rucc_codegen/select/x86_64.rs
1//! The x86-64 lowering table.
2//!
3//! Everything below the module comment is generated from `rules/x86-64.rules` by `rucc-rules`
4//! when this crate is built, and none of it is in the repository. The rule file is the only
5//! place the rules are written, which is what makes the table that is matched with and the
6//! table `rucc-verify` proves things about the same table.
7//!
8//! To read the rules, read the rule file. To read the automaton they compile into, build the
9//! crate and read `x86-64.rs` under the build directory, which is a file worth looking at once
10//! for the shape of it and never again.
11
12// A guard is emitted as the comparison the rule writes, so a rule saying a shift count is at
13// least zero and less than the width comes out as two comparisons rather than as a range. That
14// is deliberate: the generated line and the rule it came from should read the same, and the
15// suggestion to write it another way is advice for somebody editing code, which nobody here is.
16#![allow(clippy::manual_range_contains)]
17
18include!(concat!(env!("OUT_DIR"), "/x86-64.rs"));
19
20#[cfg(test)]
21mod tests {
22 use rucc_target::x86_64;
23
24 use super::TABLE;
25 use crate::select::Piece;
26
27 /// The prefix a rule file puts in front of a machine term, which is how it says which target
28 /// the term belongs to. It is not part of the opcode.
29 const PREFIX: &str = "x64.";
30
31 /// The two address constructors, which are not instructions. An addressing mode is an
32 /// argument to `lea` and to every memory operand after it, so it is written as a term in the
33 /// rule file and built by the selector into the instruction that takes it.
34 const AMODES: &[&str] =
35 &["amode_base_index_scale", "amode_index_scale", "amode_base", "amode_base_offset"];
36
37 /// Every head this table can write, in and under the replacements.
38 fn heads() -> Vec<&'static str> {
39 let mut found: Vec<&'static str> = TABLE
40 .rules
41 .iter()
42 .flat_map(|rule| rule.replacement.iter())
43 .filter_map(|piece| match piece {
44 Piece::App { head, .. } => Some(*head),
45 _ => None,
46 })
47 .collect();
48 found.sort_unstable();
49 found.dedup();
50 found
51 }
52
53 #[test]
54 fn every_instruction_the_table_writes_is_described() {
55 for head in heads() {
56 if AMODES.contains(&head) {
57 continue;
58 }
59 let opcode = head.strip_prefix(PREFIX).unwrap_or_else(|| {
60 panic!("{head} is neither an x86-64 term nor an addressing mode")
61 });
62 assert!(
63 x86_64::form(opcode).is_some(),
64 "{head} is selected by a rule and `rucc_target::x86_64` does not say what it \
65 does with its operands"
66 );
67 }
68 }
69
70 /// The order the operands of a store are written in, which is the IR's and not a choice this
71 /// file makes.
72 ///
73 /// A pattern is matched against an instruction's operand list by position, so a rule that
74 /// names the address where the IR holds the value is a rule that stores to the value and
75 /// writes the address into memory. Nothing in a proof would catch it, because a proof is
76 /// about the rule file agreeing with itself, and both halves would be wrong in the same way.
77 /// `rucc_ir::Builder::store` takes the value first and the machine instruction takes it last,
78 /// which is why the two halves of one of these rules read in opposite orders.
79 #[test]
80 fn a_store_is_written_with_the_value_first_because_that_is_where_the_ir_keeps_it() {
81 let mut seen = 0;
82 for rule in TABLE.rules {
83 let Some(rest) = rule.pattern.strip_prefix("(store.") else { continue };
84 let (width, operands) = rest.split_once(' ').expect("a store takes operands");
85 assert!(
86 operands.starts_with(&format!("(value.{width} ")),
87 "line {}: {} binds something other than the value it is storing first",
88 rule.line,
89 rule.pattern
90 );
91 assert!(
92 operands.contains("(value.i64 "),
93 "line {}: {} reaches no address",
94 rule.line,
95 rule.pattern
96 );
97 seen += 1;
98 }
99 assert_eq!(seen, 14, "the store rules moved and this test did not follow them");
100 }
101
102 /// Every comparison can be made against a constant as well as against a register.
