rucc_target/regs.rs
1//! The register file: what registers a target has, and what classes they fall into.
2//!
3//! Design: `spec/10-backend.md` section 10.8.
4//!
5//! A register file is data rather than code, which is the same claim the rest of this crate
6//! makes and the one `M10` puts a number on. A class is a set of registers that an operand of
7//! that class may be assigned to, and a physical register is its number inside its class, so
8//! the allocator works in dense small integers and only the printer and the parser ever deal in
9//! names.
10//!
11//! The file lives here rather than in `rucc-mir` because more than one thing reads it. The
12//! machine IR needs it to print, the allocator needs the set it may assign from, and the ABI
13//! description needs to name the registers arguments arrive in. All three are above this crate,
14//! and the alternative is the register file living in whichever of them happens to be lowest,
15//! which is how a layering ends up describing itself as historical.
16//!
17//! Names are unique across the whole file, not merely inside a class. That is what lets a
18//! register be written `$rax` in a dump rather than `$gpr.0`, and it is a real constraint on a
19//! target that gives one register two classes: it has to say which class it is in, or use two
20//! names. [`RegFile::duplicate`] is what a target's own test asks to find out.
21
22use std::fmt;
23
24/// One class of registers, and the registers in it.
25#[derive(Debug, Clone, Copy, PartialEq, Eq)]
26pub struct ClassInfo {
27 /// What the class is called in a dump, such as `gpr`.
28 pub name: &'static str,
29 /// How wide one of its registers is, in bits.
30 pub bits: u32,
31 /// The registers, in the order their numbers run, without the sigil a dump writes.
32 pub regs: &'static [&'static str],
33 /// Whether the allocator may put a value in one of these.
34 ///
35 /// True for every class a target means the allocator to use, which is nearly all of them.
36 /// False says the registers exist and are named and are not somewhere a value may be told to
37 /// live, so a virtual register of this class is a mistake at the point it was made rather than
38 /// a value the allocator has nowhere to put.
39 ///
40 /// The x87 stack is the case this exists for, and it is worth the sentence because it is not
41 /// the usual reason a register is unavailable. `rsp` is unavailable because it has a job;
42 /// `st0` is unavailable because the machine addresses it as a stack, so which register a name
43 /// means depends on how many values are on the stack at the time, and an allocator that hands
44 /// out a name has no way to say that. So nothing allocates from it, an eighty bit value lives
45 /// in a stack slot between one operation and the next, and the stack is empty on both sides of
46 /// every group of instructions that uses it. See `spec/10-backend.md` section 10.8, which says
47 /// what a group is and why nothing the allocator inserts can get into the middle of one, and
48 /// tamnd/rucc#540.
49 ///
50 /// A register in such a class can still be named, which is the whole reason the class is
51 /// described at all: a `long double` comes back from a call in `st0` and the convention has to
52 /// be able to say so.
53 pub allocatable: bool,
54}
55
56/// Which class a register or an operand belongs to.
57///
58/// A number into the file's classes rather than a name, because it is on every operand of every
59/// instruction and it is compared far more often than it is printed.
60#[derive(Debug, Clone, Copy, PartialEq, Eq, PartialOrd, Ord, Hash)]
61pub struct RegClass(u8);
62
63impl RegClass {
64 /// The class with that number.
65 #[must_use]
66 pub const fn new(number: u8) -> Self {
67 Self(number)
68 }
69
70 /// Its number, which is what indexes the file.
71 #[must_use]
72 pub const fn number(self) -> u8 {
73 self.0
74 }
75}
76
77/// One physical register, as its number inside its class.
78///
79/// The class is not in here. An operand carries its class already, and a fixed-register
80/// constraint is a constraint on an operand, so repeating the class would be a second copy of
81/// something that can disagree with the first.
82#[derive(Debug, Clone, Copy, PartialEq, Eq, PartialOrd, Ord, Hash)]
83pub struct PhysReg(u8);
84
85impl PhysReg {
86 /// The register with that number in its class.
87 #[must_use]
88 pub const fn new(number: u8) -> Self {
89 Self(number)
90 }
91
92 /// Its number inside its class.
93 #[must_use]
94 pub const fn number(self) -> u8 {
95 self.0
96 }
97}
98
99/// Every register a target has.
100#[derive(Debug, Clone, Copy, PartialEq, Eq)]
101pub struct RegFile {
102 classes: &'static [ClassInfo],
103}
104
105impl RegFile {
106 /// The file of a target whose registers nothing has described yet.
107 ///
108 /// A target reaches 1.0 with a real one. Until it has one, the honest answer to what
109 /// registers it has is that nobody has written them down, and that is a file with no
110 /// classes in it rather than a panic or a plausible guess.
111 pub const EMPTY: Self = Self::new(&[]);
112
113 /// A file made of those classes, numbered in the order they are given.
114 #[must_use]
115 pub const fn new(classes: &'static [ClassInfo]) -> Self {
116 Self { classes }
117 }
118
119 /// Its classes, each with the number it is known by.
120 pub fn classes(&self) -> impl Iterator<Item = (RegClass, &'static ClassInfo)> + use<> {
121 self.classes.iter().enumerate().map(|(number, info)| (RegClass::new(number as u8), info))
122 }
123
124 /// What is in one class.
125 #[must_use]
126 pub fn class(&self, class: RegClass) -> Option<&'static ClassInfo> {
127 self.classes.get(usize::from(class.number()))
128 }
129
130 /// The class of that name, such as `gpr`.
131 #[must_use]
132 pub fn class_named(&self, name: &str) -> Option<RegClass> {
133 self.classes().find(|(_, info)| info.name == name).map(|(class, _)| class)
134 }
135
136 /// Whether the allocator may put a value in that class, which is [`ClassInfo::allocatable`].
137 ///
138 /// A class the file does not have is not one either, which is the same answer as a class
139 /// nothing allocates from and is the one that keeps a caller from having to say what it means
140 /// by a class number the target never gave out.
141 #[must_use]
142 pub fn allocatable(&self, class: RegClass) -> bool {
143 self.class(class).is_some_and(|info| info.allocatable)
144 }
145
146 /// How many registers are in a class, which is one past the largest number in it.
147 #[must_use]
148 pub fn len(&self, class: RegClass) -> usize {
149 self.class(class).map_or(0, |info| info.regs.len())
150 }
151
152 /// Whether the file has no classes at all, which is a target that has not described one.
153 #[must_use]
154 pub fn is_empty(&self) -> bool {
155 self.classes.is_empty()
156 }
157
158 /// What one register is called.
159 #[must_use]
160 pub fn name(&self, class: RegClass, reg: PhysReg) -> Option<&'static str> {
161 self.class(class)?.regs.get(usize::from(reg.number())).copied()
162 }
163
164 /// The register of that name, and the class it is in.
165 ///
166 /// The name is written without the sigil, so `rax` rather than `$rax`.
167 #[must_use]
168 pub fn reg_named(&self, name: &str) -> Option<(RegClass, PhysReg)> {
169 for (class, info) in self.classes() {
170 if let Some(number) = info.regs.iter().position(|®| reg == name) {
171 return Some((class, PhysReg::new(number as u8)));
172 }
173 }
174 None
175 }
176
177 /// A name this file gives to two registers, if it gives one to two.
178 ///
179 /// Reading a dump back needs every name to say which register it means, and a target that
180 /// breaks that produces text that cannot be parsed rather than an error at the point of the
181 /// mistake. So every target's own test asks this, which is why it is here and public.
182 #[must_use]
183 pub fn duplicate(&self) -> Option<&'static str> {
184 let mut seen: Vec<&'static str> = Vec::new();
185 for (_, info) in self.classes() {
186 for ® in info.regs {
187 if seen.contains(®) {
188 return Some(reg);
189 }
190 seen.push(reg);
191 }
192 }
193 None
194 }
195}
196
197/// The storage an address is counted from, on a machine that has more than one.
198///
199/// x86 keeps a thread's own block of words at a fixed place reached through a segment register,
200/// and that block is the only thing anything here uses one for. The stack protector's canary lives
201/// in it, which is why `%fs:40` is an address a compiler writes and `%fs` is not a register any
202/// program names. Every other address this compiler writes is in the flat segment and says nothing
203/// at all, which is what `None` is.
204#[derive(Debug, Clone, Copy, PartialEq, Eq)]
205pub enum Segment {
206 /// `%fs`, which is where a thread's own block is on x86-64 under System V.
207 Fs,
208 /// `%gs`, which is where it is on x86-64 under Windows and inside a kernel.
209 Gs,
210}
211
212/// Where a target keeps the word a stack protector's canary is a copy of.
213///
214/// Not a register and not a symbol either, on the conventions here. The word is in the block a
215/// thread has to itself, which is reached through a segment register and no other way, so the only
216/// way to name it is a distance into that block. That is why `%fs:40` appears in every protected
217/// function glibc has ever linked and why no object file carries a relocation for it.
218///
219/// A convention that answers `None` is one this compiler has no protector for, and a command line
220/// that asks for one on such a target is told so rather than quietly given an unprotected frame.
221#[derive(Debug, Clone, Copy, PartialEq, Eq)]
222pub struct Guard {
223 /// The storage the word is in.
224 pub segment: Segment,
225 /// How far into it the word is.
226 pub at: i32,
227 /// The function called when the copy in the frame no longer matches it, which does not come
228 /// back.
229 pub fail: &'static str,
230}
231
232/// Which registers a calling convention gives which job.
233///
234/// This is the second half of a target description and it is separate from [`RegFile`] because
235/// the two do not vary together. x86-64 has one register file and two conventions over it, and
236/// they disagree about nearly everything below: `rdi` is where the first argument arrives on
237/// SysV and a register a callee has to preserve on Windows, and a Windows caller reserves
238/// thirty two bytes below the call that a SysV caller does not.
239///
240/// The allocation order is here rather than on a class because it is a consequence of what a
241/// call clobbers. A value that does not live across a call belongs in a register the callee is
242/// free to destroy, because putting it in a preserved one costs a push and a pop in the
243/// prologue of whichever function ends up owning it.
244///
245/// Every register named here is a register of the file the same target describes, and each list
246/// is in the order the convention uses them, so the fourth integer argument is `int_args[3]` and
247/// nothing has to count.
248#[derive(Debug, Clone, Copy, PartialEq, Eq)]
249pub struct CallRegs {
250 /// The class the general purpose registers named here are in.
251 ///
252 /// A register is a number inside its class, so a list of them says nothing about which
253 /// registers they are without this. Everything else could get the class from the operand it
254 /// came off, and a frame cannot, because a saved register is not an operand of anything.
255 pub int_class: RegClass,
256 /// The class the vector registers named here are in.
257 pub sse_class: RegClass,
258 /// The general purpose registers integer arguments arrive in, in order.
259 pub int_args: &'static [PhysReg],
260 /// The vector registers floating point arguments arrive in, in order.
261 ///
262 /// Whether an argument's position counts against both lists or only against its own is
263 /// [`CallRegs::shared_positions`].
264 pub sse_args: &'static [PhysReg],
265 /// Whether an argument's position counts against both argument lists or only against its own.
266 ///
267 /// False on SysV, which counts each separately, so a `double` after six integers is still in
268 /// `xmm0`. True on Windows, which counts one position for both, so a `double` in the third
269 /// position is in `xmm2` and `r8` is skipped.
270 pub shared_positions: bool,
271 /// The general purpose registers an integer return value comes back in.
272 pub int_returns: &'static [PhysReg],
273 /// The vector registers a floating point return value comes back in.
274 pub sse_returns: &'static [PhysReg],
275 /// The x87 registers a `long double` comes back in, which is empty on a target whose
276 /// `long double` is a `double`.
277 pub x87_returns: &'static [PhysReg],
278 /// The general purpose registers a call leaves alone, so a value in one survives it.
279 pub int_saved: &'static [PhysReg],
280 /// The vector registers a call leaves alone, which is none of them on SysV.
