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Use the new SwissTable-based map in internal/runtime/maps as the basis for the runtime map when GOEXPERIMENT=swissmap. Integration is complete enough to pass all.bash. Notable missing features: * Race integration / concurrent write detection * Stack-allocated maps * Specialized "fast" map variants * Indirect key / elem For #54766. Cq-Include-Trybots: luci.golang.try:gotip-linux-ppc64_power10,gotip-linux-amd64-longtest-swissmap Change-Id: Ie97b656b6d8e05c0403311ae08fef9f51756a639 Reviewed-on: https://go-review.googlesource.com/c/go/+/594596 Reviewed-by: Keith Randall <khr@golang.org> Reviewed-by: Keith Randall <khr@google.com> Reviewed-by: Michael Knyszek <mknyszek@google.com> LUCI-TryBot-Result: Go LUCI <golang-scoped@luci-project-accounts.iam.gserviceaccount.com>
583 lines
19 KiB
Go
583 lines
19 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 ld
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import (
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"cmd/internal/goobj"
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"cmd/internal/objabi"
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"cmd/internal/sys"
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"cmd/link/internal/loader"
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"cmd/link/internal/sym"
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"fmt"
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"internal/abi"
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"internal/buildcfg"
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"strings"
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"unicode"
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)
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var _ = fmt.Print
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type deadcodePass struct {
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ctxt *Link
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ldr *loader.Loader
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wq heap // work queue, using min-heap for better locality
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ifaceMethod map[methodsig]bool // methods called from reached interface call sites
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genericIfaceMethod map[string]bool // names of methods called from reached generic interface call sites
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markableMethods []methodref // methods of reached types
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reflectSeen bool // whether we have seen a reflect method call
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dynlink bool
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methodsigstmp []methodsig // scratch buffer for decoding method signatures
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pkginits []loader.Sym
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mapinitnoop loader.Sym
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}
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func (d *deadcodePass) init() {
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d.ldr.InitReachable()
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d.ifaceMethod = make(map[methodsig]bool)
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d.genericIfaceMethod = make(map[string]bool)
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if buildcfg.Experiment.FieldTrack {
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d.ldr.Reachparent = make([]loader.Sym, d.ldr.NSym())
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}
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d.dynlink = d.ctxt.DynlinkingGo()
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if d.ctxt.BuildMode == BuildModeShared {
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// Mark all symbols defined in this library as reachable when
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// building a shared library.
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n := d.ldr.NDef()
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for i := 1; i < n; i++ {
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s := loader.Sym(i)
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if d.ldr.SymType(s) == sym.STEXT && d.ldr.SymSize(s) == 0 {
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// Zero-sized text symbol is a function deadcoded by the
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// compiler. It doesn't really get compiled, and its
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// metadata may be missing.
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continue
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}
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d.mark(s, 0)
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}
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d.mark(d.ctxt.mainInittasks, 0)
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return
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}
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var names []string
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// In a normal binary, start at main.main and the init
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// functions and mark what is reachable from there.
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if d.ctxt.linkShared && (d.ctxt.BuildMode == BuildModeExe || d.ctxt.BuildMode == BuildModePIE) {
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names = append(names, "main.main", "main..inittask")
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} else {
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// The external linker refers main symbol directly.
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if d.ctxt.LinkMode == LinkExternal && (d.ctxt.BuildMode == BuildModeExe || d.ctxt.BuildMode == BuildModePIE) {
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if d.ctxt.HeadType == objabi.Hwindows && d.ctxt.Arch.Family == sys.I386 {
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*flagEntrySymbol = "_main"
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} else {
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*flagEntrySymbol = "main"
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}
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}
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names = append(names, *flagEntrySymbol)
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}
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// runtime.unreachableMethod is a function that will throw if called.
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// We redirect unreachable methods to it.
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names = append(names, "runtime.unreachableMethod")
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if d.ctxt.BuildMode == BuildModePlugin {
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names = append(names, objabi.PathToPrefix(*flagPluginPath)+"..inittask", objabi.PathToPrefix(*flagPluginPath)+".main", "go:plugin.tabs")
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// We don't keep the go.plugin.exports symbol,
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// but we do keep the symbols it refers to.
