rucc_driver/lib.rs
1//! The driver: command line parsing, the phase graph, job scheduling and the linker
2//! invocation.
3//!
4//! Design: `spec/04-driver-and-cli.md`. Layer rank 13, see `spec/18-package-layout.md`.
5//!
6//! This is the only crate that is allowed to know the process exists. It reads the command
7//! line, touches the file system, spawns the linker and writes to the terminal, and it hands
8//! everything below it a [`Session`]. The binary crate is a `main` that calls
9//! [`run`] and nothing else, so that the whole driver is reachable from a test.
10//!
11//! # Status
12//!
13//! `--help`, `--version` and `--print-config` are real, which is the `M0` exit criterion in
14//! `spec/17-milestones.md`. The phase graph is real and `-###` prints it, and the scheduler
15//! that will run it is real and tested.
16//!
17//! Two phases run. `-E` reads the file, runs phase 4 over it and writes the result, to `-o` or
18//! to standard output. `--emit=tast` carries on through phase 7, the parse and the checking,
19//! and writes the typed tree. The flags those two read are real with them, which is `-D`, `-U`,
20//! `-I`, `-I-`, `-iquote`, `-isystem`, `-idirafter`, `-iprefix`, `-iwithprefix`,
21//! `-iwithprefixbefore`, `-include`, `-imacros`, `--sysroot=`, `-isysroot`, `-P`, `-std=`,
22//! `-fgnuc-version=`, `-ansi`, `-ffreestanding`, `-fno-builtin`, `-fno-builtin-<name>`,
23//! `-fgnu89-inline`, `-pedantic` and `-Werror`.
24//! The phases after them still say they are not implemented.
25//!
26//! This crate is tier 3 in `spec/18-package-layout.md` section 18.5: its Rust API is
27//! explicitly unstable and will change without a major version bump.
28
29#![doc(html_root_url = "https://docs.rs/rucc-driver/0.10.22")]
30
31pub mod cache;
32pub mod compile;
33pub mod deps;
34pub mod library;
35pub mod link;
36mod map;
37pub mod phase;
38pub mod preprocess;
39pub mod schedule;
40
41use std::fmt::Write as _;
42use std::io::Write as _;
43use std::path::PathBuf;
44
45use rucc_codegen::coverage::{self, Fired};
46use rucc_codegen::pressure::Pressure;
47use rucc_pp::Dependency;
48use rucc_session::{
49 Compress, Control, Dumps, EmitKind, Hook, Options, Pic, PrefixMap, Preinclude, Protector,
50 SaveTemps, Session, Std, Wrapping, runtime,
51};
52use rucc_sysroot::{Manifest, Sysroot};
53use rucc_target::Triple;
54
55use crate::link::LinkOptions;
56
57pub use crate::compile::{Artifact, Compiled, Temps, compile, compile_ir};
58pub use crate::phase::{Input, InputKind, Job, LinkJob, Output, Phase, Plan};
59pub use crate::preprocess::{OsFileSystem, Preprocessed, preprocess};
60pub use crate::schedule::Jobs;
61
62/// The compiler's version, taken from the workspace manifest.
63pub const VERSION: &str = env!("CARGO_PKG_VERSION");
64
65/// What the command line asked for.
66#[derive(Debug, Clone, PartialEq, Eq)]
67pub enum Action {
68 /// Print usage and exit successfully.
69 Help,
70 /// Print the version and exit successfully.
71 Version,
72 /// Print one line and exit successfully, which is what the `-dump` and `-print` family do.
73 ///
74 /// A build system asks these before it compiles anything, and what it does with the answer
75 /// is paste it into a path or into another command line, so each one is a single line with
76 /// no decoration around it.
77 Print(String),
78 /// Print the resolved configuration and exit successfully.
79 PrintConfig(Box<Options>),
80 /// Print the passes the level will run and exit successfully.
81 PrintPipeline(Box<Options>),
82 /// Print the phase plan and the link line and exit successfully, which is `-###`.
83 PrintPlan {
84 /// The resolved options, which is what says what the link line is for.
85 opts: Box<Options>,
86 /// What to do to each input, and in what order.
87 plan: Box<Plan>,
88 /// What the command line said about linking.
89 link: Box<LinkOptions>,
90 },
91 /// Compile the given inputs.
92 Compile {
93 /// The resolved options.
94 opts: Box<Options>,
95 /// What to do to each input, and in what order.
96 plan: Box<Plan>,
97 /// What the command line said about linking.
98 link: Box<LinkOptions>,
99 /// How many translation units to compile at once.
100 jobs: Jobs,
101 /// Whether `-v` asked for the plan to be printed while it runs.
102 verbose: bool,
103 },
104}
105
106/// Why a command line was rejected.
107#[derive(Debug, Clone, PartialEq, Eq)]
108pub struct CliError {
109 /// The message, lowercase and without a trailing period, in the same shape as any other
110 /// diagnostic.
111 pub message: String,
112}
113
114impl std::fmt::Display for CliError {
115 fn fmt(&self, f: &mut std::fmt::Formatter<'_>) -> std::fmt::Result {
116 f.write_str(&self.message)
117 }
118}
119
120impl std::error::Error for CliError {}
121
122fn err(message: impl Into<String>) -> CliError {
123 CliError { message: message.into() }
124}
125
126/// The two halves of one prefix mapping flag's argument, where `flag` includes its trailing `=`.
127///
128/// The split is at the last `=` in what follows the flag, not the first, which is gcc's rule and
129/// the only one that lets a directory whose name contains an `=` be the old half. It also means
130/// `-fmacro-prefix-map=a=b=c` rewrites `a=b` to `c` rather than `a` to `b=c`, which looks like a
131/// trap until you notice the alternative traps the far more common case.
132fn rewrite<'a>(arg: &'a str, flag: &str) -> Result<(&'a str, &'a str), CliError> {
133 let rest = &arg[flag.len()..];
134 PrefixMap::split(rest).ok_or_else(|| {
135 let flag = flag.trim_end_matches('=');
136 err(format!(
137 "`{rest}` is not a rewrite for `{flag}`, which is an old prefix, an `=` and a new one"
138 ))
139 })
140}
141
142/// A question the command line asked instead of asking for a compilation.
143///
144/// These are answered after the loop rather than where they are read, because every one of them
145/// is about the target or about the library search and the last word on both is the end of the
146/// command line.
147enum Query {
148 /// `-dumpmachine`, the triple.
149 Machine,
150 /// `-dumpversion` and `-dumpfullversion`, which are the same three numbers here.
151 Version,
152 /// `-print-multiarch`, the directory name a distribution files this target under.
153 Multiarch,
154 /// `-print-search-dirs`, in the three lines GCC prints.
155 SearchDirs,
156 /// `-print-sysroot`, the root the headers and the libraries are read under.
157 Sysroot,
158 /// `-print-sysroot-provenance`, what is in that root and where each of it came from.
159 SysrootProvenance,
160 /// `-print-file-name=<name>`, the full path of a library file.
161 FileName(String),
162 /// `-print-prog-name=<name>`, the full path of a program.
163 ProgName(String),
164 /// `-print-libgcc-file-name`, which is `-print-file-name=libgcc.a` under another spelling.
165 Libgcc,
166}
167
168/// Usage text.
169///
170/// Deliberately short. `spec/04-driver-and-cli.md` puts the full flag reference in the
171/// manual page, because a `--help` nobody can read in one screen is a `--help` nobody reads.
172pub const USAGE: &str = "\
173rucc, an optimizing C compiler
174
175usage: rucc [options] file...
176
177options:
178 -c compile and assemble, do not link
179 -S compile only, emit assembly
180 -E preprocess only
181 -o <file> write output to <file>, or to standard output for -
182 -D <name>[=<value>], -U <name> define a macro, or undefine one after every -D
183 -I <dir> add <dir> to the include search path
184 -iquote -isystem -idirafter <dir> the other chains, -nostdinc drops ours
185 -I-, -iprefix <p>, -iwithprefix[before] <dir> the older spellings of those
186 -include <file>, -imacros <file> read <file> first, the second for its macros only
187 --sysroot=<dir> look for the library's headers under <dir>, -isysroot too
188 -P, -dM with -E: leave out the markers, or dump the macros
189 -M -MM -MD -MMD write a make rule for the source, the last two compile as well
190 -MF <file> -MT <t> -MQ <t> -MP where the rule goes, what it builds, targets with no recipe
191 -std=<dialect> c89 through c23, and the gnu spellings
192 -fgnuc-version=<v> the GCC release to claim, default 7.0.0
193 -x <lang> treat later inputs as <lang>, or none to stop
194 -O<level> optimize: 0, 1, 2, 3, s, z
195 -fsafety=<tier> check memory safety: off, detect, enforce, kernel
196 -f[no-]sanitize=<what> the negative is taken, the positive is refused by name
197 -f[no-]safety-subobject a write has to stay inside the member it names
198 -f[no-]safety-restrict two restrict pointers of one block may not meet
199 -f<pass> -fno-<pass> -fdump-ir=<what> -fopt-info[-<kind>][=FILE]
200 -fpass-fuel=<pass>=<n>, -fpass-fuel-global=<n> stop a pass, or all of them, after n
201 -fdisable-<pass>[=<funcs>], -fenable-<pass>[=<funcs>] run a pass on some functions only
202 -g -g0 -gdwarf-5, -fno-omit-frame-pointer, -mno-red-zone debug info, frame pointer, red zone
203 -gz[=none|zlib|zlib-gnu|zstd] -gno-split-dwarf compress debug sections, one file not two
204 -flto[=auto|jobserver|<n>] -fno-lto -ffat-lto-objects read, and not done yet
205 -fprofile-use[=<path>] -fprofile-dir=<dir> read too, where -fprofile-generate is refused
206 -f[no-]stack-protector[-strong|-all], -f[no-]stack-clash-protection, -fcf-protection=<edges>
207 -ffunction-sections -fdata-sections a section per function or variable, for --gc-sections
208 -fvisibility=<what> default, hidden, internal or protected, when nothing in the source said
209 -l<name>, -L <dir>, -B <dir> link a library, where to look for one, where our own tools are
210 -fPIC -fpic -fPIE -fpie, -fno-common, -pipe what it does anyway
211 -f[no-]strict-aliasing, -f[no-]delete-null-pointer-checks what it assumes anyway
212 -static -shared -pie -no-pie -nostdlib -nostartfiles -nodefaultlibs -rdynamic -s how to link
213 -Wl,<arg>, -Xlinker <arg>, -fuse-ld=<name> hand an argument to the linker, or pick one
214 -Werror -pedantic -pedantic-errors -w how much to say, and whether it is fatal
215 -m64 -march= -mtune= -mcpu= -mabi= -mcmodel= what machine to generate for
216 -pg -p, -mfentry -mno-fentry call a profiler on the way in, and where that call goes
217 -fpatchable-function-entry=<n>[,<m>] room at the top of every function to patch later
218 -fwrapv, -fwrapv-pointer, -fno-strict-overflow signed or pointer overflow wraps
219 -ftrapv signed overflow stops the program instead
220 -f[no-]signed-char, -f[no-]unsigned-char, -f[no-]short-enums change the ABI
221 -ffp-contract=<how> fuse a multiply and an addition: fast, on or off
222 -fexcess-precision=<how>, -f[no-]rounding-math, -f[no-]trapping-math what it does anyway
223 -ffile-prefix-map=<old>=<new> rewrite that front of every path we put in the output
224 -fmacro-prefix-map= -fdebug-prefix-map= -fprofile-prefix-map= the same, one output each
225 -pthread build for more than one thread, and link the library for it
226 -dumpmachine -dumpversion -print-multiarch -print-search-dirs what this compiler is
227 -print-file-name=<name> -print-prog-name=<name> where a file or a program is
228 -print-sysroot the root the headers and the libraries are read under
229 -print-sysroot-provenance every input under it, where it came from and its licence
230 -j[n] compile n translation units at once, default all
231 -v, -### print each phase as it runs, or without running any
232 -save-temps[=cwd|obj], -time keep the .i and the .s, say how long each step took
233 --target=<triple> generate code for <triple>
234 --emit=<kind> exe, obj, asm, preprocessed, tast, ir, mir-final,
235 safety-summary, type-granules
236 --print-config, --print-pipeline print the configuration or the pipeline, and exit
237 --version print the version and exit
238 -h, --help print this message and exit
239
240See spec/04-driver-and-cli.md for the full flag reference.
241";
242
243/// The argument of a flag that may be joined to it or may be the next word.
244///
245/// `-DFOO` and `-D FOO` are the same thing, and `at` is where the flag's own letters end.
246fn joined_or_next(
247 arg: &str,
248 at: usize,
249 args: &[String],
250 i: &mut usize,
251) -> Result<String, CliError> {
252 if arg.len() > at {
253 return Ok(arg[at..].to_owned());
254 }
255 let next = args.get(*i).ok_or_else(|| err(format!("{arg} requires an argument")))?;
256 *i += 1;
257 Ok(next.clone())
258}
259
260/// Every name that may follow `-fsanitize=`, which is gcc 16's list and three of this compiler's
261/// own.
262///
263/// The three are on it because `spec/07-types-and-semantics.md` section 7.7 already promises them:
264/// each undefined behaviour this compiler exploits is listed there with the check that detects it,
265/// and `alias`, `restrict` and `memory` are checks gcc has no spelling for. gcc refuses `memory`
266/// outright, since the sanitizer of that name is clang's. A name being here means it is a name
267/// rather than a typo, and nothing more than that: every one of them is refused after the loop,
268/// because none of them is implemented.
269///
270/// `all` is deliberately absent. gcc takes it only in the negative, so it is handled where each of
271/// those two spellings is read rather than by being on this list.
272const SANITIZERS: [&str; 34] = [
273 "address",
274 "kernel-address",
275 "hwaddress",
276 "kernel-hwaddress",
277 "pointer-compare",
278 "pointer-subtract",
279 "thread",
280 "leak",
281 "undefined",
282 "shift",
283 "shift-base",
284 "shift-exponent",
285 "integer-divide-by-zero",
286 "unreachable",
287 "vla-bound",
288 "null",
289 "return",
290 "signed-integer-overflow",
291 "bounds",
292 "bounds-strict",
293 "alignment",
294 "object-size",
295 "float-divide-by-zero",
296 "float-cast-overflow",
297 "nonnull-attribute",
298 "returns-nonnull-attribute",
299 "bool",
300 "enum",
301 "vptr",
302 "pointer-overflow",
303 "builtin",
304 "alias",
305 "restrict",
306 "memory",
307];
308
309/// Parses a command line, without the program name.
310///
311/// # Errors
312///
313/// Returns the message to print when the arguments do not name a compilation this compiler
314/// can attempt.
315pub fn parse_args(args: &[String]) -> Result<Action, CliError> {
316 let host = Triple::host()
317 .ok_or_else(|| err("this host is not a supported target and no --target was given"))?;
318 let mut opts = Options::new(host);
319 let mut inputs: Vec<Input> = Vec::new();
320 let mut print_config = false;
321 let mut print_pipeline = false;
322 let mut print_plan = false;
323 let mut verbose = false;
324 let mut jobs = Jobs::default();
325 let mut nostdinc = false;
326 let mut sysroot: Option<PathBuf> = None;
327 // The whole ten field target, kept beside the three field one because `--target=` can pin a
328 // libc version and `Triple` has nowhere to put it. It decides `__GLIBC_MINOR__` and nothing
329 // else today, and `None` is a command line that named no target, which is this machine.
330 let mut pinned: Option<rucc_tuple::TargetTuple> = None;
331 let mut output = None;
332 let mut link = LinkOptions::default();
333 let mut query: Option<Query> = None;
334 let mut threads = false;
335 // Which sanitizers are still asked for by the end of the command line. Accumulated across the
336 // loop rather than answered where it was read, because `-fno-sanitize=` turns one off and a
337 // build that asks for a check and then takes it back has asked for nothing. What happens to a
338 // set that is not empty is decided after the loop.
339 let mut sanitizers: Vec<&str> = Vec::new();
340 // `-x` applies to inputs that come after it and stays in effect until the next one, which
341 // is why it is tracked across the loop rather than attached to a single argument.
342 let mut forced: Option<InputKind> = None;
343 // What `-iprefix` last said, stuck on the front of every later `-iwithprefix`. It applies to
344 // the flags after it and not the ones before, so a command line may set it more than once.
345 // GCC's default is its own installed header directory with the last component taken off,
346 // which is a path a cross compiler's build system knows and passes; there is no equivalent
347 // here, so with no `-iprefix` the prefix is nothing and `-iwithprefix` names a directory
348 // outright.
349 let mut iprefix = String::new();
350
351 let mut i = 0;
352 while i < args.len() {
353 let arg = args[i].as_str();
354 i += 1;
355 match arg {
356 "-h" | "--help" => return Ok(Action::Help),
357 "--version" => return Ok(Action::Version),
358 "--print-config" => print_config = true,
359 "--print-pipeline" => print_pipeline = true,
360 "-###" => print_plan = true,
361 "-v" => verbose = true,
362 // The files a compilation goes through, kept rather than thrown away. The bare
363 // spelling means `=obj` and not `=cwd`, which is not what the manual says and is what
364 // gcc 16 does; `SaveTemps::Object` carries the measurement.
365 "-save-temps" => opts.save_temps = SaveTemps::Object,
366 _ if arg.starts_with("-save-temps=") => {
367 opts.save_temps = arg["-save-temps=".len()..].parse().map_err(err)?;
368 }
369 // How long each step took. A misspelling of this is worth rejecting rather than
370 // ignoring, since a run that says nothing looks like a compilation that took no time.
371 "-time" => opts.time = true,
372 "-c" => opts.emit = EmitKind::Object,
373 "-S" => opts.emit = EmitKind::Asm,
374 "-E" => opts.emit = EmitKind::Preprocessed,
375 "-g" => opts.debug_info = true,
376 // GCC's own levels of how much debug information to write. Zero is none and every
377 // other number is some, and this compiler has one amount, so the numbers above zero
378 // all mean the same thing here. `-ggdb` is the same flag asking for whatever the
379 // debugger on the machine prefers, which is what we emit anyway.
380 "-g0" => opts.debug_info = false,
381 "-g1" | "-g2" | "-g3" | "-ggdb" | "-ggdb1" | "-ggdb2" | "-ggdb3" => {
382 opts.debug_info = true;
383 }
384 // The version of DWARF to write. We write DWARF 5 and nothing else, so a build that
385 // asks for another version is told rather than handed a file it cannot read.
386 "-gdwarf" | "-gdwarf-5" => opts.debug_info = true,
387 _ if arg.starts_with("-gdwarf-") => {
388 return Err(err(format!(
389 "{arg}: this compiler writes DWARF 5 and no other version, see \
390 spec/11-debug-info.md"
391 )));
392 }
393 // Whether the debug information goes in a file of its own beside the object. gcc
394 // writes that `.dwo` whether or not it found anything to put in it, which means a
395 // build system that declares the file as an output gets one and a make rule that
396 // depends on it fires. Refused for that reason rather than taken: section 4.1 takes a
397 // flag that changes nothing and refuses one that changes what is produced, and a file
398 // that does not appear is the plainest change of that kind there is. The negative
399 // spelling is taken, because putting it all in the object is what happens anyway.
400 "-gno-split-dwarf" => {}
401 "-gsplit-dwarf" => {
402 return Err(err(format!(
403 "{arg}: this compiler writes no separate `.dwo` file, and a build that \
404 expects one beside each object would wait for a file that never arrives, \
405 see spec/11-debug-info.md"
406 )));
407 }
408 // How the debug sections are compressed. There are none yet, so every answer produces
409 // the same bytes and taking the flag promises nothing that is not kept. The value is
410 // still checked, because a typo in a distribution's flags is worth finding when the
411 // compiler reads it rather than when somebody later wonders why nothing got smaller.
412 // Bare `-gz` means `zlib`, which the manual leaves for the reader to discover.
413 "-gz" => opts.compress = Compress::Zlib,
414 _ if arg.starts_with("-gz=") => {
415 let how = &arg["-gz=".len()..];
416 opts.compress = how.parse().map_err(|()| {
417 err(format!(
418 "`{how}` is not a way to compress debug sections, which is none, zlib, \
419 zlib-gnu or zstd"
420 ))
421 })?;
422 }
423 "-Werror" => opts.warnings_are_errors = true,
424 // Nothing that is not fatal is said at all. Read at the one place a diagnostic goes
425 // through rather than here, so that a warning `-w` dropped is not counted either.
426 "-w" => opts.warnings = false,
427 "-pedantic-errors" => {
428 opts.pedantic = true;
429 opts.warnings_are_errors = true;
430 }
431 "-P" => opts.line_markers = false,
432 // The dependency family, which section 4.4 calls required because every build system
433 // that generates its own makefiles asks for it. The two that end in `D` write a file
434 // beside the object and let the compilation happen, and the two that do not write to
435 // standard output and stop after it. Nothing here turns the system headers back on
436 // once a flag has turned them off, which is GCC's behaviour and is why `-MM -M` is
437 // `-MM`: the flag asking for fewer of them is the one with something to say.
438 "-M" => {
439 opts.deps.emit = true;
440 opts.deps.instead_of_compiling = true;
441 }
442 "-MM" => {
443 opts.deps.emit = true;
444 opts.deps.instead_of_compiling = true;
445 opts.deps.system_headers = false;
446 }
447 "-MD" => opts.deps.emit = true,
448 "-MMD" => {
449 opts.deps.emit = true;
450 opts.deps.system_headers = false;
451 }
452 "-MP" => opts.deps.phony = true,
453 // These three take a word and only in the separated form, which is how GCC spells
454 // them and how every build system writes them.
455 "-MF" | "-MT" | "-MQ" => {
456 let value =
457 args.get(i).ok_or_else(|| err(format!("{arg} requires an argument")))?;
458 i += 1;
459 match arg {
460 "-MF" => opts.deps.file = Some(value.clone()),
461 // The whole of the difference between the two. `-MT` is for a build that has
462 // already escaped what it is passing, and `-MQ` is for one that has a name
463 // and wants it to arrive as that name.
464 "-MT" => opts.deps.targets.push(value.clone()),
465 _ => opts.deps.targets.push(deps::escaped(value)),
466 }
467 }
468 // The questions a build system asks before it compiles anything. Answered after the
469 // loop, because each one is about the target or the library search and the command
470 // line has not finished saying what those are.
471 "-dumpmachine" => query = Some(Query::Machine),
472 "-dumpversion" | "-dumpfullversion" => query = Some(Query::Version),
473 "-print-multiarch" => query = Some(Query::Multiarch),
474 "-print-search-dirs" => query = Some(Query::SearchDirs),
475 "-print-sysroot" => query = Some(Query::Sysroot),
476 // Both spellings, because this one is ours rather than GCC's and our own documents
477 // write it both ways: section 13.5 of `spec/cross-compile/13-distribution.md` gives it
478 // two dashes like the other flags we invented, and document 12's table gives it one
479 // like the `-print-` family it sits in. A person who reads either and types what it
480 // says is right, so neither is refused.
481 "-print-sysroot-provenance" | "--print-sysroot-provenance" => {
482 query = Some(Query::SysrootProvenance);
483 }
484 "-print-libgcc-file-name" => query = Some(Query::Libgcc),
485 _ if arg.starts_with("-print-file-name=") => {
486 query = Some(Query::FileName(arg["-print-file-name=".len()..].to_owned()));
487 }
488 _ if arg.starts_with("-print-prog-name=") => {
489 query = Some(Query::ProgName(arg["-print-prog-name=".len()..].to_owned()));
490 }
491 // A program built to run in more than one thread. On every platform this compiler
492 // targets that is a macro the library's headers read and one more library on the
493 // link line, and the library is added after the loop so that it lands after the
494 // objects that refer to it.
495 "-pthread" | "-pthreads" => {
496 opts.defines.push("_REENTRANT".to_owned());
497 threads = true;
498 }
499 "-ansi" => {
500 opts.std = Std::C89;
501 opts.gnu_extensions = false;
502 }
503 // `-Wpedantic` is the same flag under the name the `-W` family gives it, which is
504 // the spelling a build system that groups its warning flags tends to write.
505 "-pedantic" | "-Wpedantic" => opts.pedantic = true,
506 // Both directions, because a build that needs this for one directory turns it back
507 // off for the next one rather than leaving it on for the whole tree.
508 "-fpermissive" => opts.permissive = true,
509 "-fno-permissive" => opts.permissive = false,
510 "-ffreestanding" => opts.hosted = false,
511 "-fhosted" => opts.hosted = true,
512 "-fno-builtin" => opts.builtins = false,
513 "-fbuiltin" => opts.builtins = true,
514 // The C89 dialects are under GNU's reading whatever this says, so turning it off
515 // there is turning off something the dialect asked for, which is accepted and does
516 // nothing. gcc refuses that command line, and there is nothing it could have meant.
517 "-fgnu89-inline" => opts.gnu89_inline = true,
518 "-fno-gnu89-inline" => opts.gnu89_inline = false,
519 // Both directions of each, because a build system that wants one of these usually
520 // writes it beside the flag that turns it back off for one directory.
521 "-fno-omit-frame-pointer" => opts.frame_pointer = true,
522 "-fomit-frame-pointer" => opts.frame_pointer = false,
523 "-mno-red-zone" => opts.red_zone = false,
524 "-mred-zone" => opts.red_zone = true,
525 // Four flags rather than one with an argument, which is how gcc spells them and how
526 // every build line writes them. Last one wins, because a package build puts
527 // `-fstack-protector-strong` in its global flags and a directory that cannot have one
528 // turns it back off on the line after.
529 "-fno-stack-protector" | "-fno-stack-protector-all" | "-fno-stack-protector-strong" => {
530 opts.protector = Protector::None;
531 }
532 "-fstack-protector" => opts.protector = Protector::Buffers,
533 "-fstack-protector-strong" => opts.protector = Protector::Strong,
534 "-fstack-protector-all" => opts.protector = Protector::All,
535 // The other half of what a hardened build asks for, and it is a question about the
536 // frame rather than about the function, so it is a switch rather than a level.
537 "-fstack-clash-protection" => opts.stack_clash = true,
538 "-fno-stack-clash-protection" => opts.stack_clash = false,
539 // The third of them, and the one that is a question with an argument rather than a
540 // family of spellings, because what it asks about is which of the two edges of a
541 // control flow transfer is checked. Bare is both of them, which is what gcc does.
542 "-fcf-protection" => opts.control = Control::Full,
543 "-fno-cf-protection" => opts.control = Control::None,
544 // Two spellings of the same request, which is what gcc has as well. `-p` was the older
545 // profiler and `-pg` the one that also recorded who called whom, and on every platform
546 // this compiler targets there is now one hook and both ask for it.
547 "-pg" | "-p" => {
548 opts.profile = true;
549 link.profile = true;
550 }
551 // Accepted on their own and doing nothing on their own, which is gcc's behaviour: they
552 // say where the call goes and a command line that asked for no call has nowhere to put
553 // one. That matters because a build system that sets `-mfentry` globally and `-pg` per
554 // directory is a build system that would otherwise fail on every other directory.
555 "-mfentry" => opts.hook = Hook::Early,
556 "-mno-fentry" => opts.hook = Hook::Late,
557 // GCC drops its own include directory along with the system ones, because its
558 // headers are half of a pair with the library's and half a pair is worse than
559 // none. A build that passes this is supplying the whole set itself.
560 "-nostdinc" => nostdinc = true,
561 "-o" => {
562 output = Some(args.get(i).ok_or_else(|| err("-o requires an argument"))?.clone());
563 i += 1;
564 }
565 // The flags that take a directory only in the separated form. GCC spells them
566 // this way and nothing writes `-iquotedir`, so accepting the joined form would
567 // mean guessing at a path that starts with the flag's own letters.
568 // Apple's spelling of `--sysroot`, and the one its own build systems pass. The
569 // two mean the same thing here: the configured directories are under there rather
570 // than under the root.
571 "-isysroot" => {
572 let dir = args.get(i).ok_or_else(|| err("-isysroot requires an argument"))?;
573 i += 1;
574 sysroot = Some(PathBuf::from(dir));
575 }
576 "-iquote" | "-isystem" | "-idirafter" => {
577 let dir = args.get(i).ok_or_else(|| err(format!("{arg} requires an argument")))?;
578 i += 1;
579 match arg {
580 "-iquote" => opts.search.push_quote(dir.clone()),
581 "-isystem" => opts.search.push_system(dir.clone()),
582 _ => opts.search.push_after(dir.clone()),
583 }
584 }
585 "-iprefix" => {
586 iprefix = args.get(i).ok_or_else(|| err("-iprefix requires an argument"))?.clone();
587 i += 1;
588 }
589 // Where GCC puts these is not where its manual says it puts them, and this is the
590 // measured answer rather than the documented one: `-iwithprefix` lands in the
591 // `-isystem` slot and not the `-idirafter` slot, and `-iwithprefixbefore` lands in
592 // the `-I` slot. A cross build that uses them is relying on the behaviour, since
593 // that is the compiler it was developed against.
594 "-iwithprefix" | "-iwithprefixbefore" => {
595 let dir = args.get(i).ok_or_else(|| err(format!("{arg} requires an argument")))?;
596 i += 1;
597 let dir = format!("{iprefix}{dir}");
598 if arg == "-iwithprefix" {
599 opts.search.push_system(dir);
600 } else {
601 opts.search.push_bracket(dir);
602 }
603 }
604 "-include" | "-imacros" => {
605 let name = args.get(i).ok_or_else(|| err(format!("{arg} requires an argument")))?;
606 i += 1;
607 opts.preincludes
608 .push(Preinclude { name: name.clone(), macros_only: arg == "-imacros" });
609 }
610 // The flag `-iquote` was introduced to replace, still passed by build systems old
611 // enough to predate the replacement. It is not a directory: it says that every `-I`
612 // so far is for quoted includes only, and that a quoted include stops looking next
613 // to the file that wrote it.
