rucc_codegen/varargs.rs
1//! What a function does to read the arguments its own signature does not name.
2//!
3//! Design: `spec/12-abi-and-runtime.md`, which is where the layout below comes from.
4//!
5//! A variadic callee has a problem an ordinary one does not. Six of its arguments arrived in
6//! general purpose registers and eight more in vector ones, and it cannot know which of those hold
7//! anything, because what it was passed is a thing only the caller knew. Registers are also not
8//! addressable, and `va_arg` walks arguments one after another at run time, which is walking
9//! addresses. So the convention says the callee spills all fourteen of them into a block of its own
10//! frame on the way in, and from then on every argument it was passed is somewhere in memory: the
11//! ones that came in registers are in that block, and the ones that did not are in the caller's
12//! argument area where they were left.
13//!
14//! That block is the register save area, and a `va_list` is four fields saying how far into the
15//! arguments the walk has got:
16//!
17//! ```text
18//! offset 0 gp_offset bytes into the save area of the next argument from a gpr
19//! offset 4 fp_offset bytes into the save area of the next argument from an xmm
20//! offset 8 overflow_arg_area the next argument that came in the caller's memory
21//! offset 16 reg_save_area the bottom of the save area
22//! ```
23//!
24//! `va_start` fills all four in. The two offsets do not start at zero: the arguments the signature
25//! does name took registers too, and they took the first ones, so each offset starts past them.
26//! `va_arg` is then one question asked at run time, which is whether the offset for its file has run
27//! off the end of the save area. If it has not, the argument is in the save area and the offset
28//! steps on by a slot. If it has, the argument is in the caller's memory and the overflow pointer
29//! steps on by a word instead.
30//!
31//! # Why the layout is exactly the psABI's and not a convenient one
32//!
33//! Nothing outside the function can see the save area, so its shape looks like a private decision.
34//! It is not one, because a `va_list` is a thing a program hands to another function, and the
35//! function it usually hands it to is `vfprintf` in the C library, which somebody else compiled and
36//! which walks the list by the rules in the psABI document. So the offsets are the document's
37//! offsets, the area is the document's one hundred and seventy six bytes, and the eight bytes
38//! between two general purpose slots and the sixteen between two vector ones are the document's too.
39//!
40//! The upper half of a vector slot is the document's too, and what is in it is the top of a
41//! `_Float128`. A slot is sixteen bytes wide because the register is, and a quad is the one type
42//! here that fills one, so the spill writes all sixteen bytes of every vector register and a
43//! `va_arg` of a quad reads all sixteen back. gcc writes the same sixteen with the same instruction,
44//! which is what makes a list built here readable by a walk somebody else compiled. Anything wider
45//! than a register would be a vector type, which is issue #200 and is not a thing yet.
46//!
47//! # What is here and what is next door
48//!
49//! `va_arg` becomes a compare and a branch, and this is where, because a rewrite that needs new
50//! blocks has to happen before selection for the reason [`crate::expand`] gives. Everything it needs
51//! is in the list it was handed, so it needs nothing from the frame and can run here.
52//!
53//! An aggregate read off a list is the same instruction under another name, because an aggregate is
54//! not a value and there is nothing for one result to be, so that one answers where the object is
55//! instead. Over two eightbytes it is class MEMORY whatever its members are, which means it is in
56//! the caller's argument area and there is no question to ask about which half of the walk it is
57//! in: the overflow pointer says where it is and steps on past it. Sixteen bytes and under arrived
58//! in registers, and then the question is the one a scalar asks, with two differences. The object
59//! takes a register of each file for each of its eightbytes, so the room in the save area has to be
60//! there for all of them at once and the offsets step on by all of them at once. And the halves of
61//! it in the save area are not next to each other, so the answer cannot be an address in the area:
62//! the eightbytes are copied out into a buffer of the function's own and the answer is that.
63//!
64//! Which file each eightbyte came from is the classification, which is an answer about a C type and
65//! not one the size and the alignment give. It arrives on the instruction, worked out by the front
66//! end, which is the last thing to hold a type. An object with no slots on it is one the
67//! classification sent to the argument area, and that is what tells the two halves below apart.
68//!
69//! `va_start` is the other way round. Three of the four fields it writes are distances into a frame
70//! that does not exist yet, so it stays an instruction as far as [`crate::lower`], which builds it
71//! out of the frame the way it builds an `alloca`. The spill that fills the save area is written
72//! there for the same reason.
73//!
74//! # The other kind of list
75//!
76//! Windows has none of that. Its convention counts the two register files as one run of positions,
77//! so an argument's position says which register of either file it is in and the two walks above
78//! are one walk. It also gives every argument exactly one eight byte slot whatever it is: anything
79//! that is not one, two, four or eight bytes travels as the address of a copy the caller owns, and
80//! a float beyond the ones the signature names travels in the general purpose register at its
81//! position as well as in the vector one, because a callee with no prototype has no way to know
82//! which file to look in.
83//!
84//! What that comes to is that every argument a variadic callee was passed is already one contiguous
85//! run of words in the caller's argument area, since the first four of them are homed in the thirty
86//! two bytes of shadow space the caller reserved above the return address and the rest follow.
87//! There is nothing to gather and nowhere to gather it to. So a `va_list` is a `char *` pointing at
88//! the next of those words, `va_start` is one `lea` and one store, and `va_arg` is a load and an
89//! eight byte step with no compare, no branch and no second file. The register save area of the
90//! four field list is, on this convention, the caller's shadow space, and the callee's prologue
91//! writes its leftover argument registers into it rather than into a block of its own.
92//!
93//! An argument that travelled by reference costs one more load and that is the whole of the
94//! difference: the slot holds the address of the copy rather than the copy. Which arguments those
95//! are is a question about the size and nothing else, so the classification the front end put on a
96//! `va_object` is not read here at all.
97
98pub mod aapcs;
99
100use rucc_base::float::Format;
101use rucc_ir::{
102 Block, Builder, Extra, Flags, Float, Func, Imm, Inst, InstData, IntPred, MemInfo, MemOrder,
103 Opcode, Restrict, Type, Value,
104};
105use rucc_target::{CallRegs, Slot, VaList, Variadic};
106
107/// Where the count of general purpose register bytes already walked is.
108pub const GP_OFFSET: i64 = 0;
109/// Where the count of vector register bytes already walked is.
110pub const FP_OFFSET: i64 = 4;
111/// Where the pointer to the next argument in the caller's memory is.
112pub const OVERFLOW: i64 = 8;
113/// Where the pointer to the bottom of the register save area is.
114pub const SAVE_AREA: i64 = 16;
115/// How many bytes the four field `va_list` is, which is what a `va_copy` of one moves.
116pub const SIZE: u64 = 24;
117/// How wide the slot one vector register is saved in is, which is how wide the register is whatever
118/// this actually writes into it.
119pub const VECTOR_SLOT: u32 = 16;
120
121/// How big a callee's register save area is and where its two halves are.
122///
123/// Worked out from the convention rather than written down, so that a convention with a different
124/// number of argument registers gets an area the right size for it without anything here changing.
125#[derive(Debug, Clone, Copy, PartialEq, Eq)]
126pub struct Area {
127 /// How many bytes of it the general purpose registers take, which is also where the vector half
128 /// begins, since the general purpose half is first and starts at nothing.
129 pub floats_at: u32,
130 /// How many bytes the whole of it is.
131 pub size: u32,
132 /// How many registers of each file it holds, general purpose first.
133 counts: (u32, u32),
134 /// How far apart two general purpose slots are, which is a word.
135 word: u32,
136}
137
138impl Area {
139 /// The save area a variadic callee under that convention needs.
140 ///
141 /// Two shapes, and what tells them apart is the convention's own answer about how it counts
142 /// argument positions. One that counts the two files apart spills all of both into a block of
143 /// the callee's own frame, which is the psABI's register save area and is what the four field
144 /// list walks. One that counts them as one run homes each register argument in the word of the
145 /// caller's argument area that belongs to its position, and that run of words is the area. The
146 /// vector file has nothing in it there: a float beyond the ones the signature names travels in
147 /// the general purpose register at its position as well, so the copy a walk reads is that one.
148 #[must_use]
149 pub fn of(conv: &CallRegs) -> Self {
150 let ints = u32::try_from(conv.int_args.len()).unwrap_or(0);
151 let floats = u32::try_from(conv.sse_args.len()).unwrap_or(0);
152 if conv.shared_positions {
153 let size = conv.word * ints;
154 return Self { floats_at: size, size, counts: (ints, 0), word: conv.word };
155 }
156 let floats_at = conv.word * ints;
157 Self {
158 floats_at,
159 size: floats_at + VECTOR_SLOT * floats,
160 counts: (ints, floats),
161 word: conv.word,
162 }
163 }
164
165 /// How far apart two of a file's slots are.
166 #[must_use]
167 pub fn stride(self, float: bool) -> u32 {
168 if float { VECTOR_SLOT } else { self.word }
169 }
170
171 /// Where a file's first slot is, which is what `va_start` writes into that file's field when
172 /// the signature named no argument that file carried.
173 #[must_use]
174 pub fn starts_at(self, float: bool) -> u32 {
175 if float { self.floats_at } else { 0 }
176 }
177
178 /// Where a file's slots end, which is where the vector half begins for the general purpose
179 /// file and the end of the whole area for the vector one.
