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rucc_codegen/
pipeline.rs

1//! One IR function to one machine function, which is every pass in this crate in order.
2//!
3//! Design: `spec/10-backend.md` section 10.1, which is where the order comes from.
4//!
5//! Each pass here is written and tested on its own and each is useful on its own, but there is
6//! exactly one order they run in and until now that order lived in the tests. A caller outside
7//! this crate would have had to know that splitting critical edges comes after lowering and
8//! before allocation, that the frame is worked out after allocation because the spill slots are
9//! the largest thing in it, and that the prologue is written after the frame. None of that is a
10//! decision a driver should be making, so it is written down once, here.
11//!
12//! # What comes out
13//!
14//! A function whose every register is physical, whose every offset into the frame is a constant,
15//! and whose blocks are in the order they run in with the jumps that order needs. That is the
16//! point at which a function is one an encoder could read, and there is nothing left in it that
17//! is not an instruction of the machine it was compiled for.
18//!
19//! # What is still missing from the middle
20//!
21//! The optimizing path, all of it. What runs here is `spec/10-backend.md` section 10.3's fast
22//! path: one rule per term, a linear scan, and a block order from the shape of the CFG rather
23//! than from block frequency. No scheduling, and the redundant moves a coalescer would take out
24//! are still in the output.
25
26use rucc_base::Interner;
27use rucc_ir as ir;
28use rucc_mir as mir;
29use rucc_regalloc::assign::Env;
30use rucc_target::{
31    BitInsts, BranchInsts, CallRegs, FlagInsts, FrameInsts, MachineInsts, PhysReg, RegFile,
32    TargetInfo, TimingInsts, x86_64,
33};
34use rucc_tuple::Arch;
35
36use crate::bits;
37use crate::combine;
38use crate::compare;
39use crate::copies;
40use crate::coverage::Fired;
41use crate::elsewhere::Elsewhere;
42use crate::finish::{Convention, Padding, Probing, Protect, Tracing, finish};
43use crate::fold;
44use crate::frame::{self, Frame, Layout};
45use crate::layout;
46use crate::lower::{self, Unsupported};
47use crate::lowering::{self, Lowerings};
48use crate::pressure::{Cost, Pressure};
49use crate::schedule;
50use crate::slots::{self, Slots};
51use crate::split;
52use crate::weights;
53
54/// Everything about a machine that compiling a function for it needs.
55///
56/// The fields are different kinds of fact and they come from different places: where the
57/// convention puts things, what registers the machine has, which instructions build a frame,
58/// which instructions a branch becomes, and which registers the allocator may hand out. The last
59/// one is not a target fact on its own, because holding a register back as scratch is a decision
60/// about the allocator rather than about the machine, which is why it is built here rather than
61/// in [`rucc_target`].
62#[derive(Debug)]
63pub struct Machine {
64    /// Where the convention this function is compiled for puts things.
65    pub conv: &'static CallRegs,
66    /// The registers the machine has, which is what says how wide a spill slot of a class is.
67    pub file: RegFile,
68    /// The instructions that take a frame and give it back.
69    pub insts: &'static FrameInsts,
70    /// The instructions a branch becomes once the blocks are in an order.
71    pub branch: &'static BranchInsts,
72    /// How much of a register each of the machine's instructions reads and writes.
73    pub bits: &'static BitInsts,
74    /// What each of the machine's instructions leaves in the condition state.
75    pub flags: &'static FlagInsts,
76    /// What shape each of the machine's instructions is, which is what a pass proposing a new one
77    /// has its proposal held against.
78    pub shapes: &'static MachineInsts,
79    /// How long each of the machine's instructions takes, and what it takes it on.
80    pub timing: &'static TimingInsts,
81    /// What the allocator may hand out, and what it holds back.
82    pub env: Env,
83}
84
85/// The scratch registers held back from the allocator on x86-64.
86///
87/// Two, because a move on an edge may have to break a cycle and a spilled value has to be read
88/// into something, and those can want a register at the same instruction. Two is also what nearly
89/// every instruction wants, including the one that looks larger: an instruction that reads two
90/// spilled values and writes a third sends the answer back into a register an operand arrived in
91/// rather than asking for one of its own, and `rewrite` says why that is allowed.
92///
93/// It is not two because two was enough to start with and nobody looked again. There is no third
94/// to hold back. A scratch register has to be one the convention passes nothing in, since the
95/// rewriter puts moves in wherever it likes, and one the callee does not owe back, since the
96/// rewriter runs after the prologue has been decided and cannot ask for a register to be saved. On
97/// SysV that is `r10`, `r11` and `rax`, and `rax` is not one to take: it is the return value, so
98/// holding it back costs a move at every return in the program, which is a price paid everywhere
99/// for a shape that turns up almost nowhere.
100///
101/// An instruction that wants a third is the indexed store with its base, its index and its value
102/// all on the stack, which is tamnd/rucc#913. `rewrite` answers that one by borrowing a register
103/// and putting back what was in it, which costs two memory accesses at the instruction that wanted
104/// it and nothing anywhere else.
105pub(crate) const SCRATCH: [PhysReg; 2] = [x86_64::R10, x86_64::R11];
106
107/// How many of each class are held back.
108const SCRATCH_COUNT: usize = SCRATCH.len();
109
110impl Machine {
111    /// The x86-64 machine under that convention.
112    ///
113    /// Both files are offered. A value the selector produces is in one or the other, which is
114    /// decided by its type: an integer and an address are general purpose and a `float` or a
115    /// `double` is in a vector register, and the allocator is given each file separately because
116    /// no move goes between them.
117    #[must_use]
118    pub fn x86_64(conv: &'static CallRegs) -> Self {
119        let order: Vec<PhysReg> =
120            conv.int_order.iter().copied().filter(|reg| !SCRATCH.contains(reg)).collect();
121        // The vector file wants its own two, for the same two jobs, and they have to be two the
122        // convention does not preserve: a scratch register is written by a move the rewriter puts
123        // in, which is after the prologue has already been decided, so one the callee owes back
124        // would be one nothing saved. That rules out the upper ten on Windows and nothing at all
125        // on SysV, and taking the last two that are left lands on `xmm14` and `xmm15` there and on
126        // `xmm4` and `xmm5` on Windows, neither of which any argument travels in.
127        let free: Vec<PhysReg> =
128            conv.sse_order.iter().copied().filter(|&reg| !conv.preserves_sse(reg)).collect();
129        let at = free.len().saturating_sub(SCRATCH_COUNT);
130        let sse_scratch: Vec<PhysReg> = free[at..].to_vec();
131        let sse_order: Vec<PhysReg> =
132            conv.sse_order.iter().copied().filter(|reg| !sse_scratch.contains(reg)).collect();
133        Self {
134            conv,
135            file: x86_64::REGS,
136            insts: &x86_64::FRAME,
137            branch: &x86_64::BRANCH,
138            bits: &x86_64::BITS,
139            flags: &x86_64::FLAGS,
140            shapes: &x86_64::MACHINE,
141            timing: &x86_64::TIMING,
142            env: Env::new().with(x86_64::GPR, &order, &SCRATCH).with(
143                x86_64::XMM,
144                &sse_order,
145                &sse_scratch,
146            ),
147        }
148    }
149
150    /// The machine a target describes, or `None` when no backend in this crate covers it.
151    ///
152    /// [`TargetInfo`] already carries the convention, because the front end needs it to lay a
153    /// `va_list` out, so the only thing this decides is which architecture's frame instructions
154    /// and register file go with it. AArch64 and RISC-V are `None` until M6 fills them in, and a
155    /// caller that gets one reports a target it cannot compile for rather than compiling wrongly.
156    #[must_use]
157    pub fn for_target(target: &TargetInfo) -> Option<Self> {
158        let conv = target.call_regs?;
159        match target.tuple.arch() {
160            Arch::X86_64 => Some(Self::x86_64(conv)),
161            _ => None,
162        }
163    }
164}
165
166/// Whether every function calls a profiler on the way in, and where that call goes.
