Files
carbon-lang/toolchain/check/testdata/operators/overloaded/div.carbon
T
Chandler Carruthandjosh11b 7871237c15 Move self to the explicit () parameter list (proposal #7016) (#7272)
Implements proposal #7016: `self` moves from the deduced implicit list
(`fn F[self: Self]()`) to the front of the explicit list. Its type may
be written explicitly (`fn F(self: Self)`) or omitted, in which case it
defaults to `Self` (`fn F(self)`, `fn F(ref self)`); `self` in the
implicit list is rejected.

Throughout checking, `self` is modeled as the first explicit parameter.
Because a method is just a function whose first parameter is `self`, it
can also be called as an ordinary function with the receiver passed
explicitly (`Type.M(obj, ...)`), not only as `obj.M(...)`. A new
`SemIR::CallArgParamPatterns` helper chooses the parameters matched
against the explicit arguments, excluding a leading `self` only when it
is supplied as a method-call receiver; arity checking, conversion, and
generic deduction use it. The resulting SemIR and lowering are
unchanged: `self` is still `call_param0`, and witnesses, thunks, and
vtables are unaffected.

An omitted `self` type is parsed as a `SelfBindingPattern` node with no
type expression; checking synthesizes the `Self` type so it behaves
exactly like `self: Self`. However, the exact spelling used must match
between a forward declaration and a definition, following #3763's rules
around declaration matching.

Generated functions, thunks, and C++ interop import/export build `self`
as the first explicit parameter, and the `self`-type override (e.g.
Derived->Base for a virtual override) applies to the explicit `self`.
Placement is validated by new diagnostics: `SelfInImplicitParamList`,
`SelfNotFirstParam`, and `SelfOutsideParamList`. The benchmark source
generator and the documentation adopt the `(self)` shorthand; the
prelude, the examples, and the test data are migrated in the following
commits.

Assisted-by: Claude Code with Claude Opus 4.7

---------

Co-authored-by: josh11b <15258583+josh11b@users.noreply.github.com>
2026-06-10 15:30:43 +00:00

