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Change the loader to do more bulk allocation when making slices of small objects (sym.Reloc, etc) as part of creating and populating sym.Symbols in loader.LoadFull(). This replaces a large number of small allocations with a smaller number of large allocations, improving performace. Compilebench numbers (linker portion) for this change: name old time/op new time/op delta LinkCompiler 1.71s ±11% 1.57s ± 9% -8.35% (p=0.000 n=19+20) LinkWithoutDebugCompiler 1.19s ±14% 1.10s ±13% -7.93% (p=0.000 n=20+19) name old user-time/op new user-time/op delta LinkCompiler 1.86s ±15% 1.34s ±10% -28.02% (p=0.000 n=20+20) LinkWithoutDebugCompiler 1.05s ±14% 0.95s ± 9% -9.17% (p=0.000 n=19+20) Hyperkube from kubernetes doesn't show any significant benefit (which seems a little surprising). Change-Id: Ide97f78532fb60b08bb6e4cfa097e9058f7ea8ab Reviewed-on: https://go-review.googlesource.com/c/go/+/203457 Run-TryBot: Than McIntosh <thanm@google.com> Reviewed-by: Cherry Zhang <cherryyz@google.com> Reviewed-by: Jeremy Faller <jeremy@golang.org> TryBot-Result: Gobot Gobot <gobot@golang.org>
1230 lines
33 KiB
Go
1230 lines
33 KiB
Go
// Copyright 2019 The Go Authors. All rights reserved.
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// Use of this source code is governed by a BSD-style
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// license that can be found in the LICENSE file.
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package loader
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import (
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"bytes"
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"cmd/internal/bio"
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"cmd/internal/dwarf"
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"cmd/internal/goobj2"
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"cmd/internal/obj"
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"cmd/internal/objabi"
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"cmd/internal/sys"
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"cmd/link/internal/sym"
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"fmt"
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"log"
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"os"
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"sort"
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"strconv"
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"strings"
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)
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var _ = fmt.Print
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// Sym encapsulates a global symbol index, used to identify a specific
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// Go symbol. The 0-valued Sym is corresponds to an invalid symbol.
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type Sym int
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// Relocs encapsulates the set of relocations on a given symbol; an
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// instance of this type is returned by the Loader Relocs() method.
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type Relocs struct {
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Count int // number of relocs
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li int // local index of symbol whose relocs we're examining
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r *oReader // object reader for containing package
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l *Loader // loader
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ext *sym.Symbol // external symbol if not nil
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}
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// Reloc contains the payload for a specific relocation.
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// TODO: replace this with sym.Reloc, once we change the
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// relocation target from "*sym.Symbol" to "loader.Sym" in sym.Reloc.
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type Reloc struct {
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Off int32 // offset to rewrite
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Size uint8 // number of bytes to rewrite: 0, 1, 2, or 4
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Type objabi.RelocType // the relocation type
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Add int64 // addend
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Sym Sym // global index of symbol the reloc addresses
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}
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// oReader is a wrapper type of obj.Reader, along with some
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// extra information.
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// TODO: rename to objReader once the old one is gone?
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type oReader struct {
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*goobj2.Reader
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unit *sym.CompilationUnit
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version int // version of static symbol
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flags uint32 // read from object file
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pkgprefix string
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rcache []Sym // cache mapping local PkgNone symbol to resolved Sym
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}
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type objIdx struct {
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r *oReader
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i Sym // start index
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e Sym // end index
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}
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type nameVer struct {
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name string
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v int
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}
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type bitmap []uint32
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// set the i-th bit.
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func (bm bitmap) Set(i Sym) {
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n, r := uint(i)/32, uint(i)%32
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bm[n] |= 1 << r
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}
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// whether the i-th bit is set.
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func (bm bitmap) Has(i Sym) bool {
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n, r := uint(i)/32, uint(i)%32
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return bm[n]&(1<<r) != 0
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}
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func makeBitmap(n int) bitmap {
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return make(bitmap, (n+31)/32)
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}
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// A Loader loads new object files and resolves indexed symbol references.
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type Loader struct {
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start map[*oReader]Sym // map from object file to its start index
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objs []objIdx // sorted by start index (i.e. objIdx.i)
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max Sym // current max index
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extStart Sym // from this index on, the symbols are externally defined
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extSyms []nameVer // externally defined symbols
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builtinSyms []Sym // global index of builtin symbols
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ocache int // index (into 'objs') of most recent lookup
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symsByName [2]map[string]Sym // map symbol name to index, two maps are for ABI0 and ABIInternal
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extStaticSyms map[nameVer]Sym // externally defined static symbols, keyed by name
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overwrite map[Sym]Sym // overwrite[i]=j if symbol j overwrites symbol i
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itablink map[Sym]struct{} // itablink[j] defined if j is go.itablink.*
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objByPkg map[string]*oReader // map package path to its Go object reader
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Syms []*sym.Symbol // indexed symbols. XXX we still make sym.Symbol for now.
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Reachable bitmap // bitmap of reachable symbols, indexed by global index
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// Used to implement field tracking; created during deadcode if
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// field tracking is enabled. Reachparent[K] contains the index of
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// the symbol that triggered the marking of symbol K as live.
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Reachparent []Sym
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relocBatch []sym.Reloc // for bulk allocation of relocations
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}
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func NewLoader() *Loader {
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nbuiltin := goobj2.NBuiltin()
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return &Loader{
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start: make(map[*oReader]Sym),
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objs: []objIdx{{nil, 0, 0}},
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symsByName: [2]map[string]Sym{make(map[string]Sym), make(map[string]Sym)},
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objByPkg: make(map[string]*oReader),
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overwrite: make(map[Sym]Sym),
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itablink: make(map[Sym]struct{}),
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extStaticSyms: make(map[nameVer]Sym),
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builtinSyms: make([]Sym, nbuiltin),
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}
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}
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// Return the start index in the global index space for a given object file.
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func (l *Loader) startIndex(r *oReader) Sym {
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return l.start[r]
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}
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// Add object file r, return the start index.
