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https://github.com/RPCS3/llvm-mirror.git
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8ce4e9967f
Move architecture independent ELF parsing/graph-building code from ELFLinkGraphBuilder_x86_64 to the ELFLinkGraphBuilder base class template.
626 lines
22 KiB
C++
626 lines
22 KiB
C++
//===---- ELF_x86_64.cpp -JIT linker implementation for ELF/x86-64 ----===//
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//
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// Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
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// See https://llvm.org/LICENSE.txt for license information.
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// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
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//
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//===----------------------------------------------------------------------===//
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//
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// ELF/x86-64 jit-link implementation.
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//
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//===----------------------------------------------------------------------===//
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#include "llvm/ExecutionEngine/JITLink/ELF_x86_64.h"
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#include "llvm/ExecutionEngine/JITLink/JITLink.h"
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#include "llvm/ExecutionEngine/JITLink/x86_64.h"
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#include "llvm/Object/ELFObjectFile.h"
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#include "llvm/Support/Endian.h"
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#include "DefineExternalSectionStartAndEndSymbols.h"
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#include "EHFrameSupportImpl.h"
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#include "ELFLinkGraphBuilder.h"
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#include "JITLinkGeneric.h"
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#include "PerGraphGOTAndPLTStubsBuilder.h"
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#define DEBUG_TYPE "jitlink"
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using namespace llvm;
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using namespace llvm::jitlink;
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using namespace llvm::jitlink::ELF_x86_64_Edges;
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namespace {
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constexpr StringRef ELFGOTSectionName = "$__GOT";
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constexpr StringRef ELFGOTSymbolName = "_GLOBAL_OFFSET_TABLE_";
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class PerGraphGOTAndPLTStubsBuilder_ELF_x86_64
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: public PerGraphGOTAndPLTStubsBuilder<
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PerGraphGOTAndPLTStubsBuilder_ELF_x86_64> {
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public:
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static const uint8_t NullGOTEntryContent[8];
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static const uint8_t StubContent[6];
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using PerGraphGOTAndPLTStubsBuilder<
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PerGraphGOTAndPLTStubsBuilder_ELF_x86_64>::PerGraphGOTAndPLTStubsBuilder;
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bool isGOTEdgeToFix(Edge &E) const {
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if (E.getKind() == GOTOFF64) {
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// We need to make sure that the GOT section exists, but don't otherwise
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// need to fix up this edge.
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getGOTSection();
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return false;
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}
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return E.getKind() == PCRel32GOT || E.getKind() == PCRel32GOTLoad ||
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E.getKind() == PCRel64GOT || E.getKind() == GOT64;
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}
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Symbol &createGOTEntry(Symbol &Target) {
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auto &GOTEntryBlock = G.createContentBlock(
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getGOTSection(), getGOTEntryBlockContent(), 0, 8, 0);
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GOTEntryBlock.addEdge(Pointer64, 0, Target, 0);
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return G.addAnonymousSymbol(GOTEntryBlock, 0, 8, false, false);
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}
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void fixGOTEdge(Edge &E, Symbol &GOTEntry) {
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// If this is a PCRel32GOT/PCRel64GOT then change it to an ordinary
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// PCRel32/PCRel64. If it is a PCRel32GOTLoad then leave it as-is for now:
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// We will use the kind to check for GOT optimization opportunities in the
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// optimizeMachO_x86_64_GOTAndStubs pass below.
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// If it's a GOT64 leave it as is.
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switch (E.getKind()) {
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case PCRel32GOT:
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E.setKind(PCRel32);
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break;
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case PCRel64GOT:
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E.setKind(PCRel64);
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break;
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case GOT64:
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break;
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case PCRel32GOTLoad:
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break;
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default:
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llvm_unreachable("Unexpected GOT edge kind");
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}
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E.setTarget(GOTEntry);
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// Leave the edge addend as-is.
