
These are identified by misc-include-cleaner. I've filtered out those that break builds. Also, I'm staying away from llvm-config.h, config.h, and Compiler.h, which likely cause platform- or compiler-specific build failures.
859 lines
31 KiB
C++
859 lines
31 KiB
C++
//===- InstrProfWriter.cpp - Instrumented profiling writer ----------------===//
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//
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// Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
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// See https://llvm.org/LICENSE.txt for license information.
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// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
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//
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//===----------------------------------------------------------------------===//
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//
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// This file contains support for writing profiling data for clang's
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// instrumentation based PGO and coverage.
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//
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//===----------------------------------------------------------------------===//
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#include "llvm/ProfileData/InstrProfWriter.h"
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#include "llvm/ADT/STLExtras.h"
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#include "llvm/ADT/SetVector.h"
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#include "llvm/ADT/StringRef.h"
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#include "llvm/IR/ProfileSummary.h"
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#include "llvm/ProfileData/DataAccessProf.h"
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#include "llvm/ProfileData/IndexedMemProfData.h"
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#include "llvm/ProfileData/InstrProf.h"
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#include "llvm/ProfileData/ProfileCommon.h"
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#include "llvm/Support/Compression.h"
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#include "llvm/Support/EndianStream.h"
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#include "llvm/Support/Error.h"
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#include "llvm/Support/MemoryBuffer.h"
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#include "llvm/Support/OnDiskHashTable.h"
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#include "llvm/Support/raw_ostream.h"
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#include <cstdint>
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#include <ctime>
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#include <memory>
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#include <string>
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#include <tuple>
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#include <utility>
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#include <vector>
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using namespace llvm;
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namespace llvm {
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class InstrProfRecordWriterTrait {
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public:
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using key_type = StringRef;
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using key_type_ref = StringRef;
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using data_type = const InstrProfWriter::ProfilingData *const;
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using data_type_ref = const InstrProfWriter::ProfilingData *const;
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using hash_value_type = uint64_t;
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using offset_type = uint64_t;
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llvm::endianness ValueProfDataEndianness = llvm::endianness::little;
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InstrProfSummaryBuilder *SummaryBuilder;
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InstrProfSummaryBuilder *CSSummaryBuilder;
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InstrProfRecordWriterTrait() = default;
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static hash_value_type ComputeHash(key_type_ref K) {
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return IndexedInstrProf::ComputeHash(K);
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}
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static std::pair<offset_type, offset_type>
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EmitKeyDataLength(raw_ostream &Out, key_type_ref K, data_type_ref V) {
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using namespace support;
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endian::Writer LE(Out, llvm::endianness::little);
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offset_type N = K.size();
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LE.write<offset_type>(N);
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offset_type M = 0;
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for (const auto &ProfileData : *V) {
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const InstrProfRecord &ProfRecord = ProfileData.second;
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M += sizeof(uint64_t); // The function hash
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M += sizeof(uint64_t); // The size of the Counts vector
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M += ProfRecord.Counts.size() * sizeof(uint64_t);
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M += sizeof(uint64_t); // The size of the Bitmap vector
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M += ProfRecord.BitmapBytes.size() * sizeof(uint64_t);
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// Value data
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M += ValueProfData::getSize(ProfileData.second);
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}
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LE.write<offset_type>(M);
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return std::make_pair(N, M);
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}
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void EmitKey(raw_ostream &Out, key_type_ref K, offset_type N) {
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Out.write(K.data(), N);
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}
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void EmitData(raw_ostream &Out, key_type_ref, data_type_ref V, offset_type) {
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using namespace support;
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endian::Writer LE(Out, llvm::endianness::little);
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for (const auto &ProfileData : *V) {
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const InstrProfRecord &ProfRecord = ProfileData.second;
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if (NamedInstrProfRecord::hasCSFlagInHash(ProfileData.first))
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CSSummaryBuilder->addRecord(ProfRecord);
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else
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SummaryBuilder->addRecord(ProfRecord);
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LE.write<uint64_t>(ProfileData.first); // Function hash
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LE.write<uint64_t>(ProfRecord.Counts.size());
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for (uint64_t I : ProfRecord.Counts)
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LE.write<uint64_t>(I);
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LE.write<uint64_t>(ProfRecord.BitmapBytes.size());
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for (uint64_t I : ProfRecord.BitmapBytes)
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LE.write<uint64_t>(I);
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// Write value data
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std::unique_ptr<ValueProfData> VDataPtr =
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ValueProfData::serializeFrom(ProfileData.second);
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uint32_t S = VDataPtr->getSize();
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VDataPtr->swapBytesFromHost(ValueProfDataEndianness);
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Out.write((const char *)VDataPtr.get(), S);
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}
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}
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};
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} // end namespace llvm
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InstrProfWriter::InstrProfWriter(
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bool Sparse, uint64_t TemporalProfTraceReservoirSize,
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uint64_t MaxTemporalProfTraceLength, bool WritePrevVersion,
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memprof::IndexedVersion MemProfVersionRequested, bool MemProfFullSchema,
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bool MemprofGenerateRandomHotness,
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unsigned MemprofGenerateRandomHotnessSeed)
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: Sparse(Sparse), MaxTemporalProfTraceLength(MaxTemporalProfTraceLength),
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TemporalProfTraceReservoirSize(TemporalProfTraceReservoirSize),
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InfoObj(new InstrProfRecordWriterTrait()),
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WritePrevVersion(WritePrevVersion),
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MemProfVersionRequested(MemProfVersionRequested),
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MemProfFullSchema(MemProfFullSchema),
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MemprofGenerateRandomHotness(MemprofGenerateRandomHotness) {
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// Set up the random number seed if requested.
