Skip to main content

rucc_driver/
phase.rs

1//! The phase graph: what has to happen to each input file, in what order, and where the
2//! result goes.
3//!
4//! Design: `spec/04-driver-and-cli.md` section 4.2.
5//!
6//! The plan is computed before anything runs and is a plain data structure with no side
7//! effects, which is what makes `-###` possible and what makes this testable without a file
8//! system. Nothing in here reads a file or spawns a process. Executing the plan is M3, when
9//! there is something for the phases to do.
10
11use std::fmt::Write as _;
12
13use rucc_session::{EmitKind, Options, SaveTemps};
14use rucc_target::Os;
15
16use crate::link::Item;
17
18/// A step in the compilation of one input.
19///
20/// The order of the variants is the order of the pipeline, and the derived `Ord` is relied on
21/// when a mode flag truncates a sequence. `Compile` covers parsing through code generation,
22/// which is one phase from the driver's point of view because nothing between them can be
23/// stopped at from the command line.
24#[derive(Debug, Clone, Copy, PartialEq, Eq, PartialOrd, Ord, Hash)]
25pub enum Phase {
26    /// Translation phases 1 to 4, producing preprocessed source.
27    Preprocess,
28    /// Parse, check, optimize and generate code, producing assembly.
29    Compile,
30    /// Assemble, producing an object file.
31    Assemble,
32    /// Collect the objects into a static library.
33    ///
34    /// In front of the link rather than after it because the derived `Ord` is what truncates a
35    /// sequence, and every phase an archive needs is a phase a link needs too. No input's sequence
36    /// has this in it: an archive is one step for the whole command line, the way a link is, and
37    /// what each input contributes to it is an object.
38    Archive,
39    /// Link the objects into an executable or a shared library.
40    Link,
41}
42
43impl Phase {
44    /// The name used in `-###` output and in diagnostics.
45    #[must_use]
46    pub fn as_str(self) -> &'static str {
47        match self {
48            Phase::Preprocess => "preprocess",
49            Phase::Compile => "compile",
50            Phase::Assemble => "assemble",
51            Phase::Archive => "archive",
52            Phase::Link => "link",
53        }
54    }
55}
56
57impl std::fmt::Display for Phase {
58    fn fmt(&self, f: &mut std::fmt::Formatter<'_>) -> std::fmt::Result {
59        f.write_str(self.as_str())
60    }
61}
62
63/// What an input file is, which decides where in the pipeline it enters.
64#[derive(Debug, Clone, Copy, PartialEq, Eq, Hash)]
65pub enum InputKind {
66    /// C source. Extension `.c`, or `-x c`.
67    C,
68    /// A header compiled on its own. Extension `.h` with `-x c-header`, or `-x c-header`.
69    CHeader,
70    /// Already preprocessed C. Extension `.i`, or `-x cpp-output`.
71    PreprocessedC,
72    /// The IR this compiler prints. Extension `.ir`, or `-x ir`.
73    ///
74    /// Not a GCC input kind, because GCC has no textual IR. It is here because the IR's
75    /// printer and its parser are a pair, and a pair is only known to agree if something reads
76    /// back what was written: `rucc --emit=ir a.c -o a.ir` and then `rucc --emit=ir a.ir` are
77    /// two files a byte comparison has an opinion about, over whatever code is at hand rather
78    /// than over the modules a test happens to build.
79    Ir,
80    /// Assembly. Extension `.s`, or `-x assembler`.
81    Assembler,
82    /// Assembly that still needs the preprocessor. Extension `.S` or `.sx`, or
83    /// `-x assembler-with-cpp`.
84    AssemblerWithCpp,
85    /// An object file, an archive or a shared library. Anything the linker takes directly.
86    LinkerInput,
87}
88
89impl InputKind {
90    /// The name `-x` uses for this kind, where one exists.
91    #[must_use]
92    pub fn as_str(self) -> &'static str {
93        match self {
94            InputKind::C => "c",
95            InputKind::CHeader => "c-header",
96            InputKind::PreprocessedC => "cpp-output",
97            InputKind::Ir => "ir",
98            InputKind::Assembler => "assembler",
99            InputKind::AssemblerWithCpp => "assembler-with-cpp",
100            InputKind::LinkerInput => "linker-input",
101        }
102    }
103
104    /// Parses the argument of `-x`.
105    ///
106    /// # Errors
107    ///
108    /// Returns the offending name when it is not one we accept. C++ gets its own message,
109    /// because "unknown language c++" reads like an oversight and it is a decision.
110    pub fn from_x_arg(name: &str) -> Result<InputKind, XError> {
111        match name {
112            "c" => Ok(InputKind::C),
113            "c-header" => Ok(InputKind::CHeader),
114            "cpp-output" | "c-cpp-output" => Ok(InputKind::PreprocessedC),
115            "ir" => Ok(InputKind::Ir),
116            "assembler" => Ok(InputKind::Assembler),
117            "assembler-with-cpp" => Ok(InputKind::AssemblerWithCpp),
118            "c++" | "c++-header" | "c++-cpp-output" | "objective-c" | "objective-c++" => {
119                Err(XError::Unsupported(name.to_owned()))
120            }
121            _ => Err(XError::Unknown(name.to_owned())),
122        }
123    }
124
125    /// Classifies an input by its extension, the way `spec/04-driver-and-cli.md` section 4.2
126    /// tabulates it.
127    ///
128    /// An unrecognized extension is a linker input, which is GCC's behavior and is what makes
129    /// `rucc foo.o bar.builtin-suffix` work. The exception is a C++ extension, which is a
130    /// hard error rather than a confusing link failure later.
131    ///
132    /// # Errors
133    ///
134    /// Returns the extension when it names a language that is permanently out of scope.
135    pub fn from_path(path: &str) -> Result<InputKind, XError> {
136        let ext = extension(path);
137        match ext {
138            // Matched case-sensitively on purpose: `.S` and `.s` are different languages and
139            // conflating them is a real bug on case-insensitive file systems that GCC also
140            // has. The comment is here so the next person does not "fix" it.
141            "c" => Ok(InputKind::C),
142            "i" => Ok(InputKind::PreprocessedC),
143            "ir" => Ok(InputKind::Ir),
144            "h" => Ok(InputKind::CHeader),
145            "s" => Ok(InputKind::Assembler),
146            "S" | "sx" => Ok(InputKind::AssemblerWithCpp),
147            "cc" | "cpp" | "cxx" | "c++" | "C" | "hpp" | "hxx" | "ii" | "m" | "mm" => {
148                Err(XError::Unsupported(ext.to_owned()))
149            }
150            _ => Ok(InputKind::LinkerInput),
151        }
152    }
153
154    /// The full phase sequence for this kind, before any mode flag truncates it.
