rucc_target/lib.rs
1//! Target descriptions: triples, and the facts about a target that the rest of the
2//! compiler reads rather than hard-codes.
3//!
4//! Design: `spec/12-abi-and-runtime.md`. Layer rank 2, see `spec/18-package-layout.md`.
5//!
6//! The rule from `spec/18-package-layout.md` section 18.2 is that there is no
7//! target-specific code outside this crate, `rucc-tuple`, `rucc-abi`, `rucc-sysroot` and the
8//! per-target rule sets. Those four are one group rather than four exceptions: the tuple names
9//! a machine, `rucc-abi` says what its types look like and how its calls are made,
10//! `rucc-sysroot` says where its headers and libraries are, and this crate is what the rest of
11//! the compiler reads all of it through. Everything a pass
12//! needs to know about a target is a field it can read here. That rule is what makes the
13//! claim in `spec/10-backend.md` testable, namely that a new target is a rule set and a few
14//! data files, and `M10` brings up a fourth target specifically to put a number on it.
15//!
16//! [`TargetInfo::call`] is the other half of that rule and the one with teeth. How a structure
17//! travels between a caller and a callee is the target's answer rather than C's, so the walk to
18//! the IR flattens a C type into a [`Shape`] and asks here what form it takes. Every psABI rule
19//! is behind [`Call`] and nothing outside this crate matches on an architecture to find one.
20//! The rules themselves are `rucc-abi`'s, as data rather than as code, and this crate hands the
21//! question over to them. It answers [`None`] on a target whose ABI is not written down yet,
22//! which today is AArch64 on Windows and nothing else.
23//!
24//! # Status
25//!
26//! Triple parsing and the basic data model are real, which is what `rucc --print-config`
27//! reports, and so is the argument classification of every psABI in
28//! `spec/12-abi-and-runtime.md` sections 12.2 to 12.5, which `rucc-abi` describes as data and
29//! this crate selects between. x86-64's register file is written down,
30//! in [`x86_64`], along with what each of the two conventions over it does with each register,
31//! what each of its machine instructions does with its operands, and which instructions a frame
32//! is made of, which is [`FrameInsts`]. AArch64's register file and the two conventions over it,
33//! AAPCS64 and Apple's, are in [`aarch64`], and its instructions arrive with its backend in `M6`.
34//! RISC-V's arrive with its own. Machine models land in `M6`.
35//!
36//! This crate is tier 3 in `spec/18-package-layout.md` section 18.5: its Rust API is
37//! explicitly unstable and will change without a major version bump.
38
39#![doc(html_root_url = "https://docs.rs/rucc-target/0.12.2")]
40
41use std::fmt;
42use std::str::FromStr;
43
44use rucc_abi::DataLayout;
45use rucc_base::float::Format;
46use rucc_tuple::{self as tuple, TargetTuple};
47
48pub mod aarch64;
49mod abi;
50mod bits;
51mod branch;
52mod flags;
53mod frame;
54pub mod isa;
55mod machine;
56mod named;
57mod operand;
58mod regs;
59mod short;
60pub mod template;
61mod timing;
62mod typenames;
63pub mod x86_64;
64
65pub use crate::abi::{
66 AbiDescription, Arg, Call, Kind, Narrow, Pass, Piece, Scalar, Shape, Slot, Variadic,
67};
68pub use crate::bits::BitInsts;
69pub use crate::branch::{BranchInsts, Fusion, Move};
70pub use crate::flags::{Compare, FlagInsts, Reader, Reads, Zeroing};
71pub use crate::frame::{ClassMoves, FrameInsts, Pair, Probe};
72pub use crate::isa::{Choices, Feature, Isa, Target, TargetRefusal};
73pub use crate::machine::{Address, MachineInsts};
74pub use crate::operand::{Constraint, OperandDesc, Role};
75pub use crate::regs::{
76 CallRegs, Chkstk, ClassInfo, Guard, PhysReg, Places, RegClass, RegFile, Segment, Trace, Where,
77};
78pub use crate::short::{Copied, Narrowed, ShortInsts, Stepped, Tested, Zeroed};
79pub use crate::timing::{Timing, TimingInsts, Unit};
80pub use crate::typenames::{Lane, TypeName};
81
82/// A target architecture.
83#[derive(Debug, Clone, Copy, PartialEq, Eq, PartialOrd, Ord, Hash)]
84// Deliberately not `#[non_exhaustive]`. Adding a variant here has to break every
85// match that needs to change, in this workspace and in anyone else's code. That is
86// the property `spec/10-backend.md` section 10.8 is claiming when it says adding a
87// target is a data change: the compiler tells you every place the data is read.
88pub enum Arch {
89 /// x86-64, the first target and the one `M3` brings up.
90 X86_64,
91 /// AArch64, the second target, `M6`.
92 Aarch64,
93 /// 64-bit RISC-V. `spec/10-backend.md` calls this the middle-end canary, because it has
94 /// no condition codes and no complex addressing modes, so anything the middle end got
95 /// away with on x86-64 shows up here.
96 Riscv64,
97}
98
99impl Arch {
100 /// Pointer width in bits.
101 pub const fn pointer_width(self) -> u32 {
102 match self {
103 Arch::X86_64 | Arch::Aarch64 | Arch::Riscv64 => 64,
104 }
105 }
106
107 /// Whether the target is little-endian.
108 pub const fn is_little_endian(self) -> bool {
109 match self {
110 Arch::X86_64 | Arch::Aarch64 | Arch::Riscv64 => true,
111 }
112 }
113
114 /// The name as it appears in a triple.
115 pub const fn as_str(self) -> &'static str {
116 match self {
117 Arch::X86_64 => "x86_64",
118 Arch::Aarch64 => "aarch64",
119 Arch::Riscv64 => "riscv64",
120 }
121 }
122}
123
124/// The operating system a target runs on.
125#[derive(Debug, Clone, Copy, PartialEq, Eq, PartialOrd, Ord, Hash)]
126// Deliberately not `#[non_exhaustive]`. Adding a variant here has to break every
127// match that needs to change, in this workspace and in anyone else's code. That is
128// the property `spec/10-backend.md` section 10.8 is claiming when it says adding a
129// target is a data change: the compiler tells you every place the data is read.
130pub enum Os {
131 /// Linux, hosted or freestanding.
132 Linux,
133 /// Apple platforms. `spec/12-abi-and-runtime.md` section 12.3 lists the four places
134 /// Apple diverges from AAPCS64, and every one of them is a real bug if missed.
135 Darwin,
136 /// Windows.
137 Windows,
138 /// No operating system, which is what `-ffreestanding` kernel work looks like.
139 None,
140}
141
142impl Os {
143 /// The name as it appears in a triple.
144 pub const fn as_str(self) -> &'static str {
145 match self {
146 Os::Linux => "linux",
147 Os::Darwin => "darwin",
148 Os::Windows => "windows",
149 Os::None => "none",
150 }
151 }
152
153 /// The object file format this operating system uses.
154 pub const fn object_format(self) -> ObjectFormat {
155 match self {
156 Os::Linux | Os::None => ObjectFormat::Elf,
157 Os::Darwin => ObjectFormat::MachO,
158 Os::Windows => ObjectFormat::Coff,
159 }
160 }
161}
162
163/// The C runtime and ABI variant.
164#[derive(Debug, Clone, Copy, PartialEq, Eq, PartialOrd, Ord, Hash)]
165// Deliberately not `#[non_exhaustive]`. Adding a variant here has to break every
166// match that needs to change, in this workspace and in anyone else's code. That is
167// the property `spec/10-backend.md` section 10.8 is claiming when it says adding a
168// target is a data change: the compiler tells you every place the data is read.
169pub enum Env {
170 /// The default for the operating system.
171 None,
172 /// glibc.
173 Gnu,
174 /// musl.
175 Musl,
176 /// The MSVC ABI.
177 Msvc,
178}
179
180impl Env {
181 /// The name as it appears in a triple, if it appears at all.
182 pub const fn as_str(self) -> &'static str {
183 match self {
184 Env::None => "none",
185 Env::Gnu => "gnu",
186 Env::Musl => "musl",
187 Env::Msvc => "msvc",
188 }
189 }
190}
191
192/// The object file format to emit.
193#[derive(Debug, Clone, Copy, PartialEq, Eq, PartialOrd, Ord, Hash)]
194// Deliberately not `#[non_exhaustive]`. Adding a variant here has to break every
195// match that needs to change, in this workspace and in anyone else's code. That is
196// the property `spec/10-backend.md` section 10.8 is claiming when it says adding a
197// target is a data change: the compiler tells you every place the data is read.
198pub enum ObjectFormat {
199 /// ELF.
200 Elf,
201 /// Mach-O.
202 MachO,
203 /// COFF.
204 Coff,
205 /// WebAssembly, which is a format for a module rather than for a machine's object file and
206 /// is in this list because the target table has two rows that emit one.
207 Wasm,
208}
209
210impl ObjectFormat {
211 /// The name used in diagnostics and in `--print-config`.
212 pub const fn as_str(self) -> &'static str {
213 match self {
214 ObjectFormat::Elf => "elf",
215 ObjectFormat::MachO => "macho",
216 ObjectFormat::Coff => "coff",
217 ObjectFormat::Wasm => "wasm",
218 }
219 }
220
221 /// The same format as [`rucc_tuple::ObjectFormat`] names it.