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func (l *Loader) addObj(pkg string, r *oReader) Sym {
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if _, ok := l.start[r]; ok {
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panic("already added")
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}
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pkg = objabi.PathToPrefix(pkg) // the object file contains escaped package path
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if _, ok := l.objByPkg[pkg]; !ok {
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l.objByPkg[pkg] = r
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}
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n := r.NSym() + r.NNonpkgdef()
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i := l.max + 1
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l.start[r] = i
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l.objs = append(l.objs, objIdx{r, i, i + Sym(n) - 1})
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l.max += Sym(n)
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return i
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}
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// Add a symbol with a given index, return if it is added.
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func (l *Loader) AddSym(name string, ver int, i Sym, r *oReader, dupok bool, typ sym.SymKind) bool {
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if l.extStart != 0 {
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panic("AddSym called after AddExtSym is called")
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}
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if ver == r.version {
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// Static symbol. Add its global index but don't
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// add to name lookup table, as it cannot be
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// referenced by name.
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return true
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}
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if oldi, ok := l.symsByName[ver][name]; ok {
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if dupok {
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return false
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}
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oldr, li := l.toLocal(oldi)
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oldsym := goobj2.Sym{}
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oldsym.Read(oldr.Reader, oldr.SymOff(li))
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if oldsym.Dupok() {
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return false
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}
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overwrite := r.DataSize(int(i-l.startIndex(r))) != 0
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if overwrite {
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// new symbol overwrites old symbol.
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oldtyp := sym.AbiSymKindToSymKind[objabi.SymKind(oldsym.Type)]
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if !oldtyp.IsData() && r.DataSize(li) == 0 {
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log.Fatalf("duplicated definition of symbol " + name)
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}
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l.overwrite[oldi] = i
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} else {
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// old symbol overwrites new symbol.
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if typ != sym.SDATA && typ != sym.SNOPTRDATA && typ != sym.SBSS && typ != sym.SNOPTRBSS { // only allow overwriting data symbol
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log.Fatalf("duplicated definition of symbol " + name)
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}
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l.overwrite[i] = oldi
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return false
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}
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}
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l.symsByName[ver][name] = i
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return true
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}
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// Add an external symbol (without index). Return the index of newly added
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// symbol, or 0 if not added.
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func (l *Loader) AddExtSym(name string, ver int) Sym {
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static := ver >= sym.SymVerStatic
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if static {
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if _, ok := l.extStaticSyms[nameVer{name, ver}]; ok {
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return 0
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}
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} else {
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if _, ok := l.symsByName[ver][name]; ok {
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return 0
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}
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}
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i := l.max + 1
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if static {
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l.extStaticSyms[nameVer{name, ver}] = i
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} else {
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l.symsByName[ver][name] = i
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}
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l.max++
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if l.extStart == 0 {
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l.extStart = i
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}
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l.extSyms = append(l.extSyms, nameVer{name, ver})
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l.growSyms(int(i))
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return i
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}
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func (l *Loader) IsExternal(i Sym) bool {
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return l.extStart != 0 && i >= l.extStart
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}
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// Ensure Syms slice has enough space.
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func (l *Loader) growSyms(i int) {
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n := len(l.Syms)
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if n > i {
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return
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}
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l.Syms = append(l.Syms, make([]*sym.Symbol, i+1-n)...)
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}
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// Convert a local index to a global index.
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func (l *Loader) toGlobal(r *oReader, i int) Sym {
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g := l.startIndex(r) + Sym(i)
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if ov, ok := l.overwrite[g]; ok {
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return ov
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}
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return g
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}
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// Convert a global index to a local index.
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func (l *Loader) toLocal(i Sym) (*oReader, int) {
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if ov, ok := l.overwrite[i]; ok {
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i = ov
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}
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if l.IsExternal(i) {
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return nil, int(i - l.extStart)
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}
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oc := l.ocache
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if oc != 0 && i >= l.objs[oc].i && i <= l.objs[oc].e {
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return l.objs[oc].r, int(i - l.objs[oc].i)
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}
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// Search for the local object holding index i.
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// Below k is the first one that has its start index > i,
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// so k-1 is the one we want.
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k := sort.Search(len(l.objs), func(k int) bool {
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return l.objs[k].i > i
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})
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l.ocache = k - 1
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return l.objs[k-1].r, int(i - l.objs[k-1].i)
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}
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// rcacheGet checks for a valid entry for 's' in the readers cache,
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// where 's' is a local PkgIdxNone ref or def, or zero if
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// the cache is empty or doesn't contain a value for 's'.
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func (or *oReader) rcacheGet(symIdx uint32) Sym {
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if len(or.rcache) > 0 {
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return or.rcache[symIdx]
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}
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return 0
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}
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// rcacheSet installs a new entry in the oReader's PkgNone
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// resolver cache for the specified PkgIdxNone ref or def,
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// allocating a new cache if needed.
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func (or *oReader) rcacheSet(symIdx uint32, gsym Sym) {
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if len(or.rcache) == 0 {
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or.rcache = make([]Sym, or.NNonpkgdef()+or.NNonpkgref())
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}
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or.rcache[symIdx] = gsym
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}
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// Resolve a local symbol reference. Return global index.
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func (l *Loader) resolve(r *oReader, s goobj2.SymRef) Sym {
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var rr *oReader
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switch p := s.PkgIdx; p {
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case goobj2.PkgIdxInvalid:
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if s.SymIdx != 0 {
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panic("bad sym ref")
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}
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return 0
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case goobj2.PkgIdxNone:
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// Check for cached version first
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if cached := r.rcacheGet(s.SymIdx); cached != 0 {
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return cached
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}
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// Resolve by name
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i := int(s.SymIdx) + r.NSym()
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osym := goobj2.Sym{}
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osym.Read(r.Reader, r.SymOff(i))
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name := strings.Replace(osym.Name, "\"\".", r.pkgprefix, -1)
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v := abiToVer(osym.ABI, r.version)
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gsym := l.Lookup(name, v)
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// Add to cache, then return.
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r.rcacheSet(s.SymIdx, gsym)
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return gsym
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case goobj2.PkgIdxBuiltin:
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return l.builtinSyms[s.SymIdx]
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case goobj2.PkgIdxSelf:
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rr = r
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default:
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pkg := r.Pkg(int(p))
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var ok bool
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rr, ok = l.objByPkg[pkg]
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if !ok {
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log.Fatalf("reference of nonexisted package %s, from %v", pkg, r.unit.Lib)
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}
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}
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return l.toGlobal(rr, int(s.SymIdx))
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}
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// Look up a symbol by name, return global index, or 0 if not found.