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if (MemprofGenerateRandomHotness) {
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unsigned seed = MemprofGenerateRandomHotnessSeed
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? MemprofGenerateRandomHotnessSeed
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: std::time(nullptr);
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errs() << "random hotness seed = " << seed << "\n";
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std::srand(seed);
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}
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}
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InstrProfWriter::~InstrProfWriter() { delete InfoObj; }
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// Internal interface for testing purpose only.
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void InstrProfWriter::setValueProfDataEndianness(llvm::endianness Endianness) {
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InfoObj->ValueProfDataEndianness = Endianness;
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}
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void InstrProfWriter::setOutputSparse(bool Sparse) { this->Sparse = Sparse; }
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void InstrProfWriter::addRecord(NamedInstrProfRecord &&I, uint64_t Weight,
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function_ref<void(Error)> Warn) {
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auto Name = I.Name;
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auto Hash = I.Hash;
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addRecord(Name, Hash, std::move(I), Weight, Warn);
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}
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void InstrProfWriter::overlapRecord(NamedInstrProfRecord &&Other,
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OverlapStats &Overlap,
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OverlapStats &FuncLevelOverlap,
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const OverlapFuncFilters &FuncFilter) {
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auto Name = Other.Name;
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auto Hash = Other.Hash;
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Other.accumulateCounts(FuncLevelOverlap.Test);
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auto It = FunctionData.find(Name);
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if (It == FunctionData.end()) {
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Overlap.addOneUnique(FuncLevelOverlap.Test);
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return;
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}
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if (FuncLevelOverlap.Test.CountSum < 1.0f) {
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Overlap.Overlap.NumEntries += 1;
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return;
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}
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auto &ProfileDataMap = It->second;
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auto [Where, NewFunc] = ProfileDataMap.try_emplace(Hash);
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if (NewFunc) {
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Overlap.addOneMismatch(FuncLevelOverlap.Test);
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return;
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}
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InstrProfRecord &Dest = Where->second;
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uint64_t ValueCutoff = FuncFilter.ValueCutoff;
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if (!FuncFilter.NameFilter.empty() && Name.contains(FuncFilter.NameFilter))
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ValueCutoff = 0;
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Dest.overlap(Other, Overlap, FuncLevelOverlap, ValueCutoff);
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}
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void InstrProfWriter::addRecord(StringRef Name, uint64_t Hash,
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InstrProfRecord &&I, uint64_t Weight,
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function_ref<void(Error)> Warn) {
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auto &ProfileDataMap = FunctionData[Name];
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auto [Where, NewFunc] = ProfileDataMap.try_emplace(Hash);
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InstrProfRecord &Dest = Where->second;
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auto MapWarn = [&](instrprof_error E) {
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Warn(make_error<InstrProfError>(E));
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};
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if (NewFunc) {
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// We've never seen a function with this name and hash, add it.
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Dest = std::move(I);
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if (Weight > 1)
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Dest.scale(Weight, 1, MapWarn);
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} else {
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// We're updating a function we've seen before.
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Dest.merge(I, Weight, MapWarn);
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}
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Dest.sortValueData();
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}
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void InstrProfWriter::addMemProfRecord(
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const Function::GUID Id, const memprof::IndexedMemProfRecord &Record) {
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auto NewRecord = Record;
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// Provoke random hotness values if requested. We specify the lifetime access
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// density and lifetime length that will result in a cold or not cold hotness.
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// See the logic in getAllocType() in Analysis/MemoryProfileInfo.cpp.
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if (MemprofGenerateRandomHotness) {
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for (auto &Alloc : NewRecord.AllocSites) {
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// To get a not cold context, set the lifetime access density to the
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// maximum value and the lifetime to 0.
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uint64_t NewTLAD = std::numeric_limits<uint64_t>::max();
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uint64_t NewTL = 0;
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bool IsCold = std::rand() % 2;
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if (IsCold) {
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// To get a cold context, set the lifetime access density to 0 and the
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// lifetime to the maximum value.
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NewTLAD = 0;
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NewTL = std::numeric_limits<uint64_t>::max();
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}
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Alloc.Info.setTotalLifetimeAccessDensity(NewTLAD);
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Alloc.Info.setTotalLifetime(NewTL);
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}
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}
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MemProfSumBuilder.addRecord(NewRecord);
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auto [Iter, Inserted] = MemProfData.Records.insert({Id, NewRecord});
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// If we inserted a new record then we are done.
