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rucc_pp/
predef.rs

1//! The predefined macro set, generated from the target description.
2//!
3//! Design: `spec/04-driver-and-cli.md` section 4.5.
4//!
5//! The set is built as text and then read by the directive engine, which is what GCC does and
6//! is not laziness. Constructing a few hundred `MacroDef` values by hand would need its own
7//! parser for macro bodies, would not exercise the one that already exists, and could not be
8//! read by a person checking a limit against the psABI. A file of `#define` lines can be
9//! printed by `-dM`, diffed against GCC's output, and understood at a glance.
10//!
11//! Two synthetic files come out of this, and they are the two GCC names in a diagnostic:
12//! `<built-in>` for the generated set and `<command-line>` for `-D` and `-U`. Keeping them
13//! apart is what lets "`FOO` redefined" point at the command line rather than at a line
14//! nobody wrote.
15//!
16//! The decision that everything else follows from is in section 4.5: we define `__GNUC__`,
17//! which means glibc's headers, the kernel's headers and every autoconf probe take the GNU
18//! path. The version claimed is deliberately conservative and is a knob, because claiming too
19//! high a version means headers use extensions we do not have, and the matrix in `rucc-gnu`
20//! is the list of promises the claim makes.
21
22use rucc_base::float::Format;
23use rucc_session::{GnucVersion, Math, OptLevel, Options, Pic, Std};
24use rucc_target::{Arch, Env, Isa, Os, TargetInfo, Triple};
25use rucc_tuple::{self as tuple};
26
27/// The name a diagnostic about the generated set points at.
28pub const BUILT_IN: &str = "<built-in>";
29
30/// The name a diagnostic about `-D` or `-U` points at.
31pub const COMMAND_LINE: &str = "<command-line>";
32
33/// The translation date, as `__DATE__` and `__TIME__` spell it.
34///
35/// Fixed for the whole translation unit, which is what the standard requires and what makes
36/// the two macros ordinary object-like macros rather than something the expander has to know
37/// about.
38#[derive(Debug, Clone, PartialEq, Eq)]
39pub struct Timestamp {
40    /// `Mmm dd yyyy`, with the day space padded, which is the format the standard fixes.
41    pub date: String,
42    /// `hh:mm:ss`.
43    pub time: String,
44}
45
46impl Timestamp {
47    /// The current time, or `SOURCE_DATE_EPOCH` when the build asked for a reproducible one.
48    ///
49    /// Reading the environment here rather than in the driver is what GCC does, and it keeps
50    /// the variable working for an embedder who never goes through a command line.
51    pub fn now() -> Timestamp {
52        let seconds = match std::env::var("SOURCE_DATE_EPOCH").ok().and_then(|v| v.parse().ok()) {
53            Some(fixed) => fixed,
54            None => std::time::SystemTime::now()
55                .duration_since(std::time::UNIX_EPOCH)
56                .map_or(0, |d| d.as_secs() as i64),
57        };
58        Timestamp::from_unix(seconds)
59    }
60
61    /// The time `seconds` after the epoch, in UTC.
62    ///
63    /// UTC rather than local time, because a compiler whose output depends on the machine's
64    /// time zone is a compiler whose output is not reproducible.
65    pub fn from_unix(seconds: i64) -> Timestamp {
66        let days = seconds.div_euclid(86_400);
67        let rest = seconds.rem_euclid(86_400);
68        let (year, month, day) = civil_from_days(days);
69        const MONTHS: [&str; 12] =
70            ["Jan", "Feb", "Mar", "Apr", "May", "Jun", "Jul", "Aug", "Sep", "Oct", "Nov", "Dec"];
71        let name = MONTHS[(month - 1) as usize];
72        Timestamp {
73            date: format!("{name} {day:2} {year}"),
74            time: format!("{:02}:{:02}:{:02}", rest / 3600, (rest / 60) % 60, rest % 60),
75        }
76    }
77}
78
79/// The year, month and day `days` after 1970-01-01.
80///
81/// Howard Hinnant's civil calendar algorithm, which is a handful of divisions and no table.
82/// It is here rather than in a dependency because the whole workspace has no dependencies,
83/// and a date conversion is not a good reason to acquire the first one.
84fn civil_from_days(days: i64) -> (i64, u32, u32) {
85    // Shift the epoch to 0000-03-01, so that a leap day is the last day of the year and the
86    // month lengths become a repeating pattern that one division can invert.
87    let shifted = days + 719_468;
88    let era = shifted.div_euclid(146_097);
89    let day_of_era = shifted.rem_euclid(146_097);
90    let year_of_era =
91        (day_of_era - day_of_era / 1460 + day_of_era / 36_524 - day_of_era / 146_096) / 365;
92    let year = year_of_era + era * 400;
93    let day_of_year = day_of_era - (365 * year_of_era + year_of_era / 4 - year_of_era / 100);
94    let marched = (5 * day_of_year + 2) / 153;
95    let day = (day_of_year - (153 * marched + 2) / 5 + 1) as u32;
96    let month = if marched < 10 { marched + 3 } else { marched - 9 } as u32;
97    (year + i64::from(month <= 2), month, day)
98}
99
100/// Everything the predefined set is built from that is not the target.
101#[derive(Debug, Clone, PartialEq, Eq)]
102pub struct Predef {
103    /// The dialect, which decides `__STDC_VERSION__`.
104    pub std: Std,
105    /// Whether the GNU extensions are on, which is `-std=gnu23` rather than `-std=c23`. It
106    /// decides `__STRICT_ANSI__` and the unarmoured `linux` and `unix` macros.
107    pub gnu_extensions: bool,
108    /// Whether the unit is under GNU's reading of `inline`, which is `-fgnu89-inline`. It decides
109    /// which of `__GNUC_GNU_INLINE__` and `__GNUC_STDC_INLINE__` is defined, and the C89 dialects
110    /// are under that reading whatever it says.
111    pub gnu89_inline: bool,
112    /// The GCC release claimed.
113    pub gnuc: GnucVersion,
114    /// Decides `__OPTIMIZE__`, `__OPTIMIZE_SIZE__` and `__NO_INLINE__`.
115    pub opt_level: OptLevel,
116    /// Whether there is a standard library, which is `-ffreestanding` turned around.
117    pub hosted: bool,
118    /// Which link the output is for, from `-fPIC` and `-fPIE`. It decides `__PIE__`, since
119    /// `__PIC__` is defined either way and says only that there are no absolute addresses.
120    pub pic: Pic,
121    /// `__DATE__` and `__TIME__`.
122    pub timestamp: Timestamp,
123    /// The glibc release the headers are, as the minor number alone, when they are ours.
124    ///
125    /// `__GLIBC_MINOR__` and nothing else: `__GLIBC__` is 2 in the tree itself, which is how Zig's
126    /// own patched `features.h` has it, and a version the compiler supplied and a version the
127    /// header supplied would be two answers to one question.
128    pub glibc_minor: Option<u32>,
129    /// Whether an operation may raise an exception the program looks at, from `-ftrapping-math`.
130    pub trapping_math: bool,
131    /// The rest of the `-ffast-math` family. Each licence has a macro of its own and the family
132    /// together decides `__FAST_MATH__` and whether the arithmetic is still IEC 60559's.
133    pub math: Math,
134    /// Whether an exception may unwind through this unit, from `-fexceptions`.
135    pub exceptions: bool,
136    /// `-D` in command line order. `FOO` means `FOO=1`, as GCC has it.
137    pub defines: Vec<String>,
138    /// `-U` in command line order, applied after the defines.
139    pub undefines: Vec<String>,
140    /// The instruction set extensions the unit is built for, which decides `__SSE4_2__` and the
141    /// rest of that family on x86-64 and nothing anywhere else.
142    pub isa: Isa,
143}
144
145impl Predef {
146    /// The default dialect, `gnu23`, at `-O0`.
147    pub fn new() -> Predef {
148        Predef {
149            std: Std::default(),
150            gnu_extensions: true,
151            gnu89_inline: false,
152            gnuc: GnucVersion::default(),
153            opt_level: OptLevel::O0,
154            hosted: true,
155            pic: Pic::Executable,
156            timestamp: Timestamp::now(),
157            glibc_minor: None,
158            trapping_math: true,
159            math: Math::default(),
160            exceptions: false,
161            defines: Vec::new(),
162            undefines: Vec::new(),
163            isa: Isa::baseline(),
164        }
165    }
166}
167
168impl Predef {
169    /// The set the command line asked for.
170    ///
171    /// The mapping lives here rather than in the driver because it is the definition of what
172    /// each flag means to the macro set, and the driver's job is to parse a command line, not
173    /// to know that `-ffreestanding` is `__STDC_HOSTED__` being zero.
174    pub fn for_options(opts: &Options) -> Predef {
175        Predef {
176            std: opts.std,
177            gnu_extensions: opts.gnu_extensions,
178            gnu89_inline: opts.gnu89_inline,
179            gnuc: opts.gnuc,
180            opt_level: opts.opt_level,
181            hosted: opts.hosted,
182            pic: opts.pic,
183            timestamp: Timestamp::now(),
184            glibc_minor: opts.glibc_minor,
185            trapping_math: opts.trapping_math,
186            math: opts.math,
187            exceptions: opts.exceptions,
188            defines: opts.defines.clone(),
189            undefines: opts.undefines.clone(),
190            isa: opts.isa,
191        }
192    }
193}
194
195impl Default for Predef {
196    fn default() -> Predef {
197        Predef::new()
198    }
199}
200
201/// A file of `#define` lines being built up.
202struct Defs {
203    text: String,
204}
205
206impl Defs {
207    fn new() -> Defs {
208        Defs { text: String::new() }
209    }
210
211    /// `#define name value`.
212    fn set(&mut self, name: &str, value: &str) {
213        self.text.push_str("#define ");
214        self.text.push_str(name);
215        self.text.push(' ');
216        self.text.push_str(value);
217        self.text.push('\n');
218    }
219
220    /// `#define name 1`, which is what a macro that is only ever tested for needs.
221    fn flag(&mut self, name: &str) {
222        self.set(name, "1");
223    }
224
225    fn set_if(&mut self, when: bool, name: &str, value: &str) {
226        if when {
227            self.set(name, value);
228        }
229    }
230
231    fn flag_if(&mut self, when: bool, name: &str) {
232        if when {
233            self.flag(name);
234        }
235    }
236}
237
238/// The whole predefined set for a target, as the text of a file.
239pub(crate) fn built_in(target: &TargetInfo, opts: &Predef) -> String {
240    let mut d = Defs::new();
241    identity(&mut d, target, opts);
242    // `__DATE__` and `__TIME__` are fixed for the whole translation unit, which is what the
243    // standard asks for, so they are ordinary object-like macros and the expander needs to
244    // know nothing about them.
245    d.set("__DATE__", &format!("\"{}\"", opts.timestamp.date));
246    d.set("__TIME__", &format!("\"{}\"", opts.timestamp.time));
247    dialect(&mut d, opts);
248    optimization(&mut d, opts);
249    platform(&mut d, target, opts);
250    sizes(&mut d, target);
251    integers(&mut d, target);
252    floats(&mut d, target, opts);
253    atomics(&mut d, target);
254    d.text
255}
256
257/// `-D` and `-U`, as the text of a file.
258///
259/// Empty when there are none, so that the caller can skip adding a file that would say
260/// nothing. The undefines come last whatever order they were written in, because `-U` beats
261/// `-D` in GCC no matter which side of it the `-D` was on.
262pub(crate) fn command_line(opts: &Predef) -> String {
263    let mut d = Defs::new();
264    for define in &opts.defines {
265        match define.split_once('=') {
266            Some((name, value)) => d.set(name, value),
267            // `-DFOO` is `-DFOO=1`. A macro nobody gave a value to is one that is only ever
268            // tested for, and giving it an empty body would break `#if FOO`.
269            None => d.flag(define),
270        }
271    }
272    for name in &opts.undefines {
273        d.text.push_str("#undef ");
274        d.text.push_str(name);
275        d.text.push('\n');
276    }
277    d.text
278}
279
280/// What this compiler says its own version is.
281///
282/// Read from the manifest at build time rather than written here, because a number written in a
283/// second place is a number that goes stale: these five macros said 0.1.0 through sixty seven
284/// releases. A program testing `__rucc_major__` for a feature was told the answer for a version
285/// nobody has run since, and a build log recording `__VERSION__` recorded the wrong compiler.
286const VERSION: &str = env!("CARGO_PKG_VERSION");
287
288/// One dotted field of a version, as the digits at the front of it.
289///
290/// `0.10.68-rc.1` has a patch level of 68 and not of `68-rc`, and a field that is not there at all
291/// is zero, which is what a two field version means by its third. Neither shape is one this
292/// workspace publishes, and a macro that expands to something no `#if` can read is worse than a
293/// macro that is approximately right.
294fn field(version: &str, n: usize) -> &str {
295    let part = version.split('.').nth(n).unwrap_or("0");
296    let digits = part.trim_start_matches(|c: char| !c.is_ascii_digit());
297    let end = digits.find(|c: char| !c.is_ascii_digit()).unwrap_or(digits.len());
298    if end == 0 { "0" } else { &digits[..end] }
299}
300
301/// Who the compiler says it is.
302fn identity(d: &mut Defs, target: &TargetInfo, opts: &Predef) {
303    d.flag("__rucc__");
304    d.set("__rucc_version__", &format!("\"{VERSION}\""));
305    d.set("__rucc_major__", field(VERSION, 0));
306    d.set("__rucc_minor__", field(VERSION, 1));
307    d.set("__rucc_patchlevel__", field(VERSION, 2));
308    // The promise from section 4.5. Everything in the matrix hangs off this line.
309    d.set("__GNUC__", &opts.gnuc.major.to_string());
310    d.set("__GNUC_MINOR__", &opts.gnuc.minor.to_string());
311    d.set("__GNUC_PATCHLEVEL__", &opts.gnuc.patch.to_string());
312    d.set("__VERSION__", &format!("\"rucc {VERSION}\""));
313    // Not `__clang__`, deliberately. Section 4.5 says so, and a header that takes the Clang
314    // path expects Clang's extension surface rather than GCC's.
315    //
316    // Which of the two readings of `inline` is in force, which a header reads to decide how to
317    // write its own inline definitions: glibc's `__extern_inline` is `extern __inline` under the
318    // one and adds `__attribute__ ((__gnu_inline__))` under the other. C99 changed the meaning of
319    // the keyword and gcc follows the dialect, so the C89 ones keep GNU's reading and every
320    // dialect after them takes C's until `-fgnu89-inline` says otherwise.
321    let gnu_inline = opts.gnu89_inline || opts.std == Std::C89;
322    d.flag_if(gnu_inline, "__GNUC_GNU_INLINE__");
323    d.flag_if(!gnu_inline, "__GNUC_STDC_INLINE__");
324    // The charsets a literal is converted to. Both are fixed here rather than settable, since
325    // there is no `-fexec-charset` to set them with, and both are what gcc answers with none.
326    // The wide one follows `wchar_t`, which is sixteen bits on Windows and thirty two
327    // everywhere else, so it is the one target fact in this function.
328    d.set("__GNUC_EXECUTION_CHARSET_NAME", "\"UTF-8\"");
329    let wide = if target.wchar_width == 16 { "\"UTF-16LE\"" } else { "\"UTF-32LE\"" };
330    d.set("__GNUC_WIDE_EXECUTION_CHARSET_NAME", wide);
331    // The C++ ABI this would be if it compiled C++, which gcc defines in C as well. It is not
332    // a claim about this compiler so much as a number headers read: libstdc++ is not the only
333    // thing that tests it, and a C header shared with a C++ one reaches it through `extern
334    // "C"` guards. The value is gcc 16's.
335    d.set("__GXX_ABI_VERSION", "1021");
336}
337
338/// What the dialect flags say.
339fn dialect(d: &mut Defs, opts: &Predef) {
340    d.flag("__STDC__");
341    d.set_if(opts.hosted, "__STDC_HOSTED__", "1");
342    d.set_if(!opts.hosted, "__STDC_HOSTED__", "0");
343    if let Some(version) = opts.std.stdc_version() {
344        d.set("__STDC_VERSION__", version);
345    }
346    // Defined exactly when the extensions are off, which is the whole difference between
347    // `-std=c23` and `-std=gnu23` as far as the preprocessor is concerned.