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// Part of the Carbon Language project, under the Apache License v2.0 with LLVM
// Exceptions. See /LICENSE for license information.
// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
//
// INCLUDE-FILE: toolchain/testing/testdata/min_prelude/full.carbon
// TODO: Add ranges and switch to "--dump-sem-ir-ranges=only".
// EXTRA-ARGS: --dump-sem-ir-ranges=if-present
//
// AUTOUPDATE
// TIP: To test this file alone, run:
// TIP: bazel test //toolchain/testing:file_test --test_arg=--file_tests=toolchain/check/testdata/operators/overloaded/div.carbon
// TIP: To dump output, run:
// TIP: bazel run //toolchain/testing:file_test -- --dump_output --file_tests=toolchain/check/testdata/operators/overloaded/div.carbon
// This file was generated from binary_op.carbon.tmpl. Run make_tests.sh to regenerate.
package User;
class C {};
impl C as Core.DivWith(C) where .Result = C {
fn Op(unused self: C, unused other: C) -> C {
return {};
}
}
impl C as Core.DivAssignWith(C) {
fn Op(unused ref self: C, unused other: C) {}
}
fn TestOp(a: C, b: C) -> C {
//@dump-sem-ir-begin
return a / b;
//@dump-sem-ir-end
}
fn TestAssign(a: C*, b: C) {
//@dump-sem-ir-begin
*a /= b;
//@dump-sem-ir-end
}
// CHECK:STDOUT: --- div.carbon
// CHECK:STDOUT:
// CHECK:STDOUT: constants {
// CHECK:STDOUT: %C: type = class_type @C [concrete]
// CHECK:STDOUT: %empty_tuple.type: type = tuple_type () [concrete]
// CHECK:STDOUT: %DivWith.type.148: type = facet_type <@DivWith, @DivWith(%C)> [concrete]
// CHECK:STDOUT: %DivWith.impl_witness: <witness> = impl_witness @C.as.DivWith.impl.%DivWith.impl_witness_table [concrete]
// CHECK:STDOUT: %C.as.DivWith.impl.Op.type: type = fn_type @C.as.DivWith.impl.Op [concrete]
// CHECK:STDOUT: %C.as.DivWith.impl.Op: %C.as.DivWith.impl.Op.type = struct_value () [concrete]
// CHECK:STDOUT: %DivWith.facet: %DivWith.type.148 = facet_value %C, (%DivWith.impl_witness) [concrete]
// CHECK:STDOUT: %DivWith.WithSelf.Op.type.b48: type = fn_type @DivWith.WithSelf.Op, @DivWith.WithSelf(%C, %DivWith.facet) [concrete]
// CHECK:STDOUT: %DivAssignWith.type.dad: type = facet_type <@DivAssignWith, @DivAssignWith(%C)> [concrete]
// CHECK:STDOUT: %DivAssignWith.impl_witness: <witness> = impl_witness @C.as.DivAssignWith.impl.%DivAssignWith.impl_witness_table [concrete]
// CHECK:STDOUT: %C.as.DivAssignWith.impl.Op.type: type = fn_type @C.as.DivAssignWith.impl.Op [concrete]
// CHECK:STDOUT: %C.as.DivAssignWith.impl.Op: %C.as.DivAssignWith.impl.Op.type = struct_value () [concrete]
// CHECK:STDOUT: %DivAssignWith.facet: %DivAssignWith.type.dad = facet_value %C, (%DivAssignWith.impl_witness) [concrete]
// CHECK:STDOUT: %DivAssignWith.WithSelf.Op.type.417: type = fn_type @DivAssignWith.WithSelf.Op, @DivAssignWith.WithSelf(%C, %DivAssignWith.facet) [concrete]
// CHECK:STDOUT: %.713: type = fn_type_with_self_type %DivWith.WithSelf.Op.type.b48, %DivWith.facet [concrete]
// CHECK:STDOUT: %ptr.00e: type = ptr_type %C [concrete]
// CHECK:STDOUT: %.647: type = fn_type_with_self_type %DivAssignWith.WithSelf.Op.type.417, %DivAssignWith.facet [concrete]
// CHECK:STDOUT: }
// CHECK:STDOUT:
// CHECK:STDOUT: fn @TestOp(%a.param: %C, %b.param: %C) -> out %return.param: %C {
// CHECK:STDOUT: !entry:
// CHECK:STDOUT: %a.ref: %C = name_ref a, %a
// CHECK:STDOUT: %b.ref: %C = name_ref b, %b
// CHECK:STDOUT: %impl.elem1: %.713 = impl_witness_access constants.%DivWith.impl_witness, element1 [concrete = constants.%C.as.DivWith.impl.Op]
// CHECK:STDOUT: %bound_method: <bound method> = bound_method %a.ref, %impl.elem1
// CHECK:STDOUT: <elided>
// CHECK:STDOUT: %C.as.DivWith.impl.Op.call: init %C to %.loc30_26.1 = call %bound_method(%a.ref, %b.ref)
// CHECK:STDOUT: return %C.as.DivWith.impl.Op.call to %return.param
// CHECK:STDOUT: }
// CHECK:STDOUT:
// CHECK:STDOUT: fn @TestAssign(%a.param: %ptr.00e, %b.param: %C) {
// CHECK:STDOUT: !entry:
// CHECK:STDOUT: %a.ref: %ptr.00e = name_ref a, %a
// CHECK:STDOUT: %.loc38: ref %C = deref %a.ref
// CHECK:STDOUT: %b.ref: %C = name_ref b, %b
// CHECK:STDOUT: %impl.elem0: %.647 = impl_witness_access constants.%DivAssignWith.impl_witness, element0 [concrete = constants.%C.as.DivAssignWith.impl.Op]
// CHECK:STDOUT: %bound_method: <bound method> = bound_method %.loc38, %impl.elem0
// CHECK:STDOUT: %C.as.DivAssignWith.impl.Op.call: init %empty_tuple.type = call %bound_method(%.loc38, %b.ref)
// CHECK:STDOUT: <elided>
// CHECK:STDOUT: }
// CHECK:STDOUT: