rucc_codegen/lower.rs
1//! The selector: an IR function becomes a machine IR function.
2//!
3//! Design: `spec/10-backend.md` sections 10.2 and 10.3.
4//!
5//! What the matcher in [`crate::select`] does is answer one question about one term. What this
6//! does is ask it: walk a function, decide which terms are worth asking about, and build machine
7//! instructions out of what comes back. Nothing here decides what an IR term lowers to. That is
8//! in `rules/x86-64.rules` and it is proved before it is used, which is the whole point of the
9//! arrangement and the reason this file is short.
10//!
11//! # What it does with an instruction
12//!
13//! It tries the ways the instruction can be shown to the matcher, in order, and takes the first
14//! that a rule fires on. [`crate::term`] is what a way of showing one is, and the order is the
15//! most specific first: an operand that is a constant is offered as a constant before it is
16//! offered as a register, and an operand computed by an instruction of its own is offered as
17//! that instruction before it is offered as a register. A rule that wants an immediate too wide
18//! for the machine has a guard that turns it down, and the search carries on to the way of
19//! showing it that puts the constant in a register, which is the right answer and is one nobody
20//! had to write down.
21//!
22//! A constant is not lowered where it is written. It is materialized where a register for it is
23//! first wanted, which is what keeps a constant that every use folded into an immediate from
24//! leaving a dead instruction behind, and it also gives the value the shortest live range it
25//! could have. The instruction that materializes it comes from the rule set like everything else.
26//!
27//! # What it does not do yet
28//!
29//! Everything is in the general purpose registers, because every rule in the set is about an
30//! integer, so a call that passes a `double` and a function that returns one are both reported
31//! rather than lowered. So is an argument that travels on the stack, on either side of a call,
32//! and so is a call through an address rather than to a name.
33//!
34//! # A call
35//!
36//! Not a rule, because a rule pattern sees one term and what a call's operands are is whatever
37//! the signature made them. [`crate::abi`] builds one instead, out of the same description of the
38//! convention the arguments come from: the values it passes are reads constrained to the
39//! registers the convention places them in, what comes back is a write constrained to the
40//! register it comes back in, and every other register the callee is free to destroy is a write
41//! of that register and nothing else, which is all the allocator needs to keep a value out of it.
42//!
43//! What that costs the frame is an argument area, and nothing after selection could work out how
44//! big, so the size of the widest call is given back with the function. A function that makes no
45//! call at all is a leaf, and a leaf is the function that may use the red zone.
46//!
47//! # Where a block goes
48//!
49//! On the block, which is what machine IR does with an edge and is why the branches need no more
50//! rule language than the arithmetic did. A rule never names a block, so an unconditional jump
51//! has no rule at all and a conditional branch has one that is about its condition and nothing
52//! else. The arms are copied across after the block is filled, arguments and all, because an
53//! argument that is a constant is materialized where a register for it is first wanted and the
54//! end of the block is where an edge wants it.
55//!
56//! What this leaves behind is a function whose blocks are in the order the IR held them and whose
57//! branches are still branches on a register. Turning one into a `test` and a `jcc` is the block
58//! layout's, since which of the two arms falls through is the layout's answer, and [`crate::split`]
59//! has to run before allocation so that every edge carrying a value has somewhere to put it.
60//!
61//! A store and a return are the two things here that write no register. A store is emitted like
62//! everything else and the only difference is that there is no result to put anywhere, so the
63//! operands the target describes are all reads. A return is the same, and what it is for is its
64//! one operand: the target constrains it to the register the caller reads the value out of, and
65//! the allocator is what gets it there. The instruction that leaves is not chosen here at all,
66//! because the epilogue has to give the frame back first and [`crate::finish`] writes that after
67//! allocation, so a return of nothing is lowered to nothing.
68//!
69//! The entry block is the one block whose parameters are not block parameters here. They are the
70//! function's arguments, they are already somewhere when it starts, and [`crate::abi`] is what
71//! says where. An argument that arrives on the stack is reported rather than read, because where
72//! the stack put it is a distance into a frame and no frame exists until after allocation.
73//!
74//! Blocks are walked in the order the function holds them and a value is expected to be defined
75//! before it is used, which is true of the IR this is given because every pass before it keeps
76//! definitions ahead of uses.
77
78use std::collections::HashSet;
79use std::fmt;
80
81use rucc_base::{Interner, Symbol};
82use rucc_diag::Span;
83use rucc_ir::{
84 Abi, AsmOperand, AsmOperands, Block, Def, Extra, Flags, FloatPred, Func, Inst, Linkage,
85 MemOrder, Opcode, Param, PrefetchHint, RmwOp, Type, Value, Visibility,
86};
87use rucc_mir as mir;
88use rucc_target::x86_64;
89use rucc_target::{CallRegs, Constraint, OperandDesc, PhysReg, RegClass, Role, Segment};
90
91use crate::abi::{self, Missing, Refused};
92use crate::coverage::Fired;
93use crate::elsewhere::Elsewhere;
94use crate::frame::{Layout, Local};
95use crate::select::{Match, Piece, Rule, Table};
96use crate::term::{MAX_ARGS, PLAIN, Plan, Shown, Term, Terms};
97use crate::varargs;
98
99/// The prefix a rule file puts in front of a machine term, which says which target it belongs
100/// to and is not part of the opcode.
101pub(crate) const PREFIX: &str = "x64.";
102
103/// The instruction a global offset table slot is read with.
104///
105/// Not in [`x86_64::FRAME`] with the other opcodes this file names, because a frame has no use for
106/// it. It is spelled out here because the relocation it takes is only legal on a `mov` with a REX
107/// prefix, so the width is part of the requirement rather than a choice.
108const GOT_LOAD: &str = "mov_rm_64";
109
110/// How wide an address is on this target, which is the width a cast between a pointer and an
111/// integer has to be at for the cast to be nothing.
112const ADDRESS_BITS: u32 = 64;
113
114/// How many bytes a `long double` takes in memory, and what it is aligned to, which are the same
115/// number and are both more than the ten bytes that mean anything.
116///
117/// The psABI's answer rather than a choice here. `sizeof (long double)` is sixteen on this
118/// machine, so an array of them is laid out this way whatever a slot holding one does, and a slot
119/// that agreed with the array is one fewer thing to get wrong.
120const X87_BYTES: u32 = 16;
121
122/// How many values the x87 stack holds at once.
123///
124/// Eight, which is the machine's number rather than a choice here, and it matters in one place:
125/// the parameters of a block are copied through the stack so that they all move at once, and a
126/// block with more of them than this has nowhere to put the ninth.
127const X87_DEPTH: usize = 8;
128
129/// How far into the buffer of a `__builtin_setjmp` each of the four words it writes is.
130///
131/// The first three are gcc's, measured against gcc 16.2.0 on x86-64 at `-O0`: the frame pointer,
132/// the address control comes back to, and the stack pointer, in that order. The fourth is this
133/// compiler's own. gcc has no word for the answer because it writes a second block that sets the
134/// answer to one and is arrived at from the restore, and this writes the answer through memory
135/// instead, for the reason [`Lowering::saves_place`] gives.
136///
137/// None of the four is an interface. The buffer is the program's memory and its five words are
138/// the front end's promise about how much of it there is, but nothing except the matching restore
139/// ever reads a word of it, and a buffer written by one compiler was never going to be one another
140/// compiler could come back through.
141const JUMP_FRAME: i32 = 0;
142
143/// Where the address control comes back to is. See [`JUMP_FRAME`].
144const JUMP_PC: i32 = 8;
145
146/// Where the stack pointer is. See [`JUMP_FRAME`].
147const JUMP_STACK: i32 = 16;
148
149/// Where the address of the word the answer arrives in is. See [`JUMP_FRAME`].
150const JUMP_ANSWER: i32 = 24;
151
152/// How many bytes the word a `__builtin_setjmp` answers with takes in the frame, and what it is
153/// aligned to, which are the same number because it is one machine word.
154const JUMP_WORD: u32 = 8;
155
156/// How many registers the restore needs to hold things in while it puts the frame back.
157///
158/// Four, and every one of them is a register nothing else in the function may be in, which is why
159/// they are counted here rather than asked for one at a time. See [`Lowering::comes_back`].
160const JUMP_REGS: usize = 4;
161
162/// How many bytes a value passes through on its way between a register and the x87 stack.
163///
164/// Eight, because the widest thing that crosses is a `double` or a sixty four bit integer, and
165/// nothing crosses at eighty bits: a value that wide is already in the frame and the stack reaches
166/// it where it is.
167const X87_CROSSING: u32 = 8;
168
169/// Where the rounding field of the x87 control word is and what it has to be set to for the unit
170/// to cut towards zero, which is the one rounding C asks for that the unit does not do by default.
171///
172/// Both bits on is truncate. The field is ORed into the word that was already there rather than
173/// written over it, so the precision control and the exception masks somebody else set stay set.
174const X87_TRUNCATE: i64 = 0x0c00;
175
176/// Whether a type is the one this machine has no register for.
177///
178/// Only the eighty bit float is, and that is a fact about x86-64 rather than about floats: every
179/// other scalar the front end produces is in a general purpose register or a vector one, and this
180/// one is on the x87 stack while it is being worked on and in memory the rest of the time. So it
181/// has no place in [`Lowering::class_of`] and no name in [`crate::term`], and every instruction
182/// that touches one is written out by hand in this file.
183fn on_x87(ty: Type) -> bool {
184 ty.is_scalar() && ty.is_float() && ty.bits() == 80
185}
186
187/// Where one operand of an assembly statement is, on each side of the assembly.
188///
189/// Two registers rather than one, because an operand written `+` is a value that arrives and a
190/// value that leaves and those are two values. The machine IR has one definition per register by
191/// construction, so an instruction of the template that reads the operand and writes it has to name
192/// a different register in each place, and what makes the two one register in the end is the
193/// [`Constraint::Reuse`] the instruction's description carries: the allocator reads it, gives both
194/// the same physical register, and copies the incoming value somewhere first when something else is
195/// still using it.
196///
197/// Most operands have one of the two. An input has only a place it is read from and an output
198/// written `=` has only a place it is written to, and asking either of them for the other is an
199/// operand read where the opcode writes or written where it reads, which [`Lowering::placed`]
200/// refuses.
201#[derive(Debug, Clone, Copy, Default, PartialEq, Eq)]
202struct Place {
203 /// The register the value arrives in, for an operand something reads.
204 read: Option<mir::Reg>,
205 /// The register the value leaves in, for an operand something writes.
206 write: Option<mir::Reg>,
207}
208
209/// Whether that operand of the statement is one the assembly may read, and so where a read of it
210/// gets its value from.
211///
212/// [`bound`] asks this question of an operand a constraint letter named and this asks it of one the
213/// template numbered, which is the same question twice because a two-address instruction reaches
214/// its first source both ways. `mulq %3` reaches `rax` by the letter on the output and libgmp says
215/// what is in it with `"%0"` on an input. `addq %5,%q1` reaches its first source by numbering the
216/// output, and libgmp says what is in it with `"0"` on an input in the same way.
217///
218/// So an output written `=` has no value of its own and is still readable when an input is tied to
219/// it, and the value the read wants is that input's. An output written `+` carries its own value
220/// and answers with that. An output nothing is tied to answers `None`, which is a program that told
221/// the compiler the assembly only writes the operand while the instruction reads it before it
222/// writes it, and is refused where it is asked.
223fn read_as(list: &[AsmOperand], index: usize) -> Option<Value> {
224 let operand = list.get(index)?;
225 if operand.value.is_some() {
226 return operand.value;
227 }
228 operand.result?;
229 list.iter().find(|entry| entry.tied == Some(index)).and_then(|entry| entry.value)
230}
231
232/// Which of an assembly statement's operands is in that register, for an instruction that reaches
233/// the register without its text saying so.
234///
235/// The constraint letter is what says so, and it is the only thing in such a statement that could:
236/// `"=a"` is an output in `rax` and `"c"` is an input in `rcx`, and a register nothing names is a
237/// register nobody has said anything about. So a write looks among the outputs and a read among the
238/// inputs, and an output written `+` answers for either, since it is read before it is written.
239///
240/// The other way a read of such a register is said is a matching constraint. `"=a"` on an output
241/// and `"0"` on an input is the program saying that one register holds the input on the way in and
242/// the output on the way out, and it is how a statement fills a register the instruction reads and
243/// writes without writing the register down twice. The letter is on the output, which has no value
244/// to read, and the value is on the input, which has no letter, so neither of them answers this on
245/// its own and the answer is the input: what a read wants is the register the value arrived in, and
246/// that is the input's place.
247///
248/// `None` is a register the instruction uses and the statement put nothing in, which is the usual
249/// answer rather than an unusual one. `cpuid` writes four registers and a program that wanted one
250/// of them names one. See [`Lowering::spare`], which is where that one goes.
251fn bound(list: &[AsmOperand], reg: PhysReg, role: Role) -> Option<usize> {
252 let letter = |operand: &AsmOperand| operand.fixed.and_then(x86_64::gpr_letter);
253 let named = list.iter().position(|operand| {
254 letter(operand) == Some(reg)
255 && if role.is_def() { operand.result.is_some() } else { operand.value.is_some() }
256 });
257 if named.is_some() || role.is_def() {
258 return named;
259 }
260 list.iter().position(|operand| {
261 operand.value.is_some()
262 && operand
263 .tied
264 .is_some_and(|at| list.get(at).is_some_and(|out| letter(out) == Some(reg)))
265 })
266}
267
268/// Why a function could not be lowered.
269///
270/// One reason and then nothing. A function with no rule for something in it is a function this
271/// cannot finish, and the second thing it could not lower is not news.
272#[derive(Debug, Clone, PartialEq, Eq)]
273pub enum Unsupported {
274 /// An instruction no rule fires on.
275 Inst {
276 /// The instruction that stopped it.
277 inst: Inst,
278 /// What the rule file would call it, or nothing if the rule language has no name for it
279 /// at all, which is what an instruction at a width nothing is written about looks like.
280 term: Option<&'static str>,
281 /// The opcode, which is what gets named when the rule language has no word for it.
282 ///
283 /// An opcode the rule language has no word for is exactly the opcode no rule lowers, so
284 /// without this the message would be empty in every case where somebody needs it.
285 opcode: Opcode,
286 /// What it produces, or nothing for an instruction that is only an effect.
287 ty: Option<Type>,
288 },
289 /// A parameter that does not arrive somewhere this can bring it in from.
290 ///
291 /// Not an instruction, which is why it is a separate arm: it is a fact about the signature
292 /// and there is nothing in the body of the function to point at.
293 Argument {
294 /// Its position in the signature.
295 index: usize,
296 /// What is wrong with where it arrives.
297 missing: Missing,
298 },
299 /// A call that passes or gives back a value this cannot put where the convention wants it.
300 Call {
301 /// The call.
302 inst: Inst,
303 /// Which value, and what is wrong with where it travels.
304 refused: Refused,
305 },
306 /// A `return` this cannot put where the convention wants it.
307 ///
308 /// A separate arm from [`Unsupported::Inst`] because it is not an instruction no rule fires
309 /// on. A return of more than one value is built from the convention rather than matched, the
310 /// same way a call is, so what goes wrong with one is what goes wrong with a call and not the
311 /// absence of a rule.
312 Returned {
313 /// The `return`.
314 inst: Inst,
315 /// What is wrong with where one of the values travels.
316 missing: Missing,
317 },
318 /// A stack slot the frame cannot give the bytes it asked for.
319 ///
320 /// Not an instruction no rule covers. An `alloca` is built here rather than matched, so what
321 /// goes wrong with one is what the frame can and cannot hold rather than what the rules spell.
322 Dynamic {
323 /// The `alloca`.
324 inst: Inst,
325 /// What the frame could not do about it.
326 growing: Growing,
327 },
328 /// More parameters of a type that travels on the x87 stack than the stack is deep.
329 ///
330 /// Not an instruction either, for the reason a function's parameter is not one: it is a fact
331 /// about the block and there is nothing in the block to point at. What crosses an edge for one
332 /// of these is the address of where the value is, and the block copies the bytes into a slot
333 /// of its own, all of them through the stack at once so that a block carrying two of them
334 /// swapped is copied in an order that is right. Eight is as many as the stack holds, and a
335 /// ninth would have to be copied before or after the rest, which is the order that could be
336 /// wrong.
337 Phi {
338 /// Which block it arrives at.
339 block: Block,
340 /// How many of them arrive there, which is the whole of what is wrong.
341 count: usize,
342 /// What they are.
343 ty: Type,
344 },
345 /// An `asm` statement this cannot build.
346 ///
347 /// Not an instruction no rule fires on, for the reason a call is not one: what it stands for is
348 /// whatever its template says, and no pattern over terms can read a string.
349 Assembly {
350 /// The `inline_asm`.
351 inst: Inst,
352 /// What about it is not built here yet.
353 refused: Written,
354 },
355}
356
357/// What about an `asm` statement is not built yet.
358#[derive(Debug, Clone, Copy, PartialEq, Eq)]
359pub enum Written {
360 /// A template with instructions in it.
361 Template,
362 /// An `asm goto`, whose labels make the statement a terminator.
363 Goto,
364 /// An operand this cannot put where the constraint says it goes.
365 Operand,
366 /// A clobber list naming something this has no register for.
367 Clobber,
368}
369
370impl Written {
371 /// The rest of the sentence that starts with the statement.
372 #[must_use]
373 pub fn why(self) -> &'static str {
374 match self {
375 // The template is the assembler's to read and there is no assembler here yet, so a
376 // template with anything in it is a string nothing can turn into bytes. An empty one is
377 // no instructions, and no instructions is something this can write.
378 Written::Template => "has instructions in its template, which nothing here assembles",
379 Written::Goto => "jumps to a label, which nothing here builds an edge for",
380 Written::Operand => "has an operand this cannot place",
381 Written::Clobber => "says it destroys a register this has no name for",
382 }
383 }
384}
385
386/// What the frame could not do about a stack slot.
387#[derive(Debug, Clone, Copy, PartialEq, Eq)]
388pub enum Growing {
389 /// An object of a size the number a frame counts bytes in does not reach.
390 Huge,
391 /// A variable length array wanting more alignment than a call leaves the stack pointer with.
392 ///
393 /// Rounding the stack pointer down again after the bytes have been taken would put it
394 /// somewhere no constant reaches the rest of the frame from, so a frame like this needs a
395 /// second base register held for the whole of the function. Nothing here holds one.
396 ///
397 /// [`crate::expand::rounds`] takes the array away before this sees it, by asking for the
398 /// alignment in extra bytes and handing out an address inside them, so what is left of this
399 /// is IR that arrived without going through that pass and the fixed local in
400 /// [`crate::pipeline`] that wants the same thing from the other side.
401 Aligned,
402}
403
404impl Growing {
405 /// The rest of the sentence that starts with the slot.
406 #[must_use]
407 pub fn why(self) -> &'static str {
408 match self {
409 Growing::Huge => "is more bytes than a frame counts",
410 Growing::Aligned => {
411 "wants more alignment than the stack pointer is left on, which needs a base \
412 register nothing here keeps"
413 }
414 }
415 }
416}
417
418impl Unsupported {
419 /// The instruction it is about, or nothing for the one arm that is about a signature.
420 ///
421 /// What a caller wants this for is the span. The function knows where every instruction in
422 /// it came from, so a caller holding both can point a message at the line somebody wrote
423 /// rather than at the file as a whole, and nothing here has to carry a span of its own.
424 pub fn inst(&self) -> Option<Inst> {
425 match *self {
426 Unsupported::Inst { inst, .. }
427 | Unsupported::Call { inst, .. }
428 | Unsupported::Returned { inst, .. }
429 | Unsupported::Dynamic { inst, .. }
430 | Unsupported::Assembly { inst, .. } => Some(inst),
431 Unsupported::Argument { .. } | Unsupported::Phi { .. } => None,
432 }
433 }
434}
435
436impl fmt::Display for Unsupported {
437 fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
438 match *self {
439 Unsupported::Inst { term: Some(term), .. } => write!(f, "no rule lowers `{term}`"),
440 Unsupported::Inst { term: None, opcode, ty: Some(ty), .. } => {
441 write!(f, "no rule lowers a `{opcode}` producing a `{ty}`")
442 }
443 Unsupported::Inst { term: None, opcode, ty: None, .. } => {
444 write!(f, "no rule lowers a `{opcode}`")
445 }
446 Unsupported::Argument { index, missing } => {
447 write!(f, "parameter {index} {}", missing.why())
448 }
449 Unsupported::Call { refused: Refused { argument: Some(index), missing }, .. } => {
450 write!(f, "argument {index} of this call {}", missing.why())
451 }
452 Unsupported::Call { refused: Refused { argument: None, missing }, .. } => {
453 write!(f, "what this call gives back {}", missing.why())
454 }
455 Unsupported::Returned { missing, .. } => {
456 write!(f, "what this function gives back {}", missing.why())
457 }
458 Unsupported::Dynamic { growing, .. } => {
459 write!(f, "this local {}", growing.why())
460 }
461 Unsupported::Phi { block, count, ty } => {
462 let block = block.index();
463 write!(
464 f,
465 "block{block} takes {count} parameters of type `{ty}` and only {X87_DEPTH} can cross an edge at once"
466 )
467 }
468 Unsupported::Assembly { refused, .. } => write!(f, "this `asm` {}", refused.why()),
469 }
470 }
471}
472
473impl std::error::Error for Unsupported {}
474
475/// A lowered function, and what the frame needs that the machine IR does not hold.
476#[derive(Debug)]
477pub struct Lowered {
478 /// The function, in machine instructions.
479 pub func: mir::Func,
480 /// What it wants its stack to look like, which is separate from the function so that the two
481 /// can be read and written at the same time.
482 pub stack: Stack,
483 /// Which rules of the table lowered it, which is what `-Zrule-coverage` asks for and what
484 /// `crate::coverage` writes down.
485 pub fired: Fired,
486 /// Which machine IR block each IR block became, indexed by the IR block's own index, and
487 /// nothing for a block the walk never reached.
488 ///
489 /// Here because it is the only place the correspondence exists. Selection makes one block per
490 /// block, in the same order and with the arms in the same order, so anything the IR knows
491 /// about a block can be carried down through this and nothing else, and
492 /// [`crate::weights::carry`] is what does.
493 pub blocks: Vec<Option<mir::Block>>,
494}
495
496/// What a function's stack has to hold, as far as selection is able to say.
497///
498/// All of it is answered here because selection is where a call is built and where an `alloca`
499/// is read, and nothing after it could tell what either of them needed.
500#[derive(Debug, Default)]
501pub struct Stack {
502 /// How many bytes the widest call in the function needs below the stack pointer for the
503 /// arguments it passes there, or `None` for a function that makes no call at all.
504 ///
505 /// `None` is a leaf, which is the function that may use the red zone and the one whose stack
506 /// pointer does not have to be left aligned for anybody.
507 pub calls: Option<u32>,
508 /// The memory the function asked for itself, one entry for every `alloca` in it, in the order
509 /// the walk reached them.
510 pub locals: Vec<Local>,
511 /// Which instruction computes the address of which of those locals.
512 ///
513 /// An address in the frame is a distance from the stack pointer, and there is no frame until
514 /// after allocation, so the instruction is written here with nothing in its displacement and
515 /// [`crate::finish`] writes the number in once [`crate::frame::Frame`] knows it.
516 pub addresses: Vec<(mir::Inst, usize)>,
517 /// Which instruction computes the address of a piece of memory whose size the function works
518 /// out while it runs, which is what a variable length array is.
519 ///
520 /// Waiting on [`crate::finish`] for a different number from the one the addresses above are:
521 /// the bytes were taken off the stack pointer by the instruction in front of this one, so where
522 /// they start is however much of the bottom of the frame belongs to the arguments of a call,
523 /// and that is not known until the frame is.
524 pub dynamic: Vec<mir::Inst>,
525 /// Which instruction takes those bytes off the stack pointer, one for every one of them, in the
526 /// order the walk reached them.
527 ///
528 /// Read by [`crate::finish`] on a command line that asked for the stack to be touched a page at
529 /// a time, which is the one thing that has to find these again: the bytes are in a register by
530 /// then, so the walk down to them is a loop, and a loop is written around an instruction rather
531 /// than in front of a block. Nothing else looks at them, because everything else about a frame
532 /// that grows is answered by the address the instruction below this one computes.
533 pub grown: Vec<mir::Inst>,
534 /// Where the function first moves the stack pointer while it runs, if it does at all.
535 ///
536 /// Two things are read off this. One is whether at all, which is what [`crate::frame::Layout`]
537 /// wants, because a frame that moves its stack pointer has a different shape from one that does
538 /// not and the layout is built before the instructions are looked at again. See `Growing` in
539 /// [`crate::frame`]. The other is where, so that a caller that cannot accept such a frame has
540 /// somewhere to point when it says so.
541 pub grown_at: Option<Inst>,
542 /// Which instruction reads which of the arguments the caller passed on the stack, as how far up
543 /// the caller's argument area it reads.
544 ///
545 /// Waiting on [`crate::finish`] for the same reason the addresses above are, and on one thing
546 /// more: where the caller's argument area is from inside this function depends on whether the
547 /// prologue had to force the stack pointer's alignment, so which register the load reads
548 /// through is not settled here either.
549 pub arguments: Vec<(mir::Inst, u32)>,
550 /// Whether the function asked where its own frame is, which is what `__builtin_frame_address`
551 /// and `__builtin_return_address` both start from.
552 ///
553 /// A function like that keeps a frame pointer whatever the flags say, because the register is
554 /// the answer to the first of them and the start of the walk for every depth above zero. There
555 /// is no other way to reach it: the distance from the stack pointer to the frame is a number
556 /// the layout works out, and what a walk up the chain needs is the link the prologue saved.
557 pub walks_frames: bool,
558 /// Whether the function saved a place for a `__builtin_longjmp` to come back to, which is what
559 /// `__builtin_setjmp` does.
560 ///
561 /// A function like that keeps a frame pointer whatever the flags say as well, and for a reason
562 /// of the same shape: the two registers the restore puts back are the frame pointer and the
563 /// stack pointer, and a frame that did not keep the first of them has nothing in it saying
564 /// where the caller's frame is for the epilogue to find after control has come back.
565 pub saves_place: bool,
566}
567
568impl Stack {
569 /// The layout given, with the three fields only the lowering knows the answer to filled in.
570 ///
571 /// Everything else in a layout comes from the flags the function is compiled under or from the
572 /// allocation, so this takes one and returns it rather than building one.
573 ///
574 /// A function that saved a place is not a leaf whatever it called. What a leaf buys is the red
575 /// zone, which is the words below the stack pointer nothing else may write, and a function
576 /// control comes back into from a `__builtin_longjmp` has already had something else running
577 /// down there: whatever it called and whatever that called, or a signal handler on the same
578 /// stack. Every one of those has written over the red zone by the time control arrives, so a
579 /// value this function left there would not be there any more.
580 #[must_use]
581 pub fn layout<'a>(&'a self, base: Layout<'a>) -> Layout<'a> {
582 Layout {
583 leaf: self.calls.is_none() && !self.saves_place,
584 outgoing: self.calls.unwrap_or(0),
585 locals: &self.locals,
586 grows: self.grown_at.is_some(),
587 ..base
588 }
589 }
590}
591
592/// The x86-64 machine IR for that function.
593///
594/// # Errors
595///
596/// The first instruction no rule fires on, which today is anything at a width the rule set is not
597/// written at, a parameter that does not arrive in a register this can read, or a call that
598/// passes something this cannot put where the convention wants it.
599pub fn func(
600 source: &Func,
601 names: &mut Interner,
602 conv: &'static CallRegs,
603 elsewhere: &Elsewhere,
604) -> Result<Lowered, Unsupported> {
605 Lowering::new(source, names, conv, elsewhere).run()
606}
607
608/// What the matcher settled on for one block, indexed the way the block's instructions are.
609struct Decided {
610 /// What each instruction matched, and nothing for one that matched no rule or was folded
611 /// into a later one.
612 found: Vec<Option<Match<Term>>>,
613 /// How each instruction showed its operands to the matcher, which is what says what it took.
614 plans: Vec<Option<Plan>>,
615 /// The instructions some other instruction took, which are the ones with nothing to write.
616 folded: Vec<Inst>,
617}
618
619/// One function being lowered.
620struct Lowering<'a> {
621 source: &'a Func,
622 names: &'a mut Interner,
623 out: mir::Func,
624 /// The machine register each IR value is in, once it has one.
625 regs: Vec<Option<mir::Reg>>,
626 /// For a constant that has been written into a register, the block it was written into,
627 /// which is the only block that register is any good in.
628 written: Vec<Option<mir::Block>>,
629 /// How many times each IR value is read, which is what says whether an instruction may be
630 /// folded into the one that reads it.
631 uses: Vec<u32>,
632 /// The block being filled.
633 at: Option<mir::Block>,
634 /// The machine IR block each IR block became.
635 blocks: Vec<Option<mir::Block>>,
636 /// The class an address is in, which is the general purpose one and is not a question: every
637 /// register an addressing mode names holds part of an address, and there is no machine here
638 /// that computes an address anywhere but in this file. Which class a *value* is in is
639 /// [`Lowering::class_of`], and it is a question, because a float is in the other one.
640 gpr: RegClass,
641 /// Where the convention this function is compiled for puts things, which is read for the
642 /// arguments and for the calls.
643 conv: &'static CallRegs,
644 /// Which names this function may not work an address out for itself, which is a fact about the
645 /// module and so is worked out before any of this and handed in.
646 elsewhere: &'a Elsewhere,
647 /// What the function wants its stack to look like, filled in as the walk finds out.
648 stack: Stack,
649 /// What a `va_start` in this function has to write, or nothing for a function that takes no
650 /// arguments its signature does not name.
651 ///
652 /// Worked out once, when the entry block binds the parameters, because every number in it is
653 /// about where those parameters left the walk over the argument registers and there is nowhere
654 /// else that knows.
655 varargs: Option<Varargs>,
656 /// Which of the function's stack objects each eighty bit value lives in, once it has asked
657 /// for one.
658 ///
659 /// One slot per value and it is never given back, which is what makes an eighty bit value
660 /// behave like every other one: it is written once and read wherever it is read, and no two
661 /// of them share a slot the way two of them would share a register. What is in a register is
662 /// the address, and that is worked out again at every use rather than kept, so nothing here
663 /// holds a general purpose register open across a whole function.
664 slots: Vec<Option<usize>>,
665 /// The eight bytes a value passes through between a register and the x87 stack, once
666 /// something has wanted them.
667 ///
668 /// One for the whole function, because every group that uses it is a handful of instructions
669 /// with nothing in between: the bytes are written, read straight back and never looked at
670 /// again, so a second slot would be a second slot holding the same nothing.
671 crossing: Option<usize>,
672 /// The four bytes the control word is saved in and the changed copy written to, once
673 /// something has wanted them.
674 ///
675 /// One for the whole function for the reason above, and four rather than two because it is
676 /// two words: the one the unit had and the one with the rounding field turned to truncate.
677 control: Option<usize>,
678 /// The word a `__builtin_setjmp` in this function answers with, once one has asked for it.
679 ///
680 /// One for the whole function however many saves there are in it, because the word is written
681 /// and read back with nothing in between: the save writes a zero into it and the instruction
682 /// straight after reads it, and the only other thing that ever writes it is a restore arriving
683 /// between those two. Two saves sharing it is two pairs each doing that, and neither can be
684 /// inside the other.
685 answer: Option<usize>,
686 /// Which rules have fired so far.
687 fired: Fired,
688}
689
690/// What a `va_start` in a variadic function writes into the list it is given.
691///
692/// Two shapes, because two conventions describe a list two ways, and [`crate::varargs`] is where
693/// both are written down. Neither is a set of numbers on its own: where the save area is and where
694/// the caller's argument area is are distances into a frame that does not exist until after
695/// allocation, so each is a `lea` [`crate::finish`] fills in.
696#[derive(Debug, Clone, Copy, PartialEq, Eq)]
697enum Varargs {
698 /// The four field list, whose two offsets are settled here and whose two addresses are not.
699 Fields {
700 /// Which of the function's stack objects is the register save area.
701 save: usize,
702 /// How far up the caller's argument area the first argument the signature does not name is,
703 /// which is the whole of that area the named ones did not take.
704 incoming: u32,
705 /// What `gp_offset` starts at, which is past the general purpose registers the named
706 /// arguments took.
707 integers: u32,
708 /// What `fp_offset` starts at, which is past the vector ones.
709 floats: u32,
710 },
711 /// The list that is a pointer, which is the one address and nothing else.
712 Pointer {
713 /// How far up the caller's argument area the first argument the signature does not name is,
714 /// which on this convention is the word belonging to the position the named ones stopped
715 /// at.
716 incoming: u32,
717 },
718}
719
720/// How far a function's name reaches, narrowed from the linkage the IR gave it.
721///
722/// The IR has five and an object file says three, and the two the linker cannot tell apart are
723/// the two weak ones: which of them a symbol had is a fact the optimizer reads and the linker has
724/// no way to record. A function is never `Common`, since that is what a tentative definition of an
725/// object is and there is no tentative definition of a function, and it is written here rather
726/// than left out so that a linkage added later has to come past this.
727const fn binding(linkage: Linkage) -> mir::Binding {
728 match linkage {
729 Linkage::Internal => mir::Binding::Local,
730 Linkage::Weak | Linkage::LinkOnce => mir::Binding::Weak,
731 Linkage::External | Linkage::Common => mir::Binding::Global,
732 }
733}
734
735/// How far a function's name reaches outside a shared library, carried across unchanged.
736///
737/// Nothing is narrowed here the way [`binding`] narrows the linkage, because ELF records all
738/// three of these and the two enumerations are the same three answers written twice: once in a
739/// crate that is not allowed to know what an object file is and once in one that is.
740const fn visibility(visibility: Visibility) -> mir::Visibility {
741 match visibility {
742 Visibility::Default => mir::Visibility::Default,
743 Visibility::Hidden => mir::Visibility::Hidden,
744 Visibility::Protected => mir::Visibility::Protected,
745 }
746}
747
748impl<'a> Lowering<'a> {
749 fn new(
750 source: &'a Func,
751 names: &'a mut Interner,
752 conv: &'static CallRegs,
753 elsewhere: &'a Elsewhere,
754 ) -> Self {
755 let counts = source.counts();
756 let name = source.name;
757 let mut uses = vec![0; counts.values];
758 for block in source.blocks() {
759 for inst in source.insts(block) {
760 for &arg in &source[source[inst].args] {
761 uses[arg.index()] += 1;
762 }
763 for call in source.successors(inst) {
764 for &arg in &source[call.args] {
765 uses[arg.index()] += 1;
766 }
767 }
768 }
769 }
770 let mut out = mir::Func::new(name);
771 out.align = source.align;
772 out.binding = binding(source.linkage);
773 out.visibility = visibility(source.visibility);
774 Self {
775 source,
776 names,
777 out,
778 regs: vec![None; counts.values],
779 written: vec![None; counts.values],
780 blocks: vec![None; counts.blocks],
781 uses,
782 at: None,
783 gpr: x86_64::GPR,
784 conv,
785 elsewhere,
786 stack: Stack::default(),
787 varargs: None,
788 slots: vec![None; counts.values],
789 crossing: None,
790 control: None,
791 answer: None,
792 fired: Fired::new(),
793 }
794 }
795
796 fn run(mut self) -> Result<Lowered, Unsupported> {
797 // Every block before any of them is filled, because a block that jumps forward has to
798 // name the block it jumps to and a machine IR block is named by a handle rather than by
799 // the IR block it came from.
800 for block in self.source.blocks() {
801 let out = self.out.create_block();
802 self.blocks[block.index()] = Some(out);
803 }
804 for block in self.order() {
805 self.block(block)?;
806 }
807 // And the name each block an image holds the address of was given, which nothing in the
808 // walk above would ask for: the `lea` a label address is inside the function needs no
809 // symbol, and the one thing that does is a relocation in another section.
810 let named: Vec<(Block, Symbol)> = self.source.named_blocks().collect();
811 let labels: Vec<(mir::Block, Symbol)> =
812 named.into_iter().map(|(block, name)| (self.out_block(block), name)).collect();
813 self.out.labels = labels;
814 Ok(Lowered { func: self.out, stack: self.stack, fired: self.fired, blocks: self.blocks })
815 }
816
817 /// The order the blocks are filled in, which is not the order they are written in.
818 ///
819 /// Reverse postorder, because a value is written in a block that dominates every block that
820 /// reads it and a block in reverse postorder comes before every block it dominates. The order
821 /// the blocks are written in does not have that property: a block written early can read a
822 /// value a block below it writes, and reading a value with no register yet mints one, so the
823 /// register the definition writes later is not the register the read named. Nothing writes the
824 /// one the read named, and what comes out is a function that loads a stack slot no store ever
825 /// reached. It is the order this walk goes in rather than the order the blocks come out in,
826 /// which is what the loop above fixes, so the machine function is still written the way the IR
827 /// function was.
828 ///
829 /// Blocks the entry does not reach come last, in the order they are written in. Nothing runs
830 /// them and nothing they name is read by anything that does, but they still have to be filled,
831 /// because a machine block with no terminator is not one the passes below can read.
832 fn order(&self) -> Vec<Block> {
833 let Some(entry) = self.source.entry() else { return self.source.blocks().collect() };
834 let count = self.blocks.len();
835 let mut succs: Vec<Vec<Block>> = vec![Vec::new(); count];
836 for block in self.source.blocks() {
837 let Some(term) = self.source.terminator(block) else { continue };
838 succs[block.index()] = self.source.successors(term).map(|call| call.block).collect();
839 }
840 // An explicit stack, because the depth of the walk is the number of blocks and a function
841 // built by a generator has as many of those as it likes.
842 let mut seen = vec![false; count];
843 let mut order = Vec::with_capacity(count);
844 let mut stack = vec![(entry, 0usize)];
845 seen[entry.index()] = true;
846 while let Some((block, at)) = stack.pop() {
847 let Some(&next) = succs[block.index()].get(at) else {
848 order.push(block);
849 continue;
850 };
851 stack.push((block, at + 1));
852 if !seen[next.index()] {
853 seen[next.index()] = true;
854 stack.push((next, 0));
855 }
856 }
857 order.reverse();
858 order.extend(self.source.blocks().filter(|block| !seen[block.index()]));
859 order
860 }
861
862 /// One block: its parameters, then every instruction in it that is not folded into another.
863 fn block(&mut self, block: Block) -> Result<(), Unsupported> {
864 let out = self.out_block(block);
865 self.at = Some(out);
866 if self.source.entry() == Some(block) {
867 self.arrive(block, out)?;
868 } else {
869 let mut arriving = Vec::new();
870 for ¶m in &self.source[block].params {
871 // A value with no register to arrive in, which the class would not say, since
872 // `class_of` puts one of these in the general purpose file on purpose and what it
873 // means by that is that nothing there can hold it. What crosses the edge for one
874 // of those is the address of where the value already is, so the parameter is a
875 // pointer here and the bytes it points at are copied below.
876 let ty = self.source[param].ty;
877 let reg = self.out.append_param(out, self.class_of(ty));
878 self.regs[param.index()] = Some(reg);
879 if on_x87(ty) {
880 arriving.push((param, reg));
881 }
882 }
883 self.settle(block, &arriving)?;
884 }
885
886 // What each instruction matched, and which instructions were folded into another. The
887 // decision is made for the whole block before any of it is written, and it is made more
888 // than once: a value that only some of its readers took has to be put back in a register
889 // for all of them, and taking it away from those readers changes what they match.
890 let insts: Vec<Inst> = self.source.insts(block).collect();
891 let mut refused: HashSet<Value> = HashSet::new();
892 let mut decided = self.decide(&insts, &refused);
893 while let Some(value) = self.left_alive(&insts, &decided.plans) {
894 refused.insert(value);
895 decided = self.decide(&insts, &refused);
896 }
897 let Decided { found, folded, .. } = decided;
898
899 for (&inst, matched) in insts.iter().zip(found) {
900 if folded.contains(&inst) || self.writes_nothing(inst) {
901 continue;
902 }
903 // A call is built from the convention rather than matched, which is why it is the one
904 // opcode looked at by name here. Through an address it is a different instruction and
905 // the same convention, so the two arrive at the same place and differ in one line of
906 // it.
907 match self.source[inst].opcode {
908 Opcode::Call | Opcode::CallIndirect => {
909 self.called(inst)?;
910 continue;
911 }
912 // Built from the frame rather than matched, for the same shape of reason a call
913 // is built from the convention: what a rule replaces a term with is instructions,
914 // and what an `alloca` needs first is bytes, which the rule language has no way
915 // to ask for.
916 Opcode::Alloca => {
917 self.reserve(inst)?;
918 continue;
919 }
920 // Reading the stack pointer and writing it back, which are the two ends of a scope
921 // holding a variable length array. Built here for the reason an `alloca` is: the
922 // value is a register the rule language has no way to name, because what it holds
923 // is not a value the program computed but where the machine's stack had got to.
924 Opcode::StackSave => {
925 self.stack_pointer(inst, false)?;
926 continue;
927 }
928 Opcode::StackRestore => {
929 self.stack_pointer(inst, true)?;
930 continue;
931 }
932 // The address of a name, built here for the same reason an `alloca` is: what a
933 // rule replaces a term with is instructions over values, and the operand of this
934 // one is a symbol, which is a thing the rule language has no way to bind and the
935 // solver has no way to say anything about. There is nothing in `lea sym(%rip)` a
936 // proof over bitvectors could discharge, because what makes it the right answer
937 // is the relocation and what the linker does with it.
938 Opcode::GlobalAddr => {
939 self.address_of(inst)?;
940 continue;
941 }
942 // The address of a label and the branch that reads one, built here for the same
943 // reason and for one more. The reason is the same: what the first of them names is
944 // a block, which is not a value a rule pattern can bind, and there is nothing in
945 // the distance between two places in one function that a proof over bitvectors
946 // could discharge. The extra one is that the second is a terminator whose arms are
947 // not two and not fixed, and a rule says what an instruction reads rather than
948 // where a block goes.
949 Opcode::BlockAddr => {
950 self.block_address(inst)?;
951 continue;
952 }
953 Opcode::IndirectBr => {
954 self.indirect_branch(inst)?;
955 continue;
956 }
957 // The pair that saves a place in this function and comes back to it. Built here
958 // for the reason the address of a label is, and for two more. The reason is the
959 // same: the first of them writes down where control comes back to, which is a
960 // place in this function and not a value a rule pattern can bind. The extra ones
961 // are that each of them is a group of instructions over a buffer the program owns
962 // rather than one instruction, and that the first of them leaves the block it was
963 // written in and carries on in a new one, which is a thing no rule can do.
964 Opcode::SetjmpMarker => {
965 self.saves_place(inst)?;
966 continue;
967 }
968 Opcode::LongjmpMarker => {
969 self.comes_back(inst)?;
970 continue;
971 }
972 // Where this thread's own storage starts, built here for a reason of the same
973 // shape: what it reads is `%fs`, which is not a register the rule language can
974 // bind and not one a proof over bitvectors could say anything about, because what
975 // makes the load the right answer is an agreement between the loader and the C
976 // library rather than any arithmetic.
977 Opcode::ThreadPointer => {
978 self.thread_pointer(inst)?;
979 continue;
980 }
981 // Where a frame is and what it returns to, built here for the same reason and one
982 // more. The reason is the same: what the walk starts from is the frame pointer,
983 // which is not a register a rule pattern can bind, and there is nothing in reading
984 // the link the prologue saved that a proof over bitvectors could discharge. The
985 // extra one is that how long the walk is comes out of a number beside the
986 // instruction, so one of these is not one instruction but however many the depth
987 // says, and a rule replaces a term with a term.
988 Opcode::FrameAddress | Opcode::ReturnAddress => {
989 self.frames(inst)?;
990 continue;
991 }
992 // Built from the frame for the reason an `alloca` is, and from the convention for
993 // the reason a call is: three of the four fields it writes are distances that do
994 // not exist until the frame does, and the fourth is where the walk over the
995 // argument registers stopped. A function that is not variadic has no such walk to
996 // report, so it has nothing here and is refused below, which is the right answer
997 // for a `va_start` in one.
998 Opcode::VaStart if self.varargs.is_some() => {
999 self.va_start(inst)?;
1000 continue;
1001 }
1002 // A return of more than one value, which is a structure small enough to come
1003 // back in a pair of registers. Built from the convention for the reason a call
1004 // is: which register each half goes in depends on the halves in front of it,
1005 // because the two register files are walked separately, and a pattern over a term
1006 // cannot see them. A return of one value is a term with a name and a rule, and it
1007 // stays one.
1008 //
1009 // A return of none in a function whose answer went through memory is here too,
1010 // and for a different reason: what it gives back is not written in the IR at all.
1011 // The convention says the address the caller handed over comes back, and only the
1012 // signature says this function was handed one.
1013 //
1014 // And a return of one eighty bit value, for a third reason: what a rule would
1015 // write is an instruction leaving the value in a register, and this one is left on
1016 // the x87 stack instead. A rule could not name that stack any more than any other
1017 // rule about this type could.
1018 Opcode::Return
1019 if self.source[self.source[inst].args].len() > 1
1020 || self.sret().is_some()
1021 || self.gives_back_x87(inst) =>
1022 {
1023 self.returned(inst)?;
1024 continue;
1025 }
1026 // A cast between a pointer and an integer of the same width, which on this
1027 // machine is every one the front end writes. No instruction at all, so no rule
1028 // could name one.
1029 Opcode::PtrToInt | Opcode::IntToPtr => {
1030 self.rename(inst)?;
1031 continue;
1032 }
1033 // A barrier, which is one instruction or none depending on the ordering. Written
1034 // by name because there is nothing about it a rule could be proved against, the
1035 // way there is nothing to prove about the address of a symbol.
1036 Opcode::Fence => {
1037 self.barrier(inst)?;
1038 continue;
1039 }
1040 // A hint, written by name for the reason a barrier is and one step further: not
1041 // only is there no equality for a proof to discharge, there is nothing about the
1042 // program around it either. Which of the four instructions it is comes out of the
1043 // number the builtin was given, which is beside the instruction rather than in it.
1044 Opcode::Prefetch => {
1045 self.hint(inst)?;
1046 continue;
1047 }
1048 // Stopping, written by name for the first half of the barrier's reason: it
1049 // computes nothing, so there is no term for a rule to replace, and what makes it
1050 // right is what the operating system does with the fault rather than anything a
1051 // proof over bitvectors could discharge.
1052 Opcode::Trap => {
1053 self.trap(inst);
1054 continue;
1055 }
1056 // A compare and exchange, which is written by name because it produces two values
1057 // and a rule produces one. The replacement of a rule is one term, a term names the
1058 // value an instruction computes, and there is no way in that language to say that
1059 // an instruction leaves an answer in one place and a yes or no in another.
1060 Opcode::Cmpxchg => {
1061 self.exchange(inst)?;
1062 continue;
1063 }
1064 // A read modify write, which is written by name for a different reason: it produces
1065 // one value, so a rule could name it, and what it does is not in the head a rule
1066 // matches on. Every one of the thirteen operations is the same opcode at the same
1067 // type and differs only in what is carried beside it, so one pattern would be all
1068 // thirteen patterns. Of the thirteen only the three with an instruction reach here,
1069 // since `crate::retry` turned the rest into loops a long way above this.
1070 Opcode::AtomicRmw => {
1071 self.modify(inst)?;
1072 continue;
1073 }
1074 // An `asm` statement, whose lowering is its template and there is no term for a
1075 // string. Written by name for the reason a barrier is, and before the x87 arm
1076 // below so that an `asm` holding a `long double` is refused as the `asm` it is
1077 // rather than as an instruction nothing computes.
1078 Opcode::InlineAsm => {
1079 self.assembly(inst)?;
1080 continue;
1081 }
1082 // Anything at all with an eighty bit float in it, which is the one arm here
1083 // chosen by a type rather than by an opcode, because what makes these different
1084 // is not what they do but where the value is. A `long double` has no register,
1085 // so it has no name in `crate::term` and no rule could bind one: every one of
1086 // these is a group of instructions over a frame slot, written out below.
1087 //
1088 // Last of the arms, so that a call and a return with one of these in them reach
1089 // the convention first and are refused by it, which is the truer answer: what is
1090 // wrong there is where the value has to travel and not that nothing can compute
1091 // it.
1092 _ if self.touches_x87(inst) => {
1093 self.x87(inst)?;
1094 continue;
1095 }
1096 _ => {}
1097 }
1098 let matched = matched.ok_or_else(|| self.unsupported(inst))?;
1099 self.emit(inst, &matched)?;
1100 // After it is built rather than when it matched, so that what is recorded is the rules
1101 // this function was lowered by and not the rules something was tried with.
1102 self.fired.mark(matched.rule);
1103 }
1104 // Whichever block the walk ended in rather than the one it started in. The two are the
1105 // same block for every function that does not save a place for a `__builtin_longjmp`, and
1106 // where they differ it is the last of them that the terminator and the arms belong to.
1107 // See [`Self::saves_place`].
1108 let last = self.at.expect("a block is being filled");
1109 self.edges(block, last)
1110 }
1111
1112 /// One call, which is built from the convention rather than matched against the table for the
1113 /// same reason the arguments of the function itself are.
1114 ///
1115 /// The arguments are read before the call is built, which is what materializes a constant
1116 /// argument into a register, since no call passes an immediate.
1117 ///
1118 /// A call to a name and a call through an address are both here, and what tells them apart is
1119 /// the opcode rather than whether a callee was recorded, which is the same thing the verifier
1120 /// reads. Through an address the first operand is the address and the arguments are the ones
1121 /// behind it, and everything after that is the same: where each argument goes, where the value
1122 /// comes back and which registers are gone across it are the convention's answers and the
1123 /// convention does not ask what is being called.
1124 fn called(&mut self, inst: Inst) -> Result<(), Unsupported> {
1125 let data = &self.source[inst];
1126 let Extra::Call(info) = data.extra else { return Err(self.unsupported(inst)) };
1127 let info = self.source[info];
1128 let indirect = data.opcode == Opcode::CallIndirect;
1129
1130 let values: Vec<Value> = self.source[data.args].to_vec();
1131 let callee = if indirect {
1132 let &address = values.first().ok_or_else(|| self.unsupported(inst))?;
1133 abi::Callee::Through(self.reg_of(address)?)
1134 } else {
1135 abi::Callee::Named(info.callee.ok_or_else(|| self.unsupported(inst))?)
1136 };
1137
1138 // What the ABI asks of each argument, read out before any of them is, because reading one
1139 // borrows the function this is a table in. The ones the signature names are the signature's
1140 // answer and the ones behind them are the call's, which is where a structure passed to a
1141 // variadic callee by value says that its bytes travel: there is no parameter to say it on.
1142 let signature = &self.source[info.signature];
1143 let variadic = signature.variadic;
1144 let named: Vec<Abi> = signature.params.iter().map(|param| param.abi).collect();
1145 let beyond: Vec<Abi> = self.source[info.varargs].to_vec();
1146 // Every value that comes back and not only the first. A structure small enough to travel
1147 // in registers comes back in up to two of them, and which register each half is in is the
1148 // convention's answer, which is why the whole list goes to the same place the arguments do
1149 // rather than to a rule.
1150 let returns: Vec<Type> = signature.return_types().collect();
1151
1152 let mut args = Vec::with_capacity(values.len());
1153 for (index, value) in values.into_iter().skip(usize::from(indirect)).enumerate() {
1154 let abi = named.get(index).or_else(|| beyond.get(index - named.len()));
1155 let abi = abi.copied().unwrap_or_default();
1156 let ty = self.source[value].ty;
1157 // What travels for an eighty bit value is its bytes, so what the call is handed is
1158 // where they are rather than a register they are in, and there is no register they
1159 // could be in. Everything else about it is a sixteen byte object passed by value and
1160 // is built by the same code.
1161 let reg =
1162 if abi::on_the_stack(ty) { self.x87_slot(value) } else { self.reg_of(value)? };
1163 args.push(abi::Passing { ty, reg, abi });
1164 }
1165 let block = self.at.expect("a block is being filled");
1166 let what =
1167 abi::Calling { callee, args: &args, returns: &returns, variadic, named: named.len() };
1168 let made = abi::call(&mut self.out, block, &what, self.conv, self.names)
1169 .map_err(|refused| Unsupported::Call { inst, refused })?;
1170 let calls = &mut self.stack.calls;
1171 *calls = Some(calls.unwrap_or(0).max(made.outgoing));
1172 // An eighty bit value came back on the x87 stack, and the one thing that has to happen
1173 // before anything else touches that stack is taking it off. So the `fstp` goes here, in
1174 // front of everything the block does next, and after it the value is in its slot and is
1175 // read the way every other one is.
1176 let results: Vec<Value> = self.source[inst].results().collect();
1177 if let [result] = results[..] {
1178 if abi::on_the_stack(self.source[result].ty) {
1179 let span = self.source.span(inst);
1180 let into = self.x87_slot(result);
1181 let into = self.through(into);
1182 self.x87_at("fstp_t", span, into);
1183 return Ok(());
1184 }
1185 }
1186 for (result, ®) in results.into_iter().zip(&made.results) {
1187 self.regs[result.index()] = Some(reg);
1188 }
1189 Ok(())
1190 }
1191
1192 /// The pointer a function returning through memory was handed, or nothing in a function that
1193 /// was not.
1194 ///
1195 /// It is the first parameter and the signature is what says so, since in the IR it is an
1196 /// ordinary pointer and reads like one everywhere in the body. A function with a signature
1197 /// like that and no entry block has nothing to give back and no body to give it back from.
1198 fn sret(&self) -> Option<Value> {
1199 let first = self.source.signature().params.first()?;
1200 if !matches!(first.abi, Abi::Sret { .. }) {
1201 return None;
1202 }
1203 self.source[self.source.entry()?].params.first().copied()
1204 }
1205
1206 /// One `return` the convention has to write, as the place each value has to be in by the end.
1207 ///
1208 /// One pseudo per value, each a read constrained to a return register, which is what a return
1209 /// of one value already is and is the whole of what either does. The `ret` itself comes from
1210 /// the epilogue for both, long after this, because the frame has to be given back first.
1211 ///
1212 /// The two register files are counted separately, so a structure of a `double` and a `long`
1213 /// leaves the `double` in the first vector register and the `long` in the first integer one
1214 /// rather than in the second of either. That is the same walk `rucc_codegen::abi` makes on
1215 /// the other side of the call, which is what makes the two ends agree.
1216 ///
1217 /// A function whose answer went through memory gives back the address it was handed, in front
1218 /// of nothing else, because a signature that returns that way returns nothing else. That the
1219 /// caller already knows the address is not enough: it is allowed to read the register instead,
1220 /// and a caller that does gets whatever the allocator last left there. In a leaf function that
1221 /// is usually the right answer by accident, and one call in the body is enough to make it a
1222 /// wild pointer, which is why this is written rather than left to luck.
1223 ///
1224 /// Where everything goes is worked out before anything is written, so a return this cannot
1225 /// make leaves no half of one behind.
1226 /// Whether what a `return` gives back is the one value that goes back on the x87 stack.
1227 fn gives_back_x87(&self, inst: Inst) -> bool {
1228 let [value] = self.source[self.source[inst].args] else { return false };
1229 abi::on_the_stack(self.source[value].ty)
1230 }
1231
1232 fn returned(&mut self, inst: Inst) -> Result<(), Unsupported> {
1233 let values: Vec<Value> = self.source[self.source[inst].args].to_vec();
1234 let (mut ints, mut floats) = (0usize, 0usize);
1235 let mut parts = Vec::with_capacity(values.len() + 1);
1236 // An eighty bit value goes back on the x87 stack, which is where the convention says it is
1237 // and is the one place a value is left rather than put in a register. So the whole of the
1238 // return is an `fld` of its slot, and the stack it leaves the value on is not empty at the
1239 // `ret`, which is the one time in this file that is true and is what the convention asks
1240 // for. What comes after is the epilogue, which gives the frame back and touches nothing in
1241 // the unit.
1242 if let [value] = values[..] {
1243 let ty = self.source[value].ty;
1244 if abi::on_the_stack(ty) && self.sret().is_none() {
1245 let span = self.source.span(inst);
1246 let from = self.x87_slot(value);
1247 let from = self.through(from);
1248 self.x87_at("fld_t", span, from);
1249 return Ok(());
1250 }
1251 }
1252 for value in self.sret().into_iter().chain(values) {
1253 let ty = self.source[value].ty;
1254 let at = if crate::term::in_vector_file(ty) { &mut floats } else { &mut ints };
1255 // Why it cannot come back, and not only that it cannot. A type that travels nowhere
1256 // says so itself, and a type that travels perfectly well ran out of registers.
1257 let missing = abi::refuses(ty).unwrap_or(Missing::NoRoom);
1258 let name = abi::ret_of(ty, *at).ok_or(Unsupported::Returned { inst, missing })?;
1259 *at += 1;
1260 // The register is the target's answer and not one worked out here, the same as it is
1261 // for a return of one value, so that both halves of a pair and every rule that writes
1262 // half of one are reading the same table.
1263 let opcode = name.strip_prefix(PREFIX).expect("a machine instruction of this target");
1264 let form = x86_64::form(opcode).ok_or_else(|| self.unsupported(inst))?;
1265 let [desc] = form.operands() else { return Err(self.unsupported(inst)) };
1266 parts.push((self.names.intern(name), self.reg_of(value)?, *desc));
1267 }
1268
1269 let block = self.at.expect("a block is being filled");
1270 let span = self.source.span(inst);
1271 for (opcode, reg, desc) in parts {
1272 let operand = mir::Operand {
1273 reg,
1274 class: desc.class,
1275 role: desc.role,
1276 constraint: desc.constraint,
1277 };
1278 self.out.build(block, mir::Opcode::new(opcode)).at(span).operand(operand).finish();
1279 }
1280 Ok(())
1281 }
1282
1283 /// One `alloca`: the bytes it asks for go on the list the frame is laid out from, and the
1284 /// address of them is one instruction.
1285 ///
1286 /// The instruction is a `lea` off the stack pointer, which is the one register that reaches
1287 /// the frame in every function, and its displacement is left at nothing because there is no
1288 /// frame yet. Which instruction is waiting for which local is remembered, and
1289 /// [`crate::finish`] fills the numbers in after [`crate::frame::Frame`] has placed them.
1290 ///
1291 /// There is deliberately no rule for `alloca` and no name for one in [`crate::term`], and
1292 /// that is what stops it being folded into something else. An operand shown as the
1293 /// instruction that computed it is offered to the matcher by its name, so an `alloca` with no
1294 /// name is one no pattern can reach past, and the address it computes is always in a register
1295 /// by the time anything reads it.
1296 fn reserve(&mut self, inst: Inst) -> Result<(), Unsupported> {
1297 let data = &self.source[inst];
1298 // A variable length array carries the size it wants as an operand rather than in the
1299 // instruction, which is the whole of what tells the two apart here.
1300 if let Some(&size) = self.source[data.args].first() {
1301 return self.grow(inst, size);
1302 }
1303 let Extra::Mem(mem) = data.extra else { return Err(self.unsupported(inst)) };
1304 let info = self.source[mem];
1305 let size = u32::try_from(info.size)
1306 .map_err(|_| Unsupported::Dynamic { inst, growing: Growing::Huge })?;
1307 let result = data.first_result.ok_or_else(|| self.unsupported(inst))?;
1308
1309 // At least one, because the frame divides by the alignment and an object with no
1310 // alignment at all is one the front end had nothing to say about rather than one that may
1311 // go anywhere.
1312 let index = self.stack.locals.len();
1313 self.stack.locals.push(Local { size, align: info.align.max(1) });
1314
1315 let block = self.at.expect("a block is being filled");
1316 let reg = self.new_reg(result);
1317 let span = self.source.span(inst);
1318 let lea = mir::Opcode::new(self.names.intern(&format!("{PREFIX}{}", x86_64::FRAME.lea)));
1319 let sp = mir::Operand::read(mir::Reg::physical(self.conv.stack_pointer), self.gpr);
1320 let made =
1321 self.out.build(block, lea).at(span).def(reg, self.gpr).mem(mir::Mem::at(sp)).finish();
1322 self.stack.addresses.push((made, index));
1323 Ok(())
1324 }
1325
1326 /// The other kind of `alloca`: one whose size the function does not know until it runs, which
1327 /// is what a variable length array is.
1328 ///
1329 /// Nothing about it is a slot the frame laid out, because the frame is laid out once and this
1330 /// happens as often as control reaches the declaration. The bytes come off the stack pointer
1331 /// where the declaration stands, which is two instructions:
1332 ///
1333 /// ```text
1334 /// sub sp, bytes the stack pointer moves down over the memory, which is what takes it
1335 /// lea reg, [sp+n] where the memory starts, which is above the outgoing argument area
1336 /// ```
1337 ///
1338 /// The displacement is left at nothing for the reason the constant kind leaves its own at
1339 /// nothing, and for a different number: that area belongs to the arguments of whatever this
1340 /// function calls, it stays at the bottom of the frame wherever the bottom has moved to, and
1341 /// how big it is is not known until every call in the function has been seen.
1342 ///
1343 /// The bytes are already a multiple of the stack pointer's alignment by the time they arrive,
1344 /// because [`crate::expand::rounds`] rounded them up in the IR, so nothing here has to mask the
1345 /// stack pointer afterwards and the stack pointer stays somewhere a call can be made from.
1346 ///
1347 /// Two instructions here and not always two in the finished function. On a command line that
1348 /// asked for the stack to be touched a page at a time, the subtraction becomes a loop that
1349 /// walks the same distance a page at a time, which [`crate::finish`] writes. That is why the
1350 /// instruction is written down in [`Stack::grown`] as well as left where it is.
1351 ///
1352 /// An array wanting more alignment than the convention leaves the stack pointer with does not
1353 /// reach here asking for it: [`crate::expand::rounds`] gives it the alignment in extra bytes
1354 /// and turns the array into a `ptr_add` of the offset that lands inside them, so what arrives
1355 /// is a block asking for the convention's alignment like any other. The refusal below is what
1356 /// answers IR that came from somewhere other than that pass, since forcing the alignment here
1357 /// would be a second rounding of a register the frame already rounded, and after it no
1358 /// constant reaches the rest of the frame from anywhere. See `Growing` in [`crate::frame`].
1359 fn grow(&mut self, inst: Inst, size: Value) -> Result<(), Unsupported> {
1360 let data = &self.source[inst];
1361 let Extra::Mem(mem) = data.extra else { return Err(self.unsupported(inst)) };
1362 let info = self.source[mem];
1363 if info.align > self.conv.stack_align {
1364 return Err(Unsupported::Dynamic { inst, growing: Growing::Aligned });
1365 }
1366 let result = data.first_result.ok_or_else(|| self.unsupported(inst))?;
1367 let bytes = self.reg_of(size)?;
1368
1369 let block = self.at.expect("a block is being filled");
1370 let span = self.source.span(inst);
1371 let stack = mir::Reg::physical(self.conv.stack_pointer);
1372 let grow = mir::Opcode::new(self.names.intern(&format!("{PREFIX}{}", x86_64::FRAME.grow)));
1373 let took = self
1374 .out
1375 .build(block, grow)
1376 .at(span)
1377 .operand(mir::Operand::write(stack, self.gpr))
1378 .operand(mir::Operand::read(stack, self.gpr))
1379 .operand(mir::Operand::read(bytes, self.gpr))
1380 .finish();
1381 self.stack.grown.push(took);
1382
1383 let reg = self.new_reg(result);
1384 let lea = mir::Opcode::new(self.names.intern(&format!("{PREFIX}{}", x86_64::FRAME.lea)));
1385 let sp = mir::Operand::read(stack, self.gpr);
1386 let made =
1387 self.out.build(block, lea).at(span).def(reg, self.gpr).mem(mir::Mem::at(sp)).finish();
1388 self.stack.dynamic.push(made);
1389 self.stack.grown_at.get_or_insert(inst);
1390 Ok(())
1391 }
1392
1393 /// Where the stack pointer is, kept so that something later can put it back.
1394 ///
1395 /// One move out of the stack pointer and one move into it, which is the whole of what the two
1396 /// halves are. What makes them worth writing is where the front end puts them: a scope holding
1397 /// a variable length array saves the stack pointer as it opens and puts it back as it closes,
1398 /// so a loop declaring one takes its bytes once round rather than once per iteration, and a
1399 /// jump out of the scope gives the bytes back on the way out.
1400 ///
1401 /// The value travels in an ordinary register the allocator hands out, so it may be spilled like
1402 /// any other, and a spill slot in a frame that grows is reached through the frame pointer,
1403 /// which is exactly the register that still means something after the stack pointer has moved.
1404 fn stack_pointer(&mut self, inst: Inst, into: bool) -> Result<(), Unsupported> {
1405 let data = &self.source[inst];
1406 let block = self.at.expect("a block is being filled");
1407 let span = self.source.span(inst);
1408 let stack = mir::Reg::physical(self.conv.stack_pointer);
1409 let mov = x86_64::FRAME.moves(self.gpr).expect("a class the target says how to move").mov;
1410 let mov = mir::Opcode::new(self.names.intern(&format!("{PREFIX}{mov}")));
1411 let (write, read) = if into {
1412 let &saved = self.source[data.args].first().ok_or_else(|| self.unsupported(inst))?;
1413 (stack, self.reg_of(saved)?)
1414 } else {
1415 let result = data.first_result.ok_or_else(|| self.unsupported(inst))?;
1416 (self.new_reg(result), stack)
1417 };
1418 self.out
1419 .build(block, mov)
1420 .at(span)
1421 .operand(mir::Operand::write(write, self.gpr))
1422 .operand(mir::Operand::read(read, self.gpr))
1423 .finish();
1424 // Only the write is a move of the stack pointer, and it is the one that makes the frame a
1425 // growing one. A read of it in a function that never writes it back is a function that
1426 // asked where the stack was and did nothing with the answer.
1427 if into {
1428 self.stack.grown_at.get_or_insert(inst);
1429 }
1430 Ok(())
1431 }
1432
1433 /// Whether an instruction has an eighty bit float anywhere in it.
1434 ///
1435 /// Producing one and reading one are the same question here, because what makes one of these
1436 /// different from every other instruction is not the operation but where the value is. A
1437 /// `long double` is on the x87 stack while it is being worked on and in a frame slot the rest
1438 /// of the time, and neither of those is somewhere the operand of a rule could point.
1439 fn touches_x87(&self, inst: Inst) -> bool {
1440 let data = &self.source[inst];
1441 data.results().any(|value| on_x87(self.source[value].ty))
1442 || self.source[data.args].iter().any(|&arg| on_x87(self.source[arg].ty))
1443 }
1444
1445 /// Everything that happens to an eighty bit float, as the group of instructions it is.
1446 ///
1447 /// The first six move one, and every one of those is a load, a store, or a load and a store at
1448 /// two different formats, because that is the whole of what this machine converts with: the
1449 /// x87 has no instruction that turns one thing on its stack into another, so a widening is
1450 /// `fld` of the narrow format and a narrowing is `fstp` of it.
1451 ///
1452 /// The rest work on one, and they are here rather than in a rule for the same reason the six
1453 /// are. An add is a push, a push, the add and a pop, and what passes between those four is the
1454 /// top of a stack nothing allocates from, so there is no value in the middle of the group for
1455 /// a pattern to bind or a replacement to name. The comparison is the same shape with its last
1456 /// two instructions folded into one opcode, which is where the byte it produces comes from.
1457 ///
1458 /// Every group leaves the stack as empty as it found it, which is what `spec/10-backend.md`
1459 /// section 10.8 asks of one and is why nothing in this file has to track a depth: each push
1460 /// below is answered by a pop a line or two later, so no two groups can ever be looking at
1461 /// the same eight registers.
1462 fn x87(&mut self, inst: Inst) -> Result<(), Unsupported> {
1463 match self.source[inst].opcode {
1464 Opcode::Load => self.x87_load(inst),
1465 Opcode::Store => self.x87_store(inst),
1466 Opcode::FPExt => self.x87_widen(inst),
1467 Opcode::FPTrunc => self.x87_narrow(inst),
1468 Opcode::SIToFP => self.x87_from_signed(inst),
1469 Opcode::FPToSI => self.x87_to_signed(inst),
1470 Opcode::FAdd => self.x87_arith(inst, "fadd_p"),
1471 Opcode::FSub => self.x87_arith(inst, "fsubr_p"),
1472 Opcode::FMul => self.x87_arith(inst, "fmul_p"),
1473 Opcode::FDiv => self.x87_arith(inst, "fdivr_p"),
1474 Opcode::FNeg => self.x87_flip(inst),
1475 Opcode::FCmp => self.x87_compare(inst),
1476 Opcode::FConst => self.x87_const(inst),
1477 _ => Err(self.unsupported(inst)),
1478 }
1479 }
1480
1481 /// The eighty bit parameters of a block, copied out of the addresses an edge handed over and
1482 /// into slots of the block's own.
1483 ///
1484 /// What crosses an edge for a value of this type is an address, because the value is sixteen
1485 /// bytes of the frame and no register holds any of it. The block cannot keep that address: a
1486 /// second edge into the same block hands over a second one, and a read after the block would
1487 /// then be a read of whichever edge was taken rather than of one place. So the block has a
1488 /// slot per parameter and the bytes are copied into it here, which is the move on an edge that
1489 /// every other type gets from the allocator.
1490 ///
1491 /// Every load runs before every store and the stores run backwards, so all of the values are
1492 /// on the x87 stack at once and nothing reads a slot another one has already written. That
1493 /// costs nothing in the ordinary case of one parameter and is what makes the back edge of a
1494 /// loop that swaps two of these work. It is also the reason for the limit: the stack is eight
1495 /// deep, and a block with more of these than that is refused rather than copied in an order
1496 /// that could be wrong.
1497 fn settle(&mut self, block: Block, arriving: &[(Value, mir::Reg)]) -> Result<(), Unsupported> {
1498 let Some(&(first, _)) = arriving.first() else { return Ok(()) };
1499 if arriving.len() > X87_DEPTH {
1500 let ty = self.source[first].ty;
1501 return Err(Unsupported::Phi { block, count: arriving.len(), ty });
1502 }
1503 // A block parameter comes from no instruction, so what this points at is the first thing
1504 // in the block, which is where a reader looking for the copy would look.
1505 let first_inst = self.source.insts(block).next();
1506 let span = first_inst.map_or(Span::DUMMY, |it| self.source.span(it));
1507 for &(_, reg) in arriving {
1508 let from = self.through(reg);
1509 self.x87_at("fld_t", span, from);
1510 }
1511 for &(param, _) in arriving.iter().rev() {
1512 let into = self.x87_slot(param);
1513 let into = self.through(into);
1514 self.x87_at("fstp_t", span, into);
1515 }
1516 Ok(())
1517 }
1518
1519 /// The frame slot an eighty bit value lives in, as its address in a fresh register.
1520 ///
1521 /// The slot is the value's for the whole function and is taken the first time somebody asks.
1522 /// The address is worked out again every time, which is a `lea` per use and is deliberate: one
1523 /// address kept in a register from the definition to the last use would hold a general purpose
1524 /// register open across everything in between, and a function with a handful of these in it
1525 /// would spend its registers on addresses of things rather than on things.
1526 fn x87_slot(&mut self, value: Value) -> mir::Reg {
1527 // An argument of the function has a slot already and it is the caller's. The convention
1528 // puts the bytes in the argument area and hands over where they are, so the address that
1529 // arrived is the answer and no second copy of the value is made. Nothing ever writes to a
1530 // value of this type once it exists, so nothing writes to the caller's copy either. A
1531 // parameter of any other block is not this: what arrived there is an address a predecessor
1532 // chose, [`Lowering::settle`] has already copied the bytes out of it, and the slot those
1533 // bytes landed in is the one below.
1534 let entry = self.source.entry();
1535 if let (Def::Param { block, .. }, Some(reg)) =
1536 (self.source[value].def, self.regs[value.index()])
1537 {
1538 if entry == Some(block) {
1539 return reg;
1540 }
1541 }
1542 let index = match self.slots[value.index()] {
1543 Some(index) => index,
1544 None => {
1545 let index = self.stack.locals.len();
1546 self.stack.locals.push(Local { size: X87_BYTES, align: X87_BYTES });
1547 self.slots[value.index()] = Some(index);
1548 index
1549 }
1550 };
1551 let block = self.at.expect("a block is being filled");
1552 self.frame_address(block, index)
1553 }
1554
1555 /// The bytes a value crosses between a register and the x87 stack through, as their address
1556 /// in a fresh register.
1557 fn x87_crossing(&mut self) -> mir::Reg {
1558 let index = match self.crossing {
1559 Some(index) => index,
1560 None => {
1561 let index = self.stack.locals.len();
1562 self.stack.locals.push(Local { size: X87_CROSSING, align: X87_CROSSING });
1563 self.crossing = Some(index);
1564 index
1565 }
1566 };
1567 let block = self.at.expect("a block is being filled");
1568 self.frame_address(block, index)
1569 }
1570
1571 /// The two control words, as the address of the first of them in a fresh register.
1572 fn x87_control(&mut self) -> mir::Reg {
1573 let index = match self.control {
1574 Some(index) => index,
1575 None => {
1576 let index = self.stack.locals.len();
1577 self.stack.locals.push(Local { size: 4, align: 4 });
1578 self.control = Some(index);
1579 index
1580 }
1581 };
1582 let block = self.at.expect("a block is being filled");
1583 self.frame_address(block, index)
1584 }
1585
1586 /// An address held in a register, as the addressing mode that reaches it.
1587 fn through(&self, reg: mir::Reg) -> mir::Mem {
1588 mir::Mem::at(mir::Operand::read(reg, self.gpr))
1589 }
1590
1591 /// One instruction of a group, which names an address and nothing else.
1592 ///
1593 /// Every x87 instruction that moves a value is one of these. What it does to the stack is in
1594 /// the mnemonic rather than in an operand, so there is no register to write down and no
1595 /// register the allocator gets a say in.
1596 fn x87_at(&mut self, name: &str, span: Span, at: mir::Mem) {
1597 let block = self.at.expect("a block is being filled");
1598 let opcode = mir::Opcode::new(self.names.intern(&format!("{PREFIX}{name}")));
1599 self.out.build(block, opcode).at(span).mem(at).finish();
1600 }
1601
1602 /// The one instruction of a group that reaches the program's own memory.
1603 ///
1604 /// A `long double` moves in two instructions with a frame slot at one end of them, and the
1605 /// other end is the address the program wrote. That end is the access, so it is the one that
1606 /// carries what the program said about it, and the trip through the slot is this compiler's
1607 /// own business the way a spill is. See [`Self::carried`].
1608 fn x87_touching(&mut self, name: &str, inst: Inst, at: mir::Mem) {
1609 let block = self.at.expect("a block is being filled");
1610 let opcode = mir::Opcode::new(self.names.intern(&format!("{PREFIX}{name}")));
1611 let (span, flags) = (self.source.span(inst), self.carried(inst));
1612 self.out.build(block, opcode).at(span).flags(flags).mem(at).finish();
1613 }
1614
1615 /// One instruction of a group that names nothing at all.
1616 ///
1617 /// The arithmetic is these. Both of an add's operands are already on the stack when it runs
1618 /// and so is where the answer goes, and the stack is not somewhere an instruction says, so
1619 /// `faddp` has an argument in the assembler's syntax and nothing here for the argument to come
1620 /// from. What it works on is which two pushes came before it, which is a fact about the order
1621 /// of the group and is why the group is written in one place.
1622 fn x87_only(&mut self, name: &str, span: Span) {
1623 let block = self.at.expect("a block is being filled");
1624 let opcode = mir::Opcode::new(self.names.intern(&format!("{PREFIX}{name}")));
1625 self.out.build(block, opcode).at(span).finish();
1626 }
1627
1628 /// A `load` of a `long double`: onto the stack from where it was, and off it into the slot.
1629 ///
1630 /// Two instructions rather than the two general purpose moves the same sixteen bytes would
1631 /// take, because `fld` and `fstp` at this format neither convert nor look: the value goes on
1632 /// in the format it was already in and comes back off in it, so a signalling NaN stays one
1633 /// and nothing is raised. Which is what makes this a copy at all.
1634 fn x87_load(&mut self, inst: Inst) -> Result<(), Unsupported> {
1635 let (args, result) = self.ends(inst)?;
1636 let &address = args.first().ok_or_else(|| self.unsupported(inst))?;
1637 let span = self.source.span(inst);
1638 let from = self.reg_of(address)?;
1639 let from = self.through(from);
1640 let into = self.x87_slot(result);
1641 let into = self.through(into);
1642 self.x87_touching("fld_t", inst, from);
1643 self.x87_at("fstp_t", span, into);
1644 Ok(())
1645 }
1646
1647 /// A `store` of a `long double`: the same pair the other way round.
1648 fn x87_store(&mut self, inst: Inst) -> Result<(), Unsupported> {
1649 let args = self.source[self.source[inst].args].to_vec();
1650 let [value, address] = args[..] else { return Err(self.unsupported(inst)) };
1651 let span = self.source.span(inst);
1652 let from = self.x87_slot(value);
1653 let from = self.through(from);
1654 let into = self.reg_of(address)?;
1655 let into = self.through(into);
1656 self.x87_at("fld_t", span, from);
1657 self.x87_touching("fstp_t", inst, into);
1658 Ok(())
1659 }
1660
1661 /// A `float`, a `double` or an integer becoming a `long double`.
1662 ///
1663 /// Through memory, because the x87 reads memory and nothing else: the value is in a register
1664 /// the machine has and the unit has no way to be handed one, so it is written to the crossing
1665 /// bytes and loaded back at the format that widens it. Every one of these is exact. Sixty four
1666 /// bits of significand and fifteen of exponent hold every `float`, every `double` and every
1667 /// sixty four bit integer outright, so none of the four can round and none can raise.
1668 fn x87_across(
1669 &mut self,
1670 inst: Inst,
1671 put: &'static str,
1672 class: RegClass,
1673 get: &'static str,
1674 ) -> Result<(), Unsupported> {
1675 let (args, result) = self.ends(inst)?;
1676 let &source = args.first().ok_or_else(|| self.unsupported(inst))?;
1677 let span = self.source.span(inst);
1678 let value = self.reg_of(source)?;
1679 let across = self.x87_crossing();
1680 let across = self.through(across);
1681 let into = self.x87_slot(result);
1682 let into = self.through(into);
1683
1684 let block = self.at.expect("a block is being filled");
1685 let store = mir::Opcode::new(self.names.intern(&format!("{PREFIX}{put}")));
1686 self.out.build(block, store).at(span).uses(value, class).mem(across).finish();
1687 self.x87_at(get, span, across);
1688 self.x87_at("fstp_t", span, into);
1689 Ok(())
1690 }
1691
1692 /// A `long double` becoming a `float`, a `double` or an integer.
1693 ///
1694 /// Through memory for the reason above and in the same three instructions backwards. The two
1695 /// that go to a float round to nearest, which is what the control word says unless somebody
1696 /// has changed it and is what C wants. The two that go to an integer do not, which is why they
1697 /// do not come here.
1698 fn x87_back(
1699 &mut self,
1700 inst: Inst,
1701 put: &'static str,
1702 get: &'static str,
1703 class: RegClass,
1704 ) -> Result<(), Unsupported> {
1705 let (args, result) = self.ends(inst)?;
1706 let &source = args.first().ok_or_else(|| self.unsupported(inst))?;
1707 let span = self.source.span(inst);
1708 let from = self.x87_slot(source);
1709 let from = self.through(from);
1710 let across = self.x87_crossing();
1711 let across = self.through(across);
1712
1713 self.x87_at("fld_t", span, from);
1714 self.x87_at(put, span, across);
1715 let block = self.at.expect("a block is being filled");
1716 let reg = self.new_reg(result);
1717 let load = mir::Opcode::new(self.names.intern(&format!("{PREFIX}{get}")));
1718 self.out.build(block, load).at(span).def(reg, class).mem(across).finish();
1719 Ok(())
1720 }
1721
1722 /// An `fpext` up to a `long double`, which is the only direction this machine has one in.
1723 fn x87_widen(&mut self, inst: Inst) -> Result<(), Unsupported> {
1724 let sse = self.conv.sse_class;
1725 match self.source[self.narrow(inst)?].ty.bits() {
1726 32 => self.x87_across(inst, "movss_mr", sse, "fld_s"),
1727 64 => self.x87_across(inst, "movsd_mr", sse, "fld_l"),
1728 _ => Err(self.unsupported(inst)),
1729 }
1730 }
1731
1732 /// An `fptrunc` down from a `long double`, which is the other direction of the same.