348    d.flag_if(!opts.gnu_extensions, "__STRICT_ANSI__");
349    d.flag("__STDC_UTF_16__");
350    d.flag("__STDC_UTF_32__");
351    // What glibc's `<pthread.h>` reads to spell `pthread_cleanup_push` with a `cleanup` attribute
352    // rather than with `setjmp`, and gcc defines it in C for `-fexceptions` and for
353    // `-fnon-call-exceptions` alone.
354    d.flag_if(opts.exceptions, "__EXCEPTIONS");
355    // Only while the arithmetic is IEC 60559's, which a fast math licence ends. glibc's
356    // `<stdc-predef.h>` writes the same four from `__GCC_IEC_559` and writes none of them when that
357    // is zero, so saying them here under `-ffast-math` would be the redefinition described below
358    // with the opposite sign.
359    let iec = opts.math.iec_559(opts.trapping_math);
360    d.flag_if(iec, "__STDC_IEC_559__");
361    d.flag_if(iec, "__STDC_IEC_559_COMPLEX__");
362    // TS 18661-1's date, in every dialect, which is gcc 16's answer rather than the standard's.
363    // C23 folded that document into Annex F and gave the macro a date of its own, so 202311L is
364    // the value C23 asks for, and writing it is what a reading of the standard alone produces.
365    // It also breaks every translation unit that reaches glibc. `<stdc-predef.h>` is included
366    // ahead of the first line of the file and defines this name as 201404L whenever
367    // `__GCC_IEC_559` is positive, which it is here, so a different value is a redefinition with
368    // a different body and that is a diagnostic on a line the program never wrote. The cost is
369    // not only noise: sqlite's configure runs its feature tests through autosetup's `cctest
370    // -nooutput 1`, which reads any output at all as a failed test, and the readline completion
371    // test failed for no other reason than this warning.
372    d.set_if(iec, "__STDC_IEC_60559_BFP__", "201404L");
373    // The same date for the complex half, which is the other name `<stdc-predef.h>` writes and
374    // which was missing here. Withholding it looked like the careful answer and was not one, for
375    // two reasons. `__STDC_NO_COMPLEX__` is defined, so there is no complex arithmetic for the
376    // claim to be about and a program that reads one of these has already been told there is
377    // none. And the library makes the claim anyway: the `#else` in `<stdc-predef.h>` is reached
378    // by a compiler that says nothing about its intent, and it presumes an older compiler that
379    // meant yes. Saying nothing therefore does not withhold anything, it only makes the value
380    // arrive from somewhere else.
381    d.set_if(iec, "__STDC_IEC_60559_COMPLEX__", "201404L");
382    d.set("__STDC_ISO_10646__", "201706L");
383    // The type behind `char8_t`, which C23 added and no dialect before it has. It sits here
384    // rather than next to `__CHAR16_TYPE__` and `__CHAR32_TYPE__` because those two are the
385    // same in every dialect and this one is not, which is the whole reason a header can test
386    // for it: gcc's own `stdatomic.h` writes `atomic_char8_t` under `#ifdef __CHAR8_TYPE__`
387    // and gets it in C23 and not in C17.
388    d.set_if(opts.std >= Std::C23, "__CHAR8_TYPE__", "unsigned char");
389    // C11 made these conditional features, and a header that sees `__STDC_VERSION__` at
390    // 201112 with no `__STDC_NO_ATOMICS__` next to it will use `_Atomic`. Each one here is a
391    // claim not to have something, so each one is only correct while it stays true: atomics
392    // because there is no `stdatomic.h` to include, threads because there is no `threads.h`,
393    // and complex because the arithmetic is not lowered.
394    //
395    // Variable length arrays are not on this list, because they work. Claiming otherwise is
396    // not a harmless overstatement of caution: glibc's `regex.h` writes the bound of
397    // `regexec`'s match array as `_REGEX_NELTS (__nmatch)`, which is the parameter when the
398    // dialect has them and nothing at all when a compiler says it does not, so the claim
399    // silently changes a declaration in a header rather than turning something off.
400    if opts.std.has_c11() {
401        d.flag("__STDC_NO_ATOMICS__");
402        d.flag("__STDC_NO_THREADS__");
403        d.flag("__STDC_NO_COMPLEX__");
404    }
405    // What `__has_embed` answers with. They are defined in every dialect and not only in C23,
406    // because the operator is answerable in every dialect and a header that writes
407    // `#if __has_embed(...) == __STDC_EMBED_FOUND__` under `-std=gnu17` would otherwise be
408    // comparing against zero and taking the not found branch on a resource that is there.
409    d.set("__STDC_EMBED_NOT_FOUND__", "0");
410    d.set("__STDC_EMBED_FOUND__", "1");
411    d.set("__STDC_EMBED_EMPTY__", "2");
412}
413
414/// The memory orders and the lock free answers.
415///
416/// These are here whether or not `_Atomic` is, and `__STDC_NO_ATOMICS__` does not turn them
417/// off, because they are the numbering the `__atomic` builtins take rather than a promise
418/// about the language. musl's `stdatomic.h` writes `memory_order_relaxed = __ATOMIC_RELAXED`
419/// with no test around it at all, so a compiler without them prints an enumerator whose value
420/// is an identifier.
421///
422/// Two means always lock free, and every integer type gets a two on all three targets, which
423/// are all sixty four bit machines. `long long` is the one that would change on a thirty two
424/// bit target, where a double word load is an instruction the machine may or may not have.
425fn atomics(d: &mut Defs, target: &TargetInfo) {
426    d.set("__ATOMIC_RELAXED", "0");
427    d.set("__ATOMIC_CONSUME", "1");
428    d.set("__ATOMIC_ACQUIRE", "2");
429    d.set("__ATOMIC_RELEASE", "3");
430    d.set("__ATOMIC_ACQ_REL", "4");
431    d.set("__ATOMIC_SEQ_CST", "5");
432    // The gate is the machine word rather than `long`, because Windows has a thirty two bit
433    // `long` on a sixty four bit machine and its `long long` is still one instruction.
434    let llong = if target.pointer_width == 64 { "2" } else { "1" };
435    for name in [
436        "BOOL", "CHAR", "CHAR8_T", "CHAR16_T", "CHAR32_T", "WCHAR_T", "SHORT", "INT", "LONG",
437        "POINTER",
438    ] {
439        d.set(&format!("__GCC_ATOMIC_{name}_LOCK_FREE"), "2");
440    }
441    // The one that is not always two: a target whose word is thirty two bits wide can only
442    // promise `long long` is lock free if it has a double word instruction, and the honest
443    // answer there is sometimes rather than always.
444    d.set("__GCC_ATOMIC_LLONG_LOCK_FREE", llong);
445    d.set("__GCC_ATOMIC_TEST_AND_SET_TRUEVAL", "1");
446    // What `__sync_bool_compare_and_swap` works on, one macro per width in bytes. Every target
447    // here has the instruction at all four, and glibc reads these rather than the `__atomic_*`
448    // set because they are the older question and the answer is the same one.
449    for width in [1, 2, 4, 8] {
450        d.flag(&format!("__GCC_HAVE_SYNC_COMPARE_AND_SWAP_{width}"));
451    }
452    // The two flag bits an x86 memory order can carry, for the hardware lock elision prefixes.
453    // They are numbers a program passes back to a builtin rather than a claim that the prefix
454    // is emitted, and a program that computes one on a machine where the macro is missing gets
455    // a preprocessor error rather than a slower atomic.
456    if target.tuple.arch() == tuple::Arch::X86_64 {
457        d.set("__ATOMIC_HLE_ACQUIRE", "65536");
458        d.set("__ATOMIC_HLE_RELEASE", "131072");
459    }
460}
461
462/// What the optimizer level says.
463fn optimization(d: &mut Defs, opts: &Predef) {
464    d.flag_if(opts.opt_level.runs_optimizer(), "__OPTIMIZE__");
465    d.flag_if(opts.opt_level.is_size(), "__OPTIMIZE_SIZE__");
466    // glibc's headers test this before deciding whether to define a function as an inline
467    // wrapper, so getting it wrong changes what a program links against.
468    d.flag_if(!opts.opt_level.runs_optimizer(), "__NO_INLINE__");
469    // Zero, and one under `-ffinite-math-only`, which `-ffast-math` implies. glibc's `math.h`
470    // reads it to decide whether to declare the `__*_finite` aliases, so it has to be defined
471    // rather than merely not claimed: a header testing `#if __FINITE_MATH_ONLY__ > 0` on a
472    // compiler that leaves it undefined takes the same branch, but one writing `#if
473    // !__FINITE_MATH_ONLY__` is a different question and gcc gives it an answer.
474    let math = &opts.math;
475    let trapping = opts.trapping_math;
476    d.set("__FINITE_MATH_ONLY__", if math.finite_only { "1" } else { "0" });
477    // One macro per licence, each defined only when it was given, which is how gcc 16 spells
478    // them. `__FAST_MATH__` is all of them at once and is worked out rather than remembered from
479    // the flag, so `-ffast-math -ftrapping-math` does not claim it, and regrouping is the one gcc
480    // drops unless nothing could tell it happened.
481    d.flag_if(math.fast(trapping), "__FAST_MATH__");
482    d.flag_if(!math.errno, "__NO_MATH_ERRNO__");
483    d.flag_if(!trapping, "__NO_TRAPPING_MATH__");
484    d.flag_if(!math.signed_zeros, "__NO_SIGNED_ZEROS__");
485    d.flag_if(math.reciprocal, "__RECIPROCAL_MATH__");
486    d.flag_if(math.associative(trapping), "__ASSOCIATIVE_MATH__");
487}
488
489/// The architecture, the operating system and the object format.
490fn platform(d: &mut Defs, target: &TargetInfo, opts: &Predef) {
491    // The macros a target with no backend predefines are not written down here. They are a
492    // header's whole view of the machine, a wrong one is a header taking a branch written for
493    // another processor, and there is nothing cheap that would catch it. The driver takes a three
494    // field triple, so a target this cannot spell is one nobody can ask for yet rather than a
495    // hole in what it answers.
496    let Some(triple) = Triple::from_tuple(target.tuple) else {
497        return;
498    };
499    match triple.arch {
500        Arch::X86_64 => {
501            d.flag("__x86_64__");
502            d.flag("__x86_64");
503            d.flag("__amd64__");
504            d.flag("__amd64");
505            // One macro per extension the unit is built for, which is `__SSE__`, `__SSE2__`,
506            // `__MMX__` and `__FXSR__` for the baseline every x86-64 has, and `__SSE4_2__` and
507            // its relatives for what `-march=` and `-msse4.2` add. Only the extensions this
508            // compiler has the intrinsics for get one, see `rucc_target::isa`.
509            for name in opts.isa.macros() {
510                d.flag(&name);
511            }
512            d.flag("__SSE_MATH__");
513            d.flag("__SSE2_MATH__");
514            d.flag("__k8");
515            d.flag("__k8__");
516            // The small code model, which is the default and the only one a program gets without
517            // being told otherwise.
518            d.flag("__code_model_small__");
519            // The MMX registers are not used on x86-64: the sixty four bit operations go
520            // through SSE instead. gcc's own `xmmintrin.h` reads this to decide how to write
521            // `_mm_maskmove_si64`, so a compiler that leaves it undefined is handed a
522            // different function body than gcc is, which is what the header sweep found.
523            d.flag("__MMX_WITH_SSE__");
524        }
525        Arch::Aarch64 => {
526            d.flag("__aarch64__");
527            d.flag("__AARCH64EL__");
528            d.set("__ARM_ARCH", "8");
529            d.set("__ARM_ARCH_PROFILE", "'A'");
530            d.set("__ARM_64BIT_STATE", "1");
531            d.set("__ARM_ALIGN_MAX_PWR", "28");
532            d.set("__ARM_FP", "0xe");
533            d.set("__ARM_NEON", "1");
534            d.set("__ARM_FEATURE_UNALIGNED", "1");
535            d.set("__ARM_PCS_AAPCS64", "1");
536            // The rest of what gcc says for a plain Armv8-A. Every one is an instruction the
537            // base architecture has, so none of them depends on a `-march` this compiler does
538            // not take yet, and a program that tests one to choose `__builtin_clz` or a
539            // hardware divide over a portable loop takes the same branch it takes under gcc.
540            d.set("__ARM_ARCH_8A", "1");
541            d.set("__ARM_ARCH_ISA_A64", "1");
542            d.set("__ARM_FEATURE_CLZ", "1");
543            d.set("__ARM_FEATURE_FMA", "1");
544            d.set("__ARM_FEATURE_IDIV", "1");
545            d.set("__ARM_FEATURE_NUMERIC_MAXMIN", "1");
546            d.set("__ARM_ALIGN_MAX_STACK_PWR", "16");
547            d.set("__ARM_SIZEOF_MINIMAL_ENUM", "4");
548            d.set("__ARM_SIZEOF_WCHAR_T", "4");
549            d.set("__AARCH64_CMODEL_SMALL__", "1");
550            // A fused multiply add is one instruction here, and glibc's `math.h` turns these
551            // into `FP_FAST_FMA` and `FP_FAST_FMAF`, which a program reads to decide whether
552            // calling `fma` is cheaper than writing the product and the sum apart.
553            for name in ["", "F", "F32", "F64", "F32x"] {
554                d.set(&format!("__FP_FAST_FMA{name}"), "1");
555            }
556        }
557        Arch::Riscv64 => {
558            d.flag("__riscv");
559            d.set("__riscv_xlen", "64");
560            d.set("__riscv_flen", "64");
561            d.flag("__riscv_float_abi_double");
562            d.flag("__riscv_muldiv");
563            d.flag("__riscv_atomic");
564            d.flag("__riscv_compressed");
565            d.set("__riscv_cmodel_medlow", "1");
566        }
567    }
568    match triple.os {
569        Os::Linux => {
570            d.flag("__linux__");
571            d.flag("__linux");
572            d.flag("__unix__");
573            d.flag("__unix");
574            d.flag("__gnu_linux__");
575            d.flag("__ELF__");
576            // The unarmoured spellings are not reserved identifiers, so a strict mode may not
577            // define them. Autoconf still tests for `linux`, which is why they exist at all.
578            if opts.gnu_extensions {
579                d.flag("linux");
580                d.flag("unix");
581            }
582        }
583        Os::Darwin => {
584            d.flag("__APPLE__");
585            d.flag("__MACH__");
586            d.flag("__unix__");
587            d.flag("__unix");
588            d.set("__APPLE_CC__", "6000");
589            d.set("__DYNAMIC__", "1");
590            if triple.arch == Arch::Aarch64 {
591                // Apple's own spelling of the architecture, which its headers use rather than
592                // __aarch64__. sys/cdefs.h tests for it by name and reaches an #error called
593                // "Unsupported architecture" without it, so every system header on this
594                // platform fails on the first include until these two are here.
595                d.flag("__arm64__");
596                d.flag("__arm64");
597                // Older Apple spellings that the SDK still reads. `arm/arch.h` sets its own
598                // `_ARM_ARCH_*` family from `__ARM64_ARCH_8__`, and a header that tests
599                // `__ARM_NEON__` rather than `__ARM_NEON` is taking the portable path without
600                // the Advanced SIMD one. clang defines all three for every Apple arm64 target.
601                d.flag("__ARM64_ARCH_8__");
602                d.flag("__ARM_NEON__");
603                d.flag("__AARCH64_SIMD__");
604            }
605            // clang says this on every little endian target and gcc says it on none, which is
606            // why it is here rather than beside the byte order macros. Apple's headers were
607            // written for clang alone, and `CFByteOrder.h` and `architecture/byte_order.h` both
608            // choose their swaps from it.
609            d.flag("__LITTLE_ENDIAN__");
610            deployment_target(d, target);
611            if opts.gnu_extensions {
612                d.flag("unix");
613            }
614        }
615        Os::Windows => {
616            // Every spelling gcc has for this platform, because the mingw-w64 tree reads more
617            // than one of them and a missing one is a declaration that quietly is not there.
618            // `winuser.h` guards `EndTask` with `#ifdef WINNT` and `rpcdcep.h` guards six
619            // declarations with `#ifndef WINNT`, so a compiler that leaves it undefined
620            // preprocesses `windows.h` to a different set of functions than gcc does, which is
621            // what the token comparison against a real mingw install found.
