Skip to main content

rucc_types/
lib.rs

1//! The C type system, interned, and layout computation.
2//!
3//! Design: `spec/07-types-and-semantics.md`. Layer rank 3, see `spec/18-package-layout.md`.
4//!
5//! There is one [`Types`] per translation unit and it owns every type in it. A [`TypeId`] is
6//! four bytes and two of them are equal exactly when they are the same type, which turns the
7//! question the compiler asks more often than any other into an integer comparison.
8//!
9//! Two ideas shape the rest of it.
10//!
11//! **Sugar is kept and never decided on.** `typedef int32_t;` gives a node that remembers the
12//! name and points at canonical `int`. Every semantic rule reads [`Types::canonical`] and sees
13//! `int`; every diagnostic reads the type as it was written and says `int32_t`. Compilers that
14//! throw the name away produce messages nobody can act on, and compilers that decide on the
15//! name produce wrong answers, and both are common. Sugar is not only at the outermost node,
16//! so `int32_t *` and `int32_t[4]` are sugar too and canonicalising rebuilds them.
17//!
18//! **`_Atomic` is a type, not a qualifier.** `const` and `volatile` and `restrict` are a
19//! bitmask in the interning key, because nothing about them changes what an object is. C lets
20//! `_Atomic` be written in the same position, but `_Atomic(T)` can have a different alignment
21//! from `T`, so it is a type constructor here and the parser is what maps the spelling onto
22//! it. Document 01 recorded a compiler that treated it as a qualifier and lost track of it,
23//! which is exactly the shortcut that makes atomics silently wrong.
24//!
25//! Layout comes out of [`TargetInfo`](rucc_target::TargetInfo) and never out of the host.
26//! `long` is four bytes on Windows and eight on Linux, and `long double` is eight bytes on
27//! Apple and sixteen on SysV x86-64, so a cross compiler that asks its own platform is wrong
28//! twice before it has read a line of C.
29//!
30//! ```
31//! use rucc_target::{TargetInfo, Triple};
32//! use rucc_types::{IntKind, Types, layout};
33//!
34//! let mut types = Types::new();
35//! let linux = TargetInfo::new("x86_64-unknown-linux-gnu".parse::<Triple>().unwrap());
36//! let windows = TargetInfo::new("x86_64-pc-windows-msvc".parse::<Triple>().unwrap());
37//!
38//! let long = types.int(IntKind::Long);
39//! assert_eq!(layout(&types, long, &linux).unwrap().size, 8);
40//! assert_eq!(layout(&types, long, &windows).unwrap().size, 4);
41//! ```
42//!
43//! Records are laid out by [`layout_record`], which takes the members and gives back their
44//! offsets, and the result is handed to [`Types::complete_record`] so that the record then has
45//! a size like any other type. Bit-fields, `packed`, `#pragma pack`, `aligned`, zero width
46//! bit-fields and flexible array members are all in there, and every one of their rules was
47//! measured against gcc and clang rather than read off a document.
48//!
49//! [`promote`] and [`usual_arithmetic`] are 6.3.1.1 and 6.3.1.8, the rules that decide what
50//! type an arithmetic expression has. Their answers were read out of gcc and clang with
51//! `_Generic` naming the type of every interesting pair, which is also how the C23 changes were
52//! pinned down: `_BitInt` does not promote, and an enumeration promotes through whatever it is
53//! represented in.
54//!
55//! `__int128` is one of the integer kinds rather than a `_BitInt(128)` in disguise. The two are
56//! different types: `__int128` is sixteen bytes aligned to sixteen everywhere, `_BitInt(128)` is
57//! aligned to its granule, and `__int128` outranks `long long` where a `_BitInt` is ranked by
58//! width alone. It is available on every target here, because all three architectures are
59//! 64-bit and GCC has it on every 64-bit target it supports.
60//!
61//! [`compatible`] and [`composite`] are 6.2.7, the relation that decides whether two
62//! declarations of one name are talking about the same thing and the type that is left when they
63//! are. Identity is not that relation: `int f(int a[3])` and `int f(int *a)` are different types
64//! and the same function. The composite is what a caller merging two declarations should keep,
65//! because it is the only one of the three types in play that knows both the array size and the
66//! parameter list.
67//!
68//! # Status
69//!
70//! The type universe, the interner, the canonical and sugar split, the qualifier rules, layout
71//! with records included, the arithmetic conversions, compatibility with the composite type, and
72//! [`spell`], which writes a type back as the C declaration it is, are implemented.
73//!
74//! Not here yet, and named so that the gap is not mistaken for a decision: the decimal floating
75//! types.
76//!
77//! Every crate in the workspace is published, and publishing implies a promise. This one is
78//! tier 3: its Rust API is explicitly unstable and will change without a major version bump.
79//! Depend on the `rucc` binary's behaviour, not on this.
80
81#![doc(html_root_url = "https://docs.rs/rucc-types/0.9.2")]
82
83mod classify;
84mod compat;
85mod convert;
86mod granule;
87mod kind;
88mod layout;
89mod print;
90mod record;
91mod types;
92
93pub use crate::classify::{
94    element, is_aggregate, is_arithmetic, is_array, is_atomic, is_complete, is_complex,
95    is_floating, is_function, is_integer, is_modifiable, is_object, is_pointer, is_real,
96    is_real_floating, is_record, is_scalar, is_vector, is_void, lanes, pointee,
97};
98pub use crate::compat::{adjust_parameter, compatible, composite};
99pub use crate::convert::{
100    mask_of, promote, promote_bit_field, usual_arithmetic, vectors_convertible,
101};
102pub use crate::granule::{GRANULE, Keying, Tally, measure, measure_all, report as granule_report};
103pub use crate::kind::{
104    ArrayLen, EnumId, FloatKind, FunctionId, FunctionType, IntKind, Qualifiers, RecordId,
105    RecordKind, Type, TypeKind, VlaId,
106};
107pub use crate::layout::{
108    IntegerInfo, Layout, LayoutError, float_format, float_width, int_width, integer_info, layout,
109};
110pub use crate::print::{declare, spell};
111pub use crate::record::{
112    Field, FieldDecl, RecordError, RecordLayout, RecordOptions, layout_record,
113};
114pub use crate::types::{EnumInfo, RecordInfo, TypeId, Types};
115
116/// The milestone in `spec/17-milestones.md` that fills this crate in.
117pub const MILESTONE: &str = "M2";
118
119#[cfg(test)]
120mod tests {
121    use std::num::NonZeroU32;
122
123    use rucc_base::{Interner, Symbol};
124    use rucc_target::{TargetInfo, Triple};
125
126    use super::*;
127
128    fn target(triple: &str) -> TargetInfo {
129        TargetInfo::new(triple.parse::<Triple>().expect("a triple the compiler supports"))
130    }
131
132    fn linux() -> TargetInfo {
133        target("x86_64-unknown-linux-gnu")
134    }
135
136    /// The one target in the table that runs Microsoft's bit-field rule. So does
137    /// `x86_64-pc-windows-gnu`, and the tests below say so where it matters, because a rule keyed
138    /// on the environment rather than on the operating system would pass every one of them.
139    fn windows() -> TargetInfo {
140        target("x86_64-pc-windows-msvc")
141    }
142
143    /// AAPCS64 proper, where an unnamed bit-field raises the record's alignment. Apple's AArch64
144    /// dropped that, so `aarch64-apple-darwin` answers the way x86-64 does and is the pair to
145    /// this one wherever the difference is being measured.
146    fn aapcs() -> TargetInfo {
147        target("aarch64-unknown-linux-gnu")
148    }
149
150    /// Lays out a record with no attributes on it, on x86-64 Linux.
151    fn lay_out(types: &Types, kind: RecordKind, fields: &[FieldDecl]) -> RecordLayout {
152        lay_out_on(&linux(), types, kind, fields)
153    }
154
155    /// Lays out a record with no attributes on it, on a named target.
156    fn lay_out_on(
157        target: &TargetInfo,
158        types: &Types,
159        kind: RecordKind,
160        fields: &[FieldDecl],
161    ) -> RecordLayout {
162        layout_record(types, kind, fields, &RecordOptions::default(), target)
163            .expect("a record every member of which has a layout")
164    }
165
166    /// The offsets of the members, in bits, which is what a measurement of a real compiler
167    /// gives back once its byte offsets and its bit dumps are put together.
168    fn offsets(laid_out: &RecordLayout) -> Vec<u128> {
169        laid_out.fields.iter().map(Field::bit_offset).collect()
170    }
171
172    /// A complete record type built out of the given members.
173    fn record(types: &mut Types, kind: RecordKind, fields: &[FieldDecl]) -> TypeId {
174        let id = types.declare_record(kind, None);
175        let laid_out = lay_out(types, kind, fields);
176        types.complete_record(id, laid_out);
177        types.record(id)
178    }
179
180    /// An ordinary member of the given type, unnamed, which is all most of these tests need.
181    fn member(ty: TypeId) -> FieldDecl {
182        FieldDecl::new(None, ty)
183    }
184
185    /// A named bit-field, which is what a measurement of a real compiler has to use to be able
186    /// to read the field back.
187    fn bits(interner: &mut Interner, name: &str, ty: TypeId, width: u32) -> FieldDecl {
188        FieldDecl::bit_field(Some(interner.intern(name)), ty, width)
189    }
190
191    /// An unnamed bit-field, which occupies bits and raises nothing.
192    fn unnamed_bits(ty: TypeId, width: u32) -> FieldDecl {
193        FieldDecl::bit_field(None, ty, width)
194    }
195
196    #[test]
197    fn milestone_is_recorded() {
198        assert!(MILESTONE.starts_with('M'));
199    }
200
201    #[test]
202    fn an_integer_type_answers_with_the_width_of_its_value_and_not_of_its_object() {
203        let mut interner = Interner::new();
204        let mut types = Types::new();
205        let target = linux();
206
207        // A `bool` is one byte and holds one bit, and a `_BitInt(37)` is eight bytes and holds
208        // thirty seven. Folding a constant in the size rather than the width gets both wrong.
209        let boolean = types.boolean();
210        let bits = types.bit_int(true, 37);
211        // Through the sugar, the qualifiers and `_Atomic`, none of which is part of a value.
212        let short = types.int(IntKind::Short);
213        let alias = types.typedef(interner.intern("word"), short);
214        let unsigned_char = types.int(IntKind::UChar);
215        let atomic = types.atomic(unsigned_char);
216
217        let shape = |ty| integer_info(&types, ty, &target).expect("an integer type");
218        assert_eq!(shape(boolean), IntegerInfo::new(false, 1));
219        assert_eq!(shape(bits), IntegerInfo::new(true, 37));
220        assert_eq!(shape(types.int(IntKind::Int)), IntegerInfo::new(true, 32));
221        assert_eq!(shape(types.int(IntKind::ULong)), IntegerInfo::new(false, 64));
222        assert_eq!(shape(alias), IntegerInfo::new(true, 16));
223        assert_eq!(shape(atomic), IntegerInfo::new(false, 8));
224
225        assert_eq!(integer_info(&types, types.float(FloatKind::Double), &target), None);
226    }
227
228    #[test]
229    fn an_enumeration_answers_with_the_type_the_enumerators_are_kept_in() {
230        let mut interner = Interner::new();
231        let mut types = Types::new();
232        let target = linux();
233
234        // An enumeration that has not been completed has no underlying type yet, and the answer
235        // is that there is no answer rather than a guess at `int` that a later `: long` unsays.
236        let colour = types.declare_enum(Some(interner.intern("colour")));
237        let ty = types.enumeration(colour);
238        assert_eq!(integer_info(&types, ty, &target), None);
239
240        let underlying = types.int(IntKind::ULong);
241        types.complete_enum(colour, underlying, true);
242        assert_eq!(integer_info(&types, ty, &target), Some(IntegerInfo::new(false, 64)));
243    }
244
245    #[test]
246    fn a_value_stored_in_an_integer_type_keeps_the_bits_the_type_has_room_for() {
247        let char_type = IntegerInfo::new(true, 8);
248        assert_eq!(char_type.wrap(300), 44);
249        assert!(!char_type.holds(300));
250        assert!(char_type.holds(-128));
251
252        assert_eq!(IntegerInfo::new(false, 32).wrap(-1), 4_294_967_295);
253        assert_eq!(IntegerInfo::new(false, 8).wrap(-1), 255);
254
255        // Every pattern is a value of a hundred and twenty eight bit type, of either signedness,
256        // which is what stops the folding from inventing an overflow at the widest type there is.