155    fn full_sequence(self) -> &'static [Phase] {
156        use Phase::{Assemble, Compile, Link, Preprocess};
157        match self {
158            InputKind::C | InputKind::CHeader => &[Preprocess, Compile, Assemble, Link],
159            InputKind::PreprocessedC | InputKind::Ir => &[Compile, Assemble, Link],
160            // Note the gap: assembly with a preprocessor skips `Compile` entirely. This is why
161            // the sequence is a list rather than a range over the enum.
162            InputKind::AssemblerWithCpp => &[Preprocess, Assemble, Link],
163            InputKind::Assembler => &[Assemble, Link],
164            InputKind::LinkerInput => &[Link],
165        }
166    }
167}
168
169/// Why an input or an `-x` argument was rejected.
170#[derive(Debug, Clone, PartialEq, Eq)]
171pub enum XError {
172    /// A language we do not know at all.
173    Unknown(String),
174    /// A language we know and will not implement.
175    Unsupported(String),
176}
177
178impl std::fmt::Display for XError {
179    fn fmt(&self, f: &mut std::fmt::Formatter<'_>) -> std::fmt::Result {
180        match self {
181            XError::Unknown(name) => {
182                write!(
183                    f,
184                    "unknown language `{name}`; \
185                     accepted: c, c-header, cpp-output, ir, assembler, assembler-with-cpp, none"
186                )
187            }
188            XError::Unsupported(name) => {
189                write!(
190                    f,
191                    "`{name}` is not C, and this compiler is only ever going to compile C; \
192                     see the not-in-scope list in spec/00-README.md"
193                )
194            }
195        }
196    }
197}
198
199impl std::error::Error for XError {}
200
201/// What one entry of the input list was written as.
202///
203/// Three things share the list because all three are positional and the position is what they mean.
204/// An archive is searched for what is undefined at the moment the linker reaches it, so a library
205/// named before the object that needs it contributes nothing. A great many of the linker's own
206/// options are a bracket around the files after them, so an option moved away from what it brackets
207/// says nothing at all. Keeping a list of files, a list of libraries and a list of linker words
208/// apart would lose the one fact each of them depends on.
209#[derive(Debug, Clone, Copy, PartialEq, Eq)]
210pub enum Role {
211    /// A path, which is a file this command line may have something to do to.
212    File,
213    /// `-l<name>`, which the linker resolves against its search path.
214    Library,
215    /// One word from `-Wl,` or `-Xlinker`, handed to the linker where the user wrote it.
216    Linker,
217}
218
219/// One input file, with the `-x` setting that was in effect where it appeared.
220#[derive(Debug, Clone, PartialEq, Eq)]
221pub struct Input {
222    /// The path as it was written on the command line, the name of a `-l` library, or one word
223    /// handed straight to the linker.
224    pub path: String,
225    /// The language forced by an earlier `-x`, if any. `-x none` clears it.
226    pub forced: Option<InputKind>,
227    /// Which of the three this is, and so what its position means.
228    pub role: Role,
229}
230
231impl Input {
232    /// An input with no `-x` in effect.
233    #[must_use]
234    pub fn new(path: impl Into<String>) -> Input {
235        Input { path: path.into(), forced: None, role: Role::File }
236    }
237
238    /// `-l<name>`, which is an input to the link and to nothing else.
239    #[must_use]
240    pub fn library(name: impl Into<String>) -> Input {
241        Input { path: name.into(), forced: None, role: Role::Library }
242    }
243
244    /// One word of `-Wl,` or `-Xlinker`, which is read by the linker and by nothing here.
245    #[must_use]
246    pub fn linker(arg: impl Into<String>) -> Input {
247        Input { path: arg.into(), forced: None, role: Role::Linker }
248    }
249
250    /// How this input is named in a message about it.
251    #[must_use]
252    pub fn named(&self) -> String {
253        match self.role {
254            Role::File => self.path.clone(),
255            Role::Library => format!("-l{}", self.path),
256            Role::Linker => format!("-Wl,{}", self.path),
257        }
258    }
259
260    /// What this input is, taking `-x` into account.
261    ///
262    /// # Errors
263    ///
264    /// Returns the extension when it names a language that is out of scope.
265    pub fn kind(&self) -> Result<InputKind, XError> {
266        if self.role != Role::File {
267            return Ok(InputKind::LinkerInput);
268        }
269        match self.forced {
270            Some(k) => Ok(k),
271            None => InputKind::from_path(&self.path),
272        }
273    }
274}
275
276/// Where the result of a job goes.
277#[derive(Debug, Clone, PartialEq, Eq)]
278pub enum Output {
279    /// Standard output, which is where `-E` writes when there is no `-o`.
280    Stdout,
281    /// A path the user can see and named, or that we derived from the input name.
282    File(String),
283    /// A file the link step consumes and nothing else ever sees. The name is a hint for
284    /// `-###` output; the real path is chosen in a temporary directory at execution time.
285    Temporary(String),
286}
287
288impl Output {
289    fn render(&self) -> String {
290        match self {
291            Output::Stdout => "-".to_owned(),
292            Output::File(p) => p.clone(),
293            Output::Temporary(p) => format!("{p} (temporary)"),
294        }
295    }
296
297    /// The path the link step reads, for an output that feeds it.
298    fn as_link_input(&self) -> Option<&str> {
299        match self {
300            Output::File(p) | Output::Temporary(p) => Some(p),
301            Output::Stdout => None,
302        }
303    }
304}
305
306/// Everything that has to happen to one input file.
307#[derive(Debug, Clone, PartialEq, Eq)]
308pub struct Job {
309    /// The input path as written.
310    pub input: String,
311    /// What we decided it is.
312    pub kind: InputKind,
313    /// The phases to run, in order. Empty when the input goes straight to the linker.
314    pub phases: Vec<Phase>,
315    /// Where the last phase writes.
316    pub output: Output,
317    /// What the files `-save-temps` keeps are called, without the suffix that says which one it
318    /// is, or `None` when there is nothing to keep.
319    ///
320    /// Nothing to keep is the usual case: the flag was not given, or it was and this job has no
321    /// step whose result the compilation would have thrown away. `-E -save-temps` is the second
322    /// of those, since the preprocessed text is the output and is already being written.
323    pub aux_base: Option<String>,
324}
325
326impl Job {
327    /// Where the preprocessed text goes when `-save-temps` asked for it to be kept.
328    ///
329    /// `None` when the flag was not given, when the input arrives preprocessed already and there
330    /// is no phase 4 to keep the result of, or when the text is this job's own output and is
331    /// being written anyway.
332    #[must_use]
333    pub fn saved_text(&self) -> Option<String> {
334        let base = self.aux_base.as_ref()?;
335        self.phases.contains(&Phase::Preprocess).then(|| format!("{base}.i"))
336    }
337
338    /// Where the assembly goes when `-save-temps` asked for it to be kept.
339    ///
340    /// `None` for the same reasons, the last of them being `-S`: the assembly is the output
341    /// there, and a copy of it under a second name is a file nobody asked for.
