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rucc_opt/
scev.rs

1//! Scalar evolution: how a value changes across the iterations of a loop, and how many
2//! iterations there are.
3//!
4//! Design: `spec/optimizer/07-loops-and-scev.md` sections 7.4 through 7.7. This is the second
5//! half of document 07 and it answers the last two of the four questions section 7.6 says loop
6//! analysis exists for. The first two are in [`crate::loops`].
7//!
8//! # Chains of recurrences, and how much of one
9//!
10//! GCC writes how a value changes as a chain of recurrences, `{base, +, step}`, meaning a value
11//! that is `base` on the first iteration and `step` more on each one after. The representation is
12//! good because it is closed under the operations anyone wants: adding two chrecs of the same
13//! loop adds componentwise, multiplying by something invariant scales both parts, and evaluating
14//! one at a given iteration is arithmetic rather than a special case. That closure is why
15//! `j = 2 * i + 3` is as easy as `i = i + 1`, and pattern matching the second would run out of
16//! road on the first.
17//!
18//! Section 7.4 says what rucc builds and it is a subset: affine chrecs only. A value is
19//! invariant, or `{base, +, step}` with both parts invariant, or unknown. Addition, subtraction,
20//! multiplication by an invariant, shifting by a constant, and extension where the extension
21//! provably does not wrap. Nothing polynomial and nothing mutually recursive. That covers every
22//! induction variable a C programmer writes and every array subscript document 31 could use, and
23//! what it leaves out of GCC's four thousand lines is the part serving Fortran and the polyhedral
24//! framework.
25//!
26//! The one extension past affine is pointer chrecs, because C loops walk pointers and `p = p + 1`
27//! is `i = i + 1` with a scale. A `ptr_add` is addition with the byte offset as the step, which
28//! is the difference between analysing half of real C loops and analysing nearly all of them.
29//!
30//! # Trip counts, and the part that is uncomfortable
31//!
32//! Given an exit that compares an affine chrec against something invariant, solving for the
33//! iteration at which the comparison first fails is arithmetic. What makes it hard is that the
34//! answer is almost always conditional: on the loop being entered at all, and on the induction
35//! variable not wrapping before it gets there. Section 7.5 says a trip count returned without its
36//! assumptions is a miscompilation generator, and that the temptation to return one is strong
37//! because the assumptions are usually true.
38//!
39//! So [`Bound`] carries them and there is no way to read the count without seeing them.
40//! [`Bound::parts`] hands back both, and [`Bound::proven`] hands back the count only when there
41//! is nothing left to prove. A caller that means to emit a runtime check reads the assumptions
42//! and emits it, and a caller that forgets cannot get at the number.
43//!
44//! [`Bound`] and [`Estimate`] are different types on purpose. A bound is used for correctness, an
45//! estimate is used to decide whether a transformation is worth doing, and section 7.5 calls
46//! conflating them a category error that costs correctness. GCC keeps them apart as
47//! `max_loop_iterations` and `estimate_numbers_of_iterations` and the names do not stop anyone.
48//! Different structs do.
49
50use std::collections::HashMap;
51
52use rucc_base::Symbol;
53use rucc_ir::{Block, Def, Extra, Flags, Func, Imm, Inst, IntPred, Opcode, Type, Value};
54
55use crate::cfg::Cfg;
56use crate::loops::{LoopId, Loops};
57
58/// How deep the search for a step walks back through arithmetic.
59///
60/// The chain from a header parameter to the value fed back to it is two or three instructions in
61/// anything a person writes, and the walk terminates on its own because SSA has no cycles except
62/// through block parameters. The limit is here so a generated function with a thousand additions
63/// in the increment costs a bounded amount rather than a stack.
64const STEP_LIMIT: u32 = 16;
65
66/// How many blocks that do nothing but pass a value on the walk reads through.
67///
68/// One is what a canonicalized loop has. The limit is here for the same reason the one above is,
69/// which is that a generated function can have a chain of them and the cost of following it should
70/// not depend on how long somebody made it.
71const FORWARD_LIMIT: u32 = 8;
72
73/// How many times a loop is assumed to run when nothing better is known.
74///
75/// GCC's `--param avg-loop-niter`, whose default is the same number. It is a guess, so nothing may
76/// rest on it. It reaches [`Estimate`], which is only ever used to decide whether something is
77/// worth doing, and [`crate::split`], which spends it on how far to ask the runtime to look and is
78/// answered with a true count of bytes whatever it asked for.
79pub(crate) const ASSUMED_ITERATIONS: u64 = 10;
80
81/// A value that does not change inside the loop, read as `on + scale * value + offset`.
82///
83/// The `value` is a value defined outside the loop, or `None` when the linear part is a plain
84/// number. Keeping the shape rather than a bare [`Value`] is what lets `j = 2 * i + 3` come out
85/// as `{3, +, 2}` instead of unknown: the base and the step of that chrec are expressions nothing
86/// in the function computes, so a representation that could only name existing values would have
87/// to give up.
88///
89/// The `on` is a second symbol, and it is there for one shape: a pointer plus an index the loop
90/// did not start at zero. `a[i]` with `i` starting at a parameter has a first address of
91/// `a + start * 4`, which is two symbols, and a representation with room for one has to answer
92/// unknown to it. Nothing scales `on` and nothing negates it, because the thing it was added for
93/// is a pointer and a pointer is not something a loop multiplies. It is an [`Anchor`] rather than
94/// a value so that the address of a global can be one of them.
95///
96/// The `read` is the other half of the same shape, since in C that index is an `int` and what
97/// reaches the address is `sext(start)`. It is described rather than named, for the reason on
98/// [`Widening`]. The two together are what let `a[start + i]` be followed, and on the SQLite
99/// amalgamation they take 158 checks and 12 sites off the largest row of loop splitting's census.
100/// See tamnd/rucc#810.
101///
102/// Arithmetic on two of these is refused once the sum would need a third symbol, because
103/// `x + y + z` is not of this shape. That is the boundary of the subset and it is where the answer
104/// becomes unknown rather than wrong.
105///
106/// The fields are private on purpose. Every reader has to go through [`Invariant::plain`], which
107/// hands back the one symbol reading and refuses when there is a pointer in it, or through
108/// [`Invariant::on`], which hands back both halves. A reader that helped itself to `value` and
109/// `scale` would quietly drop the `on` and build an address off the wrong object.
110#[derive(Clone, Copy, Debug, PartialEq, Eq)]
111pub struct Invariant {
112    /// A second symbol the whole expression is measured from, or `None`. Always one of it.
113    on: Option<Anchor>,
114    /// What the linear part is built on, or `None` for a plain number.
115    value: Option<Value>,
116    /// How that value is read, when it is read at a width that is not its own.
117    read: Option<Widening>,
118    /// How many of it.
119    scale: i128,
120    /// What is added.
121    offset: i128,
122}
123
124/// What an expression is measured from.
125///
126/// Usually a value the function computed somewhere outside the loop, which whoever reads the
127/// invariant can name. Sometimes the address of a global, which nothing has to compute because it
128/// is settled at link time and is the same number everywhere in the program.
129///
130/// The second one is here because of where a `global_addr` sits. [`crate::licm`] gives it a cost of
131/// zero and so never moves it out of a loop, which is the right call: working the address out again
132/// is one instruction and holding it in a register across a loop is a register. But that leaves the
133/// instruction inside the loop, and [`Loops::is_invariant`] answers by where a value is defined, so
134/// `a[i]` on a file scope `a` came out unknown. Describing the address rather than naming a value
135/// is the same move [`Widening`] makes, and it means a reader that wants the address in front of
136/// the loop writes another `global_addr` there for the one instruction it costs. On the SQLite
137/// amalgamation that is 178 checks at 47 sites of loop splitting's largest census row.
138/// See tamnd/rucc#810.
139#[derive(Clone, Copy, Debug, PartialEq, Eq)]
140pub enum Anchor {
141    /// A value, which is defined outside the loop and so can be named where it is wanted.
142    Value(Value),
143    /// The address of a global, which is written again wherever it is wanted.
144    Address(Symbol),
145}
146
147impl Anchor {
148    /// The value, when it is one. `None` for an address, which no value names.
149    #[must_use]
150    pub fn value(self) -> Option<Value> {
151        match self {
152            Self::Value(value) => Some(value),
153            Self::Address(_) => None,
154        }
155    }
156}
157
158/// A value read at a type wider than its own.
159///
160/// Widening `{start, +, 1}` in `int` gives `{sext(start), +, 1}` in `long`, and `sext(start)` is an
161/// expression nothing in the function computes. A representation that could only name values had
162/// to refuse the whole widening on that account, which is what shut the door on a walk from an
163/// index the caller handed in, because in C that index is an `int`. So the extension is described
164/// rather than named and whoever builds code from the invariant emits it.
165///
166/// The value stays the narrow one. Reading it at a third width later is an extension of an
167/// extension, and the two collapse into one wherever they mean the same thing, which is everywhere
168/// except a zero extension read as signed afterwards.
169#[derive(Clone, Copy, Debug, PartialEq, Eq)]
170pub struct Widening {
171    /// Sign extended or zero extended.
172    pub reading: Reading,
173    /// The type it is read at, which is wider than the value's own.
174    pub to: Type,
175}
176
177/// An invariant with no second symbol in it, read as `scale * value + offset`.
178///
179/// What every reader but [`crate::split`] wants, and what every reader wanted before there was an
180/// `on` at all. [`Invariant::plain`] is the only way to one, so a reader that does not know about
181/// the second symbol cannot get an expression that has one.
182#[derive(Clone, Copy, Debug, PartialEq, Eq)]
183pub struct Plain {
184    /// What it is built on, or `None` for a plain number.
185    pub value: Option<Value>,
186    /// How that value is read, when it is read at a width that is not its own.
187    pub read: Option<Widening>,
188    /// How many of it.
189    pub scale: i128,
190    /// What is added to it.
191    pub offset: i128,
192}
193
194impl Invariant {
195    /// A plain number.
196    #[must_use]
197    pub fn number(offset: i128) -> Self {
198        Self { on: None, value: None, read: None, scale: 0, offset }
199    }
200
201    /// One of a value.
202    #[must_use]
203    pub fn of(value: Value) -> Self {
204        Self { on: None, value: Some(value), read: None, scale: 1, offset: 0 }
205    }
206
207    /// So many of a value, plus a number.
208    #[must_use]
209    pub fn scaled(value: Value, scale: i128, offset: i128) -> Self {
210        Self { on: None, value: Some(value), read: None, scale, offset }
211    }
212
213    /// The address of a global.
214    ///
215    /// It goes straight into the `on` slot rather than into `value`, because that slot is the one
216    /// for the thing an address is measured from and an address is the only thing this ever is.
217    /// Nothing scales it and nothing negates it, which the rest of the arithmetic here already
218    /// refuses for whatever is in that slot.
219    #[must_use]
220    pub fn address(symbol: Symbol) -> Self {
221        Self { on: Some(Anchor::Address(symbol)), value: None, read: None, scale: 0, offset: 0 }
222    }
223
224    /// The one symbol reading, and `None` when there is a second symbol in it.
225    #[must_use]
226    pub fn plain(self) -> Option<Plain> {
227        self.on.is_none().then_some(Plain {
228            value: self.value,
229            read: self.read,
230            scale: self.scale,
231            offset: self.offset,
232        })
233    }
234
235    /// What it is measured from and how far past that, when there is a second symbol in it.
236    ///
237    /// Exactly one of this and [`Invariant::plain`] answers, so a reader that handles both has
238    /// handled every invariant there is.
239    #[must_use]
240    pub fn on(self) -> Option<(Anchor, Plain)> {
241        let on = self.on?;
242        Some((
243            on,
244            Plain { value: self.value, read: self.read, scale: self.scale, offset: self.offset },
245        ))
246    }
247
248    /// Whether the two are the same expression apart from the number added to them.
249    #[must_use]
250    pub fn alike(self, other: Self) -> bool {
251        self.on == other.on
252            && self.value == other.value
253            && self.read == other.read
254            && self.scale == other.scale
255    }
256
257    /// The number added to it, whatever else it has in it.
258    #[must_use]
259    pub fn offset(self) -> i128 {
260        self.offset
261    }
262
263    /// The number this is, when it is one.
264    #[must_use]
265    pub fn as_number(self) -> Option<i128> {
266        (self.on.is_none() && self.symbol().is_none()).then_some(self.offset)
267    }
268
269    /// Whether this is the number zero.
270    #[must_use]
271    pub fn is_zero(self) -> bool {
272        self.as_number() == Some(0)
273    }
274
275    /// The value the linear part is built on, when the linear part has one.
276    fn symbol(self) -> Option<Value> {
277        if self.scale == 0 { None } else { self.value }
278    }
279
280    /// This as something to measure from, when it is one of a value and a number.