180 ///
181 /// This is what an object taking more than one register of a file is measured against: the
182 /// psABI asks whether the offset is at or below the end less a slot for each register the
183 /// object wants, and one register of it is the same question [`Area::last`] asks.
184 #[must_use]
185 pub fn ends_at(self, float: bool) -> u32 {
186 if float { self.size } else { self.floats_at }
187 }
188
189 /// How many registers of a file the area holds.
190 #[must_use]
191 pub fn holds(self, float: bool) -> u32 {
192 if float { self.counts.1 } else { self.counts.0 }
193 }
194
195 /// The offset of a file's last slot, which is the threshold `va_arg` compares against.
196 ///
197 /// The last slot's own offset and not the end of the area, because an offset equal to the end
198 /// is one slot past the last argument while an offset a slot below the end is the last argument
199 /// itself. An empty file has no such offset and nothing here has one.
200 #[must_use]
201 pub fn last(self, float: bool) -> Option<u32> {
202 let last = self.holds(float).checked_sub(1)?;
203 Some(self.starts_at(float) + self.stride(float) * last)
204 }
205}
206
207/// Rewrites every `va_arg`, `va_copy` and `va_end` in the function, and leaves `va_start` alone.
208///
209/// Those three are the ones made only of reads and writes of a list some pointer already reaches,
210/// so none of them needs to know anything about the frame and all three can be done here.
211/// `va_start` is the one that does need the frame, and [`crate::lower`] has it.
212///
213/// A convention whose list is a plain pointer gets the walk the module doc's last section
214/// describes instead, which is the same three rewrites over a list of one field, and AAPCS64 gets
215/// the walk [`aapcs`] describes. Apple's AArch64 has the plain pointer, and its scalars take the
216/// same walk, but an object there is as many words as it needs rather than one, which is the
217/// memory half of the AAPCS64 walk and is `aapcs::stacked`. Windows on AArch64 walks objects the
218/// same way, since its homed x registers and the caller's memory above them are one run of words
219/// and an object of up to sixteen bytes takes as many of them as it needs.
220pub fn lists(func: &mut Func, conv: &CallRegs) {
221 let area = Area::of(conv);
222 let word = u64::from(conv.word);
223 let found: Vec<Inst> =
224 func.blocks().flat_map(|block| func.insts(block).collect::<Vec<_>>()).collect();
225 for inst in found {
226 match (func[inst].opcode, conv.list) {
227 (Opcode::VaArg, VaList::SysV) => next(func, inst, area),
228 (Opcode::VaArg, VaList::Aapcs) => aapcs::next(func, inst),
229 (Opcode::VaArg, VaList::CharPointer | VaList::VoidPointer) => value(func, inst, word),
230 (Opcode::VaObject, VaList::SysV) => object(func, inst, area),
231 (Opcode::VaObject, VaList::Aapcs) => aapcs::object(func, inst),
232 (Opcode::VaObject, VaList::CharPointer)
233 if matches!(conv.abi.variadic, Variadic::AlwaysMemory | Variadic::IntegersOnly) =>
234 {
235 aapcs::stacked(func, inst);
236 }
237 (Opcode::VaObject, VaList::CharPointer | VaList::VoidPointer) => {
238 held(func, inst, word);
239 }
240 (Opcode::VaCopy, VaList::SysV) => copy(func, inst, SIZE),
241 (Opcode::VaCopy, VaList::Aapcs) => copy(func, inst, aapcs::SIZE),
242 (Opcode::VaCopy, VaList::CharPointer | VaList::VoidPointer) => copy(func, inst, word),
243 // Nothing at all, which is what the psABI says it is. The instruction was still worth
244 // emitting, because it says the list stops being read here, and here is where that
245 // stops being worth saying.
246 (Opcode::VaEnd, _) => func.remove_inst(inst),
247 _ => {}
248 }
249 }
250}
251
252/// One `va_arg`, as the branch on whether the argument it wants is still in the save area.
253///
254/// The block the instruction was in is cut in two at the instruction. What was above it stays where
255/// it is and gets the compare and the branch, what was below it moves into a new block that takes
256/// the address as a parameter, and the `va_arg` itself becomes the load at the top of that block.
257/// Turning it into the load rather than replacing it keeps the value the rest of the function reads
258/// the value it already read, so nothing has to be substituted anywhere, and the two paths meet at a
259/// block parameter because the IR has no variables for them to meet at.
260fn next(func: &mut Func, inst: Inst, area: Area) {
261 let Some(result) = func[inst].first_result else { return };
262 let Some(&list) = func[func[inst].args].first() else { return };
263 let ty = func[result].ty;
264 let Some(block) = func.block_of(inst) else { return };
265 let span = func.span(inst);
266 // A `long double` is class X87, which is a class with no register in the save area, so it is
267 // always in the caller's argument area and there is no question to ask about it. That is this
268 // walk with the register half deleted, which is little enough to be written out separately
269 // rather than folded in as a special case of a branch that is never taken.
270 if ty.is_float() && ty.bits() == 80 {
271 x87(func, inst, area);
272 return;
273 }
274 // A `_Float128` is the one value wider than a general purpose register that a single register
275 // still holds. It is class SSE followed by SSEUP, which name one vector register between them,
276 // so it walks the vector half the way a `double` does and takes the whole of a slot instead of
277 // the low half of one. Where it stops being a wider `double` is the caller's argument area,
278 // which gives it two words aligned to two rather than the one word every value the machine
279 // computes in gets.
280 let quad = ty.is_float() && ty.bits() == 128;
281 // A scalar of a width a register holds, which is every type the algorithm below is right about.
282 // An `__int128` takes two slots with an alignment rule of its own, which is the walk `object`
283 // makes for a small structure, so `rucc-lower` reads one as that and it never arrives here.
284 // Anything else wider is left alone and refused by name further down.
285 if !quad
286 && (!ty.is_scalar() || ty.bits() > 64 || !(ty.is_int() || ty.is_float() || ty.is_ptr()))
287 {
288 return;
289 }
290 let float = ty.is_float();
291 let Some(last) = area.last(float) else { return };
292 let field = if float { FP_OFFSET } else { GP_OFFSET };
293
294 // Everything below the instruction, taken out before anything is built, because the builder
295 // appends to a block and this block has to end at the branch.
296 let rest: Vec<Inst> = func.insts(block).skip_while(|&at| at != inst).skip(1).collect();
297 let taken = func.create_block();
298 let overflowed = func.create_block();
299 let join = func.create_block();
300 let addr = func.append_param(join, Type::PTR);
301 func.remove_inst(inst);
302 for &at in &rest {
303 func.remove_inst(at);
304 }
305
306 // The question, in the block the `va_arg` used to be in. Unsigned, because an offset into the
307 // save area counts bytes and is never negative, and because what the field holds once the
308 // register arguments have all been walked is a number past the end rather than a small one.
309 let mut build = Builder::new(func, block).at(span);
310 let counter = offset(&mut build, list, field);
311 let walked = build.load(Type::int(32), counter, info(4, 4), Flags::default());
312 let end = build.iconst(Type::int(32), i128::from(last));
313 let inside = build.icmp(IntPred::Ule, walked, end);
314 build.br_if(inside, taken, &[], overflowed, &[]);
315
316 // The register path: the argument is in the save area at the offset the field holds, and the
317 // field steps on by one slot of its file.
318 let mut build = Builder::new(func, taken).at(span);
319 let base = offset(&mut build, list, SAVE_AREA);
320 let save = build.load(Type::PTR, base, info(8, 8), Flags::default());
321 let wide = build.unary(Opcode::ZExt, walked, Type::int(64));
322 let found = added(&mut build, save, wide);
323 let stride = build.iconst(Type::int(32), i128::from(area.stride(float)));
324 let stepped = build.binary(Opcode::Add, walked, stride, Flags::default());
325 let counter = offset(&mut build, list, field);
326 build.store(stepped, counter, info(4, 4), Flags::default());
327 build.jump(join, &[found]);
328
329 // The memory path: the argument is where the caller left it, and the pointer steps on past it.
330 // By a word for everything the machine computes in, because the caller's argument area is a run
331 // of whole words whatever is in them, and by two words rounded up to two for a quad, which is
332 // the slot the class gets from a function that names it as well as from one that does not.
333 let mut build = Builder::new(func, overflowed).at(span);
334 let (slot, want) = if quad {
335 (u64::from(VECTOR_SLOT), VECTOR_SLOT)
336 } else {
337 (u64::from(area.word), area.word)
338 };
339 let at = overflow(&mut build, list, area, slot, want);
340 let here = build.unary(Opcode::IntToPtr, at, Type::PTR);
341 build.jump(join, &[here]);
342
343 // And the load the program actually wrote, over the address the two paths agreed on, with
344 // everything that used to follow it behind it in the order it was written.
345 let bytes = ty.bits() / 8;
346 let mem = func.add_mem(info(u64::from(bytes), bytes));
347 let args = func.push_values(&[addr]);
348 let data = &mut func[inst];
349 data.opcode = Opcode::Load;
350 data.args = args;
351 data.extra = Extra::Mem(mem);
352 data.flags = data.flags.intersection(Flags::legal_on(Opcode::Load));
353 func.append_inst(join, inst);
354 for at in rest {
355 func.append_inst(join, at);
356 }
357}
358
359/// One `va_arg` of a `long double`, which is the memory half of the walk and nothing else.
360///
361/// The psABI gives a `long double` class X87 and there is no x87 register among the ones a variadic
362/// callee spills, so a `long double` passed to one is in the caller's argument area whatever else
363/// the call passed and however few arguments came before it. Nothing is asked, no block is made,
364/// and the overflow pointer is rounded up, read and stepped on.