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exportsIdx := d.ldr.Lookup("go:plugin.exports", 0)
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if exportsIdx != 0 {
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relocs := d.ldr.Relocs(exportsIdx)
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for i := 0; i < relocs.Count(); i++ {
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d.mark(relocs.At(i).Sym(), 0)
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}
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}
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}
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if d.ctxt.Debugvlog > 1 {
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d.ctxt.Logf("deadcode start names: %v\n", names)
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}
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for _, name := range names {
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// Mark symbol as a data/ABI0 symbol.
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d.mark(d.ldr.Lookup(name, 0), 0)
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if abiInternalVer != 0 {
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// Also mark any Go functions (internal ABI).
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d.mark(d.ldr.Lookup(name, abiInternalVer), 0)
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}
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}
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// All dynamic exports are roots.
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for _, s := range d.ctxt.dynexp {
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if d.ctxt.Debugvlog > 1 {
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d.ctxt.Logf("deadcode start dynexp: %s<%d>\n", d.ldr.SymName(s), d.ldr.SymVersion(s))
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}
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d.mark(s, 0)
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}
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// So are wasmexports.
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for _, s := range d.ldr.WasmExports {
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if d.ctxt.Debugvlog > 1 {
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d.ctxt.Logf("deadcode start wasmexport: %s<%d>\n", d.ldr.SymName(s), d.ldr.SymVersion(s))
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}
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d.mark(s, 0)
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}
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d.mapinitnoop = d.ldr.Lookup("runtime.mapinitnoop", abiInternalVer)
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if d.mapinitnoop == 0 {
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panic("could not look up runtime.mapinitnoop")
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}
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if d.ctxt.mainInittasks != 0 {
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d.mark(d.ctxt.mainInittasks, 0)
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}
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}
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func (d *deadcodePass) flood() {
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var methods []methodref
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for !d.wq.empty() {
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symIdx := d.wq.pop()
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// Methods may be called via reflection. Give up on static analysis,
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// and mark all exported methods of all reachable types as reachable.
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d.reflectSeen = d.reflectSeen || d.ldr.IsReflectMethod(symIdx)
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isgotype := d.ldr.IsGoType(symIdx)
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relocs := d.ldr.Relocs(symIdx)
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var usedInIface bool
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if isgotype {
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if d.dynlink {
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// When dynamic linking, a type may be passed across DSO
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// boundary and get converted to interface at the other side.
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d.ldr.SetAttrUsedInIface(symIdx, true)
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}
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usedInIface = d.ldr.AttrUsedInIface(symIdx)
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}
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methods = methods[:0]
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for i := 0; i < relocs.Count(); i++ {
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r := relocs.At(i)
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if r.Weak() {
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convertWeakToStrong := false
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// When build with "-linkshared", we can't tell if the
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// interface method in itab will be used or not.
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// Ignore the weak attribute.
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if d.ctxt.linkShared && d.ldr.IsItab(symIdx) {
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convertWeakToStrong = true
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}
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// If the program uses plugins, we can no longer treat
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// relocs from pkg init functions to outlined map init
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// fragments as weak, since doing so can cause package
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// init clashes between the main program and the
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// plugin. See #62430 for more details.
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if d.ctxt.canUsePlugins && r.Type().IsDirectCall() {
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convertWeakToStrong = true
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}
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if !convertWeakToStrong {
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// skip this reloc
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continue
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}
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}
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t := r.Type()
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switch t {
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case objabi.R_METHODOFF:
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if i+2 >= relocs.Count() {
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panic("expect three consecutive R_METHODOFF relocs")
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}
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if usedInIface {
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methods = append(methods, methodref{src: symIdx, r: i})
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// The method descriptor is itself a type descriptor, and
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// it can be used to reach other types, e.g. by using
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// reflect.Type.Method(i).Type.In(j). We need to traverse
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// its child types with UsedInIface set. (See also the
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// comment below.)
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rs := r.Sym()
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if !d.ldr.AttrUsedInIface(rs) {
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d.ldr.SetAttrUsedInIface(rs, true)
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if d.ldr.AttrReachable(rs) {
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d.ldr.SetAttrReachable(rs, false)
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d.mark(rs, symIdx)
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}
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}
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}
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i += 2
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continue
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case objabi.R_USETYPE:
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// type symbol used for DWARF. we need to load the symbol but it may not
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// be otherwise reachable in the program.
