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).
541 lines
20 KiB
C++
541 lines
20 KiB
C++
//===- MarkLive.cpp -------------------------------------------------------===//
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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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// This file implements --gc-sections, which is a feature to remove unused
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// sections from output. Unused sections are sections that are not reachable
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// from known GC-root symbols or sections. Naturally the feature is
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// implemented as a mark-sweep garbage collector.
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//
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// Here's how it works. Each InputSectionBase has a "Live" bit. The bit is off
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// by default. Starting with GC-root symbols or sections, markLive function
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// defined in this file visits all reachable sections to set their Live
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// bits. Writer will then ignore sections whose Live bits are off, so that
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// such sections are not included into output.
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//
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//===----------------------------------------------------------------------===//
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#include "MarkLive.h"
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#include "InputFiles.h"
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#include "InputSection.h"
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#include "LinkerScript.h"
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#include "SymbolTable.h"
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#include "Symbols.h"
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#include "SyntheticSections.h"
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#include "Target.h"
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#include "lld/Common/Strings.h"
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#include "llvm/ADT/DenseMapInfoVariant.h"
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#include "llvm/ADT/STLExtras.h"
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#include "llvm/Support/TimeProfiler.h"
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#include <variant>
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#include <vector>
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using namespace llvm;
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using namespace llvm::ELF;
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using namespace llvm::object;
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using namespace llvm::support::endian;
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using namespace lld;
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using namespace lld::elf;
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namespace {
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using SecOffset = std::pair<InputSectionBase *, unsigned>;
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// Something that can have an independent reason for being live.
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using LiveItem = std::variant<InputSectionBase *, Symbol *, SecOffset>;
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// The most proximate reason that something is live.
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struct LiveReason {
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std::optional<LiveItem> item;
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StringRef desc;
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};
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template <class ELFT, bool TrackWhyLive> class MarkLive {
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public:
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MarkLive(Ctx &ctx, unsigned partition) : ctx(ctx), partition(partition) {}
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void run();
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void moveToMain();
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void printWhyLive(Symbol *s) const;
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private:
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void enqueue(InputSectionBase *sec, uint64_t offset, Symbol *sym,
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LiveReason reason);
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void markSymbol(Symbol *sym, StringRef reason);
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void mark();
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template <class RelTy>
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void resolveReloc(InputSectionBase &sec, RelTy &rel, bool fromFDE);
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template <class RelTy>
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void scanEhFrameSection(EhInputSection &eh, ArrayRef<RelTy> rels);
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Ctx &ctx;
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// The index of the partition that we are currently processing.
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unsigned partition;
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// A list of sections to visit.
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SmallVector<InputSection *, 0> queue;
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// There are normally few input sections whose names are valid C
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// identifiers, so we just store a SmallVector instead of a multimap.
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DenseMap<StringRef, SmallVector<InputSectionBase *, 0>> cNamedSections;
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// The most proximate reason that something is live. This forms a DAG between
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// LiveItems. Acyclicality is maintained by only admitting the first
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// discovered reason for each LiveItem; this captures the acyclic region of
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// the liveness graph around the GC roots.
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DenseMap<LiveItem, LiveReason> whyLive;
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};
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} // namespace
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template <class ELFT>
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static uint64_t getAddend(Ctx &ctx, InputSectionBase &sec,
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const typename ELFT::Rel &rel) {
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return ctx.target->getImplicitAddend(sec.content().begin() + rel.r_offset,
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rel.getType(ctx.arg.isMips64EL));
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}
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template <class ELFT>
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static uint64_t getAddend(Ctx &, InputSectionBase &sec,
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const typename ELFT::Rela &rel) {
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return rel.r_addend;
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}
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// Currently, we assume all input CREL relocations have an explicit addend.
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template <class ELFT>
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static uint64_t getAddend(Ctx &, InputSectionBase &sec,
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const typename ELFT::Crel &rel) {
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return rel.r_addend;
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}
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template <class ELFT, bool TrackWhyLive>
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template <class RelTy>
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void MarkLive<ELFT, TrackWhyLive>::resolveReloc(InputSectionBase &sec,
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RelTy &rel, bool fromFDE) {
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// If a symbol is referenced in a live section, it is used.