103 ///
104 /// Four comparisons in five in the corpus are against a constant, and without a rule for one
105 /// the constant is loaded into a register first, which is an instruction and a register the
106 /// machine never needed. A missing width or a missing condition would not fail anything else:
107 /// the register rule still matches, the output is still correct, and the only sign is code
108 /// that is one instruction longer in a place nobody is looking. So the two lists are counted
109 /// against each other here.
110 ///
111 /// What this cannot check is that the condition on the immediate rule is the right one, since
112 /// both halves of a wrong pair would be a consistent pair. That is what the `spec` clause is
113 /// for, and `rucc-verify` is what reads it.
114 #[test]
115 fn a_comparison_against_a_constant_is_written_for_every_one_against_a_register() {
116 let mut against_register = Vec::new();
117 let mut against_constant = Vec::new();
118 for rule in TABLE.rules {
119 let Some(rest) = rule.pattern.strip_prefix("(icmp_") else { continue };
120 let (condition, operands) = rest.split_once(".i1 ").expect("a comparison takes two");
121 let width = operands
122 .strip_prefix("(value.")
123 .and_then(|rest| rest.split_once(' '))
124 .map(|(width, _)| width)
125 .expect("a comparison reads a value first");
126 let named = format!("{condition}.{width}");
127 if operands.contains("(iconst.") {
128 // The constant is the second operand and never the first, because a comparison is
129 // not symmetric and the same condition on the other side means the opposite.
130 assert!(
131 !operands.starts_with("(iconst."),
132 "line {}: {} compares a constant against a value",
133 rule.line,
134 rule.pattern
135 );
136 against_constant.push(named);
137 } else {
138 against_register.push(named);
139 }
140 }
141 against_register.sort_unstable();
142 against_constant.sort_unstable();
143 assert_eq!(against_register, against_constant);
144 assert_eq!(against_register.len(), 40, "ten conditions at four widths");
145 }
146
147 /// The instructions the calling convention writes rather than a rule.
148 ///
149 /// Three kinds of them. Naming the register an argument arrived in, where an argument is
150 /// depends on its position in the signature and on the classification of every argument before
151 /// it, and a rule pattern sees one term and has no way to say any of that, so `crate::abi`
152 /// builds these from the convention instead. Calling a name is the same the other way round:
153 /// what its operands are is whatever the signature made them, and a call through an address is
154 /// the same instruction with one operand more.
155 ///
156 /// The second half of a value that comes back in two registers is the third. A return of one
157 /// value is a rule, because where that value goes depends on nothing but the value, which is
158 /// exactly what a rule can say. A return of two is not, because which register the second half
159 /// is in depends on the first half: the two register files are counted separately, so a
160 /// `double` and a `long` both come back at place zero and two `long`s do not.
161 const CONVENTION: &[&str] = &[
162 "arg_val_8",
163 "arg_val_16",
164 "arg_val_32",
165 "arg_val_64",
166 "arg_val_f32",
167 "arg_val_f64",
168 "ret_val2_8",
169 "ret_val2_16",
170 "ret_val2_32",
171 "ret_val2_64",
172 "ret_val2_f32",
173 "ret_val2_f64",
174 "call",
175 "call_reg",
176 ];
177
178 /// The instructions the block layout writes rather than a rule.
179 ///
180 /// A rule sees one branch and the layout is about the order of every block in the function, so
181 /// which arm falls through is not something any pattern could say. That answer is what decides
182 /// whether the jump goes to the arm the condition is true for or the other one, and whether
183 /// there is a second jump after it, so all of these are written where the answer is.
184 ///
185 /// The comparisons are here for a second reason on top of that one. A branch on a comparison
186 /// is a comparison and a jump on the flags it set, and the flags are not a value: no pattern
187 /// could bind one and no `spec` clause could say anything about one. So the pair is put
188 /// together by the layout, out of a comparison a rule did select and the branch behind it,
189 /// which is the same argument `rucc_target::x86_64::Form::CmpSet` is one form rather than two
190 /// under.
