33#define DEBUG_TYPE "ir2vec"
36 "Number of lookups to entities not present in the vocabulary");
48 cl::desc(
"Weight for opcode embeddings"),
51 cl::desc(
"Weight for type embeddings"),
54 cl::desc(
"Weight for argument embeddings"),
59 "Generate symbolic embeddings"),
61 "Generate flow-aware embeddings")),
76 std::vector<double> TempOut;
88 assert(this->
size() == RHS.
size() &&
"Vectors must have the same dimension");
89 std::transform(this->
begin(), this->
end(), RHS.
begin(), this->begin(),
101 assert(this->
size() == RHS.
size() &&
"Vectors must have the same dimension");
102 std::transform(this->
begin(), this->
end(), RHS.
begin(), this->begin(),
103 std::minus<double>());
115 [Factor](
double Elem) {
return Elem * Factor; });
126 assert(this->
size() == Src.
size() &&
"Vectors must have the same dimension");
127 for (
size_t Itr = 0; Itr < this->
size(); ++Itr)
128 (*
this)[Itr] += Src[Itr] * Factor;
133 double Tolerance)
const {
134 assert(this->
size() == RHS.
size() &&
"Vectors must have the same dimension");
135 for (
size_t Itr = 0; Itr < this->
size(); ++Itr)
136 if (std::abs((*
this)[Itr] - RHS[Itr]) > Tolerance) {
137 LLVM_DEBUG(
errs() <<
"Embedding mismatch at index " << Itr <<
": "
138 << (*
this)[Itr] <<
" vs " << RHS[Itr]
139 <<
"; Tolerance: " << Tolerance <<
"\n");
147 for (
const auto &Elem : Data)
148 OS <<
" " <<
format(
"%.2f", Elem) <<
" ";
160 return std::make_unique<SymbolicEmbedder>(
F,
Vocab);
162 return std::make_unique<FlowAwareEmbedder>(
F,
Vocab);
170 if (
F.isDeclaration())
192 for (
const auto &
Op :
I.operands())
195 Vocab[
I.getOpcode()] +
Vocab[
I.getType()->getTypeID()] + ArgEmb;
197 InstVector +=
Vocab[IC->getPredicate()];
203 auto It = InstVecMap.
find(&
I);
204 if (It != InstVecMap.
end())
210 for (
const auto &
Op :
I.operands()) {
213 auto DefIt = InstVecMap.
find(DefInst);
225 if (DefIt != InstVecMap.
end())
226 ArgEmb += DefIt->second;
233 LLVM_DEBUG(
errs() <<
"Using embedding from vocabulary for operand: "
241 Vocab[
I.getOpcode()] +
Vocab[
I.getType()->getTypeID()] + ArgEmb;
243 InstVector +=
Vocab[IC->getPredicate()];
244 InstVecMap[&
I] = InstVector;
253 : Sections(
std::
move(SectionData)), TotalSize([&] {
254 assert(!Sections.empty() &&
"Vocabulary has no sections");
257 for (
const auto &Section : Sections) {
258 assert(!Section.empty() &&
"Vocabulary section is empty");
259 Size += Section.size();
266 assert(!Sections.empty() &&
"Vocabulary has no sections");
267 assert(!Sections[0].empty() &&
"First section of vocabulary is empty");
268 unsigned ExpectedDim =
static_cast<unsigned>(Sections[0][0].size());
272 [[maybe_unused]]
auto allSameDim =
273 [ExpectedDim](
const std::vector<Embedding> &Section) {
274 return std::all_of(Section.begin(), Section.end(),
276 return Emb.size() == ExpectedDim;
279 assert(std::all_of(Sections.begin(), Sections.end(), allSameDim) &&
280 "All embeddings must have the same dimension");
286 assert(SectionId < Storage->Sections.size() &&
"Invalid section ID");
287 assert(LocalIndex < Storage->Sections[SectionId].