257        assert!(IntegerInfo::new(false, 128).holds(i128::MIN));
258        assert!(IntegerInfo::new(true, 128).holds(i128::MIN));
259        assert_eq!(IntegerInfo::new(true, 128).wrap(i128::MAX), i128::MAX);
260    }
261
262    #[test]
263    fn a_long_double_has_a_format_the_size_does_not_give_away() {
264        let target = linux();
265        // Sixteen bytes on SysV x86-64 and eighty bits of x87 inside them. A compiler that
266        // picked the format by the size would fold every one of those constants too finely.
267        assert_eq!(float_width(FloatKind::LongDouble, &target), 128);
268        assert_eq!(
269            float_format(FloatKind::LongDouble, &target),
270            rucc_base::float::Format::X87Extended
271        );
272        assert_eq!(float_format(FloatKind::Float, &target), rucc_base::float::Format::Single);
273    }
274
275    #[test]
276    fn an_interchange_type_names_a_format_and_an_extended_one_names_the_target() {
277        use rucc_base::float::Format;
278
279        // The four `_FloatN` types are the same format everywhere, which is the point of them,
280        // so a program that wants binary128 can say so and get it or get told it cannot.
281        for target in [&linux(), &target("aarch64-apple-darwin")] {
282            assert_eq!(float_format(FloatKind::Float16, target), Format::Half);
283            assert_eq!(float_format(FloatKind::Float32, target), Format::Single);
284            assert_eq!(float_format(FloatKind::Float64, target), Format::Double);
285            assert_eq!(float_format(FloatKind::Float128, target), Format::Quad);
286            assert_eq!(float_width(FloatKind::Float16, target), 16);
287            assert_eq!(float_width(FloatKind::Float32, target), 32);
288            assert_eq!(float_width(FloatKind::Float64, target), 64);
289            assert_eq!(float_width(FloatKind::Float128, target), 128);
290            // `_Float32x` is `double` on every target this compiles for.
291            assert_eq!(float_format(FloatKind::Float32x, target), Format::Double);
292        }
293
294        // `_Float64x` is the one that moves, and it moves with the processor rather than with
295        // the operating system, so it stays eighty bits of x87 on x86-64 where `long double`
296        // is the same thing and is quad on Apple where `long double` is only a `double`.
297        let x86 = linux();
298        assert_eq!(float_format(FloatKind::Float64x, &x86), Format::X87Extended);
299        assert_eq!(float_format(FloatKind::LongDouble, &x86), Format::X87Extended);
300        let mac = target("aarch64-apple-darwin");
301        assert_eq!(float_format(FloatKind::Float64x, &mac), Format::Quad);
302        assert_eq!(float_format(FloatKind::LongDouble, &mac), Format::Double);
303        // Sixteen bytes either way, because the x87 eighty bits are stored padded, which is
304        // the same reason `long double` is sixteen bytes on x86-64 and not ten.
305        assert_eq!(float_width(FloatKind::Float64x, &x86), 128);
306        assert_eq!(float_width(FloatKind::Float64x, &mac), 128);
307    }
308
309    #[test]
310    fn every_floating_type_is_as_wide_as_the_format_it_is_stored_in() {
311        let types = Types::new();
312        let sizes = |target: &TargetInfo| -> Vec<(u64, u64)> {
313            FloatKind::ALL
314                .iter()
315                .map(|&kind| {
316                    let found = layout(&types, types.float(kind), target).expect("a complete type");
317                    (found.size, found.align)
318                })
319                .collect()
320        };
321        // Read off gcc 16 with `sizeof` and `_Alignof`, in the order of `FloatKind::ALL`. The
322        // two targets differ in one place, which is `long double`, and the eighty bit x87 value
323        // that `long double` and `_Float64x` hold on x86-64 takes sixteen bytes to store.
324        assert_eq!(
325            sizes(&linux()),
326            [(2, 2), (4, 4), (4, 4), (8, 8), (8, 8), (8, 8), (16, 16), (16, 16), (16, 16)]
327        );
328        assert_eq!(
329            sizes(&target("aarch64-apple-darwin")),
330            [(2, 2), (4, 4), (4, 4), (8, 8), (8, 8), (8, 8), (8, 8), (16, 16), (16, 16)]
331        );
332    }
333
334    #[test]
335    fn every_floating_type_has_a_slot_of_its_own_and_a_name_of_its_own() {
336        // Nine types and nine ids, which is what makes `_Float64` and `double` two types that
337        // `_Generic` can tell apart rather than one type with two spellings.
338        let types = Types::new();
339        let mut seen = Vec::new();
340        for kind in FloatKind::ALL {
341            seen.push(types.float(kind));
342        }
343        let mut sorted = seen.clone();
344        sorted.sort_unstable();
345        sorted.dedup();
346        assert_eq!(sorted.len(), seen.len(), "two floating types share an id");
347
348        let names: Vec<&str> = FloatKind::ALL.iter().map(|kind| kind.as_str()).collect();
349        assert_eq!(
350            names,
351            [
352                "_Float16",
353                "float",
354                "_Float32",
355                "double",
356                "_Float32x",
357                "_Float64",
358                "long double",
359                "_Float64x",
360                "_Float128",
361            ]
362        );
363    }
364
365    #[test]
366    fn the_same_type_asked_for_twice_is_the_same_id() {
367        let mut types = Types::new();
368        let a = types.pointer(types.int(IntKind::Int));
369        let b = types.pointer(types.int(IntKind::Int));
370        assert_eq!(a, b, "interning is what makes type identity an integer comparison");
371        let c = types.pointer(types.int(IntKind::Long));
372        assert_ne!(a, c);
373    }
374
375    #[test]
376    fn a_qualifier_makes_a_different_type_with_the_same_shape() {
377        let mut types = Types::new();
378        let int = types.int(IntKind::Int);
379        let konst = types.qualified(int, Qualifiers::CONST);
380        assert_ne!(int, konst);
381        assert_eq!(types.kind(konst), types.kind(int));
382        assert!(types.quals(konst).has(Qualifiers::CONST));
383        assert_eq!(types.unqualified(konst), int);
384    }
385
386    #[test]
387    fn qualifiers_accumulate_and_do_not_depend_on_the_order_they_were_written() {
388        let mut types = Types::new();
389        let int = types.int(IntKind::Int);
390        let a = types.qualified(int, Qualifiers::CONST);
391        let a = types.qualified(a, Qualifiers::VOLATILE);
392        let b = types.qualified(int, Qualifiers::VOLATILE);
393        let b = types.qualified(b, Qualifiers::CONST);
394        assert_eq!(a, b, "`const volatile int` and `volatile const int` are one type");
395    }
396
397    #[test]
398    fn qualifying_an_array_qualifies_its_element() {
399        // 6.7.3p10, and not a shortcut. An array type has no qualifiers of its own, so if this
400        // put the `const` on the array then `const` on an array parameter would mean nothing.
401        let mut types = Types::new();
402        let int = types.int(IntKind::Int);
403        let array = types.array(int, ArrayLen::Fixed(4));
404        let konst = types.qualified(array, Qualifiers::CONST);
405        assert!(types.quals(konst).is_none(), "the array itself is unqualified");
406        let TypeKind::Array { elem, len } = types.kind(konst) else {
407            panic!("still an array");
408        };
409        assert_eq!(len, ArrayLen::Fixed(4));
410        assert!(types.quals(elem).has(Qualifiers::CONST));
411    }
412
413    #[test]
414    fn a_typedef_is_a_different_type_that_means_the_same_thing() {
415        let mut interner = Interner::new();
416        let mut types = Types::new();
417        let int = types.int(IntKind::Int);
418        let name = types.typedef(interner.intern("int32_t"), int);
419        assert_ne!(name, int, "the sugar survives, so a diagnostic can print it");
420        assert_eq!(types.canonical(name), int, "and no rule ever sees it");
421        assert!(types.is_sugar(name));
422        assert!(!types.is_sugar(int));
423    }
424
425    #[test]
426    fn sugar_below_the_outermost_node_is_resolved_too() {
427        // The bug this is here for: canonicalising only the top node leaves `int32_t *` and
428        // `int *` as different types, and then every rule stated on pointers stops firing.
429        let mut interner = Interner::new();
430        let mut types = Types::new();
431        let int = types.int(IntKind::Int);
432        let name = types.typedef(interner.intern("int32_t"), int);
433        let sugar_pointer = types.pointer(name);
434        let plain_pointer = types.pointer(int);
435        assert_ne!(sugar_pointer, plain_pointer);
436        assert_eq!(types.canonical(sugar_pointer), plain_pointer);
437
438        let sugar_array = types.array(name, ArrayLen::Fixed(3));
439        let plain_array = types.array(int, ArrayLen::Fixed(3));
440        assert_eq!(types.canonical(sugar_array), plain_array);
441    }
442
443    #[test]
444    fn a_typedef_of_a_typedef_canonicalises_all_the_way_down() {
445        let mut interner = Interner::new();
446        let mut types = Types::new();
447        let int = types.int(IntKind::Int);
448        let mut current = int;
449        for i in 0..8 {
450            current = types.typedef(interner.intern(&format!("t{i}")), current);
451        }
452        assert_eq!(types.canonical(current), int);
453    }
454
455    #[test]
456    fn a_typedef_that_asked_for_an_alignment_says_what_it_is_and_not_what_it_is_at_least() {
457        // `__attribute__((aligned(n)))` in this one position replaces the alignment rather than
458        // raising it, which is what lets `typedef int L __attribute__((aligned(2)))` really be an
459        // `int` at a multiple of two. The size is left where it was, which is gcc's answer and the
460        // reason an array of an over aligned typedef is refused rather than padded.
461        let mut interner = Interner::new();
462        let mut types = Types::new();
463        let target = linux();
464        let int = types.int(IntKind::Int);
465        let low = types.aligned_typedef(interner.intern("L"), int, NonZeroU32::new(2).unwrap());
466        let high = types.aligned_typedef(interner.intern("H"), int, NonZeroU32::new(16).unwrap());
467
468        assert_eq!(layout(&types, low, &target), Ok(Layout::new(4, 2)));
469        assert_eq!(layout(&types, high, &target), Ok(Layout::new(4, 16)));
470        // And the type behind them is what it always was, since the alignment belongs to the name
471        // and not to the `int`.
472        assert_eq!(layout(&types, int, &target), Ok(Layout::new(4, 4)));
473
474        // Two names for one type that asked for different alignments are two types, which is why
475        // the alignment is part of what the table interns them by.
476        assert_ne!(low, high);
477
478        // The nearest one wins, because the outer typedef is the one a declaration was written
479        // with, and one that asked for nothing keeps whatever the one below it asked for.
480        let outer = types.aligned_typedef(interner.intern("M"), low, NonZeroU32::new(8).unwrap());
481        assert_eq!(types.align_override(outer), NonZeroU32::new(8));
482        let plain = types.typedef(interner.intern("N"), low);
483        assert_eq!(types.align_override(plain), NonZeroU32::new(2));
484        // Below the sugar there is nothing to find, since only a typedef can carry one of these.
485        assert_eq!(types.align_override(int), None);
486    }
487
488    #[test]
489    fn a_qualified_typedef_keeps_the_name_and_canonicalises_to_the_qualified_type() {
490        let mut interner = Interner::new();
491        let mut types = Types::new();
492        let int = types.int(IntKind::Int);
493        let name = types.typedef(interner.intern("int32_t"), int);
494        let konst = types.qualified(name, Qualifiers::CONST);
495        assert!(matches!(types.kind(konst), TypeKind::Typedef { .. }), "still prints as int32_t");
496        let want = types.qualified(int, Qualifiers::CONST);
497        assert_eq!(types.canonical(konst), want);
498    }
499
500    #[test]
501    fn a_typedef_of_an_array_pushes_a_qualifier_to_the_element_when_it_canonicalises() {
502        // `typedef int A[4]; const A x;` declares an array of `const int`, which is where the
503        // array rule and the sugar rule have to agree with each other.
