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rucc_codegen/
abi.rs

1//! Where a function's arguments already are when it starts running, and where a call puts its own.
2//!
3//! Design: `spec/12-abi-and-runtime.md`.
4//!
5//! This is the one part of the calling convention that is not a lowering rule, and it is worth
6//! saying why, because everything else in this crate is. A rule matches a term and rewrites it,
7//! and which register the third argument arrives in is not a fact about any term: it depends on
8//! the argument's position and on the classification of every argument before it. A pattern has
9//! nowhere to put that. So the arguments are built here, by hand, out of what the convention
10//! says, the same way [`crate::finish`] builds a prologue.
11//!
12//! The classification itself is not here either. `rucc-lower` has already run it by the time a
13//! function reaches this crate, which is why the parameters read here are nearly all plain
14//! scalars: an aggregate has been split into the pieces it travels in, and a return through memory
15//! is an ordinary pointer parameter in front of the rest. What is left for this is the step after
16//! classification, from how a value travels to which register it is actually in, which is
17//! [`rucc_target::Places`].
18//!
19//! The one parameter that is not a scalar is an aggregate the classification put in the argument
20//! area whole, which is [`rucc_ir::Abi::ByVal`]. The IR calls it a pointer, because a pointer is
21//! what an instruction reading it has to have, and the convention says the bytes travel and the
22//! pointer does not. So this is the one place that reads what the classification said rather than
23//! only the type, on both sides of the call, and the two sides are the two halves of one copy.
24//!
25//! # What it writes
26//!
27//! One `x64.arg_val_*` per parameter that arrived in a register, at the top of the entry block,
28//! each defining a fresh register constrained to the one the argument arrived in. They encode to
29//! nothing. The point of them is that a parameter has to be defined somewhere for the allocator to
30//! have anything to move, and the entry block cannot define it as a block parameter: there is no
31//! edge into the entry block for the move to go on, which is what `rucc_regalloc::rewrite` asserts.
32//!
33//! What the allocator does with them is the whole of the argument sequence. A parameter that is
34//! read where it arrived costs nothing, and one that is not gets a copy, which is the same
35//! bargain the return already makes and is decided by the same code.
36//!
37//! A parameter whose bytes travelled is the exception to all of that. Its bytes are already in
38//! this function, at a place in the caller's argument area the same walk gives, so nothing is
39//! brought in at all: what the parameter is is where they are, and that is one `lea`. It waits on
40//! the frame the way the loads below it do, and for the same reason.
41//!
42//! A parameter past the last register arrived in the caller's memory rather than in a register, so
43//! it is a load and not a pseudo, and it is a real instruction that encodes to real bytes. How far
44//! up the caller's argument area it is is a number [`rucc_target::Places`] answers here, but where
45//! that area is from inside this function is a distance into a frame, and no frame exists until
46//! after allocation. So the load is written with nothing in its displacement, which of the two
47//! registers it reads through is left to be settled too, and both are filled in by [`crate::finish`]
48//! out of [`crate::frame::Frame::incoming`]. That is the same bargain an `alloca` already makes,
49//! for the same reason and in the same two places.
50//!
51//! # A call
52//!
53//! The same reasoning the other way round, and one instruction rather than several. `x64.call`
54//! and `x64.call_reg` are the only opcodes in the description whose operand vector is empty
55//! there, because nothing about a call's operands is the same from one call to the next, so they
56//! are built here: one read per argument constrained to the register the convention passes it in,
57//! one definition for the value that comes back constrained to the register it comes back in, and
58//! one definition per register the convention does not preserve.
59//!
60//! A call through an address has one operand more, which is the address, and it is the one
61//! operand of a call that is a fact about the instruction rather than about the signature. It
62//! goes in front of the arguments, because the assembler has to find it and an index into a
63//! vector whose length depends on the convention is not a way of finding anything.
64//!
65//! Those last ones are the clobbers, and they are the whole of what the allocator has to know
66//! about a call besides where the values go. Each is a definition of the physical register itself
67//! rather than of a value, since there is no value: it says the register is written here, which
68//! is exactly what stops the allocator from leaving something in one across the call. A register
69//! an argument or the result already names is not repeated, because naming it once already blocks
70//! it for the length of the instruction, which is all a clobber does.
71//!
72//! An argument past the last register the convention has for it is a store into the outgoing area
73//! rather than an operand of the call, written in front of the call in the same block. Where that
74//! area is does not have to wait for the frame the way the incoming one does, because the outgoing
75//! area is at the bottom of the frame and the bottom of the frame is where the stack pointer is:
76//! that is the whole reason the frame puts it there, since it is where the callee will look. So the
77//! offset [`rucc_target::Places`] gives back is the offset the store is written with.
78//!
79//! An object passed by value in memory is the same thing again and a copy rather than a store. The
80//! caller owes the callee a copy it is free to write to, which is what makes a C call by value
81//! different from passing a pointer the callee must not keep, and the argument area is where the
82//! convention says that copy goes. So the bytes are read out of the object and written into the
83//! area a word at a time, in front of the call, with the words chosen by the same function that
84//! chooses them for a `memcpy`. An object with more words than that unrolls to is turned down,
85//! because the copy it wants is a call to the runtime and one call cannot be built inside another.
86//!
87//! The call still reports how many bytes it needed, because the frame reserves as many as the
88//! widest call in the function asked for and cannot know that until every call has been seen.
89
90use rucc_base::{Interner, Symbol};
91use rucc_ir::{Abi, Param, Type};
92use rucc_mir as mir;
93use rucc_target::x86_64;
94use rucc_target::{CallRegs, Constraint, PhysReg, Places, RegClass, Where};
95
96use crate::varargs::Area;
97
98/// Why a parameter could not be brought in.
99#[derive(Debug, Clone, Copy, PartialEq, Eq)]
100pub enum Missing {
101    /// It travels on the x87 stack, which is a `long double` and nothing else. That stack is a
102    /// third register file, it is not one the allocator has, and no instruction in the
103    /// description touches it.
104    OnX87,
105    /// It is a width no pseudo covers, which is anything a machine register does not hold.
106    Width,
107    /// It is a value that comes back in more registers than the convention returns in. A structure
108    /// of at most sixteen bytes comes back in up to two, which is as many as SysV has, and a
109    /// convention with fewer of them returns such a structure through a hidden pointer instead. So
110    /// this is what a signature the classification did not produce would get.
111    NoRoom,
112    /// It is an object whose bytes travel in the argument area and there are more of them than a
113    /// copy a word at a time is worth. Such a copy belongs in a call to the runtime, and the place
114    /// this is decided is in the middle of building a call, where another one cannot go.
115    TooBig,
116}
117
118impl Missing {
119    /// What it says when a function could not be compiled because of it.
120    ///
121    /// Worded so that it reads the same about a value arriving and a value being passed, since
122    /// the two are the same fact seen from the two ends of one call.
123    #[must_use]
124    pub fn why(self) -> &'static str {
125        match self {
126            Missing::OnX87 => "is on the x87 stack",
127            Missing::Width => "is a width no argument register holds",
128            Missing::NoRoom => "takes more registers than this convention has for it",
129            Missing::TooBig => "is more bytes than a copy into the argument area unrolls to",
130        }
131    }
132}
133
134/// Which register file a value of that type travels in.
135///
136/// The whole of what the two files mean to this module. A float is in the vector one and
137/// everything else is in the general purpose one, which is what both of this machine's conventions
138/// say. A `long double` is in neither and what its register holds is an address, which is a general
139/// purpose value like every other address, so it answers with the other file rather than with the
140/// one its type would suggest.
141fn class_of(ty: Type, conv: &CallRegs) -> RegClass {
142    if ty.is_float() && !on_the_stack(ty) { conv.sse_class } else { conv.int_class }
143}
144
145/// How many bytes of the argument area a value in the vector file takes.
146///
147/// Its own width, lanes included, which is what [`Places::float`] wants and is a number that only
148/// matters to a value the registers ran out before. Everything the machine computes in is a word
149/// or narrower and takes a word either way. The `_Float128` is the one that is not: two words, and
150/// aligned to two words, which is the difference between the argument behind it being placed after
151/// it and being placed on top of half of it.
152pub(crate) fn float_bytes(ty: Type) -> u32 {
153    ty.bits().div_ceil(8).saturating_mul(ty.lanes())
154}
155
156/// Whether a value of that type travels as bytes in the argument area because of what it is.
157///
158/// One type does, and it is the `long double`. SysV classifies it X87 and X87UP, which is the
159/// classification that means memory, so it goes where a structure the classification put in memory
160/// goes and what the two ends pass is the address of the bytes. That is not a decision about
161/// registers running out: a `long double` travels in the argument area when it is the only argument
162/// there is.
163///
164/// Sixteen bytes aligned to sixteen, which is what the psABI says the type takes and is the same
165/// number [`crate::lower`] gives one in the frame, so a value being passed and a value being worked
166/// on are the same shape of object in two places.
167#[must_use]
168pub fn on_the_stack(ty: Type) -> bool {
169    ty.is_float() && ty.is_scalar() && ty.bits() == 80
170}
171
172/// How much room one takes in the argument area, as a size and an alignment.
173pub(crate) const X87_AREA: (u32, u32) = (16, 16);
174
175/// Why a value of that type cannot travel at all, or nothing if it can.
176///
177/// The width question and the file question in one place, so that the two ends of a call give the
178/// same answer about the same type, and so that a `return` this cannot make says the same thing
179/// about a type as the call that would have received it.
180///
181/// A `long double` is not one of them any more when it is an argument, since an argument of that
182/// type travels as bytes and [`on_the_stack`] is what says so before this is asked. What is left
183/// here is the value that comes back, because coming back is the one direction where it is not
184/// bytes: it arrives in `st(0)`, which is a register file this cannot name.
