rucc_codegen/select.rs
1//! Matching a target's lowering rules against a term.
2//!
3//! Design: `spec/10-backend.md` section 10.2. The rules themselves are in `rules/`, one file per
4//! target, and the automaton they compile into is generated by `rucc-rules` when this crate is
5//! built.
6//!
7//! The walk over that automaton is [`rucc_base::rules`], because `rucc-opt` matches IR against a
8//! table of rewrite rules with the same walk and neither crate can see the other. What is here
9//! is which targets there are and the tests that the x86-64 table lowers what it should. The
10//! AArch64 table has its own tests beside it.
11//!
12//! The names are re-exported rather than reached for through `rucc_base`, because the generated
13//! file refers to them through `super` and that is the whole of the contract between the two.
14
15pub mod aarch64;
16pub mod x86_64;
17
18pub use rucc_base::rules::{Guard, Match, Node, Piece, Rule, Subject, Table};
19use rucc_target::{
20 Address, BranchInsts, FrameInsts, MachineInsts, OperandDesc, PhysReg, RegClass, Segment,
21};
22
23/// What `crate::lower` has to know about the machine it selects instructions for.
24///
25/// The lowering is one walk over the IR whichever machine it is for, and everything in it that
26/// differs between two machines is a question this answers: which table the rules compiled into,
27/// what each opcode's operands are, what an address constructor's arguments mean, and the handful
28/// of instructions the walk writes itself rather than getting from a rule. A walk that reaches
29/// for a machine's module by name is a walk for that machine only, which is what this is here to
30/// stop.
31///
32/// The frame and branch instructions are the same tables `crate::pipeline::Machine` hands the
33/// passes after this one. They are in here as well so that the lowering is handed one thing,
34/// rather than a machine and the convention and the rules separately.
35#[derive(Debug)]
36pub struct Selector {
37 /// The rules, compiled.
38 pub table: &'static Table,
39 /// The shape of each opcode, and the prefix a rule file puts in front of one.
40 pub shapes: &'static MachineInsts,
41 /// What an address constructor in a replacement stands for, or `None` for a name that is not
42 /// one of this machine's.
43 pub address: fn(&str) -> Option<Address>,
44 /// The instructions that take a frame and give it back, of which the walk writes the address
45 /// of a local and the move between two registers itself.
46 pub frame: &'static FrameInsts,
47 /// The instructions a branch becomes, of which the walk writes the indirect jump itself.
48 pub branch: &'static BranchInsts,
49 /// The class an address is in.
50 pub gpr: RegClass,
51 /// The instruction a full fence is, without the prefix.
52 pub fence: &'static str,
53 /// The instruction a program that must stop here stops with, without the prefix.
54 pub trap: &'static str,
55 /// The instructions the calling convention is written with.
56 pub abi: &'static crate::abi::Insts,
57 /// The address registers held back from the allocator for the rewriter's reloads, which are
58 /// the ones the walk must not keep anything in across more than one instruction.
59 pub scratch: &'static [PhysReg],
60 /// How the walk comes by the address of a symbol, which is its own business rather than a
61 /// rule's because whether it goes through the global offset table is a fact about the link and
62 /// not about the instruction.
63 pub symbols: &'static Symbols,
64 /// The instructions a jump through a table is built from, and the address of a label.
65 pub jumps: &'static Jumps,
66}
67
68/// The instructions a place in this function is reached with: the address of a block or a jump
69/// table, and the read of one cell of a table and the add that turns it back into an address.
70#[derive(Debug)]
71pub struct Jumps {
72 /// The address of a block or a table, which is carried in the addressing mode.
73 pub near: &'static str,
74 /// A load of a 32-bit cell, sign extended to the width of an address.
75 pub cell: &'static str,
76 /// The add of two addresses.
77 pub add: &'static str,
78 /// Whether the add writes its first operand, the way it does on x86-64.
79 pub two_address: bool,
80}
81
82/// The two ways the address of a symbol is come by.
83#[derive(Debug)]
84pub struct Symbols {
85 /// A symbol this image defines, whose address is a fixed distance from the code.
86 pub near: Reach,
87 /// A symbol another image may define, whose address is read out of the global offset table.
88 pub far: Reach,
89 /// A pointer this image holds, read where the name it points to is reached through it, which
90 /// is how COFF reaches a name in a DLL or one another object may define.
91 pub slot: Reach,
92 /// How far a thread-local variable is from the thread pointer, which is read out of the global
93 /// offset table too, from a slot the link fills in with that distance.