622            d.flag("_WIN32");
623            d.flag("__WIN32");
624            d.flag("__WIN32__");
625            d.flag("__WINNT");
626            d.flag("__WINNT__");
627            d.flag("__MINGW32__");
628            // Not the machine word: `_WIN64` says the pointer is sixty four bits wide, and
629            // i686-w64-mingw32-gcc defines neither it nor `__MINGW64__`.
630            if target.pointer_width == 64 {
631                d.flag("_WIN64");
632                d.flag("__WIN64");
633                d.flag("__WIN64__");
634                d.flag("__MINGW64__");
635            }
636            // Which kind of exception machinery the platform has, and on this one there is only
637            // the one: a table the operating system reads rather than anything the prologue
638            // registers. mingw's `setjmp.h` reads this to choose the two argument `_setjmp`,
639            // whose second argument is `__builtin_frame_address(0)` and becomes the frame
640            // `longjmp` asks `RtlUnwindEx` to unwind to. That is the same address the function's
641            // own unwind record reports, because the record names the frame pointer with an
642            // offset of zero and the prologue leaves the pointer holding the body's stack
643            // pointer, so the number the builtin answers with and the number the walk arrives at
644            // are the same number by construction. Only for the architecture whose records this
645            // compiler writes: x86_64-w64-mingw32-gcc defines it and i686-w64-mingw32-gcc does
646            // not, because a thirty two bit Windows unwinds some other way.
647            if triple.arch == Arch::X86_64 && target.pointer_width == 64 {
648                d.flag("__SEH__");
649            }
650            // Which C runtime the headers are configured for. The sysroot this compiler fetches
651            // is built `--with-default-msvcrt=msvcrt` to match the link line, which names
652            // `libmsvcrt.a`, and gcc defines this for the same tree.
653            d.flag("__MSVCRT__");
654            // The widest integer the compiler has, which is what Microsoft's headers ask
655            // instead of asking about `long long`.
656            d.set("_INTEGRAL_MAX_BITS", "64");
657            // The unarmoured three, which are not reserved identifiers, so a strict mode may
658            // not define them and gcc does not. Windows code tests all three anyway, the same
659            // way portable Unix code still tests `linux`.
660            if opts.gnu_extensions {
661                d.flag("WIN32");
662                d.flag("WINNT");
663                if target.pointer_width == 64 {
664                    d.flag("WIN64");
665                }
666            }
667            windows_spellings(d, opts);
668        }
669        Os::None => {
670            // Freestanding. `__ELF__` still holds, because the object format is a property of
671            // the target rather than of having an operating system under it.
672            d.flag("__ELF__");
673        }
674    }
675    match triple.env {
676        Env::Musl => d.flag("__musl__"),
677        Env::Gnu | Env::None | Env::Msvc => {}
678    }
679    // The version of the libc's headers, and only when they are the tree we bundle. One tree serves
680    // every glibc release with the differences written as `#if __GLIBC_MINOR__ >= n` inside the
681    // files, so the release is the part of it the target supplies and the compiler is what supplies
682    // it. Zig patches the same macro into the same tree the same way, which is where the spelling
683    // comes from rather than from a scheme of ours: `__GLIBC_PREREQ` reads it and so does every
684    // autoconf probe ever written.
685    //
686    // The condition is the whole of it and it is not here. A host glibc defines this macro in its
687    // own `features.h` and so does a tree the user named, and a second definition with a different
688    // value is a warning on every compilation, so the driver decides and this writes down what it
689    // decided.
690    if let Some(minor) = opts.glibc_minor {
691        d.set("__GLIBC_MINOR__", &minor.to_string());
692    }
693    // LP64 is the model everywhere except Windows, and a great deal of code tests for it
694    // rather than testing pointer and long widths separately.
695    if target.long_width == 64 && target.pointer_width == 64 {
696        d.flag("__LP64__");
697        d.flag("_LP64");
698    }
699    // What the assembler prepends to a C name to get the symbol. Mach-O keeps the leading
700    // underscore that every a.out toolchain had and ELF dropped it. It has to be defined even
701    // where it is empty, because of how it is used: glibc writes `__asm__ (__ASMNAME (name))`
702    // and that stringifies `__USER_LABEL_PREFIX__`, so a compiler that leaves it undefined
703    // does not get an error, it gets the name of the macro as the string and renames the
704    // function.
705    d.set("__USER_LABEL_PREFIX__", if triple.os == Os::Darwin { "_" } else { "" });
706    // Its counterpart, what the assembler puts in front of a register name. Empty on every
707    // target here, since all three assemble in a syntax that does not mark registers, and
708    // defined anyway for the same reason as the line above: it is used inside a stringize.
709    d.set("__REGISTER_PREFIX__", "");
710
711    // Position independent code is the default on the ELF targets and on Apple's, which is
712    // what a distribution build expects. The value 2 is GCC's for `-fPIC` rather than `-fpic`.
713    //
714    // Both are defined whichever link the output is for, because `__PIC__` says there are no
715    // absolute addresses in the text and that is true either way. What says which link it is is
716    // `__PIE__`, and a program reads it to find out whether a name it exports is one something
717    // else may replace. gcc defines it under `-fPIE` and under the default on a distribution
718    // where the default is an executable, which is the default here too.
719    if !matches!(triple.os, Os::Windows) {
720        d.set("__PIC__", "2");
721        d.set("__pic__", "2");
722        if opts.pic == Pic::Executable {
723            d.set("__PIE__", "2");
724            d.set("__pie__", "2");
725        }
726    }
727}
728
729/// The five spellings a Windows header writes a calling convention and an attribute in.
730///
731/// `int __cdecl f(void);` is the second declaration in mingw-w64's `stdio.h` and it stops a parser
732/// that has never heard of `__cdecl`, which reads it as the name being declared and then finds a
733/// second one. None of the five is a keyword, though: gcc defines every one of them as a macro over
734/// the GNU spelling of the same thing, which is why they are keywords on Windows and nowhere else
735/// without anything in its lexer being told what the target is. `-dM -E` on a mingw-w64 gcc prints
736/// exactly the lines below.
737///
738/// `__declspec(x)` being the GNU spelling of its argument is the part worth saying out loud, since
739/// it means `__declspec(dllimport)` and `__attribute__((dllimport))` cannot come to mean different
740/// things: there is one attribute and two ways of writing it, and everything that reads attributes
741/// reads both.
742///
743/// On x86-64 all four conventions name the one convention the target has, so the attributes go
744/// where every attribute nothing implements goes, which is left on the declaration. On i386 they
745/// differ over who pops the arguments and the choice is written into the symbol name, which is
746/// document 06.5 and is that target's work when there is one.
747/// The deployment target, which is the oldest release of the OS the program is promised to run
748/// on. `Availability.h` reads it through `__ENVIRONMENT_OS_VERSION_MIN_REQUIRED__` and the older
749/// per platform spelling, and turns it into `__MAC_OS_X_VERSION_MIN_REQUIRED`, which the whole
750/// SDK tests to decide which declarations exist and which are marked unavailable. Without it
751/// every one of those tests sees no version at all.
752///
753/// The version comes from the tuple, as in `aarch64-macos.13`, where `-mmacosx-version-min=`
754/// also puts it. With none given this is 11.0 on macOS, the first release that ran on Apple
755/// silicon, and 14.0 on iOS, the oldest a current SDK builds for. The oldest answer is the one
756/// that cannot hand a program a declaration the machine it runs on does not have. The encoding
757/// is two digits each for the major, minor and patch numbers, so 13.4 is 130400.
758fn deployment_target(d: &mut Defs, target: &TargetInfo) {
759    let (platform, default) = match target.tuple.os() {
760        tuple::Os::MacOs => ("MAC_OS_X", tuple::Version::new(11, 0)),
761        tuple::Os::IOs => ("IPHONE_OS", tuple::Version::new(14, 0)),
762        _ => return,
763    };
764    let version = target.tuple.os_version().unwrap_or(default);
765    let encoded = version.major_part() * 10000
766        + version.minor_part().unwrap_or(0) * 100
767        + version.patch_part().unwrap_or(0);
768    d.set(&format!("__ENVIRONMENT_{platform}_VERSION_MIN_REQUIRED__"), &encoded.to_string());
769    d.set("__ENVIRONMENT_OS_VERSION_MIN_REQUIRED__", &encoded.to_string());
770}
771
772fn windows_spellings(d: &mut Defs, opts: &Predef) {
773    for name in ["cdecl", "stdcall", "fastcall", "thiscall"] {
774        d.set(&format!("__{name}"), &format!("__attribute__((__{name}__))"));
775        // The single underscore spellings are not in the reserved namespace, so an implementation
776        // may not take them in a strict ISO mode and gcc does not.
777        if opts.gnu_extensions {
778            d.set(&format!("_{name}"), &format!("__attribute__((__{name}__))"));
779        }
780    }
781    d.set("__declspec(x)", "__attribute__((x))");
782}
783
784/// `__CHAR_BIT__`, the `__SIZEOF_*__` family and the alignment macros.
785fn sizes(d: &mut Defs, target: &TargetInfo) {
786    let pointer = target.pointer_width / 8;
787    // The two hardware interference sizes, which say how far apart two objects have to be for
788    // a write to one not to invalidate the other's cache line, and how close together two have
789    // to be to share one. A cache line is sixty four bytes on every target here, and x86-64
790    // gives that for both. Arm cores have been built with lines up to 256 bytes, so gcc and
791    // clang both give 256 for the distance that has to be safe on any of them.
792    let destructive = if target.tuple.arch() == tuple::Arch::Aarch64 { "256" } else { "64" };
793    d.set("__GCC_CONSTRUCTIVE_SIZE", "64");
794    d.set("__GCC_DESTRUCTIVE_SIZE", destructive);
795    let long = target.long_width / 8;
796    let long_double = target.long_double_width / 8;
797    d.set("__CHAR_BIT__", "8");
798    d.set("__SIZEOF_SHORT__", "2");
799    d.set("__SIZEOF_INT__", "4");
800    d.set("__SIZEOF_LONG__", &long.to_string());
801    d.set("__SIZEOF_LONG_LONG__", "8");
802    d.set("__SIZEOF_INT128__", "16");
803    d.set("__SIZEOF_FLOAT__", "4");
804    d.set("__SIZEOF_DOUBLE__", "8");
805    d.set("__SIZEOF_LONG_DOUBLE__", &long_double.to_string());
806    // Where the type has its old name and nowhere else, which is gcc's rule and the reason the
807    // macro is the one portable code tests before it writes `__float128`. PowerPC also says
808    // `__FLOAT128__`, which gcc defines there and not on x86.
809    if target.type_names().iter().any(|&(name, _)| name == "__float128") {
810        d.set("__SIZEOF_FLOAT128__", "16");
811        if target.tuple.arch() == tuple::Arch::PowerPc64 {
812            d.set("__FLOAT128__", "1");
813        }
814    }
815    d.set("__SIZEOF_POINTER__", &pointer.to_string());
816    d.set("__SIZEOF_SIZE_T__", &pointer.to_string());
817    d.set("__SIZEOF_PTRDIFF_T__", &pointer.to_string());
818    d.set("__SIZEOF_WCHAR_T__", &wchar(target).size.to_string());
819    // From the spelling rather than from a constant, because Windows makes `wint_t` a
820    // `short unsigned int` and this said four bytes there while `__WINT_WIDTH__` said sixteen
821    // bits two hundred lines away.
822    d.set("__SIZEOF_WINT_T__", &(wint(target).width / 8).to_string());
823    d.set("__BIGGEST_ALIGNMENT__", "16");
824    // The `__BYTE_ORDER__` family, which the kernel and every serialisation library read.
825    // The names of the orders are defined whichever one is in force, because code compares
826    // against both.
827    d.set("__ORDER_LITTLE_ENDIAN__", "1234");
828    d.set("__ORDER_BIG_ENDIAN__", "4321");
829    d.set("__ORDER_PDP_ENDIAN__", "3412");
830    let order =
831        if target.little_endian { "__ORDER_LITTLE_ENDIAN__" } else { "__ORDER_BIG_ENDIAN__" };
832    d.set("__BYTE_ORDER__", order);
833    d.set("__FLOAT_WORD_ORDER__", order);
834    d.flag_if(!target.char_is_signed, "__CHAR_UNSIGNED__");
835}
836
837/// How `wchar_t` is spelled on a target, and what it holds.
838struct Wchar {
839    /// The C type it is a name for.
840    spelling: &'static str,
841    /// Its width in bytes.
842    size: u32,
843    /// `__WCHAR_MAX__`.
844    max: &'static str,
845    /// `__WCHAR_MIN__`.
846    min: &'static str,
847}
848
849/// `wchar_t` is the type that divides the targets most and is written down least.
850///
851/// Windows makes it 16 bits so that a wide string is UTF-16. AArch64 Linux makes it unsigned,
852/// following the psABI's rule for plain `char`, while x86-64 Linux makes it signed. Code that
853/// compares a `wchar_t` against a negative value is correct on one and not on the other.
854///
855/// The width and the signedness come from the target description rather than from another match
856/// on the triple, because the lexer needs the same two facts to convert a wide literal and the
857/// two answers have to be the same one.
858fn wchar(target: &TargetInfo) -> Wchar {
859    match (target.wchar_width, target.wchar_is_signed) {
860        (16, false) => Wchar { spelling: "short unsigned int", size: 2, max: "0xffff", min: "0" },
861        (16, true) => Wchar { spelling: "short int", size: 2, max: "0x7fff", min: "(-32767 - 1)" },
862        (_, false) => Wchar { spelling: "unsigned int", size: 4, max: "0xffffffffU", min: "0U" },
863        (_, true) => {
864            Wchar { spelling: "int", size: 4, max: "0x7fffffff", min: "(-__WCHAR_MAX__ - 1)" }
865        }
866    }
867}
868
869/// How `wint_t` is spelled on a target, and what it holds.
870struct Wint {
871    /// The C type it is a name for.
872    spelling: &'static str,
873    /// `__WINT_MAX__`.
874    max: &'static str,
875    /// `__WINT_MIN__`.
876    min: &'static str,
877    /// `__WINT_WIDTH__`, which follows the spelling rather than `__SIZEOF_WINT_T__`.
878    width: u32,
879}
880
881/// `wint_t` does not follow `wchar_t`, and Darwin is where that shows.
882///
883/// Apple makes it a signed `int`, so that `WEOF` is negative the way `EOF` is, while Linux
884/// makes it `unsigned int` and gives `WEOF` the value `0xffffffff`. The SDK's `arm/_types.h`
885/// spells `__darwin_wint_t` as `__WINT_TYPE__` and nothing else, so getting this wrong changes
886/// the signedness of every wide character function's argument on that platform.
887fn wint(target: &TargetInfo) -> Wint {
888    match target.tuple.os() {
889        tuple::Os::Windows => {
890            Wint { spelling: "short unsigned int", max: "0xffff", min: "0", width: 16 }
891        }
892        os if os.is_darwin() => {
893            Wint { spelling: "int", max: "0x7fffffff", min: "(-__WINT_MAX__ - 1)", width: 32 }
894        }
895        _ => Wint { spelling: "unsigned int", max: "0xffffffffU", min: "0U", width: 32 },
896    }
897}
898
899/// The integer type names, their limits, and the exact width family.
900fn integers(d: &mut Defs, target: &TargetInfo) {
901    // The one fact everything below turns on: which type is 64 bits wide. On LP64 it is
902    // `long`, and on Windows LLP64 it is `long long`, and every `size_t`, `intmax_t` and
903    // `int64_t` spelling follows from that.