185#[must_use]
186pub fn refuses(ty: Type) -> Option<Missing> {
187    if head_of(ty).is_some() {
188        return None;
189    }
190    // A `long double` is the one type here that is in neither of the two files. Saying so is worth
191    // more than calling it a width, because eighty bits is a width this machine computes in and
192    // the file it computes in is what actually stands in the way.
193    if on_the_stack(ty) {
194        return Some(Missing::OnX87);
195    }
196    Some(Missing::Width)
197}
198
199/// What a function's parameters came to.
200#[derive(Debug, Default, Clone, PartialEq, Eq)]
201pub struct Arrived {
202    /// The register each parameter is in, in the order the parameters were given, so the caller can
203    /// bind each IR parameter to the one at its position.
204    pub regs: Vec<mir::Reg>,
205    /// The loads that read a parameter out of the caller's argument area, and how far up that area
206    /// each of them reads.
207    ///
208    /// Empty for almost every function, because almost every function has few enough parameters to
209    /// have been handed all of them in registers. The distance is from the bottom of the caller's
210    /// argument area, which is somewhere [`crate::finish`] works out and this cannot.
211    pub stack: Vec<(mir::Inst, u32)>,
212    /// How many general purpose argument registers the parameters took, and how many vector ones.
213    ///
214    /// Nothing about an ordinary function needs this. A variadic one does: the first argument its
215    /// signature does not name is the one after the last it does, so where each of the two walks
216    /// stopped is where `va_start` has to say the next argument begins.
217    pub took: (usize, usize),
218    /// How far up the caller's argument area the first argument the signature does not name is.
219    ///
220    /// However much of that area the named parameters took, on a convention that counts the two
221    /// register files apart, because there the area holds only the arguments no register was left
222    /// for. On one that counts them as one run it is not the same number: that area begins with the
223    /// shadow space the caller reserved, every argument owns one word of it whether it also arrived
224    /// in a register or not, and the named ones own the first few of those words. So it is where
225    /// the walk over the registers stopped, which is a position rather than a size, until the named
226    /// parameters have used every register and the two agree again.
227    pub beyond: u32,
228    /// The argument registers left over for the arguments the signature does not name, as the
229    /// register each was bound into and how far up the save area its slot is.
230    ///
231    /// Empty unless a save area was asked for. The ones a named parameter took are not here,
232    /// because their slots are behind where `va_start` sets the two offsets and nothing ever reads
233    /// them, so writing them would be fourteen stores where six are wanted.
234    pub spare: Vec<(mir::Reg, RegClass, u32)>,
235}
236
237/// Binds a function's parameters to where the convention says they arrive.
238///
239/// # Errors
240///
241/// The first parameter this cannot bring in, and why. A function with one is reported rather
242/// than compiled, because the alternative is a function that reads an argument from wherever the
243/// last one happened to leave a register.
244pub fn entry(
245    out: &mut mir::Func,
246    block: mir::Block,
247    params: &[Param],
248    conv: &CallRegs,
249    names: &mut Interner,
250    save: Option<Area>,
251) -> Result<Arrived, (usize, Missing)> {
252    // Where everything is, worked out before anything is written, both so that a parameter this
253    // cannot bring in stops the function before half of one is built and so that the two loops
254    // below can be two loops. Asking for the place of a parameter that cannot be brought in is
255    // still done, because every place after it depends on it and a reader stepping through this
256    // should see the same numbers a working version would.
257    let mut places = Places::new(conv);
258    let mut where_from = Vec::with_capacity(params.len());
259    for (index, &Param { ty, abi }) in params.iter().enumerate() {
260        // A structure the classification put in the argument area arrived as bytes, and the
261        // parameter the IR sees is a pointer to them. So there is nothing to bring in: the bytes
262        // are already in this function's frame, and what the pointer holds is where they are.
263        if let Abi::ByVal { size, align } = abi {
264            let size = u32::try_from(size).map_err(|_| (index, Missing::TooBig))?;
265            where_from.push((ty, places.on_stack(size, align), abi));
266            continue;
267        }
268        // And an eighty bit float, which arrives the same way for the same reason and is told
269        // apart only by the classification having said nothing about it: the front end passes it
270        // as a value of its own type, and it is this that knows the type is one that travels as
271        // bytes. What arrives is the address of those bytes, which is what an object in the
272        // argument area always hands over.
273        if on_the_stack(ty) {
274            let (size, align) = X87_AREA;
275            where_from.push((
276                ty,
277                places.on_stack(size, align),
278                Abi::ByVal { size: size.into(), align },
279            ));
280            continue;
281        }
282        let at = if ty.is_float() { places.float(float_bytes(ty)) } else { places.integer() };
283        if let Some(missing) = refuses(ty) {
284            return Err((index, missing));
285        }
286        where_from.push((ty, at, abi));
287    }
288    let took = (places.integers(), places.floats());
289    // Where the first argument the signature does not name is, which is the two sentences on
290    // [`Arrived::beyond`] written out. The run of words is contiguous from the bottom of the area on
291    // a convention that homes its register arguments, so a position multiplied by a word is the
292    // answer there until the positions run out and the named parameters start taking room of their
293    // own, at which point what they took is the answer again.
294    let reached = took.0 + took.1;
295    let beyond = match conv.shared_positions && reached < conv.int_args.len() {
296        true => conv.word * u32::try_from(reached).unwrap_or(0),
297        false => places.size(),
298    };
299    let mut arrived =
300        Arrived { regs: Vec::with_capacity(params.len()), took, beyond, ..Arrived::default() };
301
302    // Every pseudo first and everything else after, which is not a preference. A pseudo says a
303    // register holds an argument and defines nothing before it, so as far as the allocator can see
304    // the register was dead until then and is free to be used as a scratch. That is true of a
305    // register no pseudo has named yet, and it stops being true the moment one does. Anything that
306    // needs a scratch has to come after all of them, and a load out of the caller's stack needs one
307    // for the value it loads.
308    for (index, &(ty, at, _)) in where_from.iter().enumerate() {
309        let class = class_of(ty, conv);
310        let reg = out.new_vreg(class);
311        arrived.regs.push(reg);
312        let Where::Reg(arrived_in) = at else { continue };
313        let head = head_of(ty).ok_or((index, Missing::Width))?;
314        let opcode = mir::Opcode::new(names.intern(head));
315        let operand = mir::Operand::write(reg, class).with(Constraint::Fixed(arrived_in));
316        out.build(block, opcode).operand(operand).finish();
317    }
318    if let Some(area) = save {
319        arrived.spare = spare(out, block, conv, names, area, arrived.took);
320    }
321
322    let lea = format!("{}{}", crate::lower::PREFIX, x86_64::FRAME.lea);
323    // The stack pointer is written down as the register to read through because it is the one that
324    // reaches the caller's stack in almost every function, and a realigned frame is the exception
325    // that [`crate::finish`] rewrites. Putting something here rather than nothing keeps the
326    // instruction printable and verifiable in between.
327    for (index, &(ty, at, abi)) in where_from.iter().enumerate() {
328        let Where::Stack(up) = at else { continue };
329        let class = class_of(ty, conv);
330        // The bytes of an object that travelled as bytes are read by whatever reads the parameter,
331        // and what the parameter is is their address, so this takes the address rather than a
332        // value out of it. Everything else about it is the load's, including the two fields
333        // [`crate::finish`] fills in, because where the caller's argument area is is the same
334        // question for both.
335        let name = match abi {
336            Abi::ByVal { .. } => lea.as_str(),
337            _ => load_of(ty).ok_or((index, Missing::Width))?,
338        };
339        let opcode = mir::Opcode::new(names.intern(name));
340        let sp = mir::Operand::read(mir::Reg::physical(conv.stack_pointer), conv.int_class);
341        let made =
342            out.build(block, opcode).def(arrived.regs[index], class).mem(mir::Mem::at(sp)).finish();
343        arrived.stack.push((made, up));
344    }
345    Ok(arrived)
346}
347
348/// Binds the argument registers no parameter the signature names took, which are the ones the
349/// arguments it does not name arrived in.
350///
351/// One pseudo each and nothing else, for the reason the loop above them gives: what these do is say
352/// the register holds something, and the stores that put it in the save area are written by
353/// [`crate::lower`] once it has an address to store to, which is after every pseudo in the block.
354///
355/// Where each file's walk stopped is the file's own count on a convention that keeps two, and the
356/// sum of both on one that counts the files as a single run of positions, since there an argument
357/// of either kind steps the one counter. A file the area holds no slots of is skipped entirely,
358/// which is the vector file on the second kind: a variadic float travels in the general purpose
359/// register at its position as well, so the copy the walk reads is already the one being spilled.
360fn spare(
361    out: &mut mir::Func,
362    block: mir::Block,
363    conv: &CallRegs,
364    names: &mut Interner,
365    area: Area,
366    took: (usize, usize),
367) -> Vec<(mir::Reg, RegClass, u32)> {
368    let word = Type::int(64);
369    let double = Type::float(rucc_ir::Float::F64);
370    let reached = |own: usize| if conv.shared_positions { took.0 + took.1 } else { own };
371    let files = [
372        (conv.int_args, reached(took.0), word, false),
373        (conv.sse_args, reached(took.1), double, true),
374    ];
375    let mut spare = Vec::new();
376    for (regs, taken, ty, float) in files {
377        let held = usize::try_from(area.holds(float)).unwrap_or(0);
378        let Some(head) = head_of(ty) else { continue };
379        let class = class_of(ty, conv);
380        for (index, &arrived_in) in regs.iter().enumerate().take(held).skip(taken) {
381            let reg = out.new_vreg(class);
382            let opcode = mir::Opcode::new(names.intern(head));
383            let operand = mir::Operand::write(reg, class).with(Constraint::Fixed(arrived_in));
384            out.build(block, opcode).operand(operand).finish();
385            let at = area.starts_at(float) + area.stride(float) * u32::try_from(index).unwrap_or(0);
386            spare.push((reg, class, at));
387        }
388    }
389    spare
390}
391
392/// What the instruction that calls a name is called.