94 pub thread: Reach,
95 /// The thread pointer itself.
96 pub pointer: Pointer,
97 /// How a Windows thread finds its copy of a thread-local variable, where this machine has
98 /// been taught. See [`Indexed`].
99 pub indexed: Option<Indexed>,
100 /// The same on a machine that keeps the TEB in a register rather than a segment, which is
101 /// AArch64. See [`Teb`].
102 pub teb: Option<Teb>,
103}
104
105/// The instructions a thread-local variable is reached with on Windows on AArch64.
106///
107/// The same walk as [`Indexed`], from the TEB Windows keeps in `x18` rather than in a segment,
108/// and the six instructions clang writes for it.
109///
110/// ```text
111/// adrp x8, _tls_index
112/// ldr w8, [x8, :lo12:_tls_index]
113/// ldr x9, [x18, #88]
114/// ldr x8, [x9, x8, lsl #3]
115/// add x8, x8, :secrel_hi12:x, lsl #12
116/// add x0, x8, :secrel_lo12:x
117/// ```
118#[derive(Debug)]
119pub struct Teb {
120 /// The first two, which read `_tls_index`, carrying it as its symbol.
121 pub index: &'static str,
122 /// The third, which reads the array out of the TEB.
123 pub array: &'static str,
124 /// The rest, which read this thread's block out of the array with the index and add the
125 /// variable's offset in its section, carrying the variable as its symbol. It takes the array
126 /// and the index as its two sources, in that order.
127 pub block: &'static str,
128}
129
130/// The instructions a thread-local variable is reached with on Windows.
131///
132/// Every thread keeps an array of pointers, one for each image's copy of its `.tls` section. The
133/// thread block holds the array, the image's `_tls_index` says which slot is its own, and the
134/// variable is as far into the copy as it is into the section.
135///
136/// ```text
137/// movl _tls_index(%rip), %idx
138/// movq %gs:88, %arr
139/// movq (%arr,%idx,8), %blk
140/// leaq x@SECREL32(%blk), %x
141/// ```
142#[derive(Debug)]
143pub struct Indexed {
144 /// A 32-bit load, zero extended, which reads `_tls_index`.
145 pub index: &'static str,
146 /// A load of a whole word, which reads the array out of the thread block and the block out of
147 /// the array.
148 pub load: &'static str,
149 /// The segment the thread block is in, and how far into it the array is.
150 pub segment: Segment,
151 /// The same.
152 pub at: i32,
153 /// The instruction that adds an offset to a register, which takes the variable's offset in its
154 /// section as its displacement.
155 pub add: &'static str,
156}
157
158/// Where the thread pointer is read from.
159#[derive(Debug, Clone, Copy, PartialEq, Eq)]
160pub enum Pointer {
161 /// A load at zero in a segment, since the word at the front of the block is its own address.
162 /// That is x86-64, whose `%fs` is not a register a program can read.
163 Segment(&'static str, Segment),
164 /// An instruction that reads a system register, which is AArch64's `mrs` of `tpidr_el0`.
165 Own(&'static str),
166}
167
168/// One instruction that puts the address of a symbol in a register, and where it carries the
169/// symbol.
170#[derive(Debug, Clone, Copy, PartialEq, Eq)]
171pub enum Reach {
172 /// In its addressing mode, which is how x86-64 does both: a `lea` or a `mov` relative to the
173 /// instruction pointer.
174 Mode(&'static str),
175 /// As the instruction's own symbol with no addressing mode at all, which is how AArch64 does
176 /// both: an `adrp` for the page and a second instruction for the rest, written as one opcode.
177 Own(&'static str),
178}
179
180impl Selector {
181 /// What a rule file and the machine IR put in front of this machine's opcodes.
182 #[must_use]
183 pub fn prefix(&self) -> &'static str {
184 self.shapes.prefix
185 }
186
187 /// The operands the opcode of that name has, the name written without the prefix.
188 #[must_use]
189 pub fn operands(&self, name: &str) -> Option<&'static [OperandDesc]> {
190 (self.shapes.operands)(name)
191 }
192}
193
194#[cfg(test)]
195mod tests {
196 use super::x86_64::TABLE;
197 use super::{Piece, Subject};
198
199 /// A term, in the only shape a test needs: a flat arena, because that is the shape the IR
200 /// has and answering the questions out of one is what the selector will be doing.
