Start recording the clang::DeclContext* -> InstId mapping for use in
later operations.
The test update includes removing the initial fail_* test because I
hadn't thought about the use of namespace aliases as a way to test for
the presence of a namespace without the failure caused by not finding
the thing inside the namespace.
---------
Co-authored-by: Jon Ross-Perkins <jperkins@google.com>
Initialize the `Diag` field `EvalResult` to get notes from clang when
`EvaluateAsConstantExpr` fails, then emit them using clang's diagnostic
infrastructure.
Also set valid source locations in a couple places, otherwise clang's
diagnostics code crashes.
This commit creates an instance for any associated types in an interface
with a custom witness table. This unlocks interfaces designed for C++
interop that rely on arbitrary return types. For example,
`CppUnsafeDeref` becomes usable as of this commit.
This commit may have also implemented support for non-type associated
constants, but since we're lacking a practical test case, they're still
marked as TODO for the time being.
---------
Co-authored-by: Dana Jansens <danakj@orodu.net>
Co-authored-by: Richard Smith <richard@metafoo.co.uk>
Instead of injecting code to declare an `operator new`, generate AST for
it directly. In order to use this, directly generate a `CXXNewExpr`
rather than asking Clang to build one.
This is less of a hack, and doesn't visibly leak an `operator new`
declaration that inline C++ code or template instantiations might see.
It also avoids generating a warning in C++26 and later that the
`constexpr` declaration of `operator new` is used but not defined.
Assisted-by: Gemini 3.1 Pro via Antigravity
When a `var` is not explicitly given an initializer, initialize it in
one of two ways:
* If its type implements the new interface `Core.Default`, call
`Core.Default.Op` to initialize it.
* Otherwise, if its type implements `UnformedInit`, leave it in an
unformed state. For now, this is always an uninitialized state, but that
will change in the future.
* If neither of those apply, the `var` declaration is ill-formed.
This is a step towards implementing leads decision #6739 and proposals
#257 and #5913.
Assisted-by: Gemini 3.1 Pro via Antigravity
---------
Co-authored-by: Geoff Romer <gromer@google.com>
`LookupCppImpl` handles exactly one function ID, so core interfaces with
multiple associated entities were regarded as unsupported. This commit
adds support for a single associated function with a single associated
constant.
Note: associated constants are still TODO.
---------
Co-authored-by: Dana Jansens <danakj@orodu.net>
This moves the LValue path code from macros.cpp to constant.cpp, so that
it can be called from `MapAPValueToConstant`. TODO messages are updated
accordingly to avoid referring to macros. Added a constexpr pointer test
to `constexpr.carbon` to show the result of this change.
Add a clang::ExternalASTSource to begin exposing Carbon entities to
Clang - initially only a single `Carbon` top level namespace.
Subsequent work will add Carbon entities to this namespace.
Likely this CarbonExternalASTSource will be refactored into another
file, tie into/reference SemIR::File and CppFile, etc eventually - but
that'll wait for future patches.
If there's mechanical problems with the current implementation - how I'm
creating the new NamespaceDecl, etc - I'm all ears. It's very much in
the "it seems to work" state, not much more than that.
This does break Clang Modules (header modules, C++20 modules,
precompiled headers, etc) since they're implemented as an
ExternalASTSource as well, and Clang's ASTContext only supports one
ExternalASTSource at a time. To fix that regression we'll need to
implement some kind of ExternalASTSource multiplexing support - either
in Clang or Carbon (unclear which).
This regression of modules support can be observed by the following:
`A.h`
```
inline void f1() { }
```
`module.modulemap`
```
module A {
header "A.h"
export *
}
```
`test.carbon`
```
import Cpp inline '''
// Hardcode the pragma to ensure this isn't silently falling back to
// textual inclusion.
void f2() {
f1();
}
''';
```
```
carbon compile test.carbon -- -I . -fmodules -fimplicit-modules -fmodules-cache-path=module_cache
```
I wrote a `file_test` test for this, but it doesn't /quite/ work because
`file_test` provides an in-memory filesystem for tests to make them more
hermetic, but Clang's Filesystem abstrtaction is for reading only - so
the module that's written out successfully can't be found when it needs
to be read back in - so the test doesn't pass as a baseline. Clang does
have support for `llvm::vfs::OutputBackend` which allows virtualizing
output - which I guess we could tie together with the InMemoryFilesystem
we use for input to make such a test work. But I guess that's not worth
the effort here?
---------
Co-authored-by: Richard Smith <richard@metafoo.co.uk>
Co-authored-by: Jon Ross-Perkins <jperkins@google.com>
Iterators, smart pointers, optional, and expected types depend on
`operator*`. This commit adds `CppUnsafeDeref` as a core interface, with
an associated function, so that the compiler can dereference
user-defined C++ types.