281 pub sse_saved: &'static [PhysReg],
282 /// The general purpose registers the allocator may hand out, in the order it prefers them.
283 ///
284 /// The stack pointer is never in this list, and neither is the frame pointer, which a
285 /// target could allocate when nothing needs a frame and which nothing here does yet.
286 pub int_order: &'static [PhysReg],
287 /// The vector registers the allocator may hand out, in the order it prefers them.
288 pub sse_order: &'static [PhysReg],
289 /// The stack pointer.
290 pub stack_pointer: PhysReg,
291 /// The frame pointer, which is the register a prologue puts the old stack pointer in.
292 pub frame_pointer: PhysReg,
293 /// Where a variadic call says how many vector registers it passed arguments in, when the
294 /// convention makes it say.
295 ///
296 /// SysV puts the count in `al` and a variadic callee reads it to decide whether to save the
297 /// vector argument registers at all, which is what makes a call to `printf` with no
298 /// floating point argument cheap.
299 pub vector_count: Option<PhysReg>,
300 /// How many bytes below the stack pointer a leaf function may use without moving it.
301 ///
302 /// A hundred and twenty eight on SysV and nothing on Windows. It is nothing in kernel code
303 /// on either, because an interrupt handler runs on the interrupted stack and writes over
304 /// exactly this, which is what `-mno-red-zone` is for.
305 pub red_zone: u32,
306 /// How many bytes a caller reserves below the call for the callee to spill its register
307 /// arguments into, which is thirty two on Windows and nothing on SysV.
308 pub shadow: u32,
309 /// What the stack pointer has to be a multiple of at the instruction that makes a call.
310 ///
311 /// Sixteen on every convention here, and it is a real obligation rather than a preference,
312 /// because a callee is entitled to use an aligned vector store on its own frame and gets a
313 /// fault rather than a wrong answer when a caller got this wrong.
314 pub stack_align: u32,
315 /// How many bytes the call instruction itself pushes before the callee starts running.
316 ///
317 /// Eight on x86-64, where the return address is on the stack, and nothing on a machine that
318 /// leaves it in a register. It is what makes the stack pointer misaligned on entry by
319 /// exactly one word, which every frame layout has to undo.
320 pub return_address: u32,
321 /// How many bytes one general purpose register takes when it is saved on the stack.
322 pub word: u32,
323 /// What DWARF calls each register, one list per class in the order the file numbers the
324 /// classes, and inside a list in the order the class numbers its registers.
325 ///
326 /// The two numberings are a real difference and not a formality. On x86-64 the machine puts
327 /// `rcx` at one and DWARF puts `rdx` there, so a table written with the machine's numbers is
328 /// well formed and describes the wrong registers, which is a backtrace with plausible
329 /// nonsense in it rather than an error. Shorter than the file when the classes at the end are
330 /// ones DWARF has no column for, and empty on a target nobody has written this down for yet.
331 pub dwarf: &'static [&'static [u16]],
332 /// The column an unwind table files the return address under.
333 ///
334 /// Not a register on x86-64, where it is sixteen and `rip` is not a register anything can
335 /// name, and a real one on a machine that returns through a link register.
336 pub dwarf_return_address: u16,
337 /// Where the word a stack protector's canary is copied from lives, on a convention that has
338 /// somewhere to put one.
339 ///
340 /// Here rather than beside the frame instructions because it is a fact about the runtime the
341 /// code is linked against rather than about the machine. The two x86-64 conventions share
342 /// every instruction the check is made of and disagree about this.
343 pub guard: Option<Guard>,
344}
345
346impl CallRegs {
347 /// The number DWARF gives that register, or `None` for one it has no column for.
348 ///
349 /// The x87 stack is the case that answers `None` on x86-64, and it is not an omission: a
350 /// register whose name means whichever one is on top of the stack is not one a table can have
351 /// a column for. Nothing saves one across a call either, so nothing ever asks.
352 #[must_use]
353 pub fn dwarf(&self, class: RegClass, reg: PhysReg) -> Option<u16> {
354 self.dwarf.get(usize::from(class.number()))?.get(usize::from(reg.number())).copied()
355 }
356
357 /// Whether a call preserves that general purpose register.
