In line with the proposal in #4682, this changes the array syntax to be
array(T, N). `array` is a builtin keyword which must be followed by
parens containing two expressions and a separating comma.
The array type expression is still fully builtin, it does not forward to
a Core.Array library type yet. It merely adds the `ArrayType`
instruction, as was done with the previous syntax.
Followup work will change the instruction to reference to Core.Array,
once the library type exists and can be used directly.
---------
Co-authored-by: zygoloid <richard@metafoo.co.uk>
Expands the CompleteTypeInfo to include information about abstract
classes and computes that information as part of completing the type.
---------
Co-authored-by: Josh L <josh11b@users.noreply.github.com>
Co-authored-by: Richard Smith <richard@metafoo.co.uk>
Co-authored-by: Dana Jansens <danakj@orodu.net>
Currently the toolchain does not recognize that tuples and structs with
abstract elements should be considered abstract.
Also make the existing `fail_abstract` test into a `no_prelude` test.
Co-authored-by: Josh L <josh11b@users.noreply.github.com>
These tests expose cycles during deduction, when the generic parameters
in an impl statement require deduction and the impl clause that
satisfies them comes after the one containing the generic parameters.
This causes the same impl to be looked at repeatedly, and produces a
cycle diagnostic.
---------
Co-authored-by: Geoff Romer <gromer@google.com>
Parameter lists need substantially different treatment than tuple
patterns in other contexts, so this change splits them into separate
parse node kinds.
---------
Co-authored-by: Jon Ross-Perkins <jperkins@google.com>
* Add `RequireCompleteFacetType` and `ResolveFacetTypeImplWitness` to
`check::Context`. Goal was to move code from `impl.cpp` (mostly) without
functional changes.
* Complete type information is cached with the facet type, and is stored
in a `complete_facet_types()` table.
* Main functional change is to diagnose attempts to use a rewrite
constraint on an associated function. Some existing diagnostics have
been updated.
* Remove `check::Context::RequireDefinedType`:
* For class types, use `RequireCompleteType`
* For facet types, use `RequireCompleteFacetType`
* Introduce a `SemIR::SpecificInterface` to hold an interface and
specific id pair.
* Keep the specific interface ids in the impl object.
* Avoid some extra copies in `Dump` functions.
* Future work missing from this PR:
* Resolving for member access or actions that require impl lookup.
* Resolving rewrites constraints that refer to non-concrete values.
* Any support for adding implied constraints that result from a `where`
clause (though TODOs have been added).
---------
Co-authored-by: Josh L <josh11b@users.noreply.github.com>
Co-authored-by: Richard Smith <richard@metafoo.co.uk>
Co-authored-by: Dana Jansens <danakj@orodu.net>
This adds support for choice types at a similar level to that of a C
enum, where each alternative has a name but no additional
data/parameters attached to it. We generate a TODO diagnostic if
parameters are specified.
Because there's no extra data, the storage is a simple unsigned integer
discriminant of the smallest possible size.
A choice without any alternatives is not constructible. A choice with a
single alternative is, and has an empty tuple in place of a discriminant
since it has only one state. The empty tuple is used to make the class
non-constructible. This can be improved.
Each alternative is turned into a let binding on the choice that is a
value of the choice with that alternative set as the active one in the
discriminant. This isn't possible to write in user code with a class
right now, since the let binding has the same type as the choice
(which is a class) it is within. It's possible to generate it in semir
however by adding the binding after the class is marked complete.
In order to have the name available for diagnostics, we now always set
`NameId` in `NameContext` and put `poisoning_loc_id` as part of the
union with `resolved_inst_id` instead (since we never need both).
Treat template bindings as introducing template phase, and propagate it
in the same way we propagate the checked generic phase.
Rename "symbolic" to "checked symbolic" to make room for "template
symbolic". Also rename "phase" to "dependence".
A value of type FacetAccessType can convert to a facet value of a target
FacetType if the value's underlying facet value's FacetType is
compatible.
A value of type FacetType can convert to another value of type FacetType
if the value's FacetType is compatible with the target FacetType.
During impl lookup, the comparison of the lookup type and the impl's
type needs to consider more than strict equality. If the impl's self
type is a FacetAccessType, we instead need to verify that the FacetType
of the lookup type and of the impl's self type are compatible (which is
like a problem of another impl lookup). For now we check that they are
equal by unwrapping the FacetAccessType to the constant facet value
within, and compare that with the lookup type.
