When an `IntLiteral` appears as an operand of an `if` expression,
convert it to `i32` for now, so that we don't reject things like `if
cond then 1 else 2` due to having a non-constant value of type
`IntLiteral`.
For tuple indexing expressions such as `(a, b).0`, convert the index to
type `IntLiteral`, not to type `i32`. This isn't strictly necessary to
do in this PR, but avoids the need to provide an `IntLiteral` -> `i32`
implicit conversion for `no_prelude` tests using this syntax.
* 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>
While here, also change the diagnostic emission to pass the interface
type rather than the interface name. This prepares us to include the
arguments in the diagnostic.
Instead, wait until we know whether it is used as a value or reference
expression. This allows us to avoid materializing a temporary if it is
used as a value and the initializing representation holds a copy of a
value representation.
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).
When an instruction is created as part of an implicit call to an
interface member, we generated a bunch of constants for naming the
interface, finding the corresponding specific, accessing its member
function, and so on. This led to significant bloat in SemIR.
Instead, we now track whether an instruction is created implicitly in
its location, and where relevant, we use the constant value of the
instruction directly instead of storing a new `Inst`.
This doesn't reduce the amount of work we need to do, but does make the
representation in SemIR smaller and more readable.
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.
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>
Refactor the current function call deduction logic to make it reusable.
Call into it from `impl` deduction. Also build a generic region for the
definition portion of a generic `impl` and substitute into it before
accessing the witness in a specific `impl`.
This is enough to get simple uses of generic `impl`s to work. The main
blocker for more complex cases is that we have very little support for
non-trivial deduction, so while we can deduce `forall [T:! type] T as
I`, we can't deduce `forall [T:! type] C as I(T)` yet.
Instead of stringifying types in the caller in some cases, add new types
to represent:
- `InstIdAsType`: an `InstId` diagnostic argument that represents a type
expression that should be included in the diagnostic
- `InstIdAsTypeOfExpr`: an `InstId` diagnostic argument that represents
an expression whose type should be included in the diagnostic
For these cases, we can produce more user-friendly descriptions of a
type than we can with a canonicalized `TypeId`. Add comments to
discourage using `TypeId` diagnostic arguments when one of the above can
be used, and move over existing uses where it's straightforward to do
so.
Move type stringification code to its own files and out of `SemIR::File`
to make `File` smaller and to further discourage the direct use of the
stringification logic.
Also update type printing to include the `` ` `` delimiters surrounding
the type. The intent is that we will eventually want to include other
information when formatting a type, like Clang does when printing a
typedef (`'string' (aka 'std::basic_string<char>')`), and such
formatting requires that the diagnostic machinery produces the `` ` ``s
itself.
There are a couple of cases where we really want to format valid Carbon
type syntax directly into a diagnostic, rather than an `aka` or similar,
because the diagnostic text includes part of the type itself, for
example: ``"consider using `partial {0}`"``. For such cases, a `Raw`
form of the diagnostic argument types is added: `TypeIdAsRawType` and
`InstIdAsRawType`. In principle we could instead use ``"consider using
`partial {0:raw}`"``, but our diagnostic machinery isn't set up for
that.
---------
Co-authored-by: josh11b <15258583+josh11b@users.noreply.github.com>
llvm::function_ref (like std::unique_ptr, for instance) already has a
null/empty state, so use that to avoid confusion/duplication of empty
states between optional and the nested function_refs.
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 is a primarily automated change:
- Search & replace for capitalization
-
`(CARBON_DIAGNOSTIC\((?:\n\s+)?\w+,(?:\n\s+)?\s\w+,(?:\n\s+)?\s")([A-Z])`
- `$1\L$2`
- Search & replace for period
-
`(CARBON_DIAGNOSTIC\((?:\n\s+)?\w+,(?:\n\s+)?\s\w+,(?:\n\s+)?\s"(?:[^)]|\n)+)\.("[,)])`
- `$1$2`
- Limited search & replace for `ERROR: ` -> `error: ` in streamed things
- Leaving a TODO for command_line because there's more cleanup that can
be done there
- Modify diagnostic_consumer.cpp
- ERROR -> error
- WARNING -> warning
---------
Co-authored-by: Richard Smith <richard@metafoo.co.uk>
This change accomplishes the TODOs for access checking. More
specifically it,
- makes `SemIR::AccessKind` formattable using `llvm::formatv`.