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if (Inserted) {
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return;
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}
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memprof::IndexedMemProfRecord &Existing = Iter->second;
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Existing.merge(NewRecord);
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}
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bool InstrProfWriter::addMemProfFrame(const memprof::FrameId Id,
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const memprof::Frame &Frame,
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function_ref<void(Error)> Warn) {
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auto [Iter, Inserted] = MemProfData.Frames.insert({Id, Frame});
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// If a mapping already exists for the current frame id and it does not
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// match the new mapping provided then reset the existing contents and bail
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// out. We don't support the merging of memprof data whose Frame -> Id
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// mapping across profiles is inconsistent.
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if (!Inserted && Iter->second != Frame) {
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Warn(make_error<InstrProfError>(instrprof_error::malformed,
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"frame to id mapping mismatch"));
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return false;
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}
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return true;
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}
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bool InstrProfWriter::addMemProfCallStack(
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const memprof::CallStackId CSId,
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const llvm::SmallVector<memprof::FrameId> &CallStack,
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function_ref<void(Error)> Warn) {
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auto [Iter, Inserted] = MemProfData.CallStacks.insert({CSId, CallStack});
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// If a mapping already exists for the current call stack id and it does not
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// match the new mapping provided then reset the existing contents and bail
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// out. We don't support the merging of memprof data whose CallStack -> Id
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// mapping across profiles is inconsistent.
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if (!Inserted && Iter->second != CallStack) {
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Warn(make_error<InstrProfError>(instrprof_error::malformed,
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"call stack to id mapping mismatch"));
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return false;
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}
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return true;
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}
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bool InstrProfWriter::addMemProfData(memprof::IndexedMemProfData Incoming,
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function_ref<void(Error)> Warn) {
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// Return immediately if everything is empty.
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if (Incoming.Frames.empty() && Incoming.CallStacks.empty() &&
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Incoming.Records.empty())
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return true;
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// Otherwise, every component must be non-empty.
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assert(!Incoming.Frames.empty() && !Incoming.CallStacks.empty() &&
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!Incoming.Records.empty());
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if (MemProfData.Frames.empty())
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MemProfData.Frames = std::move(Incoming.Frames);
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else
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for (const auto &[Id, F] : Incoming.Frames)
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if (addMemProfFrame(Id, F, Warn))
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return false;
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if (MemProfData.CallStacks.empty())
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MemProfData.CallStacks = std::move(Incoming.CallStacks);
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else
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for (const auto &[CSId, CS] : Incoming.CallStacks)
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if (addMemProfCallStack(CSId, CS, Warn))
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return false;
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// Add one record at a time if randomization is requested.
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if (MemProfData.Records.empty() && !MemprofGenerateRandomHotness) {
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// Need to manually add each record to the builder, which is otherwise done
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// in addMemProfRecord.
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for (const auto &[GUID, Record] : Incoming.Records)
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MemProfSumBuilder.addRecord(Record);
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MemProfData.Records = std::move(Incoming.Records);
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} else {
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for (const auto &[GUID, Record] : Incoming.Records)
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addMemProfRecord(GUID, Record);
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}
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return true;
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}
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void InstrProfWriter::addBinaryIds(ArrayRef<llvm::object::BuildID> BIs) {
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llvm::append_range(BinaryIds, BIs);
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}
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void InstrProfWriter::addDataAccessProfData(
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std::unique_ptr<memprof::DataAccessProfData> DataAccessProfDataIn) {
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DataAccessProfileData = std::move(DataAccessProfDataIn);
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}
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void InstrProfWriter::addTemporalProfileTrace(TemporalProfTraceTy Trace) {
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assert(Trace.FunctionNameRefs.size() <= MaxTemporalProfTraceLength);
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assert(!Trace.FunctionNameRefs.empty());
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if (TemporalProfTraceStreamSize < TemporalProfTraceReservoirSize) {
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// Simply append the trace if we have not yet hit our reservoir size limit.
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TemporalProfTraces.push_back(std::move(Trace));
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} else {
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// Otherwise, replace a random trace in the stream.
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std::uniform_int_distribution<uint64_t> Distribution(
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0, TemporalProfTraceStreamSize);
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uint64_t RandomIndex = Distribution(RNG);
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if (RandomIndex < TemporalProfTraces.size())
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TemporalProfTraces[RandomIndex] = std::move(Trace);
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}
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++TemporalProfTraceStreamSize;
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}
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void InstrProfWriter::addTemporalProfileTraces(
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SmallVectorImpl<TemporalProfTraceTy> &SrcTraces, uint64_t SrcStreamSize) {
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for (auto &Trace : SrcTraces)
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if (Trace.FunctionNameRefs.size() > MaxTemporalProfTraceLength)
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Trace.FunctionNameRefs.resize(MaxTemporalProfTraceLength);
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llvm::erase_if(SrcTraces, [](auto &T) { return T.FunctionNameRefs.empty(); });
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// Assume that the source has the same reservoir size as the destination to
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// avoid needing to record it in the indexed profile format.
