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eb66b33867
I did this a long time ago with a janky python script, but now clang-format has built-in support for this. I fed clang-format every line with a #include and let it re-sort things according to the precise LLVM rules for include ordering baked into clang-format these days. I've reverted a number of files where the results of sorting includes isn't healthy. Either places where we have legacy code relying on particular include ordering (where possible, I'll fix these separately) or where we have particular formatting around #include lines that I didn't want to disturb in this patch. This patch is *entirely* mechanical. If you get merge conflicts or anything, just ignore the changes in this patch and run clang-format over your #include lines in the files. Sorry for any noise here, but it is important to keep these things stable. I was seeing an increasing number of patches with irrelevant re-ordering of #include lines because clang-format was used. This patch at least isolates that churn, makes it easy to skip when resolving conflicts, and gets us to a clean baseline (again). llvm-svn: 304787
226 lines
8.1 KiB
C++
226 lines
8.1 KiB
C++
//===--- RuntimeDyldCOFFI386.h --- COFF/X86_64 specific code ---*- 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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// COFF x86 support for MC-JIT runtime dynamic linker.
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//
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//===----------------------------------------------------------------------===//
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#ifndef LLVM_LIB_EXECUTIONENGINE_RUNTIMEDYLD_TARGETS_RUNTIMEDYLDCOFFI386_H
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#define LLVM_LIB_EXECUTIONENGINE_RUNTIMEDYLD_TARGETS_RUNTIMEDYLDCOFFI386_H
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#include "../RuntimeDyldCOFF.h"
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#include "llvm/Object/COFF.h"
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#include "llvm/Support/COFF.h"
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#define DEBUG_TYPE "dyld"
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namespace llvm {
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class RuntimeDyldCOFFI386 : public RuntimeDyldCOFF {
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public:
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RuntimeDyldCOFFI386(RuntimeDyld::MemoryManager &MM,
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JITSymbolResolver &Resolver)
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: RuntimeDyldCOFF(MM, Resolver) {}
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unsigned getMaxStubSize() override {
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return 8; // 2-byte jmp instruction + 32-bit relative address + 2 byte pad
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}
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unsigned getStubAlignment() override { return 1; }
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Expected<relocation_iterator>
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processRelocationRef(unsigned SectionID,
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relocation_iterator RelI,
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const ObjectFile &Obj,
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ObjSectionToIDMap &ObjSectionToID,
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StubMap &Stubs) override {
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auto Symbol = RelI->getSymbol();
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if (Symbol == Obj.symbol_end())
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report_fatal_error("Unknown symbol in relocation");
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Expected<StringRef> TargetNameOrErr = Symbol->getName();
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if (!TargetNameOrErr)
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return TargetNameOrErr.takeError();
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StringRef TargetName = *TargetNameOrErr;
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auto SectionOrErr = Symbol->getSection();
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if (!SectionOrErr)
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return SectionOrErr.takeError();
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auto Section = *SectionOrErr;
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uint64_t RelType = RelI->getType();
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uint64_t Offset = RelI->getOffset();
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// Determine the Addend used to adjust the relocation value.
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uint64_t Addend = 0;
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SectionEntry &AddendSection = Sections[SectionID];
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uintptr_t ObjTarget = AddendSection.getObjAddress() + Offset;
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uint8_t *Displacement = (uint8_t *)ObjTarget;
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switch (RelType) {
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case COFF::IMAGE_REL_I386_DIR32:
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case COFF::IMAGE_REL_I386_DIR32NB:
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case COFF::IMAGE_REL_I386_SECREL:
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case COFF::IMAGE_REL_I386_REL32: {
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Addend = readBytesUnaligned(Displacement, 4);
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break;
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}
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default:
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break;
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}
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#if !defined(NDEBUG)
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SmallString<32> RelTypeName;
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RelI->getTypeName(RelTypeName);
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#endif
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DEBUG(dbgs() << "\t\tIn Section " << SectionID << " Offset " << Offset
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<< " RelType: " << RelTypeName << " TargetName: " << TargetName
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<< " Addend " << Addend << "\n");
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unsigned TargetSectionID = -1;
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if (Section == Obj.section_end()) {
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RelocationEntry RE(SectionID, Offset, RelType, 0, -1, 0, 0, 0, false, 0);
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addRelocationForSymbol(RE, TargetName);
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} else {
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if (auto TargetSectionIDOrErr =
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findOrEmitSection(Obj, *Section, Section->isText(), ObjSectionToID))
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TargetSectionID = *TargetSectionIDOrErr;
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else
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return TargetSectionIDOrErr.takeError();
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switch (RelType) {
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case COFF::IMAGE_REL_I386_ABSOLUTE:
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// This relocation is ignored.