393///
394/// Here rather than in a rule for the same reason the arguments are: a rule pattern sees one term
395/// and a call's operands are whatever the signature made them, so no pattern could name them.
396pub const CALL: &str = "x64.call";
397
398/// What the instruction that calls an address in a register is called.
399///
400/// A different instruction rather than the same one with a different operand, which is what the
401/// machine says too: one carries the distance to somewhere in the program and takes a relocation,
402/// and the other carries the register the address is in and takes none. Sharing an opcode would
403/// mean an instruction whose bytes depend on whether a field beside it happens to be set.
404pub const CALL_REG: &str = "x64.call_reg";
405
406/// One value a call passes.
407#[derive(Debug, Clone, Copy, PartialEq, Eq)]
408pub struct Passing {
409    /// The type it travels as, which for an object travelling as bytes is the pointer's rather
410    /// than the object's, because the pointer is what the machine IR has.
411    pub ty: Type,
412    /// The register holding it, or holding its address when the bytes are what travel.
413    pub reg: mir::Reg,
414    /// What the classification asked of it. The one thing read here is whether the object behind
415    /// the pointer is the argument, since everything else it can say is about a value that is
416    /// already in a register in the form it travels in.
417    pub abi: Abi,
418}
419
420/// What one call came to.
421#[derive(Debug, Clone, PartialEq, Eq)]
422pub struct Made {
423    /// The registers the value came back in, in the order the signature returns them, which is
424    /// empty for a call that gives nothing back and holds two for a structure that comes back in a
425    /// pair. Which register each of them is is the classification's answer and is worked out here
426    /// rather than in a table, for the reason the second half of [`Calling::returns`] gives.
427    pub results: Vec<mir::Reg>,
428    /// How many bytes below the stack pointer this call needs for the arguments it passes there.
429    ///
430    /// Not always zero for a call that passes everything in registers: a Windows caller reserves
431    /// thirty two bytes for the callee to spill its register arguments into whether it uses them
432    /// or not, and that reservation is this.
433    pub outgoing: u32,
434}
435
436/// Which of a call's values could not be passed, and why.
437#[derive(Debug, Clone, Copy, PartialEq, Eq)]
438pub struct Refused {
439    /// Its position among the arguments, or `None` for the value that comes back.
440    pub argument: Option<usize>,
441    /// What is wrong with where it travels.
442    pub missing: Missing,
443}
444
445/// What a call goes to.
446///
447/// The whole of the difference between the two calls. Everything else about them, which is what
448/// they pass and what comes back and which registers they destroy, is the signature's answer and
449/// is the same answer either way.
450#[derive(Debug, Clone, Copy, PartialEq, Eq)]
451pub enum Callee {
452    /// A name, which the linker resolves.
453    Named(Symbol),
454    /// An address in a register, which nothing resolves because there is nothing to resolve: the
455    /// value is not known until the program runs.
456    ///
457    /// The register is unconstrained, and it has to be, because every register the convention
458    /// does not preserve is one this instruction writes and every register an argument travels in
459    /// is spoken for. What is left is the registers the callee has to put back, which is where
460    /// the allocator will put the address, and it is the right answer for the same reason it is
461    /// the only one.
462    Through(mir::Reg),
463}
464
465/// One call, as everything about it that is not the function it is being built into.
466#[derive(Debug, Clone, Copy)]
467pub struct Calling<'a> {
468    /// What it calls.
469    pub callee: Callee,
470    /// What it passes, in the order the signature holds them, which is the order the convention
471    /// places them in.
472    pub args: &'a [Passing],
473    /// What comes back, which is empty for a call that gives nothing back, one type for a value,
474    /// and two for a structure small enough to come back in a pair of registers.
475    ///
476    /// A pair is placed here rather than named by a rule for the reason the arguments are: which
477    /// register each half goes in depends on the halves before it, since the two files are walked
478    /// separately, and a pattern over a term cannot see them.
479    pub returns: &'a [Type],
480    /// Whether the callee takes arguments beyond the ones its signature names, which is what says
481    /// whether it reads the count of vector registers the call passed arguments in.
482    pub variadic: bool,
483    /// How many of the arguments the signature does name, so that the ones past it can be told
484    /// apart from the ones before it.
485    ///
486    /// A convention that passes a variadic float in both register files needs that, because which
487    /// arguments get the second copy is exactly the ones the callee has no prototype for. Every
488    /// other convention treats the two the same and never asks.
489    pub named: usize,
490}
491
492/// Builds one call: what it passes, what comes back, and what it destroys.
493///
494/// # Errors
495///
496/// The first value this cannot pass, and why, before anything is written. A call with one is
497/// reported rather than compiled, because the alternative is a call that leaves an argument
498/// wherever the last one happened to put a register.
499///
500/// # Panics
501///
502/// If a call passes two gigabytes of arguments on the stack, which is a distance no offset in a
503/// frame can hold and a call no program makes.
504pub fn call(
505    out: &mut mir::Func,
506    block: mir::Block,
507    made: &Calling<'_>,
508    conv: &CallRegs,
509    names: &mut Interner,
510) -> Result<Made, Refused> {
511    let &Calling { callee, args, returns, variadic, named } = made;
512    // Where everything goes, worked out before anything is built, so that a call this cannot make
513    // leaves no half of one behind.
514    let mut places = Places::new(conv);
515    let mut passed = Vec::with_capacity(args.len());
516    // The ones with no register left for them, as the store each of them becomes and how far up
517    // the outgoing area it writes. Almost always empty.
518    let mut on_stack = Vec::new();
519    // How many of them went in vector registers, which is what a SysV variadic callee is told.
520    let mut vectors = 0u32;
521    // The ones whose bytes travel rather than their address, as the register that address is in,
522    // how far up the outgoing area they go and which words the copy is made of. Almost always
523    // empty too, and never at the same time as a register: an object in the argument area is in
524    // the argument area whatever is left of the register files.
525    let mut as_bytes = Vec::new();
526    // The arguments beyond the ones the signature names that travel in a vector register and have
527    // to travel in a general purpose one at the same time, as the register each is in and the
528    // general purpose register its copy belongs in. Empty on every convention but the one that says
529    // so, and on that one this is what makes `printf("%f", x)` read the right register.
530    let mut in_both = Vec::new();
531    // Which argument position the next one that gets a register is at, which is only the same as
532    // the index when nothing ahead of it went to memory. A convention that counts the two register
533    // files as one run is what needs it: the general purpose register a variadic float's second
534    // copy goes in is the one at that position.
535    let mut position = 0usize;
536    for (index, &Passing { ty, reg, abi }) in args.iter().enumerate() {
537        let refused = |missing| Refused { argument: Some(index), missing };
538        // An eighty bit float is bytes in the argument area whatever the classification said, for
539        // the reason [`on_the_stack`] gives, and the register holding it holds their address. So it
540        // joins the objects below rather than being a case of its own, and the copy it becomes is
541        // the copy any other sixteen byte object gets.
542        let abi = match abi {
543            _ if on_the_stack(ty) => {
544                let (size, align) = X87_AREA;
545                Abi::ByVal { size: size.into(), align }
546            }
547            abi => abi,
548        };
549        if let Abi::ByVal { size, align } = abi {
550            let size = u32::try_from(size).map_err(|_| refused(Missing::TooBig))?;
551            let Where::Stack(up) = places.on_stack(size, align) else {
552                unreachable!("an object in the argument area is in the argument area")
553            };
554            let plan = crate::expand::plan(u64::from(size), align, conv.word)
555                .ok_or(refused(Missing::TooBig))?;
556            as_bytes.push((reg, up, plan));
557            continue;
558        }
559        let at = if ty.is_float() { places.float(float_bytes(ty)) } else { places.integer() };
560        if let Some(missing) = refuses(ty) {
561            return Err(refused(missing));
562        }
563        let class = class_of(ty, conv);
564        match at {
565            Where::Reg(at) => {
566                // Only a register counts, because the count is of registers. An argument that went
567                // to memory is one the callee reads from memory whatever this says.
568                if class == conv.sse_class {
569                    vectors += 1;
570                    // Windows passes a float the callee has no prototype for in the vector register
571                    // and in the general purpose register at the same position, both at once,
572                    // because the callee has no way to know which file to look in and its walk over
573                    // the arguments reads the second one. An argument the signature does name needs
574                    // no second copy, since the callee's parameter says where it is.
575                    let both = conv.shared_positions && variadic && index >= named;
576                    if let Some(&also) = conv.int_args.get(position).filter(|_| both) {
577                        in_both.push((reg, also));
578                    }
579                }
580                passed.push((reg, at, class));
581                position += 1;
582            }
583            Where::Stack(up) => {
584                let store = store_of(ty).ok_or(refused(Missing::Width))?;
585                on_stack.push((reg, class, names.intern(store), up));
586            }
587        }
588    }
589    // A `long double` comes back in `st(0)`, which is not a register in either file and not one
590    // this call can be said to write. So nothing is placed for it and nothing is constrained, and
591    // the call gives back no register at all: what takes the value off that stack is the `fstp`
592    // [`crate::lower`] writes straight after the call, which is the same shape every other use of
593    // the x87 stack is written in. Only on its own, because a value that comes back beside another
594    // one comes back in a pair of registers and there is no pair with that stack in it.
595    let comes_back = if matches!(returns, [ty] if on_the_stack(*ty)) {
596        Vec::new()
597    } else {
598        places_back(returns, conv)?
599    };
600
601    // A variadic callee on SysV reads how many vector registers the call passed arguments in and
602    // skips saving them when the answer is none, which is what makes `printf` with no floating
603    // point argument cheap. It is an obligation rather than an optimization: leaving whatever was
604    // in the register there makes the callee save a register file it was not given, and a count
605    // that is too low makes it read an argument out of a register nothing put one in.
