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rucc_driver/
compile.rs

1//! Running the front end over one file, from the bytes on disk to the typed tree.
2//!
3//! Design: `spec/04-driver-and-cli.md` section 4.3, and the `M2` exit criterion in
4//! `spec/17-milestones.md` that says `--emit=tast` works.
5//!
6//! [`preprocess`](mod@crate::preprocess) stops after phase 4 because `-E` stops there. This
7//! carries on: phase 7, the parse, and the checking. It is one function rather than four composed
8//! ones because of what the four share. The tokens hold interned symbols, the untyped tree holds
9//! tokens, the typed tree holds the untyped tree's spans, and none of them owns the table it is
10//! reading, so one [`Session`] has to outlive all of them and there has to be one place that
11//! holds it.
12
13use std::collections::HashMap;
14use std::path::Path;
15
16use rucc_base::{Interner, Symbol};
17use rucc_codegen::coverage::Fired;
18use rucc_codegen::elsewhere::Elsewhere;
19use rucc_codegen::lowering::Lowerings;
20use rucc_codegen::pipeline::{self, Machine, Recording};
21use rucc_codegen::pressure::Pressure;
22use rucc_cost::Goal;
23use rucc_diag::{Diagnostic, Severity, SourceMap, Span};
24use rucc_ir::{FpContract, Pic as IrPic, Visibility as IrVisibility};
25use rucc_lex::{Convert, Keywords, PpToken, convert};
26use rucc_lower::Protector as LowerProtector;
27use rucc_sema::{Checker, Context as CheckContext};
28use rucc_session::{
29    Contract, EmitKind, FileSystem, Options, Padding, Pic, Protector, Session, Visibility,
30};
31use rucc_target::TargetInfo;
32use rucc_tuple::{Arch, ObjectFormat};
33
34use crate::preprocess::render;
35
36/// What a compilation produced, which is text for most of the kinds and bytes for one of them.
37///
38/// Two variants rather than a string, because an object file is not text and a `Vec<u8>` holding
39/// UTF-8 for six kinds and a file format for the seventh would leave every reader guessing which
40/// it had. [`Artifact::Nothing`] is what a compilation that stopped early gives back, and it is
41/// not the same as an empty file: nothing is written for it at all.
42#[derive(Debug, Clone, PartialEq, Eq, Default)]
43pub enum Artifact {
44    /// The compilation stopped before it produced anything, or the kind asked for produces
45    /// nothing yet.
46    #[default]
47    Nothing,
48    /// Text, which is every kind up to and including assembly.
49    Text(String),
50    /// An object file, which is `-c`, and the names a linker can find in it.
51    ///
52    /// The names travel with the bytes rather than beside them because what wants them is the
53    /// archive step, and an index entry that does not match the member is worse than no archive:
54    /// the linker searches the index, pulls the member out, and still reports the name undefined.
55    /// One value holding both is one value the two cannot disagree in.
56    Object {
57        /// The file.
58        bytes: Vec<u8>,
59        /// Every name another object can reach, as the object writer wrote them. Empty is a real
60        /// answer: a translation unit of nothing but `static` functions is a member an archive
61        /// carries and nothing ever pulls out.
62        defines: Vec<String>,
63    },
64}
65
66impl Artifact {
67    /// The bytes to write, which is nothing at all for [`Artifact::Nothing`].
68    #[must_use]
69    pub fn bytes(&self) -> &[u8] {
70        match self {
71            Artifact::Nothing => &[],
72            Artifact::Text(text) => text.as_bytes(),
73            Artifact::Object { bytes, .. } => bytes,
74        }
75    }
76}
77
78/// What compiling one file produced.
79#[derive(Debug, Clone, PartialEq, Eq)]
80pub struct Compiled {
81    /// What to write, which is nothing when the compilation failed or produced nothing.
82    pub artifact: Artifact,
83    /// The diagnostics, already rendered, one per element, in the order they were reported.
84    pub messages: Vec<String>,
85    /// How many of them were errors.
86    pub errors: u32,
87    /// Which lowering rules this file fired, for `-Zrule-coverage`.
88    ///
89    /// Empty for a compilation that stopped before the back end, which every kind up to and
90    /// including `--emit=ir` does. That is not the same as a rule set nothing reaches and the
91    /// caller unions these rather than reading one, so a file that fired nothing adds nothing.
92    pub fired: Fired,
93    /// What the register allocator had to put on the stack, for `-Zregister-pressure`.
94    ///
95    /// Empty for the same compilations `fired` is empty for and for the same reason, since both
96    /// are written by the back end and neither is a fact a file that stopped before it has.
97    pub pressure: Pressure,
98    /// What the pre-selection lowering group did, for `-Zlowering`.
99    ///
100    /// Empty for the same compilations `fired` is empty for and for the same reason, since the
101    /// group runs in the back end and a file that stopped before it lowered nothing.
102    pub lowerings: Lowerings,
103    /// What `-fdump-ir=` asked to see, in the order the passes ran.
104    ///
105    /// The optimizer does not write files, because nothing below the driver in
106    /// `spec/18-package-layout.md` knows what a file is, so the text comes back here and the
107    /// caller decides where it goes.
108    pub dumps: Vec<rucc_opt::Dump>,
109    /// What `-fopt-info` asked to hear, already rendered, one remark per line.
110    ///
111    /// Empty when the flag was not given, and also empty when it was given and no pass had
112    /// anything of the kinds asked for to say. Those two are the same text and different facts,
113    /// which is why a misspelled keyword is an error rather than a quiet nothing.
114    pub remarks: String,
115    /// Every file an `#include` found, for the `-M` family.
116    ///
117    /// The same list `Preprocessed` carries and for the same reason. A `-MD` writes it beside
118    /// the object, so the compiling path needs it as much as the preprocessing one does.
119    pub deps: Vec<rucc_pp::Dependency>,
120    /// What `-save-temps` asked to be kept, which is nothing at all unless it was given.
121    ///
122    /// It comes back from here rather than being produced by a second run of the compiler under
123    /// different flags, because a second run is a second answer: the file a person reads has to
124    /// be the file that was compiled, and two runs of anything with a `__TIME__` in it are not
125    /// the same text.
126    pub temps: Temps,
127}
128
129/// The intermediate text a compilation went through, kept when `-save-temps` asked for it.
130///
131/// Both are `None` on a compilation that was not asked to keep anything, and the assembly is
132/// `None` on one that stopped before there was any. Holding the text rather than writing it is
133/// what keeps this function free of the file system, which is what lets it be tested against a
134/// map from path to bytes.
135#[derive(Debug, Clone, PartialEq, Eq, Default)]
136pub struct Temps {
137    /// Phase 4's output, the same text `-E` would have printed.
138    pub preprocessed: Option<String>,
139    /// The assembly the back end produced on the way to the object file.
140    pub assembly: Option<String>,
141}
142
143impl Compiled {
144    /// Whether anything went wrong badly enough that the output should not be used.
145    #[must_use]
146    pub fn failed(&self) -> bool {
147        self.errors > 0
148    }
149
150    /// The text that was produced, and the empty string for anything that is not text.
151    ///
152    /// A caller that asked for one of the text kinds knows which it asked for, so this saves it
153    /// matching on a variant it has already ruled out.
154    #[must_use]
155    pub fn text(&self) -> &str {
156        match &self.artifact {
157            Artifact::Text(text) => text,
158            _ => "",
159        }
160    }
161}
162
163/// Compiles one file as far as `opts.emit` asks for and renders the result.
164///
165/// `name` is the path as the user wrote it, which is the name every diagnostic about the file
166/// uses. Every kind but the executable produces something today, and that one runs the same front
167/// end and gives back nothing, so that a file with a mistake in it is reported the same way
168/// whichever kind was asked for, rather than compiling silently until the part that is written
169/// notices.
170///
171/// The checking is skipped when the parse reported an error. The two poisoning rules mean a
172/// diagnosed expression produces no further complaints, but a declaration the parser had to skip
173/// past leaves no declaration behind at all, and every later use of that name would be reported
174/// as undeclared. One mistake is worth one message.
175#[must_use]
176pub fn compile(opts: &Options, name: &str, fs: &dyn FileSystem) -> Compiled {
177    let mut sess = Session::new(opts.clone());
178    // Before anything else interns a name. The keyword symbols have to be one unbroken run for
179    // a lookup to be a subtraction, and the preprocessor interns every identifier it reads, so
180    // building this after the expansion would mean building it after `char` had been seen.
181    let keywords = Keywords::new(&mut sess.interner, opts.std, opts.gnu_extensions);
182    let mut diagnostics: Vec<Diagnostic> = Vec::new();
183    // Filled in by the back end when there is one, and empty for every kind that stops before it.
184    let mut fired = Fired::new();
185    // The same, and the other thing the back end is asked to record about itself.
186    let mut pressure = Pressure::new();
187    let mut lowerings = Lowerings::asked(opts.lowering_dump.is_some());
188    // Filled in by the optimizer, and only when `-fdump-ir=` asked for something.
189    let mut dumps = Vec::new();
190    let mut remarks = String::new();
191    // Filled in as the compilation goes past each of them, and only under `-save-temps`.
192    let mut temps = Temps::default();
193
194    let bytes = match fs.read(Path::new(name)) {
195        Ok(bytes) => bytes,
196        Err(e) => return failure(format!("{name}: {e}")),
197    };
198    let Ok(file) = sess.sources.add_shared(crate::phase::source_name(name), bytes, None) else {
199        return failure(format!("{name}: the source map has no room left for this file"));
200    };
201
202    // Phases 1 to 4. The expanded stream is turned into pp-tokens straight away, because the
203    // include context borrows the source map that rendering a diagnostic reads and the borrow
204    // has to end before anything is rendered.
205    let mut pp = rucc_pp::Preprocessor::with_prefix_map(opts.prefix_map.macros.clone());
206    let predef = rucc_pp::Predef::for_options(opts);
207    let expanded: Vec<PpToken> = {
208        let mut tokens = Vec::new();
209        // The inner block is the borrow. The printer under `-save-temps` reads the source map
210        // that the include context is holding, so the context has to be gone before it runs, and
211        // nothing happens in between, which is what makes the text it prints the text that is
212        // compiled below rather than a second answer to the same question.
213        {
214            let mut cx =
215                rucc_pp::Context::new(&mut sess.interner, &mut sess.sources, fs, &opts.search);
216            cx.lex = rucc_lex::Options::for_dialect(opts.std, opts.gnu_extensions);
217            cx.pedantic = opts.pedantic;
218            if pp.predefine(&sess.target, &predef, &mut cx).is_err() {
219                return failure(format!(
220                    "{name}: the source map has no room for the built in macros"
221                ));
222            }
223            if pp.preinclude(&opts.preincludes, &mut tokens, &mut cx).is_err() {
224                return failure(format!("{name}: the source map has no room for the command line"));
225            }
226            tokens.append(&mut pp.run(file, &mut cx));
227        }
228        if opts.save_temps.wanted() {
229            temps.preprocessed = Some(rucc_pp::print(
230                file,
231                &tokens,
232                pp.line_directives(),
233                &sess.sources,
234                &sess.interner,
235                rucc_pp::PrintOptions { line_markers: opts.line_markers },
236            ));
237        }
238        tokens.iter().map(|token| token.to_pp()).collect()
239    };
240    diagnostics.extend(pp.take_diagnostics());
241    // Taken here rather than at the end, because the preprocessor is done with and everything
242    // after this is about the tree it produced.
243    let deps = pp.dependencies().to_vec();
244
245    // Phase 7, which is where a spelling becomes a keyword and a preprocessing number becomes
246    // a constant of a type.
247    let cx = Convert {
248        keywords: &keywords,
249        interner: &sess.interner,
250        target: &sess.target,
251        std: opts.std,
252        gnu: opts.gnu_extensions,
253        pedantic: opts.pedantic,
254    };
255    let (tokens, complaints) = convert(&expanded, &cx);
256    diagnostics.extend(complaints);
257
258    // Only the ones the file wrote, since a name nothing interned is one nothing can use.
259    let type_names: Vec<Symbol> =
260        sess.target.type_names().iter().filter_map(|&(name, _)| sess.interner.find(name)).collect();
261    let parsed = rucc_parse::parse(
262        &tokens,
263        rucc_parse::Context {
264            interner: &sess.interner,
265            std: opts.std,
266            gnu: opts.gnu_extensions,
267            pedantic: opts.pedantic,
268            error_limit: opts.error_limit as usize,
269            type_names: &type_names,
270        },
271    );
272    let parse_failed = parsed.diagnostics.iter().any(|d| d.severity.is_fatal());
273    diagnostics.extend(parsed.diagnostics);
274
275    let mut artifact = Artifact::Nothing;
276    // Zero when nothing instruments, which is the truthful summary of a file built without
277    // `-fsafety`: no checks went in, so none is standing, and every call it makes is unmodelled.
278    let mut instrumented = Instrumented::default();
279    if !parse_failed {
280        let mut checker = Checker::new(
281            &parsed.ast,
282            CheckContext {
283                names: &sess.interner,
284                target: &sess.target,
285                std: opts.std,
286                gnu: opts.gnu_extensions,
287                pedantic: opts.pedantic,
288                permissive: opts.permissive,
289                gnu89_inline: opts.gnu89_inline,
290                error_limit: opts.error_limit as usize,
291                // A freestanding program has no C library, so a name that is the library's
292                // everywhere else is the program's own here and means whatever it defined.
293                builtins: opts.builtins && opts.hosted,
294                no_builtin: &opts.no_builtin,
295                short_enums: opts.short_enums,
296                ms_extensions: sess.ms_extensions(),
297                trapping_math: opts.trapping_math,
298            },
299        );
300        checker.check_unit();
301        let checked = checker.finish();
302        if !checked.failed() {
303            match opts.emit {
304                EmitKind::Tast => {
305                    artifact = Artifact::Text(rucc_sema::print(
306                        &checked.tast,
307                        &checked.types,
308                        &sess.interner,
309                    ));
310                }
311                // Nothing past the checker, because a granule is a fact about a layout and a
312                // layout is settled the moment the closing brace is seen. Lowering the
313                // function bodies would take minutes on an amalgamation and answer nothing.
314                EmitKind::TypeGranules => {
315                    artifact = Artifact::Text(rucc_types::granule_report(
316                        &checked.types,
317                        &sess.interner,
318                        &sess.target,
319                    ));
320                }
321                EmitKind::Ir
322                | EmitKind::MirFinal
323                | EmitKind::Asm
324                | EmitKind::Object
325                | EmitKind::Archive
326                | EmitKind::Executable
327                | EmitKind::SafetySummary => {
328                    // What a `.incbin` in an `asm` at file scope names is read through the same
329                    // file system the sources came through, and from where the compiler was run
330                    // rather than from beside the source, because that is where an assembler
331                    // looks for it.
332                    let mut read = |named: &str| {
333                        fs.read(Path::new(named))
334                            .map(|bytes| bytes.as_slice().to_vec())
335                            .map_err(|why| why.to_string())
336                    };
337                    // What the debug information will say about types and signatures, taken
338                    // here because this is the last place the checker's types are readable
339                    // without the back end's borrow of the interner in the way. Nothing at all
340                    // when the build asked for no debug information, since a translation unit
341                    // the size of an amalgamation has tens of thousands of types in it.
342                    let meaning = if opts.debug_info {
343                        crate::shapes::collect(
344                            &checked.tast,
345                            &checked.types,
346                            &sess.target,
347                            &sess.interner,
348                            &sess.sources,
349                        )
350                    } else {
351                        crate::shapes::Meaning::default()
352                    };
353                    let mut lowered = rucc_lower::lower(
354                        crate::phase::source_name(name),
355                        rucc_lower::Context {
356                            tast: &checked.tast,
357                            types: &checked.types,
358                            target: &sess.target,
359                            names: &mut sess.interner,
360                            visibility: match opts.visibility {
361                                Visibility::Default => IrVisibility::Default,
362                                Visibility::Hidden => IrVisibility::Hidden,
363                                Visibility::Protected => IrVisibility::Protected,
364                            },
365                            protector: match opts.protector {
366                                Protector::None => LowerProtector::None,
367                                Protector::Buffers => LowerProtector::Buffers,
368                                Protector::Strong => LowerProtector::Strong,
369                                Protector::All => LowerProtector::All,
370                            },
371                            wrapping: rucc_lower::Wrapping {
372                                signed: opts.wrapping.signed,
373                                pointer: opts.wrapping.pointer,
374                                trap: opts.wrapping.trap,
375                            },
376                            aliasing: opts.strict_aliasing,
377                            padding: opts.padding == Padding::Ignored,
378                            contract: match opts.fp_contract {
379                                Contract::Off => FpContract::Off,
380                                Contract::On => FpContract::On,
381                                Contract::Fast => FpContract::Fast,
382                            },
383                            align: opts.align_functions,
384                            instrument: opts.instrument_functions,
385                            read: &mut read,
386                        },
387                    );
388                    // The walk reports what it cannot build, and what it did build is printed
389                    // anyway: a file with one construct missing from it is more use to read
390                    // than nothing at all, and the errors are what stop it being compiled.
391                    let failed = lowered.diagnostics.iter().any(|d| d.severity.is_fatal());
392                    if !failed {
393                        // The verifier runs on everything the walk builds, always. It is the
394                        // one check that a bug in the walk cannot talk its way past, and a
395                        // wrong instruction found here costs a message rather than an hour
396                        // in front of a debugger over the assembly it turned into.
397                        if let Err(errors) = rucc_ir::verify(&lowered.module, &sess.interner) {
398                            for error in errors {
399                                diagnostics.push(internal(&format!("invalid IR, {error}")));
400                            }
401                        } else if let Err(complaints) =
402                            instrument(&mut lowered.module, &mut sess.interner, opts)
403                                .map(|done| instrumented = done)
404                        {
405                            diagnostics.extend(complaints);
406                        } else if let Err(complaints) = optimize(
407                            &mut lowered.module,
408                            &mut sess.interner,
409                            &sess.target,
410                            opts,
411                            name,
412                            &mut dumps,
413                            &mut remarks,
414                        ) {
415                            diagnostics.extend(complaints);
416                        } else if opts.emit == EmitKind::SafetySummary {
417                            // After the optimizer, because the number that matters is how many
418                            // checks are still standing and there is no way to know that before it
419                            // has run. Before the back end, because the back end turns a check into
420                            // a call and a summary of calls is not a summary of checks.
421                            artifact = Artifact::Text(
422                                rucc_safety::summarize(
423                                    &lowered.module,
424                                    &sess.interner,
425                                    name,
426                                    opts.safety.as_str(),
427                                    instrumented.checks,
428                                    instrumented.interposed,
429                                    instrumented.crossings,
430                                )
431                                .render(),
432                            );
433                        } else if opts.emit == EmitKind::Ir {
434                            // After the optimizer rather than before it, so that `--emit=ir -O2`
435                            // is the IR the back end will be given rather than the IR it would
436                            // have been given at `-O0`. There is no other way to see what a pass
437                            // did without reading the assembly it turned into.
438                            artifact =
439                                Artifact::Text(rucc_ir::print(&lowered.module, &sess.interner));
440                        } else {
441                            // The back end, which is every pass after the IR and which is
442                            // where a construct nothing has a rule for is finally noticed.
443                            match generate(
444                                &mut lowered.module,
445                                &mut sess.interner,
446                                &sess.target,
447                                opts,
448                                &mut Recording {
449                                    fired: &mut fired,
450                                    pressure: &mut pressure,
451                                    lowerings: &mut lowerings,
452                                },
453                                &mut temps.assembly,
454                                Origin { map: &sess.sources, name, meaning: &meaning },
455                            ) {
456                                Ok(made) => artifact = made,
457                                Err(complaints) => diagnostics.extend(complaints),
458                            }
459                        }
460                    }
461                    diagnostics.extend(lowered.diagnostics);
462                }
463                _ => {}
464            }
465        }
466        diagnostics.extend(checked.diagnostics);
467    }
468
469    let mut messages = Vec::with_capacity(diagnostics.len());
470    let mut errors = 0;
471    for diag in &diagnostics {
472        // `-w` drops the warning here rather than at the several hundred places one is raised,
473        // and it drops it before the count, so `-w -Werror` compiles. A warning that was never
474        // raised is not a warning there is anything to promote. A warning about something in a
475        // header that came with the machine goes the same way for the same reason, unless
476        // `-Wsystem-headers` asked for it.
477        if rucc_diag::dropped(diag, &sess.sources, opts.warnings, opts.system_header_warnings) {
478            continue;
479        }
480        if diag.severity.is_fatal()
481            || (diag.severity == Severity::Warning && opts.warnings_are_errors)
482        {
483            errors += 1;
484        }
485        messages.push(render(diag, &sess.sources, opts.warnings_are_errors));
486    }
487    if errors > 0 {
488        // A tree built from a file that did not compile is not a tree anything should read.
489        artifact = Artifact::Nothing;
490    }
491    // Kept even when the compilation failed, because a rule that fired did fire and a report about
492    // which rules a corpus reaches should not lose the ones a file with a mistake in it reached.
493    Compiled { artifact, messages, errors, fired, pressure, lowerings, dumps, remarks, deps, temps }
494}
495
496/// Reads one file of IR, checks it, and prints it back.
497///
498/// This is the compiler's own textual IR arriving as an input rather than leaving as an output,
499/// which is what makes the round trip in the M2 exit criterion something to run rather than
500/// something to believe: what the printer wrote is read back, verified, and written again, and
501/// the two files are either the same bytes or they are not.
502///
503/// The verifier runs here for the reason it runs after the walk. A module that was printed by
504/// this compiler has been through it once already, and one that a person edited has not.
505#[must_use]
506pub fn compile_ir(opts: &Options, name: &str, fs: &dyn FileSystem) -> Compiled {
507    let mut sess = Session::new(opts.clone());
508    if opts.emit != EmitKind::Ir {
509        return failure(format!(
510            "{name}: an input of IR can only be emitted as IR, and `--emit={}` asks for what \
511             the C in front of it became",
512            opts.emit.as_str()
513        ));
514    }
515    let bytes = match fs.read(Path::new(name)) {
516        Ok(bytes) => bytes,
517        Err(e) => return failure(format!("{name}: {e}")),
518    };
519    let Ok(text) = std::str::from_utf8(bytes.as_slice()) else {
520        return failure(format!("{name}: this is not text, so it is not IR"));
521    };
522
523    let module = match rucc_ir::parse(text, &mut sess.interner) {
524        Ok(module) => module,
525        Err(error) => {
526            return failure(format!("{name}:{}: {}", error.line, error.message));
527        }
528    };
529    let mut diagnostics: Vec<Diagnostic> = Vec::new();
530    if let Err(errors) = rucc_ir::verify(&module, &sess.interner) {
531        for error in errors {
532            diagnostics.push(invalid(&format!("invalid IR, {error}")));
533        }
534    }
535    let mut messages = Vec::with_capacity(diagnostics.len());
536    for diag in &diagnostics {
537        messages.push(render(diag, &sess.sources, opts.warnings_are_errors));
538    }
539    let errors = u32::try_from(messages.len()).unwrap_or(u32::MAX);
540    let artifact = if errors > 0 {
541        Artifact::Nothing
542    } else {
543        Artifact::Text(rucc_ir::print(&module, &sess.interner))
544    };
545    // Nothing here reaches the back end, so no rule fired and there is nothing to record.
546    Compiled {
547        artifact,
548        messages,
549        errors,
550        fired: Fired::new(),
551        pressure: Pressure::new(),
552        lowerings: Lowerings::new(),
553        dumps: Vec::new(),
554        remarks: String::new(),
555        deps: Vec::new(),
556        temps: Temps::default(),
557    }
558}
559
560/// Puts the memory safety checks in and redirects the calls that cross the boundary, when
561/// `-fsafety=` asked for them.
562///
563/// Between the walk and the optimizer, which is where section 15.3 of
564/// `spec/safe-memory/15-integration.md` puts it and which is the whole design in one line: the
565/// checks go in while the addresses the program computes still exist, and the optimizer then
566/// discharges the ones it can prove. Every sanitizer that came before instruments after the
567/// optimizer so that its checks cannot be deleted, and pays for all of them forever.
568///
569/// The calls to the C library are redirected here too, and in the same window and for a related
570/// reason. `spec/safe-memory/10-boundaries.md` section 10.3 wants a `memcpy` modelled by a wrapper
571/// that performs the judgements, and `rucc_safety::wrap` is why that has to happen before the
572/// optimizer sees the call rather than after.
573///
574/// The verifier runs again afterwards, for the reason it runs after the walk. This pass rewrites
575/// every function in the module, and a pass that produced IR nothing else accepts should say so
576/// here rather than in the assembly it turned into.
577///
578/// # Errors
579///
580/// When the inserted checks left the module in a state the verifier refuses, which is a bug in
581/// this compiler and not in the program being compiled.
582fn instrument(
583    module: &mut rucc_ir::Module,
584    names: &mut Interner,
585    opts: &Options,
586) -> Result<Instrumented, Vec<Diagnostic>> {
587    if !opts.safety.instruments() {
588        return Ok(Instrumented::default());
589    }
590    let mut checks = rucc_safety::run(module, opts.subobject, opts.promise, opts.races);
591    // The one check that is about a call rather than about an access, so it is a walk of its own
592    // and it is here rather than in the walk above. `rucc_safety::ending` is why, and the short
593    // version is that deciding it means resolving a name, which takes the interner.
594    //
595    // Before the redirection for the same reason the redirection is before the optimizer: what this
596    // reads is the name the program wrote, and a pass that had already pointed the call somewhere
597    // else would leave it with a name this one has no row for.
598    checks.freed = rucc_safety::ending::checks(module, names);
599    // Before the optimizer rather than beside the check lowering, which is what
600    // `rucc_safety::wrap` argues out: `memcpy` is a name an optimizer knows things about, and a
601    // pass that turns a short copy into a pair of loads and stores would leave behind accesses the
602    // check insertion has already finished walking past.
603    let interposed = rucc_safety::redirect(module, names);
604    // After the redirection, so that a call this build models with a wrapper is not also counted
605    // as a crossing it did not model.
606    let crossings = rucc_safety::witness(module, names);
607    match rucc_ir::verify(module, names) {
608        Ok(()) => Ok(Instrumented { checks, interposed, crossings }),
609        Err(errors) => Err(errors
610            .iter()
611            .map(|e| internal(&format!("invalid IR after check insertion, {e}")))
612            .collect()),
613    }
614}
615
616/// What the instrumentation did, which nothing but the summary reads.
617///
618/// Carried out of [`instrument`] rather than recovered from the module afterwards because neither
619/// number survives the optimizer: a check that was discharged leaves nothing behind saying it was
620/// ever there, and a call that was pointed at a wrapper looks like a call that always named one.
621#[derive(Clone, Copy, Debug, Default)]
622struct Instrumented {
623    /// How many checks of each class went in.
624    checks: rucc_safety::Counts,
625    /// How many calls were pointed at an interposition wrapper.
626    interposed: usize,
627    /// How many places a pointer crosses to or from code this build did not instrument.
628    crossings: rucc_safety::Sites,
629}
630
631/// Runs the optimizer over the module, and collects whatever the dumps asked for.
632///
633/// The level chooses a pipeline, the `-f` flags edit it, and at `-O0` there is nothing in it, so
634/// this is a walk over an empty list rather than a branch on the level. See section 9.1 of
635/// `spec/09-optimizer.md` for why the pipelines are written out rather than assembled.
636///
637/// # Errors
638///
639/// When a pass left the module in a state the verifier refuses, which is a bug in the pass and
640/// not in the program being compiled, so it is reported as an internal error the way a bad
641/// lowering is.
642fn optimize(
643    module: &mut rucc_ir::Module,
644    names: &mut Interner,
645    target: &TargetInfo,
646    opts: &Options,
647    file: &str,
648    dumps: &mut Vec<rucc_opt::Dump>,
649    remarks: &mut String,
650) -> Result<(), Vec<Diagnostic>> {
651    let mut settings = rucc_opt::Options::for_level(opts.opt_level);
652    // What the analyses that read a body may believe about it. The same question the back end asks
653    // about addresses, with one thing on top: `-fno-semantic-interposition` is the build promising
654    // that a name it exports is the one that will run, which is what every distribution builds a
655    // library with. It says nothing about how an address is reached, and gcc does not change that
656    // under the flag either, so the back end is not given this value.
657    settings.interposition = match opts.interposition {
658        true => replaceable(target, opts),
659        false => IrPic::Executable,
660    };
661    settings.toggles.clone_from(&opts.passes);
662    // The same pair the front end reads a call to a standard name with, which is section 20.1's
663    // three way split: `-ffreestanding` says the library is not there, `-fno-builtin` says it is
664    // there and is not to be assumed to do what the standard says, and a fold that leaves behind a
665    // call to `puts` needs both of those to be off.
666    settings.builtins = opts.builtins && opts.hosted;
667    settings.no_builtin.clone_from(&opts.no_builtin);
668    settings.fuel = opts.pass_fuel.iter().cloned().collect();
669    settings.global_fuel = opts.pass_fuel_global;
670    settings.verify |= opts.verify_each;
671    for (on, spec) in &opts.pass_gates {
672        // Same argument as the dumps below: every spelling in here was checked while the
673        // arguments were parsed, so a rejection now is this compiler disagreeing with itself.
674        if let Err(why) = settings.gates.add(*on, spec) {
675            return Err(vec![internal(&why)]);
676        }
677    }
678    for spec in &opts.dump_ir {
679        // Every spelling in here was checked while the arguments were parsed, so a rejection
680        // now is this compiler disagreeing with itself rather than the command line being wrong.
681        if let Err(why) = settings.dumps.add(spec) {
682            return Err(vec![internal(&why)]);
683        }
684    }
685    let mut wants = rucc_opt::Wants::none();
686    for spec in &opts.opt_info {
687        // Same argument as the dumps above: every spelling was checked while the arguments were
688        // parsed, so a rejection now is the compiler disagreeing with itself.
689        if let Err(why) = wants.add(spec) {
690            return Err(vec![internal(&why)]);
691        }
692    }
693    let report = rucc_opt::run(module, names, &settings);
694    remarks.push_str(&rucc_opt::optinfo::render(file, &report, names, wants));
695    dumps.extend(report.dumps);
696    match report.broke.is_empty() {
697        true => Ok(()),
698        false => Err(report.broke.iter().map(|why| internal(why)).collect()),
699    }
700}
701
702/// Runs the back end over every function in `module` and writes what came out.
703///
704/// One machine function per definition in the module, in the order the module holds them, every
705/// register physical and every frame offset a constant. A declaration has no body and is skipped,
706/// because there is nothing in it to compile.
707///
708/// What the last step is, is the only thing `--emit=mir-final`, `-S` and `-c` disagree about. The
709/// three read the same functions and differ in whether they are printed as machine IR, printed as
710/// assembly, or encoded and put in a file, which is the point of section 11.1 of
711/// `spec/11-asm-objects-debug.md`: a listing that disagrees with the object file beside it is
712/// worse than no listing, and the way to make that impossible is to have one description of an
713/// instruction and two ways of writing it down.
714///
715/// # Errors
716///
717/// One diagnostic per function the back end could not compile, or one about the target when no
718/// back end covers it at all. Every function is attempted rather than stopping at the first, so a
719/// file with three constructs missing from the rule set reports three rather than one at a time.
720///
721/// `assembly` is where `-save-temps` gets its listing from on the path that does not print one,
722/// which is the same functions written the other way rather than a second compilation of the same
723/// file. A listing that disagrees with the object beside it would be worse than none.
724/// Whether a name this file exports is one another object may define or replace.
725///
726/// The link that reads the object decides half of what is in it, and the command line is where that
727/// is said, which is why the flag reaches this far down. See #756.
728///
729/// ELF only, because it is a question about a format rather than about a machine and the other two
730/// answer it differently. Mach-O has a two level namespace, so a name a library defines is bound to
731/// that library and is not replaced by a definition loaded earlier, and it has no copy relocations,
732/// so a variable defined elsewhere needs the table whichever link is coming. COFF decides what
733/// leaves a DLL by an export table the linker is handed. Neither has an object writer here yet, so
734/// what this does is decline to say the ELF answer about them.
735fn replaceable(target: &TargetInfo, opts: &Options) -> IrPic {
736    match (target.tuple.os().object_format(), opts.pic) {
737        (Some(ObjectFormat::Elf), Pic::Library) => IrPic::Library,
738        _ => IrPic::Executable,
739    }
740}
741
742/// Where the file being generated came from, which is what the debug information is about.
743///
744/// The three together rather than separately because none of them is any use on its own here: a
745/// span without the map it points into is a pair of numbers, a name without the spans is a file
746/// nothing in the object refers to, and a signature without the name of the function it belongs to
747/// is an entry with nothing to attach it to.
748#[derive(Clone, Copy)]
749struct Origin<'a> {
750    /// Where every span in the module points.
751    map: &'a SourceMap,
752    /// What the command line called the file, which is what `DW_AT_name` says.
753    name: &'a str,
754    /// The types and the signatures, and empty where the build wanted no debug information.
755    meaning: &'a crate::shapes::Meaning,
756}
757
758fn generate(
759    module: &mut rucc_ir::Module,
760    names: &mut Interner,
761    target: &TargetInfo,
762    opts: &Options,
763    recording: &mut Recording<'_>,
764    assembly: &mut Option<String>,
765    origin: Origin<'_>,
766) -> Result<Artifact, Vec<Diagnostic>> {
767    let Some(machine) = Machine::for_target(target) else {
768        return Err(vec![unsupported(&format!(
769            "there is no back end for {} in this compiler yet, so there is nothing to generate",
770            target.tuple
771        ))]);
772    };
773    // Refused rather than dropped. A command line that asks for a stack protector on a target
774    // that has nowhere to keep the word one is compared against would otherwise get code with no
775    // protection in it and no indication that the flag did nothing, which is the one outcome worse
776    // than the error. Windows is the case: it has a protector and it is a different mechanism.
777    if opts.protector != Protector::None && machine.conv.guard.is_none() {
778        return Err(vec![unsupported(&format!(
779            "{} is not supported for {} yet, because the stack protector on that target is not \
780             the one this compiler writes",
781            opts.protector, target.tuple
782        ))]);
783    }
784    // The same answer for the same reason. What says a file was built to have its control flow
785    // checked is a note, the note is an ELF one, and a target whose objects are not ELF has nowhere
786    // to put it: the landing pads would go in and nothing would ever turn the check on. Windows has
787    // the same hardware and asks for it a different way, which is a bit in the image the linker is
788    // told to set rather than anything a compiler writes into an object.
789    if opts.control.any() && target.tuple.os().object_format() != Some(ObjectFormat::Elf) {
790        return Err(vec![unsupported(&format!(
791            "-fcf-protection={} is not supported for {} yet, because what says a file was built \
792             for it there is not the note this compiler writes",
793            opts.control, target.tuple
794        ))]);
795    }
796    // And once more. A profiled build is one whose functions call a routine the runtime provides,
797    // and a target whose runtime provides no such routine would get a call to a name nothing
798    // defines, which is a link error a long way from the flag that caused it. Windows profiles a
799    // build by calling something else, asked for a different way and taking its argument in a
800    // register, so it is not this hook spelled differently.
801    let profile = match machine.conv.trace {
802        Some(trace) => opts.profile.then(|| opts.hook.early(trace.fentry)),
803        None if opts.profile => {
804            return Err(vec![unsupported(&format!(
805                "-pg is not supported for {} yet, because the profiler's hook on that target is \
806                 not the one this compiler calls",
807                target.tuple
808            ))]);
809        }
810        None => None,
811    };
812    // And once more. The room a patcher was promised is only half the feature: the other half is a
813    // section listing where every function's room is, and both the section's shape and the way it
814    // points at the text it belongs to are ELF's. A format that has no such section would take the
815    // nops and quietly lose the list, which is a build that looks patchable and is not.
816    if opts.patchable.any() && target.tuple.os().object_format() != Some(ObjectFormat::Elf) {
817        return Err(vec![unsupported(&format!(
818            "-fpatchable-function-entry= is not supported for {} yet, because what records where \
819             the room is there is not the section this compiler writes",
820            target.tuple
821        ))]);
822    }
823    let flags = pipeline::Flags {
824        frame_pointer: opts.frame_pointer,
825        red_zone: opts.red_zone,
826        stack_clash: opts.stack_clash,
827        landing: opts.control.branch(),
828        profile: match profile {
829            None => pipeline::Profile::No,
830            Some(true) => pipeline::Profile::Early,
831            Some(false) => pipeline::Profile::Late,
832        },
833        patch: pipeline::Room { after: opts.patchable.after(), before: opts.patchable.before },
834        // On at every level above `-O0`, which is where gcc turns `-freorder-blocks` on
835        // (`gcc/opts.cc:604`) and what `spec/optimizer/38-scheduling-and-layout.md` section 38.3
836        // reads off that: it is one of the earliest optimizations there is, it is nearly free,
837        // and it helps every target. `-O0` keeps the order the shape of the graph gives, so that
838        // the blocks come out in the order they were written and a person stepping through the
839        // code walks down the screen.
840        reorder: opts.reorder_blocks.unwrap_or_else(|| opts.opt_level.runs_optimizer()),
841        // On at every level above `-O0`, for the reason the line above is off at it. Sharing one
842        // run of bytes between two locals is a smaller frame and a worse debugger: a variable that
843        // is out of scope reads as whatever took its place, which is what `-O0` exists not to do.
844        // Above it the frame is the win, and `-fstack-reuse=` says either answer at any level.
845        reuse: opts.stack_reuse.unwrap_or_else(|| opts.opt_level.runs_optimizer()),
846        // On from `-O2`, which is where gcc turns `-fschedule-insns2` on and what
847        // `spec/optimizer/38-scheduling-and-layout.md` section 38.6 asks for. Not at `-O1`,
848        // because a schedule is a whole dependence graph per block and `-O1` is the level whose
849        // budget is roughly `-O0`'s. Not at `-O0` for the reason nothing else is.
850        schedule: opts.schedule_insns.unwrap_or_else(|| opts.opt_level.schedules()),
851        // Off unless asked for. gcc pads loops at `-O2` and `-O3`. gcc's padding here cost a third
852        // of a percent of the corpus's text and more than a percent of SQLite's for no speed
853        // anybody could measure, which is tamnd/rucc#1823. The padding this asks for now keeps a
854        // small loop inside one line, which is 18% on AMD EPYC and nothing on an Intel Core, so no
855        // level asks for it on every machine's behalf. See tamnd/rucc#1838.
856        align_loops: opts.align_loops.unwrap_or(false),
857        // Whatever the command line said, and the model's own answer when it said nothing.
858        accurate: opts.cycle_accurate_model,
859        // The same flag that turns the IR verifier on in a release build, since what it says is
860        // that this run should check itself and the back end has checks of its own.
861        verify: opts.verify_each,
862        // What the level asked for. The back end had no way to know until now, which is
863        // tamnd/rucc#741: `-Os` picked a shorter list of middle end passes and then compiled the
864        // result exactly as `-O2` would have. The level is asked whether it optimizes for size
865        // rather than matched against, so a level added later answers this without editing it.
866        goal: Goal::for_size(opts.opt_level.is_size()),
867    };
868
869    // The checks become calls here rather than beside the insertion, because the id each one
870    // carries is an index into a table and a row for a check the optimizer deleted is a row nothing
871    // will ever name. Section 6.3.1 of `spec/safe-memory/06-instrumentation.md` is what this
872    // eventually becomes and `rucc_safety::lower` says why it is not that yet.
873    //
874    // It is inside the back end rather than beside the optimizer so that `--emit=ir` still shows
875    // the checks. The IR a person reads should say what the compiler decided, not how it spelled it
876    // for the machine.
877    if opts.safety.instruments() {
878        // Which calls hand back storage, which the lowering needs and `-O0` has not worked out.
879        // `rucc_opt::pipeline` runs this only when some pass in the run reads the summaries, since a
880        // flag nothing reads is noise in a dump, and at `-O0` nothing did. Something does now: the
881        // capability for a pointer an allocator just returned is the one capability that is exact
882        // and costs a load, and `rucc_safety::slot` finds those sites by the flag. The safety suite
883        // runs at `-O0`, so without this the cheap case would be the one case that never happens.
884        //
885        // Safe to run twice and safe to run late, because it only ever sets the flag and never
886        // clears one, so a build that had it already gets the same module back.
887        rucc_opt::heap::annotate(module, names);
888        // Which calls hand their capabilities to the callee and which say there are none. Here and
889        // not beside the insertion, because the rule is what each function still has left to check
890        // and the optimizer is what makes that small: running before it would give every callee a
891        // frame for checks that are about to be discharged. `rucc_safety::handover` is the rule and
892        // the pass both, and the census in `--emit=safety-summary` reads the same rule, so the
893        // buckets it prints describe the code that was actually built.
894        rucc_safety::handover::arrange(module);
895        rucc_safety::lower(module, names);
896        if let Err(errors) = rucc_ir::verify(module, names) {
897            return Err(errors
898                .iter()
899                .map(|e| internal(&format!("invalid IR after check lowering, {e}")))
900                .collect());
901        }
902    }
903
904    // Worked out before the loop and not inside it, because it reads the whole module and the loop
905    // is holding one function of it. It has to be after the check lowering above, since that adds
906    // calls to the runtime and so can add a name this file does not define.
907    //
908    // The link that reads the object decides half of what is in it, and the command line is where
909    // that is said, which is why the flag reaches this far down. See #756. The format decides the
910    // other half, since a table only exists on a format that has one to reach through.
911    //
912    let elsewhere = Elsewhere::of(module, replaceable(target, opts), target.object_format);
913
914    let mut funcs = Vec::new();
915    let mut complaints = Vec::new();
916    for id in module.funcs() {
917        if module[id].is_declaration() {
918            continue;
919        }
920        match pipeline::compile_recording(
921            &mut module[id],
922            names,
923            &machine,
924            &elsewhere,
925            flags,
926            recording,
927        ) {
928            Ok(func) => funcs.push(func),
929            Err(why) => {
930                let name = names.resolve(module[id].name).to_owned();
931                // The function knows where the instruction came from, so the message lands on
932                // the line somebody wrote rather than on the file as a whole.
933                let span = why.inst().map_or(Span::DUMMY, |inst| module[id].span(inst));
934                let said = format!("cannot generate code for '{name}': {why}");
935                complaints.push(unsupported_at(&said, span));
936            }
937        }
938    }
939    if !complaints.is_empty() {
940        return Err(complaints);
941    }
942    // The variables the file defines, which go through the back end the way the functions did not:
943    // there is nothing in a variable to select instructions for, so the module is what says what
944    // one is right up to the point where it is written down.
945    // The second names go the same way and for the same reason, and they are neither a function
946    // nor a variable: an alias is an entry in the symbol table and no bytes of anything.
947    let (globals, aliases) = match opts.emit {
948        EmitKind::Asm | EmitKind::Object | EmitKind::Archive | EmitKind::Executable => (
949            rucc_asm::globals(module, names, target.object_format).map_err(refused)?,
950            rucc_asm::aliases(module, names).map_err(refused)?,
951        ),
952        _ => (rucc_asm::Globals::default(), Vec::new()),
953    };
954    // A failure in either of the last two is a bug here rather than a program this compiler is
955    // behind on, because every instruction in a function that got this far came out of the same
956    // description both of them read and every register in it has been allocated.
957    let unwind = opts.unwinds();
958    match opts.emit {
959        EmitKind::Asm => {
960            rucc_asm::print(&funcs, &globals, &aliases, names, target, unwind, output(opts, target))
961                .map(Artifact::Text)
962                .map_err(refused)
963        }
964        // An executable is an object as far as this gets: one is what each file of a link
965        // contributes, and the linker is what turns them into the other. An archive is the same
966        // again, with the archive writer in place of the linker.
967        EmitKind::Object | EmitKind::Archive | EmitKind::Executable => {
968            if opts.save_temps.wanted() {
969                let listing = rucc_asm::print(
970                    &funcs,
971                    &globals,
972                    &aliases,
973                    names,
974                    target,
975                    unwind,
976                    output(opts, target),
977                );
978                *assembly = Some(listing.map_err(refused)?);
979            }
980            // A template kept as text has no bytes until an assembler reads it. Most are read on
981            // their own where they are, but one may jump to a label another statement's text
982            // defines or switch section halfway through, and a unit with one of those in it is
983            // assembled the way gcc assembles every unit: written out as a listing and read back.
984            // The listing carries no line table yet, so a build that asked for one is refused
985            // rather than handed an object without it.
986            //
987            // Every unit for AArch64 goes this way for now. The listing is already written from
988            // the encoder's own tables, so reading it back is the encoder run over the same values,
989            // and it is one path to get right rather than two.
990            let aarch64 = target.tuple.arch() == Arch::Aarch64;
991            if aarch64 || rucc_asm::kept(&funcs, names, target) {
992                if opts.debug_info {
993                    return Err(vec![unsupported(if aarch64 {
994                        "debug information in an object for aarch64"
995                    } else {
996                        "debug information for a unit with an `asm` template kept as text"
997                    })]);
998                }
999                let listing = rucc_asm::print(
1000                    &funcs,
1001                    &globals,
1002                    &aliases,
1003                    names,
1004                    target,
1005                    unwind,
1006                    output(opts, target),
1007                )
1008                .map_err(refused)?;
1009                let read = rucc_asm::read(&listing, target.tuple.arch()).map_err(|trouble| {
1010                    let what = if aarch64 {
1011                        "a unit for aarch64"
1012                    } else {
1013                        "an `asm` template kept as text"
1014                    };
1015                    vec![unsupported(&format!(
1016                        "{what}, whose listing the assembler stopped at on line {}: {}",
1017                        trouble.line, trouble.why
1018                    ))]
1019                })?;
1020                let defines = rucc_object::assembled_defines(&read);
1021                let bytes =
1022                    rucc_object::assembled(&read, &TargetInfo::new(opts.target)).map_err(wrote)?;
1023                return Ok(Artifact::Object { bytes, defines });
1024            }
1025            let assembled = rucc_asm::assemble(&funcs, names, target, unwind, opts.debug_info)
1026                .map_err(refused)?;
1027            let data = globals.image();
1028            // The line table, from the spans the assembler kept beside the bytes. Empty when the
1029            // build asked for no debug information, which is the case the rows above are not even
1030            // recorded in.
1031            let info = if opts.debug_info {
1032                describe(&assembled, &data, &funcs, origin, opts, target)
1033                    .map_err(|why| vec![internal(&why)])?
1034            } else {
1035                rucc_object::Info::default()
1036            };
1037            let text = assembled.text;
1038            // A format with no writer is a target this compiler is behind on and anything else
1039            // the writer refused is a bug here, and the two are not the same news to get.
1040            let bytes =
1041                rucc_object::write(&text, &data, &aliases, target, output(opts, target), &info)
1042                    .map_err(wrote)?;
1043            // Asked of the writer rather than worked out from the same three values here, so that
1044            // what the archive's index says and what is in the member cannot come apart. It is
1045            // wanted only by `--emit=archive` and is cheap enough that the other two kinds are not
1046            // worth a second path.
1047            let defines = rucc_object::defines(&text, &data, &aliases, target).map_err(wrote)?;
1048            Ok(Artifact::Object { bytes, defines })
1049        }
1050        _ => Ok(Artifact::Text(rucc_mir::print(&funcs, names, target.regs))),
1051    }
1052}
1053
1054/// The debug sections for what was just assembled, as bytes and relocations.
1055///
1056/// This is where a span becomes a file and a line, and it is here rather than anywhere further down
1057/// because the source map is the driver's and because the paths in it are still paths at this point.
1058/// [`rucc_session::PrefixMap::apply`] is run over every one of them, which is the whole of what
1059/// `-fdebug-prefix-map=` and `-ffile-prefix-map=` asked for: a build is only reproducible if all of
1060/// the paths in it are rewritten rather than most, so the file names, the name of the unit and the
1061/// directory it was compiled in all go through it.
1062///
1063/// A row whose span is [`Span::DUMMY`] is dropped rather than written at line zero. Those are the
1064/// instructions a pass invented, a prologue and a spill among them, and a debugger asking what a
1065/// program counter is in the middle of is better told the line before than told a line that is not
1066/// in the file. The row that follows covers those bytes, which is the same answer gcc gives.
1067///
1068/// # Errors
1069///
1070/// Whatever the DWARF writer refused, which is a bug here rather than a program this compiler is
1071/// behind on.
1072fn describe(
1073    assembled: &rucc_asm::Assembled,
1074    data: &rucc_object::Data,
1075    machine: &[rucc_mir::Func],
1076    origin: Origin<'_>,
1077    opts: &Options,
1078    target: &TargetInfo,
1079) -> Result<rucc_object::Info, String> {
1080    let rucc_asm::Assembled { text, lines, frames } = assembled;
1081    let rewrite = |path: &str| opts.prefix_map.debug.apply(path).into_owned();
1082    // The file table, built as the rows are walked rather than up front, because what belongs in it
1083    // is the files the code came from and not the files the preprocessor opened. A header that
1084    // contributed nothing but declarations is not one of them, and one that holds a definition is
1085    // in it twice over: once for the rows and once for the line the definition is declared on.
1086    let mut files: Vec<String> = Vec::new();
1087    let mut funcs = Vec::with_capacity(text.funcs.len());
1088    for ((extent, rows), built) in text.funcs.iter().zip(lines).zip(machine) {
1089        let mut out: Vec<rucc_debug::Row> = Vec::with_capacity(rows.len());
1090        for row in rows {
1091            if row.span.is_dummy() {
1092                continue;
1093            }
1094            let Some(at) = origin.map.presumed(row.span.lo) else {
1095                continue;
1096            };
1097            let which = interned(&mut files, rewrite(at.name));
1098            let place = rucc_debug::Row {
1099                at: row.at as u64,
1100                file: which,
1101                line: at.line,
1102                column: at.column,
1103            };
1104            // Two rows at one address is one row, and the first of the two wins. The only place it
1105            // happens is the front of a function, where the row the assembler writes for the
1106            // declaration and the row for the first instruction land on the same byte, which is
1107            // what a function this compiler built no prologue for looks like: two instructions
1108            // cannot start at one address, so nowhere else has the question. The declaration is the
1109            // better answer there because it is the answer gcc gives, which it gives because gcc
1110            // always builds a frame at -O0 and so always has a byte of prologue for the brace to be
1111            // about. A breakpoint on a function wants the line of the function rather than the line
1112            // of whatever its first statement happened to be.
1113            match out.last() {
1114                Some(last) if last.at == place.at => {}
1115                _ => out.push(place),
1116            }
1117        }
1118        // And the front of the function, for a function whose declaration had no span to give. The
1119        // assembler writes a row there from `Func::declared` and that is the usual way this is
1120        // covered, but a function that came from something other than a C source has no such span,
1121        // and the front of one is the one part of it no row would otherwise cover. A program
1122        // counter in there would get no answer at all rather than a slightly early one, and no
1123        // answer is the worse of the two for anybody reading a backtrace.
1124        if let Some(first) = out.first_mut() {
1125            first.at = 0;
1126        }
1127        // And what the function is, for the one this unit holds a definition of. A function the
1128        // walk above found and this did not is one whose name in the object is not the name the
1129        // declaration had, which `__asm__` on a declaration is the way to arrange, and one whose
1130        // signature could not be described. Both get rows and no entry, which leaves a debugger
1131        // where it is for every function today rather than anywhere worse.
1132        let known = origin.meaning.funcs.get(&extent.name);
1133        let decl = known.map(|known| rucc_debug::Place {
1134            file: interned(&mut files, rewrite(&known.file)),
1135            line: known.line,
1136        });
1137        // And where each of its locals is, for the ones the frame gave a slot. The back end hands
1138        // back the declaration each of them is and how far below the frame base it ended up, and
1139        // this is where a number turns back into a name, a type and a line, because this is the
1140        // last place the checker's declarations are still in hand.
1141        //
1142        // A parameter goes on the entry the signature already wrote for it rather than getting one
1143        // of its own, which is what the parameter numbers on the function are for. Two entries of
1144        // one name in one scope is a debugger's problem rather than a reader's.
1145        let mut sig = known.and_then(|known| known.sig.clone());
1146        let mut placed: Vec<(u32, i32)> = built.locals.clone();
1147        let mut spots = stretches(extent, rows, built, target);
1148        // And a local in the frame that shares its bytes and has no stretch at all, which still
1149        // gets its entry so that a debugger says it is not available rather than that there is no
1150        // such name. That is a function whose instructions were scheduled, where no stretch can be
1151        // given, and the whole of it is then somewhere the local may not be.
1152        for &decl in &built.sharing {
1153            if !spots.iter().any(|(at, _)| *at == decl) {
1154                spots.push((decl, Vec::new()));
1155            }
1156        }
1157        if let (Some(sig), Some(known)) = (sig.as_mut(), known) {
1158            for (param, decl) in sig.params.iter_mut().zip(&known.params) {
1159                let Some(decl) = *decl else { continue };
1160                if let Some(which) = placed.iter().position(|&(at, _)| at == decl) {
1161                    let at = rucc_debug::Held::Frame(i64::from(placed.remove(which).1));
1162                    param.spot = Some(rucc_debug::Spot::Always(at));
1163                    continue;
1164                }
1165                // Or the stretches, for a parameter the front end kept in a value rather than in
1166                // the frame, which is what a scalar parameter whose address is never taken is at
1167                // every optimization level including this one.
1168                let Some(which) = spots.iter().position(|(at, _)| *at == decl) else { continue };
1169                param.spot = Some(rucc_debug::Spot::Over(spots.remove(which).1));
1170            }
1171        }
1172        // Whatever is left, which is the locals that are not parameters, in the order the slots
1173        // were asked for. A number with nothing to look up is one whose declaration had no name,
1174        // which is a compound literal rather than anything the program can ask the value of.
1175        let mut locals = Vec::with_capacity(placed.len() + spots.len());
1176        // And which scope each of them was declared in, kept beside the list rather than on it,
1177        // because what goes on the entry is a place in this function's own table of scopes and that
1178        // table is not known until every local has been looked up.
1179        let mut wants: Vec<Option<usize>> = Vec::with_capacity(locals.capacity());
1180        for (decl, at) in placed {
1181            let Some(named) = origin.meaning.locals.get(&decl) else { continue };
1182            wants.push(named.scope);
1183            locals.push(rucc_debug::Local {
1184                name: named.name.clone(),
1185                ty: named.ty,
1186                decl: Some(rucc_debug::Place {
1187                    file: interned(&mut files, rewrite(&named.file)),
1188                    line: named.line,
1189                }),
1190                spot: rucc_debug::Spot::Always(rucc_debug::Held::Frame(i64::from(at))),
1191                scope: None,
1192            });
1193        }
1194        // And the ones with no slot at all, which are the locals the front end kept in a value.
1195        // Sorted by declaration, which is the order the program declared them in, so that what
1196        // comes out does not depend on the order the back end happened to hand registers out in.
1197        spots.sort_by_key(|(decl, _)| *decl);
1198        for (decl, spans) in spots {
1199            let Some(named) = origin.meaning.locals.get(&decl) else { continue };
1200            wants.push(named.scope);
1201            locals.push(rucc_debug::Local {
1202                name: named.name.clone(),
1203                ty: named.ty,
1204                decl: Some(rucc_debug::Place {
1205                    file: interned(&mut files, rewrite(&named.file)),
1206                    line: named.line,
1207                }),
1208                spot: rucc_debug::Spot::Over(spans),
1209                scope: None,
1210            });
1211        }
1212        // And the scopes the locals were declared in, which is where a name declared in an inner
1213        // block stops being one of the function's own. The numbers the walk over the tree handed out
1214        // are over the whole unit, and what goes on an entry is a place in this function's table, so
1215        // the two are joined here.
1216        let (scopes, at) = nests(&wants, &origin.meaning.scopes, extent, rows);
1217        for (local, want) in locals.iter_mut().zip(&wants) {
1218            local.scope = want.and_then(|want| at.get(&want).copied());
1219        }
1220        funcs.push(rucc_debug::Function {
1221            name: extent.name.clone(),
1222            len: extent.len as u64,
1223            rows: out,
1224            decl,
1225            sig,
1226            external: known.is_some_and(|known| known.external),
1227            locals,
1228            scopes,
1229        });
1230    }
1231    // And the file-scope variables, from the objects the back end laid out rather than from the
1232    // declarations, so that a name with an entry here is a name with a symbol to relocate against.
1233    // One the walk found and this did not is a `static` nothing read, and one this found and the
1234    // walk did not is a name the compiler made up rather than one the program wrote, a string
1235    // literal and a compound literal being the two: both are in the file and neither is a variable
1236    // anybody can ask the value of by name.
1237    let mut globals = Vec::new();
1238    for object in &data.objects {
1239        let Some(held) = origin.meaning.objects.get(&object.name) else { continue };
1240        globals.push(rucc_debug::Global {
1241            name: object.name.clone(),
1242            ty: held.ty,
1243            decl: Some(rucc_debug::Place {
1244                file: interned(&mut files, rewrite(&held.file)),
1245                line: held.line,
1246            }),
1247            external: held.external,
1248        });
1249    }
1250    let unit = rucc_debug::Unit {
1251        name: rewrite(origin.name),
1252        // A single dot when the process could not say where it was, which is a directory name every
1253        // debugger understands and which leaves a relative file name meaning what it already meant.
1254        dir: rewrite(opts.working_dir.as_deref().unwrap_or(".")),
1255        producer: format!("rucc {}", crate::VERSION),
1256        files,
1257        types: origin.meaning.types.clone(),
1258        funcs,
1259        globals,
1260        pointer: u8::try_from(target.pointer_width / 8).unwrap_or(8),
1261        // Whether a function can say where its frame base is, which it can when the build writes a
1262        // table that answers the question: the unwind table, or `.debug_frame` in its place. Read
1263        // off what was written rather than asked again, so the two cannot disagree about whether
1264        // the table a frame base is read through is there.
1265        frames: opts.unwinds() || frames.is_some(),
1266    };
1267    let mut info = rucc_debug::write(&unit).map_err(|why| why.to_string())?;
1268    info.chunks.extend(frames.clone());
1269    Ok(info)
1270}
1271
1272/// Where each local the back end kept in a register is, as stretches of the function's addresses.
1273///
1274/// The back end names a stretch by the instruction at either end of it, because a machine
1275/// instruction has no length until something encodes it. This is where it gets one: the assembler
1276/// writes a row per instruction for the line table and the row says how far into the function the
1277/// instruction begins, so the row after it is where it ends. The last instruction of a function
1278/// ends where the function does.
1279///
1280/// Grouped by declaration on the way out, since one local is in one place over one stretch and
1281/// somewhere else over the next, and that is the shape the debugging information wants.
1282fn stretches(
1283    extent: &rucc_object::Extent,
1284    rows: &[rucc_asm::Row],
1285    built: &rucc_mir::Func,
1286    target: &TargetInfo,
1287) -> Vec<(u32, Vec<rucc_debug::Span>)> {
1288    // A target nobody has written a calling convention down for has no DWARF numbering either, so
1289    // there is no way to name the register a local is in and nothing to say.
1290    let (false, Some(regs)) = (built.kept.is_empty(), target.call_regs) else {
1291        return Vec::new();
1292    };
1293    let ends = ends(extent, rows);
1294    let mut bounds = vec![None; built.inst_count()];
1295    for (which, row) in rows.iter().enumerate() {
1296        let Some(inst) = row.inst else { continue };
1297        bounds[inst.index()] = Some((row.at as u64, ends[which]));
1298    }
1299    let mut spots: Vec<(u32, Vec<rucc_debug::Span>)> = Vec::new();
1300    for kept in &built.kept {
1301        let (Some((from, _)), Some((_, to))) = (bounds[kept.from.index()], bounds[kept.to.index()])
1302        else {
1303            continue;
1304        };
1305        if to <= from {
1306            continue;
1307        }
1308        let held = match kept.at {
1309            // A register is named by the number this target's DWARF numbering gives it, which is a
1310            // fact about the class and the register together rather than about either alone.
1311            rucc_mir::Where::Reg { reg, class } => match regs.dwarf(class, reg) {
1312                Some(number) => rucc_debug::Held::Reg(number),
1313                None => continue,
1314            },
1315            rucc_mir::Where::Frame(at) => rucc_debug::Held::Frame(i64::from(at)),
1316        };
1317        let span = rucc_debug::Span { from, len: to - from, held };
1318        match spots.iter_mut().find(|(decl, _)| *decl == kept.decl) {
1319            Some((_, spans)) => spans.push(span),
1320            None => spots.push((kept.decl, vec![span])),
1321        }
1322    }
1323    for (_, spans) in &mut spots {
1324        *spans = settle(std::mem::take(spans));
1325    }
1326    spots.retain(|(_, spans)| !spans.is_empty());
1327    spots
1328}
1329
1330/// Where the instruction each of a function's line table rows was written for ends.
1331///
1332/// The row after it, which is where the next instruction begins, and the end of the function for the
1333/// last one. The row after it at a different address rather than simply the row after it, because an
1334/// instruction that encodes to nothing leaves two rows on one byte and the one in front of it is not
1335/// where anything ends.
1336///
1337/// Backwards, because that is one pass rather than a search from each row for the next address that
1338/// differs, and a function the size of `sqlite3VdbeExec` has tens of thousands of rows.
1339fn ends(extent: &rucc_object::Extent, rows: &[rucc_asm::Row]) -> Vec<u64> {
1340    let mut out = vec![extent.len as u64; rows.len()];
1341    let mut next = extent.len as u64;
1342    for which in (0..rows.len()).rev() {
1343        let at = rows[which].at as u64;
1344        // The answer the row behind got, for a row sharing an address with the one in front of it,
1345        // since the two end in the same place and the one in front has already been asked.
1346        out[which] = match next > at {
1347            true => next,
1348            false => out.get(which + 1).copied().unwrap_or(extent.len as u64),
1349        };
1350        next = next.min(at);
1351    }
1352    out
1353}
1354
1355/// The scopes one function's locals were declared in, as the debug writer wants them, and which of
1356/// its entries each of the unit's scopes became.
