rucc_opt/pipeline.rs
1//! The pipelines, one per optimization level, and the manager that runs one.
2//!
3//! Section 9.1 of `spec/09-optimizer.md` says the pipelines are written out rather than assembled
4//! from flags, and gives the reason: the prior art ran the same pipeline at every level and named
5//! that as a limitation. A level here is a list of pass names, and the list is the definition of
6//! the level rather than something that emerges from which flags happen to be set.
7//!
8//! Section 9.10 says the manager is deliberately boring. There is no adaptive ordering and no
9//! scheduling heuristic, because document 03's determinism rule needs the same input to produce
10//! the same output on every host and predictability is worth more than the last percent.
11//!
12//! What the manager does beyond running the list is the four things that make a pass debuggable:
13//! it counts each pass's transformations against its fuel, it collects what each pass said it did
14//! and did not do, it dumps the IR around whichever passes were asked for, and it verifies any
15//! function a pass changed.
16//!
17//! That last one is section 41.4 of `spec/optimizer/41-correctness.md`, which reads GCC's
18//! `execute_function_todo` and takes six things from it. Three of them are already true here by
19//! construction and are worth naming so that nobody looks for them. GCC verifies what the IR
20//! currently is, by consulting `curr_properties`, because its IR passes through GENERIC, GIMPLE
21//! with and without a CFG, GIMPLE in SSA, and RTL. rucc has one IR, it is in SSA from the moment
22//! the lowering walk builds it, and it always has a CFG, so the applicable set never varies and a
23//! bitmask saying so would have nothing to say. GCC guards the verifiers with `!seen_error()`,
24//! because after a user error the IR is legitimately malformed and an internal error raised over
25//! it hides the real diagnostic. Here the optimizer is not reached at all after a parse, check or
26//! lowering error, which is the same guard placed one level up where it cannot be forgotten. And
27//! GCC asserts that a verifier did not change the dominator state. Here a verifier takes the
28//! module by shared reference, so that is a type error rather than an assertion.
29//!
30//! What is left of the six is the part below: verify what changed, not everything, and say which
31//! function it was.
32
33use std::collections::HashMap;
34use std::fmt::Write as _;
35
36use rucc_base::{Interner, Symbol};
37use rucc_ir::{FuncId, Module};
38use rucc_session::OptLevel;
39
40use crate::{
41 Analyses, Fuel, Gates, Machine, Pass, Preserved, Stats, extents, heap, nofree, params, pass,
42};
43
44/// The passes that read a summary [`nofree::annotate`], [`extents::annotate`],
45/// [`params::annotate`] or [`heap::annotate`] writes onto the IR.
46///
47/// A list rather than one name because there will be more of them: section 7.5 asks for three more
48/// summary fields and section 7.3's lifetime elimination is the next thing to want this one. A pass
49/// that reads a summary and is not named here reads whatever the last build left, which is nothing,
50/// so the cost of forgetting to add a name is a missed optimization.
51const READS_SUMMARIES: &[&str] = &["discharge"];
52
53/// `-O0`. One pass, and it is not an optimization. Section 9.1 gives this level SSA
54/// construction, which the lowering walk in `spec/08-ir.md` already does, and mem2reg for the
55/// allocas that are left, which is the next pass to be written.
56///
57/// `simplify-cfg` is here because a branch on a condition that is a constant is not a missed
58/// optimization, it is a call to a function the program never calls, and a program that calls a
59/// function it never calls is one that does not link. That is issue 359, gcc removes the code at
60/// every level including this one, and a `-O0` that emitted it would be a `-O0` some correct
61/// programs cannot be built at. Nothing else runs, and no analysis beyond the graph the pass
62/// reads reachability out of is computed.
63const O0: &[&str] = &["simplify-cfg"];
64
65/// `-O1`. Section 9.1 asks for one e-graph round, conservative inlining, simplify-CFG, SROA,
66/// GVN, DCE, LICM and the loop canonicalizations. Folding, control flow simplification and dead
67/// code elimination are the part of that which exists, with the peephole among them. They run in
68/// that order because folding and the peephole are what make most of the dead code there is to
69/// eliminate, because a constant a fold produced is a branch condition the control flow pass can
70/// then read, and because the comparison that branch was on is dead once it has.
71///
72/// The peephole runs on both sides of `narrow`, which is the one place in this list where a pass
73/// is named twice, so the reason is worth stating. The rewrite table is written at a width, and
74/// the widths below `int` are unreachable from C source: the integer promotions mean an addition
75/// of two `char` values arrives here as an `add.i32`, so a rule about `add.i8` matches nothing
76/// that a front end can produce. `narrow` is what puts the width back, and it is therefore the
77/// only producer the narrow half of the table has. Running the peephole only before it left
78/// sixty nine of the first hundred and twenty five rules unable to fire on any program, which is
79/// issue 505 and is what the corpus measured. Running it only after it would give up the smaller
80/// trees the peephole hands `narrow`, since a subtree `narrow` redoes has to have one reader and
81/// an identity left standing is a second one. Both sides costs one more walk over each function
82/// and is what the pass is for.
83///
84/// `phiopt` comes after `thread` and the order between them is not arbitrary. Both look at a
85/// diamond whose arms carry a value to a join. Where the join then branches on that value,
86/// threading removes a branch and costs nothing, and if-conversion would have turned the same
87/// shape into a `select` the join branches on instead, which is strictly worse. Threading first
88/// leaves if-conversion the diamonds whose value is used rather than tested, which are the ones it
89/// is for.
90///
91/// `prune` is between `phiopt` and `simplify-cfg` and both sides of that are load bearing. It reads
92/// document 10's ranges off the graph to find a branch that can only go one way and a switch case
93/// nothing can reach, so it has to run after the two passes that change the graph most. What it
94/// leaves is a jump where a branch was and a block nothing reaches, and `simplify-cfg` is the pass
95/// that takes those out, so it has to run before it rather than after.
96///
97/// `canon` is where document 26's loop pipeline opens, so it goes after the value level passes and
98/// before the cleanup. It gives every loop a preheader, one latch, exits of its own and loop closed
99/// form, which is what lets the loop passes that follow it write `insert at the end of the
100/// preheader` rather than each making one. On its own it generates nothing: the blocks it adds are
101/// empty and the parameters it adds have one argument each, and `simplify-cfg` runs straight after
102/// it and takes both back out to a fixed point. That is section 26.7's arrangement, and it is why
103/// the position matters more than the pass does until the loop passes land on top of it.
104///
105/// `header-copy` is section 26.7's third step and `canon` runs again after it, which is the same
106/// section's instruction to re-canonicalize the loops it changed. It has to: what the copy leaves
107/// is a loop entered from a block that branches two ways, and a block that branches two ways is not
108/// a preheader. Nothing between the two needs the properties, so the second run is bookkeeping
109/// against the loop passes that come later rather than something this level's output depends on,
110/// and `simplify-cfg` after it takes out the blocks and parameters both runs added that nothing
111/// used.
112///
113/// `licm` comes after the copy and the canonicalization behind it, and section 27.1 says why it has
114/// to. What it may move in front of a loop depends on what runs on every entry to the loop, and
115/// after that pair that is the whole body rather than the header alone. Running it before the
116/// copy would leave it the header, which is most of the pass's value gone. It is also the reason
117/// the copy exists, so the two are one arrangement read from either end.
118///
119/// It is in the three speed levels and not in `-Os` or `-Oz`. Moving a computation out of a loop
120/// does not remove one, so there are no bytes in it for a level whose cost model is size, and the
121/// one thing it can cost is a spill inside the loop, which is bytes. That trade is worth making for
122/// time and there is nothing on the other side of it for space.