342    #[must_use]
343    pub fn saved_asm(&self) -> Option<String> {
344        let base = self.aux_base.as_ref()?;
345        let past = self.phases.last().is_some_and(|last| *last > Phase::Compile);
346        (past && self.phases.contains(&Phase::Compile)).then(|| format!("{base}.s"))
347    }
348}
349
350/// The link step, when there is one.
351#[derive(Debug, Clone, PartialEq, Eq)]
352pub struct LinkJob {
353    /// Objects and libraries, in command line order, because link order is semantic.
354    pub inputs: Vec<Item>,
355    /// The executable.
356    pub output: String,
357}
358
359/// The archive step, when there is one.
360#[derive(Debug, Clone, PartialEq, Eq)]
361pub struct ArchiveJob {
362    /// What the members are called inside the archive, in command line order.
363    ///
364    /// Command line order is the order they are written in, which is the stated order
365    /// `spec/cross-compile/13-distribution.md` section 13.6 asks for: the caller chose it and the
366    /// same command line produces the same archive. The names are the object file names, because
367    /// that is what `ar t` over anybody else's archive shows.
368    pub members: Vec<String>,
369    /// The archive.
370    pub output: String,
371}
372
373/// The whole plan for one invocation.
374#[derive(Debug, Clone, PartialEq, Eq)]
375pub struct Plan {
376    /// One per input, in command line order.
377    pub jobs: Vec<Job>,
378    /// The link step, or `None` when a mode flag stopped short of it.
379    pub link: Option<LinkJob>,
380    /// The archive step, which is there only under `--emit=archive` and is never there beside a
381    /// link: one command line produces one of the two.
382    pub archive: Option<ArchiveJob>,
383    /// Things worth saying under `-v` that are not errors, such as an object file passed on a
384    /// command line that is not linking.
385    pub notes: Vec<String>,
386    /// The argument of `-o` as it was written, if it was given.
387    ///
388    /// Kept alongside the paths it produced because the `-M` family needs the name rather than
389    /// the path: a make rule whose target is the object the build asked for is one the build
390    /// can read back, and a rule naming a temporary directory is one nothing will ever match.
391    pub output: Option<String>,
392}
393
394/// Why a command line could not be turned into a plan.
395#[derive(Debug, Clone, PartialEq, Eq)]
396pub struct PlanError {
397    /// Lowercase, no trailing period, the same shape as every other diagnostic.
398    pub message: String,
399}
400
401impl std::fmt::Display for PlanError {
402    fn fmt(&self, f: &mut std::fmt::Formatter<'_>) -> std::fmt::Result {
403        f.write_str(&self.message)
404    }
405}
406
407impl std::error::Error for PlanError {}
408
409fn plan_err(message: impl Into<String>) -> PlanError {
410    PlanError { message: message.into() }
411}
412
413/// The last phase that runs, given what the user asked to be emitted.
414///
415/// `--emit=tast` and the other intermediate dumps stop where `-S` stops, because they are
416/// produced inside the compile phase and there is nothing after them to run.
417#[must_use]
418pub fn last_phase(emit: EmitKind) -> Phase {
419    match emit {
420        EmitKind::Preprocessed => Phase::Preprocess,
421        EmitKind::Asm
422        | EmitKind::Tast
423        | EmitKind::Ir
424        | EmitKind::MirFinal
425        | EmitKind::SafetySummary
426        | EmitKind::TypeGranules => Phase::Compile,
427        EmitKind::Object => Phase::Assemble,
428        EmitKind::Archive => Phase::Archive,
429        EmitKind::Executable => Phase::Link,
430    }
431}
432
433/// The extension of a path, without the dot, or the empty string when there is none.
434fn extension(path: &str) -> &str {
435    let name = path.rsplit(['/', '\\']).next().unwrap_or(path);
436    match name.rfind('.') {
437        // A leading dot is a hidden file, not an extension, and `.` and `..` are not inputs.
438        Some(0) | None => "",
439        Some(i) => &name[i + 1..],
440    }
441}
442
443/// The last component of a path, which is the whole of it when there is no directory in it.
444fn file_part(path: &str) -> &str {
445    path.rsplit(['/', '\\']).next().unwrap_or(path)
446}
447
448/// The path with its extension taken off and its directory left on.
449///
450/// This is what a name derived from `-o` is built on, since `-o out/a.o` puts the files that go
451/// beside the object in `out` and not in the working directory.
452fn without_extension(path: &str) -> &str {
453    let start = path.rfind(['/', '\\']).map_or(0, |i| i + 1);
454    match path[start..].rfind('.') {
455        // A leading dot is a hidden file, not an extension, and `.` and `..` are not inputs.
456        Some(0) | None => path,
457        Some(i) => &path[..start + i],
458    }
459}
460
461/// The path without its extension, keeping any directory part off, because GCC writes the
462/// output into the current directory rather than next to the source.
463fn stem(path: &str) -> &str {
464    file_part(without_extension(path))
465}
466
467/// The name the files `-save-temps` keeps are built from, without the suffix that says which
468/// one it is.
469///
470/// GCC calls this the auxiliary base name, and it is the name of the file the compilation
471/// produces with the extension taken off: `-c a.c -o out/a.o` keeps `out/a.i` and `out/a.s`. A
472/// command line that links has one output for however many inputs, so the input's own name goes
473/// on the end and `a.c` under `-o out/prog` becomes `out/prog-a`. `-save-temps=cwd` is the same
474/// name with the directory taken off, which is the only thing the two spellings disagree about.
475///
476/// `collecting` is that one output, which is the link and the archive both. The archive always has
477/// an `-o`, so the default below is the link's.
478fn aux_base(opts: &Options, input: &str, output: Option<&str>, collecting: bool) -> String {
479    let named = match output {
480        Some(o) => without_extension(o),
481        // No `-o`, so the job worked its own name out, and a worked out name has no directory in
482        // it: the object of `sub/a.c` is `a.o` in the working directory, so what is kept beside
483        // it is in the working directory too.
484        None if collecting => stem(default_exe(opts)),
485        None => stem(input),
486    };
487    let named = if opts.save_temps == SaveTemps::Cwd { file_part(named) } else { named };
488    if collecting { format!("{named}-{}", stem(input)) } else { named.to_owned() }
489}
490
491/// The suffix a phase's output carries, for this target.
492fn suffix_for(phase: Phase, opts: &Options) -> &'static str {
493    match phase {
494        Phase::Preprocess => "i",
495        // The compile phase is where every intermediate dump comes out, and each of them is a
496        // different language, so each gets a name of its own. `rucc --emit=tast a.c` writing
497        // `a.s` would be a file that neither an assembler nor a reader could make sense of.
498        Phase::Compile => match opts.emit {
499            EmitKind::Tast => "tast",
500            EmitKind::Ir => "ir",
501            EmitKind::MirFinal => "mir",
502            // Two extensions rather than one, because the content is JSON and a tool that reads
503            // JSON should be able to tell by looking, and because `a.json` next to `a.c` says
504            // nothing about which of a build's several JSON files it is.
