forked from OSchip/llvm-project
328 lines
12 KiB
C++
328 lines
12 KiB
C++
//===- ExecutionEngine.cpp - MLIR Execution engine and utils --------------===//
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//
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// Copyright 2019 The MLIR Authors.
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//
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// Licensed under the Apache License, Version 2.0 (the "License");
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// you may not use this file except in compliance with the License.
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// You may obtain a copy of the License at
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//
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// http://www.apache.org/licenses/LICENSE-2.0
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//
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// Unless required by applicable law or agreed to in writing, software
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// distributed under the License is distributed on an "AS IS" BASIS,
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// WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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// See the License for the specific language governing permissions and
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// limitations under the License.
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// =============================================================================
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//
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// This file implements the execution engine for MLIR modules based on LLVM Orc
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// JIT engine.
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//
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//===----------------------------------------------------------------------===//
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#include "mlir/ExecutionEngine/ExecutionEngine.h"
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#include "mlir/IR/Function.h"
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#include "mlir/IR/Module.h"
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#include "mlir/Pass/Pass.h"
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#include "mlir/Pass/PassManager.h"
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#include "mlir/Target/LLVMIR.h"
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#include "mlir/Transforms/Passes.h"
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#include "llvm/ExecutionEngine/Orc/CompileUtils.h"
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#include "llvm/ExecutionEngine/Orc/ExecutionUtils.h"
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#include "llvm/ExecutionEngine/Orc/IRCompileLayer.h"
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#include "llvm/ExecutionEngine/Orc/IRTransformLayer.h"
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#include "llvm/ExecutionEngine/Orc/JITTargetMachineBuilder.h"
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#include "llvm/ExecutionEngine/Orc/RTDyldObjectLinkingLayer.h"
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#include "llvm/ExecutionEngine/SectionMemoryManager.h"
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#include "llvm/IR/IRBuilder.h"
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#include "llvm/Support/Error.h"
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#include "llvm/Support/TargetRegistry.h"
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using namespace mlir;
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using llvm::Error;
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using llvm::Expected;
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namespace {
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// Memory manager for the JIT's objectLayer. Its main goal is to fallback to
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// resolving functions in the current process if they cannot be resolved in the
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// JIT-compiled modules.
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class MemoryManager : public llvm::SectionMemoryManager {
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public:
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MemoryManager(llvm::orc::ExecutionSession &execSession)
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: session(execSession) {}
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// Resolve the named symbol. First, try looking it up in the main library of
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// the execution session. If there is no such symbol, try looking it up in
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// the current process (for example, if it is a standard library function).
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// Return `nullptr` if lookup fails.
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llvm::JITSymbol findSymbol(const std::string &name) override {
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auto mainLibSymbol = session.lookup({&session.getMainJITDylib()}, name);
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if (mainLibSymbol)
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return mainLibSymbol.get();
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auto address = llvm::RTDyldMemoryManager::getSymbolAddressInProcess(name);
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if (!address) {
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llvm::errs() << "Could not look up: " << name << '\n';
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return nullptr;
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}
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return llvm::JITSymbol(address, llvm::JITSymbolFlags::Exported);
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}
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private:
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llvm::orc::ExecutionSession &session;
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};
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} // end anonymous namespace
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namespace mlir {
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namespace impl {
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// Simple layered Orc JIT compilation engine.
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class OrcJIT {
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public:
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using IRTransformer = std::function<Error(llvm::Module *)>;
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// Construct a JIT engine for the target host defined by `machineBuilder`,
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// using the data layout provided as `dataLayout`.
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// Setup the object layer to use our custom memory manager in order to resolve
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// calls to library functions present in the process.
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OrcJIT(llvm::orc::JITTargetMachineBuilder machineBuilder,
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llvm::DataLayout layout, IRTransformer transform)
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: irTransformer(transform),
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objectLayer(
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session,
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[this]() { return llvm::make_unique<MemoryManager>(session); }),
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compileLayer(
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session, objectLayer,
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llvm::orc::ConcurrentIRCompiler(std::move(machineBuilder))),
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transformLayer(session, compileLayer, makeIRTransformFunction()),
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dataLayout(layout), mangler(session, this->dataLayout),
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threadSafeCtx(llvm::make_unique<llvm::LLVMContext>()) {
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session.getMainJITDylib().setGenerator(
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cantFail(llvm::orc::DynamicLibrarySearchGenerator::GetForCurrentProcess(
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layout)));
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}
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// Create a JIT engine for the current host.
