For now, treat such classes as being final, since we can't correctly
derive from them.
This removes the last category of C++ class that we are entirely unable
to interop with, and is a prerequisite for interop with C++ iostreams
(which have a virtual base class).
Avoid using a large switch that needs to be manually extended when
adding a new kind of instruction. Instead, the expression category for
an instruction is now specified when defining the `InstKind`.
In passing, add a distinct expression category value for patterns. This
isn't used for much except some error checking at the moment, but it
keeps the number of instructions that we need to manually classify as
`NotExpr` despite having a type very low.
Following #6357, map C++ `void` to a prelude class type
`Core.CppCompat.VoidBase`, not to a builtin type. This is mostly just
moving logic around, but does notably change `Cpp.void` from being an
incomplete type to being a complete-but-abstract type.
Also change `NullptrT` to be an adapter for `void*` instead of `()*`, to
follow the approved design.
Implicit conversions to `void` and to `void*` are still absent.
Part of #6280.
- Makes a little more use of `MakeImportedLocIdAndInst` instead of
`UncheckedLoc`
- Requires use of `MakeImportedLocIdAndInst` with `ImportIRInstId`;
previously optional
- Relevant `if constexpr` moves to `AddPlaceholderImportedInst`, but is
more narrowly scoped there.
- Refactors out `AddPlaceholderImportedInstInNoBlock` to reduce how many
spots do an explicit `imports().push_back(...)`
I'd also considered removing `MakeImportedLocIdAndInst` where possible,
but went this route so that changes to the expected parse node wouldn't
affect callers. When it's required, `MakeImportedLocIdAndInst` is always
there; when it's conditionally present, changing `Parse::NodeId` between
enforceable and not-enforceable would require refactoring any callsites
that assumed one or the other.
Add a `Core.CppCompat.NullptrT` type that C++'s `nullptr_t` maps into.
Map `nullptr` to an uninitialized constant of that type -- `nullptr`
doesn't actually have any defined bits within it, despite having the
same representation as `void*`.
Uses `clang::Parser::ParseConstantExpression()` to parse the macro
replacement tokens, added as a token stream to the preprocessor. This
extends the support from simple object-like macros with a single
replacement token, to multiple tokens like unary operators, binary
operators, casting, nested macros etc.
The support is still limited to macros that are evaluated to an integer
constant. More types to be added as a follow-up.
Part of #6303
Adds support for object-like macros with a single replacement
numeric-literal kind token. Only macros that evaluate to an integer
constant are supported for now. When detected at name lookup, they are
imported as a constant integer value in Carbon.
Demo:
```c++
// --- macros.h
#define CONFIG_VALUE 2
```
``` c++
// main.carbon
library "Main";
import Cpp library "macros.h";
import Core library "io";
fn Run() {
let a: i32 = Cpp.CONFIG_VALUE;
Core.Print(a);
}
```
```c++
$ bazel-bin/toolchain/carbon compile main.carbon
$ bazel-bin/toolchain/carbon link main.o \--output=demo_carbon
$ ./demo_carbon
2
```
Part of #6303
This defines `Cpp.void` as a custom type.
`Cpp.void*` is mapped to C++ `void*`.
Not supported yet: Conversions from and to other pointer types.
C++ Interop Demo:
```carbon
// main.carbon
library "Main";
import Core library "io";
import Cpp inline '''
#include <cstdio>
auto GetPointer() -> void* _Nonnull {
static int x = 8;
return &x;
}
auto GetValue(void* _Nonnull ptr) -> int {
return *static_cast<int*>(ptr);
}
''';
fn Run() -> i32 {
let ptr: Cpp.void* = Cpp.GetPointer();
Core.Print(Cpp.GetValue(ptr));
return 0;
}
```
```shell
$ bazel-bin/toolchain/carbon compile main.carbon
$ bazel-bin/toolchain/carbon link main.o --output=demo
$ ./demo
8
```
Part of #6280.
For now, map C++ reference types to const-qualified Carbon pointer types
rather than picking between a (non-const) pointer or a value type. This
fixes misbehavior in lowering for reference members in classes and
reference return types.
Update the special-case handling for references as function parameters
so that it continues to map const reference parameters to Carbon
pass-by-value, and unify the code paths for `self` parameters and other
parameters, which were mostly doing the same thing but had some subtle
differences.
Add references to the list of types that we can pass to and from C++
directly, without needing an additional layer of thunks.
Remove duplication between determining whether a parameter needs custom
thunk mapping and whether a function needs a thunk. Now a function needs
a thunk if any parameter or the return type does.
This fixes some inconsistencies; previously:
- We would not require a thunk when passing an `unsigned int`, but if we
had a thunk we'd pass `unsigned int` indirectly.
- We would always require a thunk for an enum parameter, even though
we'd actually pass it directly if its underlying type is a 32- or
64-bit integer.
- We would require a thunk for a nullable pointer, even though
we arrange for all pointer types to have the same ABI in Carbon and
C++, including nullable pointers / Optional(T*).
This also causes us to use a thunk for rvalue reference return types,
which we used to miscompile.
Depends on #6276.
Don't go through the `PerformCall` machinery a second recursive time --
this is redundant, creates additional unnecessary temporaries, and is in
theory wrong because `PerformCall` takes a syntactic argument list (one
argument per callee parameter pattern), but we have a call argument list
(one argument per callee parameter).
---------
Co-authored-by: David Blaikie <dblaikie@gmail.com>
This resolves a TODO in `expr_info.cpp` by using the inst kind rather
than the bound value to track the binding's category.
