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Layer the memory manager between the JIT and the runtime Dyld.
The JITMemory manager references LLVM IR constructs directly, while the runtime Dyld works at a lower level and can handle objects which may not originate from LLVM IR. Introduce a new layer for the memory manager to handle the interface between them. For the MCJIT, this layer will be almost entirely simply a call-through w/ translation between the IR objects and symbol names. git-svn-id: https://llvm.org/svn/llvm-project/llvm/trunk@128851 91177308-0d34-0410-b5e6-96231b3b80d8
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@ -21,7 +21,29 @@ namespace llvm {
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class RuntimeDyldImpl;
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class MemoryBuffer;
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class JITMemoryManager;
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// RuntimeDyld clients often want to handle the memory management of
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// what gets placed where. For JIT clients, this is an abstraction layer
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// over the JITMemoryManager, which references objects by their source
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// representations in LLVM IR.
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// FIXME: As the RuntimeDyld fills out, additional routines will be needed
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// for the varying types of objects to be allocated.
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class RTDyldMemoryManager {
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RTDyldMemoryManager(const RTDyldMemoryManager&); // DO NOT IMPLEMENT
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void operator=(const RTDyldMemoryManager&); // DO NOT IMPLEMENT
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public:
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RTDyldMemoryManager() {}
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// Allocate ActualSize bytes, or more, for the named function. Return
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// a pointer to the allocated memory and update Size to reflect how much
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// memory was acutally allocated.
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virtual uint64_t startFunctionBody(const char *Name, uintptr_t &Size) = 0;
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// Mark the end of the function, including how much of the allocated
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// memory was actually used.
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virtual void endFunctionBody(const char *Name, uint64_t FunctionStart,
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uint64_t FunctionEnd) = 0;
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};
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class RuntimeDyld {
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RuntimeDyld(const RuntimeDyld &); // DO NOT IMPLEMENT
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@ -31,11 +53,12 @@ class RuntimeDyld {
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// interface.
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RuntimeDyldImpl *Dyld;
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public:
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RuntimeDyld(JITMemoryManager*);
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RuntimeDyld(RTDyldMemoryManager*);
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~RuntimeDyld();
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bool loadObject(MemoryBuffer *InputBuffer);
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void *getSymbolAddress(StringRef Name);
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uint64_t getSymbolAddress(StringRef Name);
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void reassignSymbolAddress(StringRef Name, uint64_t Addr);
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// FIXME: Should be parameterized to get the memory block associated with
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// a particular loaded object.
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sys::MemoryBlock getMemoryBlock();
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@ -8,6 +8,7 @@
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//===----------------------------------------------------------------------===//
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#include "MCJIT.h"
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#include "MCJITMemoryManager.h"
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#include "llvm/DerivedTypes.h"
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#include "llvm/Function.h"
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#include "llvm/ExecutionEngine/GenericValue.h"
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@ -57,7 +58,8 @@ ExecutionEngine *MCJIT::createJIT(Module *M,
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// If the target supports JIT code generation, create the JIT.