614 "-I-" => opts.search.split_quote_chain(),
615 "-x" => {
616 let lang = args.get(i).ok_or_else(|| err("-x requires an argument"))?;
617 i += 1;
618 forced = if lang == "none" {
619 None
620 } else {
621 Some(InputKind::from_x_arg(lang).map_err(|e| err(format!("{e}")))?)
622 };
623 }
624 // Not a GCC flag. spec/03-architecture.md section 3.5 compiles several
625 // translation units in one process rather than making the build system fork, and
626 // section 3.8's determinism check compares `-j1` against `-j16`, so the knob has
627 // to exist and has to be spelled the way `make` spells it.
628 // `-DFOO`, `-D FOO` and the same for `-U` and `-I`. Both forms are in wide use
629 // and a build system may produce either, so both are read here rather than
630 // being normalised by whatever generated the command line.
631 _ if arg.starts_with("-D") => {
632 let value = joined_or_next(arg, 2, args, &mut i)?;
633 opts.defines.push(value);
634 }
635 _ if arg.starts_with("-U") => {
636 let value = joined_or_next(arg, 2, args, &mut i)?;
637 opts.undefines.push(value);
638 }
639 _ if arg.starts_with("-I") => {
640 let dir = joined_or_next(arg, 2, args, &mut i)?;
641 opts.search.push_bracket(dir);
642 }
643 _ if arg.starts_with("-std=") => {
644 let name = &arg["-std=".len()..];
645 let (std, gnu) = Std::from_flag(name)
646 .ok_or_else(|| err(format!("unknown dialect `{name}`, see --help")))?;
647 opts.std = std;
648 opts.gnu_extensions = gnu;
649 }
650 // Section 4.5. The claim decides which half of glibc's `sys/cdefs.h` we are
651 // handed, so a differential run that does not set it is comparing two compilers
652 // that believe they are different compilers.
653 // GCC packs these into one flag, so `-dDI` is two of them. Letters in the family
654 // that we have not written yet are accepted and ignored, because a dump is a
655 // debugging aid and a build that asks for one should still compile. A letter
656 // outside the family falls through to the unknown option error, which is what
657 // keeps `-dumpversion` from being read as a dump of nothing.
658 _ if Dumps::is_family(arg) => {
659 opts.dumps.add(&arg[2..]);
660 }
661 // One name at a time, which is what a build that means its own `memcpy` and the
662 // library's everything else writes. The name is not checked against a list, because
663 // the flag is about what the program means by a name and a program is allowed to mean
664 // something by a name this compiler has never heard of.
665 _ if arg.starts_with("-fno-builtin-") => {
666 opts.no_builtin.push(arg["-fno-builtin-".len()..].to_owned());
667 }
668 _ if arg.starts_with("-fgnuc-version=") => {
669 let v = &arg["-fgnuc-version=".len()..];
670 opts.gnuc = v.parse().map_err(err)?;
671 }
672 // spec/13-gnu-compat.md section 13.3 promises this flag an error that says why rather
673 // than the unknown option one, because a build reaching for it is asking for a feature
674 // and deserves to be told it is not coming rather than told the spelling is wrong.
675 // The negative form is what this compiler does anyway, so it is taken and dropped.
676 "-fnested-functions" => {
677 return Err(err(
678 "nested functions are not supported: a call to one goes through a trampoline \
679 written on the stack, which no target that enforces an unexecutable stack \
680 allows",
681 ));
682 }
683 "-fno-nested-functions" => {}
684 // Which of the two links the output is for, which is a real difference and not a
685 // description of what happens anyway. Everything here is position independent either
686 // way, and what these decide is whether a name may be one another object defines or
687 // replaces, because a link that produces an executable puts every name in the same
688 // program and a link that produces a shared library does not.
689 //
690 // It matters that they are accepted at all, whatever they then do. Every autoconf and
691 // cmake build puts `-fPIC` on the compile line, so a compiler that rejects it cannot
692 // be the `CC` of a project that has a configure script, whatever else it can do. That
693 // is how this was found: building SQLite's test fixture stopped on it.
694 "-fPIC" | "-fpic" => opts.pic = Pic::Library,
695 // Not a synonym of the pair above, which is what they were treated as until #756. The
696 // library is the expensive answer and gcc makes it the one that has to be asked for,
697 // so this is also what nothing at all means.
698 "-fPIE" | "-fpie" => opts.pic = Pic::Executable,
699 // A different question from the pair above, and the one every distribution build of a
700 // shared library answers. `-fPIC` decides how an address is reached, and this decides
701 // whether the optimizer may believe a body it can see, because an exported name is one
702 // the dynamic linker may find another definition of first. On by default, which is
703 // gcc's arrangement and is the honest answer, and off is a promise the build makes and
704 // nothing checks.
705 "-fsemantic-interposition" => opts.interposition = true,
706 "-fno-semantic-interposition" => opts.interposition = false,
707 // Two requests rather than one, and the same table answers both, so what decides is
708 // whether either of them is standing. gcc arranges it the same way: the asynchronous
709 // one is the default here and it implies the other, and a line that asks for a table
710 // and against an asynchronous one gets a table.
711 "-fasynchronous-unwind-tables" => opts.async_unwind_tables = true,
712 "-fno-asynchronous-unwind-tables" => opts.async_unwind_tables = false,
713 "-funwind-tables" => opts.unwind_tables = true,
714 "-fno-unwind-tables" => opts.unwind_tables = false,
715 // The other direction is a request, not a description, and it is one this compiler
716 // cannot grant, so it gets the treatment section 13.3 asks for rather than the unknown
717 // option error. Answering it by carrying on would be answering a different question:
718 // the code would still be position independent, which is correct everywhere an
719 // ordinary program runs and is wrong in a kernel, where the flag is written precisely
720 // because there is no loader to fill a global offset table in.
721 "-fno-pic" | "-fno-pie" => {
722 return Err(err(
723 "position dependent code is not supported: an address that may be in another \
724 object is loaded out of the global offset table, and nothing here emits the \
725 absolute form this asks for. Use -no-pie if what you meant was how to link",
726 ));
727 }
728 // A section per function and a section per variable, which is what makes
729 // `--gc-sections` able to drop anything: a linker can leave out a section nothing
730 // reaches and cannot leave out half of one. Both directions are taken, and the off
731 // one is the default rather than a refusal, since a build that writes it is asking
732 // for what happens anyway.
733 "-ffunction-sections" => opts.function_sections = true,
734 "-fno-function-sections" => opts.function_sections = false,
735 "-fdata-sections" => opts.data_sections = true,
736 "-fno-data-sections" => opts.data_sections = false,
737 // Another description of what this compiler does. A file scope declaration with no
738 // initializer is written into `.bss` as an ordinary defined symbol, not offered to the
739 // linker as a common one for it to merge, which is what `-fno-common` asks for and what
740 // gcc has done by default since 10. Nothing in the front end produces `Linkage::Common`
741 // at all.
742 "-fno-common" => {}
743 // What overflows rather than being undefined. Every one of these takes something away
744 // from the optimizer rather than asking it to do anything, which is why the negative
745 // spellings are the interesting ones and the positive spellings are the default.
746 //
747 // `-fno-strict-overflow` is both of the others, which is gcc's own reading of it: its
748 // help text for `-fstrict-overflow` says "negated as -fwrapv -fwrapv-pointer". So it is
749 // written here as the pair rather than kept as a third thing to test everywhere.
750 //
751 // `-ftrapv` is the exception and is the one that asks for something. It is the other
752 // answer to the question `-fwrapv` answers, so the two cannot both hold and each clears
753 // the other, which makes the last one on the command line the one that counts. That is
754 // gcc 16's behaviour and was measured rather than read: `-ftrapv -fwrapv` emits no
755 // checked calls and `-fwrapv -ftrapv` emits them. The positive spelling of the pointer
756 // question is left alone by both, because neither has anything to say about it.
757 "-fwrapv" => {
758 opts.wrapping.signed = true;
759 opts.wrapping.trap = false;
760 }
761 "-fno-wrapv" => opts.wrapping.signed = false,
762 "-fwrapv-pointer" => opts.wrapping.pointer = true,
763 "-fno-wrapv-pointer" => opts.wrapping.pointer = false,
764 "-fno-strict-overflow" => opts.wrapping = Wrapping::ALL,
765 // Which does not clear the checked one, because gcc does not: `-ftrapv
766 // -fstrict-overflow` still emits the calls. It says what is assumed and not what
767 // happens.
768 "-fstrict-overflow" => {
769 opts.wrapping.signed = false;
770 opts.wrapping.pointer = false;
771 }
772 "-ftrapv" => {
773 opts.wrapping.trap = true;
774 opts.wrapping.signed = false;
775 }
776 "-fno-trapv" => opts.wrapping.trap = false,
777 // The two flags that say what a plain `char` is, which is one question with two
778 // spellings each: gcc reads `-fno-signed-char` as `-funsigned-char` and
779 // `-fno-unsigned-char` as `-fsigned-char`, so there are four ways to write two
780 // answers and the last one written wins. Nothing is set until one of them is given,
781 // because the target's own ABI is the answer otherwise and it is not the same answer
782 // everywhere: x86-64 and Apple's arm64 are signed, Linux's arm64 is not.
783 "-fsigned-char" | "-fno-unsigned-char" => opts.char_signed = Some(true),
784 "-funsigned-char" | "-fno-signed-char" => opts.char_signed = Some(false),
785 // And the size of an enumeration, which is the other thing in this group that changes
786 // the ABI rather than the code.
787 "-fshort-enums" => opts.short_enums = true,
788 "-fno-short-enums" => opts.short_enums = false,
789 // And the request, which is the one that cannot be granted. It is a real difference and
790 // not a preference: two files each writing `int g;` link under `-fcommon` and are a
791 // duplicate definition without it, which is the whole reason the flag survives.
792 "-fcommon" => {
793 return Err(err(
794 "a tentative definition is written into .bss as its own symbol here, and \
795 nothing emits the common symbol this asks the linker to merge. Give the \
796 variable a definition in one file and declare it extern in the others",
797 ));
798 }
799 // Both directions of this one are recorded, and what they decide is whether lowering
800 // names the type each access goes through. Turning it off is the front end leaving the
801 // name off rather than a pass being told to ignore one it can see, which is one
802 // condition in one place, and it is the reading that survives link time optimization:
803 // a unit built with the flag off keeps its own answer when its bodies end up in a
804 // module beside bodies that were not.
805 //
806 // Nothing in the pipeline reads those names yet. Layer 3 of the alias analysis does
807 // and is tested, and no pass at any level asks the alias analysis anything today, so
808 // no program compiles differently for having passed this. The flag is wired anyway,
809 // because the change that makes a pass ask is not the change anybody will remember to
810 // wire it in, and a flag that is taken and dropped once the names mean something is
811 // the miscompilation `spec/04-driver-and-cli.md` section 4.1 warns about in as many
812 // words.
813 "-fstrict-aliasing" => opts.strict_aliasing = true,
814 "-fno-strict-aliasing" => opts.strict_aliasing = false,
815 // The same shape of answer for the same reason, and the flag the kernel writes beside
816 // the one above it.
817 //
818 // Nothing here concludes that a pointer is not null from the fact that it was
819 // dereferenced. There is no such conclusion to draw from, because no pass records one:
820 // a load says where it read and nothing else, and a comparison against null is an
821 // ordinary comparison of two values the optimizer has no fact about. So a function
822 // that reads through a pointer and then tests it keeps the test, which is what the
823 // kernel wants and what `-fno-delete-null-pointer-checks` asks for, and what gcc has
824 // to be asked for because it draws the conclusion by default.
825 //
826 // `-fdelete-null-pointer-checks` is the request to draw it, and it goes the way
827 // `-fstrict-aliasing` does: assuming less than was asked for costs speed and not
828 // correctness, and `-O2` implies it, so refusing it would stop builds for nothing.
829 "-fdelete-null-pointer-checks" | "-fno-delete-null-pointer-checks" => {}
830 // The floating point group, which goes the same way and for the same reason, and which
831 // is worth writing out because the reason is easy to get backwards.
832 //
833 // Each of these has a restrictive spelling and a permissive one. The restrictive ones,
834 // `-frounding-math` and `-ftrapping-math`, say that the rounding mode may have been
835 // changed and that an exception raised by an operation may be looked at, so an
836 // arithmetic the compiler folds at compile time is an arithmetic whose rounding and
837 // whose exception the program does not get. Nothing here folds any floating point
838 // arithmetic in a function body: `0.1 + 0.2` is an `fadd` and `1.0 / 0.0` is a divide
839 // that runs, at every level. So both of those describe what already happens.
840 //
841 // The permissive ones are the other half, and they are licences rather than requests
842 // for an answer. `-fno-rounding-math` says the rounding mode is the default one and
843 // `-fno-trapping-math` says nothing looks at the exceptions, which together are
844 // permission to fold. Not folding is the conservative side of that permission and is
845 // what a program is entitled to whichever was written, so the flag costs speed and not
846 // correctness, which is the test section 4.1 puts a licence through. `-ftrapping-math`
847 // is also gcc's default, so a build spelling it out is a build asking for what it
848 // already has.
849 "-frounding-math" | "-fno-rounding-math" => {}
850 "-ftrapping-math" | "-fno-trapping-math" => {}
851 // About temporary files rather than about code. There is nothing between the phases of
852 // one compilation here to write to a file in the first place.
853 "-pipe" => {}
854 // Nothing here writes colour, so all of these are the same answer, and it is the answer
855 // that costs nothing: the diagnostics come out plain either way and no build depends on
856 // an escape sequence being there. Taken rather than refused because cmake writes
857 // `-fdiagnostics-color=always` on every compile line when the generator is ninja, which
858 // makes this the second most common flag after `-fPIC` to stop a build over a question
859 // about how the text looks.
860 "-fdiagnostics-color" | "-fno-diagnostics-color" => {}
861 _ if arg.starts_with("-fdiagnostics-color=") => {}
862 // The link flags. None of them changes the compilation, which is why they are
863 // collected apart from `opts` and why `-lm` on a `-c` line is a note rather than an
864 // error: it is a thing said to a linker that is not going to run.
865 "-static" => link.is_static = true,
866 "-shared" => link.shared = true,
867 "-pie" => link.pie = Some(true),
868 "-no-pie" | "-nopie" => link.pie = Some(false),
869 "-nostdlib" => link.no_stdlib = true,
870 "-nostartfiles" => link.no_startfiles = true,
871 "-nodefaultlibs" => link.no_defaultlibs = true,
872 "-fno-builtins-lib" => link.no_builtins_lib = true,
873 "-fbuiltins-lib" => link.no_builtins_lib = false,
874 "-rdynamic" | "-export-dynamic" => link.export_dynamic = true,
875 "-s" => link.strip = true,
876 "-Xlinker" => {
877 let next = args.get(i).ok_or_else(|| err("-Xlinker requires an argument"))?;
878 i += 1;
879 link.passthrough.push(next.clone());
880 }
881 _ if arg.starts_with("-Wl,") => {
882 // Commas separate arguments rather than being part of one, which is what makes
883 // `-Wl,-rpath,/opt/lib` two words to the linker and one word here.
884 link.passthrough.extend(arg["-Wl,".len()..].split(',').map(str::to_owned));
885 }
886 _ if arg.starts_with("-fuse-ld=") => {
887 link.use_ld = Some(arg["-fuse-ld=".len()..].to_owned());
888 }
889 _ if arg.starts_with("-l") && arg.len() > 2 => {
890 inputs.push(Input::library(&arg[2..]));
891 }
892 "-l" => {
893 let next = args.get(i).ok_or_else(|| err("-l requires an argument"))?;
894 i += 1;
895 inputs.push(Input::library(next));
896 }
897 _ if arg.starts_with("-L") => {
898 link.search.push(PathBuf::from(joined_or_next(arg, 2, args, &mut i)?));
899 }
900 _ if arg.starts_with("-B") => {
901 link.prefixes.push(PathBuf::from(joined_or_next(arg, 2, args, &mut i)?));
902 }
903 _ if arg.starts_with("-j") => {
904 jobs = Jobs::parse(&arg[2..]).map_err(err)?;
905 }
906 _ if arg.starts_with("--sysroot=") => {
907 sysroot = Some(PathBuf::from(&arg["--sysroot=".len()..]));
908 }
909 _ if arg.starts_with("--target=") => {
910 let t = &arg["--target=".len()..];
911 opts.target = t.parse().map_err(|e| err(format!("{e}")))?;
912 // The same string again, as the model that has room for a libc version. A spelling
913 // the three field parser took and this one does not is not an error, because the
914 // one that decides what is compiled has already accepted it and the only thing
915 // lost is a version nobody asked for.
916 pinned = t.parse().ok();
917 }
918 _ if arg.starts_with("--emit=") => {
919 let k = &arg["--emit=".len()..];
920 opts.emit = k
921 .parse()
922 .map_err(|()| err(format!("unknown --emit kind `{k}`, see --help")))?;
923 }
924 // A bare `-O` is `-O1`, which is what GCC has and what a hand written makefile tends
925 // to write. `-Og` is GCC's level for a build somebody is going to step through, and
926 // it is `-O1` with the transformations that move code around left out; this compiler
927 // has no such level yet, so it is the nearest one and `--print-pipeline` says what
928 // that came to rather than the flag pretending otherwise.
929 "-O" | "-Og" => opts.opt_level = rucc_session::OptLevel::O1,
930 // The union of `-O3` and `-ffast-math`, and the second half of that changes what
931 // floating point arithmetic means. Refused rather than taken as `-O3`, because a
932 // build that asks for fast math and is quietly given ordinary arithmetic gets a
933 // slower program than it asked for and a build that is given fast math it did not
934 // ask for gets a wrong one.
935 "-Ofast" => {
936 return Err(err(
937 "-Ofast is -O3 with fast math, and fast math is not implemented, see \
938 spec/04-driver-and-cli.md section 4.6",
939 ));
940 }
941 _ if arg.starts_with("-O") => {
942 opts.opt_level = arg[2..]
943 .parse()
944 .map_err(|()| err(format!("unknown optimization level `{arg}`")))?;
945 }
946 // How far a multiply and an addition may be fused into one rounding. Before the
947 // optimizer's `-f` family below for the reason the ones under it are, and kept rather
948 // than dropped because it is the one flag in its group this compiler could act on: it
949 // rides into the IR as an attribute on each function with a body, so the day the code
950 // generator forms an `fma` it already knows which functions were given permission.
951 // Nothing forms one today, under any value of this and under any `-march=`.
952 _ if arg.starts_with("-ffp-contract=") => {
953 let how = &arg["-ffp-contract=".len()..];
954 opts.fp_contract = how.parse().map_err(|()| {
955 err(format!("`{how}` is not a contraction, which is fast, on or off"))
956 })?;
957 }
958 // How much of an expression may be computed wider than it was written. The values are
959 // gcc's and so is the refusal of anything else, and none of the three changes anything
960 // here: an operation is computed in the type C says it is on every target this compiler
961 // has a back end for, so `__FLT_EVAL_METHOD__` is 0 and `standard` is already what
962 // happens. `fast` and `16` are permission to be wider, which is a licence this takes
963 // and does not use, the same way the two above are. The flag is worth taking because
964 // glibc's headers and a good deal of configure output write it, and because the answer
965 // it asks about is one this compiler can state rather than guess at: there is no x87
966 // target here, which is the machine the whole question was invented for.
967 _ if arg.starts_with("-fexcess-precision=") => {
968 let how = &arg["-fexcess-precision=".len()..];
969 if !matches!(how, "16" | "fast" | "standard") {
970 return Err(err(format!(
971 "`{how}` is not an excess precision, which is 16, fast or standard"
972 )));
973 }
974 }
975 // Which front of a path is rewritten before it reaches the output, which is how a
976 // build gets the same bytes out of two different directories. The four spellings are
977 // one flag each into three lists, and `-ffile-prefix-map=` is the three of them at
978 // once. Only the macro list does anything today, because `__FILE__` is the only place
979 // a path reaches the output: there is no DWARF and no profile data yet, so the other
980 // two are recorded for the work that will read them. The argument splits at the last
981 // `=` rather than the first, which is gcc's rule and is what lets a directory with an
982 // `=` in its name be the old half.
983 _ if arg.starts_with("-fmacro-prefix-map=") => {
984 let (old, new) = rewrite(arg, "-fmacro-prefix-map=")?;
985 opts.prefix_map.macros.push(old, new);
986 }
987 _ if arg.starts_with("-fdebug-prefix-map=") => {
988 let (old, new) = rewrite(arg, "-fdebug-prefix-map=")?;
989 opts.prefix_map.debug.push(old, new);
990 }
991 _ if arg.starts_with("-fprofile-prefix-map=") => {
992 let (old, new) = rewrite(arg, "-fprofile-prefix-map=")?;
993 opts.prefix_map.profile.push(old, new);
994 }
995 _ if arg.starts_with("-ffile-prefix-map=") => {
996 let (old, new) = rewrite(arg, "-ffile-prefix-map=")?;
997 opts.prefix_map.macros.push(old, new);
998 opts.prefix_map.debug.push(old, new);
999 opts.prefix_map.profile.push(old, new);
1000 }
1001 // A whole optimization rather than a flag, and the family is taken rather than
1002 // refused because of what ignoring it does. There is none of it here yet, so a build
1003 // that asks for it gets a program that is correct and slower than it could have been,
1004 // which is what section 4.1 means by a hint about speed and what every compilation at
1005 // `-O0` already is. The objects settle the rest of the argument: gcc's `-flto` object
1006 // holds the bytecode and no machine code at all, and every object here holds the code,
1007 // which is exactly what `-ffat-lto-objects` asks gcc for. So a build passing `-flto`
1008 // to this compiler gets objects that are more usable than the ones it asked for rather
1009 // than different ones. Every value is still checked against gcc's, because somebody
1010 // who wrote `-flto=thin` meant clang and had better hear about it here.
1011 "-flto" => opts.lto.requested = true,
1012 "-fno-lto" => opts.lto.requested = false,
1013 _ if arg.starts_with("-flto=") => {
1014 let how = &arg["-flto=".len()..];
1015 opts.lto.jobs = how.parse().map_err(|()| {
1016 err(format!(
1017 "`{how}` is not a number of link time jobs, which is auto, jobserver or a \
1018 count above zero"
1019 ))
1020 })?;
1021 opts.lto.requested = true;
1022 }
1023 _ if arg.starts_with("-flto-partition=") => {
1024 let how = &arg["-flto-partition=".len()..];
1025 opts.lto.partition = how.parse().map_err(|()| {
1026 err(format!(
1027 "`{how}` is not a partitioning model, which is balanced, 1to1, one, max \
1028 or none"
1029 ))
1030 })?;
1031 }
1032 _ if arg.starts_with("-flto-compression-level=") => {
1033 let how = &arg["-flto-compression-level=".len()..];
1034 let level =
1035 how.parse::<u8>().ok().filter(|level| *level <= 19).ok_or_else(|| {
1036 err(format!("`{how}` is not a compression level, 0 to 19"))
1037 })?;
1038 opts.lto.compression = Some(level);
1039 }
1040 // Whether the object keeps its machine code as well as the bytecode. It always does
1041 // here, so the first of these describes what happens and the second asks for an object
1042 // with less in it, which is a smaller file and not a different program, so both are
1043 // taken.
1044 "-ffat-lto-objects" | "-fno-fat-lto-objects" => {}
1045 // Whether the linker is handed a plugin that does the link time work. The design in
1046 // `spec/09-optimizer.md` has this driver doing that work itself and never loading a
1047 // plugin into anybody, so neither answer is a question it has to hold.
1048 "-fuse-linker-plugin" | "-fno-use-linker-plugin" => {}
1049 // Reading a profile back. Taken for the reason the family above it is: nothing here
1050 // reads one, so a build that asks gets the program it would have got anyway, and gcc
1051 // itself produces a byte for byte identical object from `-fprofile-use` when there are
1052 // no counts beside the file. The path is recorded for the pass that will read it. The
1053 // warning gcc prints when it looked and found nothing is deliberately not copied,
1054 // because nothing here looks, and a warning about a file that was never opened would
1055 // fire on the builds that have a perfectly good profile as well as on the ones that
1056 // do not.
1057 "-fprofile-use" => opts.profile_data.requested = true,
1058 "-fno-profile-use" => opts.profile_data.requested = false,
1059 _ if arg.starts_with("-fprofile-use=") => {
1060 opts.profile_data.path = Some(arg["-fprofile-use=".len()..].to_string());
1061 opts.profile_data.requested = true;
1062 }
1063 _ if arg.starts_with("-fprofile-dir=") => {
1064 opts.profile_data.dir = Some(arg["-fprofile-dir=".len()..].to_string());
1065 }
1066 "-fprofile-abs-path" => opts.profile_data.absolute = true,
1067 "-fno-profile-abs-path" => opts.profile_data.absolute = false,
1068 "-fprofile-correction" => opts.profile_data.correction = true,
1069 "-fno-profile-correction" => opts.profile_data.correction = false,
1070 "-fprofile-partial-training" => opts.profile_data.partial_training = true,
1071 "-fno-profile-partial-training" => opts.profile_data.partial_training = false,
1072 // Writing the counts rather than reading them, which is refused rather than taken and
1073 // is the same line `-gsplit-dwarf` falls on the far side of. Ignoring these means a
1074 // file a build declared as an output never appears: the instrumented program writes a
1075 // `.gcda` as it exits and `-ftest-coverage` writes a `.gcno` beside the object, and a
1076 // two stage build that got neither would go on to optimize against no counts at all
1077 // and report coverage of nothing, with nothing along the way saying so. The objects
1078 // say the rest: gcc's `-fprofile-generate` object holds 375 bytes of code where a
1079 // plain one holds 71, and 296 bytes of counters that a plain one does not have, so
1080 // this is a flag that changes the output rather than a hint about speed.
1081 "-fprofile-arcs"
1082 | "--coverage"
1083 | "-fcondition-coverage"
1084 | "-fpath-coverage"
1085 | "-fprofile-generate" => {
1086 return Err(err(format!(
1087 "{arg}: this compiler does not instrument for profiling, and a build that \
1088 expects the counts a run of the instrumented program writes would optimize \
1089 against nothing on its second pass, see spec/04-driver-and-cli.md"
1090 )));
1091 }
1092 _ if arg.starts_with("-fprofile-generate=") => {
1093 return Err(err(format!(
1094 "{arg}: this compiler does not instrument for profiling, and a build that \
1095 expects the counts a run of the instrumented program writes would optimize \
1096 against nothing on its second pass, see spec/04-driver-and-cli.md"
1097 )));
1098 }
1099 "-ftest-coverage" => {
1100 return Err(err(format!(
1101 "{arg}: this compiler writes no `.gcno` file beside the object, and a build \
1102 that expects one would wait for a file that never arrives, see \
1103 spec/04-driver-and-cli.md"
1104 )));
1105 }
1106 // The rest of the family describes instrumentation that is refused above, so what is
1107 // left to do with them is check them and drop them. They are checked because a
1108 // misspelling in a distribution's flags is worth finding here rather than on the day
1109 // the instrumentation lands, and dropped because there is nothing for an answer about
1110 // how a counter is written to be an answer about.
1111 _ if arg.starts_with("-fprofile-update=") => {
1112 let how = &arg["-fprofile-update=".len()..];
1113 if !matches!(how, "single" | "atomic" | "prefer-atomic") {
1114 return Err(err(format!(
1115 "`{how}` is not a profile update method, which is single, atomic or \
1116 prefer-atomic"
1117 )));
1118 }
1119 }
1120 _ if arg.starts_with("-fprofile-reproducible=") => {
1121 let how = &arg["-fprofile-reproducible=".len()..];
1122 if !matches!(how, "serial" | "parallel-runs" | "multithreaded") {
1123 return Err(err(format!(
1124 "`{how}` is not a profile reproducibility method, which is serial, \
1125 parallel-runs or multithreaded"
1126 )));
1127 }
1128 }
1129 "-fprofile-values" | "-fno-profile-values" | "-fprofile-info-section" => {}
1130 "-fno-test-coverage" | "-fno-profile-arcs" | "-fno-profile-generate" => {}
1131 _ if arg.starts_with("-fprofile-filter-files=")
1132 || arg.starts_with("-fprofile-exclude-files=")
1133 || arg.starts_with("-fprofile-note=") => {}
1134 // What every name gets when nothing in the source said, which the attribute in the
1135 // source overrides rather than the other way round. Before the optimizer's `-f`
1136 // family below for the reason the tier below it is.
1137 _ if arg.starts_with("-fvisibility=") => {
1138 let seen = &arg["-fvisibility=".len()..];
1139 opts.visibility = seen.parse().map_err(|()| {
1140 err(format!(
1141 "`{seen}` is not a visibility, which is default, hidden, internal or \
1142 protected"
1143 ))
1144 })?;
1145 }
1146 // Which edges of a control flow transfer are checked. Before the optimizer's `-f`
1147 // family below for the reason the two above it are, and last of the three so that the
1148 // bare spelling and the negative one are matched exactly rather than by this.
1149 _ if arg.starts_with("-fcf-protection=") => {
1150 let edges = &arg["-fcf-protection=".len()..];
1151 opts.control = edges.parse().map_err(|()| {
1152 err(format!(
1153 "`{edges}` is not a control flow protection, which is full, branch, \
1154 return, none or check"
1155 ))
1156 })?;
1157 }
1158 // How much room every function opens with for something to be written over later.