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bool IsDestSampled =
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(TemporalProfTraceStreamSize > TemporalProfTraceReservoirSize);
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bool IsSrcSampled = (SrcStreamSize > TemporalProfTraceReservoirSize);
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if (!IsDestSampled && IsSrcSampled) {
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// If one of the traces are sampled, ensure that it belongs to Dest.
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std::swap(TemporalProfTraces, SrcTraces);
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std::swap(TemporalProfTraceStreamSize, SrcStreamSize);
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std::swap(IsDestSampled, IsSrcSampled);
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}
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if (!IsSrcSampled) {
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// If the source stream is not sampled, we add each source trace normally.
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for (auto &Trace : SrcTraces)
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addTemporalProfileTrace(std::move(Trace));
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return;
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}
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// Otherwise, we find the traces that would have been removed if we added
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// the whole source stream.
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SmallSetVector<uint64_t, 8> IndicesToReplace;
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for (uint64_t I = 0; I < SrcStreamSize; I++) {
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std::uniform_int_distribution<uint64_t> Distribution(
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0, TemporalProfTraceStreamSize);
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uint64_t RandomIndex = Distribution(RNG);
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if (RandomIndex < TemporalProfTraces.size())
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IndicesToReplace.insert(RandomIndex);
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++TemporalProfTraceStreamSize;
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}
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// Then we insert a random sample of the source traces.
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llvm::shuffle(SrcTraces.begin(), SrcTraces.end(), RNG);
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for (const auto &[Index, Trace] : llvm::zip(IndicesToReplace, SrcTraces))
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TemporalProfTraces[Index] = std::move(Trace);
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}
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void InstrProfWriter::mergeRecordsFromWriter(InstrProfWriter &&IPW,
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function_ref<void(Error)> Warn) {
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for (auto &I : IPW.FunctionData)
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for (auto &Func : I.getValue())
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addRecord(I.getKey(), Func.first, std::move(Func.second), 1, Warn);
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BinaryIds.reserve(BinaryIds.size() + IPW.BinaryIds.size());
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for (auto &I : IPW.BinaryIds)
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addBinaryIds(I);
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addTemporalProfileTraces(IPW.TemporalProfTraces,
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IPW.TemporalProfTraceStreamSize);
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MemProfData.Frames.reserve(IPW.MemProfData.Frames.size());
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for (auto &[FrameId, Frame] : IPW.MemProfData.Frames) {
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// If we weren't able to add the frame mappings then it doesn't make sense
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// to try to merge the records from this profile.
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if (!addMemProfFrame(FrameId, Frame, Warn))
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return;
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}
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MemProfData.CallStacks.reserve(IPW.MemProfData.CallStacks.size());
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for (auto &[CSId, CallStack] : IPW.MemProfData.CallStacks) {
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if (!addMemProfCallStack(CSId, CallStack, Warn))
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return;
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}
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MemProfData.Records.reserve(IPW.MemProfData.Records.size());
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for (auto &[GUID, Record] : IPW.MemProfData.Records) {
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addMemProfRecord(GUID, Record);
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}
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}
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bool InstrProfWriter::shouldEncodeData(const ProfilingData &PD) {
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if (!Sparse)
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return true;
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for (const auto &Func : PD) {
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const InstrProfRecord &IPR = Func.second;
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if (llvm::any_of(IPR.Counts, [](uint64_t Count) { return Count > 0; }))
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return true;
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if (llvm::any_of(IPR.BitmapBytes, [](uint8_t Byte) { return Byte > 0; }))
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return true;
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}
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return false;
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}
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static void setSummary(IndexedInstrProf::Summary *TheSummary,
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ProfileSummary &PS) {
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using namespace IndexedInstrProf;
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const std::vector<ProfileSummaryEntry> &Res = PS.getDetailedSummary();
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TheSummary->NumSummaryFields = Summary::NumKinds;
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TheSummary->NumCutoffEntries = Res.size();
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TheSummary->set(Summary::MaxFunctionCount, PS.getMaxFunctionCount());
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TheSummary->set(Summary::MaxBlockCount, PS.getMaxCount());
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TheSummary->set(Summary::MaxInternalBlockCount, PS.getMaxInternalCount());
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TheSummary->set(Summary::TotalBlockCount, PS.getTotalCount());
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TheSummary->set(Summary::TotalNumBlocks, PS.getNumCounts());
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TheSummary->set(Summary::TotalNumFunctions, PS.getNumFunctions());
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for (unsigned I = 0; I < Res.size(); I++)
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TheSummary->setEntry(I, Res[I]);
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}
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uint64_t InstrProfWriter::writeHeader(const IndexedInstrProf::Header &Header,
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const bool WritePrevVersion,
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ProfOStream &OS) {
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// Only write out the first four fields.
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for (int I = 0; I < 4; I++)
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OS.write(reinterpret_cast<const uint64_t *>(&Header)[I]);
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// Remember the offset of the remaining fields to allow back patching later.