904    let lp64 = target.long_width == 64;
905    let wide = if lp64 { "long int" } else { "long long int" };
906    let wide_unsigned = if lp64 { "long unsigned int" } else { "long long unsigned int" };
907    let wide_suffix = if lp64 { "L" } else { "LL" };
908    let wide_max = format!("0x7fffffffffffffff{wide_suffix}");
909    let wide_umax = format!("0xffffffffffffffffU{wide_suffix}");
910
911    d.set("__SCHAR_MAX__", "0x7f");
912    d.set("__SHRT_MAX__", "0x7fff");
913    d.set("__INT_MAX__", "0x7fffffff");
914    d.set("__LONG_MAX__", if lp64 { "0x7fffffffffffffffL" } else { "0x7fffffffL" });
915    d.set("__LONG_LONG_MAX__", "0x7fffffffffffffffLL");
916    d.set("__INTMAX_MAX__", &wide_max);
917    d.set("__UINTMAX_MAX__", &wide_umax);
918    d.set("__SIZE_MAX__", &wide_umax);
919    d.set("__PTRDIFF_MAX__", &wide_max);
920    d.set("__INTPTR_MAX__", &wide_max);
921    d.set("__UINTPTR_MAX__", &wide_umax);
922    d.set("__SIG_ATOMIC_MAX__", "0x7fffffff");
923    d.set("__SIG_ATOMIC_MIN__", "(-__SIG_ATOMIC_MAX__ - 1)");
924    // The widest `_BitInt` this compiler builds, which is narrower than gcc 16's sixty five
925    // thousand five hundred and thirty five because a folded constant here is a hundred and
926    // twenty eight bits wide. A program that reads this macro to decide what to write gets an
927    // answer it can rely on, which is the point of saying a number smaller than gcc's rather
928    // than saying gcc's and refusing what it asked for. `MAX_BIT_INT_WIDTH` in `rucc-sema` is
929    // the same number and has to be changed with it.
930    d.set("__BITINT_MAXWIDTH__", "128");
931
932    let wchar = wchar(target);
933    d.set("__WCHAR_TYPE__", wchar.spelling);
934    d.set("__WCHAR_MAX__", wchar.max);
935    d.set("__WCHAR_MIN__", wchar.min);
936    let wint = wint(target);
937    d.set("__WINT_TYPE__", wint.spelling);
938    d.set("__WINT_MAX__", wint.max);
939    d.set("__WINT_MIN__", wint.min);
940    d.set("__SIZE_TYPE__", wide_unsigned);
941    d.set("__PTRDIFF_TYPE__", wide);
942    d.set("__INTMAX_TYPE__", wide);
943    d.set("__UINTMAX_TYPE__", wide_unsigned);
944    d.set("__INTPTR_TYPE__", wide);
945    d.set("__UINTPTR_TYPE__", wide_unsigned);
946    d.set("__SIG_ATOMIC_TYPE__", "int");
947    d.set("__CHAR16_TYPE__", "short unsigned int");
948    d.set("__CHAR32_TYPE__", "unsigned int");
949    d.set("__INTMAX_C(c)", &format!("c ## {wide_suffix}"));
950    d.set("__UINTMAX_C(c)", &format!("c ## U{wide_suffix}"));
951
952    // The exact width family, which is what a freestanding `stdint.h` is written out of.
953    exact(d, 8, "signed char", "unsigned char", "0x7f", "0xff", "");
954    exact(d, 16, "short int", "short unsigned int", "0x7fff", "0xffff", "");
955    // No suffix. An `int` needs none, and the `U` on the unsigned side is added by `exact`
956    // rather than being part of the width.
957    exact(d, 32, "int", "unsigned int", "0x7fffffff", "0xffffffffU", "");
958    exact(d, 64, wide, wide_unsigned, &wide_max, &wide_umax, wide_suffix);
959
960    // The fast types. GCC makes the 16 and 32 bit ones `long` on sixty four bit glibc, which
961    // is what glibc's `stdint.h` says under `__WORDSIZE == 64` whatever the processor, and
962    // `int` everywhere else. A header that computes a printf format from the type name notices
963    // the difference. gcc for aarch64, riscv64, powerpc64le and s390x all say `long int`.
964    //
965    // musl is the reason this is not simply a question of the architecture. musl defines
966    // `int_fast16_t` and `int_fast32_t` as `int32_t` on every target it supports, GCC built
967    // for a musl target agrees with it, and GCC built for glibc on the same processor does
968    // not. The place it shows is `stdatomic.h`, which GCC ships and writes directly out of
969    // these macros: `typedef _Atomic __INT_FAST16_TYPE__ atomic_int_fast16_t;`. Get this wrong
970    // and every atomic fast type in the program is the wrong width.
971    let fast_is_wide =
972        target.tuple.os() == tuple::Os::Linux && lp64 && target.tuple.env() != tuple::Env::Musl;
973    let fast_middle = if fast_is_wide { wide } else { "int" };
974    // Windows is the exception in the other direction, and it is only the 16 bit one. mingw's
975    // `stdint.h` makes `int_fast16_t` a `short` and gcc for that target says the same, while
976    // `int_fast32_t` there is the `int` it is nearly everywhere, so the two cannot share an
977    // answer on this platform the way they do on the others. The measurement is the mingw tree,
978    // which is the only Windows header tree this compiler fetches, and the msvc environment is
979    // given the same answer because nothing compiles against a tree of Microsoft's yet. Apple's
980    // `stdint.h` is the same shape, `int16_t` for the 16 bit one and `int32_t` for the other.
981    let fast16_is_short =
982        matches!(target.tuple.os(), tuple::Os::Windows | tuple::Os::MacOs | tuple::Os::IOs);
983    d.set("__INT_FAST8_TYPE__", "signed char");
984    d.set("__UINT_FAST8_TYPE__", "unsigned char");
985    d.set("__INT_FAST8_MAX__", "0x7f");
986    d.set("__UINT_FAST8_MAX__", "0xff");
987    for width in [16, 32] {
988        let (signed, unsigned, max, umax) = if width == 16 && fast16_is_short {
989            ("short int", "short unsigned int", "0x7fff", "0xffff")
990        } else if fast_middle == "int" {
991            ("int", "unsigned int", "0x7fffffff", "0xffffffffU")
992        } else {
993            (wide, wide_unsigned, wide_max.as_str(), wide_umax.as_str())
994        };
995        d.set(&format!("__INT_FAST{width}_TYPE__"), signed);
996        d.set(&format!("__UINT_FAST{width}_TYPE__"), unsigned);
997        d.set(&format!("__INT_FAST{width}_MAX__"), max);
998        d.set(&format!("__UINT_FAST{width}_MAX__"), umax);
999    }
1000    d.set("__INT_FAST64_TYPE__", wide);
1001    d.set("__UINT_FAST64_TYPE__", wide_unsigned);
1002    d.set("__INT_FAST64_MAX__", &wide_max);
1003    d.set("__UINT_FAST64_MAX__", &wide_umax);
1004
1005    let fast32 = if fast_is_wide { 64 } else { 32 };
1006    widths(d, target, &wchar, &wint, if fast16_is_short { 16 } else { fast32 }, fast32);
1007}
1008
1009/// The widths, which C23's `limits.h` and `stdint.h` are written out of.
1010///
1011/// Twenty macros and not a few more: there is no `__INT8_WIDTH__`, because the width of an
1012/// exact width type is in its name and gcc does not define one, and there is no unsigned member
1013/// of any of these pairs, because a signed type and its unsigned counterpart have the same
1014/// width and `UINTMAX_WIDTH` is written `__INTMAX_WIDTH__` in every header that needs it.
1015///
1016/// Each of these says how many value bits and sign bits the type has, which is not the same as
1017/// how many bits it occupies. They agree for every type on every target here, and the day one of
1018/// them does not, this is the family that has to say the smaller number.
1019fn widths(d: &mut Defs, target: &TargetInfo, wchar: &Wchar, wint: &Wint, fast16: u32, fast32: u32) {
1020    let pointer = target.pointer_width;
1021    d.set("__SCHAR_WIDTH__", "8");
1022    d.set("__SHRT_WIDTH__", "16");
1023    d.set("__INT_WIDTH__", "32");
1024    d.set("__LONG_WIDTH__", &target.long_width.to_string());
1025    d.set("__LONG_LONG_WIDTH__", "64");
1026    d.set("__INTMAX_WIDTH__", "64");
1027    d.set("__INTPTR_WIDTH__", &pointer.to_string());
1028    d.set("__PTRDIFF_WIDTH__", &pointer.to_string());
1029    d.set("__SIZE_WIDTH__", &pointer.to_string());
1030    d.set("__SIG_ATOMIC_WIDTH__", "32");
1031    d.set("__WCHAR_WIDTH__", &(wchar.size * 8).to_string());
1032    d.set("__WINT_WIDTH__", &wint.width.to_string());
1033    for width in [8, 16, 32, 64] {
1034        d.set(&format!("__INT_LEAST{width}_WIDTH__"), &width.to_string());
1035    }
1036    d.set("__INT_FAST8_WIDTH__", "8");
1037    d.set("__INT_FAST16_WIDTH__", &fast16.to_string());
1038    d.set("__INT_FAST32_WIDTH__", &fast32.to_string());
1039    d.set("__INT_FAST64_WIDTH__", "64");
1040}
1041
1042/// One width of the exact and least families, which are the same types.
1043fn exact(
1044    d: &mut Defs,
1045    width: u32,
1046    signed: &str,
1047    unsigned: &str,
1048    max: &str,
1049    umax: &str,
1050    // The suffix the width needs and nothing more, so `""`, `"L"` or `"LL"`. The `U` that
1051    // makes a constant unsigned is added below and is not part of this, because a caller that
1052    // wrote it here would produce `UU` on the unsigned macro and a stray `U` on the signed one.
1053    width_suffix: &str,
1054) {
1055    d.set(&format!("__INT{width}_TYPE__"), signed);
1056    d.set(&format!("__UINT{width}_TYPE__"), unsigned);
1057    d.set(&format!("__INT{width}_MAX__"), max);
1058    d.set(&format!("__UINT{width}_MAX__"), umax);
1059    d.set(&format!("__INT_LEAST{width}_TYPE__"), signed);
1060    d.set(&format!("__UINT_LEAST{width}_TYPE__"), unsigned);
1061    d.set(&format!("__INT_LEAST{width}_MAX__"), max);
1062    d.set(&format!("__UINT_LEAST{width}_MAX__"), umax);
1063    // The constant makers. `__INT8_C(1)` is `1` and not `1 ## `, because a paste with nothing
1064    // on the right is not a token the expander should have to think about.
1065    //
1066    // The `U` goes on only where the type is still unsigned after promotion. `uint8_t` and
1067    // `uint16_t` are narrower than `int`, so an integer promotion turns them into a signed
1068    // `int` and `UINT8_C(1)` has that type in gcc and in the standard's own words. Writing
1069    // `1U` there is not a harmless extra: `UINT8_C(1) - 2` comes out as four billion odd
1070    // instead of minus one, and a `_Generic` on it picks the unsigned arm. Every target this
1071    // compiler has makes `int` thirty two bits, which is what makes the width enough to decide.
1072    let unsigned_after_promotion = width >= 32;
1073    let u = if unsigned_after_promotion { "U" } else { "" };
1074    if width_suffix.is_empty() && u.is_empty() {
1075        d.set(&format!("__INT{width}_C(c)"), "c");
1076        d.set(&format!("__UINT{width}_C(c)"), "c");
1077    } else if width_suffix.is_empty() {
1078        d.set(&format!("__INT{width}_C(c)"), "c");
1079        d.set(&format!("__UINT{width}_C(c)"), &format!("c ## {u}"));
1080    } else {
1081        d.set(&format!("__INT{width}_C(c)"), &format!("c ## {width_suffix}"));
1082        d.set(&format!("__UINT{width}_C(c)"), &format!("c ## {u}{width_suffix}"));
1083    }
1084}
1085
1086/// What a header needs to know about one floating format, as the text the macros expand to.
1087///
1088/// The four values are written to the digit gcc writes them to rather than rounded to something
1089/// tidier, because a header carrying its own copy of a limit compares the two spellings and a
1090/// difference in the last place is a difference.
1091struct Characteristics {
1092    mant_dig: &'static str,
1093    dig: &'static str,
1094    min_exp: &'static str,
1095    min_10_exp: &'static str,
1096    max_exp: &'static str,
1097    max_10_exp: &'static str,
1098    decimal_dig: &'static str,
1099    max: &'static str,
1100    /// The largest value with a full significand, which is `max` for every format whose values
1101    /// all have one and is smaller for the double-double, whose largest values do not.
1102    ///
1103    /// A double-double's high half can be as large as a `double` gets while its low half is
1104    /// nowhere near, and the sum is then a number above anything the format can write with a
1105    /// hundred and six significand bits behind it. So `LDBL_MAX` on PowerPC is `DBL_MAX` and
1106    /// `LDBL_NORM_MAX` is a bit under half of it, and a program that reaches for the largest
1107    /// value it can compute with wants the second.
1108    norm_max: &'static str,
1109    min: &'static str,
1110    epsilon: &'static str,
1111    denorm_min: &'static str,
1112    /// Whether the format is one IEC 60559 describes, which every one of them is but the brain
1113    /// float, whose significand is a `float`'s with sixteen bits cut off the end of it, and the
1114    /// double-double, which is not a binary floating point format in IEC 60559's sense at all.
1115    is_iec_60559: &'static str,
1116}
1117
1118/// IEEE binary16, which is `_Float16`.
1119const HALF: Characteristics = Characteristics {
1120    mant_dig: "11",
1121    dig: "3",
1122    min_exp: "(-13)",
1123    min_10_exp: "(-4)",
1124    max_exp: "16",
1125    max_10_exp: "4",
1126    decimal_dig: "5",
1127    max: "6.55040000000000000000000000000000000e+4",
1128    norm_max: "6.55040000000000000000000000000000000e+4",
1129    min: "6.10351562500000000000000000000000000e-5",
1130    epsilon: "9.76562500000000000000000000000000000e-4",
1131    denorm_min: "5.96046447753906250000000000000000000e-8",
1132    is_iec_60559: "1",
1133};
1134
1135/// The brain float, which nothing here names yet and which every format table has a row for.
1136const BFLOAT16: Characteristics = Characteristics {
1137    mant_dig: "8",
1138    dig: "2",
1139    min_exp: "(-125)",
1140    min_10_exp: "(-37)",
1141    max_exp: "128",
1142    max_10_exp: "38",
1143    decimal_dig: "4",
1144    max: "3.38953138925153547590470800371487867e+38",
1145    norm_max: "3.38953138925153547590470800371487867e+38",
1146    min: "1.17549435082228750796873653722224568e-38",
1147    epsilon: "7.81250000000000000000000000000000000e-3",
1148    denorm_min: "9.18354961579912115600575419704879436e-41",
1149    is_iec_60559: "0",
1150};
1151
1152/// IEEE binary32, which is `float` and `_Float32`.
1153const SINGLE: Characteristics = Characteristics {
1154    mant_dig: "24",
1155    dig: "6",
1156    min_exp: "(-125)",
1157    min_10_exp: "(-37)",
1158    max_exp: "128",
1159    max_10_exp: "38",
1160    decimal_dig: "9",
1161    max: "3.40282346638528859811704183484516925e+38",
1162    norm_max: "3.40282346638528859811704183484516925e+38",
1163    min: "1.17549435082228750796873653722224568e-38",
1164    epsilon: "1.19209289550781250000000000000000000e-7",
1165    denorm_min: "1.40129846432481707092372958328991613e-45",
1166    is_iec_60559: "1",
1167};
1168
1169/// IEEE binary64, which is `double`, `_Float64`, `_Float32x` and `long double` on Apple and
1170/// on Windows.
1171const DOUBLE: Characteristics = Characteristics {
1172    mant_dig: "53",
1173    dig: "15",
1174    min_exp: "(-1021)",
1175    min_10_exp: "(-307)",
1176    max_exp: "1024",
1177    max_10_exp: "308",
1178    decimal_dig: "17",
1179    max: "1.79769313486231570814527423731704357e+308",
1180    norm_max: "1.79769313486231570814527423731704357e+308",
1181    min: "2.22507385850720138309023271733240406e-308",
1182    epsilon: "2.22044604925031308084726333618164062e-16",
1183    denorm_min: "4.94065645841246544176568792868221372e-324",
1184    is_iec_60559: "1",
1185};
1186
1187/// The x87 eighty bit format, which on x86-64 is both `long double` and `_Float64x`.
1188const X87: Characteristics = Characteristics {
1189    mant_dig: "64",
1190    dig: "18",
1191    min_exp: "(-16381)",
1192    min_10_exp: "(-4931)",
1193    max_exp: "16384",
1194    max_10_exp: "4932",
1195    decimal_dig: "21",
1196    max: "1.18973149535723176502126385303097021e+4932",
1197    norm_max: "1.18973149535723176502126385303097021e+4932",
1198    min: "3.36210314311209350626267781732175260e-4932",
1199    epsilon: "1.08420217248550443400745280086994171e-19",
1200    denorm_min: "3.64519953188247460252840593361941982e-4951",
1201    is_iec_60559: "1",
1202};
1203
1204/// IEEE binary128, which is `_Float128`, `_Float64x` off x86 and `long double` on AArch64 and
1205/// RISC-V Linux.