191 const LAYOUT: &[&str] = &[
192 "test_rr_8",
193 "cmp_rr_8",
194 "cmp_rr_16",
195 "cmp_rr_32",
196 "cmp_rr_64",
197 "cmp_ri_8",
198 "cmp_ri_16",
199 "cmp_ri_32",
200 "cmp_ri_64",
201 "jcc_e",
202 "jcc_ne",
203 "jcc_l",
204 "jcc_le",
205 "jcc_g",
206 "jcc_ge",
207 "jcc_b",
208 "jcc_be",
209 "jcc_a",
210 "jcc_ae",
211 "jmp",
212 ];
213
214 /// The instruction the memory model writes rather than a rule.
215 ///
216 /// A barrier computes nothing, so there is no equality for the solver to discharge and no
217 /// pattern for a rule to be written as. What makes it the right answer is what the machine
218 /// promises about the order two other instructions become visible in, which is a claim about
219 /// the program around it rather than about any value. `crate::lower` writes it by name, at the
220 /// strongest ordering and nowhere else, and `crate::expand` says why the strongest is the only
221 /// one that costs anything here.
222 const BARRIER: &[&str] = &["mfence"];
223
224 /// The instructions that produce two values, which is one more than a rule can name.
225 ///
226 /// A rule replaces a term with a term, and a term is the value one instruction computes. A
227 /// compare and exchange computes two: what it found at the address, and whether what it found
228 /// was what the program expected. There is no way to write the second one down in the rule
229 /// language, and inventing one would be inventing a language for a single instruction.
230 ///
231 /// So `crate::lower` writes it by name, the way it writes the barrier by name, and for a reason
232 /// that is about the rule language rather than about the machine. What the solver would have
233 /// been asked to prove about it is the easy half in any case: the arithmetic is a comparison
234 /// and a select, and what is hard is that the whole of it happens at once, which is the same
235 /// claim about the program around it that a barrier makes.
236 const ATOMIC: &[&str] = &["cmpxchg_8", "cmpxchg_16", "cmpxchg_32", "cmpxchg_64"];
237
238 /// The instructions whose operation is in the payload rather than in the head.
239 ///
240 /// A different exemption from the one above, on instructions that produce one value each and so
241 /// could be named by a rule if the rule had anything to match on. The head a pattern matches is
242 /// an opcode and a type, and every read modify write in the IR is the one opcode `atomic_rmw`.
243 /// Which of the thirteen operations it performs is carried beside the instruction rather than in
244 /// its name, so a pattern written for the exchange would match the add and the nand as well, and
245 /// the rule language has no way to look at what a rule matched to tell them apart.
246 ///
247 /// Giving each operation its own opcode is the other way out and is a worse trade: it is
248 /// thirteen opcodes at four widths where the IR wants one, and every pass that treats a read
249 /// modify write as one thing would then have a list of fifty two.
250 ///
251 /// So `crate::lower` writes these by name too. Three operations here, out of the thirteen: the
252 /// bitwise ones need a loop around a compare and exchange, which is control flow and so is built
253 /// before selection rather than during it, and they are the rest of `tamnd/rucc#311`.
254 const PAYLOAD: &[&str] =
255 &["xchg_8", "xchg_16", "xchg_32", "xchg_64", "xadd_8", "xadd_16", "xadd_32", "xadd_64"];
256
257 /// The instructions a frame writes rather than a rule.
258 ///
259 /// A prologue, an epilogue, a copy, a spill and a reload are not in the program. They are what
260 /// the allocator's answer costs, so they are written after it, by `crate::finish` reading
261 /// `x86_64::FRAME`. Six of the names that describes are already reachable from a rule, since a
262 /// prologue taking its frame is a subtraction and a spill is a store, and those are not here:
263 /// this is only the ones nothing else can reach.
264 const FRAME: &[&str] =
265 &["push_64", "pop_64", "ret", "mov_rr_64", "movaps_rr", "movaps_rm", "movaps_mr"];
266
267 /// The instructions that reach the x87 stack, which are selected but not from here.