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// do nothing for now as we still load all type symbols.
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continue
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case objabi.R_USEIFACE:
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// R_USEIFACE is a marker relocation that tells the linker the type is
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// converted to an interface, i.e. should have UsedInIface set. See the
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// comment below for why we need to unset the Reachable bit and re-mark it.
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rs := r.Sym()
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if d.ldr.IsItab(rs) {
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// This relocation can also point at an itab, in which case it
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// means "the Type field of that itab".
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rs = decodeItabType(d.ldr, d.ctxt.Arch, rs)
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}
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if !d.ldr.IsGoType(rs) && !d.ctxt.linkShared {
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panic(fmt.Sprintf("R_USEIFACE in %s references %s which is not a type or itab", d.ldr.SymName(symIdx), d.ldr.SymName(rs)))
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}
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if !d.ldr.AttrUsedInIface(rs) {
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d.ldr.SetAttrUsedInIface(rs, true)
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if d.ldr.AttrReachable(rs) {
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d.ldr.SetAttrReachable(rs, false)
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d.mark(rs, symIdx)
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}
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}
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continue
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case objabi.R_USEIFACEMETHOD:
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// R_USEIFACEMETHOD is a marker relocation that marks an interface
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// method as used.
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rs := r.Sym()
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if d.ctxt.linkShared && (d.ldr.SymType(rs) == sym.SDYNIMPORT || d.ldr.SymType(rs) == sym.Sxxx) {
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// Don't decode symbol from shared library (we'll mark all exported methods anyway).
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// We check for both SDYNIMPORT and Sxxx because name-mangled symbols haven't
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// been resolved at this point.
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continue
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}
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m := d.decodeIfaceMethod(d.ldr, d.ctxt.Arch, rs, r.Add())
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if d.ctxt.Debugvlog > 1 {
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d.ctxt.Logf("reached iface method: %v\n", m)
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}
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d.ifaceMethod[m] = true
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continue
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case objabi.R_USENAMEDMETHOD:
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name := d.decodeGenericIfaceMethod(d.ldr, r.Sym())
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if d.ctxt.Debugvlog > 1 {
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d.ctxt.Logf("reached generic iface method: %s\n", name)
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}
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d.genericIfaceMethod[name] = true
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continue // don't mark referenced symbol - it is not needed in the final binary.
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case objabi.R_INITORDER:
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// inittasks has already run, so any R_INITORDER links are now
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// superfluous - the only live inittask records are those which are
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// in a scheduled list somewhere (e.g. runtime.moduledata.inittasks).
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continue
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}
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rs := r.Sym()
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if isgotype && usedInIface && d.ldr.IsGoType(rs) && !d.ldr.AttrUsedInIface(rs) {
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// If a type is converted to an interface, it is possible to obtain an
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// interface with a "child" type of it using reflection (e.g. obtain an
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// interface of T from []chan T). We need to traverse its "child" types
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// with UsedInIface attribute set.
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// When visiting the child type (chan T in the example above), it will
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// have UsedInIface set, so it in turn will mark and (re)visit its children
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// (e.g. T above).
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// We unset the reachable bit here, so if the child type is already visited,
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// it will be visited again.
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// Note that a type symbol can be visited at most twice, one without
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// UsedInIface and one with. So termination is still guaranteed.
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d.ldr.SetAttrUsedInIface(rs, true)
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d.ldr.SetAttrReachable(rs, false)
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}
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d.mark(rs, symIdx)
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}
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naux := d.ldr.NAux(symIdx)
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for i := 0; i < naux; i++ {
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a := d.ldr.Aux(symIdx, i)
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if a.Type() == goobj.AuxGotype {
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// A symbol being reachable doesn't imply we need its
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// type descriptor. Don't mark it.
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continue
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}
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d.mark(a.Sym(), symIdx)
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}
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// Record sym if package init func (here naux != 0 is a cheap way
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// to check first if it is a function symbol).
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if naux != 0 && d.ldr.IsPkgInit(symIdx) {
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d.pkginits = append(d.pkginits, symIdx)
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}
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// Some host object symbols have an outer object, which acts like a
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// "carrier" symbol, or it holds all the symbols for a particular
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// section. We need to mark all "referenced" symbols from that carrier,
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// so we make sure we're pulling in all outer symbols, and their sub
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// symbols. This is not ideal, and these carrier/section symbols could
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// be removed.