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Symbol &sym = sec.file->getRelocTargetSym(rel);
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sym.used = true;
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LiveReason reason;
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if (TrackWhyLive)
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reason = {SecOffset(&sec, rel.r_offset), "referenced by"};
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if (auto *d = dyn_cast<Defined>(&sym)) {
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auto *relSec = dyn_cast_or_null<InputSectionBase>(d->section);
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if (!relSec)
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return;
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uint64_t offset = d->value;
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if (d->isSection())
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offset += getAddend<ELFT>(ctx, sec, rel);
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// fromFDE being true means this is referenced by a FDE in a .eh_frame
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// piece. The relocation points to the described function or to a LSDA. We
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// only need to keep the LSDA live, so ignore anything that points to
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// executable sections. If the LSDA is in a section group or has the
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// SHF_LINK_ORDER flag, we ignore the relocation as well because (a) if the
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// associated text section is live, the LSDA will be retained due to section
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// group/SHF_LINK_ORDER rules (b) if the associated text section should be
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// discarded, marking the LSDA will unnecessarily retain the text section.
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if (!(fromFDE && ((relSec->flags & (SHF_EXECINSTR | SHF_LINK_ORDER)) ||
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relSec->nextInSectionGroup))) {
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Symbol *canonicalSym = d;
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if (TrackWhyLive && d->isSection()) {
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// This is expensive, so ideally this would be deferred until it's known
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// whether this reference contributes to a printed whyLive chain, but
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// that determination cannot be made without knowing the enclosing
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// symbol.
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if (Symbol *s = relSec->getEnclosingSymbol(offset))
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canonicalSym = s;
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else
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canonicalSym = nullptr;
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}
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enqueue(relSec, offset, canonicalSym, reason);
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}
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return;
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}
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if (auto *ss = dyn_cast<SharedSymbol>(&sym)) {
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if (!ss->isWeak()) {
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cast<SharedFile>(ss->file)->isNeeded = true;
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if (TrackWhyLive)
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whyLive.try_emplace(&sym, reason);
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}
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}
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for (InputSectionBase *sec : cNamedSections.lookup(sym.getName()))
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enqueue(sec, /*offset=*/0, /*sym=*/nullptr, reason);
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}
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// The .eh_frame section is an unfortunate special case.
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// The section is divided in CIEs and FDEs and the relocations it can have are
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// * CIEs can refer to a personality function.
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// * FDEs can refer to a LSDA
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// * FDEs refer to the function they contain information about
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// The last kind of relocation cannot keep the referred section alive, or they
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// would keep everything alive in a common object file. In fact, each FDE is
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// alive if the section it refers to is alive.
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// To keep things simple, in here we just ignore the last relocation kind. The
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// other two keep the referred section alive.
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//
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// A possible improvement would be to fully process .eh_frame in the middle of
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// the gc pass. With that we would be able to also gc some sections holding
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// LSDAs and personality functions if we found that they were unused.
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template <class ELFT, bool TrackWhyLive>
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template <class RelTy>
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void MarkLive<ELFT, TrackWhyLive>::scanEhFrameSection(EhInputSection &eh,
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ArrayRef<RelTy> rels) {
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for (const EhSectionPiece &cie : eh.cies)
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if (cie.firstRelocation != unsigned(-1))
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resolveReloc(eh, rels[cie.firstRelocation], false);
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for (const EhSectionPiece &fde : eh.fdes) {
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size_t firstRelI = fde.firstRelocation;
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if (firstRelI == (unsigned)-1)
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continue;
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uint64_t pieceEnd = fde.inputOff + fde.size;
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for (size_t j = firstRelI, end2 = rels.size();
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j < end2 && rels[j].r_offset < pieceEnd; ++j)
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resolveReloc(eh, rels[j], true);
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}
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}
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// Some sections are used directly by the loader, so they should never be
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// garbage-collected. This function returns true if a given section is such
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// section.
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static bool isReserved(InputSectionBase *sec) {
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switch (sec->type) {
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case SHT_FINI_ARRAY:
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case SHT_INIT_ARRAY:
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case SHT_PREINIT_ARRAY:
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return true;
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case SHT_NOTE:
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// SHT_NOTE sections in a group are subject to garbage collection.
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return !sec->nextInSectionGroup;
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default:
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// Support SHT_PROGBITS .init_array (https://golang.org/issue/50295) and
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// .init_array.N (https://github.com/rust-lang/rust/issues/92181) for a
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// while.
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StringRef s = sec->name;
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return s == ".init" || s == ".fini" || s.starts_with(".init_array") ||
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s == ".jcr" || s.starts_with(".ctors") || s.starts_with(".dtors");
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}
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}
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template <class ELFT, bool TrackWhyLive>
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void MarkLive<ELFT, TrackWhyLive>::enqueue(InputSectionBase *sec,
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uint64_t offset, Symbol *sym,
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LiveReason reason) {
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// Usually, a whole section is marked as live or dead, but in mergeable
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// (splittable) sections, each piece of data has independent liveness bit.
