToFuncNameMap);
2009     }
2010   }
2011 
2012   // Load pseudo probe descriptors for probe-based function samples.
2013   if (Reader->profileIsProbeBased()) {
2014     ProbeManager = std::make_unique<PseudoProbeManager>(M);
2015     if (!ProbeManager->moduleIsProbed(M)) {
2016       const char *Msg =
2017           "Pseudo-probe-based profile requires SampleProfileProbePass";
2018       Ctx.diagnose(DiagnosticInfoSampleProfile(M.getModuleIdentifier(), Msg,
2019                                                DS_Warning));
2020       return false;
2021     }
2022   }
2023 
2024   return true;
2025 }
2026 
2027 ModulePass *llvm::createSampleProfileLoaderPass() {
2028   return new SampleProfileLoaderLegacyPass();
2029 }
2030 
2031 ModulePass *llvm::createSampleProfileLoaderPass(StringRef Name) {
2032   return new SampleProfileLoaderLegacyPass(Name);
2033 }
2034 
2035 bool SampleProfileLoader::runOnModule(Module &M, ModuleAnalysisManager *AM,
2036                                       ProfileSummaryInfo *_PSI, CallGraph *CG) {
2037   GUIDToFuncNameMapper Mapper(M, *Reader, GUIDToFuncNameMap);
2038 
2039   PSI = _PSI;
2040   if (M.getProfileSummary(/* IsCS */ false) == nullptr) {
2041     M.setProfileSummary(Reader->getSummary().getMD(M.getContext()),
2042                         ProfileSummary::PSK_Sample);
2043     PSI->refresh();
2044   }
2045   // Compute the total number of samples collected in this profile.
2046   for (const auto &I : Reader->getProfiles())
2047     TotalCollectedSamples += I.second.getTotalSamples();
2048 
2049   auto Remapper = Reader->getRemapper();
2050   // Populate the symbol map.
2051   for (const auto &N_F : M.getValueSymbolTable()) {
2052     StringRef OrigName = N_F.getKey();
2053     Function *F = dyn_cast<Function>(N_F.getValue());
2054     if (F == nullptr || OrigName.empty())
2055       continue;
2056     SymbolMap[OrigName] = F;
2057     StringRef NewName = FunctionSamples::getCanonicalFnName(*F);
2058     if (OrigName != NewName && !NewName.empty()) {
2059       auto r = SymbolMap.insert(std::make_pair(NewName, F));
2060       // Failiing to insert means there is already an entry in SymbolMap,
2061       // thus there are multiple functions that are mapped to the same
2062       // stripped name. In this case of name conflicting, set the value
2063       // to nullptr to avoid confusion.
2064       if (!r.second)
2065         r.first->second = nullptr;
2066       OrigName = NewName;
2067     }
2068     // Insert the remapped names into SymbolMap.
2069     if (Remapper) {
2070       if (auto MapName = Remapper->lookUpNameInProfile(OrigName)) {
2071         if (*MapName != OrigName && !MapName->empty())
2072           SymbolMap.insert(std::make_pair(*MapName, F));
2073       }
2074     }
2075   }
2076   assert(SymbolMap.count(StringRef()) == 0 &&
2077          "No empty StringRef should be added in SymbolMap");
2078 
2079   bool retval = false;
2080   for (auto F : buildFunctionOrder(M, CG)) {
2081     assert(!F->isDeclaration());
2082     clearFunctionData();
2083     retval |= runOnFunction(*F, AM);
2084   }
2085 
2086   // Account for cold calls not inlined....
2087   if (!ProfileIsCSFlat)
2088     for (const std::pair<Function *, NotInlinedProfileInfo> &pair :
2089          notInlinedCallInfo)
2090       updateProfileCallee(pair.first, pair.second.entryCount);
2091 
2092   return retval;
2093 }
2094 
2095 bool SampleProfileLoaderLegacyPass::runOnModule(Module &M) {
2096   ACT = &getAnalysis<AssumptionCacheTracker>();
2097   TTIWP = &getAnalysis<TargetTransformInfoWrapperPass>();
2098   TLIWP = &getAnalysis<TargetLibraryInfoWrapperPass>();
2099   ProfileSummaryInfo *PSI =
2100       &getAnalysis<ProfileSummaryInfoWrapperPass>().getPSI();
2101   return SampleLoader.runOnModule(M, nullptr, PSI, nullptr);
2102 }
2103 
2104 bool SampleProfileLoader::runOnFunction(Function &F, ModuleAnalysisManager *AM) {
2105   LLVM_DEBUG(dbgs() << "\n\nProcessing Function " << F.getName() << "\n");
2106   DILocation2SampleMap.clear();
2107   // By default the entry count is initialized to -1, which will be treated
2108   // conservatively by getEntryCount as the same as unknown (None). This is
2109   // to avoid newly added code to be treated as cold. If we have samples
2110   // this will be overwritten in emitAnnotations.