1733 fn x87_narrow(&mut self, inst: Inst) -> Result<(), Unsupported> {
1734 let sse = self.conv.sse_class;
1735 let result = self.source[inst].first_result.ok_or_else(|| self.unsupported(inst))?;
1736 match self.source[result].ty.bits() {
1737 32 => self.x87_back(inst, "fstp_s", "movss_rm", sse),
1738 64 => self.x87_back(inst, "fstp_l", "movsd_rm", sse),
1739 _ => Err(self.unsupported(inst)),
1740 }
1741 }
1742
1743 /// A `sitofp` up to a `long double`.
1744 ///
1745 /// Thirty two bits and sixty four, and nothing narrower, because C widens an integer to `int`
1746 /// before it converts one and the front end writes that widening down. An unsigned integer is
1747 /// not here at all: `fild` reads its operand as signed, so a value above the signed range
1748 /// comes back short by two to the sixty fourth and has to be added back, which is arithmetic
1749 /// rather than a move and waits with the rest of it.
1750 fn x87_from_signed(&mut self, inst: Inst) -> Result<(), Unsupported> {
1751 let gpr = self.gpr;
1752 match self.source[self.narrow(inst)?].ty.bits() {
1753 32 => self.x87_across(inst, "mov_mr_32", gpr, "fild_l"),
1754 64 => self.x87_across(inst, "mov_mr_64", gpr, "fild_ll"),
1755 _ => Err(self.unsupported(inst)),
1756 }
1757 }
1758
1759 /// An `fptosi` down from a `long double`, which is the one conversion here with no single
1760 /// instruction behind it.
1761 ///
1762 /// C cuts towards zero and the unit rounds the way its control word says, so the store that
1763 /// takes the value off the stack is wrapped in the control word being saved, changed and put
1764 /// back. Five instructions around the one that does the work, and three more moving the word
1765 /// through a register, because this machine has no way to OR a constant into memory at this
1766 /// width. The unit has a shorter answer in `fisttp`, and `spec/10-backend.md` section 10.8
1767 /// says why it is not used: it is SSE3, the x86-64 baseline is not, and there is nothing here
1768 /// that can gate an instruction on a feature yet.
1769 fn x87_to_signed(&mut self, inst: Inst) -> Result<(), Unsupported> {
1770 let (args, result) = self.ends(inst)?;
1771 let &source = args.first().ok_or_else(|| self.unsupported(inst))?;
1772 let (put, get) = match self.source[result].ty.bits() {
1773 32 => ("fistp_l", "mov_rm_32"),
1774 64 => ("fistp_ll", "mov_rm_64"),
1775 _ => return Err(self.unsupported(inst)),
1776 };
1777 let span = self.source.span(inst);
1778 let gpr = self.gpr;
1779 let from = self.x87_slot(source);
1780 let from = self.through(from);
1781 let across = self.x87_crossing();
1782 let across = self.through(across);
1783 let control = self.x87_control();
1784 let saved = self.through(control).plus(0);
1785 let cut = self.through(control).plus(2);
1786
1787 // The word the unit has now, into the first of the two slots and into a register, with the
1788 // rounding field turned to truncate on the way to the second.
1789 self.x87_at("fnstcw", span, saved);
1790 let block = self.at.expect("a block is being filled");
1791 let was = self.out.new_vreg(gpr);
1792 let read = mir::Opcode::new(self.names.intern("x64.mov_rm_16"));
1793 self.out.build(block, read).at(span).def(was, gpr).mem(saved).finish();
1794 let now = self.out.new_vreg(gpr);
1795 let set = mir::Opcode::new(self.names.intern("x64.or_ri_16"));
1796 // Two address, which is written out here rather than taken from the two shorthands
1797 // because the shorthands leave an operand unconstrained: this machine ORs into the
1798 // register it read, so the two have to be the same one and only the constraint says so.
1799 self.out
1800 .build(block, set)
1801 .at(span)
1802 .operand(mir::Operand::write(now, gpr).with(Constraint::Reuse(1)))
1803 .operand(mir::Operand::read(was, gpr))
1804 .imm(X87_TRUNCATE)
1805 .finish();
1806 let write = mir::Opcode::new(self.names.intern("x64.mov_mr_16"));
1807 self.out.build(block, write).at(span).uses(now, gpr).mem(cut).finish();
1808
1809 // The conversion itself, under the changed word, and then the word the unit had put back
1810 // before anything else runs.
1811 self.x87_at("fldcw", span, cut);
1812 self.x87_at("fld_t", span, from);
1813 self.x87_at(put, span, across);
1814 self.x87_at("fldcw", span, saved);
1815
1816 let block = self.at.expect("a block is being filled");
1817 let reg = self.new_reg(result);
1818 let load = mir::Opcode::new(self.names.intern(&format!("{PREFIX}{get}")));
1819 self.out.build(block, load).at(span).def(reg, gpr).mem(across).finish();
1820 Ok(())
1821 }
1822
1823 /// A constant of this type, as the bits of it written into its slot.
1824 ///
1825 /// No x87 instruction at all, which is the surprise here. A slot holding an eighty bit value is
1826 /// the value, so a constant is ten bytes put where the value lives, and the unit never has to
1827 /// see it: whatever reads it will `fld` it out of the slot the way it reads any other one.
1828 ///
1829 /// Ten bytes in two goes, because the machine stores eight at a time and there is no store of
1830 /// an immediate to memory, so each half is put in a register first. The six bytes above the ten
1831 /// are left alone, since nothing reads them: they are the padding that makes the type sixteen
1832 /// wide and they are unspecified in the psABI rather than zero.
1833 ///
1834 /// The other way is a constant pool, an `fldt` of a symbol, and a relocation, which is what a
1835 /// compiler with somewhere to put a literal does. This back end has nowhere to put one yet, and
1836 /// four instructions in the frame is what that costs until it does.
1837 fn x87_const(&mut self, inst: Inst) -> Result<(), Unsupported> {
1838 let Extra::Imm(imm) = self.source[inst].extra else { return Err(self.unsupported(inst)) };
1839 let result = self.source[inst].first_result.ok_or_else(|| self.unsupported(inst))?;
1840 let bits = self.source[imm].bits();
1841 let span = self.source.span(inst);
1842 let gpr = self.gpr;
1843 let slot = self.x87_slot(result);
1844 let low = self.through(slot).plus(0);
1845 let high = self.through(slot).plus(8);
1846
1847 let block = self.at.expect("a block is being filled");
1848 for (bytes, at, into) in
1849 [(bits as u64 as i64, low, "64"), (((bits >> 64) & 0xffff) as i64, high, "16")]
1850 {
1851 let held = self.out.new_vreg(gpr);
1852 let put = mir::Opcode::new(self.names.intern(&format!("{PREFIX}mov_ri_{into}")));
1853 self.out.build(block, put).at(span).def(held, gpr).imm(bytes).finish();
1854 let store = mir::Opcode::new(self.names.intern(&format!("{PREFIX}mov_mr_{into}")));
1855 self.out.build(block, store).at(span).uses(held, gpr).mem(at).finish();
1856 }
1857 Ok(())
1858 }
1859
1860 /// One arithmetic instruction on two eighty bit values, as the four it takes.
1861 ///
1862 /// The left operand is pushed first and the right one on top of it, so the left ends up
1863 /// underneath and the answer wanted is the one below against the top in that order. Which of
1864 /// the two mnemonics computes that is a question about the spelling rather than about the
1865 /// machine, and the two spellings disagree. Intel's `FSUBP ST(i), ST(0)` is `ST(i) - ST(0)`
1866 /// and is `DE E8+i`, and AT&T's `fsubp` is `DE E0+i`, which is the other subtraction. This
1867 /// compiler writes AT&T and encodes what gas encodes, so what it asks for here is `fsubr_p`
1868 /// and `fdivr_p`, and the `r` is not a reversal of anything the code generator decided.
1869 ///
1870 /// An addition and a multiplication have one form each and do not care, which is why a test
1871 /// that reads the mnemonic back would not have caught this and one that computes a subtraction
1872 /// and checks the answer does.
1873 ///
1874 /// The answer is left where the deeper of the two was and the shallower is gone, which is what
1875 /// the `p` on the mnemonic means, so one push has already been paid back by the time the
1876 /// `fstp` runs and the stack is level again after it.
1877 ///
1878 /// Nothing here is folded and nothing is reused. Two values that are the same value get two
1879 /// pushes of the same slot, and an operand that was just computed is read back out of the slot
1880 /// it was written to rather than left on the stack, which costs a store and a load per
1881 /// instruction in an expression. Keeping a partial result on the stack across the next
1882 /// instruction's operands means knowing how deep the stack is at every point in the block, and
1883 /// that is a different thing from writing a group.
1884 fn x87_arith(&mut self, inst: Inst, with: &'static str) -> Result<(), Unsupported> {
1885 let (args, result) = self.ends(inst)?;
1886 let [left, right] = args[..] else { return Err(self.unsupported(inst)) };
1887 let span = self.source.span(inst);
1888 let left = self.x87_slot(left);
1889 let left = self.through(left);
1890 let right = self.x87_slot(right);
1891 let right = self.through(right);
1892 let into = self.x87_slot(result);
1893 let into = self.through(into);
1894 self.x87_at("fld_t", span, left);
1895 self.x87_at("fld_t", span, right);
1896 self.x87_only(with, span);
1897 self.x87_at("fstp_t", span, into);
1898 Ok(())
1899 }
1900
1901 /// A negation, which is a push, the sign bit turned over and a pop.
1902 ///
1903 /// `fchs` does not read the value as a number, so this is right for a zero, for an infinity
1904 /// and for a NaN, and it raises nothing on any of them. Which is what C asks of a negation and
1905 /// is not what subtracting from zero would give: `0.0L - x` is a different answer at a
1906 /// negative zero and a signalling one at a NaN.
1907 fn x87_flip(&mut self, inst: Inst) -> Result<(), Unsupported> {
1908 let (args, result) = self.ends(inst)?;
1909 let &source = args.first().ok_or_else(|| self.unsupported(inst))?;
1910 let span = self.source.span(inst);
1911 let from = self.x87_slot(source);
1912 let from = self.through(from);
1913 let into = self.x87_slot(result);
1914 let into = self.through(into);
1915 self.x87_at("fld_t", span, from);
1916 self.x87_only("fchs", span);
1917 self.x87_at("fstp_t", span, into);
1918 Ok(())
1919 }
1920
1921 /// A comparison of two eighty bit values, as the two pushes and the one opcode that reads them.
1922 ///
1923 /// The right operand is pushed first and the left one on top of it, which is the other way
1924 /// round from the arithmetic and is because `fucomip` asks about the top against what is under
1925 /// it: the comparison this machine can do is the top's, so the value the predicate is about
1926 /// has to be the top. The pop that gets the loser off the stack and the byte that reads the
1927 /// flags are both inside the opcode, since what passes between those and the comparison is the
1928 /// flags and the flags are not something anything here can name.
1929 ///
1930 /// Which of the ten opcodes, and which way round, is the same table the vector comparisons
1931 /// match against in `rules/x86-64.rules`, and it has to stay the same table: a predicate that
1932 /// picked a different condition here than there would be a `long double` comparison that
1933 /// disagreed with the `double` comparison of the same two numbers, which is the one thing a
1934 /// wider format is not allowed to do.
1935 ///
1936 /// The always false and the always true are refused rather than folded into a constant,
1937 /// because a comparison this machine never has to do is one the optimizer should have removed
1938 /// and an instruction here that quietly agreed with it would hide that it did not.
1939 fn x87_compare(&mut self, inst: Inst) -> Result<(), Unsupported> {
1940 let Extra::FloatPred(pred) = self.source[inst].extra else {
1941 return Err(self.unsupported(inst));
1942 };
1943 let (args, result) = self.ends(inst)?;
1944 let [left, right] = args[..] else { return Err(self.unsupported(inst)) };
1945 // Two of the fourteen need a second byte and an instruction to put the two together,
1946 // because they are two conditions at once: an ordered equal is equal and not unordered,
1947 // and an unordered not equal is either. The opcode carries all of that and says here only
1948 // that it writes somewhere else as well.
1949 let (name, reversed, both) = match pred {
1950 FloatPred::Ogt => ("fucomip_set_a", false, false),
1951 FloatPred::Oge => ("fucomip_set_ae", false, false),
1952 FloatPred::Olt => ("fucomip_set_a", true, false),
1953 FloatPred::Ole => ("fucomip_set_ae", true, false),
1954 FloatPred::One => ("fucomip_set_ne", false, false),
1955 FloatPred::Ord => ("fucomip_set_np", false, false),
1956 FloatPred::Uno => ("fucomip_set_p", false, false),
1957 FloatPred::Ueq => ("fucomip_set_e", false, false),
1958 FloatPred::Ult => ("fucomip_set_b", false, false),
1959 FloatPred::Ule => ("fucomip_set_be", false, false),
1960 FloatPred::Ugt => ("fucomip_set_b", true, false),
1961 FloatPred::Uge => ("fucomip_set_be", true, false),
1962 FloatPred::Oeq => ("fucomip_set_e_and_np", false, true),
1963 FloatPred::Une => ("fucomip_set_ne_or_p", false, true),
1964 FloatPred::False | FloatPred::True => return Err(self.unsupported(inst)),
1965 };
1966 let (top, under) = if reversed { (right, left) } else { (left, right) };
1967
1968 let span = self.source.span(inst);
1969 let gpr = self.gpr;
1970 let under = self.x87_slot(under);
1971 let under = self.through(under);
1972 let top = self.x87_slot(top);
1973 let top = self.through(top);
1974 self.x87_at("fld_t", span, under);
1975 self.x87_at("fld_t", span, top);
1976
1977 let block = self.at.expect("a block is being filled");
1978 let reg = self.new_reg(result);
1979 // Taken before the instruction is started rather than inside it, since both come from the
1980 // same function being built and only one thing at a time may be adding to it.
1981 let spare = both.then(|| self.out.new_vreg(gpr));
1982 let opcode = mir::Opcode::new(self.names.intern(&format!("{PREFIX}{name}")));
1983 let mut build = self.out.build(block, opcode).at(span).def(reg, gpr);
1984 if let Some(spare) = spare {
1985 build = build.def(spare, gpr);
1986 }
1987 build.finish();
1988 Ok(())
1989 }
1990
1991 /// The operands and the one result of an instruction that has exactly one.
1992 fn ends(&self, inst: Inst) -> Result<(&'a [Value], Value), Unsupported> {
1993 let data = &self.source[inst];
1994 let result = data.first_result.ok_or_else(|| self.unsupported(inst))?;
1995 Ok((&self.source[data.args], result))
1996 }
1997
1998 /// The operand of a conversion, which is the end of it that is not the `long double`.
1999 fn narrow(&self, inst: Inst) -> Result<Value, Unsupported> {
2000 let args = &self.source[self.source[inst].args];
2001 args.first().copied().ok_or_else(|| self.unsupported(inst))
2002 }
2003
2004 /// One `va_start`, as the fields of the list it was handed.
2005 ///
2006 /// On the four field list, two of them are numbers this already knows, and each costs an
2007 /// instruction to put in a register before it can be stored, because the machine here has no
2008 /// store of an immediate to memory. The other two are addresses in the frame, and each is a
2009 /// `lea` [`crate::finish`] finishes: the save area is one of the function's own stack objects,
2010 /// and the caller's argument area is where the parameters that had no register came from, which
2011 /// is the same place and the same fixup a parameter past the sixth already uses.
2012 ///
2013 /// On the list that is a pointer it is the second of those four and nothing else, since the
2014 /// whole of what that list says is where the walk is and the walk starts at the first argument
2015 /// the signature does not name. One `lea` and one store.
2016 ///
2017 /// What is written is exactly the fields [`crate::varargs`] describes, in the order they are
2018 /// laid out, so that reading this beside that table is the whole of the check.
2019 fn va_start(&mut self, inst: Inst) -> Result<(), Unsupported> {
2020 let Some(&list) = self.source[self.source[inst].args].first() else {
2021 return Err(self.unsupported(inst));
2022 };
2023 let started = self.varargs.ok_or_else(|| self.unsupported(inst))?;
2024 let list = self.reg_of(list)?;
2025 let block = self.at.expect("a block is being filled");
2026 let span = self.source.span(inst);
2027
2028 let (save, incoming) = match started {
2029 Varargs::Pointer { incoming } => (None, incoming),
2030 Varargs::Fields { save, incoming, integers, floats } => {
2031 for (at, count) in [(varargs::GP_OFFSET, integers), (varargs::FP_OFFSET, floats)] {
2032 let held = self.out.new_vreg(self.gpr);
2033 let load = mir::Opcode::new(self.names.intern("x64.mov_ri_32"));
2034 let build = self.out.build(block, load).at(span);
2035 build.def(held, self.gpr).imm(i64::from(count)).finish();
2036
2037 let store = mir::Opcode::new(self.names.intern("x64.mov_mr_32"));
2038 let mem = self.field(list, at);
2039 self.out.build(block, store).at(span).uses(held, self.gpr).mem(mem).finish();
2040 }
2041 (Some(save), incoming)
2042 }
2043 };
2044
2045 // The first argument the signature did not name, which is as far up the caller's argument
2046 // area as the ones it did name reached. Nothing here knows where that area is, so the
2047 // distance is recorded the way a parameter read out of it is and finished with it.
2048 let overflow = self.out.new_vreg(self.gpr);
2049 let lea = mir::Opcode::new(self.names.intern(&format!("{PREFIX}{}", x86_64::FRAME.lea)));
2050 let sp = mir::Operand::read(mir::Reg::physical(self.conv.stack_pointer), self.gpr);
2051 let made = self
2052 .out
2053 .build(block, lea)
2054 .at(span)
2055 .def(overflow, self.gpr)
2056 .mem(mir::Mem::at(sp))
2057 .finish();
2058 self.stack.arguments.push((made, incoming));
2059
2060 // At the front of the list when that address is the whole of it, and at the field the
2061 // layout gives it when there are four, with the save area behind it.
2062 let fields = match save {
2063 None => vec![(0, overflow)],
2064 Some(save) => {
2065 let save = self.frame_address(block, save);
2066 vec![(varargs::OVERFLOW, overflow), (varargs::SAVE_AREA, save)]
2067 }
2068 };
2069 for (at, held) in fields {
2070 let store = mir::Opcode::new(self.names.intern("x64.mov_mr_64"));
2071 let mem = self.field(list, at);
2072 self.out.build(block, store).at(span).uses(held, self.gpr).mem(mem).finish();
2073 }
2074 Ok(())
2075 }
2076
2077 /// One field of a list, as the addressing mode that reaches it.
2078 fn field(&self, list: mir::Reg, at: i64) -> mir::Mem {
2079 let base = mir::Operand::read(list, self.gpr);
2080 mir::Mem::at(base).plus(i32::try_from(at).expect("a field of a list is a small offset"))
2081 }
2082
2083 /// The address of a name: one `lea` off the instruction pointer, with the name on it.
2084 ///
2085 /// The same instruction an `alloca` gets and for a related reason. An address that is not in
2086 /// the program is a `lea` of an addressing mode that names no register, and the mode carries
2087 /// the symbol so that [`rucc_asm`] can write it relative to `%rip` and leave the relocation
2088 /// for the assembler. Both halves of that already existed: the printer writes `sym(%rip)` and
2089 /// the encoder emits the relocation, because a call to a name the file does not define needed
2090 /// them first.
2091 ///
2092 /// One `mov` and not one `lea` when the name is one [`Elsewhere`] holds, because the distance
2093 /// the `lea` adds to the instruction pointer is a number only a link that puts the name in
2094 /// this program can work out, and the address of a function this file merely declares is not
2095 /// such a number. The load reads the address out of the slot the linker fills in instead. The
2096 /// linker turns it back into the `lea` when the name turns out to have been here all along,
2097 /// so this is not slower in the case that was already right.
2098 ///
2099 /// There is deliberately no name for this in [`crate::term`], which is what stops the address
2100 /// being folded into the instruction that reads it. Folding it is the right thing to do and
2101 /// is what turns a load of a global from two instructions into one, but it is a separate
2102 /// question about addressing modes and issue #282 is it. Until then the address is in a
2103 /// register before anything uses it, which is correct and one instruction longer.
2104 ///
2105 /// What this does not do is give the name anything to refer to. A module carries its globals
2106 /// and nothing writes them out, so a file that defines the variable it reads compiles to a
2107 /// reference the linker cannot resolve. Issue #293 is the other half.
2108 ///
2109 /// A thread-local variable is neither of the two above and is [`Self::thread_address`].
2110 fn address_of(&mut self, inst: Inst) -> Result<(), Unsupported> {
2111 let data = &self.source[inst];
2112 let Extra::Symbol(symbol) = data.extra else { return Err(self.unsupported(inst)) };
2113 let result = data.first_result.ok_or_else(|| self.unsupported(inst))?;
2114 if self.elsewhere.thread(symbol) {
2115 return self.thread_address(inst, symbol, result);
2116 }
2117
2118 let block = self.at.expect("a block is being filled");
2119 let reg = self.new_reg(result);
2120 let span = self.source.span(inst);
2121 let (mnemonic, mem) = if self.elsewhere.holds(symbol) {
2122 (GOT_LOAD, mir::Mem::got(symbol))
2123 } else {
2124 (x86_64::FRAME.lea, mir::Mem::of(symbol))
2125 };
2126 let opcode = mir::Opcode::new(self.names.intern(&format!("{PREFIX}{mnemonic}")));
2127 self.out.build(block, opcode).at(span).def(reg, self.gpr).mem(mem).finish();
2128 Ok(())
2129 }
2130
2131 /// The address of a thread-local variable, which is this thread's copy of it.
2132 ///
2133 /// Neither instruction the ordinary case writes would mean anything here. There is no distance
2134 /// to the variable for a `lea` to add, because there is no variable: there is one copy of it per
2135 /// thread and they are at different addresses, so a link asked for the distance to the name
2136 /// refuses rather than picking one. And there is no address for a table slot to hold either, for
2137 /// the same reason.
2138 ///
2139 /// What is the same in every thread is where the variable sits inside the block of storage a
2140 /// thread gets, so that offset is what the link writes down, and the address of the running
2141 /// thread's block is what turns it into an address. x86-64 keeps that address in `%fs`, at the
2142 /// front of the block, so the whole of this is three instructions:
2143 ///
2144 /// ```text
2145 /// movq x@gottpoff(%rip), %off # how far into the block x sits, which the link fills in
2146 /// movq %fs:0, %tp # where this thread's block is, which only the machine knows
2147 /// addq %tp, %off # this thread's copy of x
2148 /// ```
2149 ///
2150 /// That is the initial exec model. It is one instruction longer than what gcc writes at `-O2`
2151 /// in an executable, which folds the addition into the instruction that uses the address, and
2152 /// the difference is issue #282 rather than anything about threads: nothing here folds an
2153 /// address into its reader yet. The link relaxes the first instruction into an immediate when it
2154 /// is making an executable, since it lays the blocks out and therefore knows the number, so the
2155 /// table slot costs nothing in the case that is common.
2156 ///
2157 /// It is not the most general model. A library loaded by `dlopen` gets its storage after the
2158 /// program is already running, and the block this reaches was laid out before it started, so
2159 /// the loader has to find room in that block for the library's variables. glibc keeps a little
2160 /// spare room for exactly this and a library that fits in it loads and runs; one that does not
2161 /// fails to load, with a message saying so. The model with no such limit calls `__tls_get_addr`
2162 /// and is what gcc writes under `-fPIC` by default, and it is issue #1104.
2163 ///
2164 /// So this is the model gcc writes under `-ftls-model=initial-exec`: right for an executable,
2165 /// right for a library the program is linked against, and a load that either works or is
2166 /// refused out loud for a library something opens later. What it is never is quietly wrong.
2167 fn thread_address(
2168 &mut self,
2169 inst: Inst,
2170 symbol: Symbol,
2171 result: Value,
2172 ) -> Result<(), Unsupported> {
2173 let block = self.at.expect("a block is being filled");
2174 let span = self.source.span(inst);
2175 let gpr = self.gpr;
2176 let load = mir::Opcode::new(self.names.intern(&format!("{PREFIX}{GOT_LOAD}")));
2177
2178 let offset = self.out.new_vreg(gpr);
2179 self.out
2180 .build(block, load)
2181 .at(span)
2182 .def(offset, gpr)
2183 .mem(mir::Mem::thread(symbol))
2184 .finish();
2185 // The front of the block, which is the one thing on this machine that no instruction can
2186 // work out: `%fs` is not a register a program can read, and what it points at is a word
2187 // holding its own address, so reading through it at zero is how the address is come by.
2188 let pointer = self.out.new_vreg(gpr);
2189 let at = mir::Mem::in_segment(Segment::Fs, 0);
2190 self.out.build(block, load).at(span).def(pointer, gpr).mem(at).finish();
2191
2192 // Two address, spelled out for the reason `x87_to_int` gives: this machine adds into the
2193 // register it read, and only the constraint says the two are the same one.
2194 let reg = self.new_reg(result);
2195 let add = mir::Opcode::new(self.names.intern(&format!("{PREFIX}add_rr_64")));
2196 self.out
2197 .build(block, add)
2198 .at(span)
2199 .operand(mir::Operand::write(reg, gpr).with(Constraint::Reuse(1)))
2200 .operand(mir::Operand::read(offset, gpr))
2201 .operand(mir::Operand::read(pointer, gpr))
2202 .finish();
2203 Ok(())
2204 }
2205
2206 /// `&&label`, GNU's address of a label, which is the same `lea` a global gets against a place
2207 /// in this same function.
2208 ///
2209 /// What the two have in common is the whole of the instruction: an address worked out from
2210 /// where the instruction is, which is what `(%rip)` means and is the only way this compiler
2211 /// reaches anything. What they do not have in common is what fills the four bytes in. A
2212 /// global is a name, so the number is a relocation and the linker writes it. A block is a
2213 /// place in this function, so both ends are in one section and the number is known as soon as
2214 /// the blocks have been laid out, which is why `rucc_asm` fills it in the way it fills in a
2215 /// jump rather than leaving a relocation behind.
2216 ///
2217 /// Nothing here says the block is one control can arrive at. That is said by the
2218 /// [`Opcode::IndirectBr`] that reads the address, which lists every block it can arrive at,
2219 /// and by nothing else: an address on its own is a number.
2220 fn block_address(&mut self, inst: Inst) -> Result<(), Unsupported> {
2221 let result = self.source[inst].first_result.ok_or_else(|| self.unsupported(inst))?;
2222 let Some(call) = self.source.successors(inst).next() else {
2223 return Err(self.unsupported(inst));
2224 };
2225 let block = self.at.expect("a block is being filled");
2226 let reg = self.new_reg(result);
2227 let span = self.source.span(inst);
2228 let opcode = mir::Opcode::new(self.names.intern(&format!("{PREFIX}{}", x86_64::FRAME.lea)));
2229 let mem = mir::Mem::block(self.out_block(call.block));
2230 self.out.build(block, opcode).at(span).def(reg, self.gpr).mem(mem).finish();
2231 Ok(())
2232 }
2233
2234 /// `goto *p`, GNU's computed goto, which is a jump through a register.
2235 ///
2236 /// Where it goes is not written here and cannot be. Every block it can arrive at is on the
2237 /// block this ends, the way every other arm is, and which of them the address holds is decided
2238 /// while the program runs. So this is one instruction with one operand, and the arms are
2239 /// copied across by [`Self::edges`] like anybody else's.
2240 fn indirect_branch(&mut self, inst: Inst) -> Result<(), Unsupported> {
2241 let data = &self.source[inst];
2242 let &address = self.source[data.args].first().ok_or_else(|| self.unsupported(inst))?;
2243 let reg = self.reg_of(address)?;
2244 let block = self.at.expect("a block is being filled");
2245 let span = self.source.span(inst);
2246 let name = x86_64::BRANCH.indirect;
2247 let opcode = mir::Opcode::new(self.names.intern(&format!("{PREFIX}{name}")));
2248 self.out.build(block, opcode).at(span).operand(mir::Operand::read(reg, self.gpr)).finish();
2249 Ok(())
2250 }
2251
2252 /// `__builtin_setjmp`, which writes down where the function is so that a `__builtin_longjmp`
2253 /// somewhere else can bring control back here, and answers zero on the way past.
2254 ///
2255 /// Four words of the buffer, the three gcc writes and one of this compiler's own, and then the
2256 /// block ends: everything after the save in the IR block is put into a new machine IR block,
2257 /// and the address of that block is what went into the buffer. That is the whole reason the
2258 /// block is split here. An address points at a label, a machine IR block is the only thing in
2259 /// this representation that has one, and a save is in the middle of a block rather than at the
2260 /// end of one.
2261 ///
2262 /// # How the answer gets back
2263 ///
2264 /// Through the frame rather than through a register. The save writes a zero into a word of its
2265 /// own frame, puts the address of that word in the buffer, and the new block reads the word
2266 /// back. The restore writes a one through the address it finds in the buffer before it goes.
2267 /// So one load answers zero on the way past and one on the way back, and neither path has to
2268 /// agree with the other about a register.
2269 ///
2270 /// gcc does it the other way round, with a second block that sets the answer to one and is
2271 /// what the restore arrives at. That block is one nothing in the function jumps to, and a
2272 /// machine IR whose blocks are walked from the entry has nowhere to put such a thing: the
2273 /// allocator lays a function out in the line it is going to be emitted in, and a block no edge
2274 /// reaches is not in that line. The word in the frame costs eight bytes of stack and one load,
2275 /// and it needs nothing said anywhere about a block arrived at from outside.
2276 ///
2277 /// # What the allocator is told
2278 ///
2279 /// That every register it hands out is gone at the end of the first block. That is what makes
2280 /// the rest of the function right on the way back: control arrives from a `__builtin_longjmp`
2281 /// in some other function, and the only two registers that puts back are the stack pointer and
2282 /// the frame pointer, so anything this function still wants has to be in the frame those two
2283 /// reach. It is said with a write of every one of those registers, which is the same thing a
2284 /// call says about the registers a callee may destroy, on an instruction with nothing else on
2285 /// it so that the stores above are not caught up in it.
2286 fn saves_place(&mut self, inst: Inst) -> Result<(), Unsupported> {
2287 let data = &self.source[inst];
2288 let result = data.first_result.ok_or_else(|| self.unsupported(inst))?;
2289 let &buffer = self.source[data.args].first().ok_or_else(|| self.unsupported(inst))?;
2290 let span = self.source.span(inst);
2291 let buf = self.reg_of(buffer)?;
2292 let at = self.at.expect("a block is being filled");
2293 let gpr = self.gpr;
2294 let moves = x86_64::FRAME.moves(gpr).expect("a class the target says how to move");
2295 let store = self.named(moves.store);
2296 let load = self.named(moves.load);
2297 let lea = self.named(x86_64::FRAME.lea);
2298 let put = self.named(x86_64::FRAME.imm);
2299 let nothing = x86_64::FRAME.pad.expect("a target with an instruction that does nothing");
2300 let nothing = self.named(nothing);
2301 self.stack.saves_place = true;
2302 let answer = self.answer_slot();
2303 let back = self.out.create_block();
2304
2305 // The zero this answers with, into the word a restore writes a one into.
2306 let zero = self.out.new_vreg(gpr);
2307 self.out.build(at, put).at(span).def(zero, gpr).imm(0).finish();
2308 let mem = self.frame_mem();
2309 let made = self.out.build(at, store).at(span).uses(zero, gpr).mem(mem).finish();
2310 self.stack.addresses.push((made, answer));
2311
2312 // The four words: where that word is, where control comes back to, and the two registers
2313 // the restore puts back.
2314 let found = self.frame_address(at, answer);
2315 self.write_word(at, span, store, found, buf, JUMP_ANSWER);
2316 let pc = self.out.new_vreg(gpr);
2317 self.out.build(at, lea).at(span).def(pc, gpr).mem(mir::Mem::block(back)).finish();
2318 self.write_word(at, span, store, pc, buf, JUMP_PC);
2319 let frame = mir::Reg::physical(self.conv.frame_pointer);
2320 self.write_word(at, span, store, frame, buf, JUMP_FRAME);
2321 let stack = mir::Reg::physical(self.conv.stack_pointer);
2322 self.write_word(at, span, store, stack, buf, JUMP_STACK);
2323
2324 // Nothing is in a register past this point, which is what the rest of the function is
2325 // allowed to assume about the way back in.
2326 let gone = self.across_jump();
2327 let mut build = self.out.build(at, nothing).at(span);
2328 for (reg, class) in gone {
2329 build = build.operand(mir::Operand::write(reg, class));
2330 }
2331 build.finish();
2332
2333 // And the rest of the block, which is the block the address above was of.
2334 *self.out.succs_mut(at) = vec![mir::BlockCall::to(back)];
2335 self.at = Some(back);
2336 let reg = self.new_reg(result);
2337 let mem = self.frame_mem();
2338 let made = self.out.build(back, load).at(span).def(reg, gpr).mem(mem).finish();
2339 self.stack.addresses.push((made, answer));
2340 Ok(())
2341 }
2342
2343 /// `__builtin_longjmp`, which reads a buffer a `__builtin_setjmp` filled in and goes there.
2344 ///
2345 /// Everything comes out of the buffer before anything is put back, and the four registers it
2346 /// comes out into are physical ones rather than values the allocator places. Both of those are
2347 /// about the same moment. The stack pointer is one of the things being put back, a value the
2348 /// allocator sent to the stack is reached through the stack pointer, and between the
2349 /// instruction that moves it and the jump there is no stack this function owns any more. A
2350 /// register named outright is a register nothing reloads into and nothing else is in, which is
2351 /// the only way to hold something across that moment.
2352 ///
2353 /// Four of them because that is how many things are in the air at once: where to go, the frame
2354 /// pointer to put back, the one the matching save is to answer with, and one register used
2355 /// twice, first for the address that one is written through and then for the stack pointer.
2356 ///
2357 /// Nothing after this in the block is reached. The marker is not a terminator, for the reason
2358 /// `spec/08-ir.md` gives, so the block goes on and whatever the front end wrote after it is
2359 /// written out and never run.
2360 fn comes_back(&mut self, inst: Inst) -> Result<(), Unsupported> {
2361 let data = &self.source[inst];
2362 let &buffer = self.source[data.args].first().ok_or_else(|| self.unsupported(inst))?;
2363 let span = self.source.span(inst);
2364 let buf = self.reg_of(buffer)?;
2365 let at = self.at.expect("a block is being filled");
2366 let gpr = self.gpr;
2367 let moves = x86_64::FRAME.moves(gpr).expect("a class the target says how to move");
2368 let load = self.named(moves.load);
2369 let store = self.named(moves.store);
2370 let mov = self.named(moves.mov);
2371 let put = self.named(x86_64::FRAME.imm);
2372 let jump = self.named(x86_64::BRANCH.indirect);
2373
2374 let held = self.jump_regs();
2375 if held.len() < JUMP_REGS {
2376 return Err(self.unsupported(inst));
2377 }
2378 let pc = mir::Reg::physical(held[0]);
2379 let frame = mir::Reg::physical(held[1]);
2380 let spare = mir::Reg::physical(held[2]);
2381 let one = mir::Reg::physical(held[3]);
2382
2383 self.read_word(at, span, load, pc, buf, JUMP_PC);
2384 self.read_word(at, span, load, frame, buf, JUMP_FRAME);
2385 self.read_word(at, span, load, spare, buf, JUMP_ANSWER);
2386
2387 // What the matching save answers with, written through the address that came out of the
2388 // buffer, because the word it goes in is in the other function's frame and this one has no
2389 // way of knowing where that is.
2390 self.out.build(at, put).at(span).def(one, gpr).imm(1).finish();
2391 let mem = mir::Mem::at(mir::Operand::read(spare, gpr));
2392 self.out.build(at, store).at(span).uses(one, gpr).mem(mem).finish();
2393
2394 // The stack last of the four, so that the register the buffer is reached through is done
2395 // with before the stack it may have been spilled to stops being this function's.
2396 self.read_word(at, span, load, spare, buf, JUMP_STACK);
2397 let stack = mir::Reg::physical(self.conv.stack_pointer);
2398 self.copy(at, span, mov, stack, spare);
2399 let base = mir::Reg::physical(self.conv.frame_pointer);
2400 self.copy(at, span, mov, base, frame);
2401
2402 // And the jump, which reads the two registers just put back as well as the address it
2403 // goes through. Neither of those is printed, because the target's spelling of an indirect
2404 // jump has one argument and it is the first one read. They are there because the code
2405 // control arrives at reaches its frame through them, and because without them the two
2406 // instructions above write registers nothing reads: a scheduler is then free to put the
2407 // jump in front of them, and at `-O2` it does.
2408 self.out
2409 .build(at, jump)
2410 .at(span)
2411 .operand(mir::Operand::read(pc, gpr))
2412 .operand(mir::Operand::read(stack, gpr))
2413 .operand(mir::Operand::read(base, gpr))
2414 .finish();
2415 Ok(())
2416 }
2417
2418 /// One word of the buffer of a `__builtin_setjmp`, written from a register.
2419 fn write_word(
2420 &mut self,
2421 at: mir::Block,
2422 span: Span,
2423 store: mir::Opcode,
2424 from: mir::Reg,
2425 buf: mir::Reg,
2426 word: i32,
2427 ) {
2428 let mem = mir::Mem::at(mir::Operand::read(buf, self.gpr)).plus(word);
2429 self.out.build(at, store).at(span).uses(from, self.gpr).mem(mem).finish();
2430 }
2431
2432 /// One word of that buffer, read back into a register.
2433 fn read_word(
2434 &mut self,
2435 at: mir::Block,
2436 span: Span,
2437 load: mir::Opcode,
2438 into: mir::Reg,
2439 buf: mir::Reg,
2440 word: i32,
2441 ) {
2442 let mem = mir::Mem::at(mir::Operand::read(buf, self.gpr)).plus(word);
2443 self.out.build(at, load).at(span).def(into, self.gpr).mem(mem).finish();
2444 }
2445
2446 /// One register into another, which is the one shape of instruction the builder has no word
2447 /// for because neither operand is a definition of a value or a read of memory.
2448 fn copy(
2449 &mut self,
2450 at: mir::Block,
2451 span: Span,
2452 mov: mir::Opcode,
2453 into: mir::Reg,
2454 from: mir::Reg,
2455 ) {
2456 self.out
2457 .build(at, mov)
2458 .at(span)
2459 .operand(mir::Operand::write(into, self.gpr))
2460 .operand(mir::Operand::read(from, self.gpr))
2461 .finish();
2462 }
2463
2464 /// The word a `__builtin_setjmp` in this function answers with, asked for once and kept.
2465 fn answer_slot(&mut self) -> usize {
2466 match self.answer {
2467 Some(index) => index,
2468 None => {
2469 let index = self.stack.locals.len();
2470 self.stack.locals.push(Local { size: JUMP_WORD, align: JUMP_WORD });
2471 self.answer = Some(index);
2472 index
2473 }
2474 }
2475 }
2476
2477 /// An address in this function's frame with nothing in its displacement, which is what an
2478 /// instruction reaching one of its stack objects is written with until [`crate::finish`] knows
2479 /// where the object is.
2480 fn frame_mem(&self) -> mir::Mem {
2481 mir::Mem::at(mir::Operand::read(mir::Reg::physical(self.conv.stack_pointer), self.gpr))
2482 }
2483
2484 /// Every register the allocator hands out, which is what a `__builtin_setjmp` destroys.
2485 ///
2486 /// Both files, since a `double` live across a save has the same problem an integer does. The
2487 /// two registers a frame is reached through are not here: the restore puts both of them back,
2488 /// which is the whole of what it puts back, and a function whose frame pointer was destroyed
2489 /// by its own save would have nothing left to find its caller with.
2490 fn across_jump(&self) -> Vec<(mir::Reg, RegClass)> {
2491 let mut gone = Vec::new();
2492 for ® in self.conv.int_order {
2493 if reg == self.conv.stack_pointer || reg == self.conv.frame_pointer {
2494 continue;
2495 }
2496 gone.push((mir::Reg::physical(reg), self.gpr));
2497 }
2498 for ® in self.conv.sse_order {
2499 gone.push((mir::Reg::physical(reg), self.conv.sse_class));
2500 }
2501 gone
2502 }
2503
2504 /// The registers a `__builtin_longjmp` may hold things in while it puts a frame back.