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// This is more like Syms.ROLookup than Lookup -- it doesn't create
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// new symbol.
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func (l *Loader) Lookup(name string, ver int) Sym {
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if ver >= sym.SymVerStatic {
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return l.extStaticSyms[nameVer{name, ver}]
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}
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return l.symsByName[ver][name]
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}
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// Returns whether i is a dup of another symbol, and i is not
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// "primary", i.e. Lookup i by name will not return i.
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func (l *Loader) IsDup(i Sym) bool {
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if _, ok := l.overwrite[i]; ok {
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return true
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}
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if l.IsExternal(i) {
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return false
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}
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r, li := l.toLocal(i)
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osym := goobj2.Sym{}
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osym.Read(r.Reader, r.SymOff(li))
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if !osym.Dupok() {
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return false
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}
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if osym.Name == "" {
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return false // Unnamed aux symbol cannot be dup.
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}
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if osym.ABI == goobj2.SymABIstatic {
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return false // Static symbol cannot be dup.
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}
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name := strings.Replace(osym.Name, "\"\".", r.pkgprefix, -1)
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ver := abiToVer(osym.ABI, r.version)
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return l.symsByName[ver][name] != i
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}
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// Number of total symbols.
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func (l *Loader) NSym() int {
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return int(l.max + 1)
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}
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// Number of defined Go symbols.
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func (l *Loader) NDef() int {
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return int(l.extStart)
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}
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// Returns the raw (unpatched) name of the i-th symbol.
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func (l *Loader) RawSymName(i Sym) string {
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if l.IsExternal(i) {
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if s := l.Syms[i]; s != nil {
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return s.Name
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}
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return ""
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}
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r, li := l.toLocal(i)
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osym := goobj2.Sym{}
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osym.Read(r.Reader, r.SymOff(li))
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return osym.Name
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}
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// Returns the (patched) name of the i-th symbol.
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func (l *Loader) SymName(i Sym) string {
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if l.IsExternal(i) {
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if s := l.Syms[i]; s != nil {
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return s.Name // external name should already be patched?
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}
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return ""
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}
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r, li := l.toLocal(i)
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osym := goobj2.Sym{}
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osym.Read(r.Reader, r.SymOff(li))
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return strings.Replace(osym.Name, "\"\".", r.pkgprefix, -1)
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}
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// Returns the type of the i-th symbol.
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func (l *Loader) SymType(i Sym) sym.SymKind {
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if l.IsExternal(i) {
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if s := l.Syms[i]; s != nil {
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return s.Type
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}
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return 0
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}
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r, li := l.toLocal(i)
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osym := goobj2.Sym{}
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osym.Read(r.Reader, r.SymOff(li))
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return sym.AbiSymKindToSymKind[objabi.SymKind(osym.Type)]
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}
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// Returns the attributes of the i-th symbol.
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func (l *Loader) SymAttr(i Sym) uint8 {
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if l.IsExternal(i) {
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// TODO: do something? External symbols have different representation of attributes. For now, ReflectMethod is the only thing matters and it cannot be set by external symbol.
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return 0
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}
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r, li := l.toLocal(i)
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osym := goobj2.Sym{}
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osym.Read(r.Reader, r.SymOff(li))
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return osym.Flag
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}
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// Returns whether the i-th symbol has ReflectMethod attribute set.
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func (l *Loader) IsReflectMethod(i Sym) bool {
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return l.SymAttr(i)&goobj2.SymFlagReflectMethod != 0
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}
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// Returns whether this is a Go type symbol.
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func (l *Loader) IsGoType(i Sym) bool {
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return l.SymAttr(i)&goobj2.SymFlagGoType != 0
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}
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// Returns whether this is a "go.itablink.*" symbol.
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func (l *Loader) IsItabLink(i Sym) bool {
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if _, ok := l.itablink[i]; ok {
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return true
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}
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return false
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}
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// Returns the symbol content of the i-th symbol. i is global index.
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func (l *Loader) Data(i Sym) []byte {
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if l.IsExternal(i) {
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if s := l.Syms[i]; s != nil {
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return s.P
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}
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return nil
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}
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r, li := l.toLocal(i)
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return r.Data(li)
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}
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// Returns the number of aux symbols given a global index.
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func (l *Loader) NAux(i Sym) int {
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if l.IsExternal(i) {
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return 0
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}
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r, li := l.toLocal(i)
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return r.NAux(li)
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}
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// Returns the referred symbol of the j-th aux symbol of the i-th
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// symbol.
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func (l *Loader) AuxSym(i Sym, j int) Sym {
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if l.IsExternal(i) {
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return 0
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}
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r, li := l.toLocal(i)
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a := goobj2.Aux{}
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a.Read(r.Reader, r.AuxOff(li, j))
|
|
return l.resolve(r, a.Sym)
|
|
}
|
|
|
|
// ReadAuxSyms reads the aux symbol ids for the specified symbol into the
|
|
// slice passed as a parameter. If the slice capacity is not large enough, a new
|
|
// larger slice will be allocated. Final slice is returned.
|
|
func (l *Loader) ReadAuxSyms(symIdx Sym, dst []Sym) []Sym {
|
|
if l.IsExternal(symIdx) {
|
|
return dst[:0]
|
|
}
|
|
naux := l.NAux(symIdx)
|
|
if naux == 0 {
|
|
return dst[:0]
|
|
}
|
|
|
|
if cap(dst) < naux {
|
|
dst = make([]Sym, naux)
|
|
}
|
|
dst = dst[:0]
|
|
|
|
r, li := l.toLocal(symIdx)
|
|
for i := 0; i < naux; i++ {
|
|
a := goobj2.Aux{}
|
|
a.Read(r.Reader, r.AuxOff(li, i))
|
|
dst = append(dst, l.resolve(r, a.Sym))
|
|
}
|
|
|
|
return dst
|
|
}
|
|
|
|
// OuterSym gets the outer symbol for host object loaded symbols.
|
|
func (l *Loader) OuterSym(i Sym) Sym {
|
|
sym := l.Syms[i]
|
|
if sym != nil && sym.Outer != nil {
|
|
outer := sym.Outer
|
|
return l.Lookup(outer.Name, int(outer.Version))
|
|
}
|
|
return 0
|
|
}
|
|
|
|
// SubSym gets the subsymbol for host object loaded symbols.
