rucc_session/lib.rs
1//! The `Session`: the options, the interner and the diagnostic sink that every stage of a
2//! single compilation is handed.
3//!
4//! Design: `spec/03-architecture.md` and `spec/04-driver-and-cli.md`. Layer rank 4, see
5//! `spec/18-package-layout.md`.
6//!
7//! Everything below the driver reaches the outside world through this type and not through
8//! `std::fs`, `std::env` or `println!`. That is the whole reason the compiler can be used as
9//! a library and tested without spawning a process, and it is enforced by the layer rule
10//! rather than by discipline.
11//!
12//! # Status
13//!
14//! Options, optimisation levels, emit kinds, diagnostic counting, the source map every span
15//! is resolved against, the file system the compiler reads through, the include search path
16//! and the headers the compiler itself ships are real. The parallel job model is still a
17//! placeholder.
18//!
19//! This crate is tier 3 in `spec/18-package-layout.md` section 18.5: its Rust API is
20//! explicitly unstable and will change without a major version bump.
21
22#![doc(html_root_url = "https://docs.rs/rucc-session/0.10.16")]
23
24mod fs;
25pub mod runtime;
26
27pub use crate::fs::{Dir, FileSystem, Found, IncludeForm, MemoryFileSystem, SearchPath, path_key};
28
29use std::fmt;
30use std::str::FromStr;
31
32use rucc_base::Interner;
33use rucc_diag::{Diagnostic, Severity, SourceMap};
34use rucc_target::{TargetInfo, Triple};
35
36/// An optimisation level.
37///
38/// `spec/16-performance.md` section 16.4 gives each level a throughput budget and a code
39/// quality budget, and the levels exist to make that tradeoff explicit rather than to be a
40/// dial. There is no `-O4`, because a level nobody can state the contract for is a level
41/// nobody can test.
42#[derive(Debug, Clone, Copy, PartialEq, Eq, PartialOrd, Ord, Hash, Default)]
43pub enum OptLevel {
44 /// `-O0`. Compile as fast as possible and keep every variable inspectable.
45 #[default]
46 O0,
47 /// `-O1`. The cheap wins, at roughly the cost of `-O0`.
48 O1,
49 /// `-O2`. The full pipeline. This is the level the code quality claim is about.
50 O2,
51 /// `-O3`. `-O2` plus the transformations that trade size for speed.
52 O3,
53 /// `-Os`. Optimise for size, at roughly `-O2` compile time.
54 Os,
55 /// `-Oz`. Optimise for size, aggressively.
56 Oz,
57}
58
59impl OptLevel {
60 /// The flag that selects this level.
61 pub const fn as_flag(self) -> &'static str {
62 match self {
63 OptLevel::O0 => "-O0",
64 OptLevel::O1 => "-O1",
65 OptLevel::O2 => "-O2",
66 OptLevel::O3 => "-O3",
67 OptLevel::Os => "-Os",
68 OptLevel::Oz => "-Oz",
69 }
70 }
71
72 /// Whether this level optimises for size rather than speed.
73 pub const fn is_size(self) -> bool {
74 matches!(self, OptLevel::Os | OptLevel::Oz)
75 }
76
77 /// Whether the middle end runs at all.
78 pub const fn runs_optimizer(self) -> bool {
79 !matches!(self, OptLevel::O0)
80 }
81}
82
83impl fmt::Display for OptLevel {
84 fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
85 f.write_str(self.as_flag())
86 }
87}
88
89impl FromStr for OptLevel {
90 type Err = ();
91
92 /// Parses the part after `-O`, so `""` is `-O` which GCC treats as `-O1`.
93 fn from_str(s: &str) -> Result<Self, ()> {
94 Ok(match s {
95 "0" => OptLevel::O0,
96 "" | "1" => OptLevel::O1,
97 "2" => OptLevel::O2,
98 // GCC accepts `-O4` and above and treats them as `-O3`. Build systems in the
99 // wild do pass them, so matching that is cheaper than being right.
100 "3" | "4" | "5" | "6" | "7" | "8" | "9" => OptLevel::O3,
101 "s" => OptLevel::Os,
102 "z" => OptLevel::Oz,
103 _ => return Err(()),
104 })
105 }
106}
107
108/// How much of the memory safety monitor is on, from `-fsafety=`.
109///
110/// Design: `spec/safe-memory/15-integration.md` section 15.4. One flag rather than a plane at a
111/// time, because the tiers of `spec/safe-memory/02-threat-model.md` are the product and the
112/// modifiers are how somebody who has read that document departs from one.
113///
114/// The tiers agree about which accesses are checked and disagree about what happens when a check
115/// says no and about how much of the boundary is covered. That is why they are one value here and
116/// not three booleans: a build asks for a tier, and everything else follows from it.
117#[derive(Debug, Clone, Copy, PartialEq, Eq, PartialOrd, Ord, Hash, Default)]
118pub enum Safety {
119 /// `-fsafety=off`. No checks and no runtime. The default, and what every existing build gets.
120 #[default]
121 Off,
122 /// `-fsafety=detect`. Tier D: report and carry on, for a test run or a fuzzer.
123 Detect,
124 /// `-fsafety=enforce`. Tier E: report and stop, for a program that faces the network.
125 Enforce,
126 /// `-fsafety=kernel`. Tier K: what a kernel can afford, with the allocator and the libc
127 /// wrappers taken out because a kernel has neither.
128 Kernel,
129}
130
131impl Safety {
132 /// The spelling this tier is asked for by, without the flag in front of it.
133 pub const fn as_str(self) -> &'static str {
134 match self {
135 Safety::Off => "off",
136 Safety::Detect => "detect",
137 Safety::Enforce => "enforce",
138 Safety::Kernel => "kernel",
139 }
140 }
141
142 /// Whether checks are inserted at all.
143 ///
144 /// The three tiers that are not `off` all insert the same checks at this milestone. What
145 /// separates them is the reporter and the boundary, which are milestones S2 and S3 in
146 /// `spec/safe-memory/16-milestones.md`.
147 pub const fn instruments(self) -> bool {
148 !matches!(self, Safety::Off)
149 }
150}
151
152impl fmt::Display for Safety {
153 fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
154 f.write_str(self.as_str())
155 }
156}
157
158impl FromStr for Safety {
159 type Err = ();
160
161 /// Parses the part after `-fsafety=`.
162 fn from_str(s: &str) -> Result<Self, ()> {
163 Ok(match s {
164 "off" => Safety::Off,
165 "detect" => Safety::Detect,
166 "enforce" => Safety::Enforce,
167 "kernel" => Safety::Kernel,
168 _ => return Err(()),
169 })
170 }
171}
172
173/// How far a name reaches outside a shared library when nothing in the source said.
174///
175/// `-fvisibility=`, which is written on every cmake project that cares about its exports and is
176/// the way a library ships a small documented interface instead of every name it happens to
177/// define. The attribute in the source wins wherever one was written, which is what makes the
178/// flag a default rather than an override and what lets `-fvisibility=hidden` be put on a whole
179/// tree and the dozen exported names marked one at a time.
180///
181/// Three answers to four spellings. `internal` is `hidden` plus a promise about never taking the
182/// address across a component boundary, and nothing here derives anything from that promise, so
183/// what it gets is the same symbol with a weaker claim on it.
184#[derive(Debug, Clone, Copy, PartialEq, Eq, PartialOrd, Ord, Hash, Default)]
185pub enum Visibility {
186 /// `-fvisibility=default`. Exported and interposable, which is what a name gets when the flag
187 /// is not written at all and what gcc does by default too.
188 #[default]
189 Default,
190 /// `-fvisibility=hidden` and `-fvisibility=internal`. Not in the dynamic symbol table.
191 Hidden,
192 /// `-fvisibility=protected`. In the dynamic symbol table, and a reference from inside the
193 /// library binds to the definition inside it.
194 Protected,
195}
196
197impl Visibility {
198 /// The spelling this is asked for by, without the flag in front of it.
199 ///
200 /// One spelling each, so `internal` is not here: it is a way of asking for `hidden` rather
201 /// than an answer of its own.
202 pub const fn as_str(self) -> &'static str {
203 match self {
204 Visibility::Default => "default",
205 Visibility::Hidden => "hidden",
206 Visibility::Protected => "protected",
207 }
208 }
209}
210
211impl fmt::Display for Visibility {
212 fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
213 f.write_str(self.as_str())
214 }
215}
216
217impl FromStr for Visibility {
218 type Err = ();
219
220 /// Parses the part after `-fvisibility=`.
221 fn from_str(s: &str) -> Result<Self, ()> {
222 Ok(match s {
223 "default" => Visibility::Default,
224 "hidden" | "internal" => Visibility::Hidden,
225 "protected" => Visibility::Protected,
226 _ => return Err(()),
227 })
228 }
229}
230
231/// Which functions get a stack protector, which is what the `-fstack-protector` family asks.