167///
168/// What `-pg` asks for, with `-mfentry` and `-mno-fentry` choosing between the last two. The choice
169/// has already been made against the target by the time this is built, which is why there is no
170/// answer here for a command line that named neither.
171#[derive(Debug, Clone, Copy, Default, PartialEq, Eq)]
172pub enum Profile {
173    /// It does not, which is what nearly every command line asks for.
174    #[default]
175    No,
176    /// In front of the prologue, which is the hook a tracer can replace while the program runs.
177    Early,
178    /// Once the frame is taken, which is the hook that reads the frame pointer.
179    Late,
180}
181
182/// How much room every function opens with for something to be written over it later.
183///
184/// What `-fpatchable-function-entry=` asks for, as the two halves a prologue deals in rather than
185/// as the total and the part the flag is written in. The room can be on either side of the
186/// function's own label and the two sides are not the same thing: what is after the label is inside
187/// the function, which is what a patcher redirecting a call into it wants, and what is in front of
188/// it is outside, which is where a patcher that needs a whole instruction it can reach from the
189/// first one puts it.
190#[derive(Debug, Clone, Copy, Default, PartialEq, Eq)]
191pub struct Room {
192    /// How many bytes go after the function's own label.
193    pub after: u32,
194    /// How many go in front of it.
195    pub before: u32,
196}
197
198impl Room {
199    /// Whether any room at all was asked for, which is what decides whether a function gets one.
200    ///
201    /// `=0` is a command line that asked for none, and gcc takes it and writes nothing, so the
202    /// question is about the numbers rather than about whether the flag was written.
203    #[must_use]
204    pub const fn any(self) -> bool {
205        self.after > 0 || self.before > 0
206    }
207}
208
209/// What the command line says about a frame, as opposed to what the machine says.
210#[derive(Debug, Clone, Copy, PartialEq, Eq)]
211pub struct Flags {
212    /// Whether every function keeps a frame pointer, which `-fno-omit-frame-pointer` asks for.
213    pub frame_pointer: bool,
214    /// Whether the red zone may be used, which `-mno-red-zone` and every kernel turns off.
215    pub red_zone: bool,
216    /// Whether a frame is taken a page at a time, which `-fstack-clash-protection` asks for.
217    pub stack_clash: bool,
218    /// Whether every address an indirect branch may arrive at opens with a landing pad, which
219    /// `-fcf-protection=branch` asks for. That is every function, and every label of a function
220    /// whose address the program took.
221    pub landing: bool,
222    /// Whether every function calls a profiler on the way in, which `-pg` asks for.
223    pub profile: Profile,
224    /// How much room every function opens with for a patcher, which
225    /// `-fpatchable-function-entry=` asks for. See [`Room`].
226    pub patch: Room,
227    /// Whether the blocks are put in the order the weights say rather than in the order the
228    /// shape of the graph says, which `-freorder-blocks` asks for and every level above `-O0`
229    /// turns on. See [`crate::layout`].
230    pub reorder: bool,
231    /// Whether two things in the frame that are never both wanted may be the same bytes, which
232    /// `-fstack-reuse=none` turns off. See [`crate::slots`].
233    pub reuse: bool,
234    /// Whether the instructions of a block are put in the order the machine finishes soonest,
235    /// which `-fschedule-insns2` asks for and every level from `-O2` turns on. See
236    /// [`crate::schedule`].
237    pub schedule: bool,
238    /// Whether the target's timing model is believed about the machine's units as well as about
239    /// its latencies, which `-Zcycle-accurate-model=` says and the model itself answers otherwise.
240    ///
241    /// `None` is a command line that did not say, which is nearly every one, and then the model's
242    /// own answer decides. It is here rather than only on the model because section 38.1 asks for
243    /// a way to say the model is better or worse than it claims without editing the model, and
244    /// because the measurement section 38.8 owes is the same corpus compiled both ways.
245    pub accurate: Option<bool>,
246}
247
248impl Default for Flags {
249    /// No frame pointer, the red zone allowed, the frame taken in one subtraction, no landing pad,
250    /// no profiling, no room for a patcher, the blocks in the order the graph's shape gives,
251    /// nothing in the frame sharing with anything and no scheduling, which is what a convention
252    /// that has a red zone says at `-O0` when nobody on the command line has said otherwise.
253    fn default() -> Self {
254        Self {
255            frame_pointer: false,
256            red_zone: true,
257            stack_clash: false,
258            landing: false,
259            profile: Profile::No,
260            patch: Room::default(),
261            reorder: false,
262            reuse: false,
263            schedule: false,
264            accurate: None,
265        }
266    }
267}
268
269/// Compiles one function, from the IR the middle end produced to machine instructions.
270///
271/// The function is taken by reference that can be written through, because the first pass is an
272/// IR to IR rewrite: a construct whose lowering is a new shape of control flow cannot be a rule,
273/// since a rule replaces a term with a term and has nowhere to put a block. So the IR that reaches
274/// selection is not quite the IR the middle end produced, and this is the only place that is true.
275/// `--emit=ir` prints before any of this runs.
276///
277/// `elsewhere` is the one thing here that is a fact about the module rather than about the
278/// function, and it is passed in rather than looked up because this only ever sees the one
279/// function. What it decides is how the address of a name is come by, which is the difference
280/// between an address this file can measure to and one only the linker knows.
281///
282/// # Errors
283///
284/// The first thing in it this cannot lower, which is what [`lower::func`] reports, and one thing
285/// after it that is about the shape of the function rather than about an instruction, which is a
286/// frame that grows while it runs in a function whose flags say no frame may. Everything else after
287/// lowering works on machine instructions that exist, so it either runs or it is a bug in this
288/// crate.
289pub fn compile(
290    source: &mut ir::Func,
291    names: &mut Interner,
292    machine: &Machine,
293    elsewhere: &Elsewhere,
294    flags: Flags,
295) -> Result<mir::Func, Unsupported> {
296    let (mut fired, mut pressure, mut lowerings) =
297        (Fired::new(), Pressure::new(), Lowerings::new());
298    compile_recording(
299        source,
300        names,
301        machine,
302        elsewhere,
303        flags,
304        &mut Recording { fired: &mut fired, pressure: &mut pressure, lowerings: &mut lowerings },
305    )
306}
307
308/// Somewhere to put what a compilation did along the way, for the flags that ask.
309///
310/// One of these rather than three parameters, because they are one thing: a caller either wants
311/// the measurements or does not, and a caller that does wants the same three to cover every
312/// function of every file on the command line.
313#[derive(Debug)]
314pub struct Recording<'a> {
315    /// Which lowering rules fired, for `-Zrule-coverage`.
316    pub fired: &'a mut Fired,
317    /// What the allocator had to put on the stack, for `-Zregister-pressure`.
318    pub pressure: &'a mut Pressure,
319    /// What the pre-selection lowering group did, for `-Zlowering`.
320    pub lowerings: &'a mut Lowerings,
321}
322
323/// The same compilation, with what it did along the way recorded.
324///
325/// Two functions rather than one that takes options, because a caller that does not want the
326/// numbers should not have to say so. What each field of the [`Recording`] is for is on the field,
327/// and all of them are added to rather than replaced, so a caller passes the same one for every
328/// function of a module and every module of a command line and gets the answer for all of them.
329///
330/// # Errors
331///
332/// The same as [`compile`]. A function that was refused contributes nothing to any of them, since
333/// a function that did not compile is not evidence about what a rule set or a frame would have
334/// done.
335pub fn compile_recording(
336    source: &mut ir::Func,
337    names: &mut Interner,
338    machine: &Machine,
339    elsewhere: &Elsewhere,
340    flags: Flags,
341    recording: &mut Recording<'_>,
342) -> Result<mir::Func, Unsupported> {
343    // Everything the machine has no rule for, rewritten into things it has, as one group rather
344    // than as a dozen lines here. What is in the group and what the order between its members is
345    // for are both in `crate::lowering`, which is where a new lowering is added.
