rucc_opt/memssa.rs
1//! Memory SSA: the chain, and the budgeted walk back to the store a load sees.
2//!
3//! Design: `spec/optimizer/09-memory-ssa.md`. The representation is in `rucc-ir` and this is what
4//! builds it and what reads it.
5//!
6//! # One variable
7//!
8//! GCC has had this since 2004 and calls it virtual operands: a statement that reads memory
9//! carries a VUSE, one that writes memory carries a VDEF, and both are versions of one artificial
10//! variable called `.MEM`. LLVM calls the same three things `MemoryUse`, `MemoryDef` and
11//! `MemoryPhi`. The idea in both is to reuse the scalar SSA machinery for memory by pretending
12//! memory is one scalar, and it is the right idea, so this does the same.
13//!
14//! The consequence is that the def-use chain over memory is maximally conservative. Every store
15//! kills every load, structurally. All of the precision comes from walking it, which is what
16//! [`Walk::clobber`] does.
17//!
18//! [`build`] is the construction: place a memory parameter at every join the memory versions
19//! reach, which is the same iterated dominance frontier that SSA construction uses, and thread
20//! the operand through every instruction that touches memory. A memory phi is an ordinary block
21//! parameter, so nothing here is a side table and the CFG updates that keep memory SSA in step
22//! with the blocks are the ones every other value already needed.
23//!
24//! # The walk
25//!
26//! [`Walk::clobber`] is GCC's `walk_non_aliased_vuses` at `gcc/tree-ssa-alias.cc:3915`. Given the
27//! version of memory a load reads, it walks back through the defs, asks the alias analysis at each
28//! one whether that def could have written what the load reads, and stops at the first one that
29//! could. Two parts of GCC's interface are worth copying and both are here.
30//!
31//! **The budget.** `sccvn-max-alias-queries-per-access`, default 1000 at `gcc/params.opt:1020`,
32//! and it is [`MAX_ALIAS_QUERIES_PER_ACCESS`] here under the same name, because a user who knows
33//! to raise GCC's should not have to learn a second one. The walk is worst case quadratic: every
34//! load can walk back through every store and each step is an alias query, so a function with a
35//! thousand of each and no disambiguation is a million queries per pass that uses it, and there
36//! are four such passes. Exceeding the budget gives [`Clobber::Unknown`], which is not an answer
37//! and is not a no.
38//!
39//! **`translate`.** When the walk reaches a def it cannot see past, the caller may adjust the
40//! reference and carry on, which is [`Step::Retry`]. This is what lets value numbering follow a
41//! load through a `memcpy` by rewriting the reference to the copy's source, and section 9.2 says
42//! it is the mechanism behind a surprising fraction of GCC's memory optimization. Without it the
43//! walk is a stopping condition. With it, it is a way to rewrite the question.
44//!
45//! A rewrite is counted, as [`Counts::rewritten`], for the same reason the steps and the budget
46//! exhaustions are: it is the one thing in the walk that starts the walk again, so it is where the
47//! work goes when the work goes somewhere unexpected, and it is what says whether the callback is
48//! reaching anything at all on a build rather than only on the build somebody last looked at.
49//!
50//! # Five answers, not two
51//!
52//! [`Clobber`] has five variants and the shape of it is deliberate. Section 9.6 names two ways
53//! this goes wrong and the type is what rules both out.
54//!
55//! The first is a caller treating a budget exhaustion as a no. There is no `Option` anywhere in
56//! the return and there is no default arm to fall into, so [`Clobber::Unknown`] has to be handled
57//! by name.
58//!
59//! The second is partial overlap. A four byte store followed by a one byte load at offset one:
60//! the load sees the store, but it cannot be replaced by the stored value, because the byte it
61//! wants is somewhere inside that value and getting it out is a shift and a truncate. So a
62//! clobber that wrote exactly the bytes of the reference is [`Clobber::Exact`], one that wrote
63//! some of them is [`Clobber::Partial`], and one that may have written them is
64//! [`Clobber::Maybe`]. Section 9.5 says getting this down to two answers is a class of
65//! miscompilation.
66//!
67//! # What is conservative on purpose
68//!
69//! Every atomic and every fence is a full memory def and a full memory use. Section 9.5 says this
70//! is correct and it is what M4 should do, and that doing better means modelling the memory model
71//! rather than the memory, which is post-1.0. The failure mode it names is treating a relaxed
72//! atomic load as an ordinary load because it orders nothing: it orders nothing and it is still a
73//! load, and hoisting it out of a loop changes an observable. Atomics are never moved.
74//!
75//! `volatile` is checked before anything else and is never walked past. Alias analysis says
76//! nothing about how many times an access happens and `volatile` constrains that too, so it is a
77//! separate bit rather than a strong alias fact.
78//!
79//! # The cache
80//!
81//! There is not one. Section 9.3 is explicit: build the uncached walk, instrument how many alias
82//! queries a `-O2` compilation makes, and add caching only if that number is a measurable
83//! fraction of compile time. GCC has run without it for twenty years and LLVM's caching walker is
84//! a large part of its MemorySSA complexity and a known source of invalidation bugs. The
85//! instrumentation is the M4 deliverable and it is [`Counts`]. The number that decides it is the
86//! fraction of walks that end by exhausting the budget rather than by finding a clobber: above
87//! one percent and the budget is too small or the alias analysis is too weak, and both of those
88//! are better fixed than cached around.
89
90use std::collections::{HashMap, HashSet};
91use std::hash::{BuildHasherDefault, Hasher};
92
93use rucc_ir::{Block, BlockCall, Def, Flags, Func, Inst, InstData, MemOrder, Opcode, Type, Value};
94
95use crate::alias::{Access, Alias, Answer, Options};
96use crate::cfg::Cfg;
97use crate::dom::Dominators;
98use crate::outside::Outside;
99
100/// How many alias queries one walk may make before it gives up.
101///
102/// GCC's `sccvn-max-alias-queries-per-access`, default 1000 at `gcc/params.opt:1020`, under the
103/// same name on purpose. Exceeding it gives [`Clobber::Unknown`] rather than a wrong answer.
104pub const MAX_ALIAS_QUERIES_PER_ACCESS: u32 = 1000;
105
106/// What the walk found.
107///
108/// Five variants, and section 9.6 is why. Three of them are a clobber and they differ in how much
109/// of the reference the clobber covers, because a caller that cannot tell `Exact` from `Partial`
110/// replaces a one byte load with the wrong byte of a four byte store. The other two are the ways
111/// a walk ends without one, and `Unknown` is not a no.
112#[derive(Clone, Copy, Debug, PartialEq, Eq)]
113pub enum Clobber {
114 /// This instruction wrote exactly the bytes the reference covers.
115 ///
116 /// The only answer redundant load elimination may act on by taking the stored value, and
117 /// even then only after checking the two types are the same width.
118 Exact(Inst),
119 /// This instruction wrote some of the reference, or wrote all of it and more.
120 ///
121 /// The load sees it, and what it sees cannot be had without taking part of what was stored
122 /// or combining it with something else, which is document 16's decision rather than this
123 /// one's.
124 Partial(Inst),
125 /// This instruction may have written the reference, and there is no telling how much.
126 Maybe(Inst),
127 /// Nothing in this function wrote it. The walk reached the start of the chain.
128 NoClobber,
129 /// The walk ran out of budget, or the paths into a join disagreed. Nothing is known.
130 Unknown,
131}
132
133impl Clobber {
134 /// The instruction, for the three answers that name one.