1357///
1358/// Only the ones a local of this function is in, and their ancestors. The unit's table holds every
1359/// scope in the translation unit, and a function reaches its own by walking up from the locals the
1360/// back end handed over, which is both the filter and the answer to which function a scope belongs
1361/// to. A scope no local of this function is in is not this function's business even if the numbers
1362/// happen to sit next to each other.
1363///
1364/// The addresses come from the source. A scope is a run of source bytes, every row of the line table
1365/// says which source bytes its instruction was built for, and the rows already say where each
1366/// instruction is, so the addresses of a scope are the addresses of the instructions whose bytes are
1367/// inside it. Nothing had to be carried down the compiler for this, and the nesting comes out right
1368/// on its own: a scope's bytes hold the bytes of every scope inside it, so its addresses hold
1369/// theirs.
1370fn nests(
1371    wants: &[Option<usize>],
1372    scopes: &[crate::shapes::Scope],
1373    extent: &rucc_object::Extent,
1374    rows: &[rucc_asm::Row],
1375) -> (Vec<rucc_debug::Scope>, HashMap<usize, usize>) {
1376    let mut needed: Vec<usize> = Vec::new();
1377    for &want in wants {
1378        let mut up = want;
1379        while let Some(which) = up {
1380            if needed.contains(&which) {
1381                break;
1382            }
1383            needed.push(which);
1384            up = scopes.get(which).and_then(|scope| scope.parent);
1385        }
1386    }
1387    // In the order the unit wrote them, which puts a scope after the one it is inside, because that
1388    // is the order the writer wants and is what lets a parent be named by an entry already made.
1389    needed.sort_unstable();
1390    let at: HashMap<usize, usize> =
1391        needed.iter().enumerate().map(|(which, &scope)| (scope, which)).collect();
1392    let ends = ends(extent, rows);
1393    let out = needed
1394        .iter()
1395        .map(|&which| {
1396            let scope = &scopes[which];
1397            rucc_debug::Scope {
1398                parent: scope.parent.and_then(|parent| at.get(&parent).copied()),
1399                over: spread(scope.span, &ends, rows),
1400            }
1401        })
1402        .collect();
1403    (out, at)
1404}
1405
1406/// Which of a function's addresses were built for a run of its source bytes.
1407///
1408/// A row whose own bytes are inside the run is code the run asked for, and the addresses of a scope
1409/// are the addresses of every such row joined up. Two rows that meet or overlap are one stretch,
1410/// which is what almost all of a scope is: the rows of a block are next to each other unless
1411/// something moved them, and a block the back end split into pieces is exactly the case a list is
1412/// for.
1413fn spread(span: Span, ends: &[u64], rows: &[rucc_asm::Row]) -> Vec<rucc_debug::Reach> {
1414    let mut out: Vec<rucc_debug::Reach> = Vec::new();
1415    for (which, row) in rows.iter().enumerate() {
1416        if row.span.is_dummy() || row.span.lo < span.lo || row.span.hi > span.hi {
1417            continue;
1418        }
1419        let (from, to) = (row.at as u64, ends[which]);
1420        if to <= from {
1421            continue;
1422        }
1423        match out.last_mut() {
1424            Some(last) if last.from + last.len >= from => {
1425                last.len = to.saturating_sub(last.from).max(last.len);
1426            }
1427            _ => out.push(rucc_debug::Reach { from, len: to - from }),
1428        }
1429    }
1430    out
1431}
1432
1433/// One declaration's stretches with the disagreements taken out and the neighbours joined up.
1434///
1435/// Two stretches of one declaration can cover the same address. That is what a program that assigns
1436/// to a local from something already live looks like: both values are live across the assignment,
1437/// the old one because something else still reads it. A stretch never runs past the end of its
1438/// block, so two that overlap are in one block, where the addresses go the way the instructions
1439/// run, and one that starts inside the other starts where the declaration was given its value:
1440/// where the value was computed, or where the assignment was for a value it took from another
1441/// declaration. From there the declaration holds the new value and not the old one, so the one
1442/// that started first ends there.
1443///
1444/// What is still left is two stretches that start at the same address, which is two values both
1445/// live into a block with nothing here to say which of them the declaration holds. Where the two
1446/// agree the answer is the same either way and they become one stretch, and where they disagree the
1447/// address is left out, so a debugger says the variable is unavailable there rather than printing
1448/// whichever register this walk reached first. A wrong answer is worse than none.
1449fn settle(mut spans: Vec<rucc_debug::Span>) -> Vec<rucc_debug::Span> {
1450    spans.sort_by_key(|span| (span.from, span.len));
1451    for which in 0..spans.len() {
1452        let (from, end, held) =
1453            (spans[which].from, spans[which].from + spans[which].len, spans[which].held);
1454        let later = spans[which + 1..]
1455            .iter()
1456            .take_while(|later| later.from < end)
1457            .find(|later| later.from > from && later.held != held);
1458        if let Some(later) = later {
1459            spans[which].len = later.from - from;
1460        }
1461    }
1462    // Every address a stretch begins or ends at, which cuts the function into pieces no stretch is
1463    // partly over: a piece is inside a stretch or outside it and never half of each.
1464    let mut edges: Vec<u64> =
1465        spans.iter().flat_map(|span| [span.from, span.from + span.len]).collect();
1466    edges.sort_unstable();
1467    edges.dedup();
1468    let mut out: Vec<rucc_debug::Span> = Vec::new();
1469    let mut first = 0;
1470    for pair in edges.windows(2) {
1471        let (from, to) = (pair[0], pair[1]);
1472        // Nothing before this can cover this piece or any piece after it, since the pieces only
1473        // ever move forward. The list is in the order the stretches start in, so the walk below
1474        // stops at the first one that starts too late as well.
1475        while spans.get(first).is_some_and(|span| span.from + span.len <= from) {
1476            first += 1;
1477        }
1478        let mut held = None;
1479        let mut agreed = true;
1480        for span in &spans[first..] {
1481            if span.from >= to {
1482                break;
1483            }
1484            if span.from > from || span.from + span.len < to {
1485                continue;
1486            }
1487            match held {
1488                None => held = Some(span.held),
1489                Some(seen) => agreed &= seen == span.held,
1490            }
1491        }
1492        let (Some(held), true) = (held, agreed) else { continue };
1493        match out.last_mut() {
1494            Some(last) if last.from + last.len == from && last.held == held => {
1495                last.len += to - from
1496            }
1497            _ => out.push(rucc_debug::Span { from, len: to - from, held }),
1498        }
1499    }
1500    out
1501}
1502
1503/// Where a file name is in the table, putting it there if it is not there yet.
1504///
1505/// A walk rather than a map because the table holds the files one object's code came from, which is
1506/// a handful even for an amalgamation: everything the preprocessor opened and nothing was generated
1507/// out of stays out of it.
1508fn interned(files: &mut Vec<String>, name: String) -> usize {
1509    match files.iter().position(|have| *have == name) {
1510        Some(which) => which,
1511        None => {
1512            files.push(name);
1513            files.len() - 1
1514        }
1515    }
1516}
1517
1518/// What the command line decided about the file being written, in the words the assembler and the
1519/// object writer use.
1520///
1521/// Two spellings of the same facts, because the flags are the command line's and the answer the two
1522/// writers want is the object format's. The conversion is here rather than in either of them so
1523/// that the two output paths are handed the same thing and cannot come to disagree about what is
1524/// in a file.
1525///
1526/// The feature word is empty on a machine whose bits these are not. It is the x86 one, and a target
1527/// that wanted its control flow checked would want a property of its own with a key of its own, so
1528/// writing this one there would be recording something untrue rather than recording nothing.
1529fn output(opts: &Options, target: &TargetInfo) -> rucc_object::Output {
1530    let mut features = 0;
1531    if target.tuple.arch() == Arch::X86_64 {
1532        if opts.control.branch() {
1533            features |= rucc_object::Property::IBT;
1534        }
1535        if opts.control.ret() {
1536            features |= rucc_object::Property::SHSTK;
1537        }
1538    }
1539    rucc_object::Output {
1540        sections: rucc_object::Sections {
1541            functions: opts.function_sections,
1542            data: opts.data_sections,
1543        },
1544        property: rucc_object::Property { features },
1545    }
1546}
1547
1548/// What the object writer said, as the kind of news it is.
1549///
1550/// A format with no writer is a target this compiler is behind on, which is a program nobody can
1551/// compile today and not a mistake in the one being compiled. Anything else it refused is a bug
1552/// here, because every value it was handed came out of this compiler.
1553fn wrote(why: rucc_object::Error) -> Vec<Diagnostic> {
1554    match why {
1555        rucc_object::Error::Format { .. } => vec![unsupported(&why.to_string())],
1556        rucc_object::Error::Refused { .. } => vec![internal(&why.to_string())],
1557    }
1558}
1559
1560/// What the assembler said, as the kind of news it is.
1561///
1562/// Three of these are about a program and the rest are about this compiler. A thread-local
1563/// variable, an ifunc and a prologue the target's unwind table cannot describe are all valid C that
1564/// the back end does not build yet, and everything else the assembler refuses is something that
1565/// should never have reached it.
1566fn refused(why: rucc_asm::Error) -> Vec<Diagnostic> {
1567    match why {
1568        rucc_asm::Error::Thread { .. }
1569        | rucc_asm::Error::IFunc { .. }
1570        | rucc_asm::Error::Frame { .. } => {
1571            vec![unsupported(&why.to_string())]
1572        }
1573        _ => vec![internal(&why.to_string())],
1574    }
1575}
1576
1577/// A diagnostic about a program this compiler is not finished enough to compile.
1578///
1579/// Not an internal error, because nothing here is wrong: the program is valid C and the part of
1580/// the back end that would handle it has not been written. The note says so, so that a report
1581/// about one of these is filed against the milestone rather than as a miscompilation.
1582fn unsupported(message: &str) -> Diagnostic {
1583    unsupported_at(message, Span::DUMMY)
1584}
1585
1586/// The same, about somewhere in the file rather than about the file.
1587///
1588/// The note names the issue tracker rather than `spec/17-milestones.md`, which is a document
1589/// about the plan: a reader who follows it wants to know whether the construct in front of them
1590/// is already written down as work, and the milestone list does not answer that.
1591fn unsupported_at(message: &str, span: Span) -> Diagnostic {
1592    Diagnostic::error(message.to_owned(), span)
1593        .with_code("E0653")
1594        .note("this construct is not lowered yet, see https://github.com/tamnd/rucc/issues", span)
1595}
1596
1597/// A diagnostic about IR that was handed to us rather than built by us.
1598fn invalid(message: &str) -> Diagnostic {
1599    Diagnostic::error(message.to_owned(), Span::DUMMY).with_code("E0661")
1600}
1601
1602/// A diagnostic about this compiler rather than about the program it was given.
1603fn internal(message: &str) -> Diagnostic {
1604    Diagnostic::error(format!("internal error: {message}"), Span::DUMMY)
1605        .with_code("E0652")
1606        .note("this is a bug in rucc rather than in the program, please report it", Span::DUMMY)
1607}
1608
1609/// A result that is nothing but one message, for the failures that happen before there is
1610/// anything to compile.
1611fn failure(message: String) -> Compiled {
1612    Compiled {
1613        artifact: Artifact::Nothing,
1614        messages: vec![format!("rucc: error: {message}")],
1615        errors: 1,
1616        fired: Fired::new(),
1617        pressure: Pressure::new(),
1618        lowerings: Lowerings::new(),
1619        dumps: Vec::new(),
1620        remarks: String::new(),
1621        deps: Vec::new(),
1622        temps: Temps::default(),
1623    }
1624}
1625
1626#[cfg(test)]
1627mod tests {
1628    use rucc_session::{MemoryFileSystem, Std};
1629    use rucc_target::Triple;
1630
1631    use super::*;
1632
1633    fn options() -> Options {
1634        let mut opts = Options::new("x86_64-unknown-linux-gnu".parse::<Triple>().unwrap());
1635        opts.emit = EmitKind::Tast;
1636        opts
1637    }
1638
1639    fn run(opts: &Options, source: &str) -> Compiled {
1640        let mut fs = MemoryFileSystem::new();
1641        fs.insert("/main.c", source.to_owned().into_bytes());
1642        compile(opts, "/main.c", &fs)
1643    }
1644
1645    /// Options with the compiler's own headers on the search path and nothing else, which is
1646    /// what a freestanding compilation is. There is no file system underneath these tests,
1647    /// so a header that reached for one would fail to resolve and say so.
1648    fn freestanding() -> Options {
1649        let mut opts = options();
1650        opts.hosted = false;
1651        opts.search.push_system(rucc_session::runtime::DIR);
1652        opts
1653    }
1654
1655    /// The typed tree of a freestanding `source`, insisting that it compiled cleanly.
1656    fn shipped(source: &str) -> String {
1657        let result = run(&freestanding(), source);
1658        assert_eq!(result.messages, Vec::<String>::new(), "expected this to compile:\n{source}");
1659        result.text().to_owned()
1660    }
1661
1662    /// The typed tree of `source`, insisting that it compiled cleanly.
1663    fn tast(source: &str) -> String {
1664        let result = run(&options(), source);
1665        assert_eq!(result.messages, Vec::<String>::new(), "expected this to compile:\n{source}");
1666        result.text().to_owned()
1667    }
1668
1669    #[test]
1670    fn the_shipped_stdarg_declares_a_list_and_the_four_operators() {
1671        let text = shipped(concat!(
1672            "#include <stdarg.h>\n",
1673            "int sum(int n, ...) {\n",
1674            "  va_list ap, copy;\n",
1675            "  va_start(ap, n);\n",
1676            "  va_copy(copy, ap);\n",
1677            "  int total = va_arg(ap, int) + va_arg(copy, int);\n",
1678            "  va_end(ap);\n",
1679            "  va_end(copy);\n",
1680            "  return total;\n",
1681            "}\n",
1682        ));
1683        assert!(text.contains("va-start"), "{text}");
1684        assert!(text.contains("va-copy"), "{text}");
1685        assert!(text.contains("va-arg"), "{text}");
1686        assert!(text.contains("va-end"), "{text}");
1687    }
1688
1689    /// glibc includes `<stdarg.h>` this way from every header that declares a `vprintf`, and
1690    /// what it wants is the type without the four macro names. Answering the whole header
1691    /// would put `va_start` in the way of a program that has its own.
1692    #[test]
1693    fn stdarg_hands_out_the_type_alone_when_that_is_all_that_was_asked_for() {
1694        let text = shipped(concat!(
1695            "#define __need___va_list\n",
1696            "#include <stdarg.h>\n",
1697            "int vprint(const char *f, __gnuc_va_list ap);\n",
1698            "#ifdef va_start\n",
1699            "#error va_start should not be defined\n",
1700            "#endif\n",
1701            "#ifdef _VA_LIST_DEFINED\n",
1702            "#error va_list should not have been made\n",
1703            "#endif\n",
1704        ));
1705        assert!(text.contains("vprint"), "{text}");
1706    }
1707
1708    /// The same protocol on `<stddef.h>`, which glibc uses far more heavily: `<stdio.h>` asks
1709    /// for `size_t` and `NULL` and would be wrong to receive `offsetof` as well.
1710    #[test]
1711    fn stddef_answers_one_piece_at_a_time_and_the_next_request_still_gets_through() {
1712        let text = shipped(concat!(
1713            "#define __need_size_t\n",
1714            "#include <stddef.h>\n",
1715            "#ifdef offsetof\n",
1716            "#error offsetof should not be defined yet\n",
1717            "#endif\n",
1718            "#define __need_ptrdiff_t\n",
1719            "#include <stddef.h>\n",
1720            "#include <stddef.h>\n",
1721            "size_t a;\n",
1722            "ptrdiff_t b;\n",
1723            "wchar_t c;\n",
1724            "max_align_t d;\n",
1725            "void *e = NULL;\n",
1726            "struct P { int x; long y; };\n",
1727            "size_t f = offsetof(struct P, y);\n",
1728        ));
1729        assert!(text.contains("decl #0 a : unsigned long"), "{text}");
1730        assert!(text.contains("decl #1 b : long"), "{text}");
1731    }
1732
1733    #[test]
1734    fn the_shipped_limits_and_float_are_the_targets_own_answers() {
1735        let text = shipped(concat!(
1736            "#include <limits.h>\n",
1737            "#include <float.h>\n",
1738            "int bits = CHAR_BIT;\n",
1739            "long big = LONG_MAX;\n",
1740            "int low = INT_MIN;\n",
1741            "int radix = FLT_RADIX;\n",
1742            "int digits = DBL_MANT_DIG;\n",
1743        ));
1744        assert!(text.contains("const 8 : int"), "{text}");
1745        assert!(text.contains("const 9223372036854775807 : long"), "{text}");
1746        assert!(text.contains("const 2 : int"), "{text}");
1747        assert!(text.contains("const 53 : int"), "{text}");
1748    }
1749
1750    /// Freestanding, so there is no library header to chain to and `<stdint.h>` writes the
1751    /// whole set out itself. The widths are the ones the target picked, which is the only
1752    /// reason this header is the compiler's.
1753    #[test]
1754    fn the_shipped_stdint_writes_the_whole_set_when_there_is_no_library_to_defer_to() {
1755        let text = shipped(concat!(
1756            "#include <stdint.h>\n",
1757            "int64_t a = INT64_C(1);\n",
1758            "uint_least16_t b;\n",
1759            "intptr_t c;\n",
1760            "uintmax_t d = UINTMAX_MAX;\n",
1761            "int wide = sizeof(int_fast64_t);\n",
1762        ));
1763        assert!(text.contains("decl #0 a : long"), "{text}");
1764        assert!(text.contains("decl #1 b : unsigned short"), "{text}");
1765        assert!(text.contains("decl #2 c : long"), "{text}");
1766    }
1767
1768    /// `<mmintrin.h>` is the base of the vector header chain and the first one whose contents
1769    /// are C rather than declarations, so what this checks is that the C in it compiles: a
1770    /// header that is nothing but definitions fails as a whole or not at all.
1771    ///
1772    /// What the intrinsics answer is not checked here and cannot be, because the answer is
1773    /// only interesting next to another compiler's. Every intrinsic in the header was built
1774    /// and run against GCC 16.2.0 on the same inputs, at `-O0`, `-O1`, `-O2` and `-Os`, and
1775    /// gave the same bytes in all four. Carrying that comparison rather than repeating it by
1776    /// hand needs a facet in `tamnd/rucc-corpus` that works out the expected bytes itself,
1777    /// which is a second implementation of MMX and is `tamnd/rucc#1150`.
1778    #[test]
1779    fn the_shipped_mmintrin_defines_the_mmx_type_and_the_operations_over_it() {
1780        let text = shipped(concat!(
1781            "#include <mmintrin.h>\n",
1782            "__m64 add(__m64 a, __m64 b) { return _mm_add_pi16(a, b); }\n",
1783            "__m64 pack(__m64 a, __m64 b) { return _m_packsswb(a, b); }\n",
1784            "__m64 shift(__m64 a) { return _mm_srai_pi32(a, 3); }\n",
1785            "int low(__m64 a) { return _mm_cvtsi64_si32(a); }\n",
1786            "void done(void) { _mm_empty(); }\n",
1787        ));
1788        assert!(text.contains("add"), "{text}");
1789        assert!(text.contains("pack"), "{text}");
1790        assert!(text.contains("shift"), "{text}");
1791    }
1792
1793    /// The allocator beside the vector headers, which is the one piece of the family that is
1794    /// not a vector operation. It reaches for `<stddef.h>` and for three names out of the
1795    /// library, and the point of the test is that the reach resolves with nothing on the
1796    /// search path but the compiler's own directory.
1797    #[test]
1798    fn the_shipped_mm_malloc_asks_for_aligned_memory_and_gives_it_back() {
1799        let text = shipped(concat!(
1800            "#include <mm_malloc.h>\n",
1801            "void *get(void) { return _mm_malloc(64, 16); }\n",
1802            "void put(void *p) { _mm_free(p); }\n",
1803        ));
1804        assert!(text.contains("get"), "{text}");
1805        assert!(text.contains("put"), "{text}");
1806    }
1807
1808    /// `<xmmintrin.h>` is the next rung of the chain and pulls the other two in behind it, so a
1809    /// program that includes this one alone has to get all three. What the intrinsics answer is
1810    /// checked the same way `<mmintrin.h>` next door is checked and for the same reason: a
1811    /// hundred and forty eight lines of answers over nans, infinities, both zeros and values
1812    /// that do not fit in the integer they convert to, identical to GCC 16.2.0 at `-O0`, `-O1`,
1813    /// `-O2` and `-Os`.
1814    ///
1815    /// `_mm_rcp_ps` is the one answer in that run that is not identical, and is not meant to be.
1816    /// The instruction approximates a reciprocal and this computes one exactly, so the bits
1817    /// differ while both sit inside the relative error Intel documents, which the same program
1818    /// checks directly rather than by comparing bits.
1819    #[test]
1820    fn the_shipped_xmmintrin_defines_the_sse_type_and_the_operations_over_it() {
1821        let text = shipped(concat!(
1822            "#include <xmmintrin.h>\n",
1823            "__m128 add(__m128 a, __m128 b) { return _mm_add_ps(a, b); }\n",
1824            "__m128 one(__m128 a, __m128 b) { return _mm_max_ss(a, b); }\n",
1825            "__m128 mask(__m128 a, __m128 b) { return _mm_cmpnle_ps(a, b); }\n",
1826            "__m128 pick(__m128 a, __m128 b) { return _mm_shuffle_ps(a, b, _MM_SHUFFLE(0,1,2,3)); }\n",
1827            "int bits(__m128 a) { return _mm_movemask_ps(a); }\n",
1828            "int near(__m128 a) { return _mm_cvtss_si32(a); }\n",
1829            "__m128 wide(__m64 a) { return _mm_cvtpi16_ps(a); }\n",
1830            "void *room(void) { return _mm_malloc(64, 16); }\n",
1831            "void hint(const float *p) { _mm_prefetch(p, _MM_HINT_T0); _mm_sfence(); }\n",
1832        ));
1833        assert!(text.contains("add"), "{text}");
1834        assert!(text.contains("mask"), "{text}");
1835        assert!(text.contains("pick"), "{text}");
1836        assert!(text.contains("wide"), "{text}");
1837    }
1838
1839    /// The six names of gcc's header this one leaves out, each of which is an instruction whose
1840    /// answer no plain C reproduces exactly. Leaving them out is what turns a program that wants
1841    /// one into a diagnostic naming the function it called, rather than into a wrong answer, and
1842    /// this is what notices if one is ever quietly defined to something close.
1843    ///
1844    /// `tamnd/rucc#1157` is the square root, which brings the first four back.
1845    #[test]
1846    fn the_shipped_xmmintrin_leaves_out_the_names_that_need_an_instruction() {
1847        let text = rucc_session::runtime::header("xmmintrin.h").expect("xmmintrin.h is shipped");
1848        for absent in [
1849            "_mm_sqrt_ps",
1850            "_mm_sqrt_ss",
1851            "_mm_rsqrt_ps",
1852            "_mm_rsqrt_ss",
1853            "_mm_getcsr",
1854            "_mm_setcsr",
1855        ] {
1856            let defined = text.contains(&format!("{absent}("));
1857            assert!(!defined, "{absent} is defined and the header says it is not");
1858            assert!(text.contains(absent), "{absent} is absent and unexplained");
1859        }
1860    }
1861
1862    #[test]
1863    fn the_shipped_emmintrin_defines_both_sse2_types_and_the_operations_over_them() {
1864        let text = shipped(concat!(
1865            "#include <emmintrin.h>\n",
1866            "__m128i add(__m128i a, __m128i b) { return _mm_add_epi64(a, b); }\n",
1867            "__m128i wide(__m128i a, __m128i b) { return _mm_mul_epu32(a, b); }\n",
1868            "__m128i pick(__m128i a) { return _mm_shuffle_epi32(a, _MM_SHUFFLE(0,1,2,3)); }\n",
1869            "__m128i up(__m128i a) { return _mm_slli_epi64(a, 13); }\n",
1870            "__m128i down(__m128i a) { return _mm_srli_si128(a, 3); }\n",
1871            "__m128i pack(__m128i a, __m128i b) { return _mm_packus_epi16(a, b); }\n",
1872            "int bits(__m128i a) { return _mm_movemask_epi8(a); }\n",
1873            "__m128d sum(__m128d a, __m128d b) { return _mm_add_sd(a, b); }\n",
1874            "__m128d mask(__m128d a, __m128d b) { return _mm_cmpunord_pd(a, b); }\n",
1875            "__m128i near(__m128d a) { return _mm_cvtpd_epi32(a); }\n",
1876            "__m128d over(__m128 a) { return _mm_cvtps_pd(a); }\n",
1877            "__m128i half(__m64 a) { return _mm_movpi64_epi64(a); }\n",
1878            "__m128i grab(void const *p) { return _mm_loadu_si128(p); }\n",
1879            "void wall(void) { _mm_lfence(); _mm_mfence(); }\n",
1880        ));
1881        assert!(text.contains("wide"), "{text}");
1882        assert!(text.contains("pack"), "{text}");
1883        assert!(text.contains("near"), "{text}");
1884        assert!(text.contains("half"), "{text}");
1885    }
1886
1887    /// The umbrella header reaches the three underneath it. This is brotli's use of it, from
1888    /// `c/enc/matching_tag_mask.h`, which is the whole of what `tamnd/rucc#1236` was about: four
1889    /// SSE2 names that were already shipped and no way to get at them by the name gcc uses.
1890    #[test]
1891    fn the_shipped_immintrin_reaches_the_names_the_headers_under_it_define() {
1892        let text = shipped(concat!(
1893            "#include <immintrin.h>\n",
1894            "unsigned long long matching(unsigned char tag, unsigned char const *bucket) {\n",
1895            "  __m128i const want = _mm_set1_epi8((char)tag);\n",
1896            "  __m128i const chunk = _mm_loadu_si128((__m128i const *)(void const *)bucket);\n",
1897            "  __m128i const same = _mm_cmpeq_epi8(chunk, want);\n",
1898            "  return (unsigned long long)_mm_movemask_epi8(same);\n",
1899            "}\n",
1900            "__m64 narrow(__m64 a, __m64 b) { return _mm_add_pi32(a, b); }\n",
1901            "__m128 single(__m128 a, __m128 b) { return _mm_add_ps(a, b); }\n",
1902        ));
1903        assert!(text.contains("matching"), "{text}");
1904        assert!(text.contains("narrow"), "the MMX header is not reached: {text}");
1905        assert!(text.contains("single"), "the SSE header is not reached: {text}");
1906    }
1907
1908    /// The wider umbrella reaches everything the narrower one does, and the fence family with it.
1909    /// This is what mingw-w64's `<winnt.h>` includes and what it then uses, so a Windows program
1910    /// that has never heard of an intrinsic gets here through `<windows.h>`.
1911    #[test]
1912    fn the_shipped_x86intrin_reaches_the_fences_windows_headers_ask_it_for() {
1913        let text = shipped(concat!(
1914            "#include <x86intrin.h>\n",
1915            "void barriers(void *p) {\n",
1916            "  _mm_lfence();\n",
1917            "  _mm_sfence();\n",
1918            "  _mm_mfence();\n",
1919            "  _mm_pause();\n",
1920            "  _mm_clflush(p);\n",
1921            "}\n",
1922            "__m128i wide(__m128i a, __m128i b) { return _mm_add_epi32(a, b); }\n",
1923        ));
1924        assert!(text.contains("barriers"), "{text}");
1925        assert!(text.contains("wide"), "the SSE2 header is not reached: {text}");
1926    }
1927
1928    /// Including it twice is the same as including it once, and so is including it beside the
1929    /// header it reaches. A program that includes both spellings is the usual case rather than an
1930    /// odd one, because one of its own headers includes the umbrella and another includes SSE2.
1931    #[test]
1932    fn the_umbrella_and_the_header_under_it_can_both_be_included() {
1933        let text = shipped(concat!(
1934            "#include <immintrin.h>\n",
1935            "#include <emmintrin.h>\n",
1936            "#include <immintrin.h>\n",
1937            "#include <x86intrin.h>\n",
1938            "__m128i twice(__m128i a, __m128i b) { return _mm_add_epi32(a, b); }\n",
1939        ));
1940        assert!(text.contains("twice"), "{text}");
1941    }
1942
1943    /// The float header omits four square roots and SSE2 omits the matching two, for the reason
1944    /// both headers write down. A later change that quietly defines one as an approximation
1945    /// would be a wrong answer nobody sees, so the absence is held in place here.
1946    #[test]
1947    fn the_shipped_emmintrin_leaves_out_the_two_square_roots() {
1948        let text = rucc_session::runtime::header("emmintrin.h").expect("emmintrin.h is shipped");
1949        for absent in ["_mm_sqrt_pd", "_mm_sqrt_sd"] {
1950            let defined = text.contains(&format!("{absent}("));
1951            assert!(!defined, "{absent} is defined and the header says it is not");
1952            assert!(text.contains(absent), "{absent} is absent and unexplained");
1953        }
1954    }
1955
1956    #[test]
1957    fn the_three_formality_headers_still_have_to_work() {
1958        let text = shipped(concat!(
1959            "#include <stdbool.h>\n",
1960            "#include <stdalign.h>\n",
1961            "#include <iso646.h>\n",
1962            "#include <stdnoreturn.h>\n",
1963            "int t = true and not false;\n",
1964            "_Alignas(16) char buf[16];\n",
1965            "int a = alignof(long);\n",
1966        ));
1967        assert!(text.contains("decl #0 t : int"), "{text}");
1968        assert!(text.contains("const 8 : unsigned long"), "{text}");
1969    }
1970
1971    /// Including everything twice has to change nothing, because that is what happens in any
1972    /// program large enough to matter and a guard that is wrong shows up nowhere else.
1973    ///
1974    /// Stated as the two trees being the same rather than as a fact about what is in either
1975    /// one. A header that carries definitions puts them in the tree and moves everything
1976    /// after them along, so an assertion about where the program's own declaration landed is
1977    /// an assertion about how much `<mmintrin.h>` defines, which is not what is being asked.
1978    #[test]
1979    fn every_shipped_header_can_be_included_twice() {
1980        let once: String = rucc_session::runtime::names()
1981            .iter()
1982            .map(|name| format!("#include <{name}>\n"))
1983            .collect();
1984        let twice = once.repeat(2);
1985        assert_eq!(shipped(&format!("{once}int x;\n")), shipped(&format!("{twice}int x;\n")));
1986    }
1987
1988    #[test]
1989    fn a_file_that_is_not_there_says_so_and_produces_nothing() {
1990        let fs = MemoryFileSystem::new();
1991        let result = compile(&options(), "/nope.c", &fs);
1992        assert!(result.failed());
1993        assert!(result.messages[0].contains("/nope.c"), "{:?}", result.messages);
1994        assert!(result.text().is_empty());
1995    }
1996
1997    #[test]
1998    fn an_object_comes_out_with_its_type_its_linkage_and_how_much_of_a_definition_it_is() {
1999        let text = tast("int x = 1;\n");
2000        let expected = "\
2001decl #0 x : int object external static defined
2002  init
2003    +0
2004      const 1 : int
2005";
2006        assert_eq!(text, expected);
2007    }
2008
2009    #[test]
2010    fn the_macros_are_expanded_before_anything_is_parsed() {
2011        // The whole pipeline in one line. The bound came out of a macro, so it was expanded,
2012        // converted from a preprocessing number to a constant of a type, parsed as an
2013        // expression, and folded to the number the array type carries.
2014        let text = tast("#define N 2\nint a[N];\n");
2015        assert!(text.starts_with("decl #0 a : int[2] object external static tentative"), "{text}");
2016    }
2017
2018    /// A pragma survives the preprocessor on purpose, since what one means is not its
2019    /// business, and nothing after it has a place for a `#` in the grammar. `pack` is the one
2020    /// the parser reads and every other line is walked past. Both spellings are here because
2021    /// they arrive by different routes and only one of them was ever on a line of its own in
2022    /// the source.
2023    #[test]
2024    fn a_pragma_is_not_a_declaration_and_the_parse_walks_past_the_ones_it_does_not_read() {
2025        let text = tast(concat!(
2026            "#pragma pack(4)\n",
2027            "struct s { int a; };\n",
2028            "#pragma pack()\n",
2029            "int b;\n",
2030            "_Pragma(\"GCC visibility push(default)\") int c;\n",
2031        ));
2032        assert!(text.contains("decl #0 b : int"), "{text}");
2033        assert!(text.contains("decl #1 c : int"), "{text}");
2034    }
2035
2036    /// Every number in these two tests was read off gcc 16 on x86-64 under `-std=gnu23`
2037    /// rather than reasoned about, which is why they are written as assertions the program
2038    /// makes about itself: a compilation with no messages is every one of them holding.
2039    ///
2040    /// This half is the attributes. `packed` takes the padding out, on the record or on one
2041    /// member, `aligned` raises and never lowers, and the two written together are the
2042    /// combination that packs and then aligns the whole thing.
2043    #[test]
2044    fn the_layout_attributes_move_the_members_and_the_record_the_way_gcc_lays_them_out() {
2045        tast(concat!(
2046            "struct A { char c; int i; } __attribute__((packed));\n",
2047            "_Static_assert(sizeof(struct A) == 5 && _Alignof(struct A) == 1, \"A\");\n",
2048            "_Static_assert(__builtin_offsetof(struct A, i) == 1, \"A.i\");\n",
2049            // `aligned` with nothing in the parentheses is the largest alignment the target
2050            // has, which gcc calls BIGGEST_ALIGNMENT and which is sixteen everywhere here.
2051            "struct B { char c; int i; } __attribute__((aligned));\n",
2052            "_Static_assert(sizeof(struct B) == 16 && _Alignof(struct B) == 16, \"B\");\n",
2053            "struct C { char c; int i __attribute__((packed)); };\n",
2054            "_Static_assert(sizeof(struct C) == 5 && _Alignof(struct C) == 1, \"C\");\n",
2055            "_Static_assert(__builtin_offsetof(struct C, i) == 1, \"C.i\");\n",
2056            "struct D { char c; int i; } __attribute__((packed, aligned(4)));\n",
2057            "_Static_assert(sizeof(struct D) == 8 && _Alignof(struct D) == 4, \"D\");\n",
2058            "_Static_assert(__builtin_offsetof(struct D, i) == 1, \"D.i\");\n",
2059            "struct E { char c; _Alignas(8) int i; };\n",
2060            "_Static_assert(sizeof(struct E) == 16 && _Alignof(struct E) == 8, \"E\");\n",
2061            "_Static_assert(__builtin_offsetof(struct E, i) == 8, \"E.i\");\n",
2062            "struct F { char c; int i __attribute__((aligned(8))); };\n",
2063            "_Static_assert(sizeof(struct F) == 16 && _Alignof(struct F) == 8, \"F\");\n",
2064            // Two the record already had, so the attribute asks for nothing new, and two
2065            // where four was already there, so the attribute is ignored rather than obeyed.
2066            "struct G { char c; short s; } __attribute__((aligned(2)));\n",
2067            "_Static_assert(sizeof(struct G) == 4 && _Alignof(struct G) == 2, \"G\");\n",
2068            "struct H { char c; int i; } __attribute__((aligned(2)));\n",
2069            "_Static_assert(sizeof(struct H) == 8 && _Alignof(struct H) == 4, \"H\");\n",
2070            // `packed` on a member takes the padding out in front of that member alone, so on
2071            // the first one it does nothing and on the second one it does all of it.
2072            "struct I { [[gnu::packed]] char c; int i; };\n",
2073            "_Static_assert(sizeof(struct I) == 8 && _Alignof(struct I) == 4, \"I\");\n",
2074            "struct J { char c; [[gnu::packed]] int i; };\n",
2075            "_Static_assert(sizeof(struct J) == 5 && _Alignof(struct J) == 1, \"J\");\n",
2076            "struct M { char c; int i : 5; int j : 20; } __attribute__((packed));\n",
2077            "_Static_assert(sizeof(struct M) == 5 && _Alignof(struct M) == 1, \"M\");\n",
2078            "struct N { char c; long long l; } __attribute__((aligned(32)));\n",
2079            "_Static_assert(sizeof(struct N) == 32 && _Alignof(struct N) == 32, \"N\");\n",
2080            "union L { char c; int i; } __attribute__((packed));\n",
2081            "_Static_assert(sizeof(union L) == 4 && _Alignof(union L) == 1, \"L\");\n",
2082            // The armoured spellings, which are the ones a system header writes, since a
2083            // program is entitled to a macro called `packed` and is not entitled to one called
2084            // `__packed__`. The two names are one attribute and the layout is the same one.
2085            "struct O { char c; int i; } __attribute__((__packed__));\n",
2086            "_Static_assert(sizeof(struct O) == 5 && _Alignof(struct O) == 1, \"O\");\n",
2087            "struct P { char c; int i; } __attribute__((__aligned__(8)));\n",
2088            "_Static_assert(sizeof(struct P) == 8 && _Alignof(struct P) == 8, \"P\");\n",
2089        ));
2090    }
2091
2092    /// The attribute that changes what a call means rather than what a record lays out.
2093    ///
2094    /// Both halves are here. A call hands a value to a parameter of the union type and the value
2095    /// goes into the member that takes it, which is a compound literal of the union and is the
2096    /// same object the GNU cast to a union builds. And a declaration written with a member's type
2097    /// declares the same function as one written with the union, which is what lets a pointer to
2098    /// either be assigned from the other, and is what gnulib's signature checks do.
2099    ///
2100    /// The `void *` member is last on purpose: the search takes a member whose type the value
2101    /// already has wherever it sits, and falls back to a pointer member that would take the value
2102    /// silently only when there is no such member, so `char *` reaches the catch-all past two
2103    /// members that are not it.
2104    #[test]
2105    fn a_transparent_union_takes_the_member_a_value_fits_and_is_declared_either_way() {
2106        let text = tast(concat!(
2107            "struct one { int x; };\n",
2108            "struct two { long y; };\n",
2109            "typedef union { struct one *a; struct two *b; void *any; }\n",
2110            "  __attribute__((__transparent_union__)) arg;\n",
2111            "int takes(arg v);\n",
2112            "int f(struct one *p, struct two *q, char *c) {\n",
2113            "  return takes(p) + takes(q) + takes(c) + takes(0);\n",
2114            "}\n",
2115            // The other half, which is about declarations and not about values.
2116            "int takes(struct one *p);\n",
2117            "int (*as_a_member)(struct one *) = takes;\n",
2118            "int (*as_the_union)(arg) = takes;\n",
2119        ));
2120        assert!(text.contains("compound-literal"), "{text}");
2121    }
2122
2123    /// The other place glibc writes it, which is the one that matters.
2124    ///
2125    /// `sys/socket.h` puts the attribute on the declarator of the typedef rather than after the
2126    /// closing brace, so a compiler that reads only the second position reads nothing at all of
2127    /// the eleven pointer union that `bind` and `connect` and five others take.
2128    #[test]
2129    fn the_attribute_on_the_declarator_of_a_typedef_is_the_one_glibc_writes() {
2130        let text = tast(concat!(
2131            "struct sockaddr { int family; };\n",
2132            "struct sockaddr_in { int family; int addr; };\n",
2133            "typedef union { struct sockaddr *plain; struct sockaddr_in *inet; }\n",
2134            "  addr_arg __attribute__((__transparent_union__));\n",
2135            "int bind_to(int fd, addr_arg where);\n",
2136            "int f(struct sockaddr_in *where) { return bind_to(0, where); }\n",
2137        ));
2138        assert!(text.contains("compound-literal"), "{text}");
2139    }
2140
2141    /// What the attribute promises has to be a promise this can keep, and is checked rather than
2142    /// believed.
2143    ///
2144    /// A union wider than its first member is not passed the way that member is, and a structure
2145    /// has no members that are alternatives to each other at all. gcc drops the attribute in both
2146    /// cases with a warning and compiles the program, because the type is still a perfectly good
2147    /// type and only the extra rule is gone.
2148    #[test]
2149    fn a_transparent_union_that_cannot_keep_the_promise_is_dropped_with_a_word_about_it() {
2150        let result = run(
2151            &options(),
2152            concat!(
2153                "union wider { int small; double large; } __attribute__((transparent_union));\n",
2154                "struct plain { int x; } __attribute__((transparent_union));\n",
2155            ),
2156        );
2157        assert_eq!(result.messages.len(), 2, "{:?}", result.messages);
2158        assert!(!result.failed(), "{:?}", result.messages);
2159        for message in &result.messages {
2160            assert!(message.contains("'transparent_union' attribute ignored"), "{message}");
2161        }
2162        assert!(result.messages[0].contains("first member"), "{:?}", result.messages);
2163        assert!(result.messages[1].contains("only a union"), "{:?}", result.messages);
2164    }
2165
2166    /// What an access to a packed member is allowed to assume about where it starts.
2167    ///
2168    /// C 6.2.8 gives an object of type `int` four byte alignment and `packed` takes it away: the
2169    /// member goes wherever the members in front of it ended, and an `int` one byte into a record
2170    /// is aligned to one. The number on the access has to say so, because it is what the back end
2171    /// picks instructions from and what judgement J1 of `spec/safe-memory/04-safety-model.md`
2172    /// tests at run time. Four on an address that is a multiple of one is the compiler refusing a
2173    /// program that is doing nothing wrong.
2174    #[test]
2175    fn an_access_to_a_packed_member_says_the_alignment_the_layout_left_it() {
2176        let packed = body(concat!(
2177            "struct P { char c; int v; } __attribute__((packed));\n",
2178            "int f(struct P *p) { return p->v; }\n",
2179        ));
2180        assert!(packed.contains("load.i32 %2, align 1,"), "{packed}");
2181        // The same record without the attribute, which is where the type's own answer is right.
2182        let plain = body(concat!(
2183            "struct P { char c; int v; };\n",
2184            "int f(struct P *p) { return p->v; }\n",
2185        ));
2186        assert!(plain.contains("load.i32 %2, align 4,"), "{plain}");
2187    }
2188
2189    /// The same, for the two ways of being further in than the member itself.
2190    ///
2191    /// An array member is stepped through rather than offset to, and a record member is offset to
2192    /// twice, and both have to carry the outer record's alignment with them. A step of a whole
2193    /// number of elements leaves what the element width and the address had in common, which for
2194    /// a one byte aligned base is one byte however wide the elements are.
2195    #[test]
2196    fn what_is_inside_a_packed_member_is_no_more_aligned_than_the_member_is() {
2197        let stepped = body(concat!(
2198            "struct P { char c; int v[4]; } __attribute__((packed));\n",
2199            "int f(struct P *p, int i) { return p->v[i]; }\n",
2200        ));
2201        assert!(stepped.contains(", align 1,"), "{stepped}");
2202        assert!(!stepped.contains(", align 4,"), "{stepped}");
2203        let nested = body(concat!(
2204            "struct Inner { int v; };\n",
2205            "struct P { char c; struct Inner in; } __attribute__((packed));\n",
2206            "int f(struct P *p) { return p->in.v; }\n",
2207        ));
2208        assert!(nested.contains(", align 1,"), "{nested}");
2209        assert!(!nested.contains(", align 4,"), "{nested}");
2210    }
2211
2212    /// The other way an access gets an alignment its type would not have given it, which is a
2213    /// typedef that lowered one.
2214    ///
2215    /// `aligned` raises on a declaration and replaces on a typedef, so `typedef aligned(1) U32
2216    /// unalign32` really is a four byte integer that may sit anywhere. Reading a word out of a
2217    /// buffer nothing aligned is what every compression library does and this is how they write
2218    /// it: zstd's `lib/common/mem.h` is four typedefs of exactly this shape and `MEM_read32` is
2219    /// `*(const unalign32 *)ptr`.
2220    ///
2221    /// What made this worth a test is where it went wrong. `__alignof__` was right the whole time,
2222    /// because that asks about the type and the type knew. The access was wrong, because the type
2223    /// of `*p` was worked out by resolving every typedef in `p`'s type rather than only the one on
2224    /// the pointer, so the thing being read came back as the `unsigned int` the typedef stands for
2225    /// and the alignment came off that. The number on the access is what judgement J1 tests, so
2226    /// the monitor refused fifty six of zstd's reads, all of them correct.
2227    #[test]
2228    fn an_access_through_a_typedef_that_lowered_its_alignment_says_the_one_the_typedef_asked_for() {
2229        let through = body(concat!(
2230            "typedef __attribute__((aligned(1))) unsigned int unalign32;\n",
2231            "unsigned int f(const void *p) { return *(const unalign32 *)p; }\n",
2232        ));
2233        assert!(through.contains("load.i32 %0, align 1,"), "{through}");
2234        // A subscript is `*(p + i)` and a member through an arrow is a dereference and then an
2235        // offset, so both read the pointee the same way and both have to come out the same.
2236        let stepped = body(concat!(
2237            "typedef __attribute__((aligned(1))) unsigned int unalign32;\n",
2238            "unsigned int f(unalign32 *p, int i) { return p[i]; }\n",
2239        ));
2240        assert!(stepped.contains(", align 1,"), "{stepped}");
2241        assert!(!stepped.contains(", align 4,"), "{stepped}");
2242        // And the same typedef without the attribute, which is where the type's own answer is the
2243        // right one and nothing above should have changed it.
2244        let plain = body(concat!(
2245            "typedef unsigned int word;\n",
2246            "unsigned int f(const void *p) { return *(const word *)p; }\n",
2247        ));
2248        assert!(plain.contains("load.i32 %0, align 4,"), "{plain}");
2249    }
2250
2251    /// The same thing where the object does not fit in a register, which is what `_mm_loadu_si128`
2252    /// is and is the reason the intrinsic header exists at all.
2253    ///
2254    /// `__m128i_u` is `__m128i` with `aligned(1)` on it and `_mm_loadu_si128` is one line,
2255    /// `return *(const __m128i_u *)__p;`. Two things had to be right for that to come out as the
2256    /// unaligned read it is. The dereference has to keep the typedef, which is what the test above
2257    /// covers, and then the return has to read the object as aligned as the object is rather than
2258    /// as aligned as the type it is being returned as: a vector comes back in registers on this
2259    /// ABI, so the sixteen bytes are read as two pieces of eight and the ABI's own alignment is
2260    /// what lays the two pieces out rather than what either read may claim.
2261    #[test]
2262    fn a_vector_read_through_a_typedef_that_lowered_its_alignment_comes_back_a_piece_at_a_time() {
2263        let prefix = concat!(
2264            "typedef long long v2di __attribute__((__vector_size__(16)));\n",
2265            "typedef long long v2di_u __attribute__((__vector_size__(16), __aligned__(1)));\n",
2266        );
2267        let loaded =
2268            body(&format!("{prefix}v2di f(const void *p) {{ return *(const v2di_u *)p; }}"));
2269        assert_eq!(loaded.matches("align 1\n").count(), 2, "{loaded}");
2270        assert!(!loaded.contains("align 16"), "{loaded}");
2271        // The store side, which travels as a copy into whatever the pointer names and so carries
2272        // one number for both ends of it.
2273        let stored = body(&format!("{prefix}void f(void *p, v2di b) {{ *(v2di_u *)p = b; }}"));
2274        assert!(stored.contains("memcpy %0, %3, size 16, align 1"), "{stored}");
2275        // And the aligned spelling of the same two, which is where sixteen is the right answer.
2276        let aligned =
2277            body(&format!("{prefix}v2di f(const void *p) {{ return *(const v2di *)p; }}"));
2278        assert!(aligned.contains("align 16"), "{aligned}");
2279    }
2280
2281    /// The same attribute on a declaration rather than on a type, which asks that this object or
2282    /// this function be at a multiple of that, and which is where a program that has to hand a
2283    /// buffer to hardware or keep two counters off one cache line writes it.
2284    ///
2285    /// A raise and never a lower, which is the one place it does not agree with `_Alignas`: below
2286    /// what the type already has, `_Alignas` is a constraint violation and this is ignored without
2287    /// a word. `__alignof__` of the object answers what the object got and not what its type has,
2288    /// because that is the question a program asking it is asking.
2289    #[test]
2290    fn the_aligned_attribute_on_a_declaration_raises_what_that_one_object_is_aligned_to() {
2291        tast(concat!(
2292            "int v __attribute__((aligned(64)));\n",
2293            "_Static_assert(__alignof__(v) == 64, \"v\");\n",
2294            // Written on the specifiers rather than after the declarator, which asks the same
2295            // thing and is the spelling a header is more likely to use.
2296            "__attribute__((aligned(32))) int w;\n",
2297            "_Static_assert(__alignof__(w) == 32, \"w\");\n",
2298            "[[gnu::aligned(16)]] int x;\n",
2299            "_Static_assert(__alignof__(x) == 16, \"x\");\n",
2300            // Two below the four an `int` already has, so nothing is asked for and nothing is
2301            // said, and the type still answers for the object.
2302            "int y __attribute__((aligned(2)));\n",
2303            "_Static_assert(__alignof__(y) == 4, \"y\");\n",
2304            // A local, which is the same question one scope down.
2305            "void f(void) { int a __attribute__((aligned(128)));\n",
2306            "_Static_assert(__alignof__(a) == 128, \"a\"); (void)a; }\n",
2307            // The type is untouched by any of it: `aligned` on a declaration says where that
2308            // declaration goes and says nothing about every other `int` in the program.
2309            "_Static_assert(__alignof__(int) == 4, \"int\");\n",
2310            // A function, which has no alignment of its own for this to be measured against and
2311            // takes whatever was asked for.
2312            "void g(void) __attribute__((aligned(256)));\n",
2313            "void g(void) {}\n",
2314            "_Static_assert(__alignof__(g) == 256, \"g\");\n",
2315        ));
2316    }
2317
2318    /// And what the object file says, which is the half that makes the answer above true. A
2319    /// function is at a fixed offset inside the text section, so it is at a multiple of two
2320    /// hundred and fifty six only if the section is at one too.
2321    #[test]
2322    fn what_a_declaration_asked_to_be_aligned_to_is_what_the_assembler_is_told() {
2323        let text = asm(concat!(
2324            "int v __attribute__((aligned(64)));\n",
2325            "void g(void) __attribute__((aligned(256)));\n",
2326            "void g(void) {}\n",
2327            "void plain(void) {}\n",
2328        ));
2329        assert!(text.contains("\t.p2align\t6\n\t.type\tv, @object\n"), "{text}");
2330        assert!(text.contains("\t.p2align\t8, 0x90\n\t.globl\tg\n"), "{text}");
2331        assert!(text.contains("\t.p2align\t4, 0x90\n\t.globl\tplain\n"), "{text}");
2332    }
2333
2334    /// The same question asked by the command line instead of by a declaration, which is
2335    /// `-falign-functions` and is what femtolisp's Makefile writes on every compile. The flag is a
2336    /// floor: a function that named a larger boundary itself keeps it, and one that named a
2337    /// smaller one is moved up, because the attribute is a requirement about one function and the
2338    /// flag is a preference about all of them.
2339    #[test]
2340    fn the_alignment_the_command_line_asked_of_every_function_is_a_floor_under_all_of_them() {
2341        let source = concat!(
2342            "void g(void) __attribute__((aligned(256)));\n",
2343            "void g(void) {}\n",
2344            "void small(void) __attribute__((aligned(4)));\n",
2345            "void small(void) {}\n",
2346            "void plain(void) {}\n",
2347        );
2348        let listing = |align: Option<u32>| {
2349            let mut opts = options();
2350            opts.emit = EmitKind::Asm;
2351            opts.align_functions = align;
2352            let result = run(&opts, source);
2353            assert_eq!(result.messages, Vec::<String>::new(), "expected this to compile");
2354            result.text().to_owned()
2355        };
2356
2357        let text = listing(Some(32));
2358        assert!(text.contains("\t.p2align\t8, 0x90\n\t.globl\tg\n"), "the larger one wins: {text}");
2359        assert!(text.contains("\t.p2align\t5, 0x90\n\t.globl\tsmall\n"), "{text}");
2360        assert!(text.contains("\t.p2align\t5, 0x90\n\t.globl\tplain\n"), "{text}");
2361
2362        // And the negative form, which asks for the smallest boundary the target has and is the
2363        // one spelling that takes a function below the sixteen bytes it would get anyway.
2364        let text = listing(Some(8));
2365        assert!(text.contains("\t.p2align\t3, 0x90\n\t.globl\tplain\n"), "{text}");
2366        assert!(text.contains("\t.p2align\t8, 0x90\n\t.globl\tg\n"), "{text}");
2367    }
2368
2369    /// And the one position where the attribute means something else. On a declaration it raises
2370    /// what that one object is aligned to, and on a typedef it says what the type is aligned to,
2371    /// which gcc lets it lower as well: `typedef int L __attribute__((aligned(2)))` really is an
2372    /// `int` at a multiple of two and a record with one in it really is smaller for it.
2373    ///
2374    /// The size is left alone, which is gcc's answer rather than an omission here. An aligned
2375    /// typedef whose alignment is larger than what it stands for keeps the size it stands for,
2376    /// and gcc refuses an array of one rather than padding the elements out to fit.
2377    #[test]
2378    fn an_aligned_typedef_says_what_an_object_of_it_is_aligned_to_and_may_lower_it() {
2379        tast(concat!(
2380            "typedef int L __attribute__((aligned(2)));\n",
2381            "_Static_assert(__alignof__(L) == 2, \"L\");\n",
2382            "_Static_assert(_Alignof(L) == 2, \"L alignof\");\n",
2383            // Below what an `int` has, which is the half a declaration cannot ask for.
2384            "_Static_assert(sizeof(L) == 4, \"L size\");\n",
2385            "struct T { char c; L x; };\n",
2386            "_Static_assert(sizeof(struct T) == 6, \"T\");\n",
2387            "_Static_assert(__builtin_offsetof(struct T, x) == 2, \"T.x\");\n",
2388            // And upwards, which is the ordinary direction and the one a header writes.
2389            "typedef int H __attribute__((aligned(16)));\n",
2390            "_Static_assert(__alignof__(H) == 16, \"H\");\n",
2391            "_Static_assert(sizeof(H) == 4, \"H size\");\n",
2392            "struct U { char c; H x; };\n",
2393            "_Static_assert(sizeof(struct U) == 32, \"U\");\n",
2394            "_Static_assert(__builtin_offsetof(struct U, x) == 16, \"U.x\");\n",
2395            // A typedef of a typedef, where the nearer one is the one the declaration was
2396            // written with and is the one that answers.
2397            "typedef L M __attribute__((aligned(8)));\n",
2398            "_Static_assert(__alignof__(M) == 8, \"M\");\n",
2399            // And one that asked for nothing, which still has whatever the one behind it asked
2400            // for because it is the same type spelled again.
2401            "typedef L N;\n",
2402            "_Static_assert(__alignof__(N) == 2, \"N\");\n",
2403            // The type it stands for is untouched by any of it.
2404            "_Static_assert(__alignof__(int) == 4, \"int\");\n",
2405        ));
2406        let text = asm(concat!(
2407            "typedef int L __attribute__((aligned(2)));\n",
2408            "typedef int H __attribute__((aligned(16)));\n",
2409            "L low;\n",
2410            "H high;\n",
2411        ));
2412        assert!(text.contains("\t.p2align\t1\n\t.type\tlow, @object\n"), "{text}");
2413        assert!(text.contains("\t.p2align\t4\n\t.type\thigh, @object\n"), "{text}");
2414    }
2415
2416    /// The attribute that builds a type rather than changing a layout. `vector_size(n)` says the
2417    /// declared type is `n` bytes of what was written, taken as lanes, and every operator over
2418    /// one is that operator over each lane.
2419    ///
2420    /// The size is in bytes and not in lanes, which is the part a reader gets backwards: sixteen
2421    /// of `int` is four lanes and sixteen of `char` is sixteen. A vector is aligned to its own
2422    /// size, which is what a machine that has the registers wants and what gcc gives one here.
2423    #[test]
2424    fn the_vector_size_attribute_builds_a_type_of_lanes_and_measures_it_in_bytes() {
2425        tast(concat!(
2426            "typedef int __attribute__((vector_size(16))) v4si;\n",
2427            "_Static_assert(sizeof(v4si) == 16 && _Alignof(v4si) == 16, \"v4si\");\n",
2428            "typedef char __attribute__((vector_size(16))) v16qi;\n",
2429            "_Static_assert(sizeof(v16qi) == 16, \"v16qi\");\n",
2430            // One lane, which is a power of two and is a vector rather than the type it was
2431            // written on: the operators it takes are the vector's and not the scalar's.
2432            "typedef int __attribute__((vector_size(4))) v1si;\n",
2433            "_Static_assert(sizeof(v1si) == 4, \"v1si\");\n",
2434            // The armoured spelling and the bracket one, which are the same attribute.
2435            "typedef float __attribute__((__vector_size__(8))) v2sf;\n",
2436            "_Static_assert(sizeof(v2sf) == 8, \"v2sf\");\n",
2437            "typedef short [[gnu::vector_size(8)]] v4hi;\n",
2438            "_Static_assert(sizeof(v4hi) == 8, \"v4hi\");\n",
2439            // A lane is what a subscript answers with, and a vector is not a pointer: there is
2440            // nothing to decay and the lane type is the one the arithmetic happens in.
2441            "v4si g;\n",
2442            "_Static_assert(sizeof(g[0]) == 4, \"lane\");\n",
2443            "_Static_assert(sizeof(g + g) == 16, \"whole\");\n",
2444            // A scalar beside a vector stands for itself in every lane, so the answer is still
2445            // the vector and not the wider of the two types.
2446            "_Static_assert(sizeof(g + 1) == 16, \"broadcast\");\n",
2447            // An array of them, which is the ordinary way a program holds several.
2448            "_Static_assert(sizeof(v4si[3]) == 48, \"array\");\n",
2449        ));
2450    }
2451
2452    /// A whole vector written into an array of them, and a vector named by a type name rather
2453    /// than by a typedef.
2454    ///
2455    /// Both are the same question asked twice. A vector is filled like an array of its lanes when
2456    /// a list is written into it, so a braced element that is itself a vector has to be taken
2457    /// whole rather than started as the first lane, and the type of what was written is the only
2458    /// thing that says which was meant. And a type name is where a compound literal and a cast
2459    /// spell the type out, which a macro taking a lane type and a lane count does, so the
2460    /// attribute has to be read there and not only on a declaration.
2461    #[test]
2462    fn a_vector_is_written_whole_into_an_array_of_them_and_named_by_a_type_name() {
2463        tast(concat!(
2464            "typedef int __attribute__((vector_size(8))) v2si;\n",
2465            "v2si table[] = { (v2si){ 1, 2 }, (v2si){ 3, 4 } };\n",
2466            "_Static_assert(sizeof(table) == 16, \"two of them and not eight lanes\");\n",
2467            // The size written out rather than named, which is the spelling a macro expands to.
2468            "v2si written = (int __attribute__((vector_size(8)))){ 5, 6 };\n",
2469            "_Static_assert(sizeof((int __attribute__((vector_size(16)))){ 0 }) == 16, \"named\");\n",
2470            // A lane is still a lane, so a list of them fills the vector the way it always did
2471            // and the rule above did not turn brace elision off.
2472            "v2si lanes[2] = { 1, 2, 3, 4 };\n",
2473            "_Static_assert(sizeof(lanes) == 16, \"still elided\");\n",
2474        ));
2475    }
2476
2477    /// A lane written rather than read, and a shift whose two vectors are not the same type.
2478    ///
2479    /// Both are places where a vector is not the aggregate it looks like. A subscript of one is
2480    /// an lvalue because the vector it came from is an object, so a lane can be assigned to and
2481    /// has an address, and a qualifier written on the vector reaches every lane the way it does
2482    /// on an array. And a shift is the one lanewise operator whose sides are not brought to a
2483    /// single type, since the right side counts rather than computes.
2484    #[test]
2485    fn a_lane_is_assignable_and_a_shift_takes_a_count_of_its_own_lane() {
2486        let result = run(
2487            &options(),
2488            concat!(
2489                "typedef int __attribute__((vector_size(16))) v4si;\n",
2490                "typedef unsigned __attribute__((vector_size(16))) v4ui;\n",
2491                "void write(v4si *out, v4ui a, v4si b, int n) {\n",
2492                "  v4si v = { 1, 2, 3, 4 };\n",
2493                "  v[0] = n;\n",
2494                "  v[1] += n;\n",
2495                "  v[2]++;\n",
2496                "  *&v[3] = n;\n",
2497                // The count is signed and the value is not, which no other operator allows.
2498                "  v4ui shifted = a >> b;\n",
2499                "  shifted <<= b;\n",
2500                // A scalar stands in every lane on either side of a shift, which is the half
2501                // that looks wrong: the shape of the answer comes off the count here.
2502                "  *out = v + (v4si)shifted + (1 << b);\n",
2503                "}\n",
2504                // A qualifier on the vector is a qualifier on the lane, so there is nothing here
2505                // to write to.
2506                "void refused(const v4si c) {\n",
2507                "  c[0] = 1;\n",
2508                "}\n",
2509            ),
2510        );
2511        assert_eq!(result.messages.len(), 1, "{:?}", result.messages);
2512        assert!(result.messages[0].contains("assignment of read-only"), "{:?}", result.messages);
2513    }
2514
2515    /// The third layout attribute, and the one that moves nothing. It says the scalars in the
2516    /// record are stored in the byte order it names, so on a target whose order is the other one
2517    /// every load through a member swaps its bytes and so does every store. The record is the size
2518    /// and the alignment it would be without it and every member is where it would be, which is
2519    /// what gcc 16.2.0 does and what was measured before any of this was written.
2520    ///
2521    /// All four spellings are here because a header writes the armoured one, the attribute may be
2522    /// written in front of the body as well as behind it, and the C23 spelling in gcc's namespace
2523    /// is the same attribute a fourth way. The order the target already has is the fifth case and
2524    /// asks for nothing, since a program saying what would have happened anyway is entitled to be
2525    /// compiled as though it had said nothing.