1159 // Before the optimizer's `-f` family below for the reason the ones above it are.
1160 _ if arg.starts_with("-fpatchable-function-entry=") => {
1161 let room = &arg["-fpatchable-function-entry=".len()..];
1162 opts.patchable = room.parse().map_err(|()| {
1163 err(format!(
1164 "`{room}` is not an amount of room to reserve, which is a number of bytes and then, after a comma, how many of them go in front of the function's own label"
1165 ))
1166 })?;
1167 }
1168 // The memory safety monitor, from section 15.4 of
1169 // `spec/safe-memory/15-integration.md`. Before the optimizer's `-f` family below,
1170 // because a pass that took the name `safety=detect` would otherwise be handed the
1171 // flag, and the tier is not a pass.
1172 _ if arg.starts_with("-fsafety=") => {
1173 let tier = &arg["-fsafety=".len()..];
1174 opts.safety = tier.parse().map_err(|()| {
1175 err(format!(
1176 "`{tier}` is not a safety tier, which is off, detect, enforce or kernel"
1177 ))
1178 })?;
1179 }
1180 // Whether padding participates, from section 9.3 of document 09. Spelled out rather
1181 // than folded into the tier because it is a departure somebody who has read that
1182 // section makes, and the two defaults it describes are a property of what is being
1183 // built rather than of how much checking is wanted.
1184 _ if arg.starts_with("-fsafety-init=") => {
1185 let mode = &arg["-fsafety-init=".len()..];
1186 opts.padding = mode.parse().map_err(|()| {
1187 err(format!("`{mode}` is not a padding mode, which is padding or nopadding"))
1188 })?;
1189 }
1190 // Row S4, from section 9.4 of document 09. A bare flag with no value, because the
1191 // strict form of that section needs a member id the front end does not name yet and
1192 // accepting the spelling for it would be accepting a promise this build cannot keep.
1193 // Before `-fno-` is looked at below, for the reason the tier is.
1194 "-fsafety-subobject" => opts.subobject = rucc_session::Subobject::Members,
1195 "-fno-safety-subobject" => opts.subobject = rucc_session::Subobject::Off,
1196 _ if arg.starts_with("-fsafety-subobject=") => {
1197 let form = &arg["-fsafety-subobject=".len()..];
1198 return Err(err(format!(
1199 "`{form}` is not a form of -fsafety-subobject. The flag takes no value, and \
1200 the strict form of section 9.4 is tamnd/rucc#967"
1201 )));
1202 }
1203 // Row Y8, from section 9.6 of document 09. A bare flag with no value, for the reason
1204 // the one above has none: there is one form of this check and a spelling that suggested
1205 // otherwise would be promising something. Before `-fno-` is looked at below, the same
1206 // way.
1207 "-fsafety-restrict" => opts.promise = rucc_session::Promise::Blocks,
1208 "-fno-safety-restrict" => opts.promise = rucc_session::Promise::Off,
1209 _ if arg.starts_with("-fsafety-restrict=") => {
1210 let form = &arg["-fsafety-restrict=".len()..];
1211 return Err(err(format!(
1212 "`{form}` is not a form of -fsafety-restrict. The flag takes no value."
1213 )));
1214 }
1215 // The sanitizers of document 12, which are checks at run time rather than a way of
1216 // generating the same program. Each name is held to gcc 16's list, and what is still
1217 // asked for by the end of the line is answered after the loop, so that a command line
1218 // which turns one on and then off again is a command line that asked for nothing.
1219 //
1220 // Before the optimizer's `-f` family below, for the reason the tier above it is.
1221 _ if arg.starts_with("-fsanitize=") => {
1222 for one in arg["-fsanitize=".len()..].split(',') {
1223 if one == "all" {
1224 // gcc takes `all` only in the negative, because turning every check on at
1225 // once includes checks that contradict each other.
1226 return Err(err(
1227 "`-fsanitize=all` is not a gcc option, only `-fno-sanitize=all` is",
1228 ));
1229 }
1230 if !SANITIZERS.contains(&one) {
1231 return Err(err(format!(
1232 "`{one}` is not a sanitizer, see spec/04-driver-and-cli.md section 4.7"
1233 )));
1234 }
1235 if !sanitizers.contains(&one) {
1236 sanitizers.push(one);
1237 }
1238 }
1239 }
1240 _ if arg.starts_with("-fno-sanitize=") => {
1241 for one in arg["-fno-sanitize=".len()..].split(',') {
1242 if one == "all" {
1243 sanitizers.clear();
1244 continue;
1245 }
1246 if !SANITIZERS.contains(&one) {
1247 return Err(err(format!(
1248 "`{one}` is not a sanitizer, see spec/04-driver-and-cli.md section 4.7"
1249 )));
1250 }
1251 sanitizers.retain(|asked| *asked != one);
1252 }
1253 }
1254 // What a check does when it fires, and where the records about the checked objects go.
1255 // Each of them is an answer about the sanitizers refused after the loop, so there is
1256 // nothing left for them to change here. The names are still held to the list, because
1257 // a misspelling in a build's flags is worth finding when the compiler reads it.
1258 _ if arg.starts_with("-fsanitize-recover=")
1259 || arg.starts_with("-fno-sanitize-recover=")
1260 || arg.starts_with("-fsanitize-trap=")
1261 || arg.starts_with("-fno-sanitize-trap=") =>
1262 {
1263 // The guard above matched on a spelling that has an `=` in it, so the tail is
1264 // whatever follows the first one.
1265 let how = arg.split_once('=').map_or("", |(_, rest)| rest);
1266 for one in how.split(',') {
1267 if one != "all" && !SANITIZERS.contains(&one) {
1268 return Err(err(format!(
1269 "`{one}` is not a sanitizer, see spec/04-driver-and-cli.md section 4.7"
1270 )));
1271 }
1272 }
1273 }
1274 "-fsanitize-undefined-trap-on-error"
1275 | "-fsanitize-address-use-after-scope"
1276 | "-fno-sanitize-address-use-after-scope" => {}
1277 _ if arg.starts_with("-fsanitize-sections=") => {}
1278 // Counting which edges a run reached, which is how a fuzzer knows an input was worth
1279 // keeping. Refused rather than dropped, because a fuzzer whose calls into
1280 // `__sanitizer_cov_*` were never generated runs blind and reports coverage of nothing,
1281 // and there is no point in the campaign where that announces itself.
1282 _ if arg.starts_with("-fsanitize-coverage=") => {
1283 let how = &arg["-fsanitize-coverage=".len()..];
1284 for one in how.split(',') {
1285 if !matches!(one, "trace-pc" | "trace-cmp") {
1286 return Err(err(format!(
1287 "`{one}` is not a coverage instrumentation, which is trace-pc or \
1288 trace-cmp"
1289 )));
1290 }
1291 }
1292 return Err(err(format!(
1293 "{arg}: this compiler generates no coverage callbacks, and a fuzzer built \
1294 with it would run without any feedback at all, see \
1295 spec/04-driver-and-cli.md section 4.7"
1296 )));
1297 }
1298 // The optimizer's own flags, from section 9.10 of `spec/09-optimizer.md`. These come
1299 // after every `-f` the rest of the compiler answers to, so a pass can never take a
1300 // name that already means something else on the command line.
1301 _ if arg.starts_with("-fpass-fuel=") => {
1302 let (name, count) = arg["-fpass-fuel=".len()..]
1303 .split_once('=')
1304 .ok_or_else(|| err("-fpass-fuel= is spelled <pass>=<count>"))?;
1305 if rucc_opt::pass::find(name).is_none() {
1306 return Err(err(format!(
1307 "`{name}` is not a pass this compiler has, see --print-pipeline"
1308 )));
1309 }
1310 let count: u32 = count
1311 .parse()
1312 .map_err(|_| err(format!("`{count}` is not a number of transformations")))?;
1313 opts.pass_fuel.push((name.to_owned(), count));
1314 }
1315 _ if arg.starts_with("-fpass-fuel-global=") => {
1316 let count = &arg["-fpass-fuel-global=".len()..];
1317 let count: u32 = count
1318 .parse()
1319 .map_err(|_| err(format!("`{count}` is not a number of transformations")))?;
1320 opts.pass_fuel_global = Some(count);
1321 }
1322 // Everything from `-fopt-info` to the end of the argument, which is optional
1323 // keywords joined by hyphens and an optional `=<file>`. Checked here rather than
1324 // where the remarks are printed, because by then the compilation somebody wanted
1325 // to hear about is over.
1326 _ if arg == "-fopt-info"
1327 || arg.starts_with("-fopt-info=")
1328 || arg.starts_with("-fopt-info-") =>
1329 {
1330 let rest = &arg["-fopt-info".len()..];
1331 let (kinds, file) = match rest.split_once('=') {
1332 Some((kinds, file)) => (kinds, Some(file)),
1333 None => (rest, None),
1334 };
1335 let kinds = kinds.strip_prefix('-').unwrap_or(kinds);
1336 rucc_opt::Wants::none().add(kinds).map_err(err)?;
1337 opts.opt_info.push(kinds.to_owned());
1338 if let Some(file) = file {
1339 if file.is_empty() {
1340 return Err(err("-fopt-info= was given no file to write to"));
1341 }
1342 opts.opt_info_file = Some(file.to_owned());
1343 }
1344 }
1345 _ if arg.starts_with("-fdump-ir=") => {
1346 // Checked here rather than where the dumps are taken, because the compilation
1347 // that would have been dumped is over by then.
1348 let spec = &arg["-fdump-ir=".len()..];
1349 rucc_opt::Dumps::default().add(spec).map_err(err)?;
1350 opts.dump_ir.push(spec.to_owned());
1351 }
1352 // Before the bare `-f<pass>` below, because a pass called `enable-something` would
1353 // otherwise take the flag away from the gate. Checked here rather than where the
1354 // pipeline reads it, for the reason that applies to all of these: a misspelled pass
1355 // name that quietly gated nothing looks exactly like a pass that is not the guilty
1356 // one, and a bisection would carry on past the thing it was looking for.
1357 _ if arg.starts_with("-fdisable-") || arg.starts_with("-fenable-") => {
1358 let on = arg.starts_with("-fenable-");
1359 let spec = &arg[if on { "-fenable-".len() } else { "-fdisable-".len() }..];
1360 rucc_opt::Gates::default().add(on, spec).map_err(err)?;
1361 opts.pass_gates.push((on, spec.to_owned()));
1362 }
1363 _ if arg.strip_prefix("-fno-").is_some_and(|n| rucc_opt::pass::find(n).is_some()) => {
1364 opts.passes.push((arg["-fno-".len()..].to_owned(), false));
1365 }
1366 _ if arg.strip_prefix("-f").is_some_and(|n| rucc_opt::pass::find(n).is_some()) => {
1367 opts.passes.push((arg["-f".len()..].to_owned(), true));
1368 }
1369 // The unstable options, spelled the way rustc spells them and carrying the same
1370 // promise, which is none: one of these may change or go away in any release. They are
1371 // measurements and debugging aids rather than things a build asks for, which is why
1372 // none of them is in the usage text and all of them are in section 4.11 of
1373 // `spec/04-driver-and-cli.md`.
1374 "-Zverify-each" => opts.verify_each = true,
1375 _ if arg.starts_with("-Zrule-coverage=") => {
1376 let file = &arg["-Zrule-coverage=".len()..];
1377 if file.is_empty() {
1378 return Err(err("-Zrule-coverage= needs a file to write to"));
1379 }
1380 opts.rule_coverage = Some(file.to_owned());
1381 }
1382 _ if arg.starts_with("-Zregister-pressure=") => {
1383 let file = &arg["-Zregister-pressure=".len()..];
1384 if file.is_empty() {
1385 return Err(err("-Zregister-pressure= needs a file to write to"));
1386 }
1387 opts.register_pressure = Some(file.to_owned());
1388 }
1389 _ if arg.starts_with("-Z") => {
1390 return Err(err(format!(
1391 "`{arg}` is not an unstable option this compiler has, see \
1392 spec/04-driver-and-cli.md section 4.11 for the ones it does"
1393 )));
1394 }
1395 // The word size, which is a statement about the target and is taken as one. A build
1396 // that says the size the target already has is saying nothing, and one that says the
1397 // other size is asking for a target this compiler does not have, which it is told
1398 // rather than being given the wrong one.
1399 "-m64" | "-m32" | "-mx32" => {
1400 let want: u32 = match arg {
1401 "-m64" => 64,
1402 _ => 32,
1403 };
1404 let have = rucc_target::TargetInfo::new(opts.target).pointer_width;
1405 if have != want {
1406 return Err(err(format!(
1407 "{arg} asks for a {want} bit target and {} is {have} bit, use \
1408 --target= to name the one you mean",
1409 opts.target
1410 )));
1411 }
1412 }
1413 // Which processor in the family to generate for. This compiler emits the base
1414 // instruction set of the architecture and nothing above it, so a program built with
1415 // any of these runs on the machine that was named; it is a program that could have
1416 // been faster rather than a program that is wrong, which is what makes these safe to
1417 // take and ignore where a flag that changed the meaning of the code would not be.
1418 _ if arg.starts_with("-march=")
1419 || arg.starts_with("-mtune=")
1420 || arg.starts_with("-mcpu=") => {}
1421 // The calling convention, which is not safe to ignore. Taken when it names the one
1422 // the target already uses and refused otherwise.
1423 _ if arg.starts_with("-mabi=") => {
1424 let want = &arg["-mabi=".len()..];
1425 let have = match opts.target.arch {
1426 rucc_target::Arch::X86_64 => "sysv",
1427 rucc_target::Arch::Aarch64 => "lp64",
1428 rucc_target::Arch::Riscv64 => "lp64d",
1429 };
1430 if want != have {
1431 return Err(err(format!(
1432 "{arg}: {} uses the {have} convention and this compiler has no other",
1433 opts.target
1434 )));
1435 }
1436 }
1437 // How far apart the pieces of the program may be. The small model is what we emit and
1438 // it is every hosted program's default; the kernel model is a different one and a
1439 // build that asks for it and does not get it links and then does not run.
1440 "-mcmodel=small" => {}
1441 _ if arg.starts_with("-mcmodel=") => {
1442 return Err(err(format!(
1443 "{arg}: this compiler emits the small code model and no other, see \
1444 spec/12-targets.md"
1445 )));
1446 }
1447 // GCC's own scripting language for how the driver builds a command line.
1448 // `spec/04-driver-and-cli.md` section 4.4 settles that we will not have it, so a
1449 // build reaching for it is told which flags do the same job.
1450 _ if arg.starts_with("-specs=") => {
1451 return Err(err(
1452 "-specs= is not supported: the parts of it builds rely on are -B, -L, \
1453 -nostdlib, -nostartfiles and -Wl,, see spec/04-driver-and-cli.md \
1454 section 4.4",
1455 ));
1456 }
1457 // Arguments meant for a separate assembler or preprocessor, which this compiler does
1458 // not have: both are inside it and neither reads a command line. Refused rather than
1459 // dropped, because every one of these says something about the output and a build
1460 // that asked for `-Wa,--noexecstack` and was silently given an executable stack got
1461 // the opposite of what it asked for.
1462 _ if arg.starts_with("-Wa,") || arg.starts_with("-Wp,") => {
1463 return Err(err(format!(
1464 "`{arg}` is an argument for a separate assembler or preprocessor, and both \
1465 are inside this compiler rather than programs it runs"
1466 )));
1467 }
1468 "-Xassembler" | "-Xpreprocessor" => {
1469 return Err(err(format!(
1470 "{arg} hands an argument to a separate assembler or preprocessor, and both \
1471 are inside this compiler rather than programs it runs"
1472 )));
1473 }
1474 // Everything else in the `-W` family. `spec/04-driver-and-cli.md` section 4.1 has
1475 // this one as a rule about build systems rather than about warnings: autoconf finds
1476 // out whether a warning flag exists by passing it and looking at the exit status, so
1477 // a compiler that refuses one it has not heard of fails a configure script written
1478 // for a GCC newer than itself. The names are not checked against a list because this
1479 // compiler has no warning groups for a list to be of, which #485 is about.
1480 _ if arg.starts_with("-W") => {}
1481 // Flags that name something this compiler does not do and would not do differently
1482 // if it did. `-fno-ident` is about a comment in the output that we do not write
1483 // either way, and the others are about a way of ordering the compilation that has
1484 // been GCC's only way for twenty years. Section 4.1 asks for the list to be short
1485 // and for adding to it to be deliberate, which is why it is written out here.
1486 "-fno-ident"
1487 | "-fident"
1488 | "-funit-at-a-time"
1489 | "-fno-unit-at-a-time"
1490 | "-shared-libgcc"
1491 | "-static-libgcc" => {}
1492 _ if arg.starts_with('-') && arg.len() > 1 => {
1493 // Silently ignoring an unknown flag is how a build ends up not doing what
1494 // its author asked. spec/13-gnu-compat.md section 13.4 makes this an error
1495 // for the flags that change code generation, and the safe default until the
1496 // flag table is populated is to reject everything we do not know.
1497 return Err(err(format!("unknown option `{arg}`")));
1498 }
1499 _ => inputs.push(Input { path: arg.to_owned(), forced, library: false }),
1500 }
1501 }
1502
1503 // Last, so that it lands after every `-isystem` the command line gave. That is GCC's
1504 // order: a directory the user names outranks the compiler's own, and the compiler's own
1505 // outranks the library's. It is pushed after the loop rather than before it because
1506 // `SearchPath` appends within a group and the position is what the order is.
1507 // The same directory the headers were looked for under, because a sysroot is a statement
1508 // about a whole installation and not about half of one.
1509 // After the loop, because `-fno-sanitize=` can take back what an earlier flag asked for and a
1510 // command line that turns a check on and off again has asked for nothing. What is left is
1511 // refused rather than dropped, and it is the one place in this parser where the reason is not
1512 // that the output would differ. A sanitizer is a promise that the program is watched while it
1513 // runs, so a build that asks for one and is quietly given a program with no checks in it does
1514 // not get a slower program or a bigger file, it gets a test suite that passes for the wrong
1515 // reason. `-fsafety=` is the checking this compiler does have, and the message says so, because
1516 // somebody reaching for `-fsanitize=address` wants the nearest thing rather than a list of
1517 // options.
1518 if let Some(first) = sanitizers.first() {
1519 return Err(err(format!(
1520 "-fsanitize={first}: this compiler has no sanitizer instrumentation, and a build that \
1521 asked for one and got none would run its tests unchecked, see \
1522 spec/04-driver-and-cli.md section 4.7. `-fsafety=detect` is the memory checking this \
1523 compiler does have"
1524 )));
1525 }
1526 link.sysroot = sysroot.clone();
1527 // Where a sysroot for a target that is not this machine would be. Read once, here, rather than
1528 // inside the link line, because a link line that read the environment could only be tested on a
1529 // machine whose environment said the right thing, and the link line is the last thing that
1530 // touches a binary. `spec/cross-compile/13-distribution.md` section 13.2 owns the answer.
1531 link.cache = Some(cache::dir());
1532 // And the ten field spelling of the target, because the release on it decides two things the
1533 // three field one cannot say: whether a target that is this architecture is still a cross
1534 // compile, and which directory under the cache it is against. After the loop because the last
1535 // `--target=` on the command line is the one that counts.
1536 link.pinned = pinned;
1537 // After the loop rather than where `-pthread` was read, so that it lands after the objects
1538 // that refer to it. A static link takes the definitions it needs from a library when it
1539 // reaches it and not afterwards, so a library before the objects is a library that answers
1540 // nothing.
1541 if threads {
1542 inputs.push(Input::library("pthread"));
1543 }
1544 if let Some(query) = query {
1545 return Ok(Action::Print(answer(&query, &opts, &link)?));
1546 }
1547 // `-M` and `-MM` produce the rule and nothing else, so the run stops after phase 4 whatever
1548 // else the command line asked for. Read here rather than where the flag was, because a `-c`
1549 // written after it has to lose and the loop cannot know that until it has ended. The output
1550 // file is where the rule goes rather than where an object would have gone, and the last
1551 // phase being the preprocessor is what makes that true without a second rule for it.
1552 if opts.deps.instead_of_compiling {
1553 opts.emit = EmitKind::Preprocessed;
1554 }
1555 if !nostdinc {
1556 opts.search.push_system(runtime::DIR);
1557 // And the library's after ours, which is the other half of the same order. They go on
1558 // here rather than at the point `--target=` or `--sysroot=` was read because either
1559 // one changes the answer and the last word on both is the end of the loop.
1560 //
1561 // Which library's is the question `link::cross_sysroot` answers, and it is asked here so
1562 // that the headers and the libraries come from the same place. A target that is this
1563 // machine reads this machine's headers, and a target that is not reads the ones in the
1564 // sysroot for it rather than the ones next door.
1565 let cross = link::cross_sysroot(opts.target, &link);
1566 let kernel = link::cross_kernel(opts.target, &link);
1567 // And the version of those headers, which only the bundled tree has an answer for. A host
1568 // glibc and a tree the user named both define `__GLIBC_MINOR__` in their own `features.h`,
1569 // and a second definition with a different value is a warning on every file, so the
1570 // condition is the same one that chose the directories.
1571 if cross.is_some() {
1572 let target = pinned.unwrap_or_else(|| opts.target.tuple());
1573 opts.glibc_minor = rucc_sysroot::bundled_glibc_minor(target).map_err(|skew| {
1574 err(format!(
1575 "{skew}; pin a release the tree has, or name a tree that has that one \
1576 with --sysroot"
1577 ))
1578 })?;
1579 }
1580 for dir in
1581 library::header_dirs(opts.target, sysroot.as_deref(), cross.as_ref(), kernel.as_ref())
1582 {
1583 opts.search.push_system(dir);
1584 }
1585 }
1586 // Once, here, rather than as each directory is pushed. A `-I` that names a system
1587 // directory has to lose to the system entry and the system entry is added last, so the
1588 // question cannot be answered until the whole path is known.
1589 opts.search.remove_duplicates();
1590
1591 // The target has to be resolved before the configuration is printed, so this check comes
1592 // after the loop rather than at the point `--print-config` was seen.
1593 if print_config {
1594 return Ok(Action::PrintConfig(Box::new(opts)));
1595 }
1596 if print_pipeline {
1597 return Ok(Action::PrintPipeline(Box::new(opts)));
1598 }
1599 let plan = Plan::new(&opts, &inputs, output.as_deref()).map_err(|e| err(e.message))?;
1600 if print_plan {
1601 return Ok(Action::PrintPlan {
1602 opts: Box::new(opts),
1603 plan: Box::new(plan),
1604 link: Box::new(link),
1605 });
1606 }
1607 Ok(Action::Compile {
1608 opts: Box::new(opts),
1609 plan: Box::new(plan),
1610 link: Box::new(link),
1611 jobs,
1612 verbose,
1613 })
1614}
1615
1616/// What one of the `-dump` and `-print` flags prints.
1617///
1618/// GCC prints the name back unchanged when it cannot find the file a `-print` flag asked about,
1619/// which is what makes the answer safe to paste into a link line whether or not the file is
1620/// there, and this does the same.
1621fn answer(query: &Query, opts: &Options, link: &LinkOptions) -> Result<String, CliError> {
1622 let found = |name: &str| {
1623 link::find_in_search(link, opts.target, name)
1624 .map_or_else(|| name.to_owned(), |path| path.display().to_string())
1625 };
1626 Ok(match query {
1627 Query::Machine => opts.target.to_string(),
1628 Query::Version => VERSION.to_owned(),
1629 Query::Multiarch => link::multiarch(opts.target),
1630 // The three lines GCC prints, in its order and with its punctuation, because what reads
1631 // them is a script written against that shape. There is no installation directory to
1632 // report: this compiler is one binary that works wherever it is copied, and the headers
1633 // it ships are inside it, so `install` is where the binary is and nothing is under it.
1634 Query::SearchDirs => {
1635 let here = std::env::current_exe()
1636 .ok()
1637 .and_then(|p| p.parent().map(std::path::Path::to_path_buf))
1638 .unwrap_or_default();
1639 let list = |dirs: &[PathBuf]| {
1640 dirs.iter().map(|d| d.display().to_string()).collect::<Vec<_>>().join(":")
1641 };
1642 let libraries = link::search_dirs(link, opts.target);
1643 format!(
1644 "install: {}\nprograms: ={}\nlibraries: ={}",
1645 here.display(),
1646 list(&link.prefixes),
1647 list(&libraries)
1648 )
1649 }
1650 // The root the rest of the answers are under, which a build system asks for when it wants
1651 // to find a file itself rather than ask for one by name, and which is the first thing to
1652 // look at when a cross build read a header nobody expected. A native compile has no
1653 // sysroot and the answer is the empty line, which is what GCC prints when it was
1654 // configured without one. `--sysroot` wins over ours because it wins everywhere else.
1655 Query::Sysroot => {
1656 sysroot_root(opts, link).map(|root| root.display().to_string()).unwrap_or_default()
1657 }
1658 // Section 13.5 of `spec/cross-compile/13-distribution.md`: for every input that is not this
1659 // compiler's own code, what it is, where it was got, its hash, its licence and whether it
1660 // was bundled, generated or fetched. What is printed is the manifest the sysroot already
1661 // carries rather than a second format saying the same things, because the three uses 13.5
1662 // gives for this are a licence notice, a reproducibility check and a security audit, and all
1663 // three are somebody else parsing it. One format is one parser to write.
1664 Query::SysrootProvenance => {
1665 let Some(root) = sysroot_root(opts, link) else {
1666 return Ok(String::new());
1667 };
1668 let path = Sysroot::at(root, opts.target.tuple()).manifest_path();
1669 match std::fs::read_to_string(&path) {
1670 // Read and rendered rather than copied out, so that what comes back is the format
1671 // this build understands. A file this build cannot read is a file whose lines it
1672 // cannot vouch for, and printing it anyway would pass the problem to whoever parses
1673 // the output next.
1674 // The last newline comes off because whatever prints an answer adds one, the way it
1675 // does for every other query here. Keeping it would put a blank line at the end of
1676 // the one answer that is a file somebody diffs against the file it came from.
1677 Ok(text) => Manifest::parse(&text)
1678 .map_err(|why| err(format!("{}: {why}", path.display())))?
1679 .render()
1680 .trim_end_matches('\n')
1681 .to_string(),
1682 // A tree with no manifest in it is a tree somebody laid out themselves and pointed
1683 // `--sysroot` at, and nothing here knows where any of it came from. The answer is
1684 // nothing, which a reader can tell apart from a manifest with no inputs in it
1685 // because that one still has its header line.
1686 Err(why) if why.kind() == std::io::ErrorKind::NotFound => String::new(),
1687 Err(why) => return Err(err(format!("{}: {why}", path.display()))),
1688 }
1689 }
1690 Query::FileName(name) => found(name),
1691 // The name GCC gives the library of routines a compiler's output calls that the C
1692 // library does not have. Ours is built in and there is no file, so the answer is the
1693 // name itself, which is what GCC prints when it cannot find one either.
1694 Query::Libgcc => found("libgcc.a"),
1695 // A program rather than a library: the linker and the archiver are the ones a build asks
1696 // about, and this compiler finds them on the path or under `-B` rather than shipping
1697 // them, so the name back is the honest answer unless a `-B` prefix holds one.
1698 Query::ProgName(name) => link
1699 .prefixes
1700 .iter()
1701 .map(|dir| dir.join(name))
1702 .find(|path| path.is_file())
1703 .map_or_else(|| name.clone(), |path| path.display().to_string()),
1704 })
1705}
1706
1707/// The root both of the sysroot answers are about.
1708///
1709/// One function rather than a copy in each, because the second flag exists to say what is inside the
1710/// tree the first one names, and two answers that disagreed about which tree that is would be a
1711/// difference nobody would think to look for. `--sysroot` wins over ours because it wins everywhere
1712/// else.
1713fn sysroot_root(opts: &Options, link: &LinkOptions) -> Option<PathBuf> {
1714 link.sysroot
1715 .clone()
1716 .or_else(|| link::cross_sysroot(opts.target, link).map(|at| at.root().to_path_buf()))
1717}
1718
1719/// Renders the passes this level will run, in order, with what each one does.
1720///
1721/// The level is the whole of the answer unless a `-f` flag edited it, which is section 9.1 of
1722/// `spec/09-optimizer.md`: a level is a list somebody wrote down rather than something that
1723/// emerges from which flags happen to be set, and this is how that list is read.
1724#[must_use]
1725pub fn print_pipeline(opts: &Options) -> String {
1726 let mut settings = rucc_opt::Options::for_level(opts.opt_level);
1727 settings.toggles.clone_from(&opts.passes);
1728 settings.global_fuel = opts.pass_fuel_global;
1729 for (on, spec) in &opts.pass_gates {
1730 // Every spelling was checked while the arguments were parsed, so there is nothing here
1731 // this can refuse, and a listing is not the place to report it if there were.
1732 let _ = settings.gates.add(*on, spec);
1733 }
1734 rucc_opt::pipeline::print(&settings)
1735}
1736
1737/// Renders the resolved configuration.
1738///
1739/// One `key: value` per line, sorted by nothing in particular but fixed in order, because
1740/// this output is diffed across hosts in CI and a reordering would read as a change.
1741#[must_use]
1742pub fn print_config(opts: &Options) -> String {
1743 let sess = Session::new(opts.clone());
1744 let t = &sess.target;
1745 let mut out = String::new();
1746 let _ = writeln!(out, "version: {VERSION}");
1747 // The three field triple the driver was given rather than the ten field tuple it widens to,
1748 // because this output is what a build system reads to find out what it asked for. The tuple is
1749 // the compiler's model of the machine and this line is a receipt for a command line.
