// 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/int.carbon // // AUTOUPDATE // TIP: To test this file alone, run: // TIP: bazel test //toolchain/testing:file_test --test_arg=--file_tests=toolchain/check/testdata/impl/require_satisified_in_interface.carbon // TIP: To dump output, run: // TIP: bazel run //toolchain/testing:file_test -- --dump_output --file_tests=toolchain/check/testdata/impl/require_satisified_in_interface.carbon // --- fail_missing_extend_require_for_concrete_type.carbon library "[[@TEST_NAME]]"; interface Z {} interface Y { extend require impls Z; } // () does not need to impl Z yet. impl () as Y; // () needs to impl Z at the start of the definition. // CHECK:STDERR: fail_missing_extend_require_for_concrete_type.carbon:[[@LINE+4]]:1: error: interface `Y` being implemented requires that `()` implements `Z` [RequireImplsNotImplemented] // CHECK:STDERR: impl () as Y {} // CHECK:STDERR: ^~~~~~~~~~~~~~ // CHECK:STDERR: impl () as Y {} // --- fail_missing_require_for_concrete_type.carbon library "[[@TEST_NAME]]"; interface Z {} interface Y { require impls Z; } // () does not need to impl Z yet. impl () as Y; // () needs to impl Z at the start of the definition. // CHECK:STDERR: fail_missing_require_for_concrete_type.carbon:[[@LINE+4]]:1: error: interface `Y` being implemented requires that `()` implements `Z` [RequireImplsNotImplemented] // CHECK:STDERR: impl () as Y {} // CHECK:STDERR: ^~~~~~~~~~~~~~ // CHECK:STDERR: impl () as Y {} // --- fail_missing_extend_require_for_symbolic_type.carbon library "[[@TEST_NAME]]"; interface Z {} interface Y { extend require impls Z; } // T does not need to impl Z yet. impl forall [T:! type] T as Y; // T needs to impl Z at the start of the definition. // CHECK:STDERR: fail_missing_extend_require_for_symbolic_type.carbon:[[@LINE+4]]:1: error: interface `Y` being implemented requires that `T` implements `Z` [RequireImplsNotImplemented] // CHECK:STDERR: impl forall [T:! type] T as Y {} // CHECK:STDERR: ^~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~ // CHECK:STDERR: impl forall [T:! type] T as Y {} // --- fail_missing_require_for_symbolic_type.carbon library "[[@TEST_NAME]]"; interface Z {} interface Y { require impls Z; } // T does not need to impl Z yet. impl forall [T:! type] T as Y; // T needs to impl Z at the start of the definition. // CHECK:STDERR: fail_missing_require_for_symbolic_type.carbon:[[@LINE+4]]:1: error: interface `Y` being implemented requires that `T` implements `Z` [RequireImplsNotImplemented] // CHECK:STDERR: impl forall [T:! type] T as Y {} // CHECK:STDERR: ^~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~ // CHECK:STDERR: impl forall [T:! type] T as Y {} // --- fail_missing_extend_require_double.carbon library "[[@TEST_NAME]]"; interface Z1(T:! type) {} interface Z2(T:! type) {} class A; class B; interface Y(U:! type) { extend require impls Z1(U) & Z2(B); } // CHECK:STDERR: fail_missing_extend_require_double.carbon:[[@LINE+4]]:1: error: interface `Y(A)` being implemented requires that `()` implements `Z1(A) & Z2(B)` [RequireImplsNotImplemented] // CHECK:STDERR: impl () as Y(A) {} // CHECK:STDERR: ^~~~~~~~~~~~~~~~~ // CHECK:STDERR: impl () as Y(A) {} // --- fail_missing_require_double.carbon library "[[@TEST_NAME]]"; interface Z1(T:! type) {} interface Z2(T:! type) {} class A; class B; interface Y(U:! type) { require impls Z1(U) & Z2(B); } // CHECK:STDERR: fail_missing_require_double.carbon:[[@LINE+4]]:1: error: interface `Y(A)` being implemented requires that `()` implements `Z1(A) & Z2(B)` [RequireImplsNotImplemented] // CHECK:STDERR: impl () as Y(A) {} // CHECK:STDERR: ^~~~~~~~~~~~~~~~~ // CHECK:STDERR: impl () as Y(A) {} // --- require_for_concrete_type.carbon library "[[@TEST_NAME]]"; interface Z1 {} interface Z2 {} interface Y { extend require impls Z1; require impls Z2; } // () does not need to impl Z1/Z2 yet. impl () as Y; // Now we know () impls Z1 and Z2. impl () as Z1; impl () as Z2; // So no error here. impl () as Y {} impl () as Z1 {} impl () as Z2 {} // --- require_for_symbolic_type.carbon library "[[@TEST_NAME]]"; interface Z1 {} interface Z2 {} interface Y { extend require impls Z1; require impls Z2; } // T does not need to impl Z1/Z2 yet. impl forall [T:! type] T as Y; // Now we know T impls Z1 and Z2. impl forall [T:! type] T as