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if d.ldr.IsExternal(symIdx) {
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d.mark(d.ldr.OuterSym(symIdx), symIdx)
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d.mark(d.ldr.SubSym(symIdx), symIdx)
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}
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if len(methods) != 0 {
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if !isgotype {
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panic("method found on non-type symbol")
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}
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// Decode runtime type information for type methods
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// to help work out which methods can be called
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// dynamically via interfaces.
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methodsigs := d.decodetypeMethods(d.ldr, d.ctxt.Arch, symIdx, &relocs)
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if len(methods) != len(methodsigs) {
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panic(fmt.Sprintf("%q has %d method relocations for %d methods", d.ldr.SymName(symIdx), len(methods), len(methodsigs)))
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}
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for i, m := range methodsigs {
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methods[i].m = m
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if d.ctxt.Debugvlog > 1 {
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d.ctxt.Logf("markable method: %v of sym %v %s\n", m, symIdx, d.ldr.SymName(symIdx))
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}
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}
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d.markableMethods = append(d.markableMethods, methods...)
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}
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}
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}
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// mapinitcleanup walks all pkg init functions and looks for weak relocations
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// to mapinit symbols that are no longer reachable. It rewrites
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// the relocs to target a new no-op routine in the runtime.
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func (d *deadcodePass) mapinitcleanup() {
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for _, idx := range d.pkginits {
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relocs := d.ldr.Relocs(idx)
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var su *loader.SymbolBuilder
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for i := 0; i < relocs.Count(); i++ {
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r := relocs.At(i)
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rs := r.Sym()
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if r.Weak() && r.Type().IsDirectCall() && !d.ldr.AttrReachable(rs) {
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// double check to make sure target is indeed map.init
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rsn := d.ldr.SymName(rs)
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if !strings.Contains(rsn, "map.init") {
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panic(fmt.Sprintf("internal error: expected map.init sym for weak call reloc, got %s -> %s", d.ldr.SymName(idx), rsn))
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}
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d.ldr.SetAttrReachable(d.mapinitnoop, true)
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if d.ctxt.Debugvlog > 1 {
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d.ctxt.Logf("deadcode: %s rewrite %s ref to %s\n",
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d.ldr.SymName(idx), rsn,
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d.ldr.SymName(d.mapinitnoop))
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}
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if su == nil {
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su = d.ldr.MakeSymbolUpdater(idx)
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}
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su.SetRelocSym(i, d.mapinitnoop)
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}
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}
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}
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}
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func (d *deadcodePass) mark(symIdx, parent loader.Sym) {
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if symIdx != 0 && !d.ldr.AttrReachable(symIdx) {
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d.wq.push(symIdx)
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d.ldr.SetAttrReachable(symIdx, true)
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if buildcfg.Experiment.FieldTrack && d.ldr.Reachparent[symIdx] == 0 {
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d.ldr.Reachparent[symIdx] = parent
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}
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if *flagDumpDep {
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to := d.ldr.SymName(symIdx)
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if to != "" {
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to = d.dumpDepAddFlags(to, symIdx)
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from := "_"
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if parent != 0 {
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from = d.ldr.SymName(parent)
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from = d.dumpDepAddFlags(from, parent)
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}
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fmt.Printf("%s -> %s\n", from, to)
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}
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}
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}
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}
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func (d *deadcodePass) dumpDepAddFlags(name string, symIdx loader.Sym) string {
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var flags strings.Builder
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if d.ldr.AttrUsedInIface(symIdx) {
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flags.WriteString("<UsedInIface>")
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}
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if d.ldr.IsReflectMethod(symIdx) {
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flags.WriteString("<ReflectMethod>")
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}
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if flags.Len() > 0 {
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return name + " " + flags.String()
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}
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return name
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}
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func (d *deadcodePass) markMethod(m methodref) {
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relocs := d.ldr.Relocs(m.src)
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d.mark(relocs.At(m.r).Sym(), m.src)
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d.mark(relocs.At(m.r+1).Sym(), m.src)
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d.mark(relocs.At(m.r+2).Sym(), m.src)
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}
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// deadcode marks all reachable symbols.