---------
Co-authored-by: josh11b <15258583+josh11b@users.noreply.github.com>
Cycles are defined as reaching two independent lookups in a chain that
have all the same types involved. The acyclic rule states that this is
not possible and results in an error:
https://docs.carbon-lang.dev/docs/design/generics/details.html#acyclic-rule
To do this we need to track the types involved in impl lookup. The
interface constant includes the whole facet type being looked up, which
includes any specific types for generics or where constraints. Thus we
just need to compare the constant ids to look for this condition.
---------
Co-authored-by: josh11b <15258583+josh11b@users.noreply.github.com>
Currently it returns false which just ends typechecking. Instead handle
the error state later and avoid firing overlapping diagnostics in
'extend impl as'.
---------
Co-authored-by: josh11b <15258583+josh11b@users.noreply.github.com>
Change parse tree from `template (T:! type)` to `(template T):! type`,
so that we have information about whether a binding is a template
binding available when forming the representation of the binding
pattern. This incidentally fixes a bug that we would accept `template
addr A:! B` instead of the intended `addr template A:! B`.
Track whether a symbolic binding is a template binding on the
`EntityName` object. I'm borrowing a bit from the `CompileTimeBindIndex`
for this in order to avoid making `EntityName`s larger. Longer-term, we
should think about using a different representation for symbolic
bindings, to avoid including these fields in all `EntityName`s, but
that's out of scope for this change.
So far, template bindings are treated as having the same phase as
checked bindings, but that will change in a future PR.
If 'extend impl' is invalid, mark the impl as invalid by putting an
ErrorInst in the witness_id field.
The construction of the witness_id can otherwise return an ErrorInst but
impl lookup was not checking for that. Now have impl lookup check for an
error there before attempting to deduce generic parameters, which avoids
infinite recursion through deduction in cases like a cyclical impl of
itself.
Adds a testcase for infinite impl-of-itself lookup found by fuzzer.
When attempting to convert to a value of type FacetType, and the source
value is a FacetAccessType, then if the type of the underlying
FacetValue is the same as the target, we can use the FacetValue there as
the conversion output.
If the type of the FacetValue differs, then we still want to do impl
lookup with the FacetValue to see if it matches with the target
FacetType, but that is still a TODO.
This allows a generic function with a value whose type is constrained by
a FacetType (thus the value's type is a FacetAccessType), to call other
functions with the value as an argument when it is constrained by the
same FacetType:
```
fn F[T:! FacetType](x: T);
fn G[T:! FacetType](x: T) { F(x); }
```
It is also an optimization to avoid impl lookup where we've already done
it to produce the FacetAccessType.
Adds a bunch of new tests with values of types which are constrained by
a facet type (or "facet value value" for short), with some more tests
that currently fail and should be made to pass.
Change representation of package names from `IdentifierId` to
`PackageNameId`, and add a special value `PackageNameId::Core` for the
Core package. Add a `Core` expression to name the Core package, and
support for parsing the `Core` keyword in `package` and `import`
declarations.
For now, I've made no changes to instruction fingerprinting or name
mangling. This means that fingerprints and mangled names will collide
between names in the `Core` package and names in a `r#Core` package. See
#4908.
---------
Co-authored-by: Jon Ross-Perkins <jperkins@google.com>
BuildValueRepr is used to determine the value representation of a type,
but the instruction determining the type may be an indirection through
to another instruction, such as a TupleAccess with `T.0` or a
StructAccess with `T.f`. In these cases, step through the indirection
and try again on the resulting type.
This eliminates a crash as these Access instructions do not resolve to a
type themselves and would otherwise end up in this FATAL line:
```
CARBON_FATAL("Type refers to non-type inst {0}", inst);
```
While here, remove the reference to TupleIndex in typed_insts.h as it
has been subsumed by TupleAccess in 7f930d0f58.
ClassElementAccess is not yet handled, but a fail_todo test is added. It
fails because `ConvertToValueOfType()` in `ExprAsType()` returns a
non-constant value for a ClassElementAccess instruction, where it must
not for a StructAccess.
The fn receiving a facet type needs to deduce a type from a
FacetAccessType, which is the SemIR type representing the parameter type
that is a generic parameter. For example:
```
fn F[T: Interface](val: T);
```
Here T is a generic parameter that is a facet value, but the `val`
parameter's type is the facet value converted from a FacetType to a
TypeType, with `as type`. The result of that conversion is a
FacetAccessType. So the deduction code sees a FacetAccessType for the
type of `val`.
We make deduction undo the `as type` conversion to move back to the `T`
parameter declaration, which has type FacetType in order to deduce the
required facet value (which is itself a type constrained by the
FacetType). And when we have a facet value (of type FacetType) to be
deduced, we will also convert the argument if it is of an appropriate
type to a FacetValue that matches the FacetType using the changes from
PR #4863.