201 #[derive(Debug)]
202 enum Node {
203 Int(i128),
204 App(String, Vec<usize>),
205 }
206
207 #[derive(Debug, Default)]
208 struct Terms {
209 nodes: Vec<Node>,
210 }
211
212 impl Terms {
213 fn constant(&mut self, value: i128) -> usize {
214 self.nodes.push(Node::Int(value));
215 self.nodes.len() - 1
216 }
217
218 fn app(&mut self, head: &str, args: &[usize]) -> usize {
219 self.nodes.push(Node::App(head.to_owned(), args.to_vec()));
220 self.nodes.len() - 1
221 }
222
223 /// A register operand, which is a term with a head the rules write and nothing under it.
224 fn value(&mut self, width: u32, name: &str) -> usize {
225 let inner = self.app(name, &[]);
226 self.app(&format!("value.i{width}"), &[inner])
227 }
228 }
229
230 impl Subject for Terms {
231 type Node = usize;
232
233 fn head(&self, node: usize) -> Option<(&str, usize)> {
234 match &self.nodes[node] {
235 Node::App(head, args) => Some((head.as_str(), args.len())),
236 Node::Int(_) => None,
237 }
238 }
239
240 fn arg(&self, node: usize, index: usize) -> usize {
241 match &self.nodes[node] {
242 Node::App(_, args) => args[index],
243 Node::Int(_) => unreachable!("a constant has no arguments"),
244 }
245 }
246
247 fn int(&self, node: usize) -> Option<i128> {
248 match self.nodes[node] {
249 Node::Int(value) => Some(value),
250 Node::App(..) => None,
251 }
252 }
253
254 // An index into the arena is the identity of a term here, so two places are the same
255 // thing when they point at the same entry.
256 fn same(&self, a: usize, b: usize) -> bool {
257 a == b
258 }
259 }
260
261 /// What the head of the rule that fired selects, which is the answer every one of these
262 /// tests is really about.
263 fn selects(terms: &Terms, term: usize) -> Option<&'static str> {
264 let found = TABLE.find(terms, term)?;
265 TABLE.rule(&found).head()
266 }
267
268 /// No pattern is reached by reading past the ones in front of it.
269 ///
270 /// `spec/optimizer/36-lowering-and-isel.md` section 36.5 asks for the decision to be on the
271 /// shape of the term, and the root of this table is where that is worth anything: every
272 /// instruction the selector looks at arrives there, and a hundred and sixty seven different
273 /// heads are written on it. Sorted, that is eight comparisons and the walk finds the branch.
274 /// In the order the rules happen to be written it would be a hundred and sixty seven, every
275 /// time, and worst for the terms no rule covers, which are the ones the selector has to see
276 /// the most of.
277 ///
278 /// What is asserted is the property the search needs, which is that every node is in order.
279 /// A node that is not is not a slower table, it is a wrong one, because a binary search over
280 /// an unsorted list finds nothing and the rule silently stops firing.
281 #[test]
282 fn no_rule_is_reached_by_reading_past_the_rules_in_front_of_it() {
283 let root = TABLE.nodes.first().expect("the table has a root");
284 assert!(root.heads.len() > 100, "the root is the node this is about");
285 for (at, node) in TABLE.nodes.iter().enumerate() {
286 assert!(node.heads.is_sorted(), "node {at} is not in an order a search can use");
287 assert!(node.ints.is_sorted(), "node {at} is not in an order a search can use");
288 }
289 }
290
291 #[test]
292 fn the_table_holds_every_rule_the_file_writes() {
293 let text = include_str!("../rules/x86-64.rules");
294 let written = text.lines().filter(|line| line.starts_with("(rule ")).count();
295 assert_eq!(TABLE.rules.len(), written, "the table and the rule file disagree");
296 assert_eq!(TABLE.source, "rules/x86-64.rules");
297 }
298
299 #[test]
300 fn an_addition_of_two_registers_is_the_register_form() {
301 let mut terms = Terms::default();
302 let x = terms.value(64, "v0");
303 let y = terms.value(64, "v1");
304 let add = terms.app("add.i64", &[x, y]);
305 assert_eq!(selects(&terms, add), Some("x64.add_rr_64"));
306 }
307
308 /// The bindings are the operands in the order the pattern names them, and the replacement
309 /// says which of them goes where. This is the whole of what the selector will read.