Things not implemented in this commit:
* `operator*` overload resolution
* SemIR lowering
---------
Co-authored-by: Richard Smith <richard@metafoo.co.uk>
Use the object parameter type when creating a reference to the thunk
parameter so that we create an xvalue rather than an lvalue for the
`*this` expression in the thunk.
Previously we forced a temporary materialization, resulting in it being
treated as an ephemeral reference expression. This change allows
```carbon
var x: Class = {} as Class;
```
even when `Class` is not copyable.
In C++ overload resolution, when mapping a Carbon value expression into
a C++ argument, produce a const-qualified argument where possible. This
has two effects:
* Overload resolution does not consider non-const-qualified member
functions to be viable for a prvalue self any more. This is desirable
since such functions are not actually callable with a prvalue self, and
permits overload resolution to pick a const-qualified overload instead.
* Overload resolution does not allow a Carbon value expression to be
passed to a C++ `T&&` parameter any more. This is desirable since it's
not correct to move from a value expression. Previously we allowed this
and moved from the value!
This case is redundant: when deducing against a runtime parameter
pattern, the type is all that matters, and the type is added to the
deduction earlier. Additionally deducing the same argument against
parameter's subpattern just creates duplicate work, because the
subpattern has the same type.
Add an `IntFitsIn` interface with a custom witness, such that `T impls
IntFitsIn(U)` if `T` is an integer type all of whose values fit
losslessly into the integer type `U`. Use it to constrain implicit
conversions between integer types.
So far, this has not been extended to the
`CppCompat.[U]{Long32,LongLong64}` types, only to `Core.Int(N)` and
`Core.UInt(N)`.
Assisted-by: Gemini 3 Pro via Antigravity
Support assigning to a variable through an imported macro
Example:
```carbon
import Cpp inline '''
int v = 1;
#define m v
''';
fn F() {
Cpp.m = 2;
}
```
Treat the initial sequence ofarguments in a call to a C++ function up to
and including the last argument that is a type or template as being the
explicit template arguments for the call, rather than rejecting them
because they can't be converted to the parameter types.
Implements the current direction on leads issue #6768, except that no
syntax for explicitly annotating an argument as being a template
argument is provided.
---------
Co-authored-by: Carbon Infra Bot <carbon-external-infra@google.com>
This is a step toward removing the index from `InitForm`, so that equal
form values always have equal representations.
---------
Co-authored-by: Jon Ross-Perkins <jperkins@google.com>
For integral and float types, `TryEvaluateMacroToConstant` now calls
`MapAPValueToConstant` to directly convert from an APValue, rather than
converting the `APValue` to an expression and importing it with
`MapConstant`.
`MapConstant` is still used, but only for string literals and nullptrs.
Since it's only used by `TryEvaluateMacroToConstant`, moved it to
`macros.cpp` and removed the code for other types of expressions.
This is iterating on how `Destroy.Op` generates, to start adding body
capabilities. This changes the way the signature is created, and adds a
`CoreWitness` function kind so that mangling can prevent name
collisions. The result is that what _was_ `DestroyOp` is now
`Core.Destroy.Op` or, as can be seen in
toolchain/lower/testdata/interop/cpp/nullptr.carbon,
`_COp.<hash>:core.Destroy.Core` where `:core` is indicating that it's a
core witness (taking a note from `:thunk`).
Assisted-by: Google Antigravity with Gemini 3 Flash
Defer creating the CppContext until we have all of its components, so
that we know they're not null. Don't track the action on the context,
since it's not a reliable way of getting back to the compiler invocation
on failure. Don't flush the diagnostics emitter from the emitter
destructor since the derived class emitter will already have been
destroyed at that point. Distinguish between clang setup failing and
clang merely producing errors, and don't connect the check context to
clang if clang setup failed.
---------
Co-authored-by: David Blaikie <dblaikie@gmail.com>
When initializing `.base` in class initialization, use `partial Base` as
the destination type rather than `Base`. Treat `partial Base` as not
being abstract even when `Base` is.
Allow conversion from a `partial T` initializer to a `T` initializer.
Store the vptr while performing the conversion. Do not store the vptr
when performing a `partial T` initialization, only when performing a
non-partial `T` initialization.
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.
This currently doesn't include much, but we expect to be generating more
entities, such as `Destroy`, which I'm aiming to get more clearly
categorized here instead of `imports`.
Assisted-by: Google Antigravity with Gemini 3 Flash
---------
Co-authored-by: Dana Jansens <danakj@orodu.net>
Introduces `Context` and `SoftContext` messages, which can be introduced
through a `ContextBuilder`:
- The `Context` messages come before the diagnostic in the output.
