mirror of
https://github.com/golang/go.git
synced 2025-11-11 06:01:06 +00:00
Just "=". It's cleaner.
Passes toolstash -cmp.
[git-generate]
cd src/cmd/compile/internal/ir
pkgs=$(go list . ../...)
rf '
ex '"$(echo $pkgs)"' {
var l Nodes
var p *Nodes
p.Set(l) -> *p = l
}
ex '"$(echo $pkgs)"' {
var n InitNode
var l Nodes
*n.PtrInit() = l -> n.SetInit(l)
}
rm Nodes.Set
'
Change-Id: Ic97219792243667146a02776553942ae1189ff7d
Reviewed-on: https://go-review.googlesource.com/c/go/+/281002
Trust: Matthew Dempsky <mdempsky@google.com>
Run-TryBot: Matthew Dempsky <mdempsky@google.com>
TryBot-Result: Go Bot <gobot@golang.org>
Reviewed-by: Cuong Manh Le <cuong.manhle.vn@gmail.com>
588 lines
17 KiB
Go
588 lines
17 KiB
Go
// Copyright 2009 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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// “Abstract” syntax representation.
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package ir
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import (
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"fmt"
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"go/constant"
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"sort"
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"cmd/compile/internal/base"
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"cmd/compile/internal/types"
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"cmd/internal/src"
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)
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// A Node is the abstract interface to an IR node.
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type Node interface {
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// Formatting
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Format(s fmt.State, verb rune)
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// Source position.
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Pos() src.XPos
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SetPos(x src.XPos)
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// For making copies. For Copy and SepCopy.
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copy() Node
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doChildren(func(Node) bool) bool
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editChildren(func(Node) Node)
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// Abstract graph structure, for generic traversals.
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Op() Op
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Init() Nodes
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// Fields specific to certain Ops only.
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Type() *types.Type
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SetType(t *types.Type)
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Name() *Name
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Sym() *types.Sym
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Val() constant.Value
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SetVal(v constant.Value)
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// Storage for analysis passes.
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Esc() uint16
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SetEsc(x uint16)
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Walkdef() uint8
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SetWalkdef(x uint8)
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Diag() bool
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SetDiag(x bool)
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Typecheck() uint8
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SetTypecheck(x uint8)
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NonNil() bool
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MarkNonNil()
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HasCall() bool
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SetHasCall(x bool)
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}
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// Line returns n's position as a string. If n has been inlined,
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// it uses the outermost position where n has been inlined.
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func Line(n Node) string {
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return base.FmtPos(n.Pos())
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}
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func IsSynthetic(n Node) bool {
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name := n.Sym().Name
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return name[0] == '.' || name[0] == '~'
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}
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// IsAutoTmp indicates if n was created by the compiler as a temporary,
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// based on the setting of the .AutoTemp flag in n's Name.
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func IsAutoTmp(n Node) bool {
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if n == nil || n.Op() != ONAME {
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return false
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}
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return n.Name().AutoTemp()
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}
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// mayBeShared reports whether n may occur in multiple places in the AST.
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// Extra care must be taken when mutating such a node.
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func MayBeShared(n Node) bool {
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switch n.Op() {
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case ONAME, OLITERAL, ONIL, OTYPE:
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return true
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}
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return false
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}
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type InitNode interface {
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Node
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PtrInit() *Nodes
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SetInit(x Nodes)
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}
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func TakeInit(n Node) Nodes {
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init := n.Init()
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if len(init) != 0 {
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n.(InitNode).SetInit(nil)
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}
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return init
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}
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//go:generate stringer -type=Op -trimprefix=O node.go
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type Op uint8
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// Node ops.
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const (
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OXXX Op = iota
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// names
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ONAME // var or func name
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// Unnamed arg or return value: f(int, string) (int, error) { etc }
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// Also used for a qualified package identifier that hasn't been resolved yet.
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ONONAME
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OTYPE // type name
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OPACK // import
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OLITERAL // literal
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ONIL // nil
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// expressions
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OADD // Left + Right
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OSUB // Left - Right
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OOR // Left | Right
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OXOR // Left ^ Right
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OADDSTR // +{List} (string addition, list elements are strings)
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OADDR // &Left
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OANDAND // Left && Right
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OAPPEND // append(List); after walk, Left may contain elem type descriptor
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OBYTES2STR // Type(Left) (Type is string, Left is a []byte)
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OBYTES2STRTMP // Type(Left) (Type is string, Left is a []byte, ephemeral)
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ORUNES2STR // Type(Left) (Type is string, Left is a []rune)
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OSTR2BYTES // Type(Left) (Type is []byte, Left is a string)
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OSTR2BYTESTMP // Type(Left) (Type is []byte, Left is a string, ephemeral)
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OSTR2RUNES // Type(Left) (Type is []rune, Left is a string)
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// Left = Right or (if Colas=true) Left := Right
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// If Colas, then Ninit includes a DCL node for Left.