2505 ///
2506 /// The ones the allocator hands out, less the two a frame is reached through. The scratch
2507 /// registers are not among them on purpose: the rewriter writes a reload into one of those
2508 /// wherever it likes, and one of these has to survive from the load that fills it to the
2509 /// instruction that reads it however many instructions apart those are.
2510 fn jump_regs(&self) -> Vec<PhysReg> {
2511 self.conv
2512 .int_order
2513 .iter()
2514 .copied()
2515 .filter(|®| {
2516 reg != self.conv.stack_pointer
2517 && reg != self.conv.frame_pointer
2518 && !crate::pipeline::SCRATCH.contains(®)
2519 })
2520 .collect()
2521 }
2522
2523 /// A machine opcode of this target from the name the target gives it.
2524 fn named(&mut self, name: &str) -> mir::Opcode {
2525 mir::Opcode::new(self.names.intern(&format!("{PREFIX}{name}")))
2526 }
2527
2528 /// `__builtin_frame_address` and `__builtin_return_address`, which are a walk up the chain of
2529 /// saved frame pointers and then one thing read at the end of it.
2530 ///
2531 /// Every frame that kept a frame pointer holds the caller's at the address the register points
2532 /// at, and the address that frame returns to one word above that, which is where the call
2533 /// instruction put it and where the prologue's push left it. So the walk is a load through the
2534 /// register for each link, the frame address is wherever the walk stopped, and the return
2535 /// address is one more load from a word above it. gcc 16.2.0 writes exactly this, measured on
2536 /// x86-64 at `-O2` for depths zero to three of both builtins.
2537 ///
2538 /// The function is given a frame pointer because of this, which is what [`Stack::walks_frames`]
2539 /// carries out to the layout. A depth of zero needs it as the answer and every depth above zero
2540 /// needs it as the start, so there is no case here where it is not wanted.
2541 ///
2542 /// How far the chain actually reaches is the program's business and not this one's. A caller
2543 /// compiled without a frame pointer has no link in it for the walk to follow, so a depth above
2544 /// zero is a promise about how the whole program was built. That is why gcc documents a nonzero
2545 /// depth as unsafe rather than as an answer, and why the depth is refused above a limit in
2546 /// `check/builtin/frame.rs` rather than walked as far as it says.
2547 fn frames(&mut self, inst: Inst) -> Result<(), Unsupported> {
2548 let data = &self.source[inst];
2549 let Extra::Depth(depth) = data.extra else { return Err(self.unsupported(inst)) };
2550 let result = data.first_result.ok_or_else(|| self.unsupported(inst))?;
2551 let returning = data.opcode == Opcode::ReturnAddress;
2552 let block = self.at.expect("a block is being filled");
2553 let span = self.source.span(inst);
2554 let moves = x86_64::FRAME.moves(self.gpr).expect("a class the target says how to move");
2555 let load = mir::Opcode::new(self.names.intern(&format!("{PREFIX}{}", moves.load)));
2556 self.stack.walks_frames = true;
2557
2558 // Where the walk is up to. The frame pointer to begin with, and the register the last load
2559 // wrote after that.
2560 let reg = self.new_reg(result);
2561 let mut base = mir::Reg::physical(self.conv.frame_pointer);
2562 for link in 0..depth {
2563 // The last load of a walk that is looking for a frame writes the answer itself, which
2564 // is what keeps a walk of so many links that many instructions and not one more.
2565 let ends_here = link + 1 == depth && !returning;
2566 let next = if ends_here { reg } else { self.out.new_vreg(self.gpr) };
2567 let at = mir::Mem::at(mir::Operand::read(base, self.gpr));
2568 self.out.build(block, load).at(span).def(next, self.gpr).mem(at).finish();
2569 base = next;
2570 }
2571
2572 if returning {
2573 let up = i32::try_from(self.conv.return_address).expect("a word above the frame");
2574 let at = mir::Mem::at(mir::Operand::read(base, self.gpr)).plus(up);
2575 self.out.build(block, load).at(span).def(reg, self.gpr).mem(at).finish();
2576 } else if depth == 0 {
2577 // The one case with no load in it at all: the frame this function is running in is the
2578 // register itself, and a physical register is not one the allocator hands out, so the
2579 // answer is a copy of it.
2580 let mov = mir::Opcode::new(self.names.intern(&format!("{PREFIX}{}", moves.mov)));
2581 self.out
2582 .build(block, mov)
2583 .at(span)
2584 .operand(mir::Operand::write(reg, self.gpr))
2585 .operand(mir::Operand::read(base, self.gpr))
2586 .finish();
2587 }
2588 Ok(())
2589 }
2590
2591 /// `__builtin_thread_pointer`, which is the front of the block [`Self::thread_address`] adds
2592 /// an offset to.
2593 ///
2594 /// The same one instruction, on its own this time and with nothing to add to it. A program
2595 /// writes this when what it wants is a number that is different in every thread and cheap to
2596 /// come by, rather than a variable of its own in the block, so there is no relocation here and
2597 /// no name for the link to resolve.
2598 fn thread_pointer(&mut self, inst: Inst) -> Result<(), Unsupported> {
2599 let result = self.source[inst].first_result.ok_or_else(|| self.unsupported(inst))?;
2600 let block = self.at.expect("a block is being filled");
2601 let span = self.source.span(inst);
2602 let reg = self.new_reg(result);
2603 let load = mir::Opcode::new(self.names.intern(&format!("{PREFIX}{GOT_LOAD}")));
2604 let at = mir::Mem::in_segment(Segment::Fs, 0);
2605 self.out.build(block, load).at(span).def(reg, self.gpr).mem(at).finish();
2606 Ok(())
2607 }
2608
2609 /// A conversion that converts nothing: the result is the operand under another type.
2610 ///
2611 /// `ptrtoint` and `inttoptr` at one width are the whole of this. An address on this machine is
2612 /// an integer as wide as the machine addresses, so a cast between the two changes what the
2613 /// type system calls the value and changes nothing about the value, and the register holding
2614 /// it is the register that already held it. The front end never writes either of them at any
2615 /// other width, because it widens or narrows around the cast rather than through it, so the
2616 /// two widths disagreeing here means the IR came from somewhere else and is refused rather
2617 /// than guessed at.
2618 ///
2619 /// Reading the operand first is what materializes it when it is a constant, which is the case
2620 /// that matters: a null pointer is an `inttoptr` of zero, and that zero has to reach a
2621 /// register before anything can call it an address.
2622 fn rename(&mut self, inst: Inst) -> Result<(), Unsupported> {
2623 let data = &self.source[inst];
2624 let [arg] = self.source[data.args] else { return Err(self.unsupported(inst)) };
2625 let result = data.first_result.ok_or_else(|| self.unsupported(inst))?;
2626 if !self.is_address_width(self.source[arg].ty)
2627 || !self.is_address_width(self.source[result].ty)
2628 {
2629 return Err(self.unsupported(inst));
2630 }
2631 let reg = self.reg_of(arg)?;
2632 self.regs[result.index()] = Some(reg);
2633 Ok(())
2634 }
2635
2636 /// One barrier, which on this machine is one instruction at the strongest ordering and no
2637 /// instruction at all at every other one.
2638 ///
2639 /// x86-64 is total store order, so the only reordering the machine does is a store followed by
2640 /// a load of a different address, and the only ordering that forbids that is sequential
2641 /// consistency. An acquire, a release and an acquire release fence are therefore already true
2642 /// of every program running here, and what a program wanted from writing one is that the
2643 /// compiler not move memory accesses across it. The optimizer has finished by the time this
2644 /// runs and nothing below reorders one access past another, so the constraint is already
2645 /// discharged and there is nothing to write.
2646 ///
2647 /// The strongest one is `mfence`, which is what gcc 16.2.0 writes for
2648 /// `__atomic_thread_fence(__ATOMIC_SEQ_CST)` and for `__sync_synchronize`. A locked instruction
2649 /// on the stack is faster on most parts and is what some compilers write instead; it is also a
2650 /// write to memory the program did not ask for, and the plain barrier is the one that says what
2651 /// it means.
2652 ///
2653 /// Written here by name rather than by a rule, for the same reason a `lea` of a symbol is:
2654 /// there is nothing in a barrier that a proof over bitvectors could discharge. It computes
2655 /// nothing, so there is no equality to state, and what makes it the right answer is the memory
2656 /// model, which the rule language cannot talk about.
2657 fn barrier(&mut self, inst: Inst) -> Result<(), Unsupported> {
2658 let Extra::Order(order) = self.source[inst].extra else {
2659 return Err(self.unsupported(inst));
2660 };
2661 if order != MemOrder::SeqCst {
2662 return Ok(());
2663 }
2664 let block = self.at.expect("a block is being filled");
2665 let span = self.source.span(inst);
2666 let fence = mir::Opcode::new(self.names.intern("x64.mfence"));
2667 self.out.build(block, fence).at(span).finish();
2668 Ok(())
2669 }
2670
2671 /// The instruction a program stops on, which is one byte pair and no operands.
2672 ///
2673 /// `ud2` is an opcode the manual promises will never be given a meaning, so a processor that
2674 /// reaches it raises the fault for an instruction it does not know, and on Linux that arrives
2675 /// at the program as `SIGILL`. That is what `__builtin_trap` is for: a stop that cannot be
2676 /// caught by anything the program installed for an ordinary error, cannot be returned from,
2677 /// and leaves the address of the fault in the core file.
2678 ///
2679 /// Why not a call to `abort`. It is two bytes against a call and a relocation, it needs no
2680 /// library, and it works in the places this one is written most, which are a kernel and a
2681 /// freestanding program that has no `abort` to call. gcc 16.2.0 writes `ud2` here too.
2682 fn trap(&mut self, inst: Inst) {
2683 let block = self.at.expect("a block is being filled");
2684 let span = self.source.span(inst);
2685 let stop = mir::Opcode::new(self.names.intern("x64.ud2"));
2686 self.out.build(block, stop).at(span).finish();
2687 }
2688
2689 /// One hint that an address is about to be used, which is one instruction and no promise.
2690 ///
2691 /// Four instructions on this machine and the locality picks between them, which is what the
2692 /// number means: how much of the data will still be wanted after the access. None of it wanted
2693 /// is `prefetchnta`, which brings the line in without keeping it, and all of it wanted is
2694 /// `prefetcht0`, which brings it as close as the machine can. The two in between are the levels
2695 /// between those. Measured against gcc 16.2.0 on x86-64 rather than read off the manual: zero
2696 /// gives `prefetchnta`, one `prefetcht2`, two `prefetcht1` and three `prefetcht0`.
2697 ///
2698 /// Whether the access will write is not read here, and that is this machine rather than an
2699 /// omission. The write hint is `prefetchw`, which is not in the base instruction set, and gcc
2700 /// writes it only when the command line said the part has it. So a prefetch for a write is the
2701 /// same instruction as a prefetch for a read, which is what gcc 16.2.0 writes without
2702 /// `-mprfchw`, and the difference is carried in the IR for a target that can use it.
2703 ///
2704 /// The address goes in the addressing mode rather than in an operand, the way a store's does.
2705 /// It is built here as the plainest one there is, a register and nothing else, because what
2706 /// arrives is a value and folding an addition into the mode is a rule's job and no rule reaches
2707 /// this instruction. An address the program computed is therefore one `lea` or one add in front
2708 /// of this, which is what it would have been for the load the hint is about anyway.
2709 fn hint(&mut self, inst: Inst) -> Result<(), Unsupported> {
2710 let Extra::Prefetch(hint) = self.source[inst].extra else {
2711 return Err(self.unsupported(inst));
2712 };
2713 let args: Vec<Value> = self.source[self.source[inst].args].to_vec();
2714 let [address] = args[..] else { return Err(self.unsupported(inst)) };
2715 let name = match hint.locality {
2716 0 => "prefetch_nta",
2717 1 => "prefetch_t2",
2718 2 => "prefetch_t1",
2719 PrefetchHint::MOST => "prefetch_t0",
2720 // Nothing else exists. The checker reads a locality outside the range as zero and the
2721 // verifier refuses one that got here another way, so this is a hint that was built
2722 // rather than checked, and the safe answer for a hint is to write no instruction.
2723 _ => return Err(self.unsupported(inst)),
2724 };
2725 let base = self.reg_of(address)?;
2726 let block = self.at.expect("a block is being filled");
2727 let opcode = mir::Opcode::new(self.names.intern(&format!("{PREFIX}{name}")));
2728 self.out
2729 .build(block, opcode)
2730 .at(self.source.span(inst))
2731 .mem(mir::Mem::at(mir::Operand::read(base, self.gpr)))
2732 .finish();
2733 Ok(())
2734 }
2735
2736 /// One compare and exchange, which is the instruction every other atomic on this machine is
2737 /// built out of.
2738 ///
2739 /// What the IR asks for is: read what is at an address, compare it against a value the program
2740 /// expected, put a second value there if the two were equal, and say both what was read and
2741 /// whether the exchange happened. The machine has exactly that instruction, and the `lock` in
2742 /// front of it is what makes the whole of it one step as far as every other processor is
2743 /// concerned.
2744 ///
2745 /// The ordering is not read here, and that is the memory model rather than an omission. A
2746 /// locked instruction on x86-64 is a full barrier whatever the program asked for, so a relaxed
2747 /// compare and exchange and a sequentially consistent one are the same instruction, and there
2748 /// is nothing weaker to emit for the weaker orderings. The failure ordering is not read for the
2749 /// same reason.
2750 ///
2751 /// The two values it produces are why this is written by name. The one the program compares
2752 /// against and the one it gets back are both `rax`, which the instruction reads and writes
2753 /// without being told, and the table says so with a fixed constraint at each end rather than
2754 /// leaving the allocator to find out. The second value is the byte behind it, which is the zero
2755 /// flag read out by a `sete`, and it is a definition of the same instruction so that the
2756 /// allocator knows the two are live together and never gives the byte the register the answer
2757 /// is in.
2758 fn exchange(&mut self, inst: Inst) -> Result<(), Unsupported> {
2759 let args: Vec<Value> = self.source[self.source[inst].args].to_vec();
2760 let results: Vec<Value> = self.source[inst].results().collect();
2761 let [addr, expected, desired] = args[..] else { return Err(self.unsupported(inst)) };
2762 let [old, exchanged] = results[..] else { return Err(self.unsupported(inst)) };
2763
2764 // A value the machine can compare in one instruction, which is an integer or an address at
2765 // one of the four widths it has a compare and exchange for. Anything else is a type this
2766 // has no instruction for rather than a program that is wrong, and the front end refuses it
2767 // before ever getting here.
2768 let ty = self.source[old].ty;
2769 let bits = if ty.is_ptr() { ADDRESS_BITS } else { ty.bits() };
2770 if (!ty.is_int() && !ty.is_ptr()) || !matches!(bits, 8 | 16 | 32 | 64) {
2771 return Err(self.unsupported(inst));
2772 }
2773
2774 let base = self.reg_of(addr)?;
2775 let want = self.reg_of(expected)?;
2776 let put = self.reg_of(desired)?;
2777 let got = self.new_reg(old);
2778 let flag = self.new_reg(exchanged);
2779
2780 let name = format!("cmpxchg_{bits}");
2781 let form = x86_64::form(&name).ok_or_else(|| self.unsupported(inst))?;
2782 let block = self.at.expect("a block is being filled");
2783 let opcode = mir::Opcode::new(self.names.intern(&format!("{PREFIX}{name}")));
2784 let (span, flags) = (self.source.span(inst), self.carried(inst));
2785 let mut build = self.out.build(block, opcode).at(span).flags(flags);
2786 for (desc, reg) in form.operands().iter().zip([got, flag, want, put]) {
2787 let operand = mir::Operand {
2788 reg,
2789 class: desc.class,
2790 role: desc.role,
2791 constraint: desc.constraint,
2792 };
2793 build = build.operand(operand);
2794 }
2795 build.mem(mir::Mem::at(mir::Operand::read(base, self.gpr))).finish();
2796 Ok(())
2797 }
2798
2799 /// One read modify write, for the three operations this machine does in a single instruction.
2800 ///
2801 /// What the IR asks for is: read what is at an address, do something to it, put the answer back,
2802 /// say what was there before, and let nothing get between the three steps. The machine has
2803 /// `xchg` for putting a value there and `lock xadd` for adding one, and both leave what they
2804 /// found in the register the operand arrived in, which is why the value that comes back and the
2805 /// value that went in are one register here.
2806 ///
2807 /// A subtraction is the add over the negated operand, which is right at every width because the
2808 /// machine's arithmetic wraps and negating then adding is subtracting in two's complement
2809 /// whatever the operands were. The negate is a separate instruction in front, over a register of
2810 /// its own, so that the value the program handed over is not the one written on: an operand may
2811 /// be live after this and a program that read it again would read the negation.
2812 ///
2813 /// The ordering is not read, for the reason the compare and exchange beside this does not read
2814 /// it. `xchg` with memory locks the bus whether it is asked to or not and `lock xadd` is asked
2815 /// to, so both are full barriers on this machine and there is nothing weaker to fall to.
2816 ///
2817 /// Eight of the other ten never arrive, because `crate::retry` turned each of them into a loop
2818 /// around a compare and exchange before anything here saw it. The two that do arrive are the
2819 /// ones on floating values, and they are refused: a compare and exchange of a float wants the
2820 /// value carried through an integer of the same width, and an eighty bit float has no such
2821 /// width. Neither family of builtins can write one yet either, so a program that reaches this
2822 /// refusal is a program that reached an unimplemented builtin first.
2823 fn modify(&mut self, inst: Inst) -> Result<(), Unsupported> {
2824 let Extra::Rmw(op, _) = self.source[inst].extra else {
2825 return Err(self.unsupported(inst));
2826 };
2827 let args: Vec<Value> = self.source[self.source[inst].args].to_vec();
2828 let [addr, operand] = args[..] else { return Err(self.unsupported(inst)) };
2829 let old = self.source[inst].first_result.ok_or_else(|| self.unsupported(inst))?;
2830
2831 // A value the machine can exchange in one instruction, which is an integer at one of the
2832 // four widths it has these for. A pointer arrives as an address, so it is an integer by the
2833 // time it is here, and anything else is a type this has no instruction for.
2834 let ty = self.source[old].ty;
2835 if !ty.is_int() || !matches!(ty.bits(), 8 | 16 | 32 | 64) {
2836 return Err(self.unsupported(inst));
2837 }
2838 let name = match op {
2839 RmwOp::Xchg => format!("xchg_{}", ty.bits()),
2840 RmwOp::Add | RmwOp::Sub => format!("xadd_{}", ty.bits()),
2841 _ => return Err(self.unsupported(inst)),
2842 };
2843
2844 let base = self.reg_of(addr)?;
2845 let mut put = self.reg_of(operand)?;
2846 let block = self.at.expect("a block is being filled");
2847 let span = self.source.span(inst);
2848 if op == RmwOp::Sub {
2849 let negated = self.out.new_vreg(self.gpr);
2850 let negate =
2851 mir::Opcode::new(self.names.intern(&format!("{PREFIX}neg_r_{}", ty.bits())));
2852 let form = x86_64::form(&format!("neg_r_{}", ty.bits()))
2853 .ok_or_else(|| self.unsupported(inst))?;
2854 let mut build = self.out.build(block, negate).at(span);
2855 for (desc, reg) in form.operands().iter().zip([negated, put]) {
2856 build = build.operand(mir::Operand {
2857 reg,
2858 class: desc.class,
2859 role: desc.role,
2860 constraint: desc.constraint,
2861 });
2862 }
2863 build.finish();
2864 put = negated;
2865 }
2866
2867 let got = self.new_reg(old);
2868 let form = x86_64::form(&name).ok_or_else(|| self.unsupported(inst))?;
2869 let opcode = mir::Opcode::new(self.names.intern(&format!("{PREFIX}{name}")));
2870 let flags = self.carried(inst);
2871 let mut build = self.out.build(block, opcode).at(span).flags(flags);
2872 for (desc, reg) in form.operands().iter().zip([got, put]) {
2873 build = build.operand(mir::Operand {
2874 reg,
2875 class: desc.class,
2876 role: desc.role,
2877 constraint: desc.constraint,
2878 });
2879 }
2880 build.mem(mir::Mem::at(mir::Operand::read(base, self.gpr))).finish();
2881 Ok(())
2882 }
2883
2884 /// One `asm` statement.
2885 ///
2886 /// An empty template is most of the inline assembly in a test suite, and it is not a corner
2887 /// case somebody wrote by accident. A program that wants a value computed where it stands, or a
2888 /// loop the optimizer must not touch, writes `asm volatile ("" : : : "memory")`, and forty
2889 /// years of bug reports about optimizers are full of them. What such a statement asks for is
2890 /// the barrier and the operand places, and no instructions at all.
2891 ///
2892 /// So the operands are the half that is always real: a constraint says where a value has to be,
2893 /// and where it has to be is still true when the template between them is empty.
2894 ///
2895 /// What the constraints ask for, on an empty template, is only ever that two operands share a
2896 /// place. Nothing reads a register no text names, so `"r"` on its own asks for a register and
2897 /// no particular one, and any register at all answers it. A matching constraint is different,
2898 /// because it says the output the assembly leaves is the place the input arrived in, and with
2899 /// no instructions between them that is the input unchanged. So it is a rename and not a move:
2900 /// the value is already in a register and the result is that register.
2901 ///
2902 /// An output nothing is tied to and no instruction writes is whatever the assembly left there,
2903 /// which for a template that writes nothing is whatever was in the register. That is a value
2904 /// the program is not entitled to, and this writes a zero rather than reading one, because the
2905 /// allocator has to be given a definition before a use whatever the program is entitled to.
2906 ///
2907 /// # A template with instructions in it
2908 ///
2909 /// [`x86_64::read`] turns the text into the opcodes this backend already has, which is what
2910 /// `spec/11-asm-objects-debug.md` section 11.1 asks for: the machine is described once, and an
2911 /// instruction a program wrote is looked up in that description rather than copied through to
2912 /// an assembler that has one of its own. So nothing here assembles anything. What it does is
2913 /// put the statement's operands where the opcode holds them, and from there an `asm` statement
2914 /// is ordinary machine code: the allocator picks the registers, the listing and the object file
2915 /// are written from the same table as every other instruction, and a spill around one works
2916 /// because there is nothing left about it for a spill to get wrong.
2917 ///
2918 /// Three things are refused, all for one reason, which is that placing them by a guess gives a
2919 /// program that assembles into something other than what it says.
2920 ///
2921 /// A register the template named itself. The registers an instruction here names are the ones
2922 /// the allocator handed out, and a name in the text is a claim on a register nobody told the
2923 /// allocator about. A register a constraint letter names is a different thing and is placed,
2924 /// which the paragraph below is about: there the statement said which of its own operands is
2925 /// in the register, and a name in the middle of a template says no such thing.
2926 ///
2927 /// An output the template writes more than once, which is one place with two definitions in it,
2928 /// and the machine IR between here and the allocator has one definition per register by
2929 /// construction. An output tied to an input and written once is not that: it is two registers
2930 /// the description ties together, which is what [`Place`] is about.
2931 ///
2932 /// An operand read where the opcode writes, or written where it reads. An output that has not
2933 /// been written yet is not a value, and an input the assembly writes over is a value something
2934 /// else may still be using.
2935 ///
2936 /// # A register the instruction uses without being told
2937 ///
2938 /// An instruction may reach a register its text does not name, and `cpuid` is all of them at
2939 /// once: the leaf goes in `eax`, the subleaf in `ecx`, and the answer comes back in all four
2940 /// registers. The description holds every bit of that already, so what is left is to say which
2941 /// of the statement's operands is in each of those registers, and the constraint letter is the
2942 /// one thing in an assembly statement that says it. `"=a"` is an output in `rax` and `"c"` is
2943 /// an input in `rcx`, which is why a program writing `cpuid` writes its constraints that way
2944 /// and has no choice about it.
2945 ///
2946 /// A register no letter named is one the statement put nothing in, and that is the usual case
2947 /// rather than an unusual one, since an instruction that answers four questions is written by
2948 /// programs that asked one. A write of one is the register being destroyed and gets a register
2949 /// of its own, which is what tells the allocator to keep everything else out of it. A read of
2950 /// one is a register the instruction looks at and the program never filled, which gets a zero
2951 /// for the reason [`Self::undefined`] gives.
2952 ///
2953 /// # The clobber list
2954 ///
2955 /// Read now, as the registers it names being written by every instruction of the template. By
2956 /// every one rather than by one of them, because the list says the assembly as a whole leaves
2957 /// them ruined and nothing here knows which line did it. Every entry has to be a register this
2958 /// machine has a name for or the statement is refused, since a name nobody read is a register
2959 /// nobody is keeping out of.
2960 ///
2961 /// `memory` and `cc` are the two entries that are not registers and both are skipped. `memory`
2962 /// says the assembly touches storage, which is already true of every `asm` this writes and is
2963 /// nothing a register list could hold. `cc` says it ruins the condition flags, and the flag
2964 /// tracking already has that from the instructions the template was read into, since it takes
2965 /// every instruction it does not recognize as writing them and every instruction here is one
2966 /// this machine describes.
2967 ///
2968 /// A clobber the instruction already writes is left off it. `cpuid` writes all four registers
2969 /// by description, and a statement listing three of them as clobbers as well is saying the
2970 /// same thing twice, which the allocator would read as one register with two definitions.
2971 ///
2972 /// On a template with nothing in it the list is ignored, as it was before, since a template
2973 /// with no instructions ruins nothing whatever it said about what it ruins.
2974 fn assembly(&mut self, inst: Inst) -> Result<(), Unsupported> {
2975 let data = &self.source[inst];
2976 let Extra::Asm(asm) = data.extra else { return Err(self.unsupported(inst)) };
2977 let info = self.source[asm];
2978 if !self.source[info.targets].is_empty() {
2979 return Err(Unsupported::Assembly { inst, refused: Written::Goto });
2980 }
2981 let refused = || Unsupported::Assembly { inst, refused: Written::Operand };
2982
2983 let constraints = self.names.resolve(info.constraints).to_string();
2984 let results: Vec<Value> = data.results().collect();
2985 let operands = AsmOperands::read(&constraints, &results, &self.source[data.args])
2986 .ok_or_else(refused)?;
2987 let list: Vec<AsmOperand> = operands.iter().copied().collect();
2988
2989 // Read after the constraints and not before them, because a mnemonic whose suffix the
2990 // program left off is read at the width of the operands it names, and the operands are
2991 // what the constraints are a list of.
2992 let widths: Vec<Option<x86_64::Width>> = list
2993 .iter()
2994 .map(|operand| {
2995 let ty = self.source[operand.result.or(operand.value)?].ty;
2996 if !ty.is_scalar() {
2997 return None;
2998 }
2999 x86_64::Width::of_bits(if ty.is_ptr() { ADDRESS_BITS } else { ty.bits() })
3000 })
3001 .collect();
3002 let template = self.names.resolve(info.template).to_string();
3003 let steps = if template.trim().is_empty() {
3004 Vec::new()
3005 } else {
3006 x86_64::read(&template, &widths)
3007 .ok_or(Unsupported::Assembly { inst, refused: Written::Template })?
3008 };
3009
3010 // Which operands the template writes, counted before anything is placed, because the answer
3011 // decides where each of the three below comes from and one instruction may name an operand
3012 // that a later one writes. Which of them any instruction puts in a register at all is
3013 // counted in the same walk, since an operand no instruction reaches that way is one nothing
3014 // has to put anywhere: a constant a template names only as the distance into an address is
3015 // written into the instruction, and a register holding a copy of it would be one nobody
3016 // reads. An operand the address is counted from is reached that way and is counted here for
3017 // that reason, because the walk below it is over the opcode's operands and an address is
3018 // not one of those.
3019 let mut writes = vec![0usize; list.len()];
3020 let mut reads = vec![false; list.len()];
3021 let mut held = vec![false; list.len()];
3022 for step in &steps {
3023 let x86_64::Step::Line(line) = step else { continue };
3024 if let Some(x86_64::Piece::Operand { index, .. }) = line.at.and_then(|at| at.base) {
3025 *held.get_mut(index).ok_or_else(refused)? = true;
3026 }
3027 let form = x86_64::form(line.opcode).ok_or_else(refused)?;
3028 // Which registers the instruction reaches, asked the same way it is asked again when
3029 // the instruction is written. See [`Self::lettered`] for the one opcode whose answer
3030 // comes from the constraint letters rather than from the description.
3031 let lettered = (line.opcode == x86_64::LITERAL).then(|| self.lettered(&list));
3032 let (described, pieces) = match &lettered {
3033 Some((described, pieces)) => (described.as_slice(), pieces.as_slice()),
3034 None => (form.operands(), line.operands.as_slice()),
3035 };
3036 for (desc, piece) in described.iter().zip(pieces) {
3037 // An operand the instruction reaches without its text saying so is the statement's
3038 // only when a constraint letter put something there. One that is nobody's writes
3039 // nothing of the program's, so it is counted nowhere and is dealt with where it is
3040 // placed.
3041 let index = match *piece {
3042 x86_64::Piece::Operand { index, .. } => index,
3043 x86_64::Piece::Implicit { reg } => match bound(&list, reg, desc.role) {
3044 Some(index) => index,
3045 None => continue,
3046 },
3047 x86_64::Piece::Reg { .. } => continue,
3048 };
3049 *held.get_mut(index).ok_or_else(refused)? = true;
3050 if matches!(desc.role, Role::Def | Role::EarlyDef) {
3051 *writes.get_mut(index).ok_or_else(refused)? += 1;
3052 } else {
3053 *reads.get_mut(index).ok_or_else(refused)? = true;
3054 }
3055 }
3056 }
3057
3058 // Where every operand is. Worked out in full before the first instruction is written, since
3059 // reading a value may be what puts it in a register in the first place, and that has to
3060 // happen in front of the assembly rather than in the middle of it.
3061 let mut places: Vec<Place> = vec![Place::default(); list.len()];
3062 for (index, operand) in list.iter().copied().enumerate() {
3063 let Some(result) = operand.result else {
3064 // An input, or an output the assembly was handed the address of, and both are a
3065 // value that arrives in a register and is read out of it, unless no instruction of
3066 // the template reads it out of one.
3067 let value = operand.value.ok_or_else(refused)?;
3068 if held[index] {
3069 places[index].read = Some(self.reg_of(value)?);
3070 }
3071 continue;
3072 };
3073 let ty = self.source[result].ty;
3074 if on_x87(ty) || writes[index] > 1 {
3075 return Err(refused());
3076 }
3077 let tied = operands.tied_to(index);
3078 if let Some(from) = tied {
3079 if self.class_of(self.source[from].ty) != self.class_of(ty) {
3080 return Err(refused());
3081 }
3082 places[index].read = Some(self.reg_of(from)?);
3083 }
3084 if writes[index] == 1 {
3085 places[index].write = Some(self.new_reg(result));
3086 continue;
3087 }
3088 match tied {
3089 // The place the input arrived in, which the assembly wrote nothing over. One
3090 // register, so this is a rename rather than a move.
3091 Some(_) => {
3092 let reg = places[index].read.ok_or_else(refused)?;
3093 self.regs[result.index()] = Some(reg);
3094 places[index].write = Some(reg);
3095 }
3096 None => {
3097 self.undefined(inst, result)?;
3098 places[index].write = self.regs[result.index()];
3099 }
3100 }
3101 }
3102
3103 // An output an instruction of the template also reads, which the statement said nothing
3104 // about because an output is what a statement says the other thing about. What it holds
3105 // there is undefined, and a program writing one means it: `sbb %0, %0` in libgmp's
3106 // `add_mssaaaa` subtracts a register from itself and is asking for the borrow bit rather
3107 // than for the number, so whatever the register held, the answer is the same. Undefined is
3108 // not the same as absent though, since the allocator is owed a definition in front of every
3109 // use, so it gets the zero an output nothing wrote gets and for the same reason.
3110 for index in 0..list.len() {
3111 if !reads[index] || places[index].read.is_some() || places[index].write.is_none() {
3112 continue;
3113 }
3114 places[index].read = Some(self.seeded(inst, list[index])?);
3115 }
3116
3117 // Worked out once for the whole template, since the list is one list and every instruction
3118 // of the template gets it. Not worked out at all for a template with no instructions, which
3119 // is where there is nothing for it to go on.
3120 let clobbers = self.names.resolve(info.clobbers).to_string();
3121 let clobbered =
3122 if steps.is_empty() { Vec::new() } else { Self::clobbered(inst, &clobbers)? };
3123
3124 // A template with a label in it is not one run of instructions, and what it is instead is
3125 // in [`Self::woven`]. Every other template is what it has always been, which is every
3126 // instruction of it written into the block the statement stands in.
3127 if steps.iter().any(|step| !matches!(step, x86_64::Step::Line(_))) {
3128 return self.woven(inst, &steps, &mut places, &list, &clobbered, &writes);
3129 }
3130 for step in &steps {
3131 let x86_64::Step::Line(line) = step else { continue };
3132 self.instruction(inst, line, &places, &list, &clobbered)?;
3133 }
3134 Ok(())
3135 }
3136
3137 /// A register holding a zero, for an operand of a template that is read before anything filled
3138 /// it.
3139 ///
3140 /// Two things ask for this and they are the same thing twice. An output the template reads has
3141 /// nothing to be read out of until the instruction that writes it has run, and a loop carries
3142 /// an operand into a block before the instruction that fills it, so both are a use in front of
3143 /// every definition. What the program is owed there is nothing, since the value is undefined
3144 /// either way, and what the allocator is owed is a register something wrote.
3145 fn seeded(&mut self, inst: Inst, operand: AsmOperand) -> Result<mir::Reg, Unsupported> {
3146 let refused = || Unsupported::Assembly { inst, refused: Written::Operand };
3147 let value = operand.result.or(operand.value).ok_or_else(refused)?;
3148 let class = self.class_of(self.source[value].ty);
3149 if class != self.gpr {
3150 return Err(refused());
3151 }
3152 let block = self.at.expect("a block is being filled");
3153 let reg = self.out.new_vreg(class);
3154 let put = mir::Opcode::new(self.names.intern(&format!("{PREFIX}mov_ri_64")));
3155 self.out.build(block, put).at(self.source.span(inst)).def(reg, class).imm(0).finish();
3156 Ok(reg)
3157 }
3158
3159 /// A template with labels in it, as the blocks its jumps leave and arrive at.
3160 ///
3161 /// A statement is an instruction of the IR and stands inside one block, so a template that
3162 /// jumps has to stop being one thing. Each label becomes a block, each jump ends the block it
3163 /// stands in and gives it two arms, and whatever follows the statement goes into whichever
3164 /// block the walk finished in, which is what [`Self::block`] already reads off `self.at` and
3165 /// what [`Self::saves_place`] already does for the same reason.
3166 ///
3167 /// # What is carried between them
3168 ///
3169 /// The machine IR here is in the form where a register is written once, so an operand written
3170 /// inside a loop and read again at the top of it cannot be one register. What arrives at the
3171 /// top is a parameter of that block, and every jump to it carries whichever register held the
3172 /// operand where the jump stands. That is the whole of the bookkeeping: every block a label
3173 /// made takes one parameter for each operand that is in a register at all, in one order, so an
3174 /// arm's arguments and a block's parameters are the same list read twice.
3175 ///
3176 /// Which register an operand is in at each point is kept in the read half of its place, since
3177 /// that is what the instructions below read it out of. An instruction that writes an operand
3178 /// leaves it in the register it wrote, and a jump below carries that one. The block an
3179 /// untaken jump falls into is arrived at one way only and so takes no parameters, and nothing
3180 /// about where the operands are changes there.
3181 ///
3182 /// An operand written by the template and filled by nothing is written as a zero first, for
3183 /// the reason [`Self::undefined`] gives and one more: a jump may carry it before the
3184 /// instruction that fills it has run, and an argument has to be a register something wrote.
3185 ///
3186 /// # The condition state
3187 ///
3188 /// Nothing carries it and nothing has to. The instruction that sets it and the jump that reads
3189 /// it are both written here, next to each other in one block, and what the allocator may put
3190 /// between them is a move, which on this machine leaves the condition state alone. The edge
3191 /// into a block a loop goes back to is a critical edge and `crate::split` gives it a block of
3192 /// its own, so the moves an arm turns into land behind the jump rather than in front of it.
3193 fn woven(
3194 &mut self,
3195 inst: Inst,
3196 steps: &[x86_64::Step],
3197 places: &mut [Place],
3198 list: &[AsmOperand],
3199 clobbered: &[PhysReg],
3200 writes: &[usize],
3201 ) -> Result<(), Unsupported> {
3202 let refused = || Unsupported::Assembly { inst, refused: Written::Operand };
3203 let span = self.source.span(inst);
3204
3205 // Which operands are carried, which is every one that is in a register at all. An operand
3206 // the template never puts in one, such as a constant it names only as the distance into an
3207 // address, is in the instruction and has nowhere to be carried from.
3208 let mut carried: Vec<(usize, RegClass)> = Vec::new();
3209 for (index, operand) in list.iter().enumerate() {
3210 if places[index].read.is_none() && places[index].write.is_none() {
3211 continue;
3212 }
3213 let value = operand.result.or(operand.value).ok_or_else(refused)?;
3214 let ty = self.source[value].ty;
3215 if on_x87(ty) {
3216 return Err(refused());
3217 }
3218 carried.push((index, self.class_of(ty)));
3219 }
3220
3221 // What each of them holds where the template starts.
3222 for &(index, _) in &carried {
3223 if places[index].read.is_some() {
3224 continue;
3225 }
3226 if writes[index] == 0 {
3227 places[index].read = places[index].write;
3228 continue;
3229 }
3230 places[index].read = Some(self.seeded(inst, list[index])?);
3231 }
3232
3233 // The blocks, made before the walk because a jump forwards names a label the walk has not
3234 // reached yet.
3235 let mut labels: Vec<(&str, mir::Block, Vec<mir::Reg>)> = Vec::new();
3236 for step in steps {
3237 let x86_64::Step::Label(name) = step else { continue };
3238 let block = self.out.create_block();
3239 let mut params = Vec::with_capacity(carried.len());
3240 for &(_, class) in &carried {
3241 params.push(self.out.append_param(block, class));
3242 }
3243 labels.push((name.as_str(), block, params));
3244 }
3245
3246 for step in steps {
3247 match step {
3248 x86_64::Step::Label(name) => {
3249 let (block, params) = Self::went(&labels, name).ok_or_else(refused)?;
3250 let from = self.at.expect("a block is being filled");
3251 let args = Self::held(places, &carried).ok_or_else(refused)?;
3252 *self.out.succs_mut(from) = vec![mir::BlockCall::with(block, args)];
3253 self.at = Some(block);
3254 for (at, &(index, _)) in carried.iter().enumerate() {
3255 places[index].read = params.get(at).copied();
3256 }
3257 }
3258 x86_64::Step::Jump { opcode, to } => {
3259 let (block, _) = Self::went(&labels, to).ok_or_else(refused)?;
3260 let from = self.at.expect("a block is being filled");
3261 let args = Self::held(places, &carried).ok_or_else(refused)?;
3262 let opcode = mir::Opcode::new(self.names.intern(&format!("{PREFIX}{opcode}")));
3263 self.out.build(from, opcode).at(span).finish();
3264 let next = self.out.create_block();
3265 *self.out.succs_mut(from) =
3266 vec![mir::BlockCall::with(block, args), mir::BlockCall::to(next)];
3267 self.at = Some(next);
3268 }
3269 x86_64::Step::Line(line) => {
3270 self.instruction(inst, line, places, list, clobbered)?;
3271 let form = x86_64::form(line.opcode).ok_or_else(refused)?;
3272 for (desc, piece) in form.operands().iter().zip(&line.operands) {
3273 if !desc.role.is_def() {
3274 continue;
3275 }
3276 let index = match *piece {
3277 x86_64::Piece::Operand { index, .. } => index,
3278 x86_64::Piece::Implicit { reg } => match bound(list, reg, desc.role) {
3279 Some(index) => index,
3280 None => continue,
3281 },
3282 x86_64::Piece::Reg { .. } => continue,
3283 };
3284 let place = places.get_mut(index).ok_or_else(refused)?;
3285 if place.write.is_some() {
3286 place.read = place.write;
3287 }
3288 }
3289 }
3290 }
3291 }
3292
3293 // Where the walk left each output, which is the parameter of the block a label made when
3294 // the template ends in one and the register an instruction wrote when it does not.