135 #[must_use]
136 pub const fn inst(self) -> Option<Inst> {
137 match self {
138 Self::Exact(inst) | Self::Partial(inst) | Self::Maybe(inst) => Some(inst),
139 Self::NoClobber | Self::Unknown => None,
140 }
141 }
142}
143
144/// What a caller does when the walk reaches a def it cannot see past.
145///
146/// GCC's `translate` callback, section 9.2. A caller with no rewrite to offer says [`Step::Stop`]
147/// and gets the clobber. One that can see through the def rewrites the reference and the walk
148/// carries on with the new one.
149#[derive(Clone, Copy, Debug, PartialEq, Eq)]
150pub enum Step {
151 /// Stop here. This is the answer.
152 Stop,
153 /// Carry on past this def, asking about this reference instead.
154 Retry(Access),
155}
156
157/// What the walks have cost, which section 9.7 asks for as its own counter.
158///
159/// The walk is charged to whichever pass made it, so `-ftime-report` shows it under GVN and PRE
160/// and not under memory SSA. That is misleading, and the fix section 9.7 asks for is to report
161/// the step count separately from the wall time, because it is the thing to look at when a
162/// pathological input turns up.
163#[derive(Clone, Copy, Debug, Default, PartialEq, Eq)]
164pub struct Counts {
165 walks: u64,
166 steps: u64,
167 exhausted: u64,
168 rewritten: u64,
169}
170
171impl Counts {
172 /// How many walks were made.
173 #[must_use]
174 pub const fn walks(&self) -> u64 {
175 self.walks
176 }
177
178 /// How many defs those walks looked at, which is one alias query each.
179 #[must_use]
180 pub const fn steps(&self) -> u64 {
181 self.steps
182 }
183
184 /// How many walks ended by running out of budget.
185 ///
186 /// This is the number section 9.3 says decides whether the cache gets built. Above one
187 /// percent of walks and the budget is too small or the alias analysis is too weak.
188 #[must_use]
189 pub const fn exhausted(&self) -> u64 {
190 self.exhausted
191 }
192
193 /// How many times a caller rewrote the reference and the walk carried on with the new one.
194 ///
195 /// A rewrite starts a walk of its own, so this is both how much work the `translate` callback
196 /// is asking for and how much it is getting, and it is the counter that says whether the
197 /// callback is doing anything at all on a given build.
198 #[must_use]
199 pub const fn rewritten(&self) -> u64 {
200 self.rewritten
201 }
202}
203
204/// Puts a function on the memory chain, and says whether it did.
205///
206/// Construction is the same iterated dominance frontier SSA construction uses, over one variable:
207/// the blocks that write memory are the definitions, the joins their versions reach get a memory
208/// parameter, and a walk of the dominator tree threads the operand through every instruction that
209/// touches memory. Linear with a dominance frontier factor, per section 9.7.
210///
211/// It gives back `false` and changes nothing for a function that has no memory operations at all,
212/// for a declaration, and for one that is already on the chain. The first of those is the reason
213/// the answer is a `bool` rather than nothing: a function with no memory in it must not get a
214/// `mem_entry`, because a chain that starts and reaches nothing is a chain the verifier turns
215/// down and a reader would have to interpret.
216pub fn build(func: &mut Func) -> bool {
217 let Some(entry) = func.entry() else {
218 return false;
219 };
220 let cfg = Cfg::new(func);
221 let doms = Dominators::new(&cfg);
222
223 // Where the writes are, which is where the versions of memory are defined.
224 let mut defs = vec![entry];
225 let mut any = false;
226 for block in func.blocks() {
227 // A block nothing reaches is one the verifier turns down on its own, and it is not on
228 // the dominator tree either, so threading would leave it off the chain and the chain
229 // would then be neither all of the function nor none of it. Running the cleanup that
230 // deletes it first is the caller's job.
231 if !cfg.reaches(block) {
232 return false;
233 }
234 let mut writes = false;
235 for inst in func.insts(block) {
236 if func.carries_mem(inst) {
237 return false;
238 }
239 let opcode = func[inst].opcode;
240 any |= opcode.touches_memory();
241 writes |= opcode.writes_memory();
242 }
243 if writes && block != entry {
244 defs.push(block);
245 }
246 }
247 // An entry block with nothing in it has no terminator either, so this is not a function the
248 // verifier would have let through and there is nothing sensible to build over it.
249 let Some(first) = func.insts(entry).next() else {
250 return false;
251 };
252 if !any {
253 return false;
254 }
255
256 let joins = iterated_frontier(&cfg, &doms, &defs);
257 let mut params = HashMap::new();
258 for block in func.blocks().collect::<Vec<_>>() {
259 if joins.contains(&block) {
260 params.insert(block, func.append_param(block, Type::MEM));
261 }
262 }
263
264 let start = start_of_chain(func, first);
265 let ends = thread(func, &doms, ¶ms, entry, start);
266 pass_it_on(func, ¶ms, &ends);
267 true
268}
269
270/// Takes the chain back off, and says whether it did.
271///
272/// The inverse of [`build`], and it is here because the back end has never seen memory SSA and is
273/// not going to: `rucc_codegen::capability` says outright that the chain comes off before it runs.
274/// Nothing was taking it off, so until this existed the only way to use the chain was to not use
275/// it. A pass that wants the walk builds the chain, does its work and strips it, which is a linear
276/// walk each way on top of whatever the pass itself costs.
277///
278/// Keeping the chain across passes instead would be cheaper and is a much bigger claim to make,
279/// since every edit to the control flow graph in the optimizer would have to keep the memory
280/// parameters in step with the blocks. That is worth wanting later and is not what this is.
281///
282/// Three things come off, in the order they have to. Every instruction on the chain loses its
283/// incoming version and its outgoing one, which is [`Func::without_mem`], and what it produced
284/// otherwise is forwarded to what the bare one produces. Every memory parameter comes off the
285/// block that has it and the matching argument comes off every branch to that block. The
286/// `mem_entry` at the top goes last, because until the rest is off it is a definition with
287/// readers.
288///
289/// It gives back `false` and changes nothing for a function that is not on the chain.
290pub fn strip(func: &mut Func) -> bool {
291 let mut forward: Vec<(Value, Value)> = Vec::new();
292 let mut gone: Vec<Inst> = Vec::new();
293 let mut entry = None;
294 for block in func.blocks().collect::<Vec<Block>>() {
295 for inst in func.insts(block).collect::<Vec<Inst>>() {
296 if func[inst].opcode == Opcode::MemEntry {
297 entry = Some(inst);
298 continue;
299 }
300 if !func.carries_mem(inst) {
301 continue;
302 }
303 let bare = func.without_mem(inst);
304 func.insert_before(bare, inst);
305 // The results the bare one kept are at the same positions, and the version of memory
306 // the old one produced is past the end of them, so zipping forwards exactly the ones
307 // that have somewhere to go.
308 for (old, new) in func[inst].results().zip(func[bare].results()) {
309 forward.push((old, new));
310 }
311 gone.push(inst);
312 }
313 }
314 if entry.is_none() && gone.is_empty() {
315 return false;
316 }
317 for inst in gone {
318 func.remove_inst(inst);
319 }
320 let forward: HashMap<Value, Value> = forward.into_iter().collect();
321 if !forward.is_empty() {
322 substitute(func, &forward);
323 }
324 drop_params(func);
325 if let Some(inst) = entry {
326 func.remove_inst(inst);
327 }
328 true
329}
330
331/// Takes the memory parameter off every block that has one, and the argument off every branch to
332/// it.