222 ///
223 /// The two enumerations exist because the tuple describes forty two targets and this crate
224 /// describes what the compiler emits for one, and they will stay separate for as long as that
225 /// is true. This is the one place they are put side by side.
226 #[must_use]
227 pub const fn from_tuple(format: tuple::ObjectFormat) -> Self {
228 match format {
229 tuple::ObjectFormat::Elf => ObjectFormat::Elf,
230 tuple::ObjectFormat::MachO => ObjectFormat::MachO,
231 tuple::ObjectFormat::Coff => ObjectFormat::Coff,
232 tuple::ObjectFormat::Wasm => ObjectFormat::Wasm,
233 }
234 }
235}
236
237/// A target triple.
238///
239/// We accept the LLVM-style `arch-vendor-os-env` form because that is what build systems
240/// pass, and we normalise it to the three fields we actually branch on. The vendor field is
241/// parsed and discarded: no decision in the compiler depends on it, and keeping it would
242/// invite one.
243#[derive(Debug, Clone, Copy, PartialEq, Eq, PartialOrd, Ord, Hash)]
244pub struct Triple {
245 /// The architecture.
246 pub arch: Arch,
247 /// The operating system.
248 pub os: Os,
249 /// The runtime and ABI variant.
250 pub env: Env,
251}
252
253impl Triple {
254 /// A triple from its three parts.
255 pub const fn new(arch: Arch, os: Os, env: Env) -> Self {
256 Self { arch, os, env }
257 }
258
259 /// The same machine as a [`TargetTuple`], which is what the layout and ABI descriptions are
260 /// written over.
261 ///
262 /// The tuple carries ten fields and this carries three, so this fills the other seven in from
263 /// their defaults, and every one of those defaults is the answer for the targets this type can
264 /// spell. There is no `x32` here and no big-endian AArch64, so the data model and the byte
265 /// order follow the architecture, and the sub-architecture, the versions and the float ABI have
266 /// nothing to say about any of the combinations.
267 ///
268 /// The environment is narrowed rather than copied across. This type will hold
269 /// `Triple { os: Darwin, env: Gnu }`, because its parser takes the fields by content and
270 /// `aarch64-apple-darwin-gnu` is a string somebody can type, and that is not a machine: a
271 /// Darwin target has one libc and it is not glibc. A tuple refuses to describe one, so the
272 /// pairs that are not machines are mapped to the environment the operating system actually
273 /// has.
274 ///
275 /// # Panics
276 ///
277 /// Never, for a triple this type can hold, which `every_triple_describes_a_machine` checks by
278 /// building all forty eight of them.
279 #[must_use]
280 pub fn tuple(self) -> TargetTuple {
281 let arch = match self.arch {
282 Arch::X86_64 => tuple::Arch::X86_64,
283 Arch::Aarch64 => tuple::Arch::Aarch64,
284 Arch::Riscv64 => tuple::Arch::Riscv64,
285 };
286 let os = match self.os {
287 Os::Linux => tuple::Os::Linux,
288 // macOS rather than iOS, because the three field triple cannot tell them apart and
289 // this compiler is hosted on the one and not on the other.
290 Os::Darwin => tuple::Os::MacOs,
291 Os::Windows => tuple::Os::Windows,
292 Os::None => tuple::Os::None,
293 };
294 let env = match (self.os, self.env) {
295 (Os::Linux, Env::Musl) => tuple::Env::Musl,
296 (Os::Linux, _) => tuple::Env::Gnu,
297 // mingw-w64 is a real Windows environment and the one place `gnu` survives the
298 // narrowing, because it has a different `long double` from MSVC on the same OS.
299 (Os::Windows, Env::Gnu) => tuple::Env::Gnu,
300 (Os::Windows, _) => tuple::Env::Msvc,
301 // Darwin and freestanding have no libc to name.
302 (Os::Darwin | Os::None, _) => tuple::Env::None,
303 };
304 TargetTuple::builder(arch, os)
305 .env(env)
306 .build()
307 .expect("every triple this type can hold describes a machine")
308 }
309
310 /// The triple that describes the same machine as `target`, if this type can spell it.
311 ///
312 /// The inverse of [`Triple::tuple`], and computed by running that function over every triple
313 /// there is rather than by writing the narrowing out a second time. A second table would be a
314 /// second thing to keep in step, and the failure it invites is not a compile error: it is one
315 /// row of the matrix quietly answering as a neighbour.
316 ///
317 /// It returns `None` for most of the target table, and that is the honest answer rather than a
318 /// gap to be papered over. `rucc-abi` describes the scalar layout of all forty two rows, and
319 /// this type holds three fields with three architectures in the first, so seventeen of those
320 /// rows have a [`TargetInfo`] and the other twenty five do not. Anything that needs to lay a
321 /// record out for `s390x-linux-gnu` needs that gap closed rather than an approximation of it.
322 ///
323 /// The environment of the answer is the narrowed one, so the triple this gives back is the
324 /// canonical spelling of that machine: `Env::None` on Darwin and on a freestanding target,
325 /// never the `Env::Gnu` that a parser will accept from a string somebody typed. A deployment
326 /// target or a glibc release does not change which triple a tuple narrows to, so
327 /// `aarch64-macos.13` is the Darwin triple rather than a miss.
328 #[must_use]
329 pub fn from_tuple(target: TargetTuple) -> Option<Triple> {
330 // Four triples narrow onto `x86_64-linux-gnu`, because a Darwin triple claiming glibc is
331 // a string somebody can type and not a machine. So a match is not enough on its own: the
332 // answer is the candidate whose environment came through the narrowing unchanged, and
333 // anything else is only a fallback for the day a narrowing loses a spelling entirely.
334 let mut fallback = None;
335 for arch in [Arch::X86_64, Arch::Aarch64, Arch::Riscv64] {
336 for os in [Os::Linux, Os::Darwin, Os::Windows, Os::None] {
337 for env in [Env::None, Env::Gnu, Env::Musl, Env::Msvc] {
338 let candidate = Triple::new(arch, os, env);
339 if candidate.tuple() != target.without_versions() {
340 continue;
341 }
342 // By name rather than by a match on the pair, so that an environment added to
343 // either enumeration does not need a line here. The one name the two spell
344 // differently is the absent one, which the tuple writes as nothing.
345 let survived = match env {
346 Env::None => target.env() == tuple::Env::None,
347 _ => env.as_str() == target.env().as_str(),
348 };
349 if survived {
350 return Some(candidate);
351 }
352 fallback.get_or_insert(candidate);
353 }
354 }
355 }
356 fallback
357 }
358
359 /// The triple of the machine this compiler is running on.
360 ///
361 /// Used as the default target, which is what makes `rucc hello.c` work with no flags.
362 /// Unknown host combinations are not an error here: they are reported by the driver,
363 /// where there is somewhere to report them to.
364 pub fn host() -> Option<Self> {
365 let arch = match std::env::consts::ARCH {
366 "x86_64" => Arch::X86_64,
367 "aarch64" => Arch::Aarch64,
368 "riscv64" => Arch::Riscv64,
369 _ => return None,
370 };
371 // Which libc this is matters, and `std::env::consts` does not say. A compiler built on
372 // Alpine and defaulting to `x86_64-unknown-linux-gnu` describes a machine it is not
373 // running on: musl and glibc disagree about `int_fast16_t` among other things, and a
374 // header that is written out of the predefined type names picks the disagreement up.
375 // The libc rucc itself was linked against is the best evidence available about the one
376 // the code it compiles will be linked against, and it is right on every machine where
377 // rucc was built for the machine it runs on.
378 let linux = if cfg!(target_env = "musl") { Env::Musl } else { Env::Gnu };
379 // Windows is gnu whichever ABI rucc itself was built for. An `rucc.exe` built with MSVC
380 // still has no Windows SDK to link against on a fresh machine, and it can fetch the
381 // mingw-w64 sysroot, so `rucc hello.c` works there only if the default is the one it can
382 // fetch. `--target=x86_64-windows-msvc` is still there for somebody who has the SDK.
383 let (os, env) = match std::env::consts::OS {
384 "linux" => (Os::Linux, linux),
385 "macos" => (Os::Darwin, Env::None),
386 "windows" => (Os::Windows, Env::Gnu),
387 _ => return None,
388 };
389 Some(Self::new(arch, os, env))
390 }
391}
392
393impl fmt::Display for Triple {
394 fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
395 // Always four fields, always the same spelling, because this string ends up in
396 // `--print-config` output that people diff.
397 write!(f, "{}-unknown-{}-{}", self.arch.as_str(), self.os.as_str(), self.env.as_str())
398 }
399}
400
401/// Why a triple failed to parse.
402#[derive(Debug, Clone, PartialEq, Eq)]
403pub struct ParseTripleError {
404 /// The triple as given.
405 pub input: String,
406 /// What specifically was not recognised.