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}
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bool isExternalBranchEdge(Edge &E) {
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return E.getKind() == Branch32 && !E.getTarget().isDefined();
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}
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Symbol &createPLTStub(Symbol &Target) {
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auto &StubContentBlock =
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G.createContentBlock(getStubsSection(), getStubBlockContent(), 0, 1, 0);
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// Re-use GOT entries for stub targets.
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auto &GOTEntrySymbol = getGOTEntry(Target);
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StubContentBlock.addEdge(PCRel32, 2, GOTEntrySymbol, -4);
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return G.addAnonymousSymbol(StubContentBlock, 0, 6, true, false);
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}
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void fixPLTEdge(Edge &E, Symbol &Stub) {
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assert(E.getKind() == Branch32 && "Not a Branch32 edge?");
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// Set the edge kind to Branch32ToStub. We will use this to check for stub
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// optimization opportunities in the optimize ELF_x86_64_GOTAndStubs pass
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// below.
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E.setKind(Branch32ToStub);
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E.setTarget(Stub);
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}
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private:
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Section &getGOTSection() const {
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if (!GOTSection)
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GOTSection = &G.createSection(ELFGOTSectionName, sys::Memory::MF_READ);
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return *GOTSection;
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}
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Section &getStubsSection() const {
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if (!StubsSection) {
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auto StubsProt = static_cast<sys::Memory::ProtectionFlags>(
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sys::Memory::MF_READ | sys::Memory::MF_EXEC);
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StubsSection = &G.createSection("$__STUBS", StubsProt);
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}
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return *StubsSection;
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}
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ArrayRef<char> getGOTEntryBlockContent() {
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return {reinterpret_cast<const char *>(NullGOTEntryContent),
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sizeof(NullGOTEntryContent)};
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}
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ArrayRef<char> getStubBlockContent() {
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return {reinterpret_cast<const char *>(StubContent), sizeof(StubContent)};
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}
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mutable Section *GOTSection = nullptr;
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mutable Section *StubsSection = nullptr;
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};
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} // namespace
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const uint8_t PerGraphGOTAndPLTStubsBuilder_ELF_x86_64::NullGOTEntryContent[8] =
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{0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00};
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const uint8_t PerGraphGOTAndPLTStubsBuilder_ELF_x86_64::StubContent[6] = {
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0xFF, 0x25, 0x00, 0x00, 0x00, 0x00};
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static Error optimizeELF_x86_64_GOTAndStubs(LinkGraph &G) {
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LLVM_DEBUG(dbgs() << "Optimizing GOT entries and stubs:\n");
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for (auto *B : G.blocks())
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for (auto &E : B->edges())
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if (E.getKind() == PCRel32GOTLoad) {
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// Replace GOT load with LEA only for MOVQ instructions.
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constexpr uint8_t MOVQRIPRel[] = {0x48, 0x8b};
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if (E.getOffset() < 3 ||
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strncmp(B->getContent().data() + E.getOffset() - 3,
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reinterpret_cast<const char *>(MOVQRIPRel), 2) != 0)
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continue;
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auto &GOTBlock = E.getTarget().getBlock();
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assert(GOTBlock.getSize() == G.getPointerSize() &&
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"GOT entry block should be pointer sized");
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assert(GOTBlock.edges_size() == 1 &&
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"GOT entry should only have one outgoing edge");
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auto &GOTTarget = GOTBlock.edges().begin()->getTarget();
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JITTargetAddress EdgeAddr = B->getAddress() + E.getOffset();
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JITTargetAddress TargetAddr = GOTTarget.getAddress();
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int64_t Displacement = TargetAddr - EdgeAddr + 4;
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if (Displacement >= std::numeric_limits<int32_t>::min() &&
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Displacement <= std::numeric_limits<int32_t>::max()) {
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// Change the edge kind as we don't go through GOT anymore. This is
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// for formal correctness only. Technically, the two relocation kinds
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// are resolved the same way.