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break;
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case COFF::IMAGE_REL_I386_DIR32:
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case COFF::IMAGE_REL_I386_DIR32NB:
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case COFF::IMAGE_REL_I386_REL32: {
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RelocationEntry RE =
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RelocationEntry(SectionID, Offset, RelType, Addend, TargetSectionID,
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getSymbolOffset(*Symbol), 0, 0, false, 0);
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addRelocationForSection(RE, TargetSectionID);
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break;
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}
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case COFF::IMAGE_REL_I386_SECTION: {
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RelocationEntry RE =
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RelocationEntry(TargetSectionID, Offset, RelType, 0);
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addRelocationForSection(RE, TargetSectionID);
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break;
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}
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case COFF::IMAGE_REL_I386_SECREL: {
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RelocationEntry RE = RelocationEntry(SectionID, Offset, RelType,
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getSymbolOffset(*Symbol) + Addend);
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addRelocationForSection(RE, TargetSectionID);
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break;
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}
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default:
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llvm_unreachable("unsupported relocation type");
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}
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}
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return ++RelI;
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}
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void resolveRelocation(const RelocationEntry &RE, uint64_t Value) override {
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const auto Section = Sections[RE.SectionID];
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uint8_t *Target = Section.getAddressWithOffset(RE.Offset);
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switch (RE.RelType) {
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case COFF::IMAGE_REL_I386_ABSOLUTE:
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// This relocation is ignored.
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break;
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case COFF::IMAGE_REL_I386_DIR32: {
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// The target's 32-bit VA.
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uint64_t Result =
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RE.Sections.SectionA == static_cast<uint32_t>(-1)
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? Value
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: Sections[RE.Sections.SectionA].getLoadAddressWithOffset(
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RE.Addend);
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assert(static_cast<int32_t>(Result) <= INT32_MAX &&
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"relocation overflow");
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assert(static_cast<int32_t>(Result) >= INT32_MIN &&
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"relocation underflow");
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DEBUG(dbgs() << "\t\tOffset: " << RE.Offset
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<< " RelType: IMAGE_REL_I386_DIR32"
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<< " TargetSection: " << RE.Sections.SectionA
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<< " Value: " << format("0x%08" PRIx32, Result) << '\n');
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writeBytesUnaligned(Result, Target, 4);
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break;
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}
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case COFF::IMAGE_REL_I386_DIR32NB: {
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// The target's 32-bit RVA.
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// NOTE: use Section[0].getLoadAddress() as an approximation of ImageBase
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uint64_t Result =
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Sections[RE.Sections.SectionA].getLoadAddressWithOffset(RE.Addend) -
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Sections[0].getLoadAddress();
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assert(static_cast<int32_t>(Result) <= INT32_MAX &&
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"relocation overflow");
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assert(static_cast<int32_t>(Result) >= INT32_MIN &&
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"relocation underflow");
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DEBUG(dbgs() << "\t\tOffset: " << RE.Offset
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<< " RelType: IMAGE_REL_I386_DIR32NB"
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<< " TargetSection: " << RE.Sections.SectionA
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<< " Value: " << format("0x%08" PRIx32, Result) << '\n');
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writeBytesUnaligned(Result, Target, 4);
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break;
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}
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case COFF::IMAGE_REL_I386_REL32: {
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// 32-bit relative displacement to the target.
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uint64_t Result = RE.Sections.SectionA == static_cast<uint32_t>(-1)
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? Value
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: Sections[RE.Sections.SectionA].getLoadAddress();
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Result = Result - Section.getLoadAddress() + RE.Addend - 4 - RE.Offset;
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assert(static_cast<int32_t>(Result) <= INT32_MAX &&
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"relocation overflow");
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assert(static_cast<int32_t>(Result) >= INT32_MIN &&
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"relocation underflow");
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DEBUG(dbgs() << "\t\tOffset: " << RE.Offset
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<< " RelType: IMAGE_REL_I386_REL32"
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<< " TargetSection: " << RE.Sections.SectionA
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<< " Value: " << format("0x%08" PRIx32, Result) << '\n');
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writeBytesUnaligned(Result, Target, 4);
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break;
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}
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case COFF::IMAGE_REL_I386_SECTION:
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// 16-bit section index of the section that contains the target.
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assert(static_cast<int32_t>(RE.SectionID) <= INT16_MAX &&
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"relocation overflow");
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assert(static_cast<int32_t>(RE.SectionID) >= INT16_MIN &&
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"relocation underflow");
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DEBUG(dbgs() << "\t\tOffset: " << RE.Offset
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<< " RelType: IMAGE_REL_I386_SECTION Value: " << RE.SectionID
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<< '\n');
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writeBytesUnaligned(RE.SectionID, Target, 2);
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break;
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case COFF::IMAGE_REL_I386_SECREL:
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// 32-bit offset of the target from the beginning of its section.
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assert(static_cast<int32_t>(RE.Addend) <= INT32_MAX &&
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"relocation overflow");
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assert(static_cast<int32_t>(RE.Addend) >= INT32_MIN &&
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"relocation underflow");
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DEBUG(dbgs() << "\t\tOffset: " << RE.Offset
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<< " RelType: IMAGE_REL_I386_SECREL Value: " << RE.Addend
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<< '\n');
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writeBytesUnaligned(RE.Addend, Target, 2);
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break;
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default:
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llvm_unreachable("unsupported relocation type");
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}
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}
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void registerEHFrames() override {}
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};
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}
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#endif
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