- The first `Context` message steals the diagnostic level from the main
diagnostic, and turns the main diagnostic into a Note attached to the
context.
- A `SoftContext` message works similarly, but if it's preceeded by a
`Context` or `SoftContext` message, then it is dropped. This can be used
as a default/backup scope when nothing more interesting is provided up
the stack, such as in `TryEvalBlockForSpecific`.
The `ContextBuilder` is provided to a callback through
`Diagnostics::ContextScope`, an RAII type `AnnotationScope` but for
context messages.
This allows a high level operation to provide a context message like
"failed to identify facet type {0}" which will then be used as the error
if a diagnostic is produced during identification, with the latter
diagnostic attached as a note to explain why the contextual operation
failed.
In particular, this allows monomorphization errors (such as an array
bound being negative) to be attached to a higher lever operation instead
of being top-level diagnostics themselves, with the monomorphization
site being a note. This inverts the source code locations that appear in
the diagnostic, so that the top-level diagnostic points to the "user
code" which causes the monomorphization.
This is presented as an alternative strategy to #6753, which plumbed
diagnoser callbacks around to achieve the same goals.
We replace the diagnoser callbacks in type completion and operators with
ContextScope callbacks instead, which now provide better diagnostics for
monomorphization errors. Other callers to MakeSpecific do not yet have
ContextScopes introduced in order to turn monomorphization errors into
more interesting diagnostics.
This shifts logic a little so that empty top-level scopes are printed
less often. This affects imports mainly for now, but should be expected
to affect the soon-to-be-added generated scope more significantly.
Assisted-by: Google Antigravity with Gemini 3 Flash
## Summary
Fixes the toolchain incorrectly allowing `{}` initialization for
non-aggregate C++ classes.
## Problem
When importing an empty C++ class, the toolchain was treating it as a
Carbon empty struct, which allowed initialization from `{}`. This is
incorrect for non-aggregate classes (e.g., those with user-declared
constructors).
```carbon
import Cpp inline '''
struct X { X(); }; // non-aggregate (has user-declared constructor)
''';
fn Make() {
var x: Cpp.X = {}; // incorrectly accepted, should be rejected
}
```
## Solution
Added a check for `clang_def->isAggregate()` in `ImportClassObjectRepr`
so that only aggregate classes get the empty struct representation.
**Before:**
```cpp
if (clang_def->isEmpty() && !clang_def->getNumBases()) {
```
**After:**
```cpp
if (clang_def->isEmpty() && !clang_def->getNumBases() &&
clang_def->isAggregate()) {
```
## Testing
Added test file
`toolchain/check/testdata/interop/cpp/class/non_aggregate_init.carbon`
with:
- Non-aggregate class (`struct X { X(); }`) - should reject `{}`
initialization
- Aggregate class (`struct Y {}`) - should accept `{}` initialization
Note: I couldn't run tests locally due to clang version requirements
(needs >= 19, have 17). The CI should validate the changes.
Closes#6669
---------
Co-authored-by: Richard Smith <richard@metafoo.co.uk>
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>
Currently each interface has a `Self` facet internally that becomes a
binding to every entity inside the interface: associated constants,
functions, and require decls. Each of these has to be independently
generic as a result. This makes is challenging in extended name lookup
to move into an extended scope of an interface, as we have a specific
for the interface, but the names within require a different specific
that includes a `Self` facet value.
We generalize this relationship by adding a second generic to Interface,
called `generic_with_self`. When we want to work with entities inside
the interface, we move from the interface-without-specific to the
interface-with-self specific by adding a Self to the specific. This is
done independently of any particular entity inside the Interface, as
those entities are now all members of the interface-with-self generic.
Associated constants no longer need a generic of their own, as they do
not have separate generic bindings. Functions retain a generic, but if
the function has no generic arguments, it will have no bindings of its
own now.
Require decls retain a generic so that their specific can be
instantiated separately from the interface. Requiring the interface to
be complete does not require the types in a require decl to be complete
unless it is modified by `extend`. So we allow them to be completed
later by keeping them in a separate generic.
Named constraints look like interfaces and gain the additional inner
generic-with-self, with the same relationship to require decls.
This removes the need for name lookup to perform Substitution of a Self
facet into the extended scope instruction. Instead, the
`SpecificConstant` instruction inserted by a `require` decl is part of
the interface-with-self generic. When looking through a FacetType for
extended scopes, for each interface, we push the scope with the specific
for the interface-with-self. Then the constant value of the
`SpecificConstant` is correctly modified by the provided self
automatically through applying that specific.