123///
124/// `unroll` runs after `licm` and only at the two speed levels. After, because what it does is copy
125/// the body, and a computation licm has already moved in front of the loop is one the copies do not
126/// each get their own of. It needs the same shape licm does and for the same reason, a loop that
127/// tests at the bottom with a preheader in front of it, so it sits at the end of the same run of
128/// loop passes rather than anywhere of its own. `simplify-cfg` straight after it is what turns the
129/// chain of copies into one block, since each copy now ends in a jump to the next and a block with
130/// one way in and one way out is a block that goes away.
131///
132/// `hoist` is the first of the two check passes and it runs where it does because of what is above
133/// it. It needs a loop that tests at the bottom, which is what `header-copy` makes, and it needs a
134/// preheader to put a check in, which is what the `canon` after it puts back. Running it before
135/// `discharge` rather than after is deliberate as well: what it leaves in the preheader is a check
136/// over the whole range the loop sweeps, and that is a fact `discharge` can then use on anything
137/// else in front of the loop that is about the same bytes.
138///
139/// `discharge` is second to last, between `hoist` and `dce`, and both neighbours are the reason. It
140/// reads the dominator tree to find a safety check whose bytes an earlier check already covered, so
141/// it wants the graph after the block merging rather than before, when a straight run of code is
142/// still several blocks and a fact does not reach the check it would cover. What it leaves behind
143/// is the `cap_of` the check it removed was reading, which nothing now reads, so `dce` after it is
144/// what makes the function smaller rather than shorter by one instruction. It is in every level
145/// except `-O0`, which keeps every check on purpose: document 14 measures against a build where
146/// nothing was discharged, and that build is `-O0`.
147const O1: &[&str] = &[
148 "fold",
149 "simplify",
150 "narrow",
151 "simplify",
152 "thread",
153 "phiopt",
154 "prune",
155 "canon",
156 "header-copy",
157 "canon",
158 "licm",
159 "simplify-cfg",
160 "hoist",
161 "discharge",
162 "dce",
163];
164
165/// `-O2`. The level the code quality claim is about. Section 9.1 asks for two e-graph rounds
166/// around the loop pipeline, the full inlining cost model, Memory SSA and the full alias
167/// analysis stack, and then the scalar and machine passes on top.
168///
169/// `short-circuit` is the one pass here that `-O1` does not have, and section 22.5 is where the
170/// level comes from. It folds the two branches of an `a && b` into one, which costs the right
171/// operand's work on the path that was skipping it and buys a branch the machine no longer has to
172/// guess. That is a trade worth making when the aim is speed and the branch is hard to call, and
173/// it is not one to make by default, which is what `-O1` is.
174///
175/// It runs before `thread` and `phiopt` rather than after, and the order is not arbitrary. Both of
176/// those look at edges, and the collapse removes a block and turns two edges into one, so running
177/// it first hands them a smaller graph with nothing lost. The other way round, threading is free
178/// to give the second branch's block another predecessor, and a block two edges reach is one the
179/// collapse will not touch, so a chain that was foldable stops being foldable.
180const O2: &[&str] = &[
181 "fold",
182 "simplify",
183 "narrow",
184 "simplify",
185 "short-circuit",
186 "thread",
187 "phiopt",
188 "prune",
189 "canon",
190 "header-copy",
191 "canon",
192 "licm",
193 "unroll",
194 "simplify-cfg",
195 "hoist",
196 "discharge",
197 "dce",
198];
199
200/// `-O3`. `-O2` plus loop vectorization, larger inlining and unrolling thresholds, interchange
201/// and distribution where the dependence analysis is confident, and function specialization.
202const O3: &[&str] = &[
203 "fold",
204 "simplify",
205 "narrow",
206 "simplify",
207 "short-circuit",
208 "thread",
209 "phiopt",
210 "prune",
211 "canon",
212 "header-copy",
213 "canon",
214 "licm",
215 "unroll",
216 "simplify-cfg",
217 "hoist",
218 "discharge",
219 "dce",
220];
221
222/// `-Os`. `-O2`'s passes under a size cost model: inlining only where it shrinks, no unrolling
223/// and no vectorization.
224///
225/// The second peephole is here rather than cut for size, because every rule it can fire replaces
226/// a term with a strictly smaller one. Tier one of `spec/optimizer/13-rewrite-rules.md` is
227/// defined that way, so a level that wants smaller code wants more of it and not less.
228///
229/// `short-circuit` is the pass this level drops from `-O2`, for the mirror of that reason. What it
230/// removes is a branch, which is time, and what it adds is the right operand's instructions on a
231/// path that did not run them and an and on top. The code comes out no smaller and usually a byte
232/// or two larger, so a level whose cost model is size has nothing to gain from it.
233///
234/// `hoist` is dropped here as well, and the reason is the same trade read the other way.
235/// It takes a check out of a loop body and puts one in the preheader, plus the address arithmetic
236/// the new check needs, so the loop runs faster and the function is a few instructions larger. That
237/// is a speed transformation with a size cost, which is what `-Os` and `-Oz` are for declining.
238///
239/// `header-copy-small` is the same pass `-O1` and above run under section 26.6's smaller budget.
240/// The copy is code growth and this level pays for it once per loop, so five instructions is what
241/// it will pay. What it gets back is a body that is one region and an exit test at the bottom,
242/// which is slightly smaller in the steady state, so the trade is worth making at a limit that
243/// keeps the header small and not at one that copies twenty instructions to save two.
244const OS: &[&str] = &[
245 "fold",
246 "simplify",
247 "narrow",
248 "simplify",
249 "thread",
250 "phiopt",
251 "prune",
252 "canon",
253 "header-copy-small",
254 "canon",
255 "simplify-cfg",
256 "discharge",
257 "dce",
258];
259
260/// `-Oz`. `-Os` and additionally the outliner, with instruction selection preferring the smaller
261/// encoding wherever there is a choice.
262///
263/// Header copying is the pass this level drops from `-Os`, which section 26.6 asks for by name. It
264/// is the one loop canonicalization that makes the function bigger, `-Oz` is the level that would
265/// rather have the branch than the bytes, and every reason to want the do-while form here is a
266/// speed reason.
267const OZ: &[&str] = &[
268 "fold",
269 "simplify",
270 "narrow",
271 "simplify",
272 "thread",
273 "phiopt",
274 "prune",
275 "canon",
276 "simplify-cfg",
277 "discharge",
278 "dce",
279];
280
281/// The passes this level runs, before the command line adds to or removes from them.
282#[must_use]
283pub const fn for_level(level: OptLevel) -> &'static [&'static str] {
284 match level {
285 OptLevel::O0 => O0,
286 OptLevel::O1 => O1,
287 OptLevel::O2 => O2,
288 OptLevel::O3 => O3,
289 OptLevel::Os => OS,
290 OptLevel::Oz => OZ,
291 }
292}
293
294/// Which passes the IR is written out around.
295///
296/// Empty by default, which is the whole point: a dump is a debugging aid and writing files
297/// nobody asked for is not one.
298#[derive(Debug, Clone, Default, PartialEq, Eq)]
299pub struct Dumps {
300 /// Every pass, on both sides.
301 all: bool,
302 /// The passes to write out before.
303 before: Vec<String>,
304 /// The passes to write out after.
305 after: Vec<String>,
306}
307
308impl Dumps {
309 /// Adds one `-fdump-ir=` argument.
310 ///
311 /// # Errors
312 ///
313 /// When the argument is not `all`, `before-<pass>` or `after-<pass>`, or when it names a
314 /// pass this compiler does not have. A misspelled pass name that quietly dumped nothing
315 /// would look exactly like a pass that did not run.