407 pub reason: &'static str,
408}
409
410impl fmt::Display for ParseTripleError {
411 fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
412 write!(f, "unsupported target triple `{}`: {}", self.input, self.reason)
413 }
414}
415
416impl std::error::Error for ParseTripleError {}
417
418impl FromStr for Triple {
419 type Err = ParseTripleError;
420
421 fn from_str(s: &str) -> Result<Self, Self::Err> {
422 let err = |reason| ParseTripleError { input: s.to_owned(), reason };
423 let mut parts = s.split('-');
424
425 let arch = match parts.next() {
426 Some("x86_64" | "amd64") => Arch::X86_64,
427 Some("aarch64" | "arm64") => Arch::Aarch64,
428 Some("riscv64") => Arch::Riscv64,
429 _ => return Err(err("unknown architecture")),
430 };
431
432 // The vendor field is optional in practice. `x86_64-linux-gnu` and
433 // `x86_64-unknown-linux-gnu` both occur in the wild and mean the same thing, so the
434 // remaining fields are matched by content rather than by position.
435 let rest: Vec<&str> = parts.collect();
436 let mut os = None;
437 let mut env = None;
438 for part in &rest {
439 match *part {
440 "linux" => os = Some(Os::Linux),
441 "darwin" | "macos" | "macosx" | "ios" => os = Some(Os::Darwin),
442 "windows" | "win32" => os = Some(Os::Windows),
443 // `none` is the one token that means different things in the two positions.
444 // In `x86_64-unknown-none-elf` it is the operating system; in
445 // `aarch64-apple-darwin-none` it is the environment. Which one it is depends
446 // on whether an operating system has already been seen, and that rule is what
447 // makes `Display` round-trip through `FromStr`.
448 "none" if os.is_none() => os = Some(Os::None),
449 "none" => env = Some(Env::None),
450 "elf" => os = os.or(Some(Os::None)),
451 "gnu" | "gnueabi" | "gnueabihf" => env = Some(Env::Gnu),
452 "musl" | "musleabi" | "musleabihf" => env = Some(Env::Musl),
453 "msvc" => env = Some(Env::Msvc),
454 _ => {}
455 }
456 }
457
458 let os = os.ok_or_else(|| err("unknown operating system"))?;
459 // The same defaults as `rucc_tuple::Os::default_env`, so that `x86_64-pc-windows` means
460 // one target whichever of the two parsers read it, and it means the mingw-w64 one because
461 // that is the one a fresh machine can link for.
462 let env = env.unwrap_or(match os {
463 Os::Linux | Os::Windows => Env::Gnu,
464 Os::Darwin | Os::None => Env::None,
465 });
466 Ok(Self::new(arch, os, env))
467 }
468}
469
470/// The facts about a target that the compiler reads instead of hard-coding.
471///
472/// This is the whole of what a pass is allowed to know about where its output will run.
473/// It grows, and every field added here is one fewer `#[cfg]` somewhere it should not be.
474#[derive(Debug, Clone, PartialEq, Eq)]
475#[non_exhaustive]
476pub struct TargetInfo {
477 /// The machine this describes, as the ten field tuple rather than as a three field triple.
478 ///
479 /// It is the tuple because a record layout is a question every row of the target table has an
480 /// answer to, and a triple can spell fifteen of the forty two. Nothing else in this type had
481 /// to change to widen it: every field below is already derived from `rucc-abi`'s description
482 /// of this tuple, and the ones that were not were the bugs.
483 pub tuple: TargetTuple,
484 /// The sizes, the alignments and the signedness this target's headers were written against.
485 ///
486 /// The widths below are views of this and the alignments are not, which is the reason it is
487 /// kept whole. A `long long` is eight bytes on every row of the table and is aligned to four
488 /// on System V i386 and to eight everywhere else, and no width can say that.
489 pub scalars: DataLayout,
490 /// Width of a pointer in bits.
491 pub pointer_width: u32,
492 /// Whether bytes are ordered little end first.
493 pub little_endian: bool,
494 /// Whether a bare `char` is signed.
495 ///
496 /// Signed on x86-64 and unsigned on AArch64 Linux, which is the classic source of code
497 /// that works on one and not the other, so it is data rather than an assumption.
498 pub char_is_signed: bool,
499 /// Width of `long` in bits. This is the field that separates the LP64 world from
500 /// Windows LLP64.
501 pub long_width: u32,
502 /// Width of `long double` in bits: 80 bits of x87 stored in 128 on every x86-64 target but
503 /// MSVC, 128 of true quad precision on AArch64 Linux and RISC-V, and 64 on Apple's AArch64 and
504 /// under MSVC.
505 ///
506 /// Apple's x86-64 is not one of the 64-bit ones, which is the trap. The change to a `double`
507 /// came with AArch64 and the Intel answer stayed as it was, so `x86_64-apple-darwin` and
508 /// `x86_64-unknown-linux-gnu` agree here and `aarch64-apple-darwin` is the odd one.
509 pub long_double_width: u32,
510 /// The format `long double` actually is, which the width does not say.
511 ///
512 /// It is 128 bits wide on SysV x86-64 and on AArch64 Linux and the two are not the same
513 /// type: one is the x87 eighty bit format padded out to sixteen bytes and the other is
514 /// true quad precision with a hundred and thirteen bits of significand. Anything that
515 /// converts a constant or folds one has to know which, and the width alone cannot say.
516 pub long_double_format: Format,
517 /// The format `_Float64x` is, which is the widest format the target has short of a software
518 /// one.
519 ///
520 /// It follows the architecture and not the operating system, which is what makes it worth a
521 /// field of its own next to `long double`. Apple and Windows define `long double` as a
522 /// `double` and neither of them takes `_Float64x` down with it: the type has to be wider
523 /// than a `_Float64`, so it is the x87 eighty bit format on x86-64 and quad precision on
524 /// AArch64 and RISC-V wherever it is written.
525 ///
526 /// [`None`] on a machine whose widest format is a `double`, which is 32-bit ARM and wasm32.
527 /// The type does not exist there and neither reference defines the macros that describe it,
528 /// so the honest answer is that there is no format rather than a `double` in its place.
529 pub float64x_format: Option<Format>,
530 /// Whether the target has `_Float16`.
531 ///
532 /// The named types are not all universal the way `_Float32` and `_Float64` are. gcc 13 has
533 /// this one on x86-64, AArch64 and RISC-V and does not have it on i686, armv7, ppc64le or
534 /// s390x, which was measured by compiling a declaration of it with each of those cross
535 /// compilers. The `__FLT16_*__` macros and the `f16` suffix are defined on exactly the rows
536 /// where the type is, so all three ask this one field.
537 ///
538 /// i686 is the row worth explaining. gcc aims at the baseline of the target rather than at
539 /// whatever chip is under it, and half precision on x86 needs SSE2, which is in the baseline
540 /// of x86-64 and not in the baseline of i686. So the two x86 rows disagree, and a `-msse2`
541 /// on the command line would move the 32-bit one, which is a thing this compiler has no
542 /// place to say yet.
543 pub has_float16: bool,
544 /// Whether the target has `_Float128`.
545 ///
546 /// Every row but 32-bit ARM among the seven measured against gcc 13. x86-64 and i686 have it
547 /// in software, and AArch64, RISC-V, s390x and ppc64le have it because quad precision is
548 /// already the format of something on those machines. armv7 has no format wider than a
549 /// `double` at all, so the type is not there and gcc says so.
550 ///
551 /// This is the ISO spelling. gcc's `__float128` is a narrower thing and is not this field:
552 /// that name exists on x86 and PowerPC only, and on AArch64, RISC-V and s390x gcc offers
553 /// `_Float128` in its place when a program writes it. `__SIZEOF_FLOAT128__` follows the
554 /// vendor name rather than the type, which is why it is missing on rows where the type is
555 /// there.
556 pub has_float128: bool,
557 /// Whether the target has `_Decimal32`, `_Decimal64` and `_Decimal128`.
558 ///
559 /// Only x86-64 Linux today. gcc has the three types on more rows than that, but a decimal is
560 /// a call into libgcc for everything but a move, and the only encoding the back end names
561 /// routines for is the binary integer one x86 uses. PowerPC and s390x use the densely packed
562 /// encoding and are a different set of routines, and the other rows are untested, so a
563 /// program that writes one there is told the type is not available rather than handed code
564 /// nobody has run.
565 pub has_decimal_float: bool,
566 /// Width of `wchar_t` in bits, which decides what a wide literal is encoded in.
567 ///
568 /// It is 16 on Windows, so a wide string there is UTF-16 and a character outside the basic
569 /// plane takes two elements, and 32 everywhere else, where a wide string is UTF-32 and no
570 /// character takes more than one.
571 pub wchar_width: u32,
572 /// Whether `wchar_t` is signed.
573 ///
574 /// x86-64 Linux makes it a signed `int` and AArch64 Linux makes it an `unsigned int`,
575 /// following the psABI's rule for plain `char`, so `L'\xffffffff'` is minus one on one of
576 /// them and four billion on the other.
577 pub wchar_is_signed: bool,
578 /// The granule a `_BitInt` wider than 64 bits is laid out in, in bits.
579 ///
580 /// Above 64 bits the psABIs stop treating a `_BitInt` like a standard integer type and
581 /// start treating it like an array of these, so its size is rounded up to a multiple of
582 /// this and its alignment is this. It is 64 on x86-64 and RISC-V and 128 on AArch64, which
583 /// is why `_BitInt(65)` is sixteen bytes aligned to eight on one and sixteen bytes aligned
584 /// to sixteen on the other. Measured with clang 18 on x86-64 Linux and clang on AArch64
585 /// Darwin rather than read off the documents.