232///
233/// A canary is a word the prologue copies into the frame above everything a local can be written
234/// through, and the epilogue compares it against the copy the runtime still holds before it
235/// returns. A write that runs off the end of a local and keeps going passes the canary on its way
236/// to the return address, so a function that returns with the word changed calls
237/// `__stack_chk_fail` instead of returning at all.
238///
239/// Which functions are worth the slot and the comparison is what the three levels disagree about,
240/// and the middle one is the one that matters: every distribution has built its packages with
241/// `-fstack-protector-strong` for a decade, so a compiler that cannot take the flag cannot be the
242/// `CC` of a package build whatever else it can do.
243#[derive(Debug, Clone, Copy, PartialEq, Eq, PartialOrd, Ord, Hash, Default)]
244pub enum Protector {
245 /// `-fno-stack-protector`, and what a command line that says nothing gets. gcc's own default
246 /// is the same, and it is the distributions rather than the compiler that turn it on.
247 #[default]
248 None,
249 /// `-fstack-protector`. A function with a local array of at least eight bytes, or one whose
250 /// stack grows while it runs.
251 Buffers,
252 /// `-fstack-protector-strong`. Any of those, and any function with a local array at all, a
253 /// local holding one, or a local whose address is taken.
254 Strong,
255 /// `-fstack-protector-all`. Every function that has a frame.
256 All,
257}
258
259/// What overflows rather than being undefined, from `-fwrapv` and its relatives.
260///
261/// C says a signed addition that overflows and a pointer that walks off the end of the object it
262/// points into are both undefined, and an optimizer that believes it reads a great deal into every
263/// loop: that a counter going up one at a time never turns round, that an index widened to an
264/// address may be widened before the arithmetic rather than after, that a bound is reached. These
265/// flags withdraw exactly that. They do not make the program mean something else, they make it mean
266/// less, and the code that asks for them is code that overflows on purpose and wants the answer the
267/// machine gives rather than the answer the standard declines to give.
268///
269/// Two of them because gcc has two, and a build that wants one usually wants the other. Signed
270/// arithmetic and pointer arithmetic are separate assumptions and a kernel turns both off.
271#[derive(Debug, Clone, Copy, PartialEq, Eq, Default)]
272pub struct Wrapping {
273 /// Whether signed arithmetic wraps, from `-fwrapv`.
274 pub signed: bool,
275 /// Whether pointer arithmetic wraps, from `-fwrapv-pointer`.
276 pub pointer: bool,
277}
278
279impl Wrapping {
280 /// Both of them, which is what `-fno-strict-overflow` asks for.
281 ///
282 /// gcc says so itself: its help text for `-fstrict-overflow` reads "negated as `-fwrapv`
283 /// `-fwrapv-pointer`", so the older flag is a name for the pair rather than a third knob.
284 pub const ALL: Self = Self { signed: true, pointer: true };
285
286 /// Neither, which is the default and what `-fstrict-overflow` asks for.
287 pub const NONE: Self = Self { signed: false, pointer: false };
288}
289
290impl Protector {
291 /// The spelling this is asked for by, which is the whole flag rather than a part of one,
292 /// because these are four flags and not one flag with an argument.
293 pub const fn as_str(self) -> &'static str {
294 match self {
295 Protector::None => "-fno-stack-protector",
296 Protector::Buffers => "-fstack-protector",
297 Protector::Strong => "-fstack-protector-strong",
298 Protector::All => "-fstack-protector-all",
299 }
300 }
301}
302
303impl fmt::Display for Protector {
304 fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
305 f.write_str(self.as_str())
306 }
307}
308
309/// Which control flow transfers are checked, which is what `-fcf-protection=` asks.
310///
311/// Two mechanisms and one flag, because the hardware turns them on together and a program built
312/// for one and not the other is a program with a hole in whichever half was left out. The forward
313/// edge is an indirect call or jump, and it is checked by a landing pad at every address one is
314/// allowed to arrive at, so a corrupted function pointer reaches somewhere somebody meant rather
315/// than any byte of the program. The backward edge is a return, and it is checked against a second
316/// copy of the return address the program cannot write to, which needs no instructions at all: the
317/// machine keeps the copy and the loader turns it on.
318///
319/// Which is why the marker matters as much as the code. An object says in a note which halves it
320/// was built for, the linker takes the intersection over every input, and the loader turns on what
321/// survives. One object built without the note is enough to turn the whole program's protection
322/// off, so the note goes in even for a mode that changes no instruction.
323#[derive(Debug, Clone, Copy, PartialEq, Eq, PartialOrd, Ord, Hash, Default)]
324pub enum Control {
325 /// `-fcf-protection=none` and `-fno-cf-protection`, and what a command line that says nothing
326 /// gets. gcc's own default is the same on the targets this compiler has a back end for.
327 #[default]
328 None,
329 /// `-fcf-protection=branch`. The forward edge alone: a landing pad at every function, and a
330 /// note that asks for the check on indirect transfers and not on returns.
331 Branch,
332 /// `-fcf-protection=return`. The backward edge alone, which is the note and nothing else,
333 /// since the copy of the return address is the machine's own and no instruction maintains it.
334 Return,
335 /// `-fcf-protection=full`, and what the bare `-fcf-protection` means. Both halves.
336 Full,
337 /// `-fcf-protection=check`. Asks that the compilation be checked for compatibility with the
338 /// mode rather than built in it, so nothing is instrumented and no note is written, which is
339 /// exactly what gcc emits for it.
340 Check,
341}
342
343impl Control {
344 /// Whether a landing pad goes at the top of every function.
345 #[must_use]
346 pub const fn branch(self) -> bool {
347 matches!(self, Control::Branch | Control::Full)
348 }
349
350 /// Whether returns are asked to be checked against the machine's own copy.
351 #[must_use]
352 pub const fn ret(self) -> bool {
353 matches!(self, Control::Return | Control::Full)
354 }
355
356 /// Whether anything at all is asked for, which is what decides whether the file says what it
357 /// was built for.
358 ///
359 /// False for the two modes that build nothing. [`Control::None`] asks for nothing and
360 /// [`Control::Check`] asks that the compilation be looked at rather than changed, and gcc
361 /// writes no note for either.
362 #[must_use]
363 pub const fn any(self) -> bool {
364 self.branch() || self.ret()
365 }
366
367 /// What the argument was spelled as, which is the part after the equals sign.
368 pub const fn as_str(self) -> &'static str {
369 match self {
370 Control::None => "none",
371 Control::Branch => "branch",
372 Control::Return => "return",
373 Control::Full => "full",
374 Control::Check => "check",
375 }
376 }
377}
378
379impl fmt::Display for Control {
380 fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
381 f.write_str(self.as_str())
382 }
383}
384
385impl FromStr for Control {
386 type Err = ();
387
388 /// Parses the part after `-fcf-protection=`.
389 fn from_str(s: &str) -> Result<Self, ()> {
390 Ok(match s {
391 "none" => Control::None,
392 "branch" => Control::Branch,
393 "return" => Control::Return,
394 "full" => Control::Full,
395 "check" => Control::Check,
396 _ => return Err(()),
397 })
398 }
399}
400
401/// Where the call `-pg` puts at the top of every function goes, which `-mfentry` chooses.
402///
403/// Two conventions for one job, and the difference is what the hook can see when it runs. See
404/// [`rucc_target::Trace`] for what each of them is and why a kernel needs the earlier one.
405///
406/// A third answer, because a command line that named neither has not asked a question: the
407/// platform's own answer is the one it gets, and that is a fact about the target rather than about
408/// the flags, so it is settled where the target is known and not here.
409#[derive(Debug, Clone, Copy, PartialEq, Eq, PartialOrd, Ord, Hash, Default)]
410pub enum Hook {
411 /// Whichever the platform puts first, which is what a command line that said neither gets.
412 #[default]
413 Platform,
414 /// `-mfentry`. In front of the prologue, so the return address is the top thing on the stack
415 /// and the arguments are still where the call left them.
416 Early,
417 /// `-mno-fentry`. Once the frame is taken, so the hook can walk back through the frame pointer,
418 /// which is why a function that has this one is given a frame pointer whatever else was said.
419 Late,
420}
421
422impl Hook {
423 /// That answer as it is written on a command line, which is what `--print-config` reports.
424 #[must_use]
425 pub const fn as_str(self) -> &'static str {
426 match self {
427 Hook::Platform => "platform",
428 Hook::Early => "fentry",
429 Hook::Late => "mcount",
430 }
431 }
432
433 /// Whether the call goes in front of the prologue, given what the platform puts first.
434 #[must_use]
435 pub const fn early(self, fentry: bool) -> bool {
436 match self {
437 Hook::Platform => fentry,
438 Hook::Early => true,
439 Hook::Late => false,
440 }
441 }
442}
443
444impl fmt::Display for Hook {
445 fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
446 f.write_str(self.as_str())
447 }
448}
449
450/// How much room at the top of every function is reserved for somebody to write over later, which
451/// `-fpatchable-function-entry=` asks for.