333///
334/// A parameter that goes has to take the argument in the same position out of every branch, and
335/// only the caller knows which branches there are, which is why [`Func::retain_params`] does not
336/// do it. The position is worked out before anything is removed, because renumbering the
337/// parameters and rewriting the arguments cannot both go first.
338fn drop_params(func: &mut Func) {
339 let mut at: HashMap<Block, Vec<usize>> = HashMap::new();
340 let mut going: HashSet<Value> = HashSet::new();
341 for block in func.blocks().collect::<Vec<Block>>() {
342 let mut keep = Vec::new();
343 for (index, ¶m) in func[block].params.iter().enumerate() {
344 if func[param].ty.is_mem() {
345 going.insert(param);
346 } else {
347 keep.push(index);
348 }
349 }
350 if keep.len() != func[block].params.len() {
351 at.insert(block, keep);
352 }
353 }
354 if at.is_empty() {
355 return;
356 }
357 for block in func.blocks().collect::<Vec<Block>>() {
358 let Some(terminator) = func.terminator(block) else {
359 continue;
360 };
361 for target in func.target_list(terminator).iter() {
362 let call = func[target];
363 let Some(keep) = at.get(&call.block) else {
364 continue;
365 };
366 let args: Vec<Value> = keep.iter().map(|&index| func[call.args][index]).collect();
367 let args = func.push_values(&args);
368 func.set_block_call(target, BlockCall { args, ..call });
369 }
370 }
371 for block in at.keys().copied().collect::<Vec<Block>>() {
372 func.retain_params(block, |param| !going.contains(¶m));
373 }
374}
375
376/// The `mem_entry` above that instruction, which is where every chain starts.
377///
378/// It goes at the very top of the entry block, and the verifier insists on that: a start to the
379/// chain anywhere else would have instructions above it that are on the chain and reach a version
380/// of memory defined below them.
381fn start_of_chain(func: &mut Func, first: Inst) -> Value {
382 let span = func.span(first);
383 let inst = func.create_inst(InstData::new(Opcode::MemEntry), &[Type::MEM], span);
384 func.insert_before(inst, first);
385 func[inst].results().next().expect("mem_entry produces one value")
386}
387
388/// Threads the operand through every instruction that touches memory, and says which version of
389/// memory each block ends with.
390///
391/// The walk is over the dominator tree rather than the CFG, because the version reaching the top
392/// of a block is the one its immediate dominator ended with unless the block has a parameter of
393/// its own. That is the ordinary SSA renaming and memory is an ordinary variable here.
394fn thread(
395 func: &mut Func,
396 doms: &Dominators,
397 params: &HashMap<Block, Value>,
398 entry: Block,
399 start: Value,
400) -> HashMap<Block, Value> {
401 // An instruction cannot grow a result, so threading one makes a new instruction beside it and
402 // the old one goes away. What the old one produced is forwarded to what the new one produces,
403 // at the same positions, in one substitution at the end rather than as each is replaced,
404 // because an instruction threaded early can be an operand of one threaded late.
405 let mut forward: Vec<(Value, Value)> = Vec::new();
406 let mut ends = HashMap::new();
407 let mut stack = vec![(entry, start)];
408 while let Some((block, incoming)) = stack.pop() {
409 let mut current = params.get(&block).copied().unwrap_or(incoming);
410 for inst in func.insts(block).collect::<Vec<_>>() {
411 if !func[inst].opcode.touches_memory() {
412 continue;
413 }
414 let fresh = func.with_mem(inst, current);
415 func.insert_before(fresh, inst);
416 for (old, new) in func[inst].results().zip(func[fresh].results()) {
417 forward.push((old, new));
418 }
419 func.remove_inst(inst);
420 if let Some(next) = func.mem_out(fresh) {
421 current = next;
422 }
423 }
424 ends.insert(block, current);
425 stack.extend(doms.children(block).map(|child| (child, current)));
426 }
427
428 let forward: HashMap<Value, Value> = forward.into_iter().collect();
429 if !forward.is_empty() {
430 substitute(func, &forward);
431 }
432 ends
433}
434
435/// Replaces every use of what a threaded instruction produced with what its replacement produces.
436fn substitute(func: &mut Func, forward: &HashMap<Value, Value>) {
437 let with = |value: Value| forward.get(&value).copied().unwrap_or(value);
438 for block in func.blocks().collect::<Vec<_>>() {
439 for inst in func.insts(block).collect::<Vec<_>>() {
440 let args = func[inst].args;
441 func.rewrite(args, with);
442 for call in func.successors(inst).collect::<Vec<_>>() {
443 func.rewrite(call.args, with);
444 }
445 }
446 }
447 // And the names, which go where the readers went, for the same reason `crate::uses::substitute`
448 // moves them. A call is an instruction that carries memory and `int x = f();` names what one
449 // produced, so a value rewritten here can be a value a declaration is spelled by.
450 let mut moving: Vec<Value> = forward.keys().copied().collect();
451 moving.sort_unstable();
452 for from in moving {
453 func.rename_value(from, with(from));
454 }
455}
456
457/// Passes the version of memory each block ends with to the joins it branches to.
458fn pass_it_on(func: &mut Func, params: &HashMap<Block, Value>, ends: &HashMap<Block, Value>) {
459 for block in func.blocks().collect::<Vec<_>>() {
460 let Some(terminator) = func.terminator(block) else {
461 continue;
462 };
463 let Some(&value) = ends.get(&block) else {
464 continue;
465 };
466 for at in func.target_list(terminator).iter() {
467 let call = func[at];
468 if !params.contains_key(&call.block) {
469 continue;
470 }
471 // The memory parameter was appended last, so the argument goes last too, which is
472 // the same rule the operand follows and for the same reason.
473 let args = func.append_arg(call.args, value);
474 func.set_block_call(at, BlockCall { args, ..call });
475 }
476 }
477}
478
479/// The blocks that need a memory parameter, which is the iterated dominance frontier of the
480/// blocks that define a version of memory.
481fn iterated_frontier(cfg: &Cfg, doms: &Dominators, defs: &[Block]) -> HashSet<Block> {
482 let frontier = frontiers(cfg, doms);
483 let mut placed = HashSet::new();
484 let mut seen: HashSet<Block> = defs.iter().copied().collect();
485 let mut work: Vec<Block> = defs.to_vec();
486 while let Some(block) = work.pop() {
487 let Some(targets) = frontier.get(&block) else {
488 continue;
489 };
490 for &target in targets {
491 if placed.insert(target) && seen.insert(target) {
492 work.push(target);
493 }
494 }
495 }
496 placed
497}
498
499/// The dominance frontier of every block, by Cytron's walk from each join up to its immediate
500/// dominator.
501fn frontiers(cfg: &Cfg, doms: &Dominators) -> HashMap<Block, Vec<Block>> {
502 let mut frontier: HashMap<Block, Vec<Block>> = HashMap::new();
503 for block in cfg.reverse_postorder() {
504 let preds = cfg.predecessors(block);
505 if preds.len() < 2 {
506 continue;
507 }
508 let Some(top) = doms.immediate_dominator(block) else {
509 continue;
510 };
511 for &pred in preds {
512 let mut runner = pred;
513 while runner != top {
514 let at = frontier.entry(runner).or_default();
515 if !at.contains(&block) {
516 at.push(block);
517 }
518 let Some(next) = doms.immediate_dominator(runner) else {
519 break;
520 };
521 runner = next;
522 }
523 }
524 }
525 frontier
526}
527
528/// The walk back through the memory chain.