365///
366/// Sixteen bytes and sixteen byte alignment are the psABI's numbers for the class rather than the
367/// type's own: the value is ten bytes of x87 and the argument slot it sits in is padded out to two
368/// words, which is why the load below is ten bytes wide and the step is sixteen.
369fn x87(func: &mut Func, inst: Inst, area: Area) {
370 /// What one of these takes in the argument area.
371 const SLOT: u64 = 16;
372 /// What the argument area aligns one to.
373 const ALIGN: u32 = 16;
374
375 let Some(result) = func[inst].first_result else { return };
376 let Some(&list) = func[func[inst].args].first() else { return };
377 let Some(block) = func.block_of(inst) else { return };
378 let bytes = func[result].ty.bits() / 8;
379 let span = func.span(inst);
380
381 // Everything below the instruction, taken out before anything is built, for the reason the
382 // branching walk takes it out: a builder appends to a block, and the instruction has to end up
383 // behind what is built and in front of what followed it.
384 let rest: Vec<Inst> = func.insts(block).skip_while(|&at| at != inst).skip(1).collect();
385 func.remove_inst(inst);
386 for &at in &rest {
387 func.remove_inst(at);
388 }
389
390 let mut build = Builder::new(func, block).at(span);
391 let at = overflow(&mut build, list, area, SLOT, ALIGN);
392 let addr = build.unary(Opcode::IntToPtr, at, Type::PTR);
393
394 let mem = func.add_mem(info(u64::from(bytes), ALIGN));
395 let args = func.push_values(&[addr]);
396 let data = &mut func[inst];
397 data.opcode = Opcode::Load;
398 data.args = args;
399 data.extra = Extra::Mem(mem);
400 data.flags = data.flags.intersection(Flags::legal_on(Opcode::Load));
401 func.append_inst(block, inst);
402 for at in rest {
403 func.append_inst(block, at);
404 }
405}
406
407/// One `va_object`, as the address the object can be read from.
408///
409/// Two shapes, and the slots on the instruction are what say which. An object with none is one the
410/// classification sent to the caller's argument area, which is what everything over two eightbytes
411/// is whatever its members are. There is no question to ask about that one: the overflow pointer
412/// says where it is and steps on past it, and no block is needed.
413///
414/// An object with slots arrived in registers, and that is the branch [`next`] builds for a scalar
415/// with the object's own two differences: the room has to be there for every one of its slots at
416/// once, and what is answered is a buffer the slots were copied into rather than an address in the
417/// save area, because two eightbytes of one object are not next to each other in there.
418///
419/// The address is answered rather than a copy of the object, which is what the instruction is for
420/// and what gcc does with the same argument. An object in the caller's memory is already somewhere
421/// addressable, and the copy the C standard describes is the assignment the caller of `va_arg`
422/// wrote, which the front end has already built around this.
423fn object(func: &mut Func, inst: Inst, area: Area) {
424 let Extra::VaObject(at) = func[inst].extra else { return };
425 let object = func[at];
426 let MemInfo { size, align, .. } = func[object.mem];
427 let slots: Vec<Slot> = func[object.slots].to_vec();
428 let Some(&list) = func[func[inst].args].first() else { return };
429 let Some(block) = func.block_of(inst) else { return };
430 if func[inst].first_result.is_none() || !fits(&slots, area) {
431 return;
432 }
433 let span = func.span(inst);
434
435 // The buffer the register form copies into, made before anything else, because an alloca of
436 // a fixed size belongs in the entry block and the walk below is built where the instruction
437 // is. It is as big as the slots reach rather than as big as the object, which is more for an
438 // object whose last eightbyte is a part of one: five bytes travel in a whole register and
439 // come out of the area as a whole register, so the buffer has eight bytes for them to land
440 // in and the three past the object are never read.
441 // It is also aligned to whatever the widest slot has to be stored at rather than to whatever
442 // the object asked for, which is the same number for every object a C program can write and is
443 // not the same statement. A slot holding a whole vector register moves as a `movaps`, and a
444 // `movaps` faults on an address that is not a multiple of sixteen, so the buffer says sixteen
445 // because the copy needs it and not because the type happened to ask.
446 let reach = slots.iter().map(|&slot| slot.offset() + width(slot)).max().unwrap_or(0);
447 let wants = slots
448 .iter()
449 .map(|&slot| slot_align(area, is_float(slot), width(slot)))
450 .max()
451 .unwrap_or(1)
452 .max(align);
453 let room = buffer(func, inst, reach.max(size), wants);
454
455 // Everything below the instruction, taken out before anything is built, because a builder
456 // appends to a block and the register form ends this one at a branch.
457 let rest: Vec<Inst> = func.insts(block).skip_while(|&at| at != inst).skip(1).collect();
458 func.remove_inst(inst);
459 for &at in &rest {
460 func.remove_inst(at);
461 }
462
463 let (ends, address) = match room {
464 Some(room) if !slots.is_empty() => {
465 let read = Read { list, area, slots: &slots, size, align, room, wants };
466 registers(func, block, inst, read)
467 }
468 _ => {
469 let mut build = Builder::new(func, block).at(span);
470 (block, overflow(&mut build, list, area, size, align))
471 }
472 };
473
474 // And the instruction itself is that address, so that everything reading it goes on reading
475 // the value it already read and nothing has to be substituted anywhere.
476 let args = func.push_values(&[address]);
477 let data = &mut func[inst];
478 data.opcode = Opcode::IntToPtr;
479 data.args = args;
480 data.extra = Extra::None;
481 data.flags = data.flags.intersection(Flags::legal_on(Opcode::IntToPtr));
482 func.append_inst(ends, inst);
483 for at in rest {
484 func.append_inst(ends, at);
485 }
486}
487
488/// One object read off one list, which is what both halves of the walk are about.
489#[derive(Clone, Copy)]
490struct Read<'a> {
491 /// The list it is read from.
492 list: Value,
493 /// The save area of the function doing the reading.
494 area: Area,
495 /// Which register each of the object's eightbytes arrived in, and empty for an object that
496 /// arrived in the caller's memory.
497 slots: &'a [Slot],
498 /// How many bytes the object is.
499 size: u64,
500 /// What it is aligned to, which is what the caller's argument area put it at.
501 align: u32,
502 /// The buffer of the function's own the register form copies the object into.
503 room: Value,
504 /// What that buffer is aligned to, which is the object's alignment or what the widest slot
505 /// needs, whichever is the larger.
506 wants: u32,
507}
508
509/// Whether the classification is one this knows how to read out of the save area.
510///
511/// A slot wider than a register or more of them than the area holds is a classification from some
512/// other machine or from a rule this has not been taught. Turning it down here leaves the
513/// instruction alone, and an instruction left alone is refused by name further down, which is a
514/// message about `va_arg` rather than whatever a half built walk would do at run time.
515fn fits(slots: &[Slot], area: Area) -> bool {
516 let mut counts = [0, 0];
517 for &slot in slots {
518 let float = is_float(slot);
519 if !in_a_register(slot) || width(slot) > u64::from(area.stride(float)) {
520 return false;
521 }
522 counts[usize::from(float)] += 1;
523 }
524 counts[0] <= area.holds(false) && counts[1] <= area.holds(true)
525}
526
527/// Whether a slot is one of the registers a variadic callee spills.
528///
529/// The width does not say on its own. A `long double` is ten bytes and would sit inside a vector
530/// slot with room to spare, and it is class X87, which has no register among the fourteen, so a
531/// classification carrying one is a classification this walk cannot read. The formats a vector
532/// register does hold are named rather than the ones it does not, so a format added later is one
533/// this leaves alone until somebody says where it travels.
534fn in_a_register(slot: Slot) -> bool {
535 match slot {
536 Slot::Integer { .. } => true,
537 Slot::Float { format, .. } => matches!(
538 format,
539 Format::Half | Format::BFloat16 | Format::Single | Format::Double | Format::Quad
540 ),
541 }
542}
543
544/// The register form: the room in the save area is asked about once per file, and the object is
545/// copied out of the area into a buffer when it is there and read from the caller's memory when it
546/// is not.
547///
548/// The question is asked once per file the object takes a register of, and both have to say yes,
549/// because the psABI puts the whole object in the caller's memory when there is not room in the
550/// area for all of it. A file the object takes nothing of has room by definition and is not asked
551/// about, which is every object of one class and is most of them.
552///
553/// Gives back the block the walk ends in and the address, as an integer, that the two paths agreed
554/// on.
555fn registers(func: &mut Func, block: Block, inst: Inst, read: Read<'_>) -> (Block, Value) {
556 let span = func.span(inst);
557 let area = read.area;
558 let counts = [taken_of(read.slots, false), taken_of(read.slots, true)];
559 let saved = func.create_block();
560 let overflowed = func.create_block();
561 let join = func.create_block();
562 let address = func.append_param(join, Type::int(64));
563
564 // The questions, each in its own block, because two of them are two branches and the second
565 // is only asked when the first said yes.
566 let asked: Vec<bool> =
567 [false, true].into_iter().filter(|&float| counts[usize::from(float)] > 0).collect();
568 let mut at = block;
569 for (index, &float) in asked.iter().enumerate() {
570 let next = if index + 1 == asked.len() { saved } else { func.create_block() };
571 // The psABI's own threshold: the end of the file's half of the area, less a slot for each
572 // register the object wants, so that an offset at it leaves room for all of them.