2526    #[test]
2527    fn a_record_that_asks_for_the_other_byte_order_swaps_every_scalar_it_holds() {
2528        let read = "int f(struct s *p) { return p->i; }\n";
2529        let big = "struct s { int i; } __attribute__((scalar_storage_order(\"big-endian\")));\n";
2530        assert!(body(&format!("{big}{read}")).contains("bswap"), "{big}");
2531
2532        let armoured =
2533            "struct s { int i; } __attribute__((__scalar_storage_order__(\"big-endian\")));\n";
2534        assert!(body(&format!("{armoured}{read}")).contains("bswap"), "{armoured}");
2535
2536        let front = "struct __attribute__((scalar_storage_order(\"big-endian\"))) s { int i; };\n";
2537        assert!(body(&format!("{front}{read}")).contains("bswap"), "{front}");
2538
2539        let standard = "struct s { int i; } [[gnu::scalar_storage_order(\"big-endian\")]];\n";
2540        assert!(body(&format!("{standard}{read}")).contains("bswap"), "{standard}");
2541
2542        let same =
2543            "struct s { int i; } __attribute__((scalar_storage_order(\"little-endian\")));\n";
2544        assert!(!body(&format!("{same}{read}")).contains("bswap"), "{same}");
2545
2546        // A member one byte wide has only one order, and neither has the record itself.
2547        let byte = "struct s { char c; } __attribute__((scalar_storage_order(\"big-endian\")));\n";
2548        let source = format!("{byte}int f(struct s *p) {{ return p->c; }}\n");
2549        assert!(!body(&source).contains("bswap"), "{byte}");
2550
2551        tast(concat!(
2552            "struct s { int i; short h; char c; }",
2553            " __attribute__((scalar_storage_order(\"big-endian\")));\n",
2554            "_Static_assert(sizeof(struct s) == 8 && _Alignof(struct s) == 4, \"s\");\n",
2555            "_Static_assert(__builtin_offsetof(struct s, h) == 4, \"s.h\");\n",
2556            "_Static_assert(__builtin_offsetof(struct s, c) == 6, \"s.c\");\n",
2557        ));
2558    }
2559
2560    /// A bit-field in one of these records lies in the same bytes and is counted from the top of
2561    /// them rather than from the bottom. `execute/20230630-2.c` is the program that says so:
2562    /// `short i : 12` in front of four one bit fields holds 341 in the two bytes `15 5f`, so the
2563    /// twelve bits are the top twelve and reading them is a shift right by four rather than a mask
2564    /// alone. The plain record shifts nothing, since there the field is already at the bottom.
2565    #[test]
2566    fn a_bit_field_in_one_of_those_records_is_counted_from_the_top_of_its_bytes() {
2567        let members = "short i : 12; char c1 : 1; char c2 : 1; char c3 : 1; char c4 : 1;";
2568        let read = "int f(struct s *p) { return p->i; }\n";
2569        let plain = format!("struct s {{ {members} }};\n{read}");
2570        let reversed = format!(
2571            "struct s {{ {members} }} __attribute__((scalar_storage_order(\"big-endian\")));\n\
2572             {read}"
2573        );
2574        assert!(body(&plain).contains("shl"), "{}", body(&plain));
2575        assert!(!body(&plain).contains("bswap"), "{}", body(&plain));
2576        // The two loaded bytes the other way round and then the top twelve bits of them, which
2577        // is the arithmetic shift right on its own with nothing to move the field up to the top.
2578        let built = body(&reversed);
2579        assert!(built.contains("bswap"), "{built}");
2580        assert!(!built.contains("shl"), "{built}");
2581        assert!(built.contains("ashr"), "{built}");
2582    }
2583
2584    /// The one thing a program may not do with a member of one of these records. The bytes are
2585    /// there and they are the other way round, so a pointer to them is a pointer to a value of
2586    /// that type which is not the value the member holds. gcc refuses it in these words, and it
2587    /// refuses only the scalars: the address of a nested record or of an array member is an
2588    /// address of the bytes as they lie, and an access through it asks its own type which order
2589    /// it is in.
2590    #[test]
2591    fn the_address_of_a_scalar_stored_the_other_way_round_is_refused() {
2592        let opts = options();
2593        let record = "struct s { int i; int a[2]; struct in { int n; } w; }\n\
2594                      __attribute__((scalar_storage_order(\"big-endian\")));\n";
2595        let taken = format!("{record}int *f(struct s *p) {{ return &p->i; }}\n");
2596        assert_eq!(
2597            run(&opts, &taken).messages,
2598            ["/main.c:3:30: error: cannot take address of scalar with reverse storage order \
2599              [E0712]"]
2600        );
2601        let element = format!("{record}int *f(struct s *p) {{ return &p->a[0]; }}\n");
2602        let messages = run(&opts, &element).messages;
2603        assert!(messages[0].contains("[E0712]"), "{messages:?}");
2604
2605        let whole = format!("{record}int *f(struct s *p) {{ return (int *) &p->w; }}\n");
2606        assert_eq!(run(&opts, &whole).messages, Vec::<String>::new(), "{whole}");
2607    }
2608
2609    /// An argument that names neither order, which gcc answers with the two words it does take.
2610    /// A program that writes one of these is reading a wire format and would rather be told the
2611    /// spelling it got wrong than be handed a record laid out in the order it did not ask for.
2612    #[test]
2613    fn a_storage_order_that_names_neither_end_is_refused_with_the_two_words_that_are_taken() {
2614        let opts = options();
2615        let wrong = "struct s { int i; } __attribute__((scalar_storage_order(\"middle\")));\n";
2616        assert_eq!(
2617            run(&opts, wrong).messages,
2618            ["/main.c:1:36: error: 'scalar_storage_order' argument must be one of \"big-endian\" \
2619              or \"little-endian\" [E0688]"]
2620        );
2621        let bare = "struct s { int i; } __attribute__((scalar_storage_order));\n";
2622        let messages = run(&opts, bare).messages;
2623        assert!(messages[0].contains("[E0688]"), "{messages:?}");
2624    }
2625
2626    /// Where a bit-field goes, which packing decides and which is the part of all this that
2627    /// is not what the names suggest. A bit-field goes at the next free bit unless that would
2628    /// make it span more storage than its own type occupies, and then it moves to the next
2629    /// boundary of its alignment. Any packing at all takes that rule out, and `#pragma pack`
2630    /// counts even where it lowers nothing, which is the fourth and seventh cases here.
2631    ///
2632    /// Nothing in the language can be asked where a bit-field is, since `offsetof` refuses one
2633    /// and every size below comes out the same either way, so what is asked is the byte a read
2634    /// of the field loads from.
2635    #[test]
2636    fn packing_is_what_decides_whether_a_bit_field_may_straddle_its_own_storage() {
2637        // A `char` field after twelve bits, which will not straddle unpacked and does packed.
2638        assert_eq!(bit_field_byte("struct s { int x : 12; char y : 6; };"), 2);
2639        assert_eq!(
2640            bit_field_byte("struct s { int x : 12; char y : 6; } __attribute__((packed));"),
2641            1
2642        );
2643        assert_eq!(
2644            bit_field_byte("struct s { int x : 12; __attribute__((packed)) char y : 6; };"),
2645            1
2646        );
2647        assert_eq!(bit_field_byte("#pragma pack(4)\nstruct s { int x : 12; char y : 6; };"), 1);
2648        // A thirty bit field after a byte, which is the case the rule was written for.
2649        assert_eq!(bit_field_byte("struct s { char x; int y : 30; };"), 4);
2650        assert_eq!(bit_field_byte("struct s { char x; int y : 30; } __attribute__((packed));"), 1);
2651        // Four is what an `int` asked for anyway, so this caps nothing and still counts.
2652        assert_eq!(bit_field_byte("#pragma pack(4)\nstruct s { char x; int y : 30; };"), 1);
2653        assert_eq!(bit_field_byte("#pragma pack(2)\nstruct s { char x; int y : 30; };"), 1);
2654    }
2655
2656    /// The byte a read of `s.y` loads from, which is where the bit-field was placed.
2657    fn bit_field_byte(record: &str) -> u64 {
2658        let source = format!("{record}\nint f(struct s *p) {{ return p->y; }}\n");
2659        let body = body(&source);
2660        let Some((before, _)) = body.split_once("ptr_add") else { return 0 };
2661        let (_, constant) = before.rsplit_once("iconst.i64 ").expect("an offset constant");
2662        constant.lines().next().expect("a line").trim().parse().expect("a byte offset")
2663    }
2664
2665    /// An attribute in the middle of a specifier list, which is where a member usually carries
2666    /// one and which was read and then thrown away. The `[[...]]` spelling and whatever was
2667    /// written in front of the declaration are collected as the list is walked and the
2668    /// `__attribute__` spelling is put straight on the specifiers, and the two were assigned
2669    /// over each other rather than joined.
2670    #[test]
2671    fn an_attribute_among_the_specifiers_is_kept_beside_the_ones_written_in_front() {
2672        tast(concat!(
2673            "struct a { char c; __attribute__((aligned(8))) int i; };\n",
2674            "_Static_assert(sizeof(struct a) == 16 && _Alignof(struct a) == 8, \"a\");\n",
2675            "_Static_assert(__builtin_offsetof(struct a, i) == 8, \"a.i\");\n",
2676            "struct b { char c; __attribute__((packed)) int i; };\n",
2677            "_Static_assert(sizeof(struct b) == 5 && _Alignof(struct b) == 1, \"b\");\n",
2678            "_Static_assert(__builtin_offsetof(struct b, i) == 1, \"b.i\");\n",
2679            "typedef struct { char c; int i; } __attribute__((packed)) c;\n",
2680            "_Static_assert(sizeof(c) == 5 && _Alignof(c) == 1, \"c\");\n",
2681        ));
2682    }
2683
2684    /// The other half, which is `#pragma pack`. It caps a member's alignment where `packed`
2685    /// drops it, so `pack(2)` leaves a `short` where it was and moves an `int`, and it caps a
2686    /// member the program asked to align as well, which is where the two differ. It is read
2687    /// at the closing brace of the body, so a line written in the middle of one settles the
2688    /// whole record rather than the members after it, and `push` and `pop` nest.
2689    #[test]
2690    fn pragma_pack_caps_every_member_and_is_read_where_the_body_closes() {
2691        tast(concat!(
2692            "#pragma pack(1)\n",
2693            "struct A { char c; int i; };\n",
2694            "_Static_assert(sizeof(struct A) == 5 && _Alignof(struct A) == 1, \"A\");\n",
2695            "_Static_assert(__builtin_offsetof(struct A, i) == 1, \"A.i\");\n",
2696            "#pragma pack()\n",
2697            "struct B { char c; int i; };\n",
2698            "_Static_assert(sizeof(struct B) == 8 && _Alignof(struct B) == 4, \"B\");\n",
2699            "#pragma pack(2)\n",
2700            "struct C { char c; int i; double d; };\n",
2701            "_Static_assert(sizeof(struct C) == 14 && _Alignof(struct C) == 2, \"C\");\n",
2702            "_Static_assert(__builtin_offsetof(struct C, d) == 6, \"C.d\");\n",
2703            // A member the program aligned, which `pack` caps and `packed` would not.
2704            "struct K { char c; int i __attribute__((aligned(8))); };\n",
2705            "_Static_assert(sizeof(struct K) == 6 && _Alignof(struct K) == 2, \"K\");\n",
2706            "_Static_assert(__builtin_offsetof(struct K, i) == 2, \"K.i\");\n",
2707            // The record's own `aligned` is not a member's, so it is not capped.
2708            "struct J { char c; int i; } __attribute__((aligned(8)));\n",
2709            "_Static_assert(sizeof(struct J) == 8 && _Alignof(struct J) == 8, \"J\");\n",
2710            "#pragma pack()\n",
2711            "#pragma pack(push, 1)\n",
2712            "struct D { char c; short s; };\n",
2713            "_Static_assert(sizeof(struct D) == 3 && _Alignof(struct D) == 1, \"D\");\n",
2714            "#pragma pack(pop)\n",
2715            "struct E { char c; short s; };\n",
2716            "_Static_assert(sizeof(struct E) == 4 && _Alignof(struct E) == 2, \"E\");\n",
2717            // Written in the middle of a body, and it still settles the whole record.
2718            "struct H { char c;\n",
2719            "#pragma pack(1)\n",
2720            "  int i; };\n",
2721            "_Static_assert(sizeof(struct H) == 5 && _Alignof(struct H) == 1, \"H\");\n",
2722            "#pragma pack(1)\n",
2723            "struct I { char c;\n",
2724            "#pragma pack()\n",
2725            "  int i; };\n",
2726            "_Static_assert(sizeof(struct I) == 8 && _Alignof(struct I) == 4, \"I\");\n",
2727            "#pragma pack()\n",
2728            // Nested pushes, each one giving back what the one under it had.
2729            "#pragma pack(push, 8)\n",
2730            "#pragma pack(push, 1)\n",
2731            "struct P { char c; int i; };\n",
2732            "_Static_assert(sizeof(struct P) == 5 && _Alignof(struct P) == 1, \"P\");\n",
2733            "#pragma pack(pop)\n",
2734            "struct Q { char c; int i; };\n",
2735            "_Static_assert(sizeof(struct Q) == 8 && _Alignof(struct Q) == 4, \"Q\");\n",
2736            "#pragma pack(pop)\n",
2737            // A cap above what every member already asks for changes nothing at all.
2738            "#pragma pack(16)\n",
2739            "struct R { char c; int i; };\n",
2740            "_Static_assert(sizeof(struct R) == 8 && _Alignof(struct R) == 4, \"R\");\n",
2741            "#pragma pack()\n",
2742            "#pragma pack(1)\n",
2743            "struct S { char c; int i : 5; int j : 20; };\n",
2744            "_Static_assert(sizeof(struct S) == 5 && _Alignof(struct S) == 1, \"S\");\n",
2745            "union T { char c; int i; };\n",
2746            "_Static_assert(sizeof(union T) == 4 && _Alignof(union T) == 1, \"T\");\n",
2747            "#pragma pack()\n",
2748        ));
2749    }
2750
2751    /// A line the reader cannot make sense of is a warning and the line is dropped, which is
2752    /// what GCC does with one, and these are its words for each of them. The last line is the
2753    /// one nothing else would reach, since it stands after every record in the file.
2754    #[test]
2755    fn a_pack_line_that_is_not_one_is_reported_in_the_words_gcc_uses() {
2756        let result = run(
2757            &options(),
2758            concat!(
2759                "#pragma pack 4\n",
2760                "#pragma pack(pop)\n",
2761                "#pragma pack(3)\n",
2762                "#pragma pack(1) junk\n",
2763                "#pragma pack(push, 1\n",
2764                "#pragma pack(x)\n",
2765                // These two are well formed and say nothing. Zero is how a line asks for the
2766                // target's own alignments back without writing empty parentheses.
2767                "#pragma pack(0)\n",
2768                "#pragma pack(push)\n",
2769                "struct s { char c; int i; };\n",
2770                "#pragma pack(pop)\n",
2771                "#pragma pack(pop, foo)\n",
2772            ),
2773        );
2774        let expected = [
2775            "missing `(` after `#pragma pack` - ignored",
2776            "`#pragma pack (pop)` encountered without matching `#pragma pack (push)`",
2777            "alignment must be a small power of two, not 3",
2778            "junk at end of `#pragma pack`",
2779            "malformed `#pragma pack(push[, id][, <n>])` - ignored",
2780            "unknown action `x` for `#pragma pack` - ignored",
2781            "`#pragma pack(pop, foo)` encountered without matching `#pragma pack(push, foo)`",
2782        ];
2783        assert_eq!(result.messages.len(), expected.len(), "{:?}", result.messages);
2784        for (message, want) in result.messages.iter().zip(expected) {
2785            assert!(message.contains(want), "expected {want:?} in {message:?}");
2786        }
2787    }
2788
2789    /// A pragma line ends where the next line starts, so a macro that comes to nothing and was
2790    /// written first on that next line has to hand the line on rather than take it away. This
2791    /// is SQLite through mingw-w64's headers: `<stdarg.h>` leaves a `#pragma pack(pop)` behind
2792    /// it and `sqlite3.h` writes every declaration with `SQLITE_API` in front, which is empty.
2793    /// Without it the pragma swallows the declaration, the program is left without it, and the
2794    /// only thing said about any of it is that there was junk on the pragma.
2795    #[test]
2796    fn a_declaration_behind_an_empty_macro_is_not_eaten_by_the_pragma_above_it() {
2797        let result = run(
2798            &options(),
2799            concat!(
2800                "#pragma pack(push, 1)\n",
2801                "#pragma pack(pop)\n",
2802                "#define API\n",
2803                "API const char version[] = \"3.53.4\";\n",
2804                "const char *get(void) { return version; }\n",
2805            ),
2806        );
2807        assert!(result.messages.is_empty(), "{:?}", result.messages);
2808    }
2809
2810    /// The two typedef spellings of the 128 bit types. gcc offers them as keywords rather
2811    /// than as typedefs in a header, which is the only way a program that includes nothing at
2812    /// all can still use them, and Apple's `<mach/arm/_structs.h>` is one such program.
2813    #[test]
2814    fn the_wide_integer_answers_to_all_three_of_its_names() {
2815        let text = tast("__uint128_t a; __int128_t b; unsigned __int128 c;\n");
2816        assert!(text.contains("decl #0 a : unsigned __int128"), "{text}");
2817        assert!(text.contains("decl #1 b : __int128"), "{text}");
2818        assert!(text.contains("decl #2 c : unsigned __int128"), "{text}");
2819    }
2820
2821    #[test]
2822    fn every_conversion_the_language_performs_is_a_node_in_the_output() {
2823        // The point of a typed tree. The source has one operator and the output has the
2824        // widening that operator asked for, spelled out, so that nothing downstream has to
2825        // work out the conversion rules a second time.
2826        let text = tast("long f(int a, long b) { return a + b; }\n");
2827        assert!(text.contains("convert arithmetic"), "{text}");
2828    }
2829
2830    #[test]
2831    fn a_mistake_in_each_phase_reaches_the_caller_and_writes_no_tree() {
2832        for source in [
2833            "#error stop\n",
2834            "int f(void) { return 1 + ; }\n",
2835            "int f(void) { return undeclared; }\n",
2836        ] {
2837            let result = run(&options(), source);
2838            assert!(result.failed(), "expected this to fail:\n{source}");
2839            assert!(
2840                result.text().is_empty(),
2841                "a file that did not compile wrote a tree:\n{source}"
2842            );
2843        }
2844    }
2845
2846    #[test]
2847    fn one_undeclared_name_is_one_message_and_not_one_per_use() {
2848        // The poisoning rule from `spec/06-lexer-and-parser.md` section 6.8, seen from the
2849        // outside. Three uses of a name that was never declared, and the operators over them
2850        // say nothing at all.
2851        let result = run(&options(), "int f(void) { return nope + nope * nope; }\n");
2852        assert_eq!(result.errors, 1, "{:?}", result.messages);
2853    }
2854
2855    #[test]
2856    fn a_declaration_the_parser_skipped_does_not_become_an_undeclared_name_as_well() {
2857        // The reason the checking is skipped after a failed parse. The parser gave up on the
2858        // first line and there is no `x` in the tree, so a checker run over it would report
2859        // every use of `x` below as undeclared, which is a second message about one mistake.
2860        let result = run(&options(), "int x = ;\nint f(void) { return x; }\n");
2861        assert_eq!(result.errors, 1, "{:?}", result.messages);
2862    }
2863
2864    #[test]
2865    fn werror_turns_a_warning_into_an_error_in_the_count_and_in_the_word() {
2866        let source = "int f(void) { char c = 300; return c; }\n";
2867        let plain = run(&options(), source);
2868        assert_eq!(plain.errors, 0, "{:?}", plain.messages);
2869        assert_eq!(plain.messages.len(), 1, "expected a warning about the narrowed constant");
2870        assert!(!plain.text().is_empty(), "a warning is not a reason to write nothing");
2871
2872        let mut opts = options();
2873        opts.warnings_are_errors = true;
2874        let strict = run(&opts, source);
2875        assert!(strict.failed());
2876        assert!(strict.text().is_empty(), "and under -Werror it is a reason to write nothing");
2877        for message in &strict.messages {
2878            assert!(!message.contains("warning:"), "{message}");
2879        }
2880    }
2881
2882    #[test]
2883    fn w_drops_the_warning_before_werror_can_promote_it() {
2884        let source = "int f(void) { char c = 300; return c; }\n";
2885        let mut opts = options();
2886        opts.warnings = false;
2887        let quiet = run(&opts, source);
2888        assert_eq!(quiet.messages, Vec::<String>::new());
2889        assert_eq!(quiet.errors, 0);
2890        assert!(!quiet.text().is_empty(), "and the file still compiles");
2891
2892        // A build that passes both means it wants neither, and the order it wrote them in is not
2893        // something to make it think about.
2894        opts.warnings_are_errors = true;
2895        let both = run(&opts, source);
2896        assert_eq!(both.messages, Vec::<String>::new());
2897        assert!(!both.failed(), "-w -Werror is not an error about a warning nobody saw");
2898    }
2899
2900    #[test]
2901    fn the_dialect_reaches_the_keywords_and_the_checking() {
2902        // `typeof` is C23's and GNU's, so the same source is a declaration under one dialect
2903        // and a mistake under the other, which is the keyword table being built per dialect.
2904        let source = "typeof(1) x;\n";
2905        let mut opts = options();
2906        opts.std = Std::C23;
2907        opts.gnu_extensions = false;
2908        assert!(!run(&opts, source).failed(), "{:?}", run(&opts, source).messages);
2909
2910        opts.std = Std::C17;
2911        assert!(run(&opts, source).failed());
2912    }
2913
2914    #[test]
2915    fn asking_for_a_kind_that_is_not_written_yet_runs_the_front_end_and_writes_nothing() {
2916        let mut opts = options();
2917        opts.emit = EmitKind::Object;
2918        let result = run(&opts, "int x = 1;\n");
2919        assert!(!result.failed(), "{:?}", result.messages);
2920        assert!(result.text().is_empty());
2921        // And it still finds what the checking finds, so a later kind on a broken file is not
2922        // a silent success.
2923        assert!(run(&opts, "int f(void) { return undeclared; }\n").failed());
2924    }
2925
2926    /// The machine code of `source`, insisting that it compiled cleanly.
2927    fn mir(source: &str) -> String {
2928        let mut opts = options();
2929        opts.emit = EmitKind::MirFinal;
2930        let result = run(&opts, source);
2931        assert_eq!(result.messages, Vec::<String>::new(), "expected this to compile:\n{source}");
2932        result.text().to_owned()
2933    }
2934
2935    /// The whole compiler in one assertion, which is what this emit kind is for.
2936    ///
2937    /// C in, machine instructions out, every register a real one and every frame offset a
2938    /// number. Everything between the two is checked somewhere else, one pass at a time. What is
2939    /// checked here is that the passes are joined up and that the driver runs them.
2940    #[test]
2941    fn a_function_goes_from_c_to_instructions_with_real_registers_in_them() {
2942        let text = mir("int add(int a, int b) { return a + b; }\n");
2943        assert!(text.starts_with("mfunc @add {"), "{text}");
2944        assert!(text.contains("x64.add_rr_32"), "{text}");
2945        assert!(text.contains("x64.ret"), "{text}");
2946        // A virtual register is what the allocator was there to remove, so one left in the
2947        // output is the difference between code and something that looks like code.
2948        assert!(!text.contains('%'), "{text}");
2949    }
2950
2951    /// A declaration has no body, so there is nothing to generate for one and nothing is.
2952    #[test]
2953    fn a_function_with_no_body_produces_no_machine_function() {
2954        let text = mir("int g(int);\nint f(int a) { return g(a); }\n");
2955        assert_eq!(text.matches("mfunc @").count(), 1, "{text}");
2956        assert!(text.contains("mfunc @f {"), "{text}");
2957        assert!(text.contains("x64.call"), "{text}");
2958    }
2959
2960    /// Two functions come out in the order the module holds them, which is source order.
2961    #[test]
2962    fn every_definition_in_the_file_is_generated_and_they_keep_their_order() {
2963        let text = mir("int a(int x) { return x; }\nint b(int x) { return x; }\n");
2964        let first = text.find("mfunc @a").expect("the first function");
2965        let second = text.find("mfunc @b").expect("the second function");
2966        assert!(first < second, "{text}");
2967    }
2968
2969    /// The target reaches the back end, so the same C is different instructions on Windows.
2970    #[test]
2971    fn the_target_decides_which_convention_the_generated_code_follows() {
2972        let mut opts = options();
2973        opts.emit = EmitKind::MirFinal;
2974        let linux = run(&opts, "int f(int a) { return a; }\n").text().to_owned();
2975        assert!(linux.contains("$rdi"), "{linux}");
2976
2977        opts.target = "x86_64-pc-windows-msvc".parse::<Triple>().unwrap();
2978        let windows = run(&opts, "int f(int a) { return a; }\n").text().to_owned();
2979        assert!(windows.contains("$rcx"), "{windows}");
2980        assert!(!windows.contains("$rdi"), "{windows}");
2981    }
2982
2983    /// And it reaches the front end, where it decides what an anonymous member is.
2984    ///
2985    /// This is the shape `<objidl.h>` writes and the Windows headers are full of: the union inside
2986    /// `STGMEDIUM` closes with `} DUMMYUNIONNAME;`, and the macro expands to nothing unless the
2987    /// program defined `NONAMELESSUNION`, so what is left is a union with a tag and no name. On a
2988    /// Windows target that is an anonymous member, and reading it as a declaration of nothing
2989    /// drops it, which loses the names and the eight bytes the member takes up both.
2990    #[test]
2991    fn a_tagged_member_with_no_name_is_a_member_on_windows_and_nothing_on_linux() {
2992        let source = concat!(
2993            "struct S { union U { int i; void *p; }; unsigned long tymed; };\n",
2994            "int size(void) { return sizeof(struct S); }\n",
2995            "int f(struct S *s) { s->i = 1; return s->i; }\n",
2996        );
2997
2998        let mut opts = options();
2999        opts.target = "x86_64-pc-windows-gnu".parse::<Triple>().unwrap();
3000        let windows = run(&opts, source);
3001        assert!(windows.messages.is_empty(), "{:?}", windows.messages);
3002
3003        let linux = run(&options(), source);
3004        assert_eq!(linux.messages.len(), 3, "{:?}", linux.messages);
3005        assert!(linux.messages[0].contains("does not declare anything"), "{:?}", linux.messages);
3006
3007        // And the flag answers for either of them, so a program built for Linux against a header
3008        // written for Windows can be read the way the header meant it.
3009        let mut opts = options();
3010        opts.ms_extensions = Some(true);
3011        let asked = run(&opts, source);
3012        assert!(asked.messages.is_empty(), "{:?}", asked.messages);
3013    }
3014
3015    /// A target with no back end says so rather than generating something for another machine.
3016    #[test]
3017    fn a_target_this_has_no_back_end_for_is_reported_rather_than_generated() {
3018        let mut opts = options();
3019        opts.emit = EmitKind::MirFinal;
3020        opts.target = "riscv64-unknown-linux-gnu".parse::<Triple>().unwrap();
3021        let result = run(&opts, "int f(int a) { return a; }\n");
3022        assert!(result.failed());
3023        assert!(result.messages[0].contains("no back end for riscv64"), "{:?}", result.messages);
3024        assert!(result.text().is_empty());
3025    }
3026
3027    /// AArch64 is written as its own assembly, with a function that calls keeping its return
3028    /// address in the frame record.
3029    #[test]
3030    fn an_aarch64_target_is_written_as_aarch64_assembly() {
3031        let mut opts = options();
3032        opts.emit = EmitKind::Asm;
3033        opts.target = "aarch64-unknown-linux-gnu".parse::<Triple>().unwrap();
3034        let source = "int g(int);\nint f(int a, int b) { return g(a) + b; }\n";
3035        let result = run(&opts, source);
3036        assert!(!result.failed(), "{:?}", result.messages);
3037        let text = result.text();
3038        for line in ["stp x29, x30, [sp, #-16]!", "mov x29, sp", "bl g", "ldp x29, x30, [sp], #16"]
3039        {
3040            assert!(text.contains(line), "{line} is not in\n{text}");
3041        }
3042        assert!(!text.contains('%'), "{text}");
3043    }
3044
3045    /// An object for AArch64, which is the listing read back by the assembler. The same object
3046    /// with debug information is refused rather than written without its line table.
3047    #[test]
3048    fn an_aarch64_target_reaches_an_object_file() {
3049        let mut opts = options();
3050        opts.emit = EmitKind::Object;
3051        opts.target = "aarch64-unknown-linux-gnu".parse::<Triple>().unwrap();
3052        let source = concat!(
3053            "int g(int);\n",
3054            "int table[4] = {1, 2, 3, 4};\n",
3055            "int f(int a, int b) { return g(a) + table[b & 3]; }\n",
3056        );
3057        let result = run(&opts, source);
3058        assert_eq!(result.messages, Vec::<String>::new(), "{result:?}");
3059        let bytes = match result.artifact {
3060            Artifact::Object { bytes, defines } => {
3061                assert_eq!(defines, ["f", "table"]);
3062                bytes
3063            }
3064            other => panic!("expected an object, got {other:?}"),
3065        };
3066        assert_eq!(&bytes[..4], b"\x7fELF");
3067        assert_eq!(&bytes[18..20], &183u16.to_le_bytes(), "EM_AARCH64");
3068
3069        opts.debug_info = true;
3070        let result = run(&opts, source);
3071        assert!(result.failed());
3072        assert!(result.messages.iter().any(|m| m.contains("aarch64")), "{:?}", result.messages);
3073    }
3074
3075    /// gcc's AArch64 vector type names are there before any header, which glibc's `<math.h>`
3076    /// needs, a declaration can still hide one, and on x86-64 they are ordinary identifiers.
3077    #[test]
3078    fn the_aarch64_vector_type_names_are_declared_on_that_target_and_nowhere_else() {
3079        let mut opts = options();
3080        opts.emit = EmitKind::Asm;
3081        opts.target = "aarch64-unknown-linux-gnu".parse::<Triple>().unwrap();
3082        let source = "typedef __Float32x4_t f4;\n__SVFloat32_t sv(__SVFloat32_t, __SVBool_t);\n\
3083                      int n = sizeof(f4) + sizeof(__Int8x8_t);\n\
3084                      int f(f4 v) { int __Uint8x16_t = 3; return v[1] + __Uint8x16_t; }\n";
3085        let result = run(&opts, source);
3086        assert!(!result.failed(), "{:?}", result.messages);
3087        assert!(result.text().contains(".long\t24"), "{}", result.text());
3088        opts.target = "x86_64-unknown-linux-gnu".parse::<Triple>().unwrap();
3089        let result = run(&opts, "typedef __Float32x4_t f4;\n");
3090        assert!(result.failed());
3091        let result = run(&opts, "int __Float32x4_t = 1;\n");
3092        assert!(!result.failed(), "{:?}", result.messages);
3093    }
3094
3095    /// A structure too big for registers comes back through the address in x8, which AAPCS64 keeps
3096    /// apart from the arguments, so the argument after it is still in x0.
3097    #[test]
3098    fn an_aarch64_result_in_memory_is_reached_through_x8() {
3099        let mut opts = options();
3100        opts.emit = EmitKind::Asm;
3101        opts.target = "aarch64-unknown-linux-gnu".parse::<Triple>().unwrap();
3102        let source = "struct big { long a, b, c; };\nstruct big make(long v);\n\
3103                      long f(long v) { return make(v).c; }\n\
3104                      struct big g(long v) { struct big b = { v, v, v }; return b; }\n";
3105        let result = run(&opts, source);
3106        assert!(!result.failed(), "{:?}", result.messages);
3107        let text = result.text();
3108        assert!(text.contains("x8"), "{text}");
3109        assert!(text.contains("bl make"), "{text}");
3110    }
3111
3112    /// A remainder is two instructions on AArch64, the division and then a multiply subtract that
3113    /// reads the quotient the division wrote.
3114    #[test]
3115    fn an_aarch64_remainder_is_a_division_and_a_multiply_subtract() {
3116        let mut opts = options();
3117        opts.emit = EmitKind::Asm;
3118        opts.target = "aarch64-unknown-linux-gnu".parse::<Triple>().unwrap();
3119        let source = "int s(int a, int b) { return a % b; }\n\
3120                      unsigned long u(unsigned long a, unsigned long b) { return a % b; }\n";
3121        let result = run(&opts, source);
3122        assert!(!result.failed(), "{:?}", result.messages);
3123        let text = result.text();
3124        let at = |what: &str| text.find(what).unwrap_or_else(|| panic!("{what} is not in\n{text}"));
3125        assert!(at("sdiv w") < at("msub w"), "{text}");
3126        assert!(at("udiv x") < at("msub x"), "{text}");
3127    }
3128
3129    /// A dense `switch` on AArch64 reads a cell of a table after the function with `adr` and
3130    /// `ldrsw`, and each cell is the distance from the table to an arm.
3131    #[test]
3132    fn an_aarch64_jump_table_is_reached_with_adr() {
3133        let mut opts = options();
3134        opts.emit = EmitKind::Asm;
3135        opts.target = "aarch64-unknown-linux-gnu".parse::<Triple>().unwrap();
3136        let source = "int f(int x) { switch (x) { case 0: return 10; case 1: return 21; \
3137                      case 2: return 32; case 3: return 43; case 4: return 54; case 5: return 65; \
3138                      case 6: return 76; case 7: return 87; case 8: return 98; case 9: return 9; \
3139                      case 10: return 19; case 11: return 29; default: return 0; } }\n";
3140        let result = run(&opts, source);
3141        assert!(!result.failed(), "{:?}", result.messages);
3142        let text = result.text();
3143        let at = |what: &str| text.find(what).unwrap_or_else(|| panic!("{what} is not in\n{text}"));
3144        assert!(at("adr x") < at("ldrsw x"), "{text}");
3145        assert!(at("ldrsw x") < at("br x"), "{text}");
3146        assert!(text.contains("_j0:"), "{text}");
3147        assert!(text.contains(".long"), "{text}");
3148    }
3149
3150    /// An AArch64 Linux `va_start` fills in the five fields AAPCS64 gives a list. The two offsets
3151    /// count up to nothing from minus the size of what is left of each half of the save area, so
3152    /// with one integer named they start at minus fifty six and minus one hundred and twenty eight.
3153    #[test]
3154    fn an_aarch64_va_start_writes_the_five_fields_of_its_list() {
3155        let mut opts = options();
3156        opts.emit = EmitKind::Asm;
3157        opts.target = "aarch64-unknown-linux-gnu".parse::<Triple>().unwrap();
3158        let source = "typedef __builtin_va_list va_list;\n\
3159                      int f(int n, ...) { va_list ap; __builtin_va_start(ap, n); \
3160                      int x = __builtin_va_arg(ap, int); double d = __builtin_va_arg(ap, double); \
3161                      __builtin_va_end(ap); return x + (int)d; }\n";
3162        let result = run(&opts, source);
3163        assert!(!result.failed(), "{:?}", result.messages);
3164        let text = result.text();
3165        assert!(text.contains("#-56"), "{text}");
3166        assert!(text.contains("#-128"), "{text}");
3167        assert!(text.contains("#24]"), "{text}");
3168        assert!(text.contains("#28]"), "{text}");
3169        assert!(text.contains("str q"), "{text}");
3170    }
3171
3172    /// A `long double` on AArch64 Linux is a quad, moved with `ldr q` and `str q` and added with a
3173    /// call to the same routine libgcc has.
3174    #[test]
3175    fn an_aarch64_long_double_is_a_quad_in_a_vector_register() {
3176        let mut opts = options();
3177        opts.emit = EmitKind::Asm;
3178        opts.target = "aarch64-unknown-linux-gnu".parse::<Triple>().unwrap();
3179        let source = "void f(long double *p, long double x) { *p = *p + x; }\n";
3180        let result = run(&opts, source);
3181        assert!(!result.failed(), "{:?}", result.messages);
3182        let text = result.text();
3183        assert!(text.contains("ldr q"), "{text}");
3184        assert!(text.contains("str q"), "{text}");
3185        assert!(text.contains("__addtf3"), "{text}");
3186    }
3187
3188    /// A thread-local variable on AArch64 Linux is initial exec: its offset comes out of the
3189    /// global offset table, the thread pointer out of `tpidr_el0`, and one `add` joins them.
3190    #[test]
3191    fn an_aarch64_thread_local_is_reached_through_tpidr_el0() {
3192        let mut opts = options();
3193        opts.emit = EmitKind::Asm;
3194        opts.target = "aarch64-unknown-linux-gnu".parse::<Triple>().unwrap();
3195        let source = "__thread int n;\nint *f(void) { return &n; }\n\
3196                      void *g(void) { return __builtin_thread_pointer(); }\n";
3197        let result = run(&opts, source);
3198        assert!(!result.failed(), "{:?}", result.messages);
3199        let text = result.text();
3200        assert!(text.contains(":gottprel:n"), "{text}");
3201        assert!(text.contains(":gottprel_lo12:n]"), "{text}");
3202        assert_eq!(text.matches("mrs x").count(), 2, "{text}");
3203        assert!(text.contains("tpidr_el0"), "{text}");
3204    }
3205
3206    /// Apple's platforms reach a thread-local variable by calling through its descriptor, which
3207    /// is what clang writes on both machines, and the variable is the image and the descriptor.
3208    #[test]
3209    fn a_darwin_thread_local_is_reached_through_its_descriptor() {
3210        let source = "__thread int n = 5;\nint *f(void) { return &n; }\n";
3211        for (triple, wanted) in [
3212            ("aarch64-apple-darwin", &["_n@TLVPPAGE\n", "_n@TLVPPAGEOFF]\n", "\tblr x"][..]),
3213            ("x86_64-apple-darwin", &["_n@TLVP(%rip), %rdi\n", "\tcall\t*%"][..]),
3214        ] {
3215            let mut opts = options();
3216            opts.emit = EmitKind::Asm;
3217            opts.target = triple.parse::<Triple>().unwrap();
3218            let result = run(&opts, source);
3219            assert!(!result.failed(), "{triple}: {:?}", result.messages);
3220            let text = result.text();
3221            for want in wanted {
3222                assert!(text.contains(want), "{triple} wanted {want:?}:\n{text}");
3223            }
3224            assert!(text.contains("\n_n:\n\t.quad\t__tlv_bootstrap\n"), "{text}");
3225            assert!(!text.contains("tpidr_el0") && !text.contains("%fs"), "{text}");
3226        }
3227    }
3228
3229    /// The thread pointer itself is somewhere else on Apple's platforms and is still refused.
3230    #[test]
3231    fn the_thread_pointer_is_refused_on_darwin() {
3232        let mut opts = options();
3233        opts.emit = EmitKind::Asm;
3234        opts.target = "aarch64-apple-darwin".parse::<Triple>().unwrap();
3235        let result = run(&opts, "void *f(void) { return __builtin_thread_pointer(); }\n");
3236        assert!(result.failed());
3237        assert!(result.messages[0].contains("thread pointer"), "{:?}", result.messages);
3238    }
3239
3240    /// Darwin's list is a plain pointer and its variadic arguments are all on the stack, so a
3241    /// variadic definition saves no registers and its `va_start` stores one address.
3242    #[test]
3243    fn a_darwin_variadic_definition_saves_nothing_and_walks_the_stack() {
3244        let mut opts = options();
3245        opts.emit = EmitKind::Asm;
3246        opts.target = "aarch64-apple-darwin".parse::<Triple>().unwrap();
3247        let source = "int f(int n, ...) { __builtin_va_list ap; __builtin_va_start(ap, n);\n\
3248                      int r = __builtin_va_arg(ap, int); __builtin_va_end(ap); return r; }\n";
3249        let result = run(&opts, source);
3250        assert!(!result.failed(), "{:?}", result.messages);
3251        let text = result.text();
3252        assert!(!text.contains("str q"), "{text}");
3253        assert!(!text.contains("x7"), "{text}");
3254    }
3255
3256    /// A call on Darwin puts every argument past the named ones in memory, even with registers
3257    /// left over, so the `double` here is stored rather than put in `d0`.
3258    #[test]
3259    fn a_darwin_call_puts_its_variadic_arguments_in_memory() {
3260        let mut opts = options();
3261        opts.emit = EmitKind::Asm;
3262        opts.target = "aarch64-apple-darwin".parse::<Triple>().unwrap();
3263        let source = "int printf(const char *, ...);\n\
3264                      int g(double x) { return printf(\"%d %f\", 7, x); }\n";
3265        let result = run(&opts, source);
3266        assert!(!result.failed(), "{:?}", result.messages);
3267        let text = result.text();
3268        assert!(text.contains("str d0, [sp, #8]"), "{text}");
3269    }
3270
3271    /// Apple's assembler asks for part of an address after the name, a variable another image
3272    /// defines is read through the table because nothing copies it in, and the directive that
3273    /// makes a zeroed variable is also its definition, so its binding goes above it.
3274    #[test]
3275    fn a_darwin_listing_is_one_apples_assembler_reads() {
3276        let mut opts = options();
3277        opts.emit = EmitKind::Asm;
3278        opts.target = "aarch64-apple-darwin".parse::<Triple>().unwrap();
3279        let source = "extern int ext;\n\
3280                      int g[4];\n\
3281                      int f(int i) { return g[i] + ext; }\n";
3282        let result = run(&opts, source);
3283        assert!(!result.failed(), "{:?}", result.messages);
3284        let text = result.text();
3285        assert!(text.contains(", _g@PAGE\n"), "{text}");
3286        assert!(text.contains(", _g@PAGEOFF\n"), "{text}");
3287        assert!(text.contains(", _ext@GOTPAGE\n"), "{text}");
3288        assert!(text.contains(", _ext@GOTPAGEOFF]\n"), "{text}");
3289        assert!(!text.contains(":lo12:"), "{text}");
3290        assert!(text.contains("\t.globl\t_g\n\t.zerofill\t__DATA,__bss,_g,16,2\n"), "{text}");
3291    }
3292
3293    /// A `signed char` read from memory and added to at 32 bits is widened with its sign first.
3294    ///
3295    /// The widening was being taken out as unneeded, because its source is written as a `w`
3296    /// register and was taken to have 32 bits in it, so `*p + 1` added one to the byte `ldrb` had
3297    /// loaded and -9 came out as 248. At every level, since the pass runs at `-O0` too.
3298    #[test]
3299    fn a_signed_char_on_aarch64_is_widened_with_its_sign_before_it_is_added_to() {
3300        for target in ["aarch64-linux-gnu", "aarch64-apple-darwin"] {
3301            let mut opts = options();
3302            opts.emit = EmitKind::Asm;
3303            opts.target = target.parse::<Triple>().unwrap();
3304            let source = "int f(signed char *p) { return *p + 1; }\n\
3305                          unsigned g(unsigned short *p) { return *p + 1u; }\n";
3306            let result = run(&opts, source);
3307            assert!(!result.failed(), "{:?}", result.messages);
3308            let text = result.text();
3309            let signed = text.contains("\tsxtb w") || text.contains("\tldrsb w");
3310            assert!(signed, "{target}: {text}");
3311        }
3312    }
3313
3314    /// A construct the rule set does not reach yet is named, along with the function it is in.
3315    ///
3316    /// The message is about this compiler being unfinished rather than about the program, which
3317    /// is valid C either way, so it carries the note that says where the work is tracked. Both
3318    /// functions are attempted, so a file that is ahead of the back end in three places says so
3319    /// three times rather than one recompilation at a time.
3320    ///
3321    /// The construct is a local of a fixed size wanting more alignment than a call leaves the
3322    /// stack pointer on, in a function whose frame also grows. The prologue would force the
3323    /// alignment and the array would move the stack pointer afterwards, and those are two frames
3324    /// that each want the one register the rest of the frame is counted from.
3325    #[test]
3326    fn a_construct_the_back_end_cannot_reach_yet_is_reported_against_its_function() {
3327        let mut opts = options();
3328        opts.emit = EmitKind::MirFinal;
3329        let source = "void a(int n) { int v[n]; struct __attribute__((aligned(32))) S { int x; } \
3330                      s; s.x = 1; v[0] = s.x; }\n\
3331                      void b(int n) { int v[n]; struct __attribute__((aligned(32))) S { int x; } \
3332                      s; s.x = 1; v[0] = s.x; }\n";
3333        let result = run(&opts, source);
3334        assert!(result.failed());
3335        assert_eq!(result.messages.len(), 2, "{:?}", result.messages);
3336        assert!(result.messages[0].contains("cannot generate code for 'a'"), "{:?}", result);
3337        assert!(result.messages[0].contains("wants more alignment"), "{:?}", result);
3338        assert!(result.messages[1].contains("cannot generate code for 'b'"), "{:?}", result);
3339        assert!(result.text().is_empty());
3340    }
3341
3342    /// A variable length array walks its pages under the flag that says every page is touched.
3343    ///
3344    /// The pages the prologue takes are touched by the prologue. The pages the array takes are
3345    /// however many the size worked out to, so touching them is a loop written around the
3346    /// declaration rather than anything a prologue can do. What says the loop is there is the
3347    /// ordered comparison it ends each step with, which nothing else in a function writes, and the
3348    /// touch behind it. Without the flag the declaration is still the one subtraction it always was.
3349    #[test]
3350    fn a_variable_length_array_walks_its_pages_where_every_page_of_the_frame_is_to_be_touched() {
3351        let mut opts = options();
3352        opts.emit = EmitKind::MirFinal;
3353        let source = "void a(int n) { int v[n]; v[0] = 1; }\n";
3354        let plain = run(&opts, source);
3355        assert!(!plain.failed(), "{:?}", plain.messages);
3356        assert!(!plain.text().contains("cmp_set_a_64"), "{}", plain.text());
3357
3358        opts.stack_clash = true;
3359        let result = run(&opts, source);
3360        assert!(!result.failed(), "{:?}", result.messages);
3361        assert!(result.text().contains("cmp_set_a_64"), "{}", result.text());
3362        assert!(result.text().contains("or_mi_8"), "{}", result.text());
3363    }
3364
3365    /// A function that keeps a frame pointer on Windows now has an unwind record and an object.
3366    ///
3367    /// The record that platform carries counts every slot in it from where the stack pointer ends
3368    /// the prologue, and it gets to that place by taking a constant off the frame pointer, so a
3369    /// register pushed after the pointer was established has no row the format can write. The order
3370    /// that does have one is the pushes, then the frame, and only then the pointer, which is what
3371    /// the back end writes there and only there. A variable length array and an `alloca` keep a
3372    /// pointer whatever the flags asked for, so before this they were the two shapes of C that
3373    /// could not be compiled for that target at all. See tamnd/rucc#1403.
3374    #[test]
3375    fn a_function_that_keeps_a_frame_pointer_on_windows_reaches_an_object_file() {
3376        let mut opts = options();
3377        opts.emit = EmitKind::Object;
3378        opts.target = "x86_64-pc-windows-gnu".parse::<Triple>().unwrap();
3379        let source = concat!(
3380            "void use(void *p);\n",
3381            "void array(int n) { int v[n]; v[0] = 1; use(v); }\n",
3382            "void taken(unsigned long n) { use(__builtin_alloca(n)); }\n",
3383        );
3384        let result = run(&opts, source);
3385        assert_eq!(result.messages, Vec::<String>::new(), "{result:?}");
3386        let bytes = match result.artifact {
3387            Artifact::Object { bytes, .. } => bytes,
3388            other => panic!("expected an object, got {other:?}"),
3389        };
3390        assert_eq!(&bytes[..2], b"\x64\x86", "an object that says which machine it is for");
3391
3392        // And the same two functions for Linux, so that what the test is measuring is the target
3393        // rather than the program being one this compiler cannot reach yet.
3394        let mut opts = options();
3395        opts.emit = EmitKind::Object;
3396        assert_eq!(run(&opts, source).messages, Vec::<String>::new());
3397    }
3398
3399    /// The address of a name this file only declares, on the format with no table to read it out
3400    /// of.
3401    ///
3402    /// Every such name went into the table on every target, and COFF has no table, so the object
3403    /// writer was handed a relocation it has no way to write and refused the whole file. What the
3404    /// name stands for on this format is an address in the image whichever way the link supplies
3405    /// it, so the instruction pointer reaches it and gcc writes the same. Three shapes here, since
3406    /// the one that found it was a callback stored in a table of its own: a function passed as an
3407    /// argument, one put in a variable that lives past the call, and one called outright, which
3408    /// never needed the table and is here so the test says which of the three changed.
3409    #[test]
3410    fn the_address_of_a_function_this_file_only_declares_reaches_a_windows_object() {
3411        let source = concat!(
3412            "void other(void *p);\n",
3413            "void takes(void (*f)(void *));\n",
3414            "void (*held)(void *);\n",
3415            "void pass(void) { takes(other); }\n",
3416            "void keep(void) { held = other; }\n",
3417            "void call(void) { other(0); }\n",
3418        );
3419        let mut opts = options();
3420        opts.emit = EmitKind::Object;
3421        opts.target = "x86_64-pc-windows-gnu".parse::<Triple>().unwrap();
3422        let result = run(&opts, source);
3423        assert_eq!(result.messages, Vec::<String>::new(), "{result:?}");
3424        let bytes = match result.artifact {
3425            Artifact::Object { bytes, .. } => bytes,
3426            other => panic!("expected an object, got {other:?}"),
3427        };
3428        assert_eq!(&bytes[..2], b"\x64\x86", "an object that says which machine it is for");
3429
3430        // And the same source for Linux, which does have a table and still uses it, so what this
3431        // measures is the format rather than the program.
3432        let mut opts = options();
3433        opts.emit = EmitKind::Object;
3434        assert_eq!(run(&opts, source).messages, Vec::<String>::new());
3435    }
3436
3437    /// An opcode the rule language has no word for is named anyway, and pointed at.
3438    ///
3439    /// The rule language's spelling is the better name when there is one, but an opcode it has
3440    /// no word for is exactly the opcode no rule lowers, so falling back to the opcode and the
3441    /// type is what makes the message say anything at all in the cases that happen. The span is
3442    /// the instruction's own, so the message lands on the line rather than on the file.
3443    ///
3444    /// The width of the float is what keeps the program refused. Everything else here is split into
3445    /// halves by `rucc_codegen::wide`, including the divisions and the conversions to a `float` and
3446    /// a `double`, which became calls into the compiler runtime. A `long double` is the eighty bit
3447    /// float on this target, the runtime has no conversion at that width because the back end has no
3448    /// register that holds one, which is tamnd/rucc#326, so a function converting to it is left with
3449    /// its wide values and reaches the selector the way every function of this width used to.
3450    #[test]
3451    fn an_opcode_with_no_name_in_the_rule_language_is_named_by_its_own_spelling() {
3452        let mut opts = options();
3453        opts.emit = EmitKind::MirFinal;
3454        let source =
3455            "long double f(int a) {\n  __int128 wide = a;\n  return (long double) wide;\n}\n";
3456        let result = run(&opts, source);
3457        assert!(result.failed());
3458        assert!(
3459            result.messages[0].contains("no rule lowers a `sext` producing a `i128`"),
3460            "{result:?}"
3461        );
3462        assert!(result.messages[0].contains(":2:"), "the line the widening is on: {result:?}");
3463        assert!(!result.messages[0].contains("this instruction"), "{result:?}");
3464    }
3465
3466    /// The note names the issue tracker, which is where a reader finds out whether it is known.
3467    #[test]
3468    fn the_note_on_unfinished_work_points_at_the_issues_rather_than_at_the_plan() {
3469        let mut opts = options();
3470        opts.emit = EmitKind::MirFinal;
3471        let source = "long double f(int a) { __int128 wide = a; return (long double) wide; }\n";
3472        let result = run(&opts, source);
3473        assert!(result.failed());
3474        let note = result.messages.iter().find(|line| line.contains("note:")).expect("a note");
3475        assert!(note.contains("https://github.com/tamnd/rucc/issues"), "{note}");
3476        assert!(!note.contains("spec/17-milestones.md"), "{note}");
3477    }
3478
3479    /// The two frame flags reach the frame, which is the only thing either of them does.
3480    #[test]
3481    fn the_frame_flags_on_the_command_line_reach_the_generated_frame() {
3482        let source = "int f(int a) { return a; }\n";
3483        assert!(!mir(source).contains("$rbp"), "a leaf needs no frame pointer by default");
3484
3485        let mut opts = options();
3486        opts.emit = EmitKind::MirFinal;
3487        opts.frame_pointer = true;
3488        let kept = run(&opts, source).text().to_owned();
3489        assert!(kept.contains("x64.push_64 $rbp"), "{kept}");
3490    }
3491
3492    /// The assembly of `source`, insisting that it compiled cleanly.
3493    fn asm(source: &str) -> String {
3494        let mut opts = options();
3495        opts.emit = EmitKind::Asm;
3496        let result = run(&opts, source);
3497        assert_eq!(result.messages, Vec::<String>::new(), "expected this to compile:\n{source}");
3498        result.text().to_owned()
3499    }
3500
3501    /// `-S`, which is the same compiler as the kind above it with a different last step.
3502    ///
3503    /// What the assembly says is checked in `rucc-asm`, one instruction at a time and against the
3504    /// target's own description of what an instruction is. What is checked here is that a C file
3505    /// goes all the way to a listing an assembler would take, which means the directives around
3506    /// the function as well as the instructions in it.
3507    #[test]
3508    fn a_function_goes_from_c_to_assembly_an_assembler_would_take() {
3509        let text = asm("int add(int a, int b) { return a + b; }\n");
3510        assert!(text.contains("\t.globl\tadd\n"), "{text}");
3511        assert!(text.contains("\t.type\tadd, @function\n"), "{text}");
3512        assert!(text.contains("\nadd:\n"), "{text}");
3513        assert!(text.contains("\taddl\t"), "{text}");
3514        assert!(text.contains("\tret\n"), "{text}");
3515        assert!(text.contains("\t.size\tadd, .-add\n"), "{text}");
3516        // Without this the stack the program runs on is executable, which is not a default
3517        // anybody chose and is not a thing a reader would notice missing.
3518        assert!(text.contains(".note.GNU-stack"), "{text}");
3519    }
3520
3521    /// A call through a function pointer, which is a different instruction from a call to a name.
3522    ///
3523    /// Both are in the one function on purpose. What is being read is that the two calls are told
3524    /// apart all the way down: one carries a name the linker resolves and one carries a register,
3525    /// and neither turns into the other on the way.
3526    #[test]
3527    fn a_call_through_a_function_pointer_goes_through_the_register_it_is_in() {
3528        let text = asm("int g(int);\nint f(int (*p)(int), int a) { return p(a) + g(a); }\n");
3529        assert!(text.contains("\tcall\t*%"), "{text}");
3530        assert!(text.contains("\tcall\tg\n"), "{text}");
3531        // The address arrived in the first argument register and the argument the call passes has
3532        // to end up there, so the two cannot be the same register and the compiler has to have
3533        // moved one of them.
3534        assert!(text.contains("%rdi"), "{text}");
3535    }
3536
3537    /// A name at file scope, which is the one address a function cannot compute for itself. The
3538    /// `lea` that computes it is folded into the load that reads through it, so what is left to
3539    /// read is the addressing mode, which is where the instruction pointer shows up.
3540    #[test]
3541    fn the_address_of_a_global_is_read_from_the_instruction_pointer() {
3542        let text = asm("extern int counter;\nint f(void) { return counter; }\n");
3543        assert!(text.contains("\tmovl\tcounter(%rip), %eax\n"), "{text}");
3544    }
3545
3546    /// Every comparison a branch can be on, which the machine jumps on without keeping a byte.
3547    ///
3548    /// Ten conditions, and each of them comes out as its opposite because the block falls into the
3549    /// arm the comparison is true for and jumps to the other one. That is the half of this most
3550    /// worth pinning: a jump on the condition rather than on its opposite compiles, encodes and
3551    /// runs, and gets every one of these ten functions backwards. The unsigned four and the signed
3552    /// four are separate for the same reason, since `jl` where `jb` was meant is a program that
3553    /// works until an address is above two gigabytes.
3554    #[test]
3555    fn a_branch_on_a_comparison_jumps_on_the_opposite_of_what_it_compared() {
3556        let arms = "return 1; return 2;";
3557        let signed = [("==", "jne"), ("!=", "je"), ("<", "jge"), ("<=", "jg"), (">", "jle")];
3558        for (operator, jump) in signed.into_iter().chain([(">=", "jl")]) {
3559            let text = asm(&format!("int f(int a, int b) {{ if (a {operator} b) {arms} }}\n"));
3560            assert!(
3561                text.contains(&format!("\tcmpl\t%esi, %edi\n\t{jump}\t")),
3562                "{operator}: {text}"
3563            );
3564            assert!(!text.contains("\tset"), "{operator}: {text}");
3565            assert!(!text.contains("\ttest"), "{operator}: {text}");
3566        }
3567        let unsigned = [("<", "jae"), ("<=", "ja"), (">", "jbe"), (">=", "jb")];
3568        for (operator, jump) in unsigned {
3569            let source =
3570                format!("int f(unsigned a, unsigned b) {{ if (a {operator} b) {arms} }}\n");
3571            let text = asm(&source);
3572            assert!(
3573                text.contains(&format!("\tcmpl\t%esi, %edi\n\t{jump}\t")),
3574                "{operator}: {text}"
3575            );
3576        }
3577
3578        // And against a constant, which is four comparisons in five and is where the saving
3579        // mostly is, since the byte that goes was the only reason the constant was in a register.
3580        let text = asm("int f(int a) { if (a < 7) return 1; return 2; }\n");
3581        assert!(text.contains("\tcmpl\t$7, %edi\n\tjge\t"), "{text}");
3582    }
3583
3584    /// The comparison whose answer is a value rather than a branch, which keeps its byte.
3585    ///
3586    /// The one that goes is the byte nothing but the branch reads. A comparison the program asked
3587    /// for the answer of is not that, and there is no branch behind it to fold into in any case,
3588    /// so this is here to say that what was taken out was taken out of one place and not two.
3589    #[test]
3590    fn a_comparison_whose_answer_the_program_wanted_still_writes_a_byte() {
3591        let text = asm("int f(int a, int b) { return a < b; }\n");
3592        assert!(text.contains("\tsetl\t"), "{text}");
3593    }
3594
3595    /// The same source at `-O2`, which is where the optimizer's passes are in the list.
3596    fn optimized(source: &str) -> String {
3597        let mut opts = options();
3598        opts.emit = EmitKind::Asm;
3599        opts.opt_level = rucc_session::OptLevel::O2;
3600        let result = run(&opts, source);
3601        assert_eq!(result.messages, Vec::<String>::new(), "expected this to compile:\n{source}");
3602        result.text().to_owned()
3603    }
3604
3605    /// A dense `switch` whose arms are a function of the label, which is arithmetic.
3606    ///
3607    /// Sixteen labels, and the arm for label `k` gives `k + 1`. What came out of this was a
3608    /// comparison and a jump for every one of them, which is tamnd/rucc#728. What comes out now is
3609    /// one comparison and one addition, and the count is the whole of the claim: it does not grow
3610    /// with the number of labels, so sixteen and a hundred and sixty compile to the same thing.
3611    ///
3612    /// The comparison is unsigned because the range check is the label minus the lowest one, which
3613    /// is a count and not a number the program wrote.
3614    #[test]
3615    fn a_switch_whose_arms_are_a_function_of_the_label_is_a_range_check_and_arithmetic() {
3616        let arms: String =
3617            (0..16).map(|k| format!("case {k}: return {};", k + 1)).collect::<Vec<_>>().join(" ");
3618        let text = optimized(&format!("int f(int x) {{ switch (x) {{ {arms} }} return 0; }}\n"));
3619        assert!(text.contains("\tcmpl\t$15, %edi\n\tja\t"), "{text}");
3620        assert!(text.contains("\taddl\t$1, %edi"), "{text}");
3621        assert_eq!(text.matches("\tcmp").count(), 1, "{text}");
3622    }
3623
3624    /// The same `switch` with one arm off the line, which is a table and not arithmetic.
3625    ///
3626    /// The answers being a line is what licenses the addition, since it answers for every label in
3627    /// the range at once. One label whose arm disagrees is a label it would answer wrongly, so this
3628    /// is here to say that the pass is reading the arms and not counting the labels. What it does
3629    /// instead is look the answer up: one comparison, no jump through a jump table, and the arm off
3630    /// the line is a cell of a constant array in `.rodata`, which is gcc's `CSWTCH` and its shape.
3631    #[test]
3632    fn a_dense_switch_whose_arms_are_not_a_line_is_a_load_from_a_table() {
3633        let arms: String = (0..16)
3634            .map(|k| format!("case {k}: return {};", if k == 9 { 100 } else { k + 1 }))
3635            .collect::<Vec<_>>()
3636            .join(" ");
3637        let text = optimized(&format!("int f(int x) {{ switch (x) {{ {arms} }} return 0; }}\n"));
3638        assert_eq!(text.matches("\tcmp").count(), 1, "{text}");
3639        assert!(!text.contains("\tjmp\t*"), "{text}");
3640        assert!(text.contains("leaq\tCSWTCH.0(%rip)"), "{text}");
3641        let table = &text[text.find("CSWTCH.0:").expect("the table is in the output")..];
3642        let section = text[..text.find("CSWTCH.0:").unwrap_or(0)].rfind("\t.section\t.rodata");
3643        assert!(section.is_some(), "{text}");
3644        assert_eq!(table.matches("\t.long\t").count(), 16, "{text}");
3645        assert!(table.contains("\t.long\t100\n"), "{text}");
3646    }
3647
3648    /// A `switch` whose arms give string literals is a table of how far each string is from it.
3649    ///
3650    /// gcc 16 keeps the compares here, because its table would hold addresses the loader has to
3651    /// write when the program starts, and that table would have to be in `.data.rel.ro`. This one
3652    /// holds four byte distances the linker writes once, so it stays in `.rodata` with the strings.