529///
530/// It borrows the function rather than owning anything, and it holds the alias analysis because
531/// every step is a query and the escape analysis inside it is worth building once.
532#[derive(Debug)]
533pub struct Walk<'a> {
534 func: &'a Func,
535 cfg: Cfg,
536 alias: Alias<'a>,
537 limit: u32,
538 counts: Counts,
539 /// The versions the walk under way has been to. Emptied for each walk rather than made again,
540 /// so the room it grew to is used again.
541 seen: Seen,
542}
543
544/// A set of versions of memory, hashed by multiplying the index rather than by SipHash.
545///
546/// A walk starts one of these for every load it is asked about and puts every version it passes
547/// into it, and on jtckdint's `test.c` hashing them was more than a percent of the build. A value
548/// is a small dense number that nobody outside picks, so there is nothing for SipHash to defend
549/// against.
550type Seen = HashSet<Value, BuildHasherDefault<Spread>>;
551
552/// Spreads a value's index over the whole word, the high bits being the ones the table reads.
553#[derive(Debug, Default)]
554struct Spread(u64);
555
556impl Hasher for Spread {
557 fn finish(&self) -> u64 {
558 self.0
559 }
560
561 fn write(&mut self, bytes: &[u8]) {
562 for &byte in bytes {
563 self.write_u64(u64::from(byte));
564 }
565 }
566
567 fn write_u32(&mut self, word: u32) {
568 self.write_u64(u64::from(word));
569 }
570
571 fn write_u64(&mut self, word: u64) {
572 self.0 = (self.0.rotate_left(5) ^ word).wrapping_mul(0x9e37_79b9_7f4a_7c15);
573 }
574}
575
576impl<'a> Walk<'a> {
577 /// A walk over this function, with GCC's budget.
578 #[must_use]
579 pub fn new(func: &'a Func, outside: &'a Outside) -> Self {
580 Self::with(func, outside, Options::default(), MAX_ALIAS_QUERIES_PER_ACCESS)
581 }
582
583 /// The same, with the alias options the command line left and a budget of your own.
584 #[must_use]
585 pub fn with(func: &'a Func, outside: &'a Outside, options: Options, limit: u32) -> Self {
586 Self {
587 func,
588 cfg: Cfg::new(func),
589 alias: Alias::with(func, outside, options),
590 limit,
591 counts: Counts::default(),
592 seen: Seen::default(),
593 }
594 }
595
596 /// What the walks have cost so far.
597 #[must_use]
598 pub const fn counts(&self) -> &Counts {
599 &self.counts
600 }
601
602 /// The same walk, with what the module's functions were worked out to do to memory.
603 ///
604 /// Handed straight to the oracle underneath, where [`Alias::knowing`] says what it is for.
605 #[must_use]
606 pub fn knowing(mut self, summaries: &'a crate::modref::Summaries) -> Self {
607 self.alias = self.alias.knowing(summaries);
608 self
609 }
610
611 /// The alias analysis underneath, whose own counters say which layer answered.
612 #[must_use]
613 pub const fn alias(&self) -> &Alias<'a> {
614 &self.alias
615 }
616
617 /// The store this load sees.
618 ///
619 /// [`Clobber::Unknown`] for an instruction that reads nothing, for one that is not on the
620 /// chain, and for a walk that ran out of budget, because all three mean the same thing to a
621 /// caller, which is that nothing was established.
622 pub fn clobber(&mut self, load: Inst) -> Clobber {
623 self.clobber_with(load, &mut |_, _| Step::Stop)
624 }
625
626 /// The same, with the chance to rewrite the reference at every def the walk cannot see past.
627 ///
628 /// Section 9.2's `translate`. The callback is handed the reference as it stands and the def
629 /// in the way, and answers [`Step::Stop`] to take the clobber or [`Step::Retry`] to carry on
630 /// past it asking about something else. Following a load through a `memcpy` by rewriting the
631 /// reference to the copy's source is the case worth having it for, since that is what a
632 /// struct assignment lowers to.
633 ///
634 /// Section 9.6 calls a `translate` that rewrites the reference wrongly the subtlest bug in
635 /// the document and essentially untestable by unit test, so the defence is differential
636 /// execution per document 41 rather than anything here.
637 pub fn clobber_with(
638 &mut self,
639 load: Inst,
640 translate: &mut dyn FnMut(&Access, Inst) -> Step,
641 ) -> Clobber {
642 let (Some(reference), Some(version)) = (self.alias.reads(load), self.func.mem_in(load))
643 else {
644 return Clobber::Unknown;
645 };
646 self.counts.walks += 1;
647 let mut budget = self.limit;
648 let mut seen = std::mem::take(&mut self.seen);
649 seen.clear();
650 let answer = self.back(reference, version, &mut budget, &mut seen, translate);
651 self.seen = seen;
652 // Nothing new on any path back is nothing that wrote it, which is the same answer as
653 // reaching the start of the chain and is only reachable through a cycle of parameters.
654 answer.unwrap_or(Clobber::NoClobber)
655 }
656
657 /// One version of memory, and everything that reaches it.
658 ///
659 /// `None` means this version has already been accounted for on another path, which is the
660 /// neutral answer: it is how a loop is cut, since the back edge of a loop whose body writes
661 /// nothing relevant leads back to the parameter the walk started from.
662 fn back(
663 &mut self,
664 reference: Access,
665 version: Value,
666 budget: &mut u32,
667 seen: &mut Seen,
668 translate: &mut dyn FnMut(&Access, Inst) -> Step,
669 ) -> Option<Clobber> {
670 if !seen.insert(version) {
671 return None;
672 }
673 match self.func[version].def {
674 // A memory phi. The answer is the same down every path into the block or it is not
675 // an answer, which is conservative and is what keeps a caller from acting on a store
676 // that only one predecessor made.
677 Def::Param { block, index } => {
678 let mut answer = None;
679 let func = self.func;
680 // By place rather than by copying the list out, since the walk below needs the
681 // walker and a phi is the step it takes most often.
682 for at in 0..self.cfg.predecessors(block).len() {
683 let pred = self.cfg.predecessors(block)[at];
684 let Some(terminator) = func.terminator(pred) else {
685 continue;
686 };
687 for call in func.successors(terminator) {
688 if call.block != block {
689 continue;
690 }
691 let Some(&incoming) = self.func[call.args].get(index as usize) else {
692 continue;
693 };
694 let one = self.back(reference, incoming, budget, seen, translate);
695 answer = combine(answer, one);
696 if answer == Some(Clobber::Unknown) {
697 return answer;
698 }
699 }
700 }
701 answer
702 }
703 Def::Result { inst, .. } => {
704 if self.func[inst].opcode == Opcode::MemEntry {
705 return Some(Clobber::NoClobber);
706 }
707 if *budget == 0 {
708 self.counts.exhausted += 1;
709 return Some(Clobber::Unknown);
710 }
711 *budget -= 1;
712 self.counts.steps += 1;
713 let past = match self.wrote(&reference, inst) {
714 None => reference,
715 Some(answer) => match translate(&reference, inst) {
716 Step::Stop => return Some(answer),
717 // A rewritten question is a walk of its own and gets a visited set of its
718 // own. The set is there to stop a cycle being walked twice, and what makes
719 // the second time round pointless is that the answer at a version is an
720 // answer about one reference: a version this walk has already been to was
721 // visited asking something else, and what it said then says nothing about
722 // what is being asked now. Carrying the set across the rewrite loses an
723 // answer rather than repeating one, because a version declined as already
724 // seen contributes nothing to the join above it, and a join whose two paths
725 // disagree would come back holding whichever of them was walked first
726 // rather than `Unknown`.