Tests with `impl forall` can cause impl deduction to recurse forever and
crash, so those tests are omitted in this PR and they will come in
follow-up work that address the infinite recursion.
Rebased on top of PR #4885
When a function has a generic FacetType parameter, it can depend on
other FacetTypes bound as earlier parameters. To deduce the FacetValue,
we need to know the impl to attach to it, which requires knowing the
full type signature of the generic FacetType parameter. To do this,
after deducing other arguments to determine the value of non-generic
FacetType parameters, we substitute them sequentially into later
symbolic parameters to get their full facet types, then converts the
arguments to those full facet types to get the FacetValue. For example:
```
fn F(T: type, U: Interface(T));
```
Here the `T` binding is deduced to the be the caller's argument type.
But the Interface(T) can not be properly deduced to a FacetValue in the
first pass, and it will just be the caller's argument type directly.
After the first deduce pass, we will substitute the deduced T binding
into Interface(T), at which point the argument type can and will be
converted to a matching FacetValue as long as an impl can be found.
Closes#4868
This is based on PRs #4881 and #4863
---------
Co-authored-by: Richard Smith <richard@metafoo.co.uk>
If a type satisfies the requirements of a FacetType, then that type as a
value can be converted to a FacetValue, which binds the type value to
the FacetType.
For instance, if the class A implements an interface B, then
```
fn F(b:! B) {}
```
can be called with the type `A`
```
F(A);
```
This does not handle yet receiving non-type values matching a FacetType,
as that requires deducing the required FacetValue for the caller's
argument. Follow-up work will do this step.
---------
Co-authored-by: josh11b <15258583+josh11b@users.noreply.github.com>
Functions with positional parameters omit any implicit or explicit
parameter lists. This causes them to not have a pattern block, which
crashes if there is a return type that needs to add to the pattern
block.
Add a test covering this and handle it by having the ReturnTypeId
handler peek at the node stack and conditionally add the missing pattern
block. To do so it looks to see if the previous node is a
`IdentifierNameNotBeforeParams` which implies it was not expecting a
pattern (since there are no params) and thus the pattern block was not
added to the stack.
Note that lambdas also allow functions to omit an identifier, which will
need a pattern block on the stack for implicit parameters, explicit
parameters or a return type, without seeing any IdentifierName-like
parse nodes. To handle this, we will need to look for additional nodes
in the future and add the missing pattern block to the stack - possibly
for the FunctionInitializer, but the parse support needs to be created
for lambdas first.
AsCompatible changes a source instruction's type to a compatible type,
so it also needs its constant value to take on the compatible type.
Otherwise the type of the instruction and its constant value will
differ, which makes moving to the constant value into a lossy
transformation.
Part of #4868
Instead, produce a CARBON_FATAL error. Returning an Error constant from
the importer seems reasonable but turns out to not work well in
practice, because it violates the invariant that a constant value should
not have an error as an operand.
Also, don't produce an error constant for a valid ImportRefLoaded that
whose value is not constant; preserve the non-constant value instead.
For an expression such as `(Type as Interface).AssocFn()`, track the
`Self` type `Type` in the result of the member access so that it's
available when checking the function call.
This introduces a new kind of type, `ImplFunctionType`, that represents
the type of a function that is expected within an impl, modeled as the
type of the function within the interface plus a value to use as `Self`.
Calls to values of this type behave like calls to the underlying
function except that the `Self` parameter is pre-bound to the self type
from the facet.
In order to support this, fix an issue where the imported list of
generic bindings lost their association with their enclosing generic.
This adds a little complexity to `import_ref`, including a new recursive
cycle that I intend to address in a follow-up PR.
---------
Co-authored-by: Jon Ross-Perkins <jperkins@google.com>
This switches most error printing to use diagnostics instead of direct
stream writes, even when not a specific file diagnostic. I'm allowing
empty filenames for this use-case.
This allows a little more specific testing to validate coverage of
output using the diagnostic coverage test. I'm adding a few tests to
cover things that weren't previously tested.
Separately, this also forces a little more standardization in format...
considering how changes like #4568 show effort being spent to _mirror_
diagnostic style, my thought is now to just use diagnostic code where
possible.
Note this also allows incrementally better testing of the language
server; I'm changing the crash fix from #4847 in favor of diagnostic
testing.
---------
Co-authored-by: Chandler Carruth <chandlerc@gmail.com>
Based on [the lastest thinking on
#4672](https://github.com/carbon-language/carbon-lang/issues/4672#issuecomment-2606209281)
, require a full syntactic match for impl redeclaration, instead of
excluding the `where` restriction. This means no updates to the impl
witness on redeclaration, and no diagnostics that those updates are
consistent.