504        let mut interner = Interner::new();
505        let mut types = Types::new();
506        let int = types.int(IntKind::Int);
507        let array = types.array(int, ArrayLen::Fixed(4));
508        let name = types.typedef(interner.intern("A"), array);
509        let konst = types.qualified(name, Qualifiers::CONST);
510        let konst_int = types.qualified(int, Qualifiers::CONST);
511        let want = types.array(konst_int, ArrayLen::Fixed(4));
512        assert_eq!(types.canonical(konst), want);
513    }
514
515    #[test]
516    fn a_function_type_is_deduplicated_by_its_signature() {
517        let mut types = Types::new();
518        let int = types.int(IntKind::Int);
519        let long = types.int(IntKind::Long);
520        let make = |types: &mut Types, params: Vec<TypeId>, variadic| {
521            types.function(FunctionType { ret: int, params, variadic, prototyped: true })
522        };
523        let a = make(&mut types, vec![int, long], false);
524        let b = make(&mut types, vec![int, long], false);
525        assert_eq!(a, b);
526        assert_ne!(a, make(&mut types, vec![int, long], true), "`...` is part of the type");
527        assert_ne!(a, make(&mut types, vec![long, int], false));
528    }
529
530    #[test]
531    fn a_function_type_written_with_a_typedef_canonicalises_through_its_signature() {
532        let mut interner = Interner::new();
533        let mut types = Types::new();
534        let int = types.int(IntKind::Int);
535        let name = types.typedef(interner.intern("int32_t"), int);
536        let sugar = types.function(FunctionType {
537            ret: name,
538            params: vec![name],
539            variadic: false,
540            prototyped: true,
541        });
542        let plain = types.function(FunctionType {
543            ret: int,
544            params: vec![int],
545            variadic: false,
546            prototyped: true,
547        });
548        assert_ne!(sugar, plain);
549        assert_eq!(types.canonical(sugar), plain);
550    }
551
552    #[test]
553    fn a_record_is_its_declaration_and_not_its_members() {
554        // Two structs written the same way in one translation unit are different types. The
555        // looser relation that does hold between them is compatibility, which is a separate
556        // question from identity and is answered elsewhere.
557        let mut interner = Interner::new();
558        let mut types = Types::new();
559        let tag = interner.intern("point");
560        let first = types.declare_record(RecordKind::Struct, Some(tag));
561        let second = types.declare_record(RecordKind::Struct, Some(tag));
562        assert_ne!(types.record(first), types.record(second));
563        assert_eq!(types.record(first), types.record(first));
564    }
565
566    #[test]
567    fn a_record_has_no_layout_until_it_has_been_completed() {
568        let mut types = Types::new();
569        let id = types.declare_record(RecordKind::Struct, None);
570        let ty = types.record(id);
571        assert_eq!(layout(&types, ty, &linux()), Err(LayoutError::Incomplete));
572        let long_long = types.int(IntKind::LongLong);
573        let laid_out = lay_out(&types, RecordKind::Struct, &[member(long_long); 2]);
574        types.complete_record(id, laid_out);
575        assert_eq!(layout(&types, ty, &linux()).unwrap(), Layout::new(16, 8));
576    }
577
578    #[test]
579    fn an_enum_takes_the_layout_of_its_underlying_type() {
580        let mut types = Types::new();
581        let id = types.declare_enum(None);
582        let ty = types.enumeration(id);
583        assert_eq!(layout(&types, ty, &linux()), Err(LayoutError::Incomplete));
584        let int = types.int(IntKind::Int);
585        types.complete_enum(id, int, false);
586        assert_eq!(layout(&types, ty, &linux()).unwrap(), Layout::new(4, 4));
587    }
588
589    #[test]
590    fn the_scalar_widths_come_from_the_target() {
591        let mut types = Types::new();
592        let linux = linux();
593        let windows = target("x86_64-pc-windows-msvc");
594        let darwin = target("aarch64-apple-darwin");
595
596        let long = types.int(IntKind::Long);
597        assert_eq!(layout(&types, long, &linux).unwrap(), Layout::new(8, 8));
598        assert_eq!(layout(&types, long, &windows).unwrap(), Layout::new(4, 4), "LLP64");
599
600        let ldouble = types.float(FloatKind::LongDouble);
601        assert_eq!(layout(&types, ldouble, &linux).unwrap(), Layout::new(16, 16));
602        assert_eq!(layout(&types, ldouble, &darwin).unwrap(), Layout::new(8, 8));
603
604        let pointer = types.pointer(types.void());
605        assert_eq!(layout(&types, pointer, &linux).unwrap(), Layout::new(8, 8));
606
607        let boolean = types.boolean();
608        assert_eq!(layout(&types, boolean, &linux).unwrap(), Layout::new(1, 1));
609    }
610
611    #[test]
612    fn a_complex_type_is_two_of_its_component_with_the_components_alignment() {
613        // `_Complex long double` on SysV x86-64 is thirty two bytes aligned to sixteen, which
614        // is the case that catches an implementation that aligns the pair to its own size.
615        let mut types = Types::new();
616        let linux = linux();
617        let cfloat = types.complex(FloatKind::Float);
618        assert_eq!(layout(&types, cfloat, &linux).unwrap(), Layout::new(8, 4));
619        let cdouble = types.complex(FloatKind::Double);
620        assert_eq!(layout(&types, cdouble, &linux).unwrap(), Layout::new(16, 8));
621        let cldouble = types.complex(FloatKind::LongDouble);
622        assert_eq!(layout(&types, cldouble, &linux).unwrap(), Layout::new(32, 16));
623        let darwin = target("aarch64-apple-darwin");
624        assert_eq!(layout(&types, cldouble, &darwin).unwrap(), Layout::new(16, 8));
625    }
626
627    #[test]
628    fn an_atomic_type_can_be_more_aligned_than_the_type_it_wraps() {
629        // The whole reason `_Atomic` is a type here rather than a qualifier. A sixteen byte
630        // record is aligned to eight and the atomic version of it is aligned to sixteen.
631        let mut types = Types::new();
632        let linux = linux();
633        let long_long = types.int(IntKind::LongLong);
634        let plain = record(&mut types, RecordKind::Struct, &[member(long_long); 2]);
635        let atomic = types.atomic(plain);
636        assert_eq!(layout(&types, plain, &linux).unwrap(), Layout::new(16, 8));
637        assert_eq!(layout(&types, atomic, &linux).unwrap(), Layout::new(16, 16));
638
639        // An odd size cannot be accessed atomically in one go, so nothing is raised.
640        let odd = record(&mut types, RecordKind::Struct, &[member(long_long); 3]);
641        let atomic_odd = types.atomic(odd);
642        assert_eq!(layout(&types, atomic_odd, &linux).unwrap(), Layout::new(24, 8));
643
644        let int = types.int(IntKind::Int);
645        let atomic_int = types.atomic(int);
646        assert_eq!(layout(&types, atomic_int, &linux).unwrap(), Layout::new(4, 4));
647    }
648
649    #[test]
650    fn a_bit_int_is_laid_out_like_a_standard_integer_until_it_outgrows_one() {
651        // Measured with clang 18 on x86-64 Linux and clang on AArch64 Darwin. The two disagree
652        // above sixty four bits, which is why the granule is a target fact.
653        let mut types = Types::new();
654        let linux = linux();
655        let darwin = target("aarch64-apple-darwin");
656        let cases = [(7, 1, 1), (8, 1, 1), (9, 2, 2), (17, 4, 4), (33, 8, 8), (64, 8, 8)];
657        for (width, size, align) in cases {
658            let ty = types.bit_int(true, width);
659            assert_eq!(layout(&types, ty, &linux).unwrap(), Layout::new(size, align), "{width}");
660            assert_eq!(layout(&types, ty, &darwin).unwrap(), Layout::new(size, align), "{width}");
661        }
662        for width in [65, 96, 128] {
663            let ty = types.bit_int(false, width);
664            assert_eq!(layout(&types, ty, &linux).unwrap(), Layout::new(16, 8), "{width}");
665            assert_eq!(layout(&types, ty, &darwin).unwrap(), Layout::new(16, 16), "{width}");
666        }
667        let wide = types.bit_int(true, 129);
668        assert_eq!(layout(&types, wide, &linux).unwrap(), Layout::new(24, 8));
669        assert_eq!(layout(&types, wide, &darwin).unwrap(), Layout::new(32, 16));
670    }
671
672    #[test]
673    fn an_array_is_its_element_repeated_and_keeps_its_elements_alignment() {
674        let mut types = Types::new();
675        let linux = linux();
676        let int = types.int(IntKind::Int);
677        let ty = types.array(int, ArrayLen::Fixed(10));
678        assert_eq!(layout(&types, ty, &linux).unwrap(), Layout::new(40, 4));
679        let nested = types.array(ty, ArrayLen::Fixed(3));
680        assert_eq!(layout(&types, nested, &linux).unwrap(), Layout::new(120, 4));
681    }
682
683    #[test]
684    fn an_array_without_a_size_is_incomplete_and_an_impossible_one_says_so() {
685        let mut types = Types::new();
686        let linux = linux();
687        let int = types.int(IntKind::Int);
688        for len in [ArrayLen::Unknown, ArrayLen::Star, ArrayLen::Variable(VlaId(0))] {
689            let ty = types.array(int, len);
690            assert_eq!(layout(&types, ty, &linux), Err(LayoutError::Incomplete));
691        }
692        let huge = types.array(int, ArrayLen::Fixed(u64::MAX));
693        assert_eq!(layout(&types, huge, &linux), Err(LayoutError::TooLarge));
694    }
695
696    #[test]
697    fn the_largest_array_is_the_largest_object_and_not_the_largest_number() {
698        // The limit is `PTRDIFF_MAX` rather than wherever the multiplication happens to
699        // overflow, so an array of a byte may be every byte an object may have and one more
700        // than that is refused. gcc 16 gives the same two answers.
701        let mut types = Types::new();
702        let linux = linux();
703        let max = linux.max_object_size();
704        let ch = types.int(IntKind::Char);
705        let fits = types.array(ch, ArrayLen::Fixed(max));
706        assert_eq!(layout(&types, fits, &linux), Ok(Layout::new(max, 1)));
707        let over = types.array(ch, ArrayLen::Fixed(max + 1));
708        assert_eq!(layout(&types, over, &linux), Err(LayoutError::TooLarge));
709    }
710
711    #[test]
712    fn a_record_may_be_as_large_as_an_object_may_be_and_no_larger() {
713        // The shape `991014-1.c` in the gcc.c-torture execution suite asks about: a type
714        // nothing is ever an object of is still a type `sizeof` has to answer about. Counting
715        // the record in bits made the largest one an eighth of this, with the multiply by eight
716        // overflowing rather than any rule saying so.
717        let mut types = Types::new();
718        let linux = linux();
719        let max = linux.max_object_size();
720        let ch = types.int(IntKind::Char);
721        let int = types.int(IntKind::Int);
722        let short = types.int(IntKind::Short);
723
724        let huge = types.array(short, ArrayLen::Fixed((1 << 62) - 256));
725        let members = [member(huge), member(int), member(int), member(int), member(int)];
726        let laid_out = lay_out(&types, RecordKind::Struct, &members);
727        assert_eq!(laid_out.layout, Layout::new((1 << 63) - 496, 4));
728
729        let brim = types.array(ch, ArrayLen::Fixed(max));
730        let laid_out = lay_out(&types, RecordKind::Struct, &[member(brim)]);
731        assert_eq!(laid_out.layout, Layout::new(max, 1));
732
733        let over = [member(brim), member(ch)];
734        let options = RecordOptions::default();
735        let error = layout_record(&types, RecordKind::Struct, &over, &options, &linux);
736        assert_eq!(error, Err(RecordError::TooLarge));
737    }
738
739    #[test]
740    fn a_bit_field_past_where_a_bit_count_fits_is_still_placed() {
741        // Eight times the largest object is more than a `u64` holds, so a bit-field at the end
742        // of a record that large has a bit offset no bit count can name. It is a byte offset
743        // and a bit within it here, which is what lets this be laid out at all, and gcc 16
744        // gives the same size for it.
745        let mut types = Types::new();
746        let linux = linux();
747        let ch = types.int(IntKind::Char);
748        let int = types.int(IntKind::Int);
749        let mut interner = Interner::new();
750        let buf = types.array(ch, ArrayLen::Fixed(linux.max_object_size() - 7));
751        let members = [member(buf), bits(&mut interner, "x", int, 1)];
752        let laid_out = lay_out(&types, RecordKind::Struct, &members);
753        assert_eq!(laid_out.layout, Layout::new(9_223_372_036_854_775_804, 4));
754        let last = laid_out.fields[1];
755        assert_eq!((last.offset, last.bit), (9_223_372_036_854_775_800, 0));
756        assert_eq!(last.bit_offset(), 73_786_976_294_838_206_400);
757    }
758
759    #[test]
760    fn two_variable_length_arrays_of_the_same_element_are_still_different_types() {
761        let mut types = Types::new();
762        let int = types.int(IntKind::Int);
763        let a = types.array(int, ArrayLen::Variable(VlaId(0)));
764        let b = types.array(int, ArrayLen::Variable(VlaId(1)));
765        assert_ne!(a, b);
766    }
767
768    #[test]
769    fn a_vector_is_rounded_up_to_a_power_of_two_and_aligned_to_the_whole_thing() {
770        // What GCC does with a `vector_size` that is not already one, checked against clang on
771        // AArch64 Darwin, which accepts the three element case that GCC rejects outright.