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// So we explicitly tell it which offset is in use.
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if (auto *ms = dyn_cast<MergeInputSection>(sec))
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ms->getSectionPiece(offset).live = true;
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// Set Sec->Partition to the meet (i.e. the "minimum") of Partition and
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// Sec->Partition in the following lattice: 1 < other < 0. If Sec->Partition
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// doesn't change, we don't need to do anything.
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if (sec->partition == 1 || sec->partition == partition)
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return;
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sec->partition = sec->partition ? 1 : partition;
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if (TrackWhyLive) {
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if (sym) {
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// If a specific symbol is referenced, that keeps it live. The symbol then
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// keeps its section live.
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whyLive.try_emplace(sym, reason);
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whyLive.try_emplace(sec, LiveReason{sym, "contained live symbol"});
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} else {
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// Otherwise, the reference generically keeps the section live.
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whyLive.try_emplace(sec, reason);
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}
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}
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// Add input section to the queue.
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if (InputSection *s = dyn_cast<InputSection>(sec))
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queue.push_back(s);
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}
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// Print the stack of reasons that the given symbol is live.
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template <class ELFT, bool TrackWhyLive>
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void MarkLive<ELFT, TrackWhyLive>::printWhyLive(Symbol *s) const {
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// Skip dead symbols. A symbol is dead if it belongs to a dead section.
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if (auto *d = dyn_cast<Defined>(s)) {
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auto *sec = dyn_cast_or_null<InputSectionBase>(d->section);
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if (sec && !sec->isLive())
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return;
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}
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auto msg = Msg(ctx);
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const auto printSymbol = [&](Symbol *s) {
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msg << s->file << ":(" << s << ')';
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};
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msg << "live symbol: ";
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printSymbol(s);
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LiveItem cur = s;
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while (true) {
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auto it = whyLive.find(cur);
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LiveReason reason;
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// If there is a specific reason this item is live...
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if (it != whyLive.end()) {
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reason = it->second;
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} else {
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// This item is live, but it has no tracked reason. It must be an
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// unreferenced symbol in a live section or a symbol with no section.
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InputSectionBase *sec = nullptr;
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if (auto *d = dyn_cast<Defined>(std::get<Symbol *>(cur)))
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sec = dyn_cast_or_null<InputSectionBase>(d->section);
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reason = sec ? LiveReason{sec, "in live section"}
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: LiveReason{std::nullopt, "no section"};
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}
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if (!reason.item) {
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msg << " (" << reason.desc << ')';
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break;
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}
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msg << "\n>>> " << reason.desc << ": ";
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// The reason may not yet have been resolved to a symbol; do so now.
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if (std::holds_alternative<SecOffset>(*reason.item)) {
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const auto &so = std::get<SecOffset>(*reason.item);
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InputSectionBase *sec = so.first;
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Defined *sym = sec->getEnclosingSymbol(so.second);
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cur = sym ? LiveItem(sym) : LiveItem(sec);
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} else {
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cur = *reason.item;
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}
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if (std::holds_alternative<Symbol *>(cur))
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printSymbol(std::get<Symbol *>(cur));
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else
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msg << std::get<InputSectionBase *>(cur);
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}
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}
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template <class ELFT, bool TrackWhyLive>
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void MarkLive<ELFT, TrackWhyLive>::markSymbol(Symbol *sym, StringRef reason) {
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if (auto *d = dyn_cast_or_null<Defined>(sym))
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if (auto *isec = dyn_cast_or_null<InputSectionBase>(d->section))
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enqueue(isec, d->value, sym, {std::nullopt, reason});
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}
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// This is the main function of the garbage collector.
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// Starting from GC-root sections, this function visits all reachable
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// sections to set their "Live" bits.
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template <class ELFT, bool TrackWhyLive>
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void MarkLive<ELFT, TrackWhyLive>::run() {
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// Add GC root symbols.
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// Preserve externally-visible symbols if the symbols defined by this
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// file can interpose other ELF file's symbols at runtime.
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for (Symbol *sym : ctx.symtab->getSymbols())
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if (sym->isExported && sym->partition == partition)
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markSymbol(sym, "externally visible symbol; may interpose");
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// If this isn't the main partition, that's all that we need to preserve.