358 #[must_use]
359 pub fn preserves_int(&self, reg: PhysReg) -> bool {
360 self.int_saved.contains(®)
361 }
362
363 /// Whether a call preserves that vector register.
364 #[must_use]
365 pub fn preserves_sse(&self, reg: PhysReg) -> bool {
366 self.sse_saved.contains(®)
367 }
368}
369
370/// Where one of the values a call passes is.
371#[derive(Debug, Clone, Copy, PartialEq, Eq)]
372pub enum Where {
373 /// In that register.
374 Reg(PhysReg),
375 /// That many bytes up the argument area, which is where the stack pointer points at the
376 /// instruction that makes the call and is one word above the return address in the callee.
377 Stack(u32),
378}
379
380/// Where the values a call passes are, worked out one after another.
381///
382/// [`crate::abi::Call`] answers a different question: whether a value travels in registers at all
383/// and in how many, which is what decides the shape of a signature and is settled before the IR
384/// for a function exists. This answers the question after it. Given values in the order the
385/// signature holds them, it says which register each one is in and how far up the argument area
386/// the ones that got no register are. Both count registers, and they agree about how many fit
387/// because they read the same lists, but they run at opposite ends of the compiler and neither
388/// can be the other.
389///
390/// Ask about each value in the order the signature holds them. Asking out of order answers about
391/// a different signature, because where a value is depends on every value before it.
392#[derive(Debug, Clone)]
393pub struct Places<'a> {
394 regs: &'a CallRegs,
395 int: usize,
396 sse: usize,
397 stack: u32,
398}
399
400impl<'a> Places<'a> {
401 /// Where the first value is, for a call under that convention.
402 #[must_use]
403 pub fn new(regs: &'a CallRegs) -> Self {
404 Self { regs, int: 0, sse: 0, stack: regs.shadow }
405 }
406
407 /// Where the next value is, when it travels in a general purpose register.
408 pub fn integer(&mut self) -> Where {
409 match self.regs.int_args.get(self.position(false)) {
410 Some(®) => {
411 self.int += 1;
412 Where::Reg(reg)
413 }
414 None => self.on_stack(self.regs.word, self.regs.word),
415 }
416 }
417
418 /// Where the next value is, when it travels in a vector register.
419 pub fn float(&mut self) -> Where {
420 match self.regs.sse_args.get(self.position(true)) {
421 Some(®) => {
422 self.sse += 1;
423 Where::Reg(reg)
424 }
425 None => self.on_stack(self.regs.word, self.regs.word),
426 }
427 }
428
429 /// Where the next value is, when it travels in memory whatever is left.
430 ///
431 /// Every argument area is a run of whole words, so a value narrower than one still takes one
432 /// and a value that is not a whole number of them is rounded up. An alignment wider than a
433 /// word is respected, which is what a sixteen byte aligned structure passed by value needs.
434 pub fn on_stack(&mut self, size: u32, align: u32) -> Where {
435 let word = self.regs.word;
436 let at = self.stack.next_multiple_of(align.max(word));
437 self.stack = at.saturating_add(size.max(word).next_multiple_of(word));
438 Where::Stack(at)
439 }
440
441 /// How many bytes of argument area the values so far need, shadow space included.
442 #[must_use]
443 pub fn size(&self) -> u32 {
444 self.stack
445 }
446
447 /// How many general purpose argument registers the values so far took.
448 ///
449 /// What a variadic callee needs and nothing else does. `va_start` has to record how far into
450 /// each of the two register sequences the arguments the signature names got, because the first
451 /// argument it does not name is the one after them, and asking here is the only way to know
452 /// that is the same count the caller worked from.
453 #[must_use]
454 pub fn integers(&self) -> usize {
455 self.int
456 }
457
458 /// How many vector argument registers the values so far took.
459 #[must_use]
460 pub fn floats(&self) -> usize {
461 self.sse
462 }
463
464 /// The position the next value of a kind is at.