452///
453/// Room rather than instructions. What goes there is a run of the shortest instruction the machine
454/// has that does nothing, and the point of them is that they are never executed for long: a tracer
455/// or a live patcher overwrites them with a jump or a call once the program is running, and what it
456/// needs from the compiler is a known address, a known number of bytes, and a promise that nothing
457/// in the function jumps into the middle of them.
458///
459/// Two numbers because the room can be on either side of the function's own label, and the two
460/// sides are not the same thing. Room after the label is room inside the function, which is what a
461/// patcher that redirects a call into the function wants. Room in front of the label is outside it,
462/// so what goes there is reached only by something that already knows the address, and a patcher
463/// that wants somewhere to put a whole instruction it can reach from the first one needs it.
464///
465/// The address recorded for the function is the start of the room, which is the front of the part
466/// before the label when there is one and the front of the part after it when there is not.
467#[derive(Debug, Clone, Copy, PartialEq, Eq, PartialOrd, Ord, Hash, Default)]
468pub struct Patchable {
469 /// How many bytes in total, which is the first number and the one a command line must give.
470 pub total: u32,
471 /// How many of them go in front of the function's own label, which is the second number and is
472 /// zero on a command line that gave one number.
473 pub before: u32,
474}
475
476impl Patchable {
477 /// Whether any room at all was asked for, which is what decides whether a function gets a
478 /// record.
479 ///
480 /// `=0` is a command line that asked for none, and gcc accepts it and writes nothing, so the
481 /// question is about the number rather than about whether the flag was written.
482 #[must_use]
483 pub const fn any(self) -> bool {
484 self.total > 0
485 }
486
487 /// How many bytes go after the function's own label, which is the rest of them.
488 #[must_use]
489 pub const fn after(self) -> u32 {
490 self.total - self.before
491 }
492}
493
494impl FromStr for Patchable {
495 type Err = ();
496
497 /// Parses the part after `-fpatchable-function-entry=`, which is a number or two of them.
498 ///
499 /// A second number larger than the first is refused rather than clamped, because it asks for
500 /// more room in front of the label than there is room at all and there is no reading of that a
501 /// caller meant. So is a third, and so is anything that is not a number, which is what gcc does
502 /// with each of them.
503 fn from_str(s: &str) -> Result<Self, ()> {
504 let (total, before) = match s.split_once(',') {
505 Some((total, before)) => (total, before),
506 None => (s, "0"),
507 };
508 let total: u32 = total.parse().map_err(|_| ())?;
509 let before: u32 = before.parse().map_err(|_| ())?;
510 if before > total {
511 return Err(());
512 }
513 Ok(Patchable { total, before })
514 }
515}
516
517impl fmt::Display for Patchable {
518 /// Written the way it was asked for, which is one number when the second is zero.
519 ///
520 /// Not because the two forms mean different things, they do not, but because that is the form
521 /// a command line reaching for this feature writes and reading back what was written is what
522 /// `--print-config` is for.
523 fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
524 match self.before {
525 0 => write!(f, "{}", self.total),
526 before => write!(f, "{},{before}", self.total),
527 }
528 }
529}
530
531/// Which of the two position independent questions the output is answering.
532///
533/// Everything this compiler writes is position independent, so this is not about whether there are
534/// absolute addresses in the text. It is about whether the link that reads the object is one that
535/// puts every name in the same program. An executable is such a link and a shared library is not,
536/// and the difference decides how a name is reached: from the instruction pointer where the
537/// distance is a number the linker has, and out of the global offset table where it is not.
538///
539/// The expensive answer is the one that has to be asked for, which is gcc's arrangement and is why
540/// `-fPIC` is on the compile line of every library and nowhere else. A name is only reached the
541/// expensive way when it is one another object may define or replace, so `-fPIC -fvisibility=hidden`
542/// costs no more than an executable does.
543#[derive(Debug, Clone, Copy, PartialEq, Eq, PartialOrd, Ord, Hash, Default)]
544pub enum Pic {
545 /// `-fPIE`, `-fpie` and nothing at all. The link puts every name in one program, so a name this
546 /// file defines is at a distance from the instruction asking, and a name it declares ends up at
547 /// one too, because the linker answers a reference to a variable defined in a library by making
548 /// room for it here and copying it. That is what a distribution's default build is.
549 #[default]
550 Executable,
551 /// `-fPIC` and `-fpic`. The output may end up in a shared library, where a name the file
552 /// exports is one something loaded earlier may define too, and where a name defined elsewhere
553 /// is not copied in. Both are reached through the global offset table.
554 Library,
555}
556
557impl Pic {
558 /// The spelling this is asked for by, which is the one gcc's manual leads with.
559 pub const fn as_str(self) -> &'static str {
560 match self {
561 Pic::Executable => "-fPIE",
562 Pic::Library => "-fPIC",
563 }
564 }
565}
566
567impl fmt::Display for Pic {
568 fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
569 f.write_str(self.as_str())
570 }
571}
572
573/// What the compiler should produce.
574///
575/// The intermediate forms are not a debugging convenience bolted on later. Every one of them
576/// is a documented textual form that round-trips, which is what makes the per-stage testing
577/// in `spec/15-testing.md` section 15.2 possible.
578#[derive(Debug, Clone, Copy, PartialEq, Eq, Hash, Default)]
579// Deliberately not `#[non_exhaustive]`. Adding a variant here has to break every
580// match that needs to change, in this workspace and in anyone else's code. That is
581// the property `spec/10-backend.md` section 10.8 is claiming when it says adding a
582// target is a data change: the compiler tells you every place the data is read.
583pub enum EmitKind {
584 /// A linked executable. The default.
585 #[default]
586 Executable,
587 /// An object file, `-c`.
588 Object,
589 /// Assembly text, `-S`.
590 Asm,
591 /// Preprocessed source, `-E`.
592 Preprocessed,
593 /// The typed AST, `--emit=tast`.
594 Tast,
595 /// The IR, `--emit=ir`.
596 Ir,
597 /// The machine IR after register allocation, `--emit=mir-final`.
598 MirFinal,
599 /// The safety summary, `--emit=safety-summary`.
600 ///
601 /// Not an intermediate form of the program the way the three above are. It is the answer to
602 /// "what does this build's guarantee actually rest on", which
603 /// `spec/safe-memory/07-check-elimination.md` section 7.8 asks for and
604 /// `spec/safe-memory/10-boundaries.md` section 10.2 says why.
605 SafetySummary,
606 /// How the bytes of the translation unit's records fall into granules,
607 /// `--emit=type-granules`.
608 ///
609 /// Not an intermediate form either. It is the measurement
610 /// `spec/safe-memory/17-open-questions.md` question 6 asks for, which decides whether the
611 /// type plane fits inside Tier D's memory budget, and it needs nothing past the type
612 /// checker because it is a question about layouts rather than about code.
613 TypeGranules,
614}
615
616impl EmitKind {
617 /// The name used by `--emit=` and by `--print-config`.
618 pub const fn as_str(self) -> &'static str {
619 match self {
620 EmitKind::Executable => "exe",
621 EmitKind::Object => "obj",
622 EmitKind::Asm => "asm",
623 EmitKind::Preprocessed => "preprocessed",
624 EmitKind::Tast => "tast",
625 EmitKind::Ir => "ir",
626 EmitKind::MirFinal => "mir-final",
627 EmitKind::SafetySummary => "safety-summary",
628 EmitKind::TypeGranules => "type-granules",
629 }
630 }
631}
632
633impl FromStr for EmitKind {
634 type Err = ();
635
636 fn from_str(s: &str) -> Result<Self, ()> {
637 Ok(match s {
638 "exe" => EmitKind::Executable,
639 "obj" => EmitKind::Object,
640 "asm" => EmitKind::Asm,
641 "preprocessed" => EmitKind::Preprocessed,
642 "tast" => EmitKind::Tast,
643 "ir" => EmitKind::Ir,
644 "mir-final" => EmitKind::MirFinal,
645 "safety-summary" => EmitKind::SafetySummary,
646 "type-granules" => EmitKind::TypeGranules,
647 _ => return Err(()),
648 })
649 }
650}
651
652/// Which C the source is written in.
653///
654/// The GNU variants are the same language with `__STRICT_ANSI__` left undefined, so the
655/// dialect and the extension question are two fields rather than ten variants.
656#[derive(Debug, Clone, Copy, PartialEq, Eq, PartialOrd, Ord, Hash, Default)]
657pub enum Std {
658 /// `-std=c89`, and `-ansi`.
659 C89,
660 /// `-std=c99`.
661 C99,
662 /// `-std=c11`.
663 C11,
664 /// `-std=c17`, which is C11 with the defect reports applied.