1750 let _ = writeln!(out, "target: {}", opts.target);
1751 let _ = writeln!(out, "arch: {}", opts.target.arch.as_str());
1752 let _ = writeln!(out, "os: {}", opts.target.os.as_str());
1753 let _ = writeln!(out, "env: {}", opts.target.env.as_str());
1754 let _ = writeln!(out, "object-format: {}", t.object_format.as_str());
1755 let _ = writeln!(out, "pointer-width: {}", t.pointer_width);
1756 let _ = writeln!(out, "long-width: {}", t.long_width);
1757 let _ = writeln!(out, "long-double-width: {}", t.long_double_width);
1758 let _ = writeln!(out, "endian: {}", if t.little_endian { "little" } else { "big" });
1759 let _ = writeln!(out, "char-signed: {}", t.char_is_signed);
1760 let _ = writeln!(out, "va-list: {}", t.va_list.map_or("none", |list| list.as_str()));
1761 // The register file as a count per class, which is enough to tell a target whose registers
1762 // are described from one whose are not without printing sixteen names nobody asked for.
1763 let regs: Vec<String> = t
1764 .regs
1765 .classes()
1766 .map(|(class, info)| format!("{} {}", info.name, t.regs.len(class)))
1767 .collect();
1768 let _ = writeln!(
1769 out,
1770 "registers: {}",
1771 if regs.is_empty() { "none".to_string() } else { regs.join(", ") }
1772 );
1773 let _ = writeln!(out, "opt-level: {}", sess.opts.opt_level);
1774 let _ = writeln!(out, "safety: {}", sess.opts.safety);
1775 let _ = writeln!(out, "emit: {}", sess.opts.emit.as_str());
1776 let _ = writeln!(out, "debug-info: {}", sess.opts.debug_info);
1777 let _ = writeln!(out, "frame-pointer: {}", sess.opts.frame_pointer);
1778 let _ = writeln!(out, "red-zone: {}", sess.opts.red_zone);
1779 let _ = writeln!(out, "stack-protector: {}", sess.opts.protector);
1780 let _ = writeln!(out, "stack-clash-protection: {}", sess.opts.stack_clash);
1781 let _ = writeln!(out, "cf-protection: {}", sess.opts.control);
1782 let _ = writeln!(out, "patchable-function-entry: {}", sess.opts.patchable);
1783 let _ = writeln!(out, "profile: {}", sess.opts.profile);
1784 let _ = writeln!(out, "profile-hook: {}", sess.opts.hook);
1785 // Last because it is the one key with more than one line under it, and the only one
1786 // whose value is a property of the machine rather than of the command line.
1787 for dir in sess.opts.search.dirs() {
1788 let system = if dir.is_system { " (system)" } else { "" };
1789 let _ = writeln!(out, "include: {}{system}", dir.path.display());
1790 }
1791 out
1792}
1793
1794/// The output name the make target is taken from, which is the `-o` argument or nothing.
1795///
1796/// A run that stops at the preprocessor has not named an object, whatever its `-o` says: under
1797/// `-E` that argument is the preprocessed text and under `-M` it is the rule itself, and neither
1798/// is a file `make` would rebuild by running this rule. GCC agrees and falls back to the source
1799/// name in both, which is why a `-MD -E -o out.i` writes `out.d` holding a rule for `a.o`. From
1800/// `-S` on the argument does name what the rule builds, and it is used as written.
1801fn deps_target_output<'a>(opts: &Options, plan: &'a Plan) -> Option<&'a str> {
1802 if opts.emit == EmitKind::Preprocessed { None } else { plan.output.as_deref() }
1803}
1804
1805/// Writes to a path the command line named rather than one the plan derived, where `-` is
1806/// standard output.
1807fn write_named(path: &str, bytes: &[u8]) -> Result<(), String> {
1808 if path == "-" {
1809 return write_out(&Output::Stdout, bytes);
1810 }
1811 write_out(&Output::File(path.to_owned()), bytes)
1812}
1813
1814/// Writes the make rule for one input, and reports whether it got there.
1815///
1816/// A rule with no file of its own goes where the compilation it replaced would have written,
1817/// which is what makes the usual makefile recipe work: `rucc -M $< -o $@` leaves the rule in
1818/// `$@`, and the same line with the `-o` left off puts it on standard output.
1819fn write_deps(
1820 opts: &Options,
1821 plan: &Plan,
1822 job: &Job,
1823 found: &[Dependency],
1824 stderr: &mut impl std::io::Write,
1825) -> bool {
1826 let targets = if opts.deps.targets.is_empty() {
1827 vec![deps::default_target(&job.input, deps_target_output(opts, plan))]
1828 } else {
1829 opts.deps.targets.clone()
1830 };
1831 let rule = deps::rule(&opts.deps, &targets, &job.input, found);
1832 // The file, on the other hand, is named after the `-o` in every mode that still has one to
1833 // spend, which is every mode except the two that spend it on the rule.
1834 let wrote = match deps::default_file(&opts.deps, &job.input, plan.output.as_deref()) {
1835 // A `-MF` on a run that had nowhere else to put the rule leaves the file the `-o`
1836 // named empty rather than absent, because a makefile that named it as a target of its
1837 // own is a makefile that will look for it.
1838 Some(path) => write_named(&path, rule.as_bytes()).and_then(|()| {
1839 if opts.deps.instead_of_compiling { write_out(&job.output, b"") } else { Ok(()) }
1840 }),
1841 None => write_out(&job.output, rule.as_bytes()),
1842 };
1843 if let Err(e) = wrote {
1844 let _ = writeln!(stderr, "rucc: error: {e}");
1845 return false;
1846 }
1847 true
1848}
1849
1850/// Runs phase 4 over every input that has one, and writes what came out.
1851///
1852/// One input that fails does not stop the others. A build that reports every file it could
1853/// not preprocess in one run is worth more than one that stops at the first, and the exit
1854/// status is still a failure either way.
1855fn preprocess_all(opts: &Options, plan: &Plan) -> i32 {
1856 let fs = OsFileSystem::new();
1857 let mut stderr = std::io::stderr().lock();
1858 let mut failed = false;
1859 for job in &plan.jobs {
1860 if !job.phases.first().is_some_and(|p| *p == Phase::Preprocess) {
1861 // An input that is already preprocessed, or an object file. GCC passes these
1862 // through untouched, and the plan has already said so in its notes.
1863 continue;
1864 }
1865 let started = std::time::Instant::now();
1866 let result = preprocess(opts, &job.input, &fs);
1867 if opts.time {
1868 say_time(&job.input, started.elapsed(), &mut stderr);
1869 }
1870 for message in &result.messages {
1871 let _ = writeln!(stderr, "{message}");
1872 }
1873 if result.failed() {
1874 failed = true;
1875 continue;
1876 }
1877 if opts.deps.emit {
1878 failed |= !write_deps(opts, plan, job, &result.deps, &mut stderr);
1879 // `-M` and `-MM` asked for the rule instead of the text, so there is nothing else
1880 // to write. The other two asked for both and fall through to the text below.
1881 if opts.deps.instead_of_compiling {
1882 continue;
1883 }
1884 }
1885 if let Err(e) = write_out(&job.output, result.text.as_bytes()) {
1886 let _ = writeln!(stderr, "rucc: error: {e}");
1887 failed = true;
1888 }
1889 }
1890 i32::from(failed)
1891}
1892
1893/// Runs the front end over every input that has a compile phase, and writes what came out.
1894///
1895/// The same rule as [`preprocess_all`]: one input that fails does not stop the others, and the
1896/// exit status is a failure either way. An input that is already assembly or an object has no
1897/// compile phase and is passed over here, which the plan has already said in its notes.
1898fn compile_all(opts: &Options, plan: &Plan) -> i32 {
1899 let fs = OsFileSystem::new();
1900 let mut stderr = std::io::stderr().lock();
1901 let mut failed = false;
1902 let (mut remarks, ok) = Remarks::new(opts.opt_info_file.as_ref(), &mut stderr);
1903 failed |= !ok;
1904 let mut fired = Fired::new();
1905 let mut pressure = Pressure::new();
1906 for job in &plan.jobs {
1907 if !job.phases.contains(&Phase::Compile) {
1908 continue;
1909 }
1910 // An input of IR is read back rather than compiled, since the C it came from is not
1911 // here any more. Everything after this is the same, so the two paths meet again at the
1912 // messages and the file the result is written to.
1913 let started = std::time::Instant::now();
1914 let result = if job.kind == InputKind::Ir {
1915 compile_ir(opts, &job.input, &fs)
1916 } else {
1917 compile(opts, &job.input, &fs)
1918 };
1919 if opts.time {
1920 say_time(&job.input, started.elapsed(), &mut stderr);
1921 }
1922 fired.merge(&result.fired);
1923 pressure.merge(&result.pressure);
1924 failed |= !write_dumps(&job.input, &result.dumps, &mut stderr);
1925 failed |= !remarks.write(&result.remarks, &mut stderr);
1926 for message in &result.messages {
1927 let _ = writeln!(stderr, "{message}");
1928 }
1929 // Before the failure below, because a compilation that stopped in the back end is exactly
1930 // the one whose preprocessed source somebody wants to look at.
1931 failed |= !write_temps(job, &result.temps, &mut stderr);
1932 if result.failed() {
1933 failed = true;
1934 continue;
1935 }
1936 // `-MD` and `-MMD` write the rule beside the object and let the compilation happen, so
1937 // this is the one path where both files come out of the same run. An input of IR has no
1938 // dependencies to report and produces an empty list, which produces a rule naming only
1939 // itself, and that is the honest answer rather than a missing file.
1940 if opts.deps.emit {
1941 failed |= !write_deps(opts, plan, job, &result.deps, &mut stderr);
1942 }
1943 if let Err(e) = write_out(&job.output, result.artifact.bytes()) {
1944 let _ = writeln!(stderr, "rucc: error: {e}");
1945 failed = true;
1946 }
1947 }
1948 failed |= !write_coverage(opts, &fired, &mut stderr);
1949 failed |= !write_pressure(opts, &pressure, &mut stderr);
1950 i32::from(failed)
1951}
1952
1953/// A directory for the object files only the link step ever sees, removed when it goes away.
1954///
1955/// `-c` writes its object where the user can see it and linking does not, which is the whole of
1956/// the difference: a `rucc a.c b.c` leaves an executable behind and nothing else, the same as
1957/// every other compiler. Removing them on drop rather than at the end of a function is so that a
1958/// link that failed leaves nothing behind either.
1959struct Scratch {
1960 /// Where the objects go.
1961 dir: PathBuf,
1962}
1963
1964impl Scratch {
1965 /// Makes one, under whatever the platform calls its temporary directory.
1966 ///
1967 /// The name carries the process id so that two compilers running at once do not share a
1968 /// directory, which they would otherwise do the moment two of them compiled a file of the
1969 /// same name.
1970 fn new() -> Result<Scratch, String> {
1971 let dir = std::env::temp_dir().join(format!("rucc-{}", std::process::id()));
1972 std::fs::create_dir_all(&dir).map_err(|e| format!("{}: {e}", dir.display()))?;
1973 Ok(Scratch { dir })
1974 }
1975}
1976
1977impl Drop for Scratch {
1978 fn drop(&mut self) {
1979 let _ = std::fs::remove_dir_all(&self.dir);
1980 }
1981}
1982
1983/// The link line the plan describes, for `-###`.
1984///
1985/// The names in it are the hints the plan carries rather than the temporaries a real compilation
1986/// would choose, because `-###` prints the line without having compiled anything and so has
1987/// nothing to point at. That also makes the printed line readable rather than naming a directory
1988/// that only exists while a compilation is running.
1989fn link_line(opts: &Options, link: &LinkOptions, job: &LinkJob) -> Result<String, link::Error> {
1990 let linker = link::find(opts.target, link)?;
1991 let args = link::line(opts.target, link, &job.inputs, &job.output)?;
1992 Ok(link::render(&linker, &args))
1993}
1994
1995/// Compiles everything, then links it.
1996///
1997/// The objects go in a directory that is removed afterwards, which is why this is not
1998/// [`compile_all`] followed by a link: the plan says an object feeding the linker is temporary
1999/// and does not say where, because where is a question that only has an answer once something is
2000/// running.
2001fn link_all(opts: &Options, plan: &Plan, link: &LinkOptions, verbose: bool) -> i32 {
2002 let Some(job) = &plan.link else {
2003 // Every path into here comes from a plan whose last phase is the link, and such a plan
2004 // has a link job. Saying so is cheaper than an unwrap that would have to be explained.
2005 let mut stderr = std::io::stderr().lock();
2006 let _ = writeln!(stderr, "rucc: error: there is nothing to link");
2007 return 1;
2008 };
2009 // Before anything is compiled, because a linker that is not on the machine is worth knowing
2010 // about in the second it takes to look rather than after the compilation.
2011 // And before that, whether this link has a line at all and whether what it reads is on the
2012 // machine. Both are answerable now, and a target whose sysroot has not been built is worth
2013 // saying so about before the compilation rather than after it.
2014 if let Err(why) = link::preflight(opts.target, link) {
2015 return complain(why);
2016 }
2017 let linker = match link::find(opts.target, link) {
2018 Ok(linker) => linker,
2019 Err(why) => return complain(why),
2020 };
2021
2022 let scratch = match Scratch::new() {
2023 Ok(scratch) => scratch,
2024 Err(why) => return complain(format!("could not make a place for the object files: {why}")),
2025 };
2026
2027 let fs = OsFileSystem::new();
2028 let mut failed = false;
2029 // One per job, in job order, which is what lets the link line below be rebuilt with the real
2030 // paths in it: every job contributes exactly one file to the line and does so in this order.
2031 let mut produced: Vec<String> = Vec::with_capacity(plan.jobs.len());
2032 let mut fired = Fired::new();
2033 let mut pressure = Pressure::new();
2034 {
2035 let mut stderr = std::io::stderr().lock();
2036 let (mut remarks, ok) = Remarks::new(opts.opt_info_file.as_ref(), &mut stderr);
2037 failed |= !ok;
2038 for (at, job) in plan.jobs.iter().enumerate() {
2039 let out = match &job.output {
2040 Output::Temporary(hint) => {
2041 // The index because two inputs in different directories can have the same
2042 // name, and the two objects of `rucc a/x.c b/x.c` must not be one file.
2043 scratch.dir.join(format!("{at}-{hint}")).display().to_string()
2044 }
2045 Output::File(path) => path.clone(),
2046 // A job feeding the linker never writes to standard output, since the plan gives
2047 // it a temporary. This is here so that the match is total rather than a panic.
2048 Output::Stdout => continue,
2049 };
2050 produced.push(out.clone());
2051 if !job.phases.contains(&Phase::Compile) {
2052 continue;
2053 }
2054 let started = std::time::Instant::now();
2055 let result = if job.kind == InputKind::Ir {
2056 compile_ir(opts, &job.input, &fs)
2057 } else {
2058 compile(opts, &job.input, &fs)
2059 };
2060 if opts.time {
2061 say_time(&job.input, started.elapsed(), &mut stderr);
2062 }
2063 fired.merge(&result.fired);
2064 pressure.merge(&result.pressure);
2065 failed |= !write_dumps(&job.input, &result.dumps, &mut stderr);
2066 failed |= !remarks.write(&result.remarks, &mut stderr);
2067 for message in &result.messages {
2068 let _ = writeln!(stderr, "{message}");
2069 }
2070 failed |= !write_temps(job, &result.temps, &mut stderr);
2071 if result.failed() {
2072 failed = true;
2073 continue;
2074 }
2075 // A `-MD` on a command line that links writes the rule next to the executable and
2076 // names the executable as its target, since that is the file this source builds
2077 // here. The object it went through is in a temporary directory and is gone by the
2078 // time `make` reads any of this.
2079 if opts.deps.emit {
2080 failed |= !write_deps(opts, plan, job, &result.deps, &mut stderr);
2081 }
2082 if !matches!(result.artifact, Artifact::Object(_)) {
2083 // Worth saying rather than writing whatever it is and letting the linker read it.
2084 // An empty file is a valid empty linker script, so a link handed one gets as far
2085 // as reporting every symbol of this file undefined, which is a page of messages
2086 // about something that went wrong here.
2087 let _ = writeln!(
2088 stderr,
2089 "rucc: internal error: {}: no object file was produced for the link",
2090 job.input
2091 );
2092 failed = true;
2093 continue;
2094 }
2095 if let Err(e) = std::fs::write(&out, result.artifact.bytes()) {
2096 let _ = writeln!(stderr, "rucc: error: {out}: {e}");
2097 failed = true;
2098 }
2099 }
2100 failed |= !write_coverage(opts, &fired, &mut stderr);
2101 failed |= !write_pressure(opts, &pressure, &mut stderr);
2102 }
2103 if failed {
2104 // Nothing is linked from a compilation that did not finish. A linker run over the objects
2105 // that did compile would report every function of the file that did not as undefined,
2106 // which is a page of messages about a mistake already reported once.
2107 return 1;
2108 }
2109
2110 // The items in command line order with the temporaries filled in. A library contributes no
2111 // job and passes through, and every file item takes the next job's real output, which is
2112 // what keeps a library that was written between two objects between them here.
2113 let mut outputs = produced.into_iter();
2114 let mut items = Vec::with_capacity(job.inputs.len());
2115 for item in &job.inputs {
2116 match item {
2117 link::Item::Library(name) => items.push(link::Item::Library(name.clone())),
2118 link::Item::File(_) => match outputs.next() {
2119 Some(path) => items.push(link::Item::File(path)),
2120 None => return complain("the plan asks the linker for a file nothing produced"),
2121 },
2122 }
2123 }
2124
2125 let args = match link::line(opts.target, link, &items, &job.output) {
2126 Ok(args) => args,
2127 Err(why) => return complain(why),
2128 };
2129 if verbose {
2130 let mut stderr = std::io::stderr().lock();
2131 let _ = writeln!(stderr, "{}", link::render(&linker, &args));
2132 }
2133 let started = std::time::Instant::now();
2134 let ran = link::run(&linker, &args);
2135 if opts.time {
2136 // The one step of a compilation that really is another program, so this line is the same
2137 // measurement gcc's is and names the linker the way gcc names `collect2`.
2138 let mut stderr = std::io::stderr().lock();
2139 say_time(&linker.name, started.elapsed(), &mut stderr);
2140 }
2141 match ran {
2142 Ok(()) => 0,
2143 // The linker has already said what was wrong on its own error output, and repeating that
2144 // linking failed would only push its message further up the screen.
2145 Err(link::Error::Refused { .. }) => 1,
2146 Err(why) => complain(why),
2147 }
2148}
2149
2150/// Prints one driver level message and gives back the exit status that goes with it.
2151fn complain(why: impl std::fmt::Display) -> i32 {
2152 let mut stderr = std::io::stderr().lock();
2153 let _ = writeln!(stderr, "rucc: error: {why}");
2154 1
2155}
2156
2157/// Writes what `-Zrule-coverage=FILE` asked for, and says whether it could.
2158///
2159/// Once for the whole command line rather than once per input, because the question is which
2160/// lowering rules this run of the compiler reached and a file per input would leave the reader
2161/// unioning files to find out something one process already knew.
2162///
2163/// A file that could not be written is a failure and not a warning. What asks for this is a
2164/// measurement run, and a measurement that quietly did not happen is worse than one that stopped.
2165fn write_coverage(opts: &Options, fired: &Fired, stderr: &mut impl std::io::Write) -> bool {
2166 let Some(path) = &opts.rule_coverage else { return true };
2167 let Some(table) = coverage::table(opts.target.arch) else {
2168 let _ = writeln!(
2169 stderr,
2170 "rucc: error: there are no lowering rules for {} yet, so there is no coverage of them \
2171 to report",
2172 opts.target
2173 );
2174 return false;
2175 };
2176 match std::fs::write(path, fired.listing(table)) {
2177 Ok(()) => true,
2178 Err(e) => {
2179 let _ = writeln!(stderr, "rucc: error: {path}: {e}");
2180 false
2181 }
2182 }
2183}
2184
2185/// Writes what `-Zregister-pressure=FILE` asked for, and says whether it could.
2186///
2187/// Once for the whole command line, for the reason [`write_coverage`] gives, and a file that could
2188/// not be written is a failure for the reason it gives too. There is no equivalent of the missing
2189/// rule table here, since every target this compiles for has an allocator, and a run that reached
2190/// no back end at all writes an empty listing rather than nothing: a measurement of a build that
2191/// produced no code is still an answer and it is the honest one.
2192fn write_pressure(opts: &Options, pressure: &Pressure, stderr: &mut impl std::io::Write) -> bool {
2193 let Some(path) = &opts.register_pressure else { return true };
2194 match std::fs::write(path, pressure.listing()) {
2195 Ok(()) => true,
2196 Err(e) => {
2197 let _ = writeln!(stderr, "rucc: error: {path}: {e}");
2198 false
2199 }
2200 }
2201}
2202
2203/// Where the `-fopt-info` remarks go, and how much of the run has already gone there.
2204///
2205/// Standard error by default, and one file for the whole run when `-fopt-info=<file>` named one.
2206/// A file rather than the diagnostic stream is what a harness wants: the corpus in
2207/// `tamnd/rucc-corpus` matches a rejection against what the compiler said on standard error, and
2208/// a few thousand remarks mixed into that would bury it.
2209struct Remarks {
2210 /// The file, if there is one.
2211 file: Option<String>,
2212 /// Whether anything has been written to it yet, which decides between truncating and
2213 /// appending. One file holds the whole run rather than the last input in it.
2214 started: bool,
2215}
2216
2217impl Remarks {
2218 /// Prepares the destination, emptying the file if there is one.
2219 ///
2220 /// Emptied here rather than at the first remark, because a run where no pass had anything to
2221 /// say should leave an empty file and not yesterday's. An absent file and an empty one are
2222 /// different facts and something reading this will act on the difference.
2223 fn new(file: Option<&String>, stderr: &mut impl std::io::Write) -> (Self, bool) {
2224 let mut ok = true;
2225 if let Some(path) = file {
2226 if let Err(e) = std::fs::write(path, "") {
2227 let _ = writeln!(stderr, "rucc: error: {path}: {e}");
2228 ok = false;
2229 }
2230 }
2231 (Self { file: file.cloned(), started: false }, ok)
2232 }
2233
2234 /// Writes one input's remarks, and says whether that worked.
2235 ///
2236 /// A file that cannot be written is a failure and not a warning, for the reason
2237 /// [`write_dumps`] gives: remarks that quietly did not arrive look exactly like a compilation
2238 /// where nothing happened.
2239 fn write(&mut self, text: &str, stderr: &mut impl std::io::Write) -> bool {
2240 if text.is_empty() {
2241 return true;
2242 }
2243 let Some(path) = &self.file else {
2244 let _ = write!(stderr, "{text}");
2245 return true;
2246 };
2247 let opened = std::fs::OpenOptions::new()
2248 .write(true)
2249 .append(self.started)
2250 .truncate(!self.started)
2251 .create(true)
2252 .open(path);
2253 self.started = true;
2254 let result =
2255 opened.and_then(|mut file| std::io::Write::write_all(&mut file, text.as_bytes()));
2256 if let Err(e) = result {
2257 let _ = writeln!(stderr, "rucc: error: {path}: {e}");
2258 return false;
2259 }
2260 true
2261 }
2262}
2263
2264/// Writes what `-fdump-ir=` asked to see, one file per dump.
2265///
2266/// The name is the input file with the dump's own name and `.ir` after it, so a directory listing
2267/// after a run is the passes in the order they ran, per input. They go in the working directory
2268/// rather than beside the output, because a dump is something a person asked for at a prompt and
2269/// the working directory is where that person is.
2270///
2271/// A file that could not be written is a failure and not a warning, for the reason
2272/// [`write_coverage`] gives: what asked for this is somebody debugging a pass, and a dump that
2273/// quietly did not happen looks exactly like a pass that did not run.
2274fn write_dumps(input: &str, dumps: &[rucc_opt::Dump], stderr: &mut impl std::io::Write) -> bool {
2275 let stem = std::path::Path::new(input)
2276 .file_name()
2277 .map_or_else(|| input.to_owned(), |name| name.to_string_lossy().into_owned());
2278 let mut ok = true;
2279 for dump in dumps {
2280 let path = format!("{stem}.{}.ir", dump.name);
2281 if let Err(e) = std::fs::write(&path, &dump.text) {
2282 let _ = writeln!(stderr, "rucc: error: {path}: {e}");
2283 ok = false;
2284 }
2285 }
2286 ok
2287}
2288
2289/// Writes the files `-save-temps` kept, which is nothing at all unless it was given.
2290///
2291/// A file that could not be written is a failure rather than a warning, for the reason
2292/// [`write_dumps`] gives: somebody asked for these by name, and one that quietly did not happen
2293/// looks like a compilation that never went through that step.
2294fn write_temps(job: &Job, temps: &Temps, stderr: &mut impl std::io::Write) -> bool {
2295 let mut ok = true;
2296 let kept = [(job.saved_text(), &temps.preprocessed), (job.saved_asm(), &temps.assembly)];
2297 for (path, text) in kept {
2298 // A step the compilation did not reach has nothing to keep, and a job that is not keeping
2299 // that step has nowhere to put it. Either way there is no file here.
2300 let (Some(path), Some(text)) = (path, text) else { continue };
2301 if let Err(e) = std::fs::write(&path, text) {
2302 let _ = writeln!(stderr, "rucc: error: {path}: {e}");
2303 ok = false;
2304 }
2305 }
2306 ok
2307}
2308
2309/// One line of `-time`, which is what a step was called and how long it took.
2310///
2311/// GCC's two numbers are the user and the system time of a subprocess it ran. This compiler runs
2312/// no subprocess for anything but the link, so what is measured here is the wall clock of the
2313/// step and the second column is always zero. The shape of the line is kept because a person
2314/// reading it next to gcc's should not have to work out which column is which.
2315fn say_time(name: &str, took: std::time::Duration, stderr: &mut impl std::io::Write) {
2316 let _ = writeln!(stderr, "# {name} {:.2} {:.2}", took.as_secs_f64(), 0.0);
2317}
2318
2319/// Writes one job's result where the plan said it goes.
2320///
2321/// # Errors
2322///
2323/// Returns the message to print, which names the file when there is one, because "permission
2324/// denied" on its own does not say which file was refused.
2325fn write_out(output: &Output, bytes: &[u8]) -> Result<(), String> {
2326 match output {
2327 Output::Stdout => {
2328 let mut stdout = std::io::stdout().lock();
2329 stdout.write_all(bytes).map_err(|e| format!("writing to standard output: {e}"))
2330 }
2331 Output::File(path) | Output::Temporary(path) => {
2332 std::fs::write(path, bytes).map_err(|e| format!("{path}: {e}"))
2333 }
2334 }
2335}
2336
2337/// Runs the driver and returns the process exit code.
2338///
2339/// `args` excludes the program name. Output goes to `stdout` and errors to `stderr`, which
2340/// is the one place in the compiler that is true.
2341pub fn run(args: &[String]) -> i32 {
2342 match parse_args(args) {
2343 Ok(Action::Help) => {
2344 print!("{USAGE}");
2345 0
2346 }
2347 Ok(Action::Version) => {
2348 println!("rucc {VERSION}");
2349 0
2350 }
2351 Ok(Action::Print(line)) => {
2352 println!("{line}");
2353 0
2354 }
2355 Ok(Action::PrintConfig(opts)) => {
2356 print!("{}", print_config(&opts));
2357 0
2358 }
2359 Ok(Action::PrintPipeline(opts)) => {
2360 print!("{}", print_pipeline(&opts));
2361 0
2362 }
2363 Ok(Action::PrintPlan { opts, plan, link }) => {
2364 print!("{}", plan.render());
2365 // The line as it would be typed, which is the half of `-###` that section 4.3 says
2366 // arrives with the link. It is printed even when the linker is not on this machine,
2367 // because what a build wants from `-###` is what the compiler would do.
2368 if let Some(job) = &plan.link {
2369 match link_line(&opts, &link, job) {
2370 Ok(line) => println!("{line}"),
2371 Err(why) => {
2372 let mut stderr = std::io::stderr().lock();
2373 let _ = writeln!(stderr, "rucc: error: {why}");
2374 return 1;
2375 }
2376 }
2377 }
2378 0
2379 }
2380 Ok(Action::Compile { opts, plan, link, jobs, verbose }) => {
2381 {
2382 let mut stderr = std::io::stderr().lock();
2383 if verbose {
2384 let _ = write!(stderr, "{}", plan.render());
2385 let _ = writeln!(stderr, "workers: {}", jobs.count());
2386 }
2387 }
2388 if opts.emit == EmitKind::Preprocessed {
2389 return preprocess_all(&opts, &plan);
2390 }
2391 if opts.emit != EmitKind::Executable {
2392 return compile_all(&opts, &plan);
2393 }
2394 link_all(&opts, &plan, &link, verbose)
2395 }
2396 Err(e) => {
2397 let mut stderr = std::io::stderr().lock();
2398 let _ = writeln!(stderr, "rucc: error: {e}");
2399 let _ = writeln!(stderr, "rucc: note: run `rucc --help` for usage");
2400 1
2401 }
2402 }
2403}
2404
2405#[cfg(test)]
2406mod tests {
2407 use rucc_session::{
2408 Contract, GnucVersion, IncludeForm, LtoJobs, OptLevel, Partition, Patchable, Visibility,
2409 };
2410
2411 use super::*;
2412
2413 fn args(s: &[&str]) -> Vec<String> {
2414 s.iter().map(|x| (*x).to_owned()).collect()
2415 }
2416
2417 #[test]
2418 fn help_and_version_win_over_everything_else() {
2419 assert_eq!(parse_args(&args(&["-c", "--help", "x.c"])).unwrap(), Action::Help);
2420 assert_eq!(parse_args(&args(&["--version"])).unwrap(), Action::Version);
2421 }
2422
2423 fn compile(s: &[&str]) -> (Box<Options>, Box<Plan>) {
2424 match parse_args(&args(s)).expect("expected a compilation") {
2425 Action::Compile { opts, plan, .. } => (opts, plan),
2426 other => panic!("expected a compilation, got {other:?}"),
2427 }
2428 }
2429
2430 fn linking(s: &[&str]) -> (Box<LinkOptions>, Box<Plan>) {
2431 match parse_args(&args(s)).expect("expected a compilation") {
2432 Action::Compile { link, plan, .. } => (link, plan),
2433 other => panic!("expected a compilation, got {other:?}"),
2434 }
2435 }
2436
2437 #[test]
2438 fn collects_inputs_and_flags() {
2439 let (opts, plan) = compile(&["-c", "-O2", "-g", "a.c", "b.c"]);
2440 let paths: Vec<&str> = plan.jobs.iter().map(|j| j.input.as_str()).collect();
2441 assert_eq!(paths, vec!["a.c", "b.c"]);
2442 assert_eq!(opts.opt_level, OptLevel::O2);
2443 assert_eq!(opts.emit, EmitKind::Object);
2444 assert!(opts.debug_info);
2445 }
2446
2447 /// The unstable options, which are spelled apart from everything else on purpose: what is
2448 /// under `-Z` promises nothing, and a build that reaches for one should have had to say so.