316 pub fn add(&mut self, spec: &str) -> Result<(), String> {
317 if spec == "all" {
318 self.all = true;
319 return Ok(());
320 }
321 let (side, name) = match spec.split_once('-') {
322 Some(("before", name)) => (&mut self.before, name),
323 Some(("after", name)) => (&mut self.after, name),
324 _ => {
325 return Err(format!(
326 "`{spec}` is not a dump this compiler makes, which are `all`, \
327 `before-<pass>` and `after-<pass>`"
328 ));
329 }
330 };
331 if pass::find(name).is_none() {
332 return Err(format!("`{name}` is not a pass this compiler has, see --print-pipeline"));
333 }
334 side.push(name.to_owned());
335 Ok(())
336 }
337
338 /// Whether anything is dumped at all.
339 #[must_use]
340 pub fn is_empty(&self) -> bool {
341 !self.all && self.before.is_empty() && self.after.is_empty()
342 }
343
344 /// Whether the IR is written out before this pass runs.
345 #[must_use]
346 pub fn wants_before(&self, name: &str) -> bool {
347 self.all || self.before.iter().any(|it| it == name)
348 }
349
350 /// Whether the IR is written out after this pass runs.
351 #[must_use]
352 pub fn wants_after(&self, name: &str) -> bool {
353 self.all || self.after.iter().any(|it| it == name)
354 }
355}
356
357/// What the command line asked the optimizer for.
358#[derive(Debug, Clone, PartialEq, Eq)]
359pub struct Options {
360 /// Which pipeline to start from.
361 pub level: OptLevel,
362 /// The passes `-f<name>` added and `-fno-<name>` removed, in the order they were given, so
363 /// that the last mention of a pass is the one that decides.
364 pub toggles: Vec<(String, bool)>,
365 /// What `-fpass-fuel=<pass>=<n>` limited, by pass name.
366 pub fuel: HashMap<String, u32>,
367 /// What `-fpass-fuel-global=<n>` limited the whole pipeline to, across every pass.
368 ///
369 /// This is the outer search of the two in section 4.5 of
370 /// `spec/optimizer/04-pass-manager.md`. Halving this finds the pass, and halving
371 /// `-fpass-fuel` for that pass finds the rewrite inside it. Two searches of twenty
372 /// compilations each beat one search over a space nobody knows the shape of.
373 pub global_fuel: Option<u32>,
374 /// What `-fdisable-<pass>` and `-fenable-<pass>` said about which functions a pass runs on.
375 pub gates: Gates,
376 /// What `-fdump-ir=` asked to see.
377 pub dumps: Dumps,
378 /// Whether the verifier runs after every pass that changed anything.
379 pub verify: bool,
380}
381
382impl Default for Options {
383 /// The default level with nothing added to it, and the verifier on in a debug build, which
384 /// is what section 9.10 asks for.
385 fn default() -> Self {
386 Self {
387 level: OptLevel::default(),
388 toggles: Vec::new(),
389 fuel: HashMap::new(),
390 global_fuel: None,
391 gates: Gates::default(),
392 dumps: Dumps::default(),
393 verify: cfg!(debug_assertions),
394 }
395 }
396}
397
398impl Options {
399 /// The options a level asks for on its own.
400 #[must_use]
401 pub fn for_level(level: OptLevel) -> Self {
402 Self { level, ..Self::default() }
403 }
404
405 /// The passes the level and the `-f` flags chose, in order, before the gates are consulted.
406 ///
407 /// A pass named by `-f<name>` that the level did not choose is appended, because the only
408 /// place it could go that does not need an ordering rule nobody wrote down is the end.
409 #[must_use]
410 pub fn chosen(&self) -> Vec<&'static str> {
411 let mut names: Vec<&str> = for_level(self.level).to_vec();
412 for (name, on) in &self.toggles {
413 let name = name.as_str();
414 match *on {
415 true if !names.contains(&name) => names.push(name),
416 true => {}
417 false => names.retain(|it| *it != name),
418 }
419 }
420 names.into_iter().filter_map(pass::find).map(Pass::name).collect()
421 }
422
423 /// The passes that will run, in order, over at least one function.
424 ///
425 /// A pass `-fenable-<name>` reached that the level did not choose is appended after them,
426 /// for the same reason and in the same place. It runs only over the functions the gate names,
427 /// which is the whole point of the flag: a pass being in this list is not the same question as
428 /// a pass running on the function somebody is looking at.
429 #[must_use]
430 pub fn passes(&self) -> Vec<&'static dyn Pass> {
431 let mut names = self.chosen();
432 for name in self.gates.enabled() {
433 // Through the pass list rather than straight from the gate, because the name the
434 // pass holds outlives this call and the one the gate holds does not.
435 let Some(found) = pass::find(name) else { continue };
436 if !names.contains(&found.name()) {
437 names.push(found.name());
438 }
439 }
440 names.into_iter().filter_map(pass::find).collect()
441 }
442}
443
444/// One written out copy of the IR.
445#[derive(Debug, Clone, PartialEq, Eq)]
446pub struct Dump {
447 /// What to call it, which is a number, a side and a pass name, as in `01-after-fold`. The
448 /// number is there so that a directory listing is in the order the passes ran.
449 pub name: String,
450 /// The module, in the textual form from `spec/08-ir.md`.
451 pub text: String,
452}
453
454/// What one pass had to say about one function.
455///
456/// One of these per pass per function with a body, whether or not the pass said anything, because
457/// a pass that reports nothing being visible as a pass that reports nothing is the point of the
458/// record. Section 42.2 of `spec/optimizer/42-measurement.md` has the argument.
459#[derive(Debug, Clone, PartialEq, Eq)]
460pub struct Remark {
461 /// Which pass, by the name a `-f` flag spells.
462 pub pass: &'static str,
463 /// Which function, by the name in the source.
464 pub func: Symbol,
465 /// What it said.
466 pub stats: Stats,
467}
468
469/// What running the pipeline produced beyond the changed module.
470#[derive(Debug, Clone, Default, PartialEq, Eq)]
471pub struct Report {
472 /// The dumps asked for, in the order they were taken. The manager does not write files,
473 /// because nothing below the driver in `spec/18-package-layout.md` knows what a file is.
474 pub dumps: Vec<Dump>,
475 /// A pass that left the IR in a state the verifier refuses, named, with what it said.
476 pub broke: Vec<String>,
477 /// How much fuel each pass spent, which is the number a bisection halves.
478 pub spent: Vec<(&'static str, u32)>,
479 /// What every pass said about every function, in the order the passes ran and then in the
480 /// order the module holds its functions. This is what `-fopt-info` prints.
481 pub remarks: Vec<Remark>,
482}
483
484impl Report {
485 /// Everything one pass said across the whole module, added up.
486 ///
487 /// The counts of an event are addable across functions because an event names a site in a
488 /// pass rather than a fact about a program, which is the reason [`crate::stats::Event::what`]
489 /// is a fixed string.
490 #[must_use]
491 pub fn totals(&self, pass: &str) -> Stats {
492 let mut total = Stats::new();
493 for remark in self.remarks.iter().filter(|it| it.pass == pass) {
494 total.merge(&remark.stats);
495 }
496 total
497 }
498}
499
500/// Runs the pipeline over the module.
501///
502/// Every pass sees every function with a body, one at a time, and a pass runs over the whole
503/// module before the next one starts. That order is what makes the dumps readable: a dump is
504/// the state of the program between two passes rather than between two functions.
505pub fn run(module: &mut Module, names: &Interner, opts: &Options) -> Report {
506 let mut report = Report::default();
507 let chosen = opts.chosen();
508 // One cache per function, kept across passes because a pass runs over the whole module
509 // before the next one starts. A cache that lived only as long as one function would be
510 // thrown away between every pass and would never answer a second question. Section 4.2 of
511 // `spec/optimizer/04-pass-manager.md` is the plan for turning the loop inside out, and the
512 // day that happens this map becomes a local in the inner loop.