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OAS
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// List = Rlist (x, y, z = a, b, c) or (if Colas=true) List := Rlist
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// If Colas, then Ninit includes DCL nodes for List
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OAS2
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OAS2DOTTYPE // List = Right (x, ok = I.(int))
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OAS2FUNC // List = Right (x, y = f())
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OAS2MAPR // List = Right (x, ok = m["foo"])
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OAS2RECV // List = Right (x, ok = <-c)
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OASOP // Left Etype= Right (x += y)
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OCALL // Left(List) (function call, method call or type conversion)
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// OCALLFUNC, OCALLMETH, and OCALLINTER have the same structure.
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// Prior to walk, they are: Left(List), where List is all regular arguments.
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// After walk, List is a series of assignments to temporaries,
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// and Rlist is an updated set of arguments.
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// Nbody is all OVARLIVE nodes that are attached to OCALLxxx.
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// TODO(josharian/khr): Use Ninit instead of List for the assignments to temporaries. See CL 114797.
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OCALLFUNC // Left(List/Rlist) (function call f(args))
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OCALLMETH // Left(List/Rlist) (direct method call x.Method(args))
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OCALLINTER // Left(List/Rlist) (interface method call x.Method(args))
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OCALLPART // Left.Right (method expression x.Method, not called)
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OCAP // cap(Left)
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OCLOSE // close(Left)
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OCLOSURE // func Type { Func.Closure.Nbody } (func literal)
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OCOMPLIT // Right{List} (composite literal, not yet lowered to specific form)
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OMAPLIT // Type{List} (composite literal, Type is map)
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OSTRUCTLIT // Type{List} (composite literal, Type is struct)
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OARRAYLIT // Type{List} (composite literal, Type is array)
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OSLICELIT // Type{List} (composite literal, Type is slice) Right.Int64() = slice length.
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OPTRLIT // &Left (left is composite literal)
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OCONV // Type(Left) (type conversion)
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OCONVIFACE // Type(Left) (type conversion, to interface)
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OCONVNOP // Type(Left) (type conversion, no effect)
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OCOPY // copy(Left, Right)
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ODCL // var Left (declares Left of type Left.Type)
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// Used during parsing but don't last.
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ODCLFUNC // func f() or func (r) f()
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ODCLCONST // const pi = 3.14
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ODCLTYPE // type Int int or type Int = int
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ODELETE // delete(List)
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ODOT // Left.Sym (Left is of struct type)
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ODOTPTR // Left.Sym (Left is of pointer to struct type)
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ODOTMETH // Left.Sym (Left is non-interface, Right is method name)
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ODOTINTER // Left.Sym (Left is interface, Right is method name)
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OXDOT // Left.Sym (before rewrite to one of the preceding)
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ODOTTYPE // Left.Right or Left.Type (.Right during parsing, .Type once resolved); after walk, .Right contains address of interface type descriptor and .Right.Right contains address of concrete type descriptor
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ODOTTYPE2 // Left.Right or Left.Type (.Right during parsing, .Type once resolved; on rhs of OAS2DOTTYPE); after walk, .Right contains address of interface type descriptor
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OEQ // Left == Right
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ONE // Left != Right
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OLT // Left < Right
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OLE // Left <= Right
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OGE // Left >= Right
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OGT // Left > Right
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ODEREF // *Left
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OINDEX // Left[Right] (index of array or slice)
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OINDEXMAP // Left[Right] (index of map)
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OKEY // Left:Right (key:value in struct/array/map literal)
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OSTRUCTKEY // Sym:Left (key:value in struct literal, after type checking)
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OLEN // len(Left)
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OMAKE // make(List) (before type checking converts to one of the following)
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OMAKECHAN // make(Type, Left) (type is chan)
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OMAKEMAP // make(Type, Left) (type is map)
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OMAKESLICE // make(Type, Left, Right) (type is slice)
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OMAKESLICECOPY // makeslicecopy(Type, Left, Right) (type is slice; Left is length and Right is the copied from slice)
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// OMAKESLICECOPY is created by the order pass and corresponds to:
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// s = make(Type, Left); copy(s, Right)
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//
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// Bounded can be set on the node when Left == len(Right) is known at compile time.