2449 #[test]
2450 fn an_unstable_option_is_taken_and_one_that_does_not_exist_is_refused() {
2451 let (opts, _) = compile(&["-c", "-Zrule-coverage=/tmp/rules.cov", "a.c"]);
2452 assert_eq!(opts.rule_coverage.as_deref(), Some("/tmp/rules.cov"));
2453
2454 let (plain, _) = compile(&["-c", "a.c"]);
2455 assert_eq!(plain.rule_coverage, None, "nothing is measured unless it was asked for");
2456
2457 assert!(parse_args(&args(&["-Zrule-coverage=", "a.c"])).is_err(), "a file with no name");
2458 let unknown = parse_args(&args(&["-Zwhat", "a.c"])).expect_err("there is no such option");
2459 assert!(unknown.message.contains("4.11"), "{}", unknown.message);
2460 }
2461
2462 /// The other measurement written to a file, which reads the same way and fails the same way.
2463 #[test]
2464 fn where_the_register_pressure_goes_is_asked_for_the_same_way() {
2465 let (opts, _) = compile(&["-c", "-O2", "-Zregister-pressure=/tmp/spills.txt", "a.c"]);
2466 assert_eq!(opts.register_pressure.as_deref(), Some("/tmp/spills.txt"));
2467
2468 let (plain, _) = compile(&["-c", "a.c"]);
2469 assert_eq!(plain.register_pressure, None, "nothing is measured unless it was asked for");
2470
2471 assert!(parse_args(&args(&["-Zregister-pressure=", "a.c"])).is_err(), "no file named");
2472 }
2473
2474 #[test]
2475 fn a_bare_dash_o_means_o1_the_way_gcc_reads_it() {
2476 let (opts, _) = compile(&["-O", "a.c"]);
2477 assert_eq!(opts.opt_level, OptLevel::O1);
2478 }
2479
2480 #[test]
2481 fn dash_x_applies_to_later_inputs_only_and_none_stops_it() {
2482 let (_, plan) = compile(&["a.o", "-x", "c", "b.txt", "-x", "none", "c.o"]);
2483 assert_eq!(plan.jobs[0].kind, InputKind::LinkerInput);
2484 assert_eq!(plan.jobs[1].kind, InputKind::C);
2485 assert_eq!(plan.jobs[2].kind, InputKind::LinkerInput);
2486 }
2487
2488 #[test]
2489 fn dash_j_reaches_the_scheduler_and_defaults_to_the_machine() {
2490 let (_, _, jobs) = match parse_args(&args(&["-j4", "a.c"])).unwrap() {
2491 Action::Compile { opts, plan, jobs, .. } => (opts, plan, jobs),
2492 other => panic!("expected a compilation, got {other:?}"),
2493 };
2494 assert_eq!(jobs.count(), 4);
2495
2496 let default = match parse_args(&args(&["a.c"])).unwrap() {
2497 Action::Compile { jobs, .. } => jobs,
2498 other => panic!("expected a compilation, got {other:?}"),
2499 };
2500 assert_eq!(default, Jobs::available());
2501 assert!(parse_args(&args(&["-j0", "a.c"])).is_err());
2502 }
2503
2504 #[test]
2505 fn triple_hash_prints_the_plan_and_runs_nothing() {
2506 let a = parse_args(&args(&["-###", "-c", "a.c"])).unwrap();
2507 let Action::PrintPlan { plan, .. } = a else { panic!("expected a plan dump") };
2508 assert!(plan.render().contains("a.c: preprocess, compile, assemble -> a.o"));
2509 }
2510
2511 #[test]
2512 fn the_flag_that_keeps_the_intermediate_files_has_three_spellings_and_two_meanings() {
2513 // The bare one is `=obj` and not `=cwd`. gcc's manual says the opposite and gcc 16 does
2514 // this, and following the compiler is what makes a build that reads either of them find
2515 // the files where they are.
2516 assert_eq!(compile(&["-c", "-save-temps", "a.c"]).0.save_temps, SaveTemps::Object);
2517 assert_eq!(compile(&["-c", "-save-temps=obj", "a.c"]).0.save_temps, SaveTemps::Object);
2518 assert_eq!(compile(&["-c", "-save-temps=cwd", "a.c"]).0.save_temps, SaveTemps::Cwd);
2519 assert_eq!(compile(&["-c", "a.c"]).0.save_temps, SaveTemps::No);
2520 // The last one on the line decides, the way it does for every other flag with an
2521 // argument, and a keyword that is neither is fatal rather than ignored: a run that kept
2522 // nothing and said nothing looks exactly like one where the files were not produced.
2523 let (opts, _) = compile(&["-c", "-save-temps", "-save-temps=cwd", "a.c"]);
2524 assert_eq!(opts.save_temps, SaveTemps::Cwd);
2525 let e = parse_args(&args(&["-c", "-save-temps=nowhere", "a.c"])).unwrap_err();
2526 assert!(e.message.contains("accepted: cwd, obj"), "{}", e.message);
2527 }
2528
2529 #[test]
2530 fn the_flag_that_times_each_step_reaches_the_options_and_changes_nothing_else() {
2531 let (opts, plan) = compile(&["-c", "-time", "a.c"]);
2532 let (plain, without) = compile(&["-c", "a.c"]);
2533 assert!(opts.time);
2534 assert!(!plain.time);
2535 // Against the same line without the flag rather than against a spelling of the object's
2536 // name, since what the object is called is the host's business and this is not about that.
2537 assert_eq!(plan.jobs[0].output, without.jobs[0].output);
2538 }
2539
2540 #[test]
2541 fn dash_x_names_what_it_accepts_when_it_does_not_know_a_language() {
2542 let e = parse_args(&args(&["-x", "fortran", "a.c"])).unwrap_err();
2543 assert!(e.message.contains("assembler-with-cpp"), "{}", e.message);
2544 }
2545
2546 #[test]
2547 fn an_unknown_flag_is_an_error_rather_than_a_shrug() {
2548 let e = parse_args(&args(&["-fno-such-thing", "a.c"])).unwrap_err();
2549 assert!(e.message.contains("unknown option"), "{}", e.message);
2550 }
2551
2552 /// `-fpermissive` and the flag that turns it back off, which a build writes beside it when
2553 /// one directory needs the older rules and the rest of the tree does not.
2554 #[test]
2555 fn permissive_reads_in_both_directions_and_the_last_one_wins() {
2556 let (opts, _) = compile(&["-c", "a.c"]);
2557 assert!(!opts.permissive, "off unless it is asked for");
2558
2559 let (opts, _) = compile(&["-c", "-fpermissive", "a.c"]);
2560 assert!(opts.permissive);
2561
2562 let (opts, _) = compile(&["-c", "-fpermissive", "-fno-permissive", "a.c"]);
2563 assert!(!opts.permissive);
2564 }
2565
2566 #[test]
2567 fn asking_for_nested_functions_is_told_why_it_is_not_coming() {
2568 let e = parse_args(&args(&["-fnested-functions", "a.c"])).unwrap_err();
2569 assert!(e.message.contains("trampoline"), "{}", e.message);
2570 assert!(parse_args(&args(&["-fno-nested-functions", "a.c"])).is_ok());
2571 }
2572
2573 #[test]
2574 fn the_flag_every_configure_script_writes_is_taken() {
2575 // All four spellings, because a build writes whichever one its macros picked and a
2576 // compiler that takes three of them is a compiler that fails on the fourth.
2577 for flag in ["-fPIC", "-fpic", "-fPIE", "-fpie"] {
2578 let (opts, _) = compile(&["-c", flag, "a.c"]);
2579 assert_eq!(opts.emit, EmitKind::Object, "{flag}");
2580 }
2581 }
2582
2583 #[test]
2584 fn a_table_is_written_unless_the_build_says_nothing_will_walk_it() {
2585 let (opts, _) = compile(&["-c", "a.c"]);
2586 assert!(opts.unwinds(), "the default is off");
2587 let (opts, _) = compile(&["-c", "-fno-asynchronous-unwind-tables", "a.c"]);
2588 assert!(!opts.unwinds(), "the build was not taken at its word");
2589 let (opts, _) = compile(&[
2590 "-c",
2591 "-fno-asynchronous-unwind-tables",
2592 "-fasynchronous-unwind-tables",
2593 "a.c",
2594 ]);
2595 assert!(opts.unwinds(), "the last flag did not win");
2596 // The weaker request, which the same table answers, so a line that asks for a table and
2597 // against an asynchronous one gets one. That is gcc's arrangement and it turns up when a
2598 // build turns the asynchronous one off globally and a directory asks for a table back.
2599 let (opts, _) =
2600 compile(&["-c", "-fno-asynchronous-unwind-tables", "-funwind-tables", "a.c"]);
2601 assert!(opts.unwinds(), "the weaker request was dropped");
2602 let (opts, _) = compile(&["-c", "-fno-unwind-tables", "a.c"]);
2603 assert!(opts.unwinds(), "the weaker negative turned off the stronger request");
2604 let (opts, _) =
2605 compile(&["-c", "-fno-unwind-tables", "-fno-asynchronous-unwind-tables", "a.c"]);
2606 assert!(!opts.unwinds(), "both were turned off and one stayed on");
2607 }
2608
2609 #[test]
2610 fn the_flags_that_describe_what_this_compiler_already_does_are_taken() {
2611 // Every one of these is on a real build line somewhere and every one of them was an
2612 // unknown option. What they have in common is that the answer rucc gives is the answer
2613 // they ask for, so there is nothing to implement and nothing to refuse.
2614 for flag in [
2615 "-fno-common",
2616 "-fstrict-aliasing",
2617 "-fno-strict-aliasing",
2618 "-fdelete-null-pointer-checks",
2619 "-fno-delete-null-pointer-checks",
2620 "-frounding-math",
2621 "-fno-rounding-math",
2622 "-ftrapping-math",
2623 "-fno-trapping-math",
2624 "-fexcess-precision=standard",
2625 "-fexcess-precision=fast",
2626 "-fexcess-precision=16",
2627 "-pipe",
2628 "-fdiagnostics-color",
2629 "-fno-diagnostics-color",
2630 "-fdiagnostics-color=always",
2631 "-fdiagnostics-color=never",
2632 "-fdiagnostics-color=auto",
2633 ] {
2634 let (opts, _) = compile(&["-c", flag, "a.c"]);
2635 assert_eq!(opts.emit, EmitKind::Object, "{flag}");
2636 }
2637 }
2638
2639 #[test]
2640 fn asking_the_linker_to_merge_tentative_definitions_is_told_why_it_is_not_coming() {
2641 // The one of that family that is a request rather than a description, and it is a real
2642 // difference: two files each writing `int g;` link under it and do not without it.
2643 let e = parse_args(&args(&["-fcommon", "a.c"])).unwrap_err();
2644 assert!(e.message.contains(".bss"), "{}", e.message);
2645 assert!(e.message.contains("extern"), "the way out is worth saying: {}", e.message);
2646 }
2647
2648 #[test]
2649 fn asking_for_position_dependent_code_is_told_why_it_is_not_coming() {
2650 for flag in ["-fno-pic", "-fno-pie"] {
2651 let e = parse_args(&args(&[flag, "a.c"])).unwrap_err();
2652 assert!(e.message.contains("global offset table"), "{flag}: {}", e.message);
2653 // The one it may have meant, since the two are a letter apart and one of them is
2654 // about linking and is taken.
2655 assert!(e.message.contains("-no-pie"), "{flag}: {}", e.message);
2656 }
2657 }
2658
2659 #[test]
2660 fn an_unsupported_target_names_itself() {
2661 let e = parse_args(&args(&["--target=sparc64-linux-gnu", "a.c"])).unwrap_err();
2662 assert!(e.message.contains("sparc64"), "{}", e.message);
2663 }
2664
2665 #[test]
2666 fn no_inputs_is_an_error_but_print_config_needs_none() {
2667 assert!(parse_args(&args(&[])).is_err());
2668 assert!(matches!(parse_args(&args(&["--print-config"])), Ok(Action::PrintConfig(_))));
2669 }
2670
2671 #[test]
2672 fn print_config_reports_the_target_it_was_given_not_the_host() {
2673 let a = parse_args(&args(&["--print-config", "--target=riscv64-linux-musl"])).unwrap();
2674 let Action::PrintConfig(opts) = a else { panic!("expected a configuration dump") };
2675 let text = print_config(&opts);
2676 assert!(text.contains("target: riscv64-unknown-linux-musl"), "{text}");
2677 assert!(text.contains("char-signed: false"), "{text}");
2678 assert!(text.contains("object-format: elf"), "{text}");
2679 assert!(text.contains("va-list: void-pointer"), "{text}");
2680 // RISC-V has a register file and this compiler has not written it down yet, and the
2681 // dump says which of those two it is rather than leaving the line out.
2682 assert!(text.contains("registers: none"), "{text}");
2683 }
2684
2685 #[test]
2686 fn print_config_has_one_key_per_line_and_a_fixed_order() {
2687 let opts = Options::new("x86_64-unknown-linux-gnu".parse().unwrap());
2688 let text = print_config(&opts);
2689 let keys: Vec<&str> =
2690 text.lines().map(|l| l.split(':').next().unwrap_or_default()).collect();
2691 assert_eq!(keys[0], "version");
2692 assert_eq!(keys[1], "target");
2693 assert_eq!(keys.len(), 25);
2694 assert!(text.ends_with('\n'));
2695 }
2696
2697 #[test]
2698 fn the_safety_tier_is_read_off_the_command_line_and_a_wrong_one_is_refused() {
2699 let (opts, _) = compile(&["a.c"]);
2700 assert_eq!(opts.safety, rucc_session::Safety::Off);
2701
2702 for (flag, tier) in [
2703 ("-fsafety=detect", rucc_session::Safety::Detect),
2704 ("-fsafety=enforce", rucc_session::Safety::Enforce),
2705 ("-fsafety=kernel", rucc_session::Safety::Kernel),
2706 ("-fsafety=off", rucc_session::Safety::Off),
2707 ] {
2708 let (opts, _) = compile(&[flag, "a.c"]);
2709 assert_eq!(opts.safety, tier, "{flag}");
2710 }
2711
2712 // The last one wins, the way every other repeated flag on this command line does.
2713 let (opts, _) = compile(&["-fsafety=enforce", "-fsafety=off", "a.c"]);
2714 assert_eq!(opts.safety, rucc_session::Safety::Off);
2715
2716 // A misspelled tier is refused rather than ignored. Silently compiling without the
2717 // monitor a build asked for is the one failure mode this feature cannot have.
2718 let e = parse_args(&args(&["-fsafety=on", "a.c"])).unwrap_err();
2719 assert!(e.message.contains("is not a safety tier"), "{}", e.message);
2720 assert!(parse_args(&args(&["-fsafety", "a.c"])).is_err());
2721 }
2722
2723 #[test]
2724 fn the_padding_mode_is_read_off_the_command_line_and_a_wrong_one_is_refused() {
2725 // The default is the one section 9.3 of document 09 gives library code, which is that
2726 // padding does not participate, so a record filled a member at a time is not reported.
2727 let (opts, _) = compile(&["a.c"]);
2728 assert_eq!(opts.padding, rucc_session::Padding::Ignored);
2729
2730 let (opts, _) = compile(&["-fsafety=detect", "-fsafety-init=padding", "a.c"]);
2731 assert_eq!(opts.padding, rucc_session::Padding::Tracked);
2732
2733 let (opts, _) = compile(&["-fsafety-init=padding", "-fsafety-init=nopadding", "a.c"]);
2734 assert_eq!(opts.padding, rucc_session::Padding::Ignored);
2735
2736 // The tier is still a tier. A flag whose name starts the same way must not be eaten by
2737 // the one above it, which is the thing worth pinning about a pair of names like these.
2738 let (opts, _) = compile(&["-fsafety-init=padding", "a.c"]);
2739 assert_eq!(opts.safety, rucc_session::Safety::Off);
2740
2741 let e = parse_args(&args(&["-fsafety-init=some", "a.c"])).unwrap_err();
2742 assert!(e.message.contains("is not a padding mode"), "{}", e.message);
2743 }
2744
2745 #[test]
2746 fn whether_a_write_has_to_stay_inside_its_member_is_read_off_the_command_line() {
2747 // Off by default, because a store to allocated storage sets its effective type and C 6.5
2748 // lets a program reuse a buffer as something else. Row S4 is a build opting out of that.
2749 let (opts, _) = compile(&["a.c"]);
2750 assert_eq!(opts.subobject, rucc_session::Subobject::Off);
2751
2752 let (opts, _) = compile(&["-fsafety=detect", "-fsafety-subobject", "a.c"]);
2753 assert_eq!(opts.subobject, rucc_session::Subobject::Members);
2754
2755 let (opts, _) = compile(&["-fsafety-subobject", "-fno-safety-subobject", "a.c"]);
2756 assert_eq!(opts.subobject, rucc_session::Subobject::Off);
2757
2758 // It takes no value. The form that would take one is the strict reading of section 9.4,
2759 // which is not written yet, so say so rather than accept a spelling that does nothing.
2760 let e = parse_args(&args(&["-fsafety-subobject=strict", "a.c"])).unwrap_err();
2761 assert!(e.message.contains("tamnd/rucc#967"), "{}", e.message);
2762 }
2763
2764 #[test]
2765 fn whether_two_restrict_pointers_may_meet_is_read_off_the_command_line() {
2766 // Off by default, because the record a block keeps is the union of what each pointer
2767 // reached, so two pointers striding through one array without landing on the same byte are
2768 // reported and by the letter of the standard those are different objects. Row Y8 is a build
2769 // deciding it would rather know.
2770 let (opts, _) = compile(&["a.c"]);
2771 assert_eq!(opts.promise, rucc_session::Promise::Off);
2772
2773 let (opts, _) = compile(&["-fsafety=detect", "-fsafety-restrict", "a.c"]);
2774 assert_eq!(opts.promise, rucc_session::Promise::Blocks);
2775
2776 let (opts, _) = compile(&["-fsafety-restrict", "-fno-safety-restrict", "a.c"]);
2777 assert_eq!(opts.promise, rucc_session::Promise::Off);
2778
2779 // The tier is still a tier, which is the thing worth pinning about a pair of names where
2780 // one is the front of the other.
2781 let (opts, _) = compile(&["-fsafety-restrict", "a.c"]);
2782 assert_eq!(opts.safety, rucc_session::Safety::Off);
2783
2784 let e = parse_args(&args(&["-fsafety-restrict=blocks", "a.c"])).unwrap_err();
2785 assert!(e.message.contains("takes no value"), "{}", e.message);
2786 }
2787
2788 #[test]
2789 fn print_pipeline_answers_with_the_passes_the_level_asked_for() {
2790 let a = parse_args(&args(&["--print-pipeline", "-O2"])).unwrap();
2791 let Action::PrintPipeline(opts) = a else { panic!("expected a pipeline dump") };
2792 let text = print_pipeline(&opts);
2793 assert!(text.starts_with("level: -O2\n"), "{text}");
2794 assert!(text.contains("fold"), "{text}");
2795
2796 let a = parse_args(&args(&["--print-pipeline"])).unwrap();
2797 let Action::PrintPipeline(opts) = a else { panic!("expected a pipeline dump") };
2798 // One pass runs at `-O0` and it is the one that removes code nothing reaches, which is
2799 // not an optimization. See issue 359.
2800 assert!(print_pipeline(&opts).contains("1: simplify-cfg,"), "{}", print_pipeline(&opts));
2801
2802 let a = parse_args(&args(&["--print-pipeline", "-fno-simplify-cfg"])).unwrap();
2803 let Action::PrintPipeline(opts) = a else { panic!("expected a pipeline dump") };
2804 // And with that one turned off there is nothing left, which the dump says rather than
2805 // printing an empty list.
2806 assert!(print_pipeline(&opts).contains("no passes"), "{}", print_pipeline(&opts));
2807 }
2808
2809 #[test]
2810 fn print_pipeline_takes_the_toggles_into_account() {
2811 let a = parse_args(&args(&["--print-pipeline", "-O2", "-fno-fold"])).unwrap();
2812 let Action::PrintPipeline(opts) = a else { panic!("expected a pipeline dump") };
2813 let text = print_pipeline(&opts);
2814 // The one that was named is gone and the rest of the level is not, which is the whole
2815 // of what a toggle promises.
2816 assert!(!text.contains("fold"), "{text}");
2817 assert!(text.contains("dce"), "{text}");
2818
2819 // Every pass the compiler has, named off. Built from the registry rather than written
2820 // out, so a pass added later is turned off here too and this keeps testing the thing it
2821 // is about, which is that the toggles can empty a level.
2822 let mut off = vec!["--print-pipeline".to_owned(), "-O2".to_owned()];
2823 off.extend(rucc_opt::PASSES.iter().map(|p| format!("-fno-{}", p.name())));
2824 let spelled: Vec<&str> = off.iter().map(String::as_str).collect();
2825 let a = parse_args(&args(&spelled)).unwrap();
2826 let Action::PrintPipeline(opts) = a else { panic!("expected a pipeline dump") };
2827 assert!(print_pipeline(&opts).contains("no passes"), "{}", print_pipeline(&opts));
2828 }
2829
2830 #[test]
2831 fn print_pipeline_says_when_a_budget_will_stop_the_run_short() {
2832 let a = parse_args(&args(&["--print-pipeline", "-O2"])).unwrap();
2833 let Action::PrintPipeline(opts) = a else { panic!("expected a pipeline dump") };
2834 assert!(!print_pipeline(&opts).contains("global fuel"));
2835
2836 let a = parse_args(&args(&["--print-pipeline", "-O2", "-fpass-fuel-global=4"])).unwrap();
2837 let Action::PrintPipeline(opts) = a else { panic!("expected a pipeline dump") };
2838 let text = print_pipeline(&opts);
2839 // Because the listing is the answer to what this compilation will do, and a run that
2840 // stops after four rewrites is not doing what the level says it does.
2841 assert!(text.contains("global fuel: 4"), "{text}");
2842 }
2843
2844 /// A pass is turned on and off by its own name, and the order the flags were given in is
2845 /// kept, because the last spelling of a name is the one that decides.
2846 #[test]
2847 fn a_pass_is_named_by_dash_f_and_unnamed_by_dash_f_no() {
2848 let (opts, _) = compile(&["-c", "-O0", "-ffold", "-fno-fold", "-ffold", "a.c"]);
2849 assert_eq!(
2850 opts.passes,
2851 [("fold".to_owned(), true), ("fold".to_owned(), false), ("fold".to_owned(), true)]
2852 );
2853
2854 let e = parse_args(&args(&["-fno-such-pass", "a.c"])).unwrap_err();
2855 assert!(e.message.contains("unknown option"), "{}", e.message);
2856 }
2857
2858 #[test]
2859 fn pass_fuel_names_a_pass_and_a_count_and_refuses_anything_else() {
2860 let (opts, _) = compile(&["-c", "-O2", "-fpass-fuel=fold=3", "a.c"]);
2861 assert_eq!(opts.pass_fuel, [("fold".to_owned(), 3)]);
2862
2863 let e = parse_args(&args(&["-fpass-fuel=fold", "a.c"])).unwrap_err();
2864 assert!(e.message.contains("<pass>=<count>"), "{}", e.message);
2865 let e = parse_args(&args(&["-fpass-fuel=nosuch=3", "a.c"])).unwrap_err();
2866 assert!(e.message.contains("--print-pipeline"), "{}", e.message);
2867 let e = parse_args(&args(&["-fpass-fuel=fold=lots", "a.c"])).unwrap_err();
2868 assert!(e.message.contains("not a number"), "{}", e.message);
2869 }
2870
2871 #[test]
2872 fn global_pass_fuel_is_a_count_on_its_own_and_defaults_to_no_limit() {
2873 let (opts, _) = compile(&["-c", "-O2", "a.c"]);
2874 assert_eq!(opts.pass_fuel_global, None);
2875
2876 let (opts, _) = compile(&["-c", "-O2", "-fpass-fuel-global=12", "a.c"]);
2877 assert_eq!(opts.pass_fuel_global, Some(12));
2878 // And it is not the per pass flag with a longer name, so neither spelling swallows the
2879 // other.
2880 assert!(opts.pass_fuel.is_empty());
2881
2882 let e = parse_args(&args(&["-fpass-fuel-global=lots", "a.c"])).unwrap_err();
2883 assert!(e.message.contains("not a number"), "{}", e.message);
2884 }
2885
2886 #[test]
2887 fn a_gate_names_a_pass_and_optionally_the_functions_it_covers() {
2888 let (opts, _) = compile(&["-c", "-O2", "-fdisable-fold", "-fenable-fold=2-4,main", "a.c"]);
2889 assert_eq!(
2890 opts.pass_gates,
2891 [(false, "fold".to_owned()), (true, "fold=2-4,main".to_owned())],
2892 "the order is what decides, so it has to survive the parse"
2893 );
2894
2895 let e = parse_args(&args(&["-fdisable-nosuch", "a.c"])).unwrap_err();
2896 assert!(e.message.contains("--print-pipeline"), "{}", e.message);
2897 let e = parse_args(&args(&["-fenable-fold=9-2", "a.c"])).unwrap_err();
2898 assert!(e.message.contains("ends before it starts"), "{}", e.message);
2899 let e = parse_args(&args(&["-fdisable-fold=", "a.c"])).unwrap_err();
2900 assert!(e.message.contains("is empty"), "{}", e.message);
2901 }
2902
2903 #[test]
2904 fn the_pipeline_listing_says_which_passes_a_gate_touched() {
2905 let (opts, _) = compile(&["-c", "-O2", "-fdisable-fold=main", "a.c"]);
2906 let text = print_pipeline(&opts);
2907 assert!(text.contains("fold, "), "{text}");
2908 assert!(text.contains("[off for main]"), "{text}");
2909 }
2910
2911 /// The spelling is checked while the arguments are read, because a dump that names a pass
2912 /// this compiler does not have is a typo, and a typo found after the compilation has run is
2913 /// found too late to be any use.
2914 #[test]
2915 fn a_dump_is_checked_when_it_is_asked_for_rather_than_when_it_is_taken() {
2916 let (opts, _) = compile(&["-c", "-O2", "-fdump-ir=all", "-fdump-ir=after-fold", "a.c"]);
2917 assert_eq!(opts.dump_ir, ["all", "after-fold"]);
2918
2919 let e = parse_args(&args(&["-fdump-ir=after-nosuch", "a.c"])).unwrap_err();
2920 assert!(e.message.contains("nosuch"), "{}", e.message);
2921 assert!(parse_args(&args(&["-fdump-ir=sideways-fold", "a.c"])).is_err());
2922 }
2923
2924 /// Every spelling `-fopt-info` takes, and the one it does not.
2925 ///
2926 /// The keywords are checked here for the same reason a dump's pass name is: a person who
2927 /// misspelled one gets no output, and no output is also what a compilation where nothing
2928 /// happened looks like. Telling those two apart is the entire reason to reach for this flag.
2929 #[test]
2930 fn opt_info_takes_kinds_and_a_file_and_refuses_a_kind_it_does_not_have() {
2931 let (opts, _) = compile(&["-c", "-O2", "-fopt-info", "a.c"]);
2932 assert_eq!(opts.opt_info, [""], "a bare flag asks for the rewrites");
2933 assert_eq!(opts.opt_info_file, None, "and goes to standard error");
2934
2935 let (opts, _) = compile(&["-c", "-O2", "-fopt-info-missed-note", "a.c"]);
2936 assert_eq!(opts.opt_info, ["missed-note"]);
2937
2938 // Two flags add up rather than the second replacing the first, and the file is the last
2939 // one that named a file, which is how GCC treats both.