465 fn position(&self, sse: bool) -> usize {
466 if self.regs.shared_positions {
467 self.int + self.sse
468 } else if sse {
469 self.sse
470 } else {
471 self.int
472 }
473 }
474}
475
476impl fmt::Display for RegFile {
477 /// The file as a dump reads it, one class to a line.
478 fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
479 for (_, info) in self.classes() {
480 writeln!(f, "class {} : i{} = {}", info.name, info.bits, info.regs.join(", "))?;
481 }
482 Ok(())
483 }
484}
485
486#[cfg(test)]
487mod tests {
488 use super::*;
489
490 static GPR: [&str; 3] = ["rax", "rcx", "rdx"];
491 static XMM: [&str; 2] = ["xmm0", "xmm1"];
492 static CLASSES: [ClassInfo; 2] = [
493 ClassInfo { name: "gpr", bits: 64, regs: &GPR, allocatable: true },
494 ClassInfo { name: "xmm", bits: 128, regs: &XMM, allocatable: true },
495 ];
496 static FILE: RegFile = RegFile::new(&CLASSES);
497
498 #[test]
499 fn a_class_is_found_by_its_name() {
500 let gpr = FILE.class_named("gpr").expect("the file has a gpr class");
501 assert_eq!(FILE.len(gpr), 3);
502 assert_eq!(FILE.class(gpr).map(|info| info.bits), Some(64));
503 assert_eq!(FILE.class_named("vec"), None);
504 }
505
506 #[test]
507 fn a_register_is_found_by_its_name_and_names_itself_back() {
508 let (class, reg) = FILE.reg_named("xmm1").expect("the file has xmm1");
509 assert_eq!(FILE.class(class).map(|info| info.name), Some("xmm"));
510 assert_eq!(reg.number(), 1);
511 assert_eq!(FILE.name(class, reg), Some("xmm1"));
512 assert_eq!(FILE.reg_named("r15"), None);
513 }
514
515 #[test]
516 fn a_number_past_the_end_of_a_class_has_no_name() {
517 let gpr = FILE.class_named("gpr").expect("the file has a gpr class");
518 assert_eq!(FILE.name(gpr, PhysReg::new(3)), None);
519 assert_eq!(FILE.name(RegClass::new(7), PhysReg::new(0)), None);
520 }
521
522 #[test]
523 fn a_file_that_names_two_registers_alike_says_so() {
524 assert_eq!(FILE.duplicate(), None);
525 static BOTH: [ClassInfo; 2] = [
526 ClassInfo { name: "gpr", bits: 64, regs: &GPR, allocatable: true },
527 ClassInfo { name: "shadow", bits: 64, regs: &GPR, allocatable: true },
528 ];
529 assert_eq!(RegFile::new(&BOTH).duplicate(), Some("rax"));
530 }
531
532 #[test]
533 fn a_class_nothing_allocates_from_is_still_a_class_in_every_other_way() {
534 static WITH_STACK: [ClassInfo; 2] = [
535 ClassInfo { name: "gpr", bits: 64, regs: &GPR, allocatable: true },
536 ClassInfo { name: "x87", bits: 80, regs: &XMM, allocatable: false },
537 ];
538 let file = RegFile::new(&WITH_STACK);
539 let stack = file.class_named("x87").expect("the file has an x87 class");
540
541 assert!(!file.allocatable(stack));
542 assert!(file.allocatable(file.class_named("gpr").expect("the file has a gpr class")));
543
544 // Everything else about it works, which is the point of describing a class the allocator
545 // will not touch: the registers are counted, are named, and name themselves back.
546 assert_eq!(file.len(stack), 2);
547 assert_eq!(file.name(stack, PhysReg::new(1)), Some("xmm1"));
548 assert_eq!(file.reg_named("xmm1"), Some((stack, PhysReg::new(1))));
549 }
550
551 #[test]
552 fn a_class_the_file_does_not_have_is_not_one_to_allocate_from_either() {
553 assert!(!FILE.allocatable(RegClass::new(7)));
554 }
555
556 #[test]
557 fn the_file_prints_one_class_to_a_line() {
558 assert_eq!(
559 FILE.to_string(),
560 "class gpr : i64 = rax, rcx, rdx\nclass xmm : i128 = xmm0, xmm1\n"
561 );
562 }
563
564 /// Two integer registers, two vector registers and nothing else, so running out of them takes
565 /// three arguments rather than seven and the interesting case is the one being tested.
