1//===-- MCJIT.cpp - MC-based Just-in-Time Compiler ------------------------===// 2// 3// The LLVM Compiler Infrastructure 4// 5// This file is distributed under the University of Illinois Open Source 6// License. See LICENSE.TXT for details. 7// 8//===----------------------------------------------------------------------===// 9 10#include "MCJIT.h" 11#include "MCJITMemoryManager.h" 12#include "llvm/DerivedTypes.h" 13#include "llvm/Function.h" 14#include "llvm/ExecutionEngine/GenericValue.h" 15#include "llvm/ExecutionEngine/MCJIT.h" 16#include "llvm/ExecutionEngine/JITMemoryManager.h" 17#include "llvm/MC/MCAsmInfo.h" 18#include "llvm/Support/ErrorHandling.h" 19#include "llvm/Support/DynamicLibrary.h" 20#include "llvm/Support/MemoryBuffer.h" 21#include "llvm/Target/TargetData.h" 22 23using namespace llvm; 24 25namespace { 26 27static struct RegisterJIT { 28 RegisterJIT() { MCJIT::Register(); } 29} JITRegistrator; 30 31} 32 33extern "C" void LLVMLinkInMCJIT() { 34} 35 36ExecutionEngine *MCJIT::createJIT(Module *M, 37 std::string *ErrorStr, 38 JITMemoryManager *JMM, 39 CodeGenOpt::Level OptLevel, 40 bool GVsWithCode, 41 TargetMachine *TM) { 42 // Try to register the program as a source of symbols to resolve against. 43 // 44 // FIXME: Don't do this here. 45 sys::DynamicLibrary::LoadLibraryPermanently(0, NULL); 46 47 // If the target supports JIT code generation, create the JIT. 48 if (TargetJITInfo *TJ = TM->getJITInfo()) 49 return new MCJIT(M, TM, *TJ, new MCJITMemoryManager(JMM, M), OptLevel, 50 GVsWithCode); 51 52 if (ErrorStr) 53 *ErrorStr = "target does not support JIT code generation"; 54 return 0; 55} 56 57MCJIT::MCJIT(Module *m, TargetMachine *tm, TargetJITInfo &tji, 58 RTDyldMemoryManager *MM, CodeGenOpt::Level OptLevel, 59 bool AllocateGVsWithCode) 60 : ExecutionEngine(m), TM(tm), MemMgr(MM), M(m), OS(Buffer), Dyld(MM) { 61 62 setTargetData(TM->getTargetData()); 63 PM.add(new TargetData(*TM->getTargetData())); 64 65 // Turn the machine code intermediate representation into bytes in memory 66 // that may be executed. 67 if (TM->addPassesToEmitMC(PM, Ctx, OS, CodeGenOpt::Default, false)) { 68 report_fatal_error("Target does not support MC emission!"); 69 } 70 71 // Initialize passes. 72 // FIXME: When we support multiple modules, we'll want to move the code 73 // gen and finalization out of the constructor here and do it more 74 // on-demand as part of getPointerToFunction(). 75 PM.run(*M); 76 // Flush the output buffer so the SmallVector gets its data. 77 OS.flush(); 78 79 // Load the object into the dynamic linker. 80 // FIXME: It would be nice to avoid making yet another copy. 81 MemoryBuffer *MB = MemoryBuffer::getMemBufferCopy(StringRef(Buffer.data(), 82 Buffer.size())); 83 if (Dyld.loadObject(MB)) 84 report_fatal_error(Dyld.getErrorString()); 85 // Resolve any relocations. 86 Dyld.resolveRelocations(); 87} 88 89MCJIT::~MCJIT() { 90 delete MemMgr; 91} 92 93void *MCJIT::getPointerToBasicBlock(BasicBlock *BB) { 94 report_fatal_error("not yet implemented"); 95 return 0; 96} 97 98void *MCJIT::getPointerToFunction(Function *F) { 99 if (F->isDeclaration() || F->hasAvailableExternallyLinkage()) { 100 bool AbortOnFailure = !F->hasExternalWeakLinkage(); 101 void *Addr = getPointerToNamedFunction(F->getName(), AbortOnFailure); 102 addGlobalMapping(F, Addr); 103 return Addr; 104 } 105 106 // FIXME: Should we be using the mangler for this? Probably. 