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https://github.com/c64scene-ar/llvm-6502.git
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git-svn-id: https://llvm.org/svn/llvm-project/llvm/trunk@236506 91177308-0d34-0410-b5e6-96231b3b80d8
296 lines
12 KiB
C++
296 lines
12 KiB
C++
//===-- IndirectionUtils.h - Utilities for adding indirections --*- C++ -*-===//
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//
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// The LLVM Compiler Infrastructure
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//
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// This file is distributed under the University of Illinois Open Source
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// License. See LICENSE.TXT for details.
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//
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//===----------------------------------------------------------------------===//
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//
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// Contains utilities for adding indirections and breaking up modules.
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//
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//===----------------------------------------------------------------------===//
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#ifndef LLVM_EXECUTIONENGINE_ORC_INDIRECTIONUTILS_H
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#define LLVM_EXECUTIONENGINE_ORC_INDIRECTIONUTILS_H
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#include "JITSymbol.h"
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#include "LambdaResolver.h"
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#include "llvm/ADT/DenseSet.h"
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#include "llvm/ExecutionEngine/RuntimeDyld.h"
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#include "llvm/IR/IRBuilder.h"
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#include "llvm/IR/Mangler.h"
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#include "llvm/IR/Module.h"
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#include "llvm/Transforms/Utils/ValueMapper.h"
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#include <sstream>
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namespace llvm {
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namespace orc {
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/// @brief Base class for JITLayer independent aspects of
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/// JITCompileCallbackManager.
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class JITCompileCallbackManagerBase {
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public:
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typedef std::function<TargetAddress()> CompileFtor;
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/// @brief Handle to a newly created compile callback. Can be used to get an
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/// IR constant representing the address of the trampoline, and to set
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/// the compile action for the callback.
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class CompileCallbackInfo {
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public:
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CompileCallbackInfo(TargetAddress Addr, CompileFtor &Compile)
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: Addr(Addr), Compile(Compile) {}
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TargetAddress getAddress() const { return Addr; }
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void setCompileAction(CompileFtor Compile) {
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this->Compile = std::move(Compile);
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}
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private:
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TargetAddress Addr;
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CompileFtor &Compile;
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};
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/// @brief Construct a JITCompileCallbackManagerBase.
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/// @param ErrorHandlerAddress The address of an error handler in the target
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/// process to be used if a compile callback fails.
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/// @param NumTrampolinesPerBlock Number of trampolines to emit if there is no
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/// available trampoline when getCompileCallback is
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/// called.
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JITCompileCallbackManagerBase(TargetAddress ErrorHandlerAddress,
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unsigned NumTrampolinesPerBlock)
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: ErrorHandlerAddress(ErrorHandlerAddress),
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NumTrampolinesPerBlock(NumTrampolinesPerBlock) {}
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virtual ~JITCompileCallbackManagerBase() {}
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/// @brief Execute the callback for the given trampoline id. Called by the JIT
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/// to compile functions on demand.
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TargetAddress executeCompileCallback(TargetAddress TrampolineAddr) {
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auto I = ActiveTrampolines.find(TrampolineAddr);
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// FIXME: Also raise an error in the Orc error-handler when we finally have
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// one.
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if (I == ActiveTrampolines.end())
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return ErrorHandlerAddress;
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// Found a callback handler. Yank this trampoline out of the active list and
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// put it back in the available trampolines list, then try to run the
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// handler's compile and update actions.
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// Moving the trampoline ID back to the available list first means there's at
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// least one available trampoline if the compile action triggers a request for
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// a new one.
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auto Compile = std::move(I->second);
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ActiveTrampolines.erase(I);
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AvailableTrampolines.push_back(TrampolineAddr);
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if (auto Addr = Compile())
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return Addr;
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return ErrorHandlerAddress;
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}
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/// @brief Reserve a compile callback.
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virtual CompileCallbackInfo getCompileCallback(LLVMContext &Context) = 0;
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/// @brief Get a CompileCallbackInfo for an existing callback.
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CompileCallbackInfo getCompileCallbackInfo(TargetAddress TrampolineAddr) {
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auto I = ActiveTrampolines.find(TrampolineAddr);
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assert(I != ActiveTrampolines.end() && "Not an active trampoline.");
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return CompileCallbackInfo(I->first, I->second);
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}
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/// @brief Release a compile callback.