772        let mut types = Types::new();
773        let linux = linux();
774        let int = types.int(IntKind::Int);
775        let four = types.vector(int, 4);
776        assert_eq!(layout(&types, four, &linux).unwrap(), Layout::new(16, 16));
777        let three = types.vector(int, 3);
778        assert_eq!(layout(&types, three, &linux).unwrap(), Layout::new(16, 16));
779        let three_chars = types.vector(types.int(IntKind::Char), 3);
780        assert_eq!(layout(&types, three_chars, &linux).unwrap(), Layout::new(4, 4));
781    }
782
783    #[test]
784    fn the_types_without_a_size_say_which_kind_of_without_they_are() {
785        // Kept apart because GNU C gives both of them a size of one and a different warning,
786        // and because a caller that cannot tell them apart cannot write either message.
787        let mut types = Types::new();
788        let linux = linux();
789        let void = types.void();
790        assert_eq!(layout(&types, void, &linux), Err(LayoutError::Incomplete));
791        let int = types.int(IntKind::Int);
792        let function = types.function(FunctionType {
793            ret: int,
794            params: Vec::new(),
795            variadic: false,
796            prototyped: true,
797        });
798        assert_eq!(layout(&types, function, &linux), Err(LayoutError::Function));
799        let pointer_to_function = types.pointer(function);
800        assert_eq!(layout(&types, pointer_to_function, &linux).unwrap(), Layout::new(8, 8));
801    }
802
803    #[test]
804    fn a_struct_puts_each_member_at_the_next_offset_it_is_allowed_to_start_at() {
805        let types = Types::new();
806        let char_ = types.int(IntKind::Char);
807        let int = types.int(IntKind::Int);
808        let laid_out = lay_out(&types, RecordKind::Struct, &[member(char_), member(int)]);
809        assert_eq!(laid_out.layout, Layout::new(8, 4));
810        assert_eq!(offsets(&laid_out), [0, 32]);
811        assert_eq!(laid_out.fields[1].offset, 4);
812
813        // And the tail is padded, which is what makes an array of the thing work.
814        let long_long = types.int(IntKind::LongLong);
815        let laid_out = lay_out(&types, RecordKind::Struct, &[member(long_long), member(char_)]);
816        assert_eq!(laid_out.layout, Layout::new(16, 8));
817    }
818
819    #[test]
820    fn a_union_starts_every_member_at_zero_and_is_as_large_as_the_largest() {
821        let mut types = Types::new();
822        let char_ = types.int(IntKind::Char);
823        let int = types.int(IntKind::Int);
824        let laid_out = lay_out(&types, RecordKind::Union, &[member(char_), member(int)]);
825        assert_eq!(laid_out.layout, Layout::new(4, 4));
826        assert_eq!(offsets(&laid_out), [0, 0]);
827
828        // Nine bytes and a short is ten, not nine and not sixteen: the size is rounded up to
829        // the alignment rather than to the largest member.
830        let nine = types.array(char_, ArrayLen::Fixed(9));
831        let short = types.int(IntKind::Short);
832        let laid_out = lay_out(&types, RecordKind::Union, &[member(nine), member(short)]);
833        assert_eq!(laid_out.layout, Layout::new(10, 2));
834    }
835
836    #[test]
837    fn bit_fields_share_a_unit_until_one_of_them_would_span_two() {
838        // Measured with gcc 13.3 on x86-64 Linux and clang on AArch64 Darwin, including where
839        // the bits landed, by setting each field to all ones and dumping the bytes.
840        let mut interner = Interner::new();
841        let types = Types::new();
842        let char_ = types.int(IntKind::Char);
843        let int = types.int(IntKind::Int);
844        let long_long = types.int(IntKind::LongLong);
845
846        let fields = [bits(&mut interner, "a", int, 3), bits(&mut interner, "b", int, 5)];
847        let laid_out = lay_out(&types, RecordKind::Struct, &fields);
848        assert_eq!(laid_out.layout, Layout::new(4, 4));
849        assert_eq!(offsets(&laid_out), [0, 3]);
850
851        // Thirty bits do not fit in what is left of the first int, so they start a new one.
852        let fields = [member(char_), bits(&mut interner, "b", int, 30)];
853        let laid_out = lay_out(&types, RecordKind::Struct, &fields);
854        assert_eq!(laid_out.layout, Layout::new(8, 4));
855        assert_eq!(offsets(&laid_out), [0, 32]);
856
857        // Thirty three bits of a `long long` do fit in what is left of the first one, because
858        // the unit is eight bytes rather than four, so they stay where they are.
859        let fields = [member(char_), bits(&mut interner, "b", long_long, 33)];
860        let laid_out = lay_out(&types, RecordKind::Struct, &fields);
861        assert_eq!(laid_out.layout, Layout::new(8, 8));
862        assert_eq!(offsets(&laid_out), [0, 8]);
863
864        // An ordinary member after a bit-field starts at the next byte it is allowed to.
865        let fields = [bits(&mut interner, "a", int, 3), member(char_)];
866        let laid_out = lay_out(&types, RecordKind::Struct, &fields);
867        assert_eq!(offsets(&laid_out), [0, 8]);
868    }
869
870    #[test]
871    fn a_zero_width_bit_field_moves_the_next_member_on_and_nothing_else() {
872        let types = Types::new();
873        let char_ = types.int(IntKind::Char);
874        let int = types.int(IntKind::Int);
875        let fields = [member(char_), unnamed_bits(int, 0), member(char_)];
876        let laid_out = lay_out(&types, RecordKind::Struct, &fields);
877        // Five bytes aligned to one: the zero width field pushed the second `char` to offset
878        // four without giving the record the alignment of an `int`. Both compilers report that.
879        assert_eq!(laid_out.layout, Layout::new(5, 1));
880        assert_eq!(offsets(&laid_out), [0, 32, 32]);
881        assert_eq!(laid_out.fields.len(), 3, "one field per declaration, so indices line up");
882
883        // With nothing after it the padding is still the record's, which is the half of the rule
884        // the case above hides: the second `char` ends further along than the zero width field
885        // does, so whether the field moved the size or only the next member never showed.
886        let trailing = [member(char_), unnamed_bits(int, 0)];
887        assert_eq!(lay_out(&types, RecordKind::Struct, &trailing).layout, Layout::new(4, 1));
888
889        // And a record that is nothing but the zero width field has nothing to pad, so it is the
890        // empty structure with the alignment of whatever the field's type was.
891        let only = [unnamed_bits(int, 0)];
892        assert_eq!(lay_out(&types, RecordKind::Struct, &only).layout, Layout::new(0, 1));
893    }
894
895    #[test]
896    fn an_unnamed_bit_field_does_not_raise_the_records_alignment_but_a_named_one_does() {
897        let mut interner = Interner::new();
898        let types = Types::new();
899        let char_ = types.int(IntKind::Char);
900        let int = types.int(IntKind::Int);
901
902        let unnamed = [member(char_), unnamed_bits(int, 20)];
903        let unnamed = lay_out(&types, RecordKind::Struct, &unnamed);
904        assert_eq!(unnamed.layout, Layout::new(4, 1));
905
906        let named = [member(char_), bits(&mut interner, "b", int, 20)];
907        let named = lay_out(&types, RecordKind::Struct, &named);
908        assert_eq!(named.layout, Layout::new(4, 4));
909        assert_eq!(offsets(&named), [0, 8], "the same place either way");
910
911        // The unit an unnamed field has to fit inside is still its own type's, so this one
912        // moves to bit thirty two and the record is eight bytes aligned to one.
913        let wider = [member(char_), unnamed_bits(int, 30)];
914        let wider = lay_out(&types, RecordKind::Struct, &wider);
915        assert_eq!(wider.layout, Layout::new(8, 1));
916        assert_eq!(offsets(&wider), [0, 32]);
917    }
918
919    #[test]
920    fn aapcs64_lets_an_unnamed_bit_field_raise_the_records_alignment() {
921        let types = Types::new();
922        let char_ = types.int(IntKind::Char);
923        let uint = types.int(IntKind::UInt);
924
925        // The same structure as the test above, on the one ABI in the table that disagrees.
926        let fields = [member(char_), unnamed_bits(uint, 20)];
927        let arm = lay_out_on(&aapcs(), &types, RecordKind::Struct, &fields);
928        assert_eq!(arm.layout, Layout::new(4, 4));
929
930        // The zero width member is the case a program actually writes, and it is where the rule
931        // is visible with nothing else in the record at all.
932        let only = [unnamed_bits(uint, 0)];
933        assert_eq!(
934            lay_out_on(&aapcs(), &types, RecordKind::Struct, &only).layout,
935            Layout::new(0, 4)
936        );
937        assert_eq!(lay_out(&types, RecordKind::Struct, &only).layout, Layout::new(0, 1));
938
939        // And it changes a size rather than only an alignment, because the record is rounded up
940        // to the alignment it ends with. Five bytes on x86-64 and eight here.
941        let pushed = [member(char_), unnamed_bits(uint, 0), member(char_)];
942        let pushed = lay_out_on(&aapcs(), &types, RecordKind::Struct, &pushed);
943        assert_eq!(pushed.layout, Layout::new(8, 4));
944        assert_eq!(offsets(&pushed), [0, 32, 32]);
945    }
946
947    #[test]
948    fn windows_allocates_a_bit_field_into_a_unit_of_its_declared_type() {
949        let mut interner = Interner::new();
950        let types = Types::new();
951        let char_ = types.int(IntKind::Char);
952        let uint = types.int(IntKind::UInt);
953        let ushort = types.int(IntKind::UShort);
954        let longlong = types.int(IntKind::LongLong);
955
956        // An ordinary member closes the unit, and the unit costs its whole four bytes, so the
957        // `char` is at offset four rather than at offset one.
958        let then_member = [bits(&mut interner, "m0", uint, 3), member(char_)];
959        let ms = lay_out_on(&windows(), &types, RecordKind::Struct, &then_member);
960        assert_eq!(ms.layout, Layout::new(8, 4));
961        assert_eq!(offsets(&ms), [0, 32]);
962        let itanium = lay_out(&types, RecordKind::Struct, &then_member);
963        assert_eq!(itanium.layout, Layout::new(4, 4));
964        assert_eq!(offsets(&itanium), [0, 8]);
965
966        // A declared type of a different size closes it too, although five bits were free.
967        let narrower = [bits(&mut interner, "m0", uint, 3), bits(&mut interner, "m1", ushort, 5)];
968        let ms = lay_out_on(&windows(), &types, RecordKind::Struct, &narrower);
969        assert_eq!(ms.layout, Layout::new(8, 4));
970        assert_eq!(offsets(&ms), [0, 32]);
971        assert_eq!(lay_out(&types, RecordKind::Struct, &narrower).layout, Layout::new(4, 4));
972
973        // And the unit is opened at its own alignment, so a `long long` bit-field after a `char`
974        // starts at offset eight where the Itanium rule leaves it at bit eight.
975        let wide = [member(char_), bits(&mut interner, "b", longlong, 33)];
976        let ms = lay_out_on(&windows(), &types, RecordKind::Struct, &wide);
977        assert_eq!(ms.layout, Layout::new(16, 8));
978        assert_eq!(offsets(&ms), [0, 64]);
979        let itanium = lay_out(&types, RecordKind::Struct, &wide);
980        assert_eq!(itanium.layout, Layout::new(8, 8));
981        assert_eq!(offsets(&itanium), [0, 8]);
982    }
983
984    #[test]
985    fn microsofts_zero_width_bit_field_closes_a_unit_and_does_nothing_without_one() {
986        let mut interner = Interner::new();
987        let types = Types::new();
988        let char_ = types.int(IntKind::Char);
989        let uint = types.int(IntKind::UInt);
990
991        // Nothing before it is a bit-field, so there is no run to end and the member is free.
992        let alone = [member(char_), unnamed_bits(uint, 0)];
993        assert_eq!(
994            lay_out_on(&windows(), &types, RecordKind::Struct, &alone).layout,
995            Layout::new(1, 1)
996        );
997        assert_eq!(lay_out(&types, RecordKind::Struct, &alone).layout, Layout::new(4, 1));
998
999        // With a unit open it ends it, and the member after starts a unit of its own.