665 C17,
666 /// `-std=c23`. The default, matching current GCC.
667 #[default]
668 C23,
669}
670
671impl Std {
672 /// What `__STDC_VERSION__` says, which C89 does not define at all.
673 pub const fn stdc_version(self) -> Option<&'static str> {
674 match self {
675 Std::C89 => None,
676 Std::C99 => Some("199901L"),
677 Std::C11 => Some("201112L"),
678 Std::C17 => Some("201710L"),
679 Std::C23 => Some("202311L"),
680 }
681 }
682
683 /// The name in `-std=`.
684 pub const fn as_str(self) -> &'static str {
685 match self {
686 Std::C89 => "c89",
687 Std::C99 => "c99",
688 Std::C11 => "c11",
689 Std::C17 => "c17",
690 Std::C23 => "c23",
691 }
692 }
693
694 /// Whether this dialect has `_Atomic`, `_Thread_local` and the rest of C11.
695 pub const fn has_c11(self) -> bool {
696 matches!(self, Std::C11 | Std::C17 | Std::C23)
697 }
698
699 /// Reads a `-std=` argument, and says whether the GNU extensions came with it.
700 ///
701 /// Every alias GCC takes is here, including the `iso9899` spellings and the year based
702 /// ones, because a build system that passes `-std=iso9899:1999` is passing what its
703 /// author tested against and rejecting it helps nobody. An unknown dialect is `None`
704 /// rather than a guess, since guessing means compiling a different language than the one
705 /// asked for.
706 #[must_use]
707 pub fn from_flag(name: &str) -> Option<(Std, bool)> {
708 let gnu = name.starts_with("gnu");
709 let std = match name {
710 "c89" | "c90" | "gnu89" | "gnu90" | "iso9899:1990" | "iso9899:199409" => Std::C89,
711 "c99" | "c9x" | "gnu99" | "gnu9x" | "iso9899:1999" | "iso9899:199x" => Std::C99,
712 "c11" | "c1x" | "gnu11" | "gnu1x" | "iso9899:2011" => Std::C11,
713 "c17" | "c18" | "gnu17" | "gnu18" | "iso9899:2017" | "iso9899:2018" => Std::C17,
714 "c23" | "c2x" | "gnu23" | "gnu2x" => Std::C23,
715 _ => return None,
716 };
717 Some((std, gnu))
718 }
719}
720
721/// The GCC release the compiler claims to be, as `__GNUC__`, `__GNUC_MINOR__` and
722/// `__GNUC_PATCHLEVEL__`.
723///
724/// Design: `spec/04-driver-and-cli.md` section 4.5, which makes this a knob rather than a
725/// constant and says to start conservative and raise it as the matrix in `rucc-gnu` fills in.
726///
727/// The default is seven, which is the lowest claim that gets a modern glibc. glibc gates most
728/// of what it hands a caller on `__GNUC_PREREQ`, so the claim decides which half of
729/// `sys/cdefs.h` we get, and below seven `bits/floatn-common.h` writes `typedef float _Float32;`
730/// over a keyword this compiler already has. Every header that reaches it stops there, which
731/// was most of them: on Ubuntu 24.04's glibc 2.39 the claim of 4.2.1 that stood here before got
732/// 180 of 214 headers through and seven gets 202, and the amalgamated sqlite goes from four
733/// errors to none.
734///
735/// It is still deliberately low. Claiming a version whose promises have not been kept means
736/// being handed syntax the compiler cannot parse, so this moves when there is a measurement
737/// saying it can. Thirteen and sixteen were measured alongside seven and came out identical on
738/// glibc, on the macOS SDK and on sqlite, so the next move up is cheap; it is a separate one
739/// because nothing yet needs it.
740#[derive(Debug, Clone, Copy, PartialEq, Eq, PartialOrd, Ord, Hash)]
741pub struct GnucVersion {
742 /// `__GNUC__`.
743 pub major: u32,
744 /// `__GNUC_MINOR__`.
745 pub minor: u32,
746 /// `__GNUC_PATCHLEVEL__`.
747 pub patch: u32,
748}
749
750impl Default for GnucVersion {
751 fn default() -> GnucVersion {
752 GnucVersion { major: 7, minor: 0, patch: 0 }
753 }
754}
755
756impl FromStr for GnucVersion {
757 type Err = String;
758
759 /// Reads `-fgnuc-version=`, which is `15`, `15.1` or `15.1.0`.
760 ///
761 /// The short forms are not a convenience, they are what people write. A missing component
762 /// is zero, the same way GCC treats a release with no patchlevel.
763 fn from_str(text: &str) -> Result<GnucVersion, String> {
764 let mut parts = text.split('.');
765 let mut next = |what: &str| -> Result<u32, String> {
766 match parts.next() {
767 None => Ok(0),
768 Some(field) => {
769 field.parse().map_err(|_| format!("`{text}` has a {what} that is not a number"))
770 }
771 }
772 };
773 let major = next("major")?;
774 let minor = next("minor")?;
775 let patch = next("patchlevel")?;
776 if parts.next().is_some() {
777 return Err(format!("`{text}` has more than three components"));
778 }
779 Ok(GnucVersion { major, minor, patch })
780 }
781}
782
783/// What the `-d` family asks to be dumped alongside, or instead of, the preprocessed output.
784///
785/// Design: `spec/04-driver-and-cli.md` section 4.4.
786///
787/// GCC spells these as letters packed into one flag, so `-dDI` is two of them, and a letter it
788/// does not know is ignored rather than rejected. That last part is deliberate on GCC's side
789/// and worth copying: the family is a debugging aid and a build that passes `-dumpbase` should
790/// not die on the `-d`.
791#[derive(Debug, Clone, Copy, PartialEq, Eq, Default)]
792pub struct Dumps {
793 /// `-dM`. Print the macros that are defined at the end, and nothing else.
794 pub macros: bool,
795}
796
797impl Dumps {
798 /// The letters GCC's preprocessor takes after `-d`.
799 ///
800 /// `M` is the macros, `D` is the macros in place, `N` is their names only, `I` is the
801 /// `#include` lines and `U` is the macros as they are used. Only `M` does anything so far.
802 const LETTERS: &'static str = "MDNIU";
803
804 /// Whether `arg` is a flag from this family rather than something else beginning with
805 /// `-d`.
806 ///
807 /// The check is here rather than in the driver so that the set of letters and the set of
808 /// flags accepted cannot drift apart. It matters because `-dumpversion` also begins with
809 /// `-d`, and a family that swallowed every such flag would turn a flag we have not written
810 /// into a dump of nothing.
811 #[must_use]
812 pub fn is_family(arg: &str) -> bool {
813 match arg.strip_prefix("-d") {
814 Some("") | None => false,
815 Some(letters) => letters.chars().all(|c| Dumps::LETTERS.contains(c)),
816 }
817 }
818
819 /// Reads the letters after `-d`, ignoring the ones we do not implement yet.
820 pub fn add(&mut self, letters: &str) {
821 for letter in letters.chars() {
822 if letter == 'M' {
823 self.macros = true;
824 }
825 }
826 }
827
828 /// Whether anything at all was asked for.
829 #[must_use]
830 pub const fn any(self) -> bool {
831 self.macros
832 }
833}
834
835/// A file `-imacros` or `-include` named, read before the source file.
836///
837/// Design: `spec/04-driver-and-cli.md` section 4.4.
838///
839/// The flag a build reaches for when a whole tree has to see a definition that is not in any of
840/// its files. The kernel builds every object with `-include` of its own configuration header, and
841/// a configure script that has produced a `config.h` gets it into a third party source tree the
842/// same way, without a patch.
843#[derive(Debug, Clone, PartialEq, Eq)]
844pub struct Preinclude {
845 /// The name as it was written, which is looked for the way a quoted include is looked for.
846 pub name: String,
847 /// Whether only the definitions it makes are wanted, which is what `-imacros` asks for.
848 ///
849 /// The text of an `-imacros` file is read and thrown away, so a header full of declarations
850 /// contributes its macros and nothing else. That is what makes it usable on a file that has
851 /// already been included by the source: the definitions arrive early and the declarations do
852 /// not arrive twice.
853 pub macros_only: bool,
854}
855
856/// What the `-M` family asks for, which is a make rule saying what a source file was built from.
857///
858/// Design: `spec/04-driver-and-cli.md` section 4.4.
859///
860/// This is a compiler flag rather than a separate tool because the answer is the set of files the
861/// preprocessor opened, and nothing outside the preprocessor knows what that was. A build system
862/// that generates its own makefiles asks for it on every compilation, which is why section 4.4
863/// calls the family required rather than convenient.
864#[derive(Debug, Clone, PartialEq, Eq)]
865pub struct Deps {
866 /// Whether a rule is produced at all, which is any of `-M`, `-MM`, `-MD` and `-MMD`.