505            EmitKind::SafetySummary => "safety.json",
506            // Two extensions for the same reason, and text rather than JSON because this one
507            // is read by a person once and not by a build every time.
508            EmitKind::TypeGranules => "granules.txt",
509            _ => "s",
510        },
511        // MSVC-targeted builds expect `.obj`, and build systems written for that target look
512        // for it by name.
513        Phase::Assemble => {
514            if opts.target.os == Os::Windows {
515                "obj"
516            } else {
517                "o"
518            }
519        }
520        // Neither of the last two is a suffix anything derives: both write one file for the whole
521        // command line and both take its name from `-o`, and the archive requires one.
522        Phase::Archive | Phase::Link => "",
523    }
524}
525
526/// The default name of the linked output, which is GCC's `a.out` everywhere but Windows.
527fn default_exe(opts: &Options) -> &'static str {
528    if opts.target.os == Os::Windows { "a.exe" } else { "a.out" }
529}
530
531impl Plan {
532    /// Builds the plan for one invocation.
533    ///
534    /// `output` is the argument of `-o`, if it was given.
535    ///
536    /// # Errors
537    ///
538    /// Returns a message when the inputs and the mode flags do not describe a compilation:
539    /// an out of scope language, `-o` naming one file for several outputs, or nothing to do.
540    pub fn new(opts: &Options, inputs: &[Input], output: Option<&str>) -> Result<Plan, PlanError> {
541        if inputs.is_empty() {
542            return Err(plan_err("no input files"));
543        }
544        let last = last_phase(opts.emit);
545        let linking = last == Phase::Link;
546        let archiving = last == Phase::Archive;
547        // An archive has no default name. `a.out` is a convention old enough that a build which
548        // gets one knows what happened, and a `libwhatever.a` this made up would be a file the
549        // build then fails to find under the name it asked for.
550        if archiving && output.is_none() {
551            return Err(plan_err("an archive has no default name, so `--emit=archive` needs `-o`"));
552        }
553        // One output for however many inputs, which both of the collecting steps are. What it
554        // decides below is that no input names the output and that the objects are temporary.
555        let collecting = linking || archiving;
556
557        let mut kinds = Vec::with_capacity(inputs.len());
558        for input in inputs {
559            kinds.push(input.kind().map_err(|e| plan_err(format!("{}: {e}", input.path)))?);
560        }
561
562        // How many inputs actually write an output of their own. A `.o` on a `-c` line
563        // produces nothing, and neither does a `.s` on an `-E` line, so neither may count
564        // toward the `-o` check below. When linking there is exactly one output and it is the
565        // executable, so nothing counts.
566        let producing = if collecting {
567            0
568        } else {
569            kinds
570                .iter()
571                .filter(|k| **k != InputKind::LinkerInput)
572                .filter(|k| k.full_sequence().iter().any(|p| *p <= last))
573                .count()
574        };
575        if output.is_some() && !collecting && producing > 1 {
576            return Err(plan_err("cannot specify -o with multiple inputs when not linking"));
577        }
578
579        let mut notes = Vec::new();
580        let mut jobs = Vec::with_capacity(inputs.len());
581        let mut link_inputs = Vec::new();
582        let mut members = Vec::new();
583
584        for (input, kind) in inputs.iter().zip(kinds) {
585            // A word the user handed the linker is not a file and nothing here does anything to it,
586            // so it is neither a job nor something an archive could hold. It is in this list rather
587            // than beside the other link flags so that it reaches the linker among the files it was
588            // written among, which is the note on [`Role`]. On a command line that does not link it
589            // is dropped without a word, which is what GCC does with one.
590            if input.role == Role::Linker {
591                if linking {
592                    link_inputs.push(Item::Linker(input.path.clone()));
593                }
594                continue;
595            }
596
597            // An object, an archive or a shared library has nothing done to it. It reaches the
598            // linker under the name it was written with, and its name is not derived from
599            // anything, which is why this case is separate rather than falling out of the
600            // sequence below. Deriving it would rewrite `libm.a` into `libm.o`.
601            if kind == InputKind::LinkerInput {
602                // An object, an archive or a library on an archive command line is refused rather
603                // than noted and dropped. The symbol index is why: it needs the names each member
604                // defines, and this compiler knows those for a file it compiled and not for one it
605                // was handed, since nothing here reads an object file back. Carrying on and
606                // leaving the file out would be an archive that is quietly missing half of what
607                // was asked for, which a link finds out about much later.
608                if archiving {
609                    let named = input.named();
610                    return Err(plan_err(format!(
611                        "{named}: an archive is written from the objects this command line \
612                         compiles, and the symbol index in it needs the names each member \
613                         defines, which this compiler knows for a file it compiled and not for \
614                         one it was handed"
615                    )));
616                }
617                if linking {
618                    link_inputs.push(if input.role == Role::Library {
619                        Item::Library(input.path.clone())
620                    } else {
621                        Item::File(input.path.clone())
622                    });
623                } else {
624                    // GCC warns and carries on here, and configure scripts rely on that, so
625                    // this is a note rather than an error.
626                    notes.push(format!(
627                        "{}: linker input unused because linking was not requested",
628                        input.named()
629                    ));
630                }
631                // A library is not a file this compilation does anything to, so it gets no job.
632                // One would print a line under `-###` saying nothing happens to it, next to the
633                // note above already saying so.
634                if input.role == Role::Library {
635                    continue;
636                }
637                jobs.push(Job {
638                    input: input.path.clone(),
639                    kind,
640                    phases: Vec::new(),
641                    output: Output::File(input.path.clone()),
642                    aux_base: None,
643                });
644                continue;
645            }
646
647            let phases: Vec<Phase> =
648                kind.full_sequence().iter().copied().filter(|p| *p <= last).collect();
649            // `rucc -E a.s` lands here: assembly enters at `Assemble`, which is past where
650            // `-E` stops, so there is no phase left to run. GCC carries on rather than
651            // failing, and so do we.
652            let Some(&final_phase) = phases.last() else {
653                notes.push(format!(
654                    "{}: input unused because it enters the pipeline after the last phase \
655                     the mode flags asked for",
656                    input.path
657                ));
658                jobs.push(Job {
659                    input: input.path.clone(),
660                    kind,
661                    phases,
662                    output: Output::File(input.path.clone()),
663                    aux_base: None,
664                });
665                continue;
666            };
667            let named = if producing == 1 { output } else { None };
668            // A job that stops at the preprocessed text has nothing to keep, since that text is
669            // what it writes. Everything past it does: the text and, once there is a back end
670            // step after it, the assembly.
671            let aux = (opts.save_temps.wanted() && final_phase > Phase::Preprocess)
672                .then(|| aux_base(opts, &input.path, output, collecting));
673            let out = if final_phase == Phase::Link || archiving {
674                // The job stops at the object, and the step below takes it from here. Under
675                // `-save-temps` the object is one of the files being kept, so it is written where
676                // the person can see it rather than in a directory that goes away.
