1 //===- ProfileSummaryInfo.cpp - Global profile summary information --------===//
2 //
3 // The LLVM Compiler Infrastructure
4 //
5 // This file is distributed under the University of Illinois Open Source
6 // License. See LICENSE.TXT for details.
7 //
8 //===----------------------------------------------------------------------===//
9 //
10 // This file contains a pass that provides access to the global profile summary
11 // information.
12 //
13 //===----------------------------------------------------------------------===//
14
15 #include "llvm/Analysis/ProfileSummaryInfo.h"
16 #include "llvm/Analysis/BlockFrequencyInfo.h"
17 #include "llvm/IR/BasicBlock.h"
18 #include "llvm/IR/CallSite.h"
19 #include "llvm/IR/Metadata.h"
20 #include "llvm/IR/Module.h"
21 #include "llvm/IR/ProfileSummary.h"
22 using namespace llvm;
23
24 // The following two parameters determine the threshold for a count to be
25 // considered hot/cold. These two parameters are percentile values (multiplied
26 // by 10000). If the counts are sorted in descending order, the minimum count to
27 // reach ProfileSummaryCutoffHot gives the threshold to determine a hot count.
28 // Similarly, the minimum count to reach ProfileSummaryCutoffCold gives the
29 // threshold for determining cold count (everything <= this threshold is
30 // considered cold).
31
32 static cl::opt<int> ProfileSummaryCutoffHot(
33 "profile-summary-cutoff-hot", cl::Hidden, cl::init(990000), cl::ZeroOrMore,
34 cl::desc("A count is hot if it exceeds the minimum count to"
35 " reach this percentile of total counts."));
36
37 static cl::opt<int> ProfileSummaryCutoffCold(
38 "profile-summary-cutoff-cold", cl::Hidden, cl::init(999999), cl::ZeroOrMore,
39 cl::desc("A count is cold if it is below the minimum count"
40 " to reach this percentile of total counts."));
41
42 static cl::opt<unsigned> ProfileSummaryHugeWorkingSetSizeThreshold(
43 "profile-summary-huge-working-set-size-threshold", cl::Hidden,
44 cl::init(15000), cl::ZeroOrMore,
45 cl::desc("The code working set size is considered huge if the number of"
46 " blocks required to reach the -profile-summary-cutoff-hot"
47 " percentile exceeds this count."));
48
49 // The next two options override the counts derived from summary computation and
50 // are useful for debugging purposes.
51 static cl::opt<int> ProfileSummaryHotCount(
52 "profile-summary-hot-count", cl::ReallyHidden, cl::ZeroOrMore,
53 cl::desc("A fixed hot count that overrides the count derived from"
54 " profile-summary-cutoff-hot"));
55
56 static cl::opt<int> ProfileSummaryColdCount(
57 "profile-summary-cold-count", cl::ReallyHidden, cl::ZeroOrMore,
58 cl::desc("A fixed cold count that overrides the count derived from"
59 " profile-summary-cutoff-cold"));
60
61 // Find the summary entry for a desired percentile of counts.
getEntryForPercentile(SummaryEntryVector & DS,uint64_t Percentile)62 static const ProfileSummaryEntry &getEntryForPercentile(SummaryEntryVector &DS,
63 uint64_t Percentile) {
64 auto Compare = [](const ProfileSummaryEntry &Entry, uint64_t Percentile) {
65 return Entry.Cutoff < Percentile;
66 };
67 auto It = std::lower_bound(DS.begin(), DS.end(), Percentile, Compare);
68 // The required percentile has to be <= one of the percentiles in the
69 // detailed summary.
70 if (It == DS.end())
71 report_fatal_error("Desired percentile exceeds the maximum cutoff");
72 return *It;
73 }
74
75 // The profile summary metadata may be attached either by the frontend or by
76 // any backend passes (IR level instrumentation, for example). This method
77 // checks if the Summary is null and if so checks if the summary metadata is now
78 // available in the module and parses it to get the Summary object. Returns true
79 // if a valid Summary is available.
computeSummary()80 bool ProfileSummaryInfo::computeSummary() {
81 if (Summary)
82 return true;
83 auto *SummaryMD = M.getProfileSummary();
84 if (!SummaryMD)
85 return false;
86 Summary.reset(ProfileSummary::getFromMD(SummaryMD));
87 return true;
88 }
89
90 Optional<uint64_t>
getProfileCount(const Instruction * Inst,BlockFrequencyInfo * BFI)91 ProfileSummaryInfo::getProfileCount(const Instruction *Inst,
92 BlockFrequencyInfo *BFI) {
93 if (!Inst)
94 return None;
95 assert((isa<CallInst>(Inst) || isa<InvokeInst>(Inst)) &&
96 "We can only get profile count for call/invoke instruction.");
97 if (hasSampleProfile()) {
98 // In sample PGO mode, check if there is a profile metadata on the
99 // instruction. If it is present, determine hotness solely based on that,
100 // since the sampled entry count may not be accurate. If there is no
101 // annotated on the instruction, return None.
102 uint64_t TotalCount;
103 if (Inst->extractProfTotalWeight(TotalCount))
104 return TotalCount;
105 return None;
106 }
107 if (BFI)
108 return BFI->getBlockProfileCount(Inst->getParent());
109 return None;
110 }
111
112 /// Returns true if the function's entry is hot. If it returns false, it
113 /// either means it is not hot or it is unknown whether it is hot or not (for
114 /// example, no profile data is available).
isFunctionEntryHot(const Function * F)115 bool ProfileSummaryInfo::isFunctionEntryHot(const Function *F) {
116 if (!F || !computeSummary())
117 return false;
118 auto FunctionCount = F->getEntryCount();
119 // FIXME: The heuristic used below for determining hotness is based on
120 // preliminary SPEC tuning for inliner. This will eventually be a
121 // convenience method that calls isHotCount.
122 return FunctionCount && isHotCount(FunctionCount.getCount());
123 }
124
125 /// Returns true if the function contains hot code. This can include a hot
126 /// function entry count, hot basic block, or (in the case of Sample PGO)
127 /// hot total call edge count.
128 /// If it returns false, it either means it is not hot or it is unknown
129 /// (for example, no profile data is available).
isFunctionHotInCallGraph(const Function * F,BlockFrequencyInfo & BFI)130 bool ProfileSummaryInfo::isFunctionHotInCallGraph(const Function *F,
131 BlockFrequencyInfo &BFI) {
132 if (!F || !computeSummary())
133 return false;
134 if (auto FunctionCount = F->getEntryCount())
135 if (isHotCount(FunctionCount.getCount()))
136 return true;
137
138 if (hasSampleProfile()) {
139 uint64_t TotalCallCount = 0;
140 for (const auto &BB : *F)
141 for (const auto &I : BB)
142 if (isa<CallInst>(I) || isa<InvokeInst>(I))
143 if (auto CallCount = getProfileCount(&I, nullptr))
144 TotalCallCount += CallCount.getValue();
145 if (isHotCount(TotalCallCount))
146 return true;
147 }
148 for (const auto &BB : *F)
149 if (isHotBlock(&BB, &BFI))
150 return true;
151 return false;
152 }
153
154 /// Returns true if the function only contains cold code. This means that
155 /// the function entry and blocks are all cold, and (in the case of Sample PGO)
156 /// the total call edge count is cold.
157 /// If it returns false, it either means it is not cold or it is unknown
158 /// (for example, no profile data is available).
isFunctionColdInCallGraph(const Function * F,BlockFrequencyInfo & BFI)159 bool ProfileSummaryInfo::isFunctionColdInCallGraph(const Function *F,
160 BlockFrequencyInfo &BFI) {
161 if (!F || !computeSummary())
162 return false;
163 if (auto FunctionCount = F->getEntryCount())
164 if (!isColdCount(FunctionCount.getCount()))
165 return false;
166
167 if (hasSampleProfile()) {
168 uint64_t TotalCallCount = 0;
169 for (const auto &BB : *F)
170 for (const auto &I : BB)
171 if (isa<CallInst>(I) || isa<InvokeInst>(I))
172 if (auto CallCount = getProfileCount(&I, nullptr))
173 TotalCallCount += CallCount.getValue();
174 if (!isColdCount(TotalCallCount))
175 return false;
176 }
177 for (const auto &BB : *F)
178 if (!isColdBlock(&BB, &BFI))
179 return false;
180 return true;
181 }
182
183 /// Returns true if the function's entry is a cold. If it returns false, it
184 /// either means it is not cold or it is unknown whether it is cold or not (for
185 /// example, no profile data is available).
isFunctionEntryCold(const Function * F)186 bool ProfileSummaryInfo::isFunctionEntryCold(const Function *F) {
187 if (!F)
188 return false;
189 if (F->hasFnAttribute(Attribute::Cold))
190 return true;
191 if (!computeSummary())
192 return false;
193 auto FunctionCount = F->getEntryCount();
194 // FIXME: The heuristic used below for determining coldness is based on
195 // preliminary SPEC tuning for inliner. This will eventually be a
196 // convenience method that calls isHotCount.
197 return FunctionCount && isColdCount(FunctionCount.getCount());
198 }
199
200 /// Compute the hot and cold thresholds.
computeThresholds()201 void ProfileSummaryInfo::computeThresholds() {
202 if (!computeSummary())
203 return;
204 auto &DetailedSummary = Summary->getDetailedSummary();
205 auto &HotEntry =
206 getEntryForPercentile(DetailedSummary, ProfileSummaryCutoffHot);
207 HotCountThreshold = HotEntry.MinCount;
208 if (ProfileSummaryHotCount.getNumOccurrences() > 0)
209 HotCountThreshold = ProfileSummaryHotCount;
210 auto &ColdEntry =
211 getEntryForPercentile(DetailedSummary, ProfileSummaryCutoffCold);
212 ColdCountThreshold = ColdEntry.MinCount;
213 if (ProfileSummaryColdCount.getNumOccurrences() > 0)
214 ColdCountThreshold = ProfileSummaryColdCount;
215 assert(ColdCountThreshold <= HotCountThreshold &&
216 "Cold count threshold cannot exceed hot count threshold!");
217 HasHugeWorkingSetSize =
218 HotEntry.NumCounts > ProfileSummaryHugeWorkingSetSizeThreshold;
219 }
220
hasHugeWorkingSetSize()221 bool ProfileSummaryInfo::hasHugeWorkingSetSize() {
222 if (!HasHugeWorkingSetSize)
223 computeThresholds();
224 return HasHugeWorkingSetSize && HasHugeWorkingSetSize.getValue();
225 }
226
isHotCount(uint64_t C)227 bool ProfileSummaryInfo::isHotCount(uint64_t C) {
228 if (!HotCountThreshold)
229 computeThresholds();
230 return HotCountThreshold && C >= HotCountThreshold.getValue();
231 }
232
isColdCount(uint64_t C)233 bool ProfileSummaryInfo::isColdCount(uint64_t C) {
234 if (!ColdCountThreshold)
235 computeThresholds();
236 return ColdCountThreshold && C <= ColdCountThreshold.getValue();
237 }
238
getOrCompHotCountThreshold()239 uint64_t ProfileSummaryInfo::getOrCompHotCountThreshold() {
240 if (!HotCountThreshold)
241 computeThresholds();
242 return HotCountThreshold ? HotCountThreshold.getValue() : UINT64_MAX;
243 }
244
getOrCompColdCountThreshold()245 uint64_t ProfileSummaryInfo::getOrCompColdCountThreshold() {
246 if (!ColdCountThreshold)
247 computeThresholds();
248 return ColdCountThreshold ? ColdCountThreshold.getValue() : 0;
249 }
250
isHotBlock(const BasicBlock * BB,BlockFrequencyInfo * BFI)251 bool ProfileSummaryInfo::isHotBlock(const BasicBlock *BB, BlockFrequencyInfo *BFI) {
252 auto Count = BFI->getBlockProfileCount(BB);
253 return Count && isHotCount(*Count);
254 }
255
isColdBlock(const BasicBlock * BB,BlockFrequencyInfo * BFI)256 bool ProfileSummaryInfo::isColdBlock(const BasicBlock *BB,
257 BlockFrequencyInfo *BFI) {
258 auto Count = BFI->getBlockProfileCount(BB);
259 return Count && isColdCount(*Count);
260 }
261
isHotCallSite(const CallSite & CS,BlockFrequencyInfo * BFI)262 bool ProfileSummaryInfo::isHotCallSite(const CallSite &CS,
263 BlockFrequencyInfo *BFI) {
264 auto C = getProfileCount(CS.getInstruction(), BFI);
265 return C && isHotCount(*C);
266 }
267
isColdCallSite(const CallSite & CS,BlockFrequencyInfo * BFI)268 bool ProfileSummaryInfo::isColdCallSite(const CallSite &CS,
269 BlockFrequencyInfo *BFI) {
270 auto C = getProfileCount(CS.getInstruction(), BFI);
271 if (C)
272 return isColdCount(*C);
273
274 // In SamplePGO, if the caller has been sampled, and there is no profile
275 // annotated on the callsite, we consider the callsite as cold.
276 return hasSampleProfile() && CS.getCaller()->hasProfileData();
277 }
278
279 INITIALIZE_PASS(ProfileSummaryInfoWrapperPass, "profile-summary-info",
280 "Profile summary info", false, true)
281
ProfileSummaryInfoWrapperPass()282 ProfileSummaryInfoWrapperPass::ProfileSummaryInfoWrapperPass()
283 : ImmutablePass(ID) {
284 initializeProfileSummaryInfoWrapperPassPass(*PassRegistry::getPassRegistry());
285 }
286
doInitialization(Module & M)287 bool ProfileSummaryInfoWrapperPass::doInitialization(Module &M) {
288 PSI.reset(new ProfileSummaryInfo(M));
289 return false;
290 }
291
doFinalization(Module & M)292 bool ProfileSummaryInfoWrapperPass::doFinalization(Module &M) {
293 PSI.reset();
294 return false;
295 }
296
297 AnalysisKey ProfileSummaryAnalysis::Key;
run(Module & M,ModuleAnalysisManager &)298 ProfileSummaryInfo ProfileSummaryAnalysis::run(Module &M,
299 ModuleAnalysisManager &) {
300 return ProfileSummaryInfo(M);
301 }
302
run(Module & M,ModuleAnalysisManager & AM)303 PreservedAnalyses ProfileSummaryPrinterPass::run(Module &M,
304 ModuleAnalysisManager &AM) {
305 ProfileSummaryInfo &PSI = AM.getResult<ProfileSummaryAnalysis>(M);
306
307 OS << "Functions in " << M.getName() << " with hot/cold annotations: \n";
308 for (auto &F : M) {
309 OS << F.getName();
310 if (PSI.isFunctionEntryHot(&F))
311 OS << " :hot entry ";
312 else if (PSI.isFunctionEntryCold(&F))
313 OS << " :cold entry ";
314 OS << "\n";
315 }
316 return PreservedAnalyses::all();
317 }
318
319 char ProfileSummaryInfoWrapperPass::ID = 0;
320