|
|
func (l *Loader) SubSym(i Sym) Sym {
|
|
sym := l.Syms[i]
|
|
if sym != nil && sym.Sub != nil {
|
|
sub := sym.Sub
|
|
return l.Lookup(sub.Name, int(sub.Version))
|
|
}
|
|
return 0
|
|
}
|
|
|
|
// Initialize Reachable bitmap for running deadcode pass.
|
|
func (l *Loader) InitReachable() {
|
|
l.Reachable = makeBitmap(l.NSym())
|
|
}
|
|
|
|
// At method returns the j-th reloc for a global symbol.
|
|
func (relocs *Relocs) At(j int) Reloc {
|
|
if relocs.ext != nil {
|
|
rel := &relocs.ext.R[j]
|
|
return Reloc{
|
|
Off: rel.Off,
|
|
Size: rel.Siz,
|
|
Type: rel.Type,
|
|
Add: rel.Add,
|
|
Sym: relocs.l.Lookup(rel.Sym.Name, int(rel.Sym.Version)),
|
|
}
|
|
}
|
|
rel := goobj2.Reloc{}
|
|
rel.Read(relocs.r.Reader, relocs.r.RelocOff(relocs.li, j))
|
|
target := relocs.l.resolve(relocs.r, rel.Sym)
|
|
return Reloc{
|
|
Off: rel.Off,
|
|
Size: rel.Siz,
|
|
Type: objabi.RelocType(rel.Type),
|
|
Add: rel.Add,
|
|
Sym: target,
|
|
}
|
|
}
|
|
|
|
// ReadAll method reads all relocations for a symbol into the
|
|
// specified slice. If the slice capacity is not large enough, a new
|
|
// larger slice will be allocated. Final slice is returned.
|
|
func (relocs *Relocs) ReadAll(dst []Reloc) []Reloc {
|
|
if relocs.Count == 0 {
|
|
return dst[:0]
|
|
}
|
|
|
|
if cap(dst) < relocs.Count {
|
|
dst = make([]Reloc, relocs.Count)
|
|
}
|
|
dst = dst[:0]
|
|
|
|
if relocs.ext != nil {
|
|
for i := 0; i < relocs.Count; i++ {
|
|
erel := &relocs.ext.R[i]
|
|
rel := Reloc{
|
|
Off: erel.Off,
|
|
Size: erel.Siz,
|
|
Type: erel.Type,
|
|
Add: erel.Add,
|
|
Sym: relocs.l.Lookup(erel.Sym.Name, int(erel.Sym.Version)),
|
|
}
|
|
dst = append(dst, rel)
|
|
}
|
|
return dst
|
|
}
|
|
|
|
off := relocs.r.RelocOff(relocs.li, 0)
|
|
for i := 0; i < relocs.Count; i++ {
|
|
rel := goobj2.Reloc{}
|
|
rel.Read(relocs.r.Reader, off)
|
|
off += uint32(rel.Size())
|
|
target := relocs.l.resolve(relocs.r, rel.Sym)
|
|
dst = append(dst, Reloc{
|
|
Off: rel.Off,
|
|
Size: rel.Siz,
|
|
Type: objabi.RelocType(rel.Type),
|
|
Add: rel.Add,
|
|
Sym: target,
|
|
})
|
|
}
|
|
return dst
|
|
}
|
|
|
|
// Relocs returns a Relocs object for the given global sym.
|
|
func (l *Loader) Relocs(i Sym) Relocs {
|
|
if l.IsExternal(i) {
|
|
if s := l.Syms[i]; s != nil {
|
|
return Relocs{Count: len(s.R), l: l, ext: s}
|
|
}
|
|
return Relocs{}
|
|
}
|
|
r, li := l.toLocal(i)
|
|
return l.relocs(r, li)
|
|
}
|
|
|
|
// Relocs returns a Relocs object given a local sym index and reader.
|
|
func (l *Loader) relocs(r *oReader, li int) Relocs {
|
|
return Relocs{
|
|
Count: r.NReloc(li),
|
|
li: li,
|
|
r: r,
|
|
l: l,
|
|
}
|
|
}
|
|
|
|
// Preload a package: add autolibs, add symbols to the symbol table.
|
|
// Does not read symbol data yet.
|
|
func (l *Loader) Preload(arch *sys.Arch, syms *sym.Symbols, f *bio.Reader, lib *sym.Library, unit *sym.CompilationUnit, length int64, pn string, flags int) {
|
|
roObject, readonly, err := f.Slice(uint64(length))
|
|
if err != nil {
|
|
log.Fatal("cannot read object file:", err)
|
|
}
|
|
r := goobj2.NewReaderFromBytes(roObject, readonly)
|
|
if r == nil {
|
|
panic("cannot read object file")
|
|
}
|
|
localSymVersion := syms.IncVersion()
|
|
pkgprefix := objabi.PathToPrefix(lib.Pkg) + "."
|
|
or := &oReader{r, unit, localSymVersion, r.Flags(), pkgprefix, nil}
|
|
|
|
// Autolib
|
|
lib.ImportStrings = append(lib.ImportStrings, r.Autolib()...)
|
|
|
|
// DWARF file table
|
|
nfile := r.NDwarfFile()
|
|
unit.DWARFFileTable = make([]string, nfile)
|
|
for i := range unit.DWARFFileTable {
|
|
unit.DWARFFileTable[i] = r.DwarfFile(i)
|
|
}
|
|
|
|
istart := l.addObj(lib.Pkg, or)
|
|
|
|
ndef := r.NSym()
|
|
nnonpkgdef := r.NNonpkgdef()
|
|
for i, n := 0, ndef+nnonpkgdef; i < n; i++ {
|
|
osym := goobj2.Sym{}
|
|
osym.Read(r, r.SymOff(i))
|
|
name := strings.Replace(osym.Name, "\"\".", pkgprefix, -1)
|
|
if name == "" {
|
|
continue // don't add unnamed aux symbol
|
|
}
|
|
v := abiToVer(osym.ABI, localSymVersion)
|
|
dupok := osym.Dupok()
|
|
added := l.AddSym(name, v, istart+Sym(i), or, dupok, sym.AbiSymKindToSymKind[objabi.SymKind(osym.Type)])
|
|
if added && strings.HasPrefix(name, "go.itablink.") {
|
|
l.itablink[istart+Sym(i)] = struct{}{}
|
|
}
|
|
if added && strings.HasPrefix(name, "runtime.") {
|
|
if bi := goobj2.BuiltinIdx(name, v); bi != -1 {
|
|
// This is a definition of a builtin symbol. Record where it is.