size() &&
288 "Local index out of range");
289 return Storage->Sections[SectionId][LocalIndex];
296 LocalIndex >= Storage->Sections[SectionId].size()) {
297 assert(LocalIndex == Storage->Sections[SectionId].size() &&
298 "Local index should be at the end of the current section");
307 return Storage ==
Other.Storage && SectionId ==
Other.SectionId &&
308 LocalIndex ==
Other.LocalIndex;
313 return !(*
this ==
Other);
318 VocabMap &TargetVocab,
unsigned &Dim) {
323 "JSON root is not an object");
328 "Missing '" + std::string(
Key) +
329 "' section in vocabulary file");
332 "Unable to parse '" + std::string(
Key) +
333 "' section from vocabulary");
335 Dim = TargetVocab.begin()->second.size();
338 "Dimension of '" + std::string(
Key) +
339 "' section of the vocabulary is zero");
341 if (!std::all_of(TargetVocab.begin(), TargetVocab.end(),
342 [Dim](
const std::pair<StringRef, Embedding> &Entry) {
343 return Entry.second.size() == Dim;
347 "All vectors in the '" + std::string(
Key) +
348 "' section of the vocabulary are not of the same dimension");
358 assert(Opcode >= 1 && Opcode <= MaxOpcodes &&
"Invalid opcode");
359#define HANDLE_INST(NUM, OPCODE, CLASS) \
360 if (Opcode == NUM) { \
363#include "llvm/IR/Instruction.def"
365 return "UnknownOpcode";
390 if (LocalIndex < fcmpRange)
395 LocalIndex - fcmpRange);
401 PredNameBuffer =
"FCMP_";
403 PredNameBuffer =
"ICMP_";
405 return PredNameBuffer;
409 assert(Pos < NumCanonicalEntries &&
"Position out of bounds in vocabulary");
411 if (Pos < MaxOpcodes)
414 if (Pos < OperandBaseOffset)
415 return getVocabKeyForCanonicalTypeID(
418 if (Pos < PredicateBaseOffset)
420 static_cast<OperandKind>(Pos - OperandBaseOffset));
427 ModuleAnalysisManager::Invalidator &Inv)
const {
429 return !(PAC.preservedWhenStateless());
433 float DummyVal = 0.1f;
437 std::vector<std::vector<Embedding>> Sections;
441 std::vector<Embedding> OpcodeSec;
442 OpcodeSec.reserve(MaxOpcodes);
443 for (
unsigned I = 0;
I < MaxOpcodes; ++
I) {
444 OpcodeSec.emplace_back(Dim, DummyVal);
447 Sections.push_back(std::move(OpcodeSec));
450 std::vector<Embedding> TypeSec;
453 TypeSec.emplace_back(Dim, DummyVal);
456 Sections.push_back(std::move(TypeSec));
459 std::vector<Embedding> OperandSec;
462 OperandSec.emplace_back(Dim, DummyVal);
465 Sections.push_back(std::move(OperandSec));
468 std::vector<Embedding> PredicateSec;
471 PredicateSec.emplace_back(Dim, DummyVal);
474 Sections.push_back(std::move(PredicateSec));
492 auto Content = BufOrError.get()->getBuffer();
495 if (!ParsedVocabValue)
498 unsigned OpcodeDim = 0, TypeDim = 0, ArgDim = 0;
500 OpcVocab, OpcodeDim))
511 if (!(OpcodeDim == TypeDim && TypeDim == ArgDim))
513 "Vocabulary sections have different dimensions");
518void IR2VecVocabAnalysis::generateVocabStorage(
VocabMap &OpcVocab,
525 auto handleMissingEntity = [](
const std::string &Val) {
527 <<
" is not in vocabulary, using zero vector; This "
528 "would result in an error in future.\n");
532 unsigned Dim = OpcVocab.begin()->second.size();
533 assert(Dim > 0 &&
"Vocabulary dimension must be greater than zero");
536 std::vector<Embedding> NumericOpcodeEmbeddings(Vocabulary::MaxOpcodes,
538 for (
unsigned Opcode :
seq(0u, Vocabulary::MaxOpcodes)) {
540 auto It = OpcVocab.find(VocabKey.
str());
541 if (It != OpcVocab.end())
542 NumericOpcodeEmbeddings[Opcode] = It->second;
544 handleMissingEntity(VocabKey.
str());
551 StringRef VocabKey = Vocabulary::getVocabKeyForCanonicalTypeID(
553 if (
auto It = TypeVocab.find(VocabKey.