727 Step::Retry(next) => {
728 self.counts.rewritten += 1;
729 let before = self.func.mem_in(inst)?;
730 let mut fresh = Seen::default();
731 return self.back(next, before, budget, &mut fresh, translate);
732 }
733 },
734 };
735 let next = self.func.mem_in(inst)?;
736 self.back(past, next, budget, seen, translate)
737 }
738 }
739 }
740
741 /// Whether this def wrote the reference, and how much of it.
742 ///
743 /// `None` is the answer that lets the walk carry on, and it is only given where the alias
744 /// analysis said the two cannot touch the same byte.
745 fn wrote(&mut self, reference: &Access, inst: Inst) -> Option<Clobber> {
746 // Section 9.5, and it is first. Alias analysis says nothing about how many times an
747 // access happens and `volatile` constrains that too, so this is a separate bit rather
748 // than a strong alias fact, and it is checked before the analysis is asked anything.
749 if reference.volatile || self.func[inst].flags.contains(Flags::VOLATILE) {
750 return Some(Clobber::Maybe(inst));
751 }
752 // Every atomic and every fence is a full def and a full use. Pessimistic for lock-free
753 // code and correct, and section 9.5 says doing better means modelling the memory model
754 // rather than the memory, which is post-1.0.
755 if self.ordered(inst) {
756 return Some(Clobber::Maybe(inst));
757 }
758 if let Some(write) = self.alias.writes(inst) {
759 return match self.alias.query(reference, &write) {
760 Answer::No(_) => None,
761 Answer::May => Some(self.extent(reference, &write, inst)),
762 };
763 }
764 // A call, or anything else that writes memory without an access saying what. What a call
765 // touches is its attributes and the escape analysis, which is section 8.4's, and without
766 // those the honest answer is that it wrote everything.
767 match self.alias.clobbered_by(reference, inst) {
768 Answer::No(_) => None,
769 Answer::May => Some(Clobber::Maybe(inst)),
770 }
771 }
772
773 /// How much of the reference a write that may touch it covered.
774 ///
775 /// Two accesses to the same origin with both offsets and both sizes known are two runs of
776 /// bytes at known places, and comparing them is what tells `Exact` from `Partial`. Anything
777 /// less is `Maybe`, since a `May` from the alias analysis is not a proof that anything was
778 /// written at all.
779 ///
780 /// `Exact` is the same bytes and not merely a superset of them. A four byte store and the
781 /// one byte load at offset one inside it is `Partial`, because the byte the load wants is
782 /// somewhere in the value the store wrote and getting it out is a shift and a truncate that
783 /// document 16 decides on rather than this. Two runs that are the same bytes can still be
784 /// two different types, and checking that is the caller's as well.
785 fn extent(&self, reference: &Access, write: &Access, inst: Inst) -> Clobber {
786 if reference.origin != write.origin {
787 return Clobber::Maybe(inst);
788 }
789 let (Some(want), Some(wrote)) = (reference.range(), write.range()) else {
790 return Clobber::Maybe(inst);
791 };
792 if want == wrote {
793 Clobber::Exact(inst)
794 } else if wrote.0 < want.1 && want.0 < wrote.1 {
795 Clobber::Partial(inst)
796 } else {
797 // No overlap at all, which the alias analysis should have said no to. Saying `Maybe`
798 // rather than walking past is the conservative reading of a disagreement.
799 Clobber::Maybe(inst)
800 }
801 }
802
803 /// Whether the instruction orders memory, which is every atomic and every fence.
804 fn ordered(&self, inst: Inst) -> bool {
805 use rucc_ir::Extra;
806 let order = match self.func[inst].extra {
807 Extra::Mem(at) => self.func[at].order,
808 Extra::Rmw(_, at) => self.func[at].order,
809 Extra::Order(order) => order,
810 _ => return false,
811 };
812 order != MemOrder::NotAtomic
813 }
814}
815
816/// Two answers from two paths into a join.
817///
818/// The same answer on both is the answer. Nothing on one path is whatever the other said, which
819/// is how a cycle contributes nothing. Anything else is a disagreement, and a disagreement is
820/// `Unknown` rather than the weaker of the two, because there is no order on these that a caller
821/// could act on.
822fn combine(a: Option<Clobber>, b: Option<Clobber>) -> Option<Clobber> {
823 match (a, b) {
824 (None, other) | (other, None) => other,
825 (Some(one), Some(other)) if one == other => Some(one),
826 _ => Some(Clobber::Unknown),
827 }
828}
829
830#[cfg(test)]
831mod tests {
832 use rucc_base::Interner;
833 use rucc_ir::{Builder, MemInfo, Module, Restrict, Signature, parse, verify_func};
834
835 use super::*;
836
837 /// A module and a function built from the text, which is how these are written.
838 fn read(text: &str) -> (Module, Interner) {
839 let mut names = Interner::new();
840 let module = parse(text, &mut names).expect("the text parses");
841 (module, names)
842 }
843
844 const HEADER: &str = "\
845; ModuleID = 'mem.c'
846; format 0
847target triple = \"x86_64-unknown-linux-gnu\"
848target datalayout = \"e-p:64:64-i64:64-f80:128-S128\"
849";
850
851 fn wrap(signature: &str, body: &str) -> String {
852 format!("{HEADER}\nfunc @f{signature}, linkage(external) {{\n{body}}}\n")
853 }
854
855 /// Builds memory SSA over the function and insists the result verifies, which is where most
856 /// of the strength of these tests is: the rules in the verifier are the specification of the
857 /// chain and construction has to satisfy all of them.
858 fn built(text: &str) -> (Module, bool) {
859 let (mut module, names) = read(text);
860 let id = module.funcs().next().expect("one function");
861 let changed = build(&mut module[id]);
862 if let Err(errors) = verify_func(&module, &module[id], &names) {
863 panic!("{errors:#?}");
864 }
865 (module, changed)
866 }
867
868 fn one(module: &Module) -> &Func {
869 &module[module.funcs().next().expect("one function")]
870 }
871
872 /// The instruction with that opcode, counting from the top of the function.