586 pub bit_int_granule: u32,
587 /// The widest access, in bits, this machine performs atomically without taking a lock.
588 ///
589 /// It is what `__atomic_always_lock_free` and `__atomic_is_lock_free` answer from, and it is
590 /// a claim about what this compiler emits rather than about what the processor is capable of.
591 /// Sixty four on every target here. x86-64 does sixteen bytes atomically with `cmpxchg16b`,
592 /// which is not in the baseline the psABI names and which nothing in this compiler writes, and
593 /// AArch64 does the same with its pair instructions, which nothing writes either. A target
594 /// that answered yes for sixteen bytes and then called a library that has to take a lock for
595 /// them would have two answers to one question, and the wrong one is the one in the header.
596 pub lock_free_width: u32,
597 /// The object format to emit.
598 pub object_format: ObjectFormat,
599 /// How bit-fields are allocated into storage, which is the one record layout question where
600 /// two targets in this table run different algorithms rather than the same one over different
601 /// numbers.
602 pub bit_field_style: BitFieldStyle,
603 /// Whether an unnamed bit-field raises the record's alignment the way a named one does.
604 ///
605 /// Almost everywhere it does not, which is why `struct { char c; int :20; }` is four bytes
606 /// aligned to one on x86-64 and four aligned to four with the field named. AAPCS64 says
607 /// otherwise and says it for the zero width member too, so `struct { unsigned :0; }` is
608 /// aligned to four on AArch64 Linux and to one on Apple's AArch64, on Windows on AArch64, on
609 /// x86-64 and on RISC-V. Measured with the pinned reference across every row that has one,
610 /// because it is neither an architecture rule nor an operating system rule: it is the ABI, and
611 /// Apple and Microsoft each dropped it.
612 ///
613 /// Windows says yes as well, and there it is not AAPCS64 but Microsoft's own rule, which is
614 /// why the two facts are separate fields rather than one. In a `union` the Microsoft rule goes
615 /// further and no bit-field contributes alignment at all, named or not, so this field is only
616 /// half the answer there and [`BitFieldStyle`] carries the other half.
617 pub unnamed_bit_field_aligns: bool,
618 /// How large a record with no storage in it is, in bytes, before its alignment is applied.
619 ///
620 /// Zero everywhere but MSVC, where it is four. A `struct` with no members is not C at all, it
621 /// is a GNU extension, and C++ gives it a size of one, so there is no standard to read the
622 /// answer out of and the number has to come from whatever else compiles for the target. On
623 /// mingw that is GCC and the answer is zero. On MSVC it is clang, because MSVC itself rejects
624 /// the declaration outright, and clang's Microsoft record layout gives it four bytes and gives
625 /// an array of three of them twelve. So this is a fact about the environment and not about the
626 /// operating system, which is the one place in this type where those two come apart in that
627 /// direction.
628 ///
629 /// It covers a record with no members and a record whose only members occupy nothing, which is
630 /// the zero width bit-field, the zero length array and the flexible array member. All four
631 /// were measured and all four agree.
632 pub empty_record_size: u64,
633 /// What `__builtin_va_list` is, which is the type every `va_list` in every header is a
634 /// typedef of.
635 ///
636 /// [`None`] on a target whose answer is a type this crate does not build yet. 32-bit ARM's is
637 /// a structure of one pointer and s390x's is a structure of four members, and neither is any
638 /// of the four below. A target with no backend cannot compile a call to `va_arg` in any case,
639 /// so saying so beats naming a neighbour's type and having a header believe it.
640 pub va_list: Option<VaList>,
641 /// The registers the machine has, which is [`RegFile::EMPTY`] for an architecture nothing
642 /// has described yet.
643 pub regs: &'static RegFile,
644 /// Which registers the calling convention gives which job, or `None` while the
645 /// architecture has no register file to name them out of.
646 pub call_regs: Option<&'static CallRegs>,
647 /// How long this machine's instructions take, or `None` for an architecture with no backend.
648 ///
649 /// [`None`] rather than a model of a machine nobody measured, for the reason the two fields
650 /// above are: a scheduler told made up numbers about a processor has no way to find out they
651 /// were made up. `--print-config` prints [`TimingInsts::model`] off this, which is the first
652 /// thing anybody comparing two runs of a benchmark wants to know.
653 pub timing: Option<&'static TimingInsts>,
654}
655
656/// The type a target's `__builtin_va_list` is.
657///
658/// A variable argument list is the one place a psABI dictates a C type rather than how a type
659/// travels, and the four answers below are not four spellings of one thing: `sizeof(va_list)` is
660/// eight bytes on Apple's AArch64 and thirty two on Linux's, and on SysV x86-64 a `va_list` is an
661/// array, so a `va_list` passed to a function is passed as a pointer and one assigned to another
662/// is a constraint violation rather than a copy. Code in the wild depends on all of that.
663#[derive(Debug, Clone, Copy, PartialEq, Eq)]
664// Deliberately not `#[non_exhaustive]`, for the reason [`Arch`] is not: a fifth answer here is
665// a fifth type to build, and every place that builds one should stop compiling until it does.
666pub enum VaList {
667 /// `char *`, which is what a target whose arguments are all passed in one place needs: the
668 /// address of the next argument and nothing else. Apple's AArch64 and both Windows targets.
669 CharPointer,
670 /// `void *`, which is the RISC-V psABI's spelling of the same thing.
671 VoidPointer,
672 /// `struct __va_list_tag { unsigned gp_offset, fp_offset; void *overflow_arg_area,
673 /// *reg_save_area; } [1]`, the SysV x86-64 one. Arguments arrive in two register files and
674 /// on the stack, so the list is a cursor into each, and the array of one is what makes
675 /// passing it to `vfprintf` pass its address.
676 SysV,
677 /// `struct __va_list { void *__stack, *__gr_top, *__vr_top; int __gr_offs, __vr_offs; }`,
678 /// the AAPCS64 one. The same idea as SysV's, counting down from the top of each save area
679 /// rather than up from the bottom, and not an array.
680 Aapcs,
681}
682
683impl VaList {
684 /// The name used in `--print-config`.
685 #[must_use]
686 pub const fn as_str(self) -> &'static str {
687 match self {
688 VaList::CharPointer => "char-pointer",
689 VaList::VoidPointer => "void-pointer",
690 VaList::SysV => "sysv",
691 VaList::Aapcs => "aapcs",
692 }
693 }
694}
695
696/// How a target allocates bit-fields into storage.
697///
698/// Everything else about laying a record out is one algorithm reading different sizes and
699/// alignments per target. This is not: the two answers below place the same members at different
700/// offsets and give the same struct different sizes, and no amount of changing what an `int` is
701/// turns one into the other. `struct { unsigned m:3; char c; }` is four bytes with the `char` at
702/// offset one under the first and eight bytes with it at offset four under the second.
703#[derive(Debug, Clone, Copy, PartialEq, Eq)]
704// Deliberately not `#[non_exhaustive]`, for the reason [`Arch`] is not: a third answer here is a
705// third algorithm to write, and every place that chooses between them should stop compiling until
706// it does.
707pub enum BitFieldStyle {
708 /// The Itanium C++ ABI's rule, which every psABI in this table except Windows follows. A
709 /// bit-field goes at the next free bit unless that would make it span more storage than its
710 /// own type occupies, in which case it starts at the next boundary of its alignment. Storage
711 /// is shared between members of different types freely, so `struct { char a:3; unsigned b:3; }`
712 /// is four bytes with both fields in the first one.
713 Itanium,
714 /// Microsoft's rule, which both Windows environments follow and not only MSVC. A run of
715 /// bit-fields is allocated into a unit the size and alignment of the declared type, and the
716 /// unit is closed both when the next member's declared type has a different size and when the
717 /// field does not fit in what is left. An ordinary member closes a unit too, and the closed
718 /// unit occupies its whole declared size whether or not the bits were used. So the same struct
719 /// is eight bytes: a one byte unit for the `char` and a four byte one for the `unsigned`,
720 /// aligned to four.
721 Microsoft,
722}
723
724impl BitFieldStyle {
725 /// The name used in `--print-config`.
726 #[must_use]
727 pub const fn as_str(self) -> &'static str {
728 match self {
729 BitFieldStyle::Itanium => "itanium",
730 BitFieldStyle::Microsoft => "microsoft",
731 }
732 }
733}
734
735/// A width in bits, from a size in bytes.
736///
737/// The fields here are widths because that is what a predefined macro and a diagnostic say, and a
738/// layout is sizes because that is what `sizeof` says. The conversion belongs at the one boundary
739/// between them rather than at every reader of one of these fields.
740fn bits(bytes: u64) -> u32 {
741 u32::try_from(bytes * 8).expect("no standard type is four billion bits wide")
742}
743
744impl TargetInfo {
745 /// The description of `triple`.
746 ///
747 /// The three field triple spells fifteen of the forty two rows of the target table, which is
748 /// every row with a backend and every row a driver will be handed today, so this is what the
749 /// compiler proper calls. [`TargetInfo::for_tuple`] is the one that answers for the whole
750 /// table.
751 #[must_use]
752 pub fn new(triple: Triple) -> Self {
753 Self::for_tuple(triple.tuple())
754 }
755
756 /// The type names this target's compiler has before any header is read, and what each is.
