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rucc_codegen/
wide.rs

1//! The integer that is wider than a register, as the two registers it is held in.
2//!
3//! `__int128` is the one integer a C program on this machine writes that no register holds.
4//! Everything else the front end produces is a width the machine has, or is a width
5//! [`crate::widths`] rounds up into one, and neither of those is true here: there is nothing to
6//! round up into above sixty four bits. What there is, is two registers, and the convention already
7//! says so. System V classifies a `__int128` as two eightbytes of class INTEGER, so it travels in a
8//! pair of general purpose registers, comes back in the pair a return comes back in, and sits in
9//! memory as two words with the low one first. That is what this pass writes down.
10//!
11//! Every value a hundred and twenty eight bits wide becomes two values of sixty four, a low half
12//! and a high half, and every instruction over such a value becomes instructions over the halves.
13//! After it there is no value of that width left anywhere in the function, which is what lets the
14//! rest of the back end stay written about widths the machine has. Nothing below this knows the
15//! type existed.
16//!
17//! # Why a pass and not a rule
18//!
19//! A rule matches a term and rewrites it into instructions of the machine, and the selector works a
20//! value at a time. There is no register a value this wide can be selected into, so there is
21//! nothing for a rule to produce, and a rule that produced a pair would have to say which register
22//! each half landed in, which is the allocator's answer and not a rule's. So the splitting happens
23//! before selection, in the IR, where a value is still something a pass may make two of. That is
24//! the same reasoning [`crate::widths`] follows from the other end, and the two are the two halves
25//! of one sentence: nothing reaching the selector is at a width the machine has no register for.
26//!
27//! # What crosses the boundary
28//!
29//! A parameter and a return value are agreed with something this compilation is not looking at, so
30//! splitting one is a claim about where the two halves are. The claim is true when both halves land
31//! in registers, because the convention hands out argument registers in order and two halves in a
32//! row take the two registers the whole value would have taken. It is not true when they do not: a
33//! value the convention could not fit in registers travels in the argument area as sixteen bytes
34//! aligned to sixteen, and two independent words travel as two words each aligned to eight, which
35//! is a different place as soon as an odd number of words went before them. So a function whose
36//! wide parameter would run out of registers is left exactly as it was and refused by name, the
37//! same as a function this pass does not understand. `tamnd/rucc#351` carries what passing one in
38//! memory would take, which is a form of parameter the IR has no way to spell today.
39//!
40//! # Dividing and converting are calls into the runtime
41//!
42//! Every other operation at this width is the same operation over the halves with whatever crossed
43//! between them put back. A quotient is not. The halves of a quotient are not a function of the
44//! halves of its operands taken apart, at this width or at any other, which is why every compiler's
45//! runtime has a division routine in it and none of them has an addition one. So a divide and a
46//! remainder become a call to the routines `runtime/builtins/div.c` defines, which are libgcc's four
47//! names and libgcc's signatures, and `spec/12-abi-and-runtime.md` section 12.8 is what they are.
48//!
49//! A conversion to or from a floating point value is the other one, for a plainer reason: the
50//! machine's own conversion reaches sixty four bits and no further, so there is no instruction to
51//! split into. Those are the eight names `runtime/builtins/convert.c` defines, one for each of a
52//! signed and an unsigned integer against a `float` and a `double` in each direction, and the four
53//! `runtime/builtins/quad.c` defines for a `_Float128`, which has no instruction of its own at any
54//! width and so is a call here for both reasons at once. An eighty bit float is not among them,
55//! because this machine has no register that holds one and the back end says so, which is
56//! tamnd/rucc#326, so a function converting at that width is left alone here and refused below the
57//! way every function of this width used to be.
58//!
59//! The call is built with the halves already in it, four parameters of sixty four bits for the two
60//! operands of a divide and two results for the answer, or two parameters and a float, or a float
61//! and two results, which is the shape this pass gives a call it found in the program anyway. Both
62//! ends agree because the convention puts a `__int128` argument in two registers in a row and hands
63//! out argument registers in order, which is the same sentence the section below about crossing the
64//! boundary is.
65
66use std::collections::{HashMap, HashSet};
67
68use rucc_base::Interner;
69use rucc_ir::{
70    Abi, Block, BlockCall, CallInfo, Def, Extra, Flags, Float, Func, Imm, Inst, InstData, IntPred,
71    MemInfo, Opcode, Param, Signature, Type, Value,
72};
73use rucc_target::{CallRegs, Places, Where};
74
75use crate::capability;
76use crate::expand;
77
78/// The width this pass is about, which is the one width a C program writes that no register holds.
79const WIDE: u32 = 128;
80
81/// What the capability table calls that width, which is how the rule language spells one.
82const MODE: &str = "i128";
83
84/// The width each half is, which is a register on every target this pass runs for.
85const HALF: u32 = 64;
86
87/// How many bytes one half takes in memory, which is how far the high one sits above the low one.
88const STEP: u64 = 8;
89
90/// Whether a type is the width this pass splits.
91fn is_wide(ty: Type) -> bool {
92    ty.is_int() && ty.is_scalar() && ty.bits() == WIDE
93}
94
95/// The type each half has.
96fn half() -> Type {
97    Type::int(HALF)
98}
99
100/// Splits every integer the machine holds in two registers into the two halves it holds it in.
101///
102/// Gives back whether it changed anything, which is what a test asks and what tells a reader of a
103/// dump that the function the selector saw is not the one the middle end produced.
104///
105/// The function is left exactly as it was when there is nothing at that width, when something at
106/// that width is reached by an instruction this does not understand, and when a half would cross
107/// the function's boundary somewhere the convention has no register for it. All three leave the
108/// refusal to the passes below, which name the construct they could not lower, rather than
109/// rewriting into something that guessed.
110pub fn halves(func: &mut Func, names: &mut Interner, conv: &CallRegs) -> bool {
111    if !func.values().any(|value| is_wide(func[value].ty)) {
112        return false;
113    }
114    let insts: Vec<Inst> =
115        walk(func).into_iter().flat_map(|block| func.insts(block).collect::<Vec<_>>()).collect();
116    let order: HashMap<Inst, usize> =
117        insts.iter().enumerate().map(|(at, &inst)| (inst, at)).collect();
118    if !insts.iter().enumerate().all(|(at, &inst)| can_split(func, &order, at, inst)) {
119        return false;
120    }
121    if !func.signatures().all(|signature| fits(signature, conv)) {
122        return false;
123    }
124
125    let mut halves: Halves = HashMap::new();
126    let mut forward: HashMap<Value, Value> = HashMap::new();
127    for block in func.blocks().collect::<Vec<_>>() {
128        params(func, block, &mut halves, &mut forward);
129    }
130    for &inst in &insts {
131        rewrite(func, names, &mut halves, &mut forward, inst);
132    }
133    substitute(func, &forward);
134    let signature = split_signature(func.signature());
135    func.set_signature(signature);
136    true
137}
138
139/// Every block, in an order where a block comes after everything that dominates it.
140///
141/// Reverse postorder from the entry, then whatever the walk did not reach, in the order the
142/// function holds them. The order is what the rule below about a use and its definition is read
143/// against, and the two together are the whole of why this is not simply the order the function
144/// holds the blocks in: a value is defined in a block that dominates every block reading it, a
145/// dominator is on every path from the entry, so a depth first walk finishes it last and reverse
146/// postorder puts it first. The order the function holds blocks in says nothing of the kind. It is
147/// the order they were made in, and every pass in the optimizer that makes a block, which is every
148/// pass that gives a loop a preheader or copies a header in front of one, puts a block that runs
149/// early at the end of that list. So the same program compiled at `-O0` and at `-O1` gave two
150/// different answers to whether this pass understood it, and above `-O0` the answer was often no.
151/// tamnd/rucc#1054.
152///
153/// A block nothing reaches cannot be walked to and is put at the end rather than dropped, because
154/// deciding a block is unreachable is not this pass's business. Two of them in the wrong order
155/// refuse the function the way they always did.
156fn walk(func: &Func) -> Vec<Block> {
157    let Some(entry) = func.entry() else { return func.blocks().collect() };
158    let mut seen: HashSet<Block> = HashSet::new();
159    let mut order: Vec<Block> = Vec::new();
160    // A postorder without recursion: the second time a block comes off the stack every block below
161    // it has been finished, so that is where it belongs in the postorder.
162    let mut stack: Vec<(Block, bool)> = vec![(entry, false)];
163    seen.insert(entry);
164    while let Some((block, done)) = stack.pop() {
165        if done {
166            order.push(block);
167            continue;
168        }
169        stack.push((block, true));
170        let Some(term) = func.terminator(block) else { continue };
171        for call in func.successors(term) {
172            if seen.insert(call.block) {
173                stack.push((call.block, false));
174            }
175        }
176    }
177    order.reverse();
178    order.extend(func.blocks().filter(|block| !seen.contains(block)));
179    order
180}
181
182/// The two halves each wide value became, low first.
183type Halves = HashMap<Value, (Value, Value)>;
184
185/// The opcodes this pass knows how to split.
186///
187/// An instruction that touches a value of this width and is not one of these is why the whole
188/// function is left alone, so this list is the pass's own statement of what it has thought about.
189/// Adding to it is adding an arm to [`rewrite`] as well.
190///
191/// The four divisions and the four conversions to and from a floating point value are here, and they
192/// are the entries that become a call rather than arithmetic over the halves. Which float formats
193/// those conversions are understood at is a separate question, asked in [`can_split`], because it is
194/// about the type rather than about the opcode.