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static Expected<std::unique_ptr<OrcJIT>>
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createDefault(IRTransformer transformer) {
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auto machineBuilder = llvm::orc::JITTargetMachineBuilder::detectHost();
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if (!machineBuilder)
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return machineBuilder.takeError();
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auto dataLayout = machineBuilder->getDefaultDataLayoutForTarget();
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if (!dataLayout)
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return dataLayout.takeError();
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return llvm::make_unique<OrcJIT>(std::move(*machineBuilder),
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std::move(*dataLayout), transformer);
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}
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// Add an LLVM module to the main library managed by the JIT engine.
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Error addModule(std::unique_ptr<llvm::Module> M) {
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return transformLayer.add(
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session.getMainJITDylib(),
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llvm::orc::ThreadSafeModule(std::move(M), threadSafeCtx));
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}
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// Lookup a symbol in the main library managed by the JIT engine.
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Expected<llvm::JITEvaluatedSymbol> lookup(StringRef Name) {
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return session.lookup({&session.getMainJITDylib()}, mangler(Name.str()));
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}
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private:
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// Wrap the `irTransformer` into a function that can be called by the
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// IRTranformLayer. If `irTransformer` is not set up, return the module as is
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// without errors.
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llvm::orc::IRTransformLayer::TransformFunction makeIRTransformFunction() {
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return [this](llvm::orc::ThreadSafeModule module,
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const llvm::orc::MaterializationResponsibility &resp)
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-> Expected<llvm::orc::ThreadSafeModule> {
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(void)resp;
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if (!irTransformer)
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return module;
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if (Error err = irTransformer(module.getModule()))
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return std::move(err);
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return module;
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};
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}
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IRTransformer irTransformer;
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llvm::orc::ExecutionSession session;
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llvm::orc::RTDyldObjectLinkingLayer objectLayer;
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llvm::orc::IRCompileLayer compileLayer;
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llvm::orc::IRTransformLayer transformLayer;
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llvm::DataLayout dataLayout;
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llvm::orc::MangleAndInterner mangler;
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llvm::orc::ThreadSafeContext threadSafeCtx;
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};
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} // end namespace impl
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} // namespace mlir
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// Wrap a string into an llvm::StringError.
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static inline Error make_string_error(const llvm::Twine &message) {
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return llvm::make_error<llvm::StringError>(message.str(),
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llvm::inconvertibleErrorCode());
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}
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// Given a list of PassRegistryEntry coming from a higher level, populates the
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// given pass manager and appends the default set of required passes to lower to
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// LLVMIR.
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// Currently, these passes are:
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// - constant folding
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// - CSE
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// - canonicalization
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// - affine lowering
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static void getDefaultPasses(
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PassManager &manager,
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const std::vector<const mlir::PassRegistryEntry *> &mlirPassRegistryList) {
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// Run each of the passes that were selected.
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for (const auto *passEntry : mlirPassRegistryList)
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passEntry->addToPipeline(manager);
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// Append the extra passes for lowering to MLIR.
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manager.addPass(mlir::createConstantFoldPass());
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manager.addPass(mlir::createCSEPass());
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manager.addPass(mlir::createCanonicalizerPass());
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manager.addPass(mlir::createLowerAffinePass());
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manager.addPass(mlir::createConvertToLLVMIRPass());
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}
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// Setup LLVM target triple from the current machine.
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static bool setupTargetTriple(llvm::Module *llvmModule) {
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// Setup the machine properties from the current architecture.
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auto targetTriple = llvm::sys::getDefaultTargetTriple();
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std::string errorMessage;
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auto target = llvm::TargetRegistry::lookupTarget(targetTriple, errorMessage);
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if (!target) {
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llvm::errs() << "NO target: " << errorMessage << "\n";
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return true;
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}
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auto machine =
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target->createTargetMachine(targetTriple, "generic", "", {}, {});
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llvmModule->setDataLayout(machine->createDataLayout());
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llvmModule->setTargetTriple(targetTriple);
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return false;
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}
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static std::string makePackedFunctionName(StringRef name) {
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return "_mlir_" + name.str();
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}
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// For each function in the LLVM module, define an interface function that wraps
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// all the arguments of the original function and all its results into an i8**
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// pointer to provide a unified invocation interface.
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void packFunctionArguments(llvm::Module *module) {
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auto &ctx = module->getContext();
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llvm::IRBuilder<> builder(ctx);
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llvm::DenseSet<llvm::Function *> interfaceFunctions;
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for (auto &func : module->getFunctionList()) {
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if (func.isDeclaration()) {
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continue;
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}
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if (interfaceFunctions.count(&func)) {
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continue;
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}
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// Given a function `foo(<...>)`, define the interface function
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// `mlir_foo(i8**)`.
