This is a preparation change for adding name poisoning support
(https://github.com/carbon-language/carbon-lang/issues/4622), which is
expected to require more elaborate logic around NameScope since a name
can be not defined yet, defined, or poisoned.
The API separates looking up a name from getting the full entry since we
have cases where the entries are invalidated between the time we're
looking for the name and when we access (and sometimes modify) the
entry.
This change has the following benefits:
* `names` and `name_map` are internal to `NameScope` and are guaranteed
to match.
* `extended_scopes` and `import_ir_scopes` can not be manipulated (only
new scopes can be added).
* `inst_id`, `name_id` and `parent_scope_id` are constants.
* `has_error` can only be mutated from false to true.
---------
Co-authored-by: jonmeow <jperkins@google.com>
Issue was not properly handling `ImportRef` instructions in
`AddAssociatedEntities` in `check/import_ref.cpp`. Using `CARBON_CHECK`
instead of `CARBON_FATAL` was hiding the error.
---------
Co-authored-by: Josh L <josh11b@users.noreply.github.com>
`ids.h` and `ids.cpp` are the manual edits, everything else is
search-and-replace.
The full list of things moved is:
- `TypeId::TypeType`
- `TypeId::AutoType`
- `TypeId::Error`
- `ConstantId::Error`
This is to unblock removing `InstId::Builtin*`.
* Rewrite constraints are stored in a facet type, substituted, imported,
and formatted.
* We now distinguish `.Self` from other symbolic bindings in two ways:
* `.Self` itself now has an invalid compile time binding index (since it
doesn't bind to any of the generic parameters). As a result, we no
longer need to create a generic region in `handle_where.cpp`.
* There is a new phase tracking values that are only symbolic because
they transitively depend on `.Self`. This allows us to give the result
of a `where` expression template phase as long as it doesn't use any
symbolic constants other than `.Self` or other designators.
* `AddConstant` has been removed from `check/context` since it was only
used from `eval`. This meant less plumbing of the phase change.
* Evaluation of `BindSymbolicName` now also performs substitution into
its type.
* Include a bit more information in some diagnostics.
* `StringifyTypeExpr` outputs rewrites, which required adding support
for associated entities as well.
* Associated entities now have an entity name set when importing.
* Adds tests for some interesting cases with rewrites and uses of
`.Self` mixed with other symbolic constants.
Still to do:
* There is no validation that any particular type satisfies rewrite
constraints.
* Access to members of a facet type do not see the rewritten values.
* Impls don't recognize whether associated constants have rewrites
setting their values.
* No support for resolving facet types.
---------
Co-authored-by: Josh L <josh11b@users.noreply.github.com>
Co-authored-by: Richard Smith <richard@metafoo.co.uk>
Represent the type as an `InstId` rather than as a `TypeId` to preserve
how it was written and better support tracking its value in a generic.
Add accessors to `Class` to get the base and adapted type to reduce code
duplication, and add `TypeStore::GetObjectRepr` to make it easier to map
from a type to its possibly-adapted object representation type. In
passing, also move `GetIntTypeInfo` and `GetUnqualifiedType` into
`TypeStore`.
This fixes specifics of generic adapters to properly look at the
specific adapted type, and also fixes importing of adapters.
---------
Co-authored-by: Jon Ross-Perkins <jperkins@google.com>
In preparation for further refactoring, switch away from member
functions for most of `ImportRefResolver`.
Split `ImportRefResolver` into a context class that exposes the value
stores for the source and destination files, and a derived class that
maintains a worklist. The idea is to statically enforce that functions
that take `ImportContext` cannot accidentally add new work, because they
don't have access to the work queue.
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>
Replace the special case adding the base class to the list of extended
scopes with a fully general approach. We use an ImportRef to lazily
import the extended scopes on first lookup.
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).
* The `extended_scopes` in a `NameScope` were represented by a
`NameScopeId`. Replace that with an `InstId` of an instruction returning
the type that is extending this name scope.
* `Context::LookupQualifiedName` now can take multiple scopes to look
in.