606    let counted = if variadic { conv.vector_count } else { None };
607
608    // The arguments that go to memory go there now, in front of the call and after everything this
609    // could have refused, so that a call it cannot make leaves no store behind either. The offset
610    // is written straight in rather than left for [`crate::finish`]: the outgoing area is at the
611    // bottom of the frame because that is where the callee looks for it, and the bottom of the
612    // frame is where the stack pointer already is.
613    for (reg, class, store, up) in on_stack {
614        let sp = mir::Operand::read(mir::Reg::physical(conv.stack_pointer), conv.int_class);
615        let up = i32::try_from(up).expect("an argument area under two gigabytes");
616        let build = out.build(block, mir::Opcode::new(store));
617        build.uses(reg, class).mem(mir::Mem::at(sp).plus(up)).finish();
618    }
619
620    // And the objects whose bytes go there, as a load and a store for each word of each of them.
621    // This is the copy the caller owes a callee that takes a structure by value: the callee is
622    // free to write to what it was handed, so what it was handed cannot be the caller's own copy,
623    // and the argument area is where the convention says the caller's copy goes. The words are the
624    // same words `crate::expand` would have chosen for a `memcpy` of the same block, because they
625    // are chosen by the same function.
626    for (from, up, plan) in as_bytes {
627        let up = i32::try_from(up).expect("an argument area under two gigabytes");
628        for (at, width) in plan {
629            let ty = Type::int(width * 8);
630            let at = i32::try_from(at).expect("an object under two gigabytes");
631            let word = out.new_vreg(conv.int_class);
632            let load = names
633                .intern(load_of(ty).ok_or(Refused { argument: None, missing: Missing::Width })?);
634            let there = mir::Operand::read(from, conv.int_class);
635            let build = out.build(block, mir::Opcode::new(load));
636            build.def(word, conv.int_class).mem(mir::Mem::at(there).plus(at)).finish();
637            let store = names
638                .intern(store_of(ty).ok_or(Refused { argument: None, missing: Missing::Width })?);
639            let sp = mir::Operand::read(mir::Reg::physical(conv.stack_pointer), conv.int_class);
640            let build = out.build(block, mir::Opcode::new(store));
641            build.uses(word, conv.int_class).mem(mir::Mem::at(sp).plus(up + at)).finish();
642        }
643    }
644
645    // And the second copy of each float the callee has no prototype for, which is one `movq` out of
646    // the vector register it is already in. What the callee reads out of the general purpose
647    // register is the sixty four bits and not a value of any type, so the bits are what move, and
648    // the copy joins the arguments rather than being a thing of its own: it is passed in a register
649    // the convention names, which is what every other argument here is.
650    for (from, into) in in_both {
651        let word = out.new_vreg(conv.int_class);
652        let movq = mir::Opcode::new(names.intern("x64.movq_from_xmm"));
653        out.build(block, movq).def(word, conv.int_class).uses(from, conv.sse_class).finish();
654        passed.push((word, into, conv.int_class));
655    }
656
657    // The definitions first and the reads after, which is the order every operand vector in the
658    // machine IR is in and the order `rucc_mir::defs` counts.
659    let mut operands = Vec::with_capacity(args.len() + conv.int_order.len() + 2);
660    let results: Vec<mir::Reg> = comes_back
661        .iter()
662        .map(|&(at, class)| {
663            let reg = out.new_vreg(class);
664            operands.push(mir::Operand::write(reg, class).with(Constraint::Fixed(at)));
665            reg
666        })
667        .collect();
668    // One list per file, because a physical register is a number and the class is what says which
669    // file it is a number in. One list would have `xmm0` blocking `rax`.
670    let spoken_for = |class: RegClass| -> Vec<PhysReg> {
671        comes_back
672            .iter()
673            .filter(|&&(_, at)| at == class)
674            .map(|&(reg, _)| reg)
675            .chain(counted.filter(|_| class == conv.int_class))
676            .chain(passed.iter().filter(|&&(_, _, at)| at == class).map(|&(_, reg, _)| reg))
677            .collect()
678    };
679    let named = spoken_for(conv.int_class);
680    for &reg in conv.int_order {
681        if !conv.preserves_int(reg) && !named.contains(&reg) {
682            operands.push(mir::Operand::write(mir::Reg::physical(reg), conv.int_class));
683        }
684    }
685    let named = spoken_for(conv.sse_class);
686    for &reg in conv.sse_order {
687        if !conv.preserves_sse(reg) && !named.contains(&reg) {
688            operands.push(mir::Operand::write(mir::Reg::physical(reg), conv.sse_class));
689        }
690    }
691    // The address in front of the arguments, because a call through one is written with the
692    // register it goes through and nothing in the operand vector is at a place a table could name.
693    // First read is a place that does not depend on the signature, which is what
694    // [`rucc_target::x86_64::Arg::Through`] is written against.
695    if let Callee::Through(reg) = callee {
696        operands.push(mir::Operand::read(reg, conv.int_class));
697    }
698    for (reg, at, class) in passed {
699        operands.push(mir::Operand::read(reg, class).with(Constraint::Fixed(at)));
700    }
701    if let Some(at) = counted {
702        let count = out.new_vreg(conv.int_class);
703        let zero = mir::Opcode::new(names.intern("x64.mov_ri_32"));
704        out.build(block, zero).def(count, conv.int_class).imm(i64::from(vectors)).finish();
705        operands.push(mir::Operand::read(count, conv.int_class).with(Constraint::Fixed(at)));
706    }
707
708    let opcode = mir::Opcode::new(names.intern(match callee {
709        Callee::Named(_) => CALL,
710        Callee::Through(_) => CALL_REG,
711    }));
712    let mut build = out.build(block, opcode);
713    if let Callee::Named(symbol) = callee {
714        build = build.symbol(symbol);
715    }
716    for operand in operands {
717        build = build.operand(operand);
718    }
719    build.finish();
720    Ok(Made { results, outgoing: places.size() })
721}
722
723/// Which register each value comes back in, walked the way the arguments are.
724///
725/// The two files are counted separately, because a structure of a `double` and a `long` comes back
726/// with the `double` in the first vector register and the `long` in the first integer one, and a
727/// single count would put the second half one place further along a list it is not on.
728///
729/// # Errors
730///
731/// The first value that cannot come back at all, and why, so that a call this cannot make leaves
732/// nothing behind. Nothing here reports which value it was, because the caller has one answer for
733/// all of them: the value that comes back is not an argument and has no position among them.
734fn places_back(returns: &[Type], conv: &CallRegs) -> Result<Vec<(PhysReg, RegClass)>, Refused> {
735    let refused = |missing| Refused { argument: None, missing };
736    let mut back = Vec::with_capacity(returns.len());
737    let (mut ints, mut sses) = (0usize, 0usize);
738    for &ty in returns {
739        if let Some(missing) = refuses(ty) {
740            return Err(refused(missing));
741        }
742        let class = class_of(ty, conv);
743        let (file, at) = if class == conv.sse_class {
744            (conv.sse_returns, &mut sses)
745        } else {
746            (conv.int_returns, &mut ints)
747        };
748        let reg = *file.get(*at).ok_or_else(|| refused(Missing::NoRoom))?;
749        *at += 1;
750        back.push((reg, class));
751    }
752    Ok(back)
753}
754
755/// Which of the four widths a value travels at, where a truth value travels as the byte it lives
756/// in.
757///
758/// [`crate::term::slot`] is the question the rule set asks and it answers nothing for one bit,
759/// because there is no register of that width and so no instruction written at it. A convention
760/// asks a different question. It has nothing narrower than a byte to put an argument in either,
761/// and what it says about the one type that is a bit is that the byte holding it is the argument,
762/// with the seven bits above unspecified. So the two lists differ by exactly this entry.
763///
764/// It is written here and not in [`crate::term::slot`] because moving it there would tell the rule
765/// set that one bit is a byte, and then every byte rule in the file would match a term that is not
766/// one. What the convention needs is narrower: a name for the register an argument arrives in, and
767/// that name says a width because a listing is easier to read when it does.
768fn place(ty: Type) -> Option<usize> {
769    if crate::term::is_bit(ty) { Some(0) } else { crate::term::slot(ty) }
770}
771
772/// What the pseudo for an argument of that type is called.
773///
774/// The width is in the name for the same reason it is in every other opcode here: it is what the
775/// instruction is about. Nothing encodes it, so nothing depends on it being right, but a listing
776/// that says an argument arrived and does not say how much of it did is a listing worth less.
777///
778/// Which widths there are is `place` above, and not a list of its own, because it has to be the
779/// same list the three below use. An argument brought in at a width nothing downstream has a name
780/// for is a register nothing could then read, and a width the others cover that this refuses is a
781/// function turned away for no reason. Asking one question in one place is what keeps the four
782/// answers from drifting, and an address is what they used to disagree about.
783#[must_use]
784pub fn head_of(ty: Type) -> Option<&'static str> {
785    // The format that fills a whole vector register, which travels in one of them: the psABI
786    // classifies it SSE and SSEUP, and those two eightbytes are the one register the pair names
787    // rather than two registers.
788    if crate::term::is_quad(ty) {
789        return Some("x64.arg_val_f128");
790    }
791    if let Some(at) = crate::term::float_slot(ty) {
792        return Some(["x64.arg_val_f32", "x64.arg_val_f64"][at]);
793    }
794    let names = ["x64.arg_val_8", "x64.arg_val_16", "x64.arg_val_32", "x64.arg_val_64"];
795    Some(names[place(ty)?])
796}
797
798/// What the instruction that reads an argument of that type out of memory is called.
799///
800/// Keyed off the same two questions [`head_of`] asks and answering for the same set of types, so
801/// that a parameter this compiler can bring in from a register is one it can bring in from the
802/// caller's stack as well. A width one of them covered and the other did not would be a function
803/// turned away for where its sixth argument happened to land.