1000        let between = [
1001            bits(&mut interner, "m0", uint, 3),
1002            unnamed_bits(uint, 0),
1003            bits(&mut interner, "m1", uint, 5),
1004            member(char_),
1005        ];
1006        let ms = lay_out_on(&windows(), &types, RecordKind::Struct, &between);
1007        assert_eq!(ms.layout, Layout::new(12, 4));
1008        assert_eq!(offsets(&ms), [0, 32, 32, 64]);
1009        let itanium = lay_out(&types, RecordKind::Struct, &between);
1010        assert_eq!(itanium.layout, Layout::new(8, 4));
1011        assert_eq!(offsets(&itanium), [0, 32, 32, 40]);
1012    }
1013
1014    #[test]
1015    fn microsoft_gives_a_unions_bit_field_storage_and_no_say_in_the_alignment() {
1016        let mut interner = Interner::new();
1017        let types = Types::new();
1018        let char_ = types.int(IntKind::Char);
1019        let uint = types.int(IntKind::UInt);
1020
1021        // Four bytes because the unit is an `unsigned`, aligned to one because the only member
1022        // that gets a say is the `char`. An alignment smaller than either member would have.
1023        let fields = [bits(&mut interner, "m0", uint, 3), member(char_)];
1024        assert_eq!(
1025            lay_out_on(&windows(), &types, RecordKind::Union, &fields).layout,
1026            Layout::new(4, 1)
1027        );
1028        assert_eq!(lay_out(&types, RecordKind::Union, &fields).layout, Layout::new(4, 4));
1029    }
1030
1031    #[test]
1032    fn a_record_with_no_storage_in_it_is_four_bytes_under_msvc_and_nothing_anywhere_else() {
1033        let mut types = Types::new();
1034        let uint = types.int(IntKind::UInt);
1035        let mingw = target("x86_64-pc-windows-gnu");
1036
1037        // Three shapes that hold nothing, and the reference gives all three the same answer.
1038        let none: [FieldDecl; 0] = [];
1039        let zero_width = [unnamed_bits(uint, 0)];
1040        let flexible = [member(types.array(uint, ArrayLen::Unknown))];
1041        for fields in [&none[..], &zero_width[..], &flexible[..]] {
1042            let msvc = lay_out_on(&windows(), &types, RecordKind::Struct, fields);
1043            assert_eq!(msvc.layout.size, 4, "four bytes under MSVC");
1044            assert_eq!(lay_out_on(&mingw, &types, RecordKind::Struct, fields).layout.size, 0);
1045            assert_eq!(lay_out(&types, RecordKind::Struct, fields).layout.size, 0);
1046        }
1047
1048        // It is the environment that decides and not the operating system, so the two Windows
1049        // targets disagree with each other and mingw agrees with Linux. A rule keyed on the
1050        // operating system would have put both of them at four.
1051        assert_eq!(windows().empty_record_size, 4);
1052        assert_eq!(mingw.empty_record_size, 0);
1053    }
1054
1055    #[test]
1056    fn packed_drops_every_member_to_a_byte_and_bit_fields_to_the_next_free_bit() {
1057        let mut interner = Interner::new();
1058        let types = Types::new();
1059        let char_ = types.int(IntKind::Char);
1060        let int = types.int(IntKind::Int);
1061        let packed = RecordOptions { packed: true, ..RecordOptions::default() };
1062
1063        let fields = [member(char_), member(int)];
1064        let laid_out = layout_record(&types, RecordKind::Struct, &fields, &packed, &linux())
1065            .expect("a packed struct of two complete members");
1066        assert_eq!(laid_out.layout, Layout::new(5, 1));
1067        assert_eq!(offsets(&laid_out), [0, 8]);
1068
1069        let fields = [member(char_), bits(&mut interner, "b", int, 30)];
1070        let laid_out = layout_record(&types, RecordKind::Struct, &fields, &packed, &linux())
1071            .expect("a packed struct with a bit-field");
1072        assert_eq!(laid_out.layout, Layout::new(5, 1));
1073        assert_eq!(offsets(&laid_out), [0, 8], "no boundary left to move to");
1074
1075        // A zero width bit-field still rounds to its own type, packed or not, which is the
1076        // whole reason a program writes one inside a packed structure.
1077        let fields = [member(char_), unnamed_bits(int, 0), member(char_)];
1078        let laid_out = layout_record(&types, RecordKind::Struct, &fields, &packed, &linux())
1079            .expect("a packed struct with a zero width bit-field");
1080        assert_eq!(laid_out.layout, Layout::new(5, 1));
1081        assert_eq!(offsets(&laid_out), [0, 32, 32]);
1082    }
1083
1084    #[test]
1085    fn pragma_pack_caps_alignment_and_leaves_a_bit_field_where_it_already_is() {
1086        let mut interner = Interner::new();
1087        let types = Types::new();
1088        let char_ = types.int(IntKind::Char);
1089        let int = types.int(IntKind::Int);
1090        let pack = RecordOptions { pack: Some(2), ..RecordOptions::default() };
1091
1092        let fields = [member(char_), member(int)];
1093        let laid_out = layout_record(&types, RecordKind::Struct, &fields, &pack, &linux())
1094            .expect("a packed struct of two complete members");
1095        assert_eq!(laid_out.layout, Layout::new(6, 2));
1096        assert_eq!(offsets(&laid_out), [0, 16]);
1097
1098        // Six bytes with the field at bit eight, not at bit sixteen. Once the alignment has
1099        // been capped below the type's own there is no boundary to move to, so the field stays
1100        // put. Measured, because moving it is at least as plausible a reading.
1101        let fields = [member(char_), bits(&mut interner, "b", int, 30)];
1102        let laid_out = layout_record(&types, RecordKind::Struct, &fields, &pack, &linux())
1103            .expect("a packed struct with a bit-field");
1104        assert_eq!(laid_out.layout, Layout::new(6, 2));
1105        assert_eq!(offsets(&laid_out), [0, 8]);
1106
1107        // The same structure with the field unnamed is five bytes aligned to one, because the
1108        // capped alignment reached it through the record and an unnamed field gives none back.
1109        let fields = [member(char_), unnamed_bits(int, 30)];
1110        let laid_out = layout_record(&types, RecordKind::Struct, &fields, &pack, &linux())
1111            .expect("a packed struct with an unnamed bit-field");
1112        assert_eq!(laid_out.layout, Layout::new(5, 1));
1113    }
1114
1115    #[test]
1116    fn an_alignment_the_program_asked_for_raises_the_member_and_the_record() {
1117        let types = Types::new();
1118        let char_ = types.int(IntKind::Char);
1119        let int = types.int(IntKind::Int);
1120
1121        let aligned = FieldDecl { align: Some(16), ..member(int) };
1122        let laid_out = lay_out(&types, RecordKind::Struct, &[member(char_), aligned]);
1123        assert_eq!(laid_out.layout, Layout::new(32, 16));
1124        assert_eq!(offsets(&laid_out), [0, 128]);
1125
1126        // `packed, aligned(4)` together: the members pack and the record does not, which is
1127        // the combination the attribute pair exists for.
1128        let options = RecordOptions { packed: true, align: Some(4), pack: None };
1129        let fields = [member(char_), member(int)];
1130        let laid_out = layout_record(&types, RecordKind::Struct, &fields, &options, &linux())
1131            .expect("a packed struct with an alignment asked for");
1132        assert_eq!(laid_out.layout, Layout::new(8, 4));
1133        assert_eq!(offsets(&laid_out), [0, 8]);
1134    }
1135
1136    #[test]
1137    fn a_flexible_array_member_costs_nothing_but_its_alignment() {
1138        // What makes `malloc(sizeof(struct S) + n)` the idiom it is.
1139        let mut types = Types::new();
1140        let char_ = types.int(IntKind::Char);
1141        let int = types.int(IntKind::Int);
1142        let long_long = types.int(IntKind::LongLong);
1143
1144        let chars = types.array(char_, ArrayLen::Unknown);
1145        let laid_out = lay_out(&types, RecordKind::Struct, &[member(int), member(chars)]);
1146        assert_eq!(laid_out.layout, Layout::new(4, 4));
1147        assert_eq!(offsets(&laid_out), [0, 32]);
1148
1149        // The alignment still applies, so this is eight bytes of which one is the `char`.
1150        let longs = types.array(long_long, ArrayLen::Unknown);
1151        let laid_out = lay_out(&types, RecordKind::Struct, &[member(char_), member(longs)]);
1152        assert_eq!(laid_out.layout, Layout::new(8, 8));
1153        assert_eq!(offsets(&laid_out), [0, 64]);
1154
1155        // Anywhere but last it is an incomplete member, and which member is part of the answer.
1156        let fields = [member(chars), member(int)];
1157        let error =
1158            layout_record(&types, RecordKind::Struct, &fields, &RecordOptions::default(), &linux());
1159        assert_eq!(error, Err(RecordError::Member { index: 0, error: LayoutError::Incomplete }));
1160    }
1161
1162    #[test]
1163    fn a_record_with_no_members_is_zero_bytes_aligned_to_one() {
1164        // The GNU empty structure, which C itself does not have and which real headers do.
1165        let types = Types::new();
1166        let laid_out = lay_out(&types, RecordKind::Struct, &[]);
1167        assert_eq!(laid_out.layout, Layout::new(0, 1));
1168    }
1169
1170    #[test]
1171    fn a_bit_field_wider_than_the_type_it_is_declared_with_is_refused() {
1172        let types = Types::new();
1173        let int = types.int(IntKind::Int);
1174        let fields = [unnamed_bits(int, 33)];
1175        let error =
1176            layout_record(&types, RecordKind::Struct, &fields, &RecordOptions::default(), &linux());
1177        let want = RecordError::BitFieldTooWide { index: 0, width: 33, capacity: 32 };
1178        assert_eq!(error, Err(want));
1179    }
1180
1181    #[test]
1182    fn a_record_reports_its_members_once_it_has_been_completed() {
1183        let mut interner = Interner::new();
1184        let mut types = Types::new();
1185        let char_ = types.int(IntKind::Char);
1186        let int = types.int(IntKind::Int);
1187        let name = interner.intern("count");
1188        let fields = [member(char_), FieldDecl::new(Some(name), int)];
1189        let id = types.declare_record(RecordKind::Struct, None);
1190        let laid_out = lay_out(&types, RecordKind::Struct, &fields);
1191        types.complete_record(id, laid_out);
1192        let ty = types.record(id);
1193        assert_eq!(layout(&types, ty, &linux()).unwrap(), Layout::new(8, 4));
1194        let field = types.field(id, name).expect("the member that was declared");
1195        assert_eq!(field.offset, 4);
1196        assert!(!field.is_bit_field());
1197        assert_eq!(types.field(id, interner.intern("missing")), None);
1198    }
1199
1200    #[test]
1201    fn a_nested_record_brings_its_own_alignment_with_it() {
1202        let mut types = Types::new();
1203        let char_ = types.int(IntKind::Char);
1204        let int = types.int(IntKind::Int);
1205        let inner = record(&mut types, RecordKind::Struct, &[member(char_)]);
1206        let laid_out = lay_out(&types, RecordKind::Struct, &[member(inner), member(int)]);
1207        assert_eq!(laid_out.layout, Layout::new(8, 4));
1208        assert_eq!(offsets(&laid_out), [0, 32]);
1209
1210        // An anonymous member is an ordinary member with no name, so the same code lays it out
1211        // and the four bytes of padding after the `char` are there either way.
1212        let anonymous = record(&mut types, RecordKind::Struct, &[member(int), member(char_)]);
1213        let laid_out = lay_out(&types, RecordKind::Struct, &[member(char_), member(anonymous)]);
1214        assert_eq!(laid_out.layout, Layout::new(12, 4));
1215        assert_eq!(offsets(&laid_out), [0, 32]);
1216    }
1217
1218    #[test]
1219    fn everything_narrower_than_an_int_promotes_to_one() {
1220        // Measured by naming the type of `+x` with `_Generic` in gcc 13.3 and clang 18. Every
1221        // one of these answers `int`, including the unsigned ones, because an `int` holds every
1222        // value a sixteen bit unsigned type has.
1223        let mut types = Types::new();
1224        let linux = linux();
1225        let int = types.int(IntKind::Int);
1226        let narrow =
1227            [IntKind::Char, IntKind::SChar, IntKind::UChar, IntKind::Short, IntKind::UShort];
1228        for kind in narrow {
1229            let ty = types.int(kind);
1230            assert_eq!(promote(&mut types, ty, &linux), int, "{}", kind.as_str());
1231        }
1232        let boolean = types.boolean();
1233        assert_eq!(promote(&mut types, boolean, &linux), int, "C23 made bool a real type");
1234
1235        // From `int` up, a type is its own promotion.