513 let mut cached: HashMap<FuncId, Analyses> = HashMap::new();
514 // The machine, once for the module, because every function in it is compiled for the same
515 // target at the same goal. It goes into each function's cache rather than into a parameter of
516 // its own, per `crate::machine`.
517 let machine = Machine::of(module, opts.level);
518 // What the whole pipeline has left, which every pass draws its own allowance out of and
519 // gives the unspent part of back. A pass past the end of it is given nothing rather than
520 // skipped, so it still runs, still reports, and still transforms nothing.
521 let mut budget = opts.global_fuel;
522 // What each pass has left of what `-fpass-fuel` gave it. One allowance across every place
523 // the list names that pass, rather than one allowance each, because the number in the flag
524 // is meant to be the number of rewrites that happened. A peephole that runs twice under
525 // `-fpass-fuel=simplify=5` and rewrites ten things would make the bisection in section 4.5
526 // of `spec/optimizer/04-pass-manager.md` step over the rewrite it was looking for.
527 let mut allowance = opts.fuel.clone();
528 let passes = opts.passes();
529 // Before anything runs, because each of these is a fact about the module and every pass after
530 // this sees one function. Only when a pass in this run reads them: a flag nothing looks at
531 // would show up in every `-O0` dump and mean nothing to anybody reading one.
532 if passes.iter().any(|pass| READS_SUMMARIES.contains(&pass.name())) {
533 nofree::annotate(module, names);
534 extents::annotate(module);
535 params::annotate(module);
536 heap::annotate(module, names);
537 }
538 for (index, pass) in passes.into_iter().enumerate() {
539 let name = pass.name();
540 if opts.dumps.wants_before(name) {
541 report.dumps.push(dump(index, "before", name, module, names));
542 }
543 let mut fuel = match (allowance.get(name).copied(), budget) {
544 // Whichever limit is tighter, because two limits that disagree mean the one that
545 // stops first, and a bisection that started with the global one has to stay inside
546 // it while the per pass one is halved.
547 (Some(count), Some(left)) => Fuel::of(count.min(left)),
548 (Some(count), None) => Fuel::of(count),
549 (None, Some(left)) => Fuel::of(left),
550 (None, None) => Fuel::unlimited(),
551 };
552 // What the level and the `-f` flags decided, which is what a gate overrides for the
553 // functions it names and leaves alone for the ones it does not.
554 let default = chosen.contains(&name);
555 for id in module.funcs() {
556 if module[id].is_declaration() {
557 continue;
558 }
559 if !opts.gates.allows(name, default, id.raw(), names.resolve(module[id].name)) {
560 // No remark either. A pass that did not run on a function has nothing to say
561 // about it, and a record saying it found nothing would read as a pass that
562 // looked.
563 continue;
564 }
565 let an = cached.entry(id).or_insert_with(|| Analyses::new(machine));
566 let stats = pass.run(&mut module[id], an, &mut fuel);
567 // A pass that changed nothing preserved everything, whatever it says about itself,
568 // so the cheap case does not need every pass to have a second opinion about it.
569 // A pass that did change something is taken at its word, and in a checked build the
570 // word is checked.
571 let keeps = if stats.changed() { pass.preserves() } else { Preserved::ALL };
572 for broken in an.settle(&module[id], keeps, opts.verify) {
573 let func = names.resolve(module[id].name);
574 report.broke.push(format!(
575 "the {name} pass said it preserved {} of {func} and did not",
576 broken.name()
577 ));
578 }
579 // Here rather than after the pass, and this function rather than the module. A pass
580 // is a function pass, so the only thing it can have broken is the function it was
581 // given, and walking the other ones again after every one of them is the quadratic
582 // walk `rucc_ir::verify_func` exists to avoid. Doing it here is also what lets the
583 // message name the function, which the module walk could not, and it puts the
584 // failure next to the pass that caused it rather than at the end of the module.
585 if stats.changed() && opts.verify {
586 if let Err(errors) = rucc_ir::verify_func(module, &module[id], names) {
587 let func = names.resolve(module[id].name);
588 for error in errors {
589 report
590 .broke
591 .push(format!("the {name} pass left invalid IR in {func}, {error}"));
592 }
593 }
594 }
595 // The record is the only place the manager learns that anything happened, which is
596 // why the pass cannot leave recording until later. See `crate::stats`.
597 report.remarks.push(Remark { pass: name, func: module[id].name, stats });
598 }
599 // Added to rather than pushed, so a pass the list names twice is one line here with what
600 // both of its runs spent. That is the number a bisection halves, and two lines under one
601 // name would be two numbers where the flag takes one.
602 match report.spent.iter_mut().find(|(it, _)| *it == name) {
603 Some((_, total)) => *total += fuel.spent(),
604 None => report.spent.push((name, fuel.spent())),
605 }
606 if let Some(left) = &mut budget {
607 // Never below zero, because the allowance the pass was given was at most this.
608 *left -= fuel.spent();
609 }
610 if let Some(left) = allowance.get_mut(name) {
611 // Same, and for the same reason.
612 *left -= fuel.spent();
613 }
614 if opts.dumps.wants_after(name) {
615 report.dumps.push(dump(index, "after", name, module, names));
616 }
617 }
618 report
619}
620
621/// The module written out, under a name that sorts in the order the passes ran.
622fn dump(index: usize, side: &str, name: &str, module: &Module, names: &Interner) -> Dump {
623 Dump { name: format!("{index:02}-{side}-{name}"), text: rucc_ir::print(module, names) }
624}
625
626/// Renders what `--print-pipeline` prints.
627///
628/// One line per pass, numbered from one, with what the pass does after it. A level that runs
629/// nothing says so rather than printing an empty list, because an empty answer and a broken
630/// command look the same.
631#[must_use]
632pub fn print(opts: &Options) -> String {
633 let mut out = String::new();
634 let _ = writeln!(out, "level: {}", opts.level);
635 // Only when it was asked for, so the listing of a compilation nobody is bisecting is the
636 // same listing it has always been. A run under a budget is a run whose output is not the
637 // one the level asked for, and the listing is where that has to be visible.
638 if let Some(count) = opts.global_fuel {
639 let _ = writeln!(out, "global fuel: {count}");
640 }
641 let passes = opts.passes();
642 if passes.is_empty() {
643 let _ = writeln!(out, "no passes");
644 return out;
645 }
646 for (index, pass) in passes.iter().enumerate() {
647 let _ = write!(out, "{}: {}, {}", index + 1, pass.name(), pass.describe());
648 // Only when a gate mentions the pass, so the listing of a compilation nobody is
649 // debugging is the same listing it has always been.
650 if let Some(note) = opts.gates.note(pass.name()) {
651 let _ = write!(out, " [{note}]");
652 }
653 out.push('\n');
654 }
655 out
656}
657
658#[cfg(test)]
659mod tests {
660 use rucc_base::Interner;
661 use rucc_ir::{Builder, Flags, Func, Module, Opcode, Signature, Type};
662 use rucc_session::OptLevel;
663 use rucc_target::{Arch, Env, Os, TargetInfo, Triple};
664
665 use super::{Dumps, Options, for_level};
666 use crate::stats::Kind;
667 use crate::{Pass, pass};
668
669 /// A module with one function whose body has something to fold in it.