573 let room =
574 area.ends_at(float).saturating_sub(area.stride(float) * counts[usize::from(float)]);
575 let mut build = Builder::new(func, at).at(span);
576 let counter = offset(&mut build, read.list, field_of(float));
577 let walked = build.load(Type::int(32), counter, info(4, 4), Flags::default());
578 let end = build.iconst(Type::int(32), i128::from(room));
579 let inside = build.icmp(IntPred::Ule, walked, end);
580 build.br_if(inside, next, &[], overflowed, &[]);
581 at = next;
582 }
583
584 let mut build = Builder::new(func, saved).at(span);
585 let found = copied(&mut build, read, counts);
586 build.jump(join, &[found]);
587
588 let mut build = Builder::new(func, overflowed).at(span);
589 let here = overflow(&mut build, read.list, area, read.size, read.align);
590 build.jump(join, &[here]);
591
592 (join, address)
593}
594
595/// The object copied out of the save area into the buffer, as the address of the buffer.
596///
597/// A buffer and not an address in the area because the eightbytes of one object are not next to
598/// each other in there: two integer eightbytes are eight bytes apart and two vector ones are
599/// sixteen, and an object of one of each has them in different halves of the area entirely. So
600/// there is nowhere in the area the object is, and the one place it can be made to be is somewhere
601/// else.
602fn copied(build: &mut Builder<'_>, read: Read<'_>, counts: [u32; 2]) -> Value {
603 let area = read.area;
604 let base = offset(build, read.list, SAVE_AREA);
605 let save = build.load(Type::PTR, base, info(8, 8), Flags::default());
606
607 // Where each file's next slot is, which is the one thing the offsets in the list say, and the
608 // counter itself, which is what steps on by every slot the object took of that file.
609 let mut walked = [None, None];
610 let mut nexts = [None, None];
611 for float in [false, true] {
612 let file = usize::from(float);
613 if counts[file] == 0 {
614 continue;
615 }
616 let counter = offset(build, read.list, field_of(float));
617 let read = build.load(Type::int(32), counter, info(4, 4), Flags::default());
618 let wide = build.unary(Opcode::ZExt, read, Type::int(64));
619 walked[file] = Some(read);
620 nexts[file] = Some(added(build, save, wide));
621 }
622
623 let mut seen = [0, 0];
624 for &slot in read.slots {
625 let float = is_float(slot);
626 let file = usize::from(float);
627 let Some(from) = nexts[file] else { continue };
628 let step = i64::from(area.stride(float) * seen[file]);
629 seen[file] += 1;
630 let bytes = width(slot);
631 let ty = moved_as(area, float, bytes);
632 let aligned = slot_align(area, float, bytes);
633 let at = offset(build, from, step);
634 let value = build.load(ty, at, info(bytes, aligned), Flags::default());
635 let into = offset(build, read.room, i64::try_from(slot.offset()).unwrap_or(0));
636 let holds = info(bytes, part(read.wants, slot.offset()));
637 build.store(value, into, holds, Flags::default());
638 }
639
640 // And the counters step on by every slot the object took, since the whole of it came out of
641 // the area and the argument behind it starts past all of it.
642 for float in [false, true] {
643 let file = usize::from(float);
644 let Some(counter) = walked[file] else { continue };
645 let by = build.iconst(Type::int(32), i128::from(area.stride(float) * counts[file]));
646 let stepped = build.binary(Opcode::Add, counter, by, Flags::default());
647 let at = offset(build, read.list, field_of(float));
648 build.store(stepped, at, info(4, 4), Flags::default());
649 }
650 build.unary(Opcode::PtrToInt, read.room, Type::int(64))
651}
652
653/// A buffer at the front of the entry block, which is where an alloca of a fixed size belongs.
654///
655/// Not where the walk is, because a walk inside a loop would then be an alloca inside a loop,
656/// which is a frame that grows every time round. One buffer per `va_arg` of an object, made once
657/// and written every time the object is read, which is what the front end would have written if
658/// the temporary had a name.
659fn buffer(func: &mut Func, inst: Inst, size: u64, align: u32) -> Option<Value> {
660 let entry = func.entry()?;
661 let span = func.span(inst);
662 let mem = func.add_mem(info(size, align.max(1)));
663 let data = InstData { extra: Extra::Mem(mem), ..InstData::new(Opcode::Alloca) };
664 let made = func.create_inst(data, &[Type::PTR], span);
665 let first = func.insts(entry).next();
666 match first {
667 Some(first) => func.insert_before(made, first),
668 None => func.append_inst(entry, made),
669 }
670 func[made].first_result
671}
672
673/// Where the argument the caller left in memory is, with the overflow pointer stepped on past it,
674/// as an integer address.
675///
676/// The pointer is rounded up first for an object that wants more alignment than a word. The
677/// argument area is a run of words, so anything asking for eight or less is where it is already,
678/// and anything asking for more was put at the next multiple of what it asked for by whoever
679/// passed it.
680fn overflow(build: &mut Builder<'_>, list: Value, area: Area, size: u64, align: u32) -> Value {
681 let word = u64::from(area.word);
682 let wide = Type::int(64);
683 let pointer = offset(build, list, OVERFLOW);
684 let here = build.load(Type::PTR, pointer, info(word, area.word), Flags::default());
685
686 // As an integer, because rounding up is an add and a mask and neither is a thing to do to a
687 // pointer. Both casts are free: the two are the same bits on this machine and nothing is
688 // written for either.
689 let mut at = build.unary(Opcode::PtrToInt, here, wide);
690 if u64::from(align) > word {
691 // Up to the next multiple of a power of two, which is the round up every alignment is.
692 // The mask is the negative of the alignment because that is what the complement of one
693 // less than it comes to, and writing it that way keeps it inside a signed sixty four bit
694 // constant.
695 let bump = build.iconst(wide, i128::from(align) - 1);
696 at = build.binary(Opcode::Add, at, bump, Flags::default());
697 let mask = build.iconst(wide, -i128::from(align));
698 at = build.binary(Opcode::And, at, mask, Flags::default());
699 }
700
701 // Past it, rounded up to a whole number of words, because the argument area holds words and
702 // the argument behind this one starts at one of them.
703 let by = build.iconst(wide, i128::from(size.next_multiple_of(word)));
704 let onward = build.binary(Opcode::Add, at, by, Flags::default());
705 let onward = build.unary(Opcode::IntToPtr, onward, Type::PTR);
706 build.store(onward, pointer, info(word, area.word), Flags::default());
707 at
708}
709
710/// Which of the two counters a file's slots are walked with.
711fn field_of(float: bool) -> i64 {
712 if float { FP_OFFSET } else { GP_OFFSET }
713}
714
715/// Whether a slot is one of the vector file's.
716fn is_float(slot: Slot) -> bool {
717 matches!(slot, Slot::Float { .. })
718}
719
720/// How many registers of a file an object takes.
721fn taken_of(slots: &[Slot], float: bool) -> u32 {
722 u32::try_from(slots.iter().filter(|&&slot| is_float(slot) == float).count()).unwrap_or(0)
723}
724
725/// What one slot's bytes are moved as.
726///
727/// An integer of the slot's width whatever file it came from, because what this is is a copy of the
728/// object's bytes and nothing here reads them as anything. A slot the whole width of a vector
729/// register is the exception and has to be: there is no integer that wide on this machine, and the
730/// file the bytes are already in is the one that moves all sixteen of them at once.
731fn moved_as(area: Area, float: bool, bytes: u64) -> Type {
732 if float && bytes > u64::from(area.word) {
733 return Type::float(Float::F128);
734 }
735 Type::int(u32::try_from(bytes).unwrap_or(1) * 8)
736}
737
738/// What the address of a slot in the save area is known to be aligned to.
739///
740/// The area begins on a vector slot boundary and every slot in it is a whole number of its file's
741/// strides along from there, so a value as wide as its file's stride sits at a multiple of the
742/// stride and everything narrower sits at a multiple of a word. The wide case is the one that has
743/// to be right, since what moves a whole vector register is a `movaps` and a `movaps` faults on an
744/// address that is not a multiple of sixteen rather than being slow about it.
745fn slot_align(area: Area, float: bool, bytes: u64) -> u32 {
746 if bytes > u64::from(area.word) { area.stride(float) } else { area.word }
747}
748
749/// How many bytes one slot moves, which is its own width rounded up to one the machine has a load
750/// for.
751fn width(slot: Slot) -> u64 {
752 match slot {
753 Slot::Integer { size, .. } => u64::from(size.next_power_of_two().clamp(1, 8)),
754 Slot::Float { format, .. } => u64::from(format.width()).div_ceil(8),
755 }
756}
757
758/// What a part of an object at that offset is aligned to, which is what the object is aligned to
759/// for the part at the front of it and how far into the object the part sits for every other.
760fn part(align: u32, offset: u64) -> u32 {
761 let align = align.max(1);
762 if offset == 0 {
763 return align;
764 }
765 u32::try_from(1_u64 << offset.trailing_zeros()).unwrap_or(align).min(align)
766}
767
768/// Whether an argument of that size travelled as the address of a copy rather than as itself.
769///
770/// The platform's rule stated as a size and nothing else: an argument that is not one, two, four or
771/// eight bytes is passed as a pointer to a copy the caller made, whatever the argument is made of.
772/// A three byte structure is one and so is a sixteen byte float, and no classification is asked
773/// about either, which is why the slots the front end put on a `va_object` go unread on this side.