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//
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// This node is created so the walk pass can optimize this pattern which would
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// otherwise be hard to detect after the order pass.
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OMUL // Left * Right
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ODIV // Left / Right
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OMOD // Left % Right
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OLSH // Left << Right
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ORSH // Left >> Right
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OAND // Left & Right
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OANDNOT // Left &^ Right
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ONEW // new(Left); corresponds to calls to new in source code
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ONEWOBJ // runtime.newobject(n.Type); introduced by walk; Left is type descriptor
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ONOT // !Left
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OBITNOT // ^Left
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OPLUS // +Left
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ONEG // -Left
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OOROR // Left || Right
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OPANIC // panic(Left)
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OPRINT // print(List)
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OPRINTN // println(List)
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OPAREN // (Left)
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OSEND // Left <- Right
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OSLICE // Left[List[0] : List[1]] (Left is untypechecked or slice)
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OSLICEARR // Left[List[0] : List[1]] (Left is pointer to array)
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OSLICESTR // Left[List[0] : List[1]] (Left is string)
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OSLICE3 // Left[List[0] : List[1] : List[2]] (Left is untypedchecked or slice)
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OSLICE3ARR // Left[List[0] : List[1] : List[2]] (Left is pointer to array)
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OSLICEHEADER // sliceheader{Left, List[0], List[1]} (Left is unsafe.Pointer, List[0] is length, List[1] is capacity)
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ORECOVER // recover()
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ORECV // <-Left
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ORUNESTR // Type(Left) (Type is string, Left is rune)
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OSELRECV2 // like OAS2: List = Rlist where len(List)=2, len(Rlist)=1, Rlist[0].Op = ORECV (appears as .Left of OCASE)
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OIOTA // iota
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OREAL // real(Left)
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OIMAG // imag(Left)
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OCOMPLEX // complex(Left, Right) or complex(List[0]) where List[0] is a 2-result function call
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OALIGNOF // unsafe.Alignof(Left)
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OOFFSETOF // unsafe.Offsetof(Left)
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OSIZEOF // unsafe.Sizeof(Left)
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OMETHEXPR // method expression
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OSTMTEXPR // statement expression (Init; Left)
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// statements
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OBLOCK // { List } (block of code)
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OBREAK // break [Sym]
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// OCASE: case List: Nbody (List==nil means default)
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// For OTYPESW, List is a OTYPE node for the specified type (or OLITERAL
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// for nil), and, if a type-switch variable is specified, Rlist is an
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// ONAME for the version of the type-switch variable with the specified
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// type.
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OCASE
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OCONTINUE // continue [Sym]
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ODEFER // defer Left (Left must be call)
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OFALL // fallthrough
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OFOR // for Ninit; Left; Right { Nbody }
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// OFORUNTIL is like OFOR, but the test (Left) is applied after the body:
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// Ninit
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// top: { Nbody } // Execute the body at least once
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// cont: Right
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// if Left { // And then test the loop condition
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// List // Before looping to top, execute List
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// goto top
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// }
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// OFORUNTIL is created by walk. There's no way to write this in Go code.
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OFORUNTIL
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OGOTO // goto Sym
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OIF // if Ninit; Left { Nbody } else { Rlist }
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OLABEL // Sym:
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OGO // go Left (Left must be call)
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ORANGE // for List = range Right { Nbody }
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ORETURN // return List
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OSELECT // select { List } (List is list of OCASE)
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OSWITCH // switch Ninit; Left { List } (List is a list of OCASE)
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// OTYPESW: Left := Right.(type) (appears as .Left of OSWITCH)
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// Left is nil if there is no type-switch variable
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OTYPESW
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// types
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OTCHAN // chan int
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OTMAP // map[string]int
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OTSTRUCT // struct{}
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OTINTER // interface{}
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// OTFUNC: func() - Left is receiver field, List is list of param fields, Rlist is
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// list of result fields.
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OTFUNC
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OTARRAY // [8]int or [...]int
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OTSLICE // []int
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// misc
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OINLCALL // intermediary representation of an inlined call.
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OEFACE // itable and data words of an empty-interface value.
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OITAB // itable word of an interface value.
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OIDATA // data word of an interface value in Left
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OSPTR // base pointer of a slice or string.