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auto BackPatchStartOffset = OS.tell();
|
|
|
|
// Reserve the space for back patching later.
|
|
OS.write(0); // HashOffset
|
|
OS.write(0); // MemProfOffset
|
|
OS.write(0); // BinaryIdOffset
|
|
OS.write(0); // TemporalProfTracesOffset
|
|
if (!WritePrevVersion)
|
|
OS.write(0); // VTableNamesOffset
|
|
|
|
return BackPatchStartOffset;
|
|
}
|
|
|
|
Error InstrProfWriter::writeBinaryIds(ProfOStream &OS) {
|
|
// BinaryIdSection has two parts:
|
|
// 1. uint64_t BinaryIdsSectionSize
|
|
// 2. list of binary ids that consist of:
|
|
// a. uint64_t BinaryIdLength
|
|
// b. uint8_t BinaryIdData
|
|
// c. uint8_t Padding (if necessary)
|
|
// Calculate size of binary section.
|
|
uint64_t BinaryIdsSectionSize = 0;
|
|
|
|
// Remove duplicate binary ids.
|
|
llvm::sort(BinaryIds);
|
|
BinaryIds.erase(llvm::unique(BinaryIds), BinaryIds.end());
|
|
|
|
for (const auto &BI : BinaryIds) {
|
|
// Increment by binary id length data type size.
|
|
BinaryIdsSectionSize += sizeof(uint64_t);
|
|
// Increment by binary id data length, aligned to 8 bytes.
|
|
BinaryIdsSectionSize += alignToPowerOf2(BI.size(), sizeof(uint64_t));
|
|
}
|
|
// Write binary ids section size.
|
|
OS.write(BinaryIdsSectionSize);
|
|
|
|
for (const auto &BI : BinaryIds) {
|
|
uint64_t BILen = BI.size();
|
|
// Write binary id length.
|
|
OS.write(BILen);
|
|
// Write binary id data.
|
|
for (unsigned K = 0; K < BILen; K++)
|
|
OS.writeByte(BI[K]);
|
|
// Write padding if necessary.
|
|
uint64_t PaddingSize = alignToPowerOf2(BILen, sizeof(uint64_t)) - BILen;
|
|
for (unsigned K = 0; K < PaddingSize; K++)
|
|
OS.writeByte(0);
|
|
}
|
|
|
|
return Error::success();
|
|
}
|
|
|
|
Error InstrProfWriter::writeVTableNames(ProfOStream &OS) {
|
|
std::vector<std::string> VTableNameStrs;
|
|
for (StringRef VTableName : VTableNames.keys())
|
|
VTableNameStrs.push_back(VTableName.str());
|
|
|
|
std::string CompressedVTableNames;
|
|
if (!VTableNameStrs.empty())
|
|
if (Error E = collectGlobalObjectNameStrings(
|
|
VTableNameStrs, compression::zlib::isAvailable(),
|
|
CompressedVTableNames))
|
|
return E;
|
|
|
|
const uint64_t CompressedStringLen = CompressedVTableNames.length();
|
|
|
|
// Record the length of compressed string.
|
|
OS.write(CompressedStringLen);
|
|
|
|
// Write the chars in compressed strings.
|
|
for (auto &c : CompressedVTableNames)
|
|
OS.writeByte(static_cast<uint8_t>(c));
|
|
|
|
// Pad up to a multiple of 8.
|
|
// InstrProfReader could read bytes according to 'CompressedStringLen'.
|
|
const uint64_t PaddedLength = alignTo(CompressedStringLen, 8);
|
|
|
|
for (uint64_t K = CompressedStringLen; K < PaddedLength; K++)
|
|
OS.writeByte(0);
|
|
|
|
return Error::success();
|
|
}
|
|
|
|
Error InstrProfWriter::writeImpl(ProfOStream &OS) {
|
|
using namespace IndexedInstrProf;
|
|
using namespace support;
|
|
|
|
OnDiskChainedHashTableGenerator<InstrProfRecordWriterTrait> Generator;
|
|
|
|
InstrProfSummaryBuilder ISB(ProfileSummaryBuilder::DefaultCutoffs);
|
|
InfoObj->SummaryBuilder = &ISB;
|
|
InstrProfSummaryBuilder CSISB(ProfileSummaryBuilder::DefaultCutoffs);
|
|
InfoObj->CSSummaryBuilder = &CSISB;
|
|
|
|
// Populate the hash table generator.
|
|
SmallVector<std::pair<StringRef, const ProfilingData *>> OrderedData;
|
|
for (const auto &I : FunctionData)
|
|
if (shouldEncodeData(I.getValue()))
|
|
OrderedData.emplace_back((I.getKey()), &I.getValue());
|
|
llvm::sort(OrderedData, less_first());
|
|
for (const auto &I : OrderedData)
|
|
Generator.insert(I.first, I.second);
|
|
|
|
// Write the header.
