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ARM direct CALL/JMP instruction has 24 bit offset, which can only
encodes jumps within +/-32M. When the target is too far, the top
bits get truncated and the program jumps wild.
This CL detects too-far jumps and automatically insert trampolines,
currently only internal linking on ARM.
It is necessary to make the following changes to the linker:
- Resolve direct jump relocs when assigning addresses to functions.
this allows trampoline insertion without moving all code that
already laid down.
- Lay down packages in dependency order, so that when resolving a
inter-package direct jump reloc, the target address is already
known. Intra-package jumps are assumed never too far.
- a linker flag -debugtramp is added for debugging trampolines:
"-debugtramp=1 -v" prints trampoline debug message
"-debugtramp=2" forces all inter-package jump to use
trampolines (currently ARM only)
"-debugtramp=2 -v" does both
- Some data structures are changed for bookkeeping.
On ARM, pseudo DIV/DIVU/MOD/MODU instructions now clobber R8
(unfortunate). In the standard library there is no ARM assembly
code that uses these instructions, and the compiler no longer emits
them (CL 29390).
all.bash passes with -debugtramp=2, except a disassembly test (this
is unavoidable as we changed the instruction).
TBD: debug info of trampolines?
Fixes #17028.
Change-Id: Idcce347ea7e0af77c4079041a160b2f6e114b474
Reviewed-on: https://go-review.googlesource.com/29397
Reviewed-by: David Crawshaw <crawshaw@golang.org>
Run-TryBot: Cherry Zhang <cherryyz@google.com>
TryBot-Result: Gobot Gobot <gobot@golang.org>
355 lines
9.6 KiB
Go
355 lines
9.6 KiB
Go
// Copyright 2016 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/obj"
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"cmd/internal/sys"
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"flag"
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"fmt"
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"path/filepath"
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"strings"
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"unicode"
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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.Call, .Method, or reflect.Method.Func
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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 to see if any of:
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// - reflect.Value.Call is reachable
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// - reflect.Value.Method is reachable
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// - reflect.Type.Method or MethodByName is called.
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// If any of these happen, all bets are off and all exported methods
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// of reachable types are marked reachable.
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//
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// Any unreached text symbols are removed from ctxt.Textp.
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func deadcode(ctxt *Link) {
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if ctxt.Debugvlog != 0 {
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ctxt.Logf("%5.2f deadcode\n", obj.Cputime())
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}
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d := &deadcodepass{
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ctxt: ctxt,
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ifaceMethod: make(map[methodsig]bool),
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}
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// First, flood fill any symbols directly reachable in the call
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// graph from *flagEntrySymbol. Ignore all methods not directly called.
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d.init()
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d.flood()
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callSym := ctxt.Syms.ROLookup("reflect.Value.Call", 0)
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methSym := ctxt.Syms.ROLookup("reflect.Value.Method", 0)
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reflectSeen := false
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if ctxt.DynlinkingGo() {
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// Exported methods may satisfy interfaces we don't know
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// about yet when dynamically linking.
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reflectSeen = true
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}
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for {
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if !reflectSeen {
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if d.reflectMethod || (callSym != nil && callSym.Attr.Reachable()) || (methSym != nil && methSym.Attr.Reachable()) {
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// Methods might be called via reflection. Give up on
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// static analysis, mark all exported methods of
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// all reachable types as reachable.
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reflectSeen = true
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}
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}
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// Mark all methods that could satisfy a discovered
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// interface as reachable. We recheck old marked interfaces
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// as new types (with new methods) may have been discovered
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// in the last pass.
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var rem []methodref
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for _, m := range d.markableMethods {
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if (reflectSeen && m.isExported()) || d.ifaceMethod[m.m] {
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d.markMethod(m)
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} else {
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rem = append(rem, m)
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}
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}
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d.markableMethods = rem
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if len(d.markQueue) == 0 {
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// No new work was discovered. Done.
