Files
carbon-lang/toolchain/check/testdata/eval/call.carbon
T
Richard Smith f9ab963bd6 Add a type_literal instruction to represent syntactic type literals. (#6781)
This allows us to capture the location at which a type literal was used,
even in the cases where we don't otherwise need to create a new
instruction to represent the type such as for `char` or `str`.

The logic used to build the underlying type is now marked as desugaring.
For cases such as `iN`, this causes the call to `Core.Int` to no longer
be added as a dedicated IR instruction, and instead its constant value
is used directly as the value of the `type_literal`. This results in
this being on balance a reduction in the size of the IR.

This also fixes a crash in C++ interop when using a `char` literal as a
template argument. The crash was caused by the template argument not
having an associated location when mapping to a C++ location. See
changes to check/testdata/interop/cpp/template/type_param.carbon for an
example that used to crash before this change.

Update alias handling to allow an alias to point at any type literal,
reinstating support for aliases for type literals such as `bool` and
`i32` that had previously worked but stopped working when we
transitioned those types to being defined in the prelude. See changes to
toolchain/check/testdata/alias/builtins.carbon.

All the test changes other than the two mentioned above are mechanical
autoupdate changes switching to the new instruction.
2026-02-26 20:10:50 +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/int.carbon
//
// AUTOUPDATE
// TIP: To test this file alone, run:
// TIP: bazel test //toolchain/testing:file_test --test_arg=--file_tests=toolchain/check/testdata/eval/call.carbon
// TIP: To dump output, run:
// TIP: bazel run //toolchain/testing:file_test -- --dump_output --file_tests=toolchain/check/testdata/eval/call.carbon
// --- call.carbon
library "[[@TEST_NAME]]";
eval fn F() -> i32 { return 3; }
var a: array(i32, F()) = (0, 1, 2);
// --- fail_call_wrong_value.carbon
library "[[@TEST_NAME]]";
eval fn F() -> i32 { return 3; }
// Ensure we get an error about the over-sized initializer and aren't just
// treating all `eval fn` calls as silent errors.
// CHECK:STDERR: fail_call_wrong_value.carbon:[[@LINE+4]]:26: error: cannot initialize array of 3 elements from 4 initializers [ArrayInitFromLiteralArgCountMismatch]
// CHECK:STDERR: var a: array(i32, F()) = (0, 1, 2, 3);
// CHECK:STDERR: ^~~~~~~~~~~~
// CHECK:STDERR:
var a: array(i32, F()) = (0, 1, 2, 3);
// --- fail_call_fn_not_eval.carbon
library "[[@TEST_NAME]]";
fn F() -> i32 { return 3; }
// CHECK:STDERR: fail_call_fn_not_eval.carbon:[[@LINE+4]]:19: error: array bound is not a constant [InvalidArrayExpr]
// CHECK:STDERR: var a: array(i32, F()) = (0, 1, 2);
// CHECK:STDERR: ^~~
// CHECK:STDERR:
var a: array(i32, F()) = (0, 1, 2);
// --- fail_call_eval_fn_not_defined.carbon
library "[[@TEST_NAME]]";
eval fn F() -> i32;
// TODO: We should be able to diagnose this better.
// CHECK:STDERR: fail_call_eval_fn_not_defined.carbon:[[@LINE+4]]:19: error: array bound is not a constant [InvalidArrayExpr]
// CHECK:STDERR: var a: array(i32, F()) = (0, 1, 2);
// CHECK:STDERR: ^~~
// CHECK:STDERR:
var a: array(i32, F()) = (0, 1, 2);
// --- param_and_return.carbon
library "[[@TEST_NAME]]";
eval fn F(x: i32) -> i32 { return x; }
var a: array(i32, F(3)) = (1, 2, 3);
// --- fail_todo_dependent_call.carbon
library "[[@TEST_NAME]]";
eval fn F(x: i32) -> i32 { return x; }
fn G(N:! i32) {
// CHECK:STDERR: fail_todo_dependent_call.carbon:[[@LINE+4]]:17: error: cannot evaluate type expression [TypeExprEvaluationFailure]
// CHECK:STDERR: var unused a: array(i32, F(N)) = (0, 1, 2);
// CHECK:STDERR: ^~~~~~~~~~~~~~~~
// CHECK:STDERR:
var unused a: array(i32, F(N)) = (0, 1, 2);
}
fn H() { G(3); }
// --- fail_todo_dependent_call_type.carbon
library "[[@TEST_NAME]]";
class C {}
eval fn F(_: i32) -> type {
return C;
}
fn UseFGenerically(X:! i32) {
// CHECK:STDERR: fail_todo_dependent_call_type.carbon:[[@LINE+12]]:3: error: member name of type `<dependent type>` in compound member access is not an instance member or an interface member [CompoundMemberAccessDoesNotUseBase]
// CHECK:STDERR: var unused v: F(X) = {};
// CHECK:STDERR: ^~~~~~~~~~~~~~~~~~
// CHECK:STDERR:
// CHECK:STDERR: fail_todo_dependent_call_type.carbon:[[@LINE+8]]:3: error: value of type `<dependent type>` is not callable [CallToNonCallable]
// CHECK:STDERR: var unused v: F(X) = {};
// CHECK:STDERR: ^~~~~~~~~~~~~~~~~~
// CHECK:STDERR:
// CHECK:STDERR: fail_todo_dependent_call_type.carbon:[[@LINE+4]]:3: error: cannot access member of interface `Core.Destroy` in type `<cannot stringify inst7800018B: {kind: Call, arg0: inst7800003E, arg1: inst_block78000091, type: type(TypeType)}>` that does not implement that interface [MissingImplInMemberAccess]
// CHECK:STDERR: var unused v: F(X) = {};
// CHECK:STDERR: ^~~~~~~~~~~~~~~~~~
// CHECK:STDERR:
var unused v: F(X) = {};
}
fn UseFSpecifically() {
UseFGenerically(3);
}