1206const QUAD: Characteristics = Characteristics {
1207    mant_dig: "113",
1208    dig: "33",
1209    min_exp: "(-16381)",
1210    min_10_exp: "(-4931)",
1211    max_exp: "16384",
1212    max_10_exp: "4932",
1213    decimal_dig: "36",
1214    max: "1.18973149535723176508575932662800702e+4932",
1215    norm_max: "1.18973149535723176508575932662800702e+4932",
1216    min: "3.36210314311209350626267781732175260e-4932",
1217    epsilon: "1.92592994438723585305597794258492732e-34",
1218    denorm_min: "6.47517511943802511092443895822764655e-4966",
1219    is_iec_60559: "1",
1220};
1221
1222/// IBM double-double, which is `long double` on 64-bit PowerPC.
1223///
1224/// The row that does not follow from a precision and an exponent range, because the format has
1225/// neither. `MANT_DIG` is 106 and `DIG` is 31, which are the figures near the top of the
1226/// significand and not everywhere. `MAX` is a little above `DBL_MAX`, since the high half can be
1227/// `DBL_MAX` and the low half then adds to it, and `NORM_MAX` is about half of that, so this is
1228/// the one row where the two are different numbers. `EPSILON` is the same number as `DENORM_MIN`,
1229/// two to the minus one thousand and seventy four, because the smallest value that changes a
1230/// double-double near one is a subnormal in the low half rather than one unit in the last place
1231/// of anything. `MIN` is two to the minus nine hundred and sixty nine rather than `DBL_MIN`,
1232/// because below that the low half has no room left to be normal in.
1233///
1234/// Every value here is what the reference compiler prints for `powerpc64le-linux-gnu`, checked
1235/// rather than derived, on the same terms as the data layouts in `rucc-abi`. The format is one
1236/// where deriving them is how the four wrong numbers in those layouts happened.
1237const DOUBLE_DOUBLE: Characteristics = Characteristics {
1238    mant_dig: "106",
1239    dig: "31",
1240    min_exp: "(-968)",
1241    min_10_exp: "(-291)",
1242    max_exp: "1024",
1243    max_10_exp: "308",
1244    decimal_dig: "33",
1245    max: "1.79769313486231580793728971405301e+308",
1246    norm_max: "8.98846567431157953864652595394501e+307",
1247    min: "2.00416836000897277799610805135016e-292",
1248    epsilon: "4.94065645841246544176568792868221e-324",
1249    denorm_min: "4.94065645841246544176568792868221e-324",
1250    is_iec_60559: "0",
1251};
1252
1253/// The row of the table a format has, so that a type the target chooses the format of can look
1254/// its own limits up rather than have them written out again per architecture.
1255const fn characteristics(format: Format) -> &'static Characteristics {
1256    match format {
1257        Format::Half => &HALF,
1258        Format::BFloat16 => &BFLOAT16,
1259        Format::Single => &SINGLE,
1260        Format::Double => &DOUBLE,
1261        Format::X87Extended => &X87,
1262        Format::Quad => &QUAD,
1263        Format::DoubleDouble => &DOUBLE_DOUBLE,
1264        // No target has a decimal `long double` or `_Float64x`, which are the two rows a target
1265        // chooses, and the decimal types have `__DEC*` macros of their own rather than a row here.
1266        Format::Decimal32 | Format::Decimal64 | Format::Decimal128 => {
1267            panic!("a binary type's format is never a decimal one")
1268        }
1269    }
1270}
1271
1272/// The `float.h` characteristics.
1273///
1274/// Nine families of them, which is `float`, `double` and `long double` and the six C23 named
1275/// them after. Two of the nine have a format the target decides: `long double`, which is x87 on
1276/// x86-64 Linux, quad on AArch64 and RISC-V Linux and a `double` on Apple and on Windows, and
1277/// `_Float64x`, which is the widest format the processor has and so does not follow `long
1278/// double` down on the targets that shrink it.
1279///
1280/// Three more have a target that decides whether they are there at all. `_Float64x` is missing
1281/// on a machine with nothing wider than a `double`, and `_Float16` and `_Float128` are missing
1282/// wherever the machine has no such format, which is four of the seven rows for the half and one
1283/// of them for the quad.
1284///
1285/// `__FLT128X_*__` is deliberately missing. `_Float128x` is a type no target gcc supports has,
1286/// so gcc defines nothing for it and neither does this.
1287fn floats(d: &mut Defs, target: &TargetInfo, opts: &Predef) {
1288    d.set("__FLT_RADIX__", "2");
1289    // Real arithmetic follows IEC 60559 in every format on every target here, which is what the
1290    // value two says. The complex one beside it says the same about complex arithmetic, and gcc
1291    // gives both the value two on every target this compiler has. These two are read rather than
1292    // tested: glibc's `<stdc-predef.h>` asks what the compiler intended and writes the
1293    // `__STDC_IEC_559` family from the answer, and a compiler that says nothing is presumed to
1294    // have meant yes. So the choice is not between claiming and not claiming, it is between
1295    // saying so and having it said for us. Zero for both once a fast math licence is given,
1296    // which is gcc's answer and what keeps glibc from claiming the family on our behalf.
1297    let iec = if opts.math.iec_559(opts.trapping_math) { "2" } else { "0" };
1298    d.set("__GCC_IEC_559", iec);
1299    d.set("__GCC_IEC_559_COMPLEX", iec);
1300    // Every operation is done in the type of its operands, which is what SSE2 and the AArch64
1301    // and RISC-V floating units all do. The other two names are the same answer asked under the
1302    // rules of C99 and of TS 18661-3, which are the same rules for a target with no excess
1303    // precision to have, and glibc's `<math.h>` reads the last of the three.
1304    d.set("__FLT_EVAL_METHOD__", "0");
1305    d.set("__FLT_EVAL_METHOD_C99__", "0");
1306    d.set("__FLT_EVAL_METHOD_TS_18661_3__", "0");
1307
1308    family(d, "FLT", &SINGLE, |value| format!("{value}F"));
1309    // gcc writes the `double` values as `long double` constants cast back down, which is exact
1310    // in every format `long double` has and is the one family whose values are not a suffix.
1311    family(d, "DBL", &DOUBLE, |value| format!("((double){value}L)"));
1312    family(d, "LDBL", characteristics(target.long_double_format), |value| format!("{value}L"));
1313
1314    // The two named types that are not on every machine, each written where the type is and left
1315    // out where it is not. A program reads `__FLT128_MANT_DIG__` to find out whether it may write
1316    // the type, which is what glibc's `<float.h>` and `<math.h>` do, so the macros and the type
1317    // have to agree or the header asks for something the compiler will refuse.
1318    if target.has_float16 {
1319        family(d, "FLT16", &HALF, |value| format!("{value}F16"));
1320    }
1321    family(d, "FLT32", &SINGLE, |value| format!("{value}F32"));
1322    family(d, "FLT64", &DOUBLE, |value| format!("{value}F64"));
1323    if target.has_float128 {
1324        family(d, "FLT128", &QUAD, |value| format!("{value}F128"));
1325    }
1326    family(d, "FLT32X", &DOUBLE, |value| format!("{value}F32x"));
1327    // Nothing at all on a target whose widest format is a `double`, which is what gcc does
1328    // there: `_Float64x` is not a type on that machine and the family that describes it is not a
1329    // set of macros with a smaller answer in them.
1330    if let Some(format) = target.float64x_format {
1331        family(d, "FLT64X", characteristics(format), |value| format!("{value}F64x"));
1332    }
1333
1334    // The number itself rather than the name of the other macro. The value is the same either
1335    // way, since `long double` is the widest format here, but the two are not the same thing to
1336    // read: `-dM` prints what the macro is, and a program that undefines `__LDBL_DECIMAL_DIG__`
1337    // takes this one with it. gcc writes the number.
1338    d.set("__DECIMAL_DIG__", characteristics(target.long_double_format).decimal_dig);
1339    if target.has_decimal_float {
1340        decimals(d);
1341    }
1342}
1343
1344/// The limits of the three decimal types, on the one target that has them.
1345///
1346/// Written out rather than worked out, because each is a fact of the interchange format and the
1347/// three rows are all there will ever be. The spellings are gcc's, down to the parentheses around a
1348/// negative exponent and the suffix on every constant. `__DEC64X_*` is not here: `_Decimal64x` has
1349/// a suffix of its own the lexer does not read yet, so the macros would be constants nothing can
1350/// use. `__DEC_EVAL_METHOD__` is 2 because it is 2 in gcc, and a program that reads it is asking
1351/// what gcc would do.
1352fn decimals(d: &mut Defs) {
1353    let rows = [
1354        ("32", "DF", "7", "(-94)", "97", "1E-95", "9.999999E96", "1E-6", "0.000001E-95"),
1355        (
1356            "64",
1357            "DD",
1358            "16",
1359            "(-382)",
1360            "385",
1361            "1E-383",
1362            "9.999999999999999E384",
1363            "1E-15",
1364            "0.000000000000001E-383",
1365        ),
1366        (
1367            "128",
1368            "DL",
1369            "34",
1370            "(-6142)",
1371            "6145",
1372            "1E-6143",
1373            "9.999999999999999999999999999999999E6144",
1374            "1E-33",
1375            "0.000000000000000000000000000000001E-6143",
1376        ),
1377    ];
1378    for (bits, suffix, mant_dig, min_exp, max_exp, min, max, epsilon, subnormal_min) in rows {
1379        d.set(&format!("__DEC{bits}_MANT_DIG__"), mant_dig);
1380        d.set(&format!("__DEC{bits}_MIN_EXP__"), min_exp);
1381        d.set(&format!("__DEC{bits}_MAX_EXP__"), max_exp);
1382        d.set(&format!("__DEC{bits}_MIN__"), &format!("{min}{suffix}"));
1383        d.set(&format!("__DEC{bits}_MAX__"), &format!("{max}{suffix}"));
1384        d.set(&format!("__DEC{bits}_EPSILON__"), &format!("{epsilon}{suffix}"));
1385        d.set(&format!("__DEC{bits}_SUBNORMAL_MIN__"), &format!("{subnormal_min}{suffix}"));
1386    }
1387    d.set("__DEC_EVAL_METHOD__", "2");
1388}
1389
1390/// One family of `float.h` macros, named `__{prefix}_*__`.
1391///
1392/// `write` turns a value into the constant its macro expands to, which is a suffix for every
1393/// family but `double`.
1394fn family(d: &mut Defs, prefix: &str, c: &Characteristics, write: impl Fn(&str) -> String) {
1395    d.set(&format!("__{prefix}_MANT_DIG__"), c.mant_dig);
1396    d.set(&format!("__{prefix}_DIG__"), c.dig);
1397    d.set(&format!("__{prefix}_MIN_EXP__"), c.min_exp);
1398    d.set(&format!("__{prefix}_MIN_10_EXP__"), c.min_10_exp);
1399    d.set(&format!("__{prefix}_MAX_EXP__"), c.max_exp);
1400    d.set(&format!("__{prefix}_MAX_10_EXP__"), c.max_10_exp);
1401    d.set(&format!("__{prefix}_DECIMAL_DIG__"), c.decimal_dig);
1402    d.set(&format!("__{prefix}_MAX__"), &write(c.max));
1403    d.set(&format!("__{prefix}_NORM_MAX__"), &write(c.norm_max));
1404    d.set(&format!("__{prefix}_MIN__"), &write(c.min));
1405    d.set(&format!("__{prefix}_EPSILON__"), &write(c.epsilon));
1406    d.set(&format!("__{prefix}_DENORM_MIN__"), &write(c.denorm_min));
1407    d.set(&format!("__{prefix}_IS_IEC_60559__"), c.is_iec_60559);
1408    d.set(&format!("__{prefix}_HAS_DENORM__"), "1");
1409    d.set(&format!("__{prefix}_HAS_INFINITY__"), "1");
1410    d.set(&format!("__{prefix}_HAS_QUIET_NAN__"), "1");
1411}
1412
1413#[cfg(test)]
1414mod tests {
1415    use rucc_target::Triple;
1416
1417    use super::*;
1418
1419    fn set_for(triple: &str) -> String {
1420        let triple: Triple = triple.parse().expect("a triple the compiler supports");
1421        built_in(&TargetInfo::new(triple), &Predef::new())
1422    }
1423
1424    /// The same, for a machine the three field triple cannot spell.
1425    fn set_for_tuple(tuple: &str) -> String {
1426        let target = TargetInfo::for_tuple(tuple.parse().expect("a row in the target table"));
1427        built_in(&target, &Predef::new())
1428    }
1429
1430    fn has(text: &str, line: &str) -> bool {
1431        text.lines().any(|l| l == line)
1432    }
1433
1434    #[test]
1435    fn the_version_macros_say_the_version_this_compiler_was_built_at() {
1436        // They said 0.1.0 through sixty seven releases, because the number was written here as
1437        // well as in the manifest, so a program asking which rucc it was is now told.
1438        let text = set_for("x86_64-unknown-linux-gnu");
1439        assert!(has(&text, &format!("#define __rucc_version__ \"{VERSION}\"")), "{text}");
1440        assert!(has(&text, &format!("#define __VERSION__ \"rucc {VERSION}\"")), "{text}");
1441        assert!(has(&text, &format!("#define __rucc_major__ {}", field(VERSION, 0))));
1442        assert!(has(&text, &format!("#define __rucc_minor__ {}", field(VERSION, 1))));
1443        assert!(has(&text, &format!("#define __rucc_patchlevel__ {}", field(VERSION, 2))));
1444
1445        // And what each of them expands to is something an `#if` can read, which is the whole
1446        // reason the three numbers are separate macros from the string.
1447        for n in 0..3 {
1448            assert!(field(VERSION, n).parse::<u32>().is_ok(), "{}", field(VERSION, n));
1449        }
1450    }
1451
1452    #[test]
1453    fn a_version_field_is_the_digits_at_the_front_of_it() {
1454        assert_eq!(
1455            (field("0.10.68", 0), field("0.10.68", 1), field("0.10.68", 2)),
1456            ("0", "10", "68")
1457        );
1458
1459        // A pre-release suffix belongs to the string and not to the number an `#if` compares, and
1460        // a field that is not there at all is what a two field version means by its third.
1461        assert_eq!(field("0.10.68-rc.1", 2), "68");
1462        assert_eq!(field("1.0", 2), "0");
1463        assert_eq!(field("", 0), "0");
1464    }
1465
1466    #[test]
1467    fn the_set_is_driven_by_the_target_rather_than_by_the_host() {
1468        let x86 = set_for("x86_64-unknown-linux-gnu");
1469        let arm = set_for("aarch64-unknown-linux-gnu");
1470        assert!(has(&x86, "#define __x86_64__ 1"));
1471        assert!(!has(&x86, "#define __aarch64__ 1"));
1472        assert!(has(&arm, "#define __aarch64__ 1"));
1473        assert!(!has(&arm, "#define __x86_64__ 1"));
1474        assert!(has(&x86, "#define __linux__ 1") && has(&arm, "#define __linux__ 1"));
1475    }
1476
1477    #[test]
1478    fn windows_is_the_target_that_makes_long_thirty_two_bits() {
1479        let windows = set_for("x86_64-pc-windows-msvc");
1480        let linux = set_for("x86_64-unknown-linux-gnu");
1481        assert!(has(&windows, "#define __SIZEOF_LONG__ 4"));
1482        assert!(has(&windows, "#define __SIZE_TYPE__ long long unsigned int"));
1483        assert!(has(&windows, "#define __INT64_TYPE__ long long int"));
1484        assert!(!has(&windows, "#define __LP64__ 1"));
1485        assert!(has(&linux, "#define __SIZEOF_LONG__ 8"));
1486        assert!(has(&linux, "#define __SIZE_TYPE__ long unsigned int"));
1487        assert!(has(&linux, "#define __INT64_TYPE__ long int"));
1488        assert!(has(&linux, "#define __LP64__ 1"));
1489    }
1490
1491    #[test]
1492    fn windows_spells_a_calling_convention_and_an_attribute_as_macros() {
1493        // The second declaration in mingw-w64's stdio.h is `int __cdecl __mingw_sscanf(...)`, so
1494        // a Windows target where these are missing reads no header at all.