|
|
l.builtinSyms[bi] = istart + Sym(i)
|
|
}
|
|
}
|
|
}
|
|
|
|
// The caller expects us consuming all the data
|
|
f.MustSeek(length, os.SEEK_CUR)
|
|
}
|
|
|
|
// Make sure referenced symbols are added. Most of them should already be added.
|
|
// This should only be needed for referenced external symbols.
|
|
func (l *Loader) LoadRefs(arch *sys.Arch, syms *sym.Symbols) {
|
|
for _, o := range l.objs[1:] {
|
|
loadObjRefs(l, o.r, arch, syms)
|
|
}
|
|
}
|
|
|
|
func loadObjRefs(l *Loader, r *oReader, arch *sys.Arch, syms *sym.Symbols) {
|
|
ndef := r.NSym() + r.NNonpkgdef()
|
|
for i, n := 0, r.NNonpkgref(); i < n; i++ {
|
|
osym := goobj2.Sym{}
|
|
osym.Read(r.Reader, r.SymOff(ndef+i))
|
|
name := strings.Replace(osym.Name, "\"\".", r.pkgprefix, -1)
|
|
v := abiToVer(osym.ABI, r.version)
|
|
l.AddExtSym(name, v)
|
|
}
|
|
}
|
|
|
|
func abiToVer(abi uint16, localSymVersion int) int {
|
|
var v int
|
|
if abi == goobj2.SymABIstatic {
|
|
// Static
|
|
v = localSymVersion
|
|
} else if abiver := sym.ABIToVersion(obj.ABI(abi)); abiver != -1 {
|
|
// Note that data symbols are "ABI0", which maps to version 0.
|
|
v = abiver
|
|
} else {
|
|
log.Fatalf("invalid symbol ABI: %d", abi)
|
|
}
|
|
return v
|
|
}
|
|
|
|
func preprocess(arch *sys.Arch, s *sym.Symbol) {
|
|
if s.Name != "" && s.Name[0] == '$' && len(s.Name) > 5 && s.Type == 0 && len(s.P) == 0 {
|
|
x, err := strconv.ParseUint(s.Name[5:], 16, 64)
|
|
if err != nil {
|
|
log.Panicf("failed to parse $-symbol %s: %v", s.Name, err)
|
|
}
|
|
s.Type = sym.SRODATA
|
|
s.Attr |= sym.AttrLocal
|
|
switch s.Name[:5] {
|
|
case "$f32.":
|
|
if uint64(uint32(x)) != x {
|
|
log.Panicf("$-symbol %s too large: %d", s.Name, x)
|
|
}
|
|
s.AddUint32(arch, uint32(x))
|
|
case "$f64.", "$i64.":
|
|
s.AddUint64(arch, x)
|
|
default:
|
|
log.Panicf("unrecognized $-symbol: %s", s.Name)
|
|
}
|
|
}
|
|
}
|
|
|
|
// Load full contents.
|
|
func (l *Loader) LoadFull(arch *sys.Arch, syms *sym.Symbols) {
|
|
// create all Symbols first.
|
|
l.growSyms(l.NSym())
|
|
|
|
nr := 0 // total number of sym.Reloc's we'll need
|
|
for _, o := range l.objs[1:] {
|
|
nr += loadObjSyms(l, syms, o.r)
|
|
}
|
|
|
|
// allocate a single large slab of relocations for all live symbols
|
|
l.relocBatch = make([]sym.Reloc, nr)
|
|
|
|
// external symbols
|
|
for i := l.extStart; i <= l.max; i++ {
|
|
if s := l.Syms[i]; s != nil {
|
|
s.Attr.Set(sym.AttrReachable, l.Reachable.Has(i))
|
|
continue // already loaded from external object
|
|
}
|
|
nv := l.extSyms[i-l.extStart]
|
|
if l.Reachable.Has(i) || strings.HasPrefix(nv.name, "gofile..") { // XXX file symbols are used but not marked
|
|
s := syms.Newsym(nv.name, nv.v)
|
|
preprocess(arch, s)
|
|
s.Attr.Set(sym.AttrReachable, l.Reachable.Has(i))
|
|
l.Syms[i] = s
|
|
}
|
|
}
|
|
|
|
// load contents of defined symbols
|
|
for _, o := range l.objs[1:] {
|
|
loadObjFull(l, o.r)
|
|
}
|
|
|
|
// Resolve ABI aliases for external symbols. This is only
|
|
// needed for internal cgo linking.
|
|
// (The old code does this in deadcode, but deadcode2 doesn't
|
|
// do this.)
|
|
for i := l.extStart; i <= l.max; i++ {
|
|
if s := l.Syms[i]; s != nil && s.Attr.Reachable() {
|
|
for ri := range s.R {
|
|
r := &s.R[ri]
|
|
if r.Sym != nil && r.Sym.Type == sym.SABIALIAS {
|
|
r.Sym = r.Sym.R[0].Sym
|
|
}
|
|
}
|
|
}
|
|
}
|
|
}
|
|
|
|
// ExtractSymbols grabs the symbols out of the loader for work that hasn't been
|
|
// ported to the new symbol type.
|
|
func (l *Loader) ExtractSymbols(syms *sym.Symbols) {
|
|
// Nil out overwritten symbols.
|
|
// Overwritten Go symbols aren't a problem (as they're lazy loaded), but
|
|
// symbols loaded from host object loaders are fully loaded, and we might
|
|
// have multiple symbols with the same name. This loop nils them out.
|
|
for oldI := range l.overwrite {
|
|
l.Syms[oldI] = nil
|
|
}
|
|
|
|
// For now, add all symbols to ctxt.Syms.
|
|
for _, s := range l.Syms {
|
|
if s != nil && s.Name != "" {
|
|
syms.Add(s)
|
|
}
|
|
}
|
|
|
|
}
|
|
|
|
// addNewSym adds a new sym.Symbol to the i-th index in the list of symbols.