3653    #[test]
3654    fn a_switch_whose_arms_give_strings_is_a_table_of_how_far_away_they_are() {
3655        let text = optimized(
3656            "const char *f(int k) { switch (k) { case 0: return \"zero\"; \
3657             case 1: return \"one\"; case 2: return \"two\"; case 3: return \"three\"; } \
3658             return \"many\"; }\n",
3659        );
3660        assert_eq!(text.matches("\tcmp").count(), 1, "{text}");
3661        assert!(text.contains("leaq\tCSWTCH.0(%rip)"), "{text}");
3662        assert!(!text.contains(".data.rel.ro"), "{text}");
3663        let at = text.find("CSWTCH.0:").expect("the table is in the output");
3664        assert!(text[..at].rfind("\t.section\t.rodata").is_some(), "{text}");
3665        let table = &text[at..];
3666        assert_eq!(table.matches(" - .\n").count(), 4, "{text}");
3667        assert!(table.contains("\t.long\t.Lstr.1+4 - .\n"), "{text}");
3668    }
3669
3670    /// The same table at `-Os`, where a cell is a byte because every answer fits in one.
3671    ///
3672    /// gcc 16 narrows the cells at `-Os` and not at `-O2`, and so does rucc: sixteen answers under a
3673    /// hundred and twenty eight are sixteen bytes rather than sixty four, and the byte is widened
3674    /// back with its sign.
3675    #[test]
3676    fn a_table_at_os_has_cells_as_narrow_as_its_answers() {
3677        let arms: String = (0..16)
3678            .map(|k| format!("case {k}: return {};", if k == 9 { 100 } else { k + 1 }))
3679            .collect::<Vec<_>>()
3680            .join(" ");
3681        let mut opts = options();
3682        opts.emit = EmitKind::Asm;
3683        opts.opt_level = rucc_session::OptLevel::Os;
3684        let result = run(&opts, &format!("int f(int x) {{ switch (x) {{ {arms} }} return 0; }}\n"));
3685        assert_eq!(result.messages, Vec::<String>::new());
3686        let text = result.text();
3687        let table = &text[text.find("CSWTCH.0:").expect("the table is in the output")..];
3688        assert_eq!(table.matches("\t.byte\t").count(), 16, "{text}");
3689        assert!(text.contains("\tmovsbl\t"), "{text}");
3690    }
3691
3692    /// A table whose labels are every value the switched value can hold, which is the range check
3693    /// `rucc_opt::prune` takes out.
3694    ///
3695    /// The operand is `x & 3` and all four values are cases, so the `return -1` is dead. With the
3696    /// default out of the switch every case goes to the load, the switch is a jump, and what is
3697    /// left is the mask and the load with no compare in front of it.
3698    #[test]
3699    fn a_table_that_covers_its_operand_has_no_range_check() {
3700        let text = optimized(
3701            "int f(unsigned x) { switch (x & 3) { case 0: return 5; case 1: return 9; \
3702             case 2: return 2; case 3: return 7; } return -1; }\n",
3703        );
3704        assert!(text.contains("leaq\tCSWTCH.0(%rip)"), "{text}");
3705        assert!(!text.contains("\tcmp"), "{text}");
3706        assert!(!text.contains("$-1"), "{text}");
3707    }
3708
3709    /// A store one path makes to a local the loop has just read, which GCC also turns into a
3710    /// conditional move and an unconditional store. The branch was on data, so it was the one the
3711    /// machine gets wrong half the time. The move reads the flags of the comparison itself, so no
3712    /// byte is set and tested in between.
3713    #[test]
3714    fn a_store_to_a_local_the_loop_just_read_is_a_conditional_move() {
3715        let text = optimized(
3716            "int f(const int *v, int n, int k) { int best[8] = {0}; \
3717             for (int i = 0; i < n; i++) if (v[i] > best[i & 7]) best[i & 7] = v[i]; \
3718             return best[k & 7]; }\n",
3719        );
3720        assert!(text.contains("\tcmovgl"), "{text}");
3721        assert!(!text.contains("\tset"), "{text}");
3722        assert!(!text.contains("\ttestb"), "{text}");
3723    }
3724
3725    /// The same loop on a global keeps its branch, because another thread may own the slot.
3726    #[test]
3727    fn a_store_to_a_global_the_loop_just_read_keeps_its_branch() {
3728        let text = optimized(
3729            "int best[8]; void f(const int *v, int n) { \
3730             for (int i = 0; i < n; i++) if (v[i] > best[i & 7]) best[i & 7] = v[i]; }\n",
3731        );
3732        assert!(!text.contains("\tcmov"), "{text}");
3733    }
3734
3735    /// A conversion whose operand the optimizer turned into a constant, which is the whole of what
3736    /// `rucc_opt::fold` does with floating point.
3737    ///
3738    /// The cast is not a constant expression, so the front end leaves it alone and the pipeline is
3739    /// what has to see it. Load forwarding turns the local back into the constant that was stored
3740    /// into it, and the conversion then has an `fconst` in front of it. What came out before was
3741    /// the sixty four bit pattern moved into a register, moved into an `xmm`, and a `cvttsd2si`.
3742    #[test]
3743    fn a_conversion_from_a_constant_double_is_the_number_it_converts_to() {
3744        let text = optimized("int f(void) { double d = 2.75; return (int) d; }\n");
3745        assert!(text.contains("movl\t$2, %eax"), "{text}");
3746        assert!(!text.contains("cvttsd2si"), "{text}");
3747    }
3748
3749    /// A slot of a `const` table read at an index the optimizer works out, which is what
3750    /// `rucc_opt::image` is for.
3751    ///
3752    /// The subscript is not a constant expression and the front end does not fold it. What it
3753    /// writes is the index sign extended, multiplied by four and added to the address of the
3754    /// table, so the offset only exists once `fold` has run and the load only folds after that.
3755    /// What came out before was a `movl t+8(%rip), %eax`.
3756    #[test]
3757    fn a_slot_of_a_read_only_table_is_the_value_the_table_holds() {
3758        let text =
3759            optimized("static const int t[4] = {10, 20, 30, 40};\nint f(void) { return t[2]; }\n");
3760        assert!(text.contains("movl\t$30, %eax"), "{text}");
3761        assert!(!text.contains("t(%rip)"), "{text}");
3762    }
3763
3764    /// A byte of a string literal, which is the same fold reading literal bytes rather than the
3765    /// scalars an `int` array is written as.
3766    #[test]
3767    fn a_byte_of_a_read_only_string_is_the_byte_the_string_spells() {
3768        let text = optimized("static const char s[] = \"abc\";\nint f(void) { return s[1]; }\n");
3769        assert!(text.contains("movl\t$98, %eax"), "{text}");
3770    }
3771
3772    /// A global something can write to, which is the condition the fold turns on and therefore
3773    /// the one worth a test of its own. Nothing here is `const`, so the store in `g` could be the
3774    /// store that ran last and the load has to happen.
3775    #[test]
3776    fn a_table_that_is_not_read_only_keeps_its_load() {
3777        let text = optimized(
3778            "static int t[4] = {10, 20, 30, 40};\nvoid g(int x) { t[2] = x; }\nint f(void) { return t[2]; }\n",
3779        );
3780        assert!(!text.contains("movl\t$30, %eax"), "{text}");
3781    }
3782
3783    /// `gcc.c-torture/execute/20030216-1.c`, which is the program the whole of this is for.
3784    ///
3785    /// It calls a function nothing defines, guarded by a condition the optimizer is meant to prove
3786    /// false, so the program links exactly when the call has been folded away. Getting there is
3787    /// three folds standing on each other: the load of the `const double`, the conversion of it to
3788    /// an `int`, and the comparison against one.
3789    #[test]
3790    fn a_call_guarded_by_a_condition_a_read_only_object_settles_is_not_emitted() {
3791        let text = optimized(
3792            "void link_error(void);\nconst double one = 1.0;\nint main(void) { if ((int) one != 1) link_error(); return 0; }\n",
3793        );
3794        assert!(!text.contains("call\tlink_error"), "{text}");
3795    }
3796
3797    /// A cast between a pointer and an integer as wide as one, which is every one C writes here.
3798    #[test]
3799    fn a_cast_between_a_pointer_and_an_integer_leaves_the_value_where_it_is() {
3800        let text = asm("long f(void *p) { return (long)p; }\n");
3801        // Every instruction in the body is a full width move or the return. The copies are the
3802        // allocator taking no hints, and what matters here is what is not among them: nothing
3803        // narrows the value and nothing widens it again, which is what a cast that did something
3804        // would look like.
3805        for line in text.lines().filter(|line| line.starts_with('\t') && !line.contains('.')) {
3806            let mnemonic = line.split_whitespace().next().unwrap_or("");
3807            assert!(matches!(mnemonic, "movq" | "ret"), "{line} in\n{text}");
3808        }
3809    }
3810
3811    /// The arguments past the sixth arrive in the caller's memory rather than in a register, and
3812    /// where that memory is depends on what the prologue did, so this is checked at the end of the
3813    /// pipeline rather than in the middle of it.
3814    #[test]
3815    fn an_argument_past_the_last_register_is_read_out_of_the_caller_s_stack() {
3816        let six = "long a, long b, long c, long d, long e, long f";
3817        let text = asm(&format!("long f({six}, long g, long h) {{ return g + h; }}\n"));
3818
3819        // Nothing is pushed and no frame is taken, so the only thing between the stack pointer and
3820        // the caller's arguments is the return address the call pushed. Which is where gcc 16.2.0
3821        // reads them from too, at `-O0`, though it reads them in three instructions where this
3822        // reads them in two: the second read is the addition's own memory operand, which is
3823        // `rucc_codegen::combine`, and the offset in it is the one the frame layout wrote into the
3824        // load before the two were put together.
3825        assert!(text.contains("\tmovq\t8(%rsp), "), "{text}");
3826        assert!(text.contains("\taddq\t16(%rsp), "), "{text}");
3827
3828        // A narrower one is read at its own width, because the bits above it are bits the
3829        // convention says nothing about, and one in the other register file with the other file's
3830        // instruction.
3831        let narrow = asm(&format!("int f({six}, int g) {{ return g; }}\n"));
3832        assert!(narrow.contains("\tmovl\t8(%rsp), "), "{narrow}");
3833        let eight =
3834            "double a, double b, double c, double d, double e, double f, double g, double h";
3835        let float = asm(&format!("double f({eight}, double i) {{ return i; }}\n"));
3836        assert!(float.contains("\tmovsd\t8(%rsp), "), "{float}");
3837    }
3838
3839    /// The other end of the same thing. What the caller writes is at the stack pointer, because
3840    /// that is the bottom of its frame and the bottom of its frame is where the callee looks.
3841    #[test]
3842    fn a_call_writes_the_arguments_with_no_register_left_at_the_stack_pointer() {
3843        let six = "1, 2, 3, 4, 5, 6";
3844        let decl = "long g(long, long, long, long, long, long, long, long);\n";
3845        let text = asm(&format!("{decl}long f(void) {{ return g({six}, 7, 8); }}\n"));
3846
3847        assert!(text.contains("\tmovq\t%"), "{text}");
3848        assert!(text.contains(", (%rsp)\n"), "{text}");
3849        assert!(text.contains(", 8(%rsp)\n"), "{text}");
3850        // And it reserved the bytes it wrote into, so nothing else in the frame is on top of them.
3851        assert!(text.contains("\tsubq\t$"), "{text}");
3852
3853        // A narrower one is written at its own width, matching what the callee reads it back with.
3854        let narrow = "int g(int, int, int, int, int, int, int);\n";
3855        let text = asm(&format!("{narrow}int f(void) {{ return g({six}, 7); }}\n"));
3856        assert!(text.contains("\tmovl\t%"), "{text}");
3857        assert!(text.contains(", (%rsp)\n"), "{text}");
3858    }
3859
3860    /// The count a variadic callee on this convention reads is a count of vector registers, so a
3861    /// float that ran out of them and went to memory is not in it.
3862    #[test]
3863    fn a_variadic_call_counts_registers_and_not_arguments() {
3864        let nine = "1., 2., 3., 4., 5., 6., 7., 8., 9.";
3865        let decl = "int g(int, ...);\n";
3866        let text = asm(&format!("{decl}int f(void) {{ return g(0, {nine}); }}\n"));
3867
3868        assert!(text.contains("\tmovl\t$8, "), "eight registers, not nine: {text}");
3869        assert!(text.contains("\tmovsd\t%"), "{text}");
3870        assert!(text.contains(", (%rsp)\n"), "{text}");
3871    }
3872
3873    /// The callee's half of the same convention. Every argument register it was handed is written
3874    /// into its frame on the way in, because which of them hold anything is a thing only the caller
3875    /// knew, and the ones the signature does name are left out because `va_start` sets the offsets
3876    /// past them and nothing ever reads their slots.
3877    #[test]
3878    fn a_variadic_function_writes_the_argument_registers_it_was_handed_into_its_frame() {
3879        let body =
3880            "__builtin_va_list ap; __builtin_va_start(ap, n); __builtin_va_end(ap); return n;";
3881        let text = asm(&format!("int f(int n, ...) {{ {body} }}\n"));
3882
3883        // Five general purpose registers and eight vector ones, since the one parameter the
3884        // signature names took the first of the six.
3885        let stores = |mnemonic: &str| text.matches(&format!("\t{mnemonic}\t%")).count();
3886        assert!(text.contains(", 8(%r"), "the second slot, not the first: {text}");
3887        assert!(!text.contains(", 0(%r"), "{text}");
3888        // All sixteen bytes of each vector register, which is what gcc writes and what a `va_arg`
3889        // of a `_Float128` reads back, so the mnemonic is the one that moves a whole register.
3890        assert_eq!(stores("movaps"), 8, "every vector register: {text}");
3891        assert_eq!(stores("movsd"), 0, "and the whole of each one: {text}");
3892
3893        // And the area is one of the function's own stack objects, so the frame holds it.
3894        assert!(text.contains("\tsubq\t$"), "{text}");
3895    }
3896
3897    /// What `va_start` writes is the four fields of the list, and the two numbers among them are
3898    /// where the arguments the signature names left the walk over each file's registers.
3899    #[test]
3900    fn va_start_writes_the_four_fields_the_psabi_describes() {
3901        let start = "__builtin_va_list ap; __builtin_va_start(ap, d);";
3902        let params = "int a, int b, int c, double d";
3903        let text = asm(&format!("int f({params}, ...) {{ {start} return a; }}\n"));
3904
3905        // Three integers took three of the six general purpose registers, and one double took one
3906        // of the eight vector ones, so the walk starts at twenty four bytes into the first half and
3907        // sixteen bytes into the second, which begins at forty eight.
3908        assert!(text.contains("	movl	$24, "), "{text}");
3909        assert!(text.contains("	movl	$64, "), "{text}");
3910        // The other two fields are addresses rather than numbers, so each is stored as a word and
3911        // each is a `lea` away. One of them reaches above the frame, which is where the caller's
3912        // arguments are and is the only thing in this function that is not below the stack pointer.
3913        assert!(text.contains(", 8(%r"), "{text}");
3914        assert!(text.contains(", 16(%r"), "{text}");
3915        let frame: u32 = text
3916            .lines()
3917            .find_map(|line| line.trim().strip_prefix("subq	$")?.split(',').next()?.parse().ok())
3918            .expect("a variadic function takes a frame for the save area");
3919        let above = |line: &str| {
3920            let at: u32 = line.trim().strip_prefix("leaq	")?.split('(').next()?.parse().ok()?;
3921            Some(at > frame)
3922        };
3923        assert!(text.lines().filter_map(above).any(|it| it), "{frame}: {text}");
3924    }
3925
3926    /// A `va_arg` is a branch on whether the argument it wants is still in the save area, and which
3927    /// of the two halves it walks is the type's answer.
3928    #[test]
3929    fn va_arg_branches_on_whether_the_argument_is_still_in_the_save_area() {
3930        let read = "__builtin_va_list ap; __builtin_va_start(ap, n);";
3931        let ints = format!("int f(int n, ...) {{ {read} return __builtin_va_arg(ap, int); }}\n");
3932        let text = asm(&ints);
3933
3934        // The last general purpose slot begins at forty, so an offset above it is an argument the
3935        // caller left in its own memory instead.
3936        assert!(text.contains("$40, "), "{text}");
3937        assert!(text.contains("	cmpl	"), "{text}");
3938        // The jump is the unsigned one, since an offset is a count of bytes. It is the opposite
3939        // of the comparison the front end wrote, because the block falls into the half taken when
3940        // the argument is still in the save area and jumps to the other one.
3941        assert!(text.contains("	ja	"), "{text}");
3942
3943        let arg = "__builtin_va_arg(ap, double)";
3944        let text = asm(&format!("double f(int n, ...) {{ {read} return {arg}; }}\n"));
3945        assert!(text.contains("$160, "), "the last vector slot: {text}");
3946    }
3947
3948    /// A structure assigned is a copy of a known size, and a copy of a known size is a run of
3949    /// moves rather than a call to a library this compiler has no way to reach yet.
3950    #[test]
3951    fn a_structure_assignment_is_a_move_for_each_word_of_it() {
3952        let decl = "struct pair { long a, b; };\n";
3953        let body = "struct pair p = *q; return p.a + p.b;";
3954        let text = asm(&format!("{decl}long f(struct pair *q) {{ {body} }}\n"));
3955
3956        assert!(!text.contains("memcpy"), "nothing calls the library: {text}");
3957        assert!(!text.contains("\tcall"), "{text}");
3958        // Sixteen bytes aligned to eight is two words, and each is a load and a store.
3959        assert!(text.matches("\tmovq\t").count() >= 4, "two words each way: {text}");
3960    }
3961
3962    /// A word is as wide as the object is aligned to and no wider, so a character array is copied
3963    /// a byte at a time and a structure of longs eight bytes at a time.
3964    #[test]
3965    fn how_wide_a_word_of_a_copy_is_follows_the_alignment() {
3966        let decl = "struct bytes { char a[8]; };\n";
3967        let body = "struct bytes p = *q; return p.a[0];";
3968        let text = asm(&format!("{decl}int f(struct bytes *q) {{ {body} }}\n"));
3969
3970        // Eight bytes aligned to one is eight words, and each is a load and a store.
3971        assert!(text.matches("\tmovb\t").count() >= 16, "a byte at a time: {text}");
3972    }
3973
3974    /// What an initialiser does not name is zero, which the front end writes as a fill and this
3975    /// writes as the byte spread across each word.
3976    #[test]
3977    fn the_part_of_an_initialiser_that_names_nothing_is_stored_as_zero() {
3978        let decl = "struct wide { long a, b, c; };\n";
3979        let text = asm(&format!("{decl}long f(void) {{ struct wide w = {{ 7 }}; return w.c; }}\n"));
3980
3981        assert!(!text.contains("memset"), "nothing calls the library: {text}");
3982        // Either spelling of a zero in a register, the move of one or the exclusive or of the
3983        // register with itself that `rucc_codegen::shorten` writes instead where it is free. The
3984        // exclusive or is the thirty-two bit one whatever the width of the word, since the half of
3985        // the register it does not write is cleared rather than left alone.
3986        assert!(text.contains("\tmovq\t$0, ") || text.contains("\txorl\t"), "the zero: {text}");
3987    }
3988
3989    /// A copy too large to be worth unrolling is a call to the runtime, which is the C library on
3990    /// a hosted target and `rucc-builtins` on a freestanding one.
3991    #[test]
3992    fn a_copy_too_large_to_unroll_calls_the_runtime() {
3993        let decl = "struct huge { char a[4096]; };\n";
3994        let mut opts = options();
3995        opts.emit = EmitKind::Asm;
3996        let source = format!("{decl}void f(struct huge *p, struct huge *q) {{ *p = *q; }}\n");
3997        let result = run(&opts, &source);
3998        assert!(!result.failed(), "{:?}", result.messages);
3999        let text = result.text();
4000        assert!(text.contains("call") && text.contains("memcpy"), "{text}");
4001        // The size in the register the convention passes the third argument in, which is what
4002        // says the call was built from the convention and not from the shape of the IR.
4003        assert!(text.contains("4096"), "the size travels: {text}");
4004    }
4005
4006    /// And an object passed by value with more words in it than that is the same call again,
4007    /// written in front of the call the object is an argument of.
4008    ///
4009    /// The copy is one the caller owes the callee, since the callee is free to write to what it
4010    /// was handed, so it is not an optimization that the size decides but the only way the call
4011    /// can be made at all.
4012    #[test]
4013    fn a_structure_too_large_to_unroll_is_copied_into_the_argument_area_by_the_runtime() {
4014        let decl = "struct huge { char a[4096]; };\nint take(struct huge);\n";
4015        let text = asm(&format!("{decl}int f(struct huge *p) {{ return take(*p); }}\n"));
4016
4017        let copy = text.find("call\tmemcpy").expect("the copy");
4018        let call = text.find("call\ttake").expect("the call");
4019        assert!(copy < call, "the copy comes first: {text}");
4020        // Into the bottom of the outgoing area, which is where the stack pointer already is, and
4021        // with the size in the register the convention passes the third argument in. The address
4022        // of the bottom of the frame is the stack pointer itself, so what carries it is the move
4023        // rather than the address computation the selector wrote. See `rucc_codegen::shorten`.
4024        assert!(text.contains("movq\t%rsp, %rdi"), "the destination: {text}");
4025        assert!(text.contains("$4096, %edx"), "the size: {text}");
4026    }
4027
4028    /// A frame that had to force its own alignment cannot say how far away the caller's stack
4029    /// pointer was, so it reaches back through the frame pointer instead.
4030    #[test]
4031    fn a_realigned_frame_reads_them_through_the_frame_pointer() {
4032        let six = "long a, long b, long c, long d, long e, long f";
4033        let body = "_Alignas(32) long wide[4]; wide[0] = g; return wide[0];";
4034        let text = asm(&format!("long f({six}, long g) {{ {body} }}\n"));
4035
4036        // The frame pointer is saved and pointed at where it was saved before the alignment is
4037        // forced, so the caller's arguments stay a constant distance from it: one word for the
4038        // saved frame pointer and one for the return address.
4039        assert!(text.contains("\tandq\t$-32, %rsp"), "{text}");
4040        assert!(text.contains("\tmovq\t16(%rbp), "), "{text}");
4041        assert!(!text.contains("\tmovq\t16(%rsp), "), "{text}");
4042    }
4043
4044    /// The object format decides the directives, and the target decides the object format.
4045    #[test]
4046    fn the_target_decides_how_the_assembly_is_spelled() {
4047        let mut opts = options();
4048        opts.emit = EmitKind::Asm;
4049        opts.target = "x86_64-apple-darwin".parse::<Triple>().unwrap();
4050        let text = run(&opts, "int f(void) { return 0; }\n").text().to_owned();
4051        assert!(text.contains("__TEXT,__text"), "{text}");
4052        assert!(text.contains("\n_f:\n"), "{text}");
4053        assert!(!text.contains(".note.GNU-stack"), "{text}");
4054    }
4055
4056    /// The object file of `source`, insisting that it compiled cleanly.
4057    fn obj(source: &str) -> Vec<u8> {
4058        let mut opts = options();
4059        opts.emit = EmitKind::Object;
4060        let result = run(&opts, source);
4061        assert_eq!(result.messages, Vec::<String>::new(), "expected this to compile:\n{source}");
4062        match result.artifact {
4063            Artifact::Object { bytes, .. } => bytes,
4064            other => panic!("expected an object, got {other:?}"),
4065        }
4066    }
4067
4068    /// `-c`, which is the last step of the three the back end can end with.
4069    ///
4070    /// What is in the file is checked in `rucc-object`, a field at a time. What is checked here is
4071    /// that a C file goes all the way to one, which is the whole compiler in one line and the
4072    /// thing that stops working when a layer between them changes its mind about something.
4073    #[test]
4074    fn a_function_goes_from_c_to_an_object_a_linker_would_take() {
4075        let bytes = obj("int add(int a, int b) { return a + b; }\n");
4076        assert_eq!(&bytes[..4], b"\x7fELF", "an object file starts by saying it is one");
4077        let text = asm("int add(int a, int b) { return a + b; }\n");
4078        assert!(
4079            text.contains("\taddl\t"),
4080            "and the listing of it is the same instructions:\n{text}"
4081        );
4082    }
4083
4084    /// A variable this file defines, which is what a reference to one has to resolve against.
4085    #[test]
4086    fn a_variable_goes_from_c_to_the_section_it_belongs_in() {
4087        let text = asm("int counter = 42;\nstatic int hidden;\nconst int fixed = 7;\n");
4088        assert!(text.contains("\t.data\n\t.globl\tcounter\n"), "{text}");
4089        assert!(text.contains("\ncounter:\n\t.long\t42\n"), "{text}");
4090        assert!(text.contains("\t.size\tcounter, .-counter\n"), "{text}");
4091        // A zeroed variable carries its size and none of its bytes, and a `static` one is not
4092        // announced to the linker at all, which is the whole of what `static` means here.
4093        assert!(text.contains("\t.bss\n\t.p2align\t2\n"), "{text}");
4094        assert!(text.contains("\nhidden:\n\t.space\t4\n"), "{text}");
4095        assert!(!text.contains(".globl\thidden"), "{text}");
4096        // Nothing writes through it, so it goes in a page the loader can map read only and every
4097        // process running the program can share.
4098        assert!(text.contains("\t.section\t.rodata\n"), "{text}");
4099    }
4100
4101    /// A bit-field with a value in it, which is written as the bytes the value lands in.
4102    ///
4103    /// The interesting one is the field whose lowest byte is zero. The bytes a bit-field
4104    /// initializer makes are put together first and then taken back out as the run they make,
4105    /// and taking them out starts at the byte the field starts at, so a zero byte at the front
4106    /// used to end the object up in `.bss` with the rest of its value thrown away.
4107    #[test]
4108    fn a_bit_field_initializer_writes_every_byte_of_the_value_and_not_only_the_ones_that_are_set() {
4109        let text = asm("struct s { unsigned f : 20; } x = { 0x12300 };\n");
4110        assert!(text.contains("\t.data\n"), "there is something to write: {text}");
4111        assert!(text.contains("\nx:\n\t.ascii\t\"\\000#\\001\"\n"), "and it is the value: {text}");
4112
4113        // Two fields, the first of them zero, which is the same thing said with the zero byte
4114        // inside the run rather than at the front of it.
4115        let text = asm("struct s { unsigned a : 8; unsigned b : 8; } x = { 0, 3 };\n");
4116        assert!(text.contains("\nx:\n\t.ascii\t\"\\000\\003\"\n"), "{text}");
4117
4118        // Wider than an `int`, which is the same code and is worth saying because the value no
4119        // longer fits in the thirty two bits a bit-field used to be read at.
4120        let text = asm("struct s { unsigned long long f : 40; } x = { 0x100000 };\n");
4121        assert!(text.contains("\nx:\n\t.ascii\t\"\\000\\000\\020\"\n\t.space\t5\n"), "{text}");
4122
4123        // Nothing in it, which still costs no bytes in the file.
4124        let text = asm("struct s { unsigned f : 20; } x = { 0 };\n");
4125        assert!(text.contains("\t.bss\n"), "an object of zeroes is zeroes: {text}");
4126        assert!(text.contains("\nx:\n\t.space\t4\n"), "{text}");
4127    }
4128
4129    /// A string literal, which is a variable the program never named.
4130    #[test]
4131    fn a_string_literal_is_a_variable_with_a_name_no_program_could_write() {
4132        let text = asm("const char *f(void) { return \"hi\"; }\n");
4133        assert!(text.contains("\t.ascii\t\"hi\\000\"\n"), "{text}");
4134        assert!(text.contains("\t.section\t.rodata\n"), "{text}");
4135        let label = text
4136            .lines()
4137            .find(|line| line.starts_with(".Lstr"))
4138            .unwrap_or_else(|| panic!("a label for the literal in\n{text}"));
4139        assert!(!text.contains(&format!(".globl\t{}", label.trim_end_matches(':'))), "{text}");
4140    }
4141
4142    /// A variable holding the address of another one, which is the only hole an image has in it.
4143    #[test]
4144    fn an_address_in_an_initializer_is_left_to_the_linker() {
4145        let source = "int counter;\nint *p = &counter;\n";
4146        let text = asm(source);
4147        assert!(text.contains("\np:\n\t.quad\tcounter\n"), "{text}");
4148        // And in the object it is eight zero bytes and a relocation, which is what the two paths
4149        // being one description is for.
4150        let bytes = obj(source);
4151        assert!(bytes.windows(8).any(|w| w == b"counter\0"), "the object has to name it");
4152    }
4153
4154    /// A const table of function pointers, which is the shape that made SQLite link with a warning.
4155    ///
4156    /// The table is const so nothing in the program writes it, but the addresses in it are not
4157    /// numbers a link knows, so the loader writes it once at startup. Putting it in `.rodata`
4158    /// leaves a relocation in a section that is never writable, and what the linker does about
4159    /// that is set `DT_TEXTREL` on the whole image and say so. `.data.rel.ro` is writable for
4160    /// exactly as long as the loader is writing it and read only afterwards, which is what the
4161    /// program asked for in the first place.
4162    #[test]
4163    fn a_constant_holding_an_address_goes_in_the_section_the_loader_may_write_once() {
4164        // Both names are `static` and both are defined here, so nothing else can be the one that
4165        // defines them and the linker may lay the table out in the first pages of the segment.
4166        let text = asm("static void a(void) {}\nstatic void b(void) {}\n\
4167             struct m { void (*x)(void); void (*y)(void); };\n\
4168             const struct m t = { a, b };\n");
4169        assert!(text.contains("\t.section\t.data.rel.ro.local,\"aw\",@progbits\n"), "{text}");
4170        assert!(text.contains("\nt:\n\t.quad\ta\n\t.quad\tb\n"), "{text}");
4171
4172        // One name this file only declares is enough to lose the `.local` half, because a name the
4173        // link resolves from somewhere else is one another object may turn out to define.
4174        let text =
4175            asm("void a(void);\nstruct m { void (*x)(void); };\nconst struct m t = { a };\n");
4176        assert!(text.contains("\t.section\t.data.rel.ro,\"aw\",@progbits\n"), "{text}");
4177
4178        // And a constant with no address in it stays exactly where it was.
4179        let text = asm("const int fixed = 7;\n");
4180        assert!(text.contains("\t.section\t.rodata\n"), "{text}");
4181    }
4182
4183    /// A thread-local variable, which is the whole of one: the storage and the way to reach it.
4184    ///
4185    /// The two halves are in one test on purpose. Either one alone is worse than neither: a
4186    /// definition with no way to reach it is a variable nothing can read, and a reference with no
4187    /// definition behind it is the bug this pair was written to prevent, where a thread-local is
4188    /// read as though it were an ordinary global and every thread quietly shares one copy.
4189    #[test]
4190    fn a_thread_local_variable_is_storage_a_thread_gets_a_copy_of_and_an_offset_into_it() {
4191        let text = asm("_Thread_local int x = 1;\nint read(void) { return x; }\n");
4192        // The storage: the section the loader makes a copy of for every thread, and the symbol
4193        // type that makes a linker refuse an ordinary relocation aimed at it.
4194        assert!(text.contains("\t.section\t.tdata,\"awT\",@progbits\n"), "{text}");
4195        assert!(text.contains("\t.type\tx, @tls_object\n"), "{text}");
4196        // The way to reach it: how far into a thread's block it sits, out of the table, plus where
4197        // this thread's block is, out of the segment register.
4198        assert!(text.contains("x@GOTTPOFF(%rip)"), "{text}");
4199        assert!(text.contains("%fs:0"), "{text}");
4200    }
4201
4202    /// The second half of that on its own, which is what a program asks for when the number it
4203    /// wants is the thread rather than anything in it.
4204    ///
4205    /// rpmalloc writes this to find its per thread cache, and it is the whole of what stood
4206    /// between that library and a build. gcc 16 writes the same one instruction.
4207    #[test]
4208    fn the_address_of_this_thread_s_own_storage_is_read_out_of_the_segment_register() {
4209        let text = asm("void *here(void) { return __builtin_thread_pointer(); }\n");
4210        assert!(text.contains("movq\t%fs:0, "), "{text}");
4211        // No table slot and no addition, because there is no variable to find inside the block.
4212        assert!(!text.contains("GOTTPOFF"), "{text}");
4213    }
4214
4215    /// The four hints and the one thing that decides between them, which is the locality.
4216    ///
4217    /// A prefetch promises nothing, so what is checked here is the instruction rather than any
4218    /// effect: the program runs the same whichever of the four it gets, and the whole point of
4219    /// writing one is which. The four spellings are what gcc 16.2.0 writes for the same four
4220    /// programs, measured on x86-64 rather than read off a manual.
4221    ///
4222    /// The write hint is not one of them. `prefetchw` is not in the base instruction set and gcc
4223    /// writes it only when the command line says the part has it, so a prefetch for a write is the
4224    /// same instruction as a prefetch for a read, which is the fourth line here.
4225    #[test]
4226    fn a_prefetch_is_one_of_four_instructions_and_the_locality_is_what_picks() {
4227        for (locality, wanted) in
4228            [(0, "prefetchnta"), (1, "prefetcht2"), (2, "prefetcht1"), (3, "prefetcht0")]
4229        {
4230            let source =
4231                format!("void warm(void *p) {{ __builtin_prefetch(p, 0, {locality}); }}\n");
4232            let text = asm(&source);
4233            assert!(text.contains(&format!("\t{wanted}\t")), "locality {locality}: {text}");
4234        }
4235        // The one argument form, which means a read that wants all of the data afterwards.
4236        let text = asm("void warm(void *p) { __builtin_prefetch(p); }\n");
4237        assert!(text.contains("\tprefetcht0\t"), "{text}");
4238        // A prefetch for a write, which on a part nobody said has `prefetchw` is the same
4239        // instruction as the read above.
4240        let text = asm("void warm(void *p) { __builtin_prefetch(p, 1); }\n");
4241        assert!(text.contains("\tprefetcht0\t"), "{text}");
4242        assert!(!text.contains("prefetchw"), "{text}");
4243    }
4244
4245    /// The stop, which is the one instruction the machine is promised never to have a meaning for.
4246    ///
4247    /// What is checked is the instruction and not any effect, because the effect is a fault and a
4248    /// unit test has nowhere to take one. gcc 16.2.0 writes the same instruction for the same
4249    /// program, and it is not a call, which is the half that matters in a kernel and in a
4250    /// freestanding program: neither has an `abort` for a call to reach.
4251    ///
4252    /// The second half is the block going on after it. A statement written under a stop is
4253    /// compiled the way it would have been without one, so the addition is still there, and that
4254    /// is the front end declining to treat a stop as the end of a path.
4255    #[test]
4256    fn a_trap_is_the_instruction_the_machine_has_no_meaning_for() {
4257        let text = asm("void stop(void) { __builtin_trap(); }\n");
4258        assert!(text.contains("\tud2\n"), "{text}");
4259        assert!(!text.contains("\tcall"), "a stop is not a call to anything: {text}");
4260
4261        let text = asm("int stop(int a) { __builtin_trap(); return a + 1; }\n");
4262        assert!(text.contains("\tud2\n"), "{text}");
4263        assert!(text.contains("\taddl\t"), "the block goes on after a stop: {text}");
4264    }
4265
4266    /// The promise about the low bits of an address, whose value is the address.
4267    ///
4268    /// Nothing here reads an alignment fact about a value yet, so what the call leaves behind is
4269    /// its first argument and no instruction at all. The claim worth checking end to end is that
4270    /// the name is gone: a builtin nothing lowers reaches the assembler as a call to a name no
4271    /// object file defines, which is how this one used to fail to link out of glibc's string
4272    /// headers.
4273    ///
4274    /// The arguments behind the address are still evaluated, because gcc 16.2.0 evaluates them at
4275    /// every optimization level even though it has folded the call away. A constant has nothing to
4276    /// run and is dropped, and a call does, so the second half asks for the callee by name.
4277    #[test]
4278    fn assume_aligned_is_its_first_argument_and_keeps_the_rest() {
4279        let text = asm("void *aligned(char *p) { return __builtin_assume_aligned(p, 16); }\n");
4280        assert!(!text.contains("assume_aligned"), "{text}");
4281        assert!(!text.contains("\tcall"), "nothing is called for an alignment fact: {text}");
4282
4283        let source = "unsigned long width(void);\n\
4284                      void *aligned(char *p) { return __builtin_assume_aligned(p, width()); }\n";
4285        let text = asm(source);
4286        assert!(!text.contains("assume_aligned"), "{text}");
4287        assert!(text.contains("width"), "the argument that is not the answer still runs: {text}");
4288    }
4289
4290    /// Where a frame is, which on this machine is what the frame pointer holds.
4291    ///
4292    /// The first half is a function that would have kept no frame pointer at all, since it is a
4293    /// leaf with no locals, and keeps one because it asked where its frame is. The answer being
4294    /// `%rbp` rather than an offset off `%rsp` is the whole of the builtin at a depth of zero.
4295    ///
4296    /// The second half is the walk. Each link above zero is one load through the register the last
4297    /// one wrote, so a depth of two is two loads and a depth of three is three, which is what gcc
4298    /// 16.2.0 writes for the same programs at `-O2`.
4299    #[test]
4300    fn the_frame_address_is_the_frame_pointer_after_walking_that_many_links() {
4301        let text = asm("void *here(void) { return __builtin_frame_address(0); }\n");
4302        assert!(text.contains("pushq\t%rbp"), "a function that asks keeps a frame pointer: {text}");
4303        assert!(text.contains("movq\t%rbp, %rax"), "{text}");
4304        assert!(!text.contains("\tcall"), "a frame address is not a call to anything: {text}");
4305
4306        let walk = |depth: u32| {
4307            let source = format!("void *up(void) {{ return __builtin_frame_address({depth}); }}\n");
4308            asm(&source).matches("movq\t(%r").count()
4309        };
4310        assert_eq!(walk(1), 1, "one link is one load");
4311        assert_eq!(walk(3), 3, "three links are three loads");
4312    }
4313
4314    /// The address a frame returns to, which is one word above the frame the walk ended at.
4315    ///
4316    /// A word is eight bytes here and the `8(...)` is the whole claim: the call instruction pushed
4317    /// the return address and the prologue pushed the caller's frame pointer under it, so what the
4318    /// frame pointer points at is the link and what is above it is where control goes back to.
4319    /// gcc 16.2.0 writes `movq 8(%rbp), %rax` for the first of these, measured at `-O2`.
4320    ///
4321    /// The second half is the same walk the frame address does, with the load at the end of it
4322    /// reading one word further along rather than the register itself being the answer.
4323    #[test]
4324    fn the_return_address_is_one_word_above_the_frame_the_walk_ended_at() {
4325        let text = asm("void *back(void) { return __builtin_return_address(0); }\n");
4326        assert!(text.contains("pushq\t%rbp"), "a function that asks keeps a frame pointer: {text}");
4327        assert!(text.contains("movq\t8(%rbp), %rax"), "{text}");
4328        assert!(!text.contains("\tcall"), "a return address is not a call to anything: {text}");
4329
4330        let text = asm("void *back(void) { return __builtin_return_address(2); }\n");
4331        assert_eq!(text.matches("movq\t(%r").count(), 2, "two links are two loads: {text}");
4332        assert!(text.contains("movq\t8(%r"), "and the answer is above the last of them: {text}");
4333    }
4334
4335    /// A depth that is not a constant is refused, and so is one past the limit.
4336    ///
4337    /// The first is gcc's rule and not a convenience: what the call becomes is a walk that many
4338    /// links long, written out, so a number that is not known until the program runs has nothing
4339    /// to walk. gcc 16.2.0 says `invalid argument to '__builtin_return_address'` for the same
4340    /// program.
4341    ///
4342    /// The second is where this and gcc part company. gcc writes the walk however long it is, and
4343    /// this refuses a depth no program has a use for rather than filling an object file with loads
4344    /// that fault part way up.
4345    #[test]
4346    fn a_depth_that_is_not_a_small_constant_is_refused() {
4347        let mut opts = options();
4348        opts.emit = EmitKind::Ir;
4349        for source in [
4350            "void *up(int n) { return __builtin_return_address(n); }\n",
4351            "void *up(void) { return __builtin_frame_address(1000); }\n",
4352        ] {
4353            let messages = run(&opts, source).messages;
4354            let named = messages.iter().any(|m| m.contains("E0705"));
4355            assert!(named, "expected a refusal in {messages:?}");
4356        }
4357    }
4358
4359    /// Bytes off the frame, which is the stack pointer moving down and the answer being where it
4360    /// moved to.
4361    ///
4362    /// The rounding is the alignment: the size is taken up to the next sixteen before it is
4363    /// subtracted, so the pointer suits anything the program puts behind it. gcc 16.2.0 rounds the
4364    /// same way at `-O0` and spends a division doing it, which is the one place the two differ and
4365    /// is about how the rounding is written rather than about what it answers.
4366    ///
4367    /// There is no call anywhere in either program. An alloca that had reached the linker would
4368    /// have found the C library's, which is a real function with a real frame and is not what a
4369    /// program writing the builtin asked for.
4370    #[test]
4371    fn an_alloca_takes_the_bytes_off_the_stack_pointer_and_answers_where_they_are() {
4372        let text =
4373            asm("void use(void *p); void f(unsigned long n) { use(__builtin_alloca(n)); }\n");
4374        assert!(text.contains("andq\t$-16"), "the size is rounded up to sixteen: {text}");
4375        assert!(text.contains("subq\t%rdi, %rsp"), "and taken off the stack pointer: {text}");
4376        assert_eq!(text.matches("\tcall").count(), 1, "the only call is the one written: {text}");
4377
4378        // The plain name, which a program that declares it the way the C library does means the
4379        // same thing by. `gcc.c-torture/execute/20010122-1.c` is exactly this program.
4380        let plain = concat!(
4381            "extern void *alloca(__SIZE_TYPE__);\n",
4382            "void use(void *p);\n",
4383            "void f(unsigned long n) { use(alloca(n)); }\n",
4384        );
4385        let text = asm(plain);
4386        assert!(text.contains("subq\t%rdi, %rsp"), "the plain name is the same bytes: {text}");
4387        assert_eq!(text.matches("\tcall").count(), 1, "and is not a call either: {text}");
4388
4389        // And a program that means something of its own by the name keeps it, which is what the
4390        // declaration is looked at for.
4391        let own = concat!(
4392            "static void *alloca(unsigned long n) { return 0; }\n",
4393            "void *f(unsigned long n) { return alloca(n); }\n",
4394        );
4395        assert!(asm(own).contains("\tcall"), "a name the program took back is a call");
4396    }
4397
4398    /// A name nothing declared that the implementation knows the type of is declared with that
4399    /// type rather than with the `extern int f()` C89 6.3.2.2 writes down.
4400    ///
4401    /// That is gcc's rule and it is measurable: gcc 16.2.0 compiles an undeclared `alloca` with
4402    /// no call in it at all, and says `incompatible implicit declaration of built-in function`
4403    /// beside the implicit declaration warning. A C89 declaration would have made the call return
4404    /// an `int` and reach a function no C library defines, since every header that offers
4405    /// `alloca` offers it as a macro for the builtin. Four torture programs turn on it,
4406    /// `execute/20020314-1.c`, `20040223-1.c`, `941202-1.c` and `pr22061-1.c`, each of which
4407    /// calls `alloca` with nothing above it.
4408    ///
4409    /// The rule is the builtin table's rather than this one name's, so an undeclared `strlen` is
4410    /// the builtin too. What it is not is a declaration the program wrote that disagrees with the
4411    /// builtin's type, which gcc keeps and calls, and that was measured as well.
4412    #[test]
4413    fn a_builtin_the_program_never_declared_is_the_builtin_rather_than_the_one_c89_wrote_down() {
4414        // `-fpermissive`, because the implicit declaration itself is an error in every dialect
4415        // after C89 and the program would never get as far as a type without it. Each of the four
4416        // torture programs asks for either that or `-std=gnu89` on its own options line.
4417        let mut opts = options();
4418        opts.permissive = true;
4419        let undeclared = "void use(void *p);
4420void f(unsigned long n) { use(alloca(n)); }
4421";
4422        assert_eq!(
4423            run(&opts, undeclared).messages,
4424            [
4425                "/main.c:2:31: warning: implicit declaration of function 'alloca' [E0521]",
4426                "/main.c:2:31: warning: incompatible implicit declaration of built-in function \
4427                 'alloca' [E0713]",
4428            ]
4429        );
4430
4431        opts.emit = EmitKind::Asm;
4432        let text = run(&opts, undeclared).text().to_owned();
4433        assert!(text.contains("subq\t%rdi, %rsp"), "the bytes come off the stack: {text}");
4434        assert_eq!(text.matches("\tcall").count(), 1, "the only call is the one written: {text}");
4435
4436        // The table's rule and not this one name's, so a name whose whole answer is the library
4437        // function of the same name gets that function's type and still reaches it.
4438        let string = "unsigned long f(void) { return strlen(\"abc\"); }\n";
4439        let text = run(&opts, string).text().to_owned();
4440        assert!(text.contains("call\tstrlen"), "strlen is still a call: {text}");
4441
4442        // A declaration the program wrote is the program's, whatever the table says. gcc keeps
4443        // this one and writes the call, which is what makes the type worth looking at.
4444        let own = concat!(
4445            "static void *alloca(unsigned long n) { return 0; }\n",
4446            "void *f(unsigned long n) { return alloca(n); }\n",
4447        );
4448        assert!(asm(own).contains("\tcall"), "a name the program took back is a call");
4449    }
4450
4451    /// The bytes an alloca took live until the function returns and not until the end of the block
4452    /// the call was written in.
4453    ///
4454    /// That is what makes it different from a variable length array, and the way it is kept is that
4455    /// every scope open where the call was written stops giving the stack back. The second program
4456    /// is the mixed case: an array in the outer block and an alloca in the inner one, where the
4457    /// inner block gives nothing back either even though an array is in scope that ordinarily
4458    /// would. gcc 16.2.0 at `-O0` writes no restore at the end of either block, measured rather
4459    /// than read off the manual.
4460    #[test]
4461    fn the_bytes_an_alloca_took_are_still_there_at_the_end_of_the_block_that_took_them() {
4462        let inner = "{ use(__builtin_alloca(n)); }";
4463        for body in [inner.to_owned(), format!("int a[n]; {inner} use(a);")] {
4464            let source = format!("void use(void *p);\nvoid f(unsigned long n) {{ {body} }}\n");
4465            let text = asm(&source);
4466            // Every instruction that writes the stack pointer, which in a function that gives
4467            // nothing back is the alloca taking bytes and the epilogue putting the frame pointer
4468            // there. A restore would be a third kind, a move out of a register the save wrote.
4469            for line in text.lines().filter(|line| line.trim_end().ends_with(", %rsp")) {
4470                let taking = line.contains("subq");
4471                let leaving = line.contains("%rbp");
4472                assert!(taking || leaving, "nothing puts the stack back: {line} in {text}");
4473            }
4474        }
4475    }
4476
4477    /// Not a rewording of the check above: what the two paths agree about is the point.
4478    #[test]
4479    fn the_object_and_the_listing_are_two_spellings_of_one_compilation() {
4480        // A call, because it is the one thing whose spelling in the two differs completely: the
4481        // listing writes a name and the object writes four zero bytes and a relocation asking the
4482        // linker for the same name. If either path had lost the callee, one of these would fail.
4483        let source = "int callee(void); int g(void) { return callee(); }\n";
4484        let bytes = obj(source);
4485        assert!(
4486            bytes.windows(7).any(|w| w == b"callee\0"),
4487            "the object has to name the callee for the linker to find it"
4488        );
4489        let text = asm(source);
4490        assert!(text.contains("\tcall\tcallee\n"), "{text}");
4491    }
4492
4493    /// What a file of a link contributes is an object, and the default emit is a link.
4494    ///
4495    /// This is here because getting it wrong is silent in the worst way: an empty file is a valid
4496    /// empty linker script, so a link fed one gets as far as reporting every symbol of the file as
4497    /// undefined and says nothing about the compilation that produced nothing.
4498    #[test]
4499    fn compiling_for_an_executable_produces_an_object_and_not_a_dump() {
4500        let mut opts = options();
4501        // What a command line with no `-c` and no `-S` on it asks for.
4502        opts.emit = EmitKind::Executable;
4503        let result = run(&opts, "int main(void) { return 0; }\n");
4504        assert_eq!(result.messages, Vec::<String>::new());
4505        match result.artifact {
4506            Artifact::Object { bytes, .. } => assert_eq!(&bytes[..4], b"\x7fELF"),
4507            other => panic!("expected an object, got {other:?}"),
4508        }
4509    }
4510
4511    /// A target with a back end but no object writer says so rather than writing the wrong file.
4512    #[test]
4513    fn a_platform_with_no_object_writer_is_said_so_rather_than_written_as_elf() {
4514        let mut opts = options();
4515        opts.emit = EmitKind::Object;
4516        opts.target = "x86_64-apple-darwin".parse::<Triple>().unwrap();
4517        let result = run(&opts, "int f(void) { return 0; }\n");
4518        assert!(result.failed(), "an object nobody can read is worse than a message");
4519        assert!(
4520            result.messages.iter().any(|m| m.contains("no object writer")),
4521            "{:?}",
4522            result.messages
4523        );
4524    }
4525
4526    /// The IR of `source`, insisting that it compiled cleanly.
4527    fn ir(source: &str) -> String {
4528        let mut opts = options();
4529        opts.emit = EmitKind::Ir;
4530        let result = run(&opts, source);
4531        assert_eq!(result.messages, Vec::<String>::new(), "expected this to compile:\n{source}");
4532        result.text().to_owned()
4533    }
4534
4535    /// What was said about `source`, insisting that something was.
4536    fn errors(source: &str) -> Vec<String> {
4537        let mut opts = options();
4538        opts.emit = EmitKind::Ir;
4539        let result = run(&opts, source);
4540        assert!(result.failed(), "expected this to be refused:\n{source}");
4541        result.messages
4542    }
4543
4544    /// The body of the one function in `source`, which is what most of these are about.
4545    fn body(source: &str) -> String {
4546        let text = ir(source);
4547        let (_, rest) = text.split_once("{\n").expect("a function definition");
4548        let (body, _) = rest.rsplit_once("}\n").expect("a function definition");
4549        body.to_owned()
4550    }
4551
4552    /// What `-fgnu89-inline` is for, seen at the only place it shows: whether a body reached the
4553    /// module or only a declaration did.
4554    ///
4555    /// The C99 reading is the one an inline definition is written for and is not being changed
4556    /// here. What the flag is for is a program written before C99 swapped the two, which relies on
4557    /// `inline` alone leaving something behind for another unit to call, and there are twelve of
4558    /// those in the GCC torture suite alone.
4559    #[test]
4560    fn gnu89_inline_is_what_decides_whether_a_bare_inline_definition_reaches_the_module() {
4561        let source = "inline int f(int x) { return x + 1; }\n";
4562        let with = |flag: bool| {
4563            let mut opts = options();
4564            opts.emit = EmitKind::Ir;
4565            opts.gnu89_inline = flag;
4566            let result = run(&opts, source);
4567            assert_eq!(result.messages, Vec::<String>::new(), "expected this to compile");
4568            result.text().to_owned()
4569        };
4570
4571        // Under C's reading the module holds the declaration and the calls in this unit go to
4572        // whatever definition another unit has, which is C 6.7.4p7 and is what gcc does too.
4573        assert!(!with(false).contains("block0"), "no body: {}", with(false));
4574
4575        // Under GNU's it is an ordinary external definition, so the body is there and the symbol
4576        // is one the linker can resolve against.
4577        assert!(with(true).contains("block0"), "a body: {}", with(true));
4578    }
4579
4580    /// Every shape that reads or writes through a C type names that type.
4581    ///
4582    /// The tree itself is `rucc_lower::aliasing`'s and is tested there. What this is about is that
4583    /// the walk reaches it from every shape a program actually writes, since a node on the scalar
4584    /// load and nothing on the member load would be a layer that answers for a third of the
4585    /// accesses in a program and is not worth having.
4586    #[test]
4587    fn an_access_through_a_type_names_the_type_it_went_through() {
4588        let source = "\
4589struct s { int a; float b; };\n\
4590union u { int i; float f; };\n\
4591int scalar(int *p) { return *p; }\n\
4592float member(struct s *p) { p->a = 1; return p->b; }\n\
4593int element(int *a, long i) { return a[i]; }\n\
4594float through_a_union(union u *p) { p->i = 1; return p->f; }\n";
4595        let text = ir(source);
4596        assert!(text.contains(r#"!0 = tbaa "char""#), "the root: {text}");
4597        assert!(text.contains(r#"tbaa "int", parent !0"#), "int under it: {text}");
4598        assert!(text.contains(r#"tbaa "float", parent !0"#), "float under it: {text}");
4599        // One per access, and a function whose accesses all go through one type says so once per
4600        // access rather than once per function.
4601        let named = text.lines().filter(|line| line.contains(", tbaa !")).count();
4602        assert_eq!(named, 6, "six accesses: {text}");
4603    }
4604
4605    /// `-fno-strict-aliasing` is the front end leaving the name off.
4606    ///
4607    /// Nothing asks the alias analysis anything yet, so no program compiles differently for having
4608    /// passed this today. What this test is for is the day one does: the flag has to be the
4609    /// absence of the names rather than a condition somewhere downstream, since that is the only
4610    /// version of it that a pass added later cannot forget about.
4611    #[test]
4612    fn turning_strict_aliasing_off_leaves_the_type_off_every_access() {
4613        let source = "int punned(float *f, int *i) { *i = 1; *f = 2.0f; return *i; }\n";
4614        let mut opts = options();
4615        opts.emit = EmitKind::Ir;
4616        opts.strict_aliasing = false;
4617        let result = run(&opts, source);
4618        assert_eq!(result.messages, Vec::<String>::new(), "expected this to compile");
4619        let text = result.text().to_owned();
4620        assert!(!text.contains("tbaa"), "not even the root: {text}");
4621    }
4622
4623    /// `-finstrument-functions` puts one call to the entry hook in front of the body and one call
4624    /// to the exit hook in front of every return, each given the function's own address and the
4625    /// address it returns to. A function declared `no_instrument_function` gets neither, and the
4626    /// hooks are declared that way here as they are in `execute/eeprof-1.c`, since a hook that
4627    /// called itself would never get as far as its body.
4628    #[test]
4629    fn instrumenting_functions_calls_the_hooks_around_every_body_but_the_hooks() {
4630        let source = concat!(
4631            "#define NOCHK __attribute__((no_instrument_function))\n",
4632            "void __cyg_profile_func_enter(void *, void *) NOCHK;\n",
4633            "void __cyg_profile_func_exit(void *, void *) NOCHK;\n",
4634            "int calls;\n",
4635            "int pick(int x) { if (x) return 1; return 2; }\n",
4636            "void quiet(void) NOCHK;\n",
4637            "void quiet(void) { calls++; }\n",
4638            "void __cyg_profile_func_enter(void *fn, void *site) { calls++; }\n",
4639            "void __cyg_profile_func_exit(void *fn, void *site) { calls--; }\n",
4640        );
4641        let mut opts = options();
4642        opts.emit = EmitKind::Ir;
4643        opts.instrument_functions = true;
4644        let result = run(&opts, source);
4645        assert_eq!(result.messages, Vec::<String>::new(), "expected this to compile");
4646        let text = result.text().to_owned();
4647        let body = |name: &str| -> String {
4648            let open = format!("func @{name}(");
4649            let start = text.find(&open).unwrap_or_else(|| panic!("no {name}: {text}"));
4650            let rest = &text[start..];
4651            rest[..rest.find("\n}").unwrap_or(rest.len())].to_owned()
4652        };
4653        let pick = body("pick");
4654        assert_eq!(pick.matches("call @__cyg_profile_func_enter(").count(), 1, "{pick}");
4655        assert_eq!(pick.matches("call @__cyg_profile_func_exit(").count(), 2, "{pick}");
4656        assert!(pick.contains("return_address"), "{pick}");
4657        assert!(pick.contains("global_addr @pick"), "{pick}");
4658        for quiet in ["quiet", "__cyg_profile_func_enter", "__cyg_profile_func_exit"] {
4659            assert!(!body(quiet).contains("call "), "{quiet} is left alone: {text}");
4660        }
4661
4662        opts.instrument_functions = false;
4663        let result = run(&opts, source);
4664        assert!(!result.text().contains("call @__cyg_profile"), "off unless asked for");
4665    }
4666
4667    /// `return;` from a function that promised a value, which only C89 lets through and which
4668    /// therefore only reaches the IR builder under that dialect.
4669    ///
4670    /// Zero goes back. The alternatives are worse: an empty return list builds a `ret` the
4671    /// verifier refuses, which is what a torture case found, and `unreachable` would be a claim
4672    /// that the branch reaching this never runs, which is a claim about the program rather than
4673    /// about the value and lets the optimizer delete the path that led here.
4674    #[test]
4675    fn a_bare_return_from_a_function_that_promised_a_value_gives_back_a_zero() {
4676        let mut opts = options();
4677        opts.emit = EmitKind::Ir;
4678        opts.std = Std::C89;
4679        let compiled = |source: &str| {
4680            let result = run(&opts, source);
4681            assert_eq!(result.messages, Vec::<String>::new(), "C89 has nothing to say about this");
4682            result.text().to_owned()
4683        };
4684
4685        let text = compiled("int f(int x) { if (x) return; return 3; }\n");
4686        assert!(text.contains("iconst.i32 0\n    return"), "zero goes back: {text}");
4687        assert!(!text.contains("unreachable"), "the branch that reached it is kept: {text}");
4688
4689        // A floating point return needs the constant of its own kind rather than an integer one.
4690        let text = compiled("double f(int x) { if (x) return; return 1.0; }\n");
4691        assert!(text.contains("fconst.f64 0x0\n    return"), "a float zero goes back: {text}");
4692    }
4693
4694    /// What C89 6.3.2.2 declares for a call to a name nothing declared, seen in the IR rather than
4695    /// in what was said about it.
4696    ///
4697    /// `extern int f();`, so the call gives back an `int` and its arguments are promoted rather
4698    /// than converted to parameters there are none of. The declaration lasts for the file, which
4699    /// is what makes a second call to the same name ordinary and is why gcc says this once per
4700    /// file rather than once per call.
4701    #[test]
4702    fn a_call_to_a_name_nothing_declared_declares_it_as_c89_said_to() {
4703        let mut opts = options();
4704        opts.emit = EmitKind::Ir;
4705        opts.std = Std::C89;
4706        let compiled = |source: &str| {
4707            let result = run(&opts, source);
4708            assert_eq!(result.messages, Vec::<String>::new(), "C89 has nothing to say about this");
4709            result.text().to_owned()
4710        };
4711
4712        // An `int` back, which is the whole of what the implicit declaration says.
4713        let text = compiled("int f(void) { return g(); }\n");
4714        assert!(text.contains("call @g"), "the call is to the name that was written: {text}");
4715        assert!(text.contains("i32"), "and it gives back an int: {text}");
4716
4717        // No prototype, so a `char` argument arrives promoted to `int` the way an argument to a
4718        // function whose parameters are unspecified does.
4719        let text = compiled("int f(char c) { return g(c); }\n");
4720        assert!(text.contains("sext.i32"), "the argument is promoted: {text}");
4721
4722        // A name written as a value rather than called is still undeclared, since the rule is
4723        // about a call and nothing else.
4724        let mut opts = options();
4725        opts.std = Std::C89;
4726        let said = run(&opts, "int f(void) { return h; }\n").messages.join("\n");
4727        assert!(said.contains("'h' undeclared"), "not a call, so not declared: {said}");
4728    }
4729
4730    /// A file that calls a name above the definition of it, which is the shape the implicit
4731    /// declaration has to survive rather than swallow.
4732    ///
4733    /// The definition merges into the declaration the call already made rather than making a
4734    /// second one, so a declaration the tree does not carry at the top level takes the definition
4735    /// down with it: the body is attached to a node nothing walks and no function comes out.
4736    /// Nothing about the call itself looks wrong when that happens, and the program gets to the
4737    /// linker before anyone finds out, which is where `execute/cmpsi-1.c` in the torture suite
4738    /// found it, as an undefined reference to a name defined eleven lines further down.
4739    #[test]
4740    fn a_name_called_before_it_is_defined_still_gets_its_definition() {
4741        let mut opts = options();
4742        opts.emit = EmitKind::Ir;
4743        opts.std = Std::C89;
4744        let text = run(&opts, "int f(void) { return dummy(); }\ndummy () { return 7; }\n")
4745            .text()
4746            .to_owned();
4747        assert!(text.contains("func @f()"), "the caller is there: {text}");
4748        assert!(text.contains("func @dummy"), "and so is what it calls: {text}");
4749        assert!(text.contains("iconst.i32 7"), "with the body it was given: {text}");
4750    }
4751
4752    /// An old style definition whose parameter is narrower than what a call passes it.
4753    ///
4754    /// There is no prototype for a call to convert its argument to, so the argument is promoted
4755    /// and an `int` arrives for a parameter the body reads as an `unsigned char`. The entry block
4756    /// is where the two meet, and gcc writes the same pair of instructions there: store the low
4757    /// byte, read it back widened. `execute/950605-1.c` in the torture suite calls `f(-1)` and
4758    /// checks the parameter against `0xFF`, which is the difference between converting and not.
4759    #[test]
4760    fn an_old_style_parameter_is_converted_from_what_the_call_promoted_it_to() {
4761        let mut opts = options();
4762        opts.emit = EmitKind::Ir;
4763        opts.std = Std::C89;
4764        let compiled = |source: &str| run(&opts, source).text().to_owned();
4765
4766        let text = compiled("f (c) unsigned char c; { return c; }\n");
4767        assert!(text.contains("func @f(i32"), "an int arrives: {text}");
4768        assert!(text.contains("trunc.i8"), "and is cut down to what was declared: {text}");
4769        assert!(text.contains("zext.i32"), "then read back unsigned: {text}");
4770
4771        // A `short` is the same shape and signed, so it comes back the other way.
4772        let text = compiled("f (s) short s; { return s; }\n");
4773        assert!(text.contains("trunc.i16"), "cut down: {text}");
4774        assert!(text.contains("sext.i32"), "and read back signed: {text}");
4775
4776        // A `float` parameter is promoted to `double`, and without the conversion the multiply
4777        // below has one f64 operand and one f32, which the verifier refuses as invalid IR.
4778        let text = compiled("f (x) float x; { return x * 2; }\n");
4779        assert!(text.contains("func @f(f64"), "a double arrives: {text}");
4780        assert!(text.contains("fptrunc.f32"), "and is narrowed to the float: {text}");
4781
4782        // A parameter a prototype named arrives as itself and nothing is converted, which is the
4783        // case this must not have changed.