677                let ext = suffix_for(Phase::Assemble, opts);
678                match &aux {
679                    Some(base) => Output::File(format!("{base}.{ext}")),
680                    None => Output::Temporary(format!("{}.{ext}", stem(&input.path))),
681                }
682            } else if let Some(o) = named {
683                // `-o -` is standard output rather than a file of that name, which is what gcc
684                // does for everything it compiles, the object file included. Its link step is
685                // the exception and writes a file called `-`, because the name goes to the
686                // linker and the linker takes it literally.
687                if o == "-" { Output::Stdout } else { Output::File(o.to_owned()) }
688            } else if final_phase == Phase::Preprocess {
689                // `-E` writes to standard output unless it was given a name, which is the one
690                // place where the default is not a file.
691                Output::Stdout
692            } else {
693                Output::File(format!("{}.{}", stem(&input.path), suffix_for(final_phase, opts)))
694            };
695            // An input whose output has the name it has itself would be read and then written
696            // over, and what it held would be gone. GCC compares the two names the way they
697            // were written and so does this, which catches `rucc --emit=ir a.ir` and leaves
698            // the same file reached by two different paths to the file system.
699            if let Output::File(path) = &out {
700                if *path == input.path {
701                    return Err(plan_err(format!(
702                        "input file `{}` is the same as the output file",
703                        input.path
704                    )));
705                }
706            }
707
708            if linking {
709                if let Some(p) = out.as_link_input() {
710                    link_inputs.push(Item::File(p.to_owned()));
711                }
712            }
713            if archiving {
714                // The name inside the archive rather than the path the object is written to, which
715                // under `-save-temps` is a path with a directory on it and otherwise is a
716                // temporary. What `ar t` shows is a file name, so that is what goes in.
717                members.push(format!(
718                    "{}.{}",
719                    stem(&input.path),
720                    suffix_for(Phase::Assemble, opts)
721                ));
722            }
723            jobs.push(Job { input: input.path.clone(), kind, phases, output: out, aux_base: aux });
724        }
725
726        let link = linking.then(|| LinkJob {
727            inputs: link_inputs,
728            output: output.unwrap_or(default_exe(opts)).to_owned(),
729        });
730        let archive = archiving.then(|| ArchiveJob {
731            members,
732            // Checked at the top, so there is an `-o` here. Saying so is cheaper than an unwrap
733            // that would have to be explained.
734            output: output.unwrap_or_default().to_owned(),
735        });
736
737        Ok(Plan { jobs, link, archive, notes, output: output.map(str::to_owned) })
738    }
739
740    /// Renders the plan the way `-###` prints it.
741    ///
742    /// One line per job, then the link line. This is meant to be read next to `gcc -###`
743    /// output when a build behaves differently under the two compilers, so it says what will
744    /// happen rather than how it is represented.
745    #[must_use]
746    pub fn render(&self) -> String {
747        let mut out = String::new();
748        for note in &self.notes {
749            let _ = writeln!(out, "note: {note}");
750        }
751        for job in &self.jobs {
752            // A linker input has no phases of its own. It shows up in the link line below, or
753            // in a note above when there is no link line, and repeating it here would suggest
754            // something happens to it.
755            if job.phases.is_empty() {
756                continue;
757            }
758            let names: Vec<&str> = job.phases.iter().map(|p| p.as_str()).collect();
759            let _ = writeln!(out, "{}: {} -> {}", job.input, names.join(", "), job.output.render());
760            // The files `-save-temps` keeps, which are as much a part of what will happen as the
761            // output is and are the only reason the flag was passed.
762            let kept: Vec<String> =
763                [job.saved_text(), job.saved_asm()].into_iter().flatten().collect();
764            if !kept.is_empty() {
765                let _ = writeln!(out, "{}: keeping {}", job.input, kept.join(", "));
766            }
767        }
768        if let Some(link) = &self.link {
769            let names: Vec<String> = link.inputs.iter().map(ToString::to_string).collect();
770            let _ = writeln!(out, "link: {} -> {}", names.join(" "), link.output);
771        }
772        if let Some(archive) = &self.archive {
773            let _ = writeln!(out, "archive: {} -> {}", archive.members.join(" "), archive.output);
774        }
775        out
776    }
777}
778
779#[cfg(test)]
780mod tests {
781    use rucc_session::Options;
782
783    use super::*;
784
785    fn opts(triple: &str) -> Options {
786        Options::new(triple.parse().expect("test triple"))
787    }
788
789    fn linux() -> Options {
790        opts("x86_64-unknown-linux-gnu")
791    }
792
793    fn plan(o: &Options, paths: &[&str], output: Option<&str>) -> Plan {
794        let inputs: Vec<Input> = paths.iter().map(|p| Input::new(*p)).collect();
795        Plan::new(o, &inputs, output).expect("expected a plan")
796    }
797
798    #[test]
799    fn extensions_map_to_the_table_in_the_spec() {
800        assert_eq!(InputKind::from_path("a.c").unwrap(), InputKind::C);
801        assert_eq!(InputKind::from_path("a.i").unwrap(), InputKind::PreprocessedC);
802        assert_eq!(InputKind::from_path("a.ir").unwrap(), InputKind::Ir);
803        assert_eq!(InputKind::from_path("a.h").unwrap(), InputKind::CHeader);
804        assert_eq!(InputKind::from_path("a.s").unwrap(), InputKind::Assembler);
805        assert_eq!(InputKind::from_path("a.S").unwrap(), InputKind::AssemblerWithCpp);
806        assert_eq!(InputKind::from_path("a.sx").unwrap(), InputKind::AssemblerWithCpp);
807        assert_eq!(InputKind::from_path("a.o").unwrap(), InputKind::LinkerInput);
808        assert_eq!(InputKind::from_path("libm.a").unwrap(), InputKind::LinkerInput);
809        assert_eq!(InputKind::from_path("libm.so.6").unwrap(), InputKind::LinkerInput);
810    }
811
812    #[test]
813    fn ir_enters_where_preprocessed_c_does_and_needs_no_preprocessor() {
814        // It is the compiler's own output coming back in, so the phases in front of the walk
815        // have already happened to it and the ones after it are the ones still to run.
816        assert_eq!(InputKind::from_x_arg("ir").unwrap(), InputKind::Ir);
817        assert_eq!(InputKind::Ir.as_str(), "ir");
818        assert_eq!(InputKind::Ir.full_sequence(), InputKind::PreprocessedC.full_sequence());
819        assert!(!InputKind::Ir.full_sequence().contains(&Phase::Preprocess));
820    }
821
822    #[test]
823    fn an_input_whose_output_has_its_own_name_is_refused_rather_than_written_over() {
824        // `rucc --emit=ir a.ir` would read the file and then write the result over it, and
825        // what it held would be gone.