310 ///
311 /// What a name is bound to is what the pattern put it under, so `(value.i32 x)` binds the
312 /// register and not the term saying it is one. That is the difference between the operand of
313 /// the instruction this becomes and a wrapper that exists to say how wide it is.
314 #[test]
315 fn a_match_gives_back_the_operands_the_pattern_named() {
316 let mut terms = Terms::default();
317 let first = terms.app("v0", &[]);
318 let second = terms.app("v1", &[]);
319 let x = terms.app("value.i32", &[first]);
320 let y = terms.app("value.i32", &[second]);
321 let sub = terms.app("sub.i32", &[x, y]);
322 let found = TABLE.find(&terms, sub).expect("a rule fires");
323 let rule = TABLE.rule(&found);
324 assert_eq!(rule.pattern, "(sub.i32 (value.i32 x) (value.i32 y))");
325 assert_eq!(found.bindings, vec![first, second]);
326 let names: Vec<&str> = rule
327 .replacement
328 .iter()
329 .filter_map(|piece| match piece {
330 Piece::Var { name, index } => {
331 assert_eq!(found.bindings[*index], if *index == 0 { first } else { second });
332 Some(*name)
333 }
334 _ => None,
335 })
336 .collect();
337 assert_eq!(names, ["x", "y"]);
338 }
339
340 /// An immediate the instruction has room for takes the immediate form. The rule for it is
341 /// guarded, so this is also the test that a guard which holds does not stop a rule firing.
342 #[test]
343 fn an_addition_of_an_immediate_that_fits_is_the_immediate_form() {
344 let mut terms = Terms::default();
345 let x = terms.value(64, "v0");
346 let k = terms.constant(4);
347 let k = terms.app("iconst.i64", &[k]);
348 let add = terms.app("add.i64", &[x, k]);
349 assert_eq!(selects(&terms, add), Some("x64.add_ri_64"));
350 }
351
352 /// An immediate too wide for the encoding is what the guard is there to refuse. Nothing else
353 /// matches such a term, and that is the right answer: the constant has to be put in a
354 /// register first, which is a decision for the selector and not for the table.
355 #[test]
356 fn an_addition_of_an_immediate_too_wide_for_the_form_matches_nothing() {
357 let mut terms = Terms::default();
358 let x = terms.value(64, "v0");
359 let k = terms.constant(1 << 40);
360 let k = terms.app("iconst.i64", &[k]);
361 let add = terms.app("add.i64", &[x, k]);
362 assert_eq!(selects(&terms, add), None);
363 }
364
365 /// The other shape of guard, which is a shift count the width allows.
366 #[test]
367 fn a_shift_by_a_count_the_width_allows_is_the_immediate_form() {
368 let mut terms = Terms::default();
369 let x = terms.value(64, "v0");
370 let k = terms.constant(3);
371 let k = terms.app("iconst.i64", &[k]);
372 let shl = terms.app("shl.i64", &[x, k]);
373 assert_eq!(selects(&terms, shl), Some("x64.shl_ri_64"));
374 }
375
376 #[test]
377 fn a_shift_by_a_count_the_width_does_not_allow_matches_nothing() {
378 let mut terms = Terms::default();
379 let x = terms.value(64, "v0");
380 let k = terms.constant(64);
381 let k = terms.app("iconst.i64", &[k]);
382 let shl = terms.app("shl.i64", &[x, k]);
383 assert_eq!(selects(&terms, shl), None);
384 }
385
386 /// One bit reaches the byte instructions, which is the whole of how the machine holds a truth
387 /// value. The widening is the interesting one: it is `movzbl` under a name of its own, so the
388 /// rule that fires here is not the rule a byte would have found.
389 #[test]
390 fn a_truth_value_is_lowered_to_the_byte_instructions_that_keep_it_one() {
391 let mut terms = Terms::default();
392 let x = terms.value(1, "v0");
393 let y = terms.value(1, "v1");
394 let xor = terms.app("xor.i1", &[x, y]);
395 assert_eq!(selects(&terms, xor), Some("x64.xor_rr_8"));
396
397 let x = terms.value(1, "v2");
398 let wide = terms.app("zext.i1.i32", &[x]);
399 assert_eq!(selects(&terms, wide), Some("x64.bit_to_32"));
400
401 let x = terms.value(8, "v3");
402 let byte = terms.app("zext.i8.i32", &[x]);
403 assert_eq!(selects(&terms, byte), Some("x64.movzx_8_32"));
404 }
405
406 /// The half of a truth value that is an object rather than a value in a register. A `_Bool`
407 /// in memory is a byte holding a zero or a one, so a load widens on the way in and a store
408 /// writes the byte, and both are named apart from the byte pair for the reason the widening
409 /// is named apart from the byte widening. The narrowing is the mask, and it is the one of
410 /// these that nothing in C asks for directly: a bit field one bit wide whose type is a
411 /// `_Bool` is what writes it.