804///
805/// Reading a narrow argument at its own width and not at a word is deliberate. The caller wrote a
806/// whole word, but what it put in the part above the value is not something the convention says, so
807/// the bits this reads are exactly the bits that mean anything. That is the same thing an argument
808/// arriving in a register gets: `x64.arg_val_8` says the low byte of that register is the argument
809/// and says nothing at all about the rest of it.
810#[must_use]
811pub fn load_of(ty: Type) -> Option<&'static str> {
812    // Sixteen bytes, which is the whole register and is also the whole value, so the instruction
813    // a spill uses and the instruction an argument uses are the same one here. They are two
814    // different instructions at the two narrower formats because there the value is part of the
815    // register, and at this format there is no part of it to leave behind.
816    if crate::term::is_quad(ty) {
817        return Some("x64.movaps_rm");
818    }
819    if let Some(at) = crate::term::float_slot(ty) {
820        return Some(["x64.movss_rm", "x64.movsd_rm"][at]);
821    }
822    let names = ["x64.mov_rm_8", "x64.mov_rm_16", "x64.mov_rm_32", "x64.mov_rm_64"];
823    Some(names[place(ty)?])
824}
825
826/// What the instruction that writes an argument of that type into memory is called.
827///
828/// The mirror of [`load_of`], keyed off the same two questions and answering for the same set of
829/// types, so that the two ends of one call agree about what travels. A type a callee can read out
830/// of the argument area and a caller cannot write into it would be a call turned away for a reason
831/// the function it calls does not have.
832///
833/// Writing a narrow argument at its own width leaves whatever was already in the rest of the word.
834/// That is allowed, and it is what [`load_of`] is written against: the convention does not say what
835/// is above the value, so the callee reads only the bits that mean anything and neither end has to
836/// agree about the rest.
837#[must_use]
838pub fn store_of(ty: Type) -> Option<&'static str> {
839    if crate::term::is_quad(ty) {
840        return Some("x64.movaps_mr");
841    }
842    if let Some(at) = crate::term::float_slot(ty) {
843        return Some(["x64.movss_mr", "x64.movsd_mr"][at]);
844    }
845    let names = ["x64.mov_mr_8", "x64.mov_mr_16", "x64.mov_mr_32", "x64.mov_mr_64"];
846    Some(names[place(ty)?])
847}
848
849/// What the instruction that leaves a returned value in its register is called, for the value at
850/// that place in its own register file.
851///
852/// Keyed off the same two questions [`head_of`] asks, so a type this can give back is a type it can
853/// take in. The place is the one a call counted to when it laid the return out, which is per file
854/// rather than over the whole list: a structure of a `double` and a `long` gives both of them back
855/// at place zero.
856///
857/// The register itself is not here. It is in the operand table in `rucc_target::x86_64`, which is
858/// where the first one has always been, and the two names below are how a value says which of the
859/// two it is. A convention with more than two registers to come back in would need more names, and
860/// there is none, which is what the `None` at the end is about.
861#[must_use]
862pub fn ret_of(ty: Type, at: usize) -> Option<&'static str> {
863    if crate::term::is_quad(ty) {
864        return Some(*["x64.ret_val_f128", "x64.ret_val2_f128"].get(at)?);
865    }
866    if let Some(width) = crate::term::float_slot(ty) {
867        let names =
868            [["x64.ret_val_f32", "x64.ret_val_f64"], ["x64.ret_val2_f32", "x64.ret_val2_f64"]];
869        return Some(names.get(at)?[width]);
870    }
871    let names = [
872        ["x64.ret_val_8", "x64.ret_val_16", "x64.ret_val_32", "x64.ret_val_64"],
873        ["x64.ret_val2_8", "x64.ret_val2_16", "x64.ret_val2_32", "x64.ret_val2_64"],
874    ];
875    Some(names.get(at)?[place(ty)?])
876}
877
878#[cfg(test)]
879mod tests {
880    use rucc_target::x86_64::{REGS, SYSV, WIN64};
881
882    use super::*;
883
884    /// Those types as parameters that travel as the values they are, which is every one of them
885    /// that is not a structure the classification put in the argument area.
886    fn plain(params: &[Type]) -> Vec<Param> {
887        params.iter().copied().map(Param::new).collect()
888    }
889
890    /// The parameters of a function under a convention, as machine IR text.
891    fn bind(params: &[Type], conv: &CallRegs) -> String {
892        let mut names = Interner::new();
893        let mut out = mir::Func::new(names.intern("f"));
894        let block = out.create_block();
895        entry(&mut out, block, &plain(params), conv, &mut names, None)
896            .expect("every parameter arrives");
897        mir::print_func(&out, &names, &REGS)
898    }
899
900    #[test]
901    fn the_first_arguments_arrive_where_the_convention_puts_them() {
902        let i32 = Type::int(32);
903        assert_eq!(
904            bind(&[i32, i32, Type::int(64)], &SYSV),
905            "mfunc @f {\nblock0:\n    %0:gpr($rdi) = x64.arg_val_32\n    \
906             %1:gpr($rsi) = x64.arg_val_32\n    %2:gpr($rdx) = x64.arg_val_64\n}\n"
907        );
908    }
909
910    #[test]
911    fn the_other_convention_puts_the_same_arguments_somewhere_else() {
912        // The first argument is in `rcx` here and in `rdi` above, which is the difference that
913        // makes a SysV binary calling a Windows one read the wrong value rather than fail.
914        let i64 = Type::int(64);
915        assert_eq!(
916            bind(&[i64, i64], &WIN64),
917            "mfunc @f {\nblock0:\n    %0:gpr($rcx) = x64.arg_val_64\n    \
918             %1:gpr($rdx) = x64.arg_val_64\n}\n"
919        );
920    }
921
922    /// The parameters of a function under a convention, and what each of the ones that arrived in
923    /// memory is waiting on.
924    fn arrive(params: &[Type], conv: &CallRegs) -> (String, Vec<u32>) {
925        let mut names = Interner::new();
926        let mut out = mir::Func::new(names.intern("f"));
927        let block = out.create_block();
928        let arrived = entry(&mut out, block, &plain(params), conv, &mut names, None)
929            .expect("every parameter");
930        let up = arrived.stack.iter().map(|&(_, up)| up).collect();
931        (mir::print_func(&out, &names, &REGS), up)
932    }
933
934    #[test]
935    fn an_argument_past_the_last_register_is_read_out_of_the_caller_s_stack() {
936        let (text, up) = arrive(&[Type::int(64); 7], &SYSV);
937
938        // Six of them got registers and the seventh did not, so the seventh is a load rather than
939        // a pseudo. It reads through the stack pointer with nothing in its displacement, because
940        // where the caller's argument area is from in here is a distance into a frame that does
941        // not exist yet, and it is at the bottom of that area because it is the first one in it.
942        assert_eq!(up, [0]);
943        assert!(text.contains("%6:gpr = x64.mov_rm_64 [$rsp]"), "{text}");
944        assert_eq!(text.matches("x64.arg_val_64").count(), 6, "{text}");
945    }
946
947    #[test]
948    fn the_other_convention_runs_out_of_registers_three_arguments_earlier() {
949        let (text, up) = arrive(&[Type::int(64); 7], &WIN64);
950
951        // Windows passes four integers in registers and reserves thirty two bytes below the call
952        // whether they are used or not, so the fifth argument is not at the bottom of the argument
953        // area but above the shadow space, and the three after it follow it a word at a time.
954        assert_eq!(up, [32, 40, 48]);
955        assert_eq!(text.matches("x64.arg_val_64").count(), 4, "{text}");
956        assert!(text.contains("%4:gpr = x64.mov_rm_64 [$rsp]"), "{text}");
957    }
958
959    /// The parameters of a function under a convention, with one of them a structure whose bytes
960    /// travel, and what each of the ones that arrived in memory is waiting on.
961    fn arrive_with(params: &[Param], conv: &CallRegs) -> (String, Vec<u32>) {
962        let mut names = Interner::new();
963        let mut out = mir::Func::new(names.intern("f"));
964        let block = out.create_block();
965        let arrived =
966            entry(&mut out, block, params, conv, &mut names, None).expect("every parameter");
967        let up = arrived.stack.iter().map(|&(_, up)| up).collect();
968        (mir::print_func(&out, &names, &REGS), up)
969    }
970
971    #[test]
972    fn a_structure_that_arrived_as_bytes_is_an_address_and_not_a_load() {
973        let byval = Param::with_abi(Type::PTR, Abi::ByVal { size: 32, align: 8 });
974        let (text, up) =
975            arrive_with(&[Param::new(Type::int(32)), byval, Param::new(Type::int(32))], &SYSV);
976
977        // `int f(int a, struct Big b, int c)`. The bytes of `b` are already in this function, at
978        // the bottom of the caller's argument area, so nothing is read out of them here: what the
979        // parameter is is where they are, which is one address. The two integers still travel in
980        // registers, because an object in the argument area takes no register and the arguments
981        // behind it do not shift along.
982        assert_eq!(up, [0]);
983        assert_eq!(text.matches("x64.arg_val_32").count(), 2, "{text}");
984        assert!(text.contains("%2:gpr = x64.lea_64 [$rsp]"), "{text}");
985        assert!(!text.contains("mov_rm"), "nothing is read out of the bytes: {text}");
986    }
987
988    #[test]
989    fn the_argument_behind_a_structure_that_travelled_as_bytes_is_above_all_of_them() {
990        let byval = Param::with_abi(Type::PTR, Abi::ByVal { size: 24, align: 16 });
991        let params: Vec<Param> = (0..7).map(|_| Param::new(Type::int(64))).collect();
992        let (_, up) = arrive_with(&[&params[..], &[byval], &params[..1]].concat(), &SYSV);
993
994        // Six integers take the six registers, the seventh is at the bottom of the argument area,
995        // and the structure is above it at the alignment its type asks for rather than at a word.