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E.setKind(PCRel32);
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E.setTarget(GOTTarget);
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auto *BlockData = reinterpret_cast<uint8_t *>(
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const_cast<char *>(B->getContent().data()));
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BlockData[E.getOffset() - 2] = 0x8d;
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LLVM_DEBUG({
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dbgs() << " Replaced GOT load wih LEA:\n ";
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printEdge(dbgs(), *B, E, getELFX86RelocationKindName(E.getKind()));
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dbgs() << "\n";
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});
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}
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} else if (E.getKind() == Branch32ToStub) {
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auto &StubBlock = E.getTarget().getBlock();
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assert(
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StubBlock.getSize() ==
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sizeof(PerGraphGOTAndPLTStubsBuilder_ELF_x86_64::StubContent) &&
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"Stub block should be stub sized");
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assert(StubBlock.edges_size() == 1 &&
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"Stub block should only have one outgoing edge");
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auto &GOTBlock = StubBlock.edges().begin()->getTarget().getBlock();
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assert(GOTBlock.getSize() == G.getPointerSize() &&
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"GOT block should be pointer sized");
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assert(GOTBlock.edges_size() == 1 &&
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"GOT block should only have one outgoing edge");
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auto &GOTTarget = GOTBlock.edges().begin()->getTarget();
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JITTargetAddress EdgeAddr = B->getAddress() + E.getOffset();
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JITTargetAddress TargetAddr = GOTTarget.getAddress();
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int64_t Displacement = TargetAddr - EdgeAddr + 4;
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if (Displacement >= std::numeric_limits<int32_t>::min() &&
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Displacement <= std::numeric_limits<int32_t>::max()) {
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E.setKind(Branch32);
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E.setTarget(GOTTarget);
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LLVM_DEBUG({
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dbgs() << " Replaced stub branch with direct branch:\n ";
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printEdge(dbgs(), *B, E, getELFX86RelocationKindName(E.getKind()));
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dbgs() << "\n";
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});
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}
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}
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return Error::success();
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}
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namespace llvm {
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namespace jitlink {
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// This should become a template as the ELFFile is so a lot of this could become
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// generic
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class ELFLinkGraphBuilder_x86_64 : public ELFLinkGraphBuilder<object::ELF64LE> {
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private:
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static Expected<ELF_x86_64_Edges::ELFX86RelocationKind>
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getRelocationKind(const uint32_t Type) {
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switch (Type) {
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case ELF::R_X86_64_PC32:
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return ELF_x86_64_Edges::ELFX86RelocationKind::PCRel32;
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case ELF::R_X86_64_PC64:
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case ELF::R_X86_64_GOTPC64:
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return ELF_x86_64_Edges::ELFX86RelocationKind::Delta64;
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case ELF::R_X86_64_64:
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return ELF_x86_64_Edges::ELFX86RelocationKind::Pointer64;
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case ELF::R_X86_64_GOTPCREL:
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case ELF::R_X86_64_GOTPCRELX:
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case ELF::R_X86_64_REX_GOTPCRELX:
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return ELF_x86_64_Edges::ELFX86RelocationKind::PCRel32GOTLoad;
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case ELF::R_X86_64_GOTPCREL64:
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return ELF_x86_64_Edges::ELFX86RelocationKind::PCRel64GOT;
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case ELF::R_X86_64_GOT64:
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return ELF_x86_64_Edges::ELFX86RelocationKind::GOT64;
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case ELF::R_X86_64_GOTOFF64:
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return ELF_x86_64_Edges::ELFX86RelocationKind::GOTOFF64;
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case ELF::R_X86_64_PLT32:
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return ELF_x86_64_Edges::ELFX86RelocationKind::Branch32;
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}
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return make_error<JITLinkError>("Unsupported x86-64 relocation:" +
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formatv("{0:d}", Type));
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}
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Error addRelocations() override {
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LLVM_DEBUG(dbgs() << "Adding relocations\n");
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// TODO a partern is forming of iterate some sections but only give me
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// ones I am interested, i should abstract that concept some where
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for (auto &SecRef : Sections) {
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if (SecRef.sh_type != ELF::SHT_RELA && SecRef.sh_type != ELF::SHT_REL)
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continue;
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// TODO can the elf obj file do this for me?
