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cmd/compile: fix identical to recognize any and interface{}

Currently, identical handles any and interface{} by checking against
Types[TINTER]. This is not always true, since when two generated
interface{} types may not use the same *Type instance.

Instead, we must check whether Type is empty interface or not.

Fixes #49875

Change-Id: I28fe4fc0100041a01bb03da795cfe8232b515fc4
Reviewed-on: https://go-review.googlesource.com/c/go/+/367754
Trust: Cuong Manh Le <cuong.manhle.vn@gmail.com>
Run-TryBot: Cuong Manh Le <cuong.manhle.vn@gmail.com>
TryBot-Result: Go Bot <gobot@golang.org>
Reviewed-by: Keith Randall <khr@golang.org>
Reviewed-by: Matthew Dempsky <mdempsky@google.com>
This commit is contained in:
Cuong Manh Le 2021-11-30 16:58:36 +07:00
parent a412b5f0d8
commit 0e1d553b4d
3 changed files with 18 additions and 2 deletions

View File

@ -59,7 +59,8 @@ func identical(t1, t2 *Type, flags int, assumedEqual map[typePair]struct{}) bool
case TINT32:
return (t1 == Types[TINT32] || t1 == RuneType) && (t2 == Types[TINT32] || t2 == RuneType)
case TINTER:
return (t1 == Types[TINTER] || t1 == AnyType) && (t2 == Types[TINTER] || t2 == AnyType)
// Make sure named any type matches any empty interface.
return t1 == AnyType && t2.IsEmptyInterface() || t2 == AnyType && t1.IsEmptyInterface()
default:
return false
}

View File

@ -1211,7 +1211,8 @@ func (t *Type) cmp(x *Type) Cmp {
}
case TINTER:
if (t == Types[AnyType.kind] || t == AnyType) && (x == Types[AnyType.kind] || x == AnyType) {
// Make sure named any type matches any empty interface.
if t == AnyType && x.IsEmptyInterface() || x == AnyType && t.IsEmptyInterface() {
return CMPeq
}
}

View File

@ -0,0 +1,14 @@
// compile -G=3
// Copyright 2021 The Go Authors. All rights reserved.
// Use of this source code is governed by a BSD-style
// license that can be found in the LICENSE file.
package p
func f(args ...interface{}) {}
func g() {
var args []any
f(args...)
}