2940 let (opts, _) =
2941 compile(&["-c", "-O2", "-fopt-info-missed=one.txt", "-fopt-info-all=two.txt", "a.c"]);
2942 assert_eq!(opts.opt_info, ["missed", "all"]);
2943 assert_eq!(opts.opt_info_file.as_deref(), Some("two.txt"));
2944
2945 let e = parse_args(&args(&["-fopt-info-vectorized", "a.c"])).unwrap_err();
2946 assert!(e.message.contains("vectorized"), "{}", e.message);
2947 assert!(e.message.contains("`missed`"), "{}", e.message);
2948 let e = parse_args(&args(&["-fopt-info-missed=", "a.c"])).unwrap_err();
2949 assert!(e.message.contains("no file"), "{}", e.message);
2950 }
2951
2952 #[test]
2953 fn verify_each_is_unstable_and_off_unless_it_was_asked_for() {
2954 let (opts, _) = compile(&["-c", "-Zverify-each", "a.c"]);
2955 assert!(opts.verify_each);
2956 assert!(!USAGE.contains("verify-each"), "an unstable option stays out of the usage text");
2957 }
2958
2959 #[test]
2960 fn dash_o_needs_an_argument() {
2961 let e = parse_args(&args(&["a.c", "-o"])).unwrap_err();
2962 assert_eq!(e.message, "-o requires an argument");
2963 }
2964
2965 #[test]
2966 fn dash_d_and_dash_u_are_read_joined_or_separated_and_keep_their_order() {
2967 let (opts, _) = compile(&["-DFOO=1", "-D", "BAR", "-UBAZ", "-U", "QUX", "a.c"]);
2968 assert_eq!(opts.defines, ["FOO=1", "BAR"]);
2969 assert_eq!(opts.undefines, ["BAZ", "QUX"]);
2970 }
2971
2972 #[test]
2973 fn the_include_flags_land_on_the_chain_each_one_names() {
2974 // A sysroot with nothing under it, so that the library's own directories are the
2975 // same on every machine this test runs on, which is none of them.
2976 let (opts, _) = compile(&[
2977 "-Ii",
2978 "-iquote",
2979 "q",
2980 "-isystem",
2981 "sys",
2982 "-idirafter",
2983 "after",
2984 "--sysroot=/nowhere-at-all",
2985 "a.c",
2986 ]);
2987 let dirs: Vec<&str> = opts.search.dirs().iter().filter_map(|d| d.path.to_str()).collect();
2988 // The compiler's own headers sit after every `-isystem` and before `-idirafter`,
2989 // which is where GCC puts its own: a directory the user named outranks ours.
2990 assert_eq!(dirs, ["q", "i", "sys", runtime::DIR, "after"]);
2991 assert!(!opts.search.dirs()[1].is_system);
2992 assert!(opts.search.dirs()[2].is_system);
2993 }
2994
2995 #[test]
2996 fn the_librarys_headers_come_after_the_compilers_own_and_go_away_with_them() {
2997 // Which machine this runs on decides what is on the path, so the test is about the
2998 // order rather than about the names: ours is on it, the library's follow it, and
2999 // `-nostdinc` is the one flag that takes both halves of the pair off at once.
3000 let (opts, _) = compile(&["a.c"]);
3001 let dirs = opts.search.dirs();
3002 let ours = dirs.iter().position(|d| d.path.to_str() == Some(runtime::DIR));
3003 assert_eq!(ours, Some(0), "{dirs:?}");
3004 assert!(dirs[1..].iter().all(|d| d.is_system), "{dirs:?}");
3005 let (bare, _) = compile(&["-nostdinc", "a.c"]);
3006 assert!(bare.search.dirs().is_empty(), "{:?}", bare.search.dirs());
3007 }
3008
3009 #[test]
3010 fn a_sysroot_moves_the_librarys_directories_and_nothing_else() {
3011 let (opts, _) = compile(&["-isystem", "sys", "--sysroot=/nowhere-at-all", "a.c"]);
3012 let dirs: Vec<&str> = opts.search.dirs().iter().filter_map(|d| d.path.to_str()).collect();
3013 assert_eq!(dirs, ["sys", runtime::DIR]);
3014 }
3015
3016 #[test]
3017 fn a_cross_compile_reads_the_targets_own_headers_rather_than_the_ones_next_door() {
3018 // The target is not the machine this test runs on wherever it runs, so the answer is the
3019 // same on all of them: the libc's two include directories for that target, the kernel's
3020 // two, and nothing from here. A header read from here is the quiet failure of section 8.5, a
3021 // program that builds on the build machine and is wrong everywhere else.
3022 let (opts, _) = compile(&["--target=riscv64-linux-musl", "-c", "a.c"]);
3023 let dirs: Vec<&std::path::Path> =
3024 opts.search.dirs().iter().map(|d| d.path.as_path()).collect();
3025 let root = cache::dir().join("sysroots").join("riscv64-linux-musl");
3026 let kernel = cache::dir().join("kernel-headers");
3027 assert_eq!(dirs.len(), 5, "{dirs:?}");
3028 assert_eq!(dirs[0], std::path::Path::new(runtime::DIR));
3029 assert_eq!(dirs[1], root.join("include").join("riscv64"));
3030 assert_eq!(dirs[2], root.join("include").join("generic"));
3031 // The kernel's, which are beside the sysroots rather than inside one, because every target
3032 // that shares an architecture reads the same files.
3033 assert_eq!(dirs[3], kernel.join("riscv"));
3034 assert_eq!(dirs[4], kernel.join("generic"));
3035 }
3036
3037 #[test]
3038 fn a_cross_compile_to_something_that_is_not_linux_reads_no_kernel_headers() {
3039 // The other side of the same answer. Windows has its own system headers and no `linux/` at
3040 // all, so the list is the libc's two and the question never arises, which is the `None` that
3041 // `link::cross_kernel` returns rather than a directory nothing would be found in.
3042 let (opts, _) = compile(&["--target=x86_64-pc-windows-gnu", "-c", "a.c"]);
3043 let dirs: Vec<&std::path::Path> =
3044 opts.search.dirs().iter().map(|d| d.path.as_path()).collect();
3045 assert_eq!(dirs.len(), 3, "{dirs:?}");
3046 assert!(!dirs.iter().any(|dir| dir.ends_with("kernel-headers")), "{dirs:?}");
3047 }
3048
3049 #[test]
3050 fn the_glibc_version_macro_goes_with_the_bundled_tree_and_with_nothing_else() {
3051 // One tree serves every glibc release, so the release is what the target supplies, and the
3052 // condition is the same one that chose the directories. A host glibc and a tree somebody
3053 // named both define `__GLIBC_MINOR__` in their own `features.h`, and two definitions with
3054 // different values is a warning on every compilation of every file.
3055 //
3056 // The architecture is chosen against this machine's rather than written down, because the
3057 // bundled tree is only in effect for a target that is not this machine. The first version of
3058 // this test said x86_64-linux-gnu, which is a cross compile on a mac and this machine on a
3059 // Linux runner, so it passed here and failed there.
3060 let gnu = format!("--target={}-linux-gnu", cross_arch());
3061 let (bundled, _) = compile(&[&gnu, "-c", "a.c"]);
3062 assert_eq!(bundled.glibc_minor, Some(44));
3063 let pin = format!("{gnu}.2.28");
3064 let (pinned, _) = compile(&[&pin, "-c", "a.c"]);
3065 assert_eq!(pinned.glibc_minor, Some(28));
3066
3067 let (named, _) = compile(&[&gnu, "--sysroot=/nowhere-at-all", "-c", "a.c"]);
3068 assert_eq!(named.glibc_minor, None);
3069 let (none, _) = compile(&[&gnu, "-nostdinc", "-c", "a.c"]);
3070 assert_eq!(none.glibc_minor, None);
3071 let musl = format!("--target={}-linux-musl", cross_arch());
3072 let (musl, _) = compile(&[&musl, "-c", "a.c"]);
3073 assert_eq!(musl.glibc_minor, None);
3074
3075 // And this machine's own target gets nothing, whatever this machine is, because its headers
3076 // come from the machine and its own `features.h` defines the macro. On a glibc Linux box
3077 // that is the case this test had backwards; on a mac it is true for the other reason, which
3078 // is that Darwin is not a glibc target at all.
3079 if let Some(host) = Triple::host() {
3080 let native = format!("--target={}", host.tuple());
3081 let (native, _) = compile(&[&native, "-c", "a.c"]);
3082 assert_eq!(native.glibc_minor, None);
3083 }
3084 }
3085
3086 #[test]
3087 fn a_pinned_release_on_this_machines_own_target_reads_the_bundled_tree() {
3088 // The end to end half of the answer in `link::cross_for`. A release named for this machine's
3089 // own target is a cross compile, so the headers are the bundled tree's and the macro says
3090 // what was asked for rather than what this machine has.
3091 //
3092 // Only on a glibc box, because a release is a glibc release: a mac has no `__GLIBC_MINOR__`
3093 // to get wrong and nothing to pin. That makes this a test the Linux runners carry, which is
3094 // where the case lives.
3095 let Some(host) = Triple::host() else { return };
3096 if host.env != rucc_target::Env::Gnu {
3097 return;
3098 }
3099 let pin = format!("--target={}.2.28", host.tuple());
3100 let (opts, _) = compile(&[&pin, "-c", "a.c"]);
3101 assert_eq!(opts.glibc_minor, Some(28));
3102 let root = cache::dir().join("sysroots").join(format!("{}.2.28", host.tuple()));
3103 let dirs: Vec<&std::path::Path> =
3104 opts.search.dirs().iter().map(|d| d.path.as_path()).collect();
3105 assert!(dirs.iter().any(|dir| dir.starts_with(&root)), "{dirs:?}");
3106 // And nothing of this machine's, which is the failure this was: a program compiled against
3107 // 2.44 declarations and told it was 2.28.
3108 assert!(!dirs.iter().any(|dir| *dir == std::path::Path::new("/usr/include")), "{dirs:?}");
3109 }
3110
3111 /// An architecture that is not this machine's, out of the three the driver has targets for.
3112 ///
3113 /// A test about the bundled sysroot has to name a target that is not the host, because a target
3114 /// that is the host reads the host's own headers and libraries. Asking which machine this is
3115 /// beats picking a row and hoping, and it is two lines.
3116 fn cross_arch() -> &'static str {
3117 match Triple::host().map(|host| host.arch) {
3118 Some(rucc_target::Arch::X86_64) => "aarch64",
3119 _ => "x86_64",
3120 }
3121 }
3122
3123 #[test]
3124 fn a_glibc_newer_than_the_bundled_tree_is_refused_by_name() {
3125 // Both versions in the message, because the two things a person can do about it are pin a
3126 // release the tree has and name a sysroot that has the one they asked for, and neither is a
3127 // choice they can make without knowing which release the tree is.
3128 //
3129 // Not this machine's architecture, for the reason the test above gives: the refusal is about
3130 // the bundled tree, and the bundled tree is not what a target that is this machine reads.
3131 let target = format!("--target={}-linux-gnu.2.99", cross_arch());
3132 let message = refused(&[&target, "-c", "a.c"]);
3133 assert!(message.contains("asked for glibc 2.99"), "{message}");
3134 assert!(message.contains("bundled headers are glibc 2.44"), "{message}");
3135 assert!(message.contains("--sysroot"), "{message}");
3136 }
3137
3138 #[test]
3139 fn a_sysroot_the_user_named_is_still_what_a_cross_compile_reads() {
3140 // The tree somebody assembled beats the one we would build, on the headers as on the
3141 // libraries. It is empty here, which is why the list comes out short: the directories under
3142 // it are checked for rather than assumed, and a tree that is not there offers nothing.
3143 let (opts, _) =
3144 compile(&["--target=riscv64-linux-musl", "--sysroot=/nowhere-at-all", "-c", "a.c"]);
3145 let dirs: Vec<&std::path::Path> =
3146 opts.search.dirs().iter().map(|d| d.path.as_path()).collect();
3147 assert_eq!(dirs, [std::path::Path::new(runtime::DIR)]);
3148 }
3149
3150 #[test]
3151 fn dash_i_dash_moves_the_bracket_directories_into_the_quoted_chain() {
3152 let (opts, _) =
3153 compile(&["-Iinc1", "-iquote", "inc2", "-I-", "-Iinc3", "-nostdinc", "a.c"]);
3154 let dirs: Vec<&str> = opts.search.dirs().iter().filter_map(|d| d.path.to_str()).collect();
3155 assert_eq!(dirs, ["inc1", "inc2", "inc3"]);
3156 // An angled include sees only what came after the flag.
3157 assert_eq!(opts.search.start(IncludeForm::Angled), 2);
3158 assert!(!opts.search.searches_current_dir());
3159 }
3160
3161 #[test]
3162 fn the_prefix_flags_stick_what_iprefix_said_on_the_front_of_what_follows_it() {
3163 let (opts, _) = compile(&[
3164 "-iprefix",
3165 "/tools/",
3166 "-iwithprefix",
3167 "late",
3168 "-iwithprefixbefore",
3169 "early",
3170 "-iprefix",
3171 "/other/",
3172 "-iwithprefix",
3173 "last",
3174 "-nostdinc",
3175 "a.c",
3176 ]);
3177 let dirs: Vec<&str> = opts.search.dirs().iter().filter_map(|d| d.path.to_str()).collect();
3178 // `-iwithprefixbefore` is an `-I` and the other two are `-isystem`, which is where GCC
3179 // puts them rather than where its manual says it does.
3180 assert_eq!(dirs, ["/tools/early", "/tools/late", "/other/last"]);
3181 assert!(!opts.search.dirs()[0].is_system);
3182 assert!(opts.search.dirs()[1].is_system);
3183 }
3184
3185 #[test]
3186 fn the_files_named_on_the_command_line_keep_their_order_and_which_flag_named_them() {
3187 let (opts, _) =
3188 compile(&["-include", "one.h", "-imacros", "two.h", "-include", "3.h", "a.c"]);
3189 let names: Vec<&str> = opts.preincludes.iter().map(|p| p.name.as_str()).collect();
3190 assert_eq!(names, ["one.h", "two.h", "3.h"]);
3191 assert_eq!(opts.preincludes.iter().filter(|p| p.macros_only).count(), 1);
3192 }
3193
3194 #[test]
3195 fn nostdinc_takes_the_compilers_own_headers_off_the_path() {
3196 let (opts, _) = compile(&["-Ii", "-nostdinc", "a.c"]);
3197 let dirs: Vec<&str> = opts.search.dirs().iter().filter_map(|d| d.path.to_str()).collect();
3198 assert_eq!(dirs, ["i"]);
3199 }
3200
3201 #[test]
3202 fn the_dialect_flags_set_the_language_and_the_extensions_separately() {
3203 let (opts, _) = compile(&["-std=gnu11", "a.c"]);
3204 assert_eq!(opts.std, Std::C11);
3205 assert!(opts.gnu_extensions);
3206
3207 let (opts, _) = compile(&["-std=iso9899:1999", "a.c"]);
3208 assert_eq!(opts.std, Std::C99);
3209 assert!(!opts.gnu_extensions);
3210
3211 let (opts, _) = compile(&["-ansi", "a.c"]);
3212 assert_eq!(opts.std, Std::C89);
3213 assert!(!opts.gnu_extensions);
3214
3215 let e = parse_args(&args(&["-std=c94jr", "a.c"])).unwrap_err();
3216 assert!(e.message.contains("unknown dialect"), "{}", e.message);
3217 }
3218
3219 #[test]
3220 fn the_dump_letters_are_a_family_and_everything_else_beginning_with_d_is_not() {
3221 let (opts, _) = compile(&["-dM", "a.c"]);
3222 assert!(opts.dumps.macros);
3223
3224 // Packed, the way GCC takes them, and a letter in the family we have not written yet
3225 // is accepted and does nothing rather than failing a build.
3226 let (opts, _) = compile(&["-dDM", "a.c"]);
3227 assert!(opts.dumps.macros);
3228 let (opts, _) = compile(&["-dD", "a.c"]);
3229 assert!(!opts.dumps.macros);
3230
3231 let (opts, _) = compile(&["a.c"]);
3232 assert!(!opts.dumps.any());
3233
3234 // `-dumpversion` is a different flag that happens to start the same way, and it is read
3235 // as itself rather than as a dump of nothing.
3236 assert_eq!(printed(&["-dumpversion", "a.c"]), VERSION);
3237 }
3238
3239 #[test]
3240 fn the_gcc_version_claimed_is_a_flag_and_the_short_spellings_are_the_ones_people_write() {
3241 let (opts, _) = compile(&["a.c"]);
3242 assert_eq!(
3243 opts.gnuc,
3244 GnucVersion { major: 7, minor: 0, patch: 0 },
3245 "the lowest claim a modern glibc gives its own declarations to"
3246 );
3247
3248 let (opts, _) = compile(&["-fgnuc-version=15.1.0", "a.c"]);
3249 assert_eq!(opts.gnuc, GnucVersion { major: 15, minor: 1, patch: 0 });
3250
3251 // A missing component is zero. `gcc -dumpversion` says `15` on a release with no
3252 // patchlevel and a harness that pastes that back has to be understood.
3253 let (opts, _) = compile(&["-fgnuc-version=15", "a.c"]);
3254 assert_eq!(opts.gnuc, GnucVersion { major: 15, minor: 0, patch: 0 });
3255
3256 let (opts, _) = compile(&["-fgnuc-version=13.2", "a.c"]);
3257 assert_eq!(opts.gnuc, GnucVersion { major: 13, minor: 2, patch: 0 });
3258
3259 let e = parse_args(&args(&["-fgnuc-version=15.x", "a.c"])).unwrap_err();
3260 assert!(e.message.contains("minor that is not a number"), "{}", e.message);
3261
3262 let e = parse_args(&args(&["-fgnuc-version=1.2.3.4", "a.c"])).unwrap_err();
3263 assert!(e.message.contains("more than three"), "{}", e.message);
3264 }
3265
3266 #[test]
3267 fn pedantic_has_two_spellings_and_is_not_the_same_knob_as_the_dialect() {
3268 let (opts, _) = compile(&["-std=c17", "-pedantic", "a.c"]);
3269 assert!(opts.pedantic);
3270 assert_eq!(opts.std, Std::C17);
3271
3272 // The `-W` family's name for it, which is what a build that groups its warning flags
3273 // tends to write.
3274 let (opts, _) = compile(&["-Wpedantic", "a.c"]);
3275 assert!(opts.pedantic);
3276
3277 let (opts, _) = compile(&["-std=c17", "a.c"]);
3278 assert!(!opts.pedantic, "a dialect on its own does not diagnose an extension");
3279 }
3280
3281 #[test]
3282 fn dash_p_and_dash_ffreestanding_reach_the_options() {
3283 let (opts, _) = compile(&["-E", "-P", "-ffreestanding", "a.c"]);
3284 assert!(!opts.line_markers);
3285 assert!(!opts.hosted);
3286 assert_eq!(opts.emit, EmitKind::Preprocessed);
3287 }
3288
3289 /// The two ways a build says it means its own function by a name the C library also has.
3290 ///
3291 /// `-fno-builtin` is all of them and `-fno-builtin-<name>` is one, and the second is what a
3292 /// build writes when it means its own `memcpy` and the library's everything else. The name is
3293 /// kept as it was written and not checked against anything, because a program is allowed to
3294 /// mean something by a name this compiler has never heard of.
3295 #[test]
3296 fn the_builtin_flags_are_read_in_both_directions_and_one_name_at_a_time() {
3297 let (opts, _) = compile(&["-c", "a.c"]);
3298 assert!(opts.builtins, "a library name means the library function by default");
3299 assert!(opts.no_builtin.is_empty());
3300
3301 let (opts, _) = compile(&["-c", "-fno-builtin", "a.c"]);
3302 assert!(!opts.builtins);
3303
3304 let (opts, _) = compile(&["-c", "-fno-builtin", "-fbuiltin", "a.c"]);
3305 assert!(opts.builtins, "the last mention decides");
3306
3307 let (opts, _) = compile(&["-c", "-fno-builtin-memcpy", "-fno-builtin-nonesuch", "a.c"]);
3308 assert!(opts.builtins, "one name is not the family");
3309 assert_eq!(opts.no_builtin, vec!["memcpy".to_owned(), "nonesuch".to_owned()]);
3310 }
3311
3312 /// `-fvisibility=`, which is on every cmake project that cares about which names it exports
3313 /// and which was refused as an unknown option until now.
3314 ///
3315 /// Four spellings and three answers. `internal` is hidden plus a promise about never taking
3316 /// the address across a component boundary, and nothing derives anything from that promise
3317 /// here, so it comes out as the weaker of the two rather than as a refusal that stops a build
3318 /// over a distinction this compiler does not make.
3319 #[test]
3320 fn visibility_takes_the_four_spellings_gcc_takes_and_refuses_the_rest() {
3321 let (opts, _) = compile(&["-c", "a.c"]);
3322 assert_eq!(opts.visibility, Visibility::Default, "exported unless something says not");
3323
3324 for (written, wanted) in [
3325 ("default", Visibility::Default),
3326 ("hidden", Visibility::Hidden),
3327 ("internal", Visibility::Hidden),
3328 ("protected", Visibility::Protected),
3329 ] {
3330 let (opts, _) = compile(&["-c", &format!("-fvisibility={written}"), "a.c"]);
3331 assert_eq!(opts.visibility, wanted, "{written}");
3332 }
3333
3334 // The last mention decides, which is what every other flag of this shape does and what a
3335 // build that turns something off for one directory relies on.
3336 let (opts, _) = compile(&["-c", "-fvisibility=hidden", "-fvisibility=default", "a.c"]);
3337 assert_eq!(opts.visibility, Visibility::Default, "the last mention decides");
3338
3339 // A spelling gcc does not take is refused rather than read as the default, because a
3340 // build that meant hidden and got exported is a library with the wrong interface and
3341 // nothing said about it anywhere.
3342 let failed = parse_args(&args(&["-fvisibility=none", "a.c"])).expect_err("refused");
3343 assert!(failed.to_string().contains("is not a visibility"), "{failed}");
3344 }
3345
3346 /// `-ffp-contract=`, which is the one flag in the floating point group that is kept rather than
3347 /// described, and the values are gcc 16's three.
3348 #[test]
3349 fn how_far_a_multiply_and_an_addition_may_be_fused_is_asked_for() {
3350 let (opts, _) = compile(&["-c", "a.c"]);
3351 assert_eq!(opts.fp_contract, Contract::Off, "a licence nobody granted is not assumed");
3352
3353 for (written, wanted) in
3354 [("off", Contract::Off), ("on", Contract::On), ("fast", Contract::Fast)]
3355 {
3356 let (opts, _) = compile(&["-c", &format!("-ffp-contract={written}"), "a.c"]);
3357 assert_eq!(opts.fp_contract, wanted, "{written}");
3358 }
3359
3360 let (opts, _) = compile(&["-c", "-ffp-contract=fast", "-ffp-contract=off", "a.c"]);
3361 assert_eq!(opts.fp_contract, Contract::Off, "the last mention decides");
3362
3363 // Refused rather than read as one of the three, because a build that asked for no fusing
3364 // and was given the default would be one whose numbers change and whose command line says
3365 // they should not. gcc refuses the same spellings and names the same three in its message.
3366 for bad in ["-ffp-contract=none", "-ffp-contract=", "-ffp-contract=Fast"] {
3367 let failed = parse_args(&args(&[bad, "a.c"])).expect_err("refused");
3368 assert!(failed.to_string().contains("is not a contraction"), "{bad}: {failed}");
3369 }
3370
3371 // And the other one that takes a value, which is taken and kept nowhere: every operation
3372 // here is computed in the type it was written in, so `standard` is what happens and the
3373 // other two are permission to do something this does not do.
3374 let failed = parse_args(&args(&["-fexcess-precision=long", "a.c"])).expect_err("refused");
3375 assert!(failed.to_string().contains("is not an excess precision"), "{failed}");
3376 }
3377
3378 /// The four prefix mapping flags, which are what a distribution passes to get the same bytes
3379 /// out of `/build/pkg-1.2` and out of `/home/someone/pkg-1.2`. Three lists rather than one
3380 /// because gcc has three, and `-ffile-prefix-map=` is the three of them at once.
3381 #[test]
3382 fn a_prefix_mapping_flag_goes_on_the_list_its_spelling_names() {
3383 let (opts, _) = compile(&["-c", "a.c"]);
3384 assert!(opts.prefix_map.macros.is_empty(), "nothing is rewritten unless it is asked for");
3385 assert!(opts.prefix_map.debug.is_empty(), "nor here");
3386 assert!(opts.prefix_map.profile.is_empty(), "nor here");
3387
3388 let (opts, _) = compile(&["-c", "-fmacro-prefix-map=/build=.", "a.c"]);
3389 assert_eq!(opts.prefix_map.macros.apply("/build/a.c"), "./a.c", "the one it names");
3390 assert!(opts.prefix_map.debug.is_empty(), "and not the two it does not");
3391
3392 let (opts, _) = compile(&["-c", "-fdebug-prefix-map=/build=.", "a.c"]);
3393 assert_eq!(opts.prefix_map.debug.apply("/build/a.c"), "./a.c", "the one it names");
3394 assert!(opts.prefix_map.macros.is_empty(), "and not the two it does not");
3395
3396 let (opts, _) = compile(&["-c", "-fprofile-prefix-map=/build=.", "a.c"]);
3397 assert_eq!(opts.prefix_map.profile.apply("/build/a.c"), "./a.c", "the one it names");
3398 assert!(opts.prefix_map.macros.is_empty(), "and not the two it does not");
3399
3400 let (opts, _) = compile(&["-c", "-ffile-prefix-map=/build=.", "a.c"]);
3401 for list in [&opts.prefix_map.macros, &opts.prefix_map.debug, &opts.prefix_map.profile] {
3402 assert_eq!(list.apply("/build/a.c"), "./a.c", "all three at once");
3403 }
3404
3405 // Every mention is kept and the last one that matches wins, unlike the flags above whose
3406 // last mention replaces the earlier ones. A build writes one of these per source root and
3407 // expects all of them to be in force, which is the whole point of a list.
3408 let (opts, _) =
3409 compile(&["-c", "-ffile-prefix-map=/a=one", "-ffile-prefix-map=/b=two", "a.c"]);
3410 assert_eq!(opts.prefix_map.macros.apply("/a/x.c"), "one/x.c", "the earlier one still acts");
3411 assert_eq!(opts.prefix_map.macros.apply("/b/x.c"), "two/x.c", "and so does the later one");
3412
3413 // An argument with no `=` is refused rather than ignored, because a build whose paths were
3414 // meant to be rewritten and were not is one that ships the build directory's name and says
3415 // nothing about it. gcc refuses the same thing.
3416 for bad in ["-fmacro-prefix-map=nope", "-ffile-prefix-map=", "-fdebug-prefix-map=/build"] {
3417 let failed = parse_args(&args(&[bad, "a.c"])).expect_err("refused");
3418 assert!(failed.to_string().contains("is not a rewrite for"), "{bad}: {failed}");
3419 }
3420 }
3421
3422 /// `-ffunction-sections` and `-fdata-sections`, which are what make `--gc-sections` able to
3423 /// drop anything: a linker can leave out a section nothing reaches and cannot leave out half of
3424 /// one. A kernel and an embedded image are both linked that way.
3425 ///
3426 /// Two flags rather than one because gcc has two, and a build that asks for one of them and not
3427 /// the other is a build that measured something: splitting the code is nearly free at link time
3428 /// and splitting the data can defeat the linker's ordering of what is next to what.
3429 #[test]
3430 fn a_section_per_function_and_a_section_per_variable_are_asked_for_one_at_a_time() {
3431 let (opts, _) = compile(&["-c", "a.c"]);
3432 assert!(!opts.function_sections, "one text section unless something says otherwise");
3433 assert!(!opts.data_sections);
3434
3435 let (opts, _) = compile(&["-c", "-ffunction-sections", "a.c"]);
3436 assert!(opts.function_sections);
3437 assert!(!opts.data_sections, "one flag is not the other");
3438
3439 let (opts, _) = compile(&["-c", "-fdata-sections", "a.c"]);
3440 assert!(opts.data_sections);
3441 assert!(!opts.function_sections);
3442
3443 // Both directions taken, and the off one is what happens anyway rather than a refusal,
3444 // since a build that writes it is asking for the default.
3445 let (opts, _) = compile(&[
3446 "-c",
3447 "-ffunction-sections",
3448 "-fno-function-sections",
3449 "-fdata-sections",
3450 "-fno-data-sections",
3451 "a.c",
3452 ]);
3453 assert!(!opts.function_sections, "the last mention decides");
3454 assert!(!opts.data_sections, "the last mention decides");
3455 }
3456
3457 /// `-fgnu89-inline`, which is off by default and is not implied by anything on the command
3458 /// line, since the dialect asks for GNU's reading further in rather than through this.
3459 #[test]
3460 fn gnu89_inline_is_off_until_it_is_asked_for_and_the_last_mention_decides() {
3461 let (opts, _) = compile(&["-c", "a.c"]);
3462 assert!(!opts.gnu89_inline, "C's reading of inline by default");
3463
3464 let (opts, _) = compile(&["-c", "-fgnu89-inline", "a.c"]);
3465 assert!(opts.gnu89_inline);
3466
3467 let (opts, _) = compile(&["-c", "-fgnu89-inline", "-fno-gnu89-inline", "a.c"]);
3468 assert!(!opts.gnu89_inline, "the last mention decides");
3469
3470 // The C89 dialects are under GNU's reading whether this was written or not, so the flag
3471 // stays off there and the dialect is what the checker and the macro set both ask. That is
3472 // also why `-std=c89 -fno-gnu89-inline` needs no diagnostic: it asks for the reading the
3473 // dialect already has. gcc refuses that command line, which is measured in the issue.
3474 let (opts, _) = compile(&["-c", "-std=c89", "a.c"]);
3475 assert!(!opts.gnu89_inline);
3476 }
3477
3478 /// Both spellings of both frame flags, since a build that wants one usually writes the
3479 /// other beside it for the one file that has to be compiled the ordinary way.