- makes use of `LookupUnqualifiedName` to find `Self`.
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>
Add these interfaces to the core library. For now, they're two separate
interfaces because we don't yet support one interface extending another.
This collapses a lot of the layering in check: for example, the call
building logic depends on implicit conversions, conversions now depend
on the overloaded operator machinery, and that machinery depends on
building calls.
In passing, improve the diagnostics for failing to find a name required
from the prelude. Also convert all the transitively-called code from
`NodeId` to `LocId` given the latter is what the conversion machinery
has available.
---------
Co-authored-by: Jon Ross-Perkins <jperkins@google.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>
This prepares us for modeling associated entities of parameterized
interfaces.
We don't use the interface parameters when type-checking `impl`s or uses
of interface members yet, but we do now check interface arguments during
`impl` lookup.
As discussed in toolchain meeting, we want to avoid overloading the
meaning of "instance", and "specific" was the best name we found. It's a
little unorthodox and inventive, but hopefully over time will become as
unsurprising as the term "generic" is.
We can't use the instruction from the generic directly, because it
doesn't have the right constant value. Instead add an instruction that
models the transition from the constant value in the generic to the
constant value in the generic instance.
Also start associating the self generic instance with unqualified
lookups that find results in an enclosing generic, so that we track the
information necessary to create the new instruction.
---------
Co-authored-by: Jon Ross-Perkins <jperkins@google.com>
I'm trying to increase the distinction between BuiltinKind and
BuiltinFunctionKind. BuiltinKind is for instructions,
BuiltinFunctionKind is for function definitions. To get to this point,
I'm doing a few changes:
- BuiltinKind -> BuiltinInstKind
- builtin_kind.* -> builtin_inst_kind.*: filename consistency
- Builtin -> BuiltinInst: mainly for consistency with the above
- Builtin::builtin_kind -> BuiltinInst::builtin_inst_kind: somewhat
repetitive but seems like a consistent edit
- Function::builtin_kind -> Function::builtin_function_kind: seems a
useful distinction
I'm leaving alone things like (and mentioning in case there's a desire
for more renames):
- InstId::BuiltinError, InstId::ForBuiltin: these I think are more
apparent because they're directly associated with Inst.
- GetBuiltinICmpPredicate in lowering: maybe builtin function handling
should be in its own file, but these local names don't feel problematic
to me.
- GetBuiltinType, BuildBuiltinValueRepr, PerformBuiltinIntComparison:
similar to the above, names don't feel too problematic
Require types into which qualified lookup is performed to be completely
defined. Eventually this will trigger substitution into the definition
for generic types.
For each generic, build a list of instructions describing the
computations we need to do when resolving an instance of the generic:
this is a list of the instance-specific constants and types that the
generic uses. Another way of viewing this list is as a block of Carbon
SemIR code that is evaluated in order to form an instance of the generic
-- this is referenced in the code as the "eval block" for the generic.
For each instruction in the generic whose type or value is a symbolic
constant, replace that type or constant value with a symbolic reference
that says "to find the actual type or value, look at index N in the list
of values for the generic instance".
For an instruction with a symbolic constant value, we can just add that
instruction to our list. For an instruction with a symbolic constant
type, however, we may not have a corresponding instruction computing the
type within the generic and may need to build a new instruction, but
will reuse one where possible. In the case where we build a new
instruction, we use the existing substitution code to build the type
within the eval block.