195fn understood(opcode: Opcode) -> bool {
196    matches!(
197        opcode,
198        Opcode::IConst
199            | Opcode::Load
200            | Opcode::Store
201            | Opcode::Add
202            | Opcode::Sub
203            | Opcode::Mul
204            | Opcode::UDiv
205            | Opcode::SDiv
206            | Opcode::URem
207            | Opcode::SRem
208            | Opcode::Shl
209            | Opcode::LShr
210            | Opcode::AShr
211            | Opcode::And
212            | Opcode::Or
213            | Opcode::Xor
214            | Opcode::ICmp
215            | Opcode::Select
216            | Opcode::SIToFP
217            | Opcode::UIToFP
218            | Opcode::FPToSI
219            | Opcode::FPToUI
220            | Opcode::Trunc
221            | Opcode::SExt
222            | Opcode::ZExt
223            | Opcode::Call
224            | Opcode::CallIndirect
225            | Opcode::Return
226            | Opcode::Jump
227            | Opcode::BrIf
228    )
229}
230
231/// Whether one instruction is one this pass can split, given where it is in the walk.
232///
233/// Asked of every instruction, and answered yes at once for the ones that never see a value this
234/// wide, which in a function that has one at all is still most of them.
235fn can_split(func: &Func, order: &HashMap<Inst, usize>, at: usize, inst: Inst) -> bool {
236    let data = func[inst];
237    let reads = operands(func, inst);
238    let wide = |&value: &Value| is_wide(func[value].ty);
239    if !reads.iter().any(wide) && !data.results().any(|value| is_wide(func[value].ty)) {
240        return true;
241    }
242    if !understood(data.opcode) {
243        return false;
244    }
245    // Memory SSA threads a version of memory through each access, and splitting one access into two
246    // makes a version this pass would have to name. Nothing hands this crate a function carrying it
247    // today, and leaving one alone costs less than being wrong about it later.
248    if func.carries_mem(inst) {
249        return false;
250    }
251    // The machine sign extends from a byte and no narrower, so a truth value widened into the high
252    // half would become an instruction with no rule behind it. Zero extending one is fine, which is
253    // why only the signed side is asked about.
254    if data.opcode == Opcode::SExt && reads.iter().any(|&value| func[value].ty.bits() < 8) {
255        return false;
256    }
257    // The runtime has a conversion for a `float`, for a `double` and for a `_Float128`, and for
258    // nothing else, so every other format is refused here rather than turned into a call to a name
259    // nothing defines. An eighty bit float is the one a program reaches without asking for it, since
260    // `long double` is that type on this target, and it is tamnd/rucc#326 rather than an oversight.
261    if matches!(data.opcode, Opcode::SIToFP | Opcode::UIToFP | Opcode::FPToSI | Opcode::FPToUI)
262        && converted(func, inst).is_none()
263    {
264        return false;
265    }
266    // Splitting an argument makes two of them, and which parameter an argument stands for is how a
267    // variadic call knows what the ABI asks of the ones its signature does not name. Two values
268    // where that list has one entry is a call laid out against the wrong list.
269    if matches!(data.opcode, Opcode::Call | Opcode::CallIndirect) {
270        let Extra::Call(info) = data.extra else { return false };
271        if func[func[info].signature].variadic {
272            return false;
273        }
274    }
275    // The halves of a value are written where the value was, so a use this pass reaches before the
276    // definition is a use whose halves do not exist yet. A value arriving as a block parameter is
277    // always ready, since every block's parameters are split before any instruction is.
278    reads.iter().filter(|value| wide(value)).all(|&value| match func[value].def {
279        Def::Result { inst, .. } => order.get(&inst).is_some_and(|&def| def < at),
280        Def::Param { .. } => true,
281    })
282}
283
284/// The format of the floating point side of a conversion, when the runtime has a routine for it.
285///
286/// One float type is in such an instruction, the result of a conversion going up and the operand of
287/// one coming down, so both ends are looked at and the one is found. `None` means the function is
288/// left alone, and it covers a format with no routine, no float at all, and a float on both ends,
289/// which are three shapes that have nothing to be turned into rather than one.
290fn converted(func: &Func, inst: Inst) -> Option<Float> {
291    let data = func[inst];
292    let mut floats = func[data.args]
293        .iter()
294        .copied()
295        .chain(data.results())
296        .map(|value| func[value].ty)
297        .filter(|ty| ty.is_float());
298    let only = floats.next()?;
299    if floats.next().is_some() {
300        return None;
301    }
302    match only.format() {
303        Some(format @ (Float::F32 | Float::F64 | Float::F128)) => Some(format),
304        _ => None,
305    }
306}
307
308/// Everything an instruction reads: its own operands, and the arguments it passes along its edges.
309///
310/// The arguments of a `jump` and of a `br_if` hang on the block call rather than on the
311/// instruction, so an instruction whose own operands are all narrow may still be handing a wide one
312/// to the block it branches to.
313fn operands(func: &Func, inst: Inst) -> Vec<Value> {
314    let mut reads = func[func[inst].args].to_vec();
315    for call in func.successors(inst).collect::<Vec<_>>() {
316        reads.extend_from_slice(&func[call.args]);
317    }
318    reads
319}
320
321/// Whether both halves of every wide parameter of one signature land in registers.
322///
323/// The walk is the one [`crate::abi::entry`] makes, because the answer has to be the one that walk
324/// will give: it hands out places in the order the signature holds the parameters, and a wide
325/// parameter is about to become two halves in a row in that order. Both have to be registers. One
326/// register and one word of the argument area is where two independent words go and is not where
327/// the convention puts a sixteen byte value.
328///
329/// A return value is not asked about. What comes back comes back in the registers a return uses,
330/// which is a sequence of its own with two in it on this convention, and a signature wanting more
331/// than it has is refused by name in [`crate::lower`] already.
332fn fits(signature: &Signature, conv: &CallRegs) -> bool {
333    let mut places = Places::new(conv);
334    for param in &signature.params {
335        // A structure the classification put in the argument area, which is the one parameter whose
336        // place is bytes rather than a register. Everything else is a value, the pointer an `sret`
337        // hands over included, and a value takes the next register of its own kind.
338        if let Abi::ByVal { size, align } = param.abi {
339            places.on_stack(u32::try_from(size).unwrap_or(u32::MAX), align);
340        } else if crate::abi::on_the_stack(param.ty) {
341            let (size, align) = crate::abi::X87_AREA;
342            places.on_stack(size, align);
343        } else if is_wide(param.ty) {
344            let low = places.integer();
345            let high = places.integer();
346            if !matches!((low, high), (Where::Reg(_), Where::Reg(_))) {
347                return false;
348            }
349        } else if param.ty.is_float() {
350            places.float(crate::abi::float_bytes(param.ty));
351        } else {
352            places.integer();
353        }
354    }
355    true
356}
357
358/// One block's parameters, with each wide one replaced by its two halves in the same position.
359///
360/// Every parameter of such a block is made again rather than only the wide ones, because a
361/// parameter's position is its identity to the branches that feed it and appending is the only way
362/// to add one. The narrow ones are made again as themselves and pointed at the copy, which costs
363/// nothing once the substitution below has run.
364fn params(func: &mut Func, block: Block, halves: &mut Halves, forward: &mut HashMap<Value, Value>) {
365    let old: Vec<Value> = func[block].params.clone();
366    if !old.iter().any(|&value| is_wide(func[value].ty)) {
367        return;
368    }
369    for &value in &old {
370        if is_wide(func[value].ty) {
371            let low = func.append_param(block, half());
372            let high = func.append_param(block, half());
373            halves.insert(value, (low, high));
374        } else {
375            let again = func.append_param(block, func[value].ty);
376            forward.insert(value, again);
377        }
378    }
379    func.retain_params(block, |value| !old.contains(&value));
380}
381
382/// One instruction, as instructions over halves.
383fn rewrite(
384    func: &mut Func,
385    names: &mut Interner,
386    halves: &mut Halves,
387    forward: &mut HashMap<Value, Value>,
388    inst: Inst,
389) {
390    let data = func[inst];
391    let produces = data.results().any(|value| is_wide(func[value].ty));
392    let takes = func[data.args].iter().any(|&value| is_wide(func[value].ty));
393    match data.opcode {
394        Opcode::IConst if produces => constant(func, halves, inst),
395        Opcode::Load if produces => load(func, halves, inst),
396        Opcode::Store if takes => store(func, halves, inst),
397        Opcode::Add | Opcode::Sub if produces => carried(func, halves, inst, data.opcode),
398        Opcode::Mul if produces => multiply(func, halves, inst),
399        Opcode::UDiv | Opcode::SDiv | Opcode::URem | Opcode::SRem if produces => {
400            divide(func, names, halves, inst, data.opcode);
401        }
402        Opcode::Shl | Opcode::LShr | Opcode::AShr if produces => {
403            shifted(func, halves, inst, data.opcode);
404        }
405        Opcode::And | Opcode::Or | Opcode::Xor if produces => {
406            bitwise(func, halves, inst, data.opcode);
407        }
408        Opcode::SIToFP | Opcode::UIToFP if takes => {
409            to_float(func, names, halves, forward, inst, data.opcode == Opcode::SIToFP);
410        }
411        Opcode::FPToSI | Opcode::FPToUI if produces => {
412            from_float(func, names, halves, inst, data.opcode == Opcode::FPToSI);
413        }
414        Opcode::ICmp if takes => compare(func, halves, forward, inst),
415        Opcode::Select if produces => choose(func, halves, inst),
416        Opcode::Trunc if takes => truncate(func, halves, forward, inst),
417        Opcode::SExt | Opcode::ZExt if produces => {
418            extend(func, halves, inst, data.opcode == Opcode::SExt);
419        }
420        Opcode::Call | Opcode::CallIndirect if produces || takes => {
421            call(func, halves, forward, inst);
422        }
423        Opcode::Return if takes => flatten(func, halves, inst),
424        Opcode::Jump | Opcode::BrIf => edges(func, halves, inst),
425        _ => {}
426    }
427}
428
429/// A constant, as the two halves of its bits with the low one first.
430fn constant(func: &mut Func, halves: &mut Halves, inst: Inst) {
431    let Extra::Imm(imm) = func[inst].extra else { return };
432    let bits = func[imm].unsigned();
433    #[expect(clippy::cast_possible_truncation, reason = "the halves are what this is taking")]
434    let (low, high) = (bits as u64, (bits >> HALF) as u64);
435    let low = ahead_const(func, inst, i128::from(low));
436    let high = ahead_const(func, inst, i128::from(high));
437    replace(func, halves, inst, low, high);
438}
439
440/// A read, as the two words of it with the low one first.
