In handle_let_and_var.cpp, field initializers are now handled like
regular `var` initializers, by calling `LocalPatternMatch`.
In pattern_match.cpp, `FieldDecl`s with initializers are handled by
storing a value in `SemIR::File::field_initializers()`. This is a new
map where the keys are `FieldDecl` `InstId`s and the map values are
`InstId`s representing the initializer value.
In convert.cpp, `ConvertStructToStructOrClass` now has a `get_default`
function parameter that callers can use to provide a field default.
`ConvertStructToClass` uses this to provide a default from field
initializers.
Fixes link failures when referencing a symbol involving a fingerprint
from a different package.
Previously we included the `Namespace`'s `import_id` as part of its
fingerprint, which caused local and imported namespaces to get different
fingerprints. We now store the `import_id` on the `NameScope` instead of
on the `Namespace` inst to avoid this problem.
Also, when we reach a package-level `NameScopeId`, consistently
fingerprint it as a (package name, library name) pair. Previously the
fingerprinting depended on whether it was imported or not, as an
imported `NameScopeId` had a parent scope (the current package). We need
to include the library name here so that private entities with the same
name in different libraries have different fingerprints.
When a class extends an interface, referring to a member name of the
interface as an unqualified name should refer to the class's
corresponding associated entity value, not to the associated entity
itself. Similarly, in an `impl`, unqualified names of associated
entities should refer to the `impl`'s corresponding value for that
entity.
To support this, we treat `impl`s as `extend`ing their implemented facet
type, and we make lookups into an extended facet type use the `Self`
type of the extending `impl` or `class` if lookup finds an associated
entity. We already did the latter if the extending entity was an
interface; this extends the existing support for these other cases.
While this can only happen when some other error is taking place, we
should handle it gracefully and report a concrete (but unmatchable)
value in the type structure instead of CHECK-failing.
Class vars are still restricted to simple `name: type` bindings, not
full patterns. This is now handled in the check phase instead of during
parsing.
This is in preparation for supporting `static var`.
When an outer type defines an `extend` relationship to an inner type, we
require that inner type to be complete so that we can know that name
lookup can search both scopes as soon as the outer type is complete.
When doing name lookup, we require the type in which we are looking to
be complete. Then, we recursively add extended scopes, but then also
require each of them to be complete again, which inserts
RequireCompleteType instructions into the block doing lookup.
While these new instructions may differ in terms of their specifics,
they are redundant since we already required the type to be complete,
and specifics can not change the completeness of a type. They are also
problematic because a named constraint or interface can extend a scope
with a symbolic specific, by using `Self` as an argument. This inserts a
symbolic instruction into the block doing name lookup, even though that
block may not be generic.
A nested designator like `.(X.X1).(Y.Y1)` results in nested
ImplWitnessAccess instructions, which can produce cycles in the
toolchain easily when replacing `.Self`.
First, when constructing a facet type like `V:! Z where .Z1 impls (Y
where .Y1 = U)` we substitute replace `.Self` in the nested facet type,
and in this case we replace `.Self` with `.Z1` which contains a `.Self`
of its own. This was coming from us being lazy about replacing `.Self`
in an `impl as` declaration, such as `impl C as Z where .Z1 = .Self`.
The self type is known there, so we can more eagerly replace `.Self` as
we do in a `require impls` declaration. Then the replacement for `.Self`
never comes with a `.Self` that needs to also be replaced. Any resulting
`.Self` would always be the top-level one.
Second, when evaluating ImplWitnessAccess, we were replacing .Self in
the LHS of rewrite constraints, but the `.Self` may itself have a type
that contains rewrite constraints. If one of those rewrite constraints
has nested ImplWitnessAccess instructions, we evaluate the new
ImplWitnessAccess, which again finds rewrite constraints to replace
`.Self` in, and we repeat forever. For this one we just stop replacing
.Self in the LHS of rewrite constraints. Since they are always against
.Self, we can always look in the access facet's type for a value.