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//
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// The basis of the dead code elimination is a flood fill of symbols,
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// following their relocations, beginning at *flagEntrySymbol.
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//
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// This flood fill is wrapped in logic for pruning unused methods.
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// All methods are mentioned by relocations on their receiver's *rtype.
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// These relocations are specially defined as R_METHODOFF by the compiler
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// so we can detect and manipulated them here.
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//
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// There are three ways a method of a reachable type can be invoked:
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//
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// 1. direct call
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// 2. through a reachable interface type
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// 3. reflect.Value.Method (or MethodByName), or reflect.Type.Method
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// (or MethodByName)
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//
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// The first case is handled by the flood fill, a directly called method
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// is marked as reachable.
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//
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// The second case is handled by decomposing all reachable interface
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// types into method signatures. Each encountered method is compared
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// against the interface method signatures, if it matches it is marked
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// as reachable. This is extremely conservative, but easy and correct.
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//
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// The third case is handled by looking for functions that compiler flagged
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// as REFLECTMETHOD. REFLECTMETHOD on a function F means that F does a method
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// lookup with reflection, but the compiler was not able to statically determine
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// the method name.
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//
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// All functions that call reflect.Value.Method or reflect.Type.Method are REFLECTMETHODs.
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// Functions that call reflect.Value.MethodByName or reflect.Type.MethodByName with
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// a non-constant argument are REFLECTMETHODs, too. If we find a REFLECTMETHOD,
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// we give up on static analysis, and mark all exported methods of all reachable
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// types as reachable.
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//
|
|
// If the argument to MethodByName is a compile-time constant, the compiler
|
|
// emits a relocation with the method name. Matching methods are kept in all
|
|
// reachable types.
|
|
//
|
|
// Any unreached text symbols are removed from ctxt.Textp.
|
|
func deadcode(ctxt *Link) {
|
|
ldr := ctxt.loader
|
|
d := deadcodePass{ctxt: ctxt, ldr: ldr}
|
|
d.init()
|
|
d.flood()
|
|
|
|
if ctxt.DynlinkingGo() {
|
|
// Exported methods may satisfy interfaces we don't know
|
|
// about yet when dynamically linking.
|
|
d.reflectSeen = true
|
|
}
|
|
|
|
for {
|
|
// Mark all methods that could satisfy a discovered
|
|
// interface as reachable. We recheck old marked interfaces
|
|
// as new types (with new methods) may have been discovered
|
|
// in the last pass.
|
|
rem := d.markableMethods[:0]
|
|
for _, m := range d.markableMethods {
|
|
if (d.reflectSeen && (m.isExported() || d.dynlink)) || d.ifaceMethod[m.m] || d.genericIfaceMethod[m.m.name] {
|
|
d.markMethod(m)
|
|
} else {
|
|
rem = append(rem, m)
|
|
}
|
|
}
|
|
d.markableMethods = rem
|
|
|
|
if d.wq.empty() {
|
|
// No new work was discovered. Done.
|
|
break
|
|
}
|
|
d.flood()
|
|
}
|
|
if *flagPruneWeakMap {
|
|
d.mapinitcleanup()
|
|
}
|
|
}
|
|
|
|
// methodsig is a typed method signature (name + type).
|
|
type methodsig struct {
|
|
name string
|
|
typ loader.Sym // type descriptor symbol of the function
|
|
}
|
|
|
|
// methodref holds the relocations from a receiver type symbol to its
|
|
// method. There are three relocations, one for each of the fields in
|
|
// the reflect.method struct: mtyp, ifn, and tfn.
|
|
type methodref struct {
|
|
m methodsig
|
|
src loader.Sym // receiver type symbol
|
|
r int // the index of R_METHODOFF relocations
|
|
}
|
|
|
|
func (m methodref) isExported() bool {
|
|
for _, r := range m.m.name {
|
|
return unicode.IsUpper(r)
|
|
}
|
|
panic("methodref has no signature")
|
|
}
|
|
|
|
// decodeMethodSig decodes an array of method signature information.
|
|
// Each element of the array is size bytes. The first 4 bytes is a
|
|
// nameOff for the method name, and the next 4 bytes is a typeOff for
|
|
// the function type.