867 pub emit: bool,
868 /// Whether the rule is produced instead of compiling, which is `-M` and `-MM` and not the
869 /// two that end in `D`.
870 ///
871 /// The split is GCC's and it is about who reads the answer. The two that stop after the rule
872 /// write it to standard output for a person, and the two that do not write it to a file
873 /// beside the object for `make` to include on the next run.
874 pub instead_of_compiling: bool,
875 /// Whether a header found in a system directory is listed, which `-MM` and `-MMD` turn off.
876 ///
877 /// A build that lists them is a build that rebuilds the world when the C library is updated,
878 /// which is either what somebody wanted or the reason they reached for the other spelling.
879 ///
880 /// On unless a flag turned it off, and nothing turns it back on. That is GCC's behaviour and
881 /// not an oversight: `-MM -M` leaves the system headers out, because the flag that asks for
882 /// fewer of them is read as the answer to a question the other one never asked.
883 pub system_headers: bool,
884 /// Where the rule is written, from `-MF`, with `-` meaning standard output.
885 ///
886 /// `None` is the default, which is standard output when the rule replaces the compilation and
887 /// the output file with a `.d` suffix when it does not.
888 pub file: Option<String>,
889 /// What the rule's targets are, from `-MT` and `-MQ`, in the order they were given.
890 ///
891 /// Already escaped, because that is the whole of the difference between the two flags: `-MQ`
892 /// escapes what it is given and `-MT` writes it through untouched. Empty means the target is
893 /// worked out from the output file, which is what a build that passes neither expects.
894 pub targets: Vec<String>,
895 /// Whether every prerequisite except the source gets a target of its own with no recipe,
896 /// from `-MP`.
897 ///
898 /// This is what stops `make` failing outright when a header is deleted. Without it the old
899 /// rule names a file that is gone and no rule makes it, and the build stops on a header that
900 /// nothing needs any more.
901 pub phony: bool,
902}
903
904impl Default for Deps {
905 fn default() -> Deps {
906 Deps {
907 emit: false,
908 instead_of_compiling: false,
909 system_headers: true,
910 file: None,
911 targets: Vec::new(),
912 phony: false,
913 }
914 }
915}
916
917/// Whether `-save-temps` was given and where it puts the files it keeps.
918///
919/// Design: `spec/04-driver-and-cli.md` section 4.10.
920///
921/// The flag is how a build gets at the preprocessed source of the file that failed without running
922/// the compiler a second time under different flags, which is the one way to be sure the text being
923/// read is the text that was compiled. A bug report against a compiler is usually a preprocessed
924/// file and nothing else, and this is where that file comes from.
925#[derive(Debug, Clone, Copy, PartialEq, Eq, Default)]
926pub enum SaveTemps {
927 /// Not asked for, and nothing is kept.
928 #[default]
929 No,
930 /// Beside the file the compilation produced, which is `-save-temps=obj`.
931 ///
932 /// This is what the bare `-save-temps` does as well. GCC's manual says the bare spelling is
933 /// `-save-temps=cwd`, and gcc 16 does not do that: `-save-temps -c a.c -o out/a.o` leaves
934 /// `out/a.i` and `out/a.s` rather than `a.i` and `a.s`. The measurement is what is followed
935 /// here, because a build that reads the manual and a build that reads the compiler both end up
936 /// looking for the files where the compiler put them.
937 Object,
938 /// In the working directory, which is `-save-temps=cwd`.
939 Cwd,
940}
941
942impl SaveTemps {
943 /// Whether anything is kept at all.
944 #[must_use]
945 pub const fn wanted(self) -> bool {
946 !matches!(self, SaveTemps::No)
947 }
948}
949
950impl FromStr for SaveTemps {
951 type Err = String;
952
953 /// Reads what came after the `=`, which is the only part that varies.
954 ///
955 /// # Errors
956 ///
957 /// Returns the offending word. GCC treats an unknown one as fatal rather than ignoring it,
958 /// which is right: a misspelled keyword here means the files a person went looking for are not
959 /// written and nothing said so.
960 fn from_str(s: &str) -> Result<SaveTemps, String> {
961 match s {
962 "obj" => Ok(SaveTemps::Object),
963 "cwd" => Ok(SaveTemps::Cwd),
964 _ => Err(format!("`{s}` is not a -save-temps option; accepted: cwd, obj")),
965 }
966 }
967}
968
969/// Everything a compilation was asked to do.
970///
971/// Options are a plain value with no interior mutability, so a caller can build one, clone
972/// it, tweak one field and run a second compilation, which is exactly what the differential
973/// testing in `spec/15-testing.md` needs.
974#[derive(Debug, Clone, PartialEq, Eq)]
975#[non_exhaustive]
976pub struct Options {
977 /// The target to generate code for.
978 pub target: Triple,
979 /// The optimisation level.
980 pub opt_level: OptLevel,
981 /// How much of the memory safety monitor is on, from `-fsafety=`.
982 ///
983 /// Off unless it was asked for. A program built without the flag is compiled by exactly the
984 /// pipeline it was compiled by before the monitor existed, which is the only way the feature
985 /// can be developed in the open without every build paying for it.
986 pub safety: Safety,
987 /// What to produce.
988 pub emit: EmitKind,
989 /// Whether to emit debug information.
990 pub debug_info: bool,
991 /// Whether every function keeps a frame pointer, from `-fno-omit-frame-pointer`.
992 ///
993 /// Off by default, which is what gcc does at every level above `-O0` and what leaves the
994 /// register free for the allocator. A profiler that walks the stack by following saved frame
995 /// pointers needs it on, and so does any code a debugger has to unwind without unwind tables.
996 pub frame_pointer: bool,
997 /// Whether the red zone may be used, from `-mno-red-zone` turned around.
998 ///
999 /// The 128 bytes below the stack pointer that the System V psABI promises no signal handler
1000 /// will touch, which lets a small leaf function keep its locals without moving the stack
1001 /// pointer at all. A kernel turns this off, because an interrupt taken on the kernel stack
1002 /// makes the promise false, and every kernel build in the wild passes `-mno-red-zone` for
1003 /// exactly that reason. A convention without a red zone ignores this.
1004 pub red_zone: bool,
1005 /// Which functions get a stack protector, from the `-fstack-protector` family.
1006 pub protector: Protector,
1007 /// Whether a prologue takes its frame a page at a time, from `-fstack-clash-protection`.
1008 ///
1009 /// An operating system leaves one page unmapped below every stack so that a stack growing
1010 /// into it faults. A function whose frame is larger than that page moves the stack pointer
1011 /// clean over it in one subtraction and can then write below it, into whatever the program
1012 /// mapped next, which is a way of reaching one allocation from another that costs an attacker
1013 /// nothing but a large local array. A prologue that takes the frame a page at a time and
1014 /// writes to each page as it arrives faults on the first one that is not there.
1015 ///
1016 /// Off by default, which is gcc's default. Distributions that build with it build everything
1017 /// with it, because the hole is in whichever function was left out.
1018 pub stack_clash: bool,
1019 /// Which control flow transfers are checked, from `-fcf-protection=`.
1020 ///
1021 /// See [`Control`]. Off by default, which is gcc's default on these targets, and on again in
1022 /// every distribution's global flags for the same reason the stack protector is.
1023 pub control: Control,
1024 /// Whether every function calls a profiler's hook on the way in, from `-pg` and `-p`.
1025 ///
1026 /// A profiler wants a count of which function called which, and the moment a function is
1027 /// entered is the only place a compiler can hand it one. It changes the link as well as the
1028 /// code, since the counts have to be started before `main` and written out after it, and the
1029 /// start file that does that is a different one.
1030 ///
1031 /// A tracer wants the same call for a different reason. The hook is one instruction the kernel
1032 /// can overwrite while the program runs, which is what makes a function traceable without
1033 /// rebuilding it, and it is why Linux is built this way rather than to be profiled.
1034 pub profile: bool,
1035 /// Where that call goes, from `-mfentry` and `-mno-fentry`.
1036 ///
1037 /// See [`Hook`]. Read even on a command line that did not ask for the call, since gcc accepts
1038 /// the flag on its own and does nothing with it.
1039 pub hook: Hook,
1040 /// How much room every function opens with for somebody to write over later, from
1041 /// `-fpatchable-function-entry=`.
1042 ///
1043 /// See [`Patchable`]. A kernel asks for this so that a function can be traced without being
1044 /// rebuilt: the room is a known number of bytes at a known address, and the addresses are
1045 /// collected into a section of their own so that whatever does the patching can find every one
1046 /// of them without reading the symbol table.
1047 pub patchable: Patchable,
1048 /// What wraps rather than being undefined when it overflows, from `-fwrapv`,
1049 /// `-fwrapv-pointer` and `-fno-strict-overflow`.
1050 ///
1051 /// See [`Wrapping`]. Nothing wraps by default, which is what C says and what lets the optimizer
1052 /// read a loop counter as a number rather than as a number that may turn round.