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OCLOSUREREAD // read from inside closure struct at beginning of closure function
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OCFUNC // reference to c function pointer (not go func value)
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OCHECKNIL // emit code to ensure pointer/interface not nil
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OVARDEF // variable is about to be fully initialized
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OVARKILL // variable is dead
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OVARLIVE // variable is alive
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ORESULT // result of a function call; Xoffset is stack offset
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OINLMARK // start of an inlined body, with file/line of caller. Xoffset is an index into the inline tree.
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ONAMEOFFSET // offset within a name
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// arch-specific opcodes
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ORETJMP // return to other function
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OGETG // runtime.getg() (read g pointer)
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OEND
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)
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// Nodes is a pointer to a slice of *Node.
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// For fields that are not used in most nodes, this is used instead of
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// a slice to save space.
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type Nodes []Node
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// Append appends entries to Nodes.
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func (n *Nodes) Append(a ...Node) {
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if len(a) == 0 {
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return
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}
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*n = append(*n, a...)
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}
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// Prepend prepends entries to Nodes.
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// If a slice is passed in, this will take ownership of it.
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func (n *Nodes) Prepend(a ...Node) {
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if len(a) == 0 {
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return
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}
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*n = append(a, *n...)
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}
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// Take clears n, returning its former contents.
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func (n *Nodes) Take() []Node {
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ret := *n
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*n = nil
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return ret
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}
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// Copy returns a copy of the content of the slice.
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func (n Nodes) Copy() Nodes {
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if n == nil {
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return nil
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}
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c := make(Nodes, len(n))
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copy(c, n)
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return c
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}
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// NameQueue is a FIFO queue of *Name. The zero value of NameQueue is
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// a ready-to-use empty queue.
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type NameQueue struct {
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ring []*Name
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head, tail int
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}
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// Empty reports whether q contains no Names.
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func (q *NameQueue) Empty() bool {
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return q.head == q.tail
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}
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// PushRight appends n to the right of the queue.
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func (q *NameQueue) PushRight(n *Name) {
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if len(q.ring) == 0 {
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q.ring = make([]*Name, 16)
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} else if q.head+len(q.ring) == q.tail {
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// Grow the ring.
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nring := make([]*Name, len(q.ring)*2)
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// Copy the old elements.
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part := q.ring[q.head%len(q.ring):]
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if q.tail-q.head <= len(part) {
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part = part[:q.tail-q.head]
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copy(nring, part)
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} else {
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pos := copy(nring, part)
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copy(nring[pos:], q.ring[:q.tail%len(q.ring)])
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}
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q.ring, q.head, q.tail = nring, 0, q.tail-q.head
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}
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q.ring[q.tail%len(q.ring)] = n
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q.tail++
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}
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// PopLeft pops a Name from the left of the queue. It panics if q is
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// empty.
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func (q *NameQueue) PopLeft() *Name {
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if q.Empty() {
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panic("dequeue empty")
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}
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n := q.ring[q.head%len(q.ring)]
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q.head++
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return n
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}
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// NameSet is a set of Names.
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type NameSet map[*Name]struct{}
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// Has reports whether s contains n.
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func (s NameSet) Has(n *Name) bool {
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_, isPresent := s[n]
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return isPresent
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}
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// Add adds n to s.
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func (s *NameSet) Add(n *Name) {
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if *s == nil {
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*s = make(map[*Name]struct{})
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}
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(*s)[n] = struct{}{}
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}
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// Sorted returns s sorted according to less.
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func (s NameSet) Sorted(less func(*Name, *Name) bool) []*Name {
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var res []*Name
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for n := range s {
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res = append(res, n)
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}
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sort.Slice(res, func(i, j int) bool { return less(res[i], res[j]) })
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return res
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}
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type PragmaFlag int16
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const (
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// Func pragmas.
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Nointerface PragmaFlag = 1 << iota
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Noescape // func parameters don't escape
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Norace // func must not have race detector annotations
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Nosplit // func should not execute on separate stack
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Noinline // func should not be inlined
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NoCheckPtr // func should not be instrumented by checkptr
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CgoUnsafeArgs // treat a pointer to one arg as a pointer to them all
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UintptrEscapes // pointers converted to uintptr escape
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// Runtime-only func pragmas.
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// See ../../../../runtime/README.md for detailed descriptions.