774fn by_reference(size: u64) -> bool {
775 !matches!(size, 1 | 2 | 4 | 8)
776}
777
778/// The slot the walk is at, with the list stepped on past it, written in front of an instruction.
779///
780/// One word whatever is in the slot, because this convention gives every argument exactly one and
781/// pays for the ones that do not fit by passing their address instead. So there is nothing to round
782/// up, nothing to ask and nothing to branch on.
783fn slot(func: &mut Func, inst: Inst, list: Value, word: u64) -> Value {
784 let here = read(func, inst, list, Type::PTR, word);
785 let step = field(func, inst, here, i64::try_from(word).unwrap_or(0));
786 let mem = func.add_mem(info(word, u32::try_from(word).unwrap_or(1)));
787 let args = func.push_values(&[step, list]);
788 let data = InstData { args, extra: Extra::Mem(mem), ..InstData::new(Opcode::Store) };
789 let span = func.span(inst);
790 let made = func.create_inst(data, &[], span);
791 func.insert_before(made, inst);
792 here
793}
794
795/// A load written in front of an instruction, at the alignment its own width gives it.
796fn read(func: &mut Func, inst: Inst, from: Value, ty: Type, size: u64) -> Value {
797 let mem = func.add_mem(info(size, u32::try_from(size).unwrap_or(1)));
798 let args = func.push_values(&[from]);
799 let data = InstData { args, extra: Extra::Mem(mem), ..InstData::new(Opcode::Load) };
800 ahead(func, inst, data, ty)
801}
802
803/// How many bytes of a scalar the one field walk moves, or nothing for a type it is not right
804/// about.
805///
806/// A pointer has no width of its own here and is as wide as the convention's word, which is the one
807/// question this has to ask the target rather than the type.
808///
809/// A `long double`, a `_Float128` and an `__int128` are answered for as well, and what the slot
810/// holds for one of those is the address of the copy the caller made rather than the value. That is
811/// [`by_reference`] of the width, the same question the object walk below asks, and the load at the
812/// end of it is the same load either way.
813fn travels(ty: Type, word: u64) -> Option<u64> {
814 if !ty.is_scalar() || !(ty.is_int() || ty.is_float() || ty.is_ptr()) {
815 return None;
816 }
817 if ty.is_ptr() {
818 return Some(word);
819 }
820 Some(u64::from(ty.bits().div_ceil(8)))
821}
822
823/// One `va_arg` on a convention whose list is a plain pointer, as the load at the slot the walk is
824/// at.
825///
826/// The instruction becomes that load rather than being replaced by one, for the reason the
827/// branching walk gives: the value the rest of the function reads stays the value it already read,
828/// so nothing has to be substituted anywhere. Everything the load needs is written in front of it,
829/// and since nothing here branches the instruction does not move and the block is not cut.
830///
831/// A scalar of a width the convention passes whole is in the slot, and the load is the whole of it.
832/// One of the three the convention passes as an address is not, and the slot holds where the caller
833/// put its copy, so the value is one load further on. That is the same question the object walk
834/// below asks and it is asked of the width alone, which is what keeps the two answers together.
835fn value(func: &mut Func, inst: Inst, word: u64) {
836 let Some(result) = func[inst].first_result else { return };
837 let Some(&list) = func[func[inst].args].first() else { return };
838 let ty = func[result].ty;
839 let Some(bytes) = travels(ty, word) else { return };
840
841 let here = slot(func, inst, list, word);
842 let from = if by_reference(bytes) { read(func, inst, here, Type::PTR, word) } else { here };
843 // The next power of two up from the width, which is the width itself for everything the slot
844 // holds and is sixteen for the ten bytes of an x87 value, since the copy the caller made is an
845 // object of the type and the type is sixteen bytes here.
846 let align = u32::try_from(bytes.next_power_of_two()).unwrap_or(1);
847 let mem = func.add_mem(info(bytes, align));
848 let args = func.push_values(&[from]);
849 let data = &mut func[inst];
850 data.opcode = Opcode::Load;
851 data.args = args;
852 data.extra = Extra::Mem(mem);
853 data.flags = data.flags.intersection(Flags::legal_on(Opcode::Load));
854}
855
856/// One `va_object` on the same convention, as the address the object can be read from.
857///
858/// The slot itself for an object of a width the convention passes whole, and what the slot holds
859/// for every other one, which is the address of the copy the caller made. That is the same question
860/// [`by_reference`] answers for a scalar and it is asked of the size alone, so an object of three
861/// bytes and an object of a hundred take the two different paths for the one reason.
862///
863/// The address is answered rather than a copy of the object, which is what the instruction is for:
864/// the object is already somewhere addressable either way, and the copy the C standard describes is
865/// the assignment the caller of `va_arg` wrote.
866fn held(func: &mut Func, inst: Inst, word: u64) {
867 let Extra::VaObject(at) = func[inst].extra else { return };
868 let MemInfo { size, .. } = func[func[at].mem];
869 let Some(&list) = func[func[inst].args].first() else { return };
870 if func[inst].first_result.is_none() {
871 return;
872 }
873
874 let here = slot(func, inst, list, word);
875 let from = if by_reference(size) { read(func, inst, here, Type::PTR, word) } else { here };
876 // Through an integer and back, which is what the branching walk's answer is too and is free
877 // either way: the two are the same bits on this machine and nothing is written for the pair.
878 let args = func.push_values(&[from]);
879 let data = InstData { args, ..InstData::new(Opcode::PtrToInt) };
880 let address = ahead(func, inst, data, Type::int(64));
881 let args = func.push_values(&[address]);
882 let data = &mut func[inst];
883 data.opcode = Opcode::IntToPtr;
884 data.args = args;
885 data.extra = Extra::None;
886 data.flags = data.flags.intersection(Flags::legal_on(Opcode::IntToPtr));
887}
888
889/// One `va_copy`, as the fields of one list moved into another.
890///
891/// A list is those fields and holds nothing anywhere else, so copying it is copying them, and a
892/// handful of words move as a handful of words rather than as a call to `memcpy`, which is a name
893/// this compiler cannot emit yet and would be the wrong answer for three words in any case. How
894/// many words there are is the convention's answer: three for the four field list, since the two
895/// offsets share one, and one for the list that is a pointer.
896///
897/// Every read is built before any write, so that a list copied onto itself, which is legal and
898/// useless, moves what it held rather than what it has just been given.
899fn copy(func: &mut Func, inst: Inst, bytes: u64) {
900 let [into, from] = func[func[inst].args] else { return };
901 let mut moved = Vec::new();
902 for word in 0..bytes / 8 {
903 let step = i64::try_from(word * 8).unwrap_or(0);
904 let there = field(func, inst, from, step);
905 let mem = func.add_mem(info(8, 8));
906 let args = func.push_values(&[there]);
907 let data = InstData { args, extra: Extra::Mem(mem), ..InstData::new(Opcode::Load) };
908 moved.push((ahead(func, inst, data, Type::int(64)), step));
909 }
910 for (read, step) in moved {
911 let here = field(func, inst, into, step);
912 let mem = func.add_mem(info(8, 8));
913 let args = func.push_values(&[read, here]);
914 let data = InstData { args, extra: Extra::Mem(mem), ..InstData::new(Opcode::Store) };
915 let span = func.span(inst);
916 let made = func.create_inst(data, &[], span);
917 func.insert_before(made, inst);
918 }
919 func.remove_inst(inst);
920}
921
922/// The address that far past a pointer, written in front of an instruction, or the pointer itself
923/// for no distance at all.
924///
925/// A field of a list for the walk that has four of them, and the slot behind this one for the walk
926/// whose list is a pointer.
927fn field(func: &mut Func, inst: Inst, list: Value, at: i64) -> Value {
928 if at == 0 {
929 return list;
930 }
931 let extra = Extra::Imm(func.add_imm(Imm::int(i128::from(at), Type::int(64))));
932 let step =
933 ahead(func, inst, InstData { extra, ..InstData::new(Opcode::IConst) }, Type::int(64));
934 let args = func.push_values(&[list, step]);
935 ahead(func, inst, InstData { args, ..InstData::new(Opcode::PtrAdd) }, Type::PTR)
936}
937
938/// Puts an instruction in front of another one and gives back the value it produces.
939fn ahead(func: &mut Func, inst: Inst, data: InstData, ty: Type) -> Value {
940 let span = func.span(inst);
941 let made = func.create_inst(data, &[ty], span);
942 func.insert_before(made, inst);
943 func[made].first_result.expect("an instruction created with one result has one")
944}
945
946/// The address of a field of a list in a block being filled, or the list itself for the field at
947/// the front of it.
948fn offset(build: &mut Builder<'_>, list: Value, at: i64) -> Value {
949 if at == 0 {
950 return list;
951 }
952 let step = build.iconst(Type::int(64), i128::from(at));
953 added(build, list, step)
954}
955
956/// A pointer with an integer added to it.
957fn added(build: &mut Builder<'_>, pointer: Value, by: Value) -> Value {
958 let args = build.func().push_values(&[pointer, by]);
959 build.value(InstData { args, ..InstData::new(Opcode::PtrAdd) }, Type::PTR)
960}
961
962/// An ordinary read or write of that many bytes, aligned that far.
963///
964/// Every access this pass makes is to a field of a list or to an argument, and none of them is
965/// atomic or has anything to say about aliasing.