996        // The one behind the structure is above all twenty four of its bytes, rounded up to a
997        // whole number of words, because the area is a run of words.
998        assert_eq!(up, [0, 16, 40]);
999    }
1000
1001    /// A parameter narrower than a word is read at its own width rather than at a word, and one in
1002    /// the other register file is read with the other file's instruction. Both are the same list
1003    /// [`head_of`] answers from, which is what stops a function being turned away for the width of
1004    /// its seventh argument alone.
1005    #[test]
1006    fn what_a_stack_argument_is_read_with_is_its_own_width_and_its_own_file() {
1007        let f32 = Type::float(rucc_ir::Float::F32);
1008        let params = [Type::int(64), Type::int(64), Type::int(64), Type::int(64), Type::int(8)];
1009        let (text, up) = arrive(&params, &WIN64);
1010        assert_eq!(up, [32]);
1011        assert!(text.contains("x64.mov_rm_8 [$rsp]"), "{text}");
1012
1013        let floats = [f32; 5];
1014        let (text, up) = arrive(&floats, &WIN64);
1015        assert_eq!(up, [32]);
1016        assert!(text.contains("%4:xmm = x64.movss_rm [$rsp]"), "{text}");
1017    }
1018
1019    /// Every type a parameter can arrive in a register at is one it can be read from memory at.
1020    /// The two lists are keyed off the same two questions so that they cannot drift, and this is
1021    /// what says so: a width one covered and the other did not would be a function turned away for
1022    /// where its arguments happened to land rather than for anything about it.
1023    #[test]
1024    fn the_two_lists_of_widths_answer_for_the_same_types() {
1025        let types = [
1026            Type::int(1),
1027            Type::int(8),
1028            Type::int(16),
1029            Type::int(32),
1030            Type::int(64),
1031            Type::int(128),
1032            Type::PTR,
1033            Type::float(rucc_ir::Float::F32),
1034            Type::float(rucc_ir::Float::F64),
1035            Type::float(rucc_ir::Float::F80),
1036            Type::float(rucc_ir::Float::F128),
1037        ];
1038        for ty in types {
1039            assert_eq!(head_of(ty).is_some(), load_of(ty).is_some(), "{ty:?}");
1040            assert_eq!(head_of(ty).is_some(), store_of(ty).is_some(), "{ty:?}");
1041            assert_eq!(head_of(ty).is_some(), ret_of(ty, 0).is_some(), "{ty:?}");
1042        }
1043    }
1044
1045    /// A hundred and twenty eight bit float arrives in a vector register like the two narrower
1046    /// formats, and it takes one of them rather than two: the psABI classifies it SSE and SSEUP,
1047    /// and what that pair names is the one register both eightbytes are in.
1048    ///
1049    /// The second float here is what says so. If the quad had taken two vector registers the
1050    /// `double` after it would be in `xmm2`.
1051    #[test]
1052    fn a_quad_float_arrives_in_one_vector_register_and_not_in_two() {
1053        let quad = Type::float(rucc_ir::Float::F128);
1054        let f64 = Type::float(rucc_ir::Float::F64);
1055        assert_eq!(
1056            bind(&[quad, f64], &SYSV),
1057            "mfunc @f {\nblock0:\n    %0:xmm($xmm0) = x64.arg_val_f128\n    \
1058             %1:xmm($xmm1) = x64.arg_val_f64\n}\n"
1059        );
1060    }
1061
1062    /// And it is not the width that was refused before there was an instruction to move it with,
1063    /// which is the one thing about this type that used to turn a whole function away.
1064    #[test]
1065    fn a_quad_float_is_no_longer_a_width_nothing_can_carry() {
1066        assert_eq!(refuses(Type::float(rucc_ir::Float::F128)), None);
1067        assert_eq!(refuses(Type::float(rucc_ir::Float::F80)), Some(Missing::OnX87));
1068        assert_eq!(refuses(Type::int(128)), Some(Missing::Width));
1069    }
1070
1071    /// A float arrives in the other file, and the two files are counted apart on SysV: the
1072    /// integer here is the first integer argument and the float is the first float one, so they
1073    /// are in `rdi` and `xmm0` rather than in the first and second of anything.
1074    #[test]
1075    fn a_float_arrives_in_a_vector_register_and_is_counted_apart_from_the_integers() {
1076        let f32 = Type::float(rucc_ir::Float::F32);
1077        let f64 = Type::float(rucc_ir::Float::F64);
1078        assert_eq!(
1079            bind(&[Type::int(32), f64, f32], &SYSV),
1080            "mfunc @f {\nblock0:\n    %0:gpr($rdi) = x64.arg_val_32\n    \
1081             %1:xmm($xmm0) = x64.arg_val_f64\n    %2:xmm($xmm1) = x64.arg_val_f32\n}\n"
1082        );
1083    }
1084
1085    /// Windows counts the two files together, so the same three arguments land in different
1086    /// registers: the float is the second argument and takes the second vector register rather
1087    /// than the first, which is the difference that makes a mismatched call read the wrong value.
1088    #[test]
1089    fn the_other_convention_counts_the_two_files_as_one_run_of_positions() {
1090        let f64 = Type::float(rucc_ir::Float::F64);
1091        assert_eq!(
1092            bind(&[Type::int(32), f64, Type::int(64)], &WIN64),
1093            "mfunc @f {\nblock0:\n    %0:gpr($rcx) = x64.arg_val_32\n    \
1094             %1:xmm($xmm1) = x64.arg_val_f64\n    %2:gpr($r8) = x64.arg_val_64\n}\n"
1095        );
1096    }
1097
1098    /// A `long double` is in neither file and travels in the argument area, which is what SysV's
1099    /// X87 classification comes to. So it arrives the way a structure the classification put in
1100    /// memory arrives, as the address of its bytes in a general purpose register, and it does that
1101    /// while the vector file is untouched: this one is in the argument area because of what it is
1102    /// rather than because the registers ran out.
1103    #[test]
1104    fn a_long_double_arrives_as_the_address_of_its_bytes_in_the_argument_area() {
1105        let params = [Type::int(32), Type::float(rucc_ir::Float::F80)];
1106        assert_eq!(
1107            bind(&params, &SYSV),
1108            "mfunc @f {\nblock0:\n    %0:gpr($rdi) = x64.arg_val_32\n    \
1109             %1:gpr = x64.lea_64 [$rsp]\n}\n"
1110        );
1111    }
1112
1113    /// It still cannot come back beside another value, and what it is turned away for says which
1114    /// file is in the way rather than calling eighty bits a width no register holds. A pair comes
1115    /// back in a pair of registers and there is no pair with the x87 stack in it.
1116    #[test]
1117    fn a_long_double_in_a_pair_is_reported_as_the_x87_stack_it_travels_on() {
1118        let returns = [Type::float(rucc_ir::Float::F80), Type::int(64)];
1119        assert_eq!(
1120            make(&[], &returns, false, &SYSV).2,
1121            Err(Refused { argument: None, missing: Missing::OnX87 })
1122        );
1123    }
1124
1125    /// One call to `g`, with a register for each argument arriving in the block that makes it.
1126    ///
1127    /// A variadic call here names none of its arguments, which is the shape that asks the most of a
1128    /// convention. [`made_naming`] is for the tests that care where the line between the named ones
1129    /// and the rest actually falls.
1130    fn make(
1131        args: &[Type],
1132        returns: &[Type],
1133        variadic: bool,
1134        conv: &CallRegs,
1135    ) -> (Interner, mir::Func, Result<Made, Refused>) {
1136        let named = if variadic { 0 } else { args.len() };
1137        made_naming(args, returns, named, variadic, conv)
1138    }
1139
1140    /// The same, for a callee whose signature names that many of the arguments.
1141    fn made_naming(
1142        args: &[Type],
1143        returns: &[Type],
1144        named: usize,
1145        variadic: bool,
1146        conv: &CallRegs,
1147    ) -> (Interner, mir::Func, Result<Made, Refused>) {
1148        let mut names = Interner::new();
1149        let mut out = mir::Func::new(names.intern("f"));
1150        let block = out.create_block();
1151        let passed: Vec<Passing> = args
1152            .iter()
1153            .map(|&ty| Passing {
1154                ty,
1155                reg: out.append_param(block, class_of(ty, conv)),
1156                abi: Abi::Plain,
1157            })
1158            .collect();
1159        let callee = Callee::Named(names.intern("g"));
1160        let what = Calling { callee, args: &passed, returns, variadic, named };
1161        let made = call(&mut out, block, &what, conv, &mut names);
1162        (names, out, made)
1163    }
1164
1165    /// What the call in that function reads and writes, by register name, in the order the
1166    /// operands are in.
1167    fn operands(func: &mir::Func) -> (Vec<String>, Vec<String>) {
1168        let block = func.entry().expect("a function with a block in it");
1169        let call = func.terminator(block).expect("the call is the last thing in the block");
1170        let name = |operand: &mir::Operand| match (operand.reg.phys(), operand.constraint) {
1171            (Some(reg), _) | (None, Constraint::Fixed(reg)) => {
1172                REGS.name(operand.class, reg).expect("a register the file describes").to_string()
1173            }
1174            _ => format!("{:?}", operand.reg),
1175        };
1176        let mut written = Vec::new();
1177        let mut read = Vec::new();
1178        for operand in &func[func[call].operands] {
1179            let into = if operand.role == mir::Role::Use { &mut read } else { &mut written };
1180            into.push(name(operand));
1181        }
1182        (written, read)
1183    }
1184
1185    #[test]
1186    fn a_call_passes_its_arguments_where_the_convention_puts_them() {
1187        let i32 = Type::int(32);
1188        let (_, func, made) = make(&[i32, i32, i32], &[], false, &SYSV);
1189        assert_eq!(made.expect("three integers all fit in registers").results, []);
1190        assert_eq!(operands(&func).1, ["rdi", "rsi", "rdx"]);
1191    }
1192
1193    #[test]
1194    fn the_other_convention_passes_the_same_arguments_somewhere_else() {
1195        let i64 = Type::int(64);
1196        let (_, func, made) = make(&[i64, i64], &[], false, &WIN64);
1197        // Thirty two bytes of stack for a call that passes nothing on the stack, which is what
1198        // Windows asks a caller to leave the callee whether the callee uses it or not.