281    ///
282    /// Never a widened one. What an expression is measured from is a pointer, and a pointer is not
283    /// something anything here extends.
284    fn measure(self) -> Option<Anchor> {
285        (self.on.is_none() && self.read.is_none() && self.scale == 1)
286            .then_some(self.value)
287            .flatten()
288            .map(Anchor::Value)
289    }
290
291    /// The symbol both linear parts are built on and how it is read, when they agree on one or one
292    /// of them has none.
293    ///
294    /// The same value read two ways is two different numbers, so agreeing on the value is not
295    /// enough. `sext(x)` and `zext(x)` are the same bits and not the same quantity.
296    fn shared(self, other: Self) -> Option<(Option<Value>, Option<Widening>)> {
297        match (self.symbol(), other.symbol()) {
298            (None, _) => Some((other.value, other.read)),
299            (_, None) => Some((self.value, self.read)),
300            (left, right) => {
301                (left == right && self.read == other.read).then_some((left, self.read))
302            }
303        }
304    }
305
306    /// This same value read at a wider type, when the widening has a form here.
307    ///
308    /// A number means the same thing at both widths under a sign extension, and under a zero
309    /// extension once it is not negative. One of a value becomes that value read through the
310    /// extension. Anything else is refused, because the narrow arithmetic may already have wrapped
311    /// and `sext(2 * x + 3)` is not `2 * sext(x) + 3`.
312    fn widened(self, reading: Reading, to: Type) -> Option<Self> {
313        if let Some(number) = self.as_number() {
314            return (reading == Reading::Signed || number >= 0).then_some(Self::number(number));
315        }
316        if self.on.is_some() || self.scale != 1 || self.offset != 0 {
317            return None;
318        }
319        let value = self.value?;
320        // An extension of an extension. A zero extension is never negative, so reading its result
321        // as signed afterwards is the same numbers and the pair collapses into the zero extension
322        // at the outer width. The other way round it does not: a sign extension of a negative
323        // number read as unsigned afterwards is a different number entirely.
324        let reading = match (self.read.map(|read| read.reading), reading) {
325            (None, outer) => outer,
326            (Some(Reading::Unsigned), _) => Reading::Unsigned,
327            (Some(Reading::Signed), Reading::Signed) => Reading::Signed,
328            (Some(Reading::Signed), Reading::Unsigned) => return None,
329        };
330        Some(Self {
331            on: None,
332            value: Some(value),
333            read: Some(Widening { reading, to }),
334            scale: 1,
335            offset: 0,
336        })
337    }
338
339    /// The two added, when the sum is of this shape.
340    #[must_use]
341    pub fn plus(self, other: Self) -> Option<Self> {
342        let offset = self.offset.checked_add(other.offset)?;
343        // At most one of the two brought something to measure from, since a sum measured from two
344        // pointers is not an address.
345        let on = match (self.on, other.on) {
346            (None, on) | (on, None) => on,
347            (Some(_), Some(_)) => return None,
348        };
349        // The linear parts are about the same symbol, or one of them is a number, so they add.
350        if let Some((value, read)) = self.shared(other) {
351            let scale = self.scale.checked_add(other.scale)?;
352            return Some(Self { on, value, read, scale, offset });
353        }
354        // Two different symbols, which is what a pointer plus an index the loop did not start at
355        // zero is. Nothing may already be measured from anything, and one of the two has to be one
356        // of a value and a number, and that one becomes what the sum is measured from.
357        if on.is_some() {
358            return None;
359        }
360        let (on, rest) = match (self.measure(), other.measure()) {
361            (Some(on), _) => (on, other),
362            (_, Some(on)) => (on, self),
363            _ => return None,
364        };
365        Some(Self { on: Some(on), value: rest.value, read: rest.read, scale: rest.scale, offset })
366    }
367
368    /// The second subtracted from the first, when the difference is of this shape.
369    #[must_use]
370    pub fn minus(self, other: Self) -> Option<Self> {
371        self.plus(other.negated()?)
372    }
373
374    /// This with its sign flipped, which needs nothing to measure from.
375    ///
376    /// A pointer is not a thing to negate, and the second symbol is only ever there because a
377    /// pointer put it there.
378    #[must_use]
379    pub fn negated(self) -> Option<Self> {
380        if self.on.is_some() {
381            return None;
382        }
383        Some(Self {
384            on: None,
385            value: self.value,
386            read: self.read,
387            scale: self.scale.checked_neg()?,
388            offset: self.offset.checked_neg()?,
389        })
390    }
391
392    /// The two multiplied, which needs one of them to be a plain number and neither to be measured
393    /// from anything.
394    #[must_use]
395    pub fn times(self, other: Self) -> Option<Self> {
396        if self.on.is_some() || other.on.is_some() {
397            return None;
398        }
399        let (symbol, by) = match (self.as_number(), other.as_number()) {
400            (Some(by), _) => (other, by),
401            (_, Some(by)) => (self, by),
402            _ => return None,
403        };
404        Some(Self {
405            on: None,
406            value: symbol.value,
407            read: symbol.read,
408            scale: symbol.scale.checked_mul(by)?,
409            offset: symbol.offset.checked_mul(by)?,
410        })
411    }
412}
413
414/// How a value changes from one iteration of a loop to the next.
415#[derive(Clone, Copy, Debug, PartialEq, Eq)]
416pub enum Evolution {
417    /// The same on every iteration.
418    Invariant(Invariant),
419    /// `{base, +, step}`: `base` the first time round and `step` more each time after.
420    Affine(Chrec),
421    /// Not something this analysis describes. Never a claim that the value does not evolve.
422    Unknown,
423}
424
425impl Evolution {
426    /// The chrec, when this is one.
427    #[must_use]
428    pub fn chrec(self) -> Option<Chrec> {
429        match self {
430            Self::Affine(chrec) => Some(chrec),
431            _ => None,
432        }
433    }
434
435    /// The invariant expression, when this is one.
436    #[must_use]
437    pub fn invariant(self) -> Option<Invariant> {
438        match self {
439            Self::Invariant(inv) => Some(inv),
440            _ => None,
441        }
442    }
443}
444
445/// An affine chain of recurrences, `{base, +, step}`, evolving in a named type.
446///
447/// The type is not decoration. `{0, +, 1}` in `unsigned char` is not the sequence `0, 1, 2, ...`,
448/// it is that sequence modulo two hundred and fifty six, and section 7.7 says this is where a
449/// naive implementation is wrong constantly and in ways that pass every test written by someone
450/// thinking in `int`. Every operation here checks the type and every one that cannot stay right
451/// in it answers unknown.
452#[derive(Clone, Copy, Debug, PartialEq, Eq)]
453pub struct Chrec {
454    /// What the value is on the first iteration.
455    pub base: Invariant,
456    /// What is added each time round.
457    pub step: Invariant,
458    /// The type it evolves in, which is what says when it wraps.
459    pub ty: Type,
460    /// What the instruction that increments it promised. `nsw` means the sequence does not wrap
461    /// when read as signed and `nuw` means it does not when read as unsigned, and both come from
462    /// the increment rather than from anything this analysis proved.
463    pub flags: Flags,
464}
465
466impl Chrec {
467    /// Whether the sequence is known not to wrap under the reading this predicate takes.
468    #[must_use]
469    pub fn does_not_wrap(self, signed: bool) -> bool {
470        self.flags.contains(if signed { Flags::NSW } else { Flags::NUW })
471    }
472}
473
474/// Something that has to be true for a trip count to be the right answer.
475///
476/// Section 7.5 asks for exactly this: not a trip count but a trip count plus a predicate under
477/// which it holds, so the consumer either proves the predicate, emits a runtime check for it, or
478/// gives up. These are the predicates.
479#[derive(Clone, Copy, Debug, PartialEq, Eq)]
480pub enum Assumption {
481    /// The loop is entered at all, so the distance from the counter to its limit is a number that
482    /// is not negative.
483    ///
484    /// `for (i = 0; i < n; i++)` with `n` of zero runs no times and the distance is zero, but `n`
485    /// of minus one also runs no times and the distance is minus one, so a count taken from the
486    /// distance has to be told which case it is in.
487    ///
488    /// What it does not say anything about is whether the loop comes back. A counter stepping
489    /// toward a limit under an ordering test either reaches it or is already past it, and either
490    /// way that is a finite number of steps, so a caller whose question is whether the loop ends
491    /// may have this one for nothing. [`crate::hoist`] discharges it by clamping the count at zero
492    /// and [`crate::loop_delete`] by never reading the count. That is the whole of why this is a
493    /// separate assumption from [`Assumption::Approaching`] rather than the same one worded to
494    /// cover both.
495    ///
496    /// Only ever present on a symbolic count. When the distance is a number the sign of it is
497    /// there to be read, so this is settled rather than assumed.
498    Entered,
499    /// The limit is somewhere the counter is heading, which for a loop ending on `!=` is what
500    /// makes it end at all.
501    ///
502    /// A counter stepping away from its limit never arrives, and one stepping past it keeps going
503    /// until it wraps, so what is unproven here is termination rather than which number the count
504    /// is. Nothing discharges it by clamping, because there is no number to clamp when the loop
505    /// does not come back. Document 17.2 says rucc does not take out a loop that might not end,
506    /// so a pass that deletes loops refuses this one outright.
507    ///
508    /// Only ever present on a symbolic count, for the same reason [`Assumption::Entered`] is.
509    Approaching,
510    /// The induction variable does not wrap in its own type before the exit is taken.
511    ///
512    /// Present whenever the increment did not carry the matching `nsw` or `nuw` flag. With the
513    /// flag there is nothing to assume, because the flag is the promise.
514    NoWrap(Chrec),
515    /// Signed overflow is undefined here, which is what makes `for (int i = 0; i <= n; i++)`
516    /// finite.
517    ///
518    /// GCC infers loop bounds from this in `infer_loop_bounds_from_signedness`, and it is the
519    /// single most common source of a report that the compiler broke a working program. It is
520    /// recorded rather than assumed silently so that `-fwrapv` can withdraw the count and so that
521    /// a dump can name it.
522    StrictOverflow,
523}
524
525impl Assumption {
526    /// What it says, in a line, for a dump to print.
527    ///
528    /// Section 7.5 asks that every inference of this kind be dumpable and say what it rests on,
529    /// because a user who has been bitten by one deserves a command that tells them which line
530    /// the compiler used against them. This is the sentence that command prints.
531    #[must_use]
532    pub fn describe(&self) -> String {
533        match self {
534            Self::Entered => "the loop is entered at all".to_string(),
535            Self::Approaching => "the counter is heading towards its limit".to_string(),
536            Self::NoWrap(chrec) => {
537                format!("the induction variable does not wrap in i{}", chrec.ty.bits())
538            }
539            Self::StrictOverflow => {
540                "signed overflow is undefined, so -fwrapv withdraws this count".to_string()
541            }
542        }
543    }
544}
545
546/// How many iterations, as a number or as an expression.
547#[derive(Clone, Copy, Debug, PartialEq, Eq)]
548pub enum Count {
549    /// Exactly this many.
550    Exact(u128),
551    /// This many, worked out from something the loop does not change.
552    Symbolic(Invariant),
553}
554
555/// Which reading of its operands the test the count came from took.
556///
557/// It matters to anybody widening the value a symbolic count is built out of. The count is the
558/// distance to the limit of the exit test, the limit is a value of the counter's own type, and
559/// what that value means is the reading its test took. A limit past the middle of a thirty two bit
560/// type is a large number to an unsigned test and a negative one to a signed test, and a consumer
561/// that sign extends what an unsigned test compared has turned a loop over three billion elements
562/// into a loop that runs no times.
563#[derive(Clone, Copy, Debug, PartialEq, Eq)]
564pub enum Reading {
565    /// The test read its operands as signed, so widening the count means sign extending it.
566    Signed,
567    /// The test read them as unsigned, so widening the count means zero extending it.
568    Unsigned,
569}
570
571/// How many times a loop runs at most, and what that rests on.
572///
573/// For correctness. A pass that deletes an iteration, peels one off, or decides a memory access
574/// is in bounds needs one of these. The count cannot be read without the assumptions, which is
575/// section 7.7's defence against a caller proving two of three and forgetting the third.
576#[derive(Clone, Debug, PartialEq, Eq)]
577pub struct Bound {
578    count: Count,
579    assumptions: Vec<Assumption>,
580    reading: Reading,
581}
582
583impl Bound {
584    /// The count and everything it rests on, together, because they cannot be asked for apart.
585    #[must_use]
586    pub fn parts(&self) -> (Count, &[Assumption]) {
587        (self.count, &self.assumptions)
588    }
589
590    /// How the value a symbolic count is built out of has to be read.