441///
442/// Little endian is the order, which is what every target this back end has is. The high word knows
443/// less about its alignment than the low one when the low one knew more than a word, since a
444/// sixteen byte object aligned to sixteen has its high word aligned to eight.
445fn load(func: &mut Func, halves: &mut Halves, inst: Inst) {
446    let data = func[inst];
447    let Extra::Mem(mem) = data.extra else { return };
448    let info = func[mem];
449    let Some(&from) = func[data.args].first() else { return };
450    let low = read(func, inst, from, word(info, 0), data.flags);
451    let up = stepped(func, inst, from);
452    let high = read(func, inst, up, word(info, STEP), data.flags);
453    replace(func, halves, inst, low, high);
454}
455
456/// A write, as the two words of it.
457fn store(func: &mut Func, halves: &mut Halves, inst: Inst) {
458    let data = func[inst];
459    let Extra::Mem(mem) = data.extra else { return };
460    let info = func[mem];
461    let args = func[data.args].to_vec();
462    let [value, into] = args[..] else { return };
463    let Some(&(low, high)) = halves.get(&value) else { return };
464    write(func, inst, low, into, word(info, 0), data.flags);
465    let up = stepped(func, inst, into);
466    write(func, inst, high, up, word(info, STEP), data.flags);
467    func.remove_inst(inst);
468}
469
470/// An add or a subtract, as the same over the low halves and the same again over the high ones with
471/// what the low halves carried between them.
472///
473/// The carry is a comparison and not a flag. An unsigned sum comes out below either operand exactly
474/// when it wrapped, and an unsigned difference wrapped exactly when the left operand was below the
475/// right, which are the two tests [`crate::expand`] writes for the overflow builtins and are what
476/// the machine's own carry flag stands for. Whether the pair is put back together into an `adc` and
477/// an `sbb` is a question for what reads flags rather than for this, and the answer here is correct
478/// either way.
479fn carried(func: &mut Func, halves: &mut Halves, inst: Inst, opcode: Opcode) {
480    let args = func[func[inst].args].to_vec();
481    let [a, b] = args[..] else { return };
482    let (Some(&(a_low, a_high)), Some(&(b_low, b_high))) = (halves.get(&a), halves.get(&b)) else {
483        return;
484    };
485    let low = ahead(func, inst, opcode, &[a_low, b_low]);
486    let carried = if opcode == Opcode::Add {
487        compared(func, inst, IntPred::Ult, low, a_low)
488    } else {
489        compared(func, inst, IntPred::Ult, a_low, b_low)
490    };
491    let carry = ahead(func, inst, Opcode::ZExt, &[carried]);
492    let high = ahead(func, inst, opcode, &[a_high, b_high]);
493    let high = ahead(func, inst, opcode, &[high, carry]);
494    replace(func, halves, inst, low, high);
495}
496
497/// A multiply, which is long multiplication in base two to the sixty fourth with everything that
498/// lands above the width thrown away.
499///
500/// The low half of the answer is the low halves multiplied together. The high half is what that
501/// multiply carried out of its own top, plus the two cross products, each of which starts at bit
502/// sixty four. The fourth partial product is the two high halves against each other and it starts
503/// at bit one hundred and twenty eight, so the whole of it is above the width and it is never
504/// worked out, which is why a wide multiply is three multiplies and not four.
505///
506/// Nothing here asks whether the operands are signed, because the low hundred and twenty eight bits
507/// of a product are the same bits either way. The sign only matters to the bits that are being
508/// thrown away.
509///
510/// The carry out of the low halves is the high half of a sixty four bit product, which this machine
511/// has an instruction for and this compiler has no way to ask for. [`crate::expand`] already writes
512/// that out as long multiplication one level further down, for the overflow builtins, so this calls
513/// it rather than keeping a second copy of the same arithmetic. It is the expensive part of a wide
514/// multiply by a long way, and `tamnd/rucc#309` is the rule that would make it one instruction for
515/// both callers at once.
516fn multiply(func: &mut Func, halves: &mut Halves, inst: Inst) {
517    let args = func[func[inst].args].to_vec();
518    let [a, b] = args[..] else { return };
519    let (Some(&(a_low, a_high)), Some(&(b_low, b_high))) = (halves.get(&a), halves.get(&b)) else {
520        return;
521    };
522    let low = ahead(func, inst, Opcode::Mul, &[a_low, b_low]);
523    let carried = expand::high_half(func, inst, a_low, b_low, false, half());
524    let cross = ahead(func, inst, Opcode::Mul, &[a_low, b_high]);
525    let other = ahead(func, inst, Opcode::Mul, &[a_high, b_low]);
526    let high = ahead(func, inst, Opcode::Add, &[carried, cross]);
527    let high = ahead(func, inst, Opcode::Add, &[high, other]);
528    replace(func, halves, inst, low, high);
529}
530
531/// A divide or a remainder, as a call to the routine in the compiler runtime that works it out.
532///
533/// The four names are libgcc's, and the archive `runtime/builtins/div.c` builds into defines them for
534/// a target that has no libgcc, which is every target this compiler links without gcc's driver. What
535/// picks one of the four is the opcode and nothing else: the sign is in the name because it is in the
536/// answer, since a quotient rounds towards zero and a remainder takes the sign of the dividend, and
537/// neither is the unsigned answer with bits reinterpreted the way a sum is.
538///
539/// The call is created with the halves in it rather than with the wide values, which would then be
540/// split by [`call`] on the next instruction of the walk. Four parameters and two results, in the
541/// order the operands were in and low half first, because that is where the convention puts the two
542/// eightbytes of a value this wide and [`split_signature`] is what the routine's own definition went
543/// through on the way in.
544///
545/// Nothing here is conditional on the divisor. Dividing by zero is undefined in C, the machine traps
546/// on it at every width it has, and a test written in front of the call would be this pass deciding
547/// what an undefined program does.
548fn divide(func: &mut Func, names: &mut Interner, halves: &mut Halves, inst: Inst, opcode: Opcode) {
549    let args = func[func[inst].args].to_vec();
550    let [a, b] = args[..] else { return };
551    let (Some(&(a_low, a_high)), Some(&(b_low, b_high))) = (halves.get(&a), halves.get(&b)) else {
552        return;
553    };
554    // The four that need the whole value at once, which is why they are calls rather than a pair
555    // of half width instructions like everything else in this pass. Which call each one is, is in
556    // the capability table, since a routine name is a fact about what this target cannot do.
557    let Some(routine) = capability::libcall(opcode, MODE) else { return };
558    let made =
559        runtime(func, names, inst, routine, &[a_low, a_high, b_low, b_high], &[half(), half()]);
560    let mut results = func[made].results();
561    let (Some(low), Some(high)) = (results.next(), results.next()) else { return };
562    replace(func, halves, inst, low, high);
563}
564
565/// A conversion from one of these to a float, as a call to the routine that works it out.
566///
567/// Two parameters of sixty four bits and one float result. The answer is not a wide value, so the
568/// instruction's own result is pointed at the call's rather than halved, which is what [`compare`]
569/// and [`truncate`] do with a narrow answer as well.
570///
571/// The sign is in the name because it is in the answer: the same hundred and twenty eight bits are
572/// two different numbers depending on it, and unlike a sum the float they become is two different
573/// floats.
574fn to_float(
575    func: &mut Func,
576    names: &mut Interner,
577    halves: &Halves,
578    forward: &mut HashMap<Value, Value>,
579    inst: Inst,
580    signed: bool,
581) {
582    let Some(&arg) = func[func[inst].args].first() else { return };
583    let Some(&(low, high)) = halves.get(&arg) else { return };
584    let (Some(result), Some(format)) = (func[inst].first_result, converted(func, inst)) else {
585        return;
586    };
587    let routine = going_up(signed, format);
588    let made = runtime(func, names, inst, routine, &[low, high], &[func[result].ty]);
589    if let Some(answer) = func[made].first_result {
590        forward.insert(result, answer);
591    }
592    func.remove_inst(inst);
593}
594
595/// A conversion from a float to one of these, as a call to the routine that works it out.
596///
597/// One float parameter and two results of sixty four bits, which is the divide's shape with the
598/// operands and the answer the other way round. The operand is a float and so was never split, and
599/// it is passed along as it is.
600///
601/// A value the integer cannot hold, an infinity and a not a number are all undefined in C, and
602/// nothing is written in front of the call about any of them, for the reason [`divide`] writes
603/// nothing in front of itself about a zero divisor.
604fn from_float(
605    func: &mut Func,
606    names: &mut Interner,
607    halves: &mut Halves,
608    inst: Inst,
609    signed: bool,
610) {
611    let Some(&arg) = func[func[inst].args].first() else { return };
612    let Some(format) = converted(func, inst) else { return };
613    let routine = coming_down(signed, format);
614    let made = runtime(func, names, inst, routine, &[arg], &[half(), half()]);
615    let mut results = func[made].results();
616    let (Some(low), Some(high)) = (results.next(), results.next()) else { return };
617    replace(func, halves, inst, low, high);
618}
619
620/// The routine that turns an integer this wide into a float of that format.
621///
622/// Three formats, since [`converted`] answers with no others, and the quad is the last arm rather
623/// than a named one so that a format added to that list arrives here as a routine that does not
624/// exist rather than as a name that is wrong.
625fn going_up(signed: bool, format: Float) -> &'static str {
626    let mode = match format {
627        Float::F32 => "i128.f32",
628        Float::F64 => "i128.f64",
629        _ => "i128.f128",
630    };
631    routine(if signed { Opcode::SIToFP } else { Opcode::UIToFP }, mode)
632}
633
634/// The routine that turns a float of that format into an integer this wide.
635fn coming_down(signed: bool, format: Float) -> &'static str {
636    let mode = match format {
637        Float::F32 => "f32.i128",
638        Float::F64 => "f64.i128",
639        _ => "f128.i128",
640    };
641    routine(if signed { Opcode::FPToSI } else { Opcode::FPToUI }, mode)
642}
643
644/// The routine the capability table names for this operation at this width.