str()); It != TypeVocab.end()) {
554 NumericTypeEmbeddings[CTypeID] = It->second;
557 handleMissingEntity(VocabKey.
str());
566 auto It = ArgVocab.find(VocabKey.
str());
567 if (It != ArgVocab.end()) {
568 NumericArgEmbeddings[OpKind] = It->second;
571 handleMissingEntity(VocabKey.
str());
581 auto It = ArgVocab.find(VocabKey.
str());
582 if (It != ArgVocab.end()) {
583 NumericPredEmbeddings[PK] = It->second;
586 handleMissingEntity(VocabKey.
str());
591 std::vector<std::vector<Embedding>> Sections(4);
592 Sections[
static_cast<unsigned>(Vocabulary::Section::Opcodes)] =
593 std::move(NumericOpcodeEmbeddings);
594 Sections[
static_cast<unsigned>(Vocabulary::Section::CanonicalTypes)] =
595 std::move(NumericTypeEmbeddings);
596 Sections[
static_cast<unsigned>(Vocabulary::Section::Operands)] =
597 std::move(NumericArgEmbeddings);
598 Sections[
static_cast<unsigned>(Vocabulary::Section::Predicates)] =
599 std::move(NumericPredEmbeddings);
602 Vocab.emplace(std::move(Sections));
605void IR2VecVocabAnalysis::emitError(
Error Err, LLVMContext &Ctx) {
613 auto Ctx = &M.getContext();
615 if (Vocab.has_value())
621 Ctx->emitError(
"IR2Vec vocabulary file path not specified; You may need to "
622 "set it using --ir2vec-vocab-path");
626 VocabMap OpcVocab, TypeVocab, ArgVocab;
627 if (
auto Err = readVocabulary(OpcVocab, TypeVocab, ArgVocab)) {
628 emitError(std::move(Err), *Ctx);
633 auto scaleVocabSection = [](VocabMap &Vocab,
double Weight) {
634 for (
auto &Entry : Vocab)
635 Entry.second *= Weight;
642 generateVocabStorage(OpcVocab, TypeVocab, ArgVocab);
659 OS <<
"Error creating IR2Vec embeddings \n";
663 OS <<
"IR2Vec embeddings for function " <<
F.getName() <<
":\n";
664 OS <<
"Function vector: ";
665 Emb->getFunctionVector().print(OS);
667 OS <<
"Basic block vectors:\n";
669 OS <<
"Basic block: " << BB.getName() <<
":\n";
670 Emb->getBBVector(BB).print(OS);
673 OS <<
"Instruction vectors:\n";
676 OS <<
"Instruction: ";
678 Emb->getInstVector(
I).print(OS);
688 assert(IR2VecVocabulary.isValid() &&
"IR2Vec Vocabulary is invalid");
692 for (
const auto &Entry : IR2VecVocabulary) {
693 OS <<
"Key: " << IR2VecVocabulary.getStringKey(Pos++) <<
": ";
assert(UImm &&(UImm !=~static_cast< T >(0)) &&"Invalid immediate!")
#define clEnumValN(ENUMVAL, FLAGNAME, DESC)
This file builds on the ADT/GraphTraits.h file to build generic depth first graph iterator.
This file defines the IR2Vec vocabulary analysis(IR2VecVocabAnalysis), the core ir2vec::Embedder inte...
This file provides various utilities for inspecting and working with the control flow graph in LLVM I...
Module.h This file contains the declarations for the Module class.
This header defines various interfaces for pass management in LLVM.
ModuleAnalysisManager MAM
Provides some synthesis utilities to produce sequences of values.
This file defines the SmallVector class.
This file defines the 'Statistic' class, which is designed to be an easy way to expose various metric...
#define STATISTIC(VARNAME, DESC)
LLVM Basic Block Representation.
LLVM_ABI iterator_range< filter_iterator< BasicBlock::const_iterator, std::function< bool(const Instruction &)> > > instructionsWithoutDebug(bool SkipPseudoOp=true) const
Return a const iterator range over the instructions in the block, skipping any debug instructions.
