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rucc_types/
kind.rs

1//! What a C type is made of, before any of it has been interned.
2//!
3//! Design: `spec/07-types-and-semantics.md` section 7.1.
4//!
5//! Everything here is `Copy` and small, because [`TypeKind`] is the interning key and a key
6//! that owns a heap allocation cannot be hashed cheaply or compared cheaply. The two parts of
7//! a type that are genuinely variable length, a function's parameter list and a record's
8//! members, live in side tables and are referred to by index.
9
10use std::num::NonZeroU32;
11
12use rucc_base::Symbol;
13
14use crate::TypeId;
15
16/// The qualifiers a type can carry.
17///
18/// A bitmask in the interning key rather than a chain of wrapper nodes, so `const int` is one
19/// entry in the table beside `int` rather than a node pointing at it. That makes stripping
20/// qualifiers a field read instead of a walk, which matters because almost every semantic rule
21/// in C is stated on the unqualified type.
22///
23/// `_Atomic` is deliberately not here. C lets it be written in the same position as a
24/// qualifier, but `_Atomic(T)` is a different type from `T` with its own size and alignment,
25/// so it is a type constructor, [`TypeKind::Atomic`], and the parser is what maps the
26/// qualifier spelling onto it.
27#[derive(Debug, Clone, Copy, PartialEq, Eq, Default, Hash, PartialOrd, Ord)]
28pub struct Qualifiers(u8);
29
30impl Qualifiers {
31    /// No qualifiers.
32    pub const NONE: Qualifiers = Qualifiers(0);
33    /// `const`.
34    pub const CONST: Qualifiers = Qualifiers(1);
35    /// `volatile`.
36    pub const VOLATILE: Qualifiers = Qualifiers(2);
37    /// `restrict`.
38    pub const RESTRICT: Qualifiers = Qualifiers(4);
39
40    /// Whether every qualifier in `other` is present here.
41    #[inline]
42    #[must_use]
43    pub const fn has(self, other: Qualifiers) -> bool {
44        self.0 & other.0 == other.0
45    }
46
47    /// This set with `other` added.
48    #[inline]
49    #[must_use]
50    pub const fn with(self, other: Qualifiers) -> Qualifiers {
51        Qualifiers(self.0 | other.0)
52    }
53
54    /// This set with `other` removed.
55    #[inline]
56    #[must_use]
57    pub const fn without(self, other: Qualifiers) -> Qualifiers {
58        Qualifiers(self.0 & !other.0)
59    }
60
61    /// Whether there are no qualifiers at all.
62    #[inline]
63    #[must_use]
64    pub const fn is_none(self) -> bool {
65        self.0 == 0
66    }
67}
68
69/// The standard integer types, the character types kept apart from them, and `__int128`.
70///
71/// `Char` is its own kind rather than an alias for one of the other two. The standard makes
72/// plain `char` a third type distinct from both `signed char` and `unsigned char` even though
73/// it has the same range as one of them, and a compiler that folds it into whichever one the
74/// target picked gets `char *` and `signed char *` wrongly deemed compatible.
75///
76/// `__int128` is here rather than modelled as a `_BitInt(128)`, because the two are different
77/// types with different layouts: `__int128` is sixteen bytes aligned to sixteen on every
78/// target we have, and `_BitInt(128)` is aligned to its granule, which is eight on x86-64. It
79/// is available everywhere for us, since all three architectures are 64-bit, and GCC has it
80/// on every 64-bit target. It is deliberately not an extended integer type in the sense the
81/// standard means, which is what keeps `intmax_t` sixty four bits wide the way GCC has it.
82#[derive(Debug, Clone, Copy, PartialEq, Eq, Hash, PartialOrd, Ord)]
83pub enum IntKind {
84    /// `char`, whose signedness is a target property.
85    Char,
86    /// `signed char`.
87    SChar,
88    /// `unsigned char`.
89    UChar,
90    /// `short`.
91    Short,
92    /// `unsigned short`.
93    UShort,
94    /// `int`.
95    Int,
96    /// `unsigned int`.
97    UInt,
98    /// `long`, the width that separates LP64 from Windows LLP64.
99    Long,
100    /// `unsigned long`.
101    ULong,
102    /// `long long`.
103    LongLong,
104    /// `unsigned long long`.
105    ULongLong,
106    /// `__int128`.
107    Int128,
108    /// `unsigned __int128`.
109    UInt128,
110}
111
112impl IntKind {
113    /// Every integer kind, in rank order, with `__int128` last.