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if (SecRef.sh_type == ELF::SHT_REL)
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return make_error<llvm::StringError>("Shouldn't have REL in x64",
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llvm::inconvertibleErrorCode());
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auto RelSectName = Obj.getSectionName(SecRef);
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if (!RelSectName)
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return RelSectName.takeError();
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LLVM_DEBUG({
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dbgs() << "Adding relocations from section " << *RelSectName << "\n";
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});
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auto UpdateSection = Obj.getSection(SecRef.sh_info);
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if (!UpdateSection)
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return UpdateSection.takeError();
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auto UpdateSectionName = Obj.getSectionName(**UpdateSection);
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if (!UpdateSectionName)
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return UpdateSectionName.takeError();
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// Don't process relocations for debug sections.
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if (isDwarfSection(*UpdateSectionName)) {
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LLVM_DEBUG({
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dbgs() << " Target is dwarf section " << *UpdateSectionName
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<< ". Skipping.\n";
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});
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continue;
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} else
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LLVM_DEBUG({
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dbgs() << " For target section " << *UpdateSectionName << "\n";
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});
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auto JITSection = G->findSectionByName(*UpdateSectionName);
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if (!JITSection)
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return make_error<llvm::StringError>(
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"Refencing a a section that wasn't added to graph" +
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*UpdateSectionName,
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llvm::inconvertibleErrorCode());
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auto Relocations = Obj.relas(SecRef);
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if (!Relocations)
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return Relocations.takeError();
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for (const auto &Rela : *Relocations) {
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auto Type = Rela.getType(false);
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LLVM_DEBUG({
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dbgs() << "Relocation Type: " << Type << "\n"
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<< "Name: " << Obj.getRelocationTypeName(Type) << "\n";
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});
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auto SymbolIndex = Rela.getSymbol(false);
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auto Symbol = Obj.getRelocationSymbol(Rela, SymTabSec);
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if (!Symbol)
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return Symbol.takeError();
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auto BlockToFix = *(JITSection->blocks().begin());
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auto *TargetSymbol = getGraphSymbol(SymbolIndex);
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if (!TargetSymbol) {
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return make_error<llvm::StringError>(
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"Could not find symbol at given index, did you add it to "
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"JITSymbolTable? index: " +
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std::to_string(SymbolIndex) +
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", shndx: " + std::to_string((*Symbol)->st_shndx) +
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" Size of table: " + std::to_string(GraphSymbols.size()),
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llvm::inconvertibleErrorCode());
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}
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uint64_t Addend = Rela.r_addend;
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JITTargetAddress FixupAddress =
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(*UpdateSection)->sh_addr + Rela.r_offset;
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LLVM_DEBUG({
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dbgs() << "Processing relocation at "
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<< format("0x%016" PRIx64, FixupAddress) << "\n";
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});
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auto Kind = getRelocationKind(Type);
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if (!Kind)
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return Kind.takeError();
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LLVM_DEBUG({
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Edge GE(*Kind, FixupAddress - BlockToFix->getAddress(), *TargetSymbol,
