cb424d7448
verify-patch-sanity.py validates every active recipe .patch has internally- consistent hunk line counts — catching the 'malformed patch at line N' failure at commit/CI/preflight time instead of hours into a cook. This cycle hit that class three times (qtwaylandscanner, sddm, xwayland), each only discovered when cookbook tried to apply the patch. Running it across the repo found 29 latent malformed patches (validated against GNU patch: e.g. relibc/P3-sysv-ipc reproduces 'malformed patch at line 22'). They were harmless only because they sit in vendored recipes (baked, not re- applied) — but would fail on any version-bump re-derivation. --fix recounts the hunk headers (body untouched) and repaired all 29. Wired into build-preflight.sh (Phase 1.0D) and redbear-ci.yml, with a unit test (test-patch-sanity.sh). Skips archived/legacy trees and unvalidatable formats (empty placeholders, bare-@@ git hunks).
147 lines
5.1 KiB
C++
147 lines
5.1 KiB
C++
//===- MCAsmBackend.cpp - Target MC Assembly Backend ----------------------===//
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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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#include "llvm/MC/MCAsmBackend.h"
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#include "llvm/MC/MCAssembler.h"
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#include "llvm/MC/MCDXContainerWriter.h"
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#include "llvm/MC/MCELFObjectWriter.h"
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#include "llvm/MC/MCGOFFObjectWriter.h"
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#include "llvm/MC/MCMachObjectWriter.h"
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#include "llvm/MC/MCObjectWriter.h"
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#include "llvm/MC/MCSPIRVObjectWriter.h"
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#include "llvm/MC/MCWasmObjectWriter.h"
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#include "llvm/MC/MCWinCOFFObjectWriter.h"
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#include "llvm/MC/MCXCOFFObjectWriter.h"
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#include <cassert>
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#include <cstddef>
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#include <cstdint>
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using namespace llvm;
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MCAsmBackend::~MCAsmBackend() = default;
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MCContext &MCAsmBackend::getContext() const { return Asm->getContext(); }
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std::unique_ptr<MCObjectWriter>
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MCAsmBackend::createObjectWriter(raw_pwrite_stream &OS) const {
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auto TW = createObjectTargetWriter();
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bool IsLE = Endian == llvm::endianness::little;
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switch (TW->getFormat()) {
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case Triple::MachO:
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return std::make_unique<MachObjectWriter>(
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cast<MCMachObjectTargetWriter>(std::move(TW)), OS, IsLE);
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case Triple::COFF:
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return createWinCOFFObjectWriter(
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cast<MCWinCOFFObjectTargetWriter>(std::move(TW)), OS);
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case Triple::ELF:
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return std::make_unique<ELFObjectWriter>(
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cast<MCELFObjectTargetWriter>(std::move(TW)), OS, IsLE);
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case Triple::SPIRV:
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return createSPIRVObjectWriter(
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cast<MCSPIRVObjectTargetWriter>(std::move(TW)), OS);
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case Triple::Wasm:
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return createWasmObjectWriter(cast<MCWasmObjectTargetWriter>(std::move(TW)),
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OS);
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case Triple::GOFF:
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return createGOFFObjectWriter(cast<MCGOFFObjectTargetWriter>(std::move(TW)),
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OS);
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case Triple::XCOFF:
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return createXCOFFObjectWriter(
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cast<MCXCOFFObjectTargetWriter>(std::move(TW)), OS);
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case Triple::DXContainer:
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return std::make_unique<DXContainerObjectWriter>(
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cast<MCDXContainerTargetWriter>(std::move(TW)), OS);
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default:
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llvm_unreachable("unexpected object format");
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}
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}
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std::unique_ptr<MCObjectWriter>
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MCAsmBackend::createDwoObjectWriter(raw_pwrite_stream &OS,
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raw_pwrite_stream &DwoOS) const {
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auto TW = createObjectTargetWriter();
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switch (TW->getFormat()) {
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case Triple::COFF:
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return createWinCOFFDwoObjectWriter(
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cast<MCWinCOFFObjectTargetWriter>(std::move(TW)), OS, DwoOS);
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case Triple::ELF:
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return std::make_unique<ELFObjectWriter>(
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cast<MCELFObjectTargetWriter>(std::move(TW)), OS, DwoOS,
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Endian == llvm::endianness::little);
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case Triple::Wasm:
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return createWasmDwoObjectWriter(
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cast<MCWasmObjectTargetWriter>(std::move(TW)), OS, DwoOS);
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default:
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report_fatal_error("dwo only supported with COFF, ELF, and Wasm");
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}
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}
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std::optional<MCFixupKind> MCAsmBackend::getFixupKind(StringRef Name) const {
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return std::nullopt;
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}
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MCFixupKindInfo MCAsmBackend::getFixupKindInfo(MCFixupKind Kind) const {
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// clang-format off
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static const MCFixupKindInfo Builtins[] = {
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{"FK_NONE", 0, 0, 0},
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{"FK_Data_1", 0, 8, 0},
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{"FK_Data_2", 0, 16, 0},
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{"FK_Data_4", 0, 32, 0},
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{"FK_Data_8", 0, 64, 0},
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{"FK_Data_leb128", 0, 0, 0},
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{"FK_SecRel_1", 0, 8, 0},
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{"FK_SecRel_2", 0, 16, 0},
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{"FK_SecRel_4", 0, 32, 0},
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{"FK_SecRel_8", 0, 64, 0},
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};
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// clang-format on
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assert(size_t(Kind - FK_NONE) < std::size(Builtins) && "Unknown fixup kind");
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return Builtins[Kind - FK_NONE];
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}
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bool MCAsmBackend::fixupNeedsRelaxationAdvanced(const MCFixup &Fixup,
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const MCValue &, uint64_t Value,
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bool Resolved) const {
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if (!Resolved)
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return true;
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return fixupNeedsRelaxation(Fixup, Value);
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}
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void MCAsmBackend::maybeAddReloc(const MCFragment &F, const MCFixup &Fixup,
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const MCValue &Target, uint64_t &Value,
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bool IsResolved) {
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if (!IsResolved)
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Asm->getWriter().recordRelocation(F, Fixup, Target, Value);
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}
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bool MCAsmBackend::isDarwinCanonicalPersonality(const MCSymbol *Sym) const {
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// Consider a NULL personality (ie., no personality encoding) to be canonical
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// because it's always at 0.
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if (!Sym)
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return true;
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if (!Sym->isMachO())
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llvm_unreachable("Expected MachO symbols only");
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StringRef name = Sym->getName();
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// XXX: We intentionally leave out "___gcc_personality_v0" because, despite
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// being system-defined like these two, it is not very commonly-used.
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// Reserving an empty slot for it seems silly.
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return name == "___gxx_personality_v0" || name == "___objc_personality_v0";
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}
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const MCSubtargetInfo *MCAsmBackend::getSubtargetInfo(const MCFragment &F) {
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const MCSubtargetInfo *STI = nullptr;
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if (auto *DF = dyn_cast<MCEncodedFragment>(&F)) {
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STI = DF->getSubtargetInfo();
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assert(!DF->hasInstructions() || STI != nullptr);
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}
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return STI;
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}
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