1495        let windows = set_for("x86_64-pc-windows-gnu");
1496        assert!(has(&windows, "#define __cdecl __attribute__((__cdecl__))"));
1497        assert!(has(&windows, "#define __stdcall __attribute__((__stdcall__))"));
1498        assert!(has(&windows, "#define __fastcall __attribute__((__fastcall__))"));
1499        assert!(has(&windows, "#define __thiscall __attribute__((__thiscall__))"));
1500        assert!(has(&windows, "#define _cdecl __attribute__((__cdecl__))"));
1501        assert!(has(&windows, "#define __declspec(x) __attribute__((x))"));
1502        let linux = set_for("x86_64-unknown-linux-gnu");
1503        assert!(!has(&linux, "#define __cdecl __attribute__((__cdecl__))"));
1504        assert!(!has(&linux, "#define __declspec(x) __attribute__((x))"));
1505    }
1506
1507    #[test]
1508    fn a_strict_mode_keeps_the_spellings_that_are_not_the_implementations_to_take() {
1509        // `_cdecl` is a name a program may use and `__cdecl` is not, so gcc defines the first
1510        // only where the extensions are on and the second everywhere.
1511        let mut opts = Predef::new();
1512        opts.gnu_extensions = false;
1513        let triple: Triple = "x86_64-pc-windows-gnu".parse().expect("a triple");
1514        let strict = built_in(&TargetInfo::new(triple), &opts);
1515        assert!(has(&strict, "#define __cdecl __attribute__((__cdecl__))"));
1516        assert!(!has(&strict, "#define _cdecl __attribute__((__cdecl__))"));
1517    }
1518
1519    #[test]
1520    fn wchar_t_is_the_type_that_divides_the_targets() {
1521        // Signed on x86-64 Linux, unsigned on AArch64 Linux, and sixteen bits on Windows.
1522        assert!(has(&set_for("x86_64-unknown-linux-gnu"), "#define __WCHAR_TYPE__ int"));
1523        assert!(has(&set_for("aarch64-unknown-linux-gnu"), "#define __WCHAR_TYPE__ unsigned int"));
1524        let windows = set_for("x86_64-pc-windows-msvc");
1525        assert!(has(&windows, "#define __WCHAR_TYPE__ short unsigned int"));
1526        assert!(has(&windows, "#define __SIZEOF_WCHAR_T__ 2"));
1527    }
1528
1529    #[test]
1530    fn apple_spells_the_architecture_its_own_way_and_its_headers_only_know_that_spelling() {
1531        // sys/cdefs.h reaches #error "Unsupported architecture" without these, which is the
1532        // first line of the first header of every program on the platform.
1533        let darwin = set_for("aarch64-apple-darwin");
1534        assert!(has(&darwin, "#define __arm64__ 1"));
1535        assert!(has(&darwin, "#define __arm64 1"));
1536        assert!(has(&darwin, "#define __aarch64__ 1"), "the portable spelling stays too");
1537        let linux = set_for("aarch64-unknown-linux-gnu");
1538        assert!(!has(&linux, "#define __arm64__ 1"), "Apple's spelling is Apple's alone");
1539        assert!(!has(&set_for("x86_64-apple-darwin"), "#define __arm64__ 1"));
1540    }
1541
1542    #[test]
1543    fn every_limit_is_spelled_in_hexadecimal_the_way_gcc_spells_it() {
1544        // The value was never in question and the spelling is, because these macros reach a
1545        // program's text. glibc's `limits.h` writes `#define INT_MAX __INT_MAX__`, openssl
1546        // writes `((unsigned int)INT_MAX + 1)`, and `-E` over that header printed a decimal
1547        // number where gcc printed a hexadecimal one. The type is the same either way here,
1548        // which is why the suffixes are unchanged: `0x7fffffff` and `2147483647` are both
1549        // `int`, and `0xffffffffffffffffUL` and its decimal twin are both `unsigned long`.
1550        let linux = set_for("x86_64-unknown-linux-gnu");
1551        for line in [
1552            "#define __SCHAR_MAX__ 0x7f",
1553            "#define __SHRT_MAX__ 0x7fff",
1554            "#define __INT_MAX__ 0x7fffffff",
1555            "#define __LONG_MAX__ 0x7fffffffffffffffL",
1556            "#define __LONG_LONG_MAX__ 0x7fffffffffffffffLL",
1557            "#define __INTMAX_MAX__ 0x7fffffffffffffffL",
1558            "#define __UINTMAX_MAX__ 0xffffffffffffffffUL",
1559            "#define __SIZE_MAX__ 0xffffffffffffffffUL",
1560            "#define __PTRDIFF_MAX__ 0x7fffffffffffffffL",
1561            "#define __SIG_ATOMIC_MAX__ 0x7fffffff",
1562            "#define __INT8_MAX__ 0x7f",
1563            "#define __UINT8_MAX__ 0xff",
1564            "#define __INT16_MAX__ 0x7fff",
1565            "#define __UINT16_MAX__ 0xffff",
1566            "#define __INT32_MAX__ 0x7fffffff",
1567            "#define __UINT32_MAX__ 0xffffffffU",
1568            "#define __INT64_MAX__ 0x7fffffffffffffffL",
1569            "#define __UINT64_MAX__ 0xffffffffffffffffUL",
1570            "#define __INT_FAST8_MAX__ 0x7f",
1571            "#define __UINT_FAST8_MAX__ 0xff",
1572        ] {
1573            assert!(has(&linux, line), "{line}");
1574        }
1575        // Windows, where `long` is thirty two bits, so the wide suffix moves and the narrow
1576        // `long` limit is not the same number.
1577        let windows = set_for("x86_64-pc-windows-msvc");
1578        assert!(has(&windows, "#define __LONG_MAX__ 0x7fffffffL"));
1579        assert!(has(&windows, "#define __INTMAX_MAX__ 0x7fffffffffffffffLL"));
1580        assert!(has(&windows, "#define __UINTMAX_MAX__ 0xffffffffffffffffULL"));
1581    }
1582
1583    #[test]
1584    fn wint_t_does_not_follow_wchar_t() {
1585        // Apple makes it signed so that WEOF is negative the way EOF is. Linux does not.
1586        let darwin = set_for("aarch64-apple-darwin");
1587        assert!(has(&darwin, "#define __WINT_TYPE__ int"));
1588        assert!(has(&darwin, "#define __WINT_MAX__ 0x7fffffff"));
1589        assert!(has(&darwin, "#define __WCHAR_TYPE__ int"));
1590        let linux = set_for("aarch64-unknown-linux-gnu");
1591        assert!(has(&linux, "#define __WINT_TYPE__ unsigned int"));
1592        assert!(has(&linux, "#define __WINT_MAX__ 0xffffffffU"));
1593        assert!(has(&linux, "#define __WCHAR_TYPE__ unsigned int"), "and wchar_t is its own");
1594        assert!(has(
1595            &set_for("x86_64-pc-windows-msvc"),
1596            "#define __WINT_TYPE__ short unsigned int"
1597        ));
1598    }
1599
1600    #[test]
1601    fn the_widths_say_what_the_type_holds_and_follow_the_target_that_changes_it() {
1602        // Twenty of them, which is gcc's set: no exact width member, since the width of an
1603        // `int32_t` is in its name, and no unsigned member, since a header that wants
1604        // `UINTMAX_WIDTH` writes `__INTMAX_WIDTH__`.
1605        let linux = set_for("x86_64-unknown-linux-gnu");
1606        assert_eq!(linux.lines().filter(|line| line.contains("_WIDTH__")).count(), 20);
1607        assert!(has(&linux, "#define __LONG_WIDTH__ 64"));
1608        assert!(has(&linux, "#define __SIZE_WIDTH__ 64"));
1609        assert!(has(&linux, "#define __WCHAR_WIDTH__ 32"));
1610        assert!(has(&linux, "#define __INT_LEAST16_WIDTH__ 16"));
1611        // x86-64 glibc is where `int_fast16_t` is a `long`, and the width has to say so or a
1612        // program that switches on it picks the wrong branch.
1613        assert!(has(&linux, "#define __INT_FAST16_WIDTH__ 64"));
1614        assert!(has(&set_for("x86_64-unknown-linux-musl"), "#define __INT_FAST16_WIDTH__ 32"));
1615        // Windows has a thirty two bit `long` and a sixteen bit `wint_t`, and the pointer
1616        // sized types stay sixty four bits wide whatever `long` does.
1617        let windows = set_for("x86_64-pc-windows-msvc");
1618        assert!(has(&windows, "#define __LONG_WIDTH__ 32"));
1619        assert!(has(&windows, "#define __WINT_WIDTH__ 16"));
1620        assert!(has(&windows, "#define __SIZE_WIDTH__ 64"));
1621        assert!(has(&windows, "#define __INTMAX_WIDTH__ 64"));
1622    }
1623
1624    #[test]
1625    fn a_constant_maker_gets_the_suffix_its_width_needs_and_no_other() {
1626        // Found by diffing `-dM` against the system compiler. The 32 bit row was passing `U`
1627        // as its width suffix, which put a `U` on the signed macro and two on the unsigned
1628        // one, and `UINT32_C(1)` expanded to `1UU`, which is not a token.
1629        let linux = set_for("x86_64-unknown-linux-gnu");
1630        assert!(has(&linux, "#define __INT32_C(c) c"));
1631        assert!(has(&linux, "#define __UINT32_C(c) c ## U"));
1632        assert!(has(&linux, "#define __INT16_C(c) c"));
1633        // No `U` on the two narrow ones, because `uint8_t` and `uint16_t` promote to a
1634        // signed `int` and the constant has that type. gcc leaves it off for the same reason.
1635        assert!(has(&linux, "#define __UINT16_C(c) c"));
1636        assert!(has(&linux, "#define __UINT8_C(c) c"));
1637        // The wide ones do take a suffix, and the `U` goes in front of it.
1638        assert!(has(&linux, "#define __INT64_C(c) c ## L"));
1639        assert!(has(&linux, "#define __UINT64_C(c) c ## UL"));
1640        // Windows has a thirty two bit `long`, so its sixty four bit constants are `long long`.
1641        let windows = set_for("x86_64-pc-windows-msvc");
1642        assert!(has(&windows, "#define __INT64_C(c) c ## LL"));
1643        assert!(has(&windows, "#define __UINT64_C(c) c ## ULL"));
1644    }
1645
1646    #[test]
1647    fn the_symbol_prefix_is_defined_everywhere_including_where_it_is_empty() {
1648        // Empty is not the same as absent, because glibc stringifies it. Leaving it undefined
1649        // turns `__asm__ (__ASMNAME ("__xpg_strerror_r"))` into an asm name of
1650        // "__USER_LABEL_PREFIX__" "__xpg_strerror_r", which renames the function instead of
1651        // failing, and that is a bug found at link time or later.
1652        for triple in
1653            ["x86_64-unknown-linux-gnu", "aarch64-unknown-linux-gnu", "x86_64-pc-windows-msvc"]
1654        {
1655            assert!(has(&set_for(triple), "#define __USER_LABEL_PREFIX__ "), "{triple}");
1656        }
1657        // Mach-O keeps the underscore that ELF dropped.
1658        assert!(has(&set_for("aarch64-apple-darwin"), "#define __USER_LABEL_PREFIX__ _"));
1659    }
1660
1661    /// `-ffast-math` as gcc 16 spells it on x86-64 Linux: one macro per licence, the finite promise
1662    /// as a one, and the IEC 60559 family gone from both the compiler's lines and the ones glibc
1663    /// would write from `__GCC_IEC_559`.
1664    #[test]
1665    fn fast_math_defines_what_gcc_16_defines_for_it() {
1666        let target = TargetInfo::new("x86_64-unknown-linux-gnu".parse().expect("a triple"));
1667        let mut opts = Predef::new();
1668        opts.trapping_math = opts.math.set_fast(true);
1669        let fast = built_in(&target, &opts);
1670        for line in [
1671            "#define __FAST_MATH__ 1",
1672            "#define __FINITE_MATH_ONLY__ 1",
1673            "#define __NO_MATH_ERRNO__ 1",
1674            "#define __NO_TRAPPING_MATH__ 1",
1675            "#define __NO_SIGNED_ZEROS__ 1",
1676            "#define __RECIPROCAL_MATH__ 1",
1677            "#define __ASSOCIATIVE_MATH__ 1",
1678            "#define __GCC_IEC_559 0",
1679            "#define __GCC_IEC_559_COMPLEX 0",
1680        ] {
1681            assert!(has(&fast, line), "{line}");
1682        }
1683        for name in ["__STDC_IEC_559__", "__STDC_IEC_559_COMPLEX__", "__STDC_IEC_60559_BFP__"] {
1684            assert!(!fast.contains(&format!("#define {name} ")), "{name}");
1685        }
1686
1687        // `-ffast-math -ftrapping-math` keeps the members that do not need trapping off and
1688        // loses the name for the whole, and regrouping with it, which is gcc's answer.
1689        opts.trapping_math = true;
1690        let trapping = built_in(&target, &opts);
1691        assert!(has(&trapping, "#define __NO_MATH_ERRNO__ 1"));
1692        assert!(has(&trapping, "#define __GCC_IEC_559 0"));
1693        for name in ["__FAST_MATH__", "__NO_TRAPPING_MATH__", "__ASSOCIATIVE_MATH__"] {
1694            assert!(!trapping.contains(&format!("#define {name} ")), "{name}");
1695        }
1696
1697        // And none of it by default.
1698        let plain = built_in(&target, &Predef::new());
1699        for name in ["__FAST_MATH__", "__NO_MATH_ERRNO__", "__NO_TRAPPING_MATH__"] {
1700            assert!(!plain.contains(&format!("#define {name} ")), "{name}");
1701        }
1702        assert!(has(&plain, "#define __STDC_IEC_559__ 1"));
1703    }
1704
1705    /// `__EXCEPTIONS` is the one macro `-fexceptions` adds in C, and it is not there without it.
1706    #[test]
1707    fn exceptions_are_announced_to_the_headers_that_ask() {
1708        let target = TargetInfo::new("x86_64-unknown-linux-gnu".parse().expect("a triple"));
1709        let mut opts = Predef::new();
1710        assert!(!built_in(&target, &opts).contains("__EXCEPTIONS"));
1711        opts.exceptions = true;
1712        assert!(has(&built_in(&target, &opts), "#define __EXCEPTIONS 1"));
1713    }
1714
1715    /// The set gcc defines that headers read and that are true here. Written out one line at a
1716    /// time rather than counted, because the value is the whole point of each of them: a header
1717    /// asking `#if __FINITE_MATH_ONLY__` wants the number and not the existence.
1718    #[test]
1719    fn the_toolchain_macros_gcc_defines_are_defined_with_gccs_values() {
1720        let linux = set_for("x86_64-unknown-linux-gnu");
1721        for line in [
1722            "#define __GNUC_EXECUTION_CHARSET_NAME \"UTF-8\"",
1723            "#define __GNUC_WIDE_EXECUTION_CHARSET_NAME \"UTF-32LE\"",
1724            "#define __GXX_ABI_VERSION 1021",
1725            "#define __REGISTER_PREFIX__ ",
1726            "#define __FINITE_MATH_ONLY__ 0",
1727            "#define __GCC_IEC_559 2",
1728            "#define __GCC_IEC_559_COMPLEX 2",
1729            "#define __GCC_CONSTRUCTIVE_SIZE 64",
1730            "#define __GCC_DESTRUCTIVE_SIZE 64",
1731            "#define __GCC_HAVE_SYNC_COMPARE_AND_SWAP_1 1",
1732            "#define __GCC_HAVE_SYNC_COMPARE_AND_SWAP_2 1",
1733            "#define __GCC_HAVE_SYNC_COMPARE_AND_SWAP_4 1",
1734            "#define __GCC_HAVE_SYNC_COMPARE_AND_SWAP_8 1",
1735            "#define __ATOMIC_HLE_ACQUIRE 65536",
1736            "#define __ATOMIC_HLE_RELEASE 131072",
1737            "#define __FXSR__ 1",
1738            "#define __MMX_WITH_SSE__ 1",
1739            "#define __code_model_small__ 1",
1740        ] {
1741            assert!(has(&linux, line), "{line}");
1742        }
1743        // The five that are the processor's rather than the compiler's stay on the processor.