1236        for kind in [IntKind::Int, IntKind::UInt, IntKind::Long, IntKind::ULongLong] {
1237            let ty = types.int(kind);
1238            assert_eq!(promote(&mut types, ty, &linux), ty, "{}", kind.as_str());
1239        }
1240    }
1241
1242    #[test]
1243    fn a_bit_int_is_not_promoted_at_all() {
1244        // C23 6.3.1.1p2, and the point of the type. `_BitInt(8) + _BitInt(8)` stays eight bits
1245        // wide where `char + char` is an `int`, which is what makes the width mean something.
1246        let mut types = Types::new();
1247        let linux = linux();
1248        let small = types.bit_int(true, 8);
1249        assert_eq!(promote(&mut types, small, &linux), small);
1250        assert_eq!(usual_arithmetic(&mut types, small, small, &linux), Some(small));
1251    }
1252
1253    #[test]
1254    fn a_bit_field_is_promoted_by_its_width_and_not_by_its_type() {
1255        let mut types = Types::new();
1256        let linux = linux();
1257        let int = types.int(IntKind::Int);
1258        let uint = types.int(IntKind::UInt);
1259        let ullong = types.int(IntKind::ULongLong);
1260
1261        // Three bits of an unsigned field all fit in an `int`, so it is signed afterwards.
1262        assert_eq!(promote_bit_field(&mut types, uint, 3, &linux), int);
1263        // Thirty two of them do not.
1264        assert_eq!(promote_bit_field(&mut types, uint, 32, &linux), uint);
1265        // Twenty bits of a signed field, which is an `int` either way.
1266        assert_eq!(promote_bit_field(&mut types, int, 20, &linux), int);
1267        // Forty bits are forty bits of value and nothing more. The C17 wording says `unsigned
1268        // int` here, which would silently drop eight of them, and C23 says the declared type,
1269        // which would silently add twenty four. Both compilers give the width instead, so
1270        // `x.b << 32` on such a field is zero rather than a value with a bit above the fortieth.
1271        let forty = types.bit_int(false, 40);
1272        assert_eq!(promote_bit_field(&mut types, ullong, 40, &linux), forty);
1273        // A field as wide as its type is that type, since there is no precision to lose.
1274        assert_eq!(promote_bit_field(&mut types, ullong, 64, &linux), ullong);
1275    }
1276
1277    #[test]
1278    fn an_enumeration_promotes_through_what_it_is_represented_in() {
1279        let mut types = Types::new();
1280        let linux = linux();
1281        let int = types.int(IntKind::Int);
1282        let short = types.int(IntKind::Short);
1283        let uint = types.int(IntKind::UInt);
1284
1285        // `enum E : short` promotes the same way a `short` does, which is to `int`.
1286        let fixed = types.declare_enum(None);
1287        types.complete_enum(fixed, short, true);
1288        let fixed = types.enumeration(fixed);
1289        assert_eq!(promote(&mut types, fixed, &linux), int);
1290
1291        // An enumeration all of whose enumerators are non-negative is represented in
1292        // `unsigned int` by both compilers, and then it promotes to itself.
1293        let unsigned = types.declare_enum(None);
1294        types.complete_enum(unsigned, uint, false);
1295        let unsigned = types.enumeration(unsigned);
1296        assert_eq!(promote(&mut types, unsigned, &linux), uint);
1297
1298        // An enumeration nobody has decided on yet answers `int`, so that an expression using
1299        // one is still checkable while the diagnostic about it is being written.
1300        let undecided = types.declare_enum(None);
1301        let undecided = types.enumeration(undecided);
1302        assert_eq!(promote(&mut types, undecided, &linux), int);
1303    }
1304
1305    #[test]
1306    fn the_qualifiers_and_the_atomic_come_off_before_anything_else() {
1307        // By the time a value is being promoted the lvalue conversion has already happened, so
1308        // `_Atomic const int` and `int` are the same operand.
1309        let mut types = Types::new();
1310        let linux = linux();
1311        let int = types.int(IntKind::Int);
1312        let konst = types.qualified(int, Qualifiers::CONST);
1313        let atomic = types.atomic(konst);
1314        assert_eq!(promote(&mut types, atomic, &linux), int);
1315        assert_eq!(usual_arithmetic(&mut types, atomic, konst, &linux), Some(int));
1316    }
1317
1318    #[test]
1319    fn the_usual_arithmetic_conversions_between_the_standard_integer_types() {
1320        // Every row measured with `_Generic` in gcc 13.3 and clang 18 on x86-64 Linux.
1321        let mut types = Types::new();
1322        let linux = linux();
1323        let cases = [
1324            (IntKind::Int, IntKind::UInt, IntKind::UInt),
1325            (IntKind::Int, IntKind::Long, IntKind::Long),
1326            (IntKind::UInt, IntKind::Long, IntKind::Long),
1327            (IntKind::UInt, IntKind::ULong, IntKind::ULong),
1328            (IntKind::Int, IntKind::LongLong, IntKind::LongLong),
1329            (IntKind::UInt, IntKind::LongLong, IntKind::LongLong),
1330            (IntKind::ULong, IntKind::LongLong, IntKind::ULongLong),
1331            (IntKind::Char, IntKind::Char, IntKind::Int),
1332            (IntKind::UChar, IntKind::UShort, IntKind::Int),
1333        ];
1334        for (left, right, want) in cases {
1335            let left = types.int(left);
1336            let right = types.int(right);
1337            let want = types.int(want);
1338            assert_eq!(usual_arithmetic(&mut types, left, right, &linux), Some(want));
1339            assert_eq!(usual_arithmetic(&mut types, right, left, &linux), Some(want), "either way");
1340        }
1341    }
1342
1343    #[test]
1344    fn int128_is_sixteen_bytes_aligned_to_sixteen_and_outranks_long_long() {
1345        // Measured on gcc 13.3 on x86-64 Linux and clang on AArch64 Darwin, both of which
1346        // report the same size, the same alignment, and an offset of sixteen for a member
1347        // after a `char`.
1348        let mut types = Types::new();
1349        let linux = linux();
1350        let signed = types.int(IntKind::Int128);
1351        let unsigned = types.int(IntKind::UInt128);
1352        for id in [signed, unsigned] {
1353            let laid_out = layout(&types, id, &linux).expect("a complete type");
1354            assert_eq!(laid_out.size, 16);
1355            assert_eq!(laid_out.align, 16);
1356        }
1357
1358        // `__int128 + unsigned long long` is `__int128`, because it wins on rank and is wide
1359        // enough to hold every value the other side had. Both compilers agree, and it is the
1360        // one pair that says the rank is above `long long` rather than beside it.
1361        let ull = types.int(IntKind::ULongLong);
1362        assert_eq!(usual_arithmetic(&mut types, signed, ull, &linux), Some(signed));
1363        // And it is its own promotion, the way every type at or above `int` is.
1364        assert_eq!(promote(&mut types, signed, &linux), signed);
1365    }
1366
1367    #[test]
1368    fn a_bit_int_of_a_hundred_and_twenty_eight_bits_is_not_int128() {
1369        // Same width, different types. The alignment is the visible difference on x86-64,
1370        // where a `_BitInt` is aligned to its sixty four bit granule and `__int128` is not.
1371        let mut types = Types::new();
1372        let linux = linux();
1373        let int128 = types.int(IntKind::Int128);
1374        let bit_int = types.bit_int(true, 128);
1375        assert_ne!(int128, bit_int);
1376        assert!(!compatible(&types, int128, bit_int));
1377        assert_eq!(layout(&types, bit_int, &linux).expect("complete").align, 8);
1378        assert_eq!(layout(&types, int128, &linux).expect("complete").align, 16);
1379    }
1380
1381    #[test]
1382    fn the_last_arm_takes_the_unsigned_type_of_the_wider_one() {
1383        // `unsigned long + long long` is `unsigned long long` on Linux: the `long long` wins on
1384        // rank and cannot hold every value of the `unsigned long`, so neither operand's own
1385        // type is the answer. This is the arm programs are surprised by.
1386        let mut types = Types::new();
1387        let linux = linux();
1388        let ulong = types.int(IntKind::ULong);
1389        let long_long = types.int(IntKind::LongLong);
1390        let want = types.int(IntKind::ULongLong);
1391        assert_eq!(usual_arithmetic(&mut types, ulong, long_long, &linux), Some(want));
1392
1393        // The same pair on Windows, where `long` is thirty two bits, comes out as `long long`,
1394        // because there it does hold every value. A host-driven implementation gets one of
1395        // these two wrong.
1396        let windows = target("x86_64-pc-windows-msvc");
1397        assert_eq!(usual_arithmetic(&mut types, ulong, long_long, &windows), Some(long_long));
1398    }
1399
1400    #[test]
1401    fn a_bit_int_is_ranked_by_its_width_against_the_standard_types() {
1402        // Measured with clang 18 on x86-64 Linux, which is the compiler that has `_BitInt`.
1403        let mut types = Types::new();
1404        let linux = linux();
1405        let b40 = types.bit_int(true, 40);
1406        let ub40 = types.bit_int(false, 40);
1407        let b8 = types.bit_int(true, 8);
1408        let b32 = types.bit_int(true, 32);
1409        let int = types.int(IntKind::Int);
1410        let uint = types.int(IntKind::UInt);
1411        let long = types.int(IntKind::Long);
1412        let char_ = types.int(IntKind::Char);
1413
1414        // Wider than an `int`, so it outranks one.
1415        assert_eq!(usual_arithmetic(&mut types, b40, int, &linux), Some(b40));
1416        // Narrower than a `long`, so it loses to one.
1417        assert_eq!(usual_arithmetic(&mut types, b40, long, &linux), Some(long));
1418        // The same width as an `int`, and a standard type wins the tie.
1419        assert_eq!(usual_arithmetic(&mut types, b32, int, &linux), Some(int));
1420        assert_eq!(usual_arithmetic(&mut types, b32, uint, &linux), Some(uint));
1421        // The other side promotes first, so a `char` next to a narrow `_BitInt` is an `int`
1422        // and the `_BitInt` loses to it.
1423        assert_eq!(usual_arithmetic(&mut types, b8, char_, &linux), Some(int));
1424        // Unsigned and higher ranked wins outright, and unsigned and lower ranked loses to a
1425        // signed type wide enough to hold it.
1426        assert_eq!(usual_arithmetic(&mut types, ub40, int, &linux), Some(ub40));
1427        assert_eq!(usual_arithmetic(&mut types, ub40, long, &linux), Some(long));
1428        // Two bit-precise types of the same width and different signedness.
1429        assert_eq!(usual_arithmetic(&mut types, b40, ub40, &linux), Some(ub40));
1430    }
1431
1432    #[test]
1433    fn a_floating_operand_decides_the_answer_whatever_the_other_side_is() {
1434        let mut types = Types::new();
1435        let linux = linux();
1436        let float = types.float(FloatKind::Float);
1437        let double = types.float(FloatKind::Double);
1438        let long_double = types.float(FloatKind::LongDouble);
1439        let ullong = types.int(IntKind::ULongLong);
1440        let int = types.int(IntKind::Int);
1441
1442        assert_eq!(usual_arithmetic(&mut types, int, float, &linux), Some(float));
1443        assert_eq!(usual_arithmetic(&mut types, float, double, &linux), Some(double));
1444        assert_eq!(usual_arithmetic(&mut types, double, long_double, &linux), Some(long_double));
1445        // Sixty four bits of unsigned integer against a `float`, which is a `float` and loses
1446        // most of them. That is the rule rather than an oversight.
1447        assert_eq!(usual_arithmetic(&mut types, ullong, float, &linux), Some(float));
1448    }
1449
1450    #[test]
1451    fn a_mask_is_the_signed_integers_of_the_lane_width() {
1452        let mut types = Types::new();
1453        let linux = linux();
1454        let int = types.int(IntKind::Int);
1455        let float = types.float(FloatKind::Float);
1456        let short = types.int(IntKind::Short);
1457
1458        // A signed lane is already its own mask, so the answer is the vector it was given.
1459        let four_ints = types.vector(int, 4);
1460        assert_eq!(mask_of(&mut types, four_ints, &linux), Some(four_ints));
1461
1462        // An unsigned lane answers as the signed type of the same width, which is what GCC
1463        // gives a comparison of two `unsigned int` vectors.
1464        let uint = types.int(IntKind::UInt);
1465        let four_uints = types.vector(uint, 4);
1466        assert_eq!(mask_of(&mut types, four_uints, &linux), Some(four_ints));
1467
1468        // A float lane answers as an integer of the same width, since the mask is bits and not
1469        // a number and there is no float that is all ones.