3295 for (index, operand) in list.iter().enumerate() {
3296 let Some(result) = operand.result else { continue };
3297 if let Some(reg) = places[index].read {
3298 self.regs[result.index()] = Some(reg);
3299 }
3300 }
3301 Ok(())
3302 }
3303
3304 /// The block one of the template's labels made, and the parameters it takes.
3305 fn went<'b>(
3306 labels: &'b [(&str, mir::Block, Vec<mir::Reg>)],
3307 name: &str,
3308 ) -> Option<(mir::Block, &'b [mir::Reg])> {
3309 labels
3310 .iter()
3311 .find(|(had, ..)| *had == name)
3312 .map(|(_, block, params)| (*block, params.as_slice()))
3313 }
3314
3315 /// The register each carried operand is in, which is what an arm to a label carries.
3316 fn held(places: &[Place], carried: &[(usize, RegClass)]) -> Option<Vec<mir::Reg>> {
3317 carried.iter().map(|&(index, _)| places.get(index)?.read).collect()
3318 }
3319
3320 /// The registers a clobber list names, in the order it named them.
3321 ///
3322 /// Nothing is dropped. A name this has no register for is refused, because the list is the
3323 /// program telling the compiler which registers it may not leave anything in, and an entry
3324 /// nobody read is a register something may still be left in. See [`Self::assembly`] for the
3325 /// two entries that are not registers and for why they are skipped rather than refused.
3326 fn clobbered(inst: Inst, clobbers: &str) -> Result<Vec<PhysReg>, Unsupported> {
3327 let refused = || Unsupported::Assembly { inst, refused: Written::Clobber };
3328 let mut named = Vec::new();
3329 for entry in clobbers.split(',') {
3330 let entry = entry.trim().trim_matches('"');
3331 // The sigil is optional in a clobber list and means nothing when it is there, unlike
3332 // in a template, where it is what tells a register from an operand.
3333 let entry = entry.strip_prefix('%').unwrap_or(entry);
3334 if entry.is_empty() || entry == "memory" || entry == "cc" {
3335 continue;
3336 }
3337 let (reg, _) = x86_64::gpr_named(entry).ok_or_else(refused)?;
3338 if !named.contains(®) {
3339 named.push(reg);
3340 }
3341 }
3342 Ok(named)
3343 }
3344
3345 /// One instruction of a template, as the machine instruction it was read back into.
3346 fn instruction(
3347 &mut self,
3348 inst: Inst,
3349 line: &x86_64::Line,
3350 places: &[Place],
3351 list: &[AsmOperand],
3352 clobbered: &[PhysReg],
3353 ) -> Result<(), Unsupported> {
3354 let refused = || Unsupported::Assembly { inst, refused: Written::Operand };
3355 let form = x86_64::form(line.opcode).ok_or_else(refused)?;
3356 // What the instruction reaches and what is in each of them. The description answers the
3357 // first for every opcode but one, and the pieces the template was read into answer the
3358 // second. Bytes a program wrote out itself are the one, since nothing in a number is a
3359 // register anybody could read, so the constraint letters answer both. See
3360 // [`Self::lettered`].
3361 let lettered = (line.opcode == x86_64::LITERAL).then(|| self.lettered(list));
3362 let (described, pieces) = match &lettered {
3363 Some((described, pieces)) => (described.as_slice(), pieces.as_slice()),
3364 None => (form.operands(), line.operands.as_slice()),
3365 };
3366 let mut built = Vec::with_capacity(pieces.len() + clobbered.len());
3367 for (desc, piece) in described.iter().zip(pieces) {
3368 built.push(self.placed(inst, *desc, *piece, places, list)?);
3369 }
3370 // The clobbers go in among the definitions rather than behind the reads, because an operand
3371 // vector in the machine IR is every definition and then every use and what counts them
3372 // reads that order rather than each operand's role.
3373 let defs = built.iter().take_while(|operand| operand.role.is_def()).count();
3374 let mut added = 0usize;
3375 for ® in clobbered {
3376 if described.iter().any(|desc| desc.constraint == Constraint::Fixed(reg)) {
3377 continue;
3378 }
3379 built.insert(defs, mir::Operand::write(mir::Reg::physical(reg), self.gpr));
3380 added += 1;
3381 }
3382 // A constraint tying one operand to another names it by its place in this vector, and the
3383 // clobbers were put in the middle of the vector, so everything behind them moved. The
3384 // description is written against an instruction with no clobbers in it and cannot know
3385 // that, which makes this the one place the two numberings have to be reconciled.
3386 for operand in &mut built {
3387 if let Constraint::Reuse(at) = operand.constraint {
3388 if usize::from(at) >= defs {
3389 let moved = usize::from(at) + added;
3390 operand.constraint =
3391 Constraint::Reuse(u8::try_from(moved).map_err(|_| refused())?);
3392 }
3393 }
3394 }
3395 let at = match line.at {
3396 Some(at) => Some(self.addressed(inst, at, places, list)?),
3397 None => None,
3398 };
3399
3400 let block = self.at.expect("a block is being filled");
3401 let span = self.source.span(inst);
3402 let opcode = mir::Opcode::new(self.names.intern(&format!("{PREFIX}{}", line.opcode)));
3403 let mut build = self.out.build(block, opcode).at(span);
3404 for operand in built {
3405 build = build.operand(operand);
3406 }
3407 if let Some(value) = line.imm {
3408 build = build.imm(value);
3409 }
3410 if let Some(mem) = at {
3411 build = build.mem(mem);
3412 }
3413 build.finish();
3414 Ok(())
3415 }
3416
3417 /// The registers a run of bytes reaches, taken from the constraint letters rather than from the
3418 /// description of an opcode.
3419 ///
3420 /// Every other instruction of a template has a description saying which registers it reaches
3421 /// without naming them, and [`Self::assembly`] matches the letters against that. Bytes a program
3422 /// wrote out itself have no such description and could not have one: what the instruction is, is
3423 /// a number, and nothing in a number is a register anything could read. So the letters are the
3424 /// whole of what is known, and they are enough, because a program writing an instruction this
3425 /// way has to say where its operands go for exactly the reason a program writing `cpuid` does.
3426 ///
3427 /// Each register named by a letter gets one entry for the write and one for the read, the same
3428 /// two `cpuid` has, and only the half the statement asked for: a register no output names is not
3429 /// written here and one no input names is not read. The writes come first because that is the
3430 /// order an operand vector in the machine IR is counted in. A register named by nothing is left
3431 /// out rather than given a spare one, which is the difference from `cpuid` and is right for the
3432 /// same reason: `cpuid` writes four registers whatever the program said, and what these bytes
3433 /// touch is known only from what the program said.
3434 fn lettered(&self, list: &[AsmOperand]) -> (Vec<OperandDesc>, Vec<x86_64::Piece>) {
3435 let mut named: Vec<PhysReg> = Vec::new();
3436 for operand in list {
3437 if let Some(reg) = operand.fixed.and_then(x86_64::gpr_letter) {
3438 if !named.contains(®) {
3439 named.push(reg);
3440 }
3441 }
3442 }
3443 let mut described = Vec::with_capacity(named.len() * 2);
3444 let mut pieces = Vec::with_capacity(named.len() * 2);
3445 for role in [Role::Def, Role::Use] {
3446 for ® in &named {
3447 if bound(list, reg, role).is_none() {
3448 continue;
3449 }
3450 let desc = if role.is_def() {
3451 OperandDesc::write(self.gpr)
3452 } else {
3453 OperandDesc::read(self.gpr)
3454 };
3455 described.push(desc.with(Constraint::Fixed(reg)));
3456 pieces.push(x86_64::Piece::Implicit { reg });
3457 }
3458 }
3459 (described, pieces)
3460 }
3461
3462 /// One operand of one instruction of a template, in the register the statement put it in.
3463 fn placed(
3464 &mut self,
3465 inst: Inst,
3466 desc: OperandDesc,
3467 piece: x86_64::Piece,
3468 places: &[Place],
3469 list: &[AsmOperand],
3470 ) -> Result<mir::Operand, Unsupported> {
3471 let refused = || Unsupported::Assembly { inst, refused: Written::Operand };
3472 // A register the instruction reaches without its text naming it belongs to whichever of the
3473 // statement's operands a constraint letter put there, and to nobody when no letter did.
3474 // There is no width to check in that case: the operand is the register the letter named and
3475 // the instruction does what it does to it, which is what a program writing `"=a"` asked for.
3476 let (index, spelled) = match piece {
3477 x86_64::Piece::Operand { index, width, stated } => (index, Some((width, stated))),
3478 x86_64::Piece::Implicit { reg } => match bound(list, reg, desc.role) {
3479 Some(index) => (index, None),
3480 None => return self.spare(inst, desc),
3481 },
3482 x86_64::Piece::Reg { .. } => return Err(refused()),
3483 };
3484 let operand = list.get(index).copied().ok_or_else(refused)?;
3485 // The two halves of an operand written `+`, which arrives in one register and leaves in
3486 // another with the allocator told to make them the same one. Everything else has one of
3487 // the two and asking for the other is the refusal below.
3488 let place = places.get(index).copied().ok_or_else(refused)?;
3489 let reg = match desc.role {
3490 Role::Use => place.read,
3491 Role::Def | Role::EarlyDef => place.write,
3492 }
3493 .ok_or_else(refused)?;
3494
3495 // Read where the opcode reads and written where it writes, which is what the first half of
3496 // this asks. An output has a result and an input has a value, an output written `+` has
3497 // both because it is read before it is written, and an output a matching constraint names
3498 // is read as the input that named it. See [`read_as`].
3499 // An output with neither is read as well, and what it holds there is undefined, which
3500 // [`Self::assembly`] says why and puts a zero in a register for.
3501 let placeable = match desc.role {
3502 Role::Use => read_as(list, index).is_some() || operand.result.is_some(),
3503 Role::Def | Role::EarlyDef => operand.result.is_some(),
3504 };
3505 let ty = match (operand.result, operand.value) {
3506 (Some(result), _) => self.source[result].ty,
3507 (None, Some(value)) => self.source[value].ty,
3508 (None, None) => return Err(refused()),
3509 };
3510 let bits = if ty.is_ptr() { ADDRESS_BITS } else { ty.bits() };
3511 if !placeable || self.class_of(ty) != desc.class {
3512 return Err(refused());
3513 }
3514 if let Some((width, stated)) = spelled {
3515 // An operand the template wrote a width on may be written by an instruction that fills
3516 // more of the register than the object in it does, and the object is then the low part
3517 // of what was written. That is what gmp asks for when it counts the low zero bits of a
3518 // limb into an `unsigned` and spells the count `%q0`: one quadword instruction writes
3519 // the whole register and the `unsigned` is the bottom of it, which is every bit of an
3520 // answer that cannot exceed sixty four anyway.
3521 //
3522 // Only written, and only wider. A read of more of a register than its type fills is a
3523 // program handing an instruction bits nothing ever put there. A write of less of one
3524 // leaves the top of the object holding whatever the register held before, which is the
3525 // same thing one instruction later. Both are refused, and an operand the template left
3526 // plain is refused either way, because what gets spelled for that one is the register
3527 // at the width of its type and no other instruction is the one written down.
3528 let widened = stated && desc.role.is_def() && width.bits() > bits;
3529 if bits != width.bits() && !widened {
3530 return Err(refused());
3531 }
3532 }
3533 Ok(mir::Operand { reg, class: desc.class, role: desc.role, constraint: desc.constraint })
3534 }
3535
3536 /// A register an instruction of a template uses and the statement put nothing in.
3537 ///
3538 /// A write of one is the register being destroyed, which is what a clobber list is usually
3539 /// written to say and what an instruction with more answers than the program asked for does
3540 /// anyway: `cpuid` writes all four registers whether or not the statement wanted all four. A
3541 /// register of its own is the whole of what that needs, since a value nothing reads is one the
3542 /// allocator may put anywhere and is told about so that nothing else is put there.
3543 ///
3544 /// A read of one is a register the instruction looks at and the program never filled, which
3545 /// gcc leaves as whatever happened to be there. A zero is written instead, for the reason
3546 /// [`Self::undefined`] gives: the allocator has to be given a definition before a use, and a
3547 /// zero is the one answer that reads the same on every run.
3548 fn spare(&mut self, inst: Inst, desc: OperandDesc) -> Result<mir::Operand, Unsupported> {
3549 let refused = Unsupported::Assembly { inst, refused: Written::Operand };
3550 if desc.class != self.gpr {
3551 return Err(refused);
3552 }
3553 let reg = self.out.new_vreg(desc.class);
3554 if !desc.role.is_def() {
3555 let block = self.at.expect("a block is being filled");
3556 let span = self.source.span(inst);
3557 let put = mir::Opcode::new(self.names.intern(&format!("{PREFIX}mov_ri_64")));
3558 self.out.build(block, put).at(span).def(reg, desc.class).imm(0).finish();
3559 }
3560 Ok(mir::Operand { reg, class: desc.class, role: desc.role, constraint: desc.constraint })
3561 }
3562
3563 /// The address one instruction of a template reads or writes.
3564 fn addressed(
3565 &mut self,
3566 inst: Inst,
3567 at: x86_64::At,
3568 places: &[Place],
3569 list: &[AsmOperand],
3570 ) -> Result<mir::Mem, Unsupported> {
3571 let refused = || Unsupported::Assembly { inst, refused: Written::Operand };
3572 let base = match at.base {
3573 None => None,
3574 Some(x86_64::Piece::Operand { index, .. }) => {
3575 // The register an address is counted from is read and never written, whatever the
3576 // instruction does to what it finds there.
3577 let reg = places.get(index).and_then(|place| place.read).ok_or_else(refused)?;
3578 Some(mir::Operand::read(reg, self.gpr))
3579 }
3580 // An address counted from a register the instruction reaches without being told is
3581 // not something this machine has: every addressing mode is written out in the text it
3582 // is part of, so a base that got here another way is a base nothing wrote down.
3583 Some(x86_64::Piece::Reg { .. } | x86_64::Piece::Implicit { .. }) => {
3584 return Err(refused());
3585 }
3586 };
3587 // A distance the template wrote, or the one in an operand the template pointed at, which is
3588 // the same distance said by something that knows how big a thing is. It has to be a number
3589 // the compiler can read at translation time, since it goes in the instruction rather than
3590 // in a register, and an operand holding anything else is refused rather than put somewhere.
3591 let disp = match at.disp {
3592 x86_64::Disp::Number(disp) => disp,
3593 x86_64::Disp::Operand(index) => {
3594 let value =
3595 list.get(index).and_then(|operand| operand.value).ok_or_else(refused)?;
3596 let number = self.number(value).ok_or_else(refused)?;
3597 i32::try_from(number).map_err(|_| refused())?
3598 }
3599 };
3600 Ok(mir::Mem { base, scale: 1, disp, segment: at.segment, ..mir::Mem::default() })
3601 }
3602
3603 /// The number in that value, for one an `iconst` defined, read at the width of its own type.
3604 ///
3605 /// Signed, because the two things a template asks this for are a distance into an address and
3606 /// the number on an instruction, and both of those are signed wherever they land. A constant
3607 /// whose type is unsigned and whose top bit is set therefore reads as a negative number here,
3608 /// which is the same number and is the reading that fits in the thirty two bits an addressing
3609 /// mode has room for.
3610 fn number(&self, value: Value) -> Option<i128> {
3611 let Def::Result { inst, .. } = self.source[value].def else { return None };
3612 if self.source[inst].opcode != Opcode::IConst {
3613 return None;
3614 }
3615 let Extra::Imm(imm) = self.source[inst].extra else { return None };
3616 let bits = self.source[imm].bits();
3617 let width = self.source[value].ty.bits();
3618 if width == 0 || width > 128 {
3619 return None;
3620 }
3621 let spare = 128 - width;
3622 Some(((bits << spare) as i128) >> spare)
3623 }
3624
3625 /// A register holding a value the program has no claim on, written as a zero.
3626 ///
3627 /// Every other way of saying it costs the same instruction or needs a word the machine IR does
3628 /// not have, and a zero is the one that reads the same on every run.
3629 fn undefined(&mut self, inst: Inst, result: Value) -> Result<(), Unsupported> {
3630 let ty = self.source[result].ty;
3631 let refused = Unsupported::Assembly { inst, refused: Written::Operand };
3632 if self.class_of(ty) != self.gpr || !matches!(ty.bits(), 8 | 16 | 32 | 64) {
3633 return Err(refused);
3634 }
3635 let block = self.at.expect("a block is being filled");
3636 let span = self.source.span(inst);
3637 let reg = self.new_reg(result);
3638 let put = mir::Opcode::new(self.names.intern(&format!("{PREFIX}mov_ri_{}", ty.bits())));
3639 self.out.build(block, put).at(span).def(reg, self.gpr).imm(0).finish();
3640 Ok(())
3641 }
3642
3643 /// Whether a type is the width an address is, which is what makes a cast to or from one free.
3644 fn is_address_width(&self, ty: Type) -> bool {
3645 ty.is_ptr() || (ty.is_int() && ty.bits() == ADDRESS_BITS)
3646 }
3647
3648 /// Where a block goes, which in machine IR is on the block rather than on its terminator.
3649 ///
3650 /// That is why no rule ever names a block: a branch is selected for what it reads and the
3651 /// edges are copied across here, arguments and all. The arguments are read last, after every
3652 /// instruction of the block is written, because an argument that is a constant is
3653 /// materialized where it is first wanted and the end of the block is where an edge wants it.
3654 ///
3655 /// Which is not quite the end. A block that leaves two ways has the branch as its last
3656 /// instruction, and a block that leaves through a register has the indirect jump as its last,
3657 /// and anything appended after either is something it has already jumped past, so a constant
3658 /// materialized here would be a register the block below reads and nothing ever writes. The
3659 /// one that was there is put back on the end when that happened, which is the only reordering
3660 /// anything in this crate does and is why it is remembered before a single argument is read.
3661 fn edges(&mut self, block: Block, out: mir::Block) -> Result<(), Unsupported> {
3662 let Some(term) = self.source.terminator(block) else { return Ok(()) };
3663 let leaves = matches!(self.source[term].opcode, Opcode::BrIf | Opcode::IndirectBr);
3664 let branch = if leaves { self.out.terminator(out) } else { None };
3665
3666 let calls: Vec<rucc_ir::BlockCall> = self.source.successors(term).collect();
3667 let mut succs = Vec::with_capacity(calls.len());
3668 for call in calls {
3669 let args: Vec<Value> = self.source[call.args].to_vec();
3670 let mut regs = Vec::with_capacity(args.len());
3671 for value in args {
3672 // The address of where the value is rather than the value, for the one type a
3673 // register holds none of. The block on the other side copies the bytes out of it
3674 // into a slot of its own, which is what makes a second edge into the same block
3675 // safe.
3676 let reg = if on_x87(self.source[value].ty) {
3677 self.x87_slot(value)
3678 } else {
3679 self.reg_of(value)?
3680 };
3681 regs.push(reg);
3682 }
3683 succs.push(mir::BlockCall::with(self.out_block(call.block), regs));
3684 }
3685 if let Some(branch) = branch {
3686 if self.out.terminator(out) != Some(branch) {
3687 self.out.remove_inst(branch);
3688 self.out.append_inst(out, branch);
3689 }
3690 }
3691 *self.out.succs_mut(out) = succs;
3692 Ok(())
3693 }
3694
3695 /// The machine IR block an IR block became.
3696 fn out_block(&self, block: Block) -> mir::Block {
3697 self.blocks[block.index()].expect("every block was created before any was filled")
3698 }
3699
3700 /// The parameters of the entry block, which are the function's arguments.
3701 ///
3702 /// They are not block parameters in the machine IR and they cannot be. A block parameter is
3703 /// given its value by a move on the edge into the block, and there is no edge into an entry
3704 /// block, so what arrives in a function is the convention's to say. [`crate::abi`] is what
3705 /// says it.
3706 ///
3707 /// The ones past the last register arrived in the caller's memory and are read out of it, and
3708 /// the loads that read them come back here so that the frame can finish them the way it
3709 /// finishes an `alloca`.
3710 fn arrive(&mut self, block: Block, out: mir::Block) -> Result<(), Unsupported> {
3711 let params = self.source[block].params.clone();
3712 // The type of each is the block's answer and what the ABI asks of it is the signature's,
3713 // and the two lists are the same list: a parameter the classification turned into a
3714 // pointer is a pointer in the block too. A block with more parameters than the signature
3715 // names is not one the front end writes, and each of those is taken as a plain value.
3716 let asked: Vec<Abi> = self.source.signature().params.iter().map(|it| it.abi).collect();
3717 let types: Vec<Param> = params
3718 .iter()
3719 .enumerate()
3720 .map(|(index, &value)| {
3721 let abi = asked.get(index).copied().unwrap_or_default();
3722 Param { ty: self.source[value].ty, abi }
3723 })
3724 .collect();
3725 // A save area for a function that takes arguments its signature does not name, which is a
3726 // block of this function's frame on one convention and the shadow space the caller already
3727 // reserved on the other. Which of the two it is is [`varargs::Area::of`]'s answer and
3728 // [`Self::save_area`] is where the difference is spent.
3729 let variadic = self.source.signature().variadic;
3730 let area = variadic.then(|| varargs::Area::of(self.conv));
3731 let arrived = abi::entry(&mut self.out, out, &types, self.conv, self.names, area)
3732 .map_err(|(index, missing)| Unsupported::Argument { index, missing })?;
3733 for (¶m, reg) in params.iter().zip(&arrived.regs) {
3734 self.regs[param.index()] = Some(*reg);
3735 }
3736 if let Some(area) = area {
3737 self.save_area(out, &arrived, area);
3738 }
3739 self.stack.arguments.extend(arrived.stack);
3740 Ok(())
3741 }
3742
3743 /// The prologue of a variadic function, which is every argument register it was handed written
3744 /// into the frame.
3745 ///
3746 /// Every one the signature did not name, that is. Which of those hold anything is a thing only
3747 /// the caller knew and there is nothing here to ask, so all of them are written, and the ones a
3748 /// named parameter took are not, because `va_start` sets the two offsets past them and nothing
3749 /// ever reads their slots.
3750 ///
3751 /// What that costs is up to fourteen stores in the prologue of a function that may read none of
3752 /// them, and the convention's answer to that is the count of vector registers in `%al`, which
3753 /// lets a callee skip the eight vector stores when the call passed no floats. Skipping them is a
3754 /// branch in a prologue, and a prologue is written long after this by [`crate::finish`], which
3755 /// has no blocks to branch between. So they are all written every time, which is correct and is
3756 /// what `-O0` costs. Issue #323 is the branch.
3757 ///
3758 /// A vector register is written all sixteen bytes at a time, because a `_Float128` fills one and
3759 /// a `va_arg` of a quad reads the slot back whole. gcc writes the same sixteen with the same
3760 /// instruction, which is what [`crate::varargs`] says a list has to be built out of.
3761 ///
3762 /// The address is computed once into a register rather than written as a displacement off the
3763 /// stack pointer, because a displacement into a frame is not known until after allocation and
3764 /// one `lea` costs less than a fixup list for a dozen stores. It is the same `lea` an `alloca`
3765 /// gets and [`crate::finish`] fills it in the same way.
3766 ///
3767 /// A convention that homes its register arguments has none of that. Its area is the shadow
3768 /// space the caller reserved above the return address, so there is no object to make and no
3769 /// address to work out: each store reaches into the caller's argument area the way the load of
3770 /// a parameter the registers ran out before does, which is the same waiting list and the same
3771 /// fixup. There are at most four of them and none is a vector register, since a float the
3772 /// signature does not name arrived in a general purpose register too and that is the copy the
3773 /// walk reads.
3774 fn save_area(&mut self, out: mir::Block, arrived: &abi::Arrived, area: varargs::Area) {
3775 if self.conv.shared_positions {
3776 self.varargs = Some(Varargs::Pointer { incoming: arrived.beyond });
3777 let store = mir::Opcode::new(self.names.intern("x64.mov_mr_64"));
3778 for &(reg, class, at) in &arrived.spare {
3779 let sp = mir::Operand::read(mir::Reg::physical(self.conv.stack_pointer), self.gpr);
3780 let made =
3781 self.out.build(out, store).uses(reg, class).mem(mir::Mem::at(sp)).finish();
3782 self.stack.arguments.push((made, at));
3783 }
3784 return;
3785 }
3786
3787 let save = self.stack.locals.len();
3788 self.stack.locals.push(Local { size: area.size, align: varargs::VECTOR_SLOT });
3789 self.varargs = Some(Varargs::Fields {
3790 save,
3791 incoming: arrived.beyond,
3792 integers: u32::try_from(arrived.took.0).unwrap_or(0) * area.stride(false),
3793 floats: area.starts_at(true)
3794 + u32::try_from(arrived.took.1).unwrap_or(0) * area.stride(true),
3795 });
3796
3797 let base = self.frame_address(out, save);
3798 for &(reg, class, at) in &arrived.spare {
3799 let name = if class == self.gpr { "x64.mov_mr_64" } else { "x64.movaps_mr" };
3800 let store = mir::Opcode::new(self.names.intern(name));
3801 let up = i32::try_from(at).expect("a register save area under two gigabytes");
3802 let mem = mir::Mem::at(mir::Operand::read(base, self.gpr)).plus(up);
3803 self.out.build(out, store).uses(reg, class).mem(mem).finish();
3804 }
3805 }
3806
3807 /// The address of one of the function's stack objects, in a fresh register.
3808 ///
3809 /// Written with nothing in its displacement, because where an object is in a frame is not known
3810 /// until after allocation, and given to [`crate::finish`] to fill in the way an `alloca` is.
3811 fn frame_address(&mut self, out: mir::Block, local: usize) -> mir::Reg {
3812 let reg = self.out.new_vreg(self.gpr);
3813 let lea = mir::Opcode::new(self.names.intern(&format!("{PREFIX}{}", x86_64::FRAME.lea)));
3814 let sp = mir::Operand::read(mir::Reg::physical(self.conv.stack_pointer), self.gpr);
3815 let made = self.out.build(out, lea).def(reg, self.gpr).mem(mir::Mem::at(sp)).finish();
3816 self.stack.addresses.push((made, local));
3817 reg
3818 }
3819
3820 /// Whether an instruction is one no machine instruction is written for where it stands.
3821 ///
3822 /// Four of them, and none is a lowering decision, which is why none is a rule. A constant is
3823 /// written where a register for it is first wanted rather than where the IR put it, and every
3824 /// reader of one may have folded it into an immediate, in which case nowhere is the right
3825 /// place. A return of nothing has nothing to put anywhere: the epilogue gives the frame back
3826 /// and leaves, and it is appended to every block with no successors long after this has
3827 /// finished, so a return with a value is one instruction here and a return without one is
3828 /// none. Unless the value went back through memory, in which case there is something to put
3829 /// somewhere after all and the IR does not carry it: the address the caller handed over has
3830 /// to be in `rax` on the way out, and [`Lowering::returned`] is what writes that.
3831 ///
3832 /// An unconditional jump is the third, and there is even less of it: the edge is on the
3833 /// block, and whether the block it goes to is the next one and needs no jump at all is the
3834 /// block layout's answer rather than this one's.
3835 ///
3836 /// The fourth is a point control does not arrive at, in both of the forms the IR has for it:
3837 /// the `unreachable` terminator the front end puts at the end of a function whose body can run
3838 /// off the bottom, and the `unreachable_hint` a call to `__builtin_unreachable` becomes. What
3839 /// to write for a place nothing reaches is a question with no wrong answer, and nothing is the
3840 /// smallest one and the one gcc 16.2.0 gives at `-O0`. The terminator leaves the block with no
3841 /// successors, so the epilogue lands at the end of it the way it does on any other block that
3842 /// goes nowhere, and the function cannot fall out of its own last instruction into whatever
3843 /// the assembler puts next.
3844 fn writes_nothing(&self, inst: Inst) -> bool {
3845 let data = &self.source[inst];
3846 match data.opcode {
3847 Opcode::IConst | Opcode::Jump | Opcode::Unreachable | Opcode::UnreachableHint => true,
3848 Opcode::Return => self.source[data.args].is_empty() && self.sret().is_none(),
3849 _ => false,
3850 }
3851 }
3852
3853 /// What every instruction in one block matched, with a set of values nobody may take.
3854 ///
3855 /// Backwards, because an instruction that has been folded into a later one does not get to
3856 /// fold anything into itself: the rule that took it only reached one level down, so what is
3857 /// under it is not in the term the matcher saw and cannot be replaced.
3858 fn decide(&self, insts: &[Inst], refused: &HashSet<Value>) -> Decided {
3859 let mut found: Vec<Option<Match<Term>>> = (0..insts.len()).map(|_| None).collect();
3860 let mut plans: Vec<Option<Plan>> = vec![None; insts.len()];
3861 let mut folded: Vec<Inst> = Vec::new();
3862 for (index, &inst) in insts.iter().enumerate().rev() {
3863 if folded.contains(&inst) {
3864 continue;
3865 }
3866 if let Some((plan, matched)) = self.select(inst, refused) {
3867 folded.extend(self.folds(inst, plan));
3868 found[index] = Some(matched);
3869 plans[index] = Some(plan);
3870 }
3871 }
3872 Decided { found, plans, folded }
3873 }
3874
3875 /// A value some of its readers took and some of them did not, which is the one case folding
3876 /// buys nothing.
3877 ///
3878 /// Folding does not delete the instruction that computed a value for anybody else, so a
3879 /// reader that did not take it still needs it in a register and the instruction stays. The
3880 /// reader that did take it now does that work again. Either all of them take it, in which
3881 /// case nothing is left to read it and the instruction goes, or none of them do.
3882 ///
3883 /// The count is over the whole function rather than over the block, since a value read from
3884 /// another block is read from a register there whatever this block decides. An instruction
3885 /// built by name rather than matched, a call being the one that matters, has no plan and so
3886 /// takes nothing, which is the right answer for it as well.
3887 fn left_alive(&self, insts: &[Inst], plans: &[Option<Plan>]) -> Option<Value> {
3888 let mut taken = vec![0u32; self.uses.len()];
3889 for (&inst, plan) in insts.iter().zip(plans) {
3890 let Some(plan) = plan else { continue };
3891 let args = &self.source[self.source[inst].args];
3892 for (index, &arg) in args.iter().take(MAX_ARGS).enumerate() {
3893 if plan[index] == Shown::Expand {
3894 taken[arg.index()] += 1;
3895 }
3896 }
3897 }
3898 for (&inst, plan) in insts.iter().zip(plans) {
3899 let Some(plan) = plan else { continue };
3900 let args = &self.source[self.source[inst].args];
3901 for (index, &arg) in args.iter().take(MAX_ARGS).enumerate() {
3902 if plan[index] == Shown::Expand && taken[arg.index()] < self.uses[arg.index()] {
3903 return Some(arg);
3904 }
3905 }
3906 }
3907 None
3908 }
3909
3910 /// The rule that fires on an instruction, and what it bound.
3911 ///
3912 /// The plans are tried in order and the first that matches wins, which is the maximal munch
3913 /// `spec/10-backend.md` asks for: a plan that offers more to the matcher is tried before one
3914 /// that offers less.
3915 fn select(&self, inst: Inst, refused: &HashSet<Value>) -> Option<(Plan, Match<Term>)> {
3916 for plan in self.plans(inst, refused) {
3917 let terms = Terms::new(self.source, inst, plan);
3918 if let Some(matched) = TABLE.find(&terms, Term::Root) {
3919 return Some((plan, matched));
3920 }
3921 }
3922 None
3923 }
3924
3925 /// Every way this instruction can be shown to the matcher, most offered first.
3926 fn plans(&self, inst: Inst, refused: &HashSet<Value>) -> Vec<Plan> {
3927 let args = &self.source[self.source[inst].args];
3928 let mut plans = vec![PLAIN];
3929 for (index, &arg) in args.iter().enumerate().take(MAX_ARGS) {
3930 let mut ways = Vec::new();
3931 if self.foldable(inst, arg, refused) {
3932 ways.push(Shown::Expand);
3933 }
3934 if Terms::new(self.source, inst, PLAIN).constant(arg).is_some() {
3935 ways.push(Shown::Const);
3936 }
3937 ways.push(Shown::Reg);
3938 plans = plans
3939 .into_iter()
3940 .flat_map(|plan| {
3941 ways.iter().map(move |&way| {
3942 let mut next = plan;
3943 next[index] = way;
3944 next
3945 })
3946 })
3947 .collect();
3948 }
3949 plans
3950 }
3951
3952 /// Whether an operand may be shown as the instruction that computed it.
3953 ///
3954 /// It has to be in the same block, because a rule that folds one instruction into another
3955 /// moves the work to where the second one is. It has to be something rather than a block
3956 /// parameter, and not a constant, which is shown as a constant instead. And it has to be a
3957 /// value [`Lowering::left_alive`] has not put back, which is how the one reader at a time
3958 /// question is asked here: this says yes to a value with any number of readers, and a value
3959 /// only some of them could take is refused after the fact and asked again.
3960 ///
3961 /// A value with several readers used to be refused outright, on the reasoning that folding
3962 /// does not delete the instruction for anybody else. That reasoning is about the set of
3963 /// readers and was being applied to one reader at a time, which is stricter than it needs to
3964 /// be: when every reader takes it there is nobody left to read it and the instruction goes.
3965 /// An address a store and a load share is the shape that matters, since a memory operand has
3966 /// room for the whole of it and both readers have a memory operand.
3967 fn foldable(&self, into: Inst, value: Value, refused: &HashSet<Value>) -> bool {
3968 let Def::Result { inst, .. } = self.source[value].def else { return false };
3969 if self.source[inst].opcode == Opcode::IConst || refused.contains(&value) {
3970 return false;
3971 }
3972 self.source.block_of(inst).is_some()
3973 && self.source.block_of(inst) == self.source.block_of(into)
3974 }
3975
3976 /// The instructions a match folded into the one it matched.
3977 ///
3978 /// The plan is what says this, not the bindings: a binding is a register or a number either
3979 /// way, and an operand shown as the instruction that computed it is one no rule could have
3980 /// matched without taking that instruction, because the plan offered the matcher nothing
3981 /// else to call it.
3982 fn folds(&self, inst: Inst, plan: Plan) -> Vec<Inst> {
3983 let args = &self.source[self.source[inst].args];
3984 args.iter()
3985 .take(MAX_ARGS)
3986 .enumerate()
3987 .filter(|&(index, _)| plan[index] == Shown::Expand)
3988 .filter_map(|(_, &arg)| match self.source[arg].def {
3989 Def::Result { inst, .. } => Some(inst),
3990 Def::Param { .. } => None,
3991 })
3992 .collect()
3993 }
3994
3995 /// What the IR instruction said about itself that the machine instruction has to keep saying.
3996 ///
3997 /// One flag today. `volatile` says the access happens exactly once and is never moved or
3998 /// merged, and nothing below here can work that out again: a `volatile` load and an ordinary
3999 /// one are the same instruction over the same address, so a pass that puts two accesses
4000 /// together would put these together too. Carried rather than checked here, because the pass
4001 /// that has to refuse is a long way down and this is the last place the answer is known.
4002 ///
4003 /// The instructions this compiler writes for itself get nothing, which is the right answer
4004 /// for all of them: a prologue, a spill and the moves around a call were asked for by the
4005 /// machine rather than by the program.
4006 ///
4007 /// Every access the flag is legal on carries it: the loads and the stores a rule matched,
4008 /// the two ends of a `long double` copy that are the program's own memory, and the compare
4009 /// and exchange and the read modify write. An `asm` statement does not, and it is the one
4010 /// exception on purpose. What the flag says there is that the statement stays even when
4011 /// nothing reads what it wrote, which is a different sentence about a different thing, and
4012 /// every `asm` is already fixed where it stands whether the word was written or not.
4013 fn carried(&self, inst: Inst) -> mir::Flags {
4014 if self.source[inst].flags.contains(Flags::VOLATILE) {
4015 mir::Flags::VOLATILE
4016 } else {
4017 mir::Flags::NONE
4018 }
4019 }
4020
4021 /// Build the machine instruction a match calls for.
4022 fn emit(&mut self, inst: Inst, matched: &Match<Term>) -> Result<(), Unsupported> {
4023 let rule: &Rule = TABLE.rule(matched);
4024 let pieces = rule.replacement;
4025 let Some(Piece::App { head, arity }) = pieces.first() else {
4026 return Err(self.unsupported(inst));
4027 };
4028 let opcode = head.strip_prefix(PREFIX).ok_or_else(|| self.unsupported(inst))?;
4029 let form = x86_64::form(opcode).ok_or_else(|| self.unsupported(inst))?;
4030
4031 let mut read = Read::default();
4032 let mut at = 1;
4033 for _ in 0..*arity {
4034 at = self.read(inst, pieces, at, &matched.bindings, &mut read)?;
4035 }
4036
4037 let descs = form.operands();
4038 let writes = descs.iter().take_while(|desc| desc.role.is_def()).count();
4039 if descs.len() - writes != read.regs.len() {
4040 return Err(self.unsupported(inst));
4041 }
4042
4043 // The first thing the instruction writes is what it computes, and any others are
4044 // registers the machine destroys on the way, which are fresh because nothing else is in
4045 // them and nothing reads them. An instruction that writes nothing at all is one whose
4046 // whole purpose is its effect, which is what a store is, and there is no result to put
4047 // anywhere.
4048 let mut regs = Vec::new();
4049 if writes > 0 {
4050 let result = self.source[inst].first_result.ok_or_else(|| self.unsupported(inst))?;
4051 regs.push(self.new_reg(result));
4052 // The rest are the registers the machine destroys on the way, and the class each is in
4053 // is the one the instruction's description gives it rather than a guess, so that an
4054 // instruction that wrecks a register in the other file says so.
4055 regs.extend(descs[1..writes].iter().map(|desc| self.out.new_vreg(desc.class)));
4056 } else if self.source[inst].first_result.is_some() {
4057 // A rule that throws away a value the IR gave a name to would leave every reader of
4058 // that name with nothing to read, so it is a rule this and the target disagree about.
4059 return Err(self.unsupported(inst));
4060 }
4061 regs.extend(read.regs.iter().copied());
4062
4063 let block = self.at.expect("a block is being filled");
4064 let opcode = mir::Opcode::new(self.names.intern(head));
4065 let (span, flags) = (self.source.span(inst), self.carried(inst));
4066 let mut build = self.out.build(block, opcode).at(span).flags(flags);
4067 for (desc, reg) in descs.iter().zip(regs) {
4068 let operand = mir::Operand {
4069 reg,
4070 class: desc.class,
4071 role: desc.role,
4072 constraint: desc.constraint,
4073 };
4074 build = build.operand(operand);
4075 }
4076 if let Some(mem) = read.mem {
4077 build = build.mem(mem);
4078 }
4079 if let Some(imm) = read.imm {
4080 build = build.imm(imm);
4081 }
4082 build.finish();
4083 Ok(())
4084 }
4085
4086 /// Read one argument of a replacement, which is a register, a number or an address.
4087 ///
4088 /// Gives back the position after it, because a replacement is flat and an address takes
4089 /// arguments of its own.
4090 fn read(
4091 &mut self,
4092 inst: Inst,
4093 pieces: &'static [Piece],
4094 at: usize,
4095 bindings: &[Term],
4096 out: &mut Read,
4097 ) -> Result<usize, Unsupported> {
4098 match pieces.get(at) {
4099 Some(Piece::Int(value)) => {
4100 out.imm = i64::try_from(*value).ok();
4101 Ok(at + 1)
4102 }
4103 // A number the rule worked out of the ones it matched rather than one it wrote down,
4104 // which is an immediate once it has been worked out and is read here as one. It gives
4105 // nothing back when a binding it reads is a register, and a replacement that cannot be
4106 // built is a rule this file and the matcher disagree about, which is what `unsupported`
4107 // is for.