346    let counting = recording.lowerings.wanted();
347    let ran = lowering::group(source, names, machine.conv, counting);
348    if counting {
349        let called = names.resolve(source.name).to_owned();
350        recording.lowerings.record(&called, ran);
351    }
352    let lowered = lower::func(source, names, machine.conv, elsewhere)?;
353    recording.fired.merge(&lowered.fired);
354    let lower::Lowered { mut func, mut stack, blocks, .. } = lowered;
355    // Straight after selection, because this is the last moment the machine blocks and the IR
356    // blocks still stand one for one, and the pass that reads the numbers is the very last one
357    // there is. See `crate::weights`.
358    if flags.reorder {
359        weights::carry(source, &blocks, &mut func);
360    }
361    // The one thing a frame that grows while it runs cannot be asked for, which is a refusal rather
362    // than wrong code.
363    if let Some(inst) = stack.grown_at {
364        // The lowering refuses a variable length array that asks for more alignment than a call
365        // leaves the stack pointer on. A fixed local asking for it in the same function is the same
366        // refusal arrived at from the other side: the prologue would force the alignment, and
367        // forcing it and moving the stack pointer afterwards are two frames that each want the one
368        // register that still reaches the rest of the frame. See `Growing` in [`crate::frame`].
369        if stack.locals.iter().any(|local| local.align > machine.conv.stack_align) {
370            return Err(Unsupported::Dynamic { inst, growing: lower::Growing::Aligned });
371        }
372    }
373
374    // Before the fold below, which is the order section 37.6 puts the two in. A widening this takes
375    // out is one whose readers are sent to its source, and one of those readers may be an address
376    // computation, so asking which bits are read first means the fold sees the addresses as they
377    // will be rather than as they were.
378    bits::dead(&mut func, machine.bits, machine.shapes, names);
379
380    // After selection, because the address instruction and the one that reads it are both machine
381    // instructions only once selection has written them, and before allocation, because what makes
382    // the pair safe to put together is that a virtual register is written once. The addresses into
383    // the frame and into the caller's argument area go through it like anything else, and the two
384    // lists `finish` reads are rewritten as they do, so an address that ends up inside its reader
385    // is still an address the frame layout knows to write an offset into.
386    let mut pending = fold::Pending {
387        addresses: &mut stack.addresses,
388        arguments: &mut stack.arguments,
389        dynamic: &mut stack.dynamic,
390    };
391    fold::addresses(&mut func, machine.insts, machine.shapes, names, &mut pending);
392
393    // After that fold rather than before it, because what this puts inside an arithmetic
394    // instruction is a load's addressing mode and a load whose address is still a `lea` in front of
395    // it has nothing in its own mode worth carrying. Before allocation for the reason the fold is:
396    // a virtual register is written once, which is the whole of why the value the load produced
397    // cannot have changed between the two instructions this joins.
398    // The run that reads a place, computes on it and writes it back goes first, because it is three
399    // instructions the selector wrote and taking the load out of the middle one first would leave
400    // the same run written a second way.
401    combine::stores(&mut func, machine.shapes, names, &mut pending);
402    combine::loads(&mut func, machine.shapes, names, &mut pending);
403
404    // Whether this function carries a canary is the front end's answer, because what
405    // `-fstack-protector` asks about is the kind of local a function has and the types are gone by
406    // here. What the machine does about it is this crate's answer, and a target with nowhere to
407    // keep the word a canary is copied from does nothing, which is what the driver refuses a
408    // command line over before any of this runs.
409    let protect = source.attrs.set.contains(ir::AttrSet::STACK_PROTECT);
410    let guard = protect.then_some(machine.conv.guard.as_ref()).flatten();
411    // Nothing at all on a target with no hook to call, which is the same answer the protector gives
412    // on a target with nowhere to keep its word, and the driver refuses the command line over it
413    // before any of this runs.
414    let profile = match machine.conv.trace {
415        Some(_) => flags.profile,
416        None => Profile::No,
417    };
418    let base = stack.layout(Layout::new(machine.conv, machine.file));
419    let layout = Layout {
420        // The later hook reads the frame pointer to find out who called this function, so a
421        // function that calls it is given one whether or not anything else asked. A function that
422        // asked where its own frame is has the same claim on one, and for a plainer reason: the
423        // register is the answer.
424        frame_pointer: flags.frame_pointer
425            || profile == Profile::Late
426            || stack.walks_frames
427            || stack.saves_place,
428        red_zone: flags.red_zone,
429        protect: guard.is_some(),
430        // A protected function calls the one that does not come back, on the arm where the check
431        // failed, so it is not a leaf however few calls the program wrote in it. That is what
432        // takes the red zone away from it and what makes its frame leave the stack pointer where
433        // a call needs it. The later hook is a call in the same position and costs the same.
434        //
435        // The earlier one is not, and this is the one place the difference shows. It runs before
436        // the prologue has written anything, so the bytes below the stack pointer it uses are ones
437        // this function has not put anything in yet, and a leaf that keeps its locals down there
438        // stays a leaf. gcc leaves it alone too.
439        leaf: base.leaf && guard.is_none() && profile != Profile::Late,
440        ..base
441    };
442
443    // Before allocation as well, and asked here rather than where it is used because what it asks
444    // is whether anything but the branch reads the byte a comparison wrote. A virtual register is
445    // written once and a physical one is not, so after allocation that question no longer has an
446    // answer.
447    let fusable = layout::fusable(&func, machine.branch, names);
448
449    // In front of the splitting below, because what it does is take the values off the edges out of
450    // a computed `goto` and the splitting has no answer for one of those: the block they leave ends
451    // in a jump already, so neither end of the edge is somewhere a move can go.
452    split::indirect(&mut func, machine.branch, machine.insts, names);
453
454    // And after it, because what it puts a pad at is the block an address names and the pass above
455    // is what settles which block that is. The pad the prologue opens with is written much later,
456    // with the rest of the prologue, since the address it answers for is the function's own.
457    //
458    // Nothing at all on a target with nothing that marks an address as one an indirect branch may
459    // arrive at, which is the same answer the stack protector gives on a target with nowhere to
460    // keep its word, and the driver refuses the command line over it before any of this runs.
461    let landing = flags.landing.then_some(machine.insts.landing).flatten();
462    split::pads(&mut func, machine.insts, landing, names);
463
464    // Before allocation, because an edge that carries values into a block arrived at more than
465    // one way, out of a block that leaves more than one way, has nowhere to put the moves those
466    // values turn into, and the allocator asserts rather than guessing.
467    split::critical(&mut func);
468
469    // Before allocation, because how far the address of a local gets is a question about values and
470    // a value is written once only until the allocator's rewrite has been through. What is done
471    // with the answer waits until afterwards, since the liveness it is read against is the
472    // allocator's. See [`crate::slots`].
473    let reach = flags
474        .reuse
475        .then(|| slots::reach(&func, &stack.addresses, stack.locals.len(), machine.insts, names));
476
477    let called = names.resolve(func.name).to_owned();
478    let allocation = rucc_regalloc::run(&mut func, &machine.env, &called);
479    recording.pressure.record(&called, Cost::of(&allocation));
480
481    // After allocation, because the largest area in most frames is the spill slots and nothing
482    // knows how many of those there are until the allocator has finished running out of registers,
483    // and because a spill slot cannot be shared with a local until it is known there is one.
484    let share = reach.map(|reach| {
485        let widths = frame::widths(&layout, &allocation);
486        Slots::share(&func, &reach, &allocation, &stack.locals, &widths)
487    });
488    let layout = Layout { share: share.as_ref(), ..layout };
489    let frame = Frame::of(&func, &allocation, &layout);
490    let scratch = machine.env.scratch(machine.conv.int_class);
491    let protect = guard.map(|guard| Protect {
492        guard,
493        branch: machine.branch,
494        scratch: [scratch[0], scratch[1]],
495    });
496    // A target with no instruction that touches a page without changing it does nothing about the
497    // flag, which is the same answer the protector gives on a target with nowhere to keep its word.
