Reuse LLVM global constants: do not generate a new llvm::Global constant
for a pointer to a global constant for the same Carbon const_inst_id,
reuse already generated one.
Instead of using None, use an explicit ImplWitnessTablePlaceholder in
the witness table for entries that have not yet been populated, to aid
debugging. This would ensure they would show up very clearly in the
SemIR. This uncovered some `<invalid>` in the SemIR under erroneous
conditions that have now been turned into `<error>`.
Add the ImplWitnessAssociatedConstant instruction which wraps the
canonical instruction found from the constant value of the rewrite
constraint. This ensures that we have an instruction inside the eval
block for a generic impl declaration for each rewrite constraint's
value, which allows Subst to be performed to rewrite the symbolic
constant of the ImplWitnessAssociatedConstant instruction to associate
it with the generic. This will prevent the otherwise orphaned symbolic
constant of the rewrite's value from being used which can not have a
specific applied to them.
While applying the new insts in InitialFacetTypeImplWitness(), rearrange
the function to use less nesting. And avoid using entity names from
imported instructions (as we found is not effective in deduce.cpp) and
use a local instruction by going through the constant value.
This PR is part of the effort to allow a rewrite to name a generic
parameter, such as `impl forall [T:! type] T as Z where .X = T`, however
tests for this involve a final impl so that we can typecheck that the .X
value is a specific T, so the tests will come with that work. This piece
is split off because introducing new instructions causes a lot of SemIR
churn, and I wanted to get that done separately.
Adds a mapping to keep track of vtable LLVM IR decls/defs for use.
Adds the vtable_id to the vtable_ptr initialize instruction for lookup.
Adds emission of vtable declarations for use outside the file that
defines the vtable. (this isn't done lazily, it's done for any imported
class - it could be done lazily & maybe eventually has to be lazy to
handle generics)
Each of these types takes another type as an operand. Instead of storing
that other type as a `TypeId`, store it as an `InstId` so that we can
track how it was written, not only its canonical form.
The canonical constant values of these types continue to store the
canonical constant values of their operands, as normal.
---------
Co-authored-by: Dana Jansens <danakj@orodu.net>
Reduce usage of `GetConstantInSpecific` to a single caller in constant
evaluation, with a TODO to remove that.
This gets us closer to being able to fully perform type-checking against
abstract types instead of types anchored within a particular generic.
One of the remaining three steps for proof-of-concept virtual function
lowering (the other two being: initializing vptrs to point to these
tables, and using the vptr+table at call sites).
Introduces a (placeholder?) mangling of vtables as ".$vtable" at the end
of the mangling of the class name.
Uses a scheme similar to clang's relative vtables - though those are
relative to the vtable slot, and this is relative to the start of the
vtable (seemed simpler? though I haven't looked at it in detail, perhaps
in lowering call sites I'll find the relative-to-vtable-slot is nicer,
easy enough to change).
Resolve instruction id depending on the context from which a function is
called.
Calling a function in a function context that does not have a definition
emitted before reaching lowering will cause a crash. This needs a change
in check/eval layer.
While current examples of this could also be addressed by emitting
declarations on use (by which stage the associated types would have to
be complete by construction) - it's expected that future examples
(vtables, function pointers) will need to work in this case anyway, so
might as well implement this feature.
- Explicitly document that `*Param` and `*ParamPattern` insts represent
`Call` parameters.
- Stop wrapping compile-time parameter patterns in `ValueParamPattern`
insts (because they aren't `Call` parameters).
- Document how `MatchContext::results_` relates to the `Call`
parameters, and be more consistent about when it's written to.
- Remove `RuntimeParamIndex::Unknown`: we no longer need to distinguish
"this `Param`'s runtime index is unknown" from "this `Param` isn't a
runtime param", because we no longer use `Param`s at all in the latter
case.
- Rename `RuntimeParamIndex` to `CallParamIndex`.
As a side effect of removing the `ValueParamPattern` insts, this fixes a
minor diagnostic bug where `NoteInitializingParam` didn't identify the
specific parameter that led to a deduction failure, because it expects
generic parameters to only be represented by `SymbolicBindingPattern`s,
but before this change they could be wrapped in `ValueParamPattern`s.
This allows iterating on all values in a store along with the Id for
each value, instead of `llvm::enumerate(store.array_ref())` which would
give you the indices.
While the indices are really the same as the Ids, this provides a
typesafe way to enumerate() over a store.
There's no use for this right now, but I thought I needed this, and it
helped me debug, and it was a pain to write correctly without dangling
references.
---------
Co-authored-by: Richard Smith <richard@metafoo.co.uk>
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.
At present, we typically define a DiagnosticConverter, then store an
instance of it and a DiagnosticEmitter that wraps it. This is relatively
minor in general, but I've been trying to create more self-contained
DiagnosticEmitter classes (which hold their own DiagnosticConverter,
similar to NullDiagnosticEmitter), and there it just gets in the way.
Since we don't reuse DiagnosticConverter instances, this combines the
definition into DiagnosticEmitter. Mainly this means we don't have a
separate object in play, and less to carry around.
The most impact is probably to SemIRDiagnosticConverter, which was also
the most complex. Now `SemIRLocDiagnosticEmitter`, this gets some
different construction flow. Note in the PR I've split the file rename
to its own commit, to try to help delta views. However, the most
substantial parts of the refactoring are split into #4876, which this
depends upon.
At present, lower depends on `Check::SemIRDiagnosticConverter` for debug
info. That was to support a quick implementation of debug info, but
isn't great because it's both an unusual dependency on check's
implementation, and relying on diagnostic structures for debug info.
This cleans that up by splitting relevant logic out to a library in
sem_ir, and having lowering use sem_ir's library instead of check's.
Additionally, a small refactoring of `Parse::TreeAndSubtrees` to allow
getting locations in lowering without going through a `DiagnosticLoc`.
I'm adding `Parse::GetTreeAndSubtreesFn` in because it's a complex
signature to have in so many spots.
I chose to have `ResolveNodeId` return a `SmallVector` because it seemed
likely to be fairly compact, but that could also be using an optional
callback to handle resolved node IDs, possibly just returning the last
entry. This could be switched if preferred.
Note this change shouldn't affect behavior, it's just moving code
around.
---------
Co-authored-by: Chandler Carruth <chandlerc@gmail.com>
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>
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.
This change deliberately breaks away from the line/column ordering, and
instead focuses on a last byte offset corresponding to the final token
processed as part of producing the message. Where that's equal, this
maintains stable ordering in order to reflect the order that diagnostics
were produced.
The intent of this approach is that lex, parse, and check diagnostics
are interleaved based on where they are produced, but that
subexpressions still have diagnostics emitted prior to containing
expressions. In particular, the prior line/column sort essentially
sorted on the _start_ of where a diagnostic was associated, and this is
closer to sorting based on the _end_. As a consequence, something like
`F(1 2)` will have the error for `1 2` emitted _before_ a diagnostic for
`F(1 2)` not matching parameters, instead of _after_.
In check, we track the last handled node. This provides a
last_byte_offset _separate_ from where a diagnostic is associated. The
intent is that this creates an ordering of diagnostics which may be
associated with earlier code, to cause the diagnostics to be emitted
later. An example consequence of this is the change in ordering of
modifier diagnostics: we are diagnosing those from the same place, but
they have the same last_byte_offset, so we print them out in the order
produced.
I've added similar tracking to parse, but cannot identify any test which
is affected by it (note the separate commit, I thought about this late).
I'm not sure whether we have good out-of-order errors we could produce
for this.
A significant number of tests have reordered diagnostics as a
consequence of this change, so this change does not add further testing.
* Change `InterfaceWitness` -> `ImplWitness`
* Include a `SpecificId` in the `ImplWitness`. This allows the
`InstBlock` it contains to have its own identity, allowing it to be
changed as the impl is processed. Evaluation only updates the specific.
* Create the `ImplWitness` at the start of the impl definition. In the
future, this will be populated with the values of non-function
associated constants. For now, it starts full of invalid instruction
ids.
* Implements the model suggested in #4672 .
Note that the non-SemIR testdata changes are to these file:
* `toolchain/check/testdata/impl/lookup/fail_todo_undefined_impl.carbon`
* `toolchain/check/testdata/struct/import.carbon`
* `toolchain/check/testdata/tuple/import.carbon`
The last two are due to an import of generics bug exposed by this PR,
which will be fixed in a follow-on.
---------
Co-authored-by: Josh L <josh11b@users.noreply.github.com>
Co-authored-by: Richard Smith <richard@metafoo.co.uk>
This introduces `calling_convention_param_ids`, a single block that
consolidates all the information that was being used by consumers of
`param_refs` and `implicit_param_refs`, in a form that's easier to
produce and typically easier to consume.