Since we're churning all the `bind_name` insts in testdata anyway, I'm
also taking this opportunity to align the inst naming with the design's
terminology, by calling these insts "bindings" (this aspect of the PR is
dependent on #6231 resolving an ambiguity in that terminology). For
consistency we'll need to rename several other insts as well (see the
TODO on `RefBinding`); I'm deferring that to a separate PR to minimize
the review load, but I think those name changes are in-scope for this
review.
This would save space for every `EntityName` that is not an imported C++
global variable.
C++ global variables include static data members.
Created `CppGlobalVarId`, `CppGlobalVarKey` and `CppGlobalVar` to allow
having `CanonicalValueStore` that maps `EntityNameId` (which is in
`CppGlobalVarKey` and `CppGlobalVar`) to `ClangDeclId` (which is also in
`CppGlobalVar`).
This is similar to `ClangDeclId`, `ClangDeclKey` and `ClangDecl` .
Implemented by generalizing the reference type support for parameters
and return values to other use cases.
The changes to the `method.carbon` test are due to to supporting the
reference types but not supporting the necessary conversions.
C++ Interop Demo:
```c++
// global.h
struct C {
int member = 0;
int& member_ref = member;
};
extern C& global;
```
```c++
// global.cpp
#include "global.h"
static C static_c;
C& global= static_c;
```
```carbon
// main.carbon
library "Main";
import Core library "io";
import Cpp library "global.h";
fn Run() -> i32 {
Core.Print(Cpp.global->member);
++(*Cpp.global->member_ref);
Core.Print(Cpp.global->member);
++(*Cpp.global->member_ref);
Core.Print(Cpp.global->member);
return 0;
}
```
```shell
$ clang++ -stdlib=libc++ -c global.cpp
$ bazel build toolchain:carbon && bazel-bin/toolchain/carbon compile main.carbon
$ bazel-bin/toolchain/carbon link global.o main.o --output=demo
$ ./demo
0
1
2
```
**Without this change**:
```shell
main.carbon:10:14: error: semantics TODO: `Unsupported: var type: C &`
Core.Print(Cpp.global->member);
^~~~~~~~~~
main.carbon:10:14: note: in `Cpp` name lookup for `global`
Core.Print(Cpp.global->member);
^~~~~~~~~~
```
Part of #6006 and #6186.
This requires changing `ReturnSlotPattern` and `OutParamPattern`
definitions to use untyped node id, so they can have any associated
node.
Follow up of #5197.
Part of #5064.
This fixes a bug, which seems to have been introduced in #6108.
In the new test, without this change, we will diagnose with
```
error: semantics TODO: `Unsupported: parameter type: ExplicitObjectParam` [SemanticsTodo]
```
This is a follow up of #6082, which added support for reference types,
but not for return types.
C++ Interop Demo:
```carbon
// main.carbon
library "Main";
import Core library "io";
import Cpp inline '''
struct C {
auto Inc() -> void { ++x; }
int x = 0;
};
auto GetC() -> C& {
static C c;
return c;
}
''';
fn Run() -> i32 {
Core.Print(Cpp.GetC()->x);
Cpp.GetC()->Inc();
Core.Print(Cpp.GetC()->x);
Cpp.GetC()->Inc();
Core.Print(Cpp.GetC()->x);
return 0;
}
```
```shell
$ bazel build toolchain:carbon && bazel-bin/toolchain/carbon compile main.carbon && bazel-bin/toolchain/carbon link main.o --output=demo && ./demo
0
1
2
```
**Without this change**:
```shell
main.carbon:19:14: error: semantics TODO: `Unsupported: return type: C &`
Core.Print(Cpp.GetC()->x);
^~~~~~~~~~
```
Part of #6148.
This allows to find the spaceship `operator<=>` when a comparison
operator is not available, and `operator==` when `operator!=` is not
available.
Support added to both lookup and overload resolution, by adding
`OperatorRewriteInfo` and propagating it in `CppOverloadSet`.
In case overload resolution chooses to use an operator which requires
rewriting, we emit a `TODO` since rewriting is not yet supported.
Part of #6170.
Before this change, we wrongly ignore the decision to generate a thunk
for a function with default args by overriding this decision with the
fact the return type by itself doesn't require a thunk.
This causes not generating a thunk which leads to crashing in lowering.
Add tests that show that now thunk is generated in `check` and it no
longer crashes in `lower`.
Follow up of #6108.
This adds location information and prevents crashes in some cases of
template instantiation in operator lookup.
Removed `InCppOperatorLookup` note as it is no longer necessary.
Part of #5995.
Instead of calling `PerformCppOverloadResolution()` and use the complex
return value to call `PerformCallToFunction()`, we call
`PerformCallToCppFunction()` which will call both
`PerformCppOverloadResolution()` and `PerformCallToFunction()`.
Followup of #6112.
Part of #5995.
This turns out to be quite important, as several important standard
library types (such as `std::string`) have mixed-access overload sets
for their constructors as an implementation detail. The overall approach
here is:
- Use the most permissive access to determine the access of the overload
set itself. This affects whether name lookup finds the member name at
all.
- After overload resolution, re-check the access of the selected member,
if it's protected or private.
---------
Co-authored-by: Dana Jansens <danakj@orodu.net>
If there's a unique "preferred" base class, then treat that as "the"
base class for Carbon's purposes. In particular:
* If there's exactly one polymorphic base class, that's our preferred
base class.
* If there's exactly one non-empty base class, that's our perferred base
class.
* (Degenerate case) If there's exactly one base class, that's our
preferred base class.
---------
Co-authored-by: Jon Ross-Perkins <jperkins@google.com>
This diagnoses instead of crashing in some cases:
* When one of the operands is an incomplete Carbon type.
* When one of the operands is a C++ class that can't be completed due to
lack of Carbon supported.
The new tests cover these cases.
Part of #5995.