498    // Every target this crate has a back end for has one.
499    //
500    // Or where the platform reaches the pages of every frame whatever the command line said, which
501    // is Windows. The prologue there calls a routine rather than walking, but a frame that grows
502    // while it runs is walked in the body either way: the routine takes its size in a register the
503    // allocator hands out and destroys two more, which is answerable in a prologue and not in the
504    // middle of a function, and the walk needs nothing but the two registers already held back.
505    let probe = (flags.stack_clash || machine.conv.chkstk.is_some())
506        .then_some(machine.insts.probe.as_ref())
507        .flatten()
508        .map(|probe| Probing { probe, branch: machine.branch, scratch: [scratch[0], scratch[1]] });
509    let trace = machine.conv.trace.and_then(|trace| match profile {
510        Profile::No => None,
511        Profile::Early => Some(Tracing { name: trace.early, early: true }),
512        Profile::Late => Some(Tracing { name: trace.late, early: false }),
513    });
514    // And once more for the room a patcher was promised, which is a run of the shortest
515    // instruction that does nothing and so needs the target to have one. Nothing is written on a
516    // target that does not, rather than a run of something longer: the flag counts bytes, and a
517    // patcher writing over the room starts at its front and wants every byte in it to be a place
518    // it could have started at.
519    let pad = flags.patch.any().then_some(machine.insts.pad).flatten().map(|name| Padding {
520        name,
521        before: flags.patch.before,
522        after: flags.patch.after,
523    });
524    let convention = Convention {
525        protect,
526        probe,
527        landing,
528        trace,
529        pad,
530        ..Convention::new(machine.conv, machine.insts)
531    };
532    let moves = finish(&mut func, &allocation, &frame, &stack, convention, names);
533
534    // After the moves are written, because a spill and the reload of it are written by different
535    // decisions of the allocator and what stands between the two is settled by the function they
536    // both went into. Before the layout, because the layout is where the instruction sequence
537    // stops being something a pass may edit.
538    copies::clean(&mut func, &moves, machine.shapes, machine.insts, machine.conv, names);
539
540    // After the allocator's moves have been cleaned up, because a schedule chosen around a move
541    // that is about to be taken out is a schedule built around an instruction that is not in the
542    // output. Before the layout, because the layout is the freeze: it writes the jumps the block
543    // order needs and it puts a comparison and the branch that reads it together, and neither
544    // survives an instruction being moved in afterwards. That is section 38.6's placement, and the
545    // reason it is after allocation rather than before is in [`crate::schedule`].
546    if flags.schedule {
547        schedule::insts(
548            &mut func,
549            machine.timing,
550            machine.shapes,
551            machine.flags,
552            names,
553            flags.accurate.unwrap_or(machine.timing.accurate),
554            &fusable,
555        );
556    }
557
558    // Last, because everything before this finds the blocks a function returns from by looking
559    // for the ones that go nowhere, and after this a block that falls through goes nowhere too.
560    layout::blocks(&mut func, machine.branch, names, &fusable, flags.reorder);
561
562    // After the layout rather than before it, which is the whole of what makes it safe. What a
563    // comparison leaves for the instruction behind it to read is not a register and nothing may
564    // come between the two, and the layout is the other pass that writes such a pair. Running
565    // here means there is nothing left that could put an instruction in the middle of one.
566    compare::redundant(&mut func, machine.flags, machine.shapes, names);
567    Ok(func)
568}
569
570#[cfg(test)]
571mod tests {
572    use rucc_ir::{Builder, Flags as IrFlags, Func, Opcode, Restrict, Signature, Type};
573    use rucc_target::x86_64::{REGS, SYSV, WIN64};
574
575    use super::*;
576
577    /// A function of two integers, and the block to fill.
578    fn blank(params: &[Type]) -> (Interner, Func, ir::Block, Vec<ir::Value>) {
579        let mut names = Interner::new();
580        let mut func = Func::new(names.intern("f"), Signature::new());
581        let block = func.create_block();
582        let values = params.iter().map(|&ty| func.append_param(block, ty)).collect();
583        (names, func, block, values)
584    }
585
586    #[test]
587    fn a_function_comes_out_with_no_virtual_register_left_in_it() {
588        let i32 = Type::int(32);
589        let (mut names, mut source, block, args) = blank(&[i32, i32]);
590        let mut build = Builder::new(&mut source, block);
591        let sum = build.binary(Opcode::Add, args[0], args[1], IrFlags::default());
592        build.ret(&[sum]);
593
594        let machine = Machine::x86_64(&SYSV);
595        let out =
596            compile(&mut source, &mut names, &machine, &Elsewhere::default(), Flags::default())
597                .expect("every instruction has a rule");
598
599        // `int f(int a, int b) { return a + b; }` end to end. A leaf that spills nothing needs no
600        // frame at all, so there is no prologue to see. The one move left is the one the machine's
601        // addition needs, since the sum is written into the register the left operand was read
602        // from and the return wants it in `rax`.
603        assert_eq!(
604            mir::print_func(&out, &names, &REGS),
605            "mfunc @f {\n\
606             block0:\n    \
607             $rdi($rdi) = x64.arg_val_32\n    \
608             $rsi($rsi) = x64.arg_val_32\n    \
609             $rdi(reuse 1) = x64.add_rr_32 $rdi, $rsi\n    \
610             $rax = x64.mov_rr_64 $rdi\n    \
611             x64.ret_val_32 $rax($rax)\n    \
612             x64.ret\n\
613             }\n"
614        );
615    }
616
617    /// What `-Zlowering` is built out of, and the reason it is worth a test here rather than only
618    /// in `crate::lowering`: the group has to be the thing this pipeline runs. A lowering added to
619    /// a line of this function instead of to `Step::GROUP` would still work and would still be
620    /// untested, and the record coming back with one entry per member is what catches it.
621    #[test]
622    fn every_member_of_the_lowering_group_is_run_by_the_compilation_and_says_what_it_did() {
623        let i32 = Type::int(32);
624        let (mut names, mut source, block, args) = blank(&[i32]);
625        let mut build = Builder::new(&mut source, block);
626        let swapped = build.unary(Opcode::Bswap, args[0], i32);
627        build.ret(&[swapped]);
628
629        let mut lowerings = Lowerings::asked(true);
630        compile_recording(
631            &mut source,
632            &mut names,
633            &Machine::x86_64(&SYSV),
634            &Elsewhere::default(),
635            Flags::default(),
636            &mut Recording {
637                fired: &mut Fired::new(),
638                pressure: &mut Pressure::new(),
639                lowerings: &mut lowerings,
640            },
641        )
642        .expect("every instruction has a rule");
643
644        assert_eq!(lowerings.functions(), 1);
645        let listing = lowerings.listing();
646        assert!(listing.contains("lowering f\n"), "{listing}");
647        for step in lowering::Step::GROUP {
648            assert!(listing.contains(step.name()), "{} did not run: {listing}", step.name());
649        }
650        // The byte reversal went through the group rather than reaching the selector, which has no
651        // rule for one.
652        assert!(listing.contains("bytes"), "{listing}");
653        assert!(!listing.contains("left 1"), "something the group answers for survived: {listing}");
654    }
655
656    /// What `-Zrule-coverage` is built out of: the rules a compilation fired, recorded as it went.
657    /// The second function adds to the first rather than replacing it, which is what makes one of
658    /// these files the answer for a whole command line rather than for whichever function was last.