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///
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/// Note: Callbacks are auto-released after they execute. This method should
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/// only be called to manually release a callback that is not going to
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/// execute.
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void releaseCompileCallback(TargetAddress TrampolineAddr) {
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auto I = ActiveTrampolines.find(TrampolineAddr);
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assert(I != ActiveTrampolines.end() && "Not an active trampoline.");
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ActiveTrampolines.erase(I);
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AvailableTrampolines.push_back(TrampolineAddr);
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}
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protected:
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TargetAddress ErrorHandlerAddress;
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unsigned NumTrampolinesPerBlock;
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typedef std::map<TargetAddress, CompileFtor> TrampolineMapT;
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TrampolineMapT ActiveTrampolines;
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std::vector<TargetAddress> AvailableTrampolines;
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};
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/// @brief Manage compile callbacks.
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template <typename JITLayerT, typename TargetT>
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class JITCompileCallbackManager : public JITCompileCallbackManagerBase {
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public:
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/// @brief Construct a JITCompileCallbackManager.
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/// @param JIT JIT layer to emit callback trampolines, etc. into.
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/// @param Context LLVMContext to use for trampoline & resolve block modules.
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/// @param ErrorHandlerAddress The address of an error handler in the target
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/// process to be used if a compile callback fails.
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/// @param NumTrampolinesPerBlock Number of trampolines to allocate whenever
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/// there is no existing callback trampoline.
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/// (Trampolines are allocated in blocks for
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/// efficiency.)
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JITCompileCallbackManager(JITLayerT &JIT, RuntimeDyld::MemoryManager &MemMgr,
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LLVMContext &Context,
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TargetAddress ErrorHandlerAddress,
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unsigned NumTrampolinesPerBlock)
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: JITCompileCallbackManagerBase(ErrorHandlerAddress,
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NumTrampolinesPerBlock),
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JIT(JIT), MemMgr(MemMgr) {
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emitResolverBlock(Context);
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}
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/// @brief Get/create a compile callback with the given signature.
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CompileCallbackInfo getCompileCallback(LLVMContext &Context) final {
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TargetAddress TrampolineAddr = getAvailableTrampolineAddr(Context);
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auto &Compile = this->ActiveTrampolines[TrampolineAddr];
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return CompileCallbackInfo(TrampolineAddr, Compile);
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}
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private:
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std::vector<std::unique_ptr<Module>>
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SingletonSet(std::unique_ptr<Module> M) {
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std::vector<std::unique_ptr<Module>> Ms;
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Ms.push_back(std::move(M));
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return Ms;
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}
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void emitResolverBlock(LLVMContext &Context) {
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std::unique_ptr<Module> M(new Module("resolver_block_module",
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Context));
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TargetT::insertResolverBlock(*M, *this);
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auto NonResolver =
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createLambdaResolver(
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[](const std::string &Name) -> RuntimeDyld::SymbolInfo {
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llvm_unreachable("External symbols in resolver block?");
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},
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[](const std::string &Name) -> RuntimeDyld::SymbolInfo {
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llvm_unreachable("Dylib symbols in resolver block?");
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});
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auto H = JIT.addModuleSet(SingletonSet(std::move(M)), &MemMgr,
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std::move(NonResolver));
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JIT.emitAndFinalize(H);
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auto ResolverBlockSymbol =
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JIT.findSymbolIn(H, TargetT::ResolverBlockName, false);
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assert(ResolverBlockSymbol && "Failed to insert resolver block");
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ResolverBlockAddr = ResolverBlockSymbol.getAddress();
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}
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TargetAddress getAvailableTrampolineAddr(LLVMContext &Context) {
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if (this->AvailableTrampolines.empty())
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grow(Context);
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assert(!this->AvailableTrampolines.empty() &&
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"Failed to grow available trampolines.");
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TargetAddress TrampolineAddr = this->AvailableTrampolines.back();
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this->AvailableTrampolines.pop_back();
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return TrampolineAddr;
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}
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void grow(LLVMContext &Context) {
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assert(this->AvailableTrampolines.empty() && "Growing prematurely?");
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std::unique_ptr<Module> M(new Module("trampoline_block", Context));
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auto GetLabelName =
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TargetT::insertCompileCallbackTrampolines(*M, ResolverBlockAddr,
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this->NumTrampolinesPerBlock,
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this->ActiveTrampolines.size());
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auto NonResolver =
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createLambdaResolver(
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[](const std::string &Name) -> RuntimeDyld::SymbolInfo {
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llvm_unreachable("External symbols in trampoline block?");
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},
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[](const std::string &Name) -> RuntimeDyld::SymbolInfo {
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llvm_unreachable("Dylib symbols in trampoline block?");
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});
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auto H = JIT.addModuleSet(SingletonSet(std::move(M)), &MemMgr,
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std::move(NonResolver));
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JIT.emitAndFinalize(H);
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for (unsigned I = 0; I < this->NumTrampolinesPerBlock; ++I) {
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std::string Name = GetLabelName(I);
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auto TrampolineSymbol = JIT.findSymbolIn(H, Name, false);
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assert(TrampolineSymbol && "Failed to emit trampoline.");
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this->AvailableTrampolines.push_back(TrampolineSymbol.getAddress());
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}
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}
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JITLayerT &JIT;
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RuntimeDyld::MemoryManager &MemMgr;
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TargetAddress ResolverBlockAddr;
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};
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/// @brief Build a function pointer of FunctionType with the given constant
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/// address.