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break
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}
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d.flood()
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}
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// Remove all remaining unreached R_METHODOFF relocations.
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for _, m := range d.markableMethods {
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for _, r := range m.r {
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d.cleanupReloc(r)
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}
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}
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if Buildmode != BuildmodeShared {
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// Keep a typelink or itablink if the symbol it points at is being kept.
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// (When BuildmodeShared, always keep typelinks and itablinks.)
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for _, s := range ctxt.Syms.Allsym {
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if strings.HasPrefix(s.Name, "go.typelink.") ||
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strings.HasPrefix(s.Name, "go.itablink.") {
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s.Attr.Set(AttrReachable, len(s.R) == 1 && s.R[0].Sym.Attr.Reachable())
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}
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}
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}
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// Remove dead text but keep file information (z symbols).
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textp := make([]*Symbol, 0, len(ctxt.Textp))
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for _, s := range ctxt.Textp {
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if s.Attr.Reachable() {
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textp = append(textp, s)
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}
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}
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ctxt.Textp = textp
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}
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var markextra = []string{
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"runtime.morestack",
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"runtime.morestackx",
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"runtime.morestack00",
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"runtime.morestack10",
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"runtime.morestack01",
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"runtime.morestack11",
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"runtime.morestack8",
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"runtime.morestack16",
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"runtime.morestack24",
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"runtime.morestack32",
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"runtime.morestack40",
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"runtime.morestack48",
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// on arm, lock in the div/mod helpers too
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"_div",
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"_divu",
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"_mod",
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"_modu",
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}
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// methodref holds the relocations from a receiver type symbol to its
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// method. There are three relocations, one for each of the fields in
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// the reflect.method struct: mtyp, ifn, and tfn.
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type methodref struct {
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m methodsig
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src *Symbol // receiver type symbol
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r [3]*Reloc // R_METHODOFF relocations to fields of runtime.method
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}
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func (m methodref) ifn() *Symbol { return m.r[1].Sym }
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func (m methodref) isExported() bool {
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for _, r := range m.m {
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return unicode.IsUpper(r)
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}
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panic("methodref has no signature")
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}
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// deadcodepass holds state for the deadcode flood fill.
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type deadcodepass struct {
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ctxt *Link
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markQueue []*Symbol // symbols to flood fill in next pass
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ifaceMethod map[methodsig]bool // methods declared in reached interfaces
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markableMethods []methodref // methods of reached types
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reflectMethod bool
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}
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func (d *deadcodepass) cleanupReloc(r *Reloc) {
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if r.Sym.Attr.Reachable() {
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r.Type = obj.R_ADDROFF
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} else {
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if d.ctxt.Debugvlog > 1 {
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d.ctxt.Logf("removing method %s\n", r.Sym.Name)
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}
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r.Sym = nil
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r.Siz = 0
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}
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}
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// mark appends a symbol to the mark queue for flood filling.
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func (d *deadcodepass) mark(s, parent *Symbol) {
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if s == nil || s.Attr.Reachable() {
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return
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}
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if s.Attr.ReflectMethod() {
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d.reflectMethod = true
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}
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if *flagDumpDep {
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p := "_"
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if parent != nil {
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p = parent.Name
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}
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fmt.Printf("%s -> %s\n", p, s.Name)
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}
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s.Attr |= AttrReachable
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s.Reachparent = parent
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d.markQueue = append(d.markQueue, s)
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}
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// markMethod marks a method as reachable.
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func (d *deadcodepass) markMethod(m methodref) {
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for _, r := range m.r {
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d.mark(r.Sym, m.src)
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r.Type = obj.R_ADDROFF
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}
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}
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// init marks all initial symbols as reachable.
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// In a typical binary, this is *flagEntrySymbol.