4784        let text = compiled("int f(unsigned char c) { return c; }\n");
4785        assert!(text.contains("func @f(i8)"), "the declared type arrives: {text}");
4786        assert!(!text.contains("trunc"), "so there is nothing to cut down: {text}");
4787    }
4788
4789    /// The six rules gcc 14 turned from a warning into an error, and the three answers each one
4790    /// gets depending on the dialect and on `-fpermissive`.
4791    ///
4792    /// The table is a measurement rather than a reading of the release notes. Six files, one per
4793    /// rule, put through gcc 16.2.0 on x86-64 Linux under each of the four command lines below
4794    /// with no `-W` flags on any of them, and what came back is what is written here. The three
4795    /// rules that say nothing under C89 are the three C89 did not have, and the three that warn
4796    /// there were constraint violations then as well.
4797    #[test]
4798    fn the_rules_gcc_promoted_are_decided_by_the_dialect_and_by_fpermissive() {
4799        // `-std=gnu89`, `-std=gnu17`, `-std=gnu17 -fpermissive`, and `-std=gnu23`.
4800        let modes = [(Std::C89, false), (Std::C17, false), (Std::C17, true), (Std::C23, false)];
4801        let cases = [
4802            ("static counted;\n", ["", "error", "warning", "error"]),
4803            ("int f(void) { return g(); }\n", ["", "error", "warning", "error"]),
4804            ("int f(x) { return x; }\n", ["", "error", "warning", "error"]),
4805            ("int *p;\nvoid h(void) { p = 1; }\n", ["warning", "error", "warning", "error"]),
4806            (
4807                "char *q;\nint *r;\nvoid k(void) { r = q; }\n",
4808                ["warning", "error", "warning", "error"],
4809            ),
4810            ("int f(void) { return; }\n", ["", "error", "warning", "error"]),
4811            ("void g(void) { return 1; }\n", ["warning", "error", "warning", "error"]),
4812        ];
4813
4814        for (source, wanted) in cases {
4815            for (&(std, permissive), wanted) in modes.iter().zip(wanted) {
4816                let mut opts = options();
4817                opts.std = std;
4818                opts.permissive = permissive;
4819                let said = run(&opts, source).messages.join("\n");
4820                let severity = if said.contains(": error: ") {
4821                    "error"
4822                } else if said.contains(": warning: ") {
4823                    "warning"
4824                } else {
4825                    ""
4826                };
4827                let how = if permissive { " -fpermissive" } else { "" };
4828                assert_eq!(
4829                    severity,
4830                    wanted,
4831                    "under -std={}{how}, {source} was answered with `{said}`",
4832                    std.as_str()
4833                );
4834                if wanted.is_empty() {
4835                    assert!(said.is_empty(), "nothing to say, but said `{said}`");
4836                }
4837            }
4838        }
4839    }
4840
4841    /// A first argument that is not a list, which the four variadic operators answer in two ways.
4842    ///
4843    /// gcc has `va_arg` as an operator, since it takes a type name and no function can, and the
4844    /// other three as builtin functions taking the address of a list. The difference is not a
4845    /// naming one: the operator's complaint is its own and is an error under every dialect, and
4846    /// the three functions go through the ordinary rule about an argument of the wrong type,
4847    /// which is one of the rules the table above is about. The same four command lines through
4848    /// gcc 16.2.0 on x86-64 Linux is where these came from.
4849    #[test]
4850    fn the_three_variadic_builtins_answer_a_bad_list_the_way_a_call_answers_a_bad_argument() {
4851        let modes = [(Std::C89, false), (Std::C17, false), (Std::C17, true), (Std::C23, false)];
4852        let cases = [
4853            (
4854                "int f(int n, ...) { char *p; return __builtin_va_arg(p, int); }\n",
4855                "first argument to 'va_arg' not of type 'va_list'",
4856                ["error", "error", "error", "error"],
4857            ),
4858            (
4859                "void f(int n, ...) { char *p; __builtin_va_start(p, n); }\n",
4860                "passing argument 1 of '__builtin_va_start' from incompatible pointer type",
4861                ["warning", "error", "warning", "error"],
4862            ),
4863            (
4864                "void f(int n, ...) { int x; __builtin_va_end(x); }\n",
4865                "passing argument 1 of '__builtin_va_end' makes pointer from integer without a \
4866                 cast",
4867                ["warning", "error", "warning", "error"],
4868            ),
4869            (
4870                "void f(int n, ...) { __builtin_va_list a; char *p; __builtin_va_copy(a, p); }\n",
4871                "passing argument 2 of '__builtin_va_copy' from incompatible pointer type",
4872                ["warning", "error", "warning", "error"],
4873            ),
4874        ];
4875
4876        for (source, message, wanted) in cases {
4877            for (&(std, permissive), wanted) in modes.iter().zip(wanted) {
4878                let mut opts = options();
4879                opts.std = std;
4880                opts.permissive = permissive;
4881                let said = run(&opts, source).messages.join("\n");
4882                let how = if permissive { " -fpermissive" } else { "" };
4883                assert!(
4884                    said.contains(&format!(": {wanted}: {message}")),
4885                    "under -std={}{how}, {source} was answered with `{said}`",
4886                    std.as_str()
4887                );
4888            }
4889        }
4890    }
4891
4892    /// The IR of `source` at one safety tier, insisting that it compiled cleanly.
4893    fn safe_ir(tier: rucc_session::Safety, source: &str) -> String {
4894        let mut opts = options();
4895        opts.emit = EmitKind::Ir;
4896        opts.safety = tier;
4897        let result = run(&opts, source);
4898        assert_eq!(result.messages, Vec::<String>::new(), "expected this to compile:\n{source}");
4899        result.text().to_owned()
4900    }
4901
4902    const READS_THROUGH_A_POINTER: &str = "int read(int *p) { return p[1]; }\n";
4903
4904    /// The IR for a source built with a tier and a padding mode.
4905    fn padded_ir(padding: Padding, source: &str) -> String {
4906        let mut opts = options();
4907        opts.emit = EmitKind::Ir;
4908        opts.safety = rucc_session::Safety::Detect;
4909        opts.padding = padding;
4910        let result = run(&opts, source);
4911        assert_eq!(result.messages, Vec::<String>::new(), "expected this to compile:\n{source}");
4912        result.text().to_owned()
4913    }
4914
4915    const FILLS_A_RECORD_A_MEMBER_AT_A_TIME: &str = "struct padded { char tag; int value; };\n\
4916         void fill(struct padded *p) { p->tag = 1; p->value = 2; }\n";
4917
4918    #[test]
4919    fn a_record_filled_a_member_at_a_time_comes_out_whole_when_padding_does_not_participate() {
4920        // Section 9.3 of document 09, and the reason the default is the one it gives library code.
4921        // Four bytes from the `char` and four from the `int` is the whole of an eight byte record,
4922        // so the `memcmp` or the hash or the `write` that reads it back is not refused.
4923        let text = padded_ir(Padding::Ignored, FILLS_A_RECORD_A_MEMBER_AT_A_TIME);
4924        assert_eq!(text.matches("owns 4").count(), 2, "{text}");
4925    }
4926
4927    #[test]
4928    fn a_store_says_only_what_it_wrote_when_padding_does_participate() {
4929        // The kernel profile's default, which is section 9.3's actual rule: the padding stays
4930        // unwritten and the read of the record that would leak it is the one that reports.
4931        let text = padded_ir(Padding::Tracked, FILLS_A_RECORD_A_MEMBER_AT_A_TIME);
4932        assert!(!text.contains("owns"), "{text}");
4933    }
4934
4935    #[test]
4936    fn a_member_of_a_union_owns_nothing_after_it() {
4937        // The bytes after a short member of a union belong to a longer member rather than to
4938        // padding, and saying a store through the short one wrote them would be saying the longer
4939        // one holds a value nobody put there.
4940        let text = padded_ir(
4941            Padding::Ignored,
4942            "union u { char tag; long wide; };\nvoid fill(union u *p) { p->tag = 1; }\n",
4943        );
4944        assert!(!text.contains("owns"), "{text}");
4945    }
4946
4947    #[test]
4948    fn an_inner_records_trailing_padding_reaches_the_outer_records() {
4949        // The composition. `in` owns four bytes of `outer` because `x` starts there, and `c` is
4950        // the last member of `in`, so what it owns is what `in` owns rather than its own one byte.
4951        // Without that the three bytes between them would stay unwritten and a read of the whole
4952        // thing would report.
4953        let text = padded_ir(
4954            Padding::Ignored,
4955            "struct inner { char c; };\n\
4956             struct outer { struct inner in; int x; };\n\
4957             void fill(struct outer *p) { p->in.c = 1; p->x = 2; }\n",
4958        );
4959        assert_eq!(text.matches("owns 4").count(), 2, "{text}");
4960    }
4961
4962    #[test]
4963    fn a_build_that_did_not_ask_for_the_monitor_is_compiled_the_way_it_always_was() {
4964        // This is the load bearing test of the whole flag. The monitor is being built in the open
4965        // and every build in the world is compiled by this compiler with the flag absent, so a
4966        // check that leaked into that path would be a regression for everybody.
4967        let text = ir(READS_THROUGH_A_POINTER);
4968        assert!(!text.contains("check_"), "{text}");
4969        assert!(!text.contains("cap_of"), "{text}");
4970    }
4971
4972    #[test]
4973    fn asking_for_a_tier_puts_the_checks_in_before_the_optimizer_sees_them() {
4974        let text = safe_ir(rucc_session::Safety::Detect, READS_THROUGH_A_POINTER);
4975        assert!(text.contains("cap_of"), "{text}");
4976        assert!(text.contains("check_bounds"), "{text}");
4977        assert!(text.contains("check_live"), "{text}");
4978        // The subscript is address arithmetic, so J2 applies to it as well as J1.
4979        assert!(text.contains("check_deriv"), "{text}");
4980        // And the read names a type, so it asks the type plane about the bytes as well.
4981        assert!(text.contains("check_type"), "{text}");
4982    }
4983
4984    #[test]
4985    fn the_three_tiers_that_are_not_off_all_check_the_same_accesses_so_far() {
4986        // What separates them is the reporter and the boundary, which are milestones S2 and S3.
4987        // Pinning it here means the day they stop agreeing, this test says so rather than the
4988        // difference going unnoticed.
4989        let detect = safe_ir(rucc_session::Safety::Detect, READS_THROUGH_A_POINTER);
4990        for tier in [rucc_session::Safety::Enforce, rucc_session::Safety::Kernel] {
4991            assert_eq!(safe_ir(tier, READS_THROUGH_A_POINTER), detect, "{tier}");
4992        }
4993    }
4994
4995    /// The safety summary of `source` at one tier, insisting that it compiled cleanly.
4996    fn summary(tier: rucc_session::Safety, source: &str) -> String {
4997        let mut opts = options();
4998        opts.emit = EmitKind::SafetySummary;
4999        opts.safety = tier;
5000        let result = run(&opts, source);
5001        assert_eq!(result.messages, Vec::<String>::new(), "expected this to compile:\n{source}");
5002        result.text().to_owned()
5003    }
5004
5005    #[test]
5006    fn the_summary_counts_the_checks_that_went_in_and_the_ones_still_standing() {
5007        let text = summary(rucc_session::Safety::Detect, READS_THROUGH_A_POINTER);
5008        assert!(text.contains("\"tier\": \"detect\""), "{text}");
5009        // One load, so one of each of the two access checks, and the subscript is a derivation.
5010        assert!(
5011            text.contains("\"bounds\": { \"emitted\": 1, \"remaining\": 1, \"discharged\": 0 }"),
5012            "{text}"
5013        );
5014        assert!(
5015            text.contains(
5016                "\"derivation\": { \"emitted\": 1, \"remaining\": 1, \"discharged\": 0 }"
5017            ),
5018            "{text}"
5019        );
5020    }
5021
5022    #[test]
5023    fn a_build_without_the_monitor_summarises_as_a_build_with_no_checks_in_it() {
5024        // Which is the honest summary rather than an error. A build system that emits a summary
5025        // for every unit should get one for the units nobody asked to instrument too, and the
5026        // zeroes are what say that the guarantee over that file is nothing at all.
5027        let text = summary(rucc_session::Safety::Off, READS_THROUGH_A_POINTER);
5028        assert!(text.contains("\"tier\": \"off\""), "{text}");
5029        assert!(
5030            text.contains("\"bounds\": { \"emitted\": 0, \"remaining\": 0, \"discharged\": 0 }"),
5031            "{text}"
5032        );
5033    }
5034
5035    #[test]
5036    fn a_call_the_boundary_models_is_counted_apart_from_one_it_does_not() {
5037        let text = summary(
5038            rucc_session::Safety::Detect,
5039            "void *memcpy(void *, const void *, unsigned long);\n\
5040             int puts(const char *);\n\
5041             void f(char *d, char *s) { memcpy(d, s, 4); puts(d); }\n",
5042        );
5043        assert!(text.contains("\"interposed\": 1"), "{text}");
5044        assert!(text.contains("\"puts\""), "{text}");
5045        // The wrapper it was pointed at is ours, so it is not on the list of things this build
5046        // failed to model. Counting it there would make instrumenting a file look worse than
5047        // leaving it alone.
5048        assert!(!text.contains("__rucc_wrap_memcpy\""), "{text}");
5049    }
5050
5051    #[test]
5052    fn an_address_taken_of_a_library_function_is_counted_the_way_a_call_to_one_is() {
5053        // The shape SQLite's syscall table has, cut down to two rows. `memcpy` has a wrapper so the
5054        // table holds the wrapper's address and the build modelled it; `puts` has none, so what the
5055        // table holds is the real function and the build did not, and section 10.1 says the one it
5056        // did not is named rather than passed over.
5057        let text = summary(
5058            rucc_session::Safety::Detect,
5059            "void *memcpy(void *, const void *, unsigned long);\n\
5060             int puts(const char *);\n\
5061             void *table[2] = { (void *)memcpy, (void *)puts };\n\
5062             void *f(int i) { return table[i]; }\n",
5063        );
5064        assert!(text.contains("\"interposed\": 1"), "{text}");
5065        assert!(text.contains("\"puts\""), "{text}");
5066        assert!(!text.contains("\"memcpy\""), "{text}");
5067    }
5068
5069    #[test]
5070    fn the_two_directions_a_pointer_crosses_the_boundary_are_counted_apart() {
5071        // `f` is a name the linker can bind to and takes a pointer, so a pointer arrives there.
5072        // `notes_open` is a library this build did not instrument, so a pointer comes back from
5073        // it. Both are crossings and neither is the other, which is why there are two numbers.
5074        let text = summary(
5075            rucc_session::Safety::Detect,
5076            "void *notes_open(void);\n\
5077             char *f(char *p) { char *q = notes_open(); return q ? q : p; }\n",
5078        );
5079        assert!(text.contains("\"crossings\": { \"entered\": 1, \"returned\": 1 }"), "{text}");
5080        assert!(text.contains("\"notes_open\""), "{text}");
5081    }
5082
5083    #[test]
5084    fn a_static_function_nobody_takes_the_address_of_is_not_a_crossing() {
5085        // Nothing outside the file can reach it, so a witness on its parameters would be counting
5086        // a crossing that does not happen.
5087        let text = summary(
5088            rucc_session::Safety::Detect,
5089            "static int len(const char *p) { return p ? 1 : 0; }\n\
5090             int f(void) { return len(\"x\"); }\n",
5091        );
5092        assert!(text.contains("\"crossings\": { \"entered\": 0, \"returned\": 0 }"), "{text}");
5093    }
5094
5095    /// The granule report for `source`, insisting that it compiled cleanly.
5096    fn granules(source: &str) -> String {
5097        let mut opts = options();
5098        opts.emit = EmitKind::TypeGranules;
5099        let result = run(&opts, source);
5100        assert_eq!(result.messages, Vec::<String>::new(), "expected this to compile:\n{source}");
5101        result.text().to_owned()
5102    }
5103
5104    #[test]
5105    fn the_granule_report_names_every_record_and_both_keyings() {
5106        let text = granules(
5107            "struct hot { char *p; int a; int b; };\n\
5108             int f(struct hot *h) { return h->a; }\n",
5109        );
5110        assert!(text.contains("struct hot"), "{text}");
5111        // Both keyings are reported because which types count as one is a decision the design
5112        // has not made yet, and a report that picked one would be hiding the cost of the other.
5113        assert!(text.contains("every type distinct"), "{text}");
5114        assert!(text.contains("every pointer one type"), "{text}");
5115        assert!(text.contains("budget"), "{text}");
5116    }
5117
5118    #[test]
5119    fn a_record_nothing_uses_is_still_measured() {
5120        // The measurement is about what a program declares, not about what it runs, so a type
5121        // that is only ever declared still costs the plane whatever its layout costs.
5122        let text = granules("struct unused { long a; double b; };\nint f(void) { return 0; }\n");
5123        assert!(text.contains("struct unused"), "{text}");
5124    }
5125
5126    #[test]
5127    fn the_granule_report_stops_before_anything_is_lowered() {
5128        // A layout is settled at the closing brace, so lowering the function bodies would take
5129        // minutes on an amalgamation and answer nothing. The evidence that it stops is that a
5130        // body the back end has no way to compile still produces a report.
5131        let text = granules(
5132            "struct wide { long double d; };\n\
5133             long double f(long double x) { return x * x; }\n",
5134        );
5135        assert!(text.contains("struct wide"), "{text}");
5136    }
5137
5138    #[test]
5139    fn a_witness_reaches_the_assembler_as_a_call_to_the_runtime() {
5140        // The count only means anything if the call is really there, and a summary saying one is
5141        // there is not evidence that the back end emitted it.
5142        let text = safe_asm(rucc_session::Safety::Detect, "char *f(char *p) { return p; }\n");
5143        assert!(text.contains("\tcall\t__rucc_cap_witness\n"), "{text}");
5144    }
5145
5146    #[test]
5147    fn a_pointer_turned_into_an_integer_is_on_the_trust_set() {
5148        let text = summary(
5149            rucc_session::Safety::Detect,
5150            "unsigned long f(int *p) { return (unsigned long) p; }\n",
5151        );
5152        assert!(text.contains("\"exposed\": 1"), "{text}");
5153    }
5154
5155    /// The assembly of `source` at one safety tier, insisting that it compiled cleanly.
5156    fn safe_asm(tier: rucc_session::Safety, source: &str) -> String {
5157        let mut opts = options();
5158        opts.emit = EmitKind::Asm;
5159        opts.safety = tier;
5160        let result = run(&opts, source);
5161        assert_eq!(result.messages, Vec::<String>::new(), "expected this to compile:\n{source}");
5162        result.text().to_owned()
5163    }
5164
5165    #[test]
5166    fn a_check_reaches_the_assembler_as_a_call_to_the_runtime() {
5167        let text = safe_asm(rucc_session::Safety::Detect, READS_THROUGH_A_POINTER);
5168        assert!(text.contains("\tcall\t__rucc_check_bounds\n"), "{text}");
5169        assert!(text.contains("\tcall\t__rucc_check_live\n"), "{text}");
5170        assert!(text.contains("\tcall\t__rucc_check_deriv\n"), "{text}");
5171        // The type check and the init check of one read reach the assembler as the one call that
5172        // asks both planes about it. `rucc_safety::lower::partner` is what recognises the pair.
5173        assert!(text.contains("\tcall\t__rucc_check_typed_init\n"), "{text}");
5174    }
5175
5176    #[test]
5177    fn every_check_that_reached_the_assembler_has_a_row_describing_it() {
5178        // Four calls and four descriptors, each in the section the runtime's reporter reads. The
5179        // width is `rucc_safety::lower::WIDTH` and the row is `rucc_safe_rt::fail::Descriptor`, and
5180        // the two agreeing is what makes the address a check is handed mean anything. Four rather
5181        // than five because the read's two plane questions are one call carrying one row, which the
5182        // two of them can share because a type check's row and an init check's row are identical.
5183        let text = safe_asm(rucc_session::Safety::Detect, READS_THROUGH_A_POINTER);
5184        let section = format!("\t.section\t{},", rucc_safety::SECTION);
5185        assert_eq!(text.matches(&section).count(), 4, "{text}");
5186        for index in 0..4 {
5187            let name = format!("__rucc_safety_desc_{index}");
5188            // Defined once and referenced once, because a descriptor nothing points at describes
5189            // nothing and a reference with no definition does not link.
5190            assert!(text.contains(&format!("{name}:\n")), "{text}");
5191            assert!(text.contains(&format!("{name}(%rip)")), "{text}");
5192        }
5193        assert!(!text.contains("__rucc_safety_desc_4"), "{text}");
5194    }
5195
5196    /// `__builtin_constant_p` is answered in the front end and never reaches the IR.
5197    ///
5198    /// gcc folds it after optimization, so its answer for an argument that is not written as a
5199    /// constant can differ between `-O0` and `-O2`. What is checked here is the front end's
5200    /// answer, which is the same at every level, and the four cases where gcc gives the same
5201    /// answer at both levels are the ones measured on gcc 16: a literal is one, a variable is
5202    /// zero, a string literal is one and the address of an object is zero.
5203    #[test]
5204    fn builtin_constant_p_is_folded_where_it_is_written_rather_than_called() {
5205        let text = ir(concat!(
5206            "int g;\n",
5207            "int a = __builtin_constant_p(1);\n",
5208            "int b = __builtin_constant_p(g);\n",
5209            "int c = __builtin_constant_p(\"abc\");\n",
5210            "int d = __builtin_constant_p(&g);\n",
5211            "int e = __builtin_constant_p(1.5);\n",
5212            "int h = __builtin_choose_expr(__builtin_constant_p(3), 11, 22);\n",
5213        ));
5214        assert!(text.contains("global @a : i32 = 1,"), "{text}");
5215        assert!(text.contains("global @b : i32 = 0,"), "{text}");
5216        assert!(text.contains("global @c : i32 = 1,"), "{text}");
5217        assert!(text.contains("global @d : i32 = 0,"), "{text}");
5218        assert!(text.contains("global @e : i32 = 1,"), "{text}");
5219        assert!(text.contains("global @h : i32 = 11,"), "{text}");
5220        assert!(!text.contains("__builtin_constant_p"), "it is not a call to anything:\n{text}");
5221
5222        // The argument is not evaluated, which is what gcc does with it as well, so `i` is
5223        // still zero. The second constant is the answer, which nothing reads and which the
5224        // first pass that looks for dead code will take out.
5225        let text = body("int f(void) { int i = 0; __builtin_constant_p(i++); return i; }\n");
5226        assert_eq!(text, "block0:\n    %0 = iconst.i32 0\n    %1 = iconst.i32 0\n    return %0\n");
5227    }
5228
5229    /// A library builtin is the library function of the same name, and the call says so.
5230    ///
5231    /// A program writes `__builtin_strlen` rather than `strlen` to reach the function the C
5232    /// library promises where its own name has been taken by a macro, and to say that the usual
5233    /// meaning is the one intended. So the name in the program and the name in the object file
5234    /// are two different names and the call carries the second one. gcc folds several of these
5235    /// when the arguments allow it, which is an optimization on top of a call that is already
5236    /// right rather than instead of it, so nothing here depends on any folding happening.
5237    #[test]
5238    fn a_call_to_a_library_builtin_reaches_the_library_function() {
5239        let text = body("void f(void) { __builtin_abort(); }\n");
5240        assert_eq!(text, "block0:\n    call @abort() : ()\n    return\n");
5241
5242        // Nothing declared either of these and nothing had to: the prefix is what says the name
5243        // belongs to the implementation, and the type comes out of `features.toml`.
5244        let text = ir("int f(const char *s) { return __builtin_puts(s) + __builtin_strlen(s); }\n");
5245        assert!(text.contains("call @puts(%0) : (ptr) -> i32"), "{text}");
5246        assert!(text.contains("call @strlen(%0) : (ptr) -> i64"), "{text}");
5247        assert!(!text.contains("__builtin_"), "the prefix is not part of any name here:\n{text}");
5248    }
5249
5250    /// A `_chk` builtin reaches the checking function in the library with the object size still
5251    /// on the end of it.
5252    ///
5253    /// This is what a fortified `string.h` turns every copy into, so it is what a program built
5254    /// the way a distribution builds one is full of, and the whole of what makes the call right
5255    /// is that the size goes with it. The checking function takes `(size_t) -1` to mean nothing
5256    /// is known and does no check, which is what the header passes when the destination's object
5257    /// is not in sight, so the unconditional call means the same thing in both cases and costs a
5258    /// call gcc would have folded away in the second.
5259    ///
5260    /// The name is the one place this family reads like an exception and is not one:
5261    /// `__builtin___memcpy_chk` with `__builtin_` taken off is `__memcpy_chk`.
5262    #[test]
5263    fn a_chk_builtin_reaches_the_checking_function_and_keeps_the_size() {
5264        let text = ir(concat!(
5265            "char d[8];\n",
5266            "void f(const char *s, unsigned long n) {\n",
5267            "  __builtin___memcpy_chk(d, s, n, __builtin_object_size(d, 0));\n",
5268            "  __builtin___strcpy_chk(d, s, __builtin_object_size(d, 1));\n",
5269            "  __builtin___memset_chk(d, 0, n, 8);\n",
5270            "}\n",
5271        ));
5272        assert!(text.contains("call @__memcpy_chk("), "{text}");
5273        assert!(text.contains("call @__strcpy_chk("), "{text}");
5274        assert!(text.contains("call @__memset_chk("), "{text}");
5275        assert!(text.contains("iconst.i64 8"), "the object size reaches the call: {text}");
5276        assert!(!text.contains("__builtin_"), "the prefix is not part of any name here:\n{text}");
5277    }
5278
5279    /// A checking call whose object size says nothing is known is the plain library call.
5280    ///
5281    /// That is the whole of the folding half of the family. The checking function reads the all
5282    /// ones value as do not check, so the call it was going to make is the function it guards with
5283    /// an argument nobody reads on the end of it, and gcc drops the argument and calls the plain
5284    /// function at every level including `-O0`. Where the size is a real number the checking call
5285    /// stands, because the check is the point.
5286    #[test]
5287    fn a_checking_call_whose_size_says_nothing_is_known_is_the_plain_library_call() {
5288        let text = ir(concat!(
5289            "extern char *p;\n",
5290            "char d[8];\n",
5291            "void f(const char *s, unsigned long n) {\n",
5292            "  __builtin___memcpy_chk(d, s, n, __builtin_object_size(d, 0));\n",
5293            "  __builtin___memcpy_chk(p, s, n, __builtin_object_size(p, 0));\n",
5294            "  __builtin___strcpy_chk(p, s, __builtin_object_size(p, 0));\n",
5295            "  __builtin___stpncpy_chk(p, s, n, __builtin_object_size(p, 0));\n",
5296            "  __builtin___sprintf_chk(p, 1, __builtin_object_size(p, 0), s);\n",
5297            "}\n",
5298        ));
5299
5300        // The destination whose object is in sight keeps its check, size and all.
5301        assert!(
5302            text.contains("call @__memcpy_chk(%2, %0, %1, %3) : (ptr, ptr, i64, i64)"),
5303            "{text}"
5304        );
5305
5306        // The three whose object is not lose the argument and the name along with it. The type of
5307        // the call goes with them, which is what says the argument is gone rather than ignored.
5308        assert!(text.contains("call @memcpy(%6, %0, %1) : (ptr, ptr, i64) -> ptr"), "{text}");
5309        assert!(text.contains("call @strcpy(%10, %0) : (ptr, ptr) -> ptr"), "{text}");
5310        assert!(text.contains("call @stpncpy(%14, %0, %1) : (ptr, ptr, i64) -> ptr"), "{text}");
5311
5312        // The formatted one never folds, whatever the size says, because refusing a `%n` in a
5313        // writable format is the other half of what it was asked to do.
5314        assert!(text.contains("call @__sprintf_chk("), "{text}");
5315
5316        // Nothing is left behind in the instructions either. The size the folded calls no longer
5317        // take is a constant nobody reads, and no instruction is written for one.
5318        let asm = asm(concat!(
5319            "void f(char *p, const char *s, unsigned long n) {\n",
5320            "  __builtin___memcpy_chk(p, s, n, __builtin_object_size(p, 0));\n",
5321            "}\n",
5322        ));
5323        assert!(asm.contains("call\tmemcpy"), "{asm}");
5324        assert!(!asm.contains("$-1"), "the size that went away leaves no instruction:\n{asm}");
5325    }
5326
5327    /// The `v` spellings take a `__builtin_va_list`, which is the first type in the table the
5328    /// target chooses the shape of rather than the width of.
5329    ///
5330    /// On x86-64 it is an array of one, so what the prototype has to say is the pointer that
5331    /// array decays to, which is the same adjustment C makes to any parameter written as an array
5332    /// and is what a `va_list` parameter already holds. A prototype that kept the array would be
5333    /// one no argument could ever match.
5334    #[test]
5335    fn the_v_spellings_of_the_chk_family_take_the_list_a_va_list_parameter_holds() {
5336        let text = ir(concat!(
5337            "char d[64];\n",
5338            "int f(const char *fmt, ...) {\n",
5339            "  __builtin_va_list ap;\n",
5340            "  __builtin_va_start(ap, fmt);\n",
5341            "  int n = __builtin___vsprintf_chk(d, 1, __builtin_object_size(d, 0), fmt, ap);\n",
5342            "  __builtin_va_end(ap);\n",
5343            "  return n;\n",
5344            "}\n",
5345        ));
5346        assert!(text.contains("call @__vsprintf_chk("), "{text}");
5347        assert!(text.contains("iconst.i64 64"), "the object size reaches the call: {text}");
5348    }
5349
5350    /// The absolute value family is four instructions and not a call, whoever declared the name.
5351    ///
5352    /// `abs`, `labs` and `llabs` are reserved to the implementation, so a program that writes one
5353    /// means the one the C library promises and the compiler is allowed to know what it does. The
5354    /// program in `gcc.c-torture/execute/20021127-1.c` is the one that insists: it defines `llabs`
5355    /// to abort and expects the call not to reach it. Measured against gcc 16.2.0, which writes a
5356    /// `neg` and a `cmovns` and never calls the definition either.
5357    ///
5358    /// The most negative value comes back as itself, which is what the arithmetic gives and what
5359    /// gcc's pair of instructions gives, and C says the answer is undefined there.
5360    #[test]
5361    fn the_absolute_value_family_is_the_magnitude_and_not_a_call() {
5362        let text = body(concat!(
5363            "long long llabs(long long);\n",
5364            "long long f(long long x) { return llabs(x); }\n",
5365        ));
5366        assert!(text.contains("%1 = iconst.i64 63"), "{text}");
5367        assert!(text.contains("%2 = ashr %0, %1"), "{text}");
5368        assert!(text.contains("%3 = xor %0, %2"), "{text}");
5369        assert!(text.contains("%4 = sub %3, %2"), "{text}");
5370        assert!(!text.contains("call"), "the call does not happen:\n{text}");
5371
5372        // The narrower two, whose width comes from the type the library gives the name and not
5373        // from anything at the call.
5374        let text = body("int abs(int);\nint f(int x) { return abs(x); }\n");
5375        assert!(text.contains("iconst.i32 31"), "{text}");
5376        let text = body("long labs(long);\nlong f(long x) { return labs(x); }\n");
5377        assert!(text.contains("iconst.i64 63"), "{text}");
5378
5379        // The prefixed spelling is the same node, and it is what a program writes to reach the
5380        // library's meaning where the plain name has been taken.
5381        let text = body("long long f(long long x) { return __builtin_llabs(x); }\n");
5382        assert!(!text.contains("call"), "{text}");
5383
5384        // A definition of the name in the same file changes nothing, which is the whole point.
5385        let text = ir(concat!(
5386            "long long llabs(long long b);\n",
5387            "long long g(long long x) { return llabs(x); }\n",
5388            "long long llabs(long long b) { return 7; }\n",
5389        ));
5390        assert!(!text.contains("call @llabs"), "{text}");
5391    }
5392
5393    /// A byte swap is one instruction and not a call, and nothing had to declare it.
5394    ///
5395    /// SQLite writes these for its page headers and glibc's `<endian.h>` defines `htobe32` and its
5396    /// neighbours as exactly these, so a program that reads a file format reaches one without ever
5397    /// naming it. There is no object file anywhere that defines `__builtin_bswap32`, so a call left
5398    /// standing here would not link.
5399    #[test]
5400    fn a_byte_swap_is_arithmetic_and_not_a_call() {
5401        let text = body("unsigned f(unsigned x) { return __builtin_bswap32(x); }\n");
5402        assert_eq!(text, "block0(%0: i32):\n    %1 = bswap %0\n    return %1\n");
5403
5404        // The argument is converted by the prototype the way any other call's would be, so the
5405        // swap happens at the width the name says and not at the width the program wrote.
5406        let text = body("unsigned f(unsigned char c) { return __builtin_bswap32(c); }\n");
5407        assert!(text.contains("zext.i32 %0"), "widened first: {text}");
5408        assert!(text.contains("bswap %1"), "and swapped at four bytes: {text}");
5409    }
5410
5411    /// Each of the three reverses in the width its name says, which is the type of the node.
5412    ///
5413    /// The width matters more here than it looks. `__builtin_bswap16` is the two bytes of a
5414    /// `uint16_t` exchanged, and if the node came out at the machine's width instead then the bits
5415    /// above the value would be dragged into the answer and the result would be zero.
5416    #[test]
5417    fn the_byte_swaps_reverse_at_the_width_their_name_says() {
5418        for (name, ty, width) in [
5419            ("__builtin_bswap16", "unsigned short", "i16"),
5420            ("__builtin_bswap32", "unsigned", "i32"),
5421            ("__builtin_bswap64", "unsigned long long", "i64"),
5422        ] {
5423            let source = format!("{ty} f({ty} x) {{ return {name}(x); }}\n");
5424            let text = body(&source);
5425            assert_eq!(
5426                text,
5427                format!("block0(%0: {width}):\n    %1 = bswap %0\n    return %1\n"),
5428                "{name}"
5429            );
5430        }
5431    }
5432
5433    /// The three bit counts the IR has an instruction for are that instruction and not a call.
5434    ///
5435    /// Eighteen rows of `features.toml` come out of six questions, and three of the six are one
5436    /// instruction each. The kernel's bitmap search is built on them, ffmpeg counts leading zeroes
5437    /// in its bitstream reader and SQLite uses one to size a page, so a call left standing here
5438    /// would not link against anything and would be slow if it did.
5439    #[test]
5440    fn the_bit_counts_are_instructions_and_not_calls() {
5441        let text = body("int f(unsigned x) { return __builtin_clz(x); }\n");
5442        assert_eq!(text, "block0(%0: i32):\n    %1 = ctlz %0\n    return %1\n");
5443
5444        let text = body("int f(unsigned x) { return __builtin_ctz(x); }\n");
5445        assert_eq!(text, "block0(%0: i32):\n    %1 = cttz %0\n    return %1\n");
5446
5447        let text = body("int f(unsigned x) { return __builtin_popcount(x); }\n");
5448        assert_eq!(text, "block0(%0: i32):\n    %1 = ctpop %0\n    return %1\n");
5449    }
5450
5451    /// The width counted is the operand's and the width answered is `int`, which are two different
5452    /// things at every spelling but the narrowest.
5453    ///
5454    /// This is the mistake the family invites. `__builtin_clz` of a value counts the leading zeroes
5455    /// of it narrowed to `unsigned int` and `__builtin_clzll` counts them at sixty four bits, and
5456    /// those are different numbers for the same value. What decides it is the prototype the row
5457    /// carries, so the count happens after the conversion and the narrowing back to `int` happens
5458    /// after the count.
5459    #[test]
5460    fn the_bit_counts_ask_about_the_width_their_name_says() {
5461        let text = body("int f(unsigned long long x) { return __builtin_clzll(x); }\n");
5462        assert!(text.starts_with("block0(%0: i64):"), "counted at eight bytes: {text}");
5463        assert!(text.contains("%1 = ctlz %0"), "{text}");
5464        assert!(text.contains("trunc.i32 %1"), "and answered in an int: {text}");
5465
5466        // The same value asked about at the narrower width, which converts first and so counts
5467        // something else.
5468        let text = body("int f(unsigned long long x) { return __builtin_clz(x); }\n");
5469        assert!(text.contains("trunc.i32 %0"), "narrowed to what was asked about: {text}");
5470        assert!(text.contains("ctlz %1"), "and counted there: {text}");
5471
5472        let text = body("int f(unsigned long x) { return __builtin_popcountl(x); }\n");
5473        assert!(text.contains("%1 = ctpop %0"), "{text}");
5474        assert!(!text.contains("call"), "{text}");
5475    }
5476
5477    /// A parity is whether the count of set bits is odd, which is that count and its low bit.
5478    ///
5479    /// Not the machine's parity flag, which on x86-64 is over the low byte of a result and so is a
5480    /// different question, and not the count itself, since C says the answer is zero or one.
5481    #[test]
5482    fn a_parity_is_the_low_bit_of_the_set_bit_count() {
5483        let text = body("int f(unsigned x) { return __builtin_parity(x); }\n");
5484        assert!(text.contains("%1 = ctpop %0"), "{text}");
5485        assert!(text.contains("iconst.i32 1"), "{text}");
5486        assert!(text.contains("and %1, %2"), "the low bit of it: {text}");
5487    }
5488
5489    /// `__builtin_ffs` is the trailing zero count and one, kept only when there was a bit to find.
5490    ///
5491    /// The one in the family defined at zero, where it answers zero. Written as a mask rather than
5492    /// as a branch: the count and the comparison do not depend on each other and both are cheap, so
5493    /// a branch would buy nothing and cost two blocks and a join.
5494    #[test]
5495    fn the_first_set_bit_is_one_based_and_zero_for_a_zero() {
5496        let text = body("int f(int x) { return __builtin_ffs(x); }\n");
5497        assert!(text.contains("%1 = cttz %0"), "{text}");
5498        assert!(text.contains("%4 = add %1, %2"), "one more than the count: {text}");
5499        assert!(text.contains("%5 = icmp ne %0, %3"), "whether there was a bit at all: {text}");
5500        assert!(text.contains("%7 = sub %3, %6"), "spread to a mask: {text}");
5501        assert!(text.contains("%8 = and %4, %7"), "and kept only then: {text}");
5502        assert!(!text.contains("br_if"), "no branch: {text}");
5503    }
5504
5505    /// `__builtin_clrsb` is how many bits below the sign bit repeat it, which is a leading zero
5506    /// count of the value folded onto its own sign.
5507    ///
5508    /// Exclusive or with the sign spread over every bit turns a negative value into its complement
5509    /// and leaves one that is not negative alone, so in both cases the top bit is clear and there
5510    /// is one zero above the highest bit that does not repeat the sign. The answer is one less
5511    /// than that count, and the shift left is what takes the one off, with the low bit set on the
5512    /// way so that zero and minus one have something to count: both of them fold to a word with no
5513    /// bits in it, which is the one input a leading zero count says nothing about.
5514    #[test]
5515    fn the_redundant_sign_bit_count_is_instructions_and_not_a_call() {
5516        let text = body("int f(int x) { return __builtin_clrsb(x); }\n");
5517        assert!(text.contains("%1 = iconst.i32 31"), "{text}");
5518        assert!(text.contains("%2 = ashr %0, %1"), "the sign over every bit: {text}");
5519        assert!(text.contains("%3 = xor %0, %2"), "folded onto it: {text}");
5520        assert!(text.contains("%5 = shl %3, %4"), "one less than the count: {text}");
5521        assert!(text.contains("%6 = or %5, %4"), "with something to count at zero: {text}");
5522        assert!(text.contains("%7 = ctlz %6"), "{text}");
5523        assert!(!text.contains("call"), "{text}");
5524        assert!(!text.contains("br_if"), "no branch: {text}");
5525    }
5526
5527    /// The unsigned four are the same four instructions answering in the unsigned type.
5528    ///
5529    /// Which on a two's complement machine is the same bits, so what this checks is that the type
5530    /// of the answer is the unsigned one. The reason the family exists is the most negative value,
5531    /// whose magnitude is not representable in the signed type and is representable in this one.
5532    #[test]
5533    fn the_unsigned_absolute_value_family_answers_in_the_unsigned_type() {
5534        let text = body("unsigned f(int x) { return __builtin_uabs(x); }\n");
5535        assert!(text.contains("%1 = iconst.i32 31"), "{text}");
5536        assert!(text.contains("%4 = sub %3, %2"), "{text}");
5537        assert!(!text.contains("call"), "nothing declares uabs, so a call would not link: {text}");
5538
5539        let text = body("unsigned long long f(long long x) { return __builtin_ullabs(x); }\n");
5540        assert!(text.contains("iconst.i64 63"), "at the width the name says: {text}");
5541
5542        // The answer is the unsigned type and not the signed one, which is what a comparison
5543        // against it is decided by.
5544        let text = body("int f(int x) { return __builtin_uabs(x) > 2147483647u; }\n");
5545        assert!(text.contains("icmp ugt"), "compared unsigned: {text}");
5546    }
5547
5548    /// `intmax_t` is not a fixed type, so the two widest spellings ask the target what it is.
5549    ///
5550    /// `long` where that is sixty four bits wide and `long long` where it is not, which is the rule
5551    /// `rucc_pp::predef` writes `__INTMAX_TYPE__` out of. The three targets here are all LP64, so
5552    /// the answer is `long` and the shift is sixty three, and the point of the test is that the
5553    /// signature was understood at all rather than refused for naming a type the table could not
5554    /// spell.
5555    #[test]
5556    fn the_widest_absolute_value_is_whichever_type_the_target_makes_intmax_t() {
5557        let text = body("long f(long x) { return __builtin_imaxabs(x); }\n");
5558        assert!(text.contains("iconst.i64 63"), "{text}");
5559        assert!(text.contains("%4 = sub %3, %2"), "{text}");
5560        assert!(!text.contains("call"), "{text}");
5561
5562        let text = body("unsigned long f(long x) { return __builtin_umaxabs(x); }\n");
5563        assert!(text.contains("iconst.i64 63"), "{text}");
5564        assert!(!text.contains("call"), "{text}");
5565    }
5566
5567    /// The `_p` spellings ask the same question, write nothing, and do not evaluate the third
5568    /// argument.
5569    ///
5570    /// gcc says the third argument is there for its type alone, so a call is two operands and a
5571    /// type by the time it reaches the IR. What the type decides is the same thing it decides for
5572    /// the three that write: whether the exact answer would have fit there, which is why the
5573    /// second call below is done at a wider width than the first.
5574    #[test]
5575    fn an_overflow_predicate_writes_nothing_and_answers_the_bit_the_check_would() {
5576        let text =
5577            body("int f(int a, int b) { return __builtin_add_overflow_p(a, b, (int) 0); }\n");
5578        assert!(text.contains("%2, %3 = sadd_overflow.(i32, i1) %0, %1"), "{text}");
5579        assert!(!text.contains("store"), "nothing is written: {text}");
5580        assert!(!text.contains("call"), "{text}");
5581
5582        // A wider destination is a wider arithmetic, and the narrowing test that goes with it is
5583        // what says whether the answer got there, exactly as for the spelling that stores.
5584        let text =
5585            body("int f(int a, int b) { return __builtin_mul_overflow_p(a, b, (long long) 0); }\n");
5586        assert!(text.contains("smul_overflow.(i64, i1)"), "{text}");
5587        assert!(!text.contains("store"), "{text}");
5588
5589        // The third argument is a value and not a pointer, and a side effect written in it does
5590        // not happen, because what the argument is there for is its type.
5591        let text = body(concat!(
5592            "int g(void);\n",
5593            "int f(int a, int b) { return __builtin_sub_overflow_p(a, b, g()); }\n",
5594        ));
5595        assert!(!text.contains("call @g"), "the third argument is not evaluated: {text}");
5596    }
5597
5598    /// The three overflow checks are arithmetic and a flag, and not a call to anything.
5599    ///
5600    /// gcc has emitted these since 5.0 and there is no object file that defines one, so a call left
5601    /// standing here would not link. SQLite reaches all three within twenty lines of each other, in
5602    /// `sqlite3AddInt64` and its two neighbours, which is the reason they were done now.
5603    ///
5604    /// The IR instruction answers two things at once, the wrapped value and whether it wrapped,
5605    /// which is a shape nothing else in the IR has. The store is the builtin writing the answer
5606    /// through the pointer it was handed.
5607    #[test]
5608    fn an_overflow_check_is_arithmetic_and_not_a_call() {
5609        let text =
5610            body("int f(int a, int b, int *r) { return __builtin_add_overflow(a, b, r); }\n");
5611        assert!(text.contains("%3, %4 = sadd_overflow.(i32, i1) %0, %1"), "{text}");
5612        assert!(text.contains("store %3 -> %2"), "{text}");
5613        assert!(!text.contains("call"), "{text}");
5614
5615        let text =
5616            body("int f(int a, int b, int *r) { return __builtin_sub_overflow(a, b, r); }\n");
5617        assert!(text.contains("ssub_overflow.(i32, i1) %0, %1"), "{text}");
5618
5619        let text =
5620            body("int f(int a, int b, int *r) { return __builtin_mul_overflow(a, b, r); }\n");
5621        assert!(text.contains("smul_overflow.(i32, i1) %0, %1"), "{text}");
5622
5623        // Unsigned operands get the unsigned form, which is a different question about the same
5624        // arithmetic: an unsigned sum wraps where a signed one of the same bits does not.
5625        let text = body(
5626            "int f(unsigned a, unsigned b, unsigned *r) { return __builtin_add_overflow(a, b, r); }\n",
5627        );
5628        assert!(text.contains("uadd_overflow.(i32, i1) %0, %1"), "{text}");
5629    }
5630
5631    /// The arithmetic happens at a type that holds every value all three written types can hold.
5632    ///
5633    /// That is what makes the check exact. `unsigned int` and `int` in one call need thirty three
5634    /// bits between them, so the add is done at sixty four with each operand extended the way its
5635    /// own signedness says: the unsigned one zero extended, the signed one sign extended. Sign
5636    /// extending the unsigned one would turn three billion into a negative number before the
5637    /// addition ever saw it.
5638    #[test]
5639    fn an_overflow_check_is_done_at_a_type_that_holds_every_operand() {
5640        let text = body(
5641            "int f(unsigned a, int b, long long *r) { return __builtin_add_overflow(a, b, r); }\n",
5642        );
5643        assert!(text.contains("%3 = zext.i64 %0"), "the unsigned operand keeps its value: {text}");
5644        assert!(text.contains("%4 = sext.i64 %1"), "and so does the signed one: {text}");
5645        assert!(text.contains("sadd_overflow.(i64, i1) %3, %4"), "{text}");
5646
5647        // Three types that agree need no extension at all, which is what nearly every real call
5648        // is written as.
5649        let text = body(
5650            "int f(long long a, long long b, long long *r) { return __builtin_mul_overflow(a, b, r); }\n",
5651        );
5652        assert!(text.contains("smul_overflow.(i64, i1) %0, %1"), "{text}");
5653        assert!(!text.contains("sext."), "{text}");
5654        // The one widening left is the answer, which is a bit becoming the `int` C says it is.
5655        assert!(!text.contains("zext.i64"), "{text}");
5656    }
5657
5658    /// The wrapped answer is written through the pointer whether or not it fit.
5659    ///
5660    /// That is gcc's rule and it is what makes the builtin usable as a wrapping add with a flag on
5661    /// the side. A destination narrower than the arithmetic is narrowed and widened back, and the
5662    /// answer being different is the second half of the test: the instruction says whether the
5663    /// arithmetic itself needed more room, and the round trip says whether what came out survived
5664    /// the trip down to where it was going.
5665    #[test]
5666    fn an_overflow_check_writes_the_wrapped_answer_whether_or_not_it_fit() {
5667        let text =
5668            body("int f(int a, int b, char *r) { return __builtin_sub_overflow(a, b, r); }\n");
5669        assert!(text.contains("%3, %4 = ssub_overflow.(i32, i1) %0, %1"), "{text}");
5670        assert!(text.contains("%5 = trunc.i8 %3"), "narrowed to where it goes: {text}");
5671        assert!(text.contains("%6 = sext.i32 %5"), "and back: {text}");
5672        assert!(text.contains("%7 = icmp ne %6, %3"), "which is whether it fit: {text}");
5673        assert!(text.contains("store %5 -> %2"), "the narrowed value is stored either way: {text}");
5674        assert!(text.contains("%8 = or %4, %7"), "and either bit is an overflow: {text}");
5675    }
5676
5677    /// A call needing more than the widest type there is compiles, by not asking for such a type.
5678    ///
5679    /// One way to reach it: an unsigned `__int128` mixed with a signed type, which needs a hundred
5680    /// and twenty nine bits to represent both and so has nowhere left to go. That used to be refused
5681    /// by name. It is done now by carrying the sign of each operand alongside its value rather than
5682    /// inside it, which is what gcc does, so all three of the family compile for that mix.
5683    #[test]
5684    fn a_call_needing_more_than_the_widest_type_still_compiles() {
5685        for name in ["add", "sub", "mul"] {
5686            let source = format!(
5687                "int f(unsigned __int128 a, long long b, __int128 *r) {{\n    \
5688                 return __builtin_{name}_overflow(a, b, r);\n}}\n"
5689            );
5690            let mut opts = options();
5691            opts.emit = EmitKind::MirFinal;
5692            assert!(!run(&opts, &source).failed(), "{name} was refused or stopped the back end");
5693        }
5694    }
5695
5696    /// An operand that is not an integer at all is the older message, from the type checking every
5697    /// type generic builtin shares.
5698    #[test]
5699    fn an_overflow_check_over_something_that_is_not_an_integer_says_so() {
5700        let messages =
5701            errors("int f(double a, int b, int *r) { return __builtin_add_overflow(a, b, r); }\n");
5702        assert!(messages.iter().any(|line| line.contains("E0671")), "{messages:?}");
5703
5704        let messages =
5705            errors("int f(int a, int b, double *r) { return __builtin_add_overflow(a, b, r); }\n");
5706        assert!(messages.iter().any(|line| line.contains("E0671")), "{messages:?}");
5707    }
5708
5709    /// An ordered access is an ordered access in the IR, with the ordering the program wrote.
5710    ///
5711    /// Which is the point of the node existing at all. An ordering is not an argument anything is
5712    /// passed, it is a thing the IR says about an access, so the number in the source is read once
5713    /// in the front end and after that the ordering travels on the instruction where every pass
5714    /// that moves code can see it.
5715    ///
5716    /// SQLite is why these are done: `AtomicLoad` and `AtomicStore` in `sqlite3.c` are
5717    /// `__atomic_load_n` and `__atomic_store_n` at the relaxed ordering, and there are thirty five
5718    /// calls to the pair.
5719    #[test]
5720    fn an_ordered_access_is_ordered_in_the_ir() {
5721        let text = body("int f(int *p) { return __atomic_load_n(p, 0); }\n");
5722        assert!(text.contains("atomic_load.i32 %0, align 4, relaxed"), "{text}");
5723
5724        let text = body("long f(long *p) { return __atomic_load_n(p, 2); }\n");
5725        assert!(text.contains("atomic_load.i64 %0, align 8, acquire"), "{text}");
5726
5727        let text = body("void f(int *p, int v) { __atomic_store_n(p, v, 3); }\n");
5728        assert!(text.contains("atomic_store %1 -> %0, align 4, release"), "{text}");
5729
5730        let text = body("void f(int *p, int v) { __atomic_store_n(p, v, 5); }\n");
5731        assert!(text.contains("atomic_store %1 -> %0, align 4, seq_cst"), "{text}");
5732
5733        // The value is converted to what the pointer points at before it is stored, which is what
5734        // the call would have done if it had a prototype to convert against.
5735        let text = body("void f(char *p, int v) { __atomic_store_n(p, v, 0); }\n");
5736        assert!(text.contains("trunc.i8 %1"), "{text}");
5737        assert!(text.contains("atomic_store %2 -> %0, align 1, relaxed"), "{text}");
5738    }
5739
5740    /// On this machine the ordered access is the plain instruction, except at the strongest
5741    /// ordering of a store.
5742    ///
5743    /// x86-64 is total store order: every load is already an acquire and every store is already a
5744    /// release, and an aligned access no wider than a word is indivisible whether or not anybody
5745    /// asked. So the whole family is `mov` and the one thing the machine does not give away is a
5746    /// store staying in front of a later load, which is `mfence` behind the store. Every line below
5747    /// is what gcc 16.2.0 writes for the same function.
5748    #[test]
5749    fn an_ordered_access_is_the_plain_instruction_on_this_machine() {
5750        let text = asm("int f(int *p) { return __atomic_load_n(p, 5); }\n");
5751        assert!(text.contains("movl\t(%rdi), %eax"), "{text}");
5752        assert!(!text.contains("mfence"), "a load needs no barrier here: {text}");
5753
5754        let text = asm("void f(int *p, int v) { __atomic_store_n(p, v, 3); }\n");
5755        assert!(text.contains("movl\t%esi, (%rdi)"), "{text}");
5756        assert!(!text.contains("mfence"), "a release store needs no barrier here: {text}");
5757
5758        let text = asm("void f(int *p, int v) { __atomic_store_n(p, v, 5); }\n");
5759        let (before, after) = text.split_once("mfence").expect("a barrier: {text}");
5760        assert!(before.contains("movl\t%esi, (%rdi)"), "the store comes first: {text}");
5761        assert!(!after.contains("movl"), "and nothing else is between them: {text}");
5762    }
5763
5764    /// A barrier is one instruction at the strongest ordering and no instruction below it.
5765    ///
5766    /// The same reasoning the other way round. An acquire, a release and an acquire release fence
5767    /// are already true of every program running on this machine, and what a program wanted from
5768    /// one is that the compiler not move accesses across it, which is already so by the time any
5769    /// instruction is picked. Sequential consistency is the one that costs something.
5770    ///
5771    /// `__sync_synchronize` is the older family's spelling of the strongest one and compiles to
5772    /// exactly the same instruction, which is what SQLite calls twice in `sqlite3.c`.
5773    #[test]
5774    fn a_barrier_is_one_instruction_at_the_strongest_ordering_and_none_below_it() {
5775        assert!(asm("void f(void) { __atomic_thread_fence(5); }\n").contains("mfence"));
5776        assert!(asm("void f(void) { __sync_synchronize(); }\n").contains("mfence"));
5777
5778        for weaker in ["1", "2", "3", "4"] {
5779            let source = format!("void f(void) {{ __atomic_thread_fence({weaker}); }}\n");
5780            assert!(!asm(&source).contains("mfence"), "{weaker} costs nothing here");
5781        }
5782    }
5783
5784    /// The three x86 fences under gcc's names are that same barrier at that same ordering.
5785    ///
5786    /// Exact for `mfence` and stronger than asked for the other two, which is a safe answer: a
5787    /// program that wanted its stores ordered gets that and more. Narrowing the two is worth doing
5788    /// once an instruction can be named from there, which is the note the shipped `xmmintrin.h`
5789    /// already carries at `_mm_sfence`.
5790    ///
5791    /// Each carries a signature, so an argument written on one is reported like an argument
5792    /// written on any other call, which is the whole reason they have one.
5793    #[test]
5794    fn the_three_x86_fences_are_the_barrier_the_strongest_ordering_gives() {
5795        for name in ["__builtin_ia32_sfence", "__builtin_ia32_lfence", "__builtin_ia32_mfence"] {
5796            let source = format!("void f(void) {{ {name}(); }}\n");
5797            assert!(asm(&source).contains("mfence"), "{name} is a barrier");
5798            let text = body(&source);
5799            assert!(text.contains("fence seq_cst"), "{name}: {text}");
5800        }
5801
5802        let result = run(&options(), "void f(void) { __builtin_ia32_sfence(1); }\n");
5803        assert_eq!(result.messages.len(), 1, "{:?}", result.messages);
5804        assert!(result.messages[0].contains("too many arguments"), "{:?}", result.messages);
5805    }
5806
5807    /// The four compare and exchange names are one IR instruction producing two values.
5808    ///
5809    /// Which of the two the expression answers is the difference between three of the four names,
5810    /// and the fourth difference is the C11 pair writing what they found back through the pointer
5811    /// they were handed, which is the branch after the instruction.
5812    #[test]
5813    fn a_compare_and_exchange_is_one_instruction_answering_two_things() {
5814        // The older family, whose two names are the same instruction read two ways. Neither has a
5815        // memory order argument and both are a full barrier, which is what `seq_cst` says.
5816        let text =
5817            body("int f(int *p, int e, int d) { return __sync_val_compare_and_swap(p, e, d); }\n");
5818        assert!(text.contains("%3, %4 = cmpxchg.(i32, i1) %0, %1, %2, align 4, seq_cst"), "{text}");
5819        assert!(text.contains("return %3"), "the value it found: {text}");
5820
5821        let text =
5822            body("int f(int *p, int e, int d) { return __sync_bool_compare_and_swap(p, e, d); }\n");
5823        assert!(text.contains("%3, %4 = cmpxchg.(i32, i1) %0, %1, %2, align 4, seq_cst"), "{text}");
5824        assert!(text.contains("zext.i32 %4"), "whether it happened: {text}");
5825
5826        // The C11 form, whose value expected arrives by pointer and is read before the exchange,
5827        // and whose answer is whether it happened. The write back is on the path where it did not.
5828        let text = body(
5829            "int f(int *p, int *e, int d) { return __atomic_compare_exchange_n(p, e, d, 0, 4, 2); }\n",
5830        );
5831        assert!(text.contains("%3 = load.i32 %1, align 4"), "{text}");
5832        assert!(text.contains("%4, %5 = cmpxchg.(i32, i1) %0, %3, %2, align 4, acq_rel"), "{text}");
5833        assert!(text.contains("br_if %5, block2, block1"), "{text}");
5834        assert!(text.contains("store %4 -> %1, align 4"), "{text}");
5835
5836        // And the form that takes the value to put there by pointer as well, which is one more
5837        // read and is otherwise the same node.
5838        let text = body(
5839            "int f(int *p, int *e, int *d) { return __atomic_compare_exchange(p, e, d, 0, 5, 5); }\n",
5840        );
5841        assert!(text.contains("%3 = load.i32 %1, align 4"), "{text}");
5842        assert!(text.contains("%4 = load.i32 %2, align 4"), "{text}");
5843        assert!(text.contains("%5, %6 = cmpxchg.(i32, i1) %0, %3, %4, align 4, seq_cst"), "{text}");
5844    }
5845
5846    /// On this machine it is `lock cmpxchg`, at the width of the object and at every ordering.
5847    ///
5848    /// The `lock` is what makes the whole of it one step as far as every other processor is
5849    /// concerned, and it is also what makes the instruction a full barrier, which is why the
5850    /// ordering the program wrote changes nothing in what is written here. Every line below is what
5851    /// gcc 16.2.0 writes for the same function.
5852    #[test]
5853    fn a_compare_and_exchange_is_a_locked_instruction_at_the_width_of_the_object() {
5854        let widths = [("char", "b", "%dl"), ("short", "w", "%dx"), ("int", "l", "%edx")];
5855        for (ty, suffix, reg) in widths {
5856            let source = format!(
5857                "int f({ty} *p, {ty} e, {ty} d) {{ return __sync_bool_compare_and_swap(p, e, d); }}\n"
5858            );
5859            let text = asm(&source);
5860            assert!(text.contains("\tlock\n"), "{ty}: {text}");
5861            assert!(text.contains(&format!("cmpxchg{suffix}\t{reg}, (%rdi)")), "{ty}: {text}");
5862            assert!(text.contains("sete\t"), "{ty}: {text}");
5863        }
5864        let source =
5865            "int f(long *p, long e, long d) { return __sync_bool_compare_and_swap(p, e, d); }\n";
5866        assert!(asm(source).contains("cmpxchgq\t%rdx, (%rdi)"), "{}", asm(source));
5867
5868        // The ordering the program asked for changes nothing, because a locked instruction on this
5869        // machine orders everything whatever it was asked for, so there is never a barrier beside
5870        // it either.
5871        for order in ["0", "2", "3", "4", "5"] {
5872            let call = format!("__atomic_compare_exchange_n(p, e, d, 0, {order}, 0)");
5873            let source = format!("int f(int *p, int *e, int d) {{ return {call}; }}\n");
5874            let text = asm(&source);
5875            assert!(text.contains("cmpxchgl\t"), "{order}: {text}");
5876            assert!(!text.contains("mfence"), "{order} needs no barrier here: {text}");
5877        }
5878    }
5879
5880    /// A read modify write is one IR instruction, and a name that asks for the value afterwards is
5881    /// that instruction and one more operation.
5882    ///
5883    /// The instruction answers what was there before, which is the convention every machine and
5884    /// every language in this area uses. Half the names in the family ask for the value afterwards
5885    /// instead, and that is the answer and the operand put together again, which is arithmetic on
5886    /// two values already in registers rather than a second flavour of the instruction.
5887    ///
5888    /// The two lock names are here too. They are not read modify writes in the same sense: one is
5889    /// an exchange and the other is a store of a zero, and what makes them a pair is the ordering,
5890    /// which is the one place in the older family that is not sequential consistency.
5891    #[test]
5892    fn a_read_modify_write_is_one_instruction_and_the_arithmetic_a_name_asks_for() {
5893        let text = body("int f(int *p, int v) { return __atomic_fetch_add(p, v, 5); }\n");
5894        assert!(text.contains("%2 = atomic_rmw.i32 add %0, %1, align 4, seq_cst"), "{text}");
5895        assert!(text.contains("return %2"), "the value that was there: {text}");
5896
5897        let text = body("int f(int *p, int v) { return __atomic_add_fetch(p, v, 5); }\n");
5898        assert!(text.contains("%2 = atomic_rmw.i32 add %0, %1, align 4, seq_cst"), "{text}");
5899        assert!(text.contains("%3 = add %2, %1"), "and the value afterwards: {text}");
5900
5901        let text = body("int f(int *p, int v) { return __atomic_sub_fetch(p, v, 5); }\n");
5902        assert!(text.contains("%2 = atomic_rmw.i32 sub %0, %1, align 4, seq_cst"), "{text}");
5903        assert!(text.contains("%3 = sub %2, %1"), "{text}");
5904
5905        // The older family, which passes no ordering and is a full barrier.