268 ///
269 /// A third kind of exemption, and the same reason all the way down the list.
270 ///
271 /// Every one of these is written by `crate::lower`, as part of a group rather than on its own.
272 /// What one of them leaves behind and the next picks up is the top of the x87 stack, which is
273 /// not a register anything allocates from and not a value a pattern could bind, so a rule
274 /// could neither match the middle of a group nor name what its replacement produced. And an
275 /// add here reads two addresses and writes a third, where one machine IR instruction carries
276 /// one addressing mode, so the group cannot be folded into a single opcode the way
277 /// `ucomisd_set_e` folds a comparison and a `setcc` either.
278 ///
279 /// So these are exempt for the reason `FRAME` is exempt rather than for the reason the list
280 /// below is, and they will stay exempt. Two of them are not reached by anything yet all the
281 /// same: `fsub_p` and `fdiv_p` are the other direction of the subtraction and the division,
282 /// which a code generator that pushed its operands the other way round would need and this one
283 /// does not. `fabs` is a third, since C spells that as a call to a library function.
284 const X87: &[&str] = &[
285 "fld_t",
286 "fstp_t",
287 "fld_s",
288 "fld_l",
289 "fild_l",
290 "fild_ll",
291 "fstp_s",
292 "fstp_l",
293 "fistp_l",
294 "fistp_ll",
295 "fnstcw",
296 "fldcw",
297 "fadd_p",
298 "fsub_p",
299 "fsubr_p",
300 "fmul_p",
301 "fdiv_p",
302 "fdivr_p",
303 "fchs",
304 "fabs",
305 "fucomip_set_a",
306 "fucomip_set_ae",
307 "fucomip_set_b",
308 "fucomip_set_be",
309 "fucomip_set_e",
310 "fucomip_set_ne",
311 "fucomip_set_p",
312 "fucomip_set_np",
313 "fucomip_set_e_and_np",
314 "fucomip_set_ne_or_p",
315 ];
316
317 /// The instructions no rule selects yet, because the rules that selected them were taken out.
318 ///
319 /// A different kind of exemption from the three above. Those say an instruction is written
320 /// somewhere a rule cannot reach and always will be. These say nobody reaches one at all right
321 /// now, and name the work that puts the rules back.
322 ///
323 /// The rules went out under `tamnd/rucc#368`. C promotes the operands of an arithmetic
324 /// operator to `int`, so a byte add and a two byte compare are things no C program asks the
325 /// back end for, and the rules at those widths sat proved and never selected over the whole
326 /// torture corpus at every optimization level. The width narrowing pass in `tamnd/rucc#375` is
327 /// what asks for them, and the rules come back with it.
328 ///
329 /// The descriptions stayed. A description says what an x86-64 instruction is, how long it is
330 /// and how it encodes, and that is true whether or not anything selects it. Taking them out
331 /// would be deleting a correct account of the machine to make a list shorter, and putting them
332 /// back is then a second thing to get right rather than a line of a rule file.
333 const NARROW: &[&str] = &[
334 // Three of the two address forms against an immediate. The `narrow` pass does write the
335 // shape, since `char c = a | 1;` narrows to a byte `or` against a byte constant, and no
336 // rule selects these yet: the constant goes into a register and the register with
337 // register rule takes it. Their `add`, `sub` and `and` siblings do have rules and are
338 // reached by the bitfield lowering, so this is six rules missing rather than a shape
339 // nothing writes.
340 "or_ri_8",
341 "or_ri_16",
342 "xor_ri_8",
343 "xor_ri_16",
344 "imul_ri_8",
345 "imul_ri_16",
346 // The divides, which are four instructions per width because the quotient and the
347 // remainder come out of one division in two different registers. `narrow` refuses these
348 // on purpose: the most negative byte over minus one is a defined hundred and twenty eight
349 // at four bytes and is the overflow that raises at one, so narrowing a division wants a
350 // range that rules the pair out and there is no range analysis yet.
