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Implementation of unused pattern bindings #2022, continued. Whereas previous PR #6460 took care of parsing, and PR #6479 prepared the stage by using _ in some test cases, this PR has the the actual implementation, using a simple dataflow analysis. --------- Co-authored-by: Burak Emir <bqe@google.com> Co-authored-by: jonmeow <jperkins@google.com>
259 lines
8.0 KiB
Plaintext
259 lines
8.0 KiB
Plaintext
// Part of the Carbon Language project, under the Apache License v2.0 with LLVM
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// Exceptions. See /LICENSE for license information.
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// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
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//
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// INCLUDE-FILE: toolchain/testing/testdata/min_prelude/convert.carbon
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//
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// AUTOUPDATE
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// TIP: To test this file alone, run:
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// TIP: bazel test //toolchain/testing:file_test --test_arg=--file_tests=toolchain/check/testdata/where_expr/dot_self_impls.carbon
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// TIP: To dump output, run:
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// TIP: bazel run //toolchain/testing:file_test -- --dump_output --file_tests=toolchain/check/testdata/where_expr/dot_self_impls.carbon
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// --- compound_member_access_through_where_self_impls.carbon
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library "[[@TEST_NAME]]";
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interface I {
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fn FNonInstance();
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fn FSelf[self: Self]();
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}
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interface J {
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fn GNonInstance();
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fn GSelf[self: Self]();
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}
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fn INotJ[T:! I where .Self impls J](x: T) {
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// Can access members of `I` using either kind of member access.
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T.FNonInstance();
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T.(I.FNonInstance)();
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x.FNonInstance();
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x.FSelf();
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x.(I.FSelf)();
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// Can still find members of `J` using compound member access,
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// even though they are not available via `T.GNonInstance` or
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// `x.GSelf`.
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T.(J.GNonInstance)();
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x.(J.GSelf)();
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}
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fn TypeNotJ[T:! type where .Self impls J](x: T) {
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T.(J.GNonInstance)();
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x.(J.GSelf)();
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}
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// --- no_name_conflict_with_where_self_impls.carbon
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library "[[@TEST_NAME]]";
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interface I {
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fn F() -> ();
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}
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interface J {
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fn F() -> {};
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}
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fn INotJ(T:! I where .Self impls J) {
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// Gets `T.(I.F)`. Doesn't consider `T.(J.F)`, so no ambiguity.
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let unused x: () = T.F();
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}
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// --- fail_name_lookup_through_where_self_impls.carbon
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library "[[@TEST_NAME]]";
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interface I {
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fn F();
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}
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interface J {
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fn G();
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}
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fn INotJ(T:! I where .Self impls J) {
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// CHECK:STDERR: fail_name_lookup_through_where_self_impls.carbon:[[@LINE+4]]:3: error: member name `G` not found in `I` [MemberNameNotFoundInSpecificScope]
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// CHECK:STDERR: T.G();
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// CHECK:STDERR: ^~~
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// CHECK:STDERR:
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T.G();
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}
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// --- fail_name_lookup_with_type.carbon
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library "[[@TEST_NAME]]";
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interface J {
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fn G();
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}
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fn TypeNotJ(T:! type where .Self impls J) {
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// CHECK:STDERR: fail_name_lookup_with_type.carbon:[[@LINE+4]]:3: error: member name `G` not found [MemberNameNotFound]
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// CHECK:STDERR: T.G();
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// CHECK:STDERR: ^~~
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// CHECK:STDERR:
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T.G();
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}
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// --- fail_facet_type_simple_member_access.carbon
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library "[[@TEST_NAME]]";
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interface A {}
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interface B { fn Bfn(); }
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fn F(T:! A & B) {
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// CHECK:STDERR: fail_facet_type_simple_member_access.carbon:[[@LINE+4]]:6: error: member name `Bfn` not found in `A` [MemberNameNotFoundInSpecificScope]
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// CHECK:STDERR: T.((A where .Self impls B).Bfn)();
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// CHECK:STDERR: ^~~~~~~~~~~~~~~~~~~~~~~~~~~
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// CHECK:STDERR:
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T.((A where .Self impls B).Bfn)();
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// CHECK:STDERR: fail_facet_type_simple_member_access.carbon:[[@LINE+4]]:3: error: member name `Bfn` not found in `A` [MemberNameNotFoundInSpecificScope]
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// CHECK:STDERR: (A where .Self impls B).Bfn;
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// CHECK:STDERR: ^~~~~~~~~~~~~~~~~~~~~~~~~~~
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// CHECK:STDERR:
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(A where .Self impls B).Bfn;
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}
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// --- fail_name_lookup_instance.carbon
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library "[[@TEST_NAME]]";
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interface I {
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fn FNonInstance();
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fn FSelf[self: Self]();
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}
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interface J {
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fn GNonInstance();
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fn GSelf[self: Self]();
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}
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fn INotJ[T:! I where .Self impls J](x: T) {
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// CHECK:STDERR: fail_name_lookup_instance.carbon:[[@LINE+4]]:3: error: member name `GNonInstance` not found in `I` [MemberNameNotFoundInSpecificScope]
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// CHECK:STDERR: x.GNonInstance();
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// CHECK:STDERR: ^~~~~~~~~~~~~~
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// CHECK:STDERR:
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x.GNonInstance();
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// CHECK:STDERR: fail_name_lookup_instance.carbon:[[@LINE+4]]:3: error: member name `GSelf` not found in `I` [MemberNameNotFoundInSpecificScope]
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// CHECK:STDERR: x.GSelf();
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// CHECK:STDERR: ^~~~~~~
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// CHECK:STDERR:
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x.GSelf();
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}
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// --- compare_equal.carbon
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library "[[@TEST_NAME]]";
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class WrapType(T:! type) {}
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fn AssertSame[T:! type](unused a: WrapType(T), unused b: WrapType(T)) {}
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fn Type(T:! type) -> WrapType(T) { return {}; }
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interface I;
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interface J;
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interface K;
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fn Test() {
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AssertSame(Type(I), Type(I where .Self impls I));
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AssertSame(Type(I), Type(I where .Self impls I & I));
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AssertSame(Type(I & J), Type(J & I where .Self impls I));
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AssertSame(Type(I & J), Type(J & I where .Self impls J));
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AssertSame(Type(I & J), Type(J & I where .Self impls I & J));
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AssertSame(Type(I & J where .Self impls K), Type(J & I where .Self impls I & K));
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AssertSame(Type(I & J where .Self impls K), Type(J & I where .Self impls J & K));
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AssertSame(Type(I & J where .Self impls K), Type(J & I where .Self impls K & I & J));
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AssertSame(Type(I where .Self impls J & K), Type(I where .Self impls K & I & J));
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AssertSame(Type(I where .Self impls J & K),
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Type(I where .Self impls (J where .Self impls K)));
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AssertSame(Type(I where .Self impls J & K),
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Type(I where .Self impls (K where .Self impls J)));
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AssertSame(Type(I where .Self impls J & K),
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Type(I where .Self impls (type where .Self impls (J where .Self impls K))));
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}
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interface I {}
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interface J {}
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interface K {}
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// --- compare_equal_with_associated_constant.carbon
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library "[[@TEST_NAME]]";
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class WrapType(T:! type) {}
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fn AssertSame[T:! type](unused a: WrapType(T), unused b: WrapType(T)) {}
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fn Type(T:! type) -> WrapType(T) { return {}; }
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interface I { let A:! type; }
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interface J { let A:! type; }
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fn Test() {
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AssertSame(Type((I where .A = ()) & J),
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Type(I & J where .Self impls (I where .A = ())));
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AssertSame(Type(I & (J where .A = {})),
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Type(I & J where .Self impls (J where .A = {})));
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AssertSame(Type((I where .A = ()) & (J where .A = {})),
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Type(I & J where .Self impls (I where .A = ())
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and .Self impls (J where .A = {})));
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AssertSame(Type((I where .A = ()) & (J where .A = {})),
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Type(I & J where .Self impls (I where .A = ()) & (J where .A = {})));
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}
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// --- fail_compare_not_equal.carbon
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library "[[@TEST_NAME]]";
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class WrapType(T:! type) {}
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fn Same[T:! type](unused a: WrapType(T), unused b: WrapType(T)) {}
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fn Type(T:! type) -> WrapType(T) { return {}; }
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interface I {}
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interface J {}
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fn Test() {
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// CHECK:STDERR: fail_compare_not_equal.carbon:[[@LINE+7]]:3: error: inconsistent deductions for value of generic parameter `T` [DeductionInconsistent]
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// CHECK:STDERR: Same(Type(I where .Self impls J), Type(J where .Self impls I));
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// CHECK:STDERR: ^~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
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// CHECK:STDERR: fail_compare_not_equal.carbon:[[@LINE-10]]:1: note: while deducing parameters of generic declared here [DeductionGenericHere]
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// CHECK:STDERR: fn Same[T:! type](unused a: WrapType(T), unused b: WrapType(T)) {}
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// CHECK:STDERR: ^~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
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// CHECK:STDERR:
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Same(Type(I where .Self impls J), Type(J where .Self impls I));
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}
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// --- impl_as.carbon
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library "[[@TEST_NAME]]";
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class C {}
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interface I {}
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interface J { let T:! type; }
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// Interfaces to the right of the `where` don't interfere with the
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// "can only impl a facet type with a single interface" rule. Only
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// the interface being implemented needs to have all of its
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// associated constants set
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impl {.a: C} as I where .Self impls J {}
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impl {.b: C} as J where .Self impls I and .T = () {}
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// Rewrite constraints can appear inside the `where .Self impls`.
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impl {.c: C} as J where .Self impls (I & J where .T = ()) {}
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// --- impl_with_rewrite_of_interface_not_being_implemented.carbon
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library "[[@TEST_NAME]]";
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interface I { let A:! type; }
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interface J { let A:! type; }
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class C {}
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// Implementation of `C as J`.
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impl C as J where .A = {} {}
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// This is an implementation of `I` with `I.A = ()`. The requirement
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// that `C` also impls `J where .A = {}` is an additional constraint
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// that must be satisfied (and is satisfied by the impl above, though
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// that currently isn't checked), but doesn't affect `C as I`.
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impl C as I where .Self impls
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(J where .A = {} and .Self impls (I where .A = ())) {}
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let x: C.(I.A) = ();
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let y: C.(J.A) = {};
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