* `GetAsLookupScope` was moved out of `member_access.cpp` and is now
`Context::AppendLookupScopesForConstant`
This PR also fixes some existing issues that were revealed as part of
writing and testing this PR:
* Additional validation and handling of invalid ids.
* `extend impl` in a class is not properly imported yet, but at least
now it doesn't crash.
The change to use an `InstId` also allowed some diagnostics and
formatting to be improved.
---------
Co-authored-by: Josh L <josh11b@users.noreply.github.com>
The first change here is to canonicalize away bit width when tracking
integers in our shared value store. This lets us have a more definitive
model of "what is the mathematical value". It also frees us to use more
efficient bit widths when available, such as bits inside the ID itself.
For canonicalizing, we try to minimize the width adjustments and
maximize the use of the SSO in APInt, and so we never shrink belowe
64-bits and grow in multiples of the word bit width in the
implementation. We also canonicalize to the signed 2s compliment
representation so we can represent negative numbers in an intuitive way.
The canonicalizing requires getting the bit width out of the type and
adjusting to it within the toolchain when doing any kind of math, and
this PR updates various places to do that, as well as adding some
convenience APIs to assist.
Then we take advantage of the canonical form and embed small integers
into the ID itself rather than allocating storage for them and
referencing them with an index. This is especially helpful for the
pervasive small integers such as the sizes of types, arrays, etc. Those
no longer require indirection at all. Various short-cut APIs to take
advantage of this have also been added.
This PR improves lexing by about 5% when there are lots of `i32` types.
---------
Co-authored-by: Dana Jansens <danakj@orodu.net>
Co-authored-by: Carbon Infra Bot <carbon-external-infra@google.com>
Co-authored-by: Jon Ross-Perkins <jperkins@google.com>
The test update shows a class derived from an imported base class with a
vptr, and without this change the derived class got its own vptr, with
this change the derived class can see the base is dynamic, so the
derived doesn't need to add a vptr and can rely on the base class's vptr
instead.
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 is primarily to free up space in the BindingPattern insts, but as a
side effect it moves the link between BindingPattern and its BindName
out of the SemIR, and into a transient data structure in Context.
---------
Co-authored-by: Richard Smith <richard@metafoo.co.uk>
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).
While we don't need a lookup table for an imported impl from a different
library, we do still need to import the name scope so we can compute the
parent scope for mangling purposes.
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.
Instead, eagerly import only the impls from the api file corresponding
to the current file, if any, because we need those for impl
redeclaration lookup. For all other cases, load only the impls in
libraries that are referenced as part of an impl lookup query.
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>
Updates `SemIR::Function::GetParamFromParamRefId` to return more
information in the form of a new `ParamInfo` struct. This struct has a
method for getting the `NameId` from the name binding instruction. The
callers previously got it from the `Param` instruction, but the plan is
for that instruction to no longer be associated with a name.
---------
Co-authored-by: Josh L <josh11b@users.noreply.github.com>
Co-authored-by: Geoff Romer <gromer@google.com>
This makes the code more resilient to changes in the structure of
parameter insts, and could help avoid bugs by making the
ImportRefResolver's data structures the single source of truth.
Update impl handling to more closely match other kinds of declaration,
including support for declaring and defining gneeric `impl`s.
When of performing redeclaration lookup for impls by looking for the
self and constraint type, produce a list of impls rather than a single
impl because it's possible for there to be multiple impls with different
deduced parameters but the same self type and constraint. Following
#3763, only consider impls to be redeclarations if they're spelled the
same, not just if they have the same self and constraint types.
No support yet for impl selection to deduce the arguments of a generic
impl.
---------
Co-authored-by: Jon Ross-Perkins <jperkins@google.com>
Introduces the `BindingPattern` and `SymbolicBindingPattern` insts, and
a separate stack of pattern blocks that they are emitted into. The
intent is to generate the corresponding pattern-matching insts (like
`BindName`) from them in a separate pass, but that is deferred to future
PRs.