|
|
//
|
|
// Conveniently this is the layout of both runtime.method and runtime.imethod.
|
|
func (d *deadcodePass) decodeMethodSig(ldr *loader.Loader, arch *sys.Arch, symIdx loader.Sym, relocs *loader.Relocs, off, size, count int) []methodsig {
|
|
if cap(d.methodsigstmp) < count {
|
|
d.methodsigstmp = append(d.methodsigstmp[:0], make([]methodsig, count)...)
|
|
}
|
|
var methods = d.methodsigstmp[:count]
|
|
for i := 0; i < count; i++ {
|
|
methods[i].name = decodetypeName(ldr, symIdx, relocs, off)
|
|
methods[i].typ = decodeRelocSym(ldr, symIdx, relocs, int32(off+4))
|
|
off += size
|
|
}
|
|
return methods
|
|
}
|
|
|
|
// Decode the method of interface type symbol symIdx at offset off.
|
|
func (d *deadcodePass) decodeIfaceMethod(ldr *loader.Loader, arch *sys.Arch, symIdx loader.Sym, off int64) methodsig {
|
|
p := ldr.Data(symIdx)
|
|
if p == nil {
|
|
panic(fmt.Sprintf("missing symbol %q", ldr.SymName(symIdx)))
|
|
}
|
|
if decodetypeKind(arch, p) != abi.Interface {
|
|
panic(fmt.Sprintf("symbol %q is not an interface", ldr.SymName(symIdx)))
|
|
}
|
|
relocs := ldr.Relocs(symIdx)
|
|
var m methodsig
|
|
m.name = decodetypeName(ldr, symIdx, &relocs, int(off))
|
|
m.typ = decodeRelocSym(ldr, symIdx, &relocs, int32(off+4))
|
|
return m
|
|
}
|
|
|
|
// Decode the method name stored in symbol symIdx. The symbol should contain just the bytes of a method name.
|
|
func (d *deadcodePass) decodeGenericIfaceMethod(ldr *loader.Loader, symIdx loader.Sym) string {
|
|
return ldr.DataString(symIdx)
|
|
}
|
|
|
|
func (d *deadcodePass) decodetypeMethods(ldr *loader.Loader, arch *sys.Arch, symIdx loader.Sym, relocs *loader.Relocs) []methodsig {
|
|
p := ldr.Data(symIdx)
|
|
if !decodetypeHasUncommon(arch, p) {
|
|
panic(fmt.Sprintf("no methods on %q", ldr.SymName(symIdx)))
|
|
}
|
|
off := commonsize(arch) // reflect.rtype
|
|
switch decodetypeKind(arch, p) {
|
|
case abi.Struct: // reflect.structType
|
|
off += 4 * arch.PtrSize
|
|
case abi.Pointer: // reflect.ptrType
|
|
off += arch.PtrSize
|
|
case abi.Func: // reflect.funcType
|
|
off += arch.PtrSize // 4 bytes, pointer aligned
|
|
case abi.Slice: // reflect.sliceType
|
|
off += arch.PtrSize
|
|
case abi.Array: // reflect.arrayType
|
|
off += 3 * arch.PtrSize
|
|
case abi.Chan: // reflect.chanType
|
|
off += 2 * arch.PtrSize
|
|
case abi.Map:
|
|
if buildcfg.Experiment.SwissMap {
|
|
off += 6*arch.PtrSize + 4 // internal/abi.SwissMapType
|
|
if arch.PtrSize == 8 {
|
|
off += 4 // padding for final uint32 field (Flags).
|
|
}
|
|
} else {
|
|
off += 4*arch.PtrSize + 8 // internal/abi.OldMapType
|
|
}
|
|
case abi.Interface: // reflect.interfaceType
|
|
off += 3 * arch.PtrSize
|
|
default:
|
|
// just Sizeof(rtype)
|
|
}
|
|
|
|
mcount := int(decodeInuxi(arch, p[off+4:], 2))
|
|
moff := int(decodeInuxi(arch, p[off+4+2+2:], 4))
|
|
off += moff // offset to array of reflect.method values
|
|
const sizeofMethod = 4 * 4 // sizeof reflect.method in program
|
|
return d.decodeMethodSig(ldr, arch, symIdx, relocs, off, sizeofMethod, mcount)
|
|
}
|