757 ///
758 /// Empty everywhere but AArch64, where gcc has the Advanced SIMD and SVE types and glibc's
759 /// `<math.h>` names them.
760 #[must_use]
761 pub fn type_names(&self) -> &'static [(&'static str, TypeName)] {
762 typenames::type_names(self.tuple.arch())
763 }
764
765 /// The description of `target`.
766 ///
767 /// Every row of the target table has one of these, whether or not there is a backend that can
768 /// emit code for it, because laying a record out and reading a header are questions that do
769 /// not need a backend. The fields that genuinely need one say so: [`TargetInfo::regs`] is
770 /// empty and [`TargetInfo::call_regs`] is [`None`] for an architecture whose register file is
771 /// not written down.
772 #[must_use]
773 pub fn for_tuple(target: TargetTuple) -> Self {
774 // Every size, alignment and signedness below is `rucc-abi`'s answer over the ten field
775 // tuple rather than a match written out here. They were written out here, and the copy was
776 // wrong about `x86_64-apple-darwin`, whose `long double` is the eighty bit x87 format in
777 // sixteen bytes and not a `double`: Apple made that change on AArch64 and left the Intel
778 // answer alone, and a rule keyed on the operating system takes both.
779 let layout = DataLayout::for_target(target);
780 // RISC-V and everything else with a row and no backend have register files and this crate
781 // has not written them down yet. They arrive with the backends that need them. AArch64's is
782 // here ahead of its backend, because the convention over it is what the ABI tests and the
783 // debugging information read, and [`TargetInfo::regs`] having it does not make anything
784 // try to generate code: that is `rucc_codegen::Machine::for_target`'s decision.
785 let regs = match target.arch() {
786 tuple::Arch::X86_64 => &x86_64::REGS,
787 tuple::Arch::Aarch64 => &aarch64::REGS,
788 _ => &RegFile::EMPTY,
789 };
790 let call_regs = match (target.arch(), target.os(), target.env()) {
791 // The environment, and this is the one question it decides about a convention. What the
792 // two Windows runtimes disagree about is the name of the routine a large frame reaches
793 // its pages by calling, which is in the runtime rather than in the compiler, so a build
794 // against mingw-w64 and a build against Microsoft's runtime want different names for the
795 // same routine.
796 (tuple::Arch::X86_64, tuple::Os::Windows, tuple::Env::Gnu) => Some(&x86_64::MINGW64),
797 (tuple::Arch::X86_64, tuple::Os::Windows, _) => Some(&x86_64::WIN64),
798 // Apple's x86-64 follows SysV, and its divergences from it are on AArch64.
799 (tuple::Arch::X86_64, _, _) => Some(&x86_64::SYSV),
800 // Windows on AArch64 reserves `x18` and passes a variadic `double` in an integer
801 // register, and `rucc_abi` has no description of it yet, so it has no registers either.
802 (tuple::Arch::Aarch64, tuple::Os::Windows, _) => None,
803 (tuple::Arch::Aarch64, os, _) if os.is_darwin() => Some(&aarch64::DARWIN),
804 (tuple::Arch::Aarch64, _, _) => Some(&aarch64::AAPCS64),
805 _ => None,
806 };
807 // The same rule as the register file. A model is a measurement of a processor, and there
808 // is nothing to measure until there is a backend emitting instructions for it.
809 let timing = match target.arch() {
810 tuple::Arch::X86_64 => Some(&x86_64::TIMING),
811 _ => None,
812 };
813 Self {
814 tuple: target,
815 scalars: layout,
816 pointer_width: bits(layout.pointer_size),
817 little_endian: target.is_little_endian(),
818 char_is_signed: layout.char_is_signed,
819 long_width: bits(layout.long_size),
820 long_double_width: bits(layout.long_double.size),
821 long_double_format: layout.long_double.format,
822 float64x_format: float64x_format(target),
823 has_float16: has_float16(target),
824 has_float128: has_float128(target),
825 has_decimal_float: matches!(
826 (target.arch(), target.os()),
827 (tuple::Arch::X86_64, tuple::Os::Linux)
828 ),
829 wchar_width: bits(layout.wchar_size),
830 wchar_is_signed: layout.wchar_is_signed,
831 bit_int_granule: bit_int_granule(target),
832 // Eight bytes everywhere, for the reason the field gives: it is the widest access this
833 // compiler writes an instruction for, and every one of these machines has a wider one
834 // that nothing here reaches. It is a claim about the code this compiler emits, so the
835 // day a backend emits a sixteen byte atomic is the day this stops being one number.
836 lock_free_width: 64,
837 object_format: ObjectFormat::from_tuple(target.object_format()),
838 bit_field_style: bit_field_style(target),
839 unnamed_bit_field_aligns: unnamed_bit_field_aligns(target),
840 // The environment and not the operating system, so `x86_64-windows-gnu` keeps GCC's
841 // zero while `x86_64-windows-msvc` takes clang's four.
842 empty_record_size: match target.env() {
843 tuple::Env::Msvc => 4,
844 _ => 0,
845 },
846 va_list: va_list(target),
847 regs,
848 call_regs,
849 timing,
850 }
851 }
852
853 /// The largest an object may be on this target, in bytes.
854 ///
855 /// `PTRDIFF_MAX`, which is what C 6.5.6 needs it to be: subtracting two pointers into one
856 /// object has to have an answer, and the answer has a `ptrdiff_t` to fit in. So an object
857 /// of exactly this many bytes is allowed and one byte more is not, which is the line GCC
858 /// draws too. It is the only size limit in the compiler and every layout question that has
859 /// one asks here rather than at whatever its own arithmetic happens to overflow at.
860 #[must_use]
861 pub const fn max_object_size(&self) -> u64 {
862 (1u64 << (self.pointer_width - 1)) - 1
863 }
864}
865
866/// The format `_Float64x` is, where the target has one.
867fn float64x_format(target: TargetTuple) -> Option<Format> {
868 match target.arch() {
869 // The x87 unit is on the machine whatever the operating system says a `long double` is,
870 // so `x86_64-apple-darwin` and `x86_64-windows-msvc` both have an eighty bit `_Float64x`
871 // and an eight byte `long double`.
872 tuple::Arch::X86_64 | tuple::Arch::X86 => Some(Format::X87Extended),
873 tuple::Arch::Aarch64
874 | tuple::Arch::Riscv64
875 | tuple::Arch::Riscv32
876 | tuple::Arch::LoongArch64
877 | tuple::Arch::S390x
878 | tuple::Arch::PowerPc64 => Some(Format::Quad),
879 // Nothing on these machines is wider than a `double`, so there is no type here to
880 // describe and neither reference defines the macros that would describe it.
881 tuple::Arch::Arm | tuple::Arch::Arm64Ec | tuple::Arch::Wasm32 => None,
882 }
883}
884
885/// Whether the target has `_Float16`.
886fn has_float16(target: TargetTuple) -> bool {
887 match target.arch() {
888 // Half precision is in the baseline of these: SSE2 on x86-64, the FP16 storage format
889 // every ARMv8 has, and RISC-V, where gcc gives the type whether or not the hardware has
890 // the instructions to go with it.
891 tuple::Arch::X86_64
892 | tuple::Arch::Aarch64
893 | tuple::Arch::Arm64Ec
894 | tuple::Arch::Riscv64
895 | tuple::Arch::Riscv32 => true,
896 // i686 for the reason the field gives, which is the baseline and not the chip, and the
897 // rest are machines gcc 13 has not written the type for.
898 tuple::Arch::X86
899 | tuple::Arch::Arm
900 | tuple::Arch::LoongArch64
901 | tuple::Arch::PowerPc64
902 | tuple::Arch::S390x
903 | tuple::Arch::Wasm32 => false,
904 }
905}
906
907/// Whether the target has `_Float128`.
908fn has_float128(target: TargetTuple) -> bool {
909 match target.arch() {
910 // Either the machine already has quad precision, which is the AArch64, RISC-V, s390x and
911 // PowerPC answer, or the compiler provides it in software, which is what x86 does.
912 tuple::Arch::X86_64
913 | tuple::Arch::X86
914 | tuple::Arch::Aarch64
915 | tuple::Arch::Arm64Ec
916 | tuple::Arch::Riscv64
917 | tuple::Arch::Riscv32
918 | tuple::Arch::LoongArch64
919 | tuple::Arch::PowerPc64
920 | tuple::Arch::S390x => true,
921 // The same two rows that have no `_Float64x`, and for the same reason: nothing on the
922 // machine is wider than a `double` and neither reference offers a type that is.
923 tuple::Arch::Arm | tuple::Arch::Wasm32 => false,
924 }
925}
926
927/// The granule a `_BitInt` wider than 64 bits is laid out in, in bits.
928fn bit_int_granule(target: TargetTuple) -> u32 {
929 match target.arch() {
930 // AAPCS64 says a `_BitInt` above sixty four bits is an array of `__int128`, which is the
931 // one psABI that departs from the register width here.
932 tuple::Arch::Aarch64 | tuple::Arch::Arm64Ec => 128,
933 // Everywhere else it is the width of a general purpose register, which is what the psABIs
934 // that have written the rule down all say and what both references do on the rows that
935 // have not.