107 StringRef BaseName = F->getName(); 108 if (BaseName[0] == '\1') 109 return (void*)Dyld.getSymbolAddress(BaseName.substr(1)); 110 return (void*)Dyld.getSymbolAddress((TM->getMCAsmInfo()->getGlobalPrefix() 111 + BaseName).str()); 112} 113 114void *MCJIT::recompileAndRelinkFunction(Function *F) { 115 report_fatal_error("not yet implemented"); 116} 117 118void MCJIT::freeMachineCodeForFunction(Function *F) { 119 report_fatal_error("not yet implemented"); 120} 121 122GenericValue MCJIT::runFunction(Function *F, 123 const std::vector<GenericValue> &ArgValues) { 124 assert(F && "Function *F was null at entry to run()"); 125 126 void *FPtr = getPointerToFunction(F); 127 assert(FPtr && "Pointer to fn's code was null after getPointerToFunction"); 128 FunctionType *FTy = F->getFunctionType(); 129 Type *RetTy = FTy->getReturnType(); 130 131 assert((FTy->getNumParams() == ArgValues.size() || 132 (FTy->isVarArg() && FTy->getNumParams() <= ArgValues.size())) && 133 "Wrong number of arguments passed into function!"); 134 assert(FTy->getNumParams() == ArgValues.size() && 135 "This doesn't support passing arguments through varargs (yet)!"); 136 137 // Handle some common cases first. These cases correspond to common `main' 138 // prototypes. 139 if (RetTy->isIntegerTy(32) || RetTy->isVoidTy()) { 140 switch (ArgValues.size()) { 141 case 3: 142 if (FTy->getParamType(0)->isIntegerTy(32) && 143 FTy->getParamType(1)->isPointerTy() && 144 FTy->getParamType(2)->isPointerTy()) { 145 int (*PF)(int, char **, const char **) = 146 (int(*)(int, char **, const char **))(intptr_t)FPtr; 147 148 // Call the function. 149 GenericValue rv; 150 rv.IntVal = APInt(32, PF(ArgValues[0].IntVal.getZExtValue(), 151 (char **)GVTOP(ArgValues[1]), 152 (const char **)GVTOP(ArgValues[2]))); 153 return rv; 154 } 155 break; 156 case 2: 157 if (FTy->getParamType(0)->isIntegerTy(32) && 158 FTy->getParamType(1)->isPointerTy()) { 159 int (*PF)(int, char **) = (int(*)(int, char **))(intptr_t)FPtr; 160 161 // Call the function. 162 GenericValue rv; 163 rv.IntVal = APInt(32, PF(ArgValues[0].IntVal.getZExtValue(), 164 (char **)GVTOP(ArgValues[1]))); 165 return rv; 166 } 167 break; 168 case 1: 169 if (FTy->getNumParams() == 1 && 170 FTy->getParamType(0)->isIntegerTy(32)) { 171 GenericValue rv; 172 int (*PF)(int) = (int(*)(int))(intptr_t)FPtr; 173 rv.IntVal = APInt(32, PF(ArgValues[0].IntVal.getZExtValue())); 174 return rv; 175 } 176 break; 177 } 178 } 179 180 // Handle cases where no arguments are passed first. 181 if (ArgValues.empty()) { 182 GenericValue rv; 183 switch (RetTy->getTypeID()) { 184 default: llvm_unreachable("Unknown return type for function call!"); 185 case Type::IntegerTyID: { 186 unsigned BitWidth = cast<IntegerType>(RetTy)->getBitWidth(); 187 if (BitWidth == 1) 188 rv.IntVal = APInt(BitWidth, ((bool(*)())(intptr_t)FPtr)()); 189 else if (BitWidth <= 8) 190 rv.IntVal = APInt(BitWidth, ((char(*)())(intptr_t)FPtr)()); 191 else if (BitWidth <= 16) 192 rv.IntVal = APInt(BitWidth, ((short(*)())(intptr_t)FPtr)()); 193 else if (BitWidth <= 32) 194 rv.IntVal = APInt(BitWidth, ((int(*)())(intptr_t)FPtr)()); 195 else if (BitWidth <= 64) 196 rv.IntVal = APInt(BitWidth, ((int64_t(*)())(intptr_t)FPtr)()); 197 else 198 llvm_unreachable("Integer types > 64 bits not supported"); 199 return rv; 200 } 201 case Type::VoidTyID: 202 rv.IntVal = APInt(32, ((int(*)())(intptr_t)FPtr)()); 203 return rv; 204 case Type::FloatTyID: 205 rv.FloatVal = ((float(*)())(intptr_t)FPtr)(); 206 return rv; 207 case Type::DoubleTyID: 208 rv.DoubleVal = ((double(*)())(intptr_t)FPtr)(); 209 return rv; 210 case Type::X86_FP80TyID: 211 case Type::FP128TyID: 212 case Type::PPC_FP128TyID: 213 llvm_unreachable("long double not supported yet"); 214 return rv; 215 case Type::PointerTyID: 216 return PTOGV(((void*(*)())(intptr_t)FPtr)()); 217 } 218 } 219 220 assert(0 && "Full-featured argument passing not supported yet!"); 221 return GenericValue(); 222} 223