While fixing ImplWitness access, also correct the lookup to search
through the types of nested ImplWitnessAccess instructions to find a
rewrite value, since it may find it at any level up to the eventual
`.Self`.
---------
Co-authored-by: Richard Smith <richard@metafoo.co.uk>
Any non-extend require decls must be satisfied when the impl definition
starts, but they are not checked. We only check for require decls in the
target interface being impld.
Implement the alias rules from proposal #5389, wherein an alias is
permitted so long as the target has a constant value. While that
proposal is not yet accepted, this seems like a reasonable basis for
further iteration, and will be useful for the examples we're currently
pursuing.
We were treating ImplWitnessAccess as a concrete type, but that is
incorrect if its accessing a symbolic type value. This results in
concrete impl lookup queries failing to match a generic impl that is
built with a symbolic ImplWitnessAccess in its type structure, when the
query does not have the equivalent ImplWitnessAccess in its own type
structure.
We need to look in the top level facet being accessed through
ImplWitnessAccess for witnesses, such as in `T:! Z where .Z1 impls Y`
where `T` provides the witness for `T.Z1 as Y`. But we also need to look
in the facet type of the ImplWitnessAccess for witnesses, such as in
`T:! Z` for `interface Z { let Z1:! Y }`, where `T.Z1` provides the
witness for `T.Z1 as Y`.
To support that we give TypeIterator an iteration step for
ImplWitnessAccess before recursing into it, like we do for FacetValue.
While doing this, we make TypeIterator more recursive, by making less
special casing around the step from one inst into the next. Instead of
eagerly finding a SymbolicType, we consistently recurse back into the
big switch statement and have it decide the next iteration step. This
allows it to recurse into instructions like ImplWitnessAccess and
FacetValue in a consistent manner.
Fixes mangling collisions when two thunks with the same name (eg, `Op`)
are created in the same context, which in turn would lead to LLVM
verifier failures and miscompiles.
To support this, add a new value store to track a little more
information about thunks beyond what's in the `Function`.
Avoid crashing on the fact that block scopes have no related InstId. So
we can't push the InstId of the current scope in the ImplIntroducer
node, as it can be None. Instead we have to find the parent InstId when
we're building the ImplDecl, because the ImplDecl has a node at the top
of the scope stack for the DeclNameStack.
Impls are allowed in sequential (non-declarative) scopes (functions,
blocks), but [redeclarations are not
allowed](https://github.com/carbon-language/carbon-lang/blob/db24042fe56d22275aa801696e2f8f5c4171e35b/proposals/p3763.md?plain=1#L279).
We now diagnose these redecls as invalid.
An `impl` decl in an impl file can refer only to things defined in the
api file, without the orphan rule rejecting it. If they are in different
scopes (such as one being in a class and one not), then they are treated
as separate `impl` decls. But if they have the same type structure, then
they fully overlap which is an error unless they are in a match_first
block.
This catches the overlap when two `impl` decls are in the same library
but are split between the api and the impl file of the library.
Previously we only diagnosed if they were in the same _file_ but now we
diagnose if they are in the same _library_.
This lets us stop eliding it in textual semir tests with dump ranges.
Previously it would always get elided, even though it was part of the
range being dumped, and was referred to by other instructions in the
dump range.
Since each `.Self` is unique (can change its type if not its value) in a
facet type, having each one distinct by location also aids
understanding.
A `where` expression nested inside a `T impls X` constraint makes
`.Self` ambiguous on the right-hand side of the `where` if `T` is
anything other than `.Self`. After the `where`, the value of a `.Self`
could be `T` or could be the value of `.Self` before the `impls`
constraint: the so-called top-level value of `.Self`.
Implicit use of `.Self` in designators is always allowed, and they are
bound (and replaced by a reference) to the inner-most possible value of
`.Self`. On the right-hand side of the nested `where` above, they have
the value `T as X`.
`.Self impls ...` is also always allowed, since it acts more as a
keyword here, and it always refers to the inner-most possible value of
`.Self`.
Any other explicit use of `.Self` is diagnosed when ambiguous, in any
kind of constraint. This is done in the handling of `WhereExpr` since it
has enough context to allow `.Self impls` (which is an explicit use)
while disallowing other explicit uses. And because it has non-canonical
instructions to work with, so it is able to diagnose errors with precise
locations.
Since `.Self` is no longer going to be marked with depth modifiers, the
eval of `WhereExpr` does not need an input facet value instruction
representing `.Self` to compare with, as they are now going to all be
equivalent. So revert it back to just looking for the `PeriodSelf` name
id, through a shared helper being introduced as `IsPeriodSelf`. And drop
the period self InstId from the `WhereExpr` instruction. This causes
most of the formatted SemIR changes.
Move helpers for working with and replacing `.Self` to their own file,
out of the `facet_type.h` header/cpp files. These are working with
`.Self` facet values more than facet types, though `.Self` is a name
that only exists inside the scope of a facet type.
This enables thunking to work when the function has `ref` parameters,
without jumping through hoops to add `ref` tags in the desugared
function body.
This also renames `is_operator_syntax` to `is_desugared`, which is more
general and more accurate.
See
[here](https://docs.google.com/document/d/1rWcueFwIfZox6GKVGxiUG4cBzjrZ6djXiIDGyJDtrE4/edit?tab=t.0)
for the design doc.
This also removes the default value of the `result_type_inst_id`
parameter of `HandleAction`, moves it before the action in the parameter
list, and documents it. This solves two problems:
- The default made it easy to forget, leading to unnecessary
`TypeOfInst` instructions.
- When it was present, putting it after the fairly "bulky" action
argument tended to make the callsite harder to read.
This makes rewrites of a constraint that requires a generic `I(Self)`
work. The `Self` there is replaced in the identified facet type by the
impl-as self type. But the rewrite is for the interface `.I(.Self)`, so
they don't match. Once `.Self` is replaced with the impl-as self type,
then they match and the rewrite is applied.
This allows `T impls X` constraints to function, since they must contain
some reference to `.Self` in order to be valid. This should be
sufficient to support the interfaces we need for for loops over C++
range-for-compatible types.
We replace `.Self` in the following places:
- In a require decl, as we have a specific self facet to replace it with
from the declaration, either a user-specified facet or the symbolic
`Self`.
- When identifying a facet type, as we have a specific self that we are
identifying the facet type with. That self gets used for all `.Self`
references.
- Implicit `.Self` references on the RHS of an `impls` constraint when
building a facet type. The `.Self` references there no longer refer to
the top level self facet, so replace them with the facet that we now
know they refer to, which is found on the LHS of the `where` before the
`impls`.
- Rewrite constraints in impl lookup when validating them and comparing
them with constants from witnesses, which come from identifying a facet
type.
- Rewrite constraints in ImplWitnessAccess eval when comparing them with
constants from witnesses, which come from identifying a facet type.
Substitution is done through `SubstPeriodSelf`. It handles replacing
`.Self` and `.Self as type`, for a replacement facet that is either of
type FacetType or TypeType.
Eval currently diagnoses some ambiguous `.Self` references when doing
substitution of `.Self` but this is the incorrect place to do it, so
there are TODOs about moving this to name lookup. To support these
diagnostics there's some additional complexity in `SubstPeriodSelf` that
can go away once the TODOs are addressed, such as asking the caller if
they want to replace each `.Self`, in order for it to report a
diagnostic.
There are a number of follow-up work items here:
- Some TODO tests.
- Remove `SymbolicBindingType` since its intention was to support
`.Self` but we don't need it with this approach.
- Replace `.Self` in rewrite constraints of require decls.
- Replace `.Self` in rewrite constraints of impl as when constructing
the witness table.
- Reject explicit `.Self` in name lookup when it would be ambiguous.
- Officially disallow `.Self.A = B` in rewrite constraints in the design
docs, so that we don't have the case where `.A` is allowed but `.Self.A`
is not due to ambiguity.
We were not copying named constraints in the base facet type over to the
result of the WhereExpr eval.
Add tests that cover this by doing `impl as Constraint where ...` with
rewrite contraints either in the impl-as or in the named constraint.
When the interface is generic, these tests fail (as TODOs). When the
impl is used in impl lookup, we crash (with TODOs in the tests).
Part of #6991.
- A function with a return declaration always has exactly one
`ReturnSlotPattern`, representing the whole return declaration (whereas
previously that was omitted for value and reference returns).
- The `ReturnSlotPattern` always has a subpattern with the same form.
`OutParamPattern` already plays that role for initializing forms, and
`TuplePattern` will play that role for tuple forms. This change
introduces `ValueReturnPattern` and `RefReturnPattern` to represent
value and reference return forms.
- As before, the `ReturnSlotPattern` has a corresponding `ReturnSlot`
that represents the output that is initialized by a `return` statement.
Its structure parallels the structure of the `ReturnSlotPattern`, so we
need `ValueReturn` and `RefReturn` insts that correspond to
`ValueReturnPattern` and `RefReturnPattern`.
This is a step toward supporting generic return forms, where the
`ReturnSlotPattern`'s subpattern may be an action: this change ensures
that evaluating the action for a specific form produces the same SemIR
as if the form were concrete to begin with. More speculatively, this
should simplify the implementation of `return` statements with compound
return forms.
---------
Co-authored-by: Chandler Carruth <chandlerc@gmail.com>
This makes them part of the identified facet type, and we can see the
constraints as part of stringify and format output.
But this does not do enough to make them useful yet: Any `T impls X`
constraint must contain a reference to `.Self` somewhere. And `.Self`
references do not get substituted, so neither `T(.Self) impls X` and `T
impls X(.Self)` will match against an incoming facet value derived from
an `impl T(U) as X` or `impl T as X(U)`, since `U` and `.Self` are never
the same thing until `.Self` can be substituted.
Now that impl lookup runs into facet values containing `.Self` (a
symbolic binding), such as in `C(.Self)`, we were crashing assuming the
type of `.Self` is a FacetType, but it can be `type` in the case of
`type where C(.Self) impls...`. Instead, use an empty facet type for the
type of `.Self` so it is always a facet. This assists with substituting
other facets into it, without having to insert an extra FacetAccessType.
`MakePeriodSelfFacetValue()` now enforces this requirement.
---------
Co-authored-by: Richard Smith <richard@metafoo.co.uk>
The type must be complete to look for a witness for Destroy. Do this
check through type completion rather than just checking to see if the
ClassInfo says the definition is closed, since completing the type has
side effects (resolves the self specific definition).
Then look for whether the class is abstract through the CompleteTypeInfo
instead of just looking at the inheritance type on ClassInfo, like type
completion does.
Last, FacetTypes are trivially destroyed just like TypeType.
Fix some situations where we'd drop the storage argument when building
an in-place initializing expression. We now guarantee that an expression
with the in-place initializing category always has a storage argument.
This is only fixing the decision about *whether* to produce a witness.
Implementation of the witness is still a TODO, though where a body is
generated, it should also precisely reflect where one _needs_ to be
generated.
Note the tests:
- toolchain/lower/testdata/function/generic/import_core_witness.carbon
- toolchain/lower/testdata/function/generic/import_unused_def.carbon
These tests can probably be produced _without_ Core.Destroy, but I found
the essence of them while trying to build //examples with Core.Destroy
and a simpler minimization wasn't striking me.