5906        let text = body("int f(int *p, int v) { return __sync_fetch_and_sub(p, v); }\n");
5907        assert!(text.contains("%2 = atomic_rmw.i32 sub %0, %1, align 4, seq_cst"), "{text}");
5908
5909        // The exchange, and the older family's spelling of it, which is taking a lock and so is an
5910        // acquire rather than the full barrier the rest of that family is.
5911        let text = body("int f(int *p, int v) { return __atomic_exchange_n(p, v, 5); }\n");
5912        assert!(text.contains("%2 = atomic_rmw.i32 xchg %0, %1, align 4, seq_cst"), "{text}");
5913
5914        let text = body("int f(int *p, int v) { return __sync_lock_test_and_set(p, v); }\n");
5915        assert!(text.contains("%2 = atomic_rmw.i32 xchg %0, %1, align 4, acquire"), "{text}");
5916
5917        // Giving the lock back, which is one of the two names in the family that is handed no value
5918        // to put there, because what it puts there is a zero.
5919        let text = body("void f(int *p) { __sync_lock_release(p); }\n");
5920        assert!(text.contains("release"), "{text}");
5921        assert!(text.contains("%1 = iconst.i32 0"), "{text}");
5922
5923        // And with something after the pointer, which is the list of variables the call promises to
5924        // protect rather than a value to write. Reading it as a value would store whatever the
5925        // caller happened to name there, which is the one thing giving a lock back must not do.
5926        let text = body("void f(int *p, int guard) { __sync_lock_release(p, guard); }\n");
5927        assert!(text.contains("%2 = iconst.i32 0"), "{text}");
5928        assert!(text.contains("atomic_store %2 -> %0, align 4, release"), "{text}");
5929
5930        // The bitwise four, which look no different here from the arithmetic ones: what the machine
5931        // has an instruction for is a question further down and this level does not ask it.
5932        let text = body("int f(int *p, int v) { return __atomic_fetch_and(p, v, 5); }\n");
5933        assert!(text.contains("%2 = atomic_rmw.i32 and %0, %1, align 4, seq_cst"), "{text}");
5934
5935        let text = body("int f(int *p, int v) { return __sync_or_and_fetch(p, v); }\n");
5936        assert!(text.contains("%2 = atomic_rmw.i32 or %0, %1, align 4, seq_cst"), "{text}");
5937        assert!(text.contains("%3 = or %2, %1"), "and the value afterwards: {text}");
5938
5939        // The nand, which is the one of the six that is two operations. The flip is an exclusive or
5940        // against every bit set because the IR has no not and that is what one is.
5941        let text = body("int f(int *p, int v) { return __atomic_nand_fetch(p, v, 5); }\n");
5942        assert!(text.contains("%2 = atomic_rmw.i32 nand %0, %1, align 4, seq_cst"), "{text}");
5943        assert!(text.contains("%3 = and %2, %1"), "{text}");
5944        assert!(text.contains("%4 = iconst.i32 -1"), "{text}");
5945        assert!(text.contains("%5 = xor %3, %4"), "{text}");
5946    }
5947
5948    /// The four operations with no instruction on this machine are a loop around `lock cmpxchg`.
5949    ///
5950    /// The shape is the one every architecture manual writes out by hand: read the word, work out
5951    /// what should be there instead, put it back if nothing else got in first, and go round again
5952    /// when something did. What is checked is that the loop is there at every width, that the
5953    /// operation is inside it, and that no `xchg` or `xadd` got used for something neither of them
5954    /// does.
5955    ///
5956    /// gcc 16.2.0 writes the same loop for the same functions, down to which register holds the
5957    /// value that was read.
5958    #[test]
5959    fn a_bitwise_read_modify_write_is_a_loop_around_the_compare_and_exchange() {
5960        let widths = [("char", "b", "%dl"), ("short", "w", "%dx"), ("int", "l", "%edx")];
5961        for (ty, suffix, reg) in widths {
5962            for (name, call, insn) in [
5963                ("and", "__atomic_fetch_and(p, v, 5)", "and"),
5964                ("or", "__sync_fetch_and_or(p, v)", "or"),
5965                ("xor", "__atomic_xor_fetch(p, v, 5)", "xor"),
5966            ] {
5967                let source = format!("{ty} f({ty} *p, {ty} v) {{ return {call}; }}\n");
5968                let text = asm(&source);
5969                assert!(text.contains("\tlock\n"), "{ty} {name}: {text}");
5970                assert!(
5971                    text.contains(&format!("cmpxchg{suffix}\t{reg}, (%rdi)")),
5972                    "{ty} {name}: {text}"
5973                );
5974                assert!(text.contains(&format!("{insn}{suffix}\t")), "{ty} {name}: {text}");
5975                // The tab matters on the second of these, since `cmpxchg` ends in the other name.
5976                assert!(!text.contains("\txadd"), "{ty} {name} is not an add: {text}");
5977                assert!(!text.contains("\txchg"), "{ty} {name} is not an exchange: {text}");
5978            }
5979        }
5980        let source = "long f(long *p, long v) { return __atomic_fetch_or(p, v, 5); }\n";
5981        assert!(asm(source).contains("cmpxchgq\t%rdx, (%rdi)"), "{}", asm(source));
5982
5983        // The nand, which puts two instructions inside the loop rather than one. The flip is an
5984        // exclusive or against every bit set in the IR and the folder turns that into the `not` the
5985        // machine has, which is what gcc writes here too.
5986        let text = asm("int f(int *p, int v) { return __sync_fetch_and_nand(p, v); }\n");
5987        assert!(text.contains("cmpxchgl\t"), "{text}");
5988        assert!(text.contains("andl\t"), "{text}");
5989        assert!(text.contains("notl\t"), "{text}");
5990    }
5991
5992    /// The three names that pass a value through a pointer are the same access and one plain one.
5993    ///
5994    /// They exist for an object too big to come back in a register, and the front end takes them at
5995    /// their word rather than folding them into the `_n` spellings, because the extra access is real:
5996    /// the caller handed over somewhere to read from or write into and that is where the value has
5997    /// to come from or go. Both of those accesses are plain. The object at the end of the caller's
5998    /// pointer is the caller's own and no other thread has its address, which is what the whole
5999    /// shape is for.
6000    #[test]
6001    fn an_access_through_a_second_pointer_is_the_same_access_and_one_more() {
6002        let text = body("void f(int *p, int *r) { __atomic_load(p, r, 5); }\n");
6003        assert!(text.contains("%2 = atomic_load.i32 %0, align 4, seq_cst"), "{text}");
6004        assert!(text.contains("store %2 -> %1, align 4"), "and out through the place: {text}");
6005
6006        let text = body("void f(int *p, int *v) { __atomic_store(p, v, 3); }\n");
6007        assert!(text.contains("%2 = load.i32 %1, align 4"), "in through the place: {text}");
6008        assert!(text.contains("atomic_store %2 -> %0, align 4, release"), "{text}");
6009
6010        // The exchange, which reads through one pointer and writes through another and is the same
6011        // instruction in between as the spelling that takes and answers values.
6012        let text = body("void f(int *p, int *v, int *r) { __atomic_exchange(p, v, r, 5); }\n");
6013        assert!(text.contains("%3 = load.i32 %1, align 4"), "{text}");
6014        assert!(text.contains("%4 = atomic_rmw.i32 xchg %0, %3, align 4, seq_cst"), "{text}");
6015        assert!(text.contains("store %4 -> %2, align 4"), "{text}");
6016    }
6017
6018    /// The flag pair is an exchange of one byte and a store of a zero over the same byte.
6019    ///
6020    /// One byte whatever the pointer was written as, which is the standard's reading rather than a
6021    /// liberty: the object is an `atomic_flag`, there is no other way to read or write one, so the
6022    /// type the pointer carries says nothing about the access and the width is the implementation's
6023    /// to fix. gcc 16.2.0 writes `xchgb` here through an `int *` too.
6024    ///
6025    /// The answer is a comparison against zero rather than the byte itself, because the type of the
6026    /// call is `_Bool` and a byte that is neither zero nor one is not one. gcc answers the raw byte,
6027    /// and the two agree wherever the flag is only ever touched through this pair.
6028    #[test]
6029    fn a_flag_is_an_exchange_of_one_byte_and_a_store_of_a_zero_over_the_same_byte() {
6030        for pointer in ["char", "int", "void"] {
6031            let source = format!("int f({pointer} *p) {{ return __atomic_test_and_set(p, 5); }}\n");
6032            let text = body(&source);
6033            assert!(text.contains("%1 = iconst.i8 1"), "{pointer}: {text}");
6034            assert!(
6035                text.contains("%2 = atomic_rmw.i8 xchg %0, %1, align 1, seq_cst"),
6036                "{pointer}: {text}"
6037            );
6038            assert!(text.contains("%4 = icmp ne %2, %3"), "{pointer}: {text}");
6039
6040            let source = format!("void f({pointer} *p) {{ __atomic_clear(p, 3); }}\n");
6041            let text = body(&source);
6042            assert!(text.contains("atomic_store %2 -> %0, align 1, release"), "{pointer}: {text}");
6043        }
6044
6045        // And on this machine, where the exchange carries no `lock` because one with memory locks
6046        // the bus whether it was asked to or not. Both lines are what gcc 16.2.0 writes.
6047        let text = asm("int f(int *p) { return __atomic_test_and_set(p, 5); }\n");
6048        assert!(text.contains("xchgb\t%al, (%rdi)"), "{text}");
6049        assert!(text.contains("setne\t"), "{text}");
6050    }
6051
6052    /// On this machine it is `xchg` where the machine has an exchange and `lock xadd` where it has
6053    /// an add, at the width of the object.
6054    ///
6055    /// The exchange carries no prefix and the add carries one, which is the machine rather than an
6056    /// oversight: an exchange with memory locks the bus whether it is asked to or not. Both are
6057    /// therefore full barriers whatever ordering the program wrote, so no ordering costs an
6058    /// `mfence` beside them. Every line below is what gcc 16.2.0 writes for the same function.
6059    #[test]
6060    fn a_read_modify_write_is_an_exchange_or_a_locked_add_at_the_width_of_the_object() {
6061        let widths = [("char", "b", "%sil"), ("short", "w", "%si"), ("int", "l", "%esi")];
6062        for (ty, suffix, reg) in widths {
6063            let source =
6064                format!("{ty} f({ty} *p, {ty} v) {{ return __atomic_fetch_add(p, v, 5); }}\n");
6065            let text = asm(&source);
6066            assert!(text.contains("\tlock\n"), "{ty}: {text}");
6067            assert!(text.contains(&format!("xadd{suffix}\t{reg}, (%rdi)")), "{ty}: {text}");
6068
6069            let source =
6070                format!("{ty} f({ty} *p, {ty} v) {{ return __atomic_exchange_n(p, v, 5); }}\n");
6071            let text = asm(&source);
6072            assert!(text.contains(&format!("xchg{suffix}\t{reg}, (%rdi)")), "{ty}: {text}");
6073            assert!(!text.contains("\tlock\n"), "an exchange is locked already: {ty}: {text}");
6074        }
6075        let source = "long f(long *p, long v) { return __atomic_fetch_add(p, v, 5); }\n";
6076        assert!(asm(source).contains("xaddq\t%rsi, (%rdi)"), "{}", asm(source));
6077
6078        // A subtraction is the same instruction over the negated operand, which is right at every
6079        // width because the machine's arithmetic wraps.
6080        let source = "int f(int *p, int v) { return __atomic_fetch_sub(p, v, 5); }\n";
6081        let text = asm(source);
6082        assert!(text.contains("negl\t"), "{text}");
6083        assert!(text.contains("xaddl\t"), "{text}");
6084
6085        // The ordering changes nothing, for the reason it changes nothing for a compare and
6086        // exchange: a locked instruction on this machine orders everything whatever it was asked.
6087        for order in ["0", "2", "3", "4", "5"] {
6088            let source =
6089                format!("int f(int *p, int v) {{ return __atomic_fetch_add(p, v, {order}); }}\n");
6090            let text = asm(&source);
6091            assert!(text.contains("xaddl\t"), "{order}: {text}");
6092            assert!(!text.contains("mfence"), "{order} needs no barrier here: {text}");
6093        }
6094
6095        // And the lock pair, which is the exchange and a store of a zero. Neither is a barrier
6096        // instruction: the exchange is one already and the store is a release, which this machine
6097        // gives away.
6098        let text = asm("int f(int *p, int v) { return __sync_lock_test_and_set(p, v); }\n");
6099        assert!(text.contains("xchgl\t%esi, (%rdi)"), "{text}");
6100        // The zero goes through a register on the way, which is where every constant this
6101        // compiler stores goes: gcc writes the one instruction because it has a store that takes an
6102        // immediate and no rule here does. That is a rule this rule set is missing rather than
6103        // anything about the builtin, and it is the same two instructions a plain `*p = 0` makes.
6104        // The register gets its zero from an exclusive or with itself rather than from a move of a
6105        // zero, which is `rucc_codegen::shorten` writing the shorter of the two spellings.
6106        let text = asm("void f(int *p) { __sync_lock_release(p); }\n");
6107        assert!(text.contains("xorl\t%eax, %eax"), "{text}");
6108        assert!(text.contains("movl\t%eax, (%rdi)"), "{text}");
6109        assert!(!text.contains("mfence"), "a release store needs no barrier here: {text}");
6110    }
6111
6112    /// The two lock free questions are numbers in the program rather than calls to anything.
6113    ///
6114    /// Both answer from the size, which has to be a power of two no wider than the widest access
6115    /// this compiler writes, and from what the pointer says about the alignment. Sixteen bytes is
6116    /// no here and is no in gcc without `-mcx16`, because `cmpxchg16b` is not in the baseline and
6117    /// nothing here writes it. Three bytes is no because there is no three byte access at all.
6118    ///
6119    /// The whole point of both names is that the answer is available before the program runs, so
6120    /// what is checked is that a `mov` of a constant is the whole function and that no call was
6121    /// left behind. A call would be to `__atomic_is_lock_free` in libatomic, which is not a library
6122    /// this links against.
6123    #[test]
6124    fn the_lock_free_questions_are_answered_as_constants() {
6125        for size in ["1", "2", "4", "8"] {
6126            let source =
6127                format!("int f(void) {{ return __atomic_always_lock_free({size}, 0); }}\n");
6128            let text = asm(&source);
6129            assert!(text.contains("movb\t$1, %al"), "{size} bytes is lock free: {text}");
6130            assert!(!text.contains("call"), "and is not a call: {text}");
6131        }
6132        for size in ["3", "16", "sizeof(long double)"] {
6133            let source = format!("int f(void) {{ return __atomic_is_lock_free({size}, 0); }}\n");
6134            let text = asm(&source);
6135            assert!(text.contains("movb\t$0, %al"), "{size} bytes is not: {text}");
6136            assert!(!text.contains("call"), "and is not a call either: {text}");
6137        }
6138
6139        // A size the compiler cannot work out, which is no rather than a refusal, and an object
6140        // whose type is aligned under the size asked about, which is the whole of what the second
6141        // argument is for.
6142        let text = asm("int f(int n) { return __atomic_is_lock_free(n, 0); }\n");
6143        assert!(text.contains("movb\t$0, %al"), "a size nobody knows is not lock free: {text}");
6144        let text = asm("int f(int *p) { return __atomic_always_lock_free(8, p); }\n");
6145        assert!(text.contains("movb\t$0, %al"), "eight bytes at four is not: {text}");
6146        let text = asm("int f(long *p) { return __atomic_always_lock_free(8, p); }\n");
6147        assert!(text.contains("movb\t$1, %al"), "and at eight it is: {text}");
6148    }
6149
6150    /// A memory order an operation cannot carry is read as the strongest one, and said so about.
6151    ///
6152    /// There are three ways the number is not one the operation can take: it is not a constant at
6153    /// all, it is not one of the six the headers define, or it is one of them and means nothing for
6154    /// this operation, which is a release load or an acquire store. All three become sequential
6155    /// consistency, which is stronger than anything the program could have meant, so a program that
6156    /// wrote nonsense gets a correct answer rather than a fast one. gcc does the same.
6157    ///
6158    /// The last two also warn, because the number was written down and is wrong. The first does
6159    /// not: gcc takes a computed order, and so does the C11 spelling, so a warning there would fire
6160    /// on correct programs.
6161    #[test]
6162    fn a_memory_order_an_operation_cannot_carry_is_read_as_the_strongest() {
6163        let mut opts = options();
6164        opts.emit = EmitKind::Ir;
6165
6166        let acquire_store = run(&opts, "void f(int *p, int v) { __atomic_store_n(p, v, 2); }\n");
6167        assert!(acquire_store.text().contains("seq_cst"), "{:?}", acquire_store.text());
6168        assert!(acquire_store.messages[0].contains("[W0333]"), "{:?}", acquire_store.messages);
6169
6170        let nonsense = run(&opts, "int f(int *p) { return __atomic_load_n(p, 99); }\n");
6171        assert!(nonsense.text().contains("seq_cst"), "{:?}", nonsense.text());
6172        assert!(nonsense.messages[0].contains("[W0333]"), "{:?}", nonsense.messages);
6173
6174        let computed = run(&opts, "int f(int *p, int n) { return __atomic_load_n(p, n); }\n");
6175        assert!(computed.text().contains("seq_cst"), "{:?}", computed.text());
6176        assert_eq!(computed.messages, Vec::<String>::new(), "a computed order is not a mistake");
6177    }
6178
6179    /// A conversion between a float and the widest unsigned integer, which the machine has not got.
6180    ///
6181    /// Every other conversion between a float and an integer is the signed one at some width with a
6182    /// widening in front or a narrowing behind. These two are not, because there is no signed width
6183    /// that holds every value of an unsigned sixty four bit integer, so each is the signed
6184    /// conversion with arithmetic around it that brings the value into range and puts it back.
6185    ///
6186    /// What is checked here is that the conversion happens at all and that it happens without a
6187    /// branch. gcc writes a branch for both; this writes the choice as a mask, because every rewrite
6188    /// in that pass stays inside the block it started in. The arithmetic itself is checked in
6189    /// `rucc-codegen`, where it can be run against the answer rather than read in the assembly.
6190    #[test]
6191    fn a_conversion_between_a_float_and_the_widest_unsigned_integer_is_written_without_a_branch() {
6192        let text = asm("double f(unsigned long long x) { return (double)x; }\n");
6193        assert!(text.contains("cvtsi2sdq"), "the signed conversion is what runs: {text}");
6194        assert!(text.contains("shrq"), "with the value halved first: {text}");
6195        assert!(text.contains("addsd"), "and doubled after: {text}");
6196        assert!(!text.contains("\tj"), "and no branch anywhere: {text}");
6197
6198        let text = asm("unsigned long long f(double d) { return (unsigned long long)d; }\n");
6199        assert!(text.contains("cvttsd2siq"), "the signed conversion is what runs: {text}");
6200        assert!(text.contains("subsd"), "with half the range taken off first: {text}");
6201        assert!(text.contains("shlq\t$63"), "and the top bit put back: {text}");
6202        assert!(!text.contains("\tj"), "and no branch anywhere: {text}");
6203    }
6204
6205    /// The plain names are the library's only where nothing else has taken them.
6206    ///
6207    /// Four ways a program says it means something else. A `static` definition is its own
6208    /// function and the name outside the file is somebody else's. A declaration of another type
6209    /// is another function. `-fno-builtin` and `-fno-builtin-<name>` say so outright, and
6210    /// `-ffreestanding` says there is no C library for the name to be the name of. Every one of
6211    /// these was measured against gcc 16.2.0, which calls the program's function in all of them.
6212    ///
6213    /// The `__builtin_` spelling goes on meaning the library's function through all of it, which
6214    /// is what the prefix is for and what lets a freestanding build reach one deliberately.
6215    #[test]
6216    fn a_plain_name_the_program_took_is_the_programs_own_function() {
6217        let taken = concat!(
6218            "static long long llabs(long long b) { return 7; }\n",
6219            "long long f(long long x) { return llabs(x); }\n",
6220        );
6221        assert!(ir(taken).contains("call @llabs"), "a static definition is the program's own");
6222
6223        let retyped = concat!("int llabs(int b);\n", "int f(int x) { return llabs(x); }\n",);
6224        assert!(ir(retyped).contains("call @llabs"), "another type is another function");
6225
6226        let plain = concat!(
6227            "long long llabs(long long b);\n",
6228            "long long f(long long x) { return llabs(x); }\n",
6229        );
6230        let mut opts = options();
6231        opts.emit = EmitKind::Ir;
6232        assert!(!run(&opts, plain).text().contains("call @llabs"), "the library's by default");
6233
6234        opts.builtins = false;
6235        assert!(run(&opts, plain).text().contains("call @llabs"), "-fno-builtin");
6236
6237        opts.builtins = true;
6238        opts.no_builtin = vec!["llabs".to_owned()];
6239        assert!(run(&opts, plain).text().contains("call @llabs"), "-fno-builtin-llabs");
6240        let one = "long labs(long b);\nlong f(long x) { return labs(x); }\n";
6241        assert!(!run(&opts, one).text().contains("call @labs"), "one name and not the family");
6242
6243        // `-ffreestanding` reaches the front end as the same answer, which is what the driver
6244        // does with it in `compile`, and the prefixed spelling is untouched by any of it.
6245        opts.no_builtin = Vec::new();
6246        opts.builtins = false;
6247        let prefixed = "long long f(long long x) { return __builtin_llabs(x); }\n";
6248        assert!(!run(&opts, prefixed).text().contains("call @llabs"), "the prefix is a promise");
6249    }
6250
6251    /// The hint builtins are their first argument, and nothing is left of the hint.
6252    ///
6253    /// Which way a branch is expected to go is the whole of what they say, and there is nothing
6254    /// here that reads a branch weight yet, so what reaches the IR is the value and the hint is
6255    /// gone. The one thing the prototype has to keep doing is converting: gcc gives both of them
6256    /// a `long` result, so `sizeof(__builtin_expect((char)1, 1))` is eight and a narrower argument
6257    /// widens before it is answered with.
6258    ///
6259    /// Whether a side effect in the hint happens depends on the first argument, which is gcc's
6260    /// answer rather than a rule anybody designed. A constant first argument folds the whole call
6261    /// where it is written and the hint goes with it, and a first argument that is not a constant
6262    /// leaves the hint standing. Both halves are below and both were measured on gcc 16.2.0.
6263    #[test]
6264    fn the_hint_builtins_are_their_first_argument_and_the_hint_leaves_no_trace() {
6265        let text = ir(concat!(
6266            "long a = __builtin_expect(7, 1);\n",
6267            "long b = __builtin_expect_with_probability(9, 1, 0.9);\n",
6268            "unsigned long c = sizeof(__builtin_expect((char)1, 1));\n",
6269        ));
6270        assert!(text.contains("global @a : i64 = 7,"), "{text}");
6271        assert!(text.contains("global @b : i64 = 9,"), "{text}");
6272        assert!(text.contains("global @c : i64 = 8,"), "{text}");
6273        assert!(!text.contains("__builtin_expect"), "it is not a call to anything:\n{text}");
6274
6275        // A narrower argument is widened by the prototype before it is handed back, and it is
6276        // widened with its sign, since the parameter is a signed `long`.
6277        let text = body("long f(char c) { return __builtin_expect(c, 1); }\n");
6278        assert!(text.contains("sext"), "{text}");
6279
6280        // The first argument is a constant, so the second is not evaluated and `i` is still zero,
6281        // and neither is the third. What is left of each statement is the first argument widened,
6282        // which nothing reads and which the first pass that looks for dead code will take out.
6283        let one = "block0:\n    %0 = iconst.i32 0\n    %1 = iconst.i32 1\n    %2 = sext.i64 %1\n    return %0\n";
6284        assert_eq!(body("int f(void) { int i = 0; __builtin_expect(1, i++); return i; }\n"), one);
6285        let source = "int g(void) { int i = 0; __builtin_expect_with_probability(1, i++, 0.5); return i; }\n";
6286        assert_eq!(body(source), one);
6287
6288        // The first argument is not a constant, so the hint runs and `i` comes back one. There is
6289        // an increment in the body and the value it returns is the load after it, which is what
6290        // gcc gives for the same program, and the whole of tamnd/rucc#584 is that this used to
6291        // come out the same as the pair above.
6292        let kept = body("int f(int n) { int i = 0; __builtin_expect(n, i++); return i; }\n");
6293        assert!(kept.contains("add.nsw"), "the hint still runs: {kept}");
6294        assert!(kept.ends_with("return %3\n"), "and the answer is what it left behind: {kept}");
6295        let both = "int g(int n) { int i = 0; __builtin_expect_with_probability(n, i++, 0.5); return i; }\n";
6296        assert!(body(both).contains("add.nsw"), "and so does the one with three arguments");
6297    }
6298
6299    /// A point control does not arrive at, in both of the ways the compiler has one.
6300    ///
6301    /// `__builtin_unreachable()` is the promise written down, and a function whose body can run
6302    /// off the bottom is the walk arriving at the same place on its own. Neither writes an
6303    /// instruction, which is what gcc 16.2.0 does at `-O0`: it emits the epilogue and the `ret`
6304    /// for both of the functions below and nothing else, and the two of them come out byte for
6305    /// byte the same there.
6306    ///
6307    /// The `ret` is the part worth holding on to. It is not there because anything runs it, it is
6308    /// there because a function whose last instruction is not a return is one that falls into
6309    /// whatever the assembler puts after it.
6310    #[test]
6311    fn a_promise_that_control_does_not_arrive_writes_no_instruction() {
6312        let promised = "int f(int x) { if (x) return 1; __builtin_unreachable(); }\n";
6313        let text = ir(promised);
6314        assert!(text.contains("    unreachable_hint\n"), "{text}");
6315        assert!(!text.contains("call"), "it is not a call to anything:\n{text}");
6316
6317        // The statement after it is still lowered. Continuing to translate a path the program
6318        // promised is dead is one of the things a compiler may do with undefined behaviour, and
6319        // it is the one that keeps a program built at `-O0` behaving the way it was watched to.
6320        let after = body("int g(int x) { __builtin_unreachable(); return x; }\n");
6321        assert!(after.contains("return"), "{after}");
6322
6323        // Both functions are the same instructions, because the hint writes none of them and the
6324        // terminator underneath it writes none either.
6325        let text = asm(promised);
6326        let mine = text.split_once("\nf:\n").expect("a definition").1;
6327        let mine = mine.split_once("\t.size").expect("a definition").0;
6328        let plain = asm("int f(int x) { if (x) return 1; }\n");
6329        let plain = plain.split_once("\nf:\n").expect("a definition").1;
6330        let plain = plain.split_once("\t.size").expect("a definition").0;
6331        assert_eq!(mine, plain);
6332        // The last instruction, rather than the last line, because the unwind record is closed
6333        // after it and a directive is not something the machine runs.
6334        let last = mine.lines().rfind(|line| !line.trim_start().starts_with('.'));
6335        assert_eq!(last.map(str::trim), Some("ret"), "{mine}");
6336        assert!(!mine.contains("ud2"), "{mine}");
6337    }
6338
6339    /// The two names stay apart, which is what having both of them is for.
6340    ///
6341    /// The one the program wrote is what the call is checked against and what a diagnostic about
6342    /// it says, and the one the library defines is what the call ends up carrying. A compiler
6343    /// that kept only the second would report this against `abort`, which is a function the
6344    /// program never mentions.
6345    #[test]
6346    fn a_library_builtin_is_diagnosed_under_the_name_the_program_wrote() {
6347        let mut opts = options();
6348        opts.emit = EmitKind::Ir;
6349        let messages = run(&opts, "void f(void) { __builtin_abort(1); }\n").messages;
6350        assert!(
6351            messages.iter().any(|m| m.contains("__builtin_abort")),
6352            "expected the written name in {messages:?}"
6353        );
6354    }
6355
6356    /// A builtin nothing lowers is refused where it is written, rather than at the link.
6357    ///
6358    /// One name is left, which is the last of the atomic family that is refused and is also the
6359    /// one whose prefix is not `__builtin_`; its older half has nothing left in it at all, and so
6360    /// does the half of the family that carries a prototype. What the message has to carry is the
6361    /// name, because the whole complaint about the link error this replaces is that the name in it
6362    /// was one the compiler chose.
6363    #[test]
6364    fn a_builtin_nothing_lowers_is_refused_by_name() {
6365        let mut opts = options();
6366        opts.emit = EmitKind::Ir;
6367        let builtin = "__atomic_signal_fence";
6368        let source = format!("int counter;\nint f(void) {{ return ({builtin}(5), 0); }}\n");
6369        let messages = run(&opts, &source).messages;
6370        let named = messages.iter().any(|m| m.contains(builtin) && m.contains("E0686"));
6371        assert!(named, "expected {builtin} to be refused by name in {messages:?}");
6372    }
6373
6374    /// The refusal is about a call and not about the name, so a program that defines the name
6375    /// itself gets the function it wrote.
6376    ///
6377    /// That is not the reason the refusal exists, but a definition in front of us is a definition
6378    /// and the call to it links. It works here because the name is one with no prototype and no
6379    /// meaning the front end knows, which is what is left once the rest of the family is
6380    /// implemented: a `__builtin_` name the front end does answer is answered whatever the program
6381    /// declares, the way gcc answers one.
6382    #[test]
6383    fn what_is_refused_is_the_call_and_not_the_name() {
6384        let text = ir(concat!(
6385            "void __atomic_signal_fence(int order) { (void)order; }\n",
6386            "void f(void) { __atomic_signal_fence(5); }\n",
6387        ));
6388        assert!(text.contains("call @__atomic_signal_fence"), "{text}");
6389    }
6390
6391    /// How many bytes are behind an address is read off the layout, for every shape the walk
6392    /// covers.
6393    ///
6394    /// This is what `_FORTIFY_SOURCE` runs on, so the numbers matter one at a time rather than in
6395    /// aggregate: a size too small turns a correct copy into an abort, and a size too large turns
6396    /// a checked copy back into an unchecked one. Every answer here was measured against gcc
6397    /// 16.2.0 first. They are written as initializers so that each one is a constant in the
6398    /// output and the test reads as the table it is.
6399    #[test]
6400    fn the_object_size_of_an_address_is_what_the_layout_leaves_in_front_of_it() {
6401        let text = ir(concat!(
6402            "struct S { char a[8]; int n; char b[12]; };\n",
6403            "char g[32];\n",
6404            "struct S gs;\n",
6405            "unsigned long whole = __builtin_object_size(g, 0);\n",
6406            "unsigned long moved = __builtin_object_size(g + 4, 0);\n",
6407            "unsigned long back = __builtin_object_size(g + 30 - 2, 0);\n",
6408            "unsigned long outer = __builtin_object_size(gs.a, 0);\n",
6409            "unsigned long inner = __builtin_object_size(gs.a, 1);\n",
6410            "unsigned long scalar = __builtin_object_size(&gs.n, 1);\n",
6411            "unsigned long after = __builtin_object_size(&gs.n, 0);\n",
6412            "unsigned long into = __builtin_object_size(&gs.b[2], 1);\n",
6413            "unsigned long text = __builtin_object_size(\"hello\", 0);\n",
6414            "unsigned long dyn = __builtin_dynamic_object_size(gs.b, 1);\n",
6415        ));
6416        for (name, size) in [
6417            ("whole", 32),
6418            ("moved", 28),
6419            ("back", 4),
6420            ("outer", 24),
6421            ("inner", 8),
6422            ("scalar", 4),
6423            ("after", 16),
6424            ("into", 10),
6425            ("text", 6),
6426            ("dyn", 12),
6427        ] {
6428            let said = format!("global @{name} : i64 = {size},");
6429            assert!(text.contains(&said), "expected `{said}` in:\n{text}");
6430        }
6431    }
6432
6433    /// A local is as knowable as a global, which is the whole point of asking on the way into a
6434    /// copy.
6435    ///
6436    /// A fortified header expands around the destination the caller wrote, and the destination a
6437    /// program most wants checked is the buffer on its own stack. Nothing in the answer depends on
6438    /// storage duration, unlike in a constant expression, where the address of a local is exactly
6439    /// what is not allowed.
6440    #[test]
6441    fn the_object_behind_an_address_can_be_one_with_automatic_storage() {
6442        let text = body(concat!(
6443            "struct S { char a[8]; int n; char b[12]; };\n",
6444            "unsigned long f(void) {\n",
6445            "  char loc[20];\n",
6446            "  struct S ls;\n",
6447            "  return __builtin_object_size(loc + 3, 0) + __builtin_object_size(ls.b + 2, 1);\n",
6448            "}\n",
6449        ));
6450        assert!(text.contains("iconst.i64 17"), "twenty bytes with three used: {text}");
6451        assert!(text.contains("iconst.i64 10"), "twelve bytes with two used: {text}");
6452    }
6453
6454    /// An address whose object the walk cannot see answers at whichever end of the range the kind
6455    /// asks for.
6456    ///
6457    /// The two bits are a question and the answer has to fit it. A kind wanting the largest object
6458    /// the address could be in has to name a size nothing is bigger than, and a kind wanting the
6459    /// smallest has to name a size nothing is smaller than, so the unknown answers are all ones
6460    /// and zero. That pair is what a fortified header compares against to decide whether to check
6461    /// at all, and getting either of them the wrong way round turns every unknown copy into an
6462    /// abort.
6463    #[test]
6464    fn an_address_with_no_object_in_sight_answers_at_the_end_of_the_range_its_kind_asks_for() {
6465        let text = ir(concat!(
6466            "struct T { int n; char f[]; };\n",
6467            "extern char *p;\n",
6468            "extern struct T *t;\n",
6469            "unsigned long largest = __builtin_object_size(p, 0);\n",
6470            "unsigned long nearest = __builtin_object_size(p, 1);\n",
6471            "unsigned long least = __builtin_object_size(p, 2);\n",
6472            "unsigned long tight = __builtin_object_size(p, 3);\n",
6473            "unsigned long flex = __builtin_object_size(t->f, 1);\n",
6474            "int says = __builtin_object_size(p, 0) == (unsigned long)-1;\n",
6475        ));
6476        for name in ["largest", "nearest", "flex"] {
6477            // All ones, printed as the signed rendering of the sixty four bits it is held in.
6478            // `says` is what pins the pattern itself, since it is the comparison a fortified
6479            // header writes and it folds only if every bit is set.
6480            let said = format!("global @{name} : i64 = -1,");
6481            assert!(text.contains(&said), "expected `{said}` in:\n{text}");
6482        }
6483        for name in ["least", "tight"] {
6484            let said = format!("global @{name} : i64 = 0,");
6485            assert!(text.contains(&said), "expected `{said}` in:\n{text}");
6486        }
6487        assert!(text.contains("global @says : i32 = 1,"), "{text}");
6488    }
6489
6490    /// The address is not evaluated, which is the rule `sizeof` follows and for the same reason.
6491    ///
6492    /// What the builtin reads is the shape of the expression rather than the value it would
6493    /// produce, so there is nothing to run. It matters because a fortified header writes the
6494    /// destination twice, once into the copy and once into the size, and a program whose
6495    /// destination is `*next()` would advance twice if this evaluated.
6496    #[test]
6497    fn the_address_an_object_size_is_asked_about_is_not_evaluated() {
6498        let text = body(concat!(
6499            "extern char *side(void);\n",
6500            "unsigned long f(void) { return __builtin_object_size(side(), 0); }\n",
6501        ));
6502        assert!(!text.contains("call"), "nothing is called: {text}");
6503    }
6504
6505    /// The kind has to be a constant in range, because it says which of four questions was asked.
6506    ///
6507    /// A number that is not known until the program runs decides nothing, and one outside the two
6508    /// bits names no question at all. gcc refuses both in one sentence and so does this.
6509    #[test]
6510    fn a_kind_that_is_not_one_of_the_four_is_refused() {
6511        for source in [
6512            "extern char *p;\nextern int k;\nunsigned long f(void) ".to_owned()
6513                + "{ return __builtin_object_size(p, k); }\n",
6514            "extern char *p;\nunsigned long f(void) { return __builtin_object_size(p, 4); }\n"
6515                .to_owned(),
6516            "extern char *p;\nunsigned long f(void) ".to_owned()
6517                + "{ return __builtin_dynamic_object_size(p, -1); }\n",
6518        ] {
6519            let messages = errors(&source);
6520            let named = messages.iter().any(|m| m.contains("E0709") && m.contains("0 to 3"));
6521            assert!(named, "expected a complaint about the kind in {messages:?}");
6522        }
6523    }
6524
6525    /// The pair that saves a place in a function and comes back to it, which is not a call.
6526    ///
6527    /// What the IR has to show is one instruction each and no call to anything: there is no
6528    /// function of either name for a call to reach, and a program that got one would fail to link.
6529    /// The save answers an `int`, which is the value that says how control got there.
6530    #[test]
6531    fn the_pair_that_saves_a_place_lowers_to_the_two_markers() {
6532        let text = ir(concat!(
6533            "void *buf[5];\n",
6534            "int f(void) {\n",
6535            "  if (__builtin_setjmp(buf)) return 2;\n",
6536            "  return 1;\n",
6537            "}\n",
6538            "void g(void) { __builtin_longjmp(buf, 1); }\n",
6539        ));
6540        assert!(text.contains("= setjmp_marker.i32 %0\n"), "the save answers a value: {text}");
6541        assert!(text.contains("    longjmp_marker %0\n"), "the restore answers nothing: {text}");
6542        assert!(!text.contains("call @"), "neither of them is a call: {text}");
6543    }
6544
6545    /// Every local of a function that saves a place lives in the frame, and not in a value.
6546    ///
6547    /// The edge a restore travels is not an edge of the graph, so a local the SSA construction
6548    /// renamed would answer the write that reached the read along the edges there are rather than
6549    /// the write that last ran. The second function here is the same code without the save, where
6550    /// the local is a value and there is no slot at all, which is what makes the first one a rule
6551    /// about the save and not about the shape of the code.
6552    #[test]
6553    fn a_local_of_a_function_that_saves_a_place_gets_a_slot() {
6554        let text = ir(concat!(
6555            "void *buf[5];\n",
6556            "int f(int x) { int a = 0; if (__builtin_setjmp(buf)) return a; a = 1; return x; }\n",
6557            "int g(int x) { int a = 0; if (x) return a; a = 1; return x; }\n",
6558        ));
6559        let (saves, plain) = text.split_once("func @g").expect("both functions");
6560        assert_eq!(saves.matches("= alloca").count(), 2, "the parameter and the local: {text}");
6561        assert!(saves.contains("store %9 -> %2"), "the local is written through: {text}");
6562        assert!(!plain.contains("alloca"), "nothing in the plain one needs a slot: {text}");
6563    }
6564
6565    /// What the save writes and where it leaves control, which is a new block.
6566    ///
6567    /// Four words: the frame pointer, the address to come back to, the stack pointer, and the
6568    /// address of the word the answer arrives in, which is this compiler's own and is why the
6569    /// block after the save opens with a load. The frame pointer is kept although the function
6570    /// asked for nothing and calls nothing, since the epilogue has to find the caller's frame
6571    /// after control has come back, and the frame is grown although there is one word in it,
6572    /// since a function control comes back into cannot use the red zone.
6573    #[test]
6574    fn the_save_writes_four_words_and_carries_on_in_a_new_block() {
6575        let text =
6576            asm(concat!("void *buf[5];\n", "int f(void) { return __builtin_setjmp(buf); }\n",));
6577        let body = text.split_once("\nf:\n").expect("the function").1;
6578        assert!(body.contains("\tmovq\t%rsp, %rbp\n"), "a frame pointer whatever: {text}");
6579        assert!(body.contains("\tsubq\t$8, %rsp\n"), "no red zone: {text}");
6580        assert!(body.contains("\tmovq\t%rbp, (%rax)\n"), "the frame pointer: {text}");
6581        assert!(body.contains("\tmovq\t%rsp, 16(%rax)\n"), "the stack pointer: {text}");
6582        assert!(body.contains("\tleaq\t.Lf_1(%rip), %rcx\n"), "where to come back to: {text}");
6583        assert!(body.contains("\tmovq\t%rcx, 8(%rax)\n"), "and that goes in the buffer: {text}");
6584        let back = body.split_once(".Lf_1:\n").expect("the block control comes back to").1;
6585        assert!(back.starts_with("\tmovq\t(%rsp), %rax\n"), "the answer is read back: {text}");
6586    }
6587
6588    /// Nothing stays in a register across the save, which is said with a write of every one of
6589    /// them and shows up as the callee-saved registers the function saves and restores.
6590    ///
6591    /// The restore puts back two registers and no others, so a function coming back through one
6592    /// finds every other register holding whatever the code between the two put there. The pushes
6593    /// are what makes the epilogue right on that path: the values popped are the caller's, off the
6594    /// stack the restore put back, rather than whatever is in the registers when control arrives.
6595    #[test]
6596    fn a_save_destroys_every_register_the_allocator_hands_out() {
6597        let text =
6598            asm(concat!("void *buf[5];\n", "int f(void) { return __builtin_setjmp(buf); }\n",));
6599        for reg in ["%rbx", "%r12", "%r13", "%r14", "%r15"] {
6600            assert!(text.contains(&format!("\tpushq\t{reg}\n")), "{reg} is saved: {text}");
6601            assert!(text.contains(&format!("\tpopq\t{reg}\n")), "{reg} is restored: {text}");
6602        }
6603    }
6604
6605    /// The restore puts both registers back before it goes, at every level.
6606    ///
6607    /// The jump reads the two of them as well as the address it goes through, which is what keeps
6608    /// it behind them. Without that the two instructions write registers nothing reads, and the
6609    /// scheduler at `-O2` puts the jump in front of both and the program comes back to a frame
6610    /// that is not there.
6611    #[test]
6612    fn the_restore_puts_the_frame_back_before_it_jumps() {
6613        for level in [rucc_session::OptLevel::O0, rucc_session::OptLevel::O2] {
6614            let mut opts = options();
6615            opts.emit = EmitKind::Asm;
6616            opts.opt_level = level;
6617            let source = "void *buf[5];\nvoid g(void) { __builtin_longjmp(buf, 1); }\n";
6618            let result = run(&opts, source);
6619            assert_eq!(result.messages, Vec::<String>::new(), "expected this to compile");
6620            let text = result.text().to_owned();
6621            let jump = text.find("\tjmp\t*%").unwrap_or_else(|| panic!("an indirect jump: {text}"));
6622            let stack = text.find(", %rsp\n").unwrap_or_else(|| panic!("the stack back: {text}"));
6623            let frame = text.find(", %rbp\n").unwrap_or_else(|| panic!("the frame back: {text}"));
6624            assert!(stack < jump, "the stack goes back first at {level:?}: {text}");
6625            assert!(frame < jump, "and so does the frame at {level:?}: {text}");
6626        }
6627    }
6628
6629    /// The second argument of the restore has one allowed value, which gcc 16.2.0 also insists on.
6630    ///
6631    /// This pair does not carry a value back the way the library's `longjmp` does, because what
6632    /// the matching save answers is decided by which way control reached it. So the argument is a
6633    /// place-holder, and a program that wrote anything else meant the library's function.
6634    #[test]
6635    fn a_longjmp_whose_second_argument_is_not_one_is_turned_down() {
6636        for source in [
6637            "void *buf[5];\nvoid f(void) { __builtin_longjmp(buf, 0); }\n",
6638            "void *buf[5];\nextern int v;\nvoid f(void) { __builtin_longjmp(buf, v); }\n",
6639        ] {
6640            let messages = errors(source);
6641            let named = messages.iter().any(|m| m.contains("E0710"));
6642            assert!(named, "expected a complaint about the value in {messages:?}");
6643        }
6644    }
6645
6646    /// A `static` function nothing refers to is not emitted, and one that is refered to is.
6647    ///
6648    /// The pair is written as one program so that the two answers come out of one walk. What
6649    /// makes the difference is the call in `main` and nothing else about either definition.
6650    #[test]
6651    fn a_static_function_nothing_refers_to_is_not_emitted() {
6652        let text = ir("static int dropped(void) { return 1; }\n\
6653                       static int kept(void) { return 2; }\n\
6654                       int main(void) { return kept(); }\n");
6655        assert!(text.contains("func @kept"), "{text}");
6656        assert!(!text.contains("dropped"), "{text}");
6657    }
6658
6659    /// The set is transitive, so two of them that only call each other are both dropped.
6660    ///
6661    /// Counting the references to a name would keep this pair, since each is named once, and
6662    /// that is the mistake this is here to catch: what decides it is whether a root reaches the
6663    /// definition, and a root is something the file has a reason to emit on its own.
6664    #[test]
6665    fn two_static_functions_that_only_call_each_other_are_both_dropped() {
6666        let text = ir("static int ping(void);\n\
6667                       static int pong(void) { return ping(); }\n\
6668                       static int ping(void) { return pong(); }\n\
6669                       int main(void) { return 0; }\n");
6670        assert!(!text.contains("ping"), "{text}");
6671        assert!(!text.contains("pong"), "{text}");
6672    }
6673
6674    /// Everything that names a function keeps it, whether or not the name is being called.
6675    ///
6676    /// An address taken in a body, an image that holds one, and a body that is only reached
6677    /// through another `static` function are three different ways for a definition to be needed
6678    /// and none of them is a call at the top level of a reachable function.
6679    #[test]
6680    fn naming_a_static_function_anywhere_keeps_it() {
6681        let text = ir("static int by_address(void) { return 1; }\n\
6682                       static int in_an_image(void) { return 2; }\n\
6683                       static int deeper(void) { return 3; }\n\
6684                       static int reaches_deeper(void) { return deeper(); }\n\
6685                       static int (*table[1])(void) = {in_an_image};\n\
6686                       int main(void) {\n\
6687                         int (*p)(void) = by_address;\n\
6688                         return p() + table[0]() + reaches_deeper();\n\
6689                       }\n");
6690        for kept in ["by_address", "in_an_image", "deeper", "reaches_deeper"] {
6691            assert!(text.contains(&format!("func @{kept}")), "expected {kept} in:\n{text}");
6692        }
6693    }
6694
6695    /// An attribute that says something outside the file reaches it keeps the definition.
6696    ///
6697    /// None of the five is implemented as anything else yet, and this is the part of each of
6698    /// them that a program notices first: a symbol a linker script names or a function the
6699    /// run-up to `main` calls is not written about anywhere a C file can see.
6700    #[test]
6701    fn an_attribute_keeps_a_static_function_nothing_refers_to() {
6702        for attribute in ["used", "retain", "constructor", "destructor", "__used__"] {
6703            let source = format!(
6704                "__attribute__(({attribute})) static int kept(void) {{ return 1; }}\n\
6705                 int main(void) {{ return 0; }}\n"
6706            );
6707            let text = ir(&source);
6708            assert!(text.contains("func @kept"), "for {attribute}:\n{text}");
6709        }
6710    }
6711
6712    /// A function with external linkage is emitted whatever this file does with it, because
6713    /// another one may call it, and that is what external linkage is.
6714    #[test]
6715    fn a_function_anything_could_call_is_emitted_without_being_called() {
6716        let text =
6717            ir("int nobody_here_calls_it(void) { return 1; }\nint main(void) { return 0; }\n");
6718        assert!(text.contains("func @nobody_here_calls_it"), "{text}");
6719    }
6720
6721    /// Four of the classification builtins are operators C already has, and become those.
6722    ///
6723    /// What the standard's macro promises over the operator is that it does not raise the
6724    /// invalid operation exception on a quiet NaN. This compiler does not model floating point
6725    /// exceptions, so there is nothing left for a node of its own to carry and a second way of
6726    /// spelling a comparison would be a second thing every pass has to know about.
6727    #[test]
6728    fn a_classification_c_has_an_operator_for_is_that_operator() {
6729        for (builtin, operator) in [
6730            ("__builtin_isgreater", "binary >"),
6731            ("__builtin_isgreaterequal", "binary >="),
6732            ("__builtin_isless", "binary <"),
6733            ("__builtin_islessequal", "binary <="),
6734        ] {
6735            let source = format!("int f(double x, double y) {{ return {builtin}(x, y); }}\n");
6736            let text = tast(&source);
6737            assert!(text.contains(&format!("{operator} : int")), "for {builtin}:\n{text}");
6738        }
6739    }
6740
6741    /// The rest of the family are comparisons in the IR and never a call to anything.
6742    ///
6743    /// `math.h` defines the macro of each of these names as the builtin of the same name, so
6744    /// there is no function under any of them for a call to reach. `isunordered` and
6745    /// `islessgreater` are predicates the IR's comparison already has, `isnan` is the value that
6746    /// is unordered with itself, and the two that ask about a magnitude are written against the
6747    /// infinities. `signbit` is the one that is not a question about the value, since a negative
6748    /// zero compares equal to a positive one, so its answer comes from the bits.
6749    #[test]
6750    fn the_classification_builtins_are_comparisons_and_not_calls() {
6751        let text = body("int f(double x, double y) { return __builtin_isunordered(x, y); }\n");
6752        assert_eq!(
6753            text,
6754            "block0(%0: f64, %1: f64):\n    %2 = fcmp uno %0, %1\n    %3 = zext.i32 \
6755                          %2\n    return %3\n"
6756        );
6757
6758        // Not `x != y`, which is true when the two are unordered and so is true of a NaN.
6759        let text = body("int f(double x, double y) { return __builtin_islessgreater(x, y); }\n");
6760        assert!(text.contains("fcmp one %0, %1"), "{text}");
6761
6762        let text = body("int f(double x) { return __builtin_isnan(x); }\n");
6763        assert!(text.contains("fcmp uno %0, %0"), "{text}");
6764
6765        let text = body("int f(double x) { return __builtin_isinf(x); }\n");
6766        assert!(text.contains("fconst.f64 0x7ff0000000000000"), "{text}");
6767        assert!(text.contains("fconst.f64 0xfff0000000000000"), "{text}");
6768        assert!(text.contains("%3 = fcmp oeq %0, %1"), "{text}");
6769        assert!(text.contains("%4 = fcmp oeq %0, %2"), "{text}");
6770        assert!(text.contains("%5 = or %3, %4"), "{text}");
6771
6772        // Strictly between the two infinities, which a NaN is not, because an ordered comparison
6773        // against either of them is false. That is what makes this one test rather than two.
6774        let text = body("int f(double x) { return __builtin_isfinite(x); }\n");
6775        assert!(text.contains("%3 = fcmp olt %2, %0"), "{text}");
6776        assert!(text.contains("%4 = fcmp olt %0, %1"), "{text}");
6777        assert!(text.contains("%5 = and %3, %4"), "{text}");
6778
6779        let text = body("int f(double x) { return __builtin_signbit(x); }\n");
6780        assert!(text.contains("%1 = bitcast.i64 %0"), "{text}");
6781        assert!(text.contains("icmp slt %1, %2"), "{text}");
6782
6783        // The same question of a value in the target's widest format, where the bits are eighty
6784        // and the object they sit in is sixteen bytes. No integer is that wide, so the sign is
6785        // read from the word at the top of the value once it is in memory.
6786        let text = body("int f(long double x) { return __builtin_signbitl(x); }\n");
6787        assert!(text.contains("load.i16"), "{text}");
6788        assert!(text.contains("icmp slt"), "{text}");
6789        assert!(!text.contains("i80"), "{text}");
6790
6791        // The operand is evaluated once however many times it is compared, which is the whole
6792        // reason these are nodes rather than a rewriting into the operators.
6793        let text = body("double g(void);\nint f(void) { return __builtin_isnan(g()); }\n");
6794        assert_eq!(text.matches("call @g()").count(), 1, "{text}");
6795    }
6796
6797    /// A spelling that names a width converts its argument before it asks.
6798    ///
6799    /// gcc gives `__builtin_isinff` a `float` parameter and `__builtin_isinf` no parameter type
6800    /// at all, and the difference is visible rather than academic: `1e300` does not fit in a
6801    /// `float`, so converting it first is an infinity and not converting it is not. Both numbers
6802    /// here are what gcc 16 gives.
6803    #[test]
6804    fn a_classification_spelling_that_names_a_width_converts_before_it_asks() {
6805        let text = ir(concat!(
6806            "int a = __builtin_isinff(1e300);\n",
6807            "int b = __builtin_isinf(1e300);\n",
6808            // Folded here rather than compared at run time, because a question about a value has
6809            // an answer as soon as the value is a constant, and an initializer for an object
6810            // with static storage duration has to have one.
6811            "int c = __builtin_isnan(0.0);\n",
6812            "int d = __builtin_signbit(-0.0);\n",
6813            "int e = __builtin_islessgreater(1.0, 2.0);\n",
6814        ));
6815        assert!(text.contains("global @a : i32 = 1,"), "{text}");
6816        assert!(text.contains("global @b : i32 = 0,"), "{text}");
6817        assert!(text.contains("global @c : i32 = 0,"), "{text}");
6818        assert!(text.contains("global @d : i32 = 1,"), "{text}");
6819        assert!(text.contains("global @e : i32 = 1,"), "{text}");
6820    }
6821
6822    /// An argument that is not floating point is refused, in gcc's words.
6823    #[test]
6824    fn a_classification_builtin_refuses_an_argument_that_is_not_floating_point() {
6825        let mut opts = options();
6826        opts.emit = EmitKind::Ir;
6827        let source = concat!(
6828            "int a(int x) { return __builtin_isnan(x); }\n",
6829            "int b(int x, int y) { return __builtin_isunordered(x, y); }\n",
6830            "int c(double x) { return __builtin_isnan(x, x); }\n",
6831        );
6832        let messages = run(&opts, source).messages;
6833        assert_eq!(
6834            messages,
6835            [
6836                "/main.c:1:23: error: non-floating-point argument in call to function \
6837                 '__builtin_isnan' [E0685]",
6838                "/main.c:2:30: error: non-floating-point arguments in call to function \
6839                 '__builtin_isunordered' [E0685]",
6840                "/main.c:3:26: error: too many arguments to function '__builtin_isnan' [E0511]",
6841            ]
6842        );
6843    }
6844
6845    /// The three of the family that need a constant of the format other than an infinity.
6846    ///
6847    /// `isnormal` is the one that needs the smallest normal, and it is asked of the magnitude, so
6848    /// the sign comes off first and what is left is the same shape as `isfinite`. `isinf_sign` is
6849    /// the one whose answer is a number: the two comparisons `isinf` builds, subtracted rather
6850    /// than combined. `fpclassify` is four questions of one value and five answers to pick from,
6851    /// and the picking is a mask because all five are constants and neither of them can have an
6852    /// effect.
6853    #[test]
6854    fn the_last_three_classification_builtins_are_comparisons_and_not_calls() {
6855        let text = body("int f(double x) { return __builtin_isnormal(x); }\n");
6856        // The sign off, which is the magnitude, and then the range, asked of the bits rather than
6857        // of the number, since the encoding of a value whose sign bit is clear rises with the
6858        // value in every format this compiles for.
6859        assert!(text.contains("%1 = bitcast.i64 %0"), "{text}");
6860        assert!(text.contains("%2 = iconst.i64 9223372036854775807"), "{text}");
6861        assert!(text.contains("%3 = and %1, %2"), "{text}");
6862        assert!(text.contains("%4 = iconst.i64 4503599627370496"), "{text}");
6863        assert!(text.contains("%5 = iconst.i64 9218868437227405312"), "{text}");
6864        assert!(text.contains("%6 = icmp uge %3, %4"), "{text}");
6865        assert!(text.contains("%7 = icmp ult %3, %5"), "{text}");
6866        assert!(text.contains("%8 = and %6, %7"), "{text}");
6867
6868        // The same question in the target's widest format, where the smallest normal has the
6869        // leading significand bit stored rather than implied, so its encoding is two bits and not
6870        // one. There is no integer that wide to compare the bits in, so it is the magnitude that
6871        // is compared, as a value.
6872        let text = body("int f(long double x) { return __builtin_isnormal(x); }\n");
6873        assert!(text.contains("fconst.f80 0x18000000000000000"), "{text}");
6874        assert!(text.contains("fconst.f80 0x7fff8000000000000000"), "{text}");
6875        assert!(text.contains("fcmp oge"), "{text}");
6876        assert!(text.contains("fcmp olt"), "{text}");
6877
6878        let text = body("int f(double x) { return __builtin_isinf_sign(x); }\n");
6879        assert!(text.contains("%3 = fcmp oeq %0, %1"), "{text}");
6880        assert!(text.contains("%4 = fcmp oeq %0, %2"), "{text}");
6881        assert!(text.contains("%7 = sub %5, %6"), "{text}");
6882
6883        let text = body("int f(double x) { return __builtin_fpclassify(0, 1, 2, 3, 4, x); }\n");
6884        assert!(text.contains("fcmp uno %0, %0"), "{text}");
6885        assert!(text.contains("fcmp oeq %0, %6"), "{text}");
6886        // Four questions, each of them a bit widened into the type of the answer and then spread
6887        // into a mask that picks between the answer and whatever the questions after it settled
6888        // on. Nothing sign extends, because no rule lowers a sign extension out of one bit.
6889        assert_eq!(text.matches(" = zext.i32 ").count(), 4, "{text}");
6890        assert_eq!(text.matches(" = xor ").count(), 4, "{text}");
6891        assert!(!text.contains("call"), "{text}");
6892
6893        // The value is evaluated once however many questions are asked of it, which is the whole
6894        // reason `fpclassify` is a node rather than the chain of tests it turns into.
6895        let text = body(concat!(
6896            "double g(void);\n",
6897            "int f(void) { return __builtin_fpclassify(0, 1, 2, 3, 4, g()); }\n",
6898        ));
6899        assert_eq!(text.matches("call @g()").count(), 1, "{text}");
6900    }
6901
6902    /// Each of the three answers a constant where its operand is one.
6903    ///
6904    /// glibc's `fpclassify` macro is exactly this builtin, so a program that writes
6905    /// `fpclassify(0.0)` in a static initializer is writing this, and it has to have a value at
6906    /// translation time or the program is refused rather than merely compiled slowly. Every
6907    /// number here is what gcc 16 gives.
6908    #[test]
6909    fn the_last_three_classification_builtins_fold_where_their_operand_is_a_constant() {
6910        let text = ir(concat!(
6911            "int a = __builtin_isnormal(1.0);\n",
6912            "int b = __builtin_isnormal(0.0);\n",
6913            "int c = __builtin_isnormal(1.0 / 0.0);\n",
6914            "int d = __builtin_isinf_sign(-1.0 / 0.0);\n",
6915            "int e = __builtin_isinf_sign(1.0);\n",
6916            "int g = __builtin_fpclassify(0, 1, 2, 3, 4, 0.0);\n",
6917            "int h = __builtin_fpclassify(0, 1, 2, 3, 4, 1.0);\n",
6918            "int i = __builtin_fpclassify(0, 1, 2, 3, 4, 1.0 / 0.0);\n",
6919        ));
6920        assert!(text.contains("global @a : i32 = 1,"), "{text}");
6921        assert!(text.contains("global @b : i32 = 0,"), "{text}");
6922        assert!(text.contains("global @c : i32 = 0,"), "{text}");
6923        assert!(text.contains("global @d : i32 = -1,"), "{text}");
6924        assert!(text.contains("global @e : i32 = 0,"), "{text}");
6925        assert!(text.contains("global @g : i32 = 4,"), "{text}");
6926        assert!(text.contains("global @h : i32 = 2,"), "{text}");
6927        assert!(text.contains("global @i : i32 = 1,"), "{text}");
6928    }
6929
6930    /// `fpclassify` refuses what gcc refuses, in gcc's words.
6931    ///
6932    /// The five answers have to be integer constant expressions, because what the builtin does is
6933    /// pick one of them and a pick between values that are not known here would be a chain of
6934    /// conditionals over expressions the call has already evaluated.
6935    #[test]
6936    fn fpclassify_refuses_an_answer_that_is_not_an_integer_constant() {
6937        let mut opts = options();
6938        opts.emit = EmitKind::Ir;
6939        let source = concat!(
6940            "int a(double x, int n) { return __builtin_fpclassify(0, 1, n, 3, 4, x); }\n",
6941            "int b(double x) { return __builtin_fpclassify(0, 1, 2, 3, x); }\n",
6942            "int c(int x) { return __builtin_fpclassify(0, 1, 2, 3, 4, x); }\n",
6943        );
6944        let messages = run(&opts, source).messages;
6945        assert_eq!(
6946            messages,
6947            [
6948                "/main.c:1:60: error: non-const integer argument 3 in call to function \
6949                 '__builtin_fpclassify' [E0687]",
6950                "/main.c:2:26: error: too few arguments to function '__builtin_fpclassify' \
6951                 [E0511]",
6952                "/main.c:3:23: error: non-floating-point argument in call to function \
6953                 '__builtin_fpclassify' [E0685]",
6954            ]
6955        );
6956    }
6957
6958    /// A builtin whose answer is a constant is one, and is not a call to the library.
6959    ///
6960    /// This is the reason the family is answered in the front end at all. `double x =
6961    /// __builtin_inf();` at file scope initializes an object with static storage duration, so
6962    /// there is no point in the program at which a call could be made, and a compiler that
6963    /// lowered it to one would reject a program gcc accepts. Every number here is the encoding
6964    /// gcc 16 gives on x86-64.
6965    #[test]
6966    fn a_builtin_whose_answer_is_a_constant_is_one_and_not_a_call() {
6967        let text = ir(concat!(
6968            "double a = __builtin_inf();\n",
6969            "float b = __builtin_huge_valf();\n",
6970            "long double c = __builtin_infl();\n",
6971            "double d = __builtin_huge_val();\n",
6972        ));
6973        assert!(text.contains("global @a : f64 = 0x7ff0000000000000,"), "{text}");
6974        assert!(text.contains("global @b : f32 = 0x7f800000,"), "{text}");
6975        assert!(text.contains("f80 0x7fff8000000000000000"), "{text}");
6976        assert!(text.contains("global @d : f64 = 0x7ff0000000000000,"), "{text}");
6977        assert!(!text.contains("call"), "{text}");
6978    }
6979
6980    /// A nan is written with the payload the program asked for.