|
|
IndexedInstrProf::Header Header;
|
|
Header.Version = WritePrevVersion
|
|
? IndexedInstrProf::ProfVersion::Version11
|
|
: IndexedInstrProf::ProfVersion::CurrentVersion;
|
|
// The WritePrevVersion handling will either need to be removed or updated
|
|
// if the version is advanced beyond 12.
|
|
static_assert(IndexedInstrProf::ProfVersion::CurrentVersion ==
|
|
IndexedInstrProf::ProfVersion::Version12);
|
|
if (static_cast<bool>(ProfileKind & InstrProfKind::IRInstrumentation))
|
|
Header.Version |= VARIANT_MASK_IR_PROF;
|
|
if (static_cast<bool>(ProfileKind & InstrProfKind::ContextSensitive))
|
|
Header.Version |= VARIANT_MASK_CSIR_PROF;
|
|
if (static_cast<bool>(ProfileKind &
|
|
InstrProfKind::FunctionEntryInstrumentation))
|
|
Header.Version |= VARIANT_MASK_INSTR_ENTRY;
|
|
if (static_cast<bool>(ProfileKind &
|
|
InstrProfKind::LoopEntriesInstrumentation))
|
|
Header.Version |= VARIANT_MASK_INSTR_LOOP_ENTRIES;
|
|
if (static_cast<bool>(ProfileKind & InstrProfKind::SingleByteCoverage))
|
|
Header.Version |= VARIANT_MASK_BYTE_COVERAGE;
|
|
if (static_cast<bool>(ProfileKind & InstrProfKind::FunctionEntryOnly))
|
|
Header.Version |= VARIANT_MASK_FUNCTION_ENTRY_ONLY;
|
|
if (static_cast<bool>(ProfileKind & InstrProfKind::MemProf))
|
|
Header.Version |= VARIANT_MASK_MEMPROF;
|
|
if (static_cast<bool>(ProfileKind & InstrProfKind::TemporalProfile))
|
|
Header.Version |= VARIANT_MASK_TEMPORAL_PROF;
|
|
|
|
const uint64_t BackPatchStartOffset =
|
|
writeHeader(Header, WritePrevVersion, OS);
|
|
|
|
// Reserve space to write profile summary data.
|
|
uint32_t NumEntries = ProfileSummaryBuilder::DefaultCutoffs.size();
|
|
uint32_t SummarySize = Summary::getSize(Summary::NumKinds, NumEntries);
|
|
// Remember the summary offset.
|
|
uint64_t SummaryOffset = OS.tell();
|
|
for (unsigned I = 0; I < SummarySize / sizeof(uint64_t); I++)
|
|
OS.write(0);
|
|
uint64_t CSSummaryOffset = 0;
|
|
uint64_t CSSummarySize = 0;
|
|
if (static_cast<bool>(ProfileKind & InstrProfKind::ContextSensitive)) {
|
|
CSSummaryOffset = OS.tell();
|
|
CSSummarySize = SummarySize / sizeof(uint64_t);
|
|
for (unsigned I = 0; I < CSSummarySize; I++)
|
|
OS.write(0);
|
|
}
|
|
|
|
// Write the hash table.
|
|
uint64_t HashTableStart = Generator.Emit(OS.OS, *InfoObj);
|
|
|
|
// Write the MemProf profile data if we have it.
|
|
uint64_t MemProfSectionStart = 0;
|
|
if (static_cast<bool>(ProfileKind & InstrProfKind::MemProf)) {
|
|
MemProfSectionStart = OS.tell();
|
|
|
|
if (auto E = writeMemProf(
|
|
OS, MemProfData, MemProfVersionRequested, MemProfFullSchema,
|
|
std::move(DataAccessProfileData), MemProfSumBuilder.getSummary()))
|
|
return E;
|
|
}
|
|
|
|
uint64_t BinaryIdSectionStart = OS.tell();
|
|
if (auto E = writeBinaryIds(OS))
|
|
return E;
|
|
|
|
uint64_t VTableNamesSectionStart = OS.tell();
|
|
|
|
if (!WritePrevVersion)
|
|
if (Error E = writeVTableNames(OS))
|
|
return E;
|
|
|
|
uint64_t TemporalProfTracesSectionStart = 0;
|
|
if (static_cast<bool>(ProfileKind & InstrProfKind::TemporalProfile)) {
|
|
TemporalProfTracesSectionStart = OS.tell();
|
|
OS.write(TemporalProfTraces.size());
|
|
OS.write(TemporalProfTraceStreamSize);
|
|
for (auto &Trace : TemporalProfTraces) {
|
|
OS.write(Trace.Weight);
|
|
OS.write(Trace.FunctionNameRefs.size());
|
|
for (auto &NameRef : Trace.FunctionNameRefs)
|
|
OS.write(NameRef);
|
|
}
|
|
}
|
|
|
|
// Allocate space for data to be serialized out.
|
|
std::unique_ptr<IndexedInstrProf::Summary> TheSummary =
|
|
IndexedInstrProf::allocSummary(SummarySize);
|
|
// Compute the Summary and copy the data to the data
|
|
// structure to be serialized out (to disk or buffer).