670 fn module() -> (Interner, Module) {
671 let mut names = Interner::new();
672 let target = TargetInfo::new(Triple::new(Arch::X86_64, Os::Linux, Env::Gnu));
673 let mut module = Module::new(names.intern("test.c"), &target);
674 let func = foldable(&mut names, "f");
675 module.add_func(func);
676 (names, module)
677 }
678
679 /// A module with two of them, called `f` and `g`, in that order, so `f` is function 0.
680 fn two_functions() -> (Interner, Module) {
681 let mut names = Interner::new();
682 let target = TargetInfo::new(Triple::new(Arch::X86_64, Os::Linux, Env::Gnu));
683 let mut module = Module::new(names.intern("test.c"), &target);
684 for name in ["f", "g"] {
685 let func = foldable(&mut names, name);
686 module.add_func(func);
687 }
688 (names, module)
689 }
690
691 /// A module with one function holding two identities the peephole takes, on a value that
692 /// arrives as a parameter so that folding cannot get to them first.
693 fn identities() -> (Interner, Module) {
694 let mut names = Interner::new();
695 let target = TargetInfo::new(Triple::new(Arch::X86_64, Os::Linux, Env::Gnu));
696 let mut module = Module::new(names.intern("test.c"), &target);
697 let i32_ = Type::int(32);
698 let mut func = Func::new(
699 names.intern("h"),
700 Signature::new().with_params(&[i32_]).with_returns(&[i32_]),
701 );
702 let entry = func.create_block();
703 let x = func.append_param(entry, i32_);
704 let mut build = Builder::new(&mut func, entry);
705 let zero = build.iconst(i32_, 0);
706 let one = build.iconst(i32_, 1);
707 let sum = build.binary(Opcode::Add, x, zero, Flags::NONE);
708 let product = build.binary(Opcode::Mul, sum, one, Flags::NONE);
709 build.ret(&[product]);
710 module.add_func(func);
711 (names, module)
712 }
713
714 /// A function that returns a sign extension of a constant, which folding rewrites.
715 fn foldable(names: &mut Interner, name: &str) -> Func {
716 let mut func =
717 Func::new(names.intern(name), Signature::new().with_returns(&[Type::int(64)]));
718 let block = func.create_block();
719 let mut build = Builder::new(&mut func, block);
720 let narrow = build.iconst(Type::int(32), 7);
721 let wide = build.unary(Opcode::SExt, narrow, Type::int(64));
722 build.ret(&[wide]);
723 func
724 }
725
726 /// Whether the pass said anything about the function, which it only does when it ran on it.
727 fn spoke_about(report: &super::Report, pass: &str, func: &str, names: &Interner) -> bool {
728 report.remarks.iter().any(|it| it.pass == pass && names.resolve(it.func) == func)
729 }
730
731 #[test]
732 fn every_pass_a_pipeline_names_is_a_pass_that_exists() {
733 for level in
734 [OptLevel::O0, OptLevel::O1, OptLevel::O2, OptLevel::O3, OptLevel::Os, OptLevel::Oz]
735 {
736 for name in for_level(level) {
737 assert!(
738 pass::find(name).is_some(),
739 "{level} names `{name}` and no pass answers to it"
740 );
741 }
742 }
743 }
744
745 #[test]
746 fn a_pass_a_pipeline_names_twice_is_never_named_twice_in_a_row() {
747 // Running a pass again after another pass has been through is the point of naming it
748 // twice, and `simplify` around `narrow` is why the rule that used to be here, which was
749 // that no level names a pass twice at all, is not the rule any more. Two runs with
750 // nothing between them is still a mistake: the second one sees exactly what the first
751 // one finished with, so it can only report that it found nothing.
752 for level in
753 [OptLevel::O0, OptLevel::O1, OptLevel::O2, OptLevel::O3, OptLevel::Os, OptLevel::Oz]
754 {
755 for pair in for_level(level).windows(2) {
756 assert_ne!(pair[0], pair[1], "{level} runs `{}` twice in a row", pair[0]);
757 }
758 }
759 }
760
761 #[test]
762 fn a_pass_the_pipeline_runs_twice_gets_one_allowance_and_reports_one_number() {
763 // `-fpass-fuel=<pass>=<n>` is halved to find one rewrite, so the number in the flag has
764 // to be the number of rewrites that happened however many times the list names the pass.
765 // The peephole is named twice from `-O1` up and the function below holds two identities
766 // it takes, so a cap of one has to stop after one rather than after one per occurrence.
767 assert_eq!(for_level(OptLevel::O2).iter().filter(|it| **it == "simplify").count(), 2);
768
769 let (names, mut module) = identities();
770 let free = super::run(&mut module, &names, &Options::for_level(OptLevel::O2));
771 assert_eq!(spent(&free, "simplify"), Some(2), "{:?}", free.spent);
772
773 let (names, mut module) = identities();
774 let mut opts = Options::for_level(OptLevel::O2);
775 opts.fuel.insert("simplify".to_owned(), 1);
776 let capped = super::run(&mut module, &names, &opts);
777 assert_eq!(capped.spent.iter().filter(|(name, _)| *name == "simplify").count(), 1);
778 assert_eq!(spent(&capped, "simplify"), Some(1), "{:?}", capped.spent);
779 }
780
781 #[test]
782 fn an_identity_only_the_narrow_pass_can_produce_is_still_taken() {
783 // Issue 505, and the reason the peephole is named on both sides of `narrow`. C promotes
784 // before it operates, so `unsigned char x; (unsigned char)(x & 255)` arrives here as a
785 // thirty two bit `and` of a zero extension, and the rule that says `and` with every bit
786 // set is the value has nothing at eight bits to match. `narrow` is the only producer that
787 // width has. Before this ran twice the `and.i8` below reached the back end untouched.
788 let mut names = Interner::new();
789 let target = TargetInfo::new(Triple::new(Arch::X86_64, Os::Linux, Env::Gnu));
790 let mut module = Module::new(names.intern("test.c"), &target);
791 let (i8_, i32_) = (Type::int(8), Type::int(32));
792 let mut func =
793 Func::new(names.intern("f"), Signature::new().with_params(&[i8_]).with_returns(&[i8_]));
794 let entry = func.create_block();
795 let x = func.append_param(entry, i8_);
796 let mut build = Builder::new(&mut func, entry);
797 let wide = build.unary(Opcode::ZExt, x, i32_);
798 let mask = build.iconst(i32_, 255);
799 let kept = build.binary(Opcode::And, wide, mask, Flags::NONE);
800 let back = build.unary(Opcode::Trunc, kept, i8_);
801 build.ret(&[back]);
802 module.add_func(func);
803
804 let report = super::run(&mut module, &names, &Options::for_level(OptLevel::O2));
805 assert!(report.broke.is_empty(), "{:?}", report.broke);
806 let text = rucc_ir::print(&module, &names);
807 assert!(!text.contains("and."), "the masking survived the pipeline\n{text}");
808 }
809
810 /// What a pass spent, or `None` if it did not run.
811 fn spent(report: &super::Report, pass: &str) -> Option<u32> {
812 report.spent.iter().find(|(name, _)| *name == pass).map(|&(_, count)| count)
813 }
814
815 /// The names of the passes a set of options would run, in order.
816 fn names(opts: &Options) -> Vec<&'static str> {
817 opts.passes().into_iter().map(Pass::name).collect()
818 }
819
820 #[test]
821 fn the_level_that_optimizes_nothing_still_removes_what_nothing_reaches() {
822 // One pass at `-O0`, and it is the one that is not an optimization. See the comment on
823 // the level itself, and issue 359.