966fn info(size: u64, align: u32) -> MemInfo {
967 MemInfo {
968 size,
969 align,
970 order: MemOrder::NotAtomic,
971 tbaa: None,
972 owns: 0,
973 restrict: Restrict::NONE,
974 }
975}
976
977#[cfg(test)]
978mod tests {
979 use rucc_base::Interner;
980 use rucc_base::float::Format;
981 use rucc_ir::{Builder, Extra, Func, InstData, Module, Opcode, Signature, Type, VaInfo};
982 use rucc_target::x86_64::{SYSV, WIN64};
983 use rucc_target::{Arch, Env, Os, Slot, TargetInfo, Triple};
984
985 use super::{Area, FP_OFFSET, GP_OFFSET, OVERFLOW, SAVE_AREA, SIZE, VECTOR_SLOT, lists};
986
987 fn target() -> TargetInfo {
988 TargetInfo::new(Triple::new(Arch::X86_64, Os::Linux, Env::Gnu))
989 }
990
991 /// `T f(va_list *ap) { return va_arg(*ap, T); }`, or the same shape over whichever of the
992 /// family is asked for, with the list arriving as the pointer it has decayed to by the time
993 /// anything reads it.
994 fn built(opcode: Opcode, ty: Type, lists: usize) -> (Interner, Func) {
995 let mut names = Interner::new();
996 let params = vec![Type::PTR; lists];
997 let mut signature = Signature::new().with_params(¶ms);
998 if !ty.is_void() {
999 signature = signature.with_returns(&[ty]);
1000 }
1001 let mut func = Func::new(names.intern("f"), signature);
1002 let entry = func.create_block();
1003 let args: Vec<_> = params.iter().map(|&ty| func.append_param(entry, ty)).collect();
1004
1005 let mut build = Builder::new(&mut func, entry);
1006 let list = build.func().push_values(&args);
1007 if ty.is_void() {
1008 build.inst(InstData { args: list, ..InstData::new(opcode) }, &[]);
1009 build.ret(&[]);
1010 } else {
1011 let got = build.value(InstData { args: list, ..InstData::new(opcode) }, ty);
1012 build.ret(&[got]);
1013 }
1014 (names, func)
1015 }
1016
1017 fn printed(func: &Func, names: &mut Interner) -> String {
1018 let module = Module::new(names.intern("va.c"), &target());
1019 rucc_ir::print_func(&module, func, names)
1020 }
1021
1022 fn valid(func: &Func, names: &mut Interner) {
1023 let module = Module::new(names.intern("va.c"), &target());
1024 rucc_ir::verify_func(&module, func, names).expect("the rewrite builds valid IR");
1025 }
1026
1027 /// The numbers in this test are the psABI's own, written out rather than computed, because the
1028 /// whole point of the layout is that it is the document's and not a convenient one. A version
1029 /// of [`Area`] that worked them out differently would agree with itself and disagree with the C
1030 /// library, and this is what would notice.
1031 #[test]
1032 fn the_save_area_is_the_one_the_document_describes() {
1033 let area = Area::of(&SYSV);
1034 assert_eq!(area.floats_at, 48, "six general purpose registers of eight bytes");
1035 assert_eq!(area.size, 176, "and eight vector ones of sixteen");
1036 assert_eq!(area.stride(false), 8);
1037 assert_eq!(area.stride(true), VECTOR_SLOT);
1038 assert_eq!(area.starts_at(false), 0);
1039 assert_eq!(area.starts_at(true), 48);
1040 // The last slot's own offset and not the end of the area, which is what `va_arg` compares
1041 // against: an offset equal to the end is one slot past the last argument.
1042 assert_eq!(area.last(false), Some(40));
1043 assert_eq!(area.last(true), Some(160));
1044 }
1045
1046 /// And the four fields, for the same reason.
1047 #[test]
1048 fn a_list_is_the_four_fields_the_document_describes() {
1049 assert_eq!((GP_OFFSET, FP_OFFSET, OVERFLOW, SAVE_AREA), (0, 4, 8, 16));
1050 assert_eq!(SIZE, 24);
1051 }
1052
1053 #[test]
1054 fn a_va_arg_becomes_the_branch_on_whether_the_argument_is_still_in_the_save_area() {
1055 let (mut names, mut func) = built(Opcode::VaArg, Type::int(32), 1);
1056 let before = func.blocks().count();
1057 lists(&mut func, &SYSV);
1058 assert_eq!(func.blocks().count(), before + 3, "one for each path and one they meet at");
1059
1060 let text = printed(&func, &mut names);
1061 assert!(!text.contains("va_arg"), "the va_arg is gone: {text}");
1062 assert!(text.contains("icmp ule"), "the threshold is a comparison: {text}");
1063 assert!(text.contains("br_if"), "and it is branched on: {text}");
1064 valid(&func, &mut names);
1065 }
1066
1067 /// Which field it walks is the whole of the difference between the two files, and getting it
1068 /// backwards is a program that reads its integers out of the vector half.
1069 #[test]
1070 fn which_half_of_the_area_is_walked_is_the_type_s_answer() {
1071 for (ty, last, stride) in
1072 [(Type::int(64), 40, 8), (Type::float(rucc_ir::Float::F64), 160, 16)]
1073 {
1074 let (mut names, mut func) = built(Opcode::VaArg, ty, 1);
1075 lists(&mut func, &SYSV);
1076 let text = printed(&func, &mut names);
1077 assert!(text.contains(&format!("iconst.i32 {last}")), "{ty:?} stops at {last}: {text}");
1078 assert!(text.contains(&format!("iconst.i32 {stride}")), "and steps by it: {text}");
1079 }
1080 }
1081
1082 /// The value the rest of the function reads has to stay the value it already read, since the
1083 /// rewrite substitutes nothing anywhere. It stays it by the `va_arg` becoming the load rather
1084 /// than being replaced by one, so the instruction is the same instruction under a new opcode
1085 /// and in a new block.
1086 #[test]
1087 fn what_reads_the_argument_reads_the_same_value_it_did_before() {
1088 let (mut names, mut func) = built(Opcode::VaArg, Type::int(32), 1);
1089 let entry = func.entry().expect("an entry block");
1090 let inst = func.insts(entry).next().expect("the va_arg is first");
1091 let read = func[inst].first_result.expect("it produces the argument");
1092
1093 lists(&mut func, &SYSV);
1094 assert_eq!(func[inst].opcode, Opcode::Load, "the same instruction, lowered");
1095 assert_eq!(func[inst].first_result, Some(read), "producing the same value");
1096 assert_ne!(func.block_of(inst), Some(entry), "in the block the two paths meet at");
1097 valid(&func, &mut names);
1098 }
1099
1100 #[test]
1101 fn a_va_end_is_nothing_at_all() {
1102 let (mut names, mut func) = built(Opcode::VaEnd, Type::VOID, 1);
1103 lists(&mut func, &SYSV);
1104 let text = printed(&func, &mut names);
1105 assert!(!text.contains("va_end"), "{text}");
1106 assert_eq!(func.blocks().count(), 1, "and needs no block: {text}");
1107 valid(&func, &mut names);
1108 }
1109
1110 /// Three words and no branch, because a list is three words and holds nothing anywhere else.
1111 #[test]
1112 fn a_va_copy_is_the_list_moved_a_word_at_a_time() {
1113 let (mut names, mut func) = built(Opcode::VaCopy, Type::VOID, 2);
1114 lists(&mut func, &SYSV);
1115 let text = printed(&func, &mut names);
1116 assert!(!text.contains("va_copy"), "{text}");
1117 assert_eq!(text.matches("load.i64").count(), 3, "{text}");
1118 assert_eq!(text.matches("store").count(), 3, "{text}");
1119 assert_eq!(func.blocks().count(), 1, "and needs no block: {text}");
1120 valid(&func, &mut names);
1121 }
1122
1123 /// Every read before every write, so that `va_copy(ap, ap)` moves what the list held rather
1124 /// than what it has just been given. Useless and legal, which is exactly the combination that
1125 /// gets written once and never tested anywhere else.
1126 #[test]
1127 fn a_list_copied_onto_itself_moves_what_it_held() {
1128 let (mut names, mut func) = built(Opcode::VaCopy, Type::VOID, 1);
1129 // One parameter, so both operands of the copy are the same list. The builder above pushes
1130 // as many operands as there are parameters, so the second is added here.
1131 let entry = func.entry().expect("an entry block");
1132 let inst = func.insts(entry).next().expect("the copy is first");
1133 let list = func[func[inst].args][0];
1134 let args = func.push_values(&[list, list]);
1135 func[inst].args = args;
1136
1137 lists(&mut func, &SYSV);
1138 let text = printed(&func, &mut names);
1139 let first = text.find("store").expect("a write");
1140 let last = text.rfind("load.i64").expect("a read");
1141 assert!(last < first, "every read is above every write: {text}");
1142 valid(&func, &mut names);
1143 }
1144
1145 /// `struct s f(va_list *ap) { return va_arg(*ap, struct s); }`, where the structure is that
1146 /// many bytes wanting that much alignment and arrived in those registers. The object form of
1147 /// the instruction rather than the value one, because an aggregate is not a value and answers
1148 /// where it is instead.
1149 ///
1150 /// No slots is the object the classification sent to the caller's argument area, which is what
1151 /// everything over two eightbytes is.