6981    ///
6982    /// The string is read the way `strtoull` reads a number, which is what the library function
6983    /// of the same name does with it, and a string that is not one at all leaves the call for the
6984    /// library to answer at run time. A quiet nan has the high fraction bit set and a signalling
6985    /// one does not, except that a signalling nan with nothing in it would be an infinity, so it
6986    /// gets the next bit down instead. Every encoding here was measured against gcc 16, the two
6987    /// `long double` ones on a machine with the x87 format.
6988    #[test]
6989    fn a_nan_is_written_with_the_payload_the_program_asked_for() {
6990        let text = ir(concat!(
6991            "double a = __builtin_nan(\"\");\n",
6992            "double b = __builtin_nan(\"0x1\");\n",
6993            // Octal, since there is a leading zero, so this is eight and not ten.
6994            "double c = __builtin_nan(\"010\");\n",
6995            "double d = __builtin_nans(\"\");\n",
6996            "double e = __builtin_nans(\"0x1\");\n",
6997            "float f = __builtin_nanf(\"0x1\");\n",
6998            "float g = __builtin_nansf(\"\");\n",
6999            "long double h = __builtin_nansl(\"\");\n",
7000        ));
7001        assert!(text.contains("global @a : f64 = 0x7ff8000000000000,"), "{text}");
7002        assert!(text.contains("global @b : f64 = 0x7ff8000000000001,"), "{text}");
7003        assert!(text.contains("global @c : f64 = 0x7ff8000000000008,"), "{text}");
7004        assert!(text.contains("global @d : f64 = 0x7ff4000000000000,"), "{text}");
7005        assert!(text.contains("global @e : f64 = 0x7ff0000000000001,"), "{text}");
7006        assert!(text.contains("global @f : f32 = 0x7fc00001,"), "{text}");
7007        assert!(text.contains("global @g : f32 = 0x7fa00000,"), "{text}");
7008        assert!(text.contains("f80 0x7fffa000000000000000"), "{text}");
7009
7010        // A payload that is not a number, and one that is not known until run time, are both
7011        // left to the library, which is the same thing gcc emits for either of them.
7012        let text = ir(concat!(
7013            "double f(const char *p) { return __builtin_nan(p); }\n",
7014            "double g(void) { return __builtin_nans(\"1x\"); }\n",
7015        ));
7016        assert_eq!(text.matches("call @nan(").count(), 1, "{text}");
7017        assert_eq!(text.matches("call @nans(").count(), 1, "{text}");
7018    }
7019
7020    /// The length and the order of a string literal are known here.
7021    ///
7022    /// A program that asks for either of them is asking about something the translation already
7023    /// has in front of it, and folding is not only an optimization: `execute/921007-1.c` in the
7024    /// torture suite calls `__builtin_strcmp` in a file that defines its own `strcmp` with a
7025    /// different signature, so leaving the call behind is a name collision that gcc does not
7026    /// have. The comparison is over `unsigned char`, which is why the second one is negative.
7027    #[test]
7028    fn the_length_and_the_order_of_a_string_literal_are_known_here() {
7029        let text = ir(concat!(
7030            "unsigned long a = __builtin_strlen(\"hello\");\n",
7031            "unsigned long b = __builtin_strlen(\"a\\0bc\");\n",
7032            "int c = __builtin_strcmp(\"X\", \"X\\376\") < 0;\n",
7033            "int d = __builtin_strcmp(\"abc\", \"abc\");\n",
7034            "int e = __builtin_strcmp(\"abc\", \"ab\") > 0;\n",
7035        ));
7036        assert!(text.contains("global @a : i64 = 5,"), "{text}");
7037        assert!(text.contains("global @b : i64 = 1,"), "{text}");
7038        assert!(text.contains("global @c : i32 = 1,"), "{text}");
7039        assert!(text.contains("global @d : i32 = 0,"), "{text}");
7040        assert!(text.contains("global @e : i32 = 1,"), "{text}");
7041        assert!(!text.contains("call"), "{text}");
7042
7043        // An argument that is not a literal is the library's to answer, as it has to be.
7044        let text = ir("unsigned long f(const char *p) { return __builtin_strlen(p); }\n");
7045        assert!(text.contains("call @strlen("), "{text}");
7046    }
7047
7048    /// A sign builtin is a mask over the bits, and is not a call.
7049    ///
7050    /// `fabs` and `copysign` are in the math library rather than the C one, so a program that
7051    /// only ever wrote the prefixed spelling never asked for `-lm` and a call left behind here
7052    /// would not link. Neither needs anything the library has: one clears the sign bit and the
7053    /// other takes it from the second operand, and every other bit goes through untouched.
7054    #[test]
7055    fn a_sign_builtin_is_a_mask_over_the_bits_and_not_a_call() {
7056        let text = body("double f(double x) { return __builtin_fabs(x); }\n");
7057        assert!(text.contains("bitcast.i64 %0"), "{text}");
7058        assert!(text.contains("iconst.i64 9223372036854775807"), "{text}");
7059        assert!(text.contains("and %1, %2"), "{text}");
7060        assert!(text.contains("bitcast.f64 %3"), "{text}");
7061        assert!(!text.contains("call"), "{text}");
7062
7063        let text = body("double f(double x, double y) { return __builtin_copysign(x, y); }\n");
7064        assert!(text.contains("iconst.i64 -9223372036854775808"), "{text}");
7065        assert!(text.contains("%8 = or %4, %7"), "{text}");
7066        assert!(!text.contains("call"), "{text}");
7067
7068        // The x87 format, whose value is eighty bits sitting in an object of sixteen. There is no
7069        // integer that wide, so the mask is on the word at the top of the value, in memory.
7070        let text = body("long double f(long double x) { return __builtin_fabsl(x); }\n");
7071        assert!(text.contains("iconst.i16 32767"), "{text}");
7072        assert!(text.contains("load.f80"), "{text}");
7073        assert!(!text.contains("call"), "{text}");
7074
7075        // The width a name does not spell out is `double`, so a `float` argument widens first and
7076        // the answer is a `double`, which is what gcc's declaration of it says.
7077        let text = body("double f(float x) { return __builtin_fabs(x); }\n");
7078        assert!(text.contains("fpext.f64 %0"), "{text}");
7079        assert!(text.contains("bitcast.i64 %1"), "{text}");
7080    }
7081
7082    /// A shuffle reads each lane of the answer out of a copy of its sources, at the index the mask
7083    /// lane gives with only its low bits kept, and is not a call.
7084    ///
7085    /// The copy is what makes `*v = __builtin_shuffle(*v, m)` right, since the answer is written
7086    /// over the vector it reads, and the mask is what `pr85331.c` checks: gcc keeps as many bits
7087    /// of an index as it takes to name a lane, so `10000000001` picks lane one of two.
7088    #[test]
7089    fn a_shuffle_picks_each_lane_by_the_low_bits_of_the_mask() {
7090        let text = body(concat!(
7091            "typedef int v2 __attribute__((vector_size(8)));\n",
7092            "void f(v2 *v, v2 m) { *v = __builtin_shuffle(*v, m); }\n",
7093        ));
7094        assert!(text.contains("memcpy"), "{text}");
7095        assert_eq!(text.matches("iconst.i32 1\n").count(), 2, "{text}");
7096        assert_eq!(text.matches(" = and ").count(), 2, "{text}");
7097        assert!(!text.contains("call"), "{text}");
7098
7099        // Two sources of four lanes are eight to pick from, so three bits of each index are
7100        // kept, and a mask of bytes is widened to a word before it is masked.
7101        let text = body(concat!(
7102            "typedef char v4 __attribute__((vector_size(4)));\n",
7103            "v4 f(v4 a, v4 b, v4 m) { return __builtin_shuffle(a, b, m); }\n",
7104        ));
7105        assert_eq!(text.matches("iconst.i32 7\n").count(), 4, "{text}");
7106        assert!(text.contains("zext.i32"), "{text}");
7107        assert!(!text.contains("call"), "{text}");
7108    }
7109
7110    /// A shuffle whose operands gcc would refuse is refused, in gcc's words.
7111    #[test]
7112    fn a_shuffle_refuses_what_gcc_refuses() {
7113        let mut opts = options();
7114        opts.emit = EmitKind::Ir;
7115        let source = concat!(
7116            "typedef int v4 __attribute__((vector_size(16)));\n",
7117            "typedef float f4 __attribute__((vector_size(16)));\n",
7118            "typedef short s8 __attribute__((vector_size(16)));\n",
7119            "typedef long long l4 __attribute__((vector_size(32)));\n",
7120            "void a(v4 x, f4 m) { __builtin_shuffle(x, m); }\n",
7121            "void b(int x, v4 m) { __builtin_shuffle(x, m); }\n",
7122            "void c(v4 x, f4 y, v4 m) { __builtin_shuffle(x, y, m); }\n",
7123            "void d(v4 x, s8 m) { __builtin_shuffle(x, m); }\n",
7124            "void e(f4 x, l4 m) { __builtin_shuffle(x, m); }\n",
7125            "void g(v4 x) { __builtin_shuffle(x); }\n",
7126        );
7127        let messages = run(&opts, source).messages;
7128        let wanted = [
7129            "last argument must be an integer vector [E0715]",
7130            "arguments must be vectors [E0715]",
7131            "argument vectors must be of the same type [E0715]",
7132            "number of elements of the argument vector(s) and the mask vector should be the same \
7133             [E0715]",
7134            "argument vector(s) inner type must have the same size as inner type of the mask \
7135             [E0715]",
7136            "too few arguments to function '__builtin_shuffle' [E0511]",
7137        ];
7138        assert_eq!(messages.len(), wanted.len(), "{messages:?}");
7139        for (message, wanted) in messages.iter().zip(wanted) {
7140            assert!(message.ends_with(wanted), "{message}");
7141        }
7142    }
7143
7144    /// The plain math library names are the same mask, which is what makes a program link.
7145    ///
7146    /// `math.h` declares `fabs` and never spells `__builtin_fabs`, so the plain name is the one
7147    /// every program that includes the header reaches. Recognising only the prefixed spelling
7148    /// leaves a call to the math library behind, and the math library is not on the link line
7149    /// unless the program asked for `-lm`. parson is the project that shows it: its makefile has
7150    /// no `-lm`, it does not need one under gcc, and `undefined reference to 'fabs'` is where the
7151    /// build stopped. That is issue 630.
7152    #[test]
7153    fn the_plain_math_names_are_the_same_mask_and_not_a_call() {
7154        let text =
7155            body(concat!("double fabs(double x);\n", "double f(double x) { return fabs(x); }\n",));
7156        assert!(text.contains("iconst.i64 9223372036854775807"), "{text}");
7157        assert!(!text.contains("call"), "{text}");
7158
7159        let text =
7160            body(concat!("float fabsf(float x);\n", "float f(float x) { return fabsf(x); }\n",));
7161        assert!(text.contains("bitcast.i32 %0"), "{text}");
7162        assert!(!text.contains("call"), "{text}");
7163
7164        let text = body(concat!(
7165            "double copysign(double x, double y);\n",
7166            "double f(double x, double y) { return copysign(x, y); }\n",
7167        ));
7168        assert!(text.contains("iconst.i64 -9223372036854775808"), "{text}");
7169        assert!(!text.contains("call"), "{text}");
7170
7171        let text = body(concat!(
7172            "float copysignf(float x, float y);\n",
7173            "float f(float x, float y) { return copysignf(x, y); }\n",
7174        ));
7175        assert!(!text.contains("call"), "{text}");
7176
7177        // The `long double` pair is left alone on purpose. The prefixed spelling of both stops in
7178        // the back end with `no rule lowers a bitcast producing an i80`, so expanding the plain
7179        // name would trade a link error for a worse one. They go in with issue 540.
7180        let text = ir(concat!(
7181            "long double fabsl(long double x);\n",
7182            "long double f(long double x) { return fabsl(x); }\n",
7183        ));
7184        assert!(text.contains("call @fabsl"), "{text}");
7185    }
7186
7187    /// A plain math name the program took is the program's own function.
7188    ///
7189    /// The same four ways as the absolute value family next door, asked again here because these
7190    /// two go through a different path: the plain names of this family are taken after the call
7191    /// has been checked against the declaration, and the declaration is the whole reason the
7192    /// question can be answered at all. Measured against gcc 16.2.0, which calls the program's
7193    /// function in every one of them.
7194    #[test]
7195    fn a_plain_math_name_the_program_took_is_the_programs_own_function() {
7196        let taken = concat!(
7197            "static double fabs(double b) { return 7; }\n",
7198            "double f(double x) { return fabs(x); }\n",
7199        );
7200        assert!(ir(taken).contains("call @fabs"), "a static definition is the program's own");
7201
7202        let retyped = concat!("int fabs(int b);\n", "int f(int x) { return fabs(x); }\n");
7203        assert!(ir(retyped).contains("call @fabs"), "another type is another function");
7204
7205        let plain = concat!("double fabs(double b);\n", "double f(double x) { return fabs(x); }\n");
7206        let mut opts = options();
7207        opts.emit = EmitKind::Ir;
7208        assert!(!run(&opts, plain).text().contains("call @fabs"), "the library's by default");
7209
7210        opts.builtins = false;
7211        assert!(run(&opts, plain).text().contains("call @fabs"), "-fno-builtin");
7212
7213        opts.builtins = true;
7214        opts.no_builtin = vec!["fabs".to_owned()];
7215        assert!(run(&opts, plain).text().contains("call @fabs"), "-fno-builtin-fabs");
7216        let one = concat!(
7217            "double copysign(double a, double b);\n",
7218            "double f(double x) { return copysign(x, 1.0); }\n",
7219        );
7220        assert!(!run(&opts, one).text().contains("call @copysign"), "one name and not the family");
7221
7222        // The prefixed spelling is untouched by any of it, which is what the prefix is for.
7223        opts.no_builtin = Vec::new();
7224        opts.builtins = false;
7225        let prefixed = "double f(double x) { return __builtin_fabs(x); }\n";
7226        assert!(!run(&opts, prefixed).text().contains("call @fabs"), "the prefix is not a library");
7227    }
7228
7229    /// The sign builtins answer a zero and a nan the way the bits say.
7230    ///
7231    /// This is why they are described over the bits rather than written with comparisons and
7232    /// negation. A negative zero compares equal to a positive one and has a sign bit to clear,
7233    /// and a nan compares equal to nothing at all and keeps its payload through both operations.
7234    /// `execute/ieee/copysign1.c` in the torture suite is the test that notices, because it
7235    /// compares its answers with `memcmp`. Every number here is what gcc 16 gives, the two in the
7236    /// x87 format measured on a machine that has it.
7237    #[test]
7238    fn the_sign_builtins_answer_a_zero_and_a_nan_the_way_the_bits_say() {
7239        let text = ir(concat!(
7240            "double a = __builtin_fabs(-3.5);\n",
7241            "double b = __builtin_copysign(1.0, -0.0);\n",
7242            "double c = __builtin_copysign(0.0, -2.0);\n",
7243            // The payload survives both, and only the sign bit moves.
7244            "double d = __builtin_copysign(-__builtin_nan(\"\"), 1.0);\n",
7245            "double e = __builtin_fabs(-__builtin_nan(\"0x1\"));\n",
7246            "float g = __builtin_copysignf(-0.0f, 2.0f);\n",
7247            "long double h = __builtin_copysignl(1.0L, -1.0L);\n",
7248            "long double i = __builtin_fabsl(-__builtin_infl());\n",
7249        ));
7250        assert!(text.contains("global @a : f64 = 0x400c000000000000,"), "{text}");
7251        assert!(text.contains("global @b : f64 = 0xbff0000000000000,"), "{text}");
7252        assert!(text.contains("global @c : f64 = 0x8000000000000000,"), "{text}");
7253        assert!(text.contains("global @d : f64 = 0x7ff8000000000000,"), "{text}");
7254        assert!(text.contains("global @e : f64 = 0x7ff8000000000001,"), "{text}");
7255        assert!(text.contains("global @g : f32 = 0x0,"), "{text}");
7256        assert!(text.contains("f80 0xbfff8000000000000000"), "{text}");
7257        assert!(text.contains("f80 0x7fff8000000000000000"), "{text}");
7258    }
7259
7260    /// The sign of a `long double` is read and written in the word at the top of it.
7261    ///
7262    /// The other formats have their sign tested and set on an integer as wide as the value, and
7263    /// there is no eighty bit integer for the x87 one to go to: no rule lowers it, and
7264    /// `execute/20080502-1.c` and `execute/ieee/copysign1.c` in the torture suite stopped on that.
7265    /// The value goes through memory instead, and the word holding its sign is what is looked at.
7266    #[test]
7267    fn the_sign_of_a_long_double_is_in_the_word_at_the_top_of_it() {
7268        for source in [
7269            "int f(long double x) { return __builtin_signbit(x); }\n",
7270            "long double f(long double x) { return __builtin_fabsl(x); }\n",
7271            "long double f(long double x, long double y) { return __builtin_copysignl(x, y); }\n",
7272            "int f(long double x) { return __builtin_isnormal(x); }\n",
7273        ] {
7274            let text = body(source);
7275            assert!(!text.contains("i80"), "{text}");
7276            assert!(text.contains("i16"), "{text}");
7277        }
7278    }
7279
7280    /// The complex builtins are the halves of the value, and are not a call.
7281    ///
7282    /// `conj`, `creal` and `cimag` are `~`, `__real__` and `__imag__` under the names `complex.h`
7283    /// gives them, so there is nothing for the math library to do that the translation cannot do
7284    /// with the object in front of it. Leaving the call behind would not link either, since all
7285    /// three are in the math library and a program that wrote one never had a reason to ask for
7286    /// `-lm`. Measured against gcc 16.2.0, which emits no call for any of them even at `-O0`.
7287    #[test]
7288    fn the_complex_builtins_are_the_halves_of_the_value_and_not_a_call() {
7289        let text = body("double f(_Complex double z) { return __builtin_creal(z); }\n");
7290        assert!(!text.contains("call"), "{text}");
7291        let text = body("double f(_Complex double z) { return __builtin_cimag(z); }\n");
7292        assert!(!text.contains("call"), "{text}");
7293
7294        // The conjugate is the imaginary half negated and the real half as it stands, so there is
7295        // one negation in it. A complex negation is the one with two.
7296        let text = body("_Complex double f(_Complex double z) { return __builtin_conj(z); }\n");
7297        assert_eq!(text.matches("fneg").count(), 1, "{text}");
7298        assert!(!text.contains("call"), "{text}");
7299        let negated = body("_Complex double f(_Complex double z) { return -z; }\n");
7300        assert_eq!(negated.matches("fneg").count(), 2, "{negated}");
7301
7302        // `~` on a complex operand is the same operator, which is the spelling the language has
7303        // had all along and the one a program that never included the header writes.
7304        let written = body("_Complex double f(_Complex double z) { return ~z; }\n");
7305        assert_eq!(written, text, "the name and the operator are the same thing");
7306
7307        // The plain names, which are the ones the header declares and so the ones programs write.
7308        let text = body(concat!(
7309            "double creal(_Complex double z);\n",
7310            "double f(_Complex double z) { return creal(z); }\n",
7311        ));
7312        assert!(!text.contains("call"), "{text}");
7313        let text = body(concat!(
7314            "_Complex float conjf(_Complex float z);\n",
7315            "_Complex float f(_Complex float z) { return conjf(z); }\n",
7316        ));
7317        assert_eq!(text.matches("fneg").count(), 1, "{text}");
7318        assert!(!text.contains("call"), "{text}");
7319
7320        // A program that took the name means its own function, the same four ways the absolute
7321        // value family next door asks it.
7322        let taken = concat!(
7323            "static double creal(_Complex double z) { return 7; }\n",
7324            "double f(_Complex double z) { return creal(z); }\n",
7325        );
7326        assert!(ir(taken).contains("call @creal"), "a static definition is the program's own");
7327        let retyped = concat!("int cimag(int z);\n", "int f(int z) { return cimag(z); }\n");
7328        assert!(ir(retyped).contains("call @cimag"), "another type is another function");
7329        let plain = concat!(
7330            "double cimag(_Complex double z);\n",
7331            "double f(_Complex double z) { return cimag(z); }\n",
7332        );
7333        let mut opts = options();
7334        opts.emit = EmitKind::Ir;
7335        opts.builtins = false;
7336        assert!(run(&opts, plain).text().contains("call @cimag"), "-fno-builtin");
7337        opts.builtins = true;
7338        opts.no_builtin = vec!["cimag".to_owned()];
7339        assert!(run(&opts, plain).text().contains("call @cimag"), "-fno-builtin-cimag");
7340
7341        // A constant folds, which is what a static initializer written with one needs.
7342        let text = ir(concat!(
7343            "double a = __builtin_creal(1.5 + 2.5i);\n",
7344            "double b = __builtin_cimag(1.5 + 2.5i);\n",
7345            "_Complex double c = __builtin_conj(1.5 + 2.5i);\n",
7346        ));
7347        assert!(text.contains("global @a : f64 = 0x3ff8000000000000,"), "{text}");
7348        assert!(text.contains("global @b : f64 = 0x4004000000000000,"), "{text}");
7349        assert!(
7350            text.contains("{ f64 0x3ff8000000000000, f64 0xc004000000000000 }"),
7351            "the conjugate of a constant is the constant with the second half negated: {text}"
7352        );
7353        assert!(!text.contains("call"), "{text}");
7354    }
7355
7356    /// A math library builtin handed a constant is the answer, and is not a call.
7357    ///
7358    /// This is the reason the family is answered in the front end at all. `double x =
7359    /// __builtin_ceil(1.5);` at file scope initializes an object with static storage duration, so
7360    /// there is no point in the program at which a call could be made, and a compiler that lowered
7361    /// it to one would refuse a program gcc accepts. Every number here is the encoding gcc 16.2.0
7362    /// gives on x86-64, read out of the object file one initializer at a time.
7363    #[test]
7364    fn a_math_library_builtin_of_a_constant_is_the_answer_and_not_a_call() {
7365        let text = ir(concat!(
7366            "double a = __builtin_ceil(1.5);\n",
7367            "double b = __builtin_floor(1.5);\n",
7368            "double c = __builtin_trunc(-1.5);\n",
7369            // A half goes away from zero and not to even, which is where C and the default
7370            // rounding of IEEE 754 part company.
7371            "double d = __builtin_round(2.5);\n",
7372            // The sign survives a number that rounds away to nothing, so this is a negative zero.
7373            "double e = __builtin_ceil(-0.5);\n",
7374            "double f = __builtin_fmax(1.0, 2.0);\n",
7375            "double g = __builtin_fmin(1.0, 2.0);\n",
7376            "float h = __builtin_ceilf(1.25f);\n",
7377            // The plain name is the same answer, which is what a program that included `math.h`
7378            // and never wrote a prefix reaches.
7379            "double ceil(double x);\n",
7380            "double i = ceil(2.25);\n",
7381        ));
7382        assert!(text.contains("global @a : f64 = 0x4000000000000000,"), "{text}");
7383        assert!(text.contains("global @b : f64 = 0x3ff0000000000000,"), "{text}");
7384        assert!(text.contains("global @c : f64 = 0xbff0000000000000,"), "{text}");
7385        assert!(text.contains("global @d : f64 = 0x4008000000000000,"), "{text}");
7386        assert!(text.contains("global @e : f64 = 0x8000000000000000,"), "{text}");
7387        assert!(text.contains("global @f : f64 = 0x4000000000000000,"), "{text}");
7388        assert!(text.contains("global @g : f64 = 0x3ff0000000000000,"), "{text}");
7389        assert!(text.contains("global @h : f32 = 0x40000000,"), "{text}");
7390        assert!(text.contains("global @i : f64 = 0x4008000000000000,"), "{text}");
7391        assert!(!text.contains("call"), "{text}");
7392    }
7393
7394    /// A math library builtin handed anything else is a call to the library function it is.
7395    ///
7396    /// gcc emits `jmp ceil` for `__builtin_ceil` on x86-64 at the default architecture, measured
7397    /// on gcc 16.2.0, and reaches the `roundsd` instruction only under `-msse4.1`. So the call is
7398    /// what a program gets from gcc too, and the name on it is the plain one, which is the whole
7399    /// point of the prefixed spelling: a program writing it reaches the library's function even
7400    /// where a macro or a definition of its own has taken the short name.
7401    #[test]
7402    fn a_math_library_builtin_of_anything_else_is_a_call_to_the_library() {
7403        let text = ir(concat!(
7404            "double f(double x) { return __builtin_ceil(x); }\n",
7405            "float g(float x) { return __builtin_floorf(x); }\n",
7406            "double h(double x, double y) { return __builtin_fmax(x, y); }\n",
7407        ));
7408        assert!(text.contains("call @ceil("), "{text}");
7409        assert!(text.contains("call @floorf("), "{text}");
7410        assert!(text.contains("call @fmax("), "{text}");
7411
7412        // The two the rounding mode decides are calls even when the argument is a constant, since
7413        // what they answer is not known until the program runs. gcc refuses a static initializer
7414        // written with one for that reason, so there is nothing to fold here either.
7415        let text = ir(concat!(
7416            "double f(void) { return __builtin_rint(2.5); }\n",
7417            "double g(void) { return __builtin_nearbyint(2.5); }\n",
7418        ));
7419        assert!(text.contains("call @rint("), "{text}");
7420        assert!(text.contains("call @nearbyint("), "{text}");
7421
7422        // A nan operand is the library's rule rather than the machine's, 7.12.12.2 saying the
7423        // answer is the other operand, and gcc will not fold that one either.
7424        let text = ir("double f(void) { return __builtin_fmin(__builtin_nan(\"\"), 1.0); }\n");
7425        assert!(text.contains("call @fmin("), "{text}");
7426
7427        // `-fno-builtin-ceil` is a program saying it means its own `ceil`, and it leaves the
7428        // prefixed spelling alone, which is what writing the prefix is for.
7429        let plain = concat!("double ceil(double x);\n", "double f(void) { return ceil(2.25); }\n");
7430        let mut opts = options();
7431        opts.emit = EmitKind::Ir;
7432        opts.no_builtin = vec!["ceil".to_owned()];
7433        assert!(run(&opts, plain).text().contains("call @ceil("), "-fno-builtin-ceil");
7434    }
7435
7436    /// A `constexpr` object is a named constant, which is the whole reason the keyword exists.
7437    ///
7438    /// C23 6.6p8 puts two of them on the list an integer constant expression is built from: one
7439    /// of an arithmetic type, and a member of one of a structure or union type. A subscript of
7440    /// one is not on the list and is a variably modified type in gcc 16 as well, and every
7441    /// number here is what gcc 16 gives on x86-64.
7442    #[test]
7443    fn a_constexpr_object_is_a_constant_wherever_one_is_required() {
7444        let text = ir(concat!(
7445            "constexpr int side = 4;\n",
7446            "constexpr int wider = side + 1;\n",
7447            "constexpr double half = 1.5;\n",
7448            "struct point { int x; int y; };\n",
7449            "constexpr struct point origin = { 5, 6 };\n",
7450            "int square[side * side];\n",
7451            "int rectangle[wider];\n",
7452            "int rounded[(int)half * 2];\n",
7453            "int across[origin.y];\n",
7454            "enum named { four = side };\n",
7455            "int e = four;\n",
7456        ));
7457        assert!(text.contains("global @square : bytes 64 ="), "{text}");
7458        assert!(text.contains("global @rectangle : bytes 20 ="), "{text}");
7459        assert!(text.contains("global @rounded : bytes 8 ="), "{text}");
7460        assert!(text.contains("global @across : bytes 24 ="), "{text}");
7461        assert!(text.contains("global @e : i32 = 4,"), "{text}");
7462
7463        // A `const` object is not one of them, which is what makes `int a[n];` a variable
7464        // length array in C and is the distinction the keyword was added to draw.
7465        let mut opts = options();
7466        opts.emit = EmitKind::Ir;
7467        let konst = "const int n = 1;\nint a[n];\n";
7468        let message = "/main.c:2:5: error: variably modified 'a' at file scope [E0538]";
7469        assert_eq!(run(&opts, konst).messages, [message]);
7470
7471        // Nor is a subscript of one, which gcc 16 refuses in the same words.
7472        let subscript = "constexpr int t[3] = { 1, 2, 3 };\nint a[t[1]];\n";
7473        assert_eq!(run(&opts, subscript).messages, [message]);
7474
7475        // And `constexpr` implies `const`, so the address of one is an address of a `const`.
7476        let address = "constexpr int c = 3;\nint *p = &c;\n";
7477        let warning = "/main.c:2:6: warning: initialization discards 'const' qualifier from \
7478             pointer target type [E0514]";
7479        assert_eq!(run(&opts, address).messages, [warning]);
7480    }
7481
7482    /// A member whose size was refused is not a flexible array member, whatever it looks like.
7483    ///
7484    /// The refusal leaves the member with no size, which is also how `int a[]` is written, so
7485    /// without the count that tells the two apart the rules about where a flexible array member
7486    /// may sit read the wreckage of the first error as a second mistake. gcc 16.2.0 says one
7487    /// thing about each of these and so does this, which is what the program can act on: adding
7488    /// a named member to `struct D` makes the message about `k` no clearer, and moving `a` to
7489    /// the end of `struct E` does not either.
7490    #[test]
7491    fn a_member_whose_size_was_refused_is_not_a_flexible_array_member() {
7492        let mut opts = options();
7493        opts.emit = EmitKind::Ir;
7494
7495        let alone = "int k;\nextern struct D { int a[k]; } ed;\n";
7496        let message = "/main.c:2:23: error: variably modified 'a' at file scope [E0538]";
7497        assert_eq!(run(&opts, alone).messages, [message]);
7498
7499        // And not one in the wrong place either, which is the other half of the same rule.
7500        let first = "int k;\nextern struct E { int a[k]; int b; } ee;\n";
7501        assert_eq!(run(&opts, first).messages, [message]);
7502
7503        // A size that is refused for a reason of its own, to show the count is about the
7504        // refusal rather than about the one message that happens to have been found first.
7505        let negative = "struct F { int a[-1]; };\n";
7506        let refused = "/main.c:1:18: error: size of array 'a' is negative [E0536]";
7507        assert_eq!(run(&opts, negative).messages, [refused]);
7508
7509        // The member that was written with no size at all is still a flexible array member, and
7510        // a structure with nothing else in it still has no named member to hang one off.
7511        let flexible = "struct G { int a[]; };\n";
7512        let named = "/main.c:1:16: error: flexible array member in a struct with no named \
7513             members [E0554]";
7514        assert_eq!(run(&opts, flexible).messages, [named]);
7515    }
7516
7517    /// A pointer to an array, where the qualifiers are on the element and the comparison is not.
7518    ///
7519    /// 6.7.3p10 says the qualifiers in an array declaration belong to the element, so `const int
7520    /// [4]` is an unqualified array of `const int` and not a qualified array of `int`. Compatibility
7521    /// then reads the element types, finds one `const` and one not, and calls the two arrays
7522    /// incompatible, which makes `const int (*)[4] = p` an incompatible pointer rather than a
7523    /// pointer that gained a qualifier. That is what the wording said before C23 and it is not what
7524    /// any compiler does: gcc and clang take it, C23 wrote the rule the way they read it, and the
7525    /// two directions are told apart the way they are everywhere else, which is that adding a
7526    /// qualifier is silent and dropping one is worth a word.
7527    ///
7528    /// Found in libwebp, where `src/enc/vp8l_enc.c` takes the address of a `HistogramBuckets` out of
7529    /// a structure into a `const HistogramBuckets *const`, and a whole file of a real library did
7530    /// not compile for it.
7531    #[test]
7532    fn a_pointer_to_an_array_gains_a_qualifier_the_same_way_a_pointer_to_anything_else_does() {
7533        let mut opts = options();
7534        opts.emit = EmitKind::Ir;
7535        let prefix = "typedef unsigned int B[4];\nstruct H { B category[2]; };\n";
7536
7537        // Adding it, which is the direction the library writes and the one nothing is owed for.
7538        let adding = format!("{prefix}const B *f(struct H *h) {{ return &h->category[0]; }}\n");
7539        assert_eq!(run(&opts, &adding).messages, [] as [String; 0]);
7540
7541        // And the same thing written out rather than through the typedef, since the typedef is a
7542        // spelling and the rule is about the array.
7543        let plain = concat!(
7544            "const unsigned int (*f(unsigned int (*p)[4]))[4] { return p; }\n",
7545            "const unsigned int (*g(unsigned int (*p)[2][3]))[2][3] { return p; }\n",
7546        );
7547        assert_eq!(run(&opts, plain).messages, [] as [String; 0]);
7548
7549        // Dropping it, which is the direction that is worth a word, and the word is the one every
7550        // other pointer target gets rather than a complaint about the types not matching.
7551        let dropping = format!("{prefix}B *f(const B *p) {{ return p; }}\n");
7552        let warning = "/main.c:3:27: warning: return discards 'const' qualifier from pointer target type \
7553             [E0514]";
7554        assert_eq!(run(&opts, &dropping).messages, [warning]);
7555
7556        // A pointer to an array of something else is still an incompatible pointer, because
7557        // nothing here is about the element being a different type.
7558        let wrong = "const unsigned int (*f(unsigned short (*p)[4]))[4] { return p; }\n";
7559        let error = "/main.c:1:61: error: returning 'unsigned short (*)[4]' from a function with \
7560             incompatible return type 'const unsigned int (*)[4]' [E0512]";
7561        assert_eq!(run(&opts, wrong).messages, [error]);
7562    }
7563
7564    /// A definition that names its parameters and then declares them under the list.
7565    ///
7566    /// The declarations say what the types are, 6.9.1p6, and what the function takes is those
7567    /// types with the default argument promotions over them, which is what a caller of an
7568    /// unprototyped function hands over. A prototype already in scope overrules the promoted
7569    /// types, since a header saying `int narrow(char);` over a definition written this way is
7570    /// the pairing all the code written this way relies on and 6.7.6.3p15 is read that way by
7571    /// every compiler.
7572    #[test]
7573    fn an_old_style_definition_takes_its_types_from_the_declarations_under_its_list() {
7574        // C17, since the default dialect is the one that warns about the form and this is
7575        // about what it means rather than about the warning.
7576        let mut opts = options();
7577        opts.std = Std::C17;
7578        let source = concat!(
7579            "int add(a, b)\n",
7580            "int a;\n",
7581            "int b;\n",
7582            "{ return a + b; }\n",
7583            "int promoted(c)\n",
7584            "char c;\n",
7585            "{ return c; }\n",
7586            "int narrow(char);\n",
7587            "int narrow(c)\n",
7588            "char c;\n",
7589            "{ return c; }\n",
7590            "int first(a)\n",
7591            "int a[4];\n",
7592            "{ return a[0]; }\n",
7593        );
7594        let result = run(&opts, source);
7595        assert_eq!(result.messages, Vec::<String>::new(), "expected this to compile:\n{source}");
7596        let text = result.text();
7597        assert!(text.contains("add : int(int, int) function external defined"), "{text}");
7598        assert!(text.contains("promoted : int(int) function external defined"), "{text}");
7599        // The body still sees the `char` it was declared as, whatever the caller hands over.
7600        assert!(text.contains("c : char object automatic defined"), "{text}");
7601        assert!(text.contains("narrow : int(char) function external defined"), "{text}");
7602        // An array parameter is a pointer here as much as it is in a prototype.
7603        assert!(text.contains("first : int(int *) function external defined"), "{text}");
7604    }
7605
7606    /// What the two halves of an old-style parameter list can disagree about.
7607    ///
7608    /// Each of these is a sentence gcc 16 has, and every message below is the one it prints,
7609    /// read off it on x86-64 rather than reasoned about. The last two are the dialect: a name
7610    /// with no declaration is an `int` in C89 and a diagnostic from C99 on, and the whole form
7611    /// left the language in C23, where gcc still takes it and warns.
7612    #[test]
7613    fn the_two_halves_of_an_old_style_parameter_list_have_to_agree() {
7614        let mut opts = options();
7615        opts.std = Std::C17;
7616        for (source, message) in [
7617            ("int f(a, a)\nint a;\n{ return a; }\n", "1:10: error: multiple parameters named 'a'"),
7618            (
7619                "int f(a)\nint a;\nint b;\n{ return a; }\n",
7620                "3:5: error: declaration for parameter 'b' but no such parameter",
7621            ),
7622            ("int f(a)\nint a;\nint a;\n{ return a; }\n", "3:5: error: redefinition of parameter"),
7623            ("int f(a)\nint a = 1;\n{ return a; }\n", "2:5: error: parameter 'a' is initialized"),
7624            (
7625                "int f(a)\nstatic int a;\n{ return a; }\n",
7626                "2:12: error: storage class specified for parameter 'a'",
7627            ),
7628            (
7629                "int f(char);\nint f(a)\nshort a;\n{ return a; }\n",
7630                "2:7: error: argument 'a' doesn't match prototype",
7631            ),
7632        ] {
7633            let result = run(&opts, source);
7634            assert!(result.failed(), "expected this to fail:\n{source}");
7635            assert!(result.messages[0].contains(message), "{:?}", result.messages);
7636        }
7637
7638        // A name the declarations never mention. C89 gave it an `int` and gcc still takes it
7639        // in that dialect, and every dialect after it made the same line a diagnostic.
7640        let implicit = "int f(a, b)\nint a;\n{ return a + b; }\n";
7641        let mut older = options();
7642        older.std = Std::C89;
7643        assert!(!run(&older, implicit).failed(), "{:?}", run(&older, implicit).messages);
7644        let result = run(&opts, implicit);
7645        assert!(
7646            result.messages[0].contains("1:10: error: type of 'b' defaults to 'int'"),
7647            "{:?}",
7648            result.messages
7649        );
7650
7651        // C23 took the form out of the language and gcc kept accepting it with a warning, and
7652        // a warning is what this is, because the code written this way is not going to be
7653        // rewritten and refusing it would put the compiler out of reach of it.
7654        let mut newer = options();
7655        newer.std = Std::C23;
7656        let plain = "int f(a)\nint a;\n{ return a; }\n";
7657        let result = run(&newer, plain);
7658        assert!(!result.failed(), "{:?}", result.messages);
7659        assert_eq!(
7660            result.messages,
7661            ["/main.c:1:5: warning: old-style function definition [E0412]"]
7662        );
7663        assert!(run(&opts, plain).messages.is_empty(), "and nothing to say in the dialects before");
7664    }
7665
7666    /// The two obsolete designators, which are silent until `-pedantic` asks about them.
7667    ///
7668    /// `[3] 7` is what GCC had for an array before C99 settled on `[3] = 7`, and `x: 7` is the
7669    /// same era's spelling for a member. Both are still in code written against a compiler of
7670    /// that era, and gcc 16 takes both without a word unless it is asked to be pedantic, which
7671    /// is where the columns below come from as well.
7672    #[test]
7673    fn the_obsolete_designators_are_taken_and_are_pedantic_warnings() {
7674        let array = "int a[8] = { [3] 7 };\n";
7675        let member = "struct s { int x; } v = { x: 7 };\n";
7676        for source in [array, member] {
7677            let result = run(&options(), source);
7678            assert!(!result.failed(), "{:?}", result.messages);
7679            assert!(result.messages.is_empty(), "nothing to say: {:?}", result.messages);
7680        }
7681
7682        let mut asked = options();
7683        asked.pedantic = true;
7684        assert_eq!(
7685            run(&asked, array).messages,
7686            ["/main.c:1:18: warning: obsolete designator, write `[i] =` instead [E0415]"]
7687        );
7688        assert_eq!(
7689            run(&asked, member).messages,
7690            ["/main.c:1:27: warning: obsolete designator, write `.field =` instead [E0413]"]
7691        );
7692    }
7693
7694    /// A type nothing is ever an object of is a type `sizeof` still has to answer about, which
7695    /// is what `991014-1.c` in the gcc.c-torture execution suite asks.
7696    ///
7697    /// The limit is `PTRDIFF_MAX` and it is the same one for an array and for a record, so a
7698    /// record of every byte an object may have is laid out and one byte more is refused. All
7699    /// four numbers are what gcc 16 gives on x86-64.
7700    #[test]
7701    fn a_type_is_refused_when_it_passes_the_largest_object_and_not_before() {
7702        let text = ir(concat!(
7703            "struct huge_struct { short buf[(1L << 62) - 256]; int a, b, c, d; };\n",
7704            "struct brim { char buf[9223372036854775807L]; };\n",
7705            "struct bitty { char buf[9223372036854775800L]; int x : 1; };\n",
7706            "unsigned long h = sizeof(struct huge_struct);\n",
7707            "unsigned long b = sizeof(struct brim);\n",
7708            "unsigned long y = sizeof(struct bitty);\n",
7709        ));
7710        assert!(text.contains("global @h : i64 = 9223372036854775312,"), "{text}");
7711        assert!(text.contains("global @b : i64 = 9223372036854775807,"), "{text}");
7712        assert!(text.contains("global @y : i64 = 9223372036854775804,"), "{text}");
7713
7714        let mut opts = options();
7715        opts.emit = EmitKind::Ir;
7716        let over = "struct over { char buf[9223372036854775800L]; char x[8]; };\n";
7717        let message = "/main.c:1:1: error: type 'struct over' is too large [E0560]";
7718        assert_eq!(run(&opts, over).messages, [message]);
7719        let array = "struct wide { short buf[1L << 62]; };\n";
7720        let message = "/main.c:1:25: error: size of array 'buf' exceeds \
7721             maximum object size '9223372036854775807' [E0537]";
7722        assert_eq!(run(&opts, array).messages[0], message);
7723    }
7724
7725    /// A byte in the source that is not part of a character, which only a literal may hold.
7726    ///
7727    /// The source cannot be a `&str` here, which is the whole point: a file is bytes and only
7728    /// mostly text.
7729    fn compile_bytes(source: &[u8]) -> Compiled {
7730        let mut opts = options();
7731        opts.emit = EmitKind::Ir;
7732        let mut fs = MemoryFileSystem::new();
7733        fs.insert("/main.c", source.to_vec());
7734        compile(&opts, "/main.c", &fs)
7735    }
7736
7737    /// A raw byte inside a string literal is that byte, which gcc has always taken and which is
7738    /// the only place in a source file where a byte does not have to be part of a character.
7739    /// Replacing it would give the object three bytes rather than one, since the replacement
7740    /// character is three bytes of UTF-8, so the object would not be the one that was written
7741    /// even where the diagnostic is ignored. Anywhere else the byte is still a mistake, which
7742    /// is where gcc draws the same line.
7743    #[test]
7744    fn a_byte_that_is_not_a_character_is_kept_in_a_literal_and_refused_outside_one() {
7745        let mut source = b"char s[] = \"a".to_vec();
7746        source.push(0xff);
7747        source.extend_from_slice(b"b\";\nchar c = '");
7748        source.push(0xff);
7749        source.extend_from_slice(b"';\n");
7750        let result = compile_bytes(&source);
7751        assert_eq!(result.messages, Vec::<String>::new(), "a raw byte in a literal is that byte");
7752        assert!(result.text().contains(r#"bytes "a\ffb\00""#), "{}", result.text());
7753        // Plain `char` is signed on this target, so the constant is minus one rather than 255.
7754        assert!(result.text().contains("global @c : i8 = -1,"), "{}", result.text());
7755
7756        let mut stray = b"int a".to_vec();
7757        stray.push(0xff);
7758        stray.extend_from_slice(b" = 1;\n");
7759        let result = compile_bytes(&stray);
7760        assert!(
7761            result.messages.iter().any(|m| m.contains("source is not valid UTF-8 here")),
7762            "{:?}",
7763            result.messages
7764        );
7765    }
7766
7767    #[test]
7768    fn an_object_becomes_a_global_with_an_image_and_a_function_becomes_a_func() {
7769        let text = ir("int x = 7;\nint add(int a, int b) { return a + b; }\n");
7770        assert!(text.contains("global @x : i32 = 7, align 4, linkage(external)\n"), "{text}");
7771        let expected = "\
7772func @add(i32, i32) -> i32, linkage(external) {
7773block0(%0: i32, %1: i32):
7774    %2 = add.nsw %0, %1
7775    return %2
7776}
7777";
7778        assert!(text.contains(expected), "{text}");
7779    }
7780
7781    #[test]
7782    fn a_local_nothing_takes_the_address_of_is_a_value_and_never_a_stack_slot() {
7783        let text = body("int f(int n) { int a = n + 1; int b = a * 2; return a + b; }\n");
7784        assert!(!text.contains("alloca"), "{text}");
7785        assert!(!text.contains("load"), "{text}");
7786        assert!(!text.contains("store"), "{text}");
7787    }
7788
7789    #[test]
7790    fn a_local_whose_address_is_taken_gets_a_slot_in_the_entry_block() {
7791        let text = body("int g(int *);\nint f(void) { int a = 1; return g(&a); }\n");
7792        let expected = "\
7793block0:
7794    %0 = alloca, size 4, align 4
7795    %1 = iconst.i32 1
7796    store %1 -> %0, align 4, tbaa !1
7797    %2 = call @g(%0) : (ptr) -> i32
7798    return %2
7799";
7800        assert_eq!(text, expected);
7801    }
7802
7803    #[test]
7804    fn a_loop_carries_what_it_changes_as_block_parameters() {
7805        // The whole point of building SSA during the walk rather than after it: `i` and
7806        // `total` are values that arrive on an edge, and neither has ever been in memory.
7807        let text = body(
7808            "int f(int n) {\n  int total = 0;\n  for (int i = 0; i < n; i++) total += i;\n  \
7809             return total;\n}\n",
7810        );
7811        assert!(!text.contains("alloca"), "{text}");
7812        assert!(text.contains("block1(%3: i32, %4: i32):"), "{text}");
7813        assert!(text.contains("jump block1("), "{text}");
7814    }
7815
7816    #[test]
7817    fn a_comparison_used_as_a_condition_is_not_widened_and_narrowed_again() {
7818        let text = body("int f(int a, int b) { if (a < b) return 1; return 0; }\n");
7819        assert!(text.contains("icmp slt %0, %1"), "{text}");
7820        assert!(!text.contains("zext"), "{text}");
7821    }
7822
7823    #[test]
7824    fn the_right_side_of_a_short_circuit_is_in_a_block_of_its_own() {
7825        let text = body("int f(int a, int b) { return a && b; }\n");
7826        let expected = "\
7827block0(%0: i32, %1: i32):
7828    %2 = iconst.i32 0
7829    %3 = icmp ne %0, %2
7830    %4 = iconst.i1 0
7831    br_if %3, block1, block2(%4)
7832
7833block1:
7834    %5 = iconst.i32 0
7835    %6 = icmp ne %1, %5
7836    jump block2(%6)
7837
7838block2(%7: i1):
7839    %8 = zext.i32 %7
7840    return %8
7841";
7842        assert_eq!(text, expected);
7843    }
7844
7845    #[test]
7846    fn code_after_a_return_is_not_built_and_does_not_leave_an_empty_block_behind() {
7847        let text = body("int f(int a) { if (a) return 1; else return 2; return 3; }\n");
7848        // Three blocks, the test and the two arms. The join the `return 3` would need is
7849        // never created, because a block nothing branches to is not a block.
7850        assert!(!text.contains("block3"), "{text}");
7851        assert!(!text.contains("iconst.i32 3"), "{text}");
7852    }
7853
7854    #[test]
7855    fn falling_off_the_end_returns_zero_from_main_and_nothing_from_a_void_function() {
7856        assert!(body("int main(void) { }\n").contains("iconst.i32 0\n    return"));
7857        assert_eq!(body("void f(void) { }\n"), "block0:\n    return\n");
7858        assert!(body("int f(void) { }\n").contains("unreachable"));
7859    }
7860
7861    #[test]
7862    fn a_structure_is_copied_rather_than_held_in_a_value() {
7863        let text = body(
7864            "struct point { int x, y; };\n\
7865             int f(void) { struct point p = { 1, 2 }; struct point q = p; return q.x; }\n",
7866        );
7867        assert!(text.contains("memcpy"), "{text}");
7868    }
7869
7870    #[test]
7871    fn an_initializer_that_leaves_part_of_an_object_unwritten_zeroes_it_first() {
7872        let text = body("int f(void) { int a[4] = { 1 }; return a[3]; }\n");
7873        assert!(text.contains("memset"), "{text}");
7874    }
7875
7876    #[test]
7877    fn a_switch_is_one_branch_and_a_case_that_falls_through_carries_what_it_wrote() {
7878        let text = body(
7879            "int f(int x) { int r = 0; switch (x) { case 1: r = 1; case 2: r += 2; break; \
7880             default: r = 4; } return r; }\n",
7881        );
7882        let expected = "\
7883block0(%0: i32):
7884    %1 = iconst.i32 0
7885    switch %0, block1, [1 => block2, 2 => block3(%1)]
7886
7887block1:
7888    %2 = iconst.i32 4
7889    jump block4(%2)
7890
7891block2:
7892    %3 = iconst.i32 1
7893    jump block3(%3)
7894
7895block3(%4: i32):
7896    %5 = iconst.i32 2
7897    %6 = add.nsw %4, %5
7898    jump block4(%6)
7899
7900block4(%7: i32):
7901    return %7
7902";
7903        assert_eq!(text, expected);
7904    }
7905
7906    #[test]
7907    fn a_case_range_is_tested_for_rather_than_put_in_the_table() {
7908        // GNU's `case 1 ... 9`. Nine table entries would be nine here and four billion for the
7909        // range a program is allowed to write, so it is a subtraction and one unsigned compare.
7910        let text = body("int f(int x) { switch (x) { case 1 ... 9: return 1; } return 0; }\n");
7911        assert!(text.contains("%2 = sub %0, %1"), "{text}");
7912        assert!(text.contains("icmp ule"), "{text}");
7913        assert!(!text.contains("switch"), "{text}");
7914    }
7915
7916    #[test]
7917    fn break_leaves_the_switch_and_continue_leaves_the_loop_around_it() {
7918        let text = body(
7919            "int f(int n) { int t = 0; for (int i = 0; i < n; i++) { switch (i) { \
7920             case 0: continue; case 1: break; default: t += i; } t++; } return t; }\n",
7921        );
7922        // The `continue` goes to the step and the `break` goes to the `t++` after the switch,
7923        // which is also where the default falls out to.
7924        assert!(text.contains("switch %3, block4, [0 => block5, 1 => block6]"), "{text}");
7925        assert!(text.contains("block5:\n    jump block7("), "{text}");
7926        assert!(text.contains("block6:\n    jump block8("), "{text}");
7927    }
7928
7929    #[test]
7930    fn a_switch_with_nothing_to_branch_on_still_runs_what_comes_after_it() {
7931        assert_eq!(body("void f(int x) { switch (x) { } }\n"), "block0(%0: i32):\n    return\n");
7932    }
7933
7934    #[test]
7935    fn a_label_a_loop_is_only_entered_through_builds_the_loop_around_it() {
7936        // A branch into the middle of a loop that nothing else reaches, the Duff's device shape.
7937        // The `while` is not reached in order, so the walk starts a block nothing branches to and
7938        // builds it from there. What comes out is the loop with an edge straight into its body,
7939        // and the header that nothing arrives at is pruned.
7940        let text = body(
7941            "int f(int x, int n) { switch (x) { case 1: break; while (n) { case 2: n--; } } \
7942             return n; }\n",
7943        );
7944        // `case 2` lands on the body, `case 1` and the default land on the return, and the test
7945        // at the bottom of the loop comes back round to the body.
7946        assert!(text.contains("switch %0, block1(%1), [1 => block2, 2 => block3(%1)]"), "{text}");
7947        assert!(text.contains("block3(%3: i32):\n    %4 = iconst.i32 1"), "{text}");
7948        assert!(text.contains("block4:\n    jump block3("), "{text}");
7949    }
7950
7951    #[test]
7952    fn a_goto_into_a_loop_body_enters_it_without_the_test() {
7953        // The same thing through a `goto`. The first pass through the body runs whatever the
7954        // label is on, and only then does the loop reach its own test.
7955        let text = body("int f(int x, int n) { goto in; while (n) { in: n--; } return n; }\n");
7956        assert!(text.starts_with("block0(%0: i32, %1: i32):\n    jump block1(%1)"), "{text}");
7957        assert!(text.contains("block1(%2: i32):\n    %3 = iconst.i32 1"), "{text}");
7958        assert!(text.contains("br_if %6, block2, block3"), "{text}");
7959    }
7960
7961    #[test]
7962    fn a_goto_is_a_jump_to_the_block_the_label_starts() {
7963        let text = body("int f(int x) { int r = 0; if (x) goto out; r = 1; out: return r; }\n");
7964        // Both edges into `out` carry what `r` holds on the way, and neither is a stack slot. The
7965        // block the `goto` jumps out of is empty and hands its edge on, which is what moves `out`
7966        // up the block list to second place.
7967        assert!(!text.contains("alloca"), "{text}");
7968        assert!(text.contains("block2(%4: i32):\n    return %4"), "{text}");
7969        assert_eq!(text.matches("jump block2(").count(), 2, "{text}");
7970    }
7971
7972    #[test]
7973    fn a_backward_goto_is_a_loop_and_carries_what_it_changes() {
7974        let text =
7975            body("int f(int n) { int i = 0; again: if (i < n) { i++; goto again; } return i; }\n");
7976        assert!(!text.contains("alloca"), "{text}");
7977        assert!(text.contains("block1(%2: i32):"), "{text}");
7978        assert!(text.contains("jump block1(%5)"), "{text}");
7979    }
7980
7981    #[test]
7982    fn a_label_nothing_reaches_is_taken_out_rather_than_left_for_the_verifier() {
7983        // A block nothing branches to is not a legal function, and which labels are dead is not
7984        // known until the last statement has been walked, since the `goto` is allowed to be it.
7985        assert_eq!(
7986            body("int f(int x) { return x; spare: return 0; }\n"),
7987            "block0(%0: i32):\n    return %0\n"
7988        );
7989    }
7990
7991    #[test]
7992    fn a_bit_field_is_read_by_loading_the_bytes_it_lies_in_and_shifting() {
7993        let text = body(
7994            "struct s { unsigned a : 3; signed b : 5; };\nint f(struct s *p) { return p->b; }\n",
7995        );
7996        // One byte holds both fields, and the signed one needs no mask: shifting it down
7997        // arithmetically is what says its top bit is a sign.
7998        assert_eq!(
7999            text,
8000            "\
8001block0(%0: ptr):
8002    %1 = load.i8 %0, align 1
8003    %2 = iconst.i8 3
8004    %3 = ashr %1, %2
8005    %4 = sext.i32 %3
8006    return %4
8007"
8008        );
8009    }
8010
8011    #[test]
8012    fn a_store_to_a_bit_field_does_not_write_a_byte_it_has_no_bit_in() {
8013        // C11 says an ordinary member beside a bit-field is a memory location of its own, so
8014        // the four byte store this would take is a data race in a program that has none. The
8015        // three bytes of `a` go in as two and one, and `c` is not touched.
8016        let text =
8017            body("struct s { int a : 24; char c; };\nvoid f(struct s *p, int v) { p->a = v; }\n");
8018        assert_eq!(
8019            text,
8020            "\
8021block0(%0: ptr, %1: i32):
8022    %2 = iconst.i32 16777215
8023    %3 = and %1, %2
8024    %4 = trunc.i16 %3
8025    store %4 -> %0, align 2
8026    %5 = iconst.i32 16
8027    %6 = lshr %3, %5
8028    %7 = trunc.i8 %6
8029    %8 = iconst.i64 2
8030    %9 = ptr_add %0, %8
8031    store %7 -> %9, align 1
8032    return
8033"
8034        );
8035    }
8036
8037    #[test]
8038    fn what_an_assignment_to_a_bit_field_is_worth_is_what_fits_in_it() {
8039        let text =
8040            body("struct s { unsigned b : 5; };\nunsigned f(struct s *p) { return p->b = 33; }\n");
8041        // 33 does not fit in five bits, and 1 is both what goes in the field and what the
8042        // assignment is worth.
8043        assert!(text.contains("%3 = iconst.i8 31\n    %4 = and %2, %3"), "{text}");
8044        assert!(text.ends_with("%9 = zext.i32 %4\n    return %9\n"), "{text}");
8045    }
8046
8047    #[test]
8048    fn an_assignment_a_statement_throws_away_builds_none_of_what_it_is_worth() {
8049        // The value of an assignment to a bit-field takes a shift to build, and a statement
8050        // has no use for it. Nothing here reads back what was stored.
8051        let text = body("struct s { signed b : 5; };\nvoid f(struct s *p) { p->b = 3; }\n");
8052        assert_eq!(text.matches("ashr").count(), 0, "{text}");
8053        assert!(text.ends_with("store %8 -> %0, align 1\n    return\n"), "{text}");
8054    }
8055
8056    #[test]
8057    fn a_bit_field_in_an_initializer_goes_in_over_bytes_that_were_zeroed_first() {
8058        // A bit-field writes part of a byte and leaves the rest of it alone, so the object has
8059        // to be zero before it goes in or what the initializer did not name is whatever the
8060        // stack held.
8061        let text = body(
8062            "struct s { int a : 3; int b; };\nint f(void) { struct s v = { 1 }; return v.b; }\n",
8063        );
8064        assert!(text.contains("memset %0, %1, size 8, align 4"), "{text}");
8065    }
8066
8067    #[test]
8068    fn the_image_of_a_static_bit_field_is_the_bytes_the_fields_share() {
8069        // Two fields in one byte are not two entries in the image, because an image is written
8070        // in bytes: they are the byte they are both in.
8071        let text = ir("struct s { unsigned a : 3; unsigned b : 5; } g = { 1, 2 };\n");
8072        assert!(
8073            text.contains("global @g : bytes 4 = { bytes \"\\11\", zero 3 }, align 4"),
8074            "{text}"
8075        );
8076    }
8077
8078    #[test]
8079    fn an_initialized_flexible_array_member_makes_the_object_larger_than_its_type() {
8080        // `sizeof` answers without the array and the definition has to hold what was written, so
8081        // the object is the size of its image. gcc 16 gives these four, three and two bytes and
8082        // so does this. The image used to be written at the size the type had, which left the
8083        // verifier looking at twenty bytes going into four.
8084        let text = ir(concat!(
8085            "struct a { int i; int j[]; } x = { 1, { 2, 0, 2, 3 } };\n",
8086            "struct b { char c; char p[]; } y = { 'o', \"wx\" };\n",
8087            "struct c { char c; char p[]; } z = { '9', { 'e', 'b' } };\n",
8088            "char s[2] = \"hi\";\n",
8089        ));
8090        assert!(
8091            text.contains("global @x : bytes 20 = { i32 1, i32 2, i32 0, i32 2, i32 3 }"),
8092            "{text}"
8093        );
8094        assert!(text.contains("global @y : bytes 4 = { i8 111, bytes \"wx\\00\" }"), "{text}");
8095        assert!(text.contains("global @z : bytes 3 = { i8 57, i8 101, i8 98 }"), "{text}");
8096        // The array with a length of its own still cuts the literal down to it, which is the
8097        // one case in C where a string initializer drops its terminator.
8098        assert!(text.contains("global @s : bytes 2 = { bytes \"hi\" }"), "{text}");
8099    }
8100
8101    #[test]
8102    fn a_definition_takes_a_parameter_it_left_unnamed() {
8103        // The entry block's parameters are the definition's, and one the front end dropped for
8104        // having no name left the two lists different lengths, which the walk read as an
8105        // old-style definition and refused. gcc has taken these for far longer than C23 has.
8106        let text = ir("int f(int a, int) { return a; }\n");
8107        assert!(text.contains("func @f(i32, i32) -> i32"), "{text}");
8108        assert!(text.contains("block0(%0: i32, %1: i32):"), "{text}");
8109
8110        // The unnamed one first, so that the named one is the second parameter of the entry
8111        // block and not the first: the list says the order and not only how many there are.
8112        let text = ir("int g(int, int n) { return n; }\n");
8113        assert!(text.contains("block0(%0: i32, %1: i32):\n    return %1\n"), "{text}");
8114    }
8115
8116    #[test]
8117    fn an_assignment_of_a_structure_is_the_object_it_wrote() {
8118        // `d = e = c` used to be refused, because the middle assignment is a value of structure
8119        // type and the walk had nowhere to read one from. What an assignment is worth is the
8120        // value it stored, so the object it stored into is the answer and the chain is three
8121        // copies out of the one source with no temporary in it.
8122        let text = body(concat!(
8123            "struct s { int f; int g; };\n",
8124            "void h(struct s *a, struct s *c, struct s *d, struct s *e)\n",
8125            "{ *d = *e = a[0] = *c; }\n",
8126        ));
8127        assert_eq!(text.matches("memcpy").count(), 3, "{text}");
8128        assert!(text.contains("memcpy %8, %1, size 8, align 4\n"), "{text}");
8129        assert!(text.contains("memcpy %3, %8, size 8, align 4\n"), "{text}");
8130        assert!(text.contains("memcpy %2, %3, size 8, align 4\n"), "{text}");
8131    }
8132
8133    #[test]
8134    fn a_string_literal_stops_at_the_end_of_the_array_it_is_filling() {
8135        // The excess used to be laid into the object anyway, so the row after was written over
8136        // and the image refused the entry that came to it. C 6.7.10p14 says the terminator goes
8137        // in only if there is room for it, and gcc discards the rest of a literal that is longer
8138        // still, which is what the first of these is and why it warns.
8139        let mut opts = options();
8140        opts.emit = EmitKind::Ir;
8141        let result = run(
8142            &opts,
8143            concat!(
8144                "const char a[2][3] = { \"1234\", \"xyz\" };\n",
8145                "static const char b[3][5] = { \"12345\", \"678\", \"9\" };\n",
8146                "union u { struct { char x[4]; char y[4]; }; struct { char z[8]; }; };\n",
8147                "const union u c = { { \"1234\", \"567\" } };\n",
8148            ),
8149        );
8150        let text = result.text();
8151        assert_eq!(
8152            result.messages,
8153            ["/main.c:1:24: warning: initializer-string for array of 'const char' is too long \
8154              (5 chars into 3 available) [E0637]"]
8155        );
8156        assert!(text.contains("global @a : bytes 6 = { bytes \"123\", bytes \"xyz\" }"), "{text}");
8157        assert!(
8158            text.contains(
8159                "global @b : bytes 15 = { bytes \"12345\", bytes \"678\\00\", zero 1, \
8160                 bytes \"9\\00\", zero 3 }"
8161            ),
8162            "{text}"
8163        );
8164        // The eight bytes are four, three and a terminator, and then the byte the shorter
8165        // literal left for the string in the other member of the union to end at.