936 tuple::Arch::X86 | tuple::Arch::Arm | tuple::Arch::Riscv32 => 32,
937 tuple::Arch::X86_64
938 | tuple::Arch::Riscv64
939 | tuple::Arch::LoongArch64
940 | tuple::Arch::PowerPc64
941 | tuple::Arch::S390x
942 | tuple::Arch::Wasm32 => 64,
943 }
944}
945
946/// How this target allocates bit-fields into storage.
947///
948/// Keyed on the operating system rather than the environment, because mingw's answer here is
949/// Microsoft's and not GCC's. That is the whole reason it is not a guess: a rule keyed on
950/// `Env::Msvc` gets `x86_64-windows-gnu` wrong by four bytes on a struct of an `unsigned :3` and a
951/// `char`, and gets it wrong quietly.
952fn bit_field_style(target: TargetTuple) -> BitFieldStyle {
953 match target.os() {
954 tuple::Os::Windows => BitFieldStyle::Microsoft,
955 _ => BitFieldStyle::Itanium,
956 }
957}
958
959/// Whether an unnamed bit-field raises the record's alignment the way a named one does.
960///
961/// AAPCS says it does, on both widths of ARM, and Apple and Microsoft each dropped that rule.
962/// Microsoft then put its own rule in the same place for a `struct`, so Windows says yes again by
963/// a different route, and says something else entirely for a `union`, which [`BitFieldStyle`]
964/// carries rather than this.
965fn unnamed_bit_field_aligns(target: TargetTuple) -> bool {
966 match (target.arch(), target.os()) {
967 (_, tuple::Os::Windows) => true,
968 // A freestanding ARM target is AAPCS proper, so it says yes: there is no operating system
969 // there to have dropped it.
970 (tuple::Arch::Aarch64 | tuple::Arch::Arm | tuple::Arch::Arm64Ec, os) => !os.is_darwin(),
971 _ => false,
972 }
973}
974
975/// What `__builtin_va_list` is on this target, where this crate can build the type.
976fn va_list(target: TargetTuple) -> Option<VaList> {
977 match (target.arch(), target.os()) {
978 // Windows passes every argument in one place and spills the register ones next to the
979 // stack ones, so the list is an address, and Apple does the same on AArch64.
980 (_, tuple::Os::Windows) => Some(VaList::CharPointer),
981 (tuple::Arch::Aarch64, os) if os.is_darwin() => Some(VaList::CharPointer),
982 (tuple::Arch::Aarch64, _) => Some(VaList::Aapcs),
983 // The x32 ABI's list is the same structure with four byte pointers in it, which is what
984 // building it out of this target's pointer type gives, so it is the same answer.
985 (tuple::Arch::X86_64, _) => Some(VaList::SysV),
986 (tuple::Arch::X86, _) => Some(VaList::CharPointer),
987 (tuple::Arch::Riscv64 | tuple::Arch::Riscv32 | tuple::Arch::LoongArch64, _)
988 | (tuple::Arch::Wasm32, _) => Some(VaList::VoidPointer),
989 // 32-bit ARM's is a structure of one pointer, s390x's is a structure of four members, and
990 // PowerPC's is a structure of five. None of them is any of the four types above and this
991 // crate does not build them, so it says so rather than naming a neighbour's.
992 (
993 tuple::Arch::Arm | tuple::Arch::S390x | tuple::Arch::PowerPc64 | tuple::Arch::Arm64Ec,
994 _,
995 ) => None,
996 }
997}
998
999#[cfg(test)]
1000mod tests {
1001 use super::*;
1002
1003 #[test]
1004 fn parses_a_four_field_triple() {
1005 let t: Triple = "x86_64-unknown-linux-gnu".parse().unwrap();
1006 assert_eq!(t, Triple::new(Arch::X86_64, Os::Linux, Env::Gnu));
1007 }
1008
1009 #[test]
1010 fn parses_a_triple_with_no_vendor() {
1011 let t: Triple = "aarch64-linux-musl".parse().unwrap();
1012 assert_eq!(t, Triple::new(Arch::Aarch64, Os::Linux, Env::Musl));
1013 }
1014
1015 #[test]
1016 fn accepts_the_common_aliases() {
1017 let a: Triple = "arm64-apple-darwin".parse().unwrap();
1018 let b: Triple = "aarch64-apple-darwin".parse().unwrap();
1019 assert_eq!(a, b);
1020 assert_eq!(a.env, Env::None);
1021 }
1022
1023 #[test]
1024 fn fills_in_the_default_environment() {
1025 let t: Triple = "x86_64-unknown-linux".parse().unwrap();
1026 assert_eq!(t.env, Env::Gnu);
1027 let w: Triple = "x86_64-pc-windows".parse().unwrap();
1028 assert_eq!(w.env, Env::Gnu);
1029 }
1030
1031 #[test]
1032 fn rejects_what_it_does_not_support() {
1033 let e = "sparc64-unknown-linux-gnu".parse::<Triple>().unwrap_err();
1034 assert_eq!(e.reason, "unknown architecture");
1035 let e = "x86_64-unknown-plan9".parse::<Triple>().unwrap_err();
1036 assert_eq!(e.reason, "unknown operating system");
1037 }
1038
1039 #[test]
1040 fn displays_in_a_normalised_form() {
1041 let t: Triple = "amd64-linux-gnu".parse().unwrap();
1042 assert_eq!(t.to_string(), "x86_64-unknown-linux-gnu");
1043 }
1044
1045 #[test]
1046 fn display_round_trips_through_parse() {
1047 for s in [
1048 "x86_64-unknown-linux-gnu",
1049 "aarch64-unknown-darwin-none",
1050 "riscv64-unknown-linux-musl",
1051 ] {
1052 let t: Triple = s.parse().unwrap();
1053 assert_eq!(t.to_string().parse::<Triple>().unwrap(), t);
1054 }
1055 }
1056
1057 #[test]
1058 fn char_signedness_follows_the_psabi() {
1059 let x86 = TargetInfo::new("x86_64-unknown-linux-gnu".parse().unwrap());
1060 let arm = TargetInfo::new("aarch64-unknown-linux-gnu".parse().unwrap());
1061 let mac = TargetInfo::new("aarch64-apple-darwin".parse().unwrap());
1062 assert!(x86.char_is_signed);
1063 assert!(!arm.char_is_signed);
1064 assert!(mac.char_is_signed, "Apple overrides AAPCS64 back to a signed char");
1065 }
1066
1067 #[test]
1068 fn windows_is_llp64() {
1069 let win = TargetInfo::new("x86_64-pc-windows-msvc".parse().unwrap());
1070 assert_eq!(win.pointer_width, 64);
1071 assert_eq!(win.long_width, 32);
1072 }
1073
1074 #[test]
1075 fn the_largest_object_is_ptrdiff_max() {
1076 // Half the address space less one, which is what a pointer subtraction across the whole
1077 // of one object has to fit in. gcc 16 on x86-64 prints this same number when it refuses
1078 // an array, and takes an object of exactly this many bytes.
1079 for triple in ["x86_64-unknown-linux-gnu", "aarch64-apple-darwin", "x86_64-pc-windows-msvc"]
1080 {
1081 let target = TargetInfo::new(triple.parse().unwrap());
1082 assert_eq!(target.max_object_size(), 9_223_372_036_854_775_807, "{triple}");
1083 }
1084 }
1085
1086 #[test]
1087 fn apple_long_double_is_double() {
1088 let mac = TargetInfo::new("aarch64-apple-darwin".parse().unwrap());
1089 assert_eq!(mac.long_double_width, 64);
1090 assert_eq!(mac.long_double_format, Format::Double);
1091 let linux = TargetInfo::new("x86_64-unknown-linux-gnu".parse().unwrap());
1092 assert_eq!(linux.long_double_width, 128);
1093 }
1094
1095 #[test]
1096 fn apples_x86_64_is_not_one_of_the_targets_that_narrowed_long_double() {
1097 // The bug the layout facts moving to `rucc-abi` fixed. This crate used to decide the
1098 // width from the operating system, which took both Apple targets, and Apple made the
1099 // change on AArch64 only. `facts/x86_64-macos.facts` in tamnd/rucc-cross records
1100 // `long_double_format=x87_extended` with `sizeof_long_double=16`, from a reference
1101 // compiler, and this used to answer a sixty four bit `double`.
1102 //
1103 // It is the quiet kind of wrong. `sizeof(long double)` came out at eight where the
1104 // headers say sixteen, so `printf("%Lf")` read the wrong bytes and every structure with
1105 // a `long double` in it laid out differently from the system's own.
1106 let mac = TargetInfo::new("x86_64-apple-darwin".parse().unwrap());
1107 assert_eq!(mac.long_double_width, 128);
1108 assert_eq!(mac.long_double_format, Format::X87Extended);
1109
1110 let linux = TargetInfo::new("x86_64-unknown-linux-gnu".parse().unwrap());
1111 assert_eq!(
1112 (mac.long_double_width, mac.long_double_format),
1113 (linux.long_double_width, linux.long_double_format)
1114 );
1115 }
1116
1117 #[test]
1118 fn every_triple_describes_a_machine() {
1119 // `Triple::tuple` panics on a pair that is not a machine and this is what says there is
1120 // no such pair. All forty eight combinations, including the ones the parser will produce
1121 // from a string somebody can type and no machine has, such as a Darwin target claiming
1122 // glibc.