1744        let arm = set_for("aarch64-unknown-linux-gnu");
1745        for name in ["__ATOMIC_HLE_ACQUIRE", "__FXSR__", "__MMX_WITH_SSE__", "__code_model_small__"]
1746        {
1747            assert!(!arm.contains(name), "{name}");
1748        }
1749        assert!(has(&arm, "#define __GCC_HAVE_SYNC_COMPARE_AND_SWAP_8 1"));
1750        // A wide character is sixteen bits on Windows, so a wide string is UTF-16 there.
1751        let windows = set_for("x86_64-pc-windows-msvc");
1752        assert!(has(&windows, "#define __GNUC_WIDE_EXECUTION_CHARSET_NAME \"UTF-16LE\""));
1753    }
1754
1755    #[test]
1756    fn the_extensions_the_unit_is_built_for_are_macros() {
1757        // tamnd/rucc#2003. The baseline is four macros and SSE4.2 is six more, which is gcc 16's
1758        // `-msse4.2 -dM` output, and the unit's set is what decides it rather than the target.
1759        let triple: Triple = "x86_64-unknown-linux-gnu".parse().expect("a triple");
1760        let mut choices = rucc_target::Choices::new();
1761        choices.read("sse4.2").expect("a name gcc knows");
1762        let opts = Predef { isa: choices.over(Isa::baseline()), ..Predef::new() };
1763        let text = built_in(&TargetInfo::new(triple), &opts);
1764        for name in
1765            ["SSE", "SSE2", "MMX", "FXSR", "SSE3", "SSSE3", "SSE4_1", "SSE4_2", "POPCNT", "CRC32"]
1766        {
1767            assert!(has(&text, &format!("#define __{name}__ 1")), "{name}");
1768        }
1769        let plain = set_for("x86_64-unknown-linux-gnu");
1770        assert!(has(&plain, "#define __SSE2__ 1"));
1771        for name in ["__SSE3__", "__SSE4_2__", "__POPCNT__", "__CRC32__"] {
1772            assert!(!plain.contains(name), "{name}");
1773        }
1774        // AArch64 has none of them whatever the set says, since the set is an x86-64 one.
1775        let arm: Triple = "aarch64-unknown-linux-gnu".parse().expect("a triple");
1776        assert!(!built_in(&TargetInfo::new(arm), &opts).contains("__SSE"));
1777    }
1778
1779    #[test]
1780    fn the_memory_orders_are_there_even_without_atomics() {
1781        // musl's stdatomic.h writes `memory_order_relaxed = __ATOMIC_RELAXED` with no test
1782        // around it, so these are not a promise about `_Atomic`, they are the numbering the
1783        // builtins take, and a compiler without them prints an enumerator whose value is an
1784        // identifier.
1785        let linux = set_for("x86_64-unknown-linux-gnu");
1786        assert!(has(&linux, "#define __ATOMIC_RELAXED 0"));
1787        assert!(has(&linux, "#define __ATOMIC_SEQ_CST 5"));
1788        assert!(has(&linux, "#define __STDC_NO_ATOMICS__ 1"), "and we still have no _Atomic");
1789        assert!(has(&linux, "#define __GCC_ATOMIC_INT_LOCK_FREE 2"));
1790        assert!(has(&linux, "#define __GCC_ATOMIC_LLONG_LOCK_FREE 2"));
1791        assert!(has(&set_for("x86_64-pc-windows-msvc"), "#define __GCC_ATOMIC_LLONG_LOCK_FREE 2"));
1792    }
1793
1794    #[test]
1795    fn long_double_is_three_types_and_the_macros_say_which() {
1796        assert!(has(&set_for("x86_64-unknown-linux-gnu"), "#define __LDBL_MANT_DIG__ 64"));
1797        assert!(has(&set_for("aarch64-unknown-linux-gnu"), "#define __LDBL_MANT_DIG__ 113"));
1798        assert!(has(&set_for("aarch64-apple-darwin"), "#define __LDBL_MANT_DIG__ 53"));
1799    }
1800
1801    #[test]
1802    fn the_size_of_float128_is_defined_where_gcc_has_the_name() {
1803        let line = "#define __SIZEOF_FLOAT128__ 16";
1804        assert!(has(&set_for("x86_64-unknown-linux-gnu"), line));
1805        assert!(has(&set_for_tuple("i686-linux-gnu"), line));
1806        let power = set_for_tuple("powerpc64le-linux-gnu");
1807        assert!(has(&power, line));
1808        assert!(has(&power, "#define __FLOAT128__ 1"));
1809        assert!(!set_for("x86_64-unknown-linux-gnu").contains("__FLOAT128__"));
1810        assert!(!set_for("aarch64-unknown-linux-gnu").contains("__SIZEOF_FLOAT128__"));
1811    }
1812
1813    #[test]
1814    fn the_extended_floating_types_have_the_limits_their_formats_have() {
1815        // Every one of these but `_Float64x` is the same format on every target, which is the
1816        // point of the interchange types, so the limits are the same everywhere too.
1817        let linux = set_for("x86_64-unknown-linux-gnu");
1818        assert!(has(&linux, "#define __FLT16_MANT_DIG__ 11"));
1819        assert!(has(&linux, "#define __FLT32_MANT_DIG__ 24"));
1820        assert!(has(&linux, "#define __FLT64_MANT_DIG__ 53"));
1821        assert!(has(&linux, "#define __FLT128_MANT_DIG__ 113"));
1822        assert!(has(&linux, "#define __FLT32X_MANT_DIG__ 53"));
1823        // Each family writes its values with its own suffix, so a header that assigns one to an
1824        // object of the type gets the type back rather than a conversion.
1825        assert!(has(&linux, "#define __FLT16_MAX__ 6.55040000000000000000000000000000000e+4F16"));
1826        assert!(has(
1827            &linux,
1828            "#define __FLT32X_MIN__ 2.22507385850720138309023271733240406e-308F32x"
1829        ));
1830        // `_Float128x` is a type no target has, so gcc defines nothing for it and neither
1831        // does this.
1832        assert!(!linux.contains("__FLT128X_"));
1833    }
1834
1835    #[test]
1836    fn the_family_for_a_named_type_is_written_where_the_type_is_and_nowhere_else() {
1837        // gcc 13's rows, measured with the cross compilers: the half is on x86-64, AArch64 and
1838        // RISC-V, and the quad is on every one of the seven but armv7. A program asks the macro
1839        // to find out whether it may write the type, so a row where the two disagree is a header
1840        // that asks for a type the compiler then refuses.
1841        let has_family = |target: &str, prefix: &str| {
1842            set_for_tuple(target).contains(&format!("#define __{prefix}_MANT_DIG__ "))
1843        };
1844        assert!(has_family("x86_64-linux-gnu", "FLT16"));
1845        assert!(has_family("aarch64-linux-gnu", "FLT16"));
1846        assert!(has_family("riscv64-linux-gnu", "FLT16"));
1847        assert!(!has_family("i686-linux-gnu", "FLT16"));
1848        assert!(!has_family("s390x-linux-gnu", "FLT16"));
1849        assert!(!has_family("armv7-linux-gnueabihf", "FLT16"));
1850
1851        assert!(has_family("i686-linux-gnu", "FLT128"));
1852        assert!(has_family("s390x-linux-gnu", "FLT128"));
1853        assert!(!has_family("armv7-linux-gnueabihf", "FLT128"));
1854
1855        // The families every machine has are still there on the machine that has least, and so
1856        // is `_Float64x` on the machines that have a format for it.
1857        let arm = set_for_tuple("armv7-linux-gnueabihf");
1858        for prefix in ["FLT", "DBL", "LDBL", "FLT32", "FLT64", "FLT32X"] {
1859            assert!(arm.contains(&format!("#define __{prefix}_MANT_DIG__ ")), "__{prefix}_");
1860        }
1861        assert!(!arm.contains("__FLT64X_"));
1862    }
1863
1864    #[test]
1865    fn float64x_keeps_the_width_that_long_double_loses_on_apple() {
1866        // The two are the same eighty bit x87 format on x86-64 and part company everywhere
1867        // else, because `_Float64x` follows the processor and `long double` follows the ABI.
1868        let linux = set_for("x86_64-unknown-linux-gnu");
1869        assert!(has(&linux, "#define __FLT64X_MANT_DIG__ 64"));
1870        assert!(has(&linux, "#define __LDBL_MANT_DIG__ 64"));
1871        let mac = set_for("aarch64-apple-darwin");
1872        assert!(has(&mac, "#define __FLT64X_MANT_DIG__ 113"));
1873        assert!(has(&mac, "#define __LDBL_MANT_DIG__ 53"));
1874        let windows = set_for("x86_64-pc-windows-msvc");
1875        assert!(has(&windows, "#define __FLT64X_MANT_DIG__ 64"));
1876        assert!(has(&windows, "#define __LDBL_MANT_DIG__ 53"));
1877    }
1878
1879    #[test]
1880    fn the_largest_value_of_an_ieee_format_is_also_its_largest_normal_one() {
1881        // `NORM_MAX` is only ever smaller than `MAX` for a format that holds values above its
1882        // largest normal one, and no IEEE encoding does. The double-double does, which is why
1883        // the two are separate fields now, and no target here has one.
1884        let linux = set_for("x86_64-unknown-linux-gnu");
1885        for prefix in ["FLT", "DBL", "LDBL", "FLT16", "FLT32", "FLT64", "FLT128", "FLT32X"] {
1886            let value = |suffix: &str| {
1887                let name = format!("#define __{prefix}_{suffix}__ ");
1888                let line = linux
1889                    .lines()
1890                    .find(|line| line.starts_with(&name))
1891                    .unwrap_or_else(|| panic!("__{prefix}_{suffix}__ is defined"));
1892                line[name.len()..].to_owned()
1893            };
1894            assert_eq!(value("MAX"), value("NORM_MAX"), "__{prefix}_NORM_MAX__");
1895        }
1896    }
1897
1898    #[test]
1899    fn the_double_double_is_the_row_where_the_largest_value_is_not_the_largest_normal_one() {
1900        // No target here has a double-double `long double`, so this asks the row rather than the
1901        // macros. It is the reason `norm_max` is a field: a program that wants the largest value
1902        // it can still compute a full significand with wants `NORM_MAX`, and on PowerPC that is
1903        // a bit under half of `MAX`.
1904        let c = characteristics(Format::DoubleDouble);
1905        assert_ne!(c.max, c.norm_max);
1906        // `NORM_MAX` is two to the one thousand and twenty three, which is about half of `MAX`,
1907        // and `MAX` is a shade above `DBL_MAX` because the high half can be `DBL_MAX` and the low
1908        // half then adds to it. Both are what the reference prints.
1909        assert!(c.norm_max.starts_with("8.98846567431157953864652595394501e+307"));
1910        assert!(c.max.starts_with("1.7976931348623158"));
1911        // Epsilon is the odd one. The smallest value that changes a double-double near one is a
1912        // subnormal in the low half rather than one unit in the last place of anything, so it is
1913        // the same number as this format's own `DENORM_MIN`, which no other row can say.
1914        assert_eq!(c.epsilon, c.denorm_min);
1915        for format in [Format::Half, Format::Single, Format::Double, Format::X87Extended] {
1916            assert_ne!(characteristics(format).epsilon, characteristics(format).denorm_min);
1917        }
1918        // And it is not an IEC 60559 format, which only the brain float can also say.
1919        assert_eq!(c.is_iec_60559, "0");
1920    }
1921
1922    #[test]
1923    fn the_widest_bit_int_is_said_in_every_dialect() {
1924        // gcc defines it under `-std=c17` as well as `-std=c23`, and a header that reaches for
1925        // `_BitInt` tests the macro rather than the version, so an absent one reads as a
1926        // compiler without the type at all.
1927        let mut opts = Predef::new();
1928        let target = TargetInfo::new("x86_64-unknown-linux-gnu".parse().unwrap());
1929        assert!(has(&built_in(&target, &opts), "#define __BITINT_MAXWIDTH__ 128"));
1930        opts.std = Std::C17;
1931        assert!(has(&built_in(&target, &opts), "#define __BITINT_MAXWIDTH__ 128"));
1932    }
1933
1934    #[test]
1935    fn char_signedness_is_recorded_only_when_it_is_unsigned() {
1936        // Which is how GCC does it: the macro exists to mark the unusual case.
1937        assert!(has(&set_for("aarch64-unknown-linux-gnu"), "#define __CHAR_UNSIGNED__ 1"));
1938        assert!(!has(&set_for("x86_64-unknown-linux-gnu"), "#define __CHAR_UNSIGNED__ 1"));
1939    }
1940
1941    #[test]
1942    fn the_dialect_decides_the_standard_macros() {
1943        let mut opts = Predef::new();
1944        let target = TargetInfo::new("x86_64-unknown-linux-gnu".parse().unwrap());
1945        assert!(has(&built_in(&target, &opts), "#define __STDC_VERSION__ 202311L"));
1946        assert!(!has(&built_in(&target, &opts), "#define __STRICT_ANSI__ 1"));
1947        assert!(has(&built_in(&target, &opts), "#define linux 1"));
1948
1949        opts.gnu_extensions = false;
1950        assert!(has(&built_in(&target, &opts), "#define __STRICT_ANSI__ 1"));
1951        assert!(!has(&built_in(&target, &opts), "#define linux 1"), "not a reserved name");
1952
1953        opts.std = Std::C89;
1954        let c89 = built_in(&target, &opts);
1955        assert!(!c89.contains("__STDC_VERSION__"), "C89 does not define it at all");
1956        assert!(has(&c89, "#define __STDC__ 1"));
1957    }
1958
1959    /// The conditional feature macros are claims not to have something, and a claim that is
1960    /// not true changes what a header declares rather than turning anything off.
1961    #[test]
1962    fn the_only_things_claimed_missing_are_the_ones_that_are_missing() {
1963        let target = TargetInfo::new("x86_64-unknown-linux-gnu".parse().unwrap());
1964        let opts = Predef::new();
1965        let set = built_in(&target, &opts);
1966        assert!(has(&set, "#define __STDC_NO_ATOMICS__ 1"), "there is no stdatomic.h to include");
1967        assert!(has(&set, "#define __STDC_NO_THREADS__ 1"), "nor a threads.h");
1968        assert!(has(&set, "#define __STDC_NO_COMPLEX__ 1"), "the arithmetic is not lowered");
1969        assert!(!set.contains("__STDC_NO_VLA__"), "variable length arrays work");
1970    }
1971
1972    /// gcc's own `stdatomic.h` declares `atomic_char8_t` under `#ifdef __CHAR8_TYPE__`, so a
1973    /// compiler that defines it in C17 declares a type gcc does not and one that never defines
1974    /// it is missing one in C23. Both were caught by preprocessing that header both ways.
1975    #[test]
1976    fn the_type_behind_char8_t_is_defined_in_c23_and_in_no_dialect_before_it() {
1977        let target = TargetInfo::new("x86_64-unknown-linux-gnu".parse().unwrap());
1978        let mut opts = Predef::new();
1979        assert!(has(&built_in(&target, &opts), "#define __CHAR8_TYPE__ unsigned char"));
1980
1981        for older in [Std::C17, Std::C11, Std::C99, Std::C89] {
1982            opts.std = older;
1983            assert!(!built_in(&target, &opts).contains("__CHAR8_TYPE__"), "{older:?}");
1984        }
1985    }
1986
1987    /// glibc's `<stdc-predef.h>` is read before the first line of every translation unit and
1988    /// writes `#define __STDC_IEC_60559_BFP__ 201404L` whenever `__GCC_IEC_559` is positive.
1989    /// Any other value here is a redefinition with a different body, which is a warning the
1990    /// program did not ask for and which a configure script reads as a failed feature test.
1991    #[test]
1992    fn the_ieee_annex_macro_carries_the_value_glibcs_own_header_writes() {
1993        let target = TargetInfo::new("x86_64-unknown-linux-gnu".parse().unwrap());
1994        let mut opts = Predef::new();
1995        for std in [Std::C23, Std::C17, Std::C11, Std::C99, Std::C89] {
1996            opts.std = std;
1997            let set = built_in(&target, &opts);
1998            assert!(has(&set, "#define __STDC_IEC_60559_BFP__ 201404L"), "{std:?}");
1999            assert!(has(&set, "#define __STDC_IEC_60559_COMPLEX__ 201404L"), "{std:?}");
2000            // The two the library reads to decide whether to write the four above itself.