659    #[test]
660    fn which_rules_lowered_a_function_is_something_the_compilation_can_be_asked_for() {
661        let i32 = Type::int(32);
662        let (mut names, mut source, block, args) = blank(&[i32, i32]);
663        let mut build = Builder::new(&mut source, block);
664        let sum = build.binary(Opcode::Add, args[0], args[1], IrFlags::default());
665        build.ret(&[sum]);
666
667        let machine = Machine::x86_64(&SYSV);
668        let mut fired = Fired::new();
669        compile_recording(
670            &mut source,
671            &mut names,
672            &machine,
673            &Elsewhere::default(),
674            Flags::default(),
675            &mut Recording {
676                fired: &mut fired,
677                pressure: &mut Pressure::new(),
678                lowerings: &mut Lowerings::asked(true),
679            },
680        )
681        .expect("every instruction has a rule");
682        let one = fired.count();
683        assert!(one > 0, "an add and a return went through the table and nothing was recorded");
684
685        let listing = fired.listing(&crate::select::x86_64::TABLE);
686        assert_eq!(listing.lines().filter(|line| line.starts_with("fired ")).count(), one);
687        assert!(
688            listing.contains(&format!("{one} of ")),
689            "{}",
690            listing.lines().next().unwrap_or("")
691        );
692
693        // The same rules again plus the ones a subtraction needs, into the same record.
694        let (mut names, mut source, block, args) = blank(&[i32, i32]);
695        let mut build = Builder::new(&mut source, block);
696        let difference = build.binary(Opcode::Sub, args[0], args[1], IrFlags::default());
697        build.ret(&[difference]);
698        compile_recording(
699            &mut source,
700            &mut names,
701            &machine,
702            &Elsewhere::default(),
703            Flags::default(),
704            &mut Recording {
705                fired: &mut fired,
706                pressure: &mut Pressure::new(),
707                lowerings: &mut Lowerings::asked(true),
708            },
709        )
710        .expect("every instruction has a rule");
711        assert!(fired.count() > one, "a subtraction is not an addition");
712    }
713
714    #[test]
715    fn a_function_that_calls_takes_a_frame_and_gives_it_back() {
716        let i32 = Type::int(32);
717        let (mut names, mut source, block, args) = blank(&[i32]);
718        let sig = source.add_signature(Signature::new().with_params(&[i32]).with_returns(&[i32]));
719        let callee = names.intern("g");
720        let call = Builder::new(&mut source, block).call(callee, sig, &[args[0]]);
721        let got = source[call].first_result.expect("an integer comes back");
722        let mut build = Builder::new(&mut source, block);
723        let sum = build.binary(Opcode::Add, got, args[0], IrFlags::default());
724        build.ret(&[sum]);
725
726        let machine = Machine::x86_64(&SYSV);
727        let out =
728            compile(&mut source, &mut names, &machine, &Elsewhere::default(), Flags::default())
729                .expect("every instruction has a rule");
730
731        // `int f(int a) { return g(a) + a; }`. Not a leaf, so the stack pointer moves and the
732        // register the value that outlives the call went to is one the prologue saves.
733        let text = mir::print_func(&out, &names, &REGS);
734        assert!(text.contains("x64.push_64 $rbx"), "{text}");
735        assert!(text.contains("$rbx = x64.pop_64"), "{text}");
736        assert!(text.contains("x64.call $rdi($rdi), @g"), "{text}");
737        assert!(!text.contains('%'), "{text}");
738    }
739
740    #[test]
741    fn the_other_convention_is_the_same_function_somewhere_else() {
742        let i32 = Type::int(32);
743        let (mut names, mut source, block, args) = blank(&[i32, i32]);
744        let mut build = Builder::new(&mut source, block);
745        let sum = build.binary(Opcode::Add, args[0], args[1], IrFlags::default());
746        build.ret(&[sum]);
747
748        let machine = Machine::x86_64(&WIN64);
749        let out =
750            compile(&mut source, &mut names, &machine, &Elsewhere::default(), Flags::default())
751                .expect("every instruction has a rule");
752
753        // The arguments arrive in `rcx` and `rdx` here rather than in `rdi` and `rsi`, which is
754        // the whole of what changed, and it changed because the convention was asked.
755        let text = mir::print_func(&out, &names, &REGS);
756        assert!(text.contains("$rcx($rcx) = x64.arg_val_32"), "{text}");
757        assert!(text.contains("$rdx($rdx) = x64.arg_val_32"), "{text}");
758        assert!(!text.contains("$rdi"), "{text}");
759    }
760
761    #[test]
762    fn a_function_with_a_branch_in_it_goes_through_every_pass() {
763        let i32 = Type::int(32);
764        let (mut names, mut source, entry, args) = blank(&[i32, i32]);
765        let then = source.create_block();
766        let join = source.create_block();
767        let got = source.append_param(join, i32);
768        let mut build = Builder::new(&mut source, entry);
769        let cond = build.icmp(rucc_ir::IntPred::Slt, args[0], args[1]);
770        build.br_if(cond, then, &[], join, &[args[1]]);
771        Builder::new(&mut source, then).jump(join, &[args[0]]);
772        Builder::new(&mut source, join).ret(&[got]);
773
774        let machine = Machine::x86_64(&SYSV);
775        let out =
776            compile(&mut source, &mut names, &machine, &Elsewhere::default(), Flags::default())
777                .expect("every instruction has a rule");
778
779        // The else arm is a critical edge carrying a value, so a block that nothing lowered is in
780        // there, which is the pass between lowering and allocation doing its job. Without it the
781        // allocator would have asserted rather than compiled this.
782        assert_eq!(out.block_count(), 4);
783
784        // `int f(int a, int b) { return a < b ? a : b; }` end to end, and the last pass is what
785        // this pins. The branch became a test and one jump, and it is the jump taken when the
786        // condition failed, because the arm the condition is true for is the block laid out next
787        // and a block falls into the block laid out next. The other arm is the empty block the
788        // edge splitting left, which is where the move the edge carries ended up, and it falls
789        // into the join as well. What is left is one jump in the whole function. Both arms write
790        // the join's parameter straight into `rax`, because the return at the bottom insists on
791        // that register and the moves the edges carry are free to name it.
792        let text = mir::print_func(&out, &names, &REGS);
793        assert_eq!(
794            text,
795            "mfunc @f {\n\
796             block0:\n    \
797             $rdi($rdi) = x64.arg_val_32\n    \
798             $rsi($rsi) = x64.arg_val_32\n    \
799             x64.cmp_rr_32 $rdi, $rsi\n    \
800             x64.jcc_ge block2, block1\n\
801             \nblock1:\n    \
802             $rax = x64.mov_rr_64 $rdi\n    \
803             x64.jmp block3\n\
804             \nblock2:\n    \
805             $rax = x64.mov_rr_64 $rsi, block3\n\
806             \nblock3:\n    \
807             x64.ret_val_32 $rax($rax)\n    \
808             x64.ret\n\
809             }\n"
810        );
811    }
812
813    /// A loop that swaps its two values round every time it goes, which is `gcd`, and which is
814    /// the smallest program that caught two ways of losing a value. Both were found by running
815    /// what came out rather than by reading it, and both are pinned here rather than only where
816    /// they were fixed, because what is wrong with either of them is only visible in the whole
817    /// function.
818    #[test]
819    fn a_loop_that_carries_its_values_round_keeps_all_of_them() {
820        let i32 = Type::int(32);
821        let (mut names, mut source, entry, args) = blank(&[i32, i32]);
822        let head = source.create_block();
823        let body = source.create_block();
824        let exit = source.create_block();
825        let left = source.append_param(head, i32);
826        let right = source.append_param(head, i32);
827        Builder::new(&mut source, entry).jump(head, &[args[0], args[1]]);
828        let mut build = Builder::new(&mut source, head);
829        let zero = build.iconst(i32, 0);
830        let more = build.icmp(rucc_ir::IntPred::Ne, right, zero);
831        build.br_if(more, body, &[], exit, &[left]);
832        let mut build = Builder::new(&mut source, body);
833        let rest = build.binary(Opcode::SRem, left, right, IrFlags::default());
834        build.jump(head, &[right, rest]);
835        let result = source.append_param(exit, i32);
836        Builder::new(&mut source, exit).ret(&[result]);
837
838        let machine = Machine::x86_64(&SYSV);
839        let out =
840            compile(&mut source, &mut names, &machine, &Elsewhere::default(), Flags::default())
841                .expect("every instruction has a rule");
842
843        // `int gcd(int a, int b) { while (b) { int t = a % b; a = b; b = t; } return a; }`. Two
844        // things in here were wrong and each of them returned three from a program that gcc
845        // returns forty two from.