For now, this transformation is only done in the declaration region of
the generic, not in the definition region. Also, we map back from the
symbolic references to the underlying constant value in a few places
where we will eventually need to do a lookup into a generic instance, in
order to avoid regressing the tests.
When forming a `ConstantId` for a symbolic constant, add storage to
track the generic in which the constant was formed and the index within
that generic. These fields are not yet populated.
Require mapping from a `ConstantId` to an `InstId` to go through the
`ConstantValueStore`.
This is a preparatory step for an upcoming generics change where
symbolic `ConstantId`s are no longer just a thin wrapper around an
`InstId` but instead are indexes into a table with additional
information about the symbolic constant beyond its `InstId`.
Most of these are places where we failed to include a header file and
simply never got an error about this. The fix is to include the header
file.
Most other cases are functions that should have been marked `static` but
were not. Finding all of these was a main motivation for me enabling the
warning despite how much work it is.
One complicating factor was that we weren't including the `handle.h` for
all the state-based handler functions. While this isn't a tiny amount of
code, it is just declarations and doesn't add any extra dependencies. It
also lets us have the checking for which functions need to be `static`
and which don't. For the `parse` library I had to add the `handle.h`
header as well, I tried to match the design of it in `check`.
I have also had to work around a bug in the warning, but given the value
it seems to be providing, that seems reasonable. I've filed the bug
upstream: https://github.com/llvm/llvm-project/issues/94138
I also had to use some hacks to work around limitations of Bazel rules
that wrap `cc_library` rules and don't expose `copts`. I filed a bug for
`cc_proto_library` specifically:
~https://github.com/bazelbuild/bazel/issues/22610~https://github.com/bazelbuild/bazel/issues/4446
Trying to conform with #4009. Changes SemIR::LocIdAndInst construction
to root out struct init cases with AddInst and related functions. I'm
using templating of AddInst functions in order to avoid `AddInst(loc_id,
InstName{...})` and instead have `AddInst<InstName>(loc_id, {...})` with
I think similar readability results. There are a couple cases where inst
construction is templated and so designated initializers couldn't be
used, so this may be better for those in particular due to the extra
type enforcement.
This probably doesn't clean up every last case, but I was trying to get
the bulk at once without bleeding over into less related changes.
---------
Co-authored-by: Richard Smith <richard@metafoo.co.uk>
Right now, each sequential modifier verification tends to re-fetch the
enclosing scope, doing equivalent verification. Change code to more
explicitly do the fetch once, sharing the result, also making the
enclosing scope available to the caller for other work.
Note, the type store similarly carries an inst store pointer; that's
what I'm basing having the name scope store's inst store pointer on.
Previously we did some of this in decl_name_stack and some of it in the
callers of decl_name_stack. Factor out a single place to pop a name and
its optional following parameters.
Part of making this behavior consistent is that we now track whether an
implicit parameter list was present or absent rather than mapping an
absent list to `InstBlockId::Empty`. This improves our redeclaration
checking and the precision of some diagnostics.
This was to track use of a declaration after import, prior to a
redeclaration. Per [discussion on
Discord](https://discord.com/channels/655572317891461132/1217182321933815820/1236016521059237962),
we likely don't need this check due to the change in behavior of
`extern`.
Rather than potentially getting one of many `extern` decls and depending
on it by accident, it is now planned to be _required_ to be imported,
and the library doing a non-`extern` decl must _know_ it's importing the
`extern` decl. The stricter requirement on the library means it now
seems more reasonable to use the `extern` decl.
So kind of rolling back #3831, though keeping `ImportIRInstId` (at least
for now) and keeping `Loaded`/`Unloaded` terminology (seems a nicer
fit).
This removes the builtin FunctionType, replacing it with a FunctionType
instruction. The constant for a FunctionDecl is now a StructValue with
type of FunctionType.
Note this means a function declaration produces _both_ a type, and a
value of the type. This has some consequences in terms of circularity,
and makes the importing of function declarations a little more complex.