591    ///
592    /// Meaningless on a count that is a number, since a number has already been read.
593    #[must_use]
594    pub fn reading(&self) -> Reading {
595        self.reading
596    }
597
598    /// What has to be proved before the count means anything.
599    #[must_use]
600    pub fn assumptions(&self) -> &[Assumption] {
601        &self.assumptions
602    }
603
604    /// The count, for a caller with nothing left to prove.
605    ///
606    /// `None` does not mean the count is unknown. It means there are assumptions and this is not
607    /// the accessor for reading a count that has them.
608    #[must_use]
609    pub fn proven(&self) -> Option<Count> {
610        self.assumptions.is_empty().then_some(self.count)
611    }
612
613    /// The count, for a caller compiling a language where signed overflow is undefined.
614    ///
615    /// [`Bound::proven`] answers nothing for any `for (int i = 0; i < n; i++)` in any C program,
616    /// because `solve` puts [`Assumption::StrictOverflow`] on every count taken from a signed
617    /// test, and a pass built on `proven` alone is a pass that never fires. What that assumption
618    /// says is that the count rests on signed overflow being undefined, and `-fwrapv` is
619    /// implemented in `rucc-lower` by not setting `nsw` rather than by a flag anything down here
620    /// reads. So an increment that still carries `nsw` under `-fwrapv` does not exist, and a bound
621    /// with `StrictOverflow` and nothing else on it is a bound whose counter the front end
622    /// promised does not wrap. That promise is exactly what the assumption wanted.
623    ///
624    /// [`Assumption::NoWrap`] is the case where there is no such promise, and it is refused here.
625    /// So are [`Assumption::Entered`] and [`Assumption::Approaching`], though only in passing,
626    /// because neither ever appears on a count that is a number.
627    #[must_use]
628    pub fn under_undefined_overflow(&self) -> Option<Count> {
629        self.assumptions
630            .iter()
631            .all(|rests_on| matches!(rests_on, Assumption::StrictOverflow))
632            .then_some(self.count)
633    }
634
635    /// The count, for a caller that needs the loop to come back and not how many times.
636    ///
637    /// One assumption wider than [`Bound::under_undefined_overflow`], and the one it adds is
638    /// [`Assumption::Entered`]. What that says is whether the count is the distance to the limit
639    /// or zero, and both of those are numbers of iterations the loop has, so a pass asking whether
640    /// the loop ends has already been answered whichever way it goes. A pass multiplying by the
641    /// count has not, which is why this is a second accessor and not a loosening of the first.
642    ///
643    /// [`Assumption::Approaching`] is refused, and telling those two apart is the reason they are
644    /// two assumptions. A loop ending on `!=` whose counter steps past its limit runs until it
645    /// wraps, document 17.2 is explicit that rucc does not take out a loop that might not end, and
646    /// a count that comes back from here is one no caller has to check that against.
647    #[must_use]
648    pub fn comes_back(&self) -> Option<Count> {
649        self.assumptions
650            .iter()
651            .all(|rests_on| matches!(rests_on, Assumption::StrictOverflow | Assumption::Entered))
652            .then_some(self.count)
653    }
654}
655
656/// How many times a loop probably runs.
657///
658/// For cost decisions and never for correctness. A pass asking whether unrolling pays for itself
659/// wants one of these, and it is fine for the answer to be a guess, because being wrong makes the
660/// code slower rather than wrong. Nothing here can be turned into a [`Bound`].
661#[derive(Clone, Copy, Debug, PartialEq, Eq)]
662pub struct Estimate {
663    iterations: u64,
664    guessed: bool,
665}
666
667impl Estimate {
668    /// The number to do arithmetic with.
669    #[must_use]
670    pub fn iterations(self) -> u64 {
671        self.iterations
672    }
673
674    /// Whether nothing was known and this is the default.
675    #[must_use]
676    pub fn is_guess(self) -> bool {
677        self.guessed
678    }
679}
680
681/// An exit test, read so that the loop keeps going while it holds.
682///
683/// Not public. It is the shape [`Scev::bound_at`] and [`Scev::holds`] both want out of the same
684/// branch, and what either of them says about it is what the outside sees.
685#[derive(Clone, Copy, Debug)]
686struct Test {
687    /// The side that moves, with the predicate already turned round to put it on the left.
688    chrec: Chrec,
689    /// The side that does not.
690    limit: Invariant,
691    /// The comparison that has to hold for the loop to go round again.
692    pred: IntPred,
693    /// Whether every iteration that goes round asks it.
694    each: bool,
695}
696
697/// The analysis, which works out an answer when asked and remembers it.
698///
699/// Demand driven and memoized, per section 7.8, because the cost of scalar evolution is a
700/// function of how many distinct values get asked about rather than of the size of the function.
701/// The cache holds one loop's worth of answers per loop and the whole thing is thrown away when
702/// anything about the loops changes, which per document 04.4 is any pass that touches one.
703#[derive(Debug)]
704pub struct Scev<'a> {
705    func: &'a Func,
706    cfg: &'a Cfg,
707    loops: &'a Loops,
708    known: HashMap<(LoopId, Value), Evolution>,
709    held: HashMap<LoopId, Option<Chrec>>,
710}
711
712impl<'a> Scev<'a> {
713    /// A fresh analysis over these loops, knowing nothing yet.
714    #[must_use]
715    pub fn new(func: &'a Func, cfg: &'a Cfg, loops: &'a Loops) -> Self {
716        Self { func, cfg, loops, known: HashMap::new(), held: HashMap::new() }
717    }
718
719    /// How this value changes across the iterations of this loop.
720    ///
721    /// The way in, and what it does before answering is settle `Scev::holds` for the loop. That has
722    /// to happen out here rather than at the point `Scev::extend` wants it, because settling it
723    /// means asking about other values and `Scev::at` parks a marker on the value it is working on.
724    /// Asked from in there, the answer would depend on what was already in flight.
725    pub fn evolution(&mut self, id: LoopId, value: Value) -> Evolution {
726        self.holds(id);
727        self.at(id, value)
728    }
729
730    /// How this value changes, with the loop's own facts already settled.
731    fn at(&mut self, id: LoopId, value: Value) -> Evolution {
732        if let Some(&known) = self.known.get(&(id, value)) {
733            return known;
734        }
735        // Unknown while the answer is being worked out, so the cycle from a header parameter back
736        // to itself terminates instead of asking the same question forever. Anything that reaches
737        // the parameter again gets unknown and the shape it was matching fails, which is the
738        // right answer for a value defined in terms of itself through arithmetic this does not
739        // describe.
740        self.known.insert((id, value), Evolution::Unknown);
741        let found = self.compute(id, value);
742        self.known.insert((id, value), found);
743        found
744    }
745
746    /// How many times this loop runs at most, and what that rests on.
747    ///
748    /// Any one exit gives a valid upper bound, because a loop cannot run more times than the
749    /// first exit that fires, so this takes the first exit it can solve rather than the smallest.
750    /// That is `max_loop_iterations` and not `estimate_numbers_of_iterations`, which is why the
751    /// answer is a [`Bound`].
752    pub fn bound(&mut self, id: LoopId) -> Option<Bound> {
753        self.holds(id);
754        let exits: Vec<Block> = self.loops.exits(id).iter().map(|exit| exit.from).collect();
755        exits.into_iter().find_map(|from| self.bound_at(id, from))
756    }
757
758    /// The counter an exit test of this loop keeps inside its own type, when there is one.
759    ///
760    /// [`bounded_by_its_test`] is the argument and this is where its answer is written down as a
761    /// fact about the loop rather than spent on one trip count. What it buys is [`Scev::extend`]:
762    /// an unsigned counter carries no `nuw`, so widening anything built out of one used to be
763    /// refused, and the test that holds the counter holds everything walking beside it.
764    ///
765    /// Settled once per loop and then read. It is settled from [`Scev::evolution`] and
766    /// [`Scev::bound`], which are the two ways in, so that it is worked out with nothing in flight.
767    /// The cache for the loop is emptied afterwards, because the answers already in it were worked
768    /// out while this was still unknown and a conservative answer that stayed would make what the
769    /// analysis says depend on which question was asked first.
770    fn holds(&mut self, id: LoopId) -> Option<Chrec> {
771        if let Some(&known) = self.held.get(&id) {
772            return known;
773        }
774        // Unknown while it is being worked out, which is what stops the recursion below from
775        // asking the same question forever, and which is why the cache is emptied after.
776        self.held.insert(id, None);
777        let exits: Vec<Block> = self.loops.exits(id).iter().map(|exit| exit.from).collect();
778        let found = exits.into_iter().find_map(|from| {
779            let test = self.test_at(id, from)?;
780            let step = test.chrec.step.as_number()?;
781            (test.each && bounded_by_its_test(test.pred, step)).then_some(test.chrec)
782        });
783        self.held.insert(id, found);
784        self.known.retain(|&(of, _), _| of != id);
785        found
786    }
787
788    /// How many times this loop probably runs.
789    pub fn estimate(&mut self, id: LoopId) -> Estimate {
790        match self.bound(id).map(|bound| bound.count) {
791            Some(Count::Exact(exact)) => {
792                Estimate { iterations: u64::try_from(exact).unwrap_or(u64::MAX), guessed: false }
793            }
794            _ => Estimate { iterations: ASSUMED_ITERATIONS, guessed: true },
795        }
796    }
797
798    /// The evolution of a value nothing is known about yet.
799    fn compute(&mut self, id: LoopId, value: Value) -> Evolution {
800        if let Some(invariant) = self.invariant(id, value) {
801            return Evolution::Invariant(invariant);
802        }
803        match self.func[value].def {
804            Def::Param { block, index } if block == self.loops.header(id) => {
805                self.at_header(id, value, index as usize)
806            }
807            // A parameter of a block inside the loop that is not the header takes a different
808            // value depending on which way control came, and describing that is a job for the
809            // value range work of document 10 rather than for a chrec. Unless there is only one
810            // way in, in which case it does not.
811            Def::Param { .. } => match self.forwarded(value) {
812                same if same == value => Evolution::Unknown,
813                through => self.at(id, through),
814            },
815            Def::Result { inst, .. } => self.at_inst(id, inst, value),
816        }
817    }
818
819    /// The value as an expression that does not change inside the loop, if it is one.
820    fn invariant(&self, id: LoopId, value: Value) -> Option<Invariant> {
821        if let Some((imm, ty)) = constant(self.func, value) {
822            return Some(Invariant::number(imm.signed(ty)));
823        }
824        // A constant is invariant wherever it sits, which is why it is asked about first. Anything
825        // else has to be defined outside the loop.
826        if self.loops.is_invariant(self.func, id, value) {
827            return Some(Invariant::of(value));
828        }
829        // Except the address of a global, which is a link time constant and so does not change
830        // inside a loop wherever it is written. Asked after the question above and not instead of
831        // it, so that a `global_addr` already sitting outside the loop stays a value every reader
832        // can name, and this arm is only the case that used to come out unknown. See [`Anchor`].
833        symbol(self.func, value).map(Invariant::address)
834    }
835
836    /// The evolution of a parameter of the loop header, which is where an induction variable is.
837    ///
838    /// The parameter takes one value on the way in and another on the way round, which is what
839    /// other IRs spell as a phi node. If the way round is the parameter plus something invariant,
840    /// the parameter is an affine chrec and that something is its step.
841    fn at_header(&mut self, id: LoopId, value: Value, index: usize) -> Evolution {
842        let (func, cfg, loops) = (self.func, self.cfg, self.loops);
843        let header = loops.header(id);
844        // Section 7.3 wants exactly one latch and the canonicalizer makes one. Two of them means
845        // two ways round with two different increments, and picking one would be a guess.
846        let [latch] = loops.latches(id) else { return Evolution::Unknown };
847        let mut entering = None;
848        let mut around = None;
849        for &pred in cfg.predecessors(header) {
850            let Some(arg) = argument(func, pred, header, index) else { return Evolution::Unknown };
851            let arg = self.forwarded(arg);
852            let slot = if pred == *latch { &mut around } else { &mut entering };
853            if slot.replace(arg).is_some_and(|old| old != arg) {
854                return Evolution::Unknown;
855            }
856        }
857        let (Some(entering), Some(around)) = (entering, around) else { return Evolution::Unknown };
858        let Some(base) = self.invariant(id, entering) else { return Evolution::Unknown };
859        let Some((step, flags)) = self.step(id, around, value, 0) else {
860            return Evolution::Unknown;
861        };
862        affine(base, step, func[value].ty, flags)
863    }
864
865    /// The value a block parameter stands for, when there is only one way into its block.
866    ///
867    /// This is not an analysis, it is undoing a rename. A block with one predecessor has one value
868    /// for each of its parameters and it is the argument that predecessor passes, so reading
869    /// through it loses nothing and assumes nothing.