846        //
847        // The first is in the entry block. The move the edge into the loop asks for writes `rsi`,
848        // and the second argument has to be taken out of `rsi` before it does. An edit at the end
849        // of a block used to go in front of the last instruction, on the reasoning that the last
850        // instruction is the branch, and the block's jump is not an instruction until the layout
851        // has run, so it went in front of the `arg_val` whose own move had not been made yet.
852        //
853        // The second is in the loop body. A division writes both a quotient and a remainder, and
854        // only the remainder is wanted here, so the quotient is a value nothing reads. It used to
855        // be given the same register as the remainder, because a value written early was live at
856        // one point and that point was in front of where the remainder was written. The copy that
857        // takes the quotient nowhere then landed on top of the remainder. The remainder is written
858        // early as well now, which is a separate thing the target has to say and is why both
859        // answers read `early` here: `rdx` is filled by the sign extension before the division
860        // reads its divisor, so nothing else may be sitting in it at that point either.
861        assert_eq!(
862            mir::print_func(&out, &names, &REGS),
863            "mfunc @f {\n\
864             block0:\n    \
865             $rdi($rdi) = x64.arg_val_32\n    \
866             $rsi($rsi) = x64.arg_val_32\n    \
867             $rcx = x64.mov_rr_64 $rdi, block1\n\
868             \nblock1:\n    \
869             x64.cmp_ri_32 $rsi, 0\n    \
870             x64.jcc_e block3, block2\n\
871             \nblock2:\n    \
872             $rax = x64.mov_rr_64 $rcx\n    \
873             early $rdx($rdx), early $rax($rax) = x64.idiv_rem_32 $rax($rax), $rsi\n    \
874             $rdi = x64.mov_rr_64 $rax\n    \
875             $rcx = x64.mov_rr_64 $rsi\n    \
876             $rsi = x64.mov_rr_64 $rdx\n    \
877             x64.jmp block1\n\
878             \nblock3:\n    \
879             $rax = x64.mov_rr_64 $rcx\n    \
880             x64.ret_val_32 $rax($rax)\n    \
881             x64.ret\n\
882             }\n"
883        );
884    }
885
886    /// `spec/10-backend.md` section 10.1 says `--emit=mir-final` round-trips, and a function with
887    /// a branch in it is the one where that is worth checking: after the layout has run, where a
888    /// jump goes is nowhere in the instruction, so the text has to carry it on the block and the
889    /// parser has to put it back on the block it came off.
890    #[test]
891    fn a_function_that_has_been_laid_out_reads_back_as_the_same_function() {
892        let i32 = Type::int(32);
893        let (mut names, mut source, entry, args) = blank(&[i32, i32]);
894        let then = source.create_block();
895        let join = source.create_block();
896        let got = source.append_param(join, i32);
897        let mut build = Builder::new(&mut source, entry);
898        let cond = build.icmp(rucc_ir::IntPred::Slt, args[0], args[1]);
899        build.br_if(cond, then, &[], join, &[args[1]]);
900        Builder::new(&mut source, then).jump(join, &[args[0]]);
901        Builder::new(&mut source, join).ret(&[got]);
902
903        let machine = Machine::x86_64(&SYSV);
904        let out =
905            compile(&mut source, &mut names, &machine, &Elsewhere::default(), Flags::default())
906                .expect("every instruction has a rule");
907
908        let text = mir::print_func(&out, &names, &REGS);
909        let read = rucc_mir::parse(&text, &mut names, &REGS).expect("what the printer wrote");
910        assert_eq!(mir::print(&read, &names, &REGS), text);
911    }
912
913    #[test]
914    fn a_function_this_cannot_lower_is_reported_rather_than_compiled() {
915        let f80 = Type::float(rucc_ir::Float::F80);
916        let (mut names, mut source, block, args) = blank(&[f80, Type::int(64)]);
917        Builder::new(&mut source, block).ret(&args);
918
919        // One of these comes back on the x87 stack and a pair comes back in a pair of registers,
920        // and there is no pair with that stack in it. So this is refused rather than lowered, and
921        // it is the convention that refuses it rather than anything about the instructions.
922        let machine = Machine::x86_64(&SYSV);
923        let failed =
924            compile(&mut source, &mut names, &machine, &Elsewhere::default(), Flags::default())
925                .expect_err("a long double cannot come back beside another value");
926        assert_eq!(failed.to_string(), "what this function gives back is on the x87 stack");
927    }
928
929    /// A `long double` in and a `long double` out, which is the whole of what the convention says
930    /// about the type and is two different answers rather than one.
931    ///
932    /// It arrives in the caller's argument area, so what the parameter is is the address of the
933    /// bytes and the function reads them where they are. It goes back on the x87 stack, so the
934    /// return is an `fld` and nothing else, and the value is still on that stack when the function
935    /// returns, which is the one time anything here leaves it that way.
936    ///
937    /// The addresses are gone from the instruction listing, which is [`crate::fold`]: an argument's
938    /// address is a `lea` off the stack pointer and the `fld` that reads it has room for that
939    /// address itself, so the offset the frame layout works out is written into the `fld`.
940    #[test]
941    fn a_long_double_arrives_in_memory_and_goes_back_on_the_x87_stack() {
942        let f80 = Type::float(rucc_ir::Float::F80);
943        let (mut names, mut source, block, args) = blank(&[f80, f80]);
944        let mut build = Builder::new(&mut source, block);
945        let sum = build.binary(Opcode::FAdd, args[0], args[1], IrFlags::default());
946        build.ret(&[sum]);
947
948        let machine = Machine::x86_64(&SYSV);
949        let out =
950            compile(&mut source, &mut names, &machine, &Elsewhere::default(), Flags::default())
951                .expect("every instruction has a rule");
952
953        let text = mir::print_func(&out, &names, &REGS);
954        // The two parameters, sixteen bytes apart, read out of the caller's frame rather than out
955        // of a register, and the answer left on the stack by the last instruction in the function.
956        assert!(text.contains("x64.fld_t [$rsp + 32]"), "{text}");
957        assert!(text.contains("x64.fld_t [$rsp + 48]"), "{text}");
958        assert!(!text.contains("x64.lea_64"), "an address every reader took is gone: {text}");
959        assert!(!text.contains("x64.ret_val"), "nothing comes back in a register: {text}");
960        // What comes after the `fld` is the epilogue, which gives the frame back and touches
961        // nothing in the unit, so the value is where the caller looks for it when the `ret` runs.
962        let end: Vec<&str> = text.lines().rev().skip(1).take(3).map(str::trim).collect();
963        assert_eq!(end, ["x64.ret", "$rsp = x64.add_ri_64 $rsp, 24", "x64.fld_t [$rsp]"], "{text}");
964    }
965
966    /// The whole of the second register class, end to end: two floats arrive in vector registers,
967    /// the arithmetic happens in one, and the answer goes back in the register the convention
968    /// names. Nothing here touches the general purpose file, which is the point.