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auto newType = llvm::FunctionType::get(
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builder.getVoidTy(), builder.getInt8PtrTy()->getPointerTo(),
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/*isVarArg=*/false);
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auto newName = makePackedFunctionName(func.getName());
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auto funcCst = module->getOrInsertFunction(newName, newType);
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llvm::Function *interfaceFunc =
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llvm::cast<llvm::Function>(funcCst.getCallee());
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interfaceFunctions.insert(interfaceFunc);
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// Extract the arguments from the type-erased argument list and cast them to
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// the proper types.
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auto bb = llvm::BasicBlock::Create(ctx);
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bb->insertInto(interfaceFunc);
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builder.SetInsertPoint(bb);
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llvm::Value *argList = interfaceFunc->arg_begin();
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llvm::SmallVector<llvm::Value *, 8> args;
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args.reserve(llvm::size(func.args()));
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for (auto &indexedArg : llvm::enumerate(func.args())) {
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llvm::Value *argIndex = llvm::Constant::getIntegerValue(
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builder.getInt64Ty(), llvm::APInt(64, indexedArg.index()));
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llvm::Value *argPtrPtr = builder.CreateGEP(argList, argIndex);
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llvm::Value *argPtr = builder.CreateLoad(argPtrPtr);
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argPtr = builder.CreateBitCast(
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argPtr, indexedArg.value().getType()->getPointerTo());
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llvm::Value *arg = builder.CreateLoad(argPtr);
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args.push_back(arg);
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}
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// Call the implementation function with the extracted arguments.
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llvm::Value *result = builder.CreateCall(&func, args);
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// Assuming the result is one value, potentially of type `void`.
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if (!result->getType()->isVoidTy()) {
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llvm::Value *retIndex = llvm::Constant::getIntegerValue(
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builder.getInt64Ty(), llvm::APInt(64, llvm::size(func.args())));
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llvm::Value *retPtrPtr = builder.CreateGEP(argList, retIndex);
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llvm::Value *retPtr = builder.CreateLoad(retPtrPtr);
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retPtr = builder.CreateBitCast(retPtr, result->getType()->getPointerTo());
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builder.CreateStore(result, retPtr);
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}
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// The interface function returns void.
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builder.CreateRetVoid();
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}
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}
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// Out of line for PIMPL unique_ptr.
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ExecutionEngine::~ExecutionEngine() = default;
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std::unique_ptr<llvm::Module> translateModuleToLLVMIR(const Module &m);
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Expected<std::unique_ptr<ExecutionEngine>> ExecutionEngine::create(
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Module *m, std::function<llvm::Error(llvm::Module *)> transformer) {
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auto engine = llvm::make_unique<ExecutionEngine>();
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auto expectedJIT = impl::OrcJIT::createDefault(transformer);
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if (!expectedJIT)
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return expectedJIT.takeError();
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// Construct and run the default MLIR pipeline.
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PassManager manager;
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getDefaultPasses(manager, {});
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if (!manager.run(m))
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return make_string_error("passes failed");
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auto llvmModule = translateModuleToLLVMIR(*m);
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if (!llvmModule)
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return make_string_error("could not convert to LLVM IR");
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// FIXME: the triple should be passed to the translation or dialect conversion
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// instead of this. Currently, the LLVM module created above has no triple
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// associated with it.
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setupTargetTriple(llvmModule.get());
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packFunctionArguments(llvmModule.get());
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if (auto err = (*expectedJIT)->addModule(std::move(llvmModule)))
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return std::move(err);
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engine->jit = std::move(*expectedJIT);
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return engine;
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}
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Expected<void (*)(void **)> ExecutionEngine::lookup(StringRef name) const {
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auto expectedSymbol = jit->lookup(makePackedFunctionName(name));
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if (!expectedSymbol)
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return expectedSymbol.takeError();
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auto rawFPtr = expectedSymbol->getAddress();
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auto fptr = reinterpret_cast<void (*)(void **)>(rawFPtr);
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if (!fptr)
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return make_string_error("looked up function is null");
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return fptr;
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}
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llvm::Error ExecutionEngine::invoke(StringRef name,
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MutableArrayRef<void *> args) {
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auto expectedFPtr = lookup(name);
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if (!expectedFPtr)
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return expectedFPtr.takeError();
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auto fptr = *expectedFPtr;
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(*fptr)(args.data());
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return llvm::Error::success();
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}
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