3480 #[test]
3481 fn the_two_frame_flags_are_read_in_both_directions() {
3482 let (opts, _) = compile(&["-c", "a.c"]);
3483 assert!(!opts.frame_pointer, "gcc omits it above -O0 and so does this");
3484 assert!(opts.red_zone, "the psABI has one and nothing said not to use it");
3485
3486 let (opts, _) = compile(&["-c", "-fno-omit-frame-pointer", "-mno-red-zone", "a.c"]);
3487 assert!(opts.frame_pointer);
3488 assert!(!opts.red_zone);
3489
3490 let (opts, _) = compile(&[
3491 "-c",
3492 "-fno-omit-frame-pointer",
3493 "-fomit-frame-pointer",
3494 "-mno-red-zone",
3495 "-mred-zone",
3496 "a.c",
3497 ]);
3498 assert!(!opts.frame_pointer, "the last one wins, as it does in gcc");
3499 assert!(opts.red_zone);
3500 }
3501
3502 /// Four flags rather than one with an argument, which is how gcc spells them, and the negative
3503 /// spelled three ways because a build that turns one off writes whichever it turned on.
3504 #[test]
3505 fn the_stack_protector_is_four_flags_and_the_last_one_wins() {
3506 let (opts, _) = compile(&["-c", "a.c"]);
3507 assert_eq!(opts.protector, Protector::None, "gcc protects nothing unless it was asked");
3508
3509 for (flag, want) in [
3510 ("-fstack-protector", Protector::Buffers),
3511 ("-fstack-protector-strong", Protector::Strong),
3512 ("-fstack-protector-all", Protector::All),
3513 ] {
3514 let (opts, _) = compile(&["-c", flag, "a.c"]);
3515 assert_eq!(opts.protector, want, "{flag}");
3516 }
3517
3518 // What a package build does: the strong one in the global flags and one directory that
3519 // cannot have a protector turning it off on the line after.
3520 for off in ["-fno-stack-protector", "-fno-stack-protector-strong"] {
3521 let (opts, _) = compile(&["-c", "-fstack-protector-strong", off, "a.c"]);
3522 assert_eq!(opts.protector, Protector::None, "{off}");
3523 }
3524 let (opts, _) = compile(&["-c", "-fno-stack-protector", "-fstack-protector-all", "a.c"]);
3525 assert_eq!(opts.protector, Protector::All, "the last one wins either way round");
3526 }
3527
3528 /// A switch rather than a level, because how a frame is taken is one question and which
3529 /// functions get a canary is another, and gcc spells it that way for the same reason.
3530 #[test]
3531 fn taking_a_frame_a_page_at_a_time_is_off_until_it_is_asked_for() {
3532 let (opts, _) = compile(&["-c", "a.c"]);
3533 assert!(!opts.stack_clash, "gcc takes a frame in one subtraction unless it was asked");
3534
3535 let (opts, _) = compile(&["-c", "-fstack-clash-protection", "a.c"]);
3536 assert!(opts.stack_clash);
3537
3538 // The same shape a package build uses for the protector: on in the global flags and off
3539 // for the one directory that cannot have it.
3540 let (opts, _) =
3541 compile(&["-c", "-fstack-clash-protection", "-fno-stack-clash-protection", "a.c"]);
3542 assert!(!opts.stack_clash);
3543 let (opts, _) =
3544 compile(&["-c", "-fno-stack-clash-protection", "-fstack-clash-protection", "a.c"]);
3545 assert!(opts.stack_clash, "the last one wins either way round");
3546
3547 // The two are independent, since one is about the frame and the other about the function.
3548 let (opts, _) =
3549 compile(&["-c", "-fstack-clash-protection", "-fstack-protector-strong", "a.c"]);
3550 assert!(opts.stack_clash);
3551 assert_eq!(opts.protector, Protector::Strong);
3552 }
3553
3554 /// One flag with an argument rather than a family of spellings, because what it asks about is
3555 /// which of the two edges of a control flow transfer is checked and the two are not separate
3556 /// questions to the hardware.
3557 #[test]
3558 fn which_control_flow_edges_are_checked_is_asked_for_by_name() {
3559 let (opts, _) = compile(&["-c", "a.c"]);
3560 assert_eq!(opts.control, Control::None, "gcc's default on the targets this compiler has");
3561
3562 for (arg, want) in [
3563 ("-fcf-protection", Control::Full),
3564 ("-fcf-protection=full", Control::Full),
3565 ("-fcf-protection=branch", Control::Branch),
3566 ("-fcf-protection=return", Control::Return),
3567 ("-fcf-protection=none", Control::None),
3568 ("-fcf-protection=check", Control::Check),
3569 ] {
3570 let (opts, _) = compile(&["-c", arg, "a.c"]);
3571 assert_eq!(opts.control, want, "{arg}");
3572 }
3573
3574 // The shape a package build uses: on in the global flags and off for the one directory
3575 // that cannot have it, whichever of the two spellings of off it reaches for.
3576 let (opts, _) = compile(&["-c", "-fcf-protection=full", "-fno-cf-protection", "a.c"]);
3577 assert_eq!(opts.control, Control::None);
3578 let (opts, _) = compile(&["-c", "-fno-cf-protection", "-fcf-protection=branch", "a.c"]);
3579 assert_eq!(opts.control, Control::Branch, "the last one wins either way round");
3580 }
3581
3582 /// The profiler is asked for by two spellings, and where its hook goes by two more.
3583 ///
3584 /// The two halves are separate on purpose. `-mfentry` on its own says where a call would go and
3585 /// asks for no call, which is what gcc does with it, and a build system that sets it globally
3586 /// and asks for the profile per directory needs that to be true rather than an error.
3587 ///
3588 /// The link is asserted alongside, because the flag changes it too and a build that compiled
3589 /// with it and linked without it is a program that calls the hook everywhere and never writes a
3590 /// profile.
3591 #[test]
3592 fn the_profiler_and_where_its_hook_goes_are_two_separate_questions() {
3593 let (opts, _) = compile(&["-c", "a.c"]);
3594 assert!(!opts.profile);
3595 assert_eq!(opts.hook, Hook::Platform, "neither was named, so the target decides");
3596
3597 for arg in ["-pg", "-p"] {
3598 let (opts, _) = compile(&["-c", arg, "a.c"]);
3599 assert!(opts.profile, "{arg}");
3600 let (link, _) = linking(&[arg, "a.c"]);
3601 assert!(link.profile, "{arg} changes the link as well");
3602 }
3603
3604 for (arg, want) in [("-mfentry", Hook::Early), ("-mno-fentry", Hook::Late)] {
3605 let (opts, _) = compile(&["-c", arg, "a.c"]);
3606 assert_eq!(opts.hook, want, "{arg}");
3607 assert!(!opts.profile, "{arg} asks for no call of its own");
3608 }
3609
3610 let (opts, _) = compile(&["-c", "-mfentry", "-mno-fentry", "-pg", "a.c"]);
3611 assert_eq!(opts.hook, Hook::Late, "the last one wins");
3612 assert!(opts.profile);
3613 }
3614
3615 /// How much room a patcher is promised, which is one number or two.
3616 ///
3617 /// A command line that did not ask is asserted alongside, because the flag has to be written to
3618 /// mean anything and a build that reserved room nobody asked for would grow every function in
3619 /// it for nothing.
3620 #[test]
3621 fn the_room_a_patcher_is_promised_is_a_number_of_bytes_and_where_they_go() {
3622 let (opts, _) = compile(&["-c", "a.c"]);
3623 assert_eq!(opts.patchable, Patchable::default());
3624 assert!(!opts.patchable.any(), "nothing is reserved unless it was asked for");
3625
3626 let (opts, _) = compile(&["-c", "-fpatchable-function-entry=16", "a.c"]);
3627 assert_eq!(opts.patchable, Patchable { total: 16, before: 0 });
3628
3629 let (opts, _) = compile(&["-c", "-fpatchable-function-entry=5,3", "a.c"]);
3630 assert_eq!(opts.patchable, Patchable { total: 5, before: 3 });
3631 assert_eq!(opts.patchable.after(), 2);
3632
3633 // The last one wins, which is what every other flag of this shape does and what a build
3634 // that adds one to a command line it did not write is relying on.
3635 let (opts, _) = compile(&[
3636 "-c",
3637 "-fpatchable-function-entry=5,3",
3638 "-fpatchable-function-entry=2",
3639 "a.c",
3640 ]);
3641 assert_eq!(opts.patchable, Patchable { total: 2, before: 0 });
3642 }
3643
3644 /// And a request nothing could satisfy is refused rather than rounded into one that can be.
3645 #[test]
3646 fn room_in_front_of_the_label_that_is_more_than_the_room_asked_for_is_refused() {
3647 for arg in ["-fpatchable-function-entry=1,2", "-fpatchable-function-entry=x"] {
3648 let e = parse_args(&args(&["-c", arg, "a.c"])).unwrap_err();
3649 assert!(e.message.contains("is not an amount of room to reserve"), "{}", e.message);
3650 }
3651 }
3652
3653 /// What wraps rather than being undefined, which is two questions and three flags.
3654 ///
3655 /// The older flag is the pair of the newer two, which is gcc's own reading of it, so a build
3656 /// that writes `-fno-strict-overflow` gets both and a build that writes one of the others gets
3657 /// only what it asked for.
3658 #[test]
3659 fn what_overflows_rather_than_being_undefined_is_asked_for_two_ways() {
3660 let (opts, _) = compile(&["-c", "a.c"]);
3661 assert_eq!(opts.wrapping, Wrapping::NONE, "nothing wraps unless it was asked for");
3662
3663 let (opts, _) = compile(&["-c", "-fwrapv", "a.c"]);
3664 assert_eq!(opts.wrapping, Wrapping { signed: true, pointer: false, trap: false });
3665
3666 let (opts, _) = compile(&["-c", "-fwrapv-pointer", "a.c"]);
3667 assert_eq!(opts.wrapping, Wrapping { signed: false, pointer: true, trap: false });
3668
3669 let (opts, _) = compile(&["-c", "-fno-strict-overflow", "a.c"]);
3670 assert_eq!(opts.wrapping, Wrapping::ALL);
3671
3672 // And the last one wins, in both directions. A build that turns one of these on globally
3673 // and off for one directory is relying on that, and so is one that writes the pair and
3674 // then takes half of it back.
3675 let (opts, _) = compile(&["-c", "-fwrapv", "-fno-wrapv", "a.c"]);
3676 assert_eq!(opts.wrapping, Wrapping::NONE);
3677
3678 let (opts, _) = compile(&["-c", "-fno-strict-overflow", "-fstrict-overflow", "a.c"]);
3679 assert_eq!(opts.wrapping, Wrapping::NONE);
3680
3681 let (opts, _) = compile(&["-c", "-fno-strict-overflow", "-fno-wrapv-pointer", "a.c"]);
3682 assert_eq!(opts.wrapping, Wrapping { signed: true, pointer: false, trap: false });
3683 }
3684
3685 /// And the other answer to the signed question cannot be held at the same time as the first.
3686 ///
3687 /// A program cannot both wrap and stop, so writing both is writing a contradiction, and gcc
3688 /// resolves it by letting the last one win rather than by reporting anything. That was measured
3689 /// against gcc 16 rather than read out of the manual, which says nothing about it: `-ftrapv
3690 /// -fwrapv` emits no checked calls and `-fwrapv -ftrapv` emits them.
3691 #[test]
3692 fn a_signed_overflow_that_stops_is_the_other_answer_and_not_a_third_one() {
3693 let (opts, _) = compile(&["-c", "-ftrapv", "a.c"]);
3694 assert_eq!(opts.wrapping, Wrapping { signed: false, pointer: false, trap: true });
3695
3696 let (opts, _) = compile(&["-c", "-fwrapv", "-ftrapv", "a.c"]);
3697 assert_eq!(opts.wrapping, Wrapping { signed: false, pointer: false, trap: true });
3698
3699 let (opts, _) = compile(&["-c", "-ftrapv", "-fwrapv", "a.c"]);
3700 assert_eq!(opts.wrapping, Wrapping { signed: true, pointer: false, trap: false });
3701
3702 let (opts, _) = compile(&["-c", "-ftrapv", "-fno-strict-overflow", "a.c"]);
3703 assert_eq!(opts.wrapping, Wrapping::ALL);
3704
3705 let (opts, _) = compile(&["-c", "-ftrapv", "-fno-trapv", "a.c"]);
3706 assert_eq!(opts.wrapping, Wrapping::NONE);
3707
3708 // And the flag that says what may be assumed says nothing about what happens, so it leaves
3709 // this alone where it takes the wrapping away. gcc does the same.
3710 let (opts, _) = compile(&["-c", "-ftrapv", "-fstrict-overflow", "a.c"]);
3711 assert_eq!(opts.wrapping, Wrapping { signed: false, pointer: false, trap: true });
3712 }
3713
3714 /// What a plain `char` is, which is four spellings of two answers and nothing by default.
3715 ///
3716 /// Nothing is the target's own answer and has to stay distinct from both of the others, since
3717 /// the same command line means a signed `char` on x86-64 and an unsigned one on Linux's arm64.
3718 /// The negative spellings are the other flag rather than a way of asking for the default, which
3719 /// was measured against gcc 16: `-fno-signed-char` defines `__CHAR_UNSIGNED__` and
3720 /// `-fno-unsigned-char` does not.
3721 #[test]
3722 fn the_signedness_of_a_plain_char_is_asked_for_in_four_ways() {
3723 let (opts, _) = compile(&["-c", "a.c"]);
3724 assert_eq!(opts.char_signed, None);
3725
3726 for flag in ["-fsigned-char", "-fno-unsigned-char"] {
3727 let (opts, _) = compile(&["-c", flag, "a.c"]);
3728 assert_eq!(opts.char_signed, Some(true), "{flag}");
3729 }
3730
3731 for flag in ["-funsigned-char", "-fno-signed-char"] {
3732 let (opts, _) = compile(&["-c", flag, "a.c"]);
3733 assert_eq!(opts.char_signed, Some(false), "{flag}");
3734 }
3735
3736 // And the last one wins, which is what a build that sets one globally and the other for a
3737 // directory relies on.
3738 let (opts, _) = compile(&["-c", "-funsigned-char", "-fsigned-char", "a.c"]);
3739 assert_eq!(opts.char_signed, Some(true));
3740
3741 // And what is asked for reaches the target, because that is what every other part of the
3742 // compiler asks. The triple is one whose own answer is the opposite, so a session that
3743 // ignored the flag would still read as signed here.
3744 let (opts, _) =
3745 compile(&["-c", "--target=aarch64-unknown-linux-gnu", "-fsigned-char", "a.c"]);
3746 assert!(Session::new(*opts).target.char_is_signed);
3747 let (opts, _) = compile(&["-c", "--target=aarch64-unknown-linux-gnu", "a.c"]);
3748 assert!(!Session::new(*opts).target.char_is_signed);
3749 }
3750
3751 /// And the size of an enumeration, which is one question with two spellings.
3752 #[test]
3753 fn the_smallest_enumeration_is_asked_for_and_taken_back() {
3754 let (opts, _) = compile(&["-c", "a.c"]);
3755 assert!(!opts.short_enums);
3756
3757 let (opts, _) = compile(&["-c", "-fshort-enums", "a.c"]);
3758 assert!(opts.short_enums);
3759
3760 let (opts, _) = compile(&["-c", "-fshort-enums", "-fno-short-enums", "a.c"]);
3761 assert!(!opts.short_enums);
3762
3763 let (opts, _) = compile(&["-c", "-fno-short-enums", "-fshort-enums", "a.c"]);
3764 assert!(opts.short_enums);
3765 }
3766
3767 /// And a value nothing means is refused rather than taken for the nearest thing it looks like.
3768 ///
3769 /// `-fcf-protection=all` is the spelling somebody writes from memory, and a compiler that read
3770 /// it as `full` would be guessing, while one that let it fall through to the optimizer's `-f`
3771 /// family would report it as an unknown pass. Neither is the news the build wants.
3772 #[test]
3773 fn a_control_flow_protection_nothing_means_is_refused() {
3774 let e = parse_args(&args(&["-c", "-fcf-protection=all", "a.c"])).unwrap_err();
3775 assert!(e.message.contains("is not a control flow protection"), "{}", e.message);
3776 assert!(e.message.contains("full, branch, return, none or check"), "{}", e.message);
3777 }
3778
3779 #[test]
3780 fn the_link_flags_are_collected_apart_from_the_compilation() {
3781 let (link, _) = linking(&[
3782 "-static",
3783 "-nostartfiles",
3784 "-rdynamic",
3785 "-s",
3786 "-fuse-ld=mold",
3787 "-L/opt/lib",
3788 "-B",
3789 "/opt/tools",
3790 "a.c",
3791 ]);
3792 assert!(link.is_static);
3793 assert!(link.no_startfiles);
3794 assert!(link.export_dynamic);
3795 assert!(link.strip);
3796 assert_eq!(link.use_ld.as_deref(), Some("mold"));
3797 assert_eq!(link.search, vec![PathBuf::from("/opt/lib")]);
3798 assert_eq!(link.prefixes, vec![PathBuf::from("/opt/tools")]);
3799 }
3800
3801 #[test]
3802 fn a_comma_in_dash_wl_separates_two_arguments() {
3803 let (link, _) = linking(&["-Wl,-rpath,/opt/lib", "-Xlinker", "--as-needed", "a.c"]);
3804 assert_eq!(link.passthrough, vec!["-rpath", "/opt/lib", "--as-needed"]);
3805 }
3806
3807 #[test]
3808 fn a_library_keeps_its_place_between_the_objects() {
3809 // Link order is semantic: `-lm` written between two files resolves for the one before
3810 // it and not for the one after, so a library cannot be collected into a list of its own.
3811 // The target is named because the suffix of an object is the target's and this asserts
3812 // on the names: the same command line on a Windows host plans two `.obj` files.
3813 let (_, plan) = linking(&["--target=x86_64-unknown-linux-gnu", "a.c", "-lm", "b.c"]);
3814 let link = plan.link.expect("expected a link step");
3815 assert_eq!(
3816 link.inputs,
3817 vec![
3818 link::Item::File("a.o".into()),
3819 link::Item::Library("m".into()),
3820 link::Item::File("b.o".into()),
3821 ]
3822 );
3823 // And it is not a job, because there is nothing to compile in a library.
3824 assert_eq!(plan.jobs.len(), 2);
3825 }
3826
3827 #[test]
3828 fn a_library_on_a_dash_c_line_is_a_note_rather_than_an_error() {
3829 let (_, plan) = linking(&["-c", "-lm", "a.c"]);
3830 assert!(plan.link.is_none());
3831 assert!(plan.notes.iter().any(|n| n.contains("-lm")), "{:?}", plan.notes);
3832 }
3833
3834 #[test]
3835 fn the_sysroot_reaches_the_linker_as_well_as_the_headers() {
3836 let (link, _) = linking(&["--sysroot=/opt/root", "a.c"]);
3837 assert_eq!(link.sysroot, Some(PathBuf::from("/opt/root")));
3838 }
3839
3840 fn printed(s: &[&str]) -> String {
3841 match parse_args(&args(s)).expect("expected an answer") {
3842 Action::Print(line) => line,
3843 other => panic!("expected an answer, got {other:?}"),
3844 }
3845 }
3846
3847 fn refused(s: &[&str]) -> String {
3848 parse_args(&args(s)).expect_err("expected a refusal").message
3849 }
3850
3851 #[test]
3852 fn a_warning_flag_this_compiler_has_not_heard_of_is_taken_rather_than_refused() {
3853 // The rule in section 4.1, and the reason for it is autoconf: a configure script finds
3854 // out whether a warning flag exists by passing it and looking at the exit status, so a
3855 // compiler that refuses one it does not know fails a script written for a newer GCC.
3856 let (opts, _) = compile(&["-Wall", "-Wextra", "-Wno-format-truncation", "-c", "a.c"]);
3857 assert!(!opts.warnings_are_errors);
3858 assert!(opts.warnings);
3859 // The two spellings that do mean something are still read.
3860 let (opts, _) = compile(&["-Werror", "-c", "a.c"]);
3861 assert!(opts.warnings_are_errors);
3862 let (opts, _) = compile(&["-w", "-c", "a.c"]);
3863 assert!(!opts.warnings);
3864 let (opts, _) = compile(&["-pedantic-errors", "-c", "a.c"]);
3865 assert!(opts.pedantic && opts.warnings_are_errors);
3866 }
3867
3868 #[test]
3869 fn an_argument_for_a_separate_tool_is_refused_rather_than_dropped() {
3870 // Every one of these says something about the output, so the wrong answer is silence.
3871 assert!(refused(&["-Wa,--noexecstack", "-c", "a.c"]).contains("separate assembler"));
3872 assert!(refused(&["-Wp,-DX", "-c", "a.c"]).contains("separate assembler"));
3873 assert!(refused(&["-specs=/x", "a.c"]).contains("-specs= is not supported"));
3874 assert!(refused(&["-mcmodel=kernel", "-c", "a.c"]).contains("small code model"));
3875 assert!(refused(&["-gdwarf-4", "-c", "a.c"]).contains("DWARF 5"));
3876 assert!(refused(&["-Ofast", "-c", "a.c"]).contains("fast math"));
3877 // The word size the target does not have, which is a target this compiler was not asked
3878 // for rather than a flag it does not know.
3879 let no32 = refused(&["--target=x86_64-unknown-linux-gnu", "-m32", "-c", "a.c"]);
3880 assert!(no32.contains("32 bit target"), "{no32}");
3881 }
3882
3883 /// `-gz` and the two spellings of the split, which are the two questions about the shape of
3884 /// the debug output rather than about how much of it there is.
3885 ///
3886 /// Both answers here are about what happens when there is debug information to shape, and
3887 /// there is none yet, so what is being asserted is that the flags are read and remembered
3888 /// rather than that anything changed in the output. That is the whole of what taking them
3889 /// claims, and it is worth a test because the day `rucc-debug` writes a section this is where
3890 /// it comes to find out what the command line said.
3891 #[test]
3892 fn the_shape_of_the_debug_output_is_recorded_even_where_there_is_none_of_it() {
3893 let (opts, _) = compile(&["-c", "a.c"]);
3894 assert_eq!(opts.compress, Compress::None, "uncompressed unless somebody asks");
3895
3896 // Bare `-gz` is `-gz=zlib`, measured against gcc 16 rather than read out of the manual,
3897 // which describes the flag without ever saying which algorithm it picks.
3898 assert_eq!(compile(&["-gz", "-c", "a.c"]).0.compress, Compress::Zlib);
3899 for (spelling, want) in [
3900 ("none", Compress::None),
3901 ("zlib", Compress::Zlib),
3902 ("zlib-gnu", Compress::ZlibGnu),
3903 ("zstd", Compress::Zstd),
3904 ] {
3905 let (opts, _) = compile(&[&format!("-gz={spelling}"), "-c", "a.c"]);
3906 assert_eq!(opts.compress, want, "{spelling}");
3907 }
3908
3909 // A value nothing here has heard of is refused rather than rounded to the nearest one,
3910 // because a build that asked for `zstd` and quietly got `zlib` would ship a file its
3911 // reader may not understand and would have no way of finding out.
3912 for bad in ["-gz=gzip", "-gz="] {
3913 let failed = refused(&[bad, "-c", "a.c"]);
3914 assert!(failed.contains("is not a way to compress"), "{bad}: {failed}");
3915 }
3916
3917 // The split is refused in the direction that would have written a file and taken in the
3918 // direction that describes what happens. A build system that names the `.dwo` as an
3919 // output has to hear about it now rather than at the point the file is missing.
3920 let (opts, _) = compile(&["-gno-split-dwarf", "-g", "-c", "a.c"]);
3921 assert!(opts.debug_info, "the negative spelling says nothing about how much");
3922 let failed = refused(&["-gsplit-dwarf", "-c", "a.c"]);
3923 assert!(failed.contains(".dwo"), "the refusal names the file it would have written");
3924 }
3925
3926 /// The `-flto` family, which is the whole of an optimization this compiler does not do.
3927 ///
3928 /// Taken rather than refused because ignoring it gives a correct program that is slower than
3929 /// it could have been, which is section 4.1's hint about speed. The values are still held to
3930 /// gcc's, so a command line written for clang is told rather than quietly taken.
3931 #[test]
3932 fn the_link_time_family_is_read_and_checked_and_nothing_is_done_about_it() {
3933 let (opts, _) = compile(&["-c", "a.c"]);
3934 assert!(!opts.lto.requested, "nothing asks unless the command line does");
3935
3936 let (opts, _) = compile(&["-flto", "-c", "a.c"]);
3937 assert!(opts.lto.requested);
3938 assert_eq!(opts.lto.jobs, LtoJobs::One, "bare -flto is one process, the way gcc reads it");
3939
3940 // The last of the two directions wins, the same as every other pair of `-f` spellings.
3941 assert!(!compile(&["-flto", "-fno-lto", "-c", "a.c"]).0.lto.requested);
3942 assert!(compile(&["-fno-lto", "-flto", "-c", "a.c"]).0.lto.requested);
3943
3944 // A count is a count, and asking for one implies asking for the optimization.
3945 for (spelling, want) in [
3946 ("auto", LtoJobs::Auto),
3947 ("jobserver", LtoJobs::Jobserver),
3948 ("1", LtoJobs::One),
3949 ("8", LtoJobs::Count(8)),
3950 ] {
3951 let (opts, _) = compile(&[&format!("-flto={spelling}"), "-c", "a.c"]);
3952 assert_eq!(opts.lto.jobs, want, "{spelling}");
3953 assert!(opts.lto.requested, "{spelling} asks for it too");
3954 }
3955
3956 // gcc refuses a zero rather than reading it as `-fno-lto`, and `thin` is clang's spelling
3957 // of a question gcc answers with `-flto-partition=`, so somebody who wrote it meant a
3958 // different compiler and gets told so here rather than getting a serial link.
3959 for bad in ["-flto=0", "-flto=thin", "-flto=full", "-flto=-1"] {
3960 let failed = refused(&[bad, "-c", "a.c"]);
3961 assert!(failed.contains("link time jobs"), "{bad}: {failed}");
3962 }
3963
3964 // How the program is cut up before the work is spread over it.
3965 assert_eq!(compile(&["-c", "a.c"]).0.lto.partition, Partition::Balanced, "gcc's default");
3966 for (spelling, want) in [
3967 ("balanced", Partition::Balanced),
3968 ("1to1", Partition::OneToOne),
3969 ("one", Partition::One),
3970 ("max", Partition::Max),
3971 ("none", Partition::None),
3972 ] {
3973 let (opts, _) = compile(&[&format!("-flto-partition={spelling}"), "-c", "a.c"]);
3974 assert_eq!(opts.lto.partition, want, "{spelling}");
3975 }
3976 assert!(refused(&["-flto-partition=big", "-c", "a.c"]).contains("partitioning model"));
3977
3978 // And how hard the bytecode is compressed on its way into the object, which is zstd's
3979 // range of levels and is the range gcc checks an argument against.
3980 assert_eq!(compile(&["-c", "a.c"]).0.lto.compression, None, "whatever it does by default");
3981 assert_eq!(compile(&["-flto-compression-level=0", "-c", "a.c"]).0.lto.compression, Some(0));
3982 let (opts, _) = compile(&["-flto-compression-level=19", "-c", "a.c"]);
3983 assert_eq!(opts.lto.compression, Some(19));
3984 for bad in ["-flto-compression-level=20", "-flto-compression-level=-1"] {
3985 let failed = refused(&[bad, "-c", "a.c"]);
3986 assert!(failed.contains("compression level"), "{bad}: {failed}");
3987 }
3988
3989 // The two pairs that describe an arrangement rather than ask for one. Every object here
3990 // holds its machine code, so the fat spelling is what already happens and the other is a
3991 // smaller file rather than a different program, and the plugin pair is about a tool the
3992 // design in `spec/09-optimizer.md` never loads.
3993 for taken in [
3994 "-ffat-lto-objects",
3995 "-fno-fat-lto-objects",
3996 "-fuse-linker-plugin",
3997 "-fno-use-linker-plugin",
3998 ] {
3999 let (opts, _) = compile(&[taken, "-c", "a.c"]);
4000 assert!(!opts.lto.requested, "{taken} says nothing about whether to do it");
4001 }
4002 }
4003
4004 /// The profile family, which is the only one here that splits down the middle.
4005 ///
4006 /// Reading a profile is taken and writing one is refused, and the line between them is the one
4007 /// section 4.1 draws: ignoring a request to read the counts gives a correct program that is
4008 /// slower than it could have been, and ignoring a request to write them means a file the build
4009 /// declared as an output never appears.
4010 #[test]
4011 fn reading_a_profile_is_taken_and_writing_one_is_refused() {
4012 let (opts, _) = compile(&["-c", "a.c"]);
4013 assert!(!opts.profile_data.requested, "nothing asks unless the command line does");
4014 assert_eq!(opts.profile_data.path, None);
4015
4016 let (opts, _) = compile(&["-fprofile-use", "-c", "a.c"]);
4017 assert!(opts.profile_data.requested);
4018 assert_eq!(opts.profile_data.path, None, "beside the object, the way gcc looks");
4019
4020 let (opts, _) = compile(&["-fprofile-use=/counts", "-c", "a.c"]);
4021 assert!(opts.profile_data.requested, "naming a path asks for it too");
4022 assert_eq!(opts.profile_data.path.as_deref(), Some("/counts"));
4023
4024 // The last of the two directions wins, the same as every other pair of `-f` spellings.