873 fn nth(func: &Func, opcode: Opcode, want: usize) -> Inst {
874 func.blocks()
875 .flat_map(|block| func.insts(block).collect::<Vec<_>>())
876 .filter(|&inst| func[inst].opcode == opcode)
877 .nth(want)
878 .expect("that many of them")
879 }
880
881 #[test]
882 fn a_function_with_no_memory_in_it_gets_no_chain() {
883 let text = wrap(
884 "(i32) -> i32",
885 "block0(%0: i32):
886 %1 = add %0, %0
887 return %1
888",
889 );
890 let (module, changed) = built(&text);
891 assert!(!changed);
892 assert_eq!(one(&module).blocks().count(), 1);
893 }
894
895 #[test]
896 fn a_straight_line_is_threaded_in_order() {
897 let text = wrap(
898 "(ptr) -> i32",
899 "block0(%0: ptr):
900 %1 = iconst.i32 7
901 store %1 -> %0, align 4
902 %2 = load.i32 %0, align 4
903 return %2
904",
905 );
906 let (module, changed) = built(&text);
907 assert!(changed);
908 let func = one(&module);
909 let start = nth(func, Opcode::MemEntry, 0);
910 let store = nth(func, Opcode::Store, 0);
911 let load = nth(func, Opcode::Load, 0);
912 assert_eq!(func.mem_in(store), func.mem_out(start));
913 assert_eq!(func.mem_in(load), func.mem_out(store));
914 assert_eq!(func.mem_out(load), None);
915 }
916
917 #[test]
918 fn a_join_gets_a_memory_parameter_and_every_branch_passes_one() {
919 let text = wrap(
920 "(ptr, i1) -> i32",
921 "block0(%0: ptr, %1: i1):
922 br_if %1, block1, block2
923
924block1:
925 %2 = iconst.i32 7
926 store %2 -> %0, align 4
927 jump block3
928
929block2:
930 jump block3
931
932block3:
933 %3 = load.i32 %0, align 4
934 return %3
935",
936 );
937 let (module, _) = built(&text);
938 let func = one(&module);
939 let join = func.blocks().nth(3).expect("four blocks");
940 assert_eq!(func[join].params.len(), 1);
941 let param = func[join].params[0];
942 assert!(func[param].ty.is_mem());
943 assert_eq!(func.mem_in(nth(func, Opcode::Load, 0)), Some(param));
944 }
945
946 #[test]
947 fn a_block_that_only_reads_needs_no_parameter() {
948 let text = wrap(
949 "(ptr, i1) -> i32",
950 "block0(%0: ptr, %1: i1):
951 br_if %1, block1, block2
952
953block1:
954 %2 = load.i32 %0, align 4
955 jump block3
956
957block2:
958 jump block3
959
960block3:
961 %3 = load.i32 %0, align 4
962 return %3
963",
964 );
965 let (module, _) = built(&text);
966 let func = one(&module);
967 // One version of memory reaches the whole function, so no join needs a parameter and
968 // every load reads what `mem_entry` produced.
969 for block in func.blocks() {
970 assert!(func[block].params.iter().all(|¶m| !func[param].ty.is_mem()));
971 }
972 }
973
974 #[test]
975 fn every_arm_of_a_switch_passes_its_own_version_along() {
976 let text = wrap(
977 "(ptr, i32) -> i32",
978 "block0(%0: ptr, %1: i32):
979 switch %1, block1, [0 => block2, 1 => block3]
980
981block1:
982 %2 = iconst.i32 1
983 store %2 -> %0, align 4
984 jump block4
985
986block2:
987 %3 = iconst.i32 2
988 store %3 -> %0, align 4
989 jump block4
990
991block3:
992 jump block4
993
994block4:
995 %4 = load.i32 %0, align 4
996 return %4
997",
998 );
999 let (module, _) = built(&text);
1000 let func = one(&module);
1001 let join = func.blocks().nth(4).expect("five blocks");
1002 let param = *func[join].params.last().expect("a parameter");
1003 assert!(func[param].ty.is_mem());
1004 // Each arm reaches the join with the version it ended on, and the two that wrote reach
1005 // it with the version their own store produced.
1006 for (arm, want) in [(1, Some(0)), (2, Some(1)), (3, None)] {
1007 let block = func.blocks().nth(arm).expect("that block");
1008 let jump = func.terminator(block).expect("a terminator");
1009 let call = func.successors(jump).next().expect("one target");
1010 let sent = *func[call.args].last().expect("an argument");
1011 let expect = match want {
1012 Some(store) => func.mem_out(nth(func, Opcode::Store, store)),
1013 None => func.mem_out(nth(func, Opcode::MemEntry, 0)),
1014 };
1015 assert_eq!(Some(sent), expect, "arm {arm} passed the wrong version");
1016 }
1017 }
1018
1019 #[test]
1020 fn a_function_with_a_block_nothing_reaches_is_left_alone() {
1021 let text = wrap(
1022 "(ptr) -> i32",
1023 "block0(%0: ptr):
1024 %1 = iconst.i32 7
1025 store %1 -> %0, align 4
1026 jump block2
1027
1028block1:
1029 %2 = iconst.i32 9
1030 store %2 -> %0, align 4
1031 jump block2
1032
1033block2:
1034 %3 = load.i32 %0, align 4
1035 return %3
1036",
1037 );
1038 // Block 1 has no predecessor. Half a function on the chain is worse than none of it, so
1039 // this declines rather than producing something the verifier would turn down.
1040 let (mut module, _) = read(&text);
1041 let id = module.funcs().next().expect("one function");
1042 assert!(!build(&mut module[id]));
1043 assert_eq!(module[id].blocks().filter(|&b| !module[id][b].params.is_empty()).count(), 1);
1044 }
1045
1046 /// The last load in the function, which is the one every walk here starts from.
1047 fn last_load(func: &Func) -> Inst {
1048 func.blocks()
1049 .flat_map(|block| func.insts(block).collect::<Vec<_>>())
1050 .filter(|&inst| func[inst].opcode == Opcode::Load)
1051 .last()
1052 .expect("a load")
1053 }
1054
1055 /// A load, a store and the walk between them, over a function written as text.
1056 fn walked(text: &str) -> (Clobber, Counts) {
1057 let (module, changed) = built(text);
1058 assert!(changed, "the function has memory in it");
1059 let func = one(&module);
1060 let outside = Outside::of(&module);
1061 let mut walk = Walk::new(func, &outside);
1062 let answer = walk.clobber(last_load(func));
1063 (answer, *walk.counts())
1064 }
1065
1066 #[test]
1067 fn a_load_sees_the_store_before_it() {
1068 let text = wrap(
1069 "(ptr) -> i32",
1070 "block0(%0: ptr):
1071 %1 = iconst.i32 7
1072 store %1 -> %0, align 4
1073 %2 = load.i32 %0, align 4
1074 return %2
1075",
1076 );
1077 let (answer, counts) = walked(&text);
1078 assert!(matches!(answer, Clobber::Exact(_)));
1079 assert_eq!(counts.walks(), 1);
1080 assert_eq!(counts.steps(), 1);
1081 assert_eq!(counts.exhausted(), 0);
1082 }
1083
1084 #[test]
1085 fn a_load_walks_past_a_store_to_another_object() {
1086 let text = wrap(
1087 "() -> i32",
1088 "block0:
1089 %0 = alloca, size 8, align 8
1090 %1 = alloca, size 8, align 8
1091 %2 = iconst.i32 7
1092 store %2 -> %0, align 4
1093 %3 = load.i32 %1, align 4
1094 return %3
1095",
1096 );
1097 let (answer, counts) = walked(&text);
1098 assert_eq!(answer, Clobber::NoClobber);
1099 // It looked at the store, said no, and reached the start of the chain.
1100 assert_eq!(counts.steps(), 1);
1101 }
1102
1103 #[test]
1104 fn a_load_of_one_byte_of_a_wider_store_is_partial() {
1105 let text = wrap(
1106 "() -> i8",
1107 "block0:
1108 %0 = alloca, size 8, align 8
1109 %1 = iconst.i32 7
1110 store %1 -> %0, align 4
1111 %2 = iconst.i64 1
1112 %3 = ptr_add %0, %2
1113 %4 = load.i8 %3, align 1
1114 return %4
1115",
1116 );
1117 let (answer, _) = walked(&text);
1118 assert!(matches!(answer, Clobber::Partial(_)), "{answer:?}");
1119 }
1120
1121 #[test]
1122 fn a_load_after_a_call_that_cannot_reach_it_walks_past_the_call() {
1123 let text = wrap(
1124 "() -> i32",
1125 "block0:
1126 %0 = alloca, size 8, align 8
1127 %1 = iconst.i32 7
1128 store %1 -> %0, align 4
1129 call @g() : ()
1130 %2 = load.i32 %0, align 4
1131 return %2
1132",
1133 );
1134 // The local's address never leaves the function, so the call cannot touch it and the
1135 // walk goes straight past to the store. That is the escape layer paying for itself.