|
|
std::unique_ptr<ProfileSummary> PS = ISB.getSummary();
|
|
setSummary(TheSummary.get(), *PS);
|
|
InfoObj->SummaryBuilder = nullptr;
|
|
|
|
// For Context Sensitive summary.
|
|
std::unique_ptr<IndexedInstrProf::Summary> TheCSSummary = nullptr;
|
|
if (static_cast<bool>(ProfileKind & InstrProfKind::ContextSensitive)) {
|
|
TheCSSummary = IndexedInstrProf::allocSummary(SummarySize);
|
|
std::unique_ptr<ProfileSummary> CSPS = CSISB.getSummary();
|
|
setSummary(TheCSSummary.get(), *CSPS);
|
|
}
|
|
InfoObj->CSSummaryBuilder = nullptr;
|
|
|
|
SmallVector<uint64_t, 8> HeaderOffsets = {HashTableStart, MemProfSectionStart,
|
|
BinaryIdSectionStart,
|
|
TemporalProfTracesSectionStart};
|
|
if (!WritePrevVersion)
|
|
HeaderOffsets.push_back(VTableNamesSectionStart);
|
|
|
|
PatchItem PatchItems[] = {
|
|
// Patch the Header fields
|
|
{BackPatchStartOffset, HeaderOffsets},
|
|
// Patch the summary data.
|
|
{SummaryOffset,
|
|
ArrayRef<uint64_t>(reinterpret_cast<uint64_t *>(TheSummary.get()),
|
|
SummarySize / sizeof(uint64_t))},
|
|
{CSSummaryOffset,
|
|
ArrayRef<uint64_t>(reinterpret_cast<uint64_t *>(TheCSSummary.get()),
|
|
CSSummarySize)}};
|
|
|
|
OS.patch(PatchItems);
|
|
|
|
for (const auto &I : FunctionData)
|
|
for (const auto &F : I.getValue())
|
|
if (Error E = validateRecord(F.second))
|
|
return E;
|
|
|
|
return Error::success();
|
|
}
|
|
|
|
Error InstrProfWriter::write(raw_fd_ostream &OS) {
|
|
// Write the hash table.
|
|
ProfOStream POS(OS);
|
|
return writeImpl(POS);
|
|
}
|
|
|
|
Error InstrProfWriter::write(raw_string_ostream &OS) {
|
|
ProfOStream POS(OS);
|
|
return writeImpl(POS);
|
|
}
|
|
|
|
std::unique_ptr<MemoryBuffer> InstrProfWriter::writeBuffer() {
|
|
std::string Data;
|
|
raw_string_ostream OS(Data);
|
|
// Write the hash table.
|
|
if (Error E = write(OS))
|
|
return nullptr;
|
|
// Return this in an aligned memory buffer.
|
|
return MemoryBuffer::getMemBufferCopy(Data);
|
|
}
|
|
|
|
static const char *ValueProfKindStr[] = {
|
|
#define VALUE_PROF_KIND(Enumerator, Value, Descr) #Enumerator,
|
|
#include "llvm/ProfileData/InstrProfData.inc"
|
|
};
|
|
|
|
Error InstrProfWriter::validateRecord(const InstrProfRecord &Func) {
|
|
for (uint32_t VK = 0; VK <= IPVK_Last; VK++) {
|
|
if (VK == IPVK_IndirectCallTarget || VK == IPVK_VTableTarget)
|
|
continue;
|
|
uint32_t NS = Func.getNumValueSites(VK);
|
|
for (uint32_t S = 0; S < NS; S++) {
|
|
DenseSet<uint64_t> SeenValues;
|
|
for (const auto &V : Func.getValueArrayForSite(VK, S))
|
|
if (!SeenValues.insert(V.Value).second)
|
|
return make_error<InstrProfError>(instrprof_error::invalid_prof);
|
|
}
|
|
}
|
|
|
|
return Error::success();
|
|
}
|
|
|
|
void InstrProfWriter::writeRecordInText(StringRef Name, uint64_t Hash,
|
|
const InstrProfRecord &Func,
|
|
InstrProfSymtab &Symtab,
|
|
raw_fd_ostream &OS) {
|
|
OS << Name << "\n";
|
|
OS << "# Func Hash:\n" << Hash << "\n";
|
|
OS << "# Num Counters:\n" << Func.Counts.size() << "\n";
|
|
OS << "# Counter Values:\n";
|
|
for (uint64_t Count : Func.Counts)
|
|
OS << Count << "\n";
|
|
|
|
if (Func.BitmapBytes.size() > 0) {
|
|
OS << "# Num Bitmap Bytes:\n$" << Func.BitmapBytes.size() << "\n";
|
|
OS << "# Bitmap Byte Values:\n";
|
|
for (uint8_t Byte : Func.BitmapBytes) {
|
|
OS << "0x";
|
|
OS.write_hex(Byte);
|
|
OS << "\n";
|
|
}
|
|
OS << "\n";
|
|
}
|
|
|
|
uint32_t NumValueKinds = Func.getNumValueKinds();
|
|
if (!NumValueKinds) {
|
|
OS << "\n";
|
|
return;
|
|
}
|
|
|
|
OS << "# Num Value Kinds:\n" << Func.getNumValueKinds() << "\n";
|
|
for (uint32_t VK = 0; VK < IPVK_Last + 1; VK++) {
|
|
uint32_t NS = Func.getNumValueSites(VK);
|
|
if (!NS)
|
|
continue;
|
|
OS << "# ValueKind = " << ValueProfKindStr[VK] << ":\n" << VK << "\n";
|
|
OS << "# NumValueSites:\n" << NS << "\n";
|
|
for (uint32_t S = 0; S < NS; S++) {
|
|
auto VD = Func.getValueArrayForSite(VK, S);
|
|
OS << VD.size() << "\n";
|
|
for (const auto &V : VD) {
|
|
if (VK == IPVK_IndirectCallTarget || VK == IPVK_VTableTarget)
|
|
OS << Symtab.getFuncOrVarNameIfDefined(V.Value) << ":" << V.Count
|
|
<< "\n";
|
|
else
|
|
OS << V.Value << ":" << V.Count << "\n";
|
|
}
|
|
}
|
|
}
|
|
|
|
OS << "\n";
|
|
}
|
|
|
|
Error InstrProfWriter::writeText(raw_fd_ostream &OS) {
|
|
// Check CS first since it implies an IR level profile.