Predicate
This enumeration lists the possible predicates for CmpInst subclasses.
static LLVM_ABI StringRef getPredicateName(Predicate P)
iterator find(const_arg_type_t< KeyT > Val)
virtual std::string message() const
Return the error message as a string.
Lightweight error class with error context and mandatory checking.
static ErrorSuccess success()
Create a success value.
Tagged union holding either a T or a Error.
Error takeError()
Take ownership of the stored error.
LLVM_ABI PreservedAnalyses run(Module &M, ModuleAnalysisManager &MAM)
This analysis provides the vocabulary for IR2Vec.
ir2vec::Vocabulary Result
LLVM_ABI Result run(Module &M, ModuleAnalysisManager &MAM)
static LLVM_ABI AnalysisKey Key
LLVM_ABI PreservedAnalyses run(Module &M, ModuleAnalysisManager &MAM)
LLVM_ABI void emitError(const Instruction *I, const Twine &ErrorStr)
emitError - Emit an error message to the currently installed error handler with optional location inf...
static ErrorOr< std::unique_ptr< MemoryBuffer > > getFileOrSTDIN(const Twine &Filename, bool IsText=false, bool RequiresNullTerminator=true, std::optional< Align > Alignment=std::nullopt)
Open the specified file as a MemoryBuffer, or open stdin if the Filename is "-".
A Module instance is used to store all the information related to an LLVM module.
A set of analyses that are preserved following a run of a transformation pass.
static PreservedAnalyses all()
Construct a special preserved set that preserves all passes.
PreservedAnalysisChecker getChecker() const
Build a checker for this PreservedAnalyses and the specified analysis type.
SmallString - A SmallString is just a SmallVector with methods and accessors that make it work better...
StringRef - Represent a constant reference to a string, i.e.
std::string str() const
str - Get the contents as an std::string.
LLVM Value Representation.
static LLVM_ABI std::unique_ptr< Embedder > create(IR2VecKind Mode, const Function &F, const Vocabulary &Vocab)
Factory method to create an Embedder object.
const unsigned Dimension
Dimension of the vector representation; captured from the input vocabulary.
Embedding computeEmbeddings() const
Function to compute embeddings.
Iterator support for section-based access.
const_iterator(const VocabStorage *Storage, unsigned SectionId, size_t LocalIndex)
LLVM_ABI bool operator!=(const const_iterator &Other) const
LLVM_ABI const_iterator & operator++()
LLVM_ABI const Embedding & operator*() const
LLVM_ABI bool operator==(const const_iterator &Other) const
Generic storage class for section-based vocabularies.
static Error parseVocabSection(StringRef Key, const json::Value &ParsedVocabValue, VocabMap &TargetVocab, unsigned &Dim)
Parse a vocabulary section from JSON and populate the target vocabulary map.
unsigned getNumSections() const
Get number of sections.
VocabStorage()
Default constructor creates empty storage (invalid state)
size_t size() const
Get total number of entries across all sections.
std::map< std::string, Embedding > VocabMap
Class for storing and accessing the IR2Vec vocabulary.
static LLVM_ABI StringRef getVocabKeyForOperandKind(OperandKind Kind)
Function to get vocabulary key for a given OperandKind.
LLVM_ABI bool invalidate(Module &M, const PreservedAnalyses &PA, ModuleAnalysisManager::Invalidator &Inv) const
static LLVM_ABI OperandKind getOperandKind(const Value *Op)
Function to classify an operand into OperandKind.
friend class llvm::IR2VecVocabAnalysis
static LLVM_ABI StringRef getStringKey(unsigned Pos)
Returns the string key for a given index position in the vocabulary.
static constexpr unsigned MaxCanonicalTypeIDs
static constexpr unsigned MaxOperandKinds
OperandKind
Operand kinds supported by IR2Vec Vocabulary.
static LLVM_ABI StringRef getVocabKeyForPredicate(CmpInst::Predicate P)
Function to get vocabulary key for a given predicate.
static LLVM_ABI StringRef getVocabKeyForOpcode(unsigned Opcode)
Function to get vocabulary key for a given Opcode.