1053 pub wrapping: Wrapping,
1054 /// Whether warnings are errors.
1055 pub warnings_are_errors: bool,
1056 /// Whether a warning is raised at all, which is `-w` turned around.
1057 ///
1058 /// A build that passes this has decided it does not want to hear about anything that is not
1059 /// fatal, and the flag is dropped at the one place every diagnostic goes through rather than
1060 /// tested at each site that raises one. `-w` beats `-Werror` where both are given, because a
1061 /// warning that was never raised cannot be promoted.
1062 pub warnings: bool,
1063 /// How many diagnostics to print before giving up. Past a certain point the output is
1064 /// noise from a single earlier mistake, and GCC's default of no limit is not a kindness.
1065 pub error_limit: u32,
1066 /// The dialect, from `-std=`.
1067 pub std: Std,
1068 /// Whether the GNU extensions are on, which is `-std=gnu23` rather than `-std=c23`.
1069 pub gnu_extensions: bool,
1070 /// Whether `-pedantic` was given, which is what turns a use of an extension from silence
1071 /// into a diagnostic. It is not the same knob as the dialect: `-std=c17 -pedantic` warns
1072 /// about a construct that `-std=c17` alone accepts without a word.
1073 pub pedantic: bool,
1074 /// Whether `-fpermissive` was given, which turns the rules gcc 14 promoted from errors back
1075 /// into warnings.
1076 ///
1077 /// Six of them, all about code written before the language settled: a declaration with no
1078 /// type in it, a call to a function nothing declared, a parameter in an old style definition
1079 /// with no type, a pointer made from an integer, a pointer assigned from a pointer to
1080 /// something else, and a `return` whose value disagrees with what was promised. The flag says
1081 /// nothing about any other diagnostic, and it does not say to compile something different: a
1082 /// program it accepts is compiled the way the rule it broke says it means.
1083 pub permissive: bool,
1084 /// Whether the whole unit is under GNU's reading of `inline` rather than C's, which is
1085 /// `-fgnu89-inline`.
1086 ///
1087 /// Under C's reading a definition every file-scope declaration wrote `inline` for and none
1088 /// wrote `extern` for emits nothing, and under GNU's it is the definition alone that decides
1089 /// and `extern inline` is the one that emits nothing. The C89 dialects are under GNU's
1090 /// whatever this says, since that is where the older reading came from, so this is the flag a
1091 /// program written against it reaches for when it is being compiled under a later dialect.
1092 pub gnu89_inline: bool,
1093 /// What a name that nothing in the source said anything about reaches, from `-fvisibility=`.
1094 pub visibility: Visibility,
1095 /// Whether the object may end up in a shared library, from `-fPIC` and `-fPIE`.
1096 pub pic: Pic,
1097 /// Whether a definition in this unit may be replaced at load time by one in another object,
1098 /// from `-fsemantic-interposition` and `-fno-semantic-interposition`.
1099 ///
1100 /// True is the honest answer and is gcc's default, because that is what an exported name in a
1101 /// shared library means: the dynamic linker takes the first definition it finds in load order,
1102 /// so a function this unit defines and calls may not be the one that runs. Everything the
1103 /// optimizer reads off a body has to stop at a name like that.
1104 ///
1105 /// False is a promise the build makes, and every distribution makes it, because otherwise a
1106 /// library cannot inline its own functions into each other. It is a promise rather than a
1107 /// deduction: nothing checks it, and a program that then interposes one of those names gets a
1108 /// mixture of the two definitions. It says nothing about `-fPIE`, where no name is replaceable
1109 /// to begin with, and it says nothing about how an address is reached, which is the separate
1110 /// question `-fPIC` decides.
1111 pub interposition: bool,
1112 /// Whether a function is described to an unwinder at every instruction, from
1113 /// `-fasynchronous-unwind-tables` and `-fno-asynchronous-unwind-tables`.
1114 ///
1115 /// True is the default, which is gcc's wherever anything reads the table, and the reason is
1116 /// that the programs that read it are not the ones being compiled. C++ exceptions,
1117 /// `backtrace`, a profiler sampling a stack and a crash handler printing one all walk frames
1118 /// belonging to code that knew nothing about them, so a unit that opts out stops a walk that
1119 /// started somewhere else.
1120 ///
1121 /// What `asynchronous` asks for on top of a table is that the answer is right at every
1122 /// instruction and not only where a call is, because a signal can arrive anywhere, including
1123 /// the middle of a prologue. Rows come off the prologue as it is built here, so that is the
1124 /// only kind of table there is to write and the weaker request below is answered with it.
1125 ///
1126 /// False is for a build that knows nothing will ever walk it, which in practice is a kernel or
1127 /// a freestanding image, and what it saves is the section rather than any instruction.
1128 pub async_unwind_tables: bool,
1129 /// Whether a function is described to an unwinder at all, from `-funwind-tables` and
1130 /// `-fno-unwind-tables`.
1131 ///
1132 /// The weaker of the two requests and off by default, because the one above is on and implies
1133 /// it. A table is written when either of them is standing, which is what [`Self::unwinds`]
1134 /// answers and is how gcc resolves a line that asks for a table and against an asynchronous
1135 /// one.
1136 ///
1137 /// Neither of them is about anything but ELF. Mach-O and COFF have their own arrangements and
1138 /// neither is written yet, so on those targets nothing reads these.
1139 pub unwind_tables: bool,
1140 /// Whether each function gets a section of its own, from `-ffunction-sections`.
1141 ///
1142 /// A linker can leave out a section nothing reaches and cannot leave out half of one, so this
1143 /// is what makes `--gc-sections` able to drop a function this file defines and nothing calls.
1144 /// A kernel and an embedded image are both linked that way and are both a good deal larger
1145 /// without it, and the cost is one section header per function.
1146 pub function_sections: bool,
1147 /// Whether each variable gets a section of its own, from `-fdata-sections`.
1148 ///
1149 /// The same bargain for the data, and a separate flag because gcc has two of them: a build
1150 /// that wants one and not the other is a build that measured something. Splitting the data can
1151 /// cost more than it saves, since two variables a loop reads together are no longer certain to
1152 /// land in the same page.
1153 pub data_sections: bool,
1154 /// The GCC release claimed, from `-fgnuc-version=`.
1155 pub gnuc: GnucVersion,
1156 /// Whether there is a standard library, which is `-ffreestanding` turned around.
1157 pub hosted: bool,
1158 /// Whether a call to a C library function written under its own plain name may be taken to
1159 /// mean that function, which is `-fno-builtin` turned around.
1160 ///
1161 /// The names are reserved, so `llabs` is the library's `llabs` and the compiler is allowed to
1162 /// know what it does. A program that means something else by one of them is the reason the
1163 /// flag exists, and `-ffreestanding` turns it off as well, because a freestanding program has
1164 /// no C library for the name to be the name of. The `__builtin_` spellings are not affected by
1165 /// either, since the prefix is the program saying which function it means.
1166 pub builtins: bool,
1167 /// The names `-fno-builtin-<name>` took away one at a time, without the prefix.
1168 ///
1169 /// A build that means its own `memcpy` and the library's everything else writes this rather
1170 /// than the whole flag, which is what the kernel does for a handful of names.
1171 pub no_builtin: Vec<String>,
1172 /// `-D` in command line order. `FOO` means `FOO=1`, as GCC has it.
1173 pub defines: Vec<String>,
1174 /// `-U` in command line order, applied after the defines because `-U` wins.
1175 pub undefines: Vec<String>,
1176 /// Where a header is looked for.
1177 pub search: SearchPath,
1178 /// What `-imacros` and `-include` named, in command line order.
1179 pub preincludes: Vec<Preinclude>,
1180 /// Whether `-E` writes line markers, which `-P` turns off.
1181 pub line_markers: bool,
1182 /// What the `-d` family asks for.
1183 pub dumps: Dumps,
1184 /// What the `-M` family asks for.
1185 pub deps: Deps,
1186 /// Whether the intermediate files are kept, from `-save-temps`.
1187 pub save_temps: SaveTemps,
1188 /// Whether each step says how long it took, from `-time`.
1189 pub time: bool,
1190 /// What `-f<pass>` and `-fno-<pass>` said about an optimizer pass, in the order the command
1191 /// line said it, so that the last mention of a pass is the one that decides.
1192 ///
1193 /// The pipeline the level chose is the starting point and this is what is added to and taken
1194 /// away from it. The names are checked against the pass list while the arguments are parsed,
1195 /// so anything in here is a pass the compiler has.
1196 pub passes: Vec<(String, bool)>,
1197 /// What `-fpass-fuel=<pass>=<n>` limited a pass to, by pass name.
1198 ///
1199 /// A pass with an entry here performs exactly that many transformations and then stops
1200 /// transforming, which is what bisects a miscompilation to one rewrite. See section 9.10 of
1201 /// `spec/09-optimizer.md`.