4108 Some(Piece::Computed { work, .. }) => {
4109 let matched: Vec<Option<i128>> = bindings
4110 .iter()
4111 .map(|term| match *term {
4112 Term::Num(value) => Some(value),
4113 _ => None,
4114 })
4115 .collect();
4116 let number = work(&matched).ok_or_else(|| self.unsupported(inst))?;
4117 out.imm = i64::try_from(number).ok();
4118 Ok(at + 1)
4119 }
4120 Some(Piece::Var { index, .. }) => {
4121 match bindings.get(*index) {
4122 Some(&Term::Reg(value)) => {
4123 let reg = self.reg_of(value)?;
4124 out.regs.push(reg);
4125 }
4126 Some(&Term::Num(value)) => out.imm = i64::try_from(value).ok(),
4127 // A pattern binds a register or a number and nothing else, so this is a
4128 // rule the matcher and this file disagree about.
4129 _ => return Err(self.unsupported(inst)),
4130 }
4131 Ok(at + 1)
4132 }
4133 Some(Piece::App { head, arity }) => {
4134 let kind = x86_64::address(head).ok_or_else(|| self.unsupported(inst))?;
4135 let mut inner = Read::default();
4136 let mut next = at + 1;
4137 for _ in 0..*arity {
4138 next = self.read(inst, pieces, next, bindings, &mut inner)?;
4139 }
4140 let mem = address(kind, &inner, self.gpr).ok_or_else(|| self.unsupported(inst))?;
4141 out.mem = Some(mem);
4142 Ok(next)
4143 }
4144 None => Err(self.unsupported(inst)),
4145 }
4146 }
4147
4148 /// The register a value is in, materializing it if it is a constant that has not been put in
4149 /// one yet.
4150 ///
4151 /// A constant is written where it is wanted rather than where the IR defined it, and where it
4152 /// is wanted is a block that need not be the one the IR defined it in. So the register holding
4153 /// one is only good inside the block it was written into, and a second block that wants the
4154 /// same constant gets its own. Anything else is a register read where nothing wrote it: the
4155 /// IR guarantees a definition dominates its uses, and this moved the definition.
4156 ///
4157 /// Writing the number again is also the right answer and not merely the safe one. It is one
4158 /// instruction that reads nothing, which is cheaper than holding a register live across a
4159 /// branch for it, and it is what a rematerializing allocator would do with the value anyway.
4160 fn reg_of(&mut self, value: Value) -> Result<mir::Reg, Unsupported> {
4161 let constant = match self.source[value].def {
4162 Def::Result { inst, .. } => {
4163 (self.source[inst].opcode == Opcode::IConst).then_some(inst)
4164 }
4165 Def::Param { .. } => None,
4166 };
4167 let here = self.at.expect("a block is being filled");
4168 if let Some(reg) = self.regs[value.index()] {
4169 if constant.is_none() || self.written[value.index()] == Some(here) {
4170 return Ok(reg);
4171 }
4172 }
4173 if let Some(inst) = constant {
4174 // Cleared so that the register the constant is written into is a new one rather than
4175 // the one the block above wrote, which is still being read up there.
4176 self.regs[value.index()] = None;
4177 // Nothing is refused here. A constant is written on its own, out of the loop over the
4178 // block, and the operands of the rule that writes one are the number and nothing else.
4179 let matched = self
4180 .select(inst, &HashSet::new())
4181 .map(|(_, matched)| matched)
4182 .ok_or_else(|| self.unsupported(inst))?;
4183 self.emit(inst, &matched)?;
4184 // The same mark the loop over the instructions makes, and it has to be made here as
4185 // well because this is the only place a constant is ever selected: the loop skips one
4186 // where the IR wrote it, so a rule that lowers a constant fires from nowhere else and
4187 // would be reported as a rule nothing reaches.
4188 self.fired.mark(matched.rule);
4189 self.written[value.index()] = Some(here);
4190 return Ok(self.regs[value.index()].expect("a constant is written into a register"));
4191 }
4192 Ok(self.new_reg(value))
4193 }
4194
4195 /// Which register file a value of that type lives in.
4196 ///
4197 /// The vector one for the two float widths the machine has scalar instructions for and for the
4198 /// one it only moves, and the general purpose one for everything else. An eighty bit `long
4199 /// double` is in neither, and it is here rather than in the vector class on purpose: it would
4200 /// be put in a register that cannot hold it, and there is no rule that names one, so the
4201 /// instruction computing it is reported. The wrong class would make that a wrong program
4202 /// instead of a refused one.
4203 ///
4204 /// A hundred and twenty eight bit float is in the vector class and fits it exactly, which is
4205 /// the difference. Nothing computes in it, so every arithmetic on one is still reported, and
4206 /// what the class buys is the moves: a register that holds the whole value is a register a
4207 /// spill, a reload and a copy are each one instruction for.
4208 fn class_of(&self, ty: Type) -> RegClass {
4209 if crate::term::in_vector_file(ty) { self.conv.sse_class } else { self.gpr }
4210 }
4211
4212 /// A fresh register for a value, which is what the instruction computing it writes.
4213 fn new_reg(&mut self, value: Value) -> mir::Reg {
4214 if let Some(reg) = self.regs[value.index()] {
4215 return reg;
4216 }
4217 let reg = self.out.new_vreg(self.class_of(self.source[value].ty));
4218 self.regs[value.index()] = Some(reg);
4219 reg
4220 }
4221
4222 fn unsupported(&self, inst: Inst) -> Unsupported {
4223 let data = &self.source[inst];
4224 Unsupported::Inst {
4225 inst,
4226 term: Terms::new(self.source, inst, PLAIN).name(inst),
4227 opcode: data.opcode,
4228 ty: data.first_result.map(|result| self.source[result].ty),
4229 }
4230 }
4231}
4232
4233/// What the arguments of one replacement came to.
4234#[derive(Debug, Default)]
4235struct Read {
4236 regs: Vec<mir::Reg>,
4237 imm: Option<i64>,
4238 mem: Option<mir::Mem>,
4239}
4240
4241/// The addressing mode an address constructor's arguments make.
4242///
4243/// One arm per constructor rather than a question asked of the kind, because what the arguments
4244/// mean is the whole of what tells the four apart: the same register is a base in one and an
4245/// index in another, and the same constant is a scale in one and a displacement in another.
4246fn address(kind: x86_64::Address, read: &Read, gpr: RegClass) -> Option<mir::Mem> {
4247 let mut regs = read.regs.iter().copied().map(|reg| mir::Operand::read(reg, gpr));
4248 match kind {
4249 x86_64::Address::BaseIndexScale => {
4250 let base = regs.next()?;
4251 let index = regs.next()?;
4252 Some(mir::Mem::at(base).indexed(index, u8::try_from(read.imm?).ok()?))
4253 }
4254 x86_64::Address::IndexScale => Some(mir::Mem {
4255 base: None,
4256 index: Some(regs.next()?),
4257 scale: u8::try_from(read.imm?).ok()?,
4258 disp: 0,
4259 symbol: None,
4260 block: None,
4261 reach: mir::Reach::Itself,
4262 segment: None,
4263 }),
4264 x86_64::Address::Base => Some(mir::Mem::at(regs.next()?)),
4265 // The rule that writes this has a guard saying the constant fits, so a displacement that
4266 // does not is a rule and a target that disagree rather than a program this cannot compile.
4267 x86_64::Address::BaseOffset => {
4268 Some(mir::Mem { disp: i32::try_from(read.imm?).ok()?, ..mir::Mem::at(regs.next()?) })
4269 }
4270 }
4271}
4272
4273/// The table this selector matches with.
4274///
4275/// One target for now, because one target has a rule file. Which table to use becomes a question
4276/// the moment a second one does, and the answer will be the target the session was given rather
4277/// than a constant here.
4278static TABLE: &Table = &crate::select::x86_64::TABLE;
4279
4280#[cfg(test)]
4281mod tests {
4282 use rucc_ir::{
4283 AsmInfo, Builder, CallInfo, Flags, InstData, MemInfo, MemOrder, Restrict, Signature, Type,
4284 };
4285 use rucc_regalloc::assign::Env;
4286 use rucc_target::x86_64::{FRAME, REGS, SYSV};
4287
4288 use super::*;
4289 use crate::finish::{Convention, finish};
4290 use crate::frame::{Frame, Incoming, Layout};
4291
4292 /// A function of as many 64 bit parameters as the test wants, and the block they are in.
4293 fn blank(params: &[Type]) -> (Interner, Func, Block, Vec<Value>) {
4294 let mut names = Interner::new();
4295 let mut func = Func::new(names.intern("f"), Signature::new());
4296 let block = func.create_block();
4297 let values = params.iter().map(|&ty| func.append_param(block, ty)).collect();
4298 (names, func, block, values)
4299 }
4300
4301 /// An ordinary access: not atomic, and aligned enough that nothing here has an opinion.
4302 /// Neither field reaches selection, which is the point of saying it once here.
4303 fn plain() -> MemInfo {
4304 MemInfo {
4305 size: 0,
4306 align: 1,
4307 order: MemOrder::NotAtomic,
4308 tbaa: None,
4309 owns: 0,
4310 restrict: Restrict::NONE,
4311 }
4312 }
4313
4314 /// What the allocator is given: every integer register the convention offers except two, held
4315 /// back so that a move on an edge has somewhere to break a cycle and a spilled value has
4316 /// somewhere to be read into. Which two does not matter, and holding back the last two the
4317 /// convention would reach for leaves every expectation below unchanged.
4318 fn env() -> Env {
4319 const SCRATCH: [PhysReg; 2] = [x86_64::R10, x86_64::R11];
4320 let order: Vec<PhysReg> =
4321 SYSV.int_order.iter().copied().filter(|reg| !SCRATCH.contains(reg)).collect();
4322 Env::new().with(x86_64::GPR, &order, &SCRATCH)
4323 }
4324
4325 /// The machine IR text a function lowers to.
4326 fn lower(names: &mut Interner, source: &Func) -> String {
4327 let out = func(source, names, &SYSV, &Elsewhere::default())
4328 .expect("every instruction has a rule");
4329 mir::print_func(&out.func, names, ®S)
4330 }
4331
4332 #[test]
4333 fn an_addition_of_two_registers_is_one_instruction() {
4334 let i32 = Type::int(32);
4335 let (mut names, mut func, block, args) = blank(&[i32, i32]);
4336 let mut build = Builder::new(&mut func, block);
4337 build.binary(Opcode::Add, args[0], args[1], Flags::default());
4338
4339 assert_eq!(
4340 lower(&mut names, &func),
4341 "mfunc @f {\nblock0:\n %0:gpr($rdi) = x64.arg_val_32\n \
4342 %1:gpr($rsi) = x64.arg_val_32\n %2:gpr(reuse 1) = x64.add_rr_32 %0, %1\n}\n"
4343 );
4344 }
4345
4346 #[test]
4347 fn a_constant_operand_becomes_an_immediate() {
4348 let i32 = Type::int(32);
4349 let (mut names, mut func, block, args) = blank(&[i32]);
4350 let mut build = Builder::new(&mut func, block);
4351 let seven = build.iconst(i32, 7);
4352 build.binary(Opcode::Add, args[0], seven, Flags::default());
4353
4354 // The constant is in the instruction and nothing was written to hold it, which is what
4355 // materializing one where a register for it is wanted buys.
4356 assert_eq!(
4357 lower(&mut names, &func),
4358 "mfunc @f {\nblock0:\n %0:gpr($rdi) = x64.arg_val_32\n \
4359 %1:gpr(reuse 1) = x64.add_ri_32 %0, 7\n}\n"
4360 );
4361 }
4362
4363 #[test]
4364 fn a_constant_too_wide_for_an_immediate_goes_into_a_register() {
4365 let i64 = Type::int(64);
4366 let (mut names, mut func, block, args) = blank(&[i64]);
4367 let mut build = Builder::new(&mut func, block);
4368 let big = build.iconst(i64, i128::from(i32::MAX) + 1);
4369 build.binary(Opcode::Add, args[0], big, Flags::default());
4370
4371 // Nobody wrote this fallback down. The rule that takes an immediate has a guard that
4372 // turns a number this wide down, so it does not fire, and the next way of showing the
4373 // operand puts it in a register.
4374 assert_eq!(
4375 lower(&mut names, &func),
4376 "mfunc @f {\nblock0:\n %0:gpr($rdi) = x64.arg_val_64\n \
4377 %1:gpr = x64.mov_ri_64 2147483648\n %2:gpr(reuse 1) = x64.add_rr_64 %0, %1\n}\n"
4378 );
4379 }
4380
4381 #[test]
4382 fn an_index_calculation_folds_into_an_address() {
4383 let i64 = Type::int(64);
4384 let (mut names, mut func, block, args) = blank(&[i64, i64]);
4385 let mut build = Builder::new(&mut func, block);
4386 let four = build.iconst(i64, 4);
4387 let scaled = build.binary(Opcode::Mul, args[1], four, Flags::default());
4388 build.binary(Opcode::Add, args[0], scaled, Flags::default());
4389
4390 // Three IR instructions and one machine instruction. The multiply is gone because the
4391 // rule that matched reached down and took it.
4392 assert_eq!(
4393 lower(&mut names, &func),
4394 "mfunc @f {\nblock0:\n %0:gpr($rdi) = x64.arg_val_64\n \
4395 %1:gpr($rsi) = x64.arg_val_64\n %2:gpr = x64.lea_64 [%0 + %1*4]\n}\n"
4396 );
4397 }
4398
4399 #[test]
4400 fn an_instruction_every_reader_can_take_is_folded_into_all_of_them() {
4401 let i64 = Type::int(64);
4402 let (mut names, mut func, block, args) = blank(&[i64, i64]);
4403 let mut build = Builder::new(&mut func, block);
4404 let four = build.iconst(i64, 4);
4405 let scaled = build.binary(Opcode::Mul, args[1], four, Flags::default());
4406 let first = build.binary(Opcode::Add, args[0], scaled, Flags::default());
4407 build.binary(Opcode::Add, first, scaled, Flags::default());
4408
4409 // Both readers have room for a scaled index, so both of them take it and nothing is left
4410 // to read the multiply. Three IR instructions become two machine ones, where refusing to
4411 // fold into either reader would have left three.
4412 assert_eq!(
4413 lower(&mut names, &func),
4414 "mfunc @f {\nblock0:\n %0:gpr($rdi) = x64.arg_val_64\n \
4415 %1:gpr($rsi) = x64.arg_val_64\n %2:gpr = x64.lea_64 [%0 + %1*4]\n \
4416 %3:gpr = x64.lea_64 [%2 + %1*4]\n}\n"
4417 );
4418 }
4419
4420 #[test]
4421 fn an_instruction_one_of_its_readers_cannot_take_is_folded_into_none_of_them() {
4422 let i64 = Type::int(64);
4423 let (mut names, mut func, block, args) = blank(&[i64, i64]);
4424 let mut build = Builder::new(&mut func, block);
4425 let four = build.iconst(i64, 4);
4426 let scaled = build.binary(Opcode::Mul, args[1], four, Flags::default());
4427 build.binary(Opcode::Add, args[0], scaled, Flags::default());
4428 build.store(scaled, args[0], plain(), Flags::default());
4429
4430 // The addition has room for the multiply and the store does not: what a store writes is
4431 // a register, and no rule reaches through it. Folding into the addition alone would
4432 // leave the multiply where it is for the store to read and do the work twice, so the
4433 // multiply is put back and both readers read the register it wrote.
4434 let text = lower(&mut names, &func);
4435 assert!(text.contains("x64.lea_64 [%1*4]"), "{text}");
4436 assert!(text.contains("x64.add_rr_64"), "{text}");
4437 }
4438
4439 #[test]
4440 fn a_shift_by_a_register_asks_for_it_in_cl() {
4441 let i32 = Type::int(32);
4442 let (mut names, mut func, block, args) = blank(&[i32, i32]);
4443 let mut build = Builder::new(&mut func, block);
4444 build.binary(Opcode::Shl, args[0], args[1], Flags::default());
4445
4446 // The fixed register is not in the rule. It is what the target says the instruction does
4447 // with its operands, and the allocator is what will act on it.
4448 let text = lower(&mut names, &func);
4449 assert!(text.contains("x64.shl_rcl_32 %0, %1($rcx)"), "{text}");
4450 }
4451
4452 #[test]
4453 fn a_division_names_the_registers_and_the_register_it_destroys() {
4454 let i32 = Type::int(32);
4455 let (mut names, mut func, block, args) = blank(&[i32, i32]);
4456 let mut build = Builder::new(&mut func, block);
4457 build.binary(Opcode::SDiv, args[0], args[1], Flags::default());
4458
4459 // Two definitions, because a division writes the remainder whether anybody wanted it or
4460 // not, and the second one is early because it is destroyed before the operands are read.
4461 let text = lower(&mut names, &func);
4462 assert!(
4463 text.contains("%2:gpr($rax), early %3:gpr($rdx) = x64.idiv_quo_32 %0($rax), %1"),
4464 "{text}"
4465 );
4466 }
4467
4468 #[test]
4469 fn a_load_reads_through_the_register_the_address_is_in() {
4470 let i64 = Type::int(64);
4471 let (mut names, mut func, block, args) = blank(&[i64]);
4472 let mut build = Builder::new(&mut func, block);
4473 build.load(Type::int(32), args[0], plain(), Flags::default());
4474
4475 assert_eq!(
4476 lower(&mut names, &func),
4477 "mfunc @f {\nblock0:\n %0:gpr($rdi) = x64.arg_val_64\n \
4478 %1:gpr = x64.mov_rm_32 [%0]\n}\n"
4479 );
4480 }
4481
4482 #[test]
4483 fn a_store_writes_no_register_and_the_value_it_writes_is_the_one_the_ir_gave_it() {
4484 let (mut names, mut func, block, args) = blank(&[Type::int(32), Type::int(64)]);
4485 let mut build = Builder::new(&mut func, block);
4486 build.store(args[0], args[1], plain(), Flags::default());
4487
4488 // The value is the first parameter and the address is the second, and the instruction
4489 // takes them the other way round. Getting that backwards would compile to a store of the
4490 // address into the value, which is a program that runs and does the wrong thing.
4491 assert_eq!(
4492 lower(&mut names, &func),
4493 "mfunc @f {\nblock0:\n %0:gpr($rdi) = x64.arg_val_32\n \
4494 %1:gpr($rsi) = x64.arg_val_64\n x64.mov_mr_32 %0, [%1]\n}\n"
4495 );
4496 }
4497
4498 #[test]
4499 fn an_address_with_a_constant_added_folds_into_the_access() {
4500 let i64 = Type::int(64);
4501 let (mut names, mut func, block, args) = blank(&[i64]);
4502 let mut build = Builder::new(&mut func, block);
4503 let twelve = build.iconst(i64, 12);
4504 let field = build.binary(Opcode::Add, args[0], twelve, Flags::default());
4505 build.load(Type::int(64), field, plain(), Flags::default());
4506
4507 // Two IR instructions and one machine instruction, which is what every read of a field
4508 // of a structure comes to.
4509 assert_eq!(
4510 lower(&mut names, &func),
4511 "mfunc @f {\nblock0:\n %0:gpr($rdi) = x64.arg_val_64\n \
4512 %1:gpr = x64.mov_rm_64 [%0 + 12]\n}\n"
4513 );
4514 }
4515
4516 #[test]
4517 fn a_displacement_too_wide_to_encode_leaves_the_addition_where_it_is() {
4518 let i64 = Type::int(64);
4519 let (mut names, mut func, block, args) = blank(&[i64]);
4520 let mut build = Builder::new(&mut func, block);
4521 let big = build.iconst(i64, i128::from(i32::MAX) + 1);
4522 let far = build.binary(Opcode::Add, args[0], big, Flags::default());
4523 build.load(Type::int(32), far, plain(), Flags::default());
4524
4525 // A displacement is signed and 32 bits. The rule that folds one has a guard that turns
4526 // this down, so the addition stays and the load reads through what it produced. Nobody
4527 // wrote that fallback: it is the next way of showing the operand.
4528 let text = lower(&mut names, &func);
4529 assert!(text.contains("x64.mov_rm_32 [%2]"), "{text}");
4530 assert!(text.contains("x64.add_rr_64"), "{text}");
4531 }
4532
4533 #[test]
4534 fn a_store_of_a_value_that_was_loaded_is_two_instructions_and_no_arithmetic() {
4535 let i64 = Type::int(64);
4536 let (mut names, mut func, block, args) = blank(&[i64, i64]);
4537 let mut build = Builder::new(&mut func, block);
4538 let got = build.load(Type::int(8), args[0], plain(), Flags::default());
4539 build.store(got, args[1], plain(), Flags::default());
4540
4541 // A load feeding a store is the one place folding would be wrong: an x86-64 `mov` has at
4542 // most one memory operand, and there is no rule that takes two, so the load is left where
4543 // it is and the store reads the register it wrote.
4544 assert_eq!(
4545 lower(&mut names, &func),
4546 "mfunc @f {\nblock0:\n %0:gpr($rdi) = x64.arg_val_64\n \
4547 %1:gpr($rsi) = x64.arg_val_64\n %2:gpr = x64.mov_rm_8 [%0]\n \
4548 x64.mov_mr_8 %2, [%1]\n}\n"
4549 );
4550 }
4551
4552 #[test]
4553 fn an_access_at_a_width_no_rule_is_written_at_is_reported() {
4554 let i64 = Type::int(64);
4555 let (mut names, mut source, block, args) = blank(&[i64]);
4556 let mut build = Builder::new(&mut source, block);
4557 build.load(Type::int(128), args[0], plain(), Flags::default());
4558
4559 // The width is the whole of what is wrong here, so the width is in the message: `load`
4560 // on its own is written about at every other width and would send a reader looking in
4561 // the wrong place.
4562 let failed = func(&source, &mut names, &SYSV, &Elsewhere::default())
4563 .expect_err("nothing loads 128 bits");
4564 assert_eq!(failed.to_string(), "no rule lowers a `load` producing a `i128`");
4565 }
4566
4567 #[test]
4568 fn a_return_asks_for_the_value_in_the_register_the_caller_reads() {
4569 let (mut names, mut func, block, args) = blank(&[Type::int(32)]);
4570 let mut build = Builder::new(&mut func, block);
4571 build.ret(&[args[0]]);
4572
4573 // The register is not in the rule, the same way `cl` is not in the rule for a shift. It
4574 // is what the target says the instruction does with its operand, and the allocator is
4575 // what will act on it. There is no `ret` here, because giving the frame back has to
4576 // happen between this and leaving and the frame is not worked out yet.
4577 assert_eq!(
4578 lower(&mut names, &func),
4579 "mfunc @f {\nblock0:\n %0:gpr($rdi) = x64.arg_val_32\n \
4580 x64.ret_val_32 %0($rax)\n}\n"
4581 );
4582 }
4583
4584 #[test]
4585 fn a_return_of_two_values_asks_for_the_second_register_as_well() {
4586 let i64 = Type::int(64);
4587 let (mut names, mut func, block, args) = blank(&[i64, i64]);
4588 let mut build = Builder::new(&mut func, block);
4589 build.ret(&[args[0], args[1]]);
4590
4591 // `struct { long a, b; } f(long a, long b)`, after the front end has classified it. Both
4592 // halves are integers, so the second is in the second integer return register, and both
4593 // pseudos say so the same way the one for a single value does.
4594 assert_eq!(
4595 lower(&mut names, &func),
4596 "mfunc @f {\nblock0:\n %0:gpr($rdi) = x64.arg_val_64\n \
4597 %1:gpr($rsi) = x64.arg_val_64\n x64.ret_val_64 %0($rax)\n \
4598 x64.ret_val2_64 %1($rdx)\n}\n"
4599 );
4600 }
4601
4602 #[test]
4603 fn two_values_back_in_different_files_are_both_the_first_of_their_own() {
4604 let f64 = Type::float(rucc_ir::Float::F64);
4605 let (mut names, mut func, block, args) = blank(&[f64, Type::int(64)]);
4606 let mut build = Builder::new(&mut func, block);
4607 build.ret(&[args[0], args[1]]);
4608
4609 // `struct { double a; long b; } f(double a, long b)`. The two files are counted apart, so
4610 // neither half is the second of anything and the `double` is in `xmm0` rather than in the
4611 // register a second `double` would have been in. Getting this wrong is not a crash: the
4612 // caller reads a register nobody wrote, and this is where that is ruled out.
4613 assert_eq!(
4614 lower(&mut names, &func),
4615 "mfunc @f {\nblock0:\n %0:xmm($xmm0) = x64.arg_val_f64\n \
4616 %1:gpr($rdi) = x64.arg_val_64\n x64.ret_val_f64 %0($xmm0)\n \
4617 x64.ret_val_64 %1($rax)\n}\n"
4618 );
4619 }
4620
4621 #[test]
4622 fn two_of_the_same_file_back_take_the_first_two_of_it() {
4623 let f64 = Type::float(rucc_ir::Float::F64);
4624 let (mut names, mut func, block, args) = blank(&[f64, f64]);
4625 let mut build = Builder::new(&mut func, block);
4626 build.ret(&[args[0], args[1]]);
4627
4628 // `struct { double x, y; } f(double x, double y)`, which is the vector half of the pair
4629 // above and counts in its own file the same way.
4630 assert_eq!(
4631 lower(&mut names, &func),
4632 "mfunc @f {\nblock0:\n %0:xmm($xmm0) = x64.arg_val_f64\n \
4633 %1:xmm($xmm1) = x64.arg_val_f64\n x64.ret_val_f64 %0($xmm0)\n \
4634 x64.ret_val2_f64 %1($xmm1)\n}\n"
4635 );
4636 }
4637
4638 /// A function whose answer goes back through memory, with the pointer to the space for it in
4639 /// front of whatever else it takes. Only the signature says it is one.
4640 fn returning_through_memory(params: &[Type]) -> (Interner, Func, Block, Vec<Value>) {
4641 let mut names = Interner::new();
4642 let sret = Abi::Sret { size: 32, align: 8 };
4643 let mut signature = Signature::new().and_param(Param::with_abi(Type::PTR, sret));
4644 signature.params.extend(params.iter().copied().map(Param::new));
4645 let mut func = Func::new(names.intern("f"), signature);
4646 let block = func.create_block();
4647 let space = func.append_param(block, Type::PTR);
4648 let values = std::iter::once(space)
4649 .chain(params.iter().map(|&ty| func.append_param(block, ty)))
4650 .collect();
4651 (names, func, block, values)
4652 }
4653
4654 #[test]
4655 fn the_space_a_return_through_memory_was_given_goes_back_in_the_first_return_register() {
4656 let (mut names, mut func, block, _) = returning_through_memory(&[]);
4657 Builder::new(&mut func, block).ret(&[]);
4658
4659 // `struct big f(void)`, where `big` is too large to come back in registers. The `return`
4660 // carries nothing, because the value went into the space the caller handed over, and the
4661 // document still says that address comes back in `rax`. Nothing in the IR says it, so the
4662 // convention says it, and the pseudo is the one any other pointer return would use.
4663 assert_eq!(
4664 lower(&mut names, &func),
4665 "mfunc @f {\nblock0:\n %0:gpr($rdi) = x64.arg_val_64\n \
4666 x64.ret_val_64 %0($rax)\n}\n"
4667 );
4668 }
4669
4670 #[test]
4671 fn what_the_function_did_in_between_does_not_take_the_register_off_it() {
4672 let (mut names, mut func, block, args) = returning_through_memory(&[Type::int(32)]);
4673 let mut build = Builder::new(&mut func, block);
4674 build.store(args[1], args[0], plain(), Flags::default());
4675 build.ret(&[]);
4676
4677 // The register is a read at the end and not a move at the start, so it is live across
4678 // everything between the two and the allocator has to keep it somewhere. In a function
4679 // with a call in it that somewhere is a callee saved register, and the address comes back
4680 // into `rax` here rather than whatever the last instruction happened to leave there. That
4681 // is issue #333, and a store is enough to show the value outlives the entry block.
4682 let text = lower(&mut names, &func);
4683 assert!(text.contains("x64.mov_mr_32 %1, [%0]"), "{text}");
4684 assert!(text.ends_with(" x64.ret_val_64 %0($rax)\n}\n"), "{text}");
4685 }
4686
4687 #[test]
4688 fn a_pointer_that_is_only_a_pointer_is_not_given_back() {
4689 let (mut names, mut func, block, args) = blank(&[Type::PTR]);
4690 let mut build = Builder::new(&mut func, block);
4691 build.store(args[0], args[0], plain(), Flags::default());
4692 build.ret(&[]);
4693
4694 // `void f(void **p)`. It takes a pointer first and returns nothing, which is the shape of
4695 // the one above and none of its meaning, and what tells them apart is the signature. A
4696 // `void` function leaves `rax` alone.
4697 assert!(!lower(&mut names, &func).contains("ret_val"));
4698 }
4699
4700 #[test]
4701 fn a_return_of_a_constant_puts_it_in_a_register_first() {
4702 let (mut names, mut func, block, _) = blank(&[]);
4703 let mut build = Builder::new(&mut func, block);
4704 let zero = build.iconst(Type::int(32), 0);
4705 build.ret(&[zero]);
4706
4707 // No rule returns an immediate, so the plan that offers one is turned down and the next
4708 // one materializes it. That is `int main(void) { return 0; }` in full, once the epilogue
4709 // is appended to it.
4710 assert_eq!(
4711 lower(&mut names, &func),
4712 "mfunc @f {\nblock0:\n %0:gpr = x64.mov_ri_32 0\n x64.ret_val_32 %0($rax)\n}\n"
4713 );
4714 }
4715
4716 #[test]
4717 fn the_rule_that_writes_a_constant_down_is_recorded_as_a_rule_that_fired() {
4718 let (mut names, mut func, block, _) = blank(&[]);
4719 let mut build = Builder::new(&mut func, block);
4720 let zero = build.iconst(Type::int(32), 0);
4721 build.ret(&[zero]);
4722
4723 // The loop over the instructions passes a constant by, because a constant is written where
4724 // a register for it is first wanted rather than where the IR put it. So the only place a
4725 // rule about one is ever selected is the materialization, and a mark made in the loop
4726 // alone would report every rule about a constant as a rule nothing reaches.
4727 let out = super::func(&func, &mut names, &SYSV, &Elsewhere::default())
4728 .expect("every instruction has a rule");
4729 let rules = &crate::select::x86_64::TABLE.rules;
4730 let fired: Vec<&str> = rules
4731 .iter()
4732 .enumerate()
4733 .filter(|(index, _)| out.fired.has(*index))
4734 .map(|(_, rule)| rule.pattern)
4735 .collect();
4736 assert!(fired.contains(&"(iconst.i32 k)"), "{fired:?}");
4737 }
4738
4739 #[test]
4740 fn a_return_of_nothing_is_no_instruction_at_all() {
4741 let (mut names, mut func, block, _) = blank(&[]);
4742 let mut build = Builder::new(&mut func, block);
4743 build.ret(&[]);
4744
4745 // Every part of leaving a function that returns nothing is the epilogue's, and the
4746 // epilogue goes in after allocation. A block with nothing in it is the right answer here
4747 // rather than a function that could not be lowered.
4748 assert_eq!(lower(&mut names, &func), "mfunc @f {\nblock0:\n}\n");
4749 }
4750
4751 #[test]
4752 fn the_allocator_is_what_moves_the_answer_into_the_return_register() {
4753 let (mut names, mut source, block, _) = blank(&[]);
4754 let mut build = Builder::new(&mut source, block);
4755 let zero = build.iconst(Type::int(32), 0);
4756 build.ret(&[zero]);
4757
4758 let mut out = func(&source, &mut names, &SYSV, &Elsewhere::default())
4759 .expect("every instruction has a rule")
4760 .func;
4761 let env = env();
4762 let allocation = rucc_regalloc::run(&mut out, &env, "test", true);
4763 let frame = Frame::of(&out, &allocation, &Layout::new(&SYSV, REGS));
4764 finish(
4765 &mut out,
4766 &allocation,
4767 &frame,
4768 &Stack::default(),
4769 Convention::new(&SYSV, &FRAME),
4770 &mut names,
4771 );
4772
4773 // `int main(void) { return 0; }` end to end. Nothing here asked for `rax`: the rule said
4774 // the value goes back, the target said where, and the allocator is what made it true. The
4775 // epilogue is what leaves, and this function needs no frame, so it is the return alone.
4776 //
4777 // Two instructions and no copy, which is what a hint buys. The return insists on `rax`,
4778 // so `rax` is the register the allocator tries first for the value the return reads, and
4779 // the constant is written straight into it.
4780 assert_eq!(
4781 mir::print_func(&out, &names, ®S),
4782 "mfunc @f {\nblock0:\n $rax = x64.mov_ri_32 0\n \
4783 x64.ret_val_32 $rax($rax)\n x64.ret\n}\n"
4784 );
4785 }
4786
4787 #[test]
4788 fn a_function_of_two_arguments_is_a_whole_function_now() {
4789 let i32 = Type::int(32);
4790 let (mut names, mut source, block, args) = blank(&[i32, i32]);
4791 let mut build = Builder::new(&mut source, block);
4792 let sum = build.binary(Opcode::Add, args[0], args[1], Flags::default());
4793 build.ret(&[sum]);
4794
4795 let mut out = func(&source, &mut names, &SYSV, &Elsewhere::default())
4796 .expect("every instruction has a rule")
4797 .func;
4798 let env = env();
4799 let allocation = rucc_regalloc::run(&mut out, &env, "test", true);
4800 let frame = Frame::of(&out, &allocation, &Layout::new(&SYSV, REGS));
4801 finish(
4802 &mut out,
4803 &allocation,
4804 &frame,
4805 &Stack::default(),
4806 Convention::new(&SYSV, &FRAME),
4807 &mut names,
4808 );
4809
4810 // `int f(int a, int b) { return a + b; }` end to end, and this is the test the argument
4811 // side exists for. Before it there was no way to write one: the allocator refuses a
4812 // function whose entry block takes parameters, because there is no edge into an entry
4813 // block for the moves that give a block parameter its value to go on.
4814 //
4815 // One move, and it is the one the machine's addition needs rather than one the allocator
4816 // owes anybody. Each argument stays in the register it arrived in, because the pseudo
4817 // that defines it insists on that register and the allocator now tries it first, and the
4818 // sum stays in the register the addition wrote it to until the return reads it out. The
4819 // copy in front of a two address instruction is what makes its destination one of the
4820 // registers it reads, and the source operand keeps its own name because the destination
4821 // is what the encoder writes.
4822 assert_eq!(
4823 mir::print_func(&out, &names, ®S),
4824 "mfunc @f {\nblock0:\n $rdi($rdi) = x64.arg_val_32\n \
4825 $rsi($rsi) = x64.arg_val_32\n \
4826 $rdi(reuse 1) = x64.add_rr_32 $rdi, $rsi\n $rax = x64.mov_rr_64 $rdi\n \
4827 x64.ret_val_32 $rax($rax)\n x64.ret\n}\n"
4828 );
4829 }
4830
4831 #[test]
4832 fn an_argument_with_no_register_left_for_it_is_read_out_of_the_caller_s_stack() {
4833 let i64 = Type::int(64);
4834 let (mut names, mut source, block, args) = blank(&[i64; 7]);
4835 let mut build = Builder::new(&mut source, block);
4836 build.ret(&[args[6]]);
4837
4838 let lowered = func(&source, &mut names, &SYSV, &Elsewhere::default())
4839 .expect("the seventh is read from memory");
4840
4841 // SysV passes six integers in registers and the seventh in the caller's memory, so six of
4842 // these are pseudos that encode to nothing and the seventh is a load that encodes to real
4843 // bytes. Its displacement is nothing here for the reason a local's is: there is no frame
4844 // yet. What the walk hands on is which instruction is waiting, and for how far up the
4845 // caller's argument area, which is the bottom of it because it is the first one there.
4846 assert_eq!(lowered.stack.arguments.len(), 1);
4847 assert_eq!(lowered.stack.arguments[0].1, 0);
4848 let text = mir::print_func(&lowered.func, &names, ®S);
4849 assert!(text.contains("%6:gpr = x64.mov_rm_64 [$rsp]"), "{text}");
4850 assert_eq!(text.matches("x64.arg_val_64").count(), 6, "{text}");
4851 }
4852
4853 #[test]
4854 fn the_frame_is_what_says_how_far_up_the_caller_s_stack_an_argument_is() {
4855 let i64 = Type::int(64);
4856 let (mut names, mut source, block, args) = blank(&[i64; 8]);
4857 let mut build = Builder::new(&mut source, block);
4858 let sum = build.binary(Opcode::Add, args[6], args[7], Flags::default());
4859 build.ret(&[sum]);
4860
4861 let lowered = func(&source, &mut names, &SYSV, &Elsewhere::default())
4862 .expect("both are read from memory");
4863 let stack = lowered.stack;
4864 let mut out = lowered.func;
4865 let env = env();
4866 let allocation = rucc_regalloc::run(&mut out, &env, "test", true);
4867 let layout = stack.layout(Layout::new(&SYSV, REGS));
4868 let frame = Frame::of(&out, &allocation, &layout);
4869 finish(&mut out, &allocation, &frame, &stack, Convention::new(&SYSV, &FRAME), &mut names);
4870
4871 // A leaf that takes no frame, so the stack pointer never moves and the only thing between
4872 // it and the caller's arguments is the return address the call pushed. The seventh
4873 // parameter is at the bottom of the caller's argument area and the eighth is one word
4874 // further up, which is the eight bytes between the two offsets.
4875 let text = mir::print_func(&out, &names, ®S);
4876 assert_eq!(frame.size(), 0);
4877 assert_eq!(frame.incoming(), Incoming::from_stack(8));
4878 assert!(text.contains("x64.mov_rm_64 [$rsp + 8]"), "{text}");
4879 assert!(text.contains("x64.mov_rm_64 [$rsp + 16]"), "{text}");
4880 }
4881
4882 #[test]
4883 fn a_realigned_frame_reaches_the_caller_s_arguments_through_the_frame_pointer() {
4884 let i64 = Type::int(64);
4885 let (mut names, mut source, block, args) = blank(&[i64; 7]);
4886 let wide = slot(&mut source, block, 64, 32);
4887 let mut build = Builder::new(&mut source, block);
4888 build.store(args[6], wide, plain(), Flags::default());
4889 build.ret(&[args[6]]);
4890
4891 let lowered = func(&source, &mut names, &SYSV, &Elsewhere::default())
4892 .expect("every instruction has a rule");
4893 let stack = lowered.stack;
4894 let mut out = lowered.func;
4895 let env = env();
4896 let allocation = rucc_regalloc::run(&mut out, &env, "test", true);
4897 let layout = stack.layout(Layout::new(&SYSV, REGS));
4898 let frame = Frame::of(&out, &allocation, &layout);
4899 finish(&mut out, &allocation, &frame, &stack, Convention::new(&SYSV, &FRAME), &mut names);
4900
4901 // A local wanting thirty two byte alignment makes the prologue force the stack pointer,
4902 // which throws away how far the caller's stack was. So the load the lowering wrote off the
4903 // stack pointer is rewritten to read through the frame pointer, at the one distance that
4904 // survives: the word the prologue pushed the frame pointer into, and the return address
4905 // above it.
4906 let text = mir::print_func(&out, &names, ®S);
4907 assert_eq!(frame.realign(), Some(32));
4908 assert_eq!(frame.incoming(), Incoming::from_frame(16));
4909 assert!(text.contains("x64.mov_rm_64 [$rbp + 16]"), "{text}");
4910 assert!(!text.contains("x64.mov_rm_64 [$rsp"), "{text}");
4911 }
4912
4913 #[test]
4914 fn a_jump_is_the_edge_and_nothing_else() {
4915 let i32 = Type::int(32);
4916 let (mut names, mut source, entry, args) = blank(&[i32]);
4917 let next = source.create_block();
4918 let got = source.append_param(next, i32);
4919 Builder::new(&mut source, entry).jump(next, &[args[0]]);
4920 Builder::new(&mut source, next).ret(&[got]);
4921
4922 // Two blocks and two instructions, and the jump is neither of them. What it was is the
4923 // arm on the first block, and what the arm carries is the argument it was called with.
4924 assert_eq!(
4925 lower(&mut names, &source),
4926 "mfunc @f {\nblock0:\n %0:gpr($rdi) = x64.arg_val_32 block1(%0)\n\n\
4927 block1(%1:gpr):\n x64.ret_val_32 %1($rax)\n}\n"
4928 );
4929 }
4930
4931 /// A block that reads what a block below it writes is filled after it, not before it.