It'll get particularly peculiar for imports because of the behavior of
the reference, but that's a known issue due to other things such as
`alias`. The impact will hopefully be contained to
ResolvePrevInstForMerge (and ImportRefs).
To note a small formatting change in diagnostics:
```
- // CHECK:STDERR: fail_member_lookup.carbon:[[@LINE+4]]:3: ERROR: Value of type `<associated <function> in Interface>` is not callable.
+ // CHECK:STDERR: fail_member_lookup.carbon:[[@LINE+4]]:3: ERROR: Value of type `<associated F in Interface>` is not callable.
- // CHECK:STDERR: fail_todo_facet_lookup.carbon:[[@LINE+4]]:3: ERROR: Value of type `<associated <function> in Interface>` is not callable.
+ // CHECK:STDERR: fail_todo_facet_lookup.carbon:[[@LINE+4]]:3: ERROR: Value of type `<associated F in Interface>` is not callable.
```
---------
Co-authored-by: Richard Smith <richard@metafoo.co.uk>
This allows ImportRefs to point at a potentially distant instruction,
while still providing a LocId that can be used for diagnostics. I think
this'll be used if we're trying to point ImportRefs at canonical
instructions in distant IRs. It conveniently eliminates a special-case
in check.cpp.
Restructures LocIdAndInst::Untyped because I think it's not really
needed after this change (the key non-import use was GetWithLocId, which
I just give friend access for). Adding NoLoc for things that don't
provide _any_ location because it turns out Inst can easily be passed in
this way which was not what I had intended, but is used.
Use a level comparison during substitution to determine whether we're
substituting a particular binding. Evaluate symbolic bindings with the
same name and the same level to the same symbolic constant, for example
across redeclarations of a generic function.
This allows impl lookup to find such impls.
Eventually we'll want to do this more lazily, and filter to the relevant
subset of `impl`s needed for a query. But for simplicity, for now just
import all `impl`s.
---------
Co-authored-by: Jon Ross-Perkins <jperkins@google.com>
Support is added for all overloaded operator interfaces in the current
design apart from `Assign`, which is going to require some more work to
properly handle, given that primitive assignment currently has a special
implementation for quite a few builtin types.
As we don't have support for generics yet -- in particular, generic
interfaces -- there is no support for `*With` interfaces, but homogenous
interfaces such as `Add` are supported instead.
Factor out building of call expressions so that overloaded operators can
generate calls.
Switch a few places from using specific kinds of NodeId to a general
NodeId. Because overloaded operators and other things like implicit
conversions can result in member access and function calls, those
operations can't require a specific kind of NodeId.
Add import support for associated entities, and fix import support for
interfaces and symbolic bindings. We now import interfaces in two steps,
first importing a forward declaration then a definition, just like we do
for classes. For symbolic bindings, we ensure that each BindSymbolicName
is imported only once, because its ID is used as its symbolic identity.
This is necessary because we (only) support operator interfaces that are
defined in an imported Carbon package for now.
The entire contents of `check/operator.cpp` should probably be
rethought. In particular, doing a lot of name lookups on each operator
is likely to be bad for performance. But this gets us to the point where
overloaded operators are basically working, which seems like a good
place to iterate from.
For now, the tests that the individual operators map to the right
interfaces are mostly generated by a script, but that's just because I'm
expecting a fair bit of churn in how we define the prelude and the
`impl`s -- in particular, when we add support for `AddWith`, we'll need
to update all the tests. The plan is to remove the script once things
settle down.
---------
Co-authored-by: Jon Ross-Perkins <jperkins@google.com>
Co-authored-by: Carbon Infra Bot <carbon-external-infra@google.com>
This change implements the check behavior for the arrow operator.
`ptr->Foo()` is rewritten as `(*ptr).Foo()` and `ptr->(X.y)` is
rewritten as `(*ptr).(X.y)`