|
|
func (l *Loader) addNewSym(i Sym, syms *sym.Symbols, name string, ver int, unit *sym.CompilationUnit, t sym.SymKind) *sym.Symbol {
|
|
s := syms.Newsym(name, ver)
|
|
if s.Type != 0 && s.Type != sym.SXREF {
|
|
fmt.Println("symbol already processed:", unit.Lib, i, s)
|
|
panic("symbol already processed")
|
|
}
|
|
if t == sym.SBSS && (s.Type == sym.SRODATA || s.Type == sym.SNOPTRBSS) {
|
|
t = s.Type
|
|
}
|
|
s.Type = t
|
|
s.Unit = unit
|
|
l.Syms[i] = s
|
|
return s
|
|
}
|
|
|
|
// loadObjSyms creates sym.Symbol objects for the live Syms in the
|
|
// object corresponding to object reader "r". Return value is the
|
|
// number of sym.Reloc entries required for all the new symbols.
|
|
func loadObjSyms(l *Loader, syms *sym.Symbols, r *oReader) int {
|
|
istart := l.startIndex(r)
|
|
nr := 0
|
|
|
|
for i, n := 0, r.NSym()+r.NNonpkgdef(); i < n; i++ {
|
|
// If it's been previously loaded in host object loading, we don't need to do it again.
|
|
if s := l.Syms[istart+Sym(i)]; s != nil {
|
|
// Mark symbol as reachable as it wasn't marked as such before.
|
|
s.Attr.Set(sym.AttrReachable, l.Reachable.Has(istart+Sym(i)))
|
|
nr += r.NReloc(i)
|
|
continue
|
|
}
|
|
osym := goobj2.Sym{}
|
|
osym.Read(r.Reader, r.SymOff(i))
|
|
name := strings.Replace(osym.Name, "\"\".", r.pkgprefix, -1)
|
|
if name == "" {
|
|
continue
|
|
}
|
|
ver := abiToVer(osym.ABI, r.version)
|
|
if osym.ABI != goobj2.SymABIstatic && l.symsByName[ver][name] != istart+Sym(i) {
|
|
continue
|
|
}
|
|
|
|
t := sym.AbiSymKindToSymKind[objabi.SymKind(osym.Type)]
|
|
if t == sym.SXREF {
|
|
log.Fatalf("bad sxref")
|
|
}
|
|
if t == 0 {
|
|
log.Fatalf("missing type for %s in %s", name, r.unit.Lib)
|
|
}
|
|
if !l.Reachable.Has(istart+Sym(i)) && !(t == sym.SRODATA && strings.HasPrefix(name, "type.")) && name != "runtime.addmoduledata" && name != "runtime.lastmoduledatap" {
|
|
// No need to load unreachable symbols.
|
|
// XXX some type symbol's content may be needed in DWARF code, but they are not marked.
|
|
// XXX reference to runtime.addmoduledata may be generated later by the linker in plugin mode.
|
|
continue
|
|
}
|
|
|
|
s := l.addNewSym(istart+Sym(i), syms, name, ver, r.unit, t)
|
|
s.Attr.Set(sym.AttrReachable, l.Reachable.Has(istart+Sym(i)))
|
|
nr += r.NReloc(i)
|
|
}
|
|
return nr
|
|
}
|
|
|
|
// funcInfoSym records the sym.Symbol for a function, along with a copy
|
|
// of the corresponding goobj2.Sym and the index of its FuncInfo aux sym.
|
|
// We use this to delay populating FuncInfo until we can batch-allocate
|
|
// slices for their sub-objects.
|
|
type funcInfoSym struct {
|
|
s *sym.Symbol // sym.Symbol for a live function
|
|
osym goobj2.Sym // object file symbol data for that function
|
|
isym int // global symbol index of FuncInfo aux sym for func
|
|
}
|
|
|
|
// funcAllocInfo records totals/counts for all functions in an objfile;
|
|
// used to help with bulk allocation of sym.Symbol sub-objects.
|
|
type funcAllocInfo struct {
|
|
symPtr uint32 // number of *sym.Symbol's needed in file slices
|
|
inlCall uint32 // number of sym.InlinedCall's needed in inltree slices
|
|
pcData uint32 // number of sym.Pcdata's needed in pdata slices
|
|
fdOff uint32 // number of int64's needed in all Funcdataoff slices
|
|
}
|
|
|
|
// LoadSymbol loads a single symbol by name.
|
|
// This function should only be used by the host object loaders.
|
|
// NB: This function does NOT set the symbol as reachable.
|
|
func (l *Loader) LoadSymbol(name string, version int, syms *sym.Symbols) *sym.Symbol {
|
|
global := l.Lookup(name, version)
|
|
|
|
// If we're already loaded, bail.
|
|
if global != 0 && l.Syms[global] != nil {
|
|
return l.Syms[global]
|
|
}
|
|
|
|
// Read the symbol.
|
|
r, i := l.toLocal(global)
|
|
istart := l.startIndex(r)
|
|
|
|
osym := goobj2.Sym{}
|
|
osym.Read(r.Reader, r.SymOff(int(i)))
|
|
if l.symsByName[version][name] != istart+Sym(i) {
|
|
return nil
|
|
}
|
|
|
|
return l.addNewSym(istart+Sym(i), syms, name, version, r.unit, sym.AbiSymKindToSymKind[objabi.SymKind(osym.Type)])
|
|
}
|
|
|
|
func loadObjFull(l *Loader, r *oReader) {
|
|
lib := r.unit.Lib
|
|
istart := l.startIndex(r)
|
|
|
|
resolveSymRef := func(s goobj2.SymRef) *sym.Symbol {
|
|
i := l.resolve(r, s)
|
|
return l.Syms[i]
|
|
}
|
|
|
|
funcs := []funcInfoSym{}
|
|
fdsyms := []*sym.Symbol{}
|
|
var funcAllocCounts funcAllocInfo
|
|
pcdataBase := r.PcdataBase()
|
|
rslice := []Reloc{}
|
|
for i, n := 0, r.NSym()+r.NNonpkgdef(); i < n; i++ {
|
|
osym := goobj2.Sym{}
|
|
osym.Read(r.Reader, r.SymOff(i))
|
|
name := strings.Replace(osym.Name, "\"\".", r.pkgprefix, -1)
|
|
if name == "" {
|
|
continue
|
|
}
|
|
ver := abiToVer(osym.ABI, r.version)
|
|
dupok := osym.Dupok()
|
|
if dupok {
|
|
if dupsym := l.symsByName[ver][name]; dupsym != istart+Sym(i) {
|
|
if l.Reachable.Has(dupsym) {
|
|
// A dupok symbol is resolved to another package. We still need
|
|
// to record its presence in the current package, as the trampoline
|
|
// pass expects packages are laid out in dependency order.