645///
646/// Every mode this pass asks about is one this machine has no register wide enough for, so the
647/// table always has an answer and a missing one is the table and this pass having gone out of step.
648fn routine(opcode: Opcode, mode: &str) -> &'static str {
649    capability::libcall(opcode, mode)
650        .unwrap_or_else(|| panic!("no routine for `{}` at `{mode}`", opcode.name()))
651}
652
653/// A call to a routine in the compiler runtime, written in front of an instruction.
654///
655/// The signature is made out of the types of the values being handed over, because the values are
656/// already the halves at this point and the routine's own definition went through
657/// [`split_signature`] on the way in, so the two descriptions are the same one arrived at from the
658/// two ends.
659fn runtime(
660    func: &mut Func,
661    names: &mut Interner,
662    inst: Inst,
663    routine: &str,
664    args: &[Value],
665    results: &[Type],
666) -> Inst {
667    let params: Vec<Type> = args.iter().map(|&value| func[value].ty).collect();
668    let signature = func.add_signature(Signature::new().with_params(&params).with_returns(results));
669    let callee = Some(names.intern(routine));
670    let varargs = func.push_abis(&[]);
671    let extra = Extra::Call(func.add_call(CallInfo { callee, signature, varargs }));
672    let args = func.push_values(args);
673    let span = func.span(inst);
674    let data = InstData { args, extra, ..InstData::new(Opcode::Call) };
675    let made = func.create_inst(data, results, span);
676    func.insert_before(made, inst);
677    made
678}
679
680/// A shift, as each half shifted by the count with the bits that crossed between them put back, and
681/// a second answer for a count that reached a whole half.
682///
683/// A count below sixty four moves each half by the count, and the bits that left one half are the
684/// ones that arrive in the other. A count of sixty four or more empties one half completely, and
685/// what lands in the other is the first half moved by the count less sixty four. Taking the sixty
686/// four bit off a count in range is the same as subtracting sixty four from it, so both cases shift
687/// by the same number of places and differ only in which value ends up where, which means one shift
688/// each and a choice rather than two of everything. The choice is a `select` and not a branch, for
689/// the reason [`choose`] gives.
690///
691/// The bits that cross move the other way by sixty four less the count. That is a shift of sixty
692/// four places when the count is zero, which is not a distance this width has. Moving one place and
693/// then sixty three less the count is the same distance for every count from one to sixty three,
694/// and for a count of zero it shifts a value whose top bit is already gone all the way down to
695/// nothing, which is the right answer: a half that did not move carries nothing into the other one.
696///
697/// A count of a hundred and twenty eight or more is undefined in C and nothing here goes out of its
698/// way about it, the same as at every other width.
699fn shifted(func: &mut Func, halves: &mut Halves, inst: Inst, opcode: Opcode) {
700    let args = func[func[inst].args].to_vec();
701    let [a, b] = args[..] else { return };
702    let (Some(&(a_low, a_high)), Some(&(count, _))) = (halves.get(&a), halves.get(&b)) else {
703        return;
704    };
705    let top = ahead_const(func, inst, i128::from(HALF - 1));
706    let places = ahead(func, inst, Opcode::And, &[count, top]);
707    let back = ahead(func, inst, Opcode::Sub, &[top, places]);
708    let one = ahead_const(func, inst, 1);
709    let zero = ahead_const(func, inst, 0);
710    let bit = ahead_const(func, inst, i128::from(HALF));
711    let reach = ahead(func, inst, Opcode::And, &[count, bit]);
712    let whole = compared(func, inst, IntPred::Ne, reach, zero);
713
714    let (low, high) = if opcode == Opcode::Shl {
715        let moved = ahead(func, inst, Opcode::Shl, &[a_low, places]);
716        let edge = ahead(func, inst, Opcode::LShr, &[a_low, one]);
717        let across = ahead(func, inst, Opcode::LShr, &[edge, back]);
718        let above = ahead(func, inst, Opcode::Shl, &[a_high, places]);
719        let joined = ahead(func, inst, Opcode::Or, &[above, across]);
720        let low = ahead(func, inst, Opcode::Select, &[whole, zero, moved]);
721        let high = ahead(func, inst, Opcode::Select, &[whole, moved, joined]);
722        (low, high)
723    } else {
724        let moved = ahead(func, inst, opcode, &[a_high, places]);
725        let edge = ahead(func, inst, Opcode::Shl, &[a_high, one]);
726        let across = ahead(func, inst, Opcode::Shl, &[edge, back]);
727        let below = ahead(func, inst, Opcode::LShr, &[a_low, places]);
728        let joined = ahead(func, inst, Opcode::Or, &[below, across]);
729        // What is left behind when the whole low half is gone: zeroes for a logical shift, and for
730        // an arithmetic one the sign bit spread over the half it came from.
731        let spent = if opcode == Opcode::AShr {
732            ahead(func, inst, Opcode::AShr, &[a_high, top])
733        } else {
734            zero
735        };
736        let low = ahead(func, inst, Opcode::Select, &[whole, moved, joined]);
737        let high = ahead(func, inst, Opcode::Select, &[whole, spent, moved]);
738        (low, high)
739    };
740    replace(func, halves, inst, low, high);
741}
742
743/// An `and`, an `or` or an `xor`, which is the same operation on each half and nothing between
744/// them.
745fn bitwise(func: &mut Func, halves: &mut Halves, inst: Inst, opcode: Opcode) {
746    let args = func[func[inst].args].to_vec();
747    let [a, b] = args[..] else { return };
748    let (Some(&(a_low, a_high)), Some(&(b_low, b_high))) = (halves.get(&a), halves.get(&b)) else {
749        return;
750    };
751    let low = ahead(func, inst, opcode, &[a_low, b_low]);
752    let high = ahead(func, inst, opcode, &[a_high, b_high]);
753    replace(func, halves, inst, low, high);
754}
755
756/// A comparison, which produces one bit and so is pointed at its answer rather than halved.
757///
758/// An equality is the two halves differing in neither place, which is one `or` over two `xor`s
759/// against zero and is shorter than comparing twice and combining. An ordering is the high halves
760/// settling it outright, or the low halves settling it when the high halves are equal, and the low
761/// halves are compared without a sign because the low half of a signed number is unsigned whatever
762/// the number is.
763///
764/// The high halves are asked a strict question even when the predicate is not strict. A predicate
765/// that lets the two be equal is true of two equal high halves whatever the low halves say, and
766/// what decides it there is the low halves, so `a >= b` is `a.hi > b.hi` or the high halves being
767/// equal and `a.lo >= b.lo` unsigned. Asking `a.hi >= b.hi` instead makes every value with a high
768/// half of its own greater than or equal to every other, which is the shape of this that a
769/// differential run against GCC caught.
770fn compare(func: &mut Func, halves: &Halves, forward: &mut HashMap<Value, Value>, inst: Inst) {
771    let Extra::IntPred(pred) = func[inst].extra else { return };
772    let args = func[func[inst].args].to_vec();
773    let [a, b] = args[..] else { return };
774    let (Some(&(a_low, a_high)), Some(&(b_low, b_high))) = (halves.get(&a), halves.get(&b)) else {
775        return;
776    };
777    let answer = if matches!(pred, IntPred::Eq | IntPred::Ne) {
778        let low = ahead(func, inst, Opcode::Xor, &[a_low, b_low]);
779        let high = ahead(func, inst, Opcode::Xor, &[a_high, b_high]);
780        let both = ahead(func, inst, Opcode::Or, &[low, high]);
781        let zero = ahead_const(func, inst, 0);
782        compared(func, inst, pred, both, zero)
783    } else {
784        let above = compared(func, inst, strict(pred), a_high, b_high);
785        let below = compared(func, inst, unsigned(pred), a_low, b_low);
786        let same = compared(func, inst, IntPred::Eq, a_high, b_high);
787        let tail = bit(func, inst, Opcode::And, same, below);
788        bit(func, inst, Opcode::Or, above, tail)
789    };
790    if let Some(result) = func[inst].first_result {
791        forward.insert(result, answer);
792    }
793    func.remove_inst(inst);
794}
795
796/// The same ordering with the equal case taken out of it, which is what the high halves are asked.
797fn strict(pred: IntPred) -> IntPred {
798    match pred {
799        IntPred::Sle => IntPred::Slt,
800        IntPred::Sge => IntPred::Sgt,
801        IntPred::Ule => IntPred::Ult,
802        IntPred::Uge => IntPred::Ugt,
803        other => other,
804    }
805}
806
807/// The same ordering with no sign in it, which is how the low halves of two signed numbers compare.
808fn unsigned(pred: IntPred) -> IntPred {
809    match pred {
810        IntPred::Slt => IntPred::Ult,
811        IntPred::Sle => IntPred::Ule,
812        IntPred::Sgt => IntPred::Ugt,
813        IntPred::Sge => IntPred::Uge,
814        other => other,
815    }
816}
817
818/// A choice between two wide values, which is the same choice made on each half.
819///
820/// Two of them rather than one, with the condition read twice. What that costs is one more
821/// conditional move, and what the alternative costs is a branch, which is the more expensive of the
822/// two on anything that predicts.
823fn choose(func: &mut Func, halves: &mut Halves, inst: Inst) {
824    let args = func[func[inst].args].to_vec();
825    let [cond, then, other] = args[..] else { return };
826    let (Some(&(then_low, then_high)), Some(&(other_low, other_high))) =
827        (halves.get(&then), halves.get(&other))
828    else {
829        return;
830    };
831    let low = ahead(func, inst, Opcode::Select, &[cond, then_low, other_low]);
832    let high = ahead(func, inst, Opcode::Select, &[cond, then_high, other_high]);
833    replace(func, halves, inst, low, high);
834}
835
836/// Keeping the low bits of a wide value, which is the low half and then whatever is left to do.
837///
838/// Down to sixty four there is nothing left to do and the low half is the answer, so the truncation
839/// goes and its readers read the half. Down to anything narrower the machine's own truncation still
840/// happens, out of the half rather than out of the value that is no longer there.
