go/src/cmd/compile/internal/devirtualize/devirtualize.go

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// Copyright 2020 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 devirtualize implements a simple "devirtualization"
// optimization pass, which replaces interface method calls with
// direct concrete-type method calls where possible.
package devirtualize
import (
"cmd/compile/internal/base"
"cmd/compile/internal/ir"
"cmd/compile/internal/typecheck"
"cmd/compile/internal/types"
)
// Func devirtualizes calls within fn where possible.
func Func(fn *ir.Func) {
ir.CurFunc = fn
// For promoted methods (including value-receiver methods promoted to pointer-receivers),
// the interface method wrapper may contain expressions that can panic (e.g., ODEREF, ODOTPTR, ODOTINTER).
// Devirtualization involves inlining these expressions (and possible panics) to the call site.
// This normally isn't a problem, but for go/defer statements it can move the panic from when/where
// the call executes to the go/defer statement itself, which is a visible change in semantics (e.g., #52072).
// To prevent this, we skip devirtualizing calls within go/defer statements altogether.
goDeferCall := make(map[*ir.CallExpr]bool)
ir.VisitList(fn.Body, func(n ir.Node) {
switch n := n.(type) {
case *ir.GoDeferStmt:
if call, ok := n.Call.(*ir.CallExpr); ok {
goDeferCall[call] = true
}
return
case *ir.CallExpr:
if !goDeferCall[n] {
Call(n)
}
}
})
}
// Call devirtualizes the given call if possible.
func Call(call *ir.CallExpr) {
if call.Op() != ir.OCALLINTER {
return
}
sel := call.X.(*ir.SelectorExpr)
r := ir.StaticValue(sel.X)
if r.Op() != ir.OCONVIFACE {
return
}
recv := r.(*ir.ConvExpr)
typ := recv.X.Type()
if typ.IsInterface() {
return
}
// If typ is a shape type, then it was a type argument originally
// and we'd need an indirect call through the dictionary anyway.
// We're unable to devirtualize this call.
if typ.IsShape() {
return
}
cmd/compile/internal/noder: shape-based stenciling for unified IR This CL switches unified IR to use shape-based stenciling with runtime dictionaries, like the existing non-unified frontend. Specifically, when instantiating generic functions and types `X[T]`, we now also instantiated shaped variants `X[shapify(T)]` that can be shared by `T`'s with common underlying types. For example, for generic function `F`, `F[int](args...)` will be rewritten to `F[go.shape.int](&.dict.F[int], args...)`. For generic type `T` with method `M` and value `t` of type `T[int]`, `t.M(args...)` will be rewritten to `T[go.shape.int].M(t, &.dict.T[int], args...)`. Two notable distinctions from the non-unified frontend: 1. For simplicity, currently shaping is limited to simply converting type arguments to their underlying type. Subsequent CLs will implement more aggressive shaping. 2. For generic types, a single dictionary is generated to be shared by all methods, rather than separate dictionaries for each method. I originally went with this design because I have an idea of changing interface calls to pass the itab pointer via the closure register (which should have zero overhead), and then the interface wrappers for generic methods could use the *runtime.itab to find the runtime dictionary that corresponds to the dynamic type. This would allow emitting fewer method wrappers. However, this choice does have the consequence that currently even if a method is unused and its code is pruned by the linker, it may have produced runtime dictionary entries that need to be kept alive anyway. I'm open to changing this to generate per-method dictionaries, though this would require changing the unified IR export data format; so it would be best to make this decision before Go 1.20. The other option is making the linker smarter about pruning unneeded dictionary entries, like how it already prunes itab entries. For example, the runtime dictionary for `T[int]` could have a `R_DICTTYPE` meta-relocation against symbol `.dicttype.T[go.shape.int]` that declares it's a dictionary associated with that type; and then each method on `T[go.shape.T]` could have `R_DICTUSE` meta-relocations against `.dicttype.T[go.shape.T]+offset` indicating which fields within dictionaries of that type need to be preserved. Change-Id: I369580b1d93d19640a4b5ecada4f6231adcce3fd Reviewed-on: https://go-review.googlesource.com/c/go/+/421821 Reviewed-by: David Chase <drchase@google.com> Reviewed-by: Keith Randall <khr@golang.org> Run-TryBot: Matthew Dempsky <mdempsky@google.com> Reviewed-by: Cuong Manh Le <cuong.manhle.vn@gmail.com> TryBot-Result: Gopher Robot <gobot@golang.org>
2022-08-06 16:40:56 -07:00
// If typ *has* a shape type, then it's an shaped, instantiated
// type like T[go.shape.int], and its methods (may) have an extra
// dictionary parameter. We could devirtualize this call if we
// could derive an appropriate dictionary argument.
//
// TODO(mdempsky): If typ has has a promoted non-generic method,
// then that method won't require a dictionary argument. We could
// still devirtualize those calls.
//
// TODO(mdempsky): We have the *runtime.itab in recv.TypeWord. It
// should be possible to compute the represented type's runtime
// dictionary from this (e.g., by adding a pointer from T[int]'s
// *runtime._type to .dict.T[int]; or by recognizing static
// references to go:itab.T[int],iface and constructing a direct
// reference to .dict.T[int]).
if typ.HasShape() {
if base.Flag.LowerM != 0 {
base.WarnfAt(call.Pos(), "cannot devirtualize %v: shaped receiver %v", call, typ)
cmd/compile/internal/noder: shape-based stenciling for unified IR This CL switches unified IR to use shape-based stenciling with runtime dictionaries, like the existing non-unified frontend. Specifically, when instantiating generic functions and types `X[T]`, we now also instantiated shaped variants `X[shapify(T)]` that can be shared by `T`'s with common underlying types. For example, for generic function `F`, `F[int](args...)` will be rewritten to `F[go.shape.int](&.dict.F[int], args...)`. For generic type `T` with method `M` and value `t` of type `T[int]`, `t.M(args...)` will be rewritten to `T[go.shape.int].M(t, &.dict.T[int], args...)`. Two notable distinctions from the non-unified frontend: 1. For simplicity, currently shaping is limited to simply converting type arguments to their underlying type. Subsequent CLs will implement more aggressive shaping. 2. For generic types, a single dictionary is generated to be shared by all methods, rather than separate dictionaries for each method. I originally went with this design because I have an idea of changing interface calls to pass the itab pointer via the closure register (which should have zero overhead), and then the interface wrappers for generic methods could use the *runtime.itab to find the runtime dictionary that corresponds to the dynamic type. This would allow emitting fewer method wrappers. However, this choice does have the consequence that currently even if a method is unused and its code is pruned by the linker, it may have produced runtime dictionary entries that need to be kept alive anyway. I'm open to changing this to generate per-method dictionaries, though this would require changing the unified IR export data format; so it would be best to make this decision before Go 1.20. The other option is making the linker smarter about pruning unneeded dictionary entries, like how it already prunes itab entries. For example, the runtime dictionary for `T[int]` could have a `R_DICTTYPE` meta-relocation against symbol `.dicttype.T[go.shape.int]` that declares it's a dictionary associated with that type; and then each method on `T[go.shape.T]` could have `R_DICTUSE` meta-relocations against `.dicttype.T[go.shape.T]+offset` indicating which fields within dictionaries of that type need to be preserved. Change-Id: I369580b1d93d19640a4b5ecada4f6231adcce3fd Reviewed-on: https://go-review.googlesource.com/c/go/+/421821 Reviewed-by: David Chase <drchase@google.com> Reviewed-by: Keith Randall <khr@golang.org> Run-TryBot: Matthew Dempsky <mdempsky@google.com> Reviewed-by: Cuong Manh Le <cuong.manhle.vn@gmail.com> TryBot-Result: Gopher Robot <gobot@golang.org>
2022-08-06 16:40:56 -07:00
}
return
}
// Further, if sel.X's type has a shape type, then it's a shaped
// interface type. In this case, the (non-dynamic) TypeAssertExpr
// we construct below would attempt to create an itab
// corresponding to this shaped interface type; but the actual
// itab pointer in the interface value will correspond to the
// original (non-shaped) interface type instead. These are
// functionally equivalent, but they have distinct pointer
// identities, which leads to the type assertion failing.
//
// TODO(mdempsky): We know the type assertion here is safe, so we
// could instead set a flag so that walk skips the itab check. For
// now, punting is easy and safe.
if sel.X.Type().HasShape() {
if base.Flag.LowerM != 0 {
base.WarnfAt(call.Pos(), "cannot devirtualize %v: shaped interface %v", call, sel.X.Type())
}
return
cmd/compile/internal/noder: shape-based stenciling for unified IR This CL switches unified IR to use shape-based stenciling with runtime dictionaries, like the existing non-unified frontend. Specifically, when instantiating generic functions and types `X[T]`, we now also instantiated shaped variants `X[shapify(T)]` that can be shared by `T`'s with common underlying types. For example, for generic function `F`, `F[int](args...)` will be rewritten to `F[go.shape.int](&.dict.F[int], args...)`. For generic type `T` with method `M` and value `t` of type `T[int]`, `t.M(args...)` will be rewritten to `T[go.shape.int].M(t, &.dict.T[int], args...)`. Two notable distinctions from the non-unified frontend: 1. For simplicity, currently shaping is limited to simply converting type arguments to their underlying type. Subsequent CLs will implement more aggressive shaping. 2. For generic types, a single dictionary is generated to be shared by all methods, rather than separate dictionaries for each method. I originally went with this design because I have an idea of changing interface calls to pass the itab pointer via the closure register (which should have zero overhead), and then the interface wrappers for generic methods could use the *runtime.itab to find the runtime dictionary that corresponds to the dynamic type. This would allow emitting fewer method wrappers. However, this choice does have the consequence that currently even if a method is unused and its code is pruned by the linker, it may have produced runtime dictionary entries that need to be kept alive anyway. I'm open to changing this to generate per-method dictionaries, though this would require changing the unified IR export data format; so it would be best to make this decision before Go 1.20. The other option is making the linker smarter about pruning unneeded dictionary entries, like how it already prunes itab entries. For example, the runtime dictionary for `T[int]` could have a `R_DICTTYPE` meta-relocation against symbol `.dicttype.T[go.shape.int]` that declares it's a dictionary associated with that type; and then each method on `T[go.shape.T]` could have `R_DICTUSE` meta-relocations against `.dicttype.T[go.shape.T]+offset` indicating which fields within dictionaries of that type need to be preserved. Change-Id: I369580b1d93d19640a4b5ecada4f6231adcce3fd Reviewed-on: https://go-review.googlesource.com/c/go/+/421821 Reviewed-by: David Chase <drchase@google.com> Reviewed-by: Keith Randall <khr@golang.org> Run-TryBot: Matthew Dempsky <mdempsky@google.com> Reviewed-by: Cuong Manh Le <cuong.manhle.vn@gmail.com> TryBot-Result: Gopher Robot <gobot@golang.org>
2022-08-06 16:40:56 -07:00
}
dt := ir.NewTypeAssertExpr(sel.Pos(), sel.X, nil)
dt.SetType(typ)
x := typecheck.Callee(ir.NewSelectorExpr(sel.Pos(), ir.OXDOT, dt, sel.Sel))
switch x.Op() {
case ir.ODOTMETH:
x := x.(*ir.SelectorExpr)
if base.Flag.LowerM != 0 {
base.WarnfAt(call.Pos(), "devirtualizing %v to %v", sel, typ)
}
call.SetOp(ir.OCALLMETH)
call.X = x
case ir.ODOTINTER:
// Promoted method from embedded interface-typed field (#42279).
x := x.(*ir.SelectorExpr)
if base.Flag.LowerM != 0 {
base.WarnfAt(call.Pos(), "partially devirtualizing %v to %v", sel, typ)
}
call.SetOp(ir.OCALLINTER)
call.X = x
default:
// TODO(mdempsky): Turn back into Fatalf after more testing.
if base.Flag.LowerM != 0 {
base.WarnfAt(call.Pos(), "failed to devirtualize %v (%v)", x, x.Op())
}
return
}
// Duplicated logic from typecheck for function call return
// value types.
//
// Receiver parameter size may have changed; need to update
// call.Type to get correct stack offsets for result
// parameters.
types.CheckSize(x.Type())
switch ft := x.Type(); ft.NumResults() {
case 0:
case 1:
call.SetType(ft.Results().Field(0).Type)
default:
call.SetType(ft.Results())
}
// Desugar OCALLMETH, if we created one (#57309).
typecheck.FixMethodCall(call)
}