|
|
s := l.Syms[dupsym]
|
|
if s.Type == sym.STEXT {
|
|
lib.DupTextSyms = append(lib.DupTextSyms, s)
|
|
}
|
|
}
|
|
continue
|
|
}
|
|
}
|
|
|
|
s := l.Syms[istart+Sym(i)]
|
|
if s == nil {
|
|
continue
|
|
}
|
|
if s.Name != name { // Sanity check. We can remove it in the final version.
|
|
fmt.Println("name mismatch:", lib, i, s.Name, name)
|
|
panic("name mismatch")
|
|
}
|
|
|
|
local := osym.Local()
|
|
makeTypelink := osym.Typelink()
|
|
size := osym.Siz
|
|
|
|
// Symbol data
|
|
s.P = r.Data(i)
|
|
s.Attr.Set(sym.AttrReadOnly, r.ReadOnly())
|
|
|
|
// Relocs
|
|
relocs := l.relocs(r, i)
|
|
rslice = relocs.ReadAll(rslice)
|
|
batch := l.relocBatch
|
|
s.R = batch[:relocs.Count:relocs.Count]
|
|
l.relocBatch = batch[relocs.Count:]
|
|
for j := range s.R {
|
|
r := rslice[j]
|
|
rs := r.Sym
|
|
sz := r.Size
|
|
rt := r.Type
|
|
if rt == objabi.R_METHODOFF {
|
|
if l.Reachable.Has(rs) {
|
|
rt = objabi.R_ADDROFF
|
|
} else {
|
|
sz = 0
|
|
rs = 0
|
|
}
|
|
}
|
|
if rt == objabi.R_WEAKADDROFF && !l.Reachable.Has(rs) {
|
|
rs = 0
|
|
sz = 0
|
|
}
|
|
if rs != 0 && l.SymType(rs) == sym.SABIALIAS {
|
|
rsrelocs := l.Relocs(rs)
|
|
rs = rsrelocs.At(0).Sym
|
|
}
|
|
s.R[j] = sym.Reloc{
|
|
Off: r.Off,
|
|
Siz: sz,
|
|
Type: rt,
|
|
Add: r.Add,
|
|
Sym: l.Syms[rs],
|
|
}
|
|
}
|
|
|
|
// Aux symbol info
|
|
isym := -1
|
|
naux := r.NAux(i)
|
|
for j := 0; j < naux; j++ {
|
|
a := goobj2.Aux{}
|
|
a.Read(r.Reader, r.AuxOff(i, j))
|
|
switch a.Type {
|
|
case goobj2.AuxGotype:
|
|
typ := resolveSymRef(a.Sym)
|
|
if typ != nil {
|
|
s.Gotype = typ
|
|
}
|
|
case goobj2.AuxFuncdata:
|
|
fdsyms = append(fdsyms, resolveSymRef(a.Sym))
|
|
case goobj2.AuxFuncInfo:
|
|
if a.Sym.PkgIdx != goobj2.PkgIdxSelf {
|
|
panic("funcinfo symbol not defined in current package")
|
|
}
|
|
isym = int(a.Sym.SymIdx)
|
|
case goobj2.AuxDwarfInfo, goobj2.AuxDwarfLoc, goobj2.AuxDwarfRanges, goobj2.AuxDwarfLines:
|
|
// ignored for now
|
|
default:
|
|
panic("unknown aux type")
|
|
}
|
|
}
|
|
|
|
s.File = r.pkgprefix[:len(r.pkgprefix)-1]
|
|
if dupok {
|
|
s.Attr |= sym.AttrDuplicateOK
|
|
}
|
|
if s.Size < int64(size) {
|
|
s.Size = int64(size)
|
|
}
|
|
s.Attr.Set(sym.AttrLocal, local)
|
|
s.Attr.Set(sym.AttrMakeTypelink, makeTypelink)
|
|
|
|
if s.Type == sym.SDWARFINFO {
|
|
// For DWARF symbols, replace `"".` to actual package prefix
|
|
// in the symbol content.
|
|
// TODO: maybe we should do this in the compiler and get rid
|
|
// of this.
|
|
patchDWARFName(s, r)
|
|
}
|
|
|
|
if s.Type != sym.STEXT {
|
|
continue
|
|
}
|
|
|
|
if isym == -1 {
|
|
continue
|
|
}
|
|
|
|
// Record function sym and associated info for additional
|
|
// processing in the loop below.
|
|
fwis := funcInfoSym{s: s, isym: isym, osym: osym}
|
|
funcs = append(funcs, fwis)
|
|
|
|
// Read the goobj2.FuncInfo for this text symbol so that we can
|
|
// collect allocation counts. We'll read it again in the loop
|
|
// below.
|
|
b := r.Data(isym)
|
|
info := goobj2.FuncInfo{}
|
|
info.Read(b)
|
|
funcAllocCounts.symPtr += uint32(len(info.File))
|
|
funcAllocCounts.pcData += uint32(len(info.Pcdata))
|
|
funcAllocCounts.inlCall += uint32(len(info.InlTree))
|
|
funcAllocCounts.fdOff += uint32(len(info.Funcdataoff))
|
|
}
|
|
|
|
// At this point we can do batch allocation of the sym.FuncInfo's,
|
|
// along with the slices of sub-objects they use.
|
|
fiBatch := make([]sym.FuncInfo, len(funcs))
|
|
inlCallBatch := make([]sym.InlinedCall, funcAllocCounts.inlCall)
|
|
symPtrBatch := make([]*sym.Symbol, funcAllocCounts.symPtr)
|
|
pcDataBatch := make([]sym.Pcdata, funcAllocCounts.pcData)
|
|
fdOffBatch := make([]int64, funcAllocCounts.fdOff)
|
|
|
|
// Populate FuncInfo contents for func symbols.