841fn truncate(func: &mut Func, halves: &Halves, forward: &mut HashMap<Value, Value>, inst: Inst) {
842    let Some(&arg) = func[func[inst].args].first() else { return };
843    let Some(&(low, _)) = halves.get(&arg) else { return };
844    let Some(result) = func[inst].first_result else { return };
845    if func[result].ty.bits() == HALF {
846        forward.insert(result, low);
847        func.remove_inst(inst);
848        return;
849    }
850    becomes(func, inst, Opcode::Trunc, &[low]);
851}
852
853/// Widening into a wide value, which is the value in the low half and its own sign or zero above.
854fn extend(func: &mut Func, halves: &mut Halves, inst: Inst, signed: bool) {
855    let Some(&arg) = func[func[inst].args].first() else { return };
856    let low = if func[arg].ty.bits() == HALF {
857        arg
858    } else {
859        let opcode = if signed { Opcode::SExt } else { Opcode::ZExt };
860        ahead(func, inst, opcode, &[arg])
861    };
862    let high = if signed {
863        let top = ahead_const(func, inst, i128::from(HALF - 1));
864        ahead(func, inst, Opcode::AShr, &[low, top])
865    } else {
866        ahead_const(func, inst, 0)
867    };
868    replace(func, halves, inst, low, high);
869}
870
871/// A call, as a call passing and receiving halves.
872///
873/// The instruction is made again rather than edited, because how many values a call gives back is
874/// settled when it is created and a wide return value is two where it was one. Its signature is
875/// made again for the same reason, since the signature is what each end of the call lays itself out
876/// against and both ends are split the same way.
877fn call(func: &mut Func, halves: &mut Halves, forward: &mut HashMap<Value, Value>, inst: Inst) {
878    let data = func[inst];
879    let Extra::Call(info) = data.extra else { return };
880    let info = func[info];
881    let args = spread(&func[data.args], halves);
882    let results: Vec<Type> = data
883        .results()
884        .map(|value| func[value].ty)
885        .flat_map(|ty| if is_wide(ty) { vec![half(), half()] } else { vec![ty] })
886        .collect();
887    let signature = func.add_signature(split_signature(&func[info.signature]));
888    let extra = Extra::Call(func.add_call(CallInfo { signature, ..info }));
889    let args = func.push_values(&args);
890    let span = func.span(inst);
891    let made = func.create_inst(InstData { args, extra, ..data }, &results, span);
892    func.insert_before(made, inst);
893    let mut fresh = func[made].results();
894    for old in data.results() {
895        if is_wide(func[old].ty) {
896            let (Some(low), Some(high)) = (fresh.next(), fresh.next()) else { return };
897            halves.insert(old, (low, high));
898        } else if let Some(again) = fresh.next() {
899            forward.insert(old, again);
900        }
901    }
902    func.remove_inst(inst);
903}
904
905/// A `return`, whose operands are the values the signature says and so are halves now.
906fn flatten(func: &mut Func, halves: &Halves, inst: Inst) {
907    let args = spread(&func[func[inst].args], halves);
908    func[inst].args = func.push_values(&args);
909}
910
911/// A branch, whose arguments hang on the edge rather than on the instruction.
912fn edges(func: &mut Func, halves: &Halves, inst: Inst) {
913    for at in func.target_list(inst).iter() {
914        let call = func[at];
915        let args = func[call.args].to_vec();
916        if !args.iter().any(|value| halves.contains_key(value)) {
917            continue;
918        }
919        let args = func.push_values(&spread(&args, halves));
920        func.set_block_call(at, BlockCall { args, ..call });
921    }
922}
923
924/// A list of values with each wide one replaced by its two halves in the same position.
925fn spread(args: &[Value], halves: &Halves) -> Vec<Value> {
926    args.iter()
927        .flat_map(|value| match halves.get(value) {
928            Some(&(low, high)) => vec![low, high],
929            None => vec![*value],
930        })
931        .collect()
932}
933
934/// One signature with every wide parameter and return value as two halves in its place.
935///
936/// Each half is plain. What the ABI asks beyond a type is about the bits above a narrow value and
937/// about an object whose address travels, and a half is neither: it is exactly a register wide and
938/// it is the value itself.
939fn split_signature(signature: &Signature) -> Signature {
940    let split = |params: &[Param]| -> Vec<Param> {
941        params
942            .iter()
943            .flat_map(|param| {
944                if is_wide(param.ty) {
945                    vec![Param::new(half()), Param::new(half())]
946                } else {
947                    vec![*param]
948                }
949            })
950            .collect()
951    };
952    Signature {
953        params: split(&signature.params),
954        returns: split(&signature.returns),
955        variadic: signature.variadic,
956    }
957}
958
959/// Records the two halves an instruction became and takes the instruction out.
960fn replace(func: &mut Func, halves: &mut Halves, inst: Inst, low: Value, high: Value) {
961    if let Some(result) = func[inst].first_result {
962        halves.insert(result, (low, high));
963    }
964    func.remove_inst(inst);
965}
966
967/// Points every reader of a value this pass replaced at what replaced it.
968///
969/// The arguments of each instruction and the arguments of the blocks it branches to, which between
970/// them are everywhere a value can be read. Nothing chases, because every value this map answers
971/// with is one made here and so is never itself a key.
972fn substitute(func: &mut Func, forward: &HashMap<Value, Value>) {
973    if forward.is_empty() {
974        return;
975    }
976    let with = |value: Value| forward.get(&value).copied().unwrap_or(value);
977    for block in func.blocks().collect::<Vec<_>>() {
978        for inst in func.insts(block).collect::<Vec<Inst>>() {
979            let args = func[inst].args;
980            func.rewrite(args, with);
981            for call in func.successors(inst).collect::<Vec<_>>() {
982                func.rewrite(call.args, with);
983            }
984        }
985    }
986}
987
988/// The access one word of a wide access is, that many bytes into it.
989fn word(info: MemInfo, at: u64) -> MemInfo {
990    let align = if at == 0 { info.align } else { info.align.min(8) };
991    MemInfo { size: STEP, align, ..info }
992}
993
994/// The address one word past another, written in front of an instruction.
995fn stepped(func: &mut Func, inst: Inst, from: Value) -> Value {
996    let step = ahead_const(func, inst, i128::from(STEP));
997    let args = func.push_values(&[from, step]);
998    written(func, inst, InstData { args, ..InstData::new(Opcode::PtrAdd) }, Type::PTR)
999}
1000
1001/// A load put in front of an instruction, and the half it reads.
1002fn read(func: &mut Func, inst: Inst, from: Value, info: MemInfo, flags: Flags) -> Value {
1003    let extra = Extra::Mem(func.add_mem(info));
1004    let args = func.push_values(&[from]);
1005    let data = InstData { args, flags, extra, ..InstData::new(Opcode::Load) };
1006    written(func, inst, data, half())
1007}
1008
1009/// A store put in front of an instruction, which produces nothing and is only its effect.
1010fn write(func: &mut Func, inst: Inst, value: Value, into: Value, info: MemInfo, flags: Flags) {
1011    let span = func.span(inst);
1012    let extra = Extra::Mem(func.add_mem(info));
1013    let args = func.push_values(&[value, into]);
1014    let data = InstData { args, flags, extra, ..InstData::new(Opcode::Store) };
1015    let made = func.create_inst(data, &[], span);
1016    func.insert_before(made, inst);
1017}
1018
1019/// A comparison written in front of an instruction, which carries its predicate where everything
1020/// else carries nothing.
1021fn compared(func: &mut Func, inst: Inst, pred: IntPred, lhs: Value, rhs: Value) -> Value {
1022    let args = func.push_values(&[lhs, rhs]);
1023    let extra = Extra::IntPred(pred);
1024    written(func, inst, InstData { args, extra, ..InstData::new(Opcode::ICmp) }, Type::I1)
1025}
1026
1027/// An `and` or an `or` over two truth values, which is the same instruction at the width of one.
1028fn bit(func: &mut Func, inst: Inst, opcode: Opcode, lhs: Value, rhs: Value) -> Value {
1029    let args = func.push_values(&[lhs, rhs]);
1030    written(func, inst, InstData { args, ..InstData::new(opcode) }, Type::I1)
1031}
1032
1033/// An instruction over these operands put in front of another one, producing a half.
1034fn ahead(func: &mut Func, inst: Inst, opcode: Opcode, args: &[Value]) -> Value {
1035    let args = func.push_values(args);
1036    written(func, inst, InstData { args, ..InstData::new(opcode) }, half())
1037}
1038
1039/// A constant half put in front of an instruction.
1040fn ahead_const(func: &mut Func, inst: Inst, value: i128) -> Value {
1041    let extra = Extra::Imm(func.add_imm(Imm::int(value, half())));
1042    written(func, inst, InstData { extra, ..InstData::new(Opcode::IConst) }, half())
1043}
1044
1045/// Creates the instruction, puts it in front of another, and reads its value back out.
1046fn written(func: &mut Func, inst: Inst, data: InstData, ty: Type) -> Value {
1047    let span = func.span(inst);
1048    let made = func.create_inst(data, &[ty], span);
1049    func.insert_before(made, inst);
1050    func[made].first_result.expect("an instruction created with one result has one")
1051}
1052
1053/// Turns an instruction into a different one over different operands, in place.
1054fn becomes(func: &mut Func, inst: Inst, opcode: Opcode, args: &[Value]) {
1055    let args = func.push_values(args);
1056    let data = &mut func[inst];
1057    data.opcode = opcode;
1058    data.args = args;
1059    data.extra = Extra::None;
1060    data.flags = data.flags.intersection(Flags::legal_on(opcode));
1061}
1062
1063#[cfg(test)]
1064mod tests {
1065    use rucc_base::Interner;
1066    use rucc_ir::{
1067        Block, Builder, Flags, Float, Func, MemOrder, Module, Restrict, Signature, Type, Value,
1068    };
1069    use rucc_target::x86_64::SYSV;
1070    use rucc_target::{Arch, Env, Os, TargetInfo, Triple};
1071
1072    use super::{HALF, IntPred, MemInfo, Opcode, halves};
1073
1074    /// The width the pass is about, as a type, which is what every test builds with.