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Systemstack // func must run on system stack
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Nowritebarrier // emit compiler error instead of write barrier
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Nowritebarrierrec // error on write barrier in this or recursive callees
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Yeswritebarrierrec // cancels Nowritebarrierrec in this function and callees
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// Runtime and cgo type pragmas
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NotInHeap // values of this type must not be heap allocated
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// Go command pragmas
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GoBuildPragma
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)
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func AsNode(n types.Object) Node {
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if n == nil {
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return nil
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}
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return n.(Node)
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}
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var BlankNode Node
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|
|
func IsConst(n Node, ct constant.Kind) bool {
|
|
return ConstType(n) == ct
|
|
}
|
|
|
|
// isNil reports whether n represents the universal untyped zero value "nil".
|
|
func IsNil(n Node) bool {
|
|
// Check n.Orig because constant propagation may produce typed nil constants,
|
|
// which don't exist in the Go spec.
|
|
return n != nil && Orig(n).Op() == ONIL
|
|
}
|
|
|
|
func IsBlank(n Node) bool {
|
|
if n == nil {
|
|
return false
|
|
}
|
|
return n.Sym().IsBlank()
|
|
}
|
|
|
|
// IsMethod reports whether n is a method.
|
|
// n must be a function or a method.
|
|
func IsMethod(n Node) bool {
|
|
return n.Type().Recv() != nil
|
|
}
|
|
|
|
func HasNamedResults(fn *Func) bool {
|
|
typ := fn.Type()
|
|
return typ.NumResults() > 0 && types.OrigSym(typ.Results().Field(0).Sym) != nil
|
|
}
|
|
|
|
// HasUniquePos reports whether n has a unique position that can be
|
|
// used for reporting error messages.
|
|
//
|
|
// It's primarily used to distinguish references to named objects,
|
|
// whose Pos will point back to their declaration position rather than
|
|
// their usage position.
|
|
func HasUniquePos(n Node) bool {
|
|
switch n.Op() {
|
|
case ONAME, OPACK:
|
|
return false
|
|
case OLITERAL, ONIL, OTYPE:
|
|
if n.Sym() != nil {
|
|
return false
|
|
}
|
|
}
|
|
|
|
if !n.Pos().IsKnown() {
|
|
if base.Flag.K != 0 {
|
|
base.Warn("setlineno: unknown position (line 0)")
|
|
}
|
|
return false
|
|
}
|
|
|
|
return true
|
|
}
|
|
|
|
func SetPos(n Node) src.XPos {
|
|
lno := base.Pos
|
|
if n != nil && HasUniquePos(n) {
|
|
base.Pos = n.Pos()
|
|
}
|
|
return lno
|
|
}
|
|
|
|
// The result of InitExpr MUST be assigned back to n, e.g.
|
|
// n.Left = InitExpr(init, n.Left)
|
|
func InitExpr(init []Node, expr Node) Node {
|
|
if len(init) == 0 {
|
|
return expr
|
|
}
|
|
|
|
n, ok := expr.(InitNode)
|
|
if !ok || MayBeShared(n) {
|
|
// Introduce OCONVNOP to hold init list.
|
|
n = NewConvExpr(base.Pos, OCONVNOP, nil, expr)
|
|
n.SetType(expr.Type())
|
|
n.SetTypecheck(1)
|
|
}
|
|
|
|
n.PtrInit().Prepend(init...)
|
|
n.SetHasCall(true)
|
|
return n
|
|
}
|
|
|
|
// what's the outer value that a write to n affects?
|
|
// outer value means containing struct or array.
|
|
func OuterValue(n Node) Node {
|
|
for {
|
|
switch nn := n; nn.Op() {
|
|
case OXDOT:
|
|
base.Fatalf("OXDOT in walk")
|
|
case ODOT:
|
|
nn := nn.(*SelectorExpr)
|
|
n = nn.X
|
|
continue
|
|
case OPAREN:
|
|
nn := nn.(*ParenExpr)
|
|
n = nn.X
|
|
continue
|
|
case OCONVNOP:
|
|
nn := nn.(*ConvExpr)
|
|
n = nn.X
|
|
continue
|
|
case OINDEX:
|
|
nn := nn.(*IndexExpr)
|
|
if nn.X.Type() != nil && nn.X.Type().IsArray() {
|
|
n = nn.X
|
|
continue
|
|
}
|
|
}
|
|
|
|
return n
|
|
}
|
|
}
|
|
|
|
const (
|
|
EscUnknown = iota
|
|
EscNone // Does not escape to heap, result, or parameters.
|
|
EscHeap // Reachable from the heap
|
|
EscNever // By construction will not escape.
|
|
)
|