LLVM_ABI bool isValid() const
static LLVM_ABI VocabStorage createDummyVocabForTest(unsigned Dim=1)
Create a dummy vocabulary for testing purposes.
static constexpr unsigned MaxPredicateKinds
CanonicalTypeID
Canonical type IDs supported by IR2Vec Vocabulary.
An Object is a JSON object, which maps strings to heterogenous JSON values.
LLVM_ABI Value * get(StringRef K)
The root is the trivial Path to the root value.
A "cursor" marking a position within a Value.
A Value is an JSON value of unknown type.
const json::Object * getAsObject() const
This class implements an extremely fast bulk output stream that can only output to a stream.
ValuesClass values(OptsTy... Options)
Helper to build a ValuesClass by forwarding a variable number of arguments as an initializer list to ...
initializer< Ty > init(const Ty &Val)
static cl::opt< std::string > VocabFile("ir2vec-vocab-path", cl::Optional, cl::desc("Path to the vocabulary file for IR2Vec"), cl::init(""), cl::cat(IR2VecCategory))
LLVM_ABI cl::opt< float > ArgWeight
LLVM_ABI cl::opt< float > OpcWeight
LLVM_ABI cl::opt< float > TypeWeight
LLVM_ABI cl::opt< IR2VecKind > IR2VecEmbeddingKind
llvm::cl::OptionCategory IR2VecCategory
LLVM_ABI llvm::Expected< Value > parse(llvm::StringRef JSON)
Parses the provided JSON source, or returns a ParseError.
bool fromJSON(const Value &E, std::string &Out, Path P)
ir2vec::Embedding Embedding
This is an optimization pass for GlobalISel generic memory operations.
Error createFileError(const Twine &F, Error E)
Concatenate a source file path and/or name with an Error.
decltype(auto) dyn_cast(const From &Val)
dyn_cast<X> - Return the argument parameter cast to the specified type.
void handleAllErrors(Error E, HandlerTs &&... Handlers)
Behaves the same as handleErrors, except that by contract all errors must be handled by the given han...
Error createStringError(std::error_code EC, char const *Fmt, const Ts &... Vals)
Create formatted StringError object.
IR2VecKind
IR2Vec computes two kinds of embeddings: Symbolic and Flow-aware.
bool isa(const From &Val)
isa<X> - Return true if the parameter to the template is an instance of one of the template type argu...
format_object< Ts... > format(const char *Fmt, const Ts &... Vals)
These are helper functions used to produce formatted output.
LLVM_ATTRIBUTE_VISIBILITY_DEFAULT AnalysisKey InnerAnalysisManagerProxy< AnalysisManagerT, IRUnitT, ExtraArgTs... >::Key
LLVM_ABI raw_fd_ostream & errs()
This returns a reference to a raw_ostream for standard error.
DWARFExpression::Operation Op
OutputIt move(R &&Range, OutputIt Out)
Provide wrappers to std::move which take ranges instead of having to pass begin/end explicitly.
iterator_range< df_iterator< T > > depth_first(const T &G)
auto seq(T Begin, T End)
Iterate over an integral type from Begin up to - but not including - End.
AnalysisManager< Module > ModuleAnalysisManager
Convenience typedef for the Module analysis manager.
Implement std::hash so that hash_code can be used in STL containers.
A special type used by analysis passes to provide an address that identifies that particular analysis...
Embedding is a datatype that wraps std::vector<double>.
LLVM_ABI bool approximatelyEquals(const Embedding &RHS, double Tolerance=1e-4) const
Returns true if the embedding is approximately equal to the RHS embedding within the specified tolera...
LLVM_ABI Embedding & operator+=(const Embedding &RHS)
Arithmetic operators.
LLVM_ABI Embedding operator-(const Embedding &RHS) const
LLVM_ABI Embedding & operator-=(const Embedding &RHS)
LLVM_ABI Embedding operator*(double Factor) const
LLVM_ABI Embedding & operator*=(double Factor)
LLVM_ABI Embedding operator+(const Embedding &RHS) const
LLVM_ABI Embedding & scaleAndAdd(const Embedding &Src, float Factor)
Adds Src Embedding scaled by Factor with the called Embedding.
LLVM_ABI void print(raw_ostream &OS) const