See also [this Discord
discussion](https://discord.com/channels/655572317891461132/655578254970716160/1300545448909738125)
regarding the decision to keep the return slot last in the SemIR calling
convention, even though it goes first in the LLVM calling convention.
---------
Co-authored-by: Jon Ross-Perkins <jperkins@google.com>
The new `FacetValue` instruction represents `C as I` for some type `C`
and facet type `I`. It is named `FacetValue` instead of just `Facet` to
parallel the `FacetType` instruction.
This PR uses this instruction represent the facet value `Self` in an
`impl` declaration. This instruction will be used in the future to also
support things like:
* `C as I` where `C` is a class; and
* forming a specific for a generic with a `T:! I` parameter where `T` is
being given a concrete value.
(Here `I` is an interface or other non-`type` facet type.)
Also do some renaming and add some comments to make things a bit more
clear.
* `FacetTypeAccess` -> `FacetAccessType` to clarify this is not access
of a facet type, but access of the type of a facet
* `.facet_id` -> `.facet_value_inst_id` to parallel the `FacetValue`
instruction
`FacetAccessWitness` will be in a future PR.
---------
Co-authored-by: Josh L <josh11b@users.noreply.github.com>
Co-authored-by: Richard Smith <richard@metafoo.co.uk>
Adds per-builtin instructions, removing `BuiltinInst`. This collapses
`builtin_inst_kind.def` into `inst_kind.def` so that we have a single
place for all macro uses. I still want to remove `BuiltinInstKind`, but
it's something I think is better separated from the `BuiltinInst`
removal.
I'm collapsing the build targets `ids` and `inst_kind` into one because
they both have links to builtin kind information now. It's hard to
separate without a cycle. I'm using the `typed_insts` name because that
seems like the actual most significant thing there, and more interesting
relative to the `inst` target.
This is for more clearly distinct names, and to make it a clearer
transition from `BuiltinInst` for name conflicts. `FloatType` is also an
instruction, and we have `Carbon::Error` (common/error.h). This avoids
affecting tests, although the name is embedded in the builtin test.
In `LegacyFloatType`, `Legacy` because I was having trouble coming up
with a more appropriate name. I'm not clear this is a `FloatLiteralType`
at present, it needs some work to mirror `IntLiteralType`.
In `ErrorInst`, the suffix `Inst` was discussed as good and similar to
`BuiltinInst` (although I'm trying to get rid of that).
For the few remaining uses of the builtin `i32` type, manually build an
`IntType(Signed, 32)` value instead. These are:
- The return type of `Run`.
- The type that int literals in an `if` expression are converted into.
- The type of an array index expression.
We should consider converting those three cases away from `i32` over
time.
---------
Co-authored-by: Jon Ross-Perkins <jperkins@google.com>
This does a few things:
* Replaces the single `TypeId` in the `FacetTypeInfo` struct with a
vector of `InterfaceId`, `SpecificId` pairs (sorted in id order)
representing the set of interface requirements of the facet type. This
will later be used to support facet types with multiple interface
requirements (as in `I & J` or `I where .Self impls J`).
* Replace `InterfaceType` instructions (used as the type of an
`InterfaceDecl` instruction) with `FacetType` instructions (introduced
in #4460) with a (newly introduced) `FacetTypeFromInterface()` function.
* Replace code that consumed `InterfaceType` values with code that
consumed `FaceType` values. I've generally left the assumption in the
code that it is dealing with a single interface, using the (newly
introduced) `FacetTypeInfo::TryAsSingleInterface`, and producing an
error otherwise. There isn't yet support for the `&` operator or `where
.Self impls`, so this is generally a good assumption for now, except you
can get a facet type with no associated interfaces from a `type
where`... expression. In some cases, the facet type value is pulled from
the evaluation of an `InterfaceDecl` instruction, where the single
interface assumption will hold permanently.
* Some related cleans up: nicer stringification and formatting of facet
types, suppression of some errors when there already was an error.
There is still a lot left to do, including:
* Type `type` should be a facet type with a reserved id, replacing the
built-in instruction.
* Code using `TryAsSingleInterface` should generally be upgraded to
handle more than (or less than) one interface. Name lookup should be
particularly exciting.
* Operator `&` should be defined on facet types, unioning their
interface and other requirements.
* Requirements from a `where` clause don't do anything yet.
* Impls and impl lookup need to resolve facet types, and do things like
determine if all the associated constants are given values.
---------
Co-authored-by: Josh L <josh11b@users.noreply.github.com>
Co-authored-by: Geoff Romer <gromer@google.com>
This converts `StructTypeField` from an instruction to a dedicated type,
with its own store. This had originated from discussing how
`.GetAs<SemIR::StructTypeField>` was more prevalent than for other
instructions, but is probably more interesting for the storage savings
(16 bytes StructTypeField + 4 byte LocId + 4 byte InstId -> 8 byte
StructTypeField).
Due to the different structure, these now have their own stack during
construction, reducing (but not eliminating) `args_type_info_stack_`
use-cases.
The test changes of different InstIds is expected because structs and
classes generate fewer instructions now. Other than that, results should
remain the same.
I'm generally trying to avoid unrelated cleanup here due to the PR size,
though I did scrutinize the `VerifyOnFinish` calls, adding one and
commenting others (putting them in member order because that's how I was
checking what was verified and what wasn't).
Still to do:
* Represent facet type values in a canonical form
* Produce & consume facet type values instead of interface values
* `type` should be associated with a canonical facet type value
* Support `&` on facet type values
* Type check and enforce requirements in facet types
---------
Co-authored-by: Josh L <josh11b@users.noreply.github.com>
This instruction represents integer values, whether they come from
literals or calculations, so it the old name is inaccurate. I also plan
to rename `BigInt` to `IntLiteral` based on recent discussion and this
change aims to avoid confusion stemming from the same name being used
for two different things.
I'm not renaming `FloatLiteral` because recent discussion suggests we
may want distinct `FloatLiteral` versus `FloatValue` representations in
SemIR.
- Generate runtime indices as part of pattern matching, rather than as a
separate postprocessing/rewriting step.
- In contexts where runtime parameters aren't permitted, avoid emitting
insts for them to begin with, rather than trying to detect the problem
and rewrite the IR to remove them later on.
I'm taking the approach of making DiagnosticBase an API so that we can
pass similar diagnostics as parameters. An alternative would be to do
the function_ref approach we've done elsewhere, but these felt more
boilerplate to me.
Note I'm also modifying messages here. Let me know if you'd like
different changes and/or just keeping current formatting (keeping
current formatting would also allow removing some of the templating I've
added, but it felt helpful putting explicit tokens where possible). But
also, things like "`protected` not allowed on `interface` declaration at
file scope" were part of the phrasing issue, I think.
---------
Co-authored-by: Richard Smith <richard@metafoo.co.uk>
A small step to virtual functions - adding vtable pointers to the
layout, but not initializing or otherwise using them at this stage.
A few open design questions I'd love feedback on:
* Is this the right/good enough SemIR representation for now? This patch
adds a `is_dynamic` attribute to `SemIR::Class` and populates/flags it
based on the flag of the base class, or if any virtual function is
declared in the class (or, at least that's my intent). Some other
options include:
* Each `Class` could store a `ClassId` (or `TypeId`?) of the (possibly
indirect, possibly self) base class that is the first one that is
dynamic/has a vtable pointer
* Could make the property narrower, like `has vtable pointer` and have
it `true` only on the type that introduces the vtable - then derived
classes would have to walk their base classes to check if they're the
one that needs to define the vtable pointer or not
* Should the vtable be the first element in the type? If there's a
non-dynamic base type, we could have a layout that's `{<non-dynamic base
type>, vtable ptr, <derived members>}`? Derived types would still be
able to uniquely identify where their vtable pointer is just fine... -
and the vtable pointer is, in a sense, a member of that intermediate
type, so it does seem a bit strange to force it to the front - but I
guess it's probably more efficient in some ways?
Open to any other suggestions/advice/thoughts on the direction, etc.
---------
Co-authored-by: Richard Smith <richard@metafoo.co.uk>
Also propagate the pattern IR along with the pattern-match IR, and use
it where appropriate.
Strictly speaking, some parts of the pattern-match IR are allocated
eagerly, while traversing the pattern's parse tree, but they still
aren't actually emitted until we traverse the associated pattern insts.
---------
Co-authored-by: Jon Ross-Perkins <jperkins@google.com>
Generate declarations of specific functions on demand. Definitions are
not emitted yet, and I'm using a temporary, known-broken scheme for name
mangling.