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if (TargetJITInfo *TJ = TM->getJITInfo())
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return new MCJIT(M, TM, *TJ, JMM, OptLevel, GVsWithCode);
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return new MCJIT(M, TM, *TJ, new MCJITMemoryManager(JMM), OptLevel,
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GVsWithCode);
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if (ErrorStr)
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*ErrorStr = "target does not support JIT code generation";
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@ -65,9 +67,9 @@ ExecutionEngine *MCJIT::createJIT(Module *M,
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}
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MCJIT::MCJIT(Module *m, TargetMachine *tm, TargetJITInfo &tji,
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JITMemoryManager *JMM, CodeGenOpt::Level OptLevel,
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RTDyldMemoryManager *MM, CodeGenOpt::Level OptLevel,
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bool AllocateGVsWithCode)
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: ExecutionEngine(m), TM(tm), M(m), OS(Buffer), Dyld(JMM) {
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: ExecutionEngine(m), TM(tm), MemMgr(MM), M(m), OS(Buffer), Dyld(MM) {
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PM.add(new TargetData(*TM->getTargetData()));
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@ -94,6 +96,7 @@ MCJIT::MCJIT(Module *m, TargetMachine *tm, TargetJITInfo &tji,
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}
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MCJIT::~MCJIT() {
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delete MemMgr;
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}
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void *MCJIT::getPointerToBasicBlock(BasicBlock *BB) {
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@ -110,7 +113,7 @@ void *MCJIT::getPointerToFunction(Function *F) {
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}
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Twine Name = TM->getMCAsmInfo()->getGlobalPrefix() + F->getName();
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return Dyld.getSymbolAddress(Name.str());
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return (void*)Dyld.getSymbolAddress(Name.str());
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}
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void *MCJIT::recompileAndRelinkFunction(Function *F) {
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@ -24,11 +24,12 @@ namespace llvm {
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class MCJIT : public ExecutionEngine {
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MCJIT(Module *M, TargetMachine *tm, TargetJITInfo &tji,
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JITMemoryManager *JMM, CodeGenOpt::Level OptLevel,
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RTDyldMemoryManager *MemMgr, CodeGenOpt::Level OptLevel,
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bool AllocateGVsWithCode);
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TargetMachine *TM;
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MCContext *Ctx;
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RTDyldMemoryManager *MemMgr;
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// FIXME: These may need moved to a separate 'jitstate' member like the
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// non-MC JIT does for multithreading and such. Just keep them here for now.
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@ -18,7 +18,6 @@
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#include "llvm/ADT/StringRef.h"
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#include "llvm/ADT/Twine.h"
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#include "llvm/ExecutionEngine/RuntimeDyld.h"
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#include "llvm/ExecutionEngine/JITMemoryManager.h"
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#include "llvm/Object/MachOObject.h"
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#include "llvm/Support/Debug.h"
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#include "llvm/Support/ErrorHandling.h"
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@ -35,12 +34,12 @@ class RuntimeDyldImpl {
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unsigned CPUType;
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unsigned CPUSubtype;
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// The JITMemoryManager to load objects into.
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JITMemoryManager *JMM;
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// The MemoryManager to load objects into.
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RTDyldMemoryManager *MemMgr;
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// Master symbol table. As modules are loaded and external symbols are
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// resolved, their addresses are stored here.
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StringMap<void*> SymbolTable;
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StringMap<uint64_t> SymbolTable;
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// FIXME: Should have multiple data blocks, one for each loaded chunk of
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// compiled code.
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@ -72,11 +71,11 @@ class RuntimeDyldImpl {
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const InMemoryStruct<macho::SymtabLoadCommand> &SymtabLC);
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public:
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RuntimeDyldImpl(JITMemoryManager *jmm) : JMM(jmm), HasError(false) {}
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RuntimeDyldImpl(RTDyldMemoryManager *mm) : MemMgr(mm), HasError(false) {}
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bool loadObject(MemoryBuffer *InputBuffer);
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void *getSymbolAddress(StringRef Name) {
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uint64_t getSymbolAddress(StringRef Name) {
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// Use lookup() rather than [] because we don't want to add an entry
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// if there isn't one already, which the [] operator does.
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return SymbolTable.lookup(Name);
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@ -314,7 +313,7 @@ loadSegment32(const MachOObject *Obj,
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void *SectionBase = SectionBases[Index];
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// Get the symbol address.
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void *Address = (char*) SectionBase + STE->Value;
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uint64_t Address = (uint64_t)SectionBase + STE->Value;
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// FIXME: Check the symbol type and flags.
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if (STE->Type != 0xF)
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@ -335,7 +334,7 @@ loadSegment32(const MachOObject *Obj,
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}
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// We've loaded the section; now mark the functions in it as executable.
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// FIXME: We really should use the JITMemoryManager for this.
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// FIXME: We really should use the MemoryManager for this.