824 assert_eq!(names(&Options::for_level(OptLevel::O0)), ["simplify-cfg"]);
825 assert!(names(&Options::for_level(OptLevel::O2)).len() > 1);
826 }
827
828 #[test]
829 fn a_pass_is_removed_by_no_and_added_by_the_bare_name_and_the_last_word_wins() {
830 let mut opts = Options::for_level(OptLevel::O2);
831 opts.toggles.push(("fold".to_owned(), false));
832 assert!(!names(&opts).contains(&"fold"), "{:?}", names(&opts));
833 opts.toggles.push(("fold".to_owned(), true));
834 assert!(names(&opts).contains(&"fold"), "{:?}", names(&opts));
835
836 let mut off = Options::for_level(OptLevel::O0);
837 off.toggles.push(("fold".to_owned(), true));
838 assert_eq!(
839 names(&off),
840 ["simplify-cfg", "fold"],
841 "a pass the level did not choose is still reachable"
842 );
843 }
844
845 #[test]
846 fn asking_for_a_pass_twice_does_not_run_it_twice() {
847 let mut opts = Options::for_level(OptLevel::O2);
848 let before = names(&opts);
849 opts.toggles.push(("fold".to_owned(), true));
850 assert_eq!(names(&opts), before);
851 }
852
853 #[test]
854 fn the_pipeline_listing_names_the_level_and_every_pass_in_order() {
855 let text = super::print(&Options::for_level(OptLevel::O2));
856 assert!(text.starts_with("level: -O2\n"), "{text}");
857 assert!(text.contains("1: fold, "), "{text}");
858 let mut none = Options::for_level(OptLevel::O0);
859 none.toggles.push(("simplify-cfg".to_owned(), false));
860 let none = super::print(&none);
861 assert!(none.contains("no passes"), "{none}");
862 }
863
864 #[test]
865 fn running_the_pipeline_changes_the_module_and_reports_what_it_spent() {
866 let (names, mut module) = module();
867 let report = super::run(&mut module, &names, &Options::for_level(OptLevel::O2));
868 // Folding rewrites the sign extension into a constant, and then the constant it was
869 // extending is read by nothing and dead code elimination takes it out. One
870 // transformation each, which is what the two of them together are for. Asserted by
871 // name rather than as the whole vector, so a pass added later does not fail this.
872 assert_eq!(spent(&report, "fold"), Some(1));
873 assert_eq!(spent(&report, "dce"), Some(1));
874 assert!(report.broke.is_empty(), "{:?}", report.broke);
875 assert!(report.dumps.is_empty(), "nothing asked for a dump");
876 assert!(rucc_ir::print(&module, &names).contains("iconst.i64 7"));
877 }
878
879 #[test]
880 fn the_analyses_survive_a_pass_that_keeps_them_and_not_one_that_does_not() {
881 // The pipeline half of the analysis manager. A branch on a constant, so `simplify-cfg`
882 // has something to do and says it preserved nothing, and the whole run comes out with
883 // the verifier and the manager both satisfied. What a pass that lied would produce is in
884 // `crate::analysis`, where a lie can be told on purpose.
885 let mut names = Interner::new();
886 let target = TargetInfo::new(Triple::new(Arch::X86_64, Os::Linux, Env::Gnu));
887 let mut module = Module::new(names.intern("test.c"), &target);
888 let mut func = Func::new(names.intern("f"), Signature::new());
889 let entry = func.create_block();
890 let dead = func.create_block();
891 let exit = func.create_block();
892 let mut build = Builder::new(&mut func, entry);
893 let never = build.iconst(Type::int(1), 0);
894 build.br_if(never, dead, &[], exit, &[]);
895 for block in [dead, exit] {
896 let mut build = Builder::new(&mut func, block);
897 build.ret(&[]);
898 }
899 module.add_func(func);
900 let report = super::run(&mut module, &names, &Options::for_level(OptLevel::O2));
901 // The fold, and then the merge of the arm it left with one way into it.
902 assert_eq!(spent(&report, "simplify-cfg"), Some(2));
903 assert!(report.broke.is_empty(), "{:?}", report.broke);
904 let text = rucc_ir::print(&module, &names);
905 // The labels, which start a line, and not the mentions of one, which are indented. One
906 // left: the arm nothing reaches went, and the arm that is always taken came up into the
907 // entry, which is what is left of the branch.
908 assert_eq!(text.matches("\nblock").count(), 1, "there is more than one block:\n{text}");
909 }
910
911 #[test]
912 fn no_pass_that_optimizes_runs_at_no_optimization_however_much_there_is_to_do() {
913 let (names, mut module) = module();
914 let before = rucc_ir::print(&module, &names);
915 let report = super::run(&mut module, &names, &Options::for_level(OptLevel::O0));
916 // The one pass the level runs looked, found no branch it could read and no block nothing
917 // reaches, and spent nothing. The constant arithmetic the fixture is full of is still
918 // there, which is the part of `-O0` that has not changed.
919 assert_eq!(report.spent, vec![("simplify-cfg", 0)]);
920 assert_eq!(rucc_ir::print(&module, &names), before);
921 }
922
923 #[test]
924 fn a_gate_takes_a_pass_away_from_one_function_and_leaves_the_other_alone() {
925 let (names, mut module) = two_functions();
926 let mut opts = Options::for_level(OptLevel::O2);
927 opts.gates.add(false, "fold=g").expect("g is a function and fold is a pass");
928 let report = super::run(&mut module, &names, &opts);
929 assert!(spoke_about(&report, "fold", "f", &names));
930 assert!(!spoke_about(&report, "fold", "g", &names), "fold ran where it was gated off");
931 assert!(spoke_about(&report, "dce", "g", &names), "one pass gated off is not all of them");
932 // What the gate is for: the two functions came out different, and the difference is one
933 // pass on one function rather than a level on a file.
934 let text = rucc_ir::print(&module, &names);
935 assert_eq!(text.matches("sext.i64").count(), 1, "{text}");
936 }
937
938 #[test]
939 fn a_function_can_be_gated_by_the_number_it_has_in_the_module() {
940 let (names, mut module) = two_functions();
941 let mut opts = Options::for_level(OptLevel::O2);
942 opts.gates.add(false, "fold=0").expect("0 is a function and fold is a pass");
943 let report = super::run(&mut module, &names, &opts);
944 assert!(!spoke_about(&report, "fold", "f", &names), "function 0 is the first one");
945 assert!(spoke_about(&report, "fold", "g", &names));
946 }
947
948 #[test]
949 fn enabling_a_pass_reaches_one_function_at_a_level_that_did_not_ask_for_it() {
950 let (names, mut module) = two_functions();
951 let mut opts = Options::for_level(OptLevel::O0);
952 opts.gates.add(true, "fold=1").expect("1 is a function and fold is a pass");
953 let running: Vec<&str> = opts.passes().into_iter().map(Pass::name).collect();
954 assert_eq!(
955 running,
956 ["simplify-cfg", "fold"],
957 "the flag has to put the pass in the pipeline"
958 );
959 let report = super::run(&mut module, &names, &opts);
960 assert!(!spoke_about(&report, "fold", "f", &names), "nothing asked for f");
961 assert!(spoke_about(&report, "fold", "g", &names));
962 let text = rucc_ir::print(&module, &names);
963 assert_eq!(text.matches("sext.i64").count(), 1, "{text}");
964 }
965
966 #[test]
967 fn a_pass_gated_off_everywhere_runs_on_nothing_and_still_says_so() {
968 let (names, mut module) = two_functions();
969 let before = rucc_ir::print(&module, &names);
970 let mut opts = Options::for_level(OptLevel::O2);
971 for pass in pass::PASSES {
972 opts.gates.add(false, pass.name()).expect("a pass in the list is a pass that exists");
973 }
974 let report = super::run(&mut module, &names, &opts);
975 assert!(report.remarks.is_empty(), "a pass that did not run has nothing to report");
976 assert_eq!(spent(&report, "fold"), Some(0), "the pass is still in the pipeline");
977 assert_eq!(rucc_ir::print(&module, &names), before);
978 }
979
980 #[test]
981 fn the_pipeline_listing_says_which_passes_a_gate_touched() {
982 let mut opts = Options::for_level(OptLevel::O2);
983 opts.gates.add(false, "fold=2-4").expect("fold is a pass");
984 let text = super::print(&opts);
985 assert!(text.contains("1: fold, "), "{text}");
986 assert!(text.contains("[off for 2-4]"), "{text}");
987 assert_eq!(text.matches('[').count(), 1, "a pass no gate mentions says nothing extra");
988 }
989
990 #[test]
991 fn every_pass_at_no_fuel_leaves_the_module_exactly_as_it_found_it() {
992 // The check section 9.10 asks for by name, and the reason it is here rather than in each
993 // pass is that it has to hold for every pass that is ever added.