2111   uint64_t initialEntryCount = -1;
2112 
2113   ProfAccForSymsInList = ProfileAccurateForSymsInList && PSL;
2114   if (ProfileSampleAccurate || F.hasFnAttribute("profile-sample-accurate")) {
2115     // initialize all the function entry counts to 0. It means all the
2116     // functions without profile will be regarded as cold.
2117     initialEntryCount = 0;
2118     // profile-sample-accurate is a user assertion which has a higher precedence
2119     // than symbol list. When profile-sample-accurate is on, ignore symbol list.
2120     ProfAccForSymsInList = false;
2121   }
2122   CoverageTracker.setProfAccForSymsInList(ProfAccForSymsInList);
2123 
2124   // PSL -- profile symbol list include all the symbols in sampled binary.
2125   // If ProfileAccurateForSymsInList is enabled, PSL is used to treat
2126   // old functions without samples being cold, without having to worry
2127   // about new and hot functions being mistakenly treated as cold.
2128   if (ProfAccForSymsInList) {
2129     // Initialize the entry count to 0 for functions in the list.
2130     if (PSL->contains(F.getName()))
2131       initialEntryCount = 0;
2132 
2133     // Function in the symbol list but without sample will be regarded as
2134     // cold. To minimize the potential negative performance impact it could
2135     // have, we want to be a little conservative here saying if a function
2136     // shows up in the profile, no matter as outline function, inline instance
2137     // or call targets, treat the function as not being cold. This will handle
2138     // the cases such as most callsites of a function are inlined in sampled
2139     // binary but not inlined in current build (because of source code drift,
2140     // imprecise debug information, or the callsites are all cold individually
2141     // but not cold accumulatively...), so the outline function showing up as
2142     // cold in sampled binary will actually not be cold after current build.
2143     StringRef CanonName = FunctionSamples::getCanonicalFnName(F);
2144     if (NamesInProfile.count(CanonName))
2145       initialEntryCount = -1;
2146   }
2147 
2148   // Initialize entry count when the function has no existing entry
2149   // count value.
2150   if (!F.getEntryCount().hasValue())
2151     F.setEntryCount(ProfileCount(initialEntryCount, Function::PCT_Real));
2152   std::unique_ptr<OptimizationRemarkEmitter> OwnedORE;
2153   if (AM) {
2154     auto &FAM =
2155         AM->getResult<FunctionAnalysisManagerModuleProxy>(*F.getParent())
2156             .getManager();
2157     ORE = &FAM.getResult<OptimizationRemarkEmitterAnalysis>(F);
2158   } else {
2159     OwnedORE = std::make_unique<OptimizationRemarkEmitter>(&F);
2160     ORE = OwnedORE.get();
2161   }
2162 
2163   if (ProfileIsCSFlat)
2164     Samples = ContextTracker->getBaseSamplesFor(F);
2165   else
2166     Samples = Reader->getSamplesFor(F);
2167 
2168   if (Samples && !Samples->empty())
2169     return emitAnnotations(F);
2170   return false;
2171 }
2172 
2173 PreservedAnalyses SampleProfileLoaderPass::run(Module &M,
2174                                                ModuleAnalysisManager &AM) {
2175   FunctionAnalysisManager &FAM =
2176       AM.getResult<FunctionAnalysisManagerModuleProxy>(M).getManager();
2177 
2178   auto GetAssumptionCache = [&](Function &F) -> AssumptionCache & {
2179     return FAM.getResult<AssumptionAnalysis>(F);
2180   };
2181   auto GetTTI = [&](Function &F) -> TargetTransformInfo & {
2182     return FAM.getResult<TargetIRAnalysis>(F);
2183   };
2184   auto GetTLI = [&](Function &F) -> const TargetLibraryInfo & {
2185     return FAM.getResult<TargetLibraryAnalysis>(F);
2186   };
2187 
2188   SampleProfileLoader SampleLoader(
2189       ProfileFileName.empty() ? SampleProfileFile : ProfileFileName,
2190       ProfileRemappingFileName.empty() ? SampleProfileRemappingFile
2191                                        : ProfileRemappingFileName,
2192       LTOPhase, GetAssumptionCache, GetTTI, GetTLI);
2193 
2194   if (!SampleLoader.doInitialization(M, &FAM))
2195     return PreservedAnalyses::all();
2196 
2197   ProfileSummaryInfo *PSI = &AM.getResult<ProfileSummaryAnalysis>(M);
2198   CallGraph &CG = AM.getResult<CallGraphAnalysis>(M);
2199   if (!SampleLoader.runOnModule(M, &AM, PSI, &CG))
2200     return PreservedAnalyses::all();
2201 
2202   return PreservedAnalyses::none();
2203 }
2204