1199        assert_eq!(made.expect("two integers fit in registers").outgoing, 32);
1200        assert_eq!(operands(&func).1, ["rcx", "rdx"]);
1201    }
1202
1203    #[test]
1204    fn what_a_call_gives_back_comes_out_of_the_register_the_convention_returns_in() {
1205        let (names, func, made) = make(&[], &[Type::int(32)], false, &SYSV);
1206        let made = made.expect("an integer comes back");
1207        let [result] = made.results[..] else { panic!("one register") };
1208        // The first thing written is the result, and it is the only thing written that is a value
1209        // rather than a register the callee destroyed.
1210        assert_eq!(operands(&func).0.first().map(String::as_str), Some("rax"));
1211        assert_eq!(func.class_of(result), Some(SYSV.int_class));
1212        assert!(mir::print_func(&func, &names, &REGS).contains("x64.call"));
1213    }
1214
1215    #[test]
1216    fn every_register_the_callee_may_destroy_is_written_by_the_call() {
1217        let (_, func, _) = make(&[Type::int(64)], &[Type::int(64)], false, &SYSV);
1218        let (written, read) = operands(&func);
1219        // The callee saved registers are not here, because a value in one of those survives a
1220        // call and that is the whole difference between the two halves of the convention.
1221        for saved in ["rbx", "rbp", "r12", "r13", "r14", "r15"] {
1222            assert!(!written.contains(&saved.to_string()), "{saved} survives a call");
1223        }
1224        // Every other integer register is, once. The two named ones are named by the result and
1225        // by the argument instead, and naming one twice would be blocking it twice.
1226        for destroyed in ["rcx", "rdx", "rsi", "r8", "r9", "r10", "r11"] {
1227            let count = written.iter().filter(|name| *name == destroyed).count();
1228            assert_eq!(count, 1, "{destroyed} is destroyed by a call and is written {count} times");
1229        }
1230        assert_eq!(written.iter().filter(|name| *name == "rax").count(), 1);
1231        assert_eq!(read, ["rdi"]);
1232        // The vector registers are all destroyed on SysV, and they are in the other class.
1233        assert!(written.contains(&"xmm0".to_string()));
1234    }
1235
1236    #[test]
1237    fn a_variadic_call_says_how_many_vector_registers_it_passed_arguments_in() {
1238        let (names, func, made) = make(&[Type::int(64)], &[], true, &SYSV);
1239        made.expect("an integer argument to a variadic callee");
1240        let (_, read) = operands(&func);
1241        // Zero of them here, and `al` is where a SysV callee looks for it. Leaving whatever was in
1242        // the register there would make a callee that saves its vector registers save ones it was
1243        // never given.
1244        assert_eq!(read, ["rdi", "rax"]);
1245        assert_eq!(
1246            mir::print_func(&func, &names, &REGS).lines().nth(2),
1247            Some("    %1:gpr = x64.mov_ri_32 0")
1248        );
1249
1250        // Two of them here, which is the number that decides how much of the register save area a
1251        // callee like `printf` fills in. A count of zero with a float in `xmm0` would be a callee
1252        // reading its first `%f` out of a register nothing wrote.
1253        let f64 = Type::float(rucc_ir::Float::F64);
1254        let (names, func, made) = make(&[Type::int(64), f64, f64], &[], true, &SYSV);
1255        made.expect("one integer and two floats all fit in registers");
1256        assert_eq!(operands(&func).1, ["rdi", "xmm0", "xmm1", "rax"]);
1257        assert!(mir::print_func(&func, &names, &REGS).contains("x64.mov_ri_32 2"));
1258    }
1259
1260    /// Windows passes a float the callee has no prototype for in both files at once, because the
1261    /// callee has no way to know which file to look in and its walk over the arguments reads the
1262    /// general purpose one. This is the whole of what `printf("%f", x)` needs from the caller.
1263    #[test]
1264    fn a_float_a_variadic_callee_has_no_prototype_for_travels_in_both_files_on_windows() {
1265        let f64 = Type::float(rucc_ir::Float::F64);
1266        let (names, func, made) = made_naming(&[Type::int(32), f64], &[], 1, true, &WIN64);
1267        made.expect("an integer and a float both fit in registers");
1268
1269        // The float is the second argument, so its position is one and both of its registers are
1270        // the second of their file. `rdx` holds the bits and nothing converts them, which is what
1271        // the `movq` is: the callee reads bits out of it and not a value of any type.
1272        assert_eq!(operands(&func).1, ["rcx", "xmm1", "rdx"]);
1273        let text = mir::print_func(&func, &names, &REGS);
1274        assert!(text.contains("x64.movq_from_xmm %1"), "{text}");
1275    }
1276
1277    /// An argument the signature does name needs no second copy, since the callee's parameter says
1278    /// where it is, and neither does one on a convention that keeps the two files apart.
1279    #[test]
1280    fn an_argument_the_signature_names_travels_in_one_file() {
1281        let f64 = Type::float(rucc_ir::Float::F64);
1282        let (names, func, made) = made_naming(&[Type::int(32), f64], &[], 2, true, &WIN64);
1283        made.expect("both are named");
1284        assert_eq!(operands(&func).1, ["rcx", "xmm1"]);
1285        assert!(!mir::print_func(&func, &names, &REGS).contains("movq_from_xmm"));
1286
1287        let (names, func, made) = made_naming(&[Type::int(32), f64], &[], 1, true, &SYSV);
1288        made.expect("an integer and a float");
1289        assert!(!mir::print_func(&func, &names, &REGS).contains("movq_from_xmm"));
1290    }
1291
1292    /// A float past the position the registers run out at is in the argument area and nowhere else,
1293    /// which is where the second copy stops being a thing there is room for. The callee reads it
1294    /// out of memory whichever file it would have been in.
1295    #[test]
1296    fn a_float_the_registers_ran_out_before_gets_no_second_copy() {
1297        let f64 = Type::float(rucc_ir::Float::F64);
1298        let (names, func, made) = made_naming(&[f64; 6], &[], 0, true, &WIN64);
1299        made.expect("four in registers and two in memory");
1300        let text = mir::print_func(&func, &names, &REGS);
1301        assert_eq!(text.matches("movq_from_xmm").count(), 4, "{text}");
1302        assert!(text.contains("x64.movsd_mr %4, [$rsp + 32]"), "{text}");
1303    }
1304
1305    #[test]
1306    fn a_call_through_an_address_reads_it_in_front_of_the_arguments() {
1307        let i32 = Type::int(32);
1308        let mut names = Interner::new();
1309        let mut out = mir::Func::new(names.intern("f"));
1310        let block = out.create_block();
1311        let address = out.append_param(block, SYSV.int_class);
1312        let reg = out.append_param(block, SYSV.int_class);
1313        let passed = vec![Passing { ty: i32, reg, abi: Abi::Plain }];
1314        let what = Calling {
1315            callee: Callee::Through(address),
1316            args: &passed,
1317            returns: &[i32],
1318            variadic: false,
1319            named: passed.len(),
1320        };
1321        call(&mut out, block, &what, &SYSV, &mut names).expect("one integer fits in a register");
1322
1323        // The address is the first thing read and the arguments follow it, which is the order the
1324        // assembler counts on, and it is in no particular register because every register a call
1325        // could insist on is one the call has already spoken for.
1326        let text = mir::print_func(&out, &names, &REGS);
1327        assert!(text.contains("= x64.call_reg %0, %1($rdi)\n"), "{text}");
1328        assert!(!text.contains("@g"), "a call through an address names nobody: {text}");
1329    }
1330
1331    #[test]
1332    fn a_call_with_no_register_left_writes_the_argument_into_the_outgoing_area() {
1333        let i64 = Type::int(64);
1334        let (names, func, made) = make(&[i64; 7], &[], false, &SYSV);
1335        let made = made.expect("the seventh goes to memory");
1336
1337        // At the stack pointer, because the outgoing area is at the bottom of the frame, and in
1338        // front of the call rather than as an operand of it.
1339        let text = mir::print_func(&func, &names, &REGS);
1340        assert!(text.contains("x64.mov_mr_64 %6, [$rsp]\n"), "{text}");
1341        let store = text.find("x64.mov_mr_64").expect("the store");
1342        assert!(store < text.find("x64.call").expect("the call"), "{text}");
1343        // One word of it, which is what the frame has to reserve for this call.
1344        assert_eq!(made.outgoing, 8);
1345    }
1346
1347    /// One call to `g`, passing that many words, then an object of that size and alignment by
1348    /// value, then one more integer, which is `int g(long.., struct Big, int)` after the
1349    /// classification.
1350    fn pass_bytes(
1351        before: usize,
1352        size: u64,
1353        align: u32,
1354        conv: &CallRegs,
1355    ) -> (Interner, mir::Func, Result<Made, Refused>) {
1356        let mut names = Interner::new();
1357        let mut out = mir::Func::new(names.intern("f"));
1358        let block = out.create_block();
1359        let mut args: Vec<Passing> = (0..before)
1360            .map(|_| Passing {
1361                ty: Type::int(64),
1362                reg: out.append_param(block, conv.int_class),
1363                abi: Abi::Plain,
1364            })
1365            .collect();
1366        args.push(Passing {
1367            ty: Type::PTR,
1368            reg: out.append_param(block, conv.int_class),
1369            abi: Abi::ByVal { size, align },
1370        });
1371        args.push(Passing {
1372            ty: Type::int(32),
1373            reg: out.append_param(block, conv.int_class),
1374            abi: Abi::Plain,
1375        });
1376        let callee = Callee::Named(names.intern("g"));
1377        let what =
1378            Calling { callee, args: &args, returns: &[], variadic: false, named: args.len() };
1379        let made = call(&mut out, block, &what, conv, &mut names);
1380        (names, out, made)
1381    }
1382
1383    #[test]
1384    fn a_structure_passed_by_value_in_memory_is_copied_into_the_outgoing_area() {
1385        let (names, func, made) = pass_bytes(1, 24, 8, &SYSV);
1386        let made = made.expect("an object of three words is copied a word at a time");
1387
1388        // The bytes travel and the address does not, so the copy is a load and a store for each
1389        // word of it, in front of the call, and the callee's copy is at the bottom of the outgoing
1390        // area. The caller owes it this copy: the callee is free to write to what it was handed,
1391        // so what it was handed cannot be the object itself.