994 for pass in pass::PASSES {
995 let (names, mut module) = module();
996 let before = rucc_ir::print(&module, &names);
997 let mut opts = Options::for_level(OptLevel::O0);
998 // The level's own pass out of the way first, so that what this measures is the one
999 // pass under test. A pass turned off and then on again is on, so this is right for
1000 // that pass as well as for the others.
1001 opts.toggles.push(("simplify-cfg".to_owned(), false));
1002 opts.toggles.push((pass.name().to_owned(), true));
1003 opts.fuel.insert(pass.name().to_owned(), 0);
1004 let report = super::run(&mut module, &names, &opts);
1005 assert_eq!(
1006 report.spent,
1007 vec![(pass.name(), 0)],
1008 "{} spent fuel it had none of",
1009 pass.name()
1010 );
1011 assert_eq!(
1012 rucc_ir::print(&module, &names),
1013 before,
1014 "{} transformed the module at fuel zero",
1015 pass.name()
1016 );
1017 }
1018 }
1019
1020 #[test]
1021 fn fuel_is_shared_across_the_functions_of_a_module() {
1022 let mut names = Interner::new();
1023 let target = TargetInfo::new(Triple::new(Arch::X86_64, Os::Linux, Env::Gnu));
1024 let mut module = Module::new(names.intern("test.c"), &target);
1025 for which in ["f", "g"] {
1026 let mut func =
1027 Func::new(names.intern(which), Signature::new().with_returns(&[Type::int(64)]));
1028 let block = func.create_block();
1029 let mut build = Builder::new(&mut func, block);
1030 let narrow = build.iconst(Type::int(32), 7);
1031 let wide = build.unary(Opcode::SExt, narrow, Type::int(64));
1032 build.ret(&[wide]);
1033 module.add_func(func);
1034 }
1035 let mut opts = Options::for_level(OptLevel::O2);
1036 opts.fuel.insert("fold".to_owned(), 1);
1037 let report = super::run(&mut module, &names, &opts);
1038 // One fold across both functions, because fuel is per pass and per compilation. Dead
1039 // code elimination has its own and spends it on the constant the one fold orphaned.
1040 assert_eq!(spent(&report, "fold"), Some(1));
1041 assert_eq!(spent(&report, "dce"), Some(1));
1042 let text = rucc_ir::print(&module, &names);
1043 assert_eq!(text.matches("sext.i64").count(), 1, "{text}");
1044 }
1045
1046 #[test]
1047 fn global_fuel_is_spent_by_the_passes_in_order_and_the_rest_get_none() {
1048 let (names, mut module) = module();
1049 let mut opts = Options::for_level(OptLevel::O2);
1050 opts.global_fuel = Some(1);
1051 let report = super::run(&mut module, &names, &opts);
1052 // Folding is first and there is one thing to fold, so it takes the one unit and dead
1053 // code elimination gets nothing. Without the budget it would have taken the constant
1054 // that fold orphaned, which is what the other test measures.
1055 assert_eq!(spent(&report, "fold"), Some(1));
1056 assert_eq!(spent(&report, "dce"), Some(0));
1057 let text = rucc_ir::print(&module, &names);
1058 assert!(text.contains("iconst.i64 7"), "{text}");
1059 assert!(text.contains("iconst.i32 7"), "the orphaned constant is still there, {text}");
1060 }
1061
1062 #[test]
1063 fn a_budget_of_nothing_leaves_the_module_alone_and_still_runs_every_pass() {
1064 let (names, mut module) = module();
1065 let before = rucc_ir::print(&module, &names);
1066 let mut opts = Options::for_level(OptLevel::O2);
1067 opts.global_fuel = Some(0);
1068 let report = super::run(&mut module, &names, &opts);
1069 assert_eq!(rucc_ir::print(&module, &names), before);
1070 assert!(report.spent.iter().all(|(_, spent)| *spent == 0), "{:?}", report.spent);
1071 // Every pass, because a pass out of fuel is a pass that ran and did nothing rather than
1072 // a pass that was skipped, and a bisection that skipped passes would be searching a
1073 // different pipeline at every step. One line per name rather than one per place the list
1074 // names it, because what a name was given is one allowance across all of them.
1075 let mut want: Vec<&str> = opts.passes().into_iter().map(Pass::name).collect();
1076 want.sort_unstable();
1077 want.dedup();
1078 let mut got: Vec<&str> = report.spent.iter().map(|&(name, _)| name).collect();
1079 got.sort_unstable();
1080 assert_eq!(got, want);
1081 }
1082
1083 #[test]
1084 fn the_tighter_of_the_two_limits_is_the_one_that_stops_the_pass() {
1085 // A pass allowed more than the budget gets the budget.
1086 let (names, mut under) = module();
1087 let mut opts = Options::for_level(OptLevel::O2);
1088 opts.global_fuel = Some(0);
1089 opts.fuel.insert("fold".to_owned(), 9);
1090 assert_eq!(spent(&super::run(&mut under, &names, &opts), "fold"), Some(0));
1091
1092 // And a pass allowed less than the budget keeps its own limit, with the budget left
1093 // over for whatever comes after it.
1094 let (names, mut over) = module();
1095 let mut opts = Options::for_level(OptLevel::O2);
1096 opts.global_fuel = Some(9);
1097 opts.fuel.insert("fold".to_owned(), 0);
1098 let report = super::run(&mut over, &names, &opts);
1099 assert_eq!(spent(&report, "fold"), Some(0));
1100 assert_eq!(spent(&report, "dce"), Some(0), "nothing was orphaned for it to remove");
1101 }
1102
1103 #[test]
1104 fn the_pipeline_listing_says_when_there_is_a_budget_and_says_nothing_when_there_is_not() {
1105 let opts = Options::for_level(OptLevel::O2);
1106 assert!(!super::print(&opts).contains("global fuel"));
1107 let with = Options { global_fuel: Some(12), ..Options::for_level(OptLevel::O2) };
1108 assert!(super::print(&with).contains("global fuel: 12"), "{}", super::print(&with));
1109 }
1110
1111 #[test]
1112 fn a_dump_is_taken_on_the_side_that_asked_for_it_and_not_the_other() {
1113 let (names, mut module) = module();
1114 let mut opts = Options::for_level(OptLevel::O2);
1115 opts.dumps.add("after-fold").expect("a pass that exists");
1116 let report = super::run(&mut module, &names, &opts);
1117 assert_eq!(report.dumps.len(), 1);
1118 assert_eq!(report.dumps[0].name, "00-after-fold");
1119 assert!(report.dumps[0].text.contains("iconst.i64 7"));
1120 }
1121
1122 #[test]
1123 fn asking_for_all_dumps_gives_both_sides_of_every_pass() {
1124 let (interner, mut module) = module();
1125 let opts = {
1126 let mut opts = Options::for_level(OptLevel::O2);
1127 opts.dumps.add("all").expect("all is always a dump");
1128 opts
1129 };
1130 let report = super::run(&mut module, &interner, &opts);
1131 // Both sides of every pass in the level, numbered by position, whatever the level
1132 // holds. Written out of the pipeline rather than as a literal, because the point of
1133 // the test is the pairing and the numbering and not which passes exist this month.