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Addend);
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printEdge(dbgs(), *BlockToFix, GE,
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getELFX86RelocationKindName(*Kind));
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dbgs() << "\n";
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});
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BlockToFix->addEdge(*Kind, FixupAddress - BlockToFix->getAddress(),
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*TargetSymbol, Addend);
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}
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}
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return Error::success();
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}
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public:
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ELFLinkGraphBuilder_x86_64(StringRef FileName,
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const object::ELFFile<object::ELF64LE> &Obj)
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: ELFLinkGraphBuilder(Obj, Triple("x86_64-unknown-linux"), FileName,
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getELFX86RelocationKindName) {}
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};
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class ELFJITLinker_x86_64 : public JITLinker<ELFJITLinker_x86_64> {
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friend class JITLinker<ELFJITLinker_x86_64>;
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public:
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ELFJITLinker_x86_64(std::unique_ptr<JITLinkContext> Ctx,
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std::unique_ptr<LinkGraph> G,
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PassConfiguration PassConfig)
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: JITLinker(std::move(Ctx), std::move(G), std::move(PassConfig)) {
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getPassConfig().PostAllocationPasses.push_back(
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[this](LinkGraph &G) { return getOrCreateGOTSymbol(G); });
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}
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private:
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Symbol *GOTSymbol = nullptr;
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Error getOrCreateGOTSymbol(LinkGraph &G) {
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auto DefineExternalGOTSymbolIfPresent =
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createDefineExternalSectionStartAndEndSymbolsPass(
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[&](LinkGraph &LG, Symbol &Sym) -> SectionRangeSymbolDesc {
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if (Sym.getName() == ELFGOTSymbolName)
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if (auto *GOTSection = G.findSectionByName(ELFGOTSectionName)) {
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GOTSymbol = &Sym;
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return {*GOTSection, true};
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}
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return {};
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});
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// Try to attach _GLOBAL_OFFSET_TABLE_ to the GOT if it's defined as an
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// external.
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if (auto Err = DefineExternalGOTSymbolIfPresent(G))
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return Err;
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// If we succeeded then we're done.
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if (GOTSymbol)
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return Error::success();
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// Otherwise look for a GOT section: If it already has a start symbol we'll
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// record it, otherwise we'll create our own.
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// If there's a GOT section but we didn't find an external GOT symbol...
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if (auto *GOTSection = G.findSectionByName(ELFGOTSectionName)) {
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// Check for an existing defined symbol.
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for (auto *Sym : GOTSection->symbols())
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if (Sym->getName() == ELFGOTSymbolName) {
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GOTSymbol = Sym;
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return Error::success();
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}
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// If there's no defined symbol then create one.
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SectionRange SR(*GOTSection);
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if (SR.empty())
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GOTSymbol = &G.addAbsoluteSymbol(ELFGOTSymbolName, 0, 0,
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Linkage::Strong, Scope::Local, true);
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else
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GOTSymbol =
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&G.addDefinedSymbol(*SR.getFirstBlock(), 0, ELFGOTSymbolName, 0,
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Linkage::Strong, Scope::Local, false, true);
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}
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return Error::success();
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}