|
|
if (static_cast<bool>(ProfileKind & InstrProfKind::ContextSensitive))
|
|
OS << "# CSIR level Instrumentation Flag\n:csir\n";
|
|
else if (static_cast<bool>(ProfileKind & InstrProfKind::IRInstrumentation))
|
|
OS << "# IR level Instrumentation Flag\n:ir\n";
|
|
|
|
if (static_cast<bool>(ProfileKind &
|
|
InstrProfKind::FunctionEntryInstrumentation))
|
|
OS << "# Always instrument the function entry block\n:entry_first\n";
|
|
if (static_cast<bool>(ProfileKind &
|
|
InstrProfKind::LoopEntriesInstrumentation))
|
|
OS << "# Always instrument the loop entry "
|
|
"blocks\n:instrument_loop_entries\n";
|
|
if (static_cast<bool>(ProfileKind & InstrProfKind::SingleByteCoverage))
|
|
OS << "# Instrument block coverage\n:single_byte_coverage\n";
|
|
InstrProfSymtab Symtab;
|
|
|
|
using FuncPair = detail::DenseMapPair<uint64_t, InstrProfRecord>;
|
|
using RecordType = std::pair<StringRef, FuncPair>;
|
|
SmallVector<RecordType, 4> OrderedFuncData;
|
|
|
|
for (const auto &I : FunctionData) {
|
|
if (shouldEncodeData(I.getValue())) {
|
|
if (Error E = Symtab.addFuncName(I.getKey()))
|
|
return E;
|
|
for (const auto &Func : I.getValue())
|
|
OrderedFuncData.push_back(std::make_pair(I.getKey(), Func));
|
|
}
|
|
}
|
|
|
|
for (const auto &VTableName : VTableNames)
|
|
if (Error E = Symtab.addVTableName(VTableName.getKey()))
|
|
return E;
|
|
|
|
if (static_cast<bool>(ProfileKind & InstrProfKind::TemporalProfile))
|
|
writeTextTemporalProfTraceData(OS, Symtab);
|
|
|
|
llvm::sort(OrderedFuncData, [](const RecordType &A, const RecordType &B) {
|
|
return std::tie(A.first, A.second.first) <
|
|
std::tie(B.first, B.second.first);
|
|
});
|
|
|
|
for (const auto &record : OrderedFuncData) {
|
|
const StringRef &Name = record.first;
|
|
const FuncPair &Func = record.second;
|
|
writeRecordInText(Name, Func.first, Func.second, Symtab, OS);
|
|
}
|
|
|
|
for (const auto &record : OrderedFuncData) {
|
|
const FuncPair &Func = record.second;
|
|
if (Error E = validateRecord(Func.second))
|
|
return E;
|
|
}
|
|
|
|
return Error::success();
|
|
}
|
|
|
|
void InstrProfWriter::writeTextTemporalProfTraceData(raw_fd_ostream &OS,
|
|
InstrProfSymtab &Symtab) {
|
|
OS << ":temporal_prof_traces\n";
|
|
OS << "# Num Temporal Profile Traces:\n" << TemporalProfTraces.size() << "\n";
|
|
OS << "# Temporal Profile Trace Stream Size:\n"
|
|
<< TemporalProfTraceStreamSize << "\n";
|
|
for (auto &Trace : TemporalProfTraces) {
|
|
OS << "# Weight:\n" << Trace.Weight << "\n";
|
|
for (auto &NameRef : Trace.FunctionNameRefs)
|
|
OS << Symtab.getFuncOrVarName(NameRef) << ",";
|
|
OS << "\n";
|
|
}
|
|
OS << "\n";
|
|
}
|