826        let mut o = linux();
827        o.emit = EmitKind::Ir;
828        let inputs = [Input::new("a.ir")];
829        let error = Plan::new(&o, &inputs, None).expect_err("expected this to be refused");
830        assert!(error.message.contains("is the same as the output file"), "{error}");
831        // Naming it something else is fine, and so is the same name reached through `-o`
832        // being refused for the same reason.
833        assert!(Plan::new(&o, &inputs, Some("b.ir")).is_ok());
834        assert!(Plan::new(&o, &inputs, Some("a.ir")).is_err());
835    }
836
837    #[test]
838    fn capital_s_and_small_s_are_different_languages() {
839        // On a case-insensitive file system it is tempting to fold these together. They are
840        // not the same: one runs the preprocessor and one does not.
841        let hi = InputKind::from_path("a.S").unwrap();
842        let lo = InputKind::from_path("a.s").unwrap();
843        assert_ne!(hi, lo);
844        assert!(hi.full_sequence().contains(&Phase::Preprocess));
845        assert!(!lo.full_sequence().contains(&Phase::Preprocess));
846    }
847
848    #[test]
849    fn a_cplusplus_source_says_why_rather_than_failing_at_link_time() {
850        let e = InputKind::from_path("a.cpp").unwrap_err();
851        assert!(format!("{e}").contains("only ever going to compile C"), "{e}");
852        let e = InputKind::from_x_arg("c++").unwrap_err();
853        assert!(matches!(e, XError::Unsupported(_)), "{e:?}");
854    }
855
856    #[test]
857    fn a_file_with_no_extension_goes_to_the_linker() {
858        assert_eq!(InputKind::from_path("crt1").unwrap(), InputKind::LinkerInput);
859        assert_eq!(InputKind::from_path(".bashrc").unwrap(), InputKind::LinkerInput);
860    }
861
862    #[test]
863    fn the_default_line_compiles_and_links_to_a_out() {
864        let p = plan(&linux(), &["a.c"], None);
865        assert_eq!(
866            p.jobs[0].phases,
867            vec![Phase::Preprocess, Phase::Compile, Phase::Assemble, Phase::Link]
868        );
869        assert_eq!(p.jobs[0].output, Output::Temporary("a.o".into()));
870        let link = p.link.expect("expected a link step");
871        assert_eq!(link.inputs, vec![Item::File("a.o".into())]);
872        assert_eq!(link.output, "a.out");
873    }
874
875    #[test]
876    fn dash_c_stops_at_the_object_and_names_it_after_the_source() {
877        let mut o = linux();
878        o.emit = EmitKind::Object;
879        let p = plan(&o, &["src/a.c", "src/b.c"], None);
880        assert!(p.link.is_none());
881        assert_eq!(p.jobs[0].output, Output::File("a.o".into()));
882        assert_eq!(p.jobs[1].output, Output::File("b.o".into()));
883        // Next to the source is what people expect and it is not what GCC does. The object
884        // lands in the current directory.
885        assert_eq!(p.jobs[0].phases.last(), Some(&Phase::Assemble));
886    }
887
888    #[test]
889    fn dash_e_writes_to_stdout_unless_it_is_given_a_name() {
890        let mut o = linux();
891        o.emit = EmitKind::Preprocessed;
892        assert_eq!(plan(&o, &["a.c"], None).jobs[0].output, Output::Stdout);
893        assert_eq!(plan(&o, &["a.c"], Some("a.i")).jobs[0].output, Output::File("a.i".into()));
894    }
895
896    #[test]
897    fn a_name_of_one_dash_is_standard_output_and_not_a_file_called_that() {
898        let mut o = linux();
899        o.emit = EmitKind::Preprocessed;
900        assert_eq!(plan(&o, &["a.c"], Some("-")).jobs[0].output, Output::Stdout);
901        o.emit = EmitKind::Object;
902        assert_eq!(plan(&o, &["a.c"], Some("-")).jobs[0].output, Output::Stdout);
903        // The linker is handed the name and makes a file of it, which is gcc's behaviour and
904        // is the one place the dash is not standard output.
905        let p = plan(&linux(), &["a.c"], Some("-"));
906        assert_eq!(p.link.expect("a link step").output, "-");
907    }
908
909    #[test]
910    fn dash_s_produces_assembly_named_after_the_source() {
911        let mut o = linux();
912        o.emit = EmitKind::Asm;
913        let p = plan(&o, &["dir/a.c"], None);
914        assert_eq!(p.jobs[0].output, Output::File("a.s".into()));
915        assert_eq!(p.jobs[0].phases, vec![Phase::Preprocess, Phase::Compile]);
916    }
917
918    #[test]
919    fn an_already_preprocessed_file_skips_the_preprocessor() {
920        let p = plan(&linux(), &["a.i"], None);
921        assert_eq!(p.jobs[0].phases, vec![Phase::Compile, Phase::Assemble, Phase::Link]);
922    }
923
924    #[test]
925    fn assembly_with_a_capital_s_is_preprocessed_but_not_compiled() {
926        let p = plan(&linux(), &["a.S"], None);
927        assert_eq!(p.jobs[0].phases, vec![Phase::Preprocess, Phase::Assemble, Phase::Link]);
928        assert!(!p.jobs[0].phases.contains(&Phase::Compile));
929    }
930
931    #[test]
932    fn objects_on_the_line_reach_the_linker_in_the_order_they_were_written() {
933        // Link order is semantic. A plan that reorders it is a plan that produces a different
934        // program, and the failure would be a missing symbol nobody could explain.
935        let p = plan(&linux(), &["a.o", "b.c", "libm.a"], None);
936        let link = p.link.expect("expected a link step");
937        assert_eq!(
938            link.inputs,
939            vec![Item::File("a.o".into()), Item::File("b.o".into()), Item::File("libm.a".into()),]
940        );
941    }
942
943    #[test]
944    fn an_object_on_a_dash_c_line_is_a_note_rather_than_an_error() {
945        // Configure scripts do this. Erroring here fails builds that work under GCC.
946        let mut o = linux();
947        o.emit = EmitKind::Object;
948        let p = plan(&o, &["a.c", "b.o"], None);
949        assert!(p.jobs[1].phases.is_empty());
950        assert_eq!(p.notes.len(), 1);
951        assert!(p.notes[0].contains("linker input unused"), "{:?}", p.notes);
952    }
953
954    #[test]
955    fn dash_o_with_several_compilations_is_rejected() {
956        let mut o = linux();
957        o.emit = EmitKind::Object;
958        let inputs = [Input::new("a.c"), Input::new("b.c")];
959        let e = Plan::new(&o, &inputs, Some("out.o")).unwrap_err();
960        assert!(e.message.contains("multiple inputs"), "{}", e.message);
961    }
962
963    #[test]
964    fn dash_o_with_one_compilation_and_some_objects_is_fine() {
965        // `rucc -c -o out.o a.c b.o` has exactly one thing to write, so the check above must
966        // not count the object.