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if (partition != 1) {
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mark();
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return;
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}
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markSymbol(ctx.symtab->find(ctx.arg.entry), "entry point");
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markSymbol(ctx.symtab->find(ctx.arg.init), "initializer function");
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markSymbol(ctx.symtab->find(ctx.arg.fini), "finalizer function");
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for (StringRef s : ctx.arg.undefined)
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markSymbol(ctx.symtab->find(s), "undefined command line flag");
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for (StringRef s : ctx.script->referencedSymbols)
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markSymbol(ctx.symtab->find(s), "referenced by linker script");
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for (auto [symName, _] : ctx.symtab->cmseSymMap) {
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markSymbol(ctx.symtab->cmseSymMap[symName].sym, "ARM CMSE symbol");
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markSymbol(ctx.symtab->cmseSymMap[symName].acleSeSym, "ARM CMSE symbol");
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}
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// Mark .eh_frame sections as live because there are usually no relocations
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// that point to .eh_frames. Otherwise, the garbage collector would drop
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// all of them. We also want to preserve personality routines and LSDA
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// referenced by .eh_frame sections, so we scan them for that here.
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for (EhInputSection *eh : ctx.ehInputSections) {
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const RelsOrRelas<ELFT> rels =
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eh->template relsOrRelas<ELFT>(/*supportsCrel=*/false);
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if (rels.areRelocsRel())
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scanEhFrameSection(*eh, rels.rels);
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else if (rels.relas.size())
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scanEhFrameSection(*eh, rels.relas);
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}
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for (InputSectionBase *sec : ctx.inputSections) {
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if (sec->flags & SHF_GNU_RETAIN) {
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enqueue(sec, /*offset=*/0, /*sym=*/nullptr, {std::nullopt, "retained"});
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continue;
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}
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if (sec->flags & SHF_LINK_ORDER)
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continue;
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// Usually, non-SHF_ALLOC sections are not removed even if they are
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// unreachable through relocations because reachability is not a good signal
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// whether they are garbage or not (e.g. there is usually no section
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// referring to a .comment section, but we want to keep it.) When a
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// non-SHF_ALLOC section is retained, we also retain sections dependent on
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// it.
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//
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// Note on SHF_LINK_ORDER: Such sections contain metadata and they
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// have a reverse dependency on the InputSection they are linked with.
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// We are able to garbage collect them.
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//
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// Note on SHF_REL{,A}: Such sections reach here only when -r
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// or --emit-reloc were given. And they are subject of garbage
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// collection because, if we remove a text section, we also
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// remove its relocation section.
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//
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// Note on nextInSectionGroup: The ELF spec says that group sections are
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// included or omitted as a unit. We take the interpretation that:
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//
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// - Group members (nextInSectionGroup != nullptr) are subject to garbage
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// collection.
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// - Groups members are retained or discarded as a unit.
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if (!(sec->flags & SHF_ALLOC)) {
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if (!isStaticRelSecType(sec->type) && !sec->nextInSectionGroup) {
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sec->markLive();
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for (InputSection *isec : sec->dependentSections)
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isec->markLive();
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}
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}
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// Preserve special sections and those which are specified in linker
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// script KEEP command.
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if (isReserved(sec)) {
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enqueue(sec, /*offset=*/0, /*sym=*/nullptr, {std::nullopt, "reserved"});
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} else if (ctx.script->shouldKeep(sec)) {
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enqueue(sec, /*offset=*/0, /*sym=*/nullptr,
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{std::nullopt, "KEEP in linker script"});
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} else if ((!ctx.arg.zStartStopGC || sec->name.starts_with("__libc_")) &&
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isValidCIdentifier(sec->name)) {
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// As a workaround for glibc libc.a before 2.34
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// (https://sourceware.org/PR27492), retain __libc_atexit and similar
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// sections regardless of zStartStopGC.
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cNamedSections[ctx.saver.save("__start_" + sec->name)].push_back(sec);
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cNamedSections[ctx.saver.save("__stop_" + sec->name)].push_back(sec);
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}
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}
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mark();
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if (TrackWhyLive) {
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const auto handleSym = [&](Symbol *sym) {
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if (llvm::any_of(ctx.arg.whyLive, [sym](const llvm::GlobPattern &pat) {
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return pat.match(sym->getName());
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}))
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printWhyLive(sym);
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};
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for (Symbol *sym : ctx.symtab->getSymbols())
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handleSym(sym);
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for (ELFFileBase *file : ctx.objectFiles)
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for (Symbol *sym : file->getSymbols())
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if (sym->isLocal())
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handleSym(sym);
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}
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}
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template <class ELFT, bool TrackWhyLive>
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void MarkLive<ELFT, TrackWhyLive>::mark() {
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// Mark all reachable sections.