870    ///
871    /// It is here because of what canonicalization does. `crate::canon` splits the back edge of a
872    /// loop to give it a latch of its own, and after that the value going round the loop is not the
873    /// increment the loop computed, it is a parameter of a block that does nothing but pass the
874    /// increment on. Without this, every counted loop the pipeline actually produces looks like a
875    /// loop whose counter comes from somewhere unknown, and the trip count of a `for` loop in a
876    /// real function comes back as nothing.
877    fn forwarded(&self, value: Value) -> Value {
878        let mut value = value;
879        for _ in 0..FORWARD_LIMIT {
880            let Def::Param { block, index } = self.func[value].def else { return value };
881            let [pred] = self.cfg.predecessors(block) else { return value };
882            let Some(arg) = argument(self.func, *pred, block, index as usize) else { return value };
883            if arg == value {
884                return value;
885            }
886            value = arg;
887        }
888        value
889    }
890
891    /// What is added to `of` to get `value`, and what the additions promised.
892    ///
893    /// Written as its own walk rather than as the general combination below, because at the point
894    /// this runs the parameter's own evolution is not known yet and the general walk would ask
895    /// for it and get unknown.
896    fn step(&self, id: LoopId, value: Value, of: Value, depth: u32) -> Option<(Invariant, Flags)> {
897        let value = self.forwarded(value);
898        if value == of {
899            // Nothing added yet, and nothing has had a chance to overflow either.
900            return Some((Invariant::number(0), Flags::NSW.union(Flags::NUW)));
901        }
902        if depth >= STEP_LIMIT {
903            return None;
904        }
905        let Def::Result { inst, .. } = self.func[value].def else { return None };
906        let data = &self.func[inst];
907        let args = &self.func[data.args];
908        let (&lhs, &rhs) = (args.first()?, args.get(1)?);
909        let combine = |carried: (Invariant, Flags), other: Invariant, subtract: bool| {
910            let (delta, flags) = carried;
911            let moved = if subtract { delta.minus(other)? } else { delta.plus(other)? };
912            Some((moved, flags.intersection(data.flags)))
913        };
914        match data.opcode {
915            Opcode::Add => {
916                if let Some(carried) = self.step(id, lhs, of, depth + 1) {
917                    return combine(carried, self.invariant(id, rhs)?, false);
918                }
919                combine(self.step(id, rhs, of, depth + 1)?, self.invariant(id, lhs)?, false)
920            }
921            Opcode::Sub => {
922                combine(self.step(id, lhs, of, depth + 1)?, self.invariant(id, rhs)?, true)
923            }
924            // A pointer walks by bytes, and only the pointer side can be the one carrying the
925            // induction variable. The offset is the step, which is the element size the front end
926            // already multiplied in.
927            Opcode::PtrAdd => {
928                combine(self.step(id, lhs, of, depth + 1)?, self.invariant(id, rhs)?, false)
929            }
930            _ => None,
931        }
932    }
933
934    /// The evolution of an instruction's result, from the evolutions of its operands.
935    fn at_inst(&mut self, id: LoopId, inst: Inst, value: Value) -> Evolution {
936        let func = self.func;
937        let data = &func[inst];
938        let (opcode, flags) = (data.opcode, data.flags);
939        let args = &func[data.args];
940        let ty = func[value].ty;
941        let Some(&lhs) = args.first() else { return Evolution::Unknown };
942        match opcode {
943            Opcode::Add | Opcode::PtrAdd => {
944                let Some(&rhs) = args.get(1) else { return Evolution::Unknown };
945                let (left, right) = (self.at(id, lhs), self.at(id, rhs));
946                combine(left, right, ty, flags, false)
947            }
948            Opcode::Sub => {
949                let Some(&rhs) = args.get(1) else { return Evolution::Unknown };
950                let (left, right) = (self.at(id, lhs), self.at(id, rhs));
951                combine(left, right, ty, flags, true)
952            }
953            Opcode::Mul => {
954                let Some(&rhs) = args.get(1) else { return Evolution::Unknown };
955                let (left, right) = (self.at(id, lhs), self.at(id, rhs));
956                scale(left, right, ty, flags)
957            }
958            // A shift by a constant is a multiplication by a power of two, and only by a constant:
959            // a variable count is invariant in the loop and still not a number this can multiply
960            // by. A count at or above the width is poison rather than a shift to zero, so the
961            // range is checked here rather than assumed.
962            Opcode::Shl => {
963                let Some(&rhs) = args.get(1) else { return Evolution::Unknown };
964                let Some((count, count_ty)) = constant(func, rhs) else {
965                    return Evolution::Unknown;
966                };
967                let count = count.unsigned();
968                if count >= u128::from(ty.bits()) || !count_ty.is_int() {
969                    return Evolution::Unknown;
970                }
971                let by = Evolution::Invariant(Invariant::number(1i128 << count));
972                scale(self.at(id, lhs), by, ty, flags)
973            }
974            Opcode::SExt | Opcode::ZExt => self.extend(id, opcode, lhs, ty),
975            // A truncation is a wrap by construction, so a chrec through one describes a sequence
976            // that restarts, and this does not have a representation for that.
977            _ => Evolution::Unknown,
978        }
979    }
980
981    /// A chrec widened, which needs the sequence not to wrap at the narrow width.
982    ///
983    /// Section 7.4 allows extension only where the extension provably does not wrap, and the first
984    /// proof here is the flag the increment carries. `nsw` on the increment is the promise that the
985    /// signed sequence does not wrap, which is exactly what makes the wide sequence the same
986    /// numbers as the narrow one.
987    ///
988    /// The second proof is the loop's own exit test, through [`Scev::holds`] and [`trails`], and it
989    /// is here because of what an unsigned counter looks like. `for (unsigned i = 0; i < n; i++)`
990    /// carries no `nuw`, because C says unsigned arithmetic wraps, so `a[i]` on that counter used
991    /// to come back unwidened and every bounds check in the loop stayed where it was. The test that
992    /// keeps the counter inside its type keeps everything walking beside it inside too.
993    ///
994    /// Each part is either a plain number or one of a value, and nothing else. A number means the
995    /// same thing at both widths, and one of a value becomes that value read through the extension,
996    /// which is what [`Widening`] is for. Anything with arithmetic in it is refused, because the
997    /// narrow arithmetic may already have wrapped and `sext(2 * x + 3)` is not `2 * sext(x) + 3`.
998    /// What that leaves out is a base like `start + 1`, and what it lets in is `start`, which is
999    /// the shape a walk from an index the caller handed in is in. See #810.
1000    fn extend(&mut self, id: LoopId, opcode: Opcode, from: Value, to: Type) -> Evolution {
1001        let narrow = self.func[from].ty;
1002        let signed = opcode == Opcode::SExt;
1003        let held = self.held.get(&id).copied().flatten();
1004        let settled = |chrec: Chrec| {
1005            chrec.does_not_wrap(signed) || (!signed && held.is_some_and(|held| trails(chrec, held)))
1006        };
1007        match self.at(id, from) {
1008            Evolution::Invariant(inv) => match inv.as_number() {
1009                // A number read at the narrow width means the same thing at the wide one under
1010                // sign extension, and under zero extension once it is not negative.
1011                Some(number) if signed || number >= 0 => Evolution::Invariant(inv),
1012                _ => Evolution::Unknown,
1013            },
1014            Evolution::Affine(chrec) if chrec.ty == narrow && settled(chrec) => {
1015                let reading = if signed { Reading::Signed } else { Reading::Unsigned };
1016                let (Some(base), Some(step)) =
1017                    (chrec.base.widened(reading, to), chrec.step.widened(reading, to))
1018                else {
1019                    return Evolution::Unknown;
1020                };
1021                Evolution::Affine(Chrec { base, step, ty: to, flags: chrec.flags })
1022            }
1023            _ => Evolution::Unknown,
1024        }
1025    }
1026
1027    /// The trip count from the exit leaving this block, if this exit can be solved.
1028    fn bound_at(&mut self, id: LoopId, from: Block) -> Option<Bound> {
1029        let test = self.test_at(id, from)?;
1030        solve(test.chrec, test.limit, test.pred, test.each)
1031    }
1032
1033    /// The exit test leaving this block, read into the pieces its two readers want.
1034    ///
1035    /// [`Scev::bound_at`] spends it on a trip count and [`Scev::holds`] spends it on whether the
1036    /// counter can wrap, and both want the same reading of the same branch, so the reading is
1037    /// written once.
1038    fn test_at(&mut self, id: LoopId, from: Block) -> Option<Test> {
1039        let func = self.func;
1040        let term = func.terminator(from)?;
1041        if func[term].opcode != Opcode::BrIf {
1042            return None;
1043        }
1044        let args = &func[func[term].args];
1045        let &cond = args.first()?;
1046        let calls = &func[func.target_list(term)];
1047        let (&taken, &not_taken) = (calls.first()?, calls.get(1)?);
1048        // Which arm keeps going. If both stay in or both leave, the branch is not the test that
1049        // ends the loop and there is nothing here to solve.
1050        let stays = match (
1051            self.loops.contains(id, taken.block),
1052            self.loops.contains(id, not_taken.block),
1053        ) {
1054            (true, false) => true,
1055            (false, true) => false,
1056            _ => return None,
1057        };
1058
1059        let Def::Result { inst, .. } = func[cond].def else { return None };
1060        if func[inst].opcode != Opcode::ICmp {
1061            return None;
1062        }
1063        let Extra::IntPred(pred) = func[inst].extra else { return None };
1064        // The loop keeps going while the test says so, so an exit taken when the test is true is
1065        // an exit whose continuing condition is the opposite one.
1066        let pred = if stays { pred } else { invert(pred) };
1067        let operands = &func[func[inst].args];
1068        let (&lhs, &rhs) = (operands.first()?, operands.get(1)?);
1069
1070        // One side evolves and the other does not. Swapping puts the one that evolves on the left
1071        // and turns the predicate round with it, so only one direction has to be solved.
1072        let (chrec, limit, pred) = match (self.at(id, lhs), self.at(id, rhs)) {
1073            (Evolution::Affine(chrec), other) => (chrec, other.invariant()?, pred),
1074            (other, Evolution::Affine(chrec)) => (chrec, other.invariant()?, swap(pred)),
1075            _ => return None,
1076        };
1077
1078        // Whether every iteration that goes round asks this test. The header runs on all of them by
1079        // being the header. A latch runs on all of them only when it is the loop's one latch, since
1080        // with two of them an iteration can go round the other and never reach the test. Anywhere
1081        // else is a test under a condition, which [`bounded_by_its_test`] must not be given.
1082        //
1083        // The one latch is written out rather than taken for granted. `at_header` refuses a loop
1084        // with two of them already, so nothing reaching here has two, but the two conditions are
1085        // about different things and a later loosening of that one should not quietly loosen this.
1086        let each = from == self.loops.header(id) || self.loops.latches(id) == [from];
1087        Some(Test { chrec, limit, pred, each })
1088    }
1089}
1090
1091/// Two evolutions added, or subtracted when asked.
1092fn combine(left: Evolution, right: Evolution, ty: Type, flags: Flags, subtract: bool) -> Evolution {
1093    let apply = |a: Invariant, b: Invariant| if subtract { a.minus(b) } else { a.plus(b) };
1094    match (left, right) {
1095        (Evolution::Invariant(a), Evolution::Invariant(b)) => {
1096            apply(a, b).map_or(Evolution::Unknown, Evolution::Invariant)
1097        }
1098        (Evolution::Affine(chrec), Evolution::Invariant(b)) => {
1099            // Adding something that does not move only moves the base.
1100            let Some(base) = apply(chrec.base, b) else { return Evolution::Unknown };
1101            affine(base, chrec.step, ty, flags.intersection(chrec.flags))
1102        }
1103        (Evolution::Invariant(a), Evolution::Affine(chrec)) => {
1104            let (Some(base), Some(step)) = (
1105                apply(a, chrec.base),
1106                if subtract { chrec.step.negated() } else { Some(chrec.step) },
1107            ) else {
1108                return Evolution::Unknown;
1109            };
1110            affine(base, step, ty, flags.intersection(chrec.flags))
1111        }
1112        (Evolution::Affine(a), Evolution::Affine(b)) => {
1113            // Two chrecs of the same loop add componentwise, which is the closure property that
1114            // makes the representation worth having. Of different types they do not, because the
1115            // two sequences wrap at different widths.
1116            if a.ty != b.ty {
1117                return Evolution::Unknown;
1118            }
1119            let (Some(base), Some(step)) = (apply(a.base, b.base), apply(a.step, b.step)) else {
1120                return Evolution::Unknown;
1121            };
1122            affine(base, step, ty, flags.intersection(a.flags).intersection(b.flags))
1123        }
1124        _ => Evolution::Unknown,
1125    }
1126}
1127
1128/// One evolution multiplied by another, which needs one of them to stand still.