1202 pub pass_fuel: Vec<(String, u32)>,
1203 /// What `-fpass-fuel-global=<n>` limited the whole pipeline to, across every pass.
1204 ///
1205 /// The outer of the two searches in section 4.5 of `spec/optimizer/04-pass-manager.md`.
1206 /// Halving this says which pass holds the bad rewrite, and halving `-fpass-fuel` for that
1207 /// pass says which rewrite it is. Where both are given, a pass is stopped by whichever of
1208 /// the two is tighter.
1209 pub pass_fuel_global: Option<u32>,
1210 /// What `-fdisable-<pass>[=<range>]` and `-fenable-<pass>[=<range>]` said, in the order the
1211 /// command line said it, with `true` for the enabling half.
1212 ///
1213 /// A rule covers the functions it names and nothing else, and the last rule that covers a
1214 /// function is the one that decides for it, so the order has to survive. This is the second
1215 /// half of the bisection interface in section 41.6 of `spec/optimizer/41-correctness.md`:
1216 /// `-fpass-fuel` finds the rewrite and this finds the function. The pass names are checked
1217 /// against the pass list while the arguments are parsed.
1218 pub pass_gates: Vec<(bool, String)>,
1219 /// What `-fdump-ir=` asked to see, as it was written, which is `all`, `before-<pass>` or
1220 /// `after-<pass>`.
1221 pub dump_ir: Vec<String>,
1222 /// What `-fopt-info` asked to hear about, as the keywords were written, with the leading
1223 /// hyphen taken off, so a bare `-fopt-info` is the empty string in here.
1224 ///
1225 /// The keywords are `optimized`, `missed`, `note` and `all`, and two flags add up rather than
1226 /// the second replacing the first. Checked while the arguments are parsed, so anything in
1227 /// here is a spelling the optimizer understands. See section 42.2 of
1228 /// `spec/optimizer/42-measurement.md` for why `missed` is the one that earns the feature.
1229 pub opt_info: Vec<String>,
1230 /// Where `-fopt-info=<file>` sends the remarks, or `None` for standard error.
1231 ///
1232 /// One file for the whole run rather than one per input, the way GCC does it, and the last
1233 /// one on the command line is the one that decides. A harness that wants the remarks kept
1234 /// away from the diagnostics gives a file, which is what the corpus in `tamnd/rucc-corpus`
1235 /// does with GCC so that a rejection can still be matched against the diagnostic stream.
1236 pub opt_info_file: Option<String>,
1237 /// Whether the IR verifier runs after every pass that changed anything.
1238 ///
1239 /// On in a debug build without being asked, since that is where a broken pass should be
1240 /// caught. `-Zverify-each` turns it on in a release build, which is what CI wants.
1241 pub verify_each: bool,
1242 /// Where `-Zrule-coverage=FILE` writes which lowering rules fired, if it was given.
1243 ///
1244 /// A measurement rather than a thing a build asks for, which is why it is spelled with a `-Z`
1245 /// the way an unstable option is everywhere else: it is here for the harness in
1246 /// `tamnd/rucc-compat` to union over a corpus and report, and nothing about the code that comes
1247 /// out changes when it is on. One file per run of the compiler, holding the whole rule set with
1248 /// the rules this run reached marked, whatever the run compiled and however many files it was.
1249 pub rule_coverage: Option<String>,
1250 /// Where `-Zregister-pressure=FILE` writes what the allocator had to put on the stack.
1251 ///
1252 /// A measurement and spelled with a `-Z` for the same reason as the one above: nothing about
1253 /// the code that comes out changes when it is on. One file per run of the compiler, one line
1254 /// per function, holding how many values went to the stack and how many stores and reloads
1255 /// that cost. What reads it is `cargo xtask pressure`, which compiles the benchmarks in
1256 /// `bench/safety` with the monitor off and on and reports the difference, since
1257 /// `spec/safe-memory/13-performance.md` section 13.1 asks for that number and section 5.2.1
1258 /// says why: a capability in flight is four words, and if materializing one spills something
1259 /// else in a hot loop then check elimination cannot save it.
1260 pub register_pressure: Option<String>,
1261}
1262
1263impl Options {
1264 /// Default options for `target`.
1265 pub fn new(target: Triple) -> Self {
1266 Self {
1267 target,
1268 opt_level: OptLevel::default(),
1269 safety: Safety::default(),
1270 emit: EmitKind::default(),
1271 debug_info: false,
1272 frame_pointer: false,
1273 red_zone: true,
1274 protector: Protector::default(),
1275 stack_clash: false,
1276 control: Control::default(),
1277 profile: false,
1278 hook: Hook::default(),
1279 patchable: Patchable::default(),
1280 wrapping: Wrapping::NONE,
1281 warnings_are_errors: false,
1282 warnings: true,
1283 error_limit: 20,
1284 std: Std::default(),
1285 gnu_extensions: true,
1286 pedantic: false,
1287 permissive: false,
1288 gnu89_inline: false,
1289 visibility: Visibility::default(),
1290 pic: Pic::default(),
1291 interposition: true,
1292 async_unwind_tables: true,
1293 unwind_tables: false,
1294 function_sections: false,
1295 data_sections: false,
1296 gnuc: GnucVersion::default(),
1297 hosted: true,
1298 builtins: true,
1299 no_builtin: Vec::new(),
1300 defines: Vec::new(),
1301 undefines: Vec::new(),
1302 search: SearchPath::new(),
1303 preincludes: Vec::new(),
1304 line_markers: true,
1305 dumps: Dumps::default(),
1306 deps: Deps::default(),
1307 save_temps: SaveTemps::default(),
1308 time: false,
1309 passes: Vec::new(),
1310 pass_fuel: Vec::new(),
1311 pass_fuel_global: None,
1312 pass_gates: Vec::new(),
1313 dump_ir: Vec::new(),
1314 opt_info: Vec::new(),
1315 opt_info_file: None,
1316 verify_each: cfg!(debug_assertions),
1317 rule_coverage: None,
1318 register_pressure: None,
1319 }
1320 }
1321
1322 /// Whether a function in this unit is described to an unwinder.
1323 ///
1324 /// Either request is answered with the same table, so what decides is whether either of them
1325 /// is standing. Asked here rather than worked out at the two places that write a table, since
1326 /// those two writing different answers for one function is what `spec/11-asm-objects-debug.md`
1327 /// section 11.1 says must not be possible.
1328 #[must_use]
1329 pub const fn unwinds(&self) -> bool {
1330 self.async_unwind_tables || self.unwind_tables
1331 }
1332}
1333
1334/// One compilation.
1335///
1336/// Holds the options, the string interner and the diagnostics raised so far. Passing a
1337/// `&mut Session` is how a stage reports a problem, and the return value of a stage says
1338/// what it produced, never whether it succeeded: that question is answered by
1339/// [`Session::has_errors`].
1340#[derive(Debug)]
1341pub struct Session {
1342 /// What this compilation was asked to do.
1343 pub opts: Options,
1344 /// Everything known about the target.
1345 pub target: TargetInfo,
1346 /// The one interner for the compilation.
1347 pub interner: Interner,
1348 /// Every file read during the compilation, and the flat coordinate space their spans
1349 /// live in.
1350 ///
1351 /// This is on the session rather than passed around separately because a span is only
1352 /// meaningful against the map that issued it, and one map per compilation is the rule
1353 /// that makes that true by construction.
1354 pub sources: SourceMap,
1355 diagnostics: Vec<Diagnostic>,
1356 error_count: u32,
1357 warning_count: u32,
1358}
1359
1360impl Session {
1361 /// A session for `opts`.
1362 pub fn new(opts: Options) -> Self {
1363 let target = TargetInfo::new(opts.target);
1364 Self {
1365 opts,
1366 target,
1367 interner: Interner::with_capacity(1024),
1368 sources: SourceMap::new(),
1369 diagnostics: Vec::new(),
1370 error_count: 0,
1371 warning_count: 0,
1372 }
1373 }
1374
1375 /// Records a diagnostic.
1376 ///
1377 /// Under `-Werror` a warning is promoted here, once, rather than at every site that
1378 /// raises one, and under `-w` it is dropped here for the same reason. A warning that `-w`
1379 /// dropped is not counted, so `-w -Werror` compiles rather than failing on a warning
1380 /// nobody was going to see.
1381 pub fn emit(&mut self, mut diag: Diagnostic) {
1382 if !self.opts.warnings && diag.severity == Severity::Warning {
1383 return;
1384 }
1385 if self.opts.warnings_are_errors && diag.severity == Severity::Warning {
1386 diag.severity = Severity::Error;
1387 }
1388 match diag.severity {
1389 Severity::Error | Severity::Ice => self.error_count += 1,
1390 Severity::Warning => self.warning_count += 1,
1391 Severity::Note | Severity::Help => {}
1392 }
1393 self.diagnostics.push(diag);
1394 }
1395
1396 /// Everything raised so far, in the order it was raised.