412 #[test]
413 fn a_truth_value_in_memory_is_the_byte_it_lives_in() {
414 let mut terms = Terms::default();
415 let address = terms.value(64, "v0");
416 let read = terms.app("load.i1", &[address]);
417 assert_eq!(selects(&terms, read), Some("x64.mov_rm_bit"));
418
419 let value = terms.value(1, "v1");
420 let address = terms.value(64, "v2");
421 let write = terms.app("store.i1", &[value, address]);
422 assert_eq!(selects(&terms, write), Some("x64.mov_mr_bit"));
423
424 let value = terms.value(1, "v3");
425 let back = terms.app("ret.i1", &[value]);
426 assert_eq!(selects(&terms, back), Some("x64.ret_val_8"));
427
428 let x = terms.value(32, "v4");
429 let bit = terms.app("trunc.i32.i1", &[x]);
430 assert_eq!(selects(&terms, bit), Some("x64.bit_of_32"));
431 }
432
433 /// The divisions at one byte and at two, which the `narrow` pass writes for a division of two
434 /// zero extensions and, signed, for a division of two sign extensions the ranges clear.
435 #[test]
436 fn a_narrow_division_is_the_narrow_divide() {
437 let mut terms = Terms::default();
438 for width in [8, 16] {
439 let x = terms.value(width, "v0");
440 let y = terms.value(width, "v1");
441 for (op, head) in [
442 ("udiv", "div_quo"),
443 ("urem", "div_rem"),
444 ("sdiv", "idiv_quo"),
445 ("srem", "idiv_rem"),
446 ] {
447 let term = terms.app(&format!("{op}.i{width}"), &[x, y]);
448 let want = format!("x64.{head}_{width}");
449 assert_eq!(selects(&terms, term), Some(want.as_str()));
450 }
451 }
452 }
453
454 /// A term the rule set says nothing about is nothing rather than a wrong answer, which is
455 /// what the completeness check in `spec/10-backend.md` will be for.
456 #[test]
457 fn a_term_no_rule_covers_finds_no_rule() {
458 let mut terms = Terms::default();
459 let x = terms.value(64, "v0");
460 let y = terms.value(64, "v1");
461 let odd = terms.app("no.such.opcode", &[x, y]);
462 assert_eq!(selects(&terms, odd), None);
463 }
464
465 /// Every instruction a selector names outside its rules is one its machine describes, since
466 /// the lowering writes those without asking a rule and nothing else would catch a name that is
467 /// not there.
468 #[test]
469 fn a_selector_names_only_instructions_its_machine_has() {
470 for selector in [&super::x86_64::SELECTOR, &super::aarch64::SELECTOR] {
471 let named = [
472 selector.fence,
473 selector.trap,
474 selector.frame.lea,
475 selector.frame.grow,
476 selector.frame.imm,
477 selector.branch.indirect,
478 ];
479 for name in named {
480 assert!(
481 selector.operands(name).is_some(),
482 "{}{name} is not an instruction of its machine",
483 selector.prefix()
484 );
485 }
486 // And the rules it is handed are the ones written for the same machine.
487 for rule in selector.table.rules {
488 let Some(Piece::App { head, .. }) = rule.replacement.first() else { continue };
489 assert!(head.starts_with(selector.prefix()), "{head} in {}", selector.table.source);
490 }
491 }
492 }
493
494 /// An address constructor is read the same way on both machines, and the one the AArch64 rules
495 /// cannot write is not one it answers for.
496 #[test]
497 fn both_machines_read_an_address_the_same_way() {
498 let (x86, a64) = (&super::x86_64::SELECTOR, &super::aarch64::SELECTOR);
499 for name in ["amode_base", "amode_base_offset"] {
500 assert_eq!((x86.address)(name), (a64.address)(name));
501 assert!((a64.address)(name).is_some());
502 }
503 assert!((x86.address)("amode_base_index_scale").is_some());
504 assert_eq!((a64.address)("amode_base_index_scale"), None);
505 assert_eq!((a64.address)("add_rr_64"), None);
506 }
507}