967        let mut o = linux();
968        o.emit = EmitKind::Object;
969        let inputs = [Input::new("a.c"), Input::new("b.o")];
970        let p = Plan::new(&o, &inputs, Some("out.o")).expect("expected a plan");
971        assert_eq!(p.jobs[0].output, Output::File("out.o".into()));
972    }
973
974    #[test]
975    fn dash_x_overrides_the_extension() {
976        let inputs = [Input { path: "a.txt".into(), forced: Some(InputKind::C), role: Role::File }];
977        let p = Plan::new(&linux(), &inputs, None).expect("expected a plan");
978        assert_eq!(p.jobs[0].kind, InputKind::C);
979        assert_eq!(p.jobs[0].phases.first(), Some(&Phase::Preprocess));
980    }
981
982    #[test]
983    fn windows_gets_obj_and_a_exe() {
984        let o = opts("x86_64-pc-windows-msvc");
985        let p = plan(&o, &["a.c"], None);
986        assert_eq!(p.jobs[0].output, Output::Temporary("a.obj".into()));
987        assert_eq!(p.link.expect("expected a link step").output, "a.exe");
988    }
989
990    /// The archive is the link's shape rather than `-c`'s: one file out of however many inputs.
991    #[test]
992    fn an_archive_is_one_file_however_many_inputs_there_are() {
993        let mut o = linux();
994        o.emit = EmitKind::Archive;
995        let p = plan(&o, &["a.c", "sub/b.c"], Some("out/libx.a"));
996        assert_eq!(p.jobs.len(), 2);
997        for job in &p.jobs {
998            // Each input stops at its object, which is where `-c` stops, and the object is a file
999            // nobody asked for and nobody sees: what was asked for is the archive.
1000            assert_eq!(job.phases.last(), Some(&Phase::Assemble), "{}", job.input);
1001            assert!(matches!(job.output, Output::Temporary(_)), "{:?}", job.output);
1002        }
1003        let archive = p.archive.expect("an archive step");
1004        assert_eq!(archive.members, ["a.o", "b.o"]);
1005        assert_eq!(archive.output, "out/libx.a");
1006        assert!(p.link.is_none(), "one command line produces one of the two and not both");
1007    }
1008
1009    #[test]
1010    fn a_member_is_called_what_an_object_is_called_on_this_target() {
1011        let mut o = opts("x86_64-pc-windows-msvc");
1012        o.emit = EmitKind::Archive;
1013        let p = plan(&o, &["a.c"], Some("x.lib"));
1014        assert_eq!(p.archive.expect("an archive step").members, ["a.obj"]);
1015    }
1016
1017    /// `a.out` is a convention old enough that a build which gets one knows what happened. A
1018    /// `libsomething.a` invented here would be a file the build then fails to find.
1019    #[test]
1020    fn an_archive_has_no_default_name() {
1021        let mut o = linux();
1022        o.emit = EmitKind::Archive;
1023        let inputs = [Input::new("a.c")];
1024        let error = Plan::new(&o, &inputs, None).expect_err("no name for the archive");
1025        assert!(error.message.contains("needs `-o`"), "{error}");
1026    }
1027
1028    /// An `ar` would take these. This cannot, and says so rather than writing an archive with
1029    /// half of what was asked for in it.
1030    #[test]
1031    fn something_this_compilation_did_not_produce_cannot_go_into_an_archive() {
1032        let mut o = linux();
1033        o.emit = EmitKind::Archive;
1034        for handed in [Input::new("b.o"), Input::library("m")] {
1035            let inputs = [Input::new("a.c"), handed];
1036            let error = Plan::new(&o, &inputs, Some("libx.a")).expect_err("not ours to index");
1037            assert!(error.message.contains("names each member"), "{error}");
1038        }
1039    }
1040
1041    #[test]
1042    fn the_plan_says_what_goes_into_the_archive() {
1043        let mut o = linux();
1044        o.emit = EmitKind::Archive;
1045        let text = plan(&o, &["a.c", "b.c"], Some("libx.a")).render();
1046        assert!(text.contains("archive: a.o b.o -> libx.a"), "{text}");
1047        assert!(!text.contains("link:"), "{text}");
1048    }
1049
1050    #[test]
1051    fn the_intermediate_dumps_stop_where_dash_s_stops() {
1052        for emit in [
1053            EmitKind::Tast,
1054            EmitKind::Ir,
1055            EmitKind::MirFinal,
1056            EmitKind::SafetySummary,
1057            EmitKind::TypeGranules,
1058        ] {
1059            assert_eq!(last_phase(emit), Phase::Compile, "{emit:?}");
1060        }
1061    }
1062
1063    #[test]
1064    fn each_intermediate_dump_is_a_language_of_its_own_and_gets_a_suffix_of_its_own() {
1065        // They all come out of the compile phase and none of them is assembly, so writing any
1066        // of them to `a.s` would leave a file that neither an assembler nor a reader can use.
1067        for (emit, name) in [
1068            (EmitKind::Asm, "a.s"),
1069            (EmitKind::Tast, "a.tast"),
1070            (EmitKind::Ir, "a.ir"),
1071            (EmitKind::MirFinal, "a.mir"),
1072            (EmitKind::SafetySummary, "a.safety.json"),
1073            (EmitKind::TypeGranules, "a.granules.txt"),
1074        ] {
1075            let mut o = linux();
1076            o.emit = emit;
1077            assert_eq!(plan(&o, &["a.c"], None).jobs[0].output, Output::File(name.into()));
1078        }
1079    }
1080
1081    #[test]
1082    fn an_input_that_enters_after_the_last_phase_is_a_note_rather_than_an_error() {
1083        // `rucc -E a.s` has nothing to preprocess. GCC carries on, and a configure script
1084        // that probes with a mixed input list depends on that.
1085        let mut o = linux();
1086        o.emit = EmitKind::Preprocessed;
1087        let p = plan(&o, &["a.c", "b.s"], None);
1088        assert!(p.jobs[1].phases.is_empty());
1089        assert_eq!(p.notes.len(), 1);
1090        assert!(p.notes[0].contains("after the last phase"), "{:?}", p.notes);
1091        // And it must not count against `-o`, because only one file is being written.
1092        let inputs = [Input::new("a.c"), Input::new("b.s")];
1093        assert!(Plan::new(&o, &inputs, Some("out.i")).is_ok());
1094    }
1095
1096    #[test]
1097    fn no_inputs_is_an_error() {
1098        assert!(Plan::new(&linux(), &[], None).is_err());
1099    }
1100
1101    /// The plan for `paths` under `-save-temps` in the spelling `kind`.
1102    fn keeping(kind: SaveTemps, emit: EmitKind, paths: &[&str], output: Option<&str>) -> Plan {
1103        let mut o = linux();
1104        o.emit = emit;
1105        o.save_temps = kind;
1106        plan(&o, paths, output)
1107    }
1108
1109    /// What one job of that plan keeps, in the order the files are produced.