1392        let text = mir::print_func(&func, &names, &REGS);
1393        assert!(text.contains("x64.mov_mr_64 %3, [$rsp]\n"), "{text}");
1394        assert!(text.contains("x64.mov_mr_64 %4, [$rsp + 8]\n"), "{text}");
1395        assert!(text.contains("x64.mov_mr_64 %5, [$rsp + 16]\n"), "{text}");
1396        assert_eq!(text.matches("x64.mov_rm_64").count(), 3, "{text}");
1397        assert!(text.find("x64.mov_mr_64") < text.find("x64.call"), "{text}");
1398        assert_eq!(made.outgoing, 24);
1399    }
1400
1401    #[test]
1402    fn the_integers_beside_it_still_travel_in_registers() {
1403        let (_, func, _) = pass_bytes(1, 24, 8, &SYSV);
1404
1405        // An object in the argument area takes no argument register, so the integer behind it is
1406        // in the second one and not the third. Counting it as a register is the mistake that would
1407        // shift every argument after it along by one.
1408        let (clobbered, read) = operands(&func);
1409        assert_eq!(read, ["rdi", "rsi"]);
1410        assert!(clobbered.contains(&"rdx".to_owned()), "the third is free: {clobbered:?}");
1411    }
1412
1413    #[test]
1414    fn an_object_wanting_more_alignment_than_a_word_gets_it() {
1415        let (names, func, made) = pass_bytes(7, 24, 16, &SYSV);
1416        let made = made.expect("an object of three words");
1417
1418        // Six of the integers took the registers and the seventh is at the bottom of the area, so
1419        // the object cannot start where it left off: sixteen byte alignment moves it up to the
1420        // next multiple of sixteen and leaves a word of nothing behind it. The integer after it is
1421        // above all three of its words.
1422        let text = mir::print_func(&func, &names, &REGS);
1423        assert!(text.contains("x64.mov_mr_64 %9, [$rsp + 16]\n"), "{text}");
1424        assert!(text.contains("x64.mov_mr_32 %8, [$rsp + 40]\n"), "{text}");
1425        assert_eq!(made.outgoing, 48);
1426    }
1427
1428    #[test]
1429    fn an_object_too_large_to_copy_a_word_at_a_time_is_reported_rather_than_passed() {
1430        let (_, _, made) = pass_bytes(1, 4096, 8, &SYSV);
1431
1432        // Five hundred and twelve words is past what unrolling is worth, and the copy that size
1433        // wants is a call to the runtime, which cannot be built in the middle of building a call.
1434        // Saying so is the point: the alternative is a call that passes the address of the object
1435        // where the callee is going to read the object.
1436        assert_eq!(made, Err(Refused { argument: Some(1), missing: Missing::TooBig }));
1437        assert_eq!(
1438            Missing::TooBig.why(),
1439            "is more bytes than a copy into the argument area unrolls to"
1440        );
1441    }
1442
1443    /// The other convention runs out three arguments earlier and starts its argument area above the
1444    /// shadow space it also has to reserve, and both of those are what `Places` already said.
1445    #[test]
1446    fn where_the_outgoing_area_starts_is_the_convention_s_answer() {
1447        let i64 = Type::int(64);
1448        let (names, func, made) = make(&[i64; 7], &[], false, &WIN64);
1449        assert_eq!(made.expect("the last three go to memory").outgoing, 56);
1450
1451        // Thirty two bytes of shadow space first, which the caller writes nothing into and the
1452        // callee owns, and the fifth argument above it.
1453        let text = mir::print_func(&func, &names, &REGS);
1454        assert!(text.contains("x64.mov_mr_64 %4, [$rsp + 32]\n"), "{text}");
1455        assert!(text.contains("x64.mov_mr_64 %5, [$rsp + 40]\n"), "{text}");
1456        assert!(text.contains("x64.mov_mr_64 %6, [$rsp + 48]\n"), "{text}");
1457    }
1458
1459    /// What a stack argument is written with is its own width and its own register file, matching
1460    /// what the callee reads it back with.
1461    #[test]
1462    fn a_narrow_or_floating_argument_keeps_its_own_store() {
1463        let i64 = Type::int(64);
1464        let narrow = [i64, i64, i64, i64, i64, i64, Type::int(8)];
1465        let (names, func, made) = make(&narrow, &[], false, &SYSV);
1466        made.expect("the seventh goes to memory");
1467        let text = mir::print_func(&func, &names, &REGS);
1468        assert!(text.contains("x64.mov_mr_8 %6, [$rsp]\n"), "{text}");
1469
1470        let f32 = Type::float(rucc_ir::Float::F32);
1471        let (names, func, made) = make(&[f32; 9], &[], false, &SYSV);
1472        made.expect("the ninth goes to memory");
1473        let text = mir::print_func(&func, &names, &REGS);
1474        assert!(text.contains("x64.movss_mr %8, [$rsp]\n"), "{text}");
1475    }
1476
1477    /// The count a SysV variadic callee reads is a count of registers, so an argument that went to
1478    /// memory instead is not in it.
1479    #[test]
1480    fn an_argument_in_memory_is_not_counted_as_a_vector_register() {
1481        let f64 = Type::float(rucc_ir::Float::F64);
1482        let (names, func, made) = make(&[f64; 9], &[], true, &SYSV);
1483        made.expect("the ninth goes to memory");
1484        let text = mir::print_func(&func, &names, &REGS);
1485        assert!(text.contains("x64.mov_ri_32 8\n"), "eight registers, not nine: {text}");
1486    }
1487
1488    /// The two lists of widths answer for the same set of types, so that a value the callee can
1489    /// read out of the argument area is one the caller can write into it.
1490    #[test]
1491    fn what_can_be_read_can_be_written() {
1492        let types = [
1493            Type::int(1),
1494            Type::int(8),
1495            Type::int(16),
1496            Type::int(32),
1497            Type::int(64),
1498            Type::int(128),
1499            Type::PTR,
1500            Type::float(rucc_ir::Float::F32),
1501            Type::float(rucc_ir::Float::F64),
1502            Type::float(rucc_ir::Float::F80),
1503        ];
1504        for ty in types {
1505            assert_eq!(load_of(ty).is_some(), store_of(ty).is_some(), "{ty:?}");
1506        }
1507    }
1508
1509    /// A float travels in the other file at both ends of a call, and the register it comes back in
1510    /// is the first of that file rather than the first of the other one.
1511    #[test]
1512    fn a_call_passes_and_returns_a_float_in_a_vector_register() {
1513        let f64 = Type::float(rucc_ir::Float::F64);
1514        let (_, func, made) = make(&[Type::int(32), f64], &[f64], false, &SYSV);
1515        let result = made.expect("an integer and a float both fit in registers");
1516        let (written, read) = operands(&func);
1517        assert_eq!(read, ["rdi", "xmm0"]);
1518        assert_eq!(written.first().map(String::as_str), Some("xmm0"));
1519        assert_eq!(func.class_of(result.results[0]), Some(SYSV.sse_class));
1520        // Written once, because the register the result comes back in is already blocked by being
1521        // named and a clobber that repeated it would be blocking it twice. `rax` is a clobber here
1522        // rather than the result, which is the same register number in the other file and is the
1523        // whole reason the two lists are counted apart.
1524        assert_eq!(written.iter().filter(|name| *name == "xmm0").count(), 1);
1525        assert!(written.contains(&"rax".to_string()));
1526    }
1527
1528    #[test]
1529    fn a_call_at_a_width_no_register_holds_is_reported_on_either_side() {
1530        let i128 = Type::int(128);
1531        assert_eq!(
1532            make(&[i128], &[], false, &SYSV).2,
1533            Err(Refused { argument: Some(0), missing: Missing::Width })
1534        );
1535        assert_eq!(
1536            make(&[], &[i128], false, &SYSV).2,
1537            Err(Refused { argument: None, missing: Missing::Width })
1538        );
1539    }
1540
1541    #[test]
1542    fn an_argument_wider_than_a_register_has_no_name() {
1543        assert_eq!(head_of(Type::int(128)), None);
1544        assert_eq!(head_of(Type::int(8)), Some("x64.arg_val_8"));
1545        assert_eq!(head_of(Type::int(64)), Some("x64.arg_val_64"));
1546    }
1547
1548    /// An address arrives in a general purpose register like any other integer of its width, and
1549    /// used to be turned away here as a width no register holds, which is what issue 274 is.
1550    /// `int g(char *s)` is the smallest program that was.
1551    #[test]
1552    fn an_address_arrives_in_a_register_like_the_integer_it_is() {
1553        assert_eq!(head_of(Type::PTR), Some("x64.arg_val_64"));
1554        assert_eq!(
1555            bind(&[Type::PTR], &SYSV),
1556            "mfunc @f {\nblock0:\n    %0:gpr($rdi) = x64.arg_val_64\n}\n"
1557        );
1558        // And it travels the same way at a call, on both sides of one.
1559        assert!(make(&[Type::PTR], &[Type::PTR], false, &SYSV).2.is_ok());
1560    }
1561}