114    ///
115    /// The order is what the internal index agrees with, and it is also the order the standard
116    /// walks when it picks the type of an integer constant, so a table walk over the candidate
117    /// list for a suffix is a walk over a slice of this. `__int128` is at the end because that
118    /// is where GCC reaches for it: after every standard type has been tried and none of them
119    /// was wide enough.
120    pub const ALL: [IntKind; 13] = [
121        IntKind::Char,
122        IntKind::SChar,
123        IntKind::UChar,
124        IntKind::Short,
125        IntKind::UShort,
126        IntKind::Int,
127        IntKind::UInt,
128        IntKind::Long,
129        IntKind::ULong,
130        IntKind::LongLong,
131        IntKind::ULongLong,
132        IntKind::Int128,
133        IntKind::UInt128,
134    ];
135
136    /// A dense index, so that one of these can select a slot in a fixed size array.
137    pub(crate) const fn index(self) -> usize {
138        match self {
139            IntKind::Char => 0,
140            IntKind::SChar => 1,
141            IntKind::UChar => 2,
142            IntKind::Short => 3,
143            IntKind::UShort => 4,
144            IntKind::Int => 5,
145            IntKind::UInt => 6,
146            IntKind::Long => 7,
147            IntKind::ULong => 8,
148            IntKind::LongLong => 9,
149            IntKind::ULongLong => 10,
150            IntKind::Int128 => 11,
151            IntKind::UInt128 => 12,
152        }
153    }
154
155    /// Whether this type is signed, given what the target says about plain `char`.
156    ///
157    /// The argument is there because `char` is the one integer type whose signedness is not
158    /// in the standard. It is signed on x86-64 and unsigned on AArch64 Linux, and a compiler
159    /// that assumes either one is the source of a whole genre of bug report.
160    #[must_use]
161    pub const fn is_signed(self, char_is_signed: bool) -> bool {
162        match self {
163            IntKind::Char => char_is_signed,
164            IntKind::SChar
165            | IntKind::Short
166            | IntKind::Int
167            | IntKind::Long
168            | IntKind::LongLong
169            | IntKind::Int128 => true,
170            IntKind::UChar
171            | IntKind::UShort
172            | IntKind::UInt
173            | IntKind::ULong
174            | IntKind::ULongLong
175            | IntKind::UInt128 => false,
176        }
177    }
178
179    /// The integer conversion rank, as an ordering rather than as a number from the standard.
180    ///
181    /// The standard gives no values, only a set of relations, and every one of them is a
182    /// comparison between two ranks. Signed and unsigned of the same width share a rank, which
183    /// is what makes the usual arithmetic conversions between them pick the unsigned type
184    /// rather than the wider one.
185    #[must_use]
186    pub const fn rank(self) -> u8 {
187        match self {
188            IntKind::Char | IntKind::SChar | IntKind::UChar => 1,
189            IntKind::Short | IntKind::UShort => 2,
190            IntKind::Int | IntKind::UInt => 3,
191            IntKind::Long | IntKind::ULong => 4,
192            IntKind::LongLong | IntKind::ULongLong => 5,
193            // Above `long long`, which is what makes `__int128 + unsigned long long` an
194            // `__int128` rather than an unsigned type. Both compilers agree.
195            IntKind::Int128 | IntKind::UInt128 => 6,
196        }
197    }
198
199    /// The same width with the other signedness.
200    ///
201    /// `char` maps to `unsigned char` and back to `signed char`, which is the mapping the
202    /// usual arithmetic conversions need and is not a round trip. That asymmetry is the type
203    /// system telling the truth: there is no way back to plain `char` from either of the
204    /// other two.
205    #[must_use]
206    pub const fn flip_sign(self) -> IntKind {
207        match self {
208            IntKind::Char | IntKind::SChar => IntKind::UChar,
209            IntKind::UChar => IntKind::SChar,
210            IntKind::Short => IntKind::UShort,
211            IntKind::UShort => IntKind::Short,
212            IntKind::Int => IntKind::UInt,
213            IntKind::UInt => IntKind::Int,
214            IntKind::Long => IntKind::ULong,
215            IntKind::ULong => IntKind::Long,
216            IntKind::LongLong => IntKind::ULongLong,
217            IntKind::ULongLong => IntKind::LongLong,
218            IntKind::Int128 => IntKind::UInt128,
219            IntKind::UInt128 => IntKind::Int128,
220        }
221    }
222
223    /// How the type is spelled in a diagnostic.