1470        let four_floats = types.vector(float, 4);
1471        assert_eq!(mask_of(&mut types, four_floats, &linux), Some(four_ints));
1472
1473        // The width is the lane's own and not a word, so a `short` lane keeps its two bytes.
1474        let two_shorts = types.vector(short, 2);
1475        assert_eq!(mask_of(&mut types, two_shorts, &linux), Some(two_shorts));
1476
1477        // Not a vector, so there is no mask to give.
1478        assert_eq!(mask_of(&mut types, int, &linux), None);
1479    }
1480
1481    #[test]
1482    fn two_vectors_convert_between_each_other_when_the_bytes_line_up() {
1483        let mut types = Types::new();
1484        let linux = linux();
1485        let int = types.int(IntKind::Int);
1486        let uint = types.int(IntKind::UInt);
1487        let float = types.float(FloatKind::Float);
1488        let short = types.int(IntKind::Short);
1489
1490        let four_ints = types.vector(int, 4);
1491        let four_uints = types.vector(uint, 4);
1492        let four_floats = types.vector(float, 4);
1493        let eight_shorts = types.vector(short, 8);
1494        let two_ints = types.vector(int, 2);
1495
1496        // The case the whole thing exists for: a mask assigned to the unsigned vector it came
1497        // from, which GNU C converts and the standard rules would refuse.
1498        assert!(vectors_convertible(&types, four_uints, four_ints, &linux));
1499        // Both ways round, since assignment happens in both directions.
1500        assert!(vectors_convertible(&types, four_ints, four_uints, &linux));
1501        // The same sixteen bytes cut into eight lanes rather than four, which GCC also allows.
1502        assert!(vectors_convertible(&types, four_ints, eight_shorts, &linux));
1503        // Two floats of the same width, which is the other half of the rule.
1504        assert!(vectors_convertible(&types, four_floats, four_floats, &linux));
1505
1506        // An integer lane against a float lane, which GCC refuses even at the same size,
1507        // because reading one as the other is a cast and not a conversion.
1508        assert!(!vectors_convertible(&types, four_ints, four_floats, &linux));
1509        // Different sizes, so there is nothing to reinterpret.
1510        assert!(!vectors_convertible(&types, four_ints, two_ints, &linux));
1511        // A scalar is not a vector, whichever side it is on.
1512        assert!(!vectors_convertible(&types, four_ints, int, &linux));
1513        assert!(!vectors_convertible(&types, int, four_ints, &linux));
1514    }
1515
1516    /// Insists that `a + b` and `b + a` are both `expected` on this target.
1517    ///
1518    /// Both ways round, because the operands of `+` are not ordered and an implementation that
1519    /// keeps the left one when it cannot decide would pass half of these and be wrong.
1520    fn combines(target: &TargetInfo, a: FloatKind, b: FloatKind, expected: FloatKind) {
1521        let mut types = Types::new();
1522        let left = types.float(a);
1523        let right = types.float(b);
1524        let want = types.float(expected);
1525        assert_eq!(usual_arithmetic(&mut types, left, right, target), Some(want), "{a:?} + {b:?}");
1526        assert_eq!(usual_arithmetic(&mut types, right, left, target), Some(want), "{b:?} + {a:?}");
1527    }
1528
1529    #[test]
1530    fn two_floating_types_of_the_same_format_are_still_two_types_and_one_of_them_wins() {
1531        // Every line here was read off gcc 16 with `_Generic` rather than off the standard, on
1532        // x86-64 Linux, where `long double` and `_Float64x` are both the x87 format and the
1533        // standard type is the one that comes out.
1534        let x86 = linux();
1535        combines(&x86, FloatKind::Double, FloatKind::Float64, FloatKind::Float64);
1536        combines(&x86, FloatKind::Float, FloatKind::Float32, FloatKind::Float32);
1537        combines(&x86, FloatKind::Double, FloatKind::Float32x, FloatKind::Double);
1538        combines(&x86, FloatKind::LongDouble, FloatKind::Float64x, FloatKind::LongDouble);
1539        combines(&x86, FloatKind::Float128, FloatKind::LongDouble, FloatKind::Float128);
1540        combines(&x86, FloatKind::Float64x, FloatKind::Float128, FloatKind::Float128);
1541        combines(&x86, FloatKind::Double, FloatKind::LongDouble, FloatKind::LongDouble);
1542        combines(&x86, FloatKind::Float32x, FloatKind::Float64, FloatKind::Float64);
1543        combines(&x86, FloatKind::Float64x, FloatKind::Float64, FloatKind::Float64x);
1544        combines(&x86, FloatKind::LongDouble, FloatKind::Float64, FloatKind::LongDouble);
1545    }
1546
1547    #[test]
1548    fn the_widest_floating_type_is_a_question_about_the_target_and_not_about_the_names() {
1549        // The same reading against gcc 16 on aarch64-apple-darwin, where `long double` is a
1550        // `double` and loses to the `_Float64x` it beats on x86-64. The name says nothing about
1551        // which of the two is wider, which is why the ordering is worked out from the formats.
1552        let mac = target("aarch64-apple-darwin");
1553        combines(&mac, FloatKind::LongDouble, FloatKind::Float64x, FloatKind::Float64x);
1554        combines(&mac, FloatKind::Double, FloatKind::LongDouble, FloatKind::LongDouble);
1555        combines(&mac, FloatKind::Float128, FloatKind::LongDouble, FloatKind::Float128);
1556        combines(&mac, FloatKind::Float64x, FloatKind::Float64, FloatKind::Float64x);
1557        combines(&mac, FloatKind::Float32x, FloatKind::Float32, FloatKind::Float32x);
1558        combines(&mac, FloatKind::Float32x, FloatKind::Float64, FloatKind::Float64);
1559        combines(&mac, FloatKind::Double, FloatKind::Float64, FloatKind::Float64);
1560        // `_Float16` is the narrowest type there is and does not promote on the way in, so it
1561        // survives an operation only when nothing wider is there.
1562        combines(&mac, FloatKind::Float16, FloatKind::Float, FloatKind::Float);
1563        combines(&mac, FloatKind::Float16, FloatKind::Double, FloatKind::Double);
1564        combines(&mac, FloatKind::Float16, FloatKind::Float16, FloatKind::Float16);
1565    }
1566
1567    #[test]
1568    fn a_complex_operand_makes_the_answer_complex_after_the_real_types_have_combined() {
1569        let mut types = Types::new();
1570        let linux = linux();
1571        let cfloat = types.complex(FloatKind::Float);
1572        let cdouble = types.complex(FloatKind::Double);
1573        let cldouble = types.complex(FloatKind::LongDouble);
1574        let double = types.float(FloatKind::Double);
1575        let long_double = types.float(FloatKind::LongDouble);
1576        let float = types.float(FloatKind::Float);
1577        let int = types.int(IntKind::Int);
1578
1579        assert_eq!(usual_arithmetic(&mut types, cfloat, double, &linux), Some(cdouble));
1580        assert_eq!(usual_arithmetic(&mut types, cfloat, int, &linux), Some(cfloat));
1581        assert_eq!(usual_arithmetic(&mut types, cdouble, long_double, &linux), Some(cldouble));
1582        assert_eq!(usual_arithmetic(&mut types, cfloat, float, &linux), Some(cfloat));
1583    }
1584
1585    #[test]
1586    fn an_operand_that_is_not_arithmetic_has_no_common_type() {
1587        // The caller is the one holding the span, so this says no rather than guessing.
1588        let mut types = Types::new();
1589        let linux = linux();
1590        let int = types.int(IntKind::Int);
1591        let pointer = types.pointer(int);
1592        assert_eq!(usual_arithmetic(&mut types, pointer, int, &linux), None);
1593        assert_eq!(usual_arithmetic(&mut types, pointer, pointer, &linux), None);
1594        let void = types.void();
1595        assert_eq!(usual_arithmetic(&mut types, void, int, &linux), None);
1596        // And a type that is not arithmetic is still its own promotion, so a caller may promote
1597        // first and ask questions afterwards.
1598        assert_eq!(promote(&mut types, pointer, &linux), pointer);
1599    }
1600
1601    #[test]
1602    fn the_conversions_read_through_sugar() {
1603        let mut interner = Interner::new();
1604        let mut types = Types::new();
1605        let linux = linux();
1606        let char_ = types.int(IntKind::Char);
1607        let name = types.typedef(interner.intern("byte"), char_);
1608        let int = types.int(IntKind::Int);
1609        assert_eq!(promote(&mut types, name, &linux), int);
1610    }
1611
1612    /// A prototype returning `void`.
1613    fn prototype(types: &mut Types, params: Vec<TypeId>, variadic: bool) -> TypeId {
1614        let ret = types.void();
1615        types.function(FunctionType { ret, params, variadic, prototyped: true })
1616    }
1617
1618    /// `void f()` as it means before C23: a declaration that says nothing about the parameters.
1619    fn old_style(types: &mut Types) -> TypeId {
1620        let ret = types.void();
1621        types.function(FunctionType { ret, params: Vec::new(), variadic: false, prototyped: false })
1622    }
1623
1624    /// A complete record with the given tag and members.
1625    fn tagged(types: &mut Types, tag: Symbol, fields: &[FieldDecl]) -> RecordId {
1626        let id = types.declare_record(RecordKind::Struct, Some(tag));
1627        let laid_out = lay_out(types, RecordKind::Struct, fields);
1628        types.complete_record(id, laid_out);
1629        id
1630    }
1631
1632    #[test]
1633    fn a_type_is_compatible_with_itself_however_it_was_written() {
1634        let mut interner = Interner::new();
1635        let mut types = Types::new();
1636        let int = types.int(IntKind::Int);
1637        let name = types.typedef(interner.intern("int32_t"), int);
1638        assert!(compatible(&types, name, int), "the sugar is the same type underneath");
1639        assert_eq!(composite(&mut types, name, int), Some(name), "and it keeps its name");
1640
1641        // The qualifiers have to match exactly, which is what keeps `const int *` and `int *`
1642        // apart as parameter types.
1643        let konst = types.qualified(int, Qualifiers::CONST);
1644        assert!(!compatible(&types, konst, int));
1645        let konst_pointer = types.pointer(konst);
1646        let pointer = types.pointer(int);
1647        assert!(!compatible(&types, konst_pointer, pointer));
1648        assert_eq!(composite(&mut types, konst_pointer, pointer), None);
1649
1650        // And a different type is a different type. `char` is not `signed char` even on a target
1651        // where the two have the same range, which is why they are separate kinds here.
1652        let char_ = types.int(IntKind::Char);
1653        let schar = types.int(IntKind::SChar);
1654        assert!(!compatible(&types, char_, schar));
1655        // `_Atomic int` is not `int` either, since it is a type and not a qualifier.
1656        let atomic = types.atomic(int);
1657        assert!(!compatible(&types, atomic, int));
1658    }
1659
1660    #[test]
1661    fn an_enumeration_is_compatible_with_the_type_it_is_represented_in() {
1662        // gcc 13.3 and clang 18 both represent `enum E { A, B }` in `unsigned int`, and both
1663        // accept a redeclaration that writes the representation instead of the tag.
1664        let mut types = Types::new();
1665        let uint = types.int(IntKind::UInt);
1666        let int = types.int(IntKind::Int);
1667        let id = types.declare_enum(None);
1668        types.complete_enum(id, uint, false);
1669        let e = types.enumeration(id);
1670        assert!(compatible(&types, e, uint));
1671        assert!(compatible(&types, uint, e), "and the relation is symmetric");
1672        assert!(!compatible(&types, e, int));
1673
1674        // Two enumeration declarations are two types. Each is compatible with what it is
1675        // represented in, and that does not make them compatible with each other.
1676        let other = types.declare_enum(None);
1677        types.complete_enum(other, uint, false);
1678        let other = types.enumeration(other);
1679        assert!(!compatible(&types, e, other));
1680
1681        // One nobody has decided on yet is compatible with nothing but itself, because the
1682        // answer is not known rather than no.
1683        let undecided = types.declare_enum(None);
1684        let undecided = types.enumeration(undecided);
1685        assert!(!compatible(&types, undecided, uint));
1686        assert!(compatible(&types, undecided, undecided));
1687    }
1688
1689    #[test]
1690    fn an_array_without_a_size_is_compatible_with_one_that_has_it() {
1691        // `extern int a[]; int a[4];` is a complete array of four afterwards, which gcc reports
1692        // as a `sizeof` of sixteen. A compiler that keeps the first type has lost the size.