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Error applyFixup(LinkGraph &G, Block &B, const Edge &E) const {
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using namespace ELF_x86_64_Edges;
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using namespace llvm::support;
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char *BlockWorkingMem = B.getAlreadyMutableContent().data();
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char *FixupPtr = BlockWorkingMem + E.getOffset();
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JITTargetAddress FixupAddress = B.getAddress() + E.getOffset();
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switch (E.getKind()) {
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case ELFX86RelocationKind::Branch32:
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case ELFX86RelocationKind::Branch32ToStub:
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case ELFX86RelocationKind::PCRel32:
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case ELFX86RelocationKind::PCRel32GOTLoad: {
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int64_t Value = E.getTarget().getAddress() + E.getAddend() - FixupAddress;
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if (LLVM_LIKELY(x86_64::isInRangeForImmS32(Value)))
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*(little32_t *)FixupPtr = Value;
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else
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return makeTargetOutOfRangeError(G, B, E);
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break;
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}
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case ELFX86RelocationKind::PCRel64: {
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int64_t Value = E.getTarget().getAddress() + E.getAddend() - FixupAddress;
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*(little64_t *)FixupPtr = Value;
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break;
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}
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case ELFX86RelocationKind::Pointer64: {
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int64_t Value = E.getTarget().getAddress() + E.getAddend();
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*(ulittle64_t *)FixupPtr = Value;
|
|
break;
|
|
}
|
|
case ELFX86RelocationKind::Delta32: {
|
|
int64_t Value = E.getTarget().getAddress() + E.getAddend() - FixupAddress;
|
|
if (LLVM_LIKELY(x86_64::isInRangeForImmS32(Value)))
|
|
*(little32_t *)FixupPtr = Value;
|
|
else
|
|
return makeTargetOutOfRangeError(G, B, E);
|
|
break;
|
|
}
|
|
case ELFX86RelocationKind::Delta64: {
|
|
int64_t Value = E.getTarget().getAddress() + E.getAddend() - FixupAddress;
|
|
*(little64_t *)FixupPtr = Value;
|
|
break;
|
|
}
|
|
case ELFX86RelocationKind::NegDelta32: {
|
|
int64_t Value = FixupAddress - E.getTarget().getAddress() + E.getAddend();
|
|
if (LLVM_LIKELY(x86_64::isInRangeForImmS32(Value)))
|
|
*(little32_t *)FixupPtr = Value;
|
|
else
|
|
return makeTargetOutOfRangeError(G, B, E);
|
|
break;
|
|
}
|
|
case ELFX86RelocationKind::NegDelta64: {
|
|
int64_t Value = FixupAddress - E.getTarget().getAddress() + E.getAddend();
|
|
*(little64_t *)FixupPtr = Value;
|
|
break;
|
|
}
|
|
case ELFX86RelocationKind::GOT64:
|
|
case ELFX86RelocationKind::GOTOFF64: {
|
|
// GOT64: Offset of GOT entry within GOT.
|
|
// GOTOFF64: Offset from GOT base to target.
|
|
// The expressions are the same in both cases, but in the GOT64 case the
|
|
// edge will have been fixed to point at the GOT entry, and in the
|
|
// GOTOFF64 case it will still point at the original target.
|
|
assert(GOTSymbol && "No GOT section symbol");
|
|
int64_t Value =
|
|
E.getTarget().getAddress() - GOTSymbol->getAddress() + E.getAddend();
|
|
*(little64_t *)FixupPtr = Value;
|
|
break;
|
|
}
|
|
default:
|
|
LLVM_DEBUG({
|
|
dbgs() << "Bad edge: " << getELFX86RelocationKindName(E.getKind())
|
|
<< "\n";
|
|
});
|
|
llvm_unreachable("Unsupported relocation");
|
|
}
|
|
return Error::success();
|
|
}
|
|
};
|
|
|
|
Expected<std::unique_ptr<LinkGraph>>
|
|
createLinkGraphFromELFObject_x86_64(MemoryBufferRef ObjectBuffer) {
|
|
LLVM_DEBUG({
|
|
dbgs() << "Building jitlink graph for new input "
|
|
<< ObjectBuffer.getBufferIdentifier() << "...\n";
|
|
});
|
|
|
|
auto ELFObj = object::ObjectFile::createELFObjectFile(ObjectBuffer);
|
|
if (!ELFObj)
|
|
return ELFObj.takeError();
|
|
|
|
auto &ELFObjFile = cast<object::ELFObjectFile<object::ELF64LE>>(**ELFObj);
|
|
return ELFLinkGraphBuilder_x86_64((*ELFObj)->getFileName(),
|
|
ELFObjFile.getELFFile())
|
|
.buildGraph();
|
|
}
|
|
|
|
static SectionRangeSymbolDesc
|
|
identifyELFSectionStartAndEndSymbols(LinkGraph &G, Symbol &Sym) {
|
|
constexpr StringRef StartSymbolPrefix = "__start";
|
|
constexpr StringRef EndSymbolPrefix = "__end";
|
|
|
|
auto SymName = Sym.getName();
|
|
if (SymName.startswith(StartSymbolPrefix)) {
|
|
if (auto *Sec =
|
|
G.findSectionByName(SymName.drop_front(StartSymbolPrefix.size())))
|
|
return {*Sec, true};
|
|
} else if (SymName.startswith(EndSymbolPrefix)) {
|
|
if (auto *Sec =
|
|
G.findSectionByName(SymName.drop_front(EndSymbolPrefix.size())))
|
|
return {*Sec, false};
|
|
}
|
|
return {};
|
|
}
|
|
|
|
void link_ELF_x86_64(std::unique_ptr<LinkGraph> G,
|
|
std::unique_ptr<JITLinkContext> Ctx) {
|
|
PassConfiguration Config;
|
|
|
|
if (Ctx->shouldAddDefaultTargetPasses(G->getTargetTriple())) {
|
|
|
|
Config.PrePrunePasses.push_back(EHFrameSplitter(".eh_frame"));
|
|
Config.PrePrunePasses.push_back(EHFrameEdgeFixer(
|
|
".eh_frame", G->getPointerSize(), Delta64, Delta32, NegDelta32));
|
|
Config.PrePrunePasses.push_back(EHFrameNullTerminator(".eh_frame"));
|
|
|
|
// Construct a JITLinker and run the link function.