Z1; impl forall [T:! type] T as Z2; // So no error here. impl forall [T:! type] T as Y {} impl forall [T:! type] T as Z1 {} impl forall [T:! type] T as Z2 {} // --- require_for_symbolic_type_impl_matches_same_interface.carbon library "[[@TEST_NAME]]"; interface Z1 {} interface Z2 {} interface Y { extend require impls Z1; require impls Z2; } // This only matches T that impl Z1 and Z2 so no error here. impl forall [T:! Z1 & Z2] T as Y {} // --- require_for_generic_interfaces.carbon library "[[@TEST_NAME]]"; interface Z1(T:! type) {} interface Z2(T:! type) {} class A; class B; interface Y(U:! type) { extend require impls Z1(U); require impls Z2(B); } // () does not need to impl Z1(A) and Z2(B) yet. impl () as Y(A); // Now we know () impls Z1(A) and Z2(B). impl () as Z1(A); impl () as Z2(B); // So no error here. impl () as Y(A) {} impl () as Z1(A) {} impl () as Z2(B) {} // --- fail_require_non_self_missing.carbon library "[[@TEST_NAME]]"; interface Z(T:! type) {} class C; interface Y(U:! type) { // `Self` must appear somewhere in the require decl, so it's in the interface // specific because we want to test a different self-type. require C impls Z(Self); } // Y requires that C impls Z(Self), but it does not do so. // CHECK:STDERR: fail_require_non_self_missing.carbon:[[@LINE+4]]:1: error: interface `Y(())` being implemented requires that `C` implements `Z(())` [RequireImplsNotImplemented] // CHECK:STDERR: impl () as Y(()) {} // CHECK:STDERR: ^~~~~~~~~~~~~~~~~~ // CHECK:STDERR: impl () as Y(()) {} // --- require_non_self.carbon library "[[@TEST_NAME]]"; interface Z(T:! type) {} class C; interface Y(U:! type) { // `Self` must appear somewhere in the require decl, so it's in the interface // specific because we want to test a different self-type. require C impls Z(Self); } impl C as Z(()); // Y requires that C impls Z(Self), which is done above. impl () as Y(Self) {} impl C as Z(()) {} // --- impl_requires_itself_cycle.carbon library "[[@TEST_NAME]]"; interface A { fn AA(); } interface B { require impls A; } interface C { require impls B; } impl forall [T:! B] T as A { fn AA() {} } // When we get to the definition we check that anything B requires is satisfied. // - The interface B requires A, so we must check T impls A. // - The impl for A requires T impls B. // - This impl is what provides T impls B. impl forall [T:! C] T as B {} fn F(T:! C) { // If things go wrong, we find the impl `T as B`, but inside its definition is // a lookup for `T as A`, which (through deducing `T`) includes a lookup for // `T as B`. This creates a cycle of evaluating `T as B` recursively. // // This was solved by doing the check for requirements of `B` outside the // definition of `T as B`. // https://discord.com/channels/655572317891461132/941071822756143115/1463189087598022861 T.(A.AA)(); } // --- fail_impl_requires_itself_cycle_with_monomorphization_error.carbon library "[[@TEST_NAME]]"; class W(T:! type) { adapt {}; } interface A(N:! Core.IntLiteral()) { fn AA() -> W(array((), N)); } interface B(N:! Core.IntLiteral()) { require impls A(N); } interface C(N:! Core.IntLiteral()) { require impls B(N); } impl forall [N:! Core.IntLiteral(), T:! B(N)] T as A(N) { fn AA() -> W(array((), N)) { return {} as W(array((), N)); } } impl forall [N:! Core.IntLiteral(), T:! C(N)] T as B(N) { // The definition here does not contain the lookups verifying that C(N) impls // `A(N)`, so they do not get re-evaluated for a specific `N`. That doesn't // prevent us from producing a reasonable diagnostic when that `N` causes an // error in the specific use of this impl, which we use to get from `C(N)` to // `A(N)` (in the deduction of `T` in the impl as `A(N)`). The error just // happens where we use `N` in `A(N)` instead of inside the verification that // `T as B(N)` implies `T as A(N)`. } fn F(T:! C(-1)) { // CHECK:STDERR: fail_impl_requires_itself_cycle_with_monomorphization_error.carbon:[[@LINE+7]]:3: error: unable to monomorphize specific `AA()` [ResolvingSpecificHere] // CHECK:STDERR: T.(A(-1).AA)(); // CHECK:STDERR: ^~~~~~~~~~~~~~ // CHECK:STDERR: fail_impl_requires_itself_cycle_with_monomorphization_error.carbon:[[@LINE-27]]:26: note: array bound of -1 is negative [ArrayBoundNegative] // CHECK:STDERR: fn AA() -> W(array((), N)); // CHECK:STDERR: ^ // CHECK:STDERR: T.(A(-1).AA)(); }