1123 let mut built = 0;
1124 for arch in [Arch::X86_64, Arch::Aarch64, Arch::Riscv64] {
1125 for os in [Os::Linux, Os::Darwin, Os::Windows, Os::None] {
1126 for env in [Env::None, Env::Gnu, Env::Musl, Env::Msvc] {
1127 let triple = Triple::new(arch, os, env);
1128 let tuple = triple.tuple();
1129 assert_eq!(tuple.pointer_width(), 64, "{triple}");
1130 // The one field the narrowing has to preserve, because mingw and MSVC are the
1131 // same operating system with two different `long double`s.
1132 if os == Os::Windows {
1133 let expected = match env {
1134 Env::Gnu => rucc_tuple::Env::Gnu,
1135 _ => rucc_tuple::Env::Msvc,
1136 };
1137 assert_eq!(tuple.env(), expected, "{triple}");
1138 }
1139 built += 1;
1140 }
1141 }
1142 }
1143 assert_eq!(built, 48);
1144 }
1145
1146 #[test]
1147 fn from_tuple_undoes_the_narrowing() {
1148 // Every triple's tuple comes back as a triple describing the same machine. It is not
1149 // always the triple it started as, because the narrowing is many to one: a Darwin target
1150 // claiming glibc and the same one claiming nothing are one machine, and the answer is the
1151 // spelling that names no libc.
1152 for arch in [Arch::X86_64, Arch::Aarch64, Arch::Riscv64] {
1153 for os in [Os::Linux, Os::Darwin, Os::Windows, Os::None] {
1154 for env in [Env::None, Env::Gnu, Env::Musl, Env::Msvc] {
1155 let triple = Triple::new(arch, os, env);
1156 let back = Triple::from_tuple(triple.tuple())
1157 .unwrap_or_else(|| panic!("{triple} has a tuple and no way back"));
1158 assert_eq!(back.tuple(), triple.tuple(), "{triple}");
1159 assert_eq!(back.arch, arch, "{triple}");
1160 assert_eq!(back.os, os, "{triple}");
1161 }
1162 }
1163 }
1164 }
1165
1166 #[test]
1167 fn from_tuple_gives_the_canonical_environment() {
1168 let musl = Triple::from_tuple("aarch64-linux-musl".parse().unwrap()).unwrap();
1169 assert_eq!(musl, Triple::new(Arch::Aarch64, Os::Linux, Env::Musl));
1170 let gnu = Triple::from_tuple("x86_64-linux-gnu".parse().unwrap()).unwrap();
1171 assert_eq!(gnu, Triple::new(Arch::X86_64, Os::Linux, Env::Gnu));
1172 // Darwin and freestanding name no libc, so the answer does too, even though the parser
1173 // will hand this type a Darwin triple with `gnu` on the end.
1174 let macos = Triple::from_tuple("aarch64-macos".parse().unwrap()).unwrap();
1175 assert_eq!(macos, Triple::new(Arch::Aarch64, Os::Darwin, Env::None));
1176 let bare = Triple::from_tuple("riscv64-none".parse().unwrap()).unwrap();
1177 assert_eq!(bare, Triple::new(Arch::Riscv64, Os::None, Env::None));
1178 // The two Windows environments stay apart, which is the whole reason the narrowing keeps
1179 // the environment there and nowhere else.
1180 let mingw = Triple::from_tuple("x86_64-windows-gnu".parse().unwrap()).unwrap();
1181 assert_eq!(mingw.env, Env::Gnu);
1182 let msvc = Triple::from_tuple("x86_64-windows-msvc".parse().unwrap()).unwrap();
1183 assert_eq!(msvc.env, Env::Msvc);
1184 // A version on either side narrows to the same triple as the tuple without it.
1185 let pinned = Triple::from_tuple("aarch64-macos.13".parse().unwrap()).unwrap();
1186 assert_eq!(pinned, macos);
1187 let old = Triple::from_tuple("x86_64-linux-gnu.2.28".parse().unwrap()).unwrap();
1188 assert_eq!(old, gnu);
1189 }
1190
1191 #[test]
1192 fn from_tuple_says_no_rather_than_saying_something_near() {
1193 // Twenty five of the forty two rows have no triple, and the answer is `None` rather than
1194 // a neighbour. `rucc-abi` knows the scalar layout of every one of these and this type
1195 // cannot hold any of them, which is the gap the record layout engine inherits.
1196 for tuple in [
1197 "i686-linux-gnu",
1198 "armv7-linux-gnueabihf",
1199 "s390x-linux-gnu",
1200 "powerpc64le-linux-gnu",
1201 "loongarch64-linux-gnu",
1202 "x86_64-linux-gnux32",
1203 "aarch64-linux-android",
1204 "aarch64-ios",
1205 "wasm32-wasip1",
1206 "x86_64-freebsd",
1207 ] {
1208 let target = tuple.parse().unwrap();
1209 assert_eq!(Triple::from_tuple(target), None, "{tuple}");
1210 }
1211 }
1212
1213 #[test]
1214 fn mingw_and_msvc_are_one_operating_system_with_two_long_doubles() {
1215 // The narrowing in `Triple::tuple` keeps the environment on Windows for this reason and
1216 // throws it away everywhere else. GCC's Windows targets keep the eighty bit `long double`
1217 // and Microsoft's make it a `double`, on the same processor and the same OS.
1218 let mingw = TargetInfo::new("x86_64-pc-windows-gnu".parse().unwrap());
1219 assert_eq!(mingw.long_double_width, 128);
1220 assert_eq!(mingw.long_double_format, Format::X87Extended);
1221
1222 let msvc = TargetInfo::new("x86_64-pc-windows-msvc".parse().unwrap());
1223 assert_eq!(msvc.long_double_width, 64);
1224 assert_eq!(msvc.long_double_format, Format::Double);
1225
1226 // And they agree about everything the operating system does decide.
1227 assert_eq!(mingw.long_width, msvc.long_width);
1228 assert_eq!(mingw.wchar_width, msvc.wchar_width);
1229 assert_eq!(mingw.object_format, msvc.object_format);
1230 }
1231
1232 #[test]
1233 fn wchar_t_divides_the_targets_in_two_directions_at_once() {
1234 // Windows narrows it to sixteen bits, which makes a wide string UTF-16 there and
1235 // UTF-32 everywhere else, and AArch64 Linux makes it unsigned without narrowing it.
1236 let windows = TargetInfo::new("x86_64-pc-windows-msvc".parse().unwrap());
1237 assert_eq!((windows.wchar_width, windows.wchar_is_signed), (16, false));
1238 let arm = TargetInfo::new("aarch64-unknown-linux-gnu".parse().unwrap());
1239 assert_eq!((arm.wchar_width, arm.wchar_is_signed), (32, false));
1240 let linux = TargetInfo::new("x86_64-unknown-linux-gnu".parse().unwrap());
1241 assert_eq!((linux.wchar_width, linux.wchar_is_signed), (32, true));
1242 // Apple keeps it signed on the same processor where Linux does not, in the same way it
1243 // keeps plain `char` signed there.
1244 let mac = TargetInfo::new("aarch64-apple-darwin".parse().unwrap());
1245 assert_eq!((mac.wchar_width, mac.wchar_is_signed), (32, true));
1246 }
1247
1248 #[test]
1249 fn va_list_is_the_psabis_type_and_not_one_type_with_four_spellings() {
1250 let linux = TargetInfo::new("x86_64-unknown-linux-gnu".parse().unwrap());
1251 assert_eq!(linux.va_list, Some(VaList::SysV));
1252 // x86-64 Darwin follows SysV here, and AArch64 Darwin does not follow AAPCS64.
1253 let mac = TargetInfo::new("x86_64-apple-darwin".parse().unwrap());
1254 assert_eq!(mac.va_list, Some(VaList::SysV));
1255 let arm_mac = TargetInfo::new("aarch64-apple-darwin".parse().unwrap());
1256 assert_eq!(arm_mac.va_list, Some(VaList::CharPointer));
1257 let arm = TargetInfo::new("aarch64-unknown-linux-gnu".parse().unwrap());
1258 assert_eq!(arm.va_list, Some(VaList::Aapcs));
1259 // Windows passes everything one way on both processors, so both get the simple one.
1260 let win = TargetInfo::new("x86_64-pc-windows-msvc".parse().unwrap());
1261 assert_eq!(win.va_list, Some(VaList::CharPointer));
1262 let arm_win = TargetInfo::new("aarch64-pc-windows-msvc".parse().unwrap());
1263 assert_eq!(arm_win.va_list, Some(VaList::CharPointer));
1264 let riscv = TargetInfo::new("riscv64-unknown-linux-gnu".parse().unwrap());
1265 assert_eq!(riscv.va_list, Some(VaList::VoidPointer));
1266 }
1267
1268 #[test]
1269 fn two_targets_agree_on_the_width_of_long_double_and_not_on_the_type() {
1270 // Sixteen bytes on both, and a different number in them: the x87 format has sixty four
1271 // bits of significand and quad precision has a hundred and thirteen, so a constant
1272 // converted for one is the wrong bits for the other.