1152 fn object(size: u64, align: u32, slots: &[Slot]) -> (Interner, Func) {
1153 let mut names = Interner::new();
1154 let signature = Signature::new().with_params(&[Type::PTR]).with_returns(&[Type::PTR]);
1155 let mut func = Func::new(names.intern("f"), signature);
1156 let entry = func.create_block();
1157 let list = func.append_param(entry, Type::PTR);
1158 let mem = func.add_mem(super::info(size, align));
1159 let slots = func.push_slots(slots);
1160 let at = func.add_va_object(VaInfo { mem, slots });
1161 let mut build = Builder::new(&mut func, entry);
1162 let args = build.func().push_values(&[list]);
1163 let data = InstData { args, extra: Extra::VaObject(at), ..InstData::new(Opcode::VaObject) };
1164 let got = build.value(data, Type::PTR);
1165 build.ret(&[got]);
1166 (names, func)
1167 }
1168
1169 /// One eightbyte of an object in the general purpose file, at that offset.
1170 fn gpr(offset: u64, size: u32) -> Slot {
1171 Slot::Integer { offset, size }
1172 }
1173
1174 /// One in the vector file, holding a `double`, which is what a whole eightbyte of floating
1175 /// point data is read as whichever way the members divide it up.
1176 fn sse(offset: u64) -> Slot {
1177 Slot::Float { offset, format: Format::Double }
1178 }
1179
1180 /// Over two eightbytes is class MEMORY whatever the members are, so there is one place it can
1181 /// be and no question to ask about which.
1182 #[test]
1183 fn an_object_too_big_for_the_registers_is_read_out_of_the_caller_s_memory() {
1184 let (mut names, mut func) = object(24, 8, &[]);
1185 lists(&mut func, &SYSV);
1186 let text = printed(&func, &mut names);
1187 assert!(!text.contains("va_object"), "{text}");
1188 assert_eq!(func.blocks().count(), 1, "no branch, so no new block: {text}");
1189 assert!(text.contains("iconst.i64 8"), "the overflow field is at eight: {text}");
1190 assert!(text.contains("iconst.i64 24"), "and the pointer steps past the object: {text}");
1191 assert!(!text.contains("gp_offset"), "{text}");
1192 valid(&func, &mut names);
1193 }
1194
1195 /// The size the pointer steps on by is the size rounded up to a word, because the argument
1196 /// area holds words and the argument behind this one starts at one of them.
1197 #[test]
1198 fn a_size_that_is_not_a_whole_number_of_words_steps_on_by_the_next_one() {
1199 let (mut names, mut func) = object(28, 4, &[]);
1200 lists(&mut func, &SYSV);
1201 let text = printed(&func, &mut names);
1202 assert!(text.contains("iconst.i64 32"), "twenty eight bytes step on by thirty two: {text}");
1203 valid(&func, &mut names);
1204 }
1205
1206 /// An object wanting more than a word is at the next multiple of what it wants, and one
1207 /// wanting a word or less is where the pointer already is, since the area is a run of words.
1208 #[test]
1209 fn an_object_wanting_more_alignment_than_a_word_is_rounded_up_to_it() {
1210 let (mut names, mut func) = object(32, 16, &[]);
1211 lists(&mut func, &SYSV);
1212 let text = printed(&func, &mut names);
1213 assert!(text.contains("iconst.i64 15"), "up to the next sixteen: {text}");
1214 assert!(text.contains("iconst.i64 -16"), "and down to a multiple of it: {text}");
1215 assert!(text.contains(" = and "), "which is an add and a mask: {text}");
1216 valid(&func, &mut names);
1217
1218 let (mut names, mut func) = object(24, 8, &[]);
1219 lists(&mut func, &SYSV);
1220 assert!(!printed(&func, &mut names).contains(" = and "), "a word wants no rounding");
1221 }
1222
1223 /// An object that arrived in registers is in the save area, and reading it is the branch a
1224 /// scalar asks with the object's own threshold: two eightbytes want two slots, so an offset
1225 /// that leaves room for one is not room enough.
1226 #[test]
1227 fn an_object_that_arrived_in_registers_is_copied_out_of_the_save_area() {
1228 let (mut names, mut func) = object(16, 8, &[gpr(0, 8), gpr(8, 8)]);
1229 let before = func.blocks().count();
1230 lists(&mut func, &SYSV);
1231 assert_eq!(func.blocks().count(), before + 3, "one for each path and one they meet at");
1232
1233 let text = printed(&func, &mut names);
1234 assert!(!text.contains("va_object"), "{text}");
1235 assert!(text.contains("iconst.i32 32"), "forty eight less two slots: {text}");
1236 assert!(text.contains("icmp ule"), "which is the threshold: {text}");
1237 assert!(text.contains("alloca, size 16"), "the object lands in a buffer: {text}");
1238 assert!(text.contains("iconst.i32 16"), "and the counter steps by both slots: {text}");
1239 valid(&func, &mut names);
1240 }
1241
1242 /// An object of one eightbyte of each file has to have room in both halves of the area, and
1243 /// the psABI puts the whole of it in the caller's memory when either of them is out. So there
1244 /// are two questions, and the second is only asked when the first said yes.
1245 #[test]
1246 fn an_object_in_both_files_asks_about_both_of_them() {
1247 let (mut names, mut func) = object(16, 8, &[gpr(0, 8), sse(8)]);
1248 lists(&mut func, &SYSV);
1249 let text = printed(&func, &mut names);
1250 assert_eq!(text.matches("br_if").count(), 2, "one question per file: {text}");
1251 assert!(text.contains("iconst.i32 40"), "forty eight less one slot: {text}");
1252 assert!(text.contains("iconst.i32 160"), "and a hundred and seventy six less one: {text}");
1253 assert!(text.contains("iconst.i32 8"), "each counter steps by its own slot: {text}");
1254 valid(&func, &mut names);
1255 }
1256
1257 /// An object whose last eightbyte is a part of one still comes out of the area as a whole
1258 /// register, so the buffer has room for the whole register and the bytes past the object are
1259 /// never read.
1260 #[test]
1261 fn the_buffer_is_as_big_as_the_registers_reach() {
1262 let (mut names, mut func) = object(5, 1, &[gpr(0, 5)]);
1263 lists(&mut func, &SYSV);
1264 let text = printed(&func, &mut names);
1265 assert!(text.contains("alloca, size 8"), "five bytes travel in a whole register: {text}");
1266 valid(&func, &mut names);
1267 }
1268
1269 /// A classification this cannot read out of the area is left alone, which is what makes the
1270 /// function refused by name further down rather than compiled into half a walk.
1271 ///
1272 /// Class X87 is the one to ask about, because the width alone would say yes: ten bytes sit
1273 /// inside a vector slot with room to spare, and there is no x87 register among the fourteen a
1274 /// variadic callee spills, so there is nothing in the area for this to read.
1275 #[test]
1276 fn a_classification_that_does_not_fit_the_area_is_left_alone() {
1277 let x87 = [Slot::Float { offset: 0, format: Format::X87Extended }];
1278 let (mut names, mut func) = object(16, 16, &x87);
1279 let before = printed(&func, &mut names);
1280 lists(&mut func, &SYSV);
1281 assert_eq!(printed(&func, &mut names), before);
1282 }
1283
1284 /// A `_Float128` walks the vector half with a slot of the whole register.
1285 ///
1286 /// One register and not two, which is the same answer the classification gives a quad passed to
1287 /// a function that names it: the offset stops at the last slot rather than the last but one,
1288 /// and it steps on by sixteen. What is read is sixteen bytes of float, which is a `movaps`
1289 /// further down and is the instruction gcc reads the same slot with.
1290 #[test]
1291 fn a_quad_takes_a_whole_vector_slot_of_the_save_area() {
1292 let (mut names, mut func) = built(Opcode::VaArg, Type::float(rucc_ir::Float::F128), 1);
1293 lists(&mut func, &SYSV);
1294 valid(&func, &mut names);
1295 let text = printed(&func, &mut names);
1296 assert!(!text.contains("va_arg"), "the va_arg is gone: {text}");
1297 assert!(text.contains("iconst.i32 160"), "a hundred and seventy six less one slot: {text}");
1298 assert!(text.contains("iconst.i32 16"), "and the counter steps by a whole one: {text}");
1299 assert!(text.contains("load.f128"), "read as the sixteen bytes it is: {text}");
1300 }
1301
1302 /// And the argument area gives it two words aligned to two, which is where it stops being a
1303 /// wider `double`. Every other value the machine computes in is where the pointer already is
1304 /// and steps it on by a word.
1305 #[test]
1306 fn a_quad_the_registers_ran_out_before_is_rounded_up_to_sixteen() {
1307 let (mut names, mut func) = built(Opcode::VaArg, Type::float(rucc_ir::Float::F128), 1);
1308 lists(&mut func, &SYSV);
1309 let text = printed(&func, &mut names);
1310 assert!(text.contains("iconst.i64 15"), "up to the next sixteen: {text}");
1311 assert!(text.contains("iconst.i64 -16"), "and down to a multiple of it: {text}");
1312 assert!(text.contains(" = and "), "which is an add and a mask: {text}");
1313
1314 let (mut names, mut func) = built(Opcode::VaArg, Type::float(rucc_ir::Float::F64), 1);
1315 lists(&mut func, &SYSV);
1316 let text = printed(&func, &mut names);
1317 assert!(!text.contains(" = and "), "a double is where the pointer already is: {text}");
1318 assert!(text.contains("iconst.i64 8"), "and steps it on by a word: {text}");
1319 }
1320
1321 /// An object holding a quad is one slot of the vector file, so the question is a single one
1322 /// and the copy moves all sixteen bytes at once.