566 fn convention(shared: bool, shadow: u32) -> CallRegs {
567 static INT: [PhysReg; 2] = [PhysReg::new(0), PhysReg::new(1)];
568 static SSE: [PhysReg; 2] = [PhysReg::new(10), PhysReg::new(11)];
569 static NONE: [PhysReg; 0] = [];
570 CallRegs {
571 int_class: RegClass::new(0),
572 sse_class: RegClass::new(1),
573 int_args: &INT,
574 sse_args: &SSE,
575 shared_positions: shared,
576 int_returns: &INT,
577 sse_returns: &SSE,
578 x87_returns: &NONE,
579 int_saved: &NONE,
580 sse_saved: &NONE,
581 int_order: &INT,
582 sse_order: &SSE,
583 stack_pointer: PhysReg::new(4),
584 frame_pointer: PhysReg::new(5),
585 vector_count: None,
586 red_zone: 0,
587 shadow,
588 stack_align: 16,
589 return_address: 8,
590 word: 8,
591 // Empty, which is all a convention made up for a test of argument placement needs to
592 // say about a question it never asks.
593 dwarf: &[],
594 dwarf_return_address: 16,
595 guard: None,
596 }
597 }
598
599 #[test]
600 fn counting_each_kind_separately_leaves_the_first_vector_register_to_the_first_float() {
601 let regs = convention(false, 0);
602 let mut places = Places::new(®s);
603 assert_eq!(places.integer(), Where::Reg(PhysReg::new(0)));
604 assert_eq!(places.integer(), Where::Reg(PhysReg::new(1)));
605 // Two integers went past, and a convention that counts separately has not spent a vector
606 // register on either of them.
607 assert_eq!(places.float(), Where::Reg(PhysReg::new(10)));
608 assert_eq!(places.size(), 0);
609 }
610
611 #[test]
612 fn counting_one_position_for_both_skips_the_register_the_other_kind_would_have_used() {
613 let regs = convention(true, 0);
614 let mut places = Places::new(®s);
615 assert_eq!(places.integer(), Where::Reg(PhysReg::new(0)));
616 // The second position, so the second vector register, and the second integer register is
617 // spent whether anything is in it or not.
618 assert_eq!(places.float(), Where::Reg(PhysReg::new(11)));
619 assert_eq!(places.integer(), Where::Stack(0));
620 }
621
622 #[test]
623 fn running_out_of_one_kind_of_register_does_not_touch_the_other() {
624 let regs = convention(false, 0);
625 let mut places = Places::new(®s);
626 assert_eq!(places.integer(), Where::Reg(PhysReg::new(0)));
627 assert_eq!(places.integer(), Where::Reg(PhysReg::new(1)));
628 assert_eq!(places.integer(), Where::Stack(0));
629 assert_eq!(places.float(), Where::Reg(PhysReg::new(10)));
630 assert_eq!(places.size(), 8);
631 }
632
633 #[test]
634 fn the_argument_area_starts_above_the_shadow_space_and_keeps_every_value_aligned() {
635 let regs = convention(false, 32);
636 let mut places = Places::new(®s);
637 // A Windows caller reserves this whether it passes anything on the stack or not, which is
638 // why an empty area is thirty two bytes rather than none.
639 assert_eq!(places.size(), 32);
640 assert_eq!(places.on_stack(4, 4), Where::Stack(32));
641 // Sixteen byte alignment skips the word at 40, which is what a vector or an over-aligned
642 // structure passed by value asks for. The four byte value before it still took a whole
643 // word, which is why the skipped word is there to skip.
644 assert_eq!(places.on_stack(16, 16), Where::Stack(48));
645 assert_eq!(places.on_stack(8, 8), Where::Stack(64));
646 assert_eq!(places.size(), 72);
647 }
648}