Not included in this PR, but will need to be done in the future:
* Support for assigning values to associated constants in the body of
the impl definition. This will require moving the checking that
non-function associated constants are set from the definition start to
definition end.
* Identify semantic redeclarations that are not syntactic matches to
give a failed redeclaration diagnostic. This should be done once we are
already identifying impl declarations with the same type structure in
order to require they be identified in an impl_priority/match_first
block.
* Merging of the functions in `check/impl.cpp` that are now always
called together.
Also add some test coverage of `where` parsing I developed in PR I've
now abandoned because of this new simplification of the impl
redeclaration semantics.
---------
Co-authored-by: Josh L <josh11b@users.noreply.github.com>
Co-authored-by: Jon Ross-Perkins <jperkins@google.com>
Add a full entity representation for associated constants, and build a
`Generic` object for them. This `Generic` is parameterized by the
enclosing `Self` type, allowing the use of `Self` within the type of the
associated constant to be supported.
When performing impl lookup for an associated constant, produce the type
with the provided self type substituted for its `Self` along with any
generic parameters of the interface.
Split the handling of associated constant declarations into two parts,
corresponding to the code before the `=`, and the code between the `=`
and `;` (if any). The former goes into the generic declaration region;
the latter into the generic definition region. This prepares us to
handle the default value for an associated constant, but for now we're
just storing the information and not actually using it.
Remove the entity type field from `assoc_entity_type`, because it's
almost unused and is an attractive nuisance -- it must necessarily be a
type in the generic scope of the associated constant rather than in the
scope of the instruction (because there is no `Self` anywhere else),
which means that it's hard to substitute into or derive meaning from.
See `toolchain/check/testdata/impl/assoc_const_self.carbon` for tests of
the new functionality; these used to cause the toolchain to crash.
High level, replacing `Id::Invalid` with `Id::None` and `Id::is_valid`
with `Id::has_value` for clarity, as discussed
[here](https://discord.com/channels/655572317891461132/655578254970716160/1331664574545395794).
The `IntId` refactoring is needed together with `AnyIdBase` because it's
also used with `ValueStore`.
Note, trying to be careful not to rewrite `EnumBase::InvalidIndex`, or
`is_valid` in general (e.g., `IdKind::is_valid`).
I've tried to sequence commits here:
1. Automatic replacements:
- `((?:Id|Index)(?: |::|\(|Base(?:\(|::)))Invalid((?:Index)?\W)` ->
`$1None$2`
- `<invalid>` -> `<none>`
- `InvalidNodeId` -> `NoneNodeId`
- `/\*invalid\*/` -> `/*none*/`
- `id((?:_|\(\))(?:\.|->))is_valid` -> `id$1has_value`
2. Manual edits:
- In `int.h` and `int_test.cpp`
- `IntT` has `is_value`, which I'm renaming to `is_embedded_value`.
- Manual edits to comments in this file.
- `AnyIdBase` and `IdBase`
- Declaration of `is_valid` -> `has_value`, `InvalidIndex` ->
`NoneIndex`.
- In `ids.h` and `ids.cpp`
- `is_valid` -> `has_value`
- `// An explicitly invalid ID.` -> `// An ID with no value.`; similar
for index
- Various math on `InvalidIndex` -> `NoneIndex`
- Various mentions of "valid" in comments
- In `value_store.h`, for `IdT::Invalid`, plus one comment
- In `impl.h` and `tokenized_buffer.h`, we had different initialization
of `::None` values (versus `ids.h` syntax) that I fixed manually.
- Spot checks to compile
- Particularly where `is_valid` replacements didn't catch spots due to
different naming.
3. Autoupdate tests
4. verbose.carbon (NOAUTOUPDATE)
5. Comment spot checks
Note there are probably other mentions of "Invalid" that should be swept
up, but I'd like to argue for merging and separating out remaining
cleanup since this is so sweeping (and likely to hit merge conflicts
from churn). We'll probably have lingering mentions of "invalid" for a
bit regardless, just because there are uses of "invalid" in non-Id APIs.
Changes the name of SemIR `import_ref`s to use the format
`<package>.<entity>`.
<table>
<tr><th>Before</th><th>After</th></tr>
<tr>
<td><code>%import_ref.05a: type</code></td>
<td><code>%Main.D: type</code></td>
</tr>
<tr>
<td><code>%import_ref.8f2: <witness></code></td>
<td><code>%Main.import_ref.8f2: <witness></code></td>
</tr>
</table>
* [Discord discussion in
#toolchain](https://discord.com/channels/655572317891461132/655578254970716160/1330253540999827577)
* Closes#4769