224    #[must_use]
225    pub const fn as_str(self) -> &'static str {
226        match self {
227            IntKind::Char => "char",
228            IntKind::SChar => "signed char",
229            IntKind::UChar => "unsigned char",
230            IntKind::Short => "short",
231            IntKind::UShort => "unsigned short",
232            IntKind::Int => "int",
233            IntKind::UInt => "unsigned int",
234            IntKind::Long => "long",
235            IntKind::ULong => "unsigned long",
236            IntKind::LongLong => "long long",
237            IntKind::ULongLong => "unsigned long long",
238            IntKind::Int128 => "__int128",
239            IntKind::UInt128 => "unsigned __int128",
240        }
241    }
242}
243
244/// The real floating types.
245///
246/// Nine of them, which is three standard ones and six from C23 Annex H. The interchange types
247/// `_Float16`, `_Float32`, `_Float64` and `_Float128` name an IEEE format outright, and the
248/// extended types `_Float32x` and `_Float64x` name whatever the target has that is wider than
249/// the interchange type they are named after, which makes `_Float64x` the x87 format on x86 and
250/// quad precision on AArch64. None of them is the standard type it shares a format with:
251/// `_Float64` and `double` are both binary64 and are two types, which `_Generic` can tell apart
252/// and which decides what `_Float64 + double` is.
253///
254/// `_Float128x` is a type no target gcc supports has, so it is not here. The decimal floating
255/// types from C23 are deferred past 1.0 by `spec/19-open-questions.md` and are deliberately
256/// absent rather than present and unimplemented.
257#[derive(Debug, Clone, Copy, PartialEq, Eq, Hash, PartialOrd, Ord)]
258pub enum FloatKind {
259    /// `_Float16`, always the binary16 format.
260    Float16,
261    /// `float`, always the binary32 format.
262    Float,
263    /// `_Float32`, always the binary32 format, and not the same type as `float`.
264    Float32,
265    /// `double`, always the binary64 format.
266    Double,
267    /// `_Float32x`, the format the target has that is wider than `_Float32`, which is binary64
268    /// everywhere this compiles for.
269    Float32x,
270    /// `_Float64`, always the binary64 format, and not the same type as `double`.
271    Float64,
272    /// `long double`, whose format is a target property and is not always distinct from
273    /// `double`. It is 80 bits of x87 on SysV x86-64, quad precision on AArch64 Linux, and
274    /// the same as `double` on Apple and Windows.
275    LongDouble,
276    /// `_Float64x`, the format the target has that is wider than `_Float64`. That is the x87
277    /// eighty bit format on x86-64 and quad precision on AArch64 and RISC-V, and unlike
278    /// `long double` it does not become a `double` on Apple or on Windows.
279    Float64x,
280    /// `_Float128`, always the binary128 format.
281    Float128,
282}
283
284impl FloatKind {
285    /// Every real floating type, in the order they are written above.
286    ///
287    /// Not in rank order, because there is no such order to put them in: which of `long double`
288    /// and `_Float64x` is the wider one is a question about the target, and on Apple the answer
289    /// is the second.
290    pub const ALL: [FloatKind; 9] = [
291        FloatKind::Float16,
292        FloatKind::Float,
293        FloatKind::Float32,
294        FloatKind::Double,
295        FloatKind::Float32x,
296        FloatKind::Float64,
297        FloatKind::LongDouble,
298        FloatKind::Float64x,
299        FloatKind::Float128,
300    ];
301
302    /// A dense index, so that one of these can select a slot in a fixed size array.
303    pub(crate) const fn index(self) -> usize {
304        match self {
305            FloatKind::Float16 => 0,
306            FloatKind::Float => 1,
307            FloatKind::Float32 => 2,
308            FloatKind::Double => 3,
309            FloatKind::Float32x => 4,
310            FloatKind::Float64 => 5,
311            FloatKind::LongDouble => 6,
312            FloatKind::Float64x => 7,
313            FloatKind::Float128 => 8,
314        }
315    }
316
317    /// What decides between two of these when they have the same format.
318    ///
319    /// Two real floating types can be the same format and still be two types, and then the
320    /// format cannot say which of them an operation on both of them produces. C23 answers with
321    /// the family first: an interchange type wins over the standard type it shares a format
322    /// with, and the standard type wins over an extended one, so `double + _Float64` is a
323    /// `_Float64` and `double + _Float32x` is a `double`. Inside a family it is the usual order,
324    /// which only ever comes up between `double` and `long double` on the targets where the
325    /// second one is the first one.
326    ///
327    /// Higher wins. This is not an ordering on the types on its own, because it says nothing
328    /// about the formats: `_Float32` sits above `long double` here and loses to it everywhere it
329    /// meets it.
330    #[must_use]
331    pub const fn tie_break(self) -> u8 {
332        match self {
333            FloatKind::Float32x => 0,
334            FloatKind::Float64x => 1,
335            FloatKind::Float => 4,
336            FloatKind::Double => 5,
337            FloatKind::LongDouble => 6,
338            FloatKind::Float16 => 8,
339            FloatKind::Float32 => 9,
340            FloatKind::Float64 => 10,
341            FloatKind::Float128 => 11,
342        }
343    }
344
345    /// How the type is spelled in a diagnostic.
346    #[must_use]
347    pub const fn as_str(self) -> &'static str {
348        match self {
349            FloatKind::Float16 => "_Float16",
350            FloatKind::Float => "float",
351            FloatKind::Float32 => "_Float32",
352            FloatKind::Double => "double",
353            FloatKind::Float32x => "_Float32x",
354            FloatKind::Float64 => "_Float64",
355            FloatKind::LongDouble => "long double",
356            FloatKind::Float64x => "_Float64x",
357            FloatKind::Float128 => "_Float128",
358        }
359    }
360}
361
362/// How many elements an array has, which is four different answers in C.
363#[derive(Debug, Clone, Copy, PartialEq, Eq, Hash, PartialOrd, Ord)]
364pub enum ArrayLen {
365    /// `int a[4]`. The count of elements, not the size in bytes.
366    Fixed(u64),
367    /// `int a[]`, an incomplete array type. It has an element type and no size, and it is
368    /// completed by an initializer or by a later declaration.
369    Unknown,
370    /// `int a[*]`, a variably modified type in a prototype, where the size exists but is not
371    /// available to the declaration that mentions it.
372    Star,
373    /// `int a[n]`, a variable length array. The size expression stays in the AST, and the
374    /// type carries only the identity of the one that made it, because two variable length
375    /// arrays written with the same element type are still distinct types.
376    Variable(VlaId),
377}
378
379/// The identity of one variable length array's size expression.
380///
381/// An opaque number handed out by whoever is building the type, which in practice is
382/// semantic analysis walking a declarator. This crate never looks inside it; it is here so
383/// that interning two variable length arrays does not accidentally make them the same type.
384#[derive(Debug, Clone, Copy, PartialEq, Eq, Hash, PartialOrd, Ord)]
385pub struct VlaId(pub u32);
386
387/// Whether a record is a `struct` or a `union`.
388#[derive(Debug, Clone, Copy, PartialEq, Eq, Hash, PartialOrd, Ord)]
389pub enum RecordKind {
390    /// `struct`, whose members are laid out one after another.
391    Struct,
392    /// `union`, whose members all start at offset zero.
393    Union,
394}
395
396impl RecordKind {
397    /// How the keyword is spelled in a diagnostic.
398    #[must_use]
399    pub const fn as_str(self) -> &'static str {
400        match self {
401            RecordKind::Struct => "struct",
402            RecordKind::Union => "union",
403        }
404    }
405}
406
407/// What a type is, with its qualifiers stripped off into [`Type::quals`].
408///
409/// This is `Copy` and sixteen bytes, which is what lets it be the interning key directly.
410/// Function types and record types are the two that carry a variable amount of information,
411/// and both of them are an index into a table this crate owns.
412#[derive(Debug, Clone, Copy, PartialEq, Eq, Hash)]
413pub enum TypeKind {
414    /// `void`.
415    Void,
416    /// `bool`, which C23 spells without an underscore and which is one byte with two values.
417    Bool,
418    /// One of the standard integer types.
419    Int(IntKind),
420    /// One of the real floating types.
421    Float(FloatKind),
422    /// `_Complex T` for a real floating `T`.
423    Complex(FloatKind),
424    /// `_BitInt(N)` and `unsigned _BitInt(N)`.
425    ///
426    /// A distinct kind rather than an integer type with a width, because these do not take
427    /// part in the integer promotions and folding them in with the standard types is how
428    /// that rule gets forgotten.
429    BitInt {
430        /// Whether the type is signed. A signed `_BitInt(1)` is legal and holds `0` and `-1`.
431        signed: bool,
432        /// The declared width in bits, which is what the standard calls `N`.
433        width: u32,
434    },
435    /// A pointer to the given type.
436    Pointer(TypeId),
437    /// `_Atomic(T)`, which is a type and not a qualifier. See [`Qualifiers`].
438    Atomic(TypeId),
439    /// An array of the given element type.
440    Array {
441        /// The element type.
442        elem: TypeId,
443        /// How many of them there are, which may be unknown.
444        len: ArrayLen,
445    },
446    /// A function type, whose parameter list is in this crate's side table.
447    Function(FunctionId),
448    /// A GNU vector type, `__attribute__((vector_size(n)))`.
449    Vector {
450        /// The element type, which must be a scalar.
451        elem: TypeId,
452        /// How many elements there are.
453        len: u32,
454    },
455    /// A `struct` or `union`, identified by its declaration rather than by its members.
456    Record(RecordId),
457    /// An `enum`, identified by its declaration.
458    Enum(EnumId),
459    /// A typedef name, which is sugar over whatever it was declared as.
460    ///
461    /// Every semantic decision reads [`Types::canonical`](crate::Types::canonical) and never
462    /// sees this; every diagnostic reads the type as written and sees nothing else, so the
463    /// error says `size_t` rather than `unsigned long`. Compilers that drop the sugar produce
464    /// messages nobody can act on, and compilers that decide on the sugar produce wrong
465    /// answers, and both are common.
466    Typedef {
467        /// The name, for printing.
468        name: Symbol,
469        /// What it was declared as.
470        underlying: TypeId,
471        /// What `__attribute__((aligned(n)))` on the typedef asked an object of it to be
472        /// aligned to, and [`None`] when it asked for nothing.
473        ///
474        /// The one thing a typedef changes about the type behind it, and the reason the
475        /// alignment is on this node rather than in a table beside it: two typedefs of one
476        /// underlying type that ask for different alignments are two types, so the alignment
477        /// has to be part of what the table interns them by.
478        ///
479        /// It is what the type is aligned to and not a floor on it. Written on a declaration
480        /// the attribute only ever raises, and written on a typedef GCC lets it lower as well,
481        /// so `typedef int L __attribute__((aligned(2)))` really is an `int` at a multiple of
482        /// two and `struct { char c; L x; }` really is six bytes.
483        align: Option<NonZeroU32>,
484    },
485}
486
487/// A type with its qualifiers, which together are one entry in the type table.
488#[derive(Debug, Clone, Copy, PartialEq, Eq, Hash)]
489pub struct Type {
490    /// What the type is.
491    pub kind: TypeKind,
492    /// What it is qualified with.
493    pub quals: Qualifiers,
494}
495
496impl Type {
497    /// An unqualified type of the given kind.
498    #[must_use]
499    pub const fn new(kind: TypeKind) -> Type {
500        Type { kind, quals: Qualifiers::NONE }
501    }
502}
503
504/// The identity of a function type in [`Types`](crate::Types).
505///
506/// Deduplicated by content, so two declarations written with the same return type, the same
507/// parameters and the same variadic flag share one of these and therefore one [`TypeId`].
508#[derive(Debug, Clone, Copy, PartialEq, Eq, Hash, PartialOrd, Ord)]
509pub struct FunctionId(pub(crate) u32);
510
511/// The identity of a `struct` or `union` declaration in [`Types`](crate::Types).
512///
513/// Not deduplicated by content, because record types in C are nominal. Two `struct` types
514/// written with the same members in the same translation unit are different types, and the
515/// looser relation that does hold between them is compatibility rather than identity.
516#[derive(Debug, Clone, Copy, PartialEq, Eq, Hash, PartialOrd, Ord)]
517pub struct RecordId(pub(crate) u32);
518
519/// The identity of an `enum` declaration in [`Types`](crate::Types).
520#[derive(Debug, Clone, Copy, PartialEq, Eq, Hash, PartialOrd, Ord)]
521pub struct EnumId(pub(crate) u32);
522
523/// A function type.
524#[derive(Debug, Clone, PartialEq, Eq, Hash)]
525pub struct FunctionType {
526    /// What it returns.
527    pub ret: TypeId,
528    /// The parameter types, after the adjustments a parameter declaration gets: an array
529    /// parameter has already decayed to a pointer and a function parameter to a function
530    /// pointer, because those adjustments are part of forming the type and not part of
531    /// calling it.
532    pub params: Vec<TypeId>,
533    /// Whether the list ends in `...`.
534    pub variadic: bool,
535    /// Whether there was a prototype at all.
536    ///
537    /// `int f()` declares an unprototyped function before C23 and a function taking no
538    /// arguments from C23 onwards, and the difference is visible in what calls are checked
539    /// and in what the composite type of a redeclaration is. The dialect decides which
540    /// meaning `()` gets, and this records the decision rather than repeating it.
541    pub prototyped: bool,
542}