|
|
// Add a mark-live pass.
|
|
if (auto MarkLive = Ctx->getMarkLivePass(G->getTargetTriple()))
|
|
Config.PrePrunePasses.push_back(std::move(MarkLive));
|
|
else
|
|
Config.PrePrunePasses.push_back(markAllSymbolsLive);
|
|
|
|
// Add an in-place GOT/Stubs pass.
|
|
Config.PostPrunePasses.push_back(
|
|
PerGraphGOTAndPLTStubsBuilder_ELF_x86_64::asPass);
|
|
|
|
// Resolve any external section start / end symbols.
|
|
Config.PostAllocationPasses.push_back(
|
|
createDefineExternalSectionStartAndEndSymbolsPass(
|
|
identifyELFSectionStartAndEndSymbols));
|
|
|
|
// Add GOT/Stubs optimizer pass.
|
|
Config.PreFixupPasses.push_back(optimizeELF_x86_64_GOTAndStubs);
|
|
}
|
|
|
|
if (auto Err = Ctx->modifyPassConfig(*G, Config))
|
|
return Ctx->notifyFailed(std::move(Err));
|
|
|
|
ELFJITLinker_x86_64::link(std::move(Ctx), std::move(G), std::move(Config));
|
|
}
|
|
const char *getELFX86RelocationKindName(Edge::Kind R) {
|
|
switch (R) {
|
|
case Branch32:
|
|
return "Branch32";
|
|
case Branch32ToStub:
|
|
return "Branch32ToStub";
|
|
case Pointer32:
|
|
return "Pointer32";
|
|
case Pointer64:
|
|
return "Pointer64";
|
|
case Pointer64Anon:
|
|
return "Pointer64Anon";
|
|
case PCRel32:
|
|
return "PCRel32";
|
|
case PCRel32Minus1:
|
|
return "PCRel32Minus1";
|
|
case PCRel32Minus2:
|
|
return "PCRel32Minus2";
|
|
case PCRel32Minus4:
|
|
return "PCRel32Minus4";
|
|
case PCRel32Anon:
|
|
return "PCRel32Anon";
|
|
case PCRel32Minus1Anon:
|
|
return "PCRel32Minus1Anon";
|
|
case PCRel32Minus2Anon:
|
|
return "PCRel32Minus2Anon";
|
|
case PCRel32Minus4Anon:
|
|
return "PCRel32Minus4Anon";
|
|
case PCRel32GOTLoad:
|
|
return "PCRel32GOTLoad";
|
|
case PCRel32GOT:
|
|
return "PCRel32GOT";
|
|
case PCRel32TLV:
|
|
return "PCRel32TLV";
|
|
case Delta32:
|
|
return "Delta32";
|
|
case Delta64:
|
|
return "Delta64";
|
|
case NegDelta32:
|
|
return "NegDelta32";
|
|
case NegDelta64:
|
|
return "NegDelta64";
|
|
}
|
|
return getGenericEdgeKindName(static_cast<Edge::Kind>(R));
|
|
}
|
|
} // end namespace jitlink
|
|
} // end namespace llvm
|