969    #[test]
970    fn a_float_is_added_in_the_register_file_it_arrives_in() {
971        let f32 = Type::float(rucc_ir::Float::F32);
972        let (mut names, mut source, block, args) = blank(&[f32, f32]);
973        let mut build = Builder::new(&mut source, block);
974        let sum = build.binary(Opcode::FAdd, args[0], args[1], ir::Flags::default());
975        build.ret(&[sum]);
976
977        let machine = Machine::x86_64(&SYSV);
978        let out =
979            compile(&mut source, &mut names, &machine, &Elsewhere::default(), Flags::default())
980                .expect("every instruction has a rule");
981
982        let text = mir::print_func(&out, &names, &REGS);
983        assert!(text.contains("x64.addss_rr"), "{text}");
984        assert!(text.contains("$xmm0"), "{text}");
985        assert!(!text.contains("$rax"), "{text}");
986    }
987
988    /// A float moved between a register and memory, which is the instruction that decides which
989    /// file the value is in and is a different one from the `mov` that moves the same four bytes.
990    #[test]
991    fn a_float_read_from_memory_and_written_back_uses_the_scalar_moves() {
992        let f64 = Type::float(rucc_ir::Float::F64);
993        let (mut names, mut source, block, args) = blank(&[Type::PTR, f64]);
994        let mut build = Builder::new(&mut source, block);
995        let info = rucc_ir::MemInfo {
996            size: 8,
997            align: 8,
998            order: rucc_ir::MemOrder::NotAtomic,
999            tbaa: None,
1000            owns: 0,
1001            restrict: Restrict::NONE,
1002        };
1003        let read = build.load(f64, args[0], info, ir::Flags::default());
1004        let sum = build.binary(Opcode::FAdd, read, args[1], ir::Flags::default());
1005        build.store(sum, args[0], info, ir::Flags::default());
1006        build.ret(&[sum]);
1007
1008        let machine = Machine::x86_64(&SYSV);
1009        let out =
1010            compile(&mut source, &mut names, &machine, &Elsewhere::default(), Flags::default())
1011                .expect("every instruction has a rule");
1012
1013        let text = mir::print_func(&out, &names, &REGS);
1014        assert!(text.contains("x64.movsd_rm"), "{text}");
1015        assert!(text.contains("x64.movsd_mr"), "{text}");
1016        // Not the aligned whole register move, which is what a spill uses and is the one
1017        // instruction here that would read and write more than the program asked for.
1018        assert!(!text.contains("x64.movaps_rm"), "{text}");
1019        assert!(!text.contains("x64.movaps_mr"), "{text}");
1020    }
1021
1022    /// The same journey at the format the machine only moves, which is the whole of what it can do
1023    /// with one: in from memory, back out to memory, in and out of a register, and back to the
1024    /// caller.
1025    ///
1026    /// No arithmetic, because there is no instruction for any and every one of them is a call to
1027    /// the runtime. What this says is that the value gets where a call would need it to be.
1028    #[test]
1029    fn a_quad_float_read_from_memory_and_written_back_uses_the_whole_register_move() {
1030        let quad = Type::float(rucc_ir::Float::F128);
1031        let (mut names, mut source, block, args) = blank(&[Type::PTR, quad]);
1032        let mut build = Builder::new(&mut source, block);
1033        let info = rucc_ir::MemInfo {
1034            size: 16,
1035            align: 16,
1036            order: rucc_ir::MemOrder::NotAtomic,
1037            tbaa: None,
1038            owns: 0,
1039            restrict: Restrict::NONE,
1040        };
1041        let read = build.load(quad, args[0], info, ir::Flags::default());
1042        build.store(args[1], args[0], info, ir::Flags::default());
1043        build.ret(&[read]);
1044
1045        let machine = Machine::x86_64(&SYSV);
1046        let out =
1047            compile(&mut source, &mut names, &machine, &Elsewhere::default(), Flags::default())
1048                .expect("every instruction has a rule");
1049
1050        let text = mir::print_func(&out, &names, &REGS);
1051        assert!(text.contains("x64.movaps_rm"), "{text}");
1052        assert!(text.contains("x64.movaps_mr"), "{text}");
1053        assert!(text.contains("x64.arg_val_f128"), "{text}");
1054        assert!(text.contains("x64.ret_val_f128"), "{text}");
1055        // In the vector file and not the general purpose one, which is where the two eightbytes
1056        // of this value would have gone if it had been classified as a pair of integers.
1057        assert!(text.contains("$xmm0"), "{text}");
1058        assert!(!text.contains("gpr($rax)"), "{text}");
1059    }
1060
1061    /// Both conversions between an unsigned word and a `long double`, all the way to instructions.
1062    ///
1063    /// What the rewrite writes and what the x87 group in [`crate::lower`] has are two lists put
1064    /// together in two different files, and this is where they meet. The rewrite is free to write
1065    /// any instruction it likes at any width, and at this width almost none of them can be
1066    /// lowered, so a correction written the way the narrower ones are written would pass its own
1067    /// tests next door and fail here.
1068    #[test]
1069    fn an_unsigned_word_and_a_long_double_convert_into_each_other() {
1070        let f80 = Type::float(rucc_ir::Float::F80);
1071        let (mut names, mut source, block, args) = blank(&[Type::PTR, Type::int(64)]);
1072        let mut build = Builder::new(&mut source, block);
1073        let info = rucc_ir::MemInfo {
1074            size: 16,
1075            align: 16,
1076            order: rucc_ir::MemOrder::NotAtomic,
1077            tbaa: None,
1078            owns: 0,
1079            restrict: Restrict::NONE,
1080        };
1081        let wide = build.unary(Opcode::UIToFP, args[1], f80);
1082        build.store(wide, args[0], info, ir::Flags::default());
1083        let read = build.load(f80, args[0], info, ir::Flags::default());
1084        let back = build.unary(Opcode::FPToUI, read, Type::int(64));
1085        build.ret(&[back]);
1086
1087        let machine = Machine::x86_64(&SYSV);
1088        let out =
1089            compile(&mut source, &mut names, &machine, &Elsewhere::default(), Flags::default())
1090                .expect("every instruction has a rule");
1091
1092        let text = mir::print_func(&out, &names, &REGS);
1093        // The signed conversions in both directions, the constants that correct them, and the
1094        // multiply that takes a correction or leaves it. Nothing here reaches a wide register.
1095        assert!(text.contains("x64.fild_ll"), "the integer goes in as a signed one: {text}");
1096        assert!(text.contains("x64.fistp_ll"), "and comes back out as one: {text}");
1097        assert!(text.contains("x64.fmul_p"), "the correction is taken or not: {text}");
1098        assert!(text.contains("x64.fadd_p"), "and applied one way: {text}");
1099        assert!(text.contains("x64.fsubr_p"), "and the other: {text}");
1100        assert!(!text.contains("xmm"), "no part of this is in a vector register: {text}");
1101    }
1102
1103    /// A value carried from one register file to the other, which is what a conversion is. The
1104    /// instruction reads one file and writes the other, and the allocator has to know that: a
1105    /// conversion whose operands were both said to be in one file would put the answer in a
1106    /// register the next instruction cannot reach.
1107    #[test]
1108    fn a_conversion_carries_the_value_into_the_other_register_file() {
1109        let f64 = Type::float(rucc_ir::Float::F64);
1110        let (mut names, mut source, block, args) = blank(&[f64]);
1111        let mut build = Builder::new(&mut source, block);
1112        let whole = build.unary(Opcode::FPToSI, args[0], Type::int(32));
1113        let back = build.unary(Opcode::SIToFP, whole, f64);
1114        build.ret(&[back]);
1115
1116        let machine = Machine::x86_64(&SYSV);
1117        let out =
1118            compile(&mut source, &mut names, &machine, &Elsewhere::default(), Flags::default())
1119                .expect("every instruction has a rule");
1120
1121        // The conversion that cuts towards zero rather than the one that rounds, which is what C
1122        // means by the cast, and the argument and the answer in the register the convention names.
1123        let text = mir::print_func(&out, &names, &REGS);
1124        assert!(text.contains("x64.cvttsd2si_32"), "{text}");
1125        assert!(text.contains("x64.cvtsi2sd_32"), "{text}");
1126        assert!(text.contains("$xmm0"), "{text}");
1127    }
1128
1129    /// The other way of putting a float and a number together, which keeps every bit rather than
1130    /// the value and is what a program reading the bits of a `double` asks for.