1136 let (answer, _) = walked(&text);
1137 assert!(matches!(answer, Clobber::Exact(_)), "{answer:?}");
1138 }
1139
1140 #[test]
1141 fn a_load_after_a_call_that_could_have_the_address_sees_the_call() {
1142 let text = wrap(
1143 "(ptr) -> i32",
1144 "block0(%0: ptr):
1145 %1 = iconst.i32 7
1146 store %1 -> %0, align 4
1147 call @g() : ()
1148 %2 = load.i32 %0, align 4
1149 return %2
1150",
1151 );
1152 let (answer, _) = walked(&text);
1153 assert!(matches!(answer, Clobber::Maybe(_)), "{answer:?}");
1154 }
1155
1156 #[test]
1157 fn a_load_after_an_atomic_store_sees_it_whatever_it_wrote() {
1158 let text = wrap(
1159 "() -> i32",
1160 "block0:
1161 %0 = alloca, size 8, align 8
1162 %1 = alloca, size 8, align 8
1163 %2 = iconst.i32 7
1164 atomic_store %2 -> %0, align 4, release
1165 %3 = load.i32 %1, align 4
1166 return %3
1167",
1168 );
1169 // Two different objects, and it still stops: an atomic is a full def and a full use, per
1170 // section 9.5, and this is the test that says so rather than a comment.
1171 let (answer, _) = walked(&text);
1172 assert!(matches!(answer, Clobber::Maybe(_)), "{answer:?}");
1173 }
1174
1175 #[test]
1176 fn a_load_after_a_volatile_store_sees_it_whatever_it_wrote() {
1177 let text = wrap(
1178 "() -> i32",
1179 "block0:
1180 %0 = alloca, size 8, align 8
1181 %1 = alloca, size 8, align 8
1182 %2 = iconst.i32 7
1183 store.volatile %2 -> %0, align 4
1184 %3 = load.i32 %1, align 4
1185 return %3
1186",
1187 );
1188 let (answer, _) = walked(&text);
1189 assert!(matches!(answer, Clobber::Maybe(_)), "{answer:?}");
1190 }
1191
1192 #[test]
1193 fn paths_that_disagree_are_unknown_rather_than_the_weaker_of_the_two() {
1194 let text = wrap(
1195 "(i1) -> i32",
1196 "block0(%0: i1):
1197 %1 = alloca, size 8, align 8
1198 br_if %0, block1, block2
1199
1200block1:
1201 %2 = iconst.i32 7
1202 store %2 -> %1, align 4
1203 jump block3
1204
1205block2:
1206 jump block3
1207
1208block3:
1209 %3 = load.i32 %1, align 4
1210 return %3
1211",
1212 );
1213 let (answer, _) = walked(&text);
1214 assert_eq!(answer, Clobber::Unknown);
1215 }
1216
1217 #[test]
1218 fn a_loop_that_writes_nothing_relevant_walks_out_of_it() {
1219 let text = wrap(
1220 "(i32) -> i32",
1221 "block0(%0: i32):
1222 %1 = alloca, size 8, align 8
1223 %2 = alloca, size 8, align 8
1224 %3 = iconst.i32 7
1225 store %3 -> %1, align 4
1226 jump block1(%0)
1227
1228block1(%4: i32):
1229 %5 = iconst.i32 1
1230 %6 = sub %4, %5
1231 store %5 -> %2, align 4
1232 %7 = icmp sgt %6, %5
1233 br_if %7, block1(%6), block2
1234
1235block2:
1236 %8 = load.i32 %1, align 4
1237 return %8
1238",
1239 );
1240 // The store in the loop is to the other object, so the walk goes round the back edge,
1241 // meets the parameter it started from, contributes nothing, and takes the answer from
1242 // the path that leaves the loop.
1243 let (answer, counts) = walked(&text);
1244 assert!(matches!(answer, Clobber::Exact(_)), "{answer:?}");
1245 assert_eq!(counts.exhausted(), 0);
1246 }
1247
1248 #[test]
1249 fn a_budget_of_nothing_gives_unknown_and_says_so() {
1250 let text = wrap(
1251 "(ptr) -> i32",
1252 "block0(%0: ptr):
1253 %1 = iconst.i32 7
1254 store %1 -> %0, align 4
1255 %2 = load.i32 %0, align 4
1256 return %2
1257",
1258 );
1259 let (module, _) = built(&text);
1260 let func = one(&module);
1261 let load = nth(func, Opcode::Load, 0);
1262 let outside = Outside::of(&module);
1263 let mut walk = Walk::with(func, &outside, Options::default(), 0);
1264 assert_eq!(walk.clobber(load), Clobber::Unknown);
1265 assert_eq!(walk.counts().exhausted(), 1);
1266 }
1267
1268 #[test]
1269 fn translate_carries_the_walk_past_a_def_it_would_have_stopped_at() {
1270 let text = wrap(
1271 "(ptr) -> i32",
1272 "block0(%0: ptr):
1273 %1 = iconst.i32 7
1274 store %1 -> %0, align 4
1275 memcpy %0, %0, size 4, align 4
1276 %2 = load.i32 %0, align 4
1277 return %2
1278",
1279 );
1280 let (module, _) = built(&text);
1281 let func = one(&module);
1282 let load = nth(func, Opcode::Load, 0);
1283
1284 // With no rewrite to offer, the copy is where it stops.
1285 let outside = Outside::of(&module);
1286 let mut walk = Walk::new(func, &outside);
1287 let stopped_at = walk.clobber(load).inst().expect("something wrote it");
1288 assert_eq!(func[stopped_at].opcode, Opcode::Memcpy);
1289
1290 // The same walk, with a caller that can see through the copy. It says nothing about the
1291 // reference here, which is enough to show the callback is reached and obeyed.
1292 let mut walk = Walk::new(func, &outside);
1293 let mut seen = Vec::new();
1294 let answer = walk.clobber_with(load, &mut |reference, inst| {
1295 seen.push(func[inst].opcode);
1296 if func[inst].opcode == Opcode::Memcpy { Step::Retry(*reference) } else { Step::Stop }
1297 });
1298 assert_eq!(seen, [Opcode::Memcpy, Opcode::Store]);
1299 assert_eq!(answer.inst().map(|inst| func[inst].opcode), Some(Opcode::Store));
1300
1301 // One rewrite offered and one taken, which is the counter a caller reads to find out
1302 // whether its callback reached anything.
1303 assert_eq!(walk.counts().rewritten(), 1);
1304 }
1305
1306 #[test]
1307 fn building_twice_changes_nothing_the_second_time() {
1308 let text = wrap(
1309 "(ptr) -> i32",
1310 "block0(%0: ptr):
1311 %1 = load.i32 %0, align 4
1312 return %1
1313",
1314 );
1315 let (mut module, _) = read(&text);
1316 let id = module.funcs().next().expect("one function");
1317 let func = &mut module[id];
1318 assert!(build(func));
1319 let before = func.counts().insts;
1320 assert!(!build(func));
1321 assert_eq!(func.counts().insts, before);
1322 }
1323
1324 /// The builder path rather than the parser path, since a pass that adds a store adds it with
1325 /// the builder and the chain has to survive that too.