1129fn scale(left: Evolution, right: Evolution, ty: Type, flags: Flags) -> Evolution {
1130    let (chrec, by) = match (left, right) {
1131        (Evolution::Invariant(a), Evolution::Invariant(b)) => {
1132            return a.times(b).map_or(Evolution::Unknown, Evolution::Invariant);
1133        }
1134        (Evolution::Affine(chrec), Evolution::Invariant(by))
1135        | (Evolution::Invariant(by), Evolution::Affine(chrec)) => (chrec, by),
1136        // Two chrecs multiplied give a quadratic, which is a chain of recurrences with a second
1137        // step and is outside the subset section 7.4 chose.
1138        _ => return Evolution::Unknown,
1139    };
1140    let (Some(base), Some(step)) = (chrec.base.times(by), chrec.step.times(by)) else {
1141        return Evolution::Unknown;
1142    };
1143    affine(base, step, ty, flags.intersection(chrec.flags))
1144}
1145
1146/// A chrec, or invariant when the step turns out to be nothing.
1147///
1148/// A step of zero is a valid affine chrec describing a value that does not move, and section 7.7
1149/// warns that code dividing by the step to get a trip count divides by zero. Reporting it as
1150/// invariant here means the shape is right for every reader rather than only for the careful
1151/// ones, and the trip count solver still checks, because a step can also come out zero from a
1152/// header parameter incremented by an invariant that happens to be zero.
1153fn affine(base: Invariant, step: Invariant, ty: Type, flags: Flags) -> Evolution {
1154    if step.is_zero() {
1155        return Evolution::Invariant(base);
1156    }
1157    Evolution::Affine(Chrec { base, step, ty, flags })
1158}
1159
1160/// The iteration at which `chrec pred limit` first fails, with what that rests on.
1161///
1162/// `each` says the test runs on every iteration that goes round, which is what lets the test itself
1163/// stand in for a promise the counter does not carry. See [`bounded_by_its_test`].
1164fn solve(chrec: Chrec, limit: Invariant, pred: IntPred, each: bool) -> Option<Bound> {
1165    // Section 7.7's first way of being wrong. A step of zero is a loop that never leaves through
1166    // this exit, and dividing the distance by it is a crash rather than an answer.
1167    let step = chrec.step.as_number()?;
1168    if step == 0 {
1169        return None;
1170    }
1171    let signed = matches!(pred, IntPred::Slt | IntPred::Sle | IntPred::Sgt | IntPred::Sge);
1172
1173    let mut assumptions = Vec::new();
1174    if !chrec.does_not_wrap(signed) && !(each && bounded_by_its_test(pred, step)) {
1175        assumptions.push(Assumption::NoWrap(chrec));
1176    }
1177    if signed {
1178        assumptions.push(Assumption::StrictOverflow);
1179    }
1180
1181    // A test that does not read its operands as signed does not read the constants in them that
1182    // way either, and every constant reaching here was read as signed on the way in.
1183    let (base, limit) = if signed {
1184        (chrec.base, limit)
1185    } else {
1186        (as_unsigned(chrec.base, chrec.ty)?, as_unsigned(limit, chrec.ty)?)
1187    };
1188
1189    // The distance the counter has to travel, always counting up. A loop going down is the same
1190    // problem with the ends swapped, which is why the step is used by size below and its sign is
1191    // spent here.
1192    let apart = step.unsigned_abs();
1193    let found = match (pred, step > 0) {
1194        (IntPred::Slt | IntPred::Ult, true) => {
1195            ordered(limit.minus(base)?, apart, false, assumptions)
1196        }
1197        (IntPred::Sle | IntPred::Ule, true) => {
1198            ordered(limit.minus(base)?, apart, true, assumptions)
1199        }
1200        (IntPred::Sgt | IntPred::Ugt, false) => {
1201            ordered(base.minus(limit)?, apart, false, assumptions)
1202        }
1203        (IntPred::Sge | IntPred::Uge, false) => {
1204            ordered(base.minus(limit)?, apart, true, assumptions)
1205        }
1206        (IntPred::Ne, _) => {
1207            let distance = if step > 0 { limit.minus(base)? } else { base.minus(limit)? };
1208            landing(distance, apart, assumptions)
1209        }
1210        // Either the counter steps away from the limit, in which case the loop is endless rather
1211        // than long, or the test is one this does not solve. Silence is the answer to both.
1212        _ => None,
1213    };
1214    // Written once here rather than threaded through the two solvers, because it is a fact about
1215    // the test and neither of them looks at the test. A count taken from a test with no sign to it,
1216    // which is `!=`, is read unsigned, because that is the reading `as_unsigned` above already put
1217    // its operands through.
1218    let reading = if signed { Reading::Signed } else { Reading::Unsigned };
1219    found.map(|(count, assumptions)| Bound { count, assumptions, reading })
1220}
1221
1222/// Whether the exit test by itself rules out the counter wrapping before the loop ends.
1223///
1224/// An unsigned counter carries no `nuw`, because C says unsigned arithmetic wraps, so without this
1225/// every `for (unsigned i = 0; i < n; i++)` comes back resting on an assumption nothing downstream
1226/// can discharge. What discharges it is the test. A counter stepping up by exactly one is at the
1227/// limit before it is anywhere past it, and the test ends the loop there, so it never reaches the
1228/// top of its type. GCC works the same thing out in `scev_probably_wraps_p`.
1229///
1230/// Every part of that is load bearing. The step has to be one: `i += 2` can go from one below the
1231/// limit to one above the top of the type and come back round at the bottom, which is a loop that
1232/// runs forever rather than one that runs twice as fast. The test has to be the strict one: `<=`
1233/// lets the counter reach the limit and step once more, and a limit that is the largest number of
1234/// its type makes that last step the one that wraps. And the test has to run on every iteration
1235/// that goes round, or the counter can be stepped by a path that never asks it anything.
1236///
1237/// Nothing is claimed here about a signed counter, which needs no help: a signed counter that would
1238/// wrap is a program with undefined behaviour in it and [`Assumption::StrictOverflow`] is where
1239/// that is recorded.
1240fn bounded_by_its_test(pred: IntPred, step: i128) -> bool {
1241    matches!((pred, step), (IntPred::Ult, 1) | (IntPred::Ugt, -1))
1242}
1243
1244/// Whether this sequence stays behind one the exit test already keeps inside its type.
1245///
1246/// [`bounded_by_its_test`] says the counter the test compares never reaches the top of its type.
1247/// Everything else the loop counts with is that counter plus a fixed distance, because two affine
1248/// chrecs of the same loop with the same step differ by a constant, so a sequence starting no
1249/// further along than the counter is a sequence that gets to the top no sooner than the counter
1250/// does, which is never.
1251///
1252/// Same base is the case that matters most and the easiest to see: the test compares `i + 1` and
1253/// the subscript reads `i`, which is one loop written two ways, and the two chrecs differ only in
1254/// where they start.
1255///
1256/// Going up only. A counter going down wraps at the bottom rather than the top, so the sequence
1257/// that is safe is the one that starts further along rather than the one that starts behind, and
1258/// nothing measured so far walks an array downwards. Doing it would be turning the comparison
1259/// round, and it should come with the program that wants it.
1260fn trails(chrec: Chrec, held: Chrec) -> bool {
1261    if chrec.ty != held.ty || chrec.step != held.step {
1262        return false;
1263    }
1264    if chrec.base == held.base {
1265        return true;
1266    }
1267    let (Some(step), Some(mine), Some(theirs)) =
1268        (chrec.step.as_number(), chrec.base.as_number(), held.base.as_number())
1269    else {
1270        return false;
1271    };
1272    // Read as unsigned, which is the reading the test took, so a base that came in negative is a
1273    // large number rather than a small one and starting behind is not what it is doing.
1274    step > 0 && mine >= 0 && theirs >= 0 && mine <= theirs
1275}
1276
1277/// The same expression, read the way a test without a sign reads it.
1278///
1279/// Constants arrive here as the number their bits are when the sign bit is taken seriously,
1280/// because that is the only reading available before anybody knows what will be done with them.
1281/// An unsigned test disagrees about half of them. `for (unsigned char i = 0; i < 200; i++)` holds
1282/// its limit as minus fifty six, and a distance worked out from that is negative, which reads as
1283/// a loop that runs no times rather than one that runs two hundred.
1284///
1285/// The step is not put through this, because a step is a difference rather than a value and its
1286/// signed reading is the one that says which way the counter goes.
1287fn as_unsigned(inv: Invariant, ty: Type) -> Option<Invariant> {
1288    match inv.as_number() {
1289        Some(number) if number >= 0 => Some(inv),
1290        Some(number) => {
1291            // Only an integer constant was read as signed in the first place. A pointer never
1292            // was, so a negative number sitting in one is an expression this cannot reinterpret.
1293            let bits = ty.is_int().then(|| ty.bits()).filter(|&bits| bits < 127)?;
1294            Some(Invariant::number(number & ((1i128 << bits) - 1)))
1295        }
1296        // A symbolic operand is whatever it is at run time, and the subtraction below cancels it
1297        // rather than reading it, so long as nothing signed has been folded in beside it. Two
1298        // symbols is two things to cancel and the subtraction only ever cancels one.
1299        None => (inv.on.is_none() && inv.scale == 1 && inv.offset == 0).then_some(inv),
1300    }
1301}
1302
1303/// The count for an exit tested with an ordering, where overshooting the limit still ends it.
1304fn ordered(
1305    distance: Invariant,
1306    step: u128,
1307    inclusive: bool,
1308    mut assumptions: Vec<Assumption>,
1309) -> Option<(Count, Vec<Assumption>)> {
1310    match distance.as_number() {
1311        Some(exact) => {
1312            if exact < 0 {
1313                // The counter starts past the limit, so the test fails the first time it runs.
1314                // That is a count of zero and it rests on nothing at all, not even on the counter
1315                // behaving, because the counter never moves.
1316                return Some((Count::Exact(0), Vec::new()));
1317            }
1318            // Rounding up, because a step that overshoots still took the iteration that overshot.
1319            let count = (exact.unsigned_abs() + u128::from(inclusive)).div_ceil(step);
1320            Some((Count::Exact(count), assumptions))
1321        }
1322        // Symbolic, and only for a step of one, because dividing an expression by anything else
1323        // needs a representation for a division and there is not one here.
1324        None if step == 1 => {
1325            assumptions.push(Assumption::Entered);
1326            let count = distance.plus(Invariant::number(i128::from(inclusive)))?;
1327            Some((Count::Symbolic(count), assumptions))
1328        }
1329        None => None,
1330    }
1331}
1332
1333/// The count for an exit tested with `!=`, where the counter has to land on the limit exactly.
1334///
1335/// This is a different problem from the one above and not a special case of it. An ordering test
1336/// ends the loop the moment the counter is past the limit, so a step that overshoots still stops.
1337/// `!=` only ends the loop on the one iteration where the counter is the limit, so a counter that
1338/// steps over the limit, or that starts on the far side of it, keeps going until it wraps. Both
1339/// of those are endless loops rather than short ones, and answering zero for either was the bug
1340/// this function exists to not have.
1341fn landing(
1342    distance: Invariant,
1343    step: u128,
1344    mut assumptions: Vec<Assumption>,
1345) -> Option<(Count, Vec<Assumption>)> {
1346    match distance.as_number() {
1347        Some(exact) => {
1348            let travel = u128::try_from(exact).ok()?;
1349            // Checked outright rather than assumed, which is why nothing here needs an assumption
1350            // about the step dividing anything.
1351            (travel % step == 0).then(|| (Count::Exact(travel / step), assumptions))
1352        }
1353        // A step of one lands on everything ahead of it, so the only thing left to establish is
1354        // that the limit is ahead. `while (p != end)` is this case, and a step of anything else
1355        // would need the division a symbolic distance has no room for.
1356        None if step == 1 => {
1357            assumptions.push(Assumption::Approaching);
1358            Some((Count::Symbolic(distance), assumptions))
1359        }
1360        None => None,
1361    }
1362}
1363
1364/// The predicate that is true exactly when this one is not.
1365fn invert(pred: IntPred) -> IntPred {
1366    match pred {
1367        IntPred::Eq => IntPred::Ne,
1368        IntPred::Ne => IntPred::Eq,
1369        IntPred::Slt => IntPred::Sge,
1370        IntPred::Sle => IntPred::Sgt,
1371        IntPred::Sgt => IntPred::Sle,
1372        IntPred::Sge => IntPred::Slt,
1373        IntPred::Ult => IntPred::Uge,
1374        IntPred::Ule => IntPred::Ugt,
1375        IntPred::Ugt => IntPred::Ule,
1376        IntPred::Uge => IntPred::Ult,
1377    }
1378}
1379
1380/// The predicate that says the same thing with the operands the other way round.