See
[here](https://docs.google.com/document/d/1U_vQH17V893J9aF1LJXUnFYBNSs2MjKl4bJPaWCB2zo/edit?usp=sharing&resourcekey=0-w0xGYZ0An31Kpz-wvzSXwQ)
for the design this is based on, but note that during review we have
chosen to deviate from that design by putting the patterns in separate
blocks, and omitting the "forward references" from a `BindingPattern` to
its corresponding `BindName`. This in turn necessitates having separate
inst kinds for symbolic and non-symbolic binding patterns.
---------
Co-authored-by: Jon Ross-Perkins <jperkins@google.com>
Add support for initializing types like `GenericClass(i32)` from a
struct literal. A new kind of instruction, `complete_type_witness`, is
added to the class definition to track the object representation type so
that it's visible to the generics machinery. Accesses to the object
representation of a class have all been updated to pass in the class's
`SpecificId` so that the types of the fields of the specific class are
used instead of the types of the fields of the generic class in places
that look at the object representation -- primarily class
initialization.
Instead of the `call` instruction having a block with one argument per
explicit argument, preceded optionally by `self` and followed optionally
by a return slot, change the `call` to store only the *runtime*
arguments. Store an index on the runtime parameters to make it easier to
determine the correspondence between arguments and parameters in a call.
Compile-time parameters, whether implicit or explicit, are no longer
included in the call argument list. Instead, they're tracked only in the
`specific_id` on the callee.
For calls to generic classes and generic interfaces, it no longer makes
sense to form a `call` instruction, given that the entirety of the
result is determined by the `specific_id`, which is now formed when
checking the call. Instead, the `call` instruction now only models
function calls, and not calls to other kinds of parameterized entity
names, and we create a `class_type` or `interface_type` instead of a
`call` instruction to model these kinds of calls. Notionally the model
here is that we're following the #3720 approach for calls, but for now
we inline the `Call.Op` function when forming SemIR.
We now also track the enclosing specific for a generic class or generic
interface that appears within an enclosing generic. This is necessary in
order for deduction of the inner generic parameters to not get confused
by the outer generic parameters being absent.
In order to not regress diagnostics, the template argument deduction
mechanism has been extended to specify the name of the parameter we're
deducing against when possible, and call arity mismatch errors are now
diagnosed before performing deduction rather than afterwards.
This switches `DCHECK` and `FATAL` as well.
The goal is to reduce the code size impact of these assertions so that
we can keep more of them enabled. Currently, the largest cost I see from
`CHECK` is not the actual check or the cold code itself, but actually
the failure to inline trivial functions due to the presence of the cold
code. This means that our goal isn't to reduce apparent code size in the
final binary but the LLVM IR cost assessed for these routines in the
inliner, which closely correlates with code size but is a bit different.
As discussed in #4283, experimentation shows that a single function call
with a minimal number of arguments is the lowest cost model for these.
This is easily achieved with a format-string API that internally uses
`llvm::formatv`. This PR is essentially the `CHECK` version of #4283.
However, the check macros are substantially harder to make work with
both format strings and streaming because they also take a condition.
Also, unexpectedly, I was very successful at devising a regular
expression based automated rewrite from the streaming to the format
string form with only low 10s of manual fixes. This includes compacting
strings broken up across lines, etc. Given how well that went, I've
prepared this PR which just directly switches to the format string API
and migrate everything to use it.
One nice side-effect is that the format string approach ends up greatly
simplifying the implementation here as well.