1397 pub fn diagnostics(&self) -> &[Diagnostic] {
1398 &self.diagnostics
1399 }
1400
1401 /// Whether anything fatal has been raised.
1402 pub fn has_errors(&self) -> bool {
1403 self.error_count > 0
1404 }
1405
1406 /// How many errors have been raised.
1407 pub fn error_count(&self) -> u32 {
1408 self.error_count
1409 }
1410
1411 /// How many warnings have been raised.
1412 pub fn warning_count(&self) -> u32 {
1413 self.warning_count
1414 }
1415
1416 /// Whether the error limit has been reached and the caller should stop.
1417 pub fn error_limit_reached(&self) -> bool {
1418 self.opts.error_limit != 0 && self.error_count >= self.opts.error_limit
1419 }
1420}
1421
1422#[cfg(test)]
1423mod tests {
1424 use super::*;
1425
1426 fn session() -> Session {
1427 Session::new(Options::new("x86_64-unknown-linux-gnu".parse().unwrap()))
1428 }
1429
1430 #[test]
1431 fn a_version_claim_reads_the_way_gcc_prints_one() {
1432 // `gcc -dumpfullversion` gives all three, `gcc -dumpversion` gives one, and both are
1433 // things a script pastes straight into a flag.
1434 let all = |v: &str| v.parse::<GnucVersion>().unwrap();
1435 assert_eq!(all("15.1.0"), GnucVersion { major: 15, minor: 1, patch: 0 });
1436 assert_eq!(all("15"), GnucVersion { major: 15, minor: 0, patch: 0 });
1437 assert_eq!(all("4.2"), GnucVersion { major: 4, minor: 2, patch: 0 });
1438 assert!("".parse::<GnucVersion>().is_err());
1439 assert!("15.".parse::<GnucVersion>().is_err(), "a trailing dot is a typo, not a zero");
1440 assert!("1.2.3.4".parse::<GnucVersion>().is_err());
1441 }
1442
1443 #[test]
1444 fn optimisation_levels_parse_the_way_gcc_spells_them() {
1445 assert_eq!("".parse::<OptLevel>().unwrap(), OptLevel::O1);
1446 assert_eq!("0".parse::<OptLevel>().unwrap(), OptLevel::O0);
1447 assert_eq!("2".parse::<OptLevel>().unwrap(), OptLevel::O2);
1448 assert_eq!("9".parse::<OptLevel>().unwrap(), OptLevel::O3);
1449 assert_eq!("s".parse::<OptLevel>().unwrap(), OptLevel::Os);
1450 assert!("q".parse::<OptLevel>().is_err());
1451 }
1452
1453 #[test]
1454 fn only_o0_skips_the_optimizer() {
1455 assert!(!OptLevel::O0.runs_optimizer());
1456 assert!(OptLevel::O1.runs_optimizer());
1457 assert!(OptLevel::Oz.runs_optimizer());
1458 }
1459
1460 #[test]
1461 fn the_safety_tiers_round_trip_and_nothing_else_is_one() {
1462 for tier in [Safety::Off, Safety::Detect, Safety::Enforce, Safety::Kernel] {
1463 assert_eq!(tier.as_str().parse::<Safety>().unwrap(), tier);
1464 }
1465 // `on` is the obvious thing to try and it is not a tier, because which tier somebody
1466 // means by it is the whole question document 02 answers.
1467 assert!("on".parse::<Safety>().is_err());
1468 assert!("".parse::<Safety>().is_err());
1469 }
1470
1471 #[test]
1472 fn room_for_a_patcher_is_written_the_way_it_was_asked_for() {
1473 for (written, total, before) in
1474 [("0", 0, 0), ("2", 2, 0), ("16", 16, 0), ("5,3", 5, 3), ("3,3", 3, 3)]
1475 {
1476 let room: Patchable = written.parse().unwrap();
1477 assert_eq!(room, Patchable { total, before });
1478 assert_eq!(room.to_string(), written);
1479 assert_eq!(room.after(), total - before);
1480 assert_eq!(room.any(), total > 0);
1481 }
1482 // A second number of zero is the same request as no second number, and it is written back
1483 // the shorter way, which is the way somebody reaching for the flag writes it.
1484 assert_eq!("2,0".parse::<Patchable>().unwrap().to_string(), "2");
1485 }
1486
1487 #[test]
1488 fn more_room_in_front_of_the_label_than_there_is_room_at_all_is_refused() {
1489 // Rather than clamped, because there is no reading of it a caller meant. gcc says the same
1490 // about each of these.
1491 assert!("1,2".parse::<Patchable>().is_err());
1492 assert!("1,2,3".parse::<Patchable>().is_err());
1493 assert!("a".parse::<Patchable>().is_err());
1494 assert!("".parse::<Patchable>().is_err());
1495 assert!("-1".parse::<Patchable>().is_err());
1496 }
1497
1498 #[test]
1499 fn the_two_places_the_intermediate_files_can_go_are_the_two_words_that_are_taken() {
1500 assert_eq!("obj".parse::<SaveTemps>().unwrap(), SaveTemps::Object);
1501 assert_eq!("cwd".parse::<SaveTemps>().unwrap(), SaveTemps::Cwd);
1502 // The names of the two flags that mean the same thing as `=obj` are not themselves
1503 // arguments of it, and neither is silence.
1504 assert!("obj,cwd".parse::<SaveTemps>().is_err());
1505 assert!("".parse::<SaveTemps>().is_err());
1506 // Nothing is kept unless something asked, and both of the words that ask do ask.
1507 assert_eq!(SaveTemps::default(), SaveTemps::No);
1508 assert!(!SaveTemps::No.wanted());
1509 assert!(SaveTemps::Object.wanted());
1510 assert!(SaveTemps::Cwd.wanted());
1511 }
1512
1513 #[test]
1514 fn a_build_that_did_not_ask_for_the_monitor_does_not_get_it() {
1515 assert_eq!(Safety::default(), Safety::Off);
1516 assert!(!Safety::Off.instruments());
1517 assert!(Safety::Detect.instruments());
1518 assert!(Safety::Enforce.instruments());
1519 assert!(Safety::Kernel.instruments());
1520 }
1521
1522 #[test]
1523 fn emit_kinds_round_trip_through_their_names() {
1524 for k in [
1525 EmitKind::Executable,
1526 EmitKind::Object,
1527 EmitKind::Asm,
1528 EmitKind::Preprocessed,
1529 EmitKind::Tast,
1530 EmitKind::Ir,
1531 EmitKind::MirFinal,
1532 ] {
1533 assert_eq!(k.as_str().parse::<EmitKind>().unwrap(), k);
1534 }
1535 }
1536
1537 #[test]
1538 fn errors_are_counted_and_warnings_are_not() {
1539 let mut s = session();
1540 s.emit(Diagnostic::error("no", rucc_diag::Span::DUMMY));
1541 s.emit(Diagnostic::warning("hmm", rucc_diag::Span::DUMMY));
1542 assert_eq!(s.error_count(), 1);
1543 assert_eq!(s.warning_count(), 1);
1544 assert!(s.has_errors());
1545 assert_eq!(s.diagnostics().len(), 2);
1546 }
1547
1548 #[test]
1549 fn werror_promotes_once_at_the_sink() {
1550 let mut opts = Options::new("x86_64-unknown-linux-gnu".parse().unwrap());
1551 opts.warnings_are_errors = true;
1552 let mut s = Session::new(opts);
1553 s.emit(Diagnostic::warning("hmm", rucc_diag::Span::DUMMY));
1554 assert_eq!(s.error_count(), 1);
1555 assert_eq!(s.warning_count(), 0);
1556 assert_eq!(s.diagnostics()[0].severity, Severity::Error);
1557 }
1558
1559 #[test]
1560 fn the_error_limit_can_be_switched_off() {
1561 let mut opts = Options::new("x86_64-unknown-linux-gnu".parse().unwrap());
1562 opts.error_limit = 0;
1563 let mut s = Session::new(opts);
1564 for _ in 0..100 {
1565 s.emit(Diagnostic::error("no", rucc_diag::Span::DUMMY));
1566 }
1567 assert!(!s.error_limit_reached());
1568 }
1569
1570 #[test]
1571 fn the_session_carries_the_source_map_spans_are_resolved_against() {
1572 let mut s = session();
1573 let file = s.sources.add("a.c", b"int x;\n".to_vec()).unwrap();
1574 let start = s.sources.file(file).start;
1575 assert_eq!(s.sources.render_position(start + 4), "a.c:1:5");
1576 }
1577
1578 #[test]
1579 fn the_session_carries_the_resolved_target() {
1580 let s = session();
1581 assert_eq!(s.target.pointer_width, 64);
1582 assert!(s.target.char_is_signed);
1583 }
1584}