1381fn swap(pred: IntPred) -> IntPred {
1382    match pred {
1383        IntPred::Eq => IntPred::Eq,
1384        IntPred::Ne => IntPred::Ne,
1385        IntPred::Slt => IntPred::Sgt,
1386        IntPred::Sle => IntPred::Sge,
1387        IntPred::Sgt => IntPred::Slt,
1388        IntPred::Sge => IntPred::Sle,
1389        IntPred::Ult => IntPred::Ugt,
1390        IntPred::Ule => IntPred::Uge,
1391        IntPred::Ugt => IntPred::Ult,
1392        IntPred::Uge => IntPred::Ule,
1393    }
1394}
1395
1396/// The constant a value is, if it is one.
1397fn constant(func: &Func, value: Value) -> Option<(Imm, Type)> {
1398    let Def::Result { inst, .. } = func[value].def else { return None };
1399    if func[inst].opcode != Opcode::IConst {
1400        return None;
1401    }
1402    let Extra::Imm(at) = func[inst].extra else { return None };
1403    let ty = func[value].ty;
1404    ty.is_int().then(|| (func[at], ty))
1405}
1406
1407/// The global whose address a value is, if it is one.
1408fn symbol(func: &Func, value: Value) -> Option<Symbol> {
1409    let Def::Result { inst, .. } = func[value].def else { return None };
1410    if func[inst].opcode != Opcode::GlobalAddr {
1411        return None;
1412    }
1413    let Extra::Symbol(symbol) = func[inst].extra else { return None };
1414    Some(symbol)
1415}
1416
1417/// What this predecessor passes to the block's parameter at this position.
1418///
1419/// `None` when the predecessor branches to the block more than once with different arguments,
1420/// which a `br_if` with both arms on the same block can do and which means the parameter takes a
1421/// value that depends on the test rather than on the edge.
1422fn argument(func: &Func, pred: Block, block: Block, index: usize) -> Option<Value> {
1423    let term = func.terminator(pred)?;
1424    let mut found = None;
1425    for call in func.successors(term) {
1426        if call.block != block {
1427            continue;
1428        }
1429        let arg = *func[call.args].get(index)?;
1430        if found.replace(arg).is_some_and(|old| old != arg) {
1431            return None;
1432        }
1433    }
1434    found
1435}
1436
1437#[cfg(test)]
1438mod tests {
1439    use rucc_base::Interner;
1440    use rucc_ir::{Builder, Extra, Flags, Func, InstData, IntPred, Opcode, Signature, Type, Value};
1441
1442    use crate::cfg::Cfg;
1443    use crate::dom::Dominators;
1444    use crate::loops::{LoopId, Loops};
1445    use crate::scev::{
1446        Anchor, Assumption, Bound, Count, Evolution, Invariant, Reading, Scev, Widening,
1447    };
1448
1449    /// A loop counting in `ty` from `from` by `step` while the counter is below `to`.
1450    ///
1451    /// ```text
1452    /// entry:  jump header(from)
1453    /// header(i): test = icmp pred i, to ; br_if test, body, exit
1454    /// body:   next = add i, step ; jump header(next)
1455    /// exit:   ret
1456    /// ```
1457    ///
1458    /// The counter is the header's only parameter, which is what the tests ask about.
1459    struct Counted {
1460        func: Func,
1461        counter: Value,
1462        next: Value,
1463    }
1464
1465    fn counted(ty: Type, from: i128, to: i128, step: i128, pred: IntPred, flags: Flags) -> Counted {
1466        let (it, ()) = counted_with(ty, from, to, step, pred, flags, |_, _| ());
1467        it
1468    }
1469
1470    /// The same loop, with `extra` run in the body on the counter before the counter steps.
1471    ///
1472    /// The builder appends, and the body's `jump` back to the header has to stay the last
1473    /// instruction in it or the block has no terminator and the loop stops being one. So anything
1474    /// a test wants derived from the counter goes in here rather than being tacked on afterwards.
1475    fn counted_with<T>(
1476        ty: Type,
1477        from: i128,
1478        to: i128,
1479        step: i128,
1480        pred: IntPred,
1481        flags: Flags,
1482        extra: impl FnOnce(&mut Builder<'_>, Value) -> T,
1483    ) -> (Counted, T) {
1484        let mut names = Interner::new();
1485        let mut func = Func::new(names.intern("f"), Signature::new());
1486        let entry = func.create_block();
1487        let header = func.create_block();
1488        let body = func.create_block();
1489        let exit = func.create_block();
1490        let counter = func.append_param(header, ty);
1491
1492        let mut build = Builder::new(&mut func, entry);
1493        let start = build.iconst(ty, from);
1494        build.jump(header, &[start]);
1495
1496        let mut build = Builder::new(&mut func, header);
1497        let limit = build.iconst(ty, to);
1498        let test = build.icmp(pred, counter, limit);
1499        build.br_if(test, body, &[], exit, &[]);
1500
1501        let mut build = Builder::new(&mut func, body);
1502        let derived = extra(&mut build, counter);
1503        let by = build.iconst(ty, step);
1504        let next = build.binary(Opcode::Add, counter, by, flags);
1505        build.jump(header, &[next]);
1506
1507        let mut build = Builder::new(&mut func, exit);
1508        build.ret(&[]);
1509
1510        (Counted { func, counter, next }, derived)
1511    }
1512
1513    /// The analysis over a function, along with the one loop it has.
1514    fn analyse(func: &Func) -> (Cfg, Loops) {
1515        let cfg = Cfg::new(func);
1516        let doms = Dominators::new(&cfg);
1517        let loops = Loops::new(&cfg, &doms);
1518        (cfg, loops)
1519    }
1520
1521    /// The chrec of a value in the one loop of a function.
1522    fn evolution(func: &Func, value: Value) -> Evolution {
1523        let (cfg, loops) = analyse(func);
1524        let id = loops.roots()[0];
1525        Scev::new(func, &cfg, &loops).evolution(id, value)
1526    }
1527
1528    /// The trip count of the one loop of a function.
1529    fn bound(func: &Func) -> Option<Bound> {
1530        let (cfg, loops) = analyse(func);
1531        let id: LoopId = loops.roots()[0];
1532        Scev::new(func, &cfg, &loops).bound(id)
1533    }
1534
1535    #[test]
1536    fn a_counter_from_zero_by_one_is_the_chrec_everyone_expects() {
1537        let it = counted(Type::int(32), 0, 100, 1, IntPred::Slt, Flags::NSW);
1538        let chrec = evolution(&it.func, it.counter).chrec().expect("the counter evolves");
1539        assert_eq!(chrec.base, Invariant::number(0));
1540        assert_eq!(chrec.step, Invariant::number(1));
1541        assert_eq!(chrec.ty, Type::int(32));
1542        assert!(chrec.does_not_wrap(true));
1543    }
1544
1545    #[test]
1546    fn a_walk_over_a_file_scope_array_is_a_chrec_measured_from_the_symbol() {
1547        // The `global_addr` is inside the loop, which is where the compiler leaves one: working
1548        // the address out again is a single instruction and `crate::licm` would rather do that
1549        // than hold it in a register the whole way round. Answering by where a value is defined
1550        // meant `a[i]` on a file scope `a` was an address with nothing to say about it.
1551        let mut names = Interner::new();
1552        let tab = names.intern("tab");
1553        let (it, address) =
1554            counted_with(Type::int(64), 0, 100, 1, IntPred::Slt, Flags::NSW, |build, counter| {
1555                let four = build.iconst(Type::int(64), 4);
1556                let by = build.binary(Opcode::Mul, counter, four, Flags::NSW);
1557                let extra = Extra::Symbol(tab);
1558                let at =
1559                    build.value(InstData { extra, ..InstData::new(Opcode::GlobalAddr) }, Type::PTR);
1560                let args = build.func().push_values(&[at, by]);
1561                build.value(InstData { args, ..InstData::new(Opcode::PtrAdd) }, Type::PTR)
1562            });
1563
1564        let chrec = evolution(&it.func, address).chrec().expect("the address evolves");
1565        assert_eq!(chrec.step, Invariant::number(4));
1566        // Described rather than named, so there is nothing for `plain` to hand back and a reader
1567        // of the base has to go through `on` and see what it is measured from.
1568        assert!(chrec.base.plain().is_none());
1569        let (base, rest) = chrec.base.on().expect("the base is measured from the symbol");
1570        assert_eq!(base, Anchor::Address(tab));
1571        assert_eq!(base.value(), None);
1572        assert_eq!(rest.value, None);
1573        assert_eq!(rest.offset, 0);
1574    }
1575
1576    #[test]
1577    fn the_value_fed_back_is_the_chrec_one_step_along() {
1578        let it = counted(Type::int(32), 5, 100, 3, IntPred::Slt, Flags::NSW);
1579        let chrec = evolution(&it.func, it.next).chrec().expect("the increment evolves");
1580        assert_eq!(chrec.base, Invariant::number(8));
1581        assert_eq!(chrec.step, Invariant::number(3));
1582    }
1583
1584    #[test]
1585    fn a_multiple_of_the_counter_plus_a_number_is_a_chrec_of_its_own() {
1586        // `j = 2 * i + 3` where `i = {0, +, 1}`, which is the shape section 7.4 says pattern
1587        // matching runs out of road on and chains of recurrences do not.
1588        let (it, shifted) =
1589            counted_with(Type::int(32), 0, 100, 1, IntPred::Slt, Flags::NSW, |build, counter| {
1590                let two = build.iconst(Type::int(32), 2);
1591                let three = build.iconst(Type::int(32), 3);
1592                let doubled = build.binary(Opcode::Mul, counter, two, Flags::NSW);
1593                build.binary(Opcode::Add, doubled, three, Flags::NSW)
1594            });
1595
1596        let chrec = evolution(&it.func, shifted).chrec().expect("it evolves");
1597        assert_eq!(chrec.base, Invariant::number(3));
1598        assert_eq!(chrec.step, Invariant::number(2));
1599    }
1600
1601    #[test]
1602    fn a_shift_by_a_constant_scales_the_chrec_and_a_shift_past_the_width_does_not() {
1603        let (it, (scaled, poison)) =
1604            counted_with(Type::int(32), 1, 100, 1, IntPred::Slt, Flags::NSW, |build, counter| {
1605                let three = build.iconst(Type::int(32), 3);
1606                let wide = build.iconst(Type::int(32), 32);
1607                (
1608                    build.binary(Opcode::Shl, counter, three, Flags::NSW),
1609                    build.binary(Opcode::Shl, counter, wide, Flags::NSW),
1610                )
1611            });
1612
1613        let chrec = evolution(&it.func, scaled).chrec().expect("it evolves");
1614        assert_eq!(chrec.base, Invariant::number(8));
1615        assert_eq!(chrec.step, Invariant::number(8));
1616        // A count at the width is poison rather than a shift to zero, so there is no sequence to
1617        // describe.
1618        assert_eq!(evolution(&it.func, poison), Evolution::Unknown);
1619    }
1620
1621    #[test]
1622    fn a_pointer_walked_by_the_element_size_is_a_chrec_in_bytes() {
1623        // What `for (p = a; p != end; p++)` lowers to on an array of four byte elements. Section
1624        // 7.4 calls this the one deliberate extension past affine and the difference between
1625        // analysing half of real C loops and nearly all of them.
1626        let mut names = Interner::new();
1627        let mut func = Func::new(names.intern("f"), Signature::new());
1628        let entry = func.create_block();
1629        let header = func.create_block();
1630        let body = func.create_block();
1631        let exit = func.create_block();
1632        let start = func.append_param(entry, Type::PTR);
1633        let cursor = func.append_param(header, Type::PTR);
1634
1635        let mut build = Builder::new(&mut func, entry);
1636        build.jump(header, &[start]);
1637        let mut build = Builder::new(&mut func, header);
1638        let done = build.icmp(IntPred::Eq, cursor, start);
1639        build.br_if(done, exit, &[], body, &[]);
1640        let mut build = Builder::new(&mut func, body);
1641        let four = build.iconst(Type::int(64), 4);
1642        let next = build.binary(Opcode::PtrAdd, cursor, four, Flags::NONE);
1643        build.jump(header, &[next]);
1644        let mut build = Builder::new(&mut func, exit);
1645        build.ret(&[]);
1646
1647        let chrec = evolution(&func, cursor).chrec().expect("the cursor evolves");
1648        assert_eq!(chrec.base, Invariant::of(start));
1649        assert_eq!(chrec.step, Invariant::number(4));
1650        assert_eq!(chrec.ty, Type::PTR);
1651    }
1652
1653    /// A value to hang an invariant on, which these never look inside.