1134 let taken: Vec<&str> = report.dumps.iter().map(|d| d.name.as_str()).collect();
1135 let expected: Vec<String> = names(&opts)
1136 .into_iter()
1137 .enumerate()
1138 .flat_map(|(at, name)| {
1139 [format!("{at:02}-before-{name}"), format!("{at:02}-after-{name}")]
1140 })
1141 .collect();
1142 assert_eq!(taken, expected);
1143 assert!(report.dumps[0].text.contains("sext.i64"));
1144 assert!(!report.dumps[1].text.contains("sext.i64"));
1145 }
1146
1147 #[test]
1148 fn every_pass_leaves_a_record_for_every_function_whether_or_not_it_had_anything_to_say() {
1149 let (names, mut module) = module();
1150 let opts = Options::for_level(OptLevel::O2);
1151 let report = super::run(&mut module, &names, &opts);
1152 let ran: Vec<&'static str> = opts.passes().into_iter().map(Pass::name).collect();
1153 // One function in the fixture, so one record per pass, and the passes in the order they
1154 // ran. A pass that found nothing is in here with an empty record, which is the point:
1155 // a pass that fires on nothing is either dead code or a bug, and output that leaves it
1156 // out cannot say which.
1157 let seen: Vec<&'static str> = report.remarks.iter().map(|it| it.pass).collect();
1158 assert_eq!(seen, ran);
1159 assert!(report.remarks.iter().all(|it| names.resolve(it.func) == "f"));
1160 assert!(
1161 report.remarks.iter().any(|it| it.pass == "simplify" && it.stats.is_empty()),
1162 "there is nothing in the fixture for the peephole to do"
1163 );
1164 }
1165
1166 #[test]
1167 fn a_pass_spends_one_unit_of_fuel_for_each_rewrite_it_reports() {
1168 // The invariant that keeps the record honest, checked over every pass rather than
1169 // written into each one. Fuel is taken immediately before a transformation and a
1170 // rewrite is recorded immediately after it, so the two counts are the same number
1171 // arrived at from two directions. A pass where they disagree either transformed without
1172 // asking, which breaks bisection, or rewrote without recording, which means the manager
1173 // did not run the verifier over what it produced.
1174 let (names, mut module) = module();
1175 let report = super::run(&mut module, &names, &Options::for_level(OptLevel::O2));
1176 for (pass, spent) in &report.spent {
1177 assert_eq!(
1178 report.totals(pass).total(Kind::Optimized),
1179 *spent,
1180 "{pass} spent {spent} units of fuel and did not say on what"
1181 );
1182 }
1183 assert!(report.spent.iter().any(|(_, spent)| *spent > 0), "nothing happened at all");
1184 }
1185
1186 #[test]
1187 fn what_the_passes_said_is_what_opt_info_prints() {
1188 let (names, mut module) = module();
1189 let report = super::run(&mut module, &names, &Options::for_level(OptLevel::O2));
1190 let text = crate::optinfo::render("t.c", &report, &names, crate::Wants::all());
1191 assert!(
1192 text.contains("t.c: f: optimized: integer instruction folded to a constant (1) [fold]"),
1193 "{text}"
1194 );
1195 assert!(
1196 text.contains(
1197 "t.c: f: optimized: instruction with no effects and no users removed (1) [dce]"
1198 ),
1199 "{text}"
1200 );
1201 // Nothing in the fixture is a miss, so asking only for the misses gets nothing back,
1202 // and that is different from the flag having been left off.
1203 let mut misses = crate::Wants::none();
1204 misses.add("missed").expect("that kind exists");
1205 assert_eq!(crate::optinfo::render("t.c", &report, &names, misses), "");
1206 }
1207
1208 #[test]
1209 fn the_verifier_says_which_function_it_refused_and_leaves_the_others_out_of_it() {
1210 // Two functions with the same foldable body, and a block in the second one that nothing
1211 // reaches, which the verifier refuses. The pass is not what put it there, and the
1212 // complaint says the pass anyway, because a pass that hands back a function the
1213 // verifier will not take is where the search has to start whoever wrote the block.
1214 let mut names = Interner::new();
1215 let target = TargetInfo::new(Triple::new(Arch::X86_64, Os::Linux, Env::Gnu));
1216 let mut module = Module::new(names.intern("test.c"), &target);
1217 module.add_func(foldable(&mut names, "f"));
1218 let mut g = foldable(&mut names, "g");
1219 let stranded = g.create_block();
1220 let mut build = Builder::new(&mut g, stranded);
1221 let seven = build.iconst(Type::int(64), 7);
1222 build.ret(&[seven]);
1223 module.add_func(g);
1224
1225 // Folding on its own, because simplify-CFG would take the stranded block out and there
1226 // would be nothing left to complain about.
1227 let mut opts = Options::for_level(OptLevel::O0);
1228 opts.toggles.push(("simplify-cfg".to_owned(), false));
1229 opts.toggles.push(("fold".to_owned(), true));
1230 opts.verify = true;
1231 let report = super::run(&mut module, &names, &opts);
1232
1233 assert_eq!(report.broke.len(), 1, "{:?}", report.broke);
1234 let complaint = &report.broke[0];
1235 assert!(complaint.starts_with("the fold pass left invalid IR in g,"), "{complaint}");
1236 assert!(complaint.contains("this block is not reachable"), "{complaint}");
1237 }
1238
1239 #[test]
1240 fn a_function_a_pass_did_not_change_is_not_verified_after_it() {
1241 // The stranded block is in `f` this time and `f` has nothing to fold, so the pass runs
1242 // over an invalid function, changes nothing, and says nothing. That is the whole trade:
1243 // the verifier answers for the rewrite that just happened, and a function no rewrite
1244 // touched was already answered for when it was built.
1245 let mut names = Interner::new();
1246 let target = TargetInfo::new(Triple::new(Arch::X86_64, Os::Linux, Env::Gnu));
1247 let mut module = Module::new(names.intern("test.c"), &target);
1248 let mut f = Func::new(names.intern("f"), Signature::new().with_returns(&[Type::int(64)]));
1249 for _ in 0..2 {
1250 let block = f.create_block();
1251 let mut build = Builder::new(&mut f, block);
1252 let seven = build.iconst(Type::int(64), 7);
1253 build.ret(&[seven]);
1254 }
1255 module.add_func(f);
1256 module.add_func(foldable(&mut names, "g"));
1257
1258 let mut opts = Options::for_level(OptLevel::O0);
1259 opts.toggles.push(("simplify-cfg".to_owned(), false));
1260 opts.toggles.push(("fold".to_owned(), true));
1261 opts.verify = true;
1262 let report = super::run(&mut module, &names, &opts);
1263
1264 assert!(report.broke.is_empty(), "{:?}", report.broke);
1265 // And it did run on it, so this is the verifier staying quiet rather than the pass
1266 // being skipped.
1267 assert!(spoke_about(&report, "fold", "f", &names));
1268 }
1269
1270 #[test]
1271 fn a_dump_of_a_pass_that_does_not_exist_is_refused_rather_than_ignored() {
1272 let mut dumps = Dumps::default();
1273 assert!(dumps.add("after-no-such-pass").is_err());
1274 assert!(dumps.add("sideways-fold").is_err());
1275 assert!(dumps.add("fold").is_err());
1276 assert!(dumps.is_empty());
1277 }
1278}