1323 ///
1324 /// The buffer it lands in is sixteen byte aligned, which is what the store needs rather than
1325 /// what the object asked for, although for this object the two are the same number.
1326 #[test]
1327 fn an_object_holding_a_quad_is_copied_out_as_one_whole_register() {
1328 let quad = [Slot::Float { offset: 0, format: Format::Quad }];
1329 let (mut names, mut func) = object(16, 16, &quad);
1330 lists(&mut func, &SYSV);
1331 valid(&func, &mut names);
1332 let text = printed(&func, &mut names);
1333 assert!(!text.contains("va_object"), "{text}");
1334 assert_eq!(text.matches("br_if").count(), 1, "one file, so one question: {text}");
1335 assert!(text.contains("iconst.i32 160"), "a hundred and seventy six less one slot: {text}");
1336 assert!(text.contains("load.f128"), "moved as the register it is in: {text}");
1337 assert!(text.contains("alloca, size 16, align 16"), "a buffer a movaps accepts: {text}");
1338 }
1339
1340 /// What reads the object goes on reading the value it already read, the same way it does for a
1341 /// value, and for the same reason: the instruction becomes the address rather than being
1342 /// replaced by one, so nothing has to be substituted anywhere.
1343 #[test]
1344 fn what_reads_the_object_reads_the_same_value_it_did_before() {
1345 for slots in [&[][..], &[gpr(0, 8), gpr(8, 8)][..]] {
1346 let (mut names, mut func) = object(if slots.is_empty() { 24 } else { 16 }, 8, slots);
1347 let entry = func.entry().expect("an entry block");
1348 let inst = func.insts(entry).next().expect("the va_object is first");
1349 let read = func[inst].first_result.expect("it answers an address");
1350
1351 lists(&mut func, &SYSV);
1352 assert_eq!(func[inst].opcode, Opcode::IntToPtr, "the same instruction, lowered");
1353 assert_eq!(func[inst].first_result, Some(read), "producing the same value");
1354 valid(&func, &mut names);
1355 }
1356 }
1357
1358 /// Windows describes a list as one pointer, and its walk is that pointer stepped on, so there is
1359 /// nothing to compare and nowhere else to look: the argument is at the pointer, the pointer
1360 /// moves on by a word, and all of it is straight line.
1361 #[test]
1362 fn a_windows_va_arg_is_the_word_at_the_pointer_and_a_step() {
1363 let (mut names, mut func) = built(Opcode::VaArg, Type::int(32), 1);
1364 lists(&mut func, &WIN64);
1365 valid(&func, &mut names);
1366 let text = printed(&func, &mut names);
1367 assert!(!text.contains("va_arg"), "the va_arg is gone: {text}");
1368 assert!(!text.contains("br_if"), "and nothing was asked: {text}");
1369 assert_eq!(func.blocks().count(), 1, "so no block was made: {text}");
1370 assert!(text.contains("iconst.i64 8"), "the step is one word: {text}");
1371 assert_eq!(text.matches("= load").count(), 2, "the list and the argument: {text}");
1372 assert_eq!(text.matches("store").count(), 1, "and the list is written back: {text}");
1373 }
1374
1375 /// A pointer is as wide as the convention says a word is, since a type carries no width for
1376 /// one. Reading it as no bytes at all would be every string a `printf` was handed.
1377 #[test]
1378 fn a_windows_pointer_argument_is_the_whole_word() {
1379 let (mut names, mut func) = built(Opcode::VaArg, Type::PTR, 1);
1380 lists(&mut func, &WIN64);
1381 valid(&func, &mut names);
1382 let text = printed(&func, &mut names);
1383 assert_eq!(text.matches("= load").count(), 2, "the list and the argument: {text}");
1384 assert_eq!(text.matches("size 8").count(), 3, "and all three are words: {text}");
1385 }
1386
1387 /// The size is the whole of what says where a Windows argument is, so an object of eight bytes
1388 /// is in the slot and the answer is the slot's own address, and one of twenty four is elsewhere
1389 /// and the answer is what the slot holds. Neither of them asks about the classification.
1390 #[test]
1391 fn a_windows_object_is_in_the_slot_or_behind_it_according_to_its_size() {
1392 for (size, loads) in [(8, 1), (24, 2)] {
1393 let (mut names, mut func) = object(size, 8, &[]);
1394 lists(&mut func, &WIN64);
1395 valid(&func, &mut names);
1396 let text = printed(&func, &mut names);
1397 assert!(!text.contains("va_object"), "{text}");
1398 assert_eq!(func.blocks().count(), 1, "no branch, so no new block: {text}");
1399 assert_eq!(text.matches("= load").count(), loads, "{size} bytes: {text}");
1400 assert!(!text.contains("iconst.i64 24"), "the step is a word either way: {text}");
1401 }
1402 }
1403
1404 /// A list that is one pointer is copied by moving one pointer, and a copy moving three words
1405 /// would read two the caller never wrote and write them somewhere it does not own.
1406 #[test]
1407 fn a_windows_va_copy_moves_the_one_word_a_list_is() {
1408 let (mut names, mut func) = built(Opcode::VaCopy, Type::VOID, 2);
1409 lists(&mut func, &WIN64);
1410 valid(&func, &mut names);
1411 let text = printed(&func, &mut names);
1412 assert!(!text.contains("va_copy"), "{text}");
1413 assert_eq!(text.matches("load.i64").count(), 1, "{text}");
1414 assert_eq!(text.matches("store").count(), 1, "{text}");
1415 }
1416
1417 /// A scalar wider than a general purpose register is read through the slot rather than out of
1418 /// it, because the convention travels one as the address of a copy the caller made.
1419 ///
1420 /// Two loads and not one: the slot holds the address and the value is behind it. Reading the
1421 /// slot as the value would be reading the low eight bytes of a `long double`, which is the
1422 /// bottom of its significand and no number anybody wrote.
1423 #[test]
1424 fn a_wide_scalar_is_read_through_the_slot_on_windows() {
1425 let wide =
1426 [Type::int(128), Type::float(rucc_ir::Float::F80), Type::float(rucc_ir::Float::F128)];
1427 for ty in wide {
1428 let (mut names, mut func) = built(Opcode::VaArg, ty, 1);
1429 lists(&mut func, &WIN64);
1430 valid(&func, &mut names);
1431 let text = printed(&func, &mut names);
1432 assert!(!text.contains("va_arg"), "{ty:?}: {text}");
1433 assert_eq!(text.matches("= load").count(), 3, "{ty:?}: {text}");
1434 // Two of the three are addresses, the list's own and the copy's, and the value is
1435 // the third. A dump writes a pointer load without a type on it.
1436 assert_eq!(text.matches("= load %").count(), 2, "{ty:?}: {text}");
1437 }
1438 }
1439
1440 /// A width the algorithm is not right about is left alone for the same reason. An `__int128`
1441 /// takes two slots under an alignment rule of its own, which is a second algorithm and not a
1442 /// wider reading of this one, so it stays exactly as it was and is refused by name later.
1443 #[test]
1444 fn a_type_that_does_not_travel_in_one_slot_is_left_alone() {
1445 let ty = Type::int(128);
1446 let (mut names, mut func) = built(Opcode::VaArg, ty, 1);
1447 let before = printed(&func, &mut names);
1448 lists(&mut func, &SYSV);
1449 assert_eq!(printed(&func, &mut names), before, "{ty:?}");
1450 }
1451
1452 /// A `long double` is class X87, and the class has no register among the fourteen a variadic
1453 /// callee spills, so one is in the caller's argument area whether or not anything came before
1454 /// it. What that means for the rewrite is that the question `va_arg` usually asks has a known
1455 /// answer, so there is no compare, no branch and no join: one block, the overflow pointer
1456 /// rounded up to sixteen and stepped on by sixteen, and the load.
1457 #[test]
1458 fn a_long_double_is_read_straight_out_of_the_callers_argument_area() {
1459 let (mut names, mut func) = built(Opcode::VaArg, Type::float(rucc_ir::Float::F80), 1);
1460 lists(&mut func, &SYSV);
1461 valid(&func, &mut names);
1462 let text = printed(&func, &mut names);
1463 assert!(!text.contains("va_arg"), "the va_arg is gone: {text}");
1464 assert!(!text.contains("br_if"), "and nothing was asked: {text}");
1465 assert_eq!(func.blocks().count(), 1, "so no block was made: {text}");
1466 // The two numbers the psABI gives the class, in the rounding up and in the step.
1467 assert!(text.contains(" 15"), "rounded up to sixteen: {text}");
1468 assert!(text.contains(" 16"), "and stepped on by sixteen: {text}");
1469 }
1470
1471 /// Nothing else is touched, which matters because this runs over every function whether or not
1472 /// one reads a variable argument.
1473 #[test]
1474 fn a_function_with_no_list_in_it_is_left_exactly_as_it_was() {
1475 let mut names = Interner::new();
1476 let int = Type::int(32);
1477 let mut func =
1478 Func::new(names.intern("f"), Signature::new().with_params(&[int]).with_returns(&[int]));
1479 let entry = func.create_block();
1480 let x = func.append_param(entry, int);
1481 Builder::new(&mut func, entry).ret(&[x]);
1482
1483 let before = printed(&func, &mut names);
1484 lists(&mut func, &SYSV);
1485 assert_eq!(printed(&func, &mut names), before);
1486 }
1487}