This is ... *shockingly* effective. Parsing speeds up by more than 3%
with just this change. And checking speeds up by **8%** with this change
alone:
```
BM_CompileAPIFileDenseDecls<Phase::Parse>/256 86.3µs ± 1% 82.9µs ± 1% -3.94% (p=0.000 n=17+19)
BM_CompileAPIFileDenseDecls<Phase::Parse>/1024 431µs ± 1% 415µs ± 1% -3.76% (p=0.000 n=18+19)
BM_CompileAPIFileDenseDecls<Phase::Parse>/4096 1.77ms ± 1% 1.71ms ± 1% -3.18% (p=0.000 n=18+19)
BM_CompileAPIFileDenseDecls<Phase::Parse>/16384 7.44ms ± 1% 7.17ms ± 2% -3.56% (p=0.000 n=18+20)
BM_CompileAPIFileDenseDecls<Phase::Parse>/65536 30.7ms ± 1% 29.7ms ± 1% -3.15% (p=0.000 n=18+20)
BM_CompileAPIFileDenseDecls<Phase::Parse>/262144 131ms ± 1% 127ms ± 1% -2.81% (p=0.000 n=18+18)
BM_CompileAPIFileDenseDecls<Phase::Check>/256 878µs ± 2% 800µs ± 1% -8.91% (p=0.000 n=19+20)
BM_CompileAPIFileDenseDecls<Phase::Check>/1024 1.88ms ± 2% 1.72ms ± 1% -8.56% (p=0.000 n=19+20)
BM_CompileAPIFileDenseDecls<Phase::Check>/4096 5.78ms ± 2% 5.28ms ± 1% -8.70% (p=0.000 n=20+18)
BM_CompileAPIFileDenseDecls<Phase::Check>/16384 21.9ms ± 1% 20.1ms ± 1% -8.02% (p=0.000 n=18+20)
BM_CompileAPIFileDenseDecls<Phase::Check>/65536 90.4ms ± 2% 83.1ms ± 1% -8.04% (p=0.000 n=19+20)
BM_CompileAPIFileDenseDecls<Phase::Check>/262144 381ms ± 2% 352ms ± 1% -7.79% (p=0.000 n=19+19)
```
---------
Co-authored-by: Richard Smith <richard@metafoo.co.uk>
Co-authored-by: josh11b <15258583+josh11b@users.noreply.github.com>
Remove `ReusingLoc` and add enforcement that even for imported
locations, the kind of the parse node for an instruction matches the
kind specified in the instruction definition.
Change the node kind for a few instructions to `NodeId`:
- A couple of instructions had a typed node but could be created
implicitly with any node as part of a builtin implicit conversion. This
happened for `AddrOf`, `ArrayIndex`, and `Deref`.
- A bunch of instructions had `InvalidNodeId` as their associated parse
node kind but were actually always created with a location.
---------
Co-authored-by: Jon Ross-Perkins <jperkins@google.com>
Support for types (particularly classes) is left as a TODO.
There's also an issue I'm observing with a "define in impl" test, but
this is probably an issue with resolving the prior declaration which is
imported indirectly. The PR was already feeling big, so I'm choosing to
cut here.
Note, this does not implement the rule "The owning library's API file
must import the `extern` declaration, and must also contain a
declaration."
This adds fields to `EntityWithParamsBase` to reflect the intention with
`extern library` design. I'm renaming `decl_id` because it shouldn't be
expected to be assigned anymore. import_ref.cpp I'm deliberately keeping
on `first_owning_decl_id` (which will break when importing `extern
library` declarations). Most other cases are for diagnostics, and I'm
using `latest_decl_id` to try and get the closest declaration to the
error. Note I'm partly splitting out this PR to show the test effect,
which apparently we don't test related cases.
This avoids import cycles, and reduces the number of temporary vectors
we build (and potentially throw away on retry). Import the self specific
when importing a generic, now that there's no risk that will introduce
cycles.
Note that we could take the same approach to import classes, interfaces,
and so on, instead of the current third phase of resolution for those
instructions, but in this PR I'm just addressing the import cycle I'm
currently seeing in a work-in-progress PR.
Instead of always forcing an extra pass when we need to import a generic
ID for a generic that isn't already imported, attempt to import the
rest of the instruction in the same pass. There are then three
possibilities:
- The instruction needs a retry anyway to form its constant value, and
we avoid an extra pass.
- The instruction produces its constant value on the first pass but
still needs a retry. In this case, the handler for that instruction
is expected to retry itself, before building its constant value. The
third pass in this case can't be avoided.
- The instruction succeeds on its first pass. We still need an extra
pass; track the constant produced by resolution separately.
---------
Co-authored-by: Jon Ross-Perkins <jperkins@google.com>
It's actually possible to get into all four combinations of having
parameter lists versus being generic:
- An entity nested within a generic, such as a member class, can be
generic even if it has no parameters.
- As a corner case, an entity with an *empty* parameter list has
parameter lists, but isn't a generic because it doesn't have any generic
parameters.