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func (d *deadcodepass) init() {
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var names []string
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if SysArch.Family == sys.ARM {
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// mark some functions that are only referenced after linker code editing
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if obj.GOARM == 5 {
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names = append(names, "_sfloat")
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}
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names = append(names, "runtime.read_tls_fallback")
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}
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if 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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for _, s := range d.ctxt.Syms.Allsym {
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if s.Type != 0 && s.Type != obj.SDYNIMPORT {
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d.mark(s, nil)
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}
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}
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} else {
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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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names = append(names, *flagEntrySymbol)
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if *FlagLinkshared && (Buildmode == BuildmodeExe || Buildmode == BuildmodePIE) {
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names = append(names, "main.main", "main.init")
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} else if Buildmode == BuildmodePlugin {
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pluginName := strings.TrimSuffix(filepath.Base(flag.Arg(0)), ".a")
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pluginInit := pluginName + ".init"
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names = append(names, pluginInit, "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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exports := d.ctxt.Syms.ROLookup("go.plugin.exports", 0)
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for _, r := range exports.R {
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d.mark(r.Sym, nil)
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}
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}
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for _, name := range markextra {
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names = append(names, name)
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}
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for _, s := range dynexp {
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d.mark(s, nil)
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}
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}
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for _, name := range names {
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d.mark(d.ctxt.Syms.ROLookup(name, 0), nil)
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}
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}
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// flood flood fills symbols reachable from the markQueue symbols.
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// As it goes, it collects methodref and interface method declarations.
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func (d *deadcodepass) flood() {
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for len(d.markQueue) > 0 {
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s := d.markQueue[0]
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d.markQueue = d.markQueue[1:]
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if s.Type == obj.STEXT {
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if d.ctxt.Debugvlog > 1 {
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d.ctxt.Logf("marktext %s\n", s.Name)
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}
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if s.FuncInfo != nil {
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for _, a := range s.FuncInfo.Autom {
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d.mark(a.Gotype, s)
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}
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}
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}
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if strings.HasPrefix(s.Name, "type.") && s.Name[5] != '.' {
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if decodetypeKind(s)&kindMask == kindInterface {
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for _, sig := range decodeIfaceMethods(d.ctxt.Arch, s) {
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if d.ctxt.Debugvlog > 1 {
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d.ctxt.Logf("reached iface method: %s\n", sig)
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}
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d.ifaceMethod[sig] = true
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}
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}
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}
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mpos := 0 // 0-3, the R_METHODOFF relocs of runtime.uncommontype
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var methods []methodref
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for i := 0; i < len(s.R); i++ {
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r := &s.R[i]
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if r.Sym == nil {
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continue
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}
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if r.Type != obj.R_METHODOFF {
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d.mark(r.Sym, s)
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continue
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}
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// Collect rtype pointers to methods for
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// later processing in deadcode.
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if mpos == 0 {
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m := methodref{src: s}
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m.r[0] = r
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methods = append(methods, m)
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} else {
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methods[len(methods)-1].r[mpos] = r
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}
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mpos++
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if mpos == len(methodref{}.r) {
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mpos = 0
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}
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}
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if len(methods) > 0 {
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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 := decodetypeMethods(d.ctxt.Arch, s)
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if len(methods) != len(methodsigs) {
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panic(fmt.Sprintf("%q has %d method relocations for %d methods", s.Name, len(methods), len(methodsigs)))
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}
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for i, m := range methodsigs {
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name := string(m)
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name = name[:strings.Index(name, "(")]
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if !strings.HasSuffix(methods[i].ifn().Name, name) {
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panic(fmt.Sprintf("%q relocation for %q does not match method %q", s.Name, methods[i].ifn().Name, name))
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}
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methods[i].m = m
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}
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d.markableMethods = append(d.markableMethods, methods...)
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}
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if s.FuncInfo != nil {
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for i := range s.FuncInfo.Funcdata {
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d.mark(s.FuncInfo.Funcdata[i], s)
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}
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}
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d.mark(s.Gotype, s)
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d.mark(s.Sub, s)
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d.mark(s.Outer, s)
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}
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}
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