4025 assert!(
4026 !compile(&["-fprofile-use", "-fno-profile-use", "-c", "a.c"]).0.profile_data.requested
4027 );
4028 assert!(
4029 compile(&["-fno-profile-use", "-fprofile-use", "-c", "a.c"]).0.profile_data.requested
4030 );
4031
4032 // The rest of the reading half, which is where the files are and three answers about what
4033 // to make of what is in them.
4034 let (opts, _) = compile(&[
4035 "-fprofile-dir=/build/profiles",
4036 "-fprofile-abs-path",
4037 "-fprofile-correction",
4038 "-fprofile-partial-training",
4039 "-c",
4040 "a.c",
4041 ]);
4042 assert_eq!(opts.profile_data.dir.as_deref(), Some("/build/profiles"));
4043 assert!(opts.profile_data.absolute);
4044 assert!(opts.profile_data.correction);
4045 assert!(opts.profile_data.partial_training);
4046
4047 // Writing one, which is refused by name. The first four instrument the program and the
4048 // last writes a file beside the object, and a build that got neither and no message would
4049 // go on to optimize against counts that were never gathered.
4050 for writing in [
4051 "-fprofile-generate",
4052 "-fprofile-generate=/build/profiles",
4053 "-fprofile-arcs",
4054 "--coverage",
4055 "-fcondition-coverage",
4056 "-fpath-coverage",
4057 ] {
4058 let failed = refused(&[writing, "-c", "a.c"]);
4059 assert!(failed.contains("instrument"), "{writing}: {failed}");
4060 }
4061 assert!(refused(&["-ftest-coverage", "-c", "a.c"]).contains(".gcno"), "it names the file");
4062
4063 // The negative spellings of the refused half are what already happens, so they are taken.
4064 for taken in ["-fno-profile-generate", "-fno-profile-arcs", "-fno-test-coverage"] {
4065 let (opts, _) = compile(&[taken, "-c", "a.c"]);
4066 assert!(!opts.profile_data.requested, "{taken} asks for nothing");
4067 }
4068
4069 // And the flags that describe the instrumentation that is refused above, which are checked
4070 // and dropped. Checked because a typo is worth finding here rather than on the day the
4071 // instrumentation lands.
4072 for taken in [
4073 "-fprofile-update=single",
4074 "-fprofile-update=atomic",
4075 "-fprofile-update=prefer-atomic",
4076 "-fprofile-reproducible=serial",
4077 "-fprofile-reproducible=parallel-runs",
4078 "-fprofile-reproducible=multithreaded",
4079 "-fprofile-values",
4080 "-fno-profile-values",
4081 "-fprofile-info-section",
4082 "-fprofile-filter-files=a.c",
4083 "-fprofile-exclude-files=b.c",
4084 "-fprofile-note=a.gcno",
4085 ] {
4086 let (opts, _) = compile(&[taken, "-c", "a.c"]);
4087 assert!(!opts.profile_data.requested, "{taken} says nothing about reading one");
4088 }
4089 assert!(refused(&["-fprofile-update=none", "-c", "a.c"]).contains("update method"));
4090 assert!(refused(&["-fprofile-reproducible=any", "-c", "a.c"]).contains("reproducibility"));
4091 }
4092
4093 /// The sanitizers, which are refused by name and are the one family refused for a reason that
4094 /// is not about the bytes.
4095 ///
4096 /// A sanitizer is a promise that the program is watched while it runs, so a build that asked
4097 /// for one and was quietly given a program with no checks in it gets a test suite that passes
4098 /// for the wrong reason rather than a slower program.
4099 #[test]
4100 fn a_sanitizer_that_is_still_asked_for_at_the_end_of_the_line_is_refused_by_name() {
4101 for asked in ["address", "undefined", "thread", "kernel-address", "leak", "memory"] {
4102 let failed = refused(&[&format!("-fsanitize={asked}"), "-c", "a.c"]);
4103 assert!(failed.contains(asked), "the refusal names what was asked for: {failed}");
4104 assert!(failed.contains("-fsafety=detect"), "and the nearest thing: {failed}");
4105 }
4106
4107 // A list is every name in it, and the first one still standing is the one named.
4108 let failed = refused(&["-fsanitize=address,undefined", "-c", "a.c"]);
4109 assert!(failed.contains("address"), "{failed}");
4110
4111 // A name that is not one, which is worth its own message: somebody who wrote `-fsanitize`
4112 // with a typo in it has a different problem from somebody who wrote a real one.
4113 for bad in ["-fsanitize=bogus", "-fsanitize=address,bogus", "-fno-sanitize=bogus"] {
4114 let failed = refused(&[bad, "-c", "a.c"]);
4115 assert!(failed.contains("is not a sanitizer"), "{bad}: {failed}");
4116 }
4117
4118 // gcc takes `all` only in the negative, and so does this.
4119 assert!(refused(&["-fsanitize=all", "-c", "a.c"]).contains("only `-fno-sanitize=all`"));
4120
4121 // Asking and then taking it back is asking for nothing, which is why the answer waits for
4122 // the end of the line. A build whose shared flags turn a check on and whose rule for one
4123 // file turns it off again compiles that file here.
4124 for pair in [
4125 ["-fsanitize=address", "-fno-sanitize=address"],
4126 ["-fsanitize=address,undefined", "-fno-sanitize=all"],
4127 ["-fsanitize=undefined", "-fno-sanitize=undefined"],
4128 ] {
4129 let (opts, _) = compile(&[pair[0], pair[1], "-c", "a.c"]);
4130 assert_eq!(opts.safety, rucc_session::Safety::Off, "{pair:?} asked for nothing");
4131 }
4132 // And the other order still asks, because the last word is the one that counts.
4133 assert!(!refused(&["-fno-sanitize=address", "-fsanitize=address", "-c", "a.c"]).is_empty());
4134
4135 // What a check does when it fires is an answer about checks that are refused, so there is
4136 // nothing left for it to change and it is taken.
4137 for taken in [
4138 "-fsanitize-recover=undefined",
4139 "-fno-sanitize-recover=all",
4140 "-fsanitize-trap=undefined",
4141 "-fno-sanitize-trap=all",
4142 "-fsanitize-undefined-trap-on-error",
4143 "-fsanitize-address-use-after-scope",
4144 "-fno-sanitize-address-use-after-scope",
4145 "-fsanitize-sections=.data",
4146 ] {
4147 let (opts, _) = compile(&[taken, "-c", "a.c"]);
4148 assert_eq!(opts.safety, rucc_session::Safety::Off, "{taken} asks for no checking");
4149 }
4150 assert!(refused(&["-fsanitize-recover=bogus", "-c", "a.c"]).contains("is not a sanitizer"));
4151
4152 // Coverage instrumentation is refused rather than dropped, because a fuzzer with no
4153 // feedback runs blind and never says so.
4154 let failed = refused(&["-fsanitize-coverage=trace-pc", "-c", "a.c"]);
4155 assert!(failed.contains("feedback"), "{failed}");
4156 let failed = refused(&["-fsanitize-coverage=trace-pc-guard", "-c", "a.c"]);
4157 assert!(failed.contains("trace-pc or trace-cmp"), "gcc takes two of them: {failed}");
4158 }
4159
4160 #[test]
4161 fn the_levels_gcc_spells_differently_are_the_levels_they_mean() {
4162 assert_eq!(compile(&["-O", "-c", "a.c"]).0.opt_level, OptLevel::O1);
4163 assert_eq!(compile(&["-Og", "-c", "a.c"]).0.opt_level, OptLevel::O1);
4164 assert_eq!(compile(&["-O2", "-c", "a.c"]).0.opt_level, OptLevel::O2);
4165 }
4166
4167 #[test]
4168 fn the_machine_flags_that_name_what_we_already_do_are_taken_and_the_rest_are_not() {
4169 let line = ["--target=x86_64-unknown-linux-gnu", "-m64", "-march=x86-64-v3"];
4170 let (opts, _) =
4171 compile(&[&line[..], &["-mtune=native", "-mabi=sysv", "-c", "a.c"]].concat());
4172 assert_eq!(opts.target.to_string(), "x86_64-unknown-linux-gnu");
4173 let wrong = refused(&["--target=x86_64-unknown-linux-gnu", "-mabi=ms", "-c", "a.c"]);
4174 assert!(wrong.contains("sysv convention"), "{wrong}");
4175 }
4176
4177 #[test]
4178 fn the_thread_flag_is_a_macro_and_a_library_and_the_library_goes_last() {
4179 let (opts, plan) = compile(&["-pthread", "-c", "a.c"]);
4180 assert!(opts.defines.iter().any(|d| d == "_REENTRANT"));
4181 // After the input, because a static link takes what it needs from a library when it
4182 // reaches it and not afterwards.
4183 let names: Vec<&str> = plan.jobs.iter().map(|j| j.input.as_str()).collect();
4184 assert_eq!(names, vec!["a.c"]);
4185 }
4186
4187 #[test]
4188 fn the_questions_a_build_system_asks_before_it_compiles_anything() {
4189 let target = "--target=x86_64-unknown-linux-gnu";
4190 assert_eq!(printed(&[target, "-dumpmachine"]), "x86_64-unknown-linux-gnu");
4191 assert_eq!(printed(&[target, "-dumpversion"]), VERSION);
4192 assert_eq!(printed(&[target, "-dumpfullversion"]), VERSION);
4193 assert_eq!(printed(&[target, "-print-multiarch"]), "x86_64-linux-gnu");
4194 // A name nothing holds comes back unchanged, which is GCC's rule and is what makes the
4195 // answer safe to paste into a link line whether or not the file is there.
4196 assert_eq!(printed(&[target, "-print-file-name=no-such-library.a"]), "no-such-library.a");
4197 assert_eq!(printed(&[target, "-print-prog-name=ld"]), "ld");
4198 let dirs = printed(&[target, "-print-search-dirs"]);
4199 assert!(dirs.starts_with("install: "), "{dirs}");
4200 assert!(dirs.contains("\nlibraries: ="), "{dirs}");
4201 }
4202
4203 #[test]
4204 fn the_sysroot_in_effect_is_the_one_the_command_line_named_or_the_one_for_the_target() {
4205 // A tree the user named is the answer whatever the target is, because it is the answer to
4206 // every other question too.
4207 assert_eq!(printed(&["--sysroot=/opt/cross", "-print-sysroot"]), "/opt/cross");
4208
4209 // A target that is no machine this suite runs on is read under the cache, and the answer is
4210 // the root rather than one of the directories under it, since what asks is looking for a
4211 // file of its own.
4212 let root = cache::dir().join("sysroots").join("riscv64-linux-musl");
4213 assert_eq!(
4214 printed(&["--target=riscv64-linux-musl", "-print-sysroot"]),
4215 root.display().to_string()
4216 );
4217
4218 // And a compile for this machine has no sysroot, which is the empty line GCC prints when it
4219 // was configured without one rather than a `/` that would be a claim about the filesystem.
4220 let host = Triple::host().expect("a host this compiler knows");
4221 assert_eq!(printed(&[&format!("--target={host}"), "-print-sysroot"]), "");
4222 }
4223
4224 #[test]
4225 fn the_provenance_of_a_sysroot_is_the_manifest_it_carries() {
4226 // Section 13.5 wants seven things per input and wants them machine readable, and the manifest
4227 // is the record that already has them, so the flag prints that rather than a second format.
4228 let manifest = "rucc sysroot manifest 3\n\
4229 target\tx86_64-linux-musl\n\
4230 kernel\t6.12\n\
4231 include/generic/stdio.h\tmusl-1.2.5\t\
4232 https://musl.libc.org/releases/musl-1.2.5.tar.gz\t\
4233 0000000000000000000000000000000000000000000000000000000000000000\tmit\t\
4234 bundled\n\
4235 lib/libc.so\tmusl-1.2.5\t\
4236 https://musl.libc.org/releases/musl-1.2.5.tar.gz\t\
4237 1111111111111111111111111111111111111111111111111111111111111111\tmit\t\
4238 generated\n";
4239 let tree = TempTree::new("provenance", &[("manifest", manifest)]);
4240 let sysroot = format!("--sysroot={}", tree.0.display());
4241 // The kernel line of tamnd/rucc#934 is in the answer without anything here naming it, because
4242 // the flag parses the record and renders it again rather than picking fields out of it. That
4243 // is the reason it prints a manifest and not a format of its own.
4244 //
4245 // The answer is the file without its last newline, because whatever prints it adds one. The
4246 // file is what somebody diffs the output against, so the two have to be the same bytes.
4247 assert_eq!(printed(&[&sysroot, "-print-sysroot-provenance"]) + "\n", manifest);
4248
4249 // A tree with no manifest in it is a tree somebody assembled themselves, and nothing here
4250 // knows where any of it came from. Saying nothing is the only honest answer, and a reader can
4251 // tell it from a manifest with no inputs because that one still has its two header lines.
4252 let bare = TempTree::new("provenance-bare", &[]);
4253 assert_eq!(
4254 printed(&[&format!("--sysroot={}", bare.0.display()), "-print-sysroot-provenance"]),
4255 ""
4256 );
4257
4258 // And a compile for this machine has no sysroot at all, which is the same empty answer
4259 // `-print-sysroot` gives for it.
4260 let host = Triple::host().expect("a host this compiler knows");
4261 assert_eq!(printed(&[&format!("--target={host}"), "-print-sysroot-provenance"]), "");
4262
4263 // And the other spelling, which section 13.5 is the document that writes.
4264 assert_eq!(printed(&[&sysroot, "--print-sysroot-provenance"]) + "\n", manifest);
4265 }
4266
4267 #[test]
4268 fn a_manifest_this_build_cannot_read_is_refused_rather_than_printed() {
4269 // Passing a file we could not parse to whoever asked would make their parser the one that
4270 // finds the problem, and the three uses section 13.5 gives for this are all somebody else
4271 // parsing it.
4272 let tree = TempTree::new(
4273 "provenance-bad",
4274 &[("manifest", "rucc sysroot manifest 3\ntarget\tx86_64-linux-musl\nlib/libc.a\n")],
4275 );
4276 let message =
4277 refused(&[&format!("--sysroot={}", tree.0.display()), "-print-sysroot-provenance"]);
4278 assert!(message.contains("manifest"), "{message}");
4279 assert!(message.contains("1 fields where an input has six"), "{message}");
4280 }
4281
4282 #[test]
4283 fn the_two_dependency_flags_that_stop_after_the_rule_stop_after_the_rule() {
4284 let (opts, _) = compile(&["-M", "a.c"]);
4285 assert!(opts.deps.emit && opts.deps.instead_of_compiling);
4286 assert!(opts.deps.system_headers, "plain -M lists them");
4287 assert_eq!(opts.emit, EmitKind::Preprocessed);
4288
4289 // Even where a later flag asked for something else, because the family is a mode and
4290 // the mode is what the run is for.
4291 let (opts, _) = compile(&["-M", "-c", "a.c"]);
4292 assert_eq!(opts.emit, EmitKind::Preprocessed);
4293
4294 let (opts, _) = compile(&["-MM", "a.c"]);
4295 assert!(!opts.deps.system_headers);
4296 }
4297
4298 #[test]
4299 fn the_two_that_end_in_d_leave_the_compilation_alone() {
4300 let (opts, _) = compile(&["-MD", "-c", "a.c"]);
4301 assert!(opts.deps.emit && !opts.deps.instead_of_compiling);
4302 assert!(opts.deps.system_headers);
4303 assert_eq!(opts.emit, EmitKind::Object);
4304
4305 let (opts, _) = compile(&["-MMD", "-c", "a.c"]);
4306 assert!(opts.deps.emit && !opts.deps.instead_of_compiling);
4307 assert!(!opts.deps.system_headers);
4308 }
4309
4310 #[test]
4311 fn nothing_puts_the_system_headers_back_once_a_flag_has_taken_them_out() {
4312 // GCC's rule, and not an oversight in it. The flag asking for fewer of them is read as
4313 // the answer, because the other one never asked the question.
4314 let (opts, _) = compile(&["-MM", "-M", "a.c"]);
4315 assert!(!opts.deps.system_headers);
4316 let (opts, _) = compile(&["-MD", "-MMD", "-c", "a.c"]);
4317 assert!(!opts.deps.system_headers);
4318 let (opts, _) = compile(&["-MMD", "-MD", "-c", "a.c"]);
4319 assert!(!opts.deps.system_headers);
4320 }
4321
4322 #[test]
4323 fn a_target_arrives_escaped_from_one_flag_and_untouched_from_the_other() {
4324 let (opts, _) = compile(&["-MM", "-MT", "a b.o", "-MQ", "a b.o", "a.c"]);
4325 assert_eq!(opts.deps.targets, vec!["a b.o".to_owned(), "a\\ b.o".to_owned()]);
4326 }
4327
4328 #[test]
4329 fn the_rest_of_the_family_is_a_file_and_a_switch() {
4330 let (opts, _) = compile(&["-MM", "-MF", "dep.d", "-MP", "a.c"]);
4331 assert_eq!(opts.deps.file.as_deref(), Some("dep.d"));
4332 assert!(opts.deps.phony);
4333
4334 for flag in ["-MF", "-MT", "-MQ"] {
4335 let e = parse_args(&args(&[flag])).unwrap_err();
4336 assert!(e.message.contains("requires an argument"), "{}", e.message);
4337 }
4338 }
4339
4340 /// A directory of sources for one test, removed when the test is done with it.
4341 struct TempTree(PathBuf);
4342
4343 impl Drop for TempTree {
4344 fn drop(&mut self) {
4345 let _ = std::fs::remove_dir_all(&self.0);
4346 }
4347 }
4348
4349 impl TempTree {
4350 fn new(name: &str, files: &[(&str, &str)]) -> TempTree {
4351 let dir = std::env::temp_dir().join(format!("rucc-deps-{}-{name}", std::process::id()));
4352 let _ = std::fs::remove_dir_all(&dir);
4353 std::fs::create_dir_all(&dir).expect("temporary directory should be writable");
4354 for (path, text) in files {
4355 let at = dir.join(path);
4356 if let Some(parent) = at.parent() {
4357 std::fs::create_dir_all(parent).expect("creating a subdirectory should work");
4358 }
4359 std::fs::write(&at, text).expect("writing a temporary file should work");
4360 }
4361 TempTree(dir)
4362 }
4363
4364 fn path(&self, name: &str) -> String {
4365 self.0.join(name).to_string_lossy().into_owned()
4366 }
4367 }
4368
4369 #[test]
4370 fn the_rule_names_what_the_includes_found_and_names_each_of_them_once() {
4371 // End to end, because the list comes from the preprocessor and the format comes from
4372 // somewhere else, and a test of either half on its own would pass with the two of them
4373 // wired up backwards.
4374 let tree = TempTree::new(
4375 "found",
4376 &[
4377 ("a.c", "#include \"one.h\"\n#include \"two.h\"\nint main(void) { return X; }\n"),
4378 ("one.h", "#define X 0\n"),
4379 ("two.h", "#include \"one.h\"\n"),
4380 ],
4381 );
4382 let out = tree.path("dep.d");
4383 let code = run(&args(&["-MM", "-MF", &out, "-o", &tree.path("a.i"), &tree.path("a.c")]));
4384 assert_eq!(code, 0);
4385
4386 let text = std::fs::read_to_string(&out).expect("the rule should have been written");
4387 let names: Vec<&str> = text.split_whitespace().collect();
4388 // The target, the source, and each header once however many times it was reached.
4389 assert_eq!(names.first(), Some(&"a.o:"), "{text}");
4390 assert_eq!(names.iter().filter(|n| n.ends_with("one.h")).count(), 1, "{text}");
4391 assert_eq!(names.iter().filter(|n| n.ends_with("two.h")).count(), 1, "{text}");
4392 // And the `-o` went to the file the rule replaced, which is left empty rather than
4393 // absent because a makefile that named it as a target will look for it.
4394 assert_eq!(std::fs::read(tree.path("a.i")).expect("the output should exist"), b"");
4395 }
4396
4397 #[test]
4398 fn a_header_that_is_only_reached_under_a_guard_is_still_a_dependency() {
4399 // The multiple-include optimization means the second reach never opens the file. It is
4400 // still a file this translation unit was built from, so it is still in the rule.
4401 let tree = TempTree::new(
4402 "guarded",
4403 &[
4404 ("a.c", "#include \"g.h\"\n#include \"g.h\"\nint main(void) { return 0; }\n"),
4405 ("g.h", "#ifndef G\n#define G\n#endif\n"),
4406 ],
4407 );
4408 let out = tree.path("dep.d");
4409 let code = run(&args(&["-MM", "-MF", &out, "-o", &tree.path("a.i"), &tree.path("a.c")]));
4410 assert_eq!(code, 0);
4411 let text = std::fs::read_to_string(&out).expect("the rule should have been written");
4412 assert_eq!(text.split_whitespace().filter(|n| n.ends_with("g.h")).count(), 1, "{text}");
4413 }
4414
4415 #[test]
4416 fn every_imacros_file_is_read_before_every_include_file_whatever_order_they_were_written() {
4417 // Measured against GCC rather than read: the two flags the other way round produce the
4418 // same output byte for byte, so the command line order between the two families does not
4419 // decide anything and the order within one does. The `-include` file here can only see
4420 // the definition if the `-imacros` file that was written after it ran first.
4421 let tree = TempTree::new(
4422 "preinclude",
4423 &[
4424 ("a.c", "int main(void) { return 0; }\n"),
4425 ("i.h", "#ifdef FROM_MACROS\nint saw_it;\n#else\nint missed_it;\n#endif\n"),
4426 ("m.h", "#define FROM_MACROS 1\nint macros_text;\n"),
4427 ],
4428 );
4429 let out = tree.path("a.i");
4430 let code = run(&args(&[
4431 "-E",
4432 "-include",
4433 &tree.path("i.h"),
4434 "-imacros",
4435 &tree.path("m.h"),
4436 "-o",
4437 &out,
4438 &tree.path("a.c"),
4439 ]));
4440 assert_eq!(code, 0);
4441 let text = std::fs::read_to_string(&out).expect("the output should have been written");
4442 assert!(text.contains("saw_it"), "{text}");
4443 // And the text of the `-imacros` file is thrown away, which is the whole difference
4444 // between the two flags.
4445 assert!(!text.contains("macros_text"), "{text}");
4446 }
4447
4448 #[test]
4449 fn a_file_the_command_line_named_is_a_prerequisite_the_same_as_one_a_directive_named() {
4450 let tree = TempTree::new(
4451 "preinclude-deps",
4452 &[
4453 ("a.c", "int main(void) { return 0; }\n"),
4454 ("i.h", "int from_include;\n"),
4455 ("m.h", "#define M 1\n"),
4456 ],
4457 );
4458 let out = tree.path("dep.d");
4459 let code = run(&args(&[
4460 "-MM",
4461 "-MF",
4462 &out,
4463 "-include",
4464 &tree.path("i.h"),
4465 "-imacros",
4466 &tree.path("m.h"),
4467 "-o",
4468 &tree.path("a.i"),
4469 &tree.path("a.c"),
4470 ]));
4471 assert_eq!(code, 0);
4472 let text = std::fs::read_to_string(&out).expect("the rule should have been written");
4473 assert!(text.contains("i.h"), "{text}");
4474 assert!(text.contains("m.h"), "{text}");
4475 }
4476
4477 #[test]
4478 fn a_command_line_include_that_is_nowhere_on_the_path_is_an_error_and_not_a_warning() {
4479 // Including the directory of the source file, which is not on the path for these: the
4480 // command line was not written there, so a name in it is relative to where the compiler
4481 // was run rather than to where the source sits.
4482 let tree = TempTree::new(
4483 "preinclude-missing",
4484 &[("sub/a.c", "int main(void) { return 0; }\n"), ("sub/beside.h", "int x;\n")],
4485 );
4486 let code = run(&args(&["-E", "-include", "beside.h", "-o", "-", &tree.path("sub/a.c")]));
4487 assert_eq!(code, 1);
4488 }
4489
4490 #[test]
4491 fn a_command_line_that_links_names_the_executable_and_not_the_object_it_went_through() {
4492 // The object a link goes through is in a temporary directory and is gone before `make`
4493 // reads any of this, so the rule that named it would be a rule for a file that is never
4494 // there. The target and the file are both the `-o`, which is the executable.
4495 let (opts, plan) = compile(&["-MD", "sub/a.c", "-o", "prog"]);
4496 assert_eq!(plan.output.as_deref(), Some("prog"));
4497 assert_eq!(deps::default_target("sub/a.c", deps_target_output(&opts, &plan)), "prog");
4498 assert_eq!(
4499 deps::default_file(&opts.deps, "sub/a.c", plan.output.as_deref()).as_deref(),
4500 Some("prog.d")
4501 );
4502 }
4503
4504 #[test]
4505 fn the_plan_keeps_the_output_name_because_the_rule_is_written_from_it() {
4506 let (_, plan) = compile(&["-MMD", "-c", "sub/a.c", "-o", "obj/x.o"]);
4507 assert_eq!(plan.output.as_deref(), Some("obj/x.o"));
4508 let (_, plan) = compile(&["-MMD", "-c", "sub/a.c"]);
4509 assert_eq!(plan.output, None);
4510 }
4511
4512 #[test]
4513 fn usage_fits_on_a_screen() {
4514 // Not a style preference. A help text that scrolls is one nobody reads, and this is
4515 // the cheapest way to keep it honest as flags accumulate. The number goes up only when
4516 // a family of flags arrives that has nowhere to share a line, which the two pass gates
4517 // were and which the two fuel flags and `-fsafety=` now are, and it goes up by exactly
4518 // the lines that family took. The four it went up by last are the flags a build system
4519 // passes without being asked to: how much to say, what machine to generate for, threads,
4520 // and the questions `configure` asks before it compiles anything. The one it went up by
4521 // last is the second line of `--emit`, whose kinds are a family that has now outgrown
4522 // one line and has nowhere else to go. The two it went up by last are the dependency
4523 // family, which is eight flags that share nothing with anything above them. The one it
4524 // went up by last is the four spellings of position independent code, which every
4525 // configure script writes and which could only have shared the link line, and that line
4526 // is already four characters short of the limit. The two it went up by last are the rest
4527 // of the include family, which is six more flags that change where a header is looked for
4528 // and two that name a header outright. The one it went up by last is the pair that keeps
4529 // the intermediate files and times the steps, which belong next to the two flags above
4530 // them that are also about watching a compilation rather than changing one. The two it
4531 // went up by last are the section flags and the visibility flag, which are what a build
4532 // that cares about the size of what it ships and about which names it exports writes, and
4533 // the second of them was already taken and only missing from here. The one it went up by
4534 // last is the stack protector, which is four spellings of one question and which every
4535 // distribution puts on every command line it issues, so a build that reads this list
4536 // looking for it and does not find it has to go and read the specification instead. The one
4537 // it went up by last is the profiler, which is two spellings of the request and two of
4538 // where the call goes, and which is about watching a program run rather than about what is
4539 // generated, so it shares its subject with nothing above it. The one it went up by last is
4540 // the room a function opens with for something to be written over it later, which takes an
4541 // argument of its own shape and is what a kernel build asks for, so it fits beside the
4542 // profiler and nothing else. The one it went up by last is what overflows rather than being
4543 // undefined, which is three spellings of two questions and which a kernel build and a great
4544 // deal of code written before the standard settled both pass. The one it went up by last is
4545 // the other answer to the first of those questions, which could not share the line because
4546 // what it asks for is the opposite of what the flags on that line ask for. The one it went
4547 // up by last is the split of the line that lists what this compiler does anyway into that
4548 // and what it assumes anyway, which are two different claims that were sharing a line until
4549 // the second of them got a second flag and the line stopped fitting. The one it went up by
4550 // last is the three flags that change the ABI rather than the code, which have to be given
4551 // to every file in a program or none of them and which therefore belong somewhere a person
4552 // reading this list will see them. The one it went up by last is the floating point group,
4553 // which is two lines rather than one because the first of them is a choice this compiler
4554 // records and the rest are claims about what it does anyway, and putting a real setting on
4555 // the same line as three flags that change nothing would be misleading about both. The one
4556 // it went up by last is the flag that says a write has to stay inside the member it names,
4557 // which is a setting rather than a claim and so cannot share the line above it, that being
4558 // the one that picks a tier. The two it went up by last are the prefix mapping family,
4559 // which is four flags whose whole job is to keep a build's output the same from two
4560 // different directories, and which a person chasing a reproducible build comes here
4561 // looking for by name. The one it went up by last is how the debug sections are compressed
4562 // and whether they go in a file of their own, which are two questions about the shape of
4563 // the debug output, where the line above them is about how much of it there is. The one it
4564 // went up by last is the `restrict` contract, which is a setting for the same reason the
4565 // flag that keeps a write inside its member is and which is the check a person who has been
4566 // bitten by a vectorizer comes here looking for. The one it went up by last is link time
4567 // optimization, which is a whole optimization rather than a flag and which says so on its
4568 // own line, because a build that passes it and reads this looking for what it got is
4569 // asking a question no other line here answers. The one it went up by last is the sysroot,
4570 // which is the question somebody asks when a cross build read a file nobody expected, and
4571 // which has no room on the line above it because the answers there are a path each and this
4572 // one is the root all of them are under. The one it went up by last is what is inside that
4573 // root and where each of it came from, which is a question about a whole tree rather than
4574 // about a path and which is long enough on its own that it could not have shared a line with
4575 // anything. The one it went up by last is the profile family, which splits down the middle
4576 // where no other family here does, so the line has to name the half that is taken and the
4577 // half that is refused or it would be read as taking both. The one it went up by last is
4578 // the sanitizers, which are what somebody reaching for a checked build writes first and
4579 // which belong beside the tier that is the nearest thing here to what they asked for.
4580 assert!(USAGE.lines().count() < 69, "usage text has grown past one screen");
4581 }
4582}