Assisted-by: Google Antigravity with Gemini
---------
Co-authored-by: jonmeow <jperkins@google.com>
This will be used for const-evaling functions. Splitting into a separate
commit since it touches a lot of test files, and a couple fail_todo
tests are no longer failing.
When parsing a pattern, if we encounter something that isn't pattern
syntax, try parsing as an expression instead. We only need one-token
lookahead to distinguish pattern syntax from expression syntax.
Track a precedence group through pattern parsing so that we can allow
different kinds of expressions in a top-level pattern (such as the
operand of `let`) and in a nested pattern (such as a subpattern of a
tuple pattern or within grouping parens). For example, we do not allow
`case if ...`, and for now I've chosen to also not allow logical or
relational operators at the top level of a pattern, so `case 1 + 1` is
OK, but `case 1 == 1` and `case true and false` require parentheses.
This decision should be ratified or revisited by a design proposal.
Very basic check support is also provided, only sufficient to form an
`ExprPattern` instruction and nothing beyond that. For now, all pattern
matching against an `ExprPattern` fails with a TODO error. To support
that, I've switched from calling `BeginSubpattern` in the parent handler
of a pattern and `EndSubpatternAs*` in the pattern handler itself to
calling both functions in parent handlers, with `EndSubpattern`
converting an expression into an expression pattern where needed.
Depends on #6976.
Assisted-by: Gemini via Google Antigravity
EvalOrAddInst has to create a non-canonical instruction for evaluating a
few typed insts, such as LookupImplWitness which uses an InstId to
provide a location for diagnostics.
But the output of the function is a ConstantId. We do not have access to
the non-canonical InstId after the function returns. But if the constant
value was symbolic, it was being attached to the inst, and the inst
would be added to the eval block of the enclosing generic. This
needlessly added semir for a symbolic value.
The ConstantId returned by EvalOrAddInst can be used immediately, such
as to evaluate an ImplWitnessAccess. In that case, the final evaluated
result is all we need to keep in semir.
If the ConstantId needs to be replaced by specifics, it is only as part
of some other instruction, since ConstantIds themselves are not modified
by specifics, instructions are. In that case, the canonical instruction
in the constant value would have been added to some other (now symbolic)
instruction, which would be replaced by a specific.
This has no functional change, but it reduces runtime overhead and semir
output for LookupImplWitness and ImplWitnessAccess.
Performing a lookup against `Self` inside the definition of the named
constraint leads to cycles, as described in the document [Self
contradictions in Named
Constraints](https://docs.google.com/document/d/17rn2XmME8o2MM4OJqatSVuMa1iYZ1PAgcNrf0PXR9Q4/edit?tab=t.0).
To prevent those cycles, this change introduces a large refactoring of
impl lookup.
The impl lookup done inside eval is reduced to only performing
monomorphization. That is it:
- Only looks for an provides final witnesses.
- Is not allowed to identify the facet type of the query self.
- Returns either a final witness or None (or an error)
The paths for finding non-final witnesses are now done outside of eval,
directly in the initial `LookupImplWitness()` function. If no final
witness it found through eval, the resulting non-final
`LookupImplWitness` instruction witness is returned. It does not produce
cycles to identify the facet type of query self outside of eval, since
that does not result in repeating the identification when resolving
specifics of the named constraint or require decl.
Move the ArrayStack for Context::require_impls_stack into a new class
which tracks a NamedConstraintId (or InterfaceId) for each frame of
RequireImplsIds, so that in type completion we always can find the
correct frame for a given named constraint which is still being defined,
in order to find the RequireImplsIds in the in-progress definition.
This enables some nice simplifications, and it's also a step toward a
broader restructuring of binding and parameter patterns.
Assisted-by: Gemini 3.1 Pro via Antigravity
This resolves some todos, and makes `Convert` safer to call, which
unblocks some changes in pattern matching that I'm working on.
Assisted-by: Gemini 3.1 Pro via Antigravity
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.
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
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>
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
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.
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