1654    fn some_value() -> Value {
1655        let mut names = Interner::new();
1656        let mut func = Func::new(names.intern("f"), Signature::new());
1657        let entry = func.create_block();
1658        func.append_param(entry, Type::int(8))
1659    }
1660
1661    #[test]
1662    fn one_of_a_value_widens_and_arithmetic_on_it_does_not() {
1663        // What `Scev::extend` may take. A value is widened by describing the extension rather than
1664        // by naming a value nothing computes, which is what lets `for (i = start; i < n; i++)`
1665        // have a chrec at pointer width. `2 * x + 3` is refused, because the narrow arithmetic may
1666        // already have wrapped and `sext(2 * x + 3)` is not `2 * sext(x) + 3`.
1667        let value = some_value();
1668        let word = Type::int(64);
1669        assert_eq!(
1670            Invariant::of(value).widened(Reading::Signed, word),
1671            Some(Invariant {
1672                on: None,
1673                value: Some(value),
1674                read: Some(Widening { reading: Reading::Signed, to: word }),
1675                scale: 1,
1676                offset: 0,
1677            }),
1678        );
1679        assert_eq!(Invariant::scaled(value, 2, 3).widened(Reading::Signed, word), None);
1680        assert_eq!(Invariant::scaled(value, 1, 3).widened(Reading::Signed, word), None);
1681        // A number is the same number at both widths under a sign extension, and under a zero
1682        // extension once it is not negative.
1683        assert_eq!(
1684            Invariant::number(-1).widened(Reading::Signed, word),
1685            Some(Invariant::number(-1)),
1686        );
1687        assert_eq!(Invariant::number(-1).widened(Reading::Unsigned, word), None);
1688    }
1689
1690    #[test]
1691    fn an_extension_of_an_extension_collapses_only_where_it_means_the_same_thing() {
1692        // A zero extension is never negative, so reading its result as signed afterwards is the
1693        // same numbers and the pair is one zero extension at the outer width. The other way round
1694        // it is not: a sign extended negative number read as unsigned is a different quantity, and
1695        // there is nothing to collapse to.
1696        let value = some_value();
1697        let (half, word) = (Type::int(32), Type::int(64));
1698        let read = |inv: Invariant| inv.read.expect("a widened value carries how it is read");
1699
1700        let zeroed = Invariant::of(value).widened(Reading::Unsigned, half).expect("it widens");
1701        let again = zeroed.widened(Reading::Signed, word).expect("and it widens again");
1702        assert_eq!(read(again), Widening { reading: Reading::Unsigned, to: word });
1703
1704        let signed = Invariant::of(value).widened(Reading::Signed, half).expect("it widens");
1705        assert_eq!(signed.widened(Reading::Unsigned, word), None);
1706        let again = signed.widened(Reading::Signed, word).expect("and it widens again");
1707        assert_eq!(read(again), Widening { reading: Reading::Signed, to: word });
1708    }
1709
1710    #[test]
1711    fn two_invariants_on_the_same_value_read_two_ways_do_not_add() {
1712        // `sext(x)` and `zext(x)` are the same bits and not the same quantity, so a sum of them is
1713        // not two of anything and there is no shape here for it.
1714        let value = some_value();
1715        let word = Type::int(64);
1716        let signed = Invariant::of(value).widened(Reading::Signed, word).expect("it widens");
1717        let zeroed = Invariant::of(value).widened(Reading::Unsigned, word).expect("it widens");
1718        assert_eq!(signed.plus(zeroed), None);
1719        assert_eq!(
1720            signed.plus(signed),
1721            Some(Invariant {
1722                on: None,
1723                value: Some(value),
1724                read: Some(Widening { reading: Reading::Signed, to: word }),
1725                scale: 2,
1726                offset: 0,
1727            }),
1728            "the same value read the same way adds to two of it",
1729        );
1730    }
1731
1732    #[test]
1733    fn a_counter_in_unsigned_char_wraps_and_does_not_widen_without_a_promise() {
1734        // Section 7.7's second way of being wrong. `{0, +, 1}` in `unsigned char` is not
1735        // `0, 1, 2, ...`, it is that modulo two hundred and fifty six, and widening it is only
1736        // the same sequence if it does not get that far.
1737        //
1738        // An inclusive test, because a strict one is a proof of its own and the case below is
1739        // about what happens when there is no proof at all. This loop does not in fact wrap, and
1740        // the point is that nothing here can say so.
1741        let (it, wide) =
1742            counted_with(Type::int(8), 0, 100, 1, IntPred::Ule, Flags::NONE, |build, counter| {
1743                build.unary(Opcode::ZExt, counter, Type::int(32))
1744            });
1745        let chrec = evolution(&it.func, it.counter).chrec().expect("the counter evolves");
1746        assert_eq!(chrec.ty, Type::int(8));
1747        assert!(!chrec.does_not_wrap(false));
1748        assert_eq!(evolution(&it.func, wide), Evolution::Unknown);
1749    }
1750
1751    #[test]
1752    fn a_counter_its_own_test_holds_widens_without_a_promise() {
1753        // The same counter under the strict test, which is the shape `for (unsigned i = 0; i < n;
1754        // i++)` has. Nothing promised anything, and the test is the proof: the counter is at the
1755        // limit before it is anywhere past it, and the loop ends there.
1756        let (it, wide) =
1757            counted_with(Type::int(8), 0, 100, 1, IntPred::Ult, Flags::NONE, |build, counter| {
1758                build.unary(Opcode::ZExt, counter, Type::int(32))
1759            });
1760        let narrow = evolution(&it.func, it.counter).chrec().expect("the counter evolves");
1761        assert!(!narrow.does_not_wrap(false), "nothing was promised, so nothing carries a flag");
1762        let chrec = evolution(&it.func, wide).chrec().expect("its own test holds it");
1763        assert_eq!(chrec.ty, Type::int(32));
1764        assert_eq!(chrec.base, Invariant::number(0));
1765        assert_eq!(chrec.step, Invariant::number(1));
1766    }
1767
1768    #[test]
1769    fn a_sequence_that_starts_further_along_than_the_counter_does_not_widen() {
1770        // `trails` in the direction it refuses. The test holds `i`, which starts at zero, and this
1771        // asks about `i + 1`, which starts one further along. One further along is where the
1772        // counter would be if it had gone round once more, and going round once more is the step
1773        // nothing here rules out.
1774        let (it, wide) =
1775            counted_with(Type::int(8), 0, 100, 1, IntPred::Ult, Flags::NONE, |build, counter| {
1776                let one = build.iconst(Type::int(8), 1);
1777                let ahead = build.binary(Opcode::Add, counter, one, Flags::NONE);
1778                build.unary(Opcode::ZExt, ahead, Type::int(32))
1779            });
1780        assert_eq!(evolution(&it.func, wide), Evolution::Unknown);
1781    }
1782
1783    #[test]
1784    fn a_counter_in_short_widens_when_the_increment_promised_it_would_not_wrap() {
1785        let (it, (wide, zero_extended)) =
1786            counted_with(Type::int(16), 0, 100, 1, IntPred::Slt, Flags::NSW, |build, counter| {
1787                (
1788                    build.unary(Opcode::SExt, counter, Type::int(32)),
1789                    build.unary(Opcode::ZExt, counter, Type::int(32)),
1790                )
1791            });
1792
1793        let chrec = evolution(&it.func, wide).chrec().expect("it widens");
1794        assert_eq!(chrec.ty, Type::int(32));
1795        assert_eq!(chrec.base, Invariant::number(0));
1796        assert_eq!(chrec.step, Invariant::number(1));
1797        // `nsw` is a promise about the signed reading and says nothing about the unsigned one.
1798        assert_eq!(evolution(&it.func, zero_extended), Evolution::Unknown);
1799    }
1800
1801    #[test]
1802    fn a_step_of_zero_is_invariant_and_has_no_trip_count() {
1803        // Section 7.7's first way of being wrong. `i += k` with `k` of zero is a valid affine
1804        // chrec of a loop that never leaves through this exit, and code dividing the distance by
1805        // the step divides by zero.
1806        let it = counted(Type::int(32), 0, 100, 0, IntPred::Slt, Flags::NSW);
1807        assert!(matches!(evolution(&it.func, it.counter), Evolution::Invariant(_)));
1808        assert_eq!(bound(&it.func), None);
1809    }
1810
1811    #[test]
1812    fn a_counted_loop_has_the_count_anyone_would_work_out_by_hand() {
1813        let it = counted(Type::int(32), 0, 100, 1, IntPred::Slt, Flags::NSW);
1814        let found = bound(&it.func).expect("it is counted");
1815        let (count, assumptions) = found.parts();
1816        assert_eq!(count, Count::Exact(100));
1817        // The distance is a number and it is not negative, so being entered is not in question.
1818        // Signed overflow being undefined still is, which is what `-fwrapv` would withdraw.
1819        assert_eq!(assumptions, [Assumption::StrictOverflow]);
1820        assert_eq!(found.proven(), None);
1821    }
1822
1823    #[test]
1824    fn a_step_that_overshoots_still_takes_the_iteration_that_overshot() {
1825        // Zero, three, six, nine, and the test fails at twelve, so four iterations rather than
1826        // three and a third. Rounding the other way is an off by one in every unroller.
1827        let it = counted(Type::int(32), 0, 10, 3, IntPred::Slt, Flags::NSW);
1828        let (count, _) = bound(&it.func).expect("it is counted").parts();
1829        assert_eq!(count, Count::Exact(4));
1830    }
1831
1832    #[test]
1833    fn an_inclusive_test_runs_one_more_time() {
1834        let it = counted(Type::int(32), 0, 10, 1, IntPred::Sle, Flags::NSW);
1835        let (count, _) = bound(&it.func).expect("it is counted").parts();
1836        assert_eq!(count, Count::Exact(11));
1837    }
1838
1839    #[test]
1840    fn a_loop_whose_test_fails_first_time_runs_no_times_and_rests_on_nothing() {
1841        let it = counted(Type::int(32), 10, 0, 1, IntPred::Slt, Flags::NSW);
1842        let found = bound(&it.func).expect("it is counted");
1843        assert_eq!(found.proven(), Some(Count::Exact(0)));
1844        assert!(found.assumptions().is_empty());
1845    }
1846
1847    #[test]
1848    fn counting_down_is_the_same_problem_with_the_ends_swapped() {
1849        let it = counted(Type::int(32), 10, 0, -1, IntPred::Sgt, Flags::NSW);
1850        let (count, _) = bound(&it.func).expect("it is counted").parts();
1851        assert_eq!(count, Count::Exact(10));
1852    }
1853
1854    #[test]
1855    fn an_unsigned_test_does_not_drag_in_the_signed_overflow_assumption() {
1856        let it = counted(Type::int(32), 0, 100, 1, IntPred::Ult, Flags::NUW);
1857        let found = bound(&it.func).expect("it is counted");
1858        assert_eq!(found.proven(), Some(Count::Exact(100)));
1859    }
1860
1861    #[test]
1862    fn a_test_against_something_the_loop_does_not_change_gives_a_symbolic_count() {
1863        // `for (i = 0; i < n; i++)`, where the answer is `n` and is only `n` if the loop is
1864        // entered, because `n` of minus one runs no times and the distance is minus one.
1865        let mut names = Interner::new();
1866        let mut func = Func::new(names.intern("f"), Signature::new());
1867        let entry = func.create_block();
1868        let header = func.create_block();
1869        let body = func.create_block();
1870        let exit = func.create_block();
1871        let limit = func.append_param(entry, Type::int(32));
1872        let counter = func.append_param(header, Type::int(32));
1873
1874        let mut build = Builder::new(&mut func, entry);
1875        let zero = build.iconst(Type::int(32), 0);
1876        build.jump(header, &[zero]);
1877        let mut build = Builder::new(&mut func, header);
1878        let test = build.icmp(IntPred::Slt, counter, limit);
1879        build.br_if(test, body, &[], exit, &[]);
1880        let mut build = Builder::new(&mut func, body);
1881        let one = build.iconst(Type::int(32), 1);
1882        let next = build.binary(Opcode::Add, counter, one, Flags::NSW);
1883        build.jump(header, &[next]);
1884        let mut build = Builder::new(&mut func, exit);
1885        build.ret(&[]);
1886
1887        let found = bound(&func).expect("it is counted");
1888        let (count, assumptions) = found.parts();
1889        assert_eq!(count, Count::Symbolic(Invariant::of(limit)));
1890        assert!(assumptions.contains(&Assumption::Entered), "{assumptions:?}");
1891        assert!(assumptions.contains(&Assumption::StrictOverflow), "{assumptions:?}");
1892        assert_eq!(found.proven(), None);
1893    }
1894
1895    #[test]
1896    fn the_count_records_which_reading_its_test_took() {
1897        // What a consumer widening a symbolic count has to know. The limit is a value of the
1898        // counter's type and which number that value is depends on how its test read it.