2001            assert!(has(&set, "#define __GCC_IEC_559 2"), "{std:?}");
2002            assert!(has(&set, "#define __GCC_IEC_559_COMPLEX 2"), "{std:?}");
2003        }
2004    }
2005
2006    #[test]
2007    fn the_optimizer_level_is_visible_to_the_preprocessor() {
2008        let target = TargetInfo::new("x86_64-unknown-linux-gnu".parse().unwrap());
2009        let mut opts = Predef::new();
2010        assert!(has(&built_in(&target, &opts), "#define __NO_INLINE__ 1"));
2011        assert!(!built_in(&target, &opts).contains("__OPTIMIZE__"));
2012
2013        opts.opt_level = OptLevel::O2;
2014        assert!(has(&built_in(&target, &opts), "#define __OPTIMIZE__ 1"));
2015        assert!(!built_in(&target, &opts).contains("__OPTIMIZE_SIZE__"));
2016
2017        opts.opt_level = OptLevel::Os;
2018        assert!(has(&built_in(&target, &opts), "#define __OPTIMIZE_SIZE__ 1"));
2019    }
2020
2021    #[test]
2022    fn a_command_line_define_with_no_value_is_one() {
2023        let mut opts = Predef::new();
2024        opts.defines = vec!["FOO".to_owned(), "BAR=2".to_owned(), "F(x)=x + 1".to_owned()];
2025        opts.undefines = vec!["__linux__".to_owned()];
2026        let text = command_line(&opts);
2027        assert!(has(&text, "#define FOO 1"));
2028        assert!(has(&text, "#define BAR 2"));
2029        assert!(has(&text, "#define F(x) x + 1"));
2030        // The undefine comes last, because `-U` beats `-D` whichever side of it it was on.
2031        assert!(text.trim_end().ends_with("#undef __linux__"));
2032    }
2033
2034    #[test]
2035    fn no_command_line_macros_is_no_file_at_all() {
2036        assert!(command_line(&Predef::new()).is_empty());
2037    }
2038
2039    #[test]
2040    fn a_date_is_spelled_the_way_the_standard_fixes() {
2041        // The epoch itself, and a day that needs the space padding the format asks for.
2042        let epoch = Timestamp::from_unix(0);
2043        assert_eq!(epoch.date, "Jan  1 1970");
2044        assert_eq!(epoch.time, "00:00:00");
2045        let leap = Timestamp::from_unix(1_709_164_800);
2046        assert_eq!(leap.date, "Feb 29 2024", "2024 is a leap year");
2047        let late = Timestamp::from_unix(1_735_689_599);
2048        assert_eq!(late.date, "Dec 31 2024");
2049        assert_eq!(late.time, "23:59:59");
2050    }
2051
2052    #[test]
2053    fn a_date_before_the_epoch_still_comes_out_right() {
2054        // Not because anyone compiles in 1969, but because the arithmetic that gets this
2055        // wrong is the same arithmetic that gets a time zone offset wrong.
2056        assert_eq!(Timestamp::from_unix(-1).date, "Dec 31 1969");
2057        assert_eq!(Timestamp::from_unix(-1).time, "23:59:59");
2058    }
2059
2060    #[test]
2061    fn the_gnuc_version_is_a_knob_rather_than_a_constant() {
2062        let target = TargetInfo::new("x86_64-unknown-linux-gnu".parse().unwrap());
2063        let mut opts = Predef::new();
2064        assert!(has(&built_in(&target, &opts), "#define __GNUC__ 16"));
2065        opts.gnuc = GnucVersion { major: 15, minor: 1, patch: 0 };
2066        assert!(has(&built_in(&target, &opts), "#define __GNUC__ 15"));
2067        assert!(has(&built_in(&target, &opts), "#define __GNUC_MINOR__ 1"));
2068    }
2069
2070    /// Which of the two inline macros is defined, over the two things that decide it.
2071    ///
2072    /// Exactly one of them is defined at a time, which is what a header reads: glibc's
2073    /// `__extern_inline` writes `extern __inline` under one and adds `__gnu_inline__` under the
2074    /// other, so both being defined or neither being defined is a header taking a path it was
2075    /// never meant to take.
2076    #[test]
2077    fn one_of_the_two_inline_macros_is_defined_and_three_things_can_pick_which() {
2078        let target = TargetInfo::new("x86_64-unknown-linux-gnu".parse().unwrap());
2079        let gnu = "#define __GNUC_GNU_INLINE__ 1";
2080        let stdc = "#define __GNUC_STDC_INLINE__ 1";
2081
2082        let mut opts = Predef::new();
2083        assert!(has(&built_in(&target, &opts), stdc));
2084        assert!(!has(&built_in(&target, &opts), gnu));
2085
2086        opts.gnu89_inline = true;
2087        assert!(has(&built_in(&target, &opts), gnu));
2088        assert!(!has(&built_in(&target, &opts), stdc));
2089
2090        // The dialect on its own, which is where the older reading came from.
2091        let mut opts = Predef::new();
2092        opts.std = Std::C89;
2093        assert!(has(&built_in(&target, &opts), gnu));
2094        assert!(!has(&built_in(&target, &opts), stdc));
2095    }
2096
2097    #[test]
2098    fn a_darwin_target_says_its_deployment_target_as_the_sdk_reads_it() {
2099        let default = set_for("aarch64-apple-darwin");
2100        assert!(has(&default, "#define __ENVIRONMENT_MAC_OS_X_VERSION_MIN_REQUIRED__ 110000"));
2101        assert!(has(&default, "#define __ENVIRONMENT_OS_VERSION_MIN_REQUIRED__ 110000"));
2102        let pinned = set_for_tuple("aarch64-macos.13.4");
2103        assert!(has(&pinned, "#define __ENVIRONMENT_MAC_OS_X_VERSION_MIN_REQUIRED__ 130400"));
2104        assert!(has(&pinned, "#define __ENVIRONMENT_OS_VERSION_MIN_REQUIRED__ 130400"));
2105        let linux = set_for("aarch64-unknown-linux-gnu");
2106        assert!(!linux.contains("VERSION_MIN_REQUIRED"));
2107    }
2108
2109    #[test]
2110    fn apple_arm64_has_the_older_spellings_its_sdk_reads() {
2111        let darwin = set_for("aarch64-apple-darwin");
2112        for line in [
2113            "#define __ARM64_ARCH_8__ 1",
2114            "#define __ARM_NEON__ 1",
2115            "#define __AARCH64_SIMD__ 1",
2116            "#define __LITTLE_ENDIAN__ 1",
2117        ] {
2118            assert!(has(&darwin, line), "{line}");
2119        }
2120        // gcc defines none of them for Linux, and a header that tests `__LITTLE_ENDIAN__` there
2121        // is one written for clang that gcc users already build without it.
2122        let linux = set_for("aarch64-unknown-linux-gnu");
2123        assert!(!linux.contains("__ARM_NEON__"));
2124        assert!(!linux.contains("#define __LITTLE_ENDIAN__"));
2125    }
2126
2127    #[test]
2128    fn sixty_four_bit_glibc_makes_the_fast_types_long_on_every_processor() {
2129        // glibc's `stdint.h` picks `long` under `__WORDSIZE == 64` and never asks which
2130        // processor it is on, and gcc for aarch64, riscv64 and powerpc64le all agree.
2131        for triple in ["aarch64-unknown-linux-gnu", "riscv64-unknown-linux-gnu"] {
2132            let set = set_for(triple);
2133            assert!(has(&set, "#define __INT_FAST16_TYPE__ long int"), "{triple}");
2134            assert!(has(&set, "#define __UINT_FAST32_TYPE__ long unsigned int"), "{triple}");
2135            assert!(has(&set, "#define __INT_FAST32_WIDTH__ 64"), "{triple}");
2136        }
2137        assert!(has(&set_for("aarch64-unknown-linux-musl"), "#define __INT_FAST16_TYPE__ int"));
2138        // Apple's `stdint.h` makes the 16 bit one `int16_t` and the 32 bit one `int32_t`.
2139        let darwin = set_for("aarch64-apple-darwin");
2140        assert!(has(&darwin, "#define __INT_FAST16_TYPE__ short int"));
2141        assert!(has(&darwin, "#define __INT_FAST32_TYPE__ int"));
2142    }
2143
2144    #[test]
2145    fn armv8_a_says_what_the_base_architecture_has() {
2146        let arm = set_for("aarch64-unknown-linux-gnu");
2147        for line in [
2148            "#define __ARM_ARCH_ISA_A64 1",
2149            "#define __ARM_FEATURE_CLZ 1",
2150            "#define __ARM_FEATURE_IDIV 1",
2151            "#define __ARM_FEATURE_FMA 1",
2152            "#define __FP_FAST_FMA 1",
2153            "#define __GCC_DESTRUCTIVE_SIZE 256",
2154        ] {
2155            assert!(has(&arm, line), "{line}");
2156        }
2157        let x86 = set_for("x86_64-unknown-linux-gnu");
2158        assert!(!x86.contains("__ARM_FEATURE_CLZ"));
2159        assert!(!x86.contains("__FP_FAST_FMA"));
2160        assert!(has(&x86, "#define __GCC_DESTRUCTIVE_SIZE 64"));
2161    }
2162
2163    #[test]
2164    fn musl_and_glibc_disagree_about_the_fast_types_on_the_same_processor() {
2165        // The same x86-64 machine, two libcs, two answers. GCC built for glibc says `long int`
2166        // and GCC built for musl says `int`, because musl defines `int_fast16_t` as `int32_t`
2167        // everywhere. It shows in `stdatomic.h`, which GCC writes out of these macros, so
2168        // getting it wrong makes every atomic fast type the wrong width.
2169        let gnu = set_for("x86_64-unknown-linux-gnu");
2170        let musl = set_for("x86_64-unknown-linux-musl");
2171        assert!(has(&gnu, "#define __INT_FAST16_TYPE__ long int"));
2172        assert!(has(&gnu, "#define __INT_FAST32_TYPE__ long int"));
2173        assert!(has(&gnu, "#define __UINT_FAST16_TYPE__ long unsigned int"));
2174        assert!(has(&musl, "#define __INT_FAST16_TYPE__ int"));
2175        assert!(has(&musl, "#define __INT_FAST32_TYPE__ int"));
2176        assert!(has(&musl, "#define __UINT_FAST16_TYPE__ unsigned int"));
2177        // The limits have to move with the types or a header that checks them stops agreeing
2178        // with the header that uses them.
2179        assert!(has(&gnu, "#define __INT_FAST16_MAX__ 0x7fffffffffffffffL"));
2180        assert!(has(&musl, "#define __INT_FAST16_MAX__ 0x7fffffff"));
2181        assert!(has(&musl, "#define __UINT_FAST16_MAX__ 0xffffffffU"));
2182    }
2183
2184    #[test]
2185    fn the_libc_only_moves_the_two_fast_types_it_is_allowed_to_move() {
2186        // 8 and 64 are the same on both, and so is everything outside the fast family. A libc
2187        // is not a processor and this is the whole of what it is permitted to change here.
2188        let gnu = set_for("x86_64-unknown-linux-gnu");
2189        let musl = set_for("x86_64-unknown-linux-musl");
2190        for line in [
2191            "#define __INT_FAST8_TYPE__ signed char",
2192            "#define __INT_FAST64_TYPE__ long int",
2193            "#define __INT64_TYPE__ long int",
2194            "#define __SIZE_TYPE__ long unsigned int",
2195            "#define __SIZEOF_LONG__ 8",
2196            "#define __LP64__ 1",
2197        ] {
2198            assert!(has(&gnu, line), "glibc lost {line}");
2199            assert!(has(&musl, line), "musl lost {line}");
2200        }
2201    }
2202
2203    #[test]
2204    fn windows_is_the_one_target_where_the_two_middle_fast_types_differ_from_each_other() {
2205        // mingw's `stdint.h` declares `int_fast16_t` a `short` and `int_fast32_t` an `int`, and
2206        // x86_64-w64-mingw32-gcc says the same, so this is the one platform where the pair does
2207        // not share an answer.
2208        let windows = set_for("x86_64-pc-windows-gnu");
2209        assert!(has(&windows, "#define __INT_FAST16_TYPE__ short int"));
2210        assert!(has(&windows, "#define __UINT_FAST16_TYPE__ short unsigned int"));
2211        assert!(has(&windows, "#define __INT_FAST16_MAX__ 0x7fff"));
2212        assert!(has(&windows, "#define __UINT_FAST16_MAX__ 0xffff"));
2213        assert!(has(&windows, "#define __INT_FAST16_WIDTH__ 16"));
2214        assert!(has(&windows, "#define __INT_FAST32_TYPE__ int"));
2215        assert!(has(&windows, "#define __UINT_FAST32_TYPE__ unsigned int"));
2216        assert!(has(&windows, "#define __INT_FAST32_WIDTH__ 32"));
2217        // The two ends of the family are the same as everywhere.
2218        assert!(has(&windows, "#define __INT_FAST8_TYPE__ signed char"));
2219        assert!(has(&windows, "#define __INT_FAST64_TYPE__ long long int"));
2220    }
2221
2222    #[test]
2223    fn windows_answers_to_every_name_gcc_gives_it() {
2224        // The mingw tree reads more than one spelling of the platform and a missing one is a
2225        // declaration that quietly is not there: `winuser.h` guards `EndTask` with `#ifdef
2226        // WINNT` and `rpcdcep.h` guards six `I_Rpc` declarations with `#ifndef WINNT`.
2227        let windows = set_for("x86_64-pc-windows-gnu");
2228        let every = "_WIN32 __WIN32 __WIN32__ __WINNT __WINNT__ __MINGW32__ \
2229                     _WIN64 __WIN64 __WIN64__ __MINGW64__ __MSVCRT__ __SEH__ WIN32 WIN64 WINNT";
2230        for name in every.split_whitespace() {
2231            assert!(has(&windows, &format!("#define {name} 1")), "no {name}");
2232        }
2233        assert!(has(&windows, "#define _INTEGRAL_MAX_BITS 64"));
2234    }
2235
2236    #[test]
2237    fn a_thirty_two_bit_windows_is_not_told_its_pointer_is_sixty_four_bits_wide() {
2238        // `_WIN64` is about the pointer rather than the processor, and i686-w64-mingw32-gcc
2239        // defines neither it nor `__MINGW64__`, nor `__SEH__`, since the unwind records this
2240        // compiler writes are the sixty four bit format and a thirty two bit Windows unwinds
2241        // some other way. The target is made by hand because the three field triple has no
2242        // 32-bit row yet, so `i686-windows-gnu` predefines nothing at all and there is no other
2243        // way to reach this arm.
2244        let mut target = TargetInfo::new("x86_64-pc-windows-gnu".parse().expect("a triple"));
2245        target.pointer_width = 32;
2246        let windows = built_in(&target, &Predef::new());
2247        assert!(has(&windows, "#define _WIN32 1"));
2248        assert!(has(&windows, "#define __MINGW32__ 1"));
2249        for name in ["_WIN64", "__WIN64", "__WIN64__", "__MINGW64__", "__SEH__", "WIN64"] {
2250            assert!(!has(&windows, &format!("#define {name} 1")), "{name} on a 32 bit target");
2251        }
2252    }
2253
2254    #[test]
2255    fn the_three_unreserved_windows_names_need_the_gnu_dialect() {
2256        // `WIN32`, `WIN64` and `WINNT` are in the user's namespace, so gcc drops all three under
2257        // `-std=c11` and keeps the underscored ones. Windows code tests them anyway, the same
2258        // way portable Unix code still tests `linux`.
2259        let triple: Triple = "x86_64-pc-windows-gnu".parse().expect("a triple");
2260        let mut opts = Predef::new();
2261        opts.gnu_extensions = false;
2262        let strict = built_in(&TargetInfo::new(triple), &opts);
2263        for name in ["WIN32", "WIN64", "WINNT"] {
2264            assert!(!has(&strict, &format!("#define {name} 1")), "{name} under -std=c11");
2265        }
2266        assert!(has(&strict, "#define _WIN32 1"));
2267        assert!(has(&strict, "#define __WINNT__ 1"));
2268    }
2269}