1075    fn wide() -> Type {
1076        Type::int(super::WIDE)
1077    }
1078
1079    fn target() -> TargetInfo {
1080        TargetInfo::new(Triple::new(Arch::X86_64, Os::Linux, Env::Gnu))
1081    }
1082
1083    fn printed(func: &Func, names: &mut Interner) -> String {
1084        let module = Module::new(names.intern("w.c"), &target());
1085        rucc_ir::print_func(&module, func, names)
1086    }
1087
1088    /// A function of those parameters returning that, with its entry block and its parameters.
1089    fn shell(names: &mut Interner, params: &[Type], returns: &[Type]) -> (Func, Block, Vec<Value>) {
1090        let signature = Signature::new().with_params(params).with_returns(returns);
1091        let mut func = Func::new(names.intern("f"), signature);
1092        let entry = func.create_block();
1093        let values = params.iter().map(|&ty| func.append_param(entry, ty)).collect();
1094        (func, entry, values)
1095    }
1096
1097    /// An ordinary access of that many bytes, aligned that far.
1098    fn info(size: u64, align: u32) -> MemInfo {
1099        MemInfo {
1100            size,
1101            align,
1102            order: MemOrder::NotAtomic,
1103            tbaa: None,
1104            owns: 0,
1105            restrict: Restrict::NONE,
1106        }
1107    }
1108
1109    #[test]
1110    fn an_add_carries_from_the_low_half_into_the_high_one() {
1111        let mut names = Interner::new();
1112        let (mut func, entry, params) = shell(&mut names, &[wide(), wide()], &[wide()]);
1113        let mut build = Builder::new(&mut func, entry);
1114        let sum = build.binary(Opcode::Add, params[0], params[1], Flags::NONE);
1115        build.ret(&[sum]);
1116
1117        assert!(halves(&mut func, &mut names, &SYSV), "there is a width to split");
1118        let text = printed(&func, &mut names);
1119        assert!(!text.contains("i128"), "nothing that wide is left: {text}");
1120        // Two adds for the halves, one more for the carry, and the carry itself is the unsigned
1121        // comparison that says the low half wrapped.
1122        assert_eq!(text.matches(" = add ").count(), 3, "three adds: {text}");
1123        assert_eq!(text.matches("icmp ult").count(), 1, "one carry: {text}");
1124        assert_eq!(text.matches(" = zext.i64 ").count(), 1, "the carry as a number: {text}");
1125    }
1126
1127    #[test]
1128    fn a_subtract_borrows_the_other_way_round() {
1129        let mut names = Interner::new();
1130        let (mut func, entry, params) = shell(&mut names, &[wide(), wide()], &[wide()]);
1131        let mut build = Builder::new(&mut func, entry);
1132        let difference = build.binary(Opcode::Sub, params[0], params[1], Flags::NONE);
1133        build.ret(&[difference]);
1134
1135        assert!(halves(&mut func, &mut names, &SYSV), "there is a width to split");
1136        let text = printed(&func, &mut names);
1137        assert_eq!(text.matches(" = sub ").count(), 3, "three subtracts: {text}");
1138        // The borrow is the operands compared, not the answer, which is what tells a reader the
1139        // two directions were thought about separately.
1140        assert!(text.contains("icmp ult %0, %2"), "the operands are compared: {text}");
1141    }
1142
1143    #[test]
1144    fn the_signature_and_the_entry_block_say_the_same_thing() {
1145        let mut names = Interner::new();
1146        let (mut func, entry, params) = shell(&mut names, &[Type::int(32), wide()], &[wide()]);
1147        let mut build = Builder::new(&mut func, entry);
1148        build.ret(&[params[1]]);
1149
1150        assert!(halves(&mut func, &mut names, &SYSV), "there is a width to split");
1151        assert_eq!(
1152            func.signature().param_types().collect::<Vec<_>>(),
1153            [Type::int(32), Type::int(HALF), Type::int(HALF)],
1154            "the wide parameter became two where it stood"
1155        );
1156        assert_eq!(
1157            func.signature().return_types().collect::<Vec<_>>(),
1158            [Type::int(HALF), Type::int(HALF)],
1159            "and so did what comes back"
1160        );
1161        let text = printed(&func, &mut names);
1162        assert!(text.contains("block0(%0: i32, %1: i64, %2: i64)"), "the block agrees: {text}");
1163        assert!(text.contains("return %1, %2"), "both halves go back: {text}");
1164        let _ = entry;
1165    }
1166
1167    #[test]
1168    fn a_read_takes_the_high_word_a_word_above_the_low_one() {
1169        let mut names = Interner::new();
1170        let (mut func, entry, params) = shell(&mut names, &[Type::PTR], &[wide()]);
1171        let mut build = Builder::new(&mut func, entry);
1172        let value = build.load(wide(), params[0], info(16, 16), Flags::NONE);
1173        build.ret(&[value]);
1174
1175        assert!(halves(&mut func, &mut names, &SYSV), "there is a width to split");
1176        let text = printed(&func, &mut names);
1177        assert_eq!(text.matches(" = load.i64 ").count(), 2, "two reads: {text}");
1178        assert!(text.contains("ptr_add"), "the high word is a word up: {text}");
1179        // The object is aligned to sixteen and its high word is not, which is the one thing
1180        // splitting an access can get wrong quietly.
1181        assert!(text.contains("align 16"), "the low word keeps what the object had: {text}");
1182        assert!(text.contains("align 8"), "the high word knows less: {text}");
1183    }
1184
1185    #[test]
1186    fn an_equality_asks_once_about_both_halves() {
1187        let mut names = Interner::new();
1188        let (mut func, entry, params) = shell(&mut names, &[wide(), wide()], &[Type::int(32)]);
1189        let mut build = Builder::new(&mut func, entry);
1190        let same = build.icmp(IntPred::Eq, params[0], params[1]);
1191        let answer = build.unary(Opcode::ZExt, same, Type::int(32));
1192        build.ret(&[answer]);
1193
1194        assert!(halves(&mut func, &mut names, &SYSV), "there is a width to split");
1195        let text = printed(&func, &mut names);
1196        assert_eq!(text.matches("icmp").count(), 1, "one comparison: {text}");
1197        assert_eq!(text.matches(" = xor ").count(), 2, "the halves differ or they do not: {text}");
1198    }
1199
1200    #[test]
1201    fn an_ordering_reads_the_low_halves_without_a_sign() {
1202        let mut names = Interner::new();
1203        let (mut func, entry, params) = shell(&mut names, &[wide(), wide()], &[Type::int(32)]);
1204        let mut build = Builder::new(&mut func, entry);
1205        let below = build.icmp(IntPred::Slt, params[0], params[1]);
1206        let answer = build.unary(Opcode::ZExt, below, Type::int(32));
1207        build.ret(&[answer]);
1208
1209        assert!(halves(&mut func, &mut names, &SYSV), "there is a width to split");
1210        let text = printed(&func, &mut names);
1211        assert!(text.contains("icmp slt"), "the high halves keep the sign: {text}");
1212        assert!(text.contains("icmp ult"), "the low halves have none: {text}");
1213        assert!(
1214            text.contains("icmp eq"),
1215            "and the low halves only matter when the high tie: {text}"
1216        );
1217    }
1218
1219    /// An ordering that allows the two to be equal still asks the high halves a strict question.
1220    ///
1221    /// Two values whose high halves are equal are ordered by their low halves alone, and a high
1222    /// half that is greater than or equal to the other says nothing about that. Asking the high
1223    /// halves the predicate as it stands makes every ordering that is not strict answer yes on a
1224    /// tie, which is the mistake a run against GCC caught.
1225    #[test]
1226    fn an_ordering_that_allows_equality_asks_the_high_halves_a_strict_question() {
1227        let mut names = Interner::new();
1228        let (mut func, entry, params) = shell(&mut names, &[wide(), wide()], &[Type::int(32)]);
1229        let mut build = Builder::new(&mut func, entry);
1230        let at_least = build.icmp(IntPred::Sge, params[0], params[1]);
1231        let answer = build.unary(Opcode::ZExt, at_least, Type::int(32));
1232        build.ret(&[answer]);
1233
1234        assert!(halves(&mut func, &mut names, &SYSV), "there is a width to split");
1235        let text = printed(&func, &mut names);
1236        assert!(text.contains("icmp sgt"), "the high halves settle it outright: {text}");
1237        assert!(!text.contains("icmp sge"), "a tie in the high halves settles nothing: {text}");
1238        assert!(text.contains("icmp uge"), "the low halves are the ones allowed to tie: {text}");
1239    }
1240
1241    #[test]
1242    fn a_widening_puts_the_sign_of_the_value_in_the_high_half() {
1243        let mut names = Interner::new();
1244        let (mut func, entry, params) = shell(&mut names, &[Type::int(32)], &[wide()]);
1245        let mut build = Builder::new(&mut func, entry);
1246        let value = build.unary(Opcode::SExt, params[0], wide());
1247        build.ret(&[value]);
1248
1249        assert!(halves(&mut func, &mut names, &SYSV), "there is a width to split");
1250        let text = printed(&func, &mut names);
1251        assert!(text.contains("sext.i64"), "the value fills the low half: {text}");
1252        assert!(text.contains("ashr"), "and its sign fills the high one: {text}");
1253    }
1254
1255    #[test]
1256    fn a_block_parameter_becomes_two_and_every_branch_passes_two() {
1257        let mut names = Interner::new();
1258        let (mut func, entry, params) = shell(&mut names, &[wide(), Type::int(32)], &[wide()]);
1259        let tail = func.create_block();
1260        let carried = func.append_param(tail, wide());
1261        let mut build = Builder::new(&mut func, entry);
1262        let zero = build.iconst(Type::int(32), 0);
1263        let taken = build.icmp(IntPred::Ne, params[1], zero);
1264        let other = build.iconst(wide(), 7);
1265        build.br_if(taken, tail, &[params[0]], tail, &[other]);
1266        let mut build = Builder::new(&mut func, tail);
1267        build.ret(&[carried]);
1268
1269        assert!(halves(&mut func, &mut names, &SYSV), "there is a width to split");
1270        let text = printed(&func, &mut names);
1271        assert!(!text.contains("i128"), "nothing that wide is left: {text}");
1272        assert!(text.contains("block1(%7: i64, %8: i64)"), "the block takes two: {text}");
1273        assert_eq!(text.matches("block1(").count(), 3, "and both edges pass two: {text}");
1274    }
1275
1276    /// A multiply is the low halves, the two cross products, and nothing for the fourth corner.