1131    #[test]
1132    fn a_bitcast_between_the_files_is_the_move_that_changes_no_bit() {
1133        let f64 = Type::float(rucc_ir::Float::F64);
1134        let (mut names, mut source, block, args) = blank(&[f64]);
1135        let mut build = Builder::new(&mut source, block);
1136        let bits = build.unary(Opcode::Bitcast, args[0], Type::int(64));
1137        build.ret(&[bits]);
1138
1139        let machine = Machine::x86_64(&SYSV);
1140        let out =
1141            compile(&mut source, &mut names, &machine, &Elsewhere::default(), Flags::default())
1142                .expect("every instruction has a rule");
1143
1144        let text = mir::print_func(&out, &names, &REGS);
1145        assert!(text.contains("x64.movq_from_xmm"), "{text}");
1146        assert!(!text.contains("cvt"), "{text}");
1147    }
1148
1149    /// A comparison whose answer the machine has a condition for, which is most of them.
1150    #[test]
1151    fn a_float_comparison_is_the_compare_and_the_byte_a_condition_sets() {
1152        let f64 = Type::float(rucc_ir::Float::F64);
1153        let (mut names, mut source, block, args) = blank(&[f64, f64]);
1154        let mut build = Builder::new(&mut source, block);
1155        let less = build.fcmp(rucc_ir::FloatPred::Olt, args[0], args[1], ir::Flags::default());
1156        let wide = build.unary(Opcode::ZExt, less, Type::int(32));
1157        build.ret(&[wide]);
1158
1159        let machine = Machine::x86_64(&SYSV);
1160        let out =
1161            compile(&mut source, &mut names, &machine, &Elsewhere::default(), Flags::default())
1162                .expect("every instruction has a rule");
1163
1164        // Less than is greater than with the operands the other way round, and the machine has no
1165        // condition for the first, so the rule that fires is the one that swaps them.
1166        let text = mir::print_func(&out, &names, &REGS);
1167        assert!(text.contains("x64.ucomisd_set_a"), "{text}");
1168    }
1169
1170    /// The two comparisons that are not one condition. An ordered equality is the flag that means
1171    /// equal or unordered and the flag that says it was ordered, so the instruction writes a
1172    /// second byte and reads it back, and what this is about is that the second byte gets a
1173    /// register of its own rather than the one the answer is in.
1174    #[test]
1175    fn an_equality_between_floats_gets_a_register_for_the_byte_it_needs_twice() {
1176        let f64 = Type::float(rucc_ir::Float::F64);
1177        let (mut names, mut source, block, args) = blank(&[f64, f64]);
1178        let mut build = Builder::new(&mut source, block);
1179        let same = build.fcmp(rucc_ir::FloatPred::Oeq, args[0], args[1], ir::Flags::default());
1180        let wide = build.unary(Opcode::ZExt, same, Type::int(32));
1181        build.ret(&[wide]);
1182
1183        let machine = Machine::x86_64(&SYSV);
1184        let out =
1185            compile(&mut source, &mut names, &machine, &Elsewhere::default(), Flags::default())
1186                .expect("every instruction has a rule");
1187
1188        let text = mir::print_func(&out, &names, &REGS);
1189        let line = text
1190            .lines()
1191            .find(|line| line.contains("x64.ucomisd_set_e_and_np"))
1192            .expect("the rule for an ordered equality fired");
1193        let written: Vec<&str> = line
1194            .split_once('=')
1195            .expect("the instruction writes something")
1196            .0
1197            .split(',')
1198            .map(str::trim)
1199            .collect();
1200        assert_eq!(written.len(), 2, "{line}");
1201        assert_ne!(written[0], written[1], "{line}");
1202    }
1203
1204    /// A float literal, which is the last float thing a C program writes that had no lowering.
1205    /// The rewrite that puts it in reach is in `expand`, and what this is about is that the two
1206    /// halves meet: the constant is spelled in a general purpose register and moved across.
1207    #[test]
1208    fn a_float_constant_is_the_bits_in_a_register_and_the_move_that_carries_them_over() {
1209        let f64 = Type::float(rucc_ir::Float::F64);
1210        let (mut names, mut source, block, _) = blank(&[]);
1211        let mut build = Builder::new(&mut source, block);
1212        let half = build.fconst(f64, 0x3fe0_0000_0000_0000);
1213        build.ret(&[half]);
1214
1215        let machine = Machine::x86_64(&SYSV);
1216        let out =
1217            compile(&mut source, &mut names, &machine, &Elsewhere::default(), Flags::default())
1218                .expect("every instruction has a rule");
1219
1220        let text = mir::print_func(&out, &names, &REGS);
1221        assert!(text.contains("x64.mov_ri_64"), "{text}");
1222        assert!(text.contains("x64.movq_to_xmm"), "{text}");
1223    }
1224
1225    /// A negation, which is the sign bit flipped and nothing else touched, so what the machine
1226    /// does is an exclusive or in a general purpose register rather than any float instruction.
1227    #[test]
1228    fn a_negation_is_the_sign_bit_flipped_and_no_float_instruction_at_all() {
1229        let f64 = Type::float(rucc_ir::Float::F64);
1230        let (mut names, mut source, block, args) = blank(&[f64]);
1231        let mut build = Builder::new(&mut source, block);
1232        let less = build.unary(Opcode::FNeg, args[0], f64);
1233        build.ret(&[less]);
1234
1235        let machine = Machine::x86_64(&SYSV);
1236        let out =
1237            compile(&mut source, &mut names, &machine, &Elsewhere::default(), Flags::default())
1238                .expect("every instruction has a rule");
1239
1240        let text = mir::print_func(&out, &names, &REGS);
1241        assert!(text.contains("x64.xor_rr_64"), "{text}");
1242        assert!(!text.contains("sub"), "a negation is not a subtraction: {text}");
1243    }
1244
1245    #[test]
1246    fn the_flags_reach_the_frame() {
1247        let i32 = Type::int(32);
1248        let (mut names, mut source, block, args) = blank(&[i32]);
1249        Builder::new(&mut source, block).ret(&[args[0]]);
1250
1251        let machine = Machine::x86_64(&SYSV);
1252        let flags = Flags { frame_pointer: true, profile: Profile::No, ..Flags::default() };
1253        let out = compile(&mut source, &mut names, &machine, &Elsewhere::default(), flags)
1254            .expect("every instruction has a rule");
1255
1256        // A function that keeps a frame pointer keeps it whether it needed one or not, which is
1257        // what `-fno-omit-frame-pointer` is for and is the only thing this test is about.
1258        let text = mir::print_func(&out, &names, &REGS);
1259        assert!(text.contains("x64.push_64 $rbp"), "{text}");
1260        assert!(text.contains("$rbp = x64.mov_rr_64 $rsp"), "{text}");
1261    }
1262
1263    #[test]
1264    fn a_target_says_which_machine_it_is_and_which_convention_it_uses() {
1265        let triple = |text: &str| text.parse::<rucc_target::Triple>().expect("a triple");
1266        let info = TargetInfo::new(triple("x86_64-unknown-linux-gnu"));
1267        let machine = Machine::for_target(&info).expect("x86-64 is the target this crate covers");
1268        assert!(std::ptr::eq(machine.conv, &SYSV));
1269
1270        let info = TargetInfo::new(triple("x86_64-pc-windows-msvc"));
1271        let machine = Machine::for_target(&info).expect("x86-64 is the target this crate covers");
1272        assert!(std::ptr::eq(machine.conv, &WIN64));
1273
1274        // Not a target this crate has a backend for, and saying so is the whole point: a caller
1275        // that got a machine here would compile x86-64 instructions for an AArch64 program.
1276        let info = TargetInfo::new(triple("aarch64-unknown-linux-gnu"));
1277        assert!(Machine::for_target(&info).is_none());
1278    }
1279}