1110    fn kept(plan: &Plan, at: usize) -> Vec<String> {
1111        [plan.jobs[at].saved_text(), plan.jobs[at].saved_asm()].into_iter().flatten().collect()
1112    }
1113
1114    #[test]
1115    fn the_files_that_are_kept_land_beside_the_output_and_not_where_the_manual_says() {
1116        // gcc 16's bare `-save-temps` is `-save-temps=obj`, whatever its manual says, so
1117        // `-o out/t.o` puts them in `out` and not in the working directory. Both spellings are
1118        // here because the whole of the difference between them is the directory.
1119        let p = keeping(SaveTemps::Object, EmitKind::Object, &["t.c"], Some("out/t.o"));
1120        assert_eq!(kept(&p, 0), vec!["out/t.i", "out/t.s"]);
1121        let p = keeping(SaveTemps::Cwd, EmitKind::Object, &["t.c"], Some("out/t.o"));
1122        assert_eq!(kept(&p, 0), vec!["t.i", "t.s"]);
1123    }
1124
1125    #[test]
1126    fn the_name_comes_off_the_output_rather_than_off_the_input_that_produced_it() {
1127        // `-o out/x.o` keeps `x.i` and not `t.i`, and an output with no extension on it keeps
1128        // the whole of the name it was given.
1129        let p = keeping(SaveTemps::Cwd, EmitKind::Object, &["t.c"], Some("out/x.o"));
1130        assert_eq!(kept(&p, 0), vec!["x.i", "x.s"]);
1131        let p = keeping(SaveTemps::Object, EmitKind::Object, &["t.c"], Some("out/noext"));
1132        assert_eq!(kept(&p, 0), vec!["out/noext.i", "out/noext.s"]);
1133    }
1134
1135    #[test]
1136    fn without_a_name_they_are_called_after_the_input_and_are_where_the_object_would_be() {
1137        // The object of `sub/u.c` is `u.o` in the working directory, so what is kept beside it
1138        // is in the working directory as well, under both spellings.
1139        for kind in [SaveTemps::Object, SaveTemps::Cwd] {
1140            let p = keeping(kind, EmitKind::Object, &["sub/u.c"], None);
1141            assert_eq!(kept(&p, 0), vec!["u.i", "u.s"], "{kind:?}");
1142            assert_eq!(p.jobs[0].output, Output::File("u.o".into()), "{kind:?}");
1143        }
1144    }
1145
1146    #[test]
1147    fn a_command_line_that_links_names_them_after_the_executable_and_the_input() {
1148        // One output for however many inputs, so the input's own name goes on the end and two
1149        // files that would otherwise both be `prog.i` are two files.
1150        let p = keeping(SaveTemps::Object, EmitKind::Executable, &["t.c", "sub/u.c"], Some("o/p"));
1151        assert_eq!(kept(&p, 0), vec!["o/p-t.i", "o/p-t.s"]);
1152        assert_eq!(kept(&p, 1), vec!["o/p-u.i", "o/p-u.s"]);
1153        // With no `-o` the executable is `a.out`, and the `a` of it is what the files are named
1154        // from, which is where `a-t.i` comes from on a command line nobody wrote an `a` on.
1155        let p = keeping(SaveTemps::Object, EmitKind::Executable, &["t.c"], None);
1156        assert_eq!(kept(&p, 0), vec!["a-t.i", "a-t.s"]);
1157    }
1158
1159    #[test]
1160    fn the_object_a_link_reads_is_kept_rather_than_written_where_it_will_be_removed() {
1161        // Without the flag it goes in a directory that is gone by the end of the run, and that
1162        // is the one thing `-save-temps` cannot leave true: the object is one of the files it
1163        // was asked to keep.
1164        let p = keeping(SaveTemps::Object, EmitKind::Executable, &["t.c"], Some("out/prog"));
1165        assert_eq!(p.jobs[0].output, Output::File("out/prog-t.o".into()));
1166        let plain = plan(&linux(), &["t.c"], Some("out/prog"));
1167        assert_eq!(plain.jobs[0].output, Output::Temporary("t.o".into()));
1168    }
1169
1170    #[test]
1171    fn a_step_whose_result_is_already_being_written_is_not_kept_a_second_time() {
1172        // `-E` writes the preprocessed text, so there is nothing left over to keep, and `-S`
1173        // writes the assembly and keeps only the text that came before it.
1174        let p = keeping(SaveTemps::Object, EmitKind::Preprocessed, &["t.c"], None);
1175        assert_eq!(p.jobs[0].aux_base, None);
1176        assert_eq!(kept(&p, 0), Vec::<String>::new());
1177        let p = keeping(SaveTemps::Object, EmitKind::Asm, &["t.c"], None);
1178        assert_eq!(kept(&p, 0), vec!["t.i"]);
1179    }
1180
1181    #[test]
1182    fn an_input_that_arrives_preprocessed_has_no_text_of_its_own_to_keep() {
1183        // There is no phase 4 to keep the result of, and the file the compilation read is the
1184        // one that would have been written, which is already on the disk under its own name.
1185        let p = keeping(SaveTemps::Object, EmitKind::Object, &["t.i"], None);
1186        assert_eq!(kept(&p, 0), vec!["t.s"]);
1187        // And an input the linker takes directly goes through no step at all.
1188        let p = keeping(SaveTemps::Object, EmitKind::Executable, &["t.o"], None);
1189        assert_eq!(p.jobs[0].aux_base, None);
1190    }
1191
1192    #[test]
1193    fn nothing_is_kept_when_the_flag_was_not_given() {
1194        let p = plan(&linux(), &["t.c"], None);
1195        assert_eq!(p.jobs[0].aux_base, None);
1196        assert_eq!(kept(&p, 0), Vec::<String>::new());
1197    }
1198
1199    #[test]
1200    fn the_rendering_says_what_will_happen() {
1201        let p = plan(&linux(), &["a.c", "b.o"], None);
1202        let text = p.render();
1203        assert!(
1204            text.contains("a.c: preprocess, compile, assemble, link -> a.o (temporary)"),
1205            "{text}"
1206        );
1207        assert!(text.contains("link: a.o b.o -> a.out"), "{text}");
1208        // The object has nothing done to it, so it appears once, in the link line.
1209        assert_eq!(text.matches("b.o").count(), 1, "{text}");
1210    }
1211
1212    #[test]
1213    fn the_rendering_names_the_files_that_will_be_kept() {
1214        // `-###` is what will happen, and under `-save-temps` two more files being written is
1215        // part of that. It is also the only way to see the names without running a compilation.
1216        let p = keeping(SaveTemps::Object, EmitKind::Executable, &["a.c"], None);
1217        let text = p.render();
1218        assert!(text.contains("a.c: keeping a-a.i, a-a.s"), "{text}");
1219        assert!(!plan(&linux(), &["a.c"], None).render().contains("keeping"));
1220    }
1221}