1326 #[test]
1327 fn a_function_built_by_hand_threads_the_same_way() {
1328 let mut names = Interner::new();
1329 let i32_ = Type::int(32);
1330 let mut func = Func::new(
1331 names.intern("f"),
1332 Signature::new().with_params(&[Type::PTR]).with_returns(&[i32_]),
1333 );
1334 let entry = func.create_block();
1335 let addr = func.append_param(entry, Type::PTR);
1336 let info = MemInfo {
1337 size: 4,
1338 align: 4,
1339 order: MemOrder::NotAtomic,
1340 tbaa: None,
1341 owns: 0,
1342 restrict: Restrict::NONE,
1343 };
1344 let mut b = Builder::new(&mut func, entry);
1345 let seven = b.iconst(i32_, 7);
1346 b.store(seven, addr, info, Flags::NONE);
1347 let read = b.load(i32_, addr, info, Flags::NONE);
1348 b.ret(&[read]);
1349
1350 assert!(build(&mut func));
1351 let store = nth(&func, Opcode::Store, 0);
1352 let load = nth(&func, Opcode::Load, 0);
1353 assert_eq!(func.mem_in(load), func.mem_out(store));
1354 }
1355
1356 /// Builds the chain, takes it back off, and insists the result verifies both times. A half
1357 /// removed chain is exactly the kind of thing that would pass a shape assertion and fail on a
1358 /// real file, so the verifier is the assertion that matters here too.
1359 fn stripped(text: &str) -> (Module, bool) {
1360 let (mut module, names) = read(text);
1361 let id = module.funcs().next().expect("one function");
1362 build(&mut module[id]);
1363 if let Err(errors) = verify_func(&module, &module[id], &names) {
1364 panic!("after building: {errors:#?}");
1365 }
1366 let changed = strip(&mut module[id]);
1367 if let Err(errors) = verify_func(&module, &module[id], &names) {
1368 panic!("after stripping: {errors:#?}");
1369 }
1370 (module, changed)
1371 }
1372
1373 /// Nothing anywhere in the function is on the chain any more.
1374 fn off(func: &Func) {
1375 for block in func.blocks() {
1376 assert!(
1377 func[block].params.iter().all(|¶m| !func[param].ty.is_mem()),
1378 "a block kept a memory parameter"
1379 );
1380 for inst in func.insts(block) {
1381 assert_ne!(
1382 func[inst].opcode,
1383 Opcode::MemEntry,
1384 "the start of the chain is still here"
1385 );
1386 assert!(!func.carries_mem(inst), "an instruction is still on the chain");
1387 }
1388 }
1389 }
1390
1391 #[test]
1392 fn a_straight_line_comes_off_the_chain_the_way_it_went_on() {
1393 let text = wrap(
1394 "(ptr) -> i32",
1395 "block0(%0: ptr):
1396 %1 = iconst.i32 7
1397 store %1 -> %0, align 4
1398 %2 = load.i32 %0, align 4
1399 return %2
1400",
1401 );
1402 let (module, changed) = stripped(&text);
1403 assert!(changed);
1404 let func = one(&module);
1405 off(func);
1406 // The instructions are the same ones doing the same thing, which is the whole claim: the
1407 // address the load reads is still the function's parameter and the value returned is
1408 // still what the load read.
1409 let load = nth(func, Opcode::Load, 0);
1410 let param = func[func.entry().expect("an entry")].params[0];
1411 assert_eq!(func[func[load].args][0], param);
1412 let ret = nth(func, Opcode::Return, 0);
1413 assert_eq!(func[func[ret].args][0], func[load].results().next().expect("a result"));
1414 }
1415
1416 #[test]
1417 fn a_join_gives_its_memory_parameter_back_and_so_does_every_branch_to_it() {
1418 let text = wrap(
1419 "(ptr, i1) -> i32",
1420 "block0(%0: ptr, %1: i1):
1421 br_if %1, block1, block2
1422
1423block1:
1424 %2 = iconst.i32 7
1425 store %2 -> %0, align 4
1426 jump block3
1427
1428block2:
1429 jump block3
1430
1431block3:
1432 %3 = load.i32 %0, align 4
1433 return %3
1434",
1435 );
1436 let (module, changed) = stripped(&text);
1437 assert!(changed);
1438 let func = one(&module);
1439 off(func);
1440 let join = func.blocks().nth(3).expect("four blocks");
1441 assert!(func[join].params.is_empty(), "the join kept a parameter");
1442 for block in func.blocks() {
1443 let Some(terminator) = func.terminator(block) else { continue };
1444 for call in func.successors(terminator) {
1445 assert!(func[call.args].is_empty(), "a branch kept an argument");
1446 }
1447 }
1448 }
1449
1450 #[test]
1451 fn a_parameter_that_was_never_memory_keeps_its_place() {
1452 // The argument a branch passes goes by position, so a block with a memory parameter
1453 // beside an ordinary one is where taking the wrong one out would show.
1454 let text = wrap(
1455 "(ptr, i1) -> i32",
1456 "block0(%0: ptr, %1: i1):
1457 %2 = iconst.i32 7
1458 br_if %1, block1(%2), block2
1459
1460block1(%3: i32):
1461 store %3 -> %0, align 4
1462 jump block3
1463
1464block2:
1465 jump block3
1466
1467block3:
1468 %4 = load.i32 %0, align 4
1469 return %4
1470",
1471 );
1472 let (module, _) = stripped(&text);
1473 let func = one(&module);
1474 off(func);
1475 let arm = func.blocks().nth(1).expect("four blocks");
1476 assert_eq!(func[arm].params.len(), 1);
1477 let param = func[arm].params[0];
1478 assert_eq!(func[param].ty, Type::int(32));
1479 let store = nth(func, Opcode::Store, 0);
1480 assert_eq!(func[func[store].args][0], param, "the store lost the value it writes");
1481 }
1482
1483 #[test]
1484 fn a_function_that_was_never_on_the_chain_is_left_alone() {
1485 let text = wrap(
1486 "(i32) -> i32",
1487 "block0(%0: i32):
1488 %1 = add %0, %0
1489 return %1
1490",
1491 );
1492 let (mut module, names) = read(&text);
1493 let id = module.funcs().next().expect("one function");
1494 assert!(!strip(&mut module[id]));
1495 if let Err(errors) = verify_func(&module, &module[id], &names) {
1496 panic!("{errors:#?}");
1497 }
1498 }
1499
1500 #[test]
1501 fn a_call_that_returns_something_keeps_it() {
1502 // A call is threaded like a store and gives back a value as well, so its results are the
1503 // one place where the version of memory sits behind something that has a reader.
1504 let text = format!(
1505 "{HEADER}\nfunc @f() -> i32, linkage(external) {{\nblock0:\n %0 = call @g() : () -> \
1506 i32\n return %0\n}}\n"
1507 );
1508 let (module, changed) = stripped(&text);
1509 assert!(changed);
1510 let func = one(&module);
1511 off(func);
1512 let call = nth(func, Opcode::Call, 0);
1513 let ret = nth(func, Opcode::Return, 0);
1514 assert_eq!(func[call].results().count(), 1);
1515 assert_eq!(func[func[ret].args][0], func[call].results().next().expect("a result"));
1516 }
1517}