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///
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/// Usage example: Turn a trampoline address into a function pointer constant
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/// for use in a stub.
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Constant* createIRTypedAddress(FunctionType &FT, TargetAddress Addr);
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/// @brief Create a function pointer with the given type, name, and initializer
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/// in the given Module.
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GlobalVariable* createImplPointer(PointerType &PT, Module &M,
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const Twine &Name, Constant *Initializer);
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/// @brief Turn a function declaration into a stub function that makes an
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/// indirect call using the given function pointer.
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void makeStub(Function &F, GlobalVariable &ImplPointer);
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/// @brief Raise linkage types and rename as necessary to ensure that all
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/// symbols are accessible for other modules.
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///
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/// This should be called before partitioning a module to ensure that the
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/// partitions retain access to each other's symbols.
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void makeAllSymbolsExternallyAccessible(Module &M);
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/// @brief Clone a function declaration into a new module.
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///
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/// This function can be used as the first step towards creating a callback
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/// stub (see makeStub), or moving a function body (see moveFunctionBody).
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///
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/// If the VMap argument is non-null, a mapping will be added between F and
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/// the new declaration, and between each of F's arguments and the new
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/// declaration's arguments. This map can then be passed in to moveFunction to
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/// move the function body if required. Note: When moving functions between
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/// modules with these utilities, all decls should be cloned (and added to a
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/// single VMap) before any bodies are moved. This will ensure that references
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/// between functions all refer to the versions in the new module.
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Function* cloneFunctionDecl(Module &Dst, const Function &F,
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ValueToValueMapTy *VMap = nullptr);
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/// @brief Move the body of function 'F' to a cloned function declaration in a
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/// different module (See related cloneFunctionDecl).
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///
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/// If the target function declaration is not supplied via the NewF parameter
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/// then it will be looked up via the VMap.
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///
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/// This will delete the body of function 'F' from its original parent module,
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/// but leave its declaration.
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void moveFunctionBody(Function &OrigF, ValueToValueMapTy &VMap,
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ValueMaterializer *Materializer = nullptr,
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Function *NewF = nullptr);
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/// @brief Clone a global variable declaration into a new module.
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GlobalVariable* cloneGlobalVariableDecl(Module &Dst, const GlobalVariable &GV,
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ValueToValueMapTy *VMap = nullptr);
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/// @brief Move global variable GV from its parent module to cloned global
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/// declaration in a different module.
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///
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/// If the target global declaration is not supplied via the NewGV parameter
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/// then it will be looked up via the VMap.
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///
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/// This will delete the initializer of GV from its original parent module,
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/// but leave its declaration.
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void moveGlobalVariableInitializer(GlobalVariable &OrigGV,
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ValueToValueMapTy &VMap,
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ValueMaterializer *Materializer = nullptr,
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GlobalVariable *NewGV = nullptr);
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} // End namespace orc.
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} // End namespace llvm.
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#endif // LLVM_EXECUTIONENGINE_ORC_INDIRECTIONUTILS_H
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