1277    ///
1278    /// Three at the top, and four more inside the carry out of the low halves, which is a product
1279    /// at half the width again worked out the same way. What the count is really saying is that the
1280    /// two high halves are never multiplied together, because the whole of that partial product
1281    /// lands above the width.
1282    #[test]
1283    fn a_multiply_is_three_multiplies_and_the_carry_out_of_the_low_ones() {
1284        let mut names = Interner::new();
1285        let (mut func, entry, params) = shell(&mut names, &[wide(), wide()], &[wide()]);
1286        let mut build = Builder::new(&mut func, entry);
1287        let product = build.binary(Opcode::Mul, params[0], params[1], Flags::NONE);
1288        build.ret(&[product]);
1289
1290        assert!(halves(&mut func, &mut names, &SYSV), "there is a width to split");
1291        let text = printed(&func, &mut names);
1292        assert!(!text.contains("i128"), "nothing that wide is left: {text}");
1293        assert_eq!(text.matches(" = mul ").count(), 7, "three and the carry's four: {text}");
1294    }
1295
1296    /// Each of the four divisions becomes a call to the routine of that name in the runtime.
1297    ///
1298    /// The sign is in the name because it is in the answer. A quotient rounds towards zero and a
1299    /// remainder takes the sign of the dividend, so the signed routine and the unsigned one work out
1300    /// two different numbers, where a wide add is one computation that two signednesses read the
1301    /// same bits of.
1302    #[test]
1303    fn each_of_the_four_divisions_calls_the_routine_of_that_name() {
1304        for (opcode, routine) in [
1305            (Opcode::UDiv, "__udivti3"),
1306            (Opcode::SDiv, "__divti3"),
1307            (Opcode::URem, "__umodti3"),
1308            (Opcode::SRem, "__modti3"),
1309        ] {
1310            let mut names = Interner::new();
1311            let (mut func, entry, params) = shell(&mut names, &[wide(), wide()], &[wide()]);
1312            let mut build = Builder::new(&mut func, entry);
1313            let answer = build.binary(opcode, params[0], params[1], Flags::NONE);
1314            build.ret(&[answer]);
1315
1316            assert!(halves(&mut func, &mut names, &SYSV), "there is a width to split");
1317            let text = printed(&func, &mut names);
1318            assert!(!text.contains("i128"), "nothing that wide is left: {text}");
1319            assert!(text.contains(&format!("call @{routine}")), "{routine} is called: {text}");
1320        }
1321    }
1322
1323    /// The call hands over four halves and takes two back, which is the shape of the routine.
1324    ///
1325    /// Low half first and the dividend first, which is what the definition of the routine was split
1326    /// into by the same code on the way in. The operands here are the entry block's parameters, so
1327    /// the four values the call passes are the four the block now takes, in order.
1328    #[test]
1329    fn a_divide_hands_over_four_halves_and_takes_two_back() {
1330        let mut names = Interner::new();
1331        let (mut func, entry, params) = shell(&mut names, &[wide(), wide()], &[wide()]);
1332        let mut build = Builder::new(&mut func, entry);
1333        let quotient = build.binary(Opcode::UDiv, params[0], params[1], Flags::NONE);
1334        build.ret(&[quotient]);
1335
1336        assert!(halves(&mut func, &mut names, &SYSV), "there is a width to split");
1337        let text = printed(&func, &mut names);
1338        assert!(text.contains("@__udivti3(%0, %1, %2, %3)"), "four halves go over: {text}");
1339        assert!(text.contains("return %4, %5"), "and two come back: {text}");
1340    }
1341
1342    /// A divide whose operands were worked out in the function calls with the halves of those.
1343    ///
1344    /// The other direction of the same rule the walk is for: the call is built where the divide was,
1345    /// so the halves of a sum computed above it exist by then, and what reaches the routine is the
1346    /// two values the sum became rather than anything at the old width.
1347    #[test]
1348    fn a_divide_of_something_computed_calls_with_the_halves_of_it() {
1349        let mut names = Interner::new();
1350        let (mut func, entry, params) = shell(&mut names, &[wide(), wide()], &[wide()]);
1351        let mut build = Builder::new(&mut func, entry);
1352        let sum = build.binary(Opcode::Add, params[0], params[1], Flags::NONE);
1353        let quotient = build.binary(Opcode::SDiv, sum, params[1], Flags::NONE);
1354        build.ret(&[quotient]);
1355
1356        assert!(halves(&mut func, &mut names, &SYSV), "there is a width to split");
1357        let text = printed(&func, &mut names);
1358        assert!(!text.contains("i128"), "nothing that wide is left: {text}");
1359        assert_eq!(text.matches(" = add ").count(), 3, "the sum is still a sum: {text}");
1360        assert_eq!(text.matches("call @__divti3").count(), 1, "one call: {text}");
1361    }
1362
1363    /// Each conversion between this width and a float becomes a call to the routine of that name.
1364    ///
1365    /// Twelve of them, which is a signed and an unsigned integer against a `float`, a `double` and a
1366    /// `_Float128` in each direction, and the table is here rather than in a comment because the
1367    /// names are the whole of what this has to get right.
1368    #[test]
1369    fn each_conversion_between_this_width_and_a_float_calls_the_routine_of_that_name() {
1370        let double = Type::float(Float::F64);
1371        let single = Type::float(Float::F32);
1372        let quad = Type::float(Float::F128);
1373        for (opcode, float, routine) in [
1374            (Opcode::SIToFP, double, "__floattidf"),
1375            (Opcode::SIToFP, single, "__floattisf"),
1376            (Opcode::UIToFP, double, "__floatuntidf"),
1377            (Opcode::UIToFP, single, "__floatuntisf"),
1378            (Opcode::SIToFP, quad, "__floattitf"),
1379            (Opcode::UIToFP, quad, "__floatuntitf"),
1380        ] {
1381            let mut names = Interner::new();
1382            let (mut func, entry, params) = shell(&mut names, &[wide()], &[float]);
1383            let mut build = Builder::new(&mut func, entry);
1384            let answer = build.unary(opcode, params[0], float);
1385            build.ret(&[answer]);
1386
1387            assert!(halves(&mut func, &mut names, &SYSV), "there is a width to split");
1388            let text = printed(&func, &mut names);
1389            assert!(!text.contains("i128"), "nothing that wide is left: {text}");
1390            assert!(text.contains(&format!("call @{routine}")), "{routine} is called: {text}");
1391        }
1392        for (opcode, float, routine) in [
1393            (Opcode::FPToSI, double, "__fixdfti"),
1394            (Opcode::FPToSI, single, "__fixsfti"),
1395            (Opcode::FPToUI, double, "__fixunsdfti"),
1396            (Opcode::FPToUI, single, "__fixunssfti"),
1397            (Opcode::FPToSI, quad, "__fixtfti"),
1398            (Opcode::FPToUI, quad, "__fixunstfti"),
1399        ] {
1400            let mut names = Interner::new();
1401            let (mut func, entry, params) = shell(&mut names, &[float], &[wide()]);
1402            let mut build = Builder::new(&mut func, entry);
1403            let answer = build.unary(opcode, params[0], wide());
1404            build.ret(&[answer]);
1405
1406            assert!(halves(&mut func, &mut names, &SYSV), "there is a width to split");
1407            let text = printed(&func, &mut names);
1408            assert!(!text.contains("i128"), "nothing that wide is left: {text}");
1409            assert!(text.contains(&format!("call @{routine}")), "{routine} is called: {text}");
1410        }
1411    }
1412
1413    /// A conversion up hands over two halves and takes one float back, and one coming down is the
1414    /// same call the other way round.
1415    ///
1416    /// The answer going up is not a wide value, so it is one result and the readers of the
1417    /// conversion read it, the way they read the answer of a comparison.
1418    #[test]
1419    fn a_conversion_hands_over_halves_one_way_and_takes_them_back_the_other() {
1420        let double = Type::float(Float::F64);
1421        let mut names = Interner::new();
1422        let (mut func, entry, params) = shell(&mut names, &[wide()], &[double]);
1423        let mut build = Builder::new(&mut func, entry);
1424        let answer = build.unary(Opcode::SIToFP, params[0], double);
1425        build.ret(&[answer]);
1426
1427        assert!(halves(&mut func, &mut names, &SYSV), "there is a width to split");
1428        let text = printed(&func, &mut names);
1429        assert!(text.contains("@__floattidf(%0, %1)"), "two halves go over: {text}");
1430        assert!(text.contains("return %2"), "and one float comes back: {text}");
1431
1432        let mut names = Interner::new();
1433        let (mut func, entry, params) = shell(&mut names, &[double], &[wide()]);
1434        let mut build = Builder::new(&mut func, entry);
1435        let answer = build.unary(Opcode::FPToSI, params[0], wide());
1436        build.ret(&[answer]);
1437
1438        assert!(halves(&mut func, &mut names, &SYSV), "there is a width to split");
1439        let text = printed(&func, &mut names);
1440        assert!(text.contains("@__fixdfti(%0)"), "the float goes over as it is: {text}");
1441        assert!(text.contains("return %1, %2"), "and two halves come back: {text}");
1442    }
1443
1444    /// A conversion against a quad is that same shape, with the quad crossing whole.