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sys::Memory::setRangeExecutable(Data.base(), Data.size());
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return false;
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@ -414,7 +413,7 @@ loadSegment64(const MachOObject *Obj,
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void *SectionBase = SectionBases[Index];
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// Get the symbol address.
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void *Address = (char*) SectionBase + STE->Value;
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uint64_t Address = (uint64_t) SectionBase + STE->Value;
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// FIXME: Check the symbol type and flags.
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if (STE->Type != 0xF)
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@ -434,7 +433,7 @@ loadSegment64(const MachOObject *Obj,
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}
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// We've loaded the section; now mark the functions in it as executable.
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// FIXME: We really should use the JITMemoryManager for this.
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// FIXME: We really should use the MemoryManager for this.
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sys::Memory::setRangeExecutable(Data.base(), Data.size());
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return false;
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@ -530,8 +529,8 @@ bool RuntimeDyldImpl::loadObject(MemoryBuffer *InputBuffer) {
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//===----------------------------------------------------------------------===//
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// RuntimeDyld class implementation
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RuntimeDyld::RuntimeDyld(JITMemoryManager *JMM) {
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Dyld = new RuntimeDyldImpl(JMM);
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RuntimeDyld::RuntimeDyld(RTDyldMemoryManager *MM) {
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Dyld = new RuntimeDyldImpl(MM);
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}
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RuntimeDyld::~RuntimeDyld() {
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@ -542,7 +541,7 @@ bool RuntimeDyld::loadObject(MemoryBuffer *InputBuffer) {
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return Dyld->loadObject(InputBuffer);
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}
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void *RuntimeDyld::getSymbolAddress(StringRef Name) {
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uint64_t RuntimeDyld::getSymbolAddress(StringRef Name) {
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return Dyld->getSymbolAddress(Name);
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}
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@ -13,7 +13,6 @@
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#include "llvm/ADT/StringMap.h"
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#include "llvm/ADT/OwningPtr.h"
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#include "llvm/ExecutionEngine/JITMemoryManager.h"
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#include "llvm/ExecutionEngine/RuntimeDyld.h"
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#include "llvm/Object/MachOObject.h"
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#include "llvm/Support/CommandLine.h"
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@ -41,6 +40,20 @@ Action(cl::desc("Action to perform:"),
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/* *** */
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// A trivial memory manager that doesn't do anything fancy, just uses the
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// support library allocation routines directly.
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class TrivialMemoryManager : public RTDyldMemoryManager {
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public:
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uint64_t startFunctionBody(const char *Name, uintptr_t &Size);
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void endFunctionBody(const char *Name, uint64_t FunctionStart,
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uint64_t FunctionEnd) {}
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};
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uint64_t TrivialMemoryManager::startFunctionBody(const char *Name,
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uintptr_t &Size) {
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return (uint64_t)sys::Memory::AllocateRWX(Size, 0, 0).base();
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}
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static const char *ProgramName;
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static void Message(const char *Type, const Twine &Msg) {
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@ -61,7 +74,7 @@ static int executeInput() {
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return Error("unable to read input: '" + ec.message() + "'");
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// Instantiate a dynamic linker.
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RuntimeDyld Dyld(JITMemoryManager::CreateDefaultMemManager());
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RuntimeDyld Dyld(new TrivialMemoryManager);
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// Load the object file into it.
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if (Dyld.loadObject(InputBuffer.take())) {
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@ -69,7 +82,7 @@ static int executeInput() {
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}
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// Get the address of "_main".
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void *MainAddress = Dyld.getSymbolAddress("_main");
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uint64_t MainAddress = Dyld.getSymbolAddress("_main");
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if (MainAddress == 0)
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return Error("no definition for '_main'");
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@ -83,7 +96,7 @@ static int executeInput() {
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return Error("unable to mark function executable: '" + ErrorStr + "'");
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// Dispatch to _main().
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errs() << "loaded '_main' at: " << MainAddress << "\n";
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errs() << "loaded '_main' at: " << (void*)MainAddress << "\n";
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int (*Main)(int, const char**) =
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(int(*)(int,const char**)) uintptr_t(MainAddress);
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