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while (!queue.empty()) {
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InputSectionBase &sec = *queue.pop_back_val();
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|
|
|
const RelsOrRelas<ELFT> rels = sec.template relsOrRelas<ELFT>();
|
|
for (const typename ELFT::Rel &rel : rels.rels)
|
|
resolveReloc(sec, rel, false);
|
|
for (const typename ELFT::Rela &rel : rels.relas)
|
|
resolveReloc(sec, rel, false);
|
|
for (const typename ELFT::Crel &rel : rels.crels)
|
|
resolveReloc(sec, rel, false);
|
|
|
|
for (InputSectionBase *isec : sec.dependentSections)
|
|
enqueue(isec, /*offset=*/0, /*sym=*/nullptr,
|
|
{&sec, "depended on by section"});
|
|
|
|
// Mark the next group member.
|
|
if (sec.nextInSectionGroup)
|
|
enqueue(sec.nextInSectionGroup, /*offset=*/0, /*sym=*/nullptr,
|
|
{&sec, "in section group with"});
|
|
}
|
|
}
|
|
|
|
// Move the sections for some symbols to the main partition, specifically ifuncs
|
|
// (because they can result in an IRELATIVE being added to the main partition's
|
|
// GOT, which means that the ifunc must be available when the main partition is
|
|
// loaded) and TLS symbols (because we only know how to correctly process TLS
|
|
// relocations for the main partition).
|
|
//
|
|
// We also need to move sections whose names are C identifiers that are referred
|
|
// to from __start_/__stop_ symbols because there will only be one set of
|
|
// symbols for the whole program.
|
|
template <class ELFT, bool TrackWhyLive>
|
|
void MarkLive<ELFT, TrackWhyLive>::moveToMain() {
|
|
for (ELFFileBase *file : ctx.objectFiles)
|
|
for (Symbol *s : file->getSymbols())
|
|
if (auto *d = dyn_cast<Defined>(s))
|
|
if ((d->type == STT_GNU_IFUNC || d->type == STT_TLS) && d->section &&
|
|
d->section->isLive())
|
|
markSymbol(s, /*reason=*/{});
|
|
|
|
for (InputSectionBase *sec : ctx.inputSections) {
|
|
if (!sec->isLive() || !isValidCIdentifier(sec->name))
|
|
continue;
|
|
if (ctx.symtab->find(("__start_" + sec->name).str()) ||
|
|
ctx.symtab->find(("__stop_" + sec->name).str()))
|
|
enqueue(sec, /*offset=*/0, /*sym=*/nullptr, /*reason=*/{});
|
|
}
|
|
|
|
mark();
|
|
}
|
|
|
|
// Before calling this function, Live bits are off for all
|
|
// input sections. This function make some or all of them on
|
|
// so that they are emitted to the output file.
|
|
template <class ELFT> void elf::markLive(Ctx &ctx) {
|
|
llvm::TimeTraceScope timeScope("markLive");
|
|
// If --gc-sections is not given, retain all input sections.
|
|
if (!ctx.arg.gcSections) {
|
|
// If a DSO defines a symbol referenced in a regular object, it is needed.
|
|
for (Symbol *sym : ctx.symtab->getSymbols())
|
|
if (auto *s = dyn_cast<SharedSymbol>(sym))
|
|
if (s->isUsedInRegularObj && !s->isWeak())
|
|
cast<SharedFile>(s->file)->isNeeded = true;
|
|
return;
|
|
}
|
|
|
|
for (InputSectionBase *sec : ctx.inputSections)
|
|
sec->markDead();
|
|
|
|
// Follow the graph to mark all live sections.
|
|
for (unsigned i = 1, e = ctx.partitions.size(); i <= e; ++i)
|
|
if (ctx.arg.whyLive.empty())
|
|
MarkLive<ELFT, false>(ctx, i).run();
|
|
else
|
|
MarkLive<ELFT, true>(ctx, i).run();
|
|
|
|
// If we have multiple partitions, some sections need to live in the main
|
|
// partition even if they were allocated to a loadable partition. Move them
|
|
// there now.
|
|
if (ctx.partitions.size() != 1)
|
|
MarkLive<ELFT, false>(ctx, 1).moveToMain();
|
|
|
|
// Report garbage-collected sections.
|
|
if (ctx.arg.printGcSections)
|
|
for (InputSectionBase *sec : ctx.inputSections)
|
|
if (!sec->isLive())
|
|
Msg(ctx) << "removing unused section " << sec;
|
|
}
|
|
|
|
template void elf::markLive<ELF32LE>(Ctx &);
|
|
template void elf::markLive<ELF32BE>(Ctx &);
|
|
template void elf::markLive<ELF64LE>(Ctx &);
|
|
template void elf::markLive<ELF64BE>(Ctx &);
|