1273 let x86 = TargetInfo::new("x86_64-unknown-linux-gnu".parse().unwrap());
1274 let arm = TargetInfo::new("aarch64-unknown-linux-gnu".parse().unwrap());
1275 assert_eq!(x86.long_double_width, arm.long_double_width);
1276 assert_eq!(x86.long_double_format, Format::X87Extended);
1277 assert_eq!(arm.long_double_format, Format::Quad);
1278 assert_eq!(x86.long_double_format.precision(), 64);
1279 assert_eq!(arm.long_double_format.precision(), 113);
1280 // Windows keeps the name and drops the type, the way Apple does.
1281 let windows = TargetInfo::new("x86_64-pc-windows-msvc".parse().unwrap());
1282 assert_eq!(windows.long_double_format, Format::Double);
1283 }
1284
1285 #[test]
1286 fn float64x_follows_the_processor_where_long_double_follows_the_operating_system() {
1287 // `_Float64x` is the widest format the hardware has, and no ABI takes it away the way
1288 // Apple and Windows take `long double` away. So the two fields say the same thing on
1289 // Linux and disagree everywhere else, which is the whole reason there are two of them.
1290 let x86 = TargetInfo::new("x86_64-unknown-linux-gnu".parse().unwrap());
1291 assert_eq!(x86.float64x_format, Some(Format::X87Extended));
1292 let arm = TargetInfo::new("aarch64-unknown-linux-gnu".parse().unwrap());
1293 assert_eq!(arm.float64x_format, Some(Format::Quad));
1294 let riscv = TargetInfo::new("riscv64-unknown-linux-gnu".parse().unwrap());
1295 assert_eq!(riscv.float64x_format, Some(Format::Quad));
1296
1297 let mac = TargetInfo::new("aarch64-apple-darwin".parse().unwrap());
1298 assert_eq!(mac.long_double_format, Format::Double);
1299 assert_eq!(mac.float64x_format, Some(Format::Quad));
1300 let windows = TargetInfo::new("x86_64-pc-windows-msvc".parse().unwrap());
1301 assert_eq!(windows.long_double_format, Format::Double);
1302 assert_eq!(windows.float64x_format, Some(Format::X87Extended));
1303 }
1304
1305 #[test]
1306 fn the_named_floating_types_are_not_on_every_machine() {
1307 // gcc 13, measured with the cross compilers rather than reasoned about. `_Float16` is on
1308 // three of these seven and `_Float128` is on six, and the two lists are not the same
1309 // list, which is why there are two fields.
1310 // The three field triple spells three architectures, and four of these rows are not
1311 // among them, so this asks the tuple the way the layout tests do.
1312 let of = |tuple: &str| TargetInfo::for_tuple(tuple.parse().expect("a row in the table"));
1313 let rows = [
1314 ("x86_64-linux-gnu", true, true),
1315 ("i686-linux-gnu", false, true),
1316 ("aarch64-linux-gnu", true, true),
1317 ("armv7-linux-gnueabihf", false, false),
1318 ("powerpc64le-linux-gnu", false, true),
1319 ("riscv64-linux-gnu", true, true),
1320 ("s390x-linux-gnu", false, true),
1321 ];
1322 for (tuple, float16, float128) in rows {
1323 let target = of(tuple);
1324 assert_eq!(target.has_float16, float16, "{tuple} `_Float16`");
1325 assert_eq!(target.has_float128, float128, "{tuple} `_Float128`");
1326 }
1327 // The operating system has nothing to do with it, the way it has nothing to do with
1328 // `_Float64x`, so Apple and Windows keep both types.
1329 assert!(of("aarch64-apple-darwin").has_float16);
1330 assert!(of("x86_64-pc-windows-msvc").has_float128);
1331 }
1332
1333 #[test]
1334 fn the_decimal_types_are_on_the_one_row_the_back_end_calls_routines_for() {
1335 let of = |tuple: &str| TargetInfo::for_tuple(tuple.parse().expect("a row in the table"));
1336 assert!(of("x86_64-linux-gnu").has_decimal_float);
1337 for tuple in ["aarch64-linux-gnu", "x86_64-pc-windows-msvc", "aarch64-apple-darwin"] {
1338 assert!(!of(tuple).has_decimal_float, "{tuple}");
1339 }
1340 }
1341
1342 #[test]
1343 fn the_object_format_follows_the_operating_system() {
1344 assert_eq!(Os::Linux.object_format(), ObjectFormat::Elf);
1345 assert_eq!(Os::Darwin.object_format(), ObjectFormat::MachO);
1346 assert_eq!(Os::Windows.object_format(), ObjectFormat::Coff);
1347 }
1348
1349 #[test]
1350 fn a_target_carries_its_registers_and_says_so_when_it_has_none() {
1351 let of = |triple: &str| TargetInfo::new(triple.parse().unwrap());
1352 let linux = of("x86_64-unknown-linux-gnu");
1353 assert_eq!(linux.regs.reg_named("rdi"), Some((x86_64::GPR, x86_64::RDI)));
1354 assert_eq!(linux.call_regs.map(|regs| regs.int_args[0]), Some(x86_64::RDI));
1355 // Apple's x86-64 is SysV and Windows is the one that is not.
1356 let apple = of("x86_64-apple-darwin");
1357 assert_eq!(apple.call_regs.map(|regs| regs.int_args[0]), Some(x86_64::RDI));
1358 let windows = of("x86_64-pc-windows-msvc");
1359 assert_eq!(windows.regs.len(x86_64::GPR), 16);
1360 assert_eq!(windows.call_regs.map(|regs| regs.int_args[0]), Some(x86_64::RCX));
1361 let arm = of("aarch64-unknown-linux-gnu");
1362 assert_eq!(arm.regs.len(aarch64::GPR), 32);
1363 assert_eq!(arm.call_regs.map(|regs| regs.int_args[0]), Some(aarch64::x(0)));
1364 assert_eq!(arm.call_regs.map(|regs| regs.red_zone), Some(0));
1365 assert_eq!(of("aarch64-apple-darwin").call_regs.map(|regs| regs.red_zone), Some(128));
1366 // Not described yet, and saying nothing is the answer rather than saying Linux's.
1367 assert!(of("aarch64-pc-windows-msvc").call_regs.is_none());
1368 let riscv = of("riscv64-unknown-linux-gnu");
1369 assert!(riscv.regs.is_empty());
1370 assert!(riscv.call_regs.is_none());
1371 }
1372
1373 /// The two maps from a triple, held against each other.
1374 ///
1375 /// A target's registers and a target's ABI are chosen by two separate matches, one here and one
1376 /// in `rucc_abi::abis::for_target`, and [`CallRegs::abi`] is the link between them. Two matches
1377 /// that can disagree are the thing this crate must not have, so every triple with registers is
1378 /// asked both questions and the answers have to be the same description. What it catches is a
1379 /// target added to one match and not the other, which is a compiler that puts the value in the
1380 /// register one ABI names and the form another one asked for.
1381 #[test]
1382 fn the_registers_and_the_abi_a_target_gets_are_the_same_convention() {
1383 let mut checked = 0;
1384 for arch in [Arch::X86_64, Arch::Aarch64, Arch::Riscv64] {
1385 for os in [Os::Linux, Os::Darwin, Os::Windows, Os::None] {
1386 for env in [Env::None, Env::Gnu, Env::Musl, Env::Msvc] {
1387 let triple = Triple::new(arch, os, env);
1388 let info = TargetInfo::new(triple);
1389 let Some(regs) = info.call_regs else { continue };
1390 let described = rucc_abi::abis::for_target(info.tuple)
1391 .unwrap_or_else(|| panic!("{triple} has registers and no ABI"));
1392 assert!(
1393 std::ptr::eq(regs.abi, described),
1394 "{triple} has the registers of {} and the ABI of {}",
1395 regs.abi.name,
1396 described.name
1397 );
1398 checked += 1;
1399 }
1400 }
1401 }
1402 assert!(checked > 0, "no target has registers, so this asserted nothing");
1403 }
1404
1405 /// The timing model, which follows the register file: an architecture with no backend has
1406 /// nothing to measure and says so rather than borrowing a neighbour's numbers.
1407 #[test]
1408 fn a_target_carries_the_model_its_schedules_were_chosen_with() {
1409 let of = |triple: &str| TargetInfo::new(triple.parse().unwrap());
1410 let linux = of("x86_64-unknown-linux-gnu");
1411 let timing = linux.timing.expect("x86-64 has a backend and so has a model");
1412 assert!(timing.model.contains("Skylake"), "{}", timing.model);
1413 assert!(!timing.accurate, "and it says it is not a cycle accurate one");
1414 assert_eq!(timing.of("x64.imul_rr_64").map(|cost| cost.unit), Some(Unit::Mul));
1415
1416 // The same model whatever the operating system, since a model is about the processor.
1417 assert_eq!(of("x86_64-apple-darwin").timing, linux.timing);
1418 assert_eq!(of("x86_64-pc-windows-msvc").timing, linux.timing);
1419
1420 assert!(of("aarch64-unknown-linux-gnu").timing.is_none(), "nobody has measured it here");
1421 }
1422
1423 #[test]
1424 fn the_host_triple_is_one_we_support() {
1425 // Every host in spec/15-testing.md section 15.7 must be recognised, and CI runs on
1426 // all three, so a failure here means a host we claim support for stopped resolving.
1427 let host = Triple::host().expect("the host must be a supported target");
1428 assert_eq!(host.to_string().parse::<Triple>().unwrap(), host);
1429 }
1430}