|
|
for fi := 0; fi < len(funcs); fi++ {
|
|
s := funcs[fi].s
|
|
isym := funcs[fi].isym
|
|
osym := funcs[fi].osym
|
|
|
|
s.FuncInfo = &fiBatch[0]
|
|
fiBatch = fiBatch[1:]
|
|
|
|
b := r.Data(isym)
|
|
info := goobj2.FuncInfo{}
|
|
info.Read(b)
|
|
|
|
if info.NoSplit != 0 {
|
|
s.Attr |= sym.AttrNoSplit
|
|
}
|
|
if osym.ReflectMethod() {
|
|
s.Attr |= sym.AttrReflectMethod
|
|
}
|
|
if r.Flags()&goobj2.ObjFlagShared != 0 {
|
|
s.Attr |= sym.AttrShared
|
|
}
|
|
if osym.TopFrame() {
|
|
s.Attr |= sym.AttrTopFrame
|
|
}
|
|
|
|
pc := s.FuncInfo
|
|
|
|
if len(info.Funcdataoff) != 0 {
|
|
nfd := len(info.Funcdataoff)
|
|
pc.Funcdata = fdsyms[:nfd:nfd]
|
|
fdsyms = fdsyms[nfd:]
|
|
}
|
|
|
|
info.Pcdata = append(info.Pcdata, info.PcdataEnd) // for the ease of knowing where it ends
|
|
pc.Args = int32(info.Args)
|
|
pc.Locals = int32(info.Locals)
|
|
|
|
npc := len(info.Pcdata) - 1 // -1 as we appended one above
|
|
pc.Pcdata = pcDataBatch[:npc:npc]
|
|
pcDataBatch = pcDataBatch[npc:]
|
|
|
|
nfd := len(info.Funcdataoff)
|
|
pc.Funcdataoff = fdOffBatch[:nfd:nfd]
|
|
fdOffBatch = fdOffBatch[nfd:]
|
|
|
|
nsp := len(info.File)
|
|
pc.File = symPtrBatch[:nsp:nsp]
|
|
symPtrBatch = symPtrBatch[nsp:]
|
|
|
|
nic := len(info.InlTree)
|
|
pc.InlTree = inlCallBatch[:nic:nic]
|
|
inlCallBatch = inlCallBatch[nic:]
|
|
|
|
pc.Pcsp.P = r.BytesAt(pcdataBase+info.Pcsp, int(info.Pcfile-info.Pcsp))
|
|
pc.Pcfile.P = r.BytesAt(pcdataBase+info.Pcfile, int(info.Pcline-info.Pcfile))
|
|
pc.Pcline.P = r.BytesAt(pcdataBase+info.Pcline, int(info.Pcinline-info.Pcline))
|
|
pc.Pcinline.P = r.BytesAt(pcdataBase+info.Pcinline, int(info.Pcdata[0]-info.Pcinline))
|
|
for k := range pc.Pcdata {
|
|
pc.Pcdata[k].P = r.BytesAt(pcdataBase+info.Pcdata[k], int(info.Pcdata[k+1]-info.Pcdata[k]))
|
|
}
|
|
for k := range pc.Funcdataoff {
|
|
pc.Funcdataoff[k] = int64(info.Funcdataoff[k])
|
|
}
|
|
for k := range pc.File {
|
|
pc.File[k] = resolveSymRef(info.File[k])
|
|
}
|
|
for k := range pc.InlTree {
|
|
inl := &info.InlTree[k]
|
|
pc.InlTree[k] = sym.InlinedCall{
|
|
Parent: inl.Parent,
|
|
File: resolveSymRef(inl.File),
|
|
Line: inl.Line,
|
|
Func: l.SymName(l.resolve(r, inl.Func)),
|
|
ParentPC: inl.ParentPC,
|
|
}
|
|
}
|
|
|
|
dupok := osym.Dupok()
|
|
if !dupok {
|
|
if s.Attr.OnList() {
|
|
log.Fatalf("symbol %s listed multiple times", s.Name)
|
|
}
|
|
s.Attr.Set(sym.AttrOnList, true)
|
|
lib.Textp = append(lib.Textp, s)
|
|
} else {
|
|
// there may be a dup in another package
|
|
// put into a temp list and add to text later
|
|
lib.DupTextSyms = append(lib.DupTextSyms, s)
|
|
}
|
|
}
|
|
}
|
|
|
|
var emptyPkg = []byte(`"".`)
|
|
|
|
func patchDWARFName(s *sym.Symbol, r *oReader) {
|
|
// This is kind of ugly. Really the package name should not
|
|
// even be included here.
|
|
if s.Size < 1 || s.P[0] != dwarf.DW_ABRV_FUNCTION {
|
|
return
|
|
}
|
|
e := bytes.IndexByte(s.P, 0)
|
|
if e == -1 {
|
|
return
|
|
}
|
|
p := bytes.Index(s.P[:e], emptyPkg)
|
|
if p == -1 {
|
|
return
|
|
}
|
|
pkgprefix := []byte(r.pkgprefix)
|
|
patched := bytes.Replace(s.P[:e], emptyPkg, pkgprefix, -1)
|
|
|
|
s.P = append(patched, s.P[e:]...)
|
|
s.Attr.Set(sym.AttrReadOnly, false)
|
|
delta := int64(len(s.P)) - s.Size
|
|
s.Size = int64(len(s.P))
|
|
for i := range s.R {
|
|
r := &s.R[i]
|
|
if r.Off > int32(e) {
|
|
r.Off += int32(delta)
|
|
}
|
|
}
|
|
}
|
|
|
|
// For debugging.
|
|
func (l *Loader) Dump() {
|
|
fmt.Println("objs")
|
|
for _, obj := range l.objs {
|
|
if obj.r != nil {
|
|
fmt.Println(obj.i, obj.r.unit.Lib)
|
|
}
|
|
}
|
|
fmt.Println("syms")
|
|
for i, s := range l.Syms {
|
|
if i == 0 {
|
|
continue
|
|
}
|
|
if s != nil {
|
|
fmt.Println(i, s, s.Type)
|
|
} else {
|
|
fmt.Println(i, l.SymName(Sym(i)), "<not loaded>")
|
|
}
|
|
}
|
|
fmt.Println("overwrite:", l.overwrite)
|
|
fmt.Println("symsByName")
|
|
for name, i := range l.symsByName[0] {
|
|
fmt.Println(i, name, 0)
|
|
}
|
|
for name, i := range l.symsByName[1] {
|
|
fmt.Println(i, name, 1)
|
|
}
|
|
}
|