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synced 2024-11-26 19:51:17 -07:00
8b48290895
When shapifying recursive instantiated types, the compiler ends up leaving the type as-is if it already has been a shape type. However, if both of type arguments are interfaces, and one of them is a recursive one, it ends up being shaped as-is, while the other is shaped to its underlying, causing mismatch in function signature. Fixing this by shapifying an interface type as-is, if it is fully instantiated and already been a shape type. Fixes #65362 Fixes #66663 Change-Id: I839d266e0443b41238b1b7362aca09adc0177362 Reviewed-on: https://go-review.googlesource.com/c/go/+/559656 Auto-Submit: Cuong Manh Le <cuong.manhle.vn@gmail.com> LUCI-TryBot-Result: Go LUCI <golang-scoped@luci-project-accounts.iam.gserviceaccount.com> Reviewed-by: Cherry Mui <cherryyz@google.com> Reviewed-by: Keith Randall <khr@google.com> Reviewed-by: Keith Randall <khr@golang.org>
35 lines
601 B
Go
35 lines
601 B
Go
// compile
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// Copyright 2024 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 p
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type Iterator[A any] func() (bool, A)
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type Range[A any] interface {
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Blocks() Iterator[Block[A]]
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}
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type Block[A any] interface {
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Range[A]
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}
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type rangeImpl[A any] struct{}
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func (r *rangeImpl[A]) Blocks() Iterator[Block[A]] {
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return func() (bool, Block[A]) {
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var a Block[A]
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return false, a
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}
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}
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func NewRange[A any]() Range[A] {
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return &rangeImpl[A]{}
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}
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type AddrImpl struct{}
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var _ = NewRange[AddrImpl]()
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