4932 ///
4933 /// The blocks are written entry, `early`, `late`, `exit`, and the entry jumps straight past
4934 /// `early` to `late`, so `late` dominates `early` while sitting below it in the function.
4935 /// Filling them in the order they are written reaches the read in `early` first, and reading
4936 /// a value with no register yet mints one. The cast in `late` is no instruction at all, so
4937 /// what it does is give its answer the register its operand is already in, and that is not
4938 /// the register the read minted. Nothing writes the register the read minted. The printer
4939 /// says `%?` for a register nothing defines, which is what this looks for, and what came out
4940 /// of the real bug was SQLite loading a stack slot no store ever reached.
4941 #[test]
4942 fn a_block_that_reads_what_a_block_below_it_writes_is_filled_after_it() {
4943 let i64 = Type::int(64);
4944 let (mut names, mut source, entry, args) = blank(&[i64, i64]);
4945 let early = source.create_block();
4946 let late = source.create_block();
4947 let exit = source.create_block();
4948
4949 Builder::new(&mut source, entry).jump(late, &[]);
4950 let ptr = cast(&mut source, late, Opcode::IntToPtr, args[0], Type::PTR);
4951 Builder::new(&mut source, early).ret(&[ptr]);
4952 let mut build = Builder::new(&mut source, late);
4953 let cond = build.icmp(rucc_ir::IntPred::Slt, args[0], args[1]);
4954 build.br_if(cond, early, &[], exit, &[]);
4955 Builder::new(&mut source, exit).ret(&[args[1]]);
4956
4957 let text = lower(&mut names, &source);
4958 assert!(!text.contains("%?"), "every register has something that writes it: {text}");
4959 }
4960
4961 /// A constant is written where it is wanted rather than where the IR defined it, and two
4962 /// blocks wanting the same one is two places. Writing it once and reading it in both is a
4963 /// register read where nothing wrote it, unless the block it was written in happens to
4964 /// dominate the other, which nothing here checks and which the second arm of a branch never
4965 /// does. Each block gets its own copy of the number instead.
4966 #[test]
4967 fn a_constant_two_blocks_want_is_written_in_both_of_them() {
4968 let i32 = Type::int(32);
4969 let (mut names, mut source, entry, args) = blank(&[i32, i32]);
4970 let then = source.create_block();
4971 let other = source.create_block();
4972 let join = source.create_block();
4973 let got = source.append_param(join, i32);
4974
4975 let mut build = Builder::new(&mut source, entry);
4976 let seven = build.iconst(i32, 7);
4977 let cond = build.icmp(rucc_ir::IntPred::Slt, args[0], args[1]);
4978 build.br_if(cond, then, &[], other, &[]);
4979 // Both arms want the seven in a register, because a block argument is never an immediate,
4980 // and neither arm dominates the other.
4981 Builder::new(&mut source, then).jump(join, &[seven]);
4982 Builder::new(&mut source, other).jump(join, &[seven]);
4983 Builder::new(&mut source, join).ret(&[got]);
4984
4985 let text = lower(&mut names, &source);
4986 assert_eq!(text.matches("x64.mov_ri_32 7").count(), 2, "one seven per block: {text}");
4987 }
4988
4989 /// An argument on an edge out of a block that leaves two ways is read after every instruction
4990 /// of the block is written, and reading one can write an instruction, which would land after
4991 /// the branch that has already jumped past it. The branch goes back on the end.
4992 #[test]
4993 fn a_constant_an_edge_wants_is_written_before_the_branch_and_not_after_it() {
4994 let i32 = Type::int(32);
4995 let (mut names, mut source, entry, args) = blank(&[i32, i32]);
4996 let then = source.create_block();
4997 let join = source.create_block();
4998 let got = source.append_param(join, i32);
4999
5000 let mut build = Builder::new(&mut source, entry);
5001 let nine = build.iconst(i32, 9);
5002 let cond = build.icmp(rucc_ir::IntPred::Slt, args[0], args[1]);
5003 build.br_if(cond, then, &[], join, &[nine]);
5004 Builder::new(&mut source, then).jump(join, &[args[0]]);
5005 Builder::new(&mut source, join).ret(&[got]);
5006
5007 let out = func(&source, &mut names, &SYSV, &Elsewhere::default())
5008 .expect("every instruction has a rule")
5009 .func;
5010 let entry = out.entry().expect("an entry block");
5011 let last = out.terminator(entry).expect("a block that leaves two ways has a branch");
5012 let branch = names.intern("x64.br_cond_8");
5013 assert_eq!(
5014 out[last].opcode,
5015 mir::Opcode::new(branch),
5016 "the branch is last: {}",
5017 mir::print_func(&out, &names, ®S)
5018 );
5019 }
5020
5021 #[test]
5022 fn a_conditional_branch_is_lowered_to_the_condition_and_nothing_about_where_it_goes() {
5023 let i32 = Type::int(32);
5024 let (mut names, mut source, entry, args) = blank(&[i32, i32]);
5025 let then = source.create_block();
5026 let other = source.create_block();
5027 let mut build = Builder::new(&mut source, entry);
5028 let cond = build.icmp(rucc_ir::IntPred::Slt, args[0], args[1]);
5029 build.br_if(cond, then, &[], other, &[]);
5030 Builder::new(&mut source, then).ret(&[args[0]]);
5031 Builder::new(&mut source, other).ret(&[args[1]]);
5032
5033 // The comparison writes a byte and the branch reads it, and neither says a block. Both
5034 // arms are on the entry block, in the order the branch took them, so the arm that runs
5035 // when the condition holds is the first.
5036 assert_eq!(
5037 lower(&mut names, &source),
5038 "mfunc @f {\nblock0:\n %0:gpr($rdi) = x64.arg_val_32\n \
5039 %1:gpr($rsi) = x64.arg_val_32\n %2:gpr = x64.cmp_set_l_32 %0, %1\n \
5040 x64.br_cond_8 %2, block1, block2\n\n\
5041 block1:\n x64.ret_val_32 %0($rax)\n\n\
5042 block2:\n x64.ret_val_32 %1($rax)\n}\n"
5043 );
5044 }
5045
5046 /// A choice between two values, which is one instruction and no blocks at all.
5047 ///
5048 /// The arms come out the other way round from the IR, because a conditional move overwrites its
5049 /// destination and the destination is the arm taken when the condition does not hold. The
5050 /// condition arrives last for the same reason: it is read by the test in front of the move
5051 /// rather than by the move.
5052 #[test]
5053 fn a_select_is_lowered_to_a_test_and_a_conditional_move() {
5054 let i32 = Type::int(32);
5055 let (mut names, mut source, entry, args) = blank(&[i32, i32]);
5056 let mut build = Builder::new(&mut source, entry);
5057 let cond = build.icmp(rucc_ir::IntPred::Slt, args[0], args[1]);
5058 let picked = build.select(cond, args[0], args[1]);
5059 build.ret(&[picked]);
5060
5061 assert_eq!(
5062 lower(&mut names, &source),
5063 "mfunc @f {\nblock0:\n %0:gpr($rdi) = x64.arg_val_32\n \
5064 %1:gpr($rsi) = x64.arg_val_32\n %2:gpr = x64.cmp_set_l_32 %0, %1\n \
5065 %3:gpr(reuse 1) = x64.test_cmov_ne_32 %1, %0, %2\n \
5066 x64.ret_val_32 %3($rax)\n}\n"
5067 );
5068 }
5069
5070 #[test]
5071 fn a_branch_over_a_block_is_a_whole_function_now() {
5072 let i32 = Type::int(32);
5073 let (mut names, mut source, entry, args) = blank(&[i32, i32]);
5074 let then = source.create_block();
5075 let other = source.create_block();
5076 let join = source.create_block();
5077 let got = source.append_param(join, i32);
5078 let mut build = Builder::new(&mut source, entry);
5079 let cond = build.icmp(rucc_ir::IntPred::Slt, args[0], args[1]);
5080 build.br_if(cond, then, &[], other, &[]);
5081 let mut build = Builder::new(&mut source, then);
5082 let sum = build.binary(Opcode::Add, args[0], args[1], Flags::default());
5083 build.jump(join, &[sum]);
5084 Builder::new(&mut source, other).jump(join, &[args[1]]);
5085 Builder::new(&mut source, join).ret(&[got]);
5086
5087 // `int f(int a, int b) { if (a < b) return a + b; else return b; }` end to end, written
5088 // the way a front end writes it: both arms of the branch are blocks of their own and the
5089 // return is the block they meet at. No edge here is critical, because the two arms out of
5090 // the entry carry nothing and the two arms into the join each leave a block that goes
5091 // nowhere else, so each has its own end to put its move at.
5092 let mut out = func(&source, &mut names, &SYSV, &Elsewhere::default())
5093 .expect("every instruction has a rule")
5094 .func;
5095 assert_eq!(crate::split::critical(&mut out), 0, "no edge here is critical");
5096 let env = env();
5097 let allocation = rucc_regalloc::run(&mut out, &env, "test", true);
5098 let frame = Frame::of(&out, &allocation, &Layout::new(&SYSV, REGS));
5099 finish(
5100 &mut out,
5101 &allocation,
5102 &frame,
5103 &Stack::default(),
5104 Convention::new(&SYSV, &FRAME),
5105 &mut names,
5106 );
5107
5108 // One epilogue, on the join, which is the one block the function leaves from, and the
5109 // moves that give the join its parameter are at the end of each arm. Every register is
5110 // physical and the branch is still a branch on a register, because turning it into a
5111 // `test` and a `jcc` is the block layout's and there is no block layout yet.
5112 let text = mir::print_func(&out, &names, ®S);
5113 assert_eq!(text.matches("x64.ret\n").count(), 1, "{text}");
5114 assert!(text.contains("x64.br_cond_8"), "{text}");
5115 assert!(text.contains("x64.add_rr_32"), "{text}");
5116 assert!(!text.contains('%'), "{text}");
5117 }
5118
5119 #[test]
5120 fn a_critical_edge_is_split_before_the_allocator_ever_sees_it() {
5121 let i32 = Type::int(32);
5122 let (mut names, mut source, entry, args) = blank(&[i32, i32]);
5123 let then = source.create_block();
5124 let join = source.create_block();
5125 let got = source.append_param(join, i32);
5126 let mut build = Builder::new(&mut source, entry);
5127 let cond = build.icmp(rucc_ir::IntPred::Slt, args[0], args[1]);
5128 build.br_if(cond, then, &[], join, &[args[1]]);
5129 Builder::new(&mut source, then).jump(join, &[args[0]]);
5130 let mut build = Builder::new(&mut source, join);
5131 let twice = build.binary(Opcode::Add, got, got, Flags::default());
5132 build.ret(&[twice]);
5133
5134 // The else arm is critical: the entry block leaves two ways and the join is arrived at
5135 // two ways, and the arm carries a value. Without splitting it the allocator asserts,
5136 // because the move that gives the join its parameter would have to run at the end of a
5137 // block that also goes to the other arm.
5138 let mut out = func(&source, &mut names, &SYSV, &Elsewhere::default())
5139 .expect("every instruction has a rule")
5140 .func;
5141 assert_eq!(crate::split::critical(&mut out), 1);
5142 let env = env();
5143 let allocation = rucc_regalloc::run(&mut out, &env, "test", true);
5144 let frame = Frame::of(&out, &allocation, &Layout::new(&SYSV, REGS));
5145 finish(
5146 &mut out,
5147 &allocation,
5148 &frame,
5149 &Stack::default(),
5150 Convention::new(&SYSV, &FRAME),
5151 &mut names,
5152 );
5153
5154 // The block the split added is where the move went, and it is the whole of that block.
5155 let text = mir::print_func(&out, &names, ®S);
5156 assert_eq!(out.block_count(), 4, "{text}");
5157 assert_eq!(text.matches("x64.ret\n").count(), 1, "{text}");
5158 }
5159
5160 #[test]
5161 fn a_call_passes_what_the_convention_says_and_takes_back_what_it_says() {
5162 let i32 = Type::int(32);
5163 let (mut names, mut source, block, args) = blank(&[i32, i32]);
5164 let sig =
5165 source.add_signature(Signature::new().with_params(&[i32, i32]).with_returns(&[i32]));
5166 let callee = names.intern("g");
5167 let call = Builder::new(&mut source, block).call(callee, sig, &[args[0], args[1]]);
5168 let got = source[call].first_result.expect("an integer comes back");
5169 Builder::new(&mut source, block).ret(&[got]);
5170
5171 // `int f(int a, int b) { return g(a, b); }`. The arguments arrived where the call wants
5172 // them, so what the call reads is what arrived, and the whole of the convention is in the
5173 // constraints rather than in a move.
5174 let text = lower(&mut names, &source);
5175 assert!(text.contains("= x64.call %0($rdi), %1($rsi), @g"), "{text}");
5176 assert!(text.contains("x64.ret_val_32 %2($rax)"), "{text}");
5177 // What the call writes is the value that comes back and then every register the callee is
5178 // free to destroy, in both classes, which is the whole of what stops the allocator from
5179 // leaving something in one of them.
5180 assert!(text.contains("%2:gpr($rax), $rcx, $rdx, $r8, $r9, $r10, $r11, $xmm0,"), "{text}");
5181 assert!(text.contains("$xmm15 = x64.call"), "{text}");
5182 }
5183
5184 #[test]
5185 fn what_the_frame_owes_a_call_comes_back_with_the_function() {
5186 let i32 = Type::int(32);
5187 let sig = |source: &mut Func| source.add_signature(Signature::new().with_params(&[i32]));
5188
5189 let (mut names, mut source, block, args) = blank(&[i32]);
5190 let sig = sig(&mut source);
5191 let callee = names.intern("g");
5192 Builder::new(&mut source, block).call(callee, sig, &[args[0]]);
5193 let out = func(&source, &mut names, &SYSV, &Elsewhere::default())
5194 .expect("every instruction has a rule");
5195
5196 // Nothing on the stack, so nothing owed, but not a leaf either: a function that calls
5197 // owes the callee an aligned stack pointer and may not use the red zone.
5198 assert_eq!(out.stack.calls, Some(0));
5199 let layout = out.stack.layout(Layout::new(&SYSV, REGS));
5200 assert!(!layout.leaf);
5201 assert_eq!(layout.outgoing, 0);
5202
5203 // The same call under the other convention owes thirty two bytes for the callee to spill
5204 // its register arguments into, which is a fact about the convention and not about the call.
5205 let out = func(&source, &mut names, &x86_64::WIN64, &Elsewhere::default())
5206 .expect("every instruction has a rule");
5207 assert_eq!(out.stack.calls, Some(32));
5208
5209 // And a function that calls nothing is a leaf, which is what says it may use the red zone.
5210 let (mut names, mut source, block, args) = blank(&[i32]);
5211 Builder::new(&mut source, block).ret(&[args[0]]);
5212 let out = func(&source, &mut names, &SYSV, &Elsewhere::default())
5213 .expect("every instruction has a rule");
5214 assert_eq!(out.stack.calls, None);
5215 assert!(out.stack.layout(Layout::new(&SYSV, REGS)).leaf);
5216 }
5217
5218 /// A Windows variadic prologue writes the argument registers the signature did not name into
5219 /// the shadow space the caller already reserved, which makes every argument one run of words up
5220 /// there and a `va_start` the address of the first of them. One `lea` and one store, and no
5221 /// counts, because a list that is a pointer has nowhere to put one and nothing that reads one.
5222 #[test]
5223 fn a_windows_variadic_function_homes_its_spare_registers_in_the_callers_area() {
5224 let mut names = Interner::new();
5225 let params = [Type::int(32), Type::PTR];
5226 let signature = Signature::new().with_params(¶ms).variadic();
5227 let mut source = Func::new(names.intern("f"), signature);
5228 let block = source.create_block();
5229 let values: Vec<Value> = params.iter().map(|&ty| source.append_param(block, ty)).collect();
5230 let mut build = Builder::new(&mut source, block);
5231 let args = build.func().push_values(&values[1..]);
5232 build.inst(InstData { args, ..InstData::new(Opcode::VaStart) }, &[]);
5233 build.ret(&[]);
5234
5235 let out = func(&source, &mut names, &x86_64::WIN64, &Elsewhere::default())
5236 .expect("every instruction has a rule");
5237 let text = mir::print_func(&out.func, &names, ®S);
5238
5239 // Two named parameters, so the registers at the next two positions hold arguments nobody
5240 // named and both are written up into the caller's area. The displacement is empty here and
5241 // `finish` fills it in, the same way it does for a parameter the registers ran out before.
5242 assert!(text.contains("($r8) = x64.arg_val_64"), "{text}");
5243 assert!(text.contains("($r9) = x64.arg_val_64"), "{text}");
5244 assert_eq!(text.matches("x64.mov_mr_64").count(), 3, "two homed and one stored: {text}");
5245 assert!(!text.contains("x64.mov_ri_32"), "and no field holds a count: {text}");
5246
5247 // All three waiting on the same fixup, and the last of them is the `lea` the list is given,
5248 // sixteen bytes up, which is where the two arguments the signature does name stopped.
5249 assert_eq!(out.stack.arguments.len(), 3);
5250 assert_eq!(out.stack.arguments[2].1, 16);
5251 }
5252
5253 #[test]
5254 fn a_value_that_outlives_a_call_is_not_left_where_the_call_destroys_it() {
5255 let i32 = Type::int(32);
5256 let (mut names, mut source, block, args) = blank(&[i32]);
5257 let sig = source.add_signature(Signature::new().with_params(&[i32]).with_returns(&[i32]));
5258 let callee = names.intern("g");
5259 let call = Builder::new(&mut source, block).call(callee, sig, &[args[0]]);
5260 let got = source[call].first_result.expect("an integer comes back");
5261 let mut build = Builder::new(&mut source, block);
5262 let sum = build.binary(Opcode::Add, got, args[0], Flags::default());
5263 build.ret(&[sum]);
5264
5265 // `int f(int a) { return g(a) + a; }`, which is the smallest program that asks the
5266 // question: `a` is read after the call and `rdi` is a register the call destroys.
5267 let lowered = func(&source, &mut names, &SYSV, &Elsewhere::default())
5268 .expect("every instruction has a rule");
5269 let layout = lowered.stack.layout(Layout::new(&SYSV, REGS));
5270 let mut out = lowered.func;
5271 let env = env();
5272 let allocation = rucc_regalloc::run(&mut out, &env, "test", true);
5273 let frame = Frame::of(&out, &allocation, &layout);
5274 finish(
5275 &mut out,
5276 &allocation,
5277 &frame,
5278 &Stack::default(),
5279 Convention::new(&SYSV, &FRAME),
5280 &mut names,
5281 );
5282
5283 // It went to a register the callee has to put back, and the prologue and epilogue are what
5284 // put it back, which is the whole bargain the two halves of a convention make.
5285 let text = mir::print_func(&out, &names, ®S);
5286 assert!(text.contains("$rbx"), "{text}");
5287 assert!(!text.contains('%'), "{text}");
5288 assert_eq!(text.matches("x64.call").count(), 1, "{text}");
5289 }
5290
5291 #[test]
5292 fn a_call_with_more_arguments_than_registers_writes_the_rest_into_the_outgoing_area() {
5293 let i64 = Type::int(64);
5294 let (mut names, mut source, block, args) = blank(&[i64]);
5295 let seven = vec![i64; 7];
5296 let sig = source.add_signature(Signature::new().with_params(&seven));
5297 let callee = names.intern("g");
5298 let passed = vec![args[0]; 7];
5299 Builder::new(&mut source, block).call(callee, sig, &passed);
5300
5301 let lowered = func(&source, &mut names, &SYSV, &Elsewhere::default())
5302 .expect("the seventh goes to memory");
5303 // The bytes the call needs are on the layout the frame is worked out from, so that the
5304 // frame reserves as many as the widest call in the function asked for.
5305 assert_eq!(lowered.stack.calls, Some(8));
5306 let text = mir::print_func(&lowered.func, &names, ®S);
5307 assert!(text.contains("x64.mov_mr_64 %0, [$rsp]\n"), "{text}");
5308 }
5309
5310 #[test]
5311 fn a_call_this_cannot_make_is_reported_rather_than_made() {
5312 let (mut names, mut source, block, _) = blank(&[]);
5313 let returns = [Type::float(rucc_ir::Float::F80), Type::int(64)];
5314 let sig = source.add_signature(Signature::new().with_returns(&returns));
5315 let callee = names.intern("g");
5316 Builder::new(&mut source, block).call(callee, sig, &[]);
5317 let failed = func(&source, &mut names, &SYSV, &Elsewhere::default())
5318 .expect_err("a long double is on the x87");
5319 assert_eq!(failed.to_string(), "what this call gives back is on the x87 stack");
5320 }
5321
5322 /// A `long double` on its own is a different answer, because on its own it comes back on the
5323 /// x87 stack rather than in a register, which is somewhere the call cannot be said to write.
5324 ///
5325 /// So the call gives back nothing at all and the value is taken off the stack by the `fstp`
5326 /// straight after it. That instruction has to be straight after it: the stack is one place and
5327 /// anything else that touched it before this ran would be looking at the value still on it.
5328 #[test]
5329 fn a_call_that_gives_back_a_long_double_takes_it_off_the_stack_at_once() {
5330 let (mut names, mut source, block, _) = blank(&[]);
5331 let long_double = Type::float(rucc_ir::Float::F80);
5332 let sig = source.add_signature(Signature::new().with_returns(&[long_double]));
5333 let callee = names.intern("g");
5334 Builder::new(&mut source, block).call(callee, sig, &[]);
5335
5336 let lowered = func(&source, &mut names, &SYSV, &Elsewhere::default())
5337 .expect("the value comes back in st0");
5338 let text = mir::print_func(&lowered.func, &names, ®S);
5339 let after: Vec<&str> =
5340 text.lines().skip_while(|line| !line.contains("x64.call")).skip(1).collect();
5341 assert_eq!(after[0].trim(), "%0:gpr = x64.lea_64 [$rsp]", "{text}");
5342 assert_eq!(after[1].trim(), "x64.fstp_t [%0]", "{text}");
5343 // And the slot it went into is the sixteen bytes the type takes, like every other one.
5344 assert_eq!(lowered.stack.locals.len(), 1, "{text}");
5345 assert_eq!(lowered.stack.locals[0].size, X87_BYTES);
5346 }
5347
5348 #[test]
5349 fn a_call_through_an_address_goes_through_the_register_the_address_is_in() {
5350 let i32 = Type::int(32);
5351 let (mut names, mut source, block, args) = blank(&[Type::PTR, i32]);
5352 let sig = source.add_signature(Signature::new().with_params(&[i32]).with_returns(&[i32]));
5353 let varargs = source.push_abis(&[]);
5354 let info = source.add_call(CallInfo { callee: None, signature: sig, varargs });
5355 let mut build = Builder::new(&mut source, block);
5356 let inst = InstData {
5357 args: build.func().push_values(&[args[0], args[1]]),
5358 extra: Extra::Call(info),
5359 ..InstData::new(Opcode::CallIndirect)
5360 };
5361 let called = build.inst(inst, &[i32]);
5362 let got = source[called].first_result.expect("an integer comes back");
5363 Builder::new(&mut source, block).ret(&[got]);
5364
5365 // `int f(int (*g)(int), int a) { return g(a); }`. The first operand is the address and
5366 // the arguments are the ones behind it, and everything else about the call is what a call
5367 // to a name would have been.
5368 let text = lower(&mut names, &source);
5369 assert!(text.contains("= x64.call_reg %0, %1($rdi)"), "{text}");
5370 assert!(text.contains("x64.ret_val_32 %2($rax)"), "{text}");
5371 assert!(!text.contains("@g"), "a call through an address names nobody: {text}");
5372 }
5373
5374 #[test]
5375 fn an_instruction_no_rule_covers_is_reported() {
5376 let (mut names, mut source, block, args) = blank(&[Type::PTR]);
5377 let mut build = Builder::new(&mut source, block);
5378 let operands = build.func().push_values(&[args[0]]);
5379 build.inst(InstData { args: operands, ..InstData::new(Opcode::MetaBegin) }, &[]);
5380
5381 // The mark that an object has come into being, which nothing writes an instruction for
5382 // yet: what it needs is a write over a range of the lifetime plane, and that is
5383 // `tamnd/rucc#856`. Nothing about it is a width or a register, so there is nothing for the
5384 // message to add beyond the name.
5385 let failed = func(&source, &mut names, &SYSV, &Elsewhere::default())
5386 .expect_err("no rule writes the beginning of a lifetime");
5387 assert_eq!(failed.to_string(), "no rule lowers a `meta_begin`");
5388
5389 // It produces nothing, so there is no type in the message and nothing invents one, and the
5390 // instruction comes back so a caller can ask the function where it was.
5391 let inst = failed.inst().expect("the instruction it is about");
5392 assert_eq!(source[inst].opcode, Opcode::MetaBegin);
5393 }
5394
5395 /// A barrier is written by name here, and what it is depends on the ordering and on nothing
5396 /// else. `crate::expand` is where the reasoning about this machine's memory model lives.
5397 #[test]
5398 fn a_barrier_is_one_instruction_at_the_strongest_ordering_and_none_below_it() {
5399 for order in MemOrder::all().filter(|&order| order != MemOrder::NotAtomic) {
5400 let (mut names, mut source, block, _) = blank(&[]);
5401 let mut build = Builder::new(&mut source, block);
5402 build
5403 .inst(InstData { extra: Extra::Order(order), ..InstData::new(Opcode::Fence) }, &[]);
5404
5405 let text = lower(&mut names, &source);
5406 assert_eq!(text.contains("x64.mfence"), order == MemOrder::SeqCst, "{order:?}: {text}");
5407 }
5408 }
5409
5410 /// A compare and exchange is written by name too, and at the width of the value rather than at
5411 /// the width of the address, which is the mistake worth pinning: everything here is a pointer
5412 /// and only the value says how many bytes the instruction touches.
5413 #[test]
5414 fn a_compare_and_exchange_is_one_instruction_at_the_width_of_the_value() {
5415 for bits in [8, 16, 32, 64] {
5416 let ty = Type::int(bits);
5417 let (mut names, mut source, block, args) = blank(&[Type::PTR, ty, ty]);
5418 let mut build = Builder::new(&mut source, block);
5419 let mem = build.func().add_mem(MemInfo {
5420 size: u64::from(bits / 8),
5421 align: bits / 8,
5422 order: MemOrder::SeqCst,
5423 ..plain()
5424 });
5425 let operands = build.func().push_values(&[args[0], args[1], args[2]]);
5426 build.inst(
5427 InstData {
5428 args: operands,
5429 extra: Extra::Mem(mem),
5430 ..InstData::new(Opcode::Cmpxchg)
5431 },
5432 &[ty, Type::I1],
5433 );
5434
5435 // Two values out of one instruction, the first of them in the register the machine
5436 // reads the expected value out of, the second free for the allocator to place. The
5437 // address is the memory operand and neither of the two values is.
5438 let text = lower(&mut names, &source);
5439 let written = format!("%3:gpr($rax), %4:gpr = x64.cmpxchg_{bits} %1($rax), %2, [%0]");
5440 assert!(text.contains(&written), "{bits}: {text}");
5441 }
5442 }
5443
5444 #[test]
5445 fn more_values_back_than_the_convention_has_registers_for_is_reported() {
5446 let i64 = Type::int(64);
5447 let (mut names, mut source, block, args) = blank(&[i64, i64, i64]);
5448 let mut build = Builder::new(&mut source, block);
5449 build.ret(&[args[0], args[1], args[2]]);
5450
5451 // Two integers come back in `rax` and `rdx` and a third has nowhere to go, which is not a
5452 // gap in the rules but the convention saying no. The front end classifies before it gets
5453 // here, so this is the shape that would mean the classification went wrong.
5454 let failed = func(&source, &mut names, &SYSV, &Elsewhere::default())
5455 .expect_err("only two come back");
5456 assert_eq!(
5457 failed.to_string(),
5458 "what this function gives back takes more registers than this convention has for it"
5459 );
5460
5461 let inst = failed.inst().expect("the instruction it is about");
5462 assert_eq!(source[inst].opcode, Opcode::Return);
5463 }
5464
5465 /// A refusal about a signature has no instruction, which is what makes it the one arm apart.
5466 ///
5467 /// Everything else is about something written somewhere in the body and hands it back so a
5468 /// caller can ask the function where it came from. A parameter arrives before the first
5469 /// instruction runs, so there is nothing in the body to point at and the message is about
5470 /// the function.
5471 #[test]
5472 fn a_refusal_about_a_parameter_has_no_instruction_to_point_at() {
5473 let missing = Unsupported::Argument { index: 0, missing: Missing::OnX87 };
5474 assert_eq!(missing.inst(), None);
5475 }
5476
5477 /// An `alloca` of a fixed size, which is what every local whose address is taken becomes.
5478 fn slot(source: &mut Func, block: Block, size: u64, align: u32) -> Value {
5479 let info = MemInfo { size, align, ..plain() };
5480 let mut build = Builder::new(source, block);
5481 let mem = build.func().add_mem(info);
5482 build.value(InstData { extra: Extra::Mem(mem), ..InstData::new(Opcode::Alloca) }, Type::PTR)
5483 }
5484
5485 #[test]
5486 fn a_local_is_memory_in_the_frame_and_one_instruction_that_says_where() {
5487 let (mut names, mut source, block, _) = blank(&[]);
5488 let slot = slot(&mut source, block, 4, 4);
5489 let mut build = Builder::new(&mut source, block);
5490 let nine = build.iconst(Type::int(32), 9);
5491 build.store(nine, slot, plain(), Flags::default());
5492 let loaded = build.load(Type::int(32), slot, plain(), Flags::default());
5493 build.ret(&[loaded]);
5494
5495 let lowered = func(&source, &mut names, &SYSV, &Elsewhere::default())
5496 .expect("every instruction has a rule");
5497
5498 // Four bytes on the list the frame is laid out from, and the one instruction that reads
5499 // where they went. Its displacement is nothing here because there is no frame yet, and
5500 // which instruction is waiting for which local is what `finish` is handed.
5501 assert_eq!(lowered.stack.locals, vec![Local { size: 4, align: 4 }]);
5502 assert_eq!(lowered.stack.addresses.len(), 1);
5503 assert_eq!(lowered.stack.addresses[0].1, 0);
5504 assert_eq!(
5505 mir::print_func(&lowered.func, &names, ®S),
5506 "mfunc @f {\nblock0:\n %0:gpr = x64.lea_64 [$rsp]\n \
5507 %1:gpr = x64.mov_ri_32 9\n x64.mov_mr_32 %1, [%0]\n \
5508 %2:gpr = x64.mov_rm_32 [%0]\n x64.ret_val_32 %2($rax)\n}\n"
5509 );
5510 }
5511
5512 #[test]
5513 fn the_frame_is_what_fills_the_address_of_a_local_in() {
5514 let (mut names, mut source, block, _) = blank(&[]);
5515 let slot = slot(&mut source, block, 4, 4);
5516 let mut build = Builder::new(&mut source, block);
5517 let nine = build.iconst(Type::int(32), 9);
5518 build.store(nine, slot, plain(), Flags::default());
5519 let loaded = build.load(Type::int(32), slot, plain(), Flags::default());
5520 build.ret(&[loaded]);
5521
5522 let lowered = func(&source, &mut names, &SYSV, &Elsewhere::default())
5523 .expect("every instruction has a rule");
5524 let stack = lowered.stack;
5525 let mut out = lowered.func;
5526 let env = env();
5527 let allocation = rucc_regalloc::run(&mut out, &env, "test", true);
5528 let layout = stack.layout(Layout::new(&SYSV, REGS));
5529 let frame = Frame::of(&out, &allocation, &layout);
5530 finish(&mut out, &allocation, &frame, &stack, Convention::new(&SYSV, &FRAME), &mut names);
5531
5532 // `int f(void) { int x; x = 9; return x; }` with the address of `x` taken, end to end.
5533 // A leaf small enough to live in the red zone takes no frame at all, so the stack pointer
5534 // never moves and the four bytes are below it, which is what the negative offset is. The
5535 // instruction the lowering left with nothing in its displacement now has the answer in it.
5536 let text = mir::print_func(&out, &names, ®S);
5537 assert!(text.contains("$rax = x64.lea_64 [$rsp - 8]"), "{text}");
5538 assert!(!text.contains("x64.sub_ri_64"), "{text}");
5539 assert_eq!(frame.size(), 0);
5540 assert_eq!(frame.local(0), Some(-8));
5541 }
5542
5543 /// An `alloca` whose size is an operand, which is a variable length array.
5544 fn growing(source: &mut Func, block: Block, size: Value, align: u32) -> Value {
5545 let info = MemInfo { size: 0, align, ..plain() };
5546 let mut build = Builder::new(source, block);
5547 let mem = build.func().add_mem(info);
5548 let args = build.func().push_values(&[size]);
5549 build.value(
5550 InstData { args, extra: Extra::Mem(mem), ..InstData::new(Opcode::Alloca) },
5551 Type::PTR,
5552 )
5553 }
5554
5555 #[test]
5556 fn a_stack_slot_whose_size_is_not_known_until_it_runs_takes_the_bytes_off_the_stack_pointer() {
5557 let (mut names, mut source, block, args) = blank(&[Type::int(64)]);
5558 let slot = growing(&mut source, block, args[0], 16);
5559 Builder::new(&mut source, block).ret(&[slot]);
5560
5561 let lowered = func(&source, &mut names, &SYSV, &Elsewhere::default())
5562 .expect("every instruction has a rule");
5563
5564 // The bytes come off the stack pointer where the declaration stands and the address is
5565 // where the stack pointer then is, which is one subtraction and one `lea` rather than a
5566 // slot the frame laid out. Nothing is on the list of locals, because there is nothing
5567 // about this the frame could place.
5568 let text = mir::print_func(&lowered.func, &names, ®S);
5569 assert!(text.contains("$rsp = x64.sub_rr_64 $rsp, %0"), "{text}");
5570 assert!(text.contains("x64.lea_64 [$rsp]"), "{text}");
5571 assert!(lowered.stack.locals.is_empty(), "{text}");
5572 assert_eq!(lowered.stack.dynamic.len(), 1);
5573 assert!(lowered.stack.grown_at.is_some());
5574 }
5575
5576 #[test]
5577 fn a_growing_slot_wanting_more_alignment_than_the_stack_pointer_has_is_reported() {
5578 let (mut names, mut source, block, args) = blank(&[Type::int(64)]);
5579 let slot = growing(&mut source, block, args[0], 32);
5580 Builder::new(&mut source, block).ret(&[slot]);
5581
5582 // Thirty two is more than a call leaves the stack pointer on, so giving it what it asked
5583 // for means masking the stack pointer after moving it, and after that no constant reaches
5584 // the rest of the frame from the frame pointer either. A second pointer held for the
5585 // purpose is what fixes it and there is not one yet.
5586 let failed = func(&source, &mut names, &SYSV, &Elsewhere::default())
5587 .expect_err("nothing realigns a frame that grows");
5588 assert_eq!(
5589 failed.to_string(),
5590 "this local wants more alignment than the stack pointer is left on, which needs a \
5591 base register nothing here keeps"
5592 );
5593 }
5594
5595 #[test]
5596 fn a_frame_that_grows_reaches_its_own_locals_through_the_frame_pointer() {
5597 let (mut names, mut source, block, args) = blank(&[Type::int(64)]);
5598 let fixed = slot(&mut source, block, 4, 4);
5599 let mut build = Builder::new(&mut source, block);
5600 let nine = build.iconst(Type::int(32), 9);
5601 build.store(nine, fixed, plain(), Flags::default());
5602 let grown = growing(&mut source, block, args[0], 16);
5603 Builder::new(&mut source, block).ret(&[grown]);
5604
5605 let lowered = func(&source, &mut names, &SYSV, &Elsewhere::default())
5606 .expect("every instruction has a rule");
5607 let stack = lowered.stack;
5608 let mut out = lowered.func;
5609 let env = env();
5610 let allocation = rucc_regalloc::run(&mut out, &env, "test", true);
5611 let layout = stack.layout(Layout::new(&SYSV, REGS));
5612 let frame = Frame::of(&out, &allocation, &layout);
5613 finish(&mut out, &allocation, &frame, &stack, Convention::new(&SYSV, &FRAME), &mut names);
5614
5615 // The stack pointer moves in the middle of the function, so the four bytes of the fixed
5616 // local are not a constant away from it any more and the frame pointer is what reaches
5617 // them. The frame keeps one whatever the flags asked for, takes its bytes rather than
5618 // living in the red zone, and the address of the growing slot is off the stack pointer as
5619 // it stands after the subtraction rather than off anything the prologue left.
5620 let text = mir::print_func(&out, &names, ®S);
5621 assert!(frame.grows());
5622 assert!(frame.frame_pointer());
5623 assert!(frame.size() > 0, "{text}");
5624 assert!(text.contains("x64.lea_64 [$rbp"), "{text}");
5625 assert!(text.contains("$rsp = x64.sub_rr_64 $rsp"), "{text}");
5626 assert!(text.contains("x64.lea_64 [$rsp]"), "{text}");
5627 }
5628
5629 #[test]
5630 fn an_address_is_read_written_and_added_to_like_the_integer_it_is() {
5631 let (mut names, mut source, block, args) = blank(&[Type::PTR, Type::int(64)]);
5632 let mut build = Builder::new(&mut source, block);
5633 let stepped = build.func().push_values(&[args[0], args[1]]);
5634 let next =
5635 build.value(InstData { args: stepped, ..InstData::new(Opcode::PtrAdd) }, Type::PTR);
5636 let loaded = build.load(Type::int(32), next, plain(), Flags::default());
5637 build.ret(&[loaded]);
5638
5639 // `int f(int *p, long i) { return *(int *)((char *)p + i); }`. Nothing about this is new
5640 // in the rule set, which is the point: the two addresses arrive in registers because an
5641 // address is an integer as wide as one, and the arithmetic on them is the add it always
5642 // was, so every rule written about an add reaches it.
5643 //
5644 // The add stays its own instruction rather than folding into the address the load reads
5645 // from. Two registers with no scale on either is the one addressing mode the rules have no
5646 // load through, because the folds that exist are the displacement one and the scaled ones,
5647 // and this is neither. That is a peephole worth having and not a thing this changes.
5648 assert_eq!(
5649 lower(&mut names, &source),
5650 "mfunc @f {\nblock0:\n %0:gpr($rdi) = x64.arg_val_64\n \
5651 %1:gpr($rsi) = x64.arg_val_64\n %2:gpr(reuse 1) = x64.add_rr_64 %0, %1\n \
5652 %3:gpr = x64.mov_rm_32 [%2]\n x64.ret_val_32 %3($rax)\n}\n"
5653 );
5654 }
5655
5656 /// The address of a file scope name, which is what every use of a global and every string
5657 /// literal starts from.
5658 fn address_of(source: &mut Func, block: Block, names: &mut Interner, name: &str) -> Value {
5659 let symbol = names.intern(name);
5660 let mut build = Builder::new(source, block);
5661 build.value(
5662 InstData { extra: Extra::Symbol(symbol), ..InstData::new(Opcode::GlobalAddr) },
5663 Type::PTR,
5664 )
5665 }
5666
5667 #[test]
5668 fn the_address_of_a_name_is_one_instruction_carrying_the_name() {
5669 let (mut names, mut source, block, _) = blank(&[]);
5670 let counter = address_of(&mut source, block, &mut names, "counter");
5671 let mut build = Builder::new(&mut source, block);
5672 let loaded = build.load(Type::int(32), counter, plain(), Flags::default());
5673 build.ret(&[loaded]);
5674
5675 // `extern int counter; int f(void) { return counter; }`. The address is an addressing mode
5676 // that names no register and carries the symbol, which is what the assembler writes
5677 // relative to `%rip` and what the object writer leaves a relocation for.
5678 assert_eq!(
5679 lower(&mut names, &source),
5680 "mfunc @f {\nblock0:\n %0:gpr = x64.lea_64 [@counter]\n \
5681 %1:gpr = x64.mov_rm_32 [%0]\n x64.ret_val_32 %1($rax)\n}\n"
5682 );
5683 }
5684
5685 #[test]
5686 fn the_address_of_a_name_outside_the_file_is_read_out_of_the_offset_table() {
5687 let (mut names, mut source, block, _) = blank(&[]);
5688 let away = address_of(&mut source, block, &mut names, "away");
5689 Builder::new(&mut source, block).ret(&[away]);
5690 let elsewhere: Elsewhere = [names.intern("away")].into_iter().collect();
5691
5692 // `extern void away(void); void *f(void) { return away; }`. A load and not an address
5693 // computation, because the distance from here to a name a shared library may be the one
5694 // that defines is not a number any link can work out, and the slot the linker fills in is
5695 // in this program and so is a distance it has.