1445    ///
1446    /// Worth its own test because the two sides of it are wide for different reasons. The integer is
1447    /// a pair here because no register holds a hundred and twenty eight bits of integer, and the
1448    /// quad is one value because a vector register holds all of it, so the call this pass writes has
1449    /// two operands and one result going up and one operand and two results coming down.
1450    #[test]
1451    fn a_conversion_against_a_quad_hands_over_the_pair_and_the_quad_whole() {
1452        let quad = Type::float(Float::F128);
1453        let mut names = Interner::new();
1454        let (mut func, entry, params) = shell(&mut names, &[wide()], &[quad]);
1455        let mut build = Builder::new(&mut func, entry);
1456        let answer = build.unary(Opcode::UIToFP, params[0], quad);
1457        build.ret(&[answer]);
1458
1459        assert!(halves(&mut func, &mut names, &SYSV), "there is a width to split");
1460        let text = printed(&func, &mut names);
1461        assert!(text.contains("@__floatuntitf(%0, %1)"), "two halves go over: {text}");
1462        assert!(text.contains("return %2"), "and one quad comes back: {text}");
1463
1464        let mut names = Interner::new();
1465        let (mut func, entry, params) = shell(&mut names, &[quad], &[wide()]);
1466        let mut build = Builder::new(&mut func, entry);
1467        let answer = build.unary(Opcode::FPToSI, params[0], wide());
1468        build.ret(&[answer]);
1469
1470        assert!(halves(&mut func, &mut names, &SYSV), "there is a width to split");
1471        let text = printed(&func, &mut names);
1472        assert!(text.contains("@__fixtfti(%0)"), "the quad goes over as it is: {text}");
1473        assert!(text.contains("return %1, %2"), "and two halves come back: {text}");
1474    }
1475
1476    /// A conversion at a float width the runtime has no routine for leaves the function alone.
1477    ///
1478    /// `long double` is the eighty bit float on this target and the runtime has no conversion for
1479    /// it, because the back end has no register that holds one, which is tamnd/rucc#326. So the
1480    /// function keeps its wide values and is refused below by name, rather than being turned into a
1481    /// call to a routine nothing defines.
1482    #[test]
1483    fn a_conversion_at_a_width_the_runtime_has_no_routine_for_is_left_alone() {
1484        let long = Type::float(Float::F80);
1485        let mut names = Interner::new();
1486        let (mut func, entry, params) = shell(&mut names, &[wide()], &[long]);
1487        let mut build = Builder::new(&mut func, entry);
1488        let answer = build.unary(Opcode::SIToFP, params[0], long);
1489        build.ret(&[answer]);
1490
1491        assert!(!halves(&mut func, &mut names, &SYSV), "the pass does not understand this one");
1492        let text = printed(&func, &mut names);
1493        assert!(text.contains("i128"), "the width is still there: {text}");
1494    }
1495
1496    /// A shift left moves each half and chooses between the count having crossed a half and not.
1497    ///
1498    /// Two shifts left, one per half, and the low one does for both cases: a count that reached a
1499    /// whole half puts exactly that value in the high half and nothing in the low one, so the only
1500    /// thing the far case needs is the shift the near case already did. Two right shifts carry the
1501    /// crossing bits, two selects pick a half each, and there is no branch anywhere.
1502    #[test]
1503    fn a_shift_left_chooses_between_a_count_that_crossed_a_half_and_one_that_did_not() {
1504        let mut names = Interner::new();
1505        let (mut func, entry, params) = shell(&mut names, &[wide(), wide()], &[wide()]);
1506        let mut build = Builder::new(&mut func, entry);
1507        let moved = build.binary(Opcode::Shl, params[0], params[1], Flags::NONE);
1508        build.ret(&[moved]);
1509
1510        assert!(halves(&mut func, &mut names, &SYSV), "there is a width to split");
1511        let text = printed(&func, &mut names);
1512        assert!(!text.contains("i128"), "nothing that wide is left: {text}");
1513        assert_eq!(
1514            text.matches(" = shl ").count(),
1515            2,
1516            "one per half, and the far case reuses one: {text}"
1517        );
1518        assert_eq!(text.matches(" = select.i64 ").count(), 2, "one choice per half: {text}");
1519        assert_eq!(text.matches(" = lshr ").count(), 2, "the crossing bits, in two steps: {text}");
1520    }
1521
1522    /// The bits that cross move one place and then the rest, so a count of zero carries nothing.
1523    ///
1524    /// Sixty four less a count of zero is sixty four, which is not a distance a sixty four bit shift
1525    /// has. One place first and sixty three less the count after is the same distance everywhere the
1526    /// question is asked, and for a count of zero it moves a value whose top bit has already gone
1527    /// all the way out, which leaves the zero a half that did not move should carry.
1528    #[test]
1529    fn the_bits_that_cross_move_one_place_and_then_the_rest_of_the_way() {
1530        let mut names = Interner::new();
1531        let (mut func, entry, params) = shell(&mut names, &[wide(), wide()], &[wide()]);
1532        let mut build = Builder::new(&mut func, entry);
1533        let moved = build.binary(Opcode::LShr, params[0], params[1], Flags::NONE);
1534        build.ret(&[moved]);
1535
1536        assert!(halves(&mut func, &mut names, &SYSV), "there is a width to split");
1537        let text = printed(&func, &mut names);
1538        assert!(text.contains("iconst.i64 63"), "sixty three is the distance left: {text}");
1539        assert!(text.contains("iconst.i64 1"), "after the one place that comes first: {text}");
1540        assert!(text.contains(" = sub "), "the rest of the way is worked out: {text}");
1541        assert!(
1542            !text.contains("iconst.i64 127"),
1543            "and the count is not masked to the width: {text}"
1544        );
1545    }
1546
1547    /// An arithmetic shift right leaves the sign bit behind where a logical one leaves zeroes.
1548    ///
1549    /// What the two differ in is only the half the count moved out of entirely. A logical shift puts
1550    /// zeroes there, which is a constant already in hand, and an arithmetic one puts the sign bit
1551    /// spread across the half it came from, which is one more shift.
1552    #[test]
1553    fn an_arithmetic_shift_right_leaves_the_sign_bit_where_a_logical_one_leaves_zeroes() {
1554        let mut names = Interner::new();
1555        let (mut func, entry, params) = shell(&mut names, &[wide(), wide()], &[wide()]);
1556        let mut build = Builder::new(&mut func, entry);
1557        let moved = build.binary(Opcode::AShr, params[0], params[1], Flags::NONE);
1558        build.ret(&[moved]);
1559
1560        assert!(halves(&mut func, &mut names, &SYSV), "there is a width to split");
1561        let text = printed(&func, &mut names);
1562        assert!(!text.contains("i128"), "nothing that wide is left: {text}");
1563        // The high half by the count, and the high half by sixty three for the half left empty.
1564        assert_eq!(text.matches(" = ashr ").count(), 2, "the count and the sign: {text}");
1565        assert_eq!(text.matches(" = lshr ").count(), 1, "the low half is not signed: {text}");
1566        assert_eq!(text.matches(" = select.i64 ").count(), 2, "one choice per half: {text}");
1567    }
1568
1569    #[test]
1570    fn a_parameter_with_one_register_left_leaves_the_function_alone() {
1571        let mut names = Interner::new();
1572        let word = Type::int(HALF);
1573        // Five words take five of the six argument registers, so the halves of the sixth
1574        // parameter would be one register and one word of the caller's stack, which is not where
1575        // the convention puts a value this wide.
1576        let params = [word, word, word, word, word, wide()];
1577        let (mut func, entry, values) = shell(&mut names, &params, &[word]);
1578        let mut build = Builder::new(&mut func, entry);
1579        let low = build.unary(Opcode::Trunc, values[5], word);
1580        build.ret(&[low]);
1581        let before = printed(&func, &mut names);
1582
1583        assert!(!halves(&mut func, &mut names, &SYSV), "one of the halves has no register");
1584        assert_eq!(printed(&func, &mut names), before, "so nothing moved");
1585    }
1586
1587    /// The order the function holds its blocks in is not the order they run in.
1588    ///
1589    /// This is what the optimizer produced and `-O0` did not. A block that runs early is made late
1590    /// by whichever pass needed it, so the list the function keeps had a use of a wide value in it
1591    /// before the instruction defining that value, and the walk that asks whether every definition
1592    /// comes first said no and left the whole function alone. Then the selector met an instruction
1593    /// at a width it has no register for and refused the program. The blocks here are made in the
1594    /// order that produces, which is the tail before the middle. tamnd/rucc#1054.
1595    #[test]
1596    fn a_block_made_after_the_one_it_runs_before_is_still_split() {
1597        let mut names = Interner::new();
1598        let (mut func, entry, params) = shell(&mut names, &[wide()], &[wide()]);
1599        let tail = func.create_block();
1600        let middle = func.create_block();
1601        let mut build = Builder::new(&mut func, entry);
1602        build.jump(middle, &[]);
1603        let mut build = Builder::new(&mut func, middle);
1604        let doubled = build.binary(Opcode::Add, params[0], params[0], Flags::NONE);
1605        build.jump(tail, &[]);
1606        let mut build = Builder::new(&mut func, tail);
1607        let again = build.binary(Opcode::Add, doubled, doubled, Flags::NONE);
1608        build.ret(&[again]);
1609
1610        assert!(
1611            halves(&mut func, &mut names, &SYSV),
1612            "the definition runs before the use whatever the list says"
1613        );
1614        let text = printed(&func, &mut names);
1615        assert!(!text.contains("i128"), "nothing that wide is left: {text}");
1616    }
1617
1618    #[test]
1619    fn a_function_with_nothing_that_wide_is_not_touched() {
1620        let mut names = Interner::new();
1621        let word = Type::int(HALF);
1622        let (mut func, entry, params) = shell(&mut names, &[word, word], &[word]);
1623        let mut build = Builder::new(&mut func, entry);
1624        let sum = build.binary(Opcode::Add, params[0], params[1], Flags::NONE);
1625        build.ret(&[sum]);
1626
1627        assert!(!halves(&mut func, &mut names, &SYSV), "there is nothing to split");
1628    }
1629}