1899        let signed = counted(Type::int(32), 0, 100, 1, IntPred::Slt, Flags::NSW);
1900        assert_eq!(bound(&signed.func).expect("it is counted").reading(), Reading::Signed);
1901        let unsigned = counted(Type::int(32), 0, 100, 1, IntPred::Ult, Flags::NUW);
1902        assert_eq!(bound(&unsigned.func).expect("it is counted").reading(), Reading::Unsigned);
1903    }
1904
1905    #[test]
1906    fn a_counter_without_a_no_wrap_promise_carries_the_assumption_instead() {
1907        // An inclusive test, because the strict one is the case the test itself answers. Under
1908        // `<=` the counter reaches the limit and is stepped once more, so a limit at the top of
1909        // the type makes that last step the one that wraps and nothing here rules it out.
1910        let it = counted(Type::int(32), 0, 100, 1, IntPred::Ule, Flags::NONE);
1911        let found = bound(&it.func).expect("it is counted");
1912        let (_, assumptions) = found.parts();
1913        assert!(assumptions.iter().any(|a| matches!(a, Assumption::NoWrap(_))), "{assumptions:?}");
1914    }
1915
1916    #[test]
1917    fn an_unsigned_counter_stepping_by_one_is_held_by_its_own_test() {
1918        // `for (unsigned i = 0; i < n; i++)` written out. Unsigned arithmetic wraps in C so the
1919        // increment carries no `nuw`, and without reading the test this would rest on an
1920        // assumption nothing downstream can discharge.
1921        let it = counted(Type::int(32), 0, 100, 1, IntPred::Ult, Flags::NONE);
1922        let found = bound(&it.func).expect("it is counted");
1923        assert_eq!(found.assumptions(), &[]);
1924        assert_eq!(found.proven(), Some(Count::Exact(100)));
1925    }
1926
1927    #[test]
1928    fn counting_down_by_one_is_held_the_same_way() {
1929        let it = counted(Type::int(32), 100, 0, -1, IntPred::Ugt, Flags::NONE);
1930        let found = bound(&it.func).expect("it is counted");
1931        assert_eq!(found.assumptions(), &[]);
1932        assert_eq!(found.proven(), Some(Count::Exact(100)));
1933    }
1934
1935    #[test]
1936    fn a_step_of_two_can_jump_the_limit_so_the_test_holds_nothing() {
1937        // The counter is never at the limit, so the loop can be left by a step that goes from one
1938        // below the limit to one past the top of the type and comes back round at the bottom.
1939        let it = counted(Type::int(32), 0, 100, 2, IntPred::Ult, Flags::NONE);
1940        let found = bound(&it.func).expect("it is counted");
1941        let (_, assumptions) = found.parts();
1942        assert!(assumptions.iter().any(|a| matches!(a, Assumption::NoWrap(_))), "{assumptions:?}");
1943    }
1944
1945    #[test]
1946    fn a_test_the_counter_can_be_stepped_without_being_asked_holds_nothing_either() {
1947        // ```text
1948        // header(i): br_if flag, check, latch
1949        // check:     br_if i <u 100, latch, exit
1950        // latch:     jump header(i + 1)
1951        // ```
1952        // The counter goes round by a path that never reaches the test, so the test says nothing
1953        // about how far the counter got.
1954        let mut names = Interner::new();
1955        let mut func = Func::new(names.intern("f"), Signature::new());
1956        let entry = func.create_block();
1957        let header = func.create_block();
1958        let check = func.create_block();
1959        let latch = func.create_block();
1960        let exit = func.create_block();
1961        let flag = func.append_param(entry, Type::int(1));
1962        let counter = func.append_param(header, Type::int(32));
1963
1964        let mut build = Builder::new(&mut func, entry);
1965        let zero = build.iconst(Type::int(32), 0);
1966        build.jump(header, &[zero]);
1967        let mut build = Builder::new(&mut func, header);
1968        build.br_if(flag, check, &[], latch, &[]);
1969        let mut build = Builder::new(&mut func, check);
1970        let limit = build.iconst(Type::int(32), 100);
1971        let test = build.icmp(IntPred::Ult, counter, limit);
1972        build.br_if(test, latch, &[], exit, &[]);
1973        let mut build = Builder::new(&mut func, latch);
1974        let one = build.iconst(Type::int(32), 1);
1975        let next = build.binary(Opcode::Add, counter, one, Flags::NONE);
1976        build.jump(header, &[next]);
1977        let mut build = Builder::new(&mut func, exit);
1978        build.ret(&[]);
1979
1980        let found = bound(&func).expect("it is counted");
1981        let (_, assumptions) = found.parts();
1982        assert!(assumptions.iter().any(|a| matches!(a, Assumption::NoWrap(_))), "{assumptions:?}");
1983    }
1984
1985    #[test]
1986    fn a_test_that_ends_the_loop_when_it_succeeds_is_read_the_other_way_round() {
1987        // `for (i = 0; ; i++) if (i >= 100) break;`, which is the same loop with the arms of the
1988        // branch swapped. The test that keeps the loop going is the opposite of the one written.
1989        let mut names = Interner::new();
1990        let mut func = Func::new(names.intern("f"), Signature::new());
1991        let entry = func.create_block();
1992        let header = func.create_block();
1993        let body = func.create_block();
1994        let exit = func.create_block();
1995        let counter = func.append_param(header, Type::int(32));
1996
1997        let mut build = Builder::new(&mut func, entry);
1998        let zero = build.iconst(Type::int(32), 0);
1999        build.jump(header, &[zero]);
2000        let mut build = Builder::new(&mut func, header);
2001        let limit = build.iconst(Type::int(32), 100);
2002        let done = build.icmp(IntPred::Sge, counter, limit);
2003        build.br_if(done, exit, &[], body, &[]);
2004        let mut build = Builder::new(&mut func, body);
2005        let one = build.iconst(Type::int(32), 1);
2006        let next = build.binary(Opcode::Add, counter, one, Flags::NSW);
2007        build.jump(header, &[next]);
2008        let mut build = Builder::new(&mut func, exit);
2009        build.ret(&[]);
2010
2011        let (count, _) = bound(&func).expect("it is counted").parts();
2012        assert_eq!(count, Count::Exact(100));
2013    }
2014
2015    #[test]
2016    fn an_unsigned_limit_past_the_middle_of_its_type_is_not_a_negative_one() {
2017        // `for (unsigned char i = 0; i < 200; i++)`. Two hundred does not fit in a signed byte
2018        // and the constant is held as minus fifty six, so a distance taken at face value is
2019        // negative and reads as a loop that runs no times.
2020        let it = counted(Type::int(8), 0, 200, 1, IntPred::Ult, Flags::NUW);
2021        let found = bound(&it.func).expect("it is counted");
2022        assert_eq!(found.proven(), Some(Count::Exact(200)));
2023    }
2024
2025    #[test]
2026    fn a_walk_that_lands_on_a_not_equal_limit_exactly_is_counted() {
2027        // `while (i != 10)` counting by one, which is `while (p != end)` over an array once the
2028        // element size has been divided out. `!=` says nothing about how its operands are read,
2029        // so the promise it wants is the unsigned one and an `nsw` on its own is not enough.
2030        let it = counted(Type::int(32), 0, 10, 1, IntPred::Ne, Flags::NSW.union(Flags::NUW));
2031        let found = bound(&it.func).expect("it lands on its limit");
2032        // The step divides the distance and both are numbers, so it was checked rather than
2033        // assumed and there is nothing left over.
2034        assert_eq!(found.proven(), Some(Count::Exact(10)));
2035    }
2036
2037    #[test]
2038    fn a_counter_stepping_away_from_a_not_equal_limit_is_not_a_loop_that_runs_no_times() {
2039        // The distance is negative and an ordering test would read that as the loop never being
2040        // entered. `!=` reads it as the counter never arriving, which is an endless loop, and
2041        // answering zero for it was a real bug that the property test in `tests/scev.rs` found.
2042        let it = counted(Type::int(32), 48, 15, 1, IntPred::Ne, Flags::NSW);
2043        assert_eq!(bound(&it.func), None);
2044    }
2045
2046    #[test]
2047    fn a_counter_stepping_over_a_not_equal_limit_never_arrives_either() {
2048        // Zero, three, six, nine, twelve, and ten is never one of them. An ordering test would
2049        // have stopped at twelve.
2050        let it = counted(Type::int(32), 0, 10, 3, IntPred::Ne, Flags::NSW);
2051        assert_eq!(bound(&it.func), None);
2052    }
2053
2054    #[test]
2055    fn an_estimate_is_the_count_when_there_is_one_and_a_guess_when_there_is_not() {
2056        let counted_loop = counted(Type::int(32), 0, 7, 1, IntPred::Slt, Flags::NSW);
2057        let (cfg, loops) = analyse(&counted_loop.func);
2058        let id = loops.roots()[0];
2059        let estimate = Scev::new(&counted_loop.func, &cfg, &loops).estimate(id);
2060        assert_eq!(estimate.iterations(), 7);
2061        assert!(!estimate.is_guess());
2062
2063        // A loop this cannot count still has to answer, because the caller is deciding whether
2064        // something is worth doing rather than whether it is legal.
2065        let uncounted = counted(Type::int(32), 0, 100, 0, IntPred::Slt, Flags::NSW);
2066        let (cfg, loops) = analyse(&uncounted.func);
2067        let id = loops.roots()[0];
2068        let estimate = Scev::new(&uncounted.func, &cfg, &loops).estimate(id);
2069        assert!(estimate.is_guess());
2070        assert_eq!(estimate.iterations(), super::ASSUMED_ITERATIONS);
2071    }
2072
2073    #[test]
2074    fn a_value_the_loop_does_not_touch_is_invariant_rather_than_unknown() {
2075        let it = counted(Type::int(32), 0, 100, 1, IntPred::Slt, Flags::NSW);
2076        let (cfg, loops) = analyse(&it.func);
2077        let id = loops.roots()[0];
2078        let mut scev = Scev::new(&it.func, &cfg, &loops);
2079        // The counter's start is an `iconst` in the entry block, which is both.
2080        assert_eq!(
2081            scev.evolution(id, it.counter).chrec().expect("it evolves").base,
2082            Invariant::number(0)
2083        );
2084    }
2085
2086    #[test]
2087    fn a_back_edge_of_its_own_does_not_hide_the_counter() {
2088        // What canonicalization leaves behind. The back edge goes through a block that does nothing
2089        // but pass the increment on, so the value arriving at the header is a parameter of that
2090        // block rather than the increment itself. Reading through it is undoing a rename and not an
2091        // analysis, and without it the trip count of every loop the pipeline produces is nothing.
2092        let mut names = Interner::new();
2093        let mut func = Func::new(names.intern("f"), Signature::new());
2094        let entry = func.create_block();
2095        let header = func.create_block();
2096        let body = func.create_block();
2097        let latch = func.create_block();
2098        let exit = func.create_block();
2099        let counter = func.append_param(header, Type::int(32));
2100        let carried = func.append_param(latch, Type::int(32));
2101
2102        let start = Builder::new(&mut func, entry).iconst(Type::int(32), 0);
2103        Builder::new(&mut func, entry).jump(header, &[start]);
2104
2105        let mut build = Builder::new(&mut func, header);
2106        let limit = build.iconst(Type::int(32), 100);
2107        let test = build.icmp(IntPred::Slt, counter, limit);
2108        build.br_if(test, body, &[], exit, &[]);
2109
2110        let mut build = Builder::new(&mut func, body);
2111        let by = build.iconst(Type::int(32), 1);
2112        let next = build.binary(Opcode::Add, counter, by, Flags::NSW);
2113        build.jump(latch, &[next]);
2114
2115        Builder::new(&mut func, latch).jump(header, &[carried]);
2116        Builder::new(&mut func, exit).ret(&[]);
2117
2118        let chrec = evolution(&func, counter).chrec().expect("the counter still evolves");
2119        assert_eq!(chrec.base, Invariant::number(0));
2120        assert_eq!(chrec.step, Invariant::number(1));
2121        let (count, _) = bound(&func).expect("it is still counted").parts();
2122        assert_eq!(count, Count::Exact(100));
2123    }
2124
2125    #[test]
2126    fn every_assumption_says_what_it_is_in_a_line() {
2127        let it = counted(Type::int(8), 0, 100, 1, IntPred::Ult, Flags::NONE);
2128        let found = bound(&it.func).expect("it is counted");
2129        for assumption in found.assumptions() {
2130            let line = assumption.describe();
2131            assert!(!line.is_empty());
2132            assert!(!line.contains('\n'), "an assumption is one line: {line}");
2133        }
2134    }
2135}