5696 let out =
5697 func(&source, &mut names, &SYSV, &elsewhere).expect("every instruction has a rule");
5698 assert_eq!(
5699 mir::print_func(&out.func, &names, ®S),
5700 "mfunc @f {\nblock0:\n %0:gpr = x64.mov_rm_64 [got @away]\n \
5701 x64.ret_val_64 %0($rax)\n}\n"
5702 );
5703 }
5704
5705 #[test]
5706 fn the_address_of_a_thread_local_is_an_offset_out_of_the_table_plus_where_this_thread_starts() {
5707 let (mut names, mut source, block, _) = blank(&[]);
5708 let own = address_of(&mut source, block, &mut names, "own");
5709 Builder::new(&mut source, block).ret(&[own]);
5710 let elsewhere = Elsewhere::default().with_threads([names.intern("own")]);
5711
5712 // `extern _Thread_local int own; void *f(void) { return &own; }`. Three instructions where
5713 // the two cases above are one, because there is no address to load or to work out: the
5714 // slot holds how far into a thread's block the variable sits, `%fs:0` is where this
5715 // thread's block starts, and the sum of the two is this thread's copy.
5716 let out =
5717 func(&source, &mut names, &SYSV, &elsewhere).expect("every instruction has a rule");
5718 assert_eq!(
5719 mir::print_func(&out.func, &names, ®S),
5720 "mfunc @f {\nblock0:\n %0:gpr = x64.mov_rm_64 [thread @own]\n \
5721 %1:gpr = x64.mov_rm_64 [fs:0]\n %2:gpr(reuse 1) = x64.add_rr_64 %0, %1\n \
5722 x64.ret_val_64 %2($rax)\n}\n"
5723 );
5724 }
5725
5726 /// The same load with nothing added to it, which is the whole of `__builtin_thread_pointer`.
5727 #[test]
5728 fn the_start_of_this_thread_s_own_storage_is_the_one_load_and_no_arithmetic() {
5729 let (mut names, mut source, block, _) = blank(&[]);
5730 let here =
5731 Builder::new(&mut source, block).value(InstData::new(Opcode::ThreadPointer), Type::PTR);
5732 Builder::new(&mut source, block).ret(&[here]);
5733
5734 let out = func(&source, &mut names, &SYSV, &Elsewhere::default())
5735 .expect("every instruction has a rule");
5736 assert_eq!(
5737 mir::print_func(&out.func, &names, ®S),
5738 "mfunc @f {\nblock0:\n %0:gpr = x64.mov_rm_64 [fs:0]\n \
5739 x64.ret_val_64 %0($rax)\n}\n"
5740 );
5741 }
5742
5743 /// One `asm` statement, with its template and its constraint list written as a program does.
5744 fn assembly(
5745 source: &mut Func,
5746 block: Block,
5747 names: &mut Interner,
5748 template: &str,
5749 constraints: &str,
5750 args: &[Value],
5751 results: &[Type],
5752 ) -> Inst {
5753 clobbering(source, block, names, template, constraints, "memory", args, results)
5754 }
5755
5756 /// The same with a clobber list of its own, for the statements that are about one.
5757 #[allow(clippy::too_many_arguments)]
5758 fn clobbering(
5759 source: &mut Func,
5760 block: Block,
5761 names: &mut Interner,
5762 template: &str,
5763 constraints: &str,
5764 clobbers: &str,
5765 args: &[Value],
5766 results: &[Type],
5767 ) -> Inst {
5768 let info = AsmInfo {
5769 template: names.intern(template),
5770 constraints: names.intern(constraints),
5771 clobbers: names.intern(clobbers),
5772 targets: rucc_ir::BlockCallList::EMPTY,
5773 };
5774 Builder::new(source, block).inline_asm(info, args, results, Flags::VOLATILE)
5775 }
5776
5777 /// What a program asking the processor what it can do writes, which is the instruction whose
5778 /// every operand is a register its text does not name.
5779 #[test]
5780 fn a_template_whose_registers_are_named_by_the_constraints_places_them_from_the_letters() {
5781 let u32 = Type::int(32);
5782 let (mut names, mut source, block, _) = blank(&[]);
5783 let zero = Builder::new(&mut source, block).iconst(u32, 0);
5784 let out = clobbering(
5785 &mut source,
5786 block,
5787 &mut names,
5788 "cpuid",
5789 "=a,a",
5790 "ebx,ecx,edx",
5791 &[zero],
5792 &[u32],
5793 );
5794 let produced = source[out].results().next().expect("one result");
5795 Builder::new(&mut source, block).ret(&[produced]);
5796
5797 // `asm ("cpuid" : "=a" (n) : "a" (0) : "ebx", "ecx", "edx")`, which is the first thing
5798 // every program that has a faster path on some machines writes. Four registers written and
5799 // two read, none of them in the template, all of them out of the description, and the two
5800 // that the letters named are the statement's own. The subleaf is a zero because the
5801 // instruction reads `ecx` and the program said nothing about what is in it. The three
5802 // clobbers are gone because `cpuid` writes those three anyway, and saying it twice is one
5803 // register with two definitions.
5804 assert_eq!(
5805 lower(&mut names, &source),
5806 "mfunc @f {\nblock0:\n %0:gpr = x64.mov_ri_32 0\n \
5807 %1:gpr = x64.mov_ri_64 0\n \
5808 %2:gpr($rax), %3:gpr($rbx), %4:gpr($rcx), %5:gpr($rdx) = x64.cpuid %0($rax), \
5809 %1($rcx)\n x64.ret_val_32 %2($rax)\n}\n"
5810 );
5811 }
5812
5813 /// A clobber the instruction does not write itself, which is the case the list is there for.
5814 /// It goes on as a definition of the register, in among the other definitions, because that is
5815 /// the whole of how a machine function says a register is not worth anything after this.
5816 #[test]
5817 fn a_clobber_the_instruction_does_not_write_itself_is_a_definition_of_that_register() {
5818 let (mut names, mut source, block, _) = blank(&[]);
5819 clobbering(&mut source, block, &mut names, "pause", "", "rsi,cc,memory", &[], &[]);
5820 Builder::new(&mut source, block).ret(&[]);
5821
5822 assert_eq!(lower(&mut names, &source), "mfunc @f {\nblock0:\n $rsi = x64.pause\n}\n");
5823 }
5824
5825 /// A clobber naming something this has no register for. Refused rather than dropped, since the
5826 /// list is the program saying which registers it may not leave anything in, and an entry
5827 /// nobody read is a register something may still be left in.
5828 #[test]
5829 fn a_clobber_this_has_no_register_for_is_refused() {
5830 let (mut names, mut source, block, _) = blank(&[]);
5831 clobbering(&mut source, block, &mut names, "pause", "", "zmm0", &[], &[]);
5832 Builder::new(&mut source, block).ret(&[]);
5833
5834 let failed = func(&source, &mut names, &SYSV, &Elsewhere::default())
5835 .expect_err("there is no such register here");
5836 assert_eq!(
5837 failed.to_string(),
5838 "this `asm` says it destroys a register this has no name for"
5839 );
5840 }
5841
5842 #[test]
5843 fn an_asm_with_an_empty_template_and_no_operands_is_no_instructions() {
5844 let (mut names, mut source, block, _) = blank(&[]);
5845 assembly(&mut source, block, &mut names, "", "", &[], &[]);
5846 Builder::new(&mut source, block).ret(&[]);
5847
5848 // `asm volatile ("" : : : "memory")`, which is a barrier and nothing else. The barrier was
5849 // spent on the optimizer, which has finished by now, so what is left is nothing.
5850 assert_eq!(lower(&mut names, &source), "mfunc @f {\nblock0:\n}\n");
5851 }
5852
5853 #[test]
5854 fn an_output_an_input_is_tied_to_is_the_register_that_input_arrived_in() {
5855 let i32 = Type::int(32);
5856 let (mut names, mut source, block, args) = blank(&[i32]);
5857 let out = assembly(&mut source, block, &mut names, "", "=r,0", &args, &[i32]);
5858 let produced = source[out].results().next().expect("one result");
5859 Builder::new(&mut source, block).ret(&[produced]);
5860
5861 // `asm ("" : "=r" (x) : "0" (x))`, which is how a program stops the optimizer following a
5862 // value without changing it. The two share a place and the template writes nothing over
5863 // it, so the value comes back out of the register it went in.
5864 assert_eq!(
5865 lower(&mut names, &source),
5866 "mfunc @f {\nblock0:\n %0:gpr($rdi) = x64.arg_val_32\n \
5867 x64.ret_val_32 %0($rax)\n}\n"
5868 );
5869 }
5870
5871 #[test]
5872 fn an_output_written_plus_is_the_same_rename() {
5873 let i32 = Type::int(32);
5874 let (mut names, mut source, block, args) = blank(&[i32]);
5875 let out = assembly(&mut source, block, &mut names, "", "+r", &args, &[i32]);
5876 let produced = source[out].results().next().expect("one result");
5877 Builder::new(&mut source, block).ret(&[produced]);
5878
5879 // `asm ("" : "+r" (x))`, which says the same thing in one operand instead of two.
5880 assert_eq!(
5881 lower(&mut names, &source),
5882 "mfunc @f {\nblock0:\n %0:gpr($rdi) = x64.arg_val_32\n \
5883 x64.ret_val_32 %0($rax)\n}\n"
5884 );
5885 }
5886
5887 #[test]
5888 fn an_output_nothing_is_tied_to_is_a_zero() {
5889 let i32 = Type::int(32);
5890 let (mut names, mut source, block, _) = blank(&[]);
5891 let out = assembly(&mut source, block, &mut names, "", "=r", &[], &[i32]);
5892 let produced = source[out].results().next().expect("one result");
5893 Builder::new(&mut source, block).ret(&[produced]);
5894
5895 // `asm ("" : "=r" (y))`, whose answer is whatever the assembly left in the register, and
5896 // an empty template leaves nothing. A definite value rather than a register nothing wrote,
5897 // because the allocator is owed a definition before the use however little the program is.
5898 assert_eq!(
5899 lower(&mut names, &source),
5900 "mfunc @f {\nblock0:\n %0:gpr = x64.mov_ri_32 0\n x64.ret_val_32 %0($rax)\n}\n"
5901 );
5902 }
5903
5904 #[test]
5905 fn a_template_that_is_one_instruction_becomes_that_instruction() {
5906 let (mut names, mut source, block, _) = blank(&[]);
5907 assembly(&mut source, block, &mut names, "pause", "", &[], &[]);
5908 Builder::new(&mut source, block).ret(&[]);
5909
5910 // `asm volatile ("pause")`, which is what every spin lock in every allocator writes. One
5911 // instruction, no operands, and nothing between the template and the machine but the table
5912 // that already says what a `pause` is.
5913 assert_eq!(lower(&mut names, &source), "mfunc @f {\nblock0:\n x64.pause\n}\n");
5914 }
5915
5916 #[test]
5917 fn a_template_that_reads_a_segment_becomes_the_load_it_already_was() {
5918 let i64 = Type::int(64);
5919 let (mut names, mut source, block, _) = blank(&[]);
5920 let out = assembly(&mut source, block, &mut names, "movq %%fs:0, %0", "=r", &[], &[i64]);
5921 let produced = source[out].results().next().expect("one result");
5922 Builder::new(&mut source, block).ret(&[produced]);
5923
5924 // `asm ("movq %%fs:0, %0" : "=r" (tid))`, which is how a program finds the block its own
5925 // thread owns. The same instruction `crate::lower` already writes for a thread-local
5926 // variable, reached this time because a program wrote it out by hand.
5927 assert_eq!(
5928 lower(&mut names, &source),
5929 "mfunc @f {\nblock0:\n %0:gpr = x64.mov_rm_64 [fs:0]\n \
5930 x64.ret_val_64 %0($rax)\n}\n"
5931 );
5932 }
5933
5934 #[test]
5935 fn a_template_naming_an_instruction_this_machine_has_not_got_is_refused() {
5936 let (mut names, mut source, block, _) = blank(&[]);
5937 assembly(&mut source, block, &mut names, "hcf", "", &[], &[]);
5938 Builder::new(&mut source, block).ret(&[]);
5939
5940 let failed = func(&source, &mut names, &SYSV, &Elsewhere::default())
5941 .expect_err("there is no such instruction");
5942 assert_eq!(
5943 failed.to_string(),
5944 "this `asm` has instructions in its template, which nothing here assembles"
5945 );
5946 }
5947
5948 /// A register the template named is a claim on a register nobody told the allocator about.
5949 /// Refused rather than placed, because a register two things believe they own is a wrong
5950 /// program that nothing reports. A register a constraint letter names is a different thing and
5951 /// is placed, which the test above is about: there the statement said which of its own operands
5952 /// is in the register, and a name in the middle of a template says no such thing.
5953 #[test]
5954 fn a_template_naming_a_register_the_allocator_did_not_hand_out_is_refused() {
5955 let i64 = Type::int(64);
5956 let (mut names, mut source, block, _) = blank(&[]);
5957 let out = assembly(&mut source, block, &mut names, "movq %%rax, %0", "=r", &[], &[i64]);
5958 let produced = source[out].results().next().expect("one result");
5959 Builder::new(&mut source, block).ret(&[produced]);
5960
5961 let failed = func(&source, &mut names, &SYSV, &Elsewhere::default())
5962 .expect_err("the template named a register");
5963 assert_eq!(failed.to_string(), "this `asm` has an operand this cannot place");
5964 }
5965
5966 #[test]
5967 fn a_constraint_list_that_does_not_describe_the_operands_is_refused() {
5968 let i32 = Type::int(32);
5969 let (mut names, mut source, block, args) = blank(&[i32]);
5970 assembly(&mut source, block, &mut names, "", "=r", &args, &[]);
5971 Builder::new(&mut source, block).ret(&[]);
5972
5973 // An output with no result to be, which is what the front end never writes and what a
5974 // hand written module can. Refused rather than placed by a guess.
5975 let failed = func(&source, &mut names, &SYSV, &Elsewhere::default())
5976 .expect_err("the list and the instruction disagree");
5977 assert_eq!(failed.to_string(), "this `asm` has an operand this cannot place");
5978 }
5979
5980 /// A cast between a pointer and an integer, at whatever width the result is asked for.
5981 fn cast(source: &mut Func, block: Block, opcode: Opcode, from: Value, to: Type) -> Value {
5982 let mut build = Builder::new(source, block);
5983 let args = build.func().push_values(&[from]);
5984 build.value(InstData { args, ..InstData::new(opcode) }, to)
5985 }
5986
5987 #[test]
5988 fn a_cast_between_a_pointer_and_an_integer_as_wide_is_no_instruction_at_all() {
5989 let (mut names, mut source, block, args) = blank(&[Type::PTR]);
5990 let number = cast(&mut source, block, Opcode::PtrToInt, args[0], Type::int(64));
5991 Builder::new(&mut source, block).ret(&[number]);
5992
5993 // `long f(void *p) { return (long)p; }`. An address on this machine is an integer as wide
5994 // as the machine addresses, so the cast changes what the type system calls the value and
5995 // changes nothing about the value, and the register holding it is the one that held it.
5996 assert_eq!(
5997 lower(&mut names, &source),
5998 "mfunc @f {\nblock0:\n %0:gpr($rdi) = x64.arg_val_64\n \
5999 x64.ret_val_64 %0($rax)\n}\n"
6000 );
6001 }
6002
6003 #[test]
6004 fn a_null_pointer_is_a_constant_that_reaches_a_register_before_anything_reads_it() {
6005 let (mut names, mut source, block, _) = blank(&[]);
6006 let mut build = Builder::new(&mut source, block);
6007 let zero = build.iconst(Type::int(64), 0);
6008 let null = cast(&mut source, block, Opcode::IntToPtr, zero, Type::PTR);
6009 Builder::new(&mut source, block).ret(&[null]);
6010
6011 // `void *f(void) { return 0; }`. The cast is nothing, and reading its operand is what
6012 // writes the zero down: a constant is materialized where it is wanted rather than where
6013 // the IR defined it, and without the read there would be no instruction at all.
6014 assert_eq!(
6015 lower(&mut names, &source),
6016 "mfunc @f {\nblock0:\n %0:gpr = x64.mov_ri_64 0\n x64.ret_val_64 %0($rax)\n}\n"
6017 );
6018 }
6019
6020 #[test]
6021 fn the_five_linkages_the_ir_has_narrow_to_the_three_an_object_file_can_say() {
6022 let readings = [
6023 (Linkage::External, mir::Binding::Global),
6024 (Linkage::Common, mir::Binding::Global),
6025 (Linkage::Internal, mir::Binding::Local),
6026 (Linkage::Weak, mir::Binding::Weak),
6027 (Linkage::LinkOnce, mir::Binding::Weak),
6028 ];
6029 for (linkage, wanted) in readings {
6030 let (mut names, mut source, block, _) = blank(&[]);
6031 source.linkage = linkage;
6032 Builder::new(&mut source, block).ret(&[]);
6033 let out = func(&source, &mut names, &SYSV, &Elsewhere::default()).expect("a return");
6034 // The narrowing is done here rather than where the object is written, because a
6035 // machine function is all the assembler and the writer are ever handed.
6036 assert_eq!(out.func.binding, wanted, "{linkage:?}");
6037 }
6038 }
6039
6040 /// The visibility makes the same trip and is not narrowed on the way, because ELF says all
6041 /// three of them.
6042 ///
6043 /// Here for the reason the linkage above is here. A machine function is the whole of what the
6044 /// assembler and the object writer are handed, so a fact about the symbol that does not get
6045 /// onto one is a fact that is gone by the time anything could write it down, and the way that
6046 /// shows up is a shared library exporting the wrong set of names with nothing said anywhere.
6047 #[test]
6048 fn the_visibility_survives_the_trip_from_the_ir_to_a_machine_function() {
6049 let readings = [
6050 (Visibility::Default, mir::Visibility::Default),
6051 (Visibility::Hidden, mir::Visibility::Hidden),
6052 (Visibility::Protected, mir::Visibility::Protected),
6053 ];
6054 for (visibility, wanted) in readings {
6055 let (mut names, mut source, block, _) = blank(&[]);
6056 source.visibility = visibility;
6057 Builder::new(&mut source, block).ret(&[]);
6058 let out = func(&source, &mut names, &SYSV, &Elsewhere::default()).expect("a return");
6059 assert_eq!(out.func.visibility, wanted, "{visibility:?}");
6060 }
6061 }
6062
6063 #[test]
6064 fn a_cast_between_a_pointer_and_a_narrower_integer_is_reported() {
6065 let (mut names, mut source, block, args) = blank(&[Type::PTR]);
6066 let number = cast(&mut source, block, Opcode::PtrToInt, args[0], Type::int(32));
6067 Builder::new(&mut source, block).ret(&[number]);
6068
6069 // The front end never writes one: it casts at the address width and truncates or extends
6070 // around it, so both of those are the rules they always were. IR from somewhere else that
6071 // does write one is refused rather than compiled to a move that keeps the high half.
6072 let failed = func(&source, &mut names, &SYSV, &Elsewhere::default())
6073 .expect_err("no rule narrows an address");
6074 assert_eq!(failed.to_string(), "no rule lowers a `ptrtoint` producing a `i32`");
6075 }
6076
6077 /// The type this machine has no register for.
6078 fn long_double() -> Type {
6079 Type::float(rucc_ir::Float::F80)
6080 }
6081
6082 #[test]
6083 fn a_double_widened_and_narrowed_again_goes_out_through_the_frame_and_back() {
6084 let f64 = Type::float(rucc_ir::Float::F64);
6085 let (mut names, mut source, block, args) = blank(&[f64]);
6086 let wide = cast(&mut source, block, Opcode::FPExt, args[0], long_double());
6087 let back = cast(&mut source, block, Opcode::FPTrunc, wide, f64);
6088 Builder::new(&mut source, block).ret(&[back]);
6089
6090 // `double f(double d) { long double x = d; return x; }`. The x87 reads memory and nothing
6091 // else, so the value is written to the crossing slot, loaded at the format that widens it
6092 // and put in the slot the eighty bit value lives in. Coming back is the same three the
6093 // other way. Both slots are addressed by a `lea` with nothing in it yet, which is what
6094 // every address in a frame looks like here until `finish` has the numbers.
6095 assert_eq!(
6096 lower(&mut names, &source),
6097 "mfunc @f {\nblock0:\n \
6098 %0:xmm($xmm0) = x64.arg_val_f64\n \
6099 %1:gpr = x64.lea_64 [$rsp]\n \
6100 %2:gpr = x64.lea_64 [$rsp]\n \
6101 x64.movsd_mr %0, [%1]\n \
6102 x64.fld_l [%1]\n \
6103 x64.fstp_t [%2]\n \
6104 %3:gpr = x64.lea_64 [$rsp]\n \
6105 %4:gpr = x64.lea_64 [$rsp]\n \
6106 x64.fld_t [%3]\n \
6107 x64.fstp_l [%4]\n \
6108 %5:xmm = x64.movsd_rm [%4]\n \
6109 x64.ret_val_f64 %5($xmm0)\n}\n"
6110 );
6111 }
6112
6113 #[test]
6114 fn a_long_double_has_sixteen_bytes_of_its_own_and_keeps_them() {
6115 let f64 = Type::float(rucc_ir::Float::F64);
6116 let (mut names, mut source, block, args) = blank(&[f64]);
6117 let wide = cast(&mut source, block, Opcode::FPExt, args[0], long_double());
6118 let once = cast(&mut source, block, Opcode::FPTrunc, wide, f64);
6119 let twice = cast(&mut source, block, Opcode::FPTrunc, wide, f64);
6120 let mut build = Builder::new(&mut source, block);
6121 let sum = build.binary(Opcode::FAdd, once, twice, Flags::default());
6122 build.ret(&[sum]);
6123
6124 let out = func(&source, &mut names, &SYSV, &Elsewhere::default())
6125 .expect("every instruction is written");
6126
6127 // Two slots and not four: sixteen bytes for the one eighty bit value, which is what the
6128 // psABI says one takes and is aligned to, and eight for the crossing, which every group
6129 // in the function shares because nothing is ever left in it. The value's slot is its own
6130 // for the whole function, so reading it twice reads the same sixteen bytes.
6131 assert_eq!(
6132 out.stack.locals,
6133 vec![Local { size: 8, align: 8 }, Local { size: 16, align: 16 }]
6134 );
6135 }
6136
6137 #[test]
6138 fn an_integer_becomes_a_long_double_by_being_loaded_as_one() {
6139 let (mut names, mut source, block, args) = blank(&[Type::int(64)]);
6140 let wide = cast(&mut source, block, Opcode::SIToFP, args[0], long_double());
6141 let back =
6142 cast(&mut source, block, Opcode::FPTrunc, wide, Type::float(rucc_ir::Float::F64));
6143 Builder::new(&mut source, block).ret(&[back]);
6144
6145 // `double f(long n) { long double x = n; return x; }`. `fild` is the same push at another
6146 // format, so the conversion is the load and there is no instruction that converts.
6147 let text = lower(&mut names, &source);
6148 assert!(text.contains("x64.mov_mr_64 %0, [%1]"), "{text}");
6149 assert!(text.contains("x64.fild_ll [%1]"), "{text}");
6150 }
6151
6152 #[test]
6153 fn a_long_double_becoming_an_integer_cuts_towards_zero_with_the_control_word() {
6154 let (mut names, mut source, block, args) = blank(&[Type::float(rucc_ir::Float::F64)]);
6155 let wide = cast(&mut source, block, Opcode::FPExt, args[0], long_double());
6156 let whole = cast(&mut source, block, Opcode::FPToSI, wide, Type::int(32));
6157 Builder::new(&mut source, block).ret(&[whole]);
6158
6159 // The one conversion here with no single instruction behind it. C cuts towards zero and
6160 // the unit rounds the way its control word says, so the word is saved, ORed with the two
6161 // bits that mean truncate, loaded, used and put back. Nine instructions for what `fisttp`
6162 // does in one, and `spec/10-backend.md` section 10.8 says why that one is not used.
6163 let text = lower(&mut names, &source);
6164 let group: Vec<&str> = text
6165 .lines()
6166 .map(str::trim)
6167 .filter(|line| line.starts_with("x64.f") || line.contains("_16"))
6168 .collect();
6169 assert_eq!(
6170 group,
6171 [
6172 "x64.fld_l [%1]",
6173 "x64.fstp_t [%2]",
6174 "x64.fnstcw [%5]",
6175 "%6:gpr = x64.mov_rm_16 [%5]",
6176 "%7:gpr(reuse 1) = x64.or_ri_16 %6, 3072",
6177 "x64.mov_mr_16 %7, [%5 + 2]",
6178 "x64.fldcw [%5 + 2]",
6179 "x64.fld_t [%3]",
6180 "x64.fistp_l [%4]",
6181 "x64.fldcw [%5]",
6182 ],
6183 "{text}"
6184 );
6185 }
6186
6187 #[test]
6188 fn a_long_double_is_read_and_written_as_the_bits_it_already_is() {
6189 let (mut names, mut source, block, args) = blank(&[Type::PTR, Type::PTR]);
6190 let mut build = Builder::new(&mut source, block);
6191 let value = build.load(long_double(), args[0], plain(), Flags::default());
6192 build.store(value, args[1], plain(), Flags::default());
6193 build.ret(&[]);
6194
6195 // `void f(long double *a, long double *b) { *b = *a; }`. A copy is a push and a pop at the
6196 // format the value is already in, which neither converts nor looks: a signalling NaN stays
6197 // one and nothing is raised, which is the whole of what makes it a copy.
6198 let text = lower(&mut names, &source);
6199 let group: Vec<&str> =
6200 text.lines().map(str::trim).filter(|line| line.starts_with("x64.f")).collect();
6201 assert_eq!(
6202 group,
6203 ["x64.fld_t [%0]", "x64.fstp_t [%2]", "x64.fld_t [%3]", "x64.fstp_t [%1]"],
6204 "{text}"
6205 );
6206 }
6207
6208 /// Two `long double` values, from two `double` parameters, and the instructions that made
6209 /// them, which every test below this one throws away.
6210 fn two_long_doubles(source: &mut Func, block: Block, args: &[Value]) -> (Value, Value) {
6211 let left = cast(source, block, Opcode::FPExt, args[0], long_double());
6212 let right = cast(source, block, Opcode::FPExt, args[1], long_double());
6213 (left, right)
6214 }
6215
6216 /// The x87 instructions of a function, in order, with everything else dropped.
6217 fn stack_only(text: &str) -> Vec<&str> {
6218 text.lines().map(str::trim).filter(|line| line.contains("x64.f")).collect()
6219 }
6220
6221 /// The two frame slots the last two addresses of a function were taken of, which in a
6222 /// comparison are the two operands in the order they go on the stack.
6223 fn pushed(out: &Lowered) -> Vec<usize> {
6224 let taken: Vec<usize> = out.stack.addresses.iter().map(|&(_, local)| local).collect();
6225 taken[taken.len() - 2..].to_vec()
6226 }
6227
6228 #[test]
6229 fn adding_two_long_doubles_pushes_both_and_leaves_the_answer_in_a_slot() {
6230 let f64 = Type::float(rucc_ir::Float::F64);
6231 let (mut names, mut source, block, args) = blank(&[f64, f64]);
6232 let (left, right) = two_long_doubles(&mut source, block, &args);
6233 let sum =
6234 Builder::new(&mut source, block).binary(Opcode::FAdd, left, right, Flags::default());
6235 let back = cast(&mut source, block, Opcode::FPTrunc, sum, f64);
6236 Builder::new(&mut source, block).ret(&[back]);
6237
6238 // `double f(double a, double b) { return (long double) a + (long double) b; }`. The last
6239 // four lines are the add: both operands pushed, the instruction that names neither of
6240 // them because they are the top two of a stack, and the answer taken off into its slot.
6241 let text = lower(&mut names, &source);
6242 assert_eq!(
6243 stack_only(&text),
6244 [
6245 "x64.fld_l [%2]",
6246 "x64.fstp_t [%3]",
6247 "x64.fld_l [%4]",
6248 "x64.fstp_t [%5]",
6249 "x64.fld_t [%6]",
6250 "x64.fld_t [%7]",
6251 "x64.fadd_p",
6252 "x64.fstp_t [%8]",
6253 "x64.fld_t [%9]",
6254 "x64.fstp_l [%10]",
6255 ],
6256 "{text}"
6257 );
6258 }
6259
6260 #[test]
6261 fn a_subtraction_pushes_the_left_operand_first_and_asks_for_the_att_spelling() {
6262 let f64 = Type::float(rucc_ir::Float::F64);
6263 let (mut names, mut source, block, args) = blank(&[f64, f64]);
6264 let (left, right) = two_long_doubles(&mut source, block, &args);
6265 let less =
6266 Builder::new(&mut source, block).binary(Opcode::FSub, left, right, Flags::default());
6267 let back = cast(&mut source, block, Opcode::FPTrunc, less, f64);
6268 Builder::new(&mut source, block).ret(&[back]);
6269
6270 // The left one goes on first, so it ends up under the right one, and the answer wanted is
6271 // the one below minus the top. In AT&T that is `fsubrp`, since `fsubp` there is `DE E0+i`
6272 // and computes the other one. The `r` says which spelling this is and not which order the
6273 // pushes were in. `crates/rucc/tests/x87.rs` is what says the answer is right, because a
6274 // name is what got this wrong the first time.
6275 let text = lower(&mut names, &source);
6276 assert_eq!(
6277 &stack_only(&text)[4..8],
6278 ["x64.fld_t [%6]", "x64.fld_t [%7]", "x64.fsubr_p", "x64.fstp_t [%8]"],
6279 "{text}"
6280 );
6281 }
6282
6283 #[test]
6284 fn negating_a_long_double_turns_the_sign_over_and_reads_nothing() {
6285 let f64 = Type::float(rucc_ir::Float::F64);
6286 let (mut names, mut source, block, args) = blank(&[f64]);
6287 let wide = cast(&mut source, block, Opcode::FPExt, args[0], long_double());
6288 let flipped = Builder::new(&mut source, block).unary(Opcode::FNeg, wide, long_double());
6289 let back = cast(&mut source, block, Opcode::FPTrunc, flipped, f64);
6290 Builder::new(&mut source, block).ret(&[back]);
6291
6292 // `fchs` and not a subtraction from zero, which would give a different answer at a negative
6293 // zero and would signal at a NaN. It does not read the value as a number at all.
6294 let text = lower(&mut names, &source);
6295 assert_eq!(
6296 &stack_only(&text)[2..5],
6297 ["x64.fld_t [%3]", "x64.fchs", "x64.fstp_t [%4]"],
6298 "{text}"
6299 );
6300 }
6301
6302 #[test]
6303 fn comparing_two_long_doubles_puts_the_left_one_on_top() {
6304 let f64 = Type::float(rucc_ir::Float::F64);
6305 let (mut names, mut source, block, args) = blank(&[f64, f64]);
6306 let (left, right) = two_long_doubles(&mut source, block, &args);
6307 let mut build = Builder::new(&mut source, block);
6308 build.fcmp(FloatPred::Ogt, left, right, Flags::default());
6309 build.ret(&[]);
6310
6311 // `a > b`. `fucomip` asks about the top of the stack against what is under it, so the
6312 // operand the predicate is about has to go on last, which is the other way round from the
6313 // arithmetic above. The pop that clears the loser and the byte that reads the flags are
6314 // both inside the one opcode.
6315 let out = func(&source, &mut names, &SYSV, &Elsewhere::default())
6316 .expect("every instruction is written");
6317 let slots = pushed(&out);
6318 assert_eq!(slots, [2, 1], "the right operand goes on first and the left one on top");
6319 let text = mir::print_func(&out.func, &names, ®S);
6320 assert_eq!(
6321 &stack_only(&text)[4..],
6322 ["x64.fld_t [%6]", "x64.fld_t [%7]", "%8:gpr = x64.fucomip_set_a"],
6323 "{text}"
6324 );
6325 }
6326
6327 #[test]
6328 fn a_comparison_that_the_machine_has_backwards_swaps_the_two_pushes() {
6329 let f64 = Type::float(rucc_ir::Float::F64);
6330 let (mut names, mut source, block, args) = blank(&[f64, f64]);
6331 let (left, right) = two_long_doubles(&mut source, block, &args);
6332 let mut build = Builder::new(&mut source, block);
6333 build.fcmp(FloatPred::Olt, left, right, Flags::default());
6334 build.ret(&[]);
6335
6336 // `a < b` is `b > a` and this machine has the one condition, so the same opcode runs with
6337 // the operands the other way round. The same trade the vector rules make, and it has to
6338 // be the same one: a `long double` comparison that picked a different condition from the
6339 // `double` comparison of the same two numbers would be wrong at exactly the unordered
6340 // cases the two conditions differ on.
6341 //
6342 // Which slot each push names is the whole of the difference from the test above, and the
6343 // text does not show it, since an address in a frame is a `lea` with nothing in it until
6344 // `finish` has the numbers. So the slots are what is read here.
6345 let out = func(&source, &mut names, &SYSV, &Elsewhere::default())
6346 .expect("every instruction is written");
6347 let slots = pushed(&out);
6348 assert_eq!(slots, [1, 2], "the left operand goes on first and the right one on top");
6349 let text = mir::print_func(&out.func, &names, ®S);
6350 assert_eq!(
6351 &stack_only(&text)[4..],
6352 ["x64.fld_t [%6]", "x64.fld_t [%7]", "%8:gpr = x64.fucomip_set_a"],
6353 "{text}"
6354 );
6355 }
6356
6357 #[test]
6358 fn an_ordered_equal_needs_a_second_byte_to_put_the_two_conditions_together() {
6359 let f64 = Type::float(rucc_ir::Float::F64);
6360 let (mut names, mut source, block, args) = blank(&[f64, f64]);
6361 let (left, right) = two_long_doubles(&mut source, block, &args);
6362 let mut build = Builder::new(&mut source, block);
6363 build.fcmp(FloatPred::Oeq, left, right, Flags::default());
6364 build.ret(&[]);
6365
6366 // Equal and ordered are two conditions and the flags carry both, so the opcode writes a
6367 // second register as well as the one the value is in and ANDs them together. Said here by
6368 // handing it a spare, since an instruction that wrote a register nothing knew about would
6369 // be an instruction the allocator could put a live value in the way of.
6370 let text = lower(&mut names, &source);
6371 assert!(text.contains("%8:gpr, %9:gpr = x64.fucomip_set_e_and_np"), "{text}");
6372 }
6373
6374 #[test]
6375 fn a_comparison_that_is_never_asked_is_reported() {
6376 let f64 = Type::float(rucc_ir::Float::F64);
6377 let (mut names, mut source, block, args) = blank(&[f64, f64]);
6378 let (left, right) = two_long_doubles(&mut source, block, &args);
6379 let mut build = Builder::new(&mut source, block);
6380 build.fcmp(FloatPred::False, left, right, Flags::default());
6381 build.ret(&[]);
6382
6383 // Always false is a constant and not a comparison, so there is no condition to pick and
6384 // nothing here folds it into one: an instruction that quietly agreed with it would hide
6385 // that the optimizer left a comparison in that it should have taken out.
6386 let failed = func(&source, &mut names, &SYSV, &Elsewhere::default())
6387 .expect_err("no condition is always false");
6388 assert_eq!(failed.to_string(), "no rule lowers a `fcmp` producing a `i1`");
6389 }
6390
6391 #[test]
6392 fn a_long_double_constant_is_the_bits_of_it_put_where_the_value_lives() {
6393 let (mut names, mut source, block, args) = blank(&[Type::PTR]);
6394 let mut build = Builder::new(&mut source, block);
6395 // `1.5L`, which is the leading bit and one more of significand, and an exponent of zero.
6396 let one_and_a_half = build.fconst(long_double(), 0x3fff_c000_0000_0000_0000);
6397 build.store(one_and_a_half, args[0], plain(), Flags::default());
6398 build.ret(&[]);
6399
6400 // No x87 instruction at all. A slot holding one of these is the value, so a constant is
6401 // its ten bytes written where the value lives, and whatever reads it does the `fld`.
6402 let text = lower(&mut names, &source);
6403 assert!(text.contains("x64.mov_ri_64 -4611686018427387904"), "{text}");
6404 assert!(text.contains("x64.mov_ri_16 16383"), "{text}");
6405 assert!(text.contains("x64.mov_mr_16 %3, [%1 + 8]"), "{text}");
6406 // The six bytes above the ten are the padding that makes the type sixteen wide, and they
6407 // are unspecified rather than zero, so nothing writes them.
6408 assert_eq!(text.matches("x64.mov_mr").count(), 2, "{text}");
6409 }
6410
6411 #[test]
6412 fn a_negative_long_double_constant_keeps_the_bit_above_its_exponent() {
6413 let (mut names, mut source, block, args) = blank(&[Type::PTR]);
6414 let mut build = Builder::new(&mut source, block);
6415 let minus = build.fconst(long_double(), 0xbfff_c000_0000_0000_0000);
6416 build.store(minus, args[0], plain(), Flags::default());
6417 build.ret(&[]);
6418
6419 // `-1.5L`. The sign is the top bit of the two byte half, so the immediate that half is put
6420 // in a register with is above the signed range of sixteen bits and has to stay there: read
6421 // as a number it would be negative, and it is not a number, it is two bytes.
6422 let text = lower(&mut names, &source);
6423 assert!(text.contains("x64.mov_ri_16 49151"), "{text}");
6424 }
6425
6426 #[test]
6427 fn a_long_double_crosses_an_edge_as_an_address_and_is_copied_where_it_lands() {
6428 let (mut names, mut source, block, args) = blank(&[Type::float(rucc_ir::Float::F64)]);
6429 let wide = cast(&mut source, block, Opcode::FPExt, args[0], long_double());
6430 let next = source.create_block();
6431 let param = source.append_param(next, long_double());
6432 Builder::new(&mut source, block).jump(next, &[wide]);
6433 Builder::new(&mut source, next).ret(&[param]);
6434
6435 // What the edge carries is the address of the slot the value is already in, which is an
6436 // ordinary register the allocator has an opinion about. The block on the other side copies
6437 // the sixteen bytes into a slot of its own before anything reads them, so a second edge
6438 // handing over a second address would still leave one place for a reader to look.
6439 let text = lower(&mut names, &source);
6440 let second: Vec<&str> = text
6441 .lines()
6442 .skip_while(|line| !line.starts_with("block1"))
6443 .skip(1)
6444 .take(3)
6445 .map(str::trim)
6446 .collect();
6447 assert_eq!(
6448 second,
6449 ["x64.fld_t [%4]", "%5:gpr = x64.lea_64 [$rsp]", "x64.fstp_t [%5]"],
6450 "{text}"
6451 );
6452 }
6453
6454 #[test]
6455 fn more_long_doubles_at_a_block_than_the_stack_is_deep_are_reported() {
6456 let f64 = Type::float(rucc_ir::Float::F64);
6457 let (mut names, mut source, block, args) = blank(&[f64]);
6458 let wide = cast(&mut source, block, Opcode::FPExt, args[0], long_double());
6459 let next = source.create_block();
6460 let params: Vec<Value> =
6461 (0..=X87_DEPTH).map(|_| source.append_param(next, long_double())).collect();
6462 let carried: Vec<Value> = params.iter().map(|_| wide).collect();
6463 Builder::new(&mut source, block).jump(next, &carried);
6464 Builder::new(&mut source, next).ret(&[params[0]]);
6465
6466 // The copies go through the x87 stack so that every one of them is read before any of them
6467 // is written, which is what makes a block that swaps two of these right. Nine of them do
6468 // not fit on the stack, and copying the ninth before or after the rest is the order that
6469 // could be wrong, so it is refused instead.
6470 let failed = func(&source, &mut names, &SYSV, &Elsewhere::default())
6471 .expect_err("nine do not fit on the stack");
6472 assert_eq!(
6473 failed.to_string(),
6474 "block1 takes 9 parameters of type `f80` and only 8 can cross an edge at once"
6475 );
6476 assert_eq!(failed.inst(), None);
6477 }
6478}