1693        let mut types = Types::new();
1694        let int = types.int(IntKind::Int);
1695        let unknown = types.array(int, ArrayLen::Unknown);
1696        let four = types.array(int, ArrayLen::Fixed(4));
1697        let five = types.array(int, ArrayLen::Fixed(5));
1698        assert!(compatible(&types, unknown, four));
1699        assert!(!compatible(&types, four, five));
1700        assert_eq!(composite(&mut types, unknown, four), Some(four));
1701        assert_eq!(composite(&mut types, four, unknown), Some(four), "either way round");
1702        assert_eq!(composite(&mut types, four, five), None);
1703
1704        // A variable length array is compatible with both, because its size is not something a
1705        // declaration can be checked against.
1706        let vla = types.array(int, ArrayLen::Variable(VlaId(0)));
1707        assert!(compatible(&types, vla, four));
1708        assert_eq!(composite(&mut types, vla, four), Some(four));
1709
1710        // The element types have to be compatible too, and the composite reaches into them.
1711        let long = types.int(IntKind::Long);
1712        let longs = types.array(long, ArrayLen::Fixed(4));
1713        assert!(!compatible(&types, four, longs));
1714    }
1715
1716    #[test]
1717    fn a_parameter_declared_as_an_array_is_a_pointer() {
1718        // `int fn(int p[3])` and `int fn(int *p)` are one declaration and one definition, which
1719        // both compilers accept. The adjustment is part of forming the parameter type, so two
1720        // functions written either way are not merely compatible but identical.
1721        let mut types = Types::new();
1722        let int = types.int(IntKind::Int);
1723        let three = types.array(int, ArrayLen::Fixed(3));
1724        let pointer = types.pointer(int);
1725        assert_eq!(adjust_parameter(&mut types, three), pointer);
1726
1727        // A function parameter becomes a pointer to the function the same way.
1728        let function = prototype(&mut types, vec![int], false);
1729        let function_pointer = types.pointer(function);
1730        assert_eq!(adjust_parameter(&mut types, function), function_pointer);
1731
1732        // And the qualifiers on the outermost node go, so `void f(const int)` and `void f(int)`
1733        // declare the same function. The pointee of a `const int *` keeps its own.
1734        let konst = types.qualified(int, Qualifiers::CONST);
1735        assert_eq!(adjust_parameter(&mut types, konst), int);
1736        let to_konst = types.pointer(konst);
1737        assert_eq!(adjust_parameter(&mut types, to_konst), to_konst);
1738    }
1739
1740    #[test]
1741    fn an_old_style_declaration_is_compatible_with_the_prototypes_a_call_could_not_tell_from_it() {
1742        // Measured with gcc 13.3 in C17 mode, which is the compiler that still has the old
1743        // meaning of `()`. It names the rule in its own diagnostic: an argument type that has a
1744        // default promotion cannot match an empty parameter name list declaration.
1745        let mut types = Types::new();
1746        let old = old_style(&mut types);
1747        let int = types.int(IntKind::Int);
1748        let long = types.int(IntKind::Long);
1749        let char_ = types.int(IntKind::Char);
1750        let float = types.float(FloatKind::Float);
1751        let double = types.float(FloatKind::Double);
1752
1753        let takes_int = prototype(&mut types, vec![int], false);
1754        assert!(compatible(&types, old, takes_int));
1755        assert!(compatible(&types, takes_int, old), "and the relation is symmetric");
1756        // The composite is the prototype, so the calls written before it can still be checked.
1757        assert_eq!(composite(&mut types, old, takes_int), Some(takes_int));
1758
1759        let pointer = types.pointer(int);
1760        for params in [vec![long], vec![double], vec![pointer], vec![int, long]] {
1761            let ty = prototype(&mut types, params, false);
1762            assert!(compatible(&types, old, ty), "nothing here is touched by a promotion");
1763        }
1764
1765        // A `char` promotes to `int` and a `float` to `double`, so a call through the old style
1766        // declaration would have passed something else and the two conflict.
1767        for params in [vec![char_], vec![float], vec![int, char_]] {
1768            let ty = prototype(&mut types, params, false);
1769            assert!(!compatible(&types, old, ty));
1770            assert_eq!(composite(&mut types, old, ty), None);
1771        }
1772
1773        // An ellipsis conflicts too, which gcc also says in as many words.
1774        let variadic = prototype(&mut types, vec![int], true);
1775        assert!(!compatible(&types, old, variadic));
1776
1777        // An enumeration parameter comes through when what it is represented in does.
1778        let uint = types.int(IntKind::UInt);
1779        let id = types.declare_enum(None);
1780        types.complete_enum(id, uint, false);
1781        let e = types.enumeration(id);
1782        let takes_enum = prototype(&mut types, vec![e], false);
1783        assert!(compatible(&types, old, takes_enum));
1784
1785        // Two old style declarations agree about nothing and so cannot disagree.
1786        assert!(compatible(&types, old, old));
1787
1788        // The return type still has to match, which is the one part `()` does say.
1789        let returns_int = types.function(FunctionType {
1790            ret: int,
1791            params: Vec::new(),
1792            variadic: false,
1793            prototyped: false,
1794        });
1795        assert!(!compatible(&types, returns_int, takes_int));
1796    }
1797
1798    #[test]
1799    fn from_c23_an_empty_parameter_list_is_a_prototype_and_conflicts_where_it_used_to_merge() {
1800        // The dialect decides what `()` means and the parser records the decision, so the same
1801        // pair of declarations is a redeclaration in C17 and a conflict in C23. Both compilers
1802        // report exactly that.
1803        let mut types = Types::new();
1804        let int = types.int(IntKind::Int);
1805        let takes_int = prototype(&mut types, vec![int], false);
1806        let takes_nothing = prototype(&mut types, Vec::new(), false);
1807        let old = old_style(&mut types);
1808        assert!(!compatible(&types, takes_nothing, takes_int));
1809        assert!(compatible(&types, old, takes_int), "the C17 reading of the same source");
1810    }
1811
1812    #[test]
1813    fn two_prototypes_have_to_agree_about_everything() {
1814        let mut types = Types::new();
1815        let int = types.int(IntKind::Int);
1816        let long = types.int(IntKind::Long);
1817        let base = prototype(&mut types, vec![int, int], false);
1818        for other in [vec![int], vec![int, long], vec![int, int, int], Vec::new()] {
1819            let other = prototype(&mut types, other, false);
1820            assert!(!compatible(&types, base, other));
1821        }
1822        let variadic = prototype(&mut types, vec![int, int], true);
1823        assert!(!compatible(&types, base, variadic), "`...` is part of the type");
1824
1825        // The parameters are compared with the same rules as anything else, so an array size
1826        // inside a parameter's type is compared and an unknown one is not.
1827        let four = types.array(int, ArrayLen::Fixed(4));
1828        let unknown = types.array(int, ArrayLen::Unknown);
1829        let to_four = types.pointer(four);
1830        let to_unknown = types.pointer(unknown);
1831        let a = prototype(&mut types, vec![to_four], false);
1832        let b = prototype(&mut types, vec![to_unknown], false);
1833        assert!(compatible(&types, a, b));
1834        // And the composite takes the size, which is the whole reason it exists.
1835        assert_eq!(composite(&mut types, a, b), Some(a));
1836    }
1837
1838    #[test]
1839    fn a_pointer_composite_reaches_through_to_what_is_pointed_at() {
1840        let mut types = Types::new();
1841        let int = types.int(IntKind::Int);
1842        let four = types.array(int, ArrayLen::Fixed(4));
1843        let unknown = types.array(int, ArrayLen::Unknown);
1844        let to_four = types.pointer(four);
1845        let to_unknown = types.pointer(unknown);
1846        assert_eq!(composite(&mut types, to_unknown, to_four), Some(to_four));
1847
1848        // The pointer's own qualifiers survive, since a compatible pair has the same ones.
1849        let konst_to_unknown = types.qualified(to_unknown, Qualifiers::CONST);
1850        let konst_to_four = types.qualified(to_four, Qualifiers::CONST);
1851        assert_eq!(composite(&mut types, konst_to_unknown, konst_to_four), Some(konst_to_four));
1852    }
1853
1854    #[test]
1855    fn two_record_declarations_with_the_same_tag_and_the_same_members_are_compatible() {
1856        // C23 6.2.7p1, which is what lets one header be included twice. clang 18 implements it
1857        // and gcc 13.3 still rejects the redefinition, so this is a divergence rather than a
1858        // reading; in the older dialects the redefinition never gets as far as being compared.
1859        let mut interner = Interner::new();
1860        let mut types = Types::new();
1861        let tag = interner.intern("point");
1862        let x = interner.intern("x");
1863        let y = interner.intern("y");
1864        let int = types.int(IntKind::Int);
1865        let members = [FieldDecl::new(Some(x), int), FieldDecl::new(Some(y), int)];
1866
1867        let first = tagged(&mut types, tag, &members);
1868        let second = tagged(&mut types, tag, &members);
1869        let first = types.record(first);
1870        let second = types.record(second);
1871        assert_ne!(first, second, "still two declarations and two types");
1872        assert!(compatible(&types, first, second));
1873
1874        // A different member name, a different member type, a different count, a different tag
1875        // and a different keyword are each enough to make them different types.
1876        let z = interner.intern("z");
1877        let long = types.int(IntKind::Long);
1878        let renamed = [FieldDecl::new(Some(x), int), FieldDecl::new(Some(z), int)];
1879        let retyped = [FieldDecl::new(Some(x), int), FieldDecl::new(Some(y), long)];
1880        for other in [&renamed[..], &retyped[..], &members[..1]] {
1881            let other = tagged(&mut types, tag, other);
1882            let other = types.record(other);
1883            assert!(!compatible(&types, first, other));
1884        }
1885        let elsewhere = tagged(&mut types, interner.intern("pair"), &members);
1886        let elsewhere = types.record(elsewhere);
1887        assert!(!compatible(&types, first, elsewhere));
1888
1889        // An anonymous record is compatible with nothing but itself: there is no name by which
1890        // a second declaration could be claiming to be the same type.
1891        let anonymous = record(&mut types, RecordKind::Struct, &members);
1892        let also_anonymous = record(&mut types, RecordKind::Struct, &members);
1893        assert!(!compatible(&types, anonymous, also_anonymous));
1894
1895        // Nor is an incomplete declaration, which has no members to compare.
1896        let incomplete = types.declare_record(RecordKind::Struct, Some(tag));
1897        let incomplete = types.record(incomplete);
1898        assert!(!compatible(&types, first, incomplete));
1899        assert!(compatible(&types, incomplete, incomplete));
1900    }
1901
1902    #[test]
1903    fn a_self_referential_record_is_compared_without_going_round_forever() {
1904        // `struct node { int value; struct node *next; }` declared twice. Comparing the two
1905        // reaches the same pair again through the pointer, and the second time it is an
1906        // assumption rather than a question.
1907        let mut interner = Interner::new();
1908        let mut types = Types::new();
1909        let tag = interner.intern("node");
1910        let value = interner.intern("value");
1911        let next = interner.intern("next");
1912        let int = types.int(IntKind::Int);
1913
1914        let node = |types: &mut Types| {
1915            let id = types.declare_record(RecordKind::Struct, Some(tag));
1916            let ty = types.record(id);
1917            let pointer = types.pointer(ty);
1918            let members = [FieldDecl::new(Some(value), int), FieldDecl::new(Some(next), pointer)];
1919            let laid_out = lay_out(types, RecordKind::Struct, &members);
1920            types.complete_record(id, laid_out);
1921            ty
1922        };
1923        let first = node(&mut types);
1924        let second = node(&mut types);
1925        assert_ne!(first, second);
1926        assert!(compatible(&types, first, second));
1927
1928        // The guard is an assumption and not an answer, so a difference below the cycle is still
1929        // found: the same structure with the two members the other way round is a different one.
1930        let id = types.declare_record(RecordKind::Struct, Some(tag));
1931        let ty = types.record(id);
1932        let pointer = types.pointer(ty);
1933        let members = [FieldDecl::new(Some(next), pointer), FieldDecl::new(Some(value), int)];
1934        let laid_out = lay_out(&types, RecordKind::Struct, &members);
1935        types.complete_record(id, laid_out);
1936        assert!(!compatible(&types, first, ty));
1937    }
1938
1939    #[test]
1940    fn layout_reads_through_sugar() {
1941        let mut interner = Interner::new();
1942        let mut types = Types::new();
1943        let long = types.int(IntKind::Long);
1944        let name = types.typedef(interner.intern("word"), long);
1945        let array = types.array(name, ArrayLen::Fixed(4));
1946        assert_eq!(layout(&types, array, &linux()).unwrap(), Layout::new(32, 8));
1947    }
1948}