8166        assert!(
8167            text.contains("global @c : bytes 8 = { bytes \"1234\", bytes \"567\\00\" }"),
8168            "{text}"
8169        );
8170    }
8171
8172    #[test]
8173    fn a_cast_of_a_record_to_its_own_type_is_the_object_that_was_cast() {
8174        // gcc accepts one and does nothing with it, which sema already had. Lowering asked for
8175        // the object under it and had no arm for a cast, so `(struct s)x` in an initializer was
8176        // refused with E0519. It is one copy out of the object named, not two.
8177        let text = body(concat!(
8178            "struct s { int a, b; };\nstruct v { struct s s; int t; };\n",
8179            "void g(struct v *);\n",
8180            "void f(struct s *p) { struct v w = { (struct s)*p, 5 }; g(&w); }\n",
8181        ));
8182        assert_eq!(text.matches("memcpy").count(), 1, "{text}");
8183    }
8184
8185    #[test]
8186    fn a_compound_literal_read_in_a_static_initializer_lays_its_bytes_into_the_image() {
8187        // C 6.7.11p4 says a compound literal at file scope has static storage duration, which
8188        // makes it a constant element, and tcc and c-testsuite both write one. Sema used to call
8189        // it a non constant because reading it is a node of its own and the read was what it
8190        // looked at, and lowering had no way to put an object where it wanted a number.
8191        let text = ir(concat!(
8192            "struct s { int x; };\n",
8193            "struct t { struct s s; int o; } a = { (struct s){ 2 }, 3 };\n",
8194            "int n = (int){ 7 };\n",
8195            "struct u { struct s p; struct s q; } b = { (struct s){ 1 }, (struct s){ } };\n",
8196        ));
8197        assert!(text.contains("global @a : bytes 8 = { i32 2, i32 3 }"), "{text}");
8198        assert!(text.contains("global @n : i32 = 7,"), "{text}");
8199        // The second literal names nothing, so what it puts in is the zeros of its own size and
8200        // not the tail of the object it went in, which would have been the same bytes by luck.
8201        assert!(text.contains("global @b : bytes 8 = { i32 1, zero 4 }"), "{text}");
8202    }
8203
8204    #[test]
8205    fn the_address_of_a_compound_literal_asks_for_the_object_it_points_at() {
8206        // Nothing declares a compound literal, so the reference is the only thing that can ask
8207        // for it to be emitted. The image named `.Lanon.0` and the module defined no such
8208        // symbol, which the link would have been the first to find out.
8209        let text = ir("struct s { int x; };\nstruct s *q = &(struct s){ 9 };\n");
8210        assert!(text.contains("global @.Lanon.0 : i32 = 9, align 4, linkage(internal)"), "{text}");
8211        assert!(text.contains("global @q : bytes 8 = { addr.8 @.Lanon.0 }"), "{text}");
8212    }
8213
8214    #[test]
8215    fn an_object_of_no_size_at_all_has_an_image_with_nothing_in_it() {
8216        // A zero length array, which gcc allows and real code uses as the tail of a structure.
8217        // The image is there and holds nothing, which is not the global that has no image at
8218        // all, and the IR reader used to stop on the empty one.
8219        let text = ir("unsigned char foo[1][0];\n");
8220        assert!(text.contains("global @foo : bytes 0 = {}, align 1"), "{text}");
8221    }
8222
8223    #[test]
8224    fn a_null_pointer_in_an_image_is_the_bits_an_address_has_room_for() {
8225        // `NULL` in a static initializer, which every program has. The IR type is `ptr` and a
8226        // `ptr` has no width of its own, so the width the bits are cut to is the target's.
8227        let text = ir("void *p = 0;\nchar *q = (char *) 4096;\n");
8228        assert!(text.contains("global @p : i64 = 0, align 8"), "{text}");
8229        assert!(text.contains("global @q : i64 = 4096, align 8"), "{text}");
8230    }
8231
8232    #[test]
8233    fn an_object_another_module_defines_may_be_one_that_cannot_be_written_through() {
8234        // Which the verifier used to refuse, having read a declaration as a definition with
8235        // nothing in it. `extern const` is how a program names something in the library's read
8236        // only data, and glibc and Darwin both have one in a header a real program includes.
8237        let text = ir("extern const int limit;\nint f(void) { return limit; }\n");
8238        assert!(
8239            text.contains("global @limit : bytes 4, align 4, linkage(external), constant"),
8240            "{text}"
8241        );
8242    }
8243
8244    #[test]
8245    fn a_conditional_whose_value_is_an_object_answers_where_the_object_is() {
8246        // A structure is not a value in the IR, so the two arms cannot be joined as one. The
8247        // addresses can, and the answer is the address of whichever arm was taken rather than
8248        // a copy of it into a third place: both arms outlive the expression, so a copy would
8249        // be one nothing could observe. SQLite's parser writes one of these.
8250        let text = body(
8251            "\
8252struct s { int a, b; };
8253struct s pick(int c, struct s x, struct s y) { return c ? x : y; }
8254",
8255        );
8256        // The join takes an address, each arm hands it the one it has, and nothing is copied.
8257        assert!(text.contains("block3(%7: ptr)"), "{text}");
8258        assert!(text.contains("jump block3(%3)") && text.contains("jump block3(%4)"), "{text}");
8259        assert!(!text.contains("memcpy"), "the arms are joined rather than copied: {text}");
8260    }
8261
8262    /// GNU's `a ?: b` evaluates `a` once, and the arm answers the value that was tested.
8263    ///
8264    /// The checking keeps one node for `a` and converts it in two directions, to the bit the
8265    /// branch is taken on and to the type the whole expression has. Walking into the arm used to
8266    /// reach that node a second time and build a second copy of whatever it says, so `++i ?: 10`
8267    /// incremented twice and `f() ?: 10` called twice. Measured against gcc 16.2.0, which
8268    /// increments once.
8269    #[test]
8270    fn the_left_side_of_a_conditional_with_no_middle_is_evaluated_once() {
8271        let text = body("int f(int i) { return ++i ?: 10; }\n");
8272        assert!(text.contains("jump block3(%2)"), "the arm is the value that was tested: {text}");
8273        assert_eq!(text.matches("add.nsw").count(), 1, "incremented once: {text}");
8274
8275        // The arm still converts, since what the whole expression is worth is a `long` here and
8276        // the node under it is an `int`. What it converts is the value in hand.
8277        let text = body("long f(int i) { return ++i ?: 10L; }\n");
8278        assert!(text.contains("%5 = sext.i64 %2"), "the arm widens what was tested: {text}");
8279        assert_eq!(text.matches("add.nsw").count(), 1, "incremented once: {text}");
8280
8281        // A call, which is where evaluating twice is a wrong answer rather than a slow one.
8282        let text = body("int g(void);\nint f(void) { return g() ?: 10; }\n");
8283        assert_eq!(text.matches("call @g").count(), 1, "called once: {text}");
8284
8285        // Written out in full it is two reads of `i`, which is what C says it is, so the middle
8286        // operand being absent is the whole of the difference.
8287        let text = body("int f(int i) { return ++i ? ++i : 10; }\n");
8288        assert_eq!(text.matches("add.nsw").count(), 2, "incremented twice: {text}");
8289    }
8290
8291    #[test]
8292    fn a_structure_that_fits_in_registers_travels_as_the_registers_it_fits_in() {
8293        // `struct pair` is two eightbytes on SysV, one of them integer, so the signature says
8294        // one `i64` in each direction and the body takes the object apart and puts it back
8295        // together around the call.
8296        let text = ir("\
8297struct pair { int a, b; };
8298struct pair make(int a, int b);
8299struct pair twice(struct pair p) { return make(p.a, p.b); }
8300");
8301        assert!(text.contains("func @make(i32, i32) -> i64"), "{text}");
8302        assert!(text.contains("func @twice(i64) -> i64"), "{text}");
8303    }
8304
8305    #[test]
8306    fn a_structure_too_large_for_the_registers_travels_as_where_its_bytes_are() {
8307        // Over two eightbytes the caller passes the bytes in the argument area, which is
8308        // `byval`, and passes somewhere to write the return value, which is `sret`. Neither is
8309        // a parameter the program wrote and both are parameters the function has.
8310        let text = ir("\
8311struct big { double v[8]; };
8312struct big grow(struct big b);
8313struct big twice(struct big b) { return grow(grow(b)); }
8314");
8315        assert!(
8316            text.contains("func @grow(ptr sret(64, align 8), ptr byval(64, align 8))"),
8317            "{text}"
8318        );
8319        assert!(text.contains("block0(%0: ptr, %1: ptr):"), "{text}");
8320        // The inner call writes into a slot and the outer one reads the same slot, so the
8321        // object between the two calls is never copied anywhere.
8322        assert_eq!(text.matches("call @grow").count(), 2, "{text}");
8323    }
8324
8325    #[test]
8326    fn a_structure_passed_to_a_variadic_function_says_so_at_the_call() {
8327        // The bytes travel in the argument area the same way they would for a parameter, and
8328        // `printf` has no parameter there to say it on, so the call says it instead. The one
8329        // that fits in registers says nothing, because travelling as the registers it fits in
8330        // is what an argument does when nothing says otherwise.
8331        let text = ir("\
8332struct big { double v[8]; };
8333struct pair { int a, b; };
8334int p(const char *, ...);
8335int f(struct big b, struct pair q) { return p(\"\", 1, b, q); }
8336");
8337        assert!(
8338            text.contains("call @p(%4, %5, %2 byval(64, align 8), %6) : (ptr, ...) -> i32"),
8339            "{text}"
8340        );
8341    }
8342
8343    #[test]
8344    fn what_a_call_produced_is_somewhere_before_anything_is_read_out_of_it() {
8345        // `make(1, 2).b` has no object to read a member of until one is made, and what makes it
8346        // is a slot the returned registers are written to.
8347        let body = body(
8348            "\
8349struct pair { int a, b; };
8350struct pair make(int a, int b);
8351int second(void) { return make(1, 2).b; }
8352",
8353        );
8354        assert!(body.starts_with("block0:\n    %0 = alloca, size 8, align 4\n"), "{body}");
8355        assert!(body.contains("store %3 -> %0, align 4\n"), "{body}");
8356    }
8357
8358    #[test]
8359    fn a_structure_of_floats_travels_in_floating_point_registers_on_aarch64() {
8360        // The same declaration, classified by a different ABI: three `float` members are an
8361        // eightbyte of two of them and a half eightbyte of the third on SysV, and three vector
8362        // registers on AAPCS64.
8363        let source = "\
8364struct hfa { float x, y, z; };
8365int take(struct hfa h);
8366int give(struct hfa h) { return take(h); }
8367";
8368        assert!(ir(source).contains("func @take(f64, f32) -> i32"), "{}", ir(source));
8369        let mut opts = options();
8370        opts.emit = EmitKind::Ir;
8371        opts.target = "aarch64-unknown-linux-gnu".parse::<Triple>().unwrap();
8372        let result = run(&opts, source);
8373        assert_eq!(result.messages, Vec::<String>::new());
8374        assert!(result.text().contains("func @take(f32, f32, f32) -> i32"), "{}", result.text());
8375    }
8376
8377    #[test]
8378    fn an_array_whose_length_is_not_a_constant_is_a_slot_made_where_its_declaration_is() {
8379        // The size is a multiplication rather than a number, the slot is taken from the stack
8380        // where the declaration is, and the scope it was declared in gives it back.
8381        let source = "\
8382int use(int *);
8383void f(int n) {
8384  {
8385    int a[n];
8386    use(a);
8387  }
8388  use(0);
8389}
8390";
8391        let body = body(source);
8392        assert!(body.contains("mul.nsw"), "{body}");
8393        assert!(body.contains("stacksave"), "{body}");
8394        assert!(body.contains("alloca %"), "{body}");
8395        assert!(body.contains("stackrestore"), "{body}");
8396    }
8397
8398    #[test]
8399    fn a_goto_out_of_the_scope_of_one_gives_its_stack_back_on_the_way() {
8400        // The label is outside the block the array is in, so arriving there means the array is
8401        // gone, and the restore that says so goes in front of the branch. The `goto` is written
8402        // before the walk knows where the label is, which is why the restore is put there at
8403        // the end rather than built where the branch was.
8404        let source = "\
8405int use(int *);
8406int f(int n) {
8407  {
8408    int a[n];
8409    if (use(a)) goto out;
8410    use(0);
8411  }
8412out:
8413  return 0;
8414}
8415";
8416        let body = body(source);
8417        // Two ways out of the block and a restore on each: the jump and the end of the block.
8418        assert_eq!(body.matches("stackrestore").count(), 2, "{body}");
8419        let (_, after) = body.split_once("stackrestore").expect("the stack is given back");
8420        assert!(after.starts_with(" %4\n    jump block"), "{body}");
8421    }
8422
8423    #[test]
8424    fn a_goto_to_a_label_the_array_is_still_alive_at_leaves_the_stack_alone() {
8425        // The label is after the declaration and in the same block, so control that arrives
8426        // there arrives somewhere the array exists. Giving it back would be giving back an
8427        // object the next statement reads.
8428        let source = "\
8429int use(int *);
8430int f(int n) {
8431  int a[n];
8432again:
8433  if (use(a)) goto again;
8434  return 0;
8435}
8436";
8437        let body = body(source);
8438        assert!(body.contains("stacksave"), "{body}");
8439        assert!(!body.contains("stackrestore"), "{body}");
8440    }
8441
8442    #[test]
8443    fn a_goto_back_to_a_label_in_front_of_one_gives_it_back_every_time_round() {
8444        // A loop written out of a `goto`, with the array made inside it. The label is in the
8445        // same block as the declaration and before it, which is a place where the array does
8446        // not exist yet, so the jump there leaves its scope and has to give the stack back. A
8447        // compiler that skips this restore grows the stack once per iteration.
8448        let source = "\
8449int use(int *);
8450int f(int n) {
8451again:
8452  {
8453    int a[n];
8454    if (use(a)) goto again;
8455  }
8456  return 0;
8457}
8458";
8459        let body = body(source);
8460        assert_eq!(body.matches("stacksave").count(), 1, "{body}");
8461        let (_, after) = body.split_once("stackrestore").expect("the stack is given back");
8462        assert!(after.starts_with(" %4\n    jump block1\n"), "{body}");
8463    }
8464
8465    #[test]
8466    fn the_head_of_a_for_loop_is_a_scope_that_closes_where_the_loop_is_left() {
8467        // The scope opened for `for (int a[n];;)` used to stay open, and a scope left open is
8468        // not one mark nobody reads. The marks are a stack, so the next close took this one
8469        // instead of its own, and the body of the loop gave back nothing while the block after
8470        // the loop restored a pointer saved inside it. The verifier refused that, which is how
8471        // it was found.
8472        let source = "\
8473int f(void);
8474void t(void) {
8475  int count = 10;
8476  for (; count--;) {
8477    int b[f()];
8478    int i;
8479    for (i = 0; i < f(); i++) {
8480      b[i] = count;
8481    }
8482  }
8483}
8484";
8485        let body = body(source);
8486        // One save, in the body, and one restore for it, also in the body: the block the
8487        // restore is in is the one the inner loop leaves through, and it goes back round the
8488        // outer loop rather than out of it.
8489        assert_eq!(body.matches("stacksave").count(), 1, "{body}");
8490        let (_, after) = body.split_once("stackrestore").expect("the stack is given back");
8491        // The rest of the block the restore is in, which is the last block here, so there is not
8492        // always another one after it to split on.
8493        let next = after.split("\n\n").next().expect("the block the restore is in");
8494        assert!(next.contains("jump block1("), "{body}");
8495    }
8496
8497    #[test]
8498    fn how_long_one_of_those_is_was_decided_where_it_was_declared_and_not_where_it_is_asked() {
8499        // What C says about the length being evaluated once: `sizeof a` after `n` changed is
8500        // still as long as the array is, which is what `n` was when the array came into being.
8501        let source = "\
8502unsigned long f(int n) {
8503  int a[n];
8504  n = 0;
8505  return sizeof a;
8506}
8507";
8508        let body = body(source);
8509        // One read of the parameter, at the declaration, and the answer is built out of it.
8510        assert_eq!(body.matches("sext.i64 %0").count(), 2, "{body}");
8511    }
8512
8513    #[test]
8514    fn a_block_in_the_middle_of_an_expression_is_walked_where_the_expression_is() {
8515        // GNU's statement expression: the statements happen where they are written and the last
8516        // one is the value, so the temporary in it never becomes a slot and never is copied.
8517        let source = "\
8518int use(int);
8519int f(int x) {
8520  return ({
8521    int t = use(x);
8522    t * t;
8523  });
8524}
8525";
8526        let expected = "\
8527block0(%0: i32):
8528    %1 = call @use(%0) : (i32) -> i32
8529    %2 = mul.nsw %1, %1
8530    return %2
8531";
8532        assert_eq!(body(source), expected);
8533    }
8534
8535    #[test]
8536    fn a_comma_whose_value_is_an_object_names_the_object_the_right_side_named() {
8537        // What janet writes, which is a call that does not return and then a value after it so
8538        // that the arm is worth something. The left side happens for what it did and the answer
8539        // is where the right side is, so there is nothing to copy and no temporary for a copy.
8540        let source = "\
8541struct pair { int a, b; };
8542void bail(void);
8543int f(struct pair p) {
8544  return (bail(), p).b;
8545}
8546";
8547        let expected = "\
8548block0(%0: i64):
8549    %1 = alloca, size 8, align 4
8550    store %0 -> %1, align 4
8551    call @bail() : ()
8552    %2 = iconst.i64 4
8553    %3 = ptr_add %1, %2
8554    %4 = load.i32 %3, align 4, tbaa !1
8555    return %4
8556";
8557        assert_eq!(body(source), expected);
8558    }
8559
8560    #[test]
8561    fn one_of_those_that_control_never_leaves_is_lowered_and_what_follows_it_is_dropped() {
8562        // A macro that always jumps, which is what this shape is in real code. The value is
8563        // never taken, and the block the rest of the expression would have been built in is
8564        // one nothing branches to, so it goes with the other unreachable blocks.
8565        let source = "int f(int x) { return ({ return x; 0; }); }\n";
8566        assert_eq!(body(source), "block0(%0: i32):\n    return %0\n");
8567    }
8568
8569    #[test]
8570    fn one_argument_off_a_variable_argument_list_stays_an_intrinsic() {
8571        // What it becomes is the target's answer, and this is not where the target's answers
8572        // are, so the walk writes down which list and which type and leaves it at that. Two of
8573        // them are two instructions, since each moves the list on.
8574        let source = "double f(__builtin_va_list ap) { return __builtin_va_arg(ap, double) + __builtin_va_arg(ap, double); }\n";
8575        let expected = "\
8576block0(%0: ptr):
8577    %1 = va_arg.f64 %0
8578    %2 = va_arg.f64 %0
8579    %3 = fadd %1, %2
8580    return %3
8581";
8582        assert_eq!(body(source), expected);
8583    }
8584
8585    #[test]
8586    fn one_that_reads_a_structure_answers_where_the_object_is() {
8587        // An aggregate is not a value, so there is nothing for the result of `va_arg` to be and
8588        // the object form is a second instruction. What it answers is an address, so it is a
8589        // place already and the walk copies nothing out of it: the copy here is the one the
8590        // initializer asks for, into the variable being declared. The size and the alignment
8591        // travel with it because they are what steps the list on and what a target that has to
8592        // put registers somewhere needs to know. So does the classification, which says the two
8593        // halves of this one arrived in general purpose registers: that is an answer about a C
8594        // type, and this is the last place that still has one.
8595        //
8596        // The slot is aligned to sixteen and the copy into it to eight, which is not a
8597        // disagreement. Sixteen is what a local aggregate of sixteen bytes gets whatever its
8598        // members ask for, and eight is what the type asks for and so what the copy may assume
8599        // about the object it is reading from.
8600        let source = "\
8601struct s { int a; long b; };
8602long f(__builtin_va_list ap) { struct s v = __builtin_va_arg(ap, struct s); return v.b; }
8603";
8604        let expected = "\
8605block0(%0: ptr):
8606    %1 = alloca, size 16, align 16
8607    %2 = va_object %0, size 16, align 8, in(int 8 at 0, int 8 at 8)
8608    memcpy %1, %2, size 16, align 8
8609    %3 = iconst.i64 8
8610    %4 = ptr_add %1, %3
8611    %5 = load.i64 %4, align 8, tbaa !1
8612    return %5
8613";
8614        assert_eq!(body(source), expected);
8615    }
8616
8617    /// Which register file each eightbyte arrived in is the whole of what the classification adds,
8618    /// and an object with no slots at all is one it sent to the caller's argument area, which is
8619    /// what everything over two eightbytes is whatever its members are.
8620    #[test]
8621    fn the_classification_says_which_registers_the_object_arrived_in() {
8622        let source = "\
8623struct s { double a; double b; };
8624double f(__builtin_va_list ap) { struct s v = __builtin_va_arg(ap, struct s); return v.a; }
8625";
8626        assert!(
8627            body(source)
8628                .contains("va_object %0, size 16, align 8, in(float f64 at 0, float f64 at 8)"),
8629            "{}",
8630            body(source)
8631        );
8632
8633        let big = "\
8634struct s { long a[4]; };
8635long f(__builtin_va_list ap) { struct s v = __builtin_va_arg(ap, struct s); return v.a[0]; }
8636";
8637        assert!(body(big).contains("va_object %0, size 32, align 8\n"), "{}", body(big));
8638    }
8639
8640    #[test]
8641    fn a_jump_to_an_address_branches_to_every_label_the_function_takes_the_address_of() {
8642        // GNU's computed goto. Which label the address holds is not known here, so all of them
8643        // are listed, and the values arriving at one are passed on every edge the same way they
8644        // are on an ordinary branch.
8645        let source = "\
8646int f(int c) {
8647  void *p = c ? &&one : &&two;
8648  goto *p;
8649one:
8650  return 1;
8651two:
8652  return 2;
8653}
8654";
8655        let expected = "\
8656block0(%0: i32):
8657    %1 = iconst.i32 0
8658    %2 = icmp ne %0, %1
8659    br_if %2, block1, block2
8660
8661block1:
8662    %3 = block_addr block3
8663    jump block4(%3)
8664
8665block2:
8666    %4 = block_addr block5
8667    jump block4(%4)
8668
8669block3:
8670    %5 = iconst.i32 1
8671    return %5
8672
8673block4(%6: ptr):
8674    indirect_br %6, block3, block5
8675
8676block5:
8677    %7 = iconst.i32 2
8678    return %7
8679";
8680        assert_eq!(body(source), expected);
8681    }
8682
8683    /// An interpreter, cut down to the shape that matters: a table of labels, a few values the
8684    /// loop keeps in hand, and a jump through the table at the end of every one of them.
8685    fn dispatch(labels: usize) -> String {
8686        let mask = labels - 1;
8687        let mut source = String::from("int spin(int n)\n{\n\tstatic void *table[] = {");
8688        for index in 0..labels {
8689            source.push_str(&format!(" &&a{index},"));
8690        }
8691        source.push_str(" };\n\tint w = n, x = n + 1, y = n + 2, z = n + 3;\n");
8692        source.push_str(&format!("\tif (n < 0) return 0;\n\tgoto *table[n & {mask}];\n"));
8693        for index in 0..labels {
8694            let step = match index % 4 {
8695                0 => "w += x;",
8696                1 => "x += y;",
8697                2 => "y += z;",
8698                _ => "z += w;",
8699            };
8700            source.push_str(&format!("a{index}:\n\t{step}\n"));
8701            source.push_str("\tif (--n <= 0) return w + x + y + z;\n");
8702            source.push_str(&format!("\tgoto *table[n & {mask}];\n"));
8703        }
8704        source.push_str("}\n");
8705        source
8706    }
8707
8708    /// How many moves are written in front of the first jump through a register.
8709    fn in_front_of_the_jump(text: &str) -> usize {
8710        let (before, _) = text.split_once("\tjmp\t*%").expect("a jump through a register");
8711        before.lines().rev().take_while(|line| line.starts_with("\tmov")).count()
8712    }
8713
8714    /// What a branch writes in front of its jump is what it carries, not what every label it can
8715    /// reach would like to be handed.
8716    ///
8717    /// A label an indirect branch reaches is given its values in registers the branch writes
8718    /// before it goes, because the moves cannot go after a jump and cannot go across the register
8719    /// the jump reads. Writing a register for each parameter of each label costs the table's
8720    /// length on every dispatch, which is a few moves in a program with two labels and five
8721    /// hundred in an interpreter with seventy. The values are the same values, so the registers
8722    /// are the same registers, and the cost stays where the number of values puts it.
8723    #[test]
8724    fn a_jump_through_a_register_writes_what_it_carries_and_not_the_whole_table() {
8725        let small = in_front_of_the_jump(&asm(&dispatch(4)));
8726        let large = in_front_of_the_jump(&asm(&dispatch(32)));
8727        assert_eq!(small, large, "eight times the labels and the same values in hand");
8728        assert!(large <= 8, "the values the loop keeps, and not a set of them per label: {large}");
8729    }
8730
8731    /// The same interpreter with more values in hand than there are registers, which is what makes
8732    /// the allocator send some of them to the stack at every label.
8733    fn crowded(labels: usize) -> String {
8734        const VALUES: usize = 24;
8735        let mask = labels - 1;
8736        let mut source = String::from("int spin(int n)\n{\n\tstatic void *table[] = {");
8737        for index in 0..labels {
8738            source.push_str(&format!(" &&a{index},"));
8739        }
8740        source.push_str(" };\n\t");
8741        for value in 0..VALUES {
8742            source.push_str(&format!("int v{value} = n + {value}; "));
8743        }
8744        let sum: Vec<String> = (0..VALUES).map(|value| format!("v{value}")).collect();
8745        source.push_str(&format!("\n\tif (n < 0) return 0;\n\tgoto *table[n & {mask}];\n"));
8746        for index in 0..labels {
8747            let (to, from) = (index % VALUES, (index + 1) % VALUES);
8748            source.push_str(&format!("a{index}:\n\tv{to} += v{from};\n"));
8749            source.push_str(&format!("\tif (--n <= 0) return {};\n", sum.join(" + ")));
8750            source.push_str(&format!("\tgoto *table[n & {mask}];\n"));
8751        }
8752        source.push_str("}\n");
8753        source
8754    }
8755
8756    /// How many bytes of frame the first function in a listing opens.
8757    fn the_frame(text: &str) -> u64 {
8758        text.lines()
8759            .find_map(|line| {
8760                let (size, _) = line.strip_prefix("\tsubq\t$")?.split_once(", %rsp")?;
8761                size.parse().ok()
8762            })
8763            .expect("a function that opens a frame")
8764    }
8765
8766    /// A frame holds what a function wants at once, and an interpreter does not want the whole
8767    /// table at once.
8768    ///
8769    /// Every label a dispatch table reaches is handed the values the loop keeps, and what the
8770    /// allocator has no register for goes on the stack. They are the same few values one label at
8771    /// a time, so they are the same bytes. A slot each put forty kilobytes on the frame of lua's
8772    /// interpreter and ran the C stack out at a depth lua's own limit was supposed to catch,
8773    /// which is tamnd/rucc#1630.
8774    #[test]
8775    fn a_frame_holds_what_is_wanted_at_once_and_not_a_slot_for_every_label() {
8776        let small = the_frame(&asm(&crowded(16)));
8777        let large = the_frame(&asm(&crowded(64)));
8778        assert_eq!(small, large, "four times the labels and the same values: {small}, {large}");
8779    }
8780
8781    /// A template that saves the callee-saved registers by name, which is micropython's non local
8782    /// return and is tamnd/rucc#1583.
8783    ///
8784    /// Every register in it is one the template named rather than one the statement handed over,
8785    /// because the buffer is defined as holding those registers and there is no constraint letter
8786    /// that means `%rsp`. The instructions come out naming what the program named, and the
8787    /// allocator, which was told about the writes rather than left to find out, saves the ones the
8788    /// calling convention says belong to whoever called.
8789    #[test]
8790    fn a_template_that_names_its_own_registers_gets_the_ones_it_named() {
8791        let source = "void save(void *nlr) {
8792    __asm volatile (
8793        \"movq   %%rsp, 32(%%rdi)   \\n\"
8794        \"movq   %%rbx, 40(%%rdi)   \\n\"
8795        \"movq   %%r12, 48(%%rdi)   \\n\"
8796        : : \"D\" (nlr) : \"memory\");
8797}
8798";
8799        let text = asm(source);
8800        assert!(text.contains("\tmovq\t%rsp, 32(%rdi)\n"), "{text}");
8801        assert!(text.contains("\tmovq\t%rbx, 40(%rdi)\n"), "{text}");
8802        assert!(text.contains("\tmovq\t%r12, 48(%rdi)\n"), "{text}");
8803    }
8804
8805    #[test]
8806    fn a_jump_to_an_address_no_label_in_the_function_has_arrives_nowhere() {
8807        // The address came from outside the function, and a jump to a label in another function
8808        // is undefined. The expression is still evaluated, since a call in it has to happen.
8809        let source = "void **next(void);
8810void f(void) { goto *next(); }
8811";
8812        let expected = "\
8813block0:
8814    %0 = call @next() : () -> ptr
8815    unreachable
8816";
8817        assert_eq!(body(source), expected);
8818    }
8819
8820    #[test]
8821    fn an_asm_with_no_operands_is_volatile_and_the_clobbers_are_the_whole_of_what_it_says() {
8822        // Nothing reads a result, so the only thing that keeps it is that it is volatile, which
8823        // a basic asm implies.
8824        let source = "void f(void) { __asm__(\"mfence\" ::: \"memory\"); }\n";
8825        let expected = "\
8826block0:
8827    inline_asm.volatile \"mfence\", \"\", \"memory\"()
8828    return
8829";
8830        assert_eq!(body(source), expected);
8831    }
8832
8833    #[test]
8834    fn the_constraints_are_one_list_in_the_order_the_template_counts_the_operands() {
8835        // The outputs first and then the inputs, which is the numbering `%0` and `%1` use. An
8836        // output in a register is a result, and one that is read as well is an argument too.
8837        let source = "\
8838int f(int x, int y) {
8839  int r;
8840  __asm__(\"addl %2, %0\" : \"=r\"(r), \"+r\"(y) : \"r\"(x));
8841  return r + y;
8842}
8843";
8844        let expected = "\
8845block0(%0: i32, %1: i32):
8846    %2, %3 = inline_asm.(i32, i32) \"addl %2, %0\", \"=r,+r,r\", \"\"(%1, %0)
8847    %4 = add.nsw %2, %3
8848    return %4
8849";
8850        assert_eq!(body(source), expected);
8851    }
8852
8853    #[test]
8854    fn a_memory_operand_travels_as_the_address_of_an_object_that_is_given_a_slot() {
8855        // The assembly is handed a pointer, so the object cannot live in a value, and the scan
8856        // that runs before the walk has to have known that or there would be nothing to point
8857        // at. A structure travels this way whatever else its constraint allows, since there is
8858        // no register that holds one.
8859        let source = "\
8860struct pair { int a, b; };
8861int f(int x) {
8862  int slot = x;
8863  struct pair p = { x, x };
8864  __asm__(\"incl %0\" : \"+m\"(slot), \"=m\"(p));
8865  return slot + p.a;
8866}
8867";
8868        let text = body(source);
8869        assert!(text.contains("inline_asm \"incl %0\", \"+m,=m\", \"\"(%1, %2)\n"), "{text}");
8870        assert!(text.contains("%1 = alloca, size 4, align 4\n"), "{text}");
8871        assert!(text.contains("%2 = alloca, size 8, align 4\n"), "{text}");
8872    }
8873
8874    #[test]
8875    fn an_asm_goto_falls_through_to_its_first_target_and_writes_its_outputs_there() {
8876        // The output is only in scope where the instruction dominates, which is the fall through
8877        // block, so the edge to the label carries the value the object had before the assembly
8878        // ran. That is what document 11 asks for and it is what putting the fall through first
8879        // buys.
8880        let source = "\
8881int f(int x) {
8882  int r = 7;
8883  __asm__ goto(\"cbnz %0, %l1\" : \"=r\"(r) : \"r\"(x) :: away);
8884  return r;
8885away:
8886  return r;
8887}
8888";
8889        let expected = "\
8890block0(%0: i32):
8891    %1 = iconst.i32 7
8892    %2 = inline_asm.volatile \"cbnz %0, %l1\", \"=r,r\", \"\"(%0), labels [block1, block2]
8893
8894block1:
8895    return %2
8896
8897block2:
8898    return %1
8899";
8900        assert_eq!(body(source), expected);
8901    }
8902
8903    #[test]
8904    fn an_asm_statement_that_is_not_well_formed_is_reported_in_the_words_gcc_uses() {
8905        // The operands are checked here rather than by the assembler, because by the time the
8906        // assembler sees the template the operands have become registers and it has nothing left
8907        // to say about the C that named them.
8908        let mut opts = options();
8909        opts.emit = EmitKind::Ir;
8910        for (source, expected) in [
8911            (
8912                "void f(int x) { __asm__(\"\" : \"r\"(x)); }\n",
8913                "output operand constraint lacks '='",
8914            ),
8915            (
8916                "void f(int x) { __asm__(\"\" : \"=r\"(x + 1)); }\n",
8917                "lvalue required in 'asm' statement",
8918            ),
8919            (
8920                "const int g = 1;\nvoid f(void) { __asm__(\"\" : \"=r\"(g)); }\n",
8921                "read-only variable 'g' used as 'asm' output",
8922            ),
8923            (
8924                "void f(int x) { __asm__(\"\" : : \"=r\"(x)); }\n",
8925                "input operand constraint contains '='",
8926            ),
8927            (
8928                "void f(void) { __asm__(\"\" : : \"m\"(1)); }\n",
8929                "memory input 0 is not directly addressable",
8930            ),
8931            ("void f(void) { __asm__(L\"\"); }\n", "wide string literal in 'asm'"),
8932            (
8933                "void f(int x, int y) { __asm__(\"\" : [a] \"=r\"(x) : [a] \"r\"(y)); }\n",
8934                "duplicate asm operand name 'a'",
8935            ),
8936            ("void f(int x) { __asm__(\"%[in]\" : \"=r\"(x)); }\n", "undefined named operand 'in'"),
8937        ] {
8938            let result = run(&opts, source);
8939            assert!(result.failed(), "expected this to be reported:\n{source}");
8940            assert!(
8941                result.messages.iter().any(|m| m.contains(expected)),
8942                "{expected}\n{:?}",
8943                result.messages
8944            );
8945        }
8946    }
8947
8948    /// An `asm` at file scope whose template is directives is the whole of what the incbin
8949    /// header, an alias table and a hand written jump table each write, and what it says is a
8950    /// section holding named bytes. So it becomes the globals it names, in the order it names
8951    /// them, which is what `spec/11-asm-objects-debug.md` section 11.2 asks for.
8952    #[test]
8953    fn an_asm_at_file_scope_that_is_directives_becomes_the_objects_it_defines() {
8954        let text = ir(concat!(
8955            "__asm__(\n",
8956            "  \".section .rodata\\n\"\n",
8957            "  \".globl first\\n\"\n",
8958            "  \".balign 8\\n\"\n",
8959            "  \"first:\\n\"\n",
8960            "  \".long 1\\n\"\n",
8961            "  \".long 2\\n\"\n",
8962            "  \".globl last\\n\"\n",
8963            "  \"last:\\n\"\n",
8964            "  \".quad last - first\\n\");\n",
8965            "extern const int first[];\n",
8966            "extern const long last;\n",
8967        ));
8968        assert!(text.contains("global @first : bytes 8 = { i32 1, i32 2 }, align 8"), "{text}");
8969        assert!(text.contains("global @last : i64 = 8"), "{text}");
8970    }
8971
8972    /// The distance between two labels is what the incbin header hands a program as the size of
8973    /// the data, so a declaration of one of the names has to find the definition the template
8974    /// made rather than turn it back into something the linker is asked for.
8975    #[test]
8976    fn a_name_an_asm_at_file_scope_defined_is_not_undone_by_a_declaration_of_it() {
8977        let text = ir(concat!(
8978            "__asm__(\".data\\n.globl counter\\ncounter:\\n.long 7\\n\");\n",
8979            "extern int counter;\n",
8980            "int read(void) { return counter; }\n",
8981        ));
8982        assert!(text.contains("global @counter : i32 = 7"), "{text}");
8983    }
8984
8985    /// Bytes written before any label are a global with a name minted for them, in front of the
8986    /// label written under them, which is what makes the first byte of the name the one written
8987    /// under it. The block is the one tcc's test file writes, without the line of it that measures
8988    /// from one section to another.
8989    #[test]
8990    fn bytes_under_no_label_at_file_scope_are_a_global_in_front_of_the_label() {
8991        let text = ir(concat!(
8992            "__asm__(\".data\\n.byte 41\\nstuff:\\n661:\\n.byte 42\\n662:\\n",
8993            ".pushsection .data.ignore\\n.byte 7\\n.popsection\\n.byte 662b - 661b\\n\");\n",
8994            "extern unsigned char stuff[];\n",
8995            "int read(void) { return stuff[0]; }\n",
8996        ));
8997        let under = text.find("global @.Lasm.0 : i8 = 41").expect(&text);
8998        let named = text.find("global @stuff : i8 = 42").expect(&text);
8999        assert!(under < named, "the bytes under no label come first: {text}");
9000        assert!(text.contains("global @.Lasm.1 : i8 = 7, align 1, linkage(internal), section"));
9001        // The byte after the pop is a run of its own, because coming back to a section finishes
9002        // what was being written to it the way a label does. It is the next global of that
9003        // section all the same, so the byte lands where the template put it, which is the one
9004        // after the byte under `stuff`.
9005        let after = text.find("global @.Lasm.2 : i8 = 1").expect(&text);
9006        assert!(named < after, "{text}");
9007    }
9008
9009    /// How far a place is from the bytes holding the answer, which is what tcc's test file writes
9010    /// last and what the alternative instruction tables in a kernel header are made of. It is the
9011    /// linker's answer rather than the compiler's, because the two sections are placed by the
9012    /// linker, so the image holds a hole and a name for it.
9013    #[test]
9014    fn a_distance_from_here_at_file_scope_is_a_hole_naming_the_global_it_measures_to() {
9015        let text = ir(concat!(
9016            "__asm__(\".data\\n.byte 41\\nstuff:\\n661:\\n.byte 42\\n",
9017            ".pushsection .data.ignore\\n.long 661b - .\\n.popsection\\n\");\n",
9018            "extern unsigned char stuff[];\n",
9019            "int read(void) { return stuff[0]; }\n",
9020        ));
9021        // The label the template measured to is a local one and no symbol, so what the hole names
9022        // is the global it stands inside, which is the byte under `stuff`, and nothing further on
9023        // since it is the first byte of it.
9024        assert!(text.contains("global @.Lasm.1 : bytes 4 = { away.4 @stuff }"), "{text}");
9025    }
9026
9027    /// A `.set` says one name stands for another, which is a second symbol at the first one's
9028    /// address and is an alias and nothing else. What the directives around it said about the
9029    /// name is what the name gets, and a name the file defines itself keeps its own definition,
9030    /// which is what gcc's symbol table shows for the block tcc's test file writes.
9031    #[test]
9032    fn a_set_at_file_scope_is_a_second_name_for_what_it_names() {
9033        let text = ir(concat!(
9034            "void base(void) {}\n",
9035            "__asm__(\".weak one\\n.set one, base\");\n",
9036            "__asm__(\".globl two\\n.set two, base\");\n",
9037            "__asm__(\".set three, base\");\n",
9038            "void three(void) {}\n",
9039        ));
9040        assert!(text.contains("alias @one = @base, linkage(weak)"), "{text}");
9041        assert!(text.contains("alias @two = @base"), "{text}");
9042        assert!(!text.contains("alias @three"), "a definition of the name wins: {text}");
9043        assert!(text.contains("func @three"), "{text}");
9044    }
9045
9046    /// The target has to be something this file defines, because an alias is a symbol at an
9047    /// address in this object and a name only declared here has none to be at. The same rule and
9048    /// the same words as for `__attribute__((alias))`, since it is the same thing written another
9049    /// way.
9050    #[test]
9051    fn a_set_of_a_name_this_file_does_not_define_says_so() {
9052        let messages = errors("__asm__(\".set here, elsewhere\");\n");
9053        assert!(
9054            messages
9055                .iter()
9056                .any(|m| m.contains("'here' is aliased to undefined symbol 'elsewhere'")
9057                    && m.contains("E0697")),
9058            "{messages:?}"
9059        );
9060    }
9061
9062    /// `.incbin` is the one directive that reads something, and what it reads comes through the
9063    /// same file system the sources did.
9064    #[test]
9065    fn an_incbin_at_file_scope_is_the_bytes_of_the_file_it_names() {
9066        let mut opts = options();
9067        opts.emit = EmitKind::Ir;
9068        let mut fs = MemoryFileSystem::new();
9069        fs.insert(
9070            "/main.c",
9071            b"__asm__(\".data\\n.globl blob\\nblob:\\n.incbin \\\"seed\\\"\\n\");\n".to_vec(),
9072        );
9073        fs.insert("seed", b"hi".to_vec());
9074        let result = compile(&opts, "/main.c", &fs);
9075        assert_eq!(result.messages, Vec::<String>::new());
9076        let text = result.text();
9077        assert!(text.contains("global @blob : bytes 2 = { bytes \"hi\" }"), "{text}");
9078    }
9079
9080    /// A file that is not there is the mistake a build makes when it runs the compiler from the
9081    /// wrong directory, and it is worth saying which file rather than saying the template failed.
9082    #[test]
9083    fn an_incbin_naming_a_file_that_is_not_there_says_which_file() {
9084        let messages = errors("__asm__(\".data\\nb:\\n.incbin \\\"nowhere\\\"\\n\");\n");
9085        assert!(
9086            messages
9087                .iter()
9088                .any(|m| m.contains("cannot open 'nowhere' for reading") && m.contains("E0702")),
9089            "{messages:?}"
9090        );
9091    }
9092
9093    /// The line drawn is the same one the `asm` inside a function draws: directives are read and
9094    /// an instruction waits for an assembler. Refusing by name is what makes the wait visible.
9095    #[test]
9096    fn an_instruction_in_an_asm_at_file_scope_is_refused_rather_than_ignored() {
9097        for source in [
9098            "__asm__(\".text\\n.globl f\\nf:\\n  ret\\n\");\n",
9099            "__asm__(\".data\\n.set alias, 4\\n\");\n",
9100        ] {
9101            let messages = errors(source);
9102            assert!(
9103                messages
9104                    .iter()
9105                    .any(|m| m.contains("not supported yet")
9106                        && m.contains("in an `asm` at file scope")),
9107                "{source}\n{messages:?}"
9108            );
9109        }
9110    }
9111
9112    /// micropython's `nlr_push`, which is the program that asks for all of this. The body is the
9113    /// whole of the function: the return address is read out of `(%rsp)` where the call left it,
9114    /// the registers the convention preserves are saved by hand, and the frame that was just built
9115    /// is handed to a function written in C that never comes back.
9116    ///
9117    /// What is checked is what gcc writes for the same file. No prologue in front of the saves,
9118    /// since a push would move the return address the first of them reads. No epilogue and no
9119    /// `ret`, since the jump is where the function ends. And a `ud2` behind the jump, which is
9120    /// where control arrives if the jump is ever not taken and is exactly what gcc puts there.
9121    #[test]
9122    fn a_naked_function_is_its_own_prologue_and_its_own_ending() {
9123        let text = asm(concat!(
9124            "unsigned nlr_push_tail(void *nlr);\n",
9125            "__attribute__((naked)) unsigned nlr_push(void *nlr) {\n",
9126            "  __asm volatile(\n",
9127            "    \"movq (%rsp), %rax\\n\"\n",
9128            "    \"movq %rax, 16(%rdi)\\n\"\n",
9129            "    \"movq %rbx, 40(%rdi)\\n\"\n",
9130            "    \"jmp nlr_push_tail\\n\");\n",
9131            "}\n",
9132        ));
9133        assert!(text.contains("\tmovq\t(%rsp), %rax\n"), "{text}");
9134        assert!(text.contains("\tjmp\tnlr_push_tail\n"), "{text}");
9135        assert!(text.contains("\tud2\n"), "{text}");
9136        assert!(!text.contains("\tpushq\t"), "nothing is saved in front of it: {text}");
9137        assert!(!text.contains("\tret\n"), "the jump is where it ends: {text}");
9138    }
9139
9140    /// The three things a naked function may not ask for, each of which is a frame nothing sets up
9141    /// or a jump over an epilogue there is one of.
9142    #[test]
9143    fn what_a_function_without_a_prologue_cannot_be_given_is_refused() {
9144        let mut opts = options();
9145        opts.emit = EmitKind::Asm;
9146        for (source, why) in [
9147            (
9148                "__attribute__((naked)) void f(void) { volatile long a[8]; a[0] = 1; }\n",
9149                "bytes of frame",
9150            ),
9151            (
9152                "__attribute__((naked)) void f(int n) { char a[n]; __asm(\"nop\" ::\"r\"(a)); }\n",
9153                "has no prologue to point a frame pointer at it with",
9154            ),
9155            ("void elsewhere(void); void f(void) { __asm(\"jmp elsewhere\"); }\n", "jumps out of"),
9156        ] {
9157            let result = run(&opts, source);
9158            assert!(result.failed(), "expected this to be refused:\n{source}");
9159            assert!(
9160                result.messages.iter().any(|message| message.contains(why)),
9161                "{:?}",
9162                result.messages
9163            );
9164        }
9165    }
9166
9167    #[test]
9168    fn what_the_walk_cannot_build_yet_is_reported_rather_than_mislowered() {
9169        let mut opts = options();
9170        opts.emit = EmitKind::Ir;
9171        for source in [
9172            "int f(int n) { void *p = &&out; if (n) goto *p; { int a[n]; out: return 1; } }\n",
9173            "int f(int n) { int a[n]; __asm__ goto(\"\" ::::out); out: return a[0]; }\n",
9174        ] {
9175            let result = run(&opts, source);
9176            assert!(result.failed(), "expected this to be reported:\n{source}");
9177            assert!(
9178                result.messages.iter().any(|m| m.contains("not supported yet")),
9179                "{:?}",
9180                result.messages
9181            );
9182        }
9183    }
9184
9185    /// Compiles `source` to IR, reads that back as an input, and gives back both texts.
9186    fn round_trip(source: &str) -> (String, String) {
9187        let printed = ir(source);
9188        let mut opts = options();
9189        opts.emit = EmitKind::Ir;
9190        let mut fs = MemoryFileSystem::new();
9191        fs.insert("/main.ir", printed.clone().into_bytes());
9192        let result = compile_ir(&opts, "/main.ir", &fs);
9193        assert_eq!(result.messages, Vec::<String>::new(), "expected this to read back:\n{printed}");
9194        (printed, result.text().to_owned())
9195    }
9196
9197    #[test]
9198    fn ir_that_arrives_as_an_input_is_read_back_and_written_out_the_same() {
9199        // The other half of the round trip test below, through the driver rather than through
9200        // the library, which is what makes the property something to run over a real program
9201        // rather than over the modules a test builds.
9202        let (printed, again) = round_trip(
9203            "struct point { int x, y; };\n             static const char greeting[] = \"hi\";\n             int puts(const char *);\n             int f(int n) { struct point p = { n, 1 }; puts(greeting); return p.x; }\n",
9204        );
9205        assert_eq!(printed, again);
9206    }
9207
9208    #[test]
9209    fn ir_that_is_not_ir_says_which_line_stopped_it() {
9210        let mut opts = options();
9211        opts.emit = EmitKind::Ir;
9212        let mut fs = MemoryFileSystem::new();
9213        let text = "\
9214; ModuleID = 'a.c'
9215; format 0
9216target triple = \"x86_64-unknown-linux-gnu\"
9217target datalayout = \"e-p:64:64-i64:64-S128\"
9218
9219func @f(), linkage(external) {
9220block0:
9221    frobnicate
9222}
9223";
9224        fs.insert("/main.ir", text.as_bytes().to_vec());
9225        let result = compile_ir(&opts, "/main.ir", &fs);
9226        assert!(result.failed());
9227        assert!(result.messages[0].contains("/main.ir:8"), "{:?}", result.messages);
9228    }
9229
9230    #[test]
9231    fn ir_that_reads_but_does_not_hold_together_is_reported_by_the_verifier() {
9232        // A module that a person edited has not been through the verifier, and the return of
9233        // an `i32` from a function that returns nothing is the kind of thing editing produces.
9234        let mut opts = options();
9235        opts.emit = EmitKind::Ir;
9236        let mut fs = MemoryFileSystem::new();
9237        let text = "\
9238; ModuleID = 'a.c'
9239; format 0
9240target triple = \"x86_64-unknown-linux-gnu\"
9241target datalayout = \"e-p:64:64-i64:64-S128\"
9242
9243func @f(), linkage(external) {
9244block0:
9245    %0 = iconst.i32 1
9246    return %0
9247}
9248";
9249        fs.insert("/main.ir", text.as_bytes().to_vec());
9250        let result = compile_ir(&opts, "/main.ir", &fs);
9251        assert!(result.failed());
9252        assert!(result.messages[0].contains("invalid IR"), "{:?}", result.messages);
9253    }
9254
9255    #[test]
9256    fn a_typed_tree_is_not_something_an_input_of_ir_can_produce() {
9257        // The C that became this is not here any more, so there is nothing to print a tree of.
9258        let mut fs = MemoryFileSystem::new();
9259        fs.insert("/main.ir", Vec::new());
9260        let result = compile_ir(&options(), "/main.ir", &fs);
9261        assert!(result.failed());
9262        assert!(result.messages[0].contains("can only be emitted as IR"), "{:?}", result.messages);
9263    }
9264
9265    #[test]
9266    fn the_printed_ir_reads_back_as_the_same_module() {
9267        // The M2 exit criterion: the text is the module and nothing about it is lost by
9268        // writing it down. Anything the printer invents or the parser drops shows up here.
9269        let text = ir("\
9270struct point { int x, y; };
9271static const char greeting[] = \"hi\";
9272int table[4] = { 1, 2, 3 };
9273int puts(const char *);
9274double half(double x) { return x / 2.0; }
9275int f(int n) {
9276  int total = 0;
9277  for (int i = 0; i < n; i++) {
9278    if (i == 3) continue;
9279    total += table[i];
9280  }
9281  switch (n) {
9282    case 0: total = 1;
9283    case 1: total++; break;
9284    default: total = -total;
9285  }
9286  struct point p = { total, 1 };
9287  int *q = &p.y;
9288  puts(greeting);
9289  return p.x + *q;
9290}
9291int dispatch(int c) {
9292  void *p = c ? &&one : &&two;
9293  goto *p;
9294one:
9295  return 1;
9296two:
9297  return 2;
9298}
9299int assembly(int x, int *p) {
9300  int r;
9301  __asm__ volatile(\"xadd %0, %2\" : \"=r\"(r), \"+m\"(*p) : \"0\"(x) : \"cc\");
9302  __asm__ goto(\"cbnz %0, %l1\" : : \"r\"(r) : : away);
9303  return r;
9304away:
9305  return 0;
9306}
9307");
9308        let mut names = Interner::new();
9309        let module = rucc_ir::parse(&text, &mut names).expect("the printer writes what it reads");
9310        assert_eq!(rucc_ir::print(&module, &names), text);
9311    }
9312
9313    #[test]
9314    fn what_save_temps_keeps_is_the_text_that_was_compiled_and_the_assembly_that_was_assembled() {
9315        // The point of the flag is that these two are the compilation rather than a description
9316        // of one, so both come out of the run that produced the object rather than out of a
9317        // second run under different flags.
9318        let mut opts = options();
9319        opts.emit = EmitKind::Object;
9320        opts.save_temps = rucc_session::SaveTemps::Object;
9321        let result = run(&opts, "#define N 2\nint a[N];\n");
9322        assert_eq!(result.messages, Vec::<String>::new());
9323        let text = result.temps.preprocessed.expect("the preprocessed text");
9324        assert!(text.contains("int a[2];"), "{text}");
9325        assert!(text.starts_with("# 1 \"/main.c\""), "{text}");
9326        let asm = result.temps.assembly.expect("the assembly");
9327        assert!(asm.contains("a:"), "{asm}");
9328        assert!(matches!(result.artifact, Artifact::Object { .. }), "{:?}", result.artifact);
9329    }
9330
9331    #[test]
9332    fn nothing_is_kept_unless_the_flag_asked_for_it() {
9333        // A compilation that was not asked to keep anything must not pay for printing text
9334        // nobody will read, and the empty value is what says so.
9335        let mut opts = options();
9336        opts.emit = EmitKind::Object;
9337        assert_eq!(run(&opts, "int a;\n").temps, Temps::default());
9338    }
9339
9340    #[test]
9341    fn a_compilation_that_stops_before_the_back_end_keeps_the_text_and_no_assembly() {
9342        // `--emit=ir` never produces any, and the text is worth keeping all the same: it is
9343        // what a report about the file being read wrongly has to have in it.
9344        let mut opts = options();
9345        opts.emit = EmitKind::Ir;
9346        opts.save_temps = rucc_session::SaveTemps::Cwd;
9347        let result = run(&opts, "int a;\n");
9348        assert!(result.temps.preprocessed.is_some());
9349        assert_eq!(result.temps.assembly, None);
9350    }
9351
9352    /// A stretch of a local's life, written short because these tests are about nothing else.
9353    fn span(from: u64, len: u64, held: rucc_debug::Held) -> rucc_debug::Span {
9354        rucc_debug::Span { from, len, held }
9355    }
9356
9357    #[test]
9358    fn two_stretches_that_meet_and_agree_come_out_as_one() {
9359        let one = span(0, 4, rucc_debug::Held::Reg(3));
9360        let two = span(4, 4, rucc_debug::Held::Reg(3));
9361        assert_eq!(settle(vec![two, one]), vec![span(0, 8, rucc_debug::Held::Reg(3))]);
9362    }
9363
9364    #[test]
9365    fn a_stretch_another_starts_inside_and_disagrees_with_ends_where_the_other_starts() {
9366        let one = span(0, 8, rucc_debug::Held::Reg(3));
9367        let two = span(4, 8, rucc_debug::Held::Reg(4));
9368        // The second starts where the declaration was given its value, so from there it is the
9369        // second and not the first.
9370        let settled = settle(vec![one, two]);
9371        assert_eq!(
9372            settled,
9373            vec![span(0, 4, rucc_debug::Held::Reg(3)), span(4, 8, rucc_debug::Held::Reg(4))]
9374        );
9375    }
9376
9377    #[test]
9378    fn a_stretch_cut_by_one_that_ends_first_does_not_come_back_after_it() {
9379        // The old value is still live after the new one is done with, because something else
9380        // reads it, but the declaration stopped holding it where the new one started.
9381        let one = span(0, 16, rucc_debug::Held::Reg(3));
9382        let two = span(4, 4, rucc_debug::Held::Reg(4));
9383        assert_eq!(
9384            settle(vec![one, two]),
9385            vec![span(0, 4, rucc_debug::Held::Reg(3)), span(4, 4, rucc_debug::Held::Reg(4))]
9386        );
9387    }
9388
9389    #[test]
9390    fn a_stretch_inside_another_that_agrees_with_it_cuts_nothing() {
9391        let one = span(0, 16, rucc_debug::Held::Reg(3));
9392        let two = span(4, 4, rucc_debug::Held::Reg(3));
9393        assert_eq!(settle(vec![one, two]), vec![span(0, 16, rucc_debug::Held::Reg(3))]);
9394    }
9395
9396    #[test]
9397    fn a_stretch_two_others_disagree_over_the_whole_of_says_nothing_at_all() {
9398        let one = span(0, 8, rucc_debug::Held::Reg(3));
9399        let two = span(0, 8, rucc_debug::Held::Frame(-16));
9400        assert_eq!(settle(vec![one, two]), Vec::new());
9401    }
9402
9403    #[test]
9404    fn stretches_with_a_gap_between_them_keep_the_gap() {
9405        let one = span(0, 4, rucc_debug::Held::Reg(3));
9406        let two = span(16, 4, rucc_debug::Held::Reg(3));
9407        assert_eq!(settle(vec![one, two]), vec![one, two]);
9408    }
9409
9410    /// A function of `len` bytes, since that is the only thing about one these tests look at.
9411    fn extent(len: usize) -> rucc_object::Extent {
9412        rucc_object::Extent {
9413            name: "f".to_owned(),
9414            start: 0,
9415            len,
9416            align: 1,
9417            binding: rucc_object::Binding::Global,
9418            visibility: rucc_object::Visibility::Default,
9419            patch: None,
9420        }
9421    }
9422
9423    /// A line table row at `at` built for the source bytes `lo` to `hi`.
9424    fn row(at: usize, lo: u32, hi: u32) -> rucc_asm::Row {
9425        let span = Span::new(lo, hi);
9426        rucc_asm::Row { at, span, inst: None }
9427    }
9428
9429    #[test]
9430    fn a_row_ends_where_the_next_address_begins() {
9431        let rows = [row(0, 0, 1), row(4, 1, 2), row(10, 2, 3)];
9432        assert_eq!(ends(&extent(16), &rows), vec![4, 10, 16]);
9433    }
9434
9435    #[test]
9436    fn rows_sharing_an_address_all_end_where_the_next_address_begins() {
9437        // Two instructions that encoded to nothing sit on the address of the one after them, and
9438        // none of the three ends in front of that one.
9439        let rows = [row(0, 0, 1), row(4, 1, 2), row(4, 2, 3), row(4, 3, 4)];
9440        assert_eq!(ends(&extent(12), &rows), vec![4, 12, 12, 12]);
9441    }
9442
9443    #[test]
9444    fn the_rows_of_a_scope_that_are_next_to_each_other_come_out_as_one_stretch() {
9445        let rows = [row(0, 0, 4), row(4, 10, 14), row(8, 14, 18), row(12, 40, 44)];
9446        let ends = ends(&extent(16), &rows);
9447        let scope = Span::new(8, 20);
9448        assert_eq!(spread(scope, &ends, &rows), vec![rucc_debug::Reach { from: 4, len: 8 }]);
9449    }
9450
9451    #[test]
9452    fn a_scope_the_back_end_split_in_two_comes_out_as_two_stretches() {
9453        let rows = [row(0, 10, 14), row(4, 40, 44), row(8, 14, 18)];
9454        let ends = ends(&extent(12), &rows);
9455        let scope = Span::new(8, 20);
9456        let over = spread(scope, &ends, &rows);
9457        assert_eq!(
9458            over,
9459            vec![rucc_debug::Reach { from: 0, len: 4 }, rucc_debug::Reach { from: 8, len: 4 }]
9460        );
9461    }
9462
9463    #[test]
9464    fn a_row_with_no_source_of_its_own_belongs_to_no_scope() {
9465        // The prologue is the one of these every function has, and it is not inside any block.
9466        let rows = [rucc_asm::Row { at: 0, span: Span::DUMMY, inst: None }, row(4, 10, 14)];
9467        let ends = ends(&extent(8), &rows);
9468        let scope = Span::new(0, 20);
9469        assert_eq!(spread(scope, &ends, &rows), vec![rucc_debug::Reach { from: 4, len: 4 }]);
9470    }
9471
9472    /// A scope of the unit, written short because these tests are about nothing else.
9473    fn scope(parent: Option<usize>, lo: u32, hi: u32) -> crate::shapes::Scope {
9474        let span = Span::new(lo, hi);
9475        crate::shapes::Scope { parent, span }
9476    }
9477
9478    #[test]
9479    fn a_function_gets_the_scopes_its_own_locals_are_in_and_nothing_else() {
9480        // Two functions' worth of scopes in one table, and this one is in the second pair.
9481        let scopes = [scope(None, 0, 10), scope(None, 20, 30), scope(Some(1), 22, 26)];
9482        let rows = [row(0, 22, 24), row(4, 26, 28)];
9483        let (out, at) = nests(&[Some(2)], &scopes, &extent(8), &rows);
9484        // The one the local is in and the one that is inside, numbered from zero for this
9485        // function, with the parent named by the entry it became rather than by where it was.
9486        assert_eq!(at.get(&1), Some(&0));
9487        assert_eq!(at.get(&2), Some(&1));
9488        assert_eq!(at.get(&0), None);
9489        assert_eq!(out.len(), 2);
9490        assert_eq!(out[0].parent, None);
9491        assert_eq!(out[1].parent, Some(0));
9492        assert_eq!(out[0].over, vec![rucc_debug::Reach { from: 0, len: 8 }]);
9493        assert_eq!(out[1].over, vec![rucc_debug::Reach { from: 0, len: 4 }]);
9494    }
9495
9496    #[test]
9497    fn a_local_written_straight_into_the_body_pulls_no_scope_in() {
9498        let scopes = [scope(None, 20, 30)];
9499        let rows = [row(0, 22, 24)];
9500        let (out, at) = nests(&[None], &scopes, &extent(4), &rows);
9501        assert_eq!(out, Vec::new());
9502        assert!(at.is_empty());
9503    }
9504
9505    #[test]
9506    fn a_scope_whose_code_all_went_away_is_still_one_of_the_functions_scopes() {
9507        // Nothing was built for the bytes it covers, so there is nowhere to say its names were
9508        // live. The entry is written anyway, since dropping it would move a local up into the
9509        // function and make it answer to a name it was not declared under.
9510        let scopes = [scope(None, 20, 30)];
9511        let rows = [row(0, 40, 44)];
9512        let (out, at) = nests(&[Some(0)], &scopes, &extent(4), &rows);
9513        assert_eq!(at.get(&0), Some(&0));
9514        assert_eq!(out.len(), 1);
9515        assert_eq!(out[0].over, Vec::new());
9516    }
9517}