351 "idiv_quo_8",
352 "idiv_quo_16",
353 "idiv_rem_8",
354 "idiv_rem_16",
355 "div_quo_8",
356 "div_quo_16",
357 "div_rem_8",
358 "div_rem_16",
359 // The shifts by a value, whose count is in `cl` whatever the width being shifted is. The
360 // same refusal for the same kind of reason: a count of twenty is a defined shift to zero
361 // at four bytes and is poison at one, so only a count that is a constant below the narrow
362 // width narrows, and that one selects the immediate forms which do have rules.
363 "shl_rcl_8",
364 "shl_rcl_16",
365 "shr_rcl_8",
366 "shr_rcl_16",
367 "sar_rcl_8",
368 "sar_rcl_16",
369 ];
370
371 #[test]
372 fn every_instruction_exempt_from_a_rule_is_one_a_frame_really_writes() {
373 // The same claim as the one about the convention, so that this list cannot grow an opcode
374 // that no frame asks for. In the order `x86_64::FRAME` names them, the moves last because
375 // there is one set of them per class the allocator may spill.
376 let frame = &x86_64::FRAME;
377 let mut written = vec![frame.push, frame.pop, frame.ret];
378 for class in frame.classes {
379 written.extend([class.mov, class.load, class.store]);
380 }
381 // What is left after the ones a rule already reaches, which are the loads and the stores
382 // of a general purpose register, since those are the same instructions a program's own
383 // reads and writes of memory are.
384 written.retain(|opcode| !heads().contains(&format!("{PREFIX}{opcode}").as_str()));
385 assert_eq!(written, FRAME);
386 }
387
388 #[test]
389 fn every_instruction_exempt_from_a_rule_is_one_the_convention_really_writes() {
390 // An exemption list that nothing checks is a hole, since an opcode dropped into it stops
391 // being covered by either direction of the pinning. These are the ones `crate::abi` can
392 // name, at the four integer widths and the two float formats it has names for an
393 // argument in, and no others.
394 let strip = |head: &'static str| head.strip_prefix(PREFIX).expect("an x86-64 term");
395 let named = |ty| strip(crate::abi::head_of(ty).expect("every width the pseudos cover"));
396 // The second half of a pair at place one, which is the place a rule cannot name. The first
397 // half at place zero is `ret_val_*` and is reached by a rule, so it is not on this list.
398 let second = |ty| strip(crate::abi::ret_of(ty, 1).expect("every width the pseudos cover"));
399 let widths = || {
400 [8, 16, 32, 64]
401 .into_iter()
402 .map(rucc_ir::Type::int)
403 .chain([rucc_ir::Float::F32, rucc_ir::Float::F64].map(rucc_ir::Type::float))
404 };
405 let written: Vec<&str> = widths()
406 .map(named)
407 .chain(widths().map(second))
408 .chain([strip(crate::abi::CALL), strip(crate::abi::CALL_REG)])
409 .collect();
410 assert_eq!(written, CONVENTION);
411 }
412
413 /// The same claim about the block layout's list, which is longer than it looks.
414 ///
415 /// A name here that the layout does not write is an opcode exempted from needing a rule and
416 /// reached by nothing, and a name the layout writes that is not here is a failing test in
417 /// `every_described_instruction_is_reachable_from_a_rule` with a misleading message. Both are
418 /// avoided by taking the list from `rucc_target::x86_64::BRANCH` rather than believing it.
419 #[test]
420 fn every_instruction_exempt_from_a_rule_is_one_the_block_layout_really_writes() {
421 let branch = &x86_64::BRANCH;
422 // Eighty entries name sixteen instructions between them, so this is a set rather than a
423 // list and both sides are sorted before they are held against each other. What the order
424 // of the list itself is for is reading it.
425 let mut written: Vec<&str> = vec![branch.test, branch.jump];
426 written.extend(branch.fused.iter().map(|fusion| fusion.cmp));
427 written.extend(branch.fused.iter().flat_map(|fusion| [fusion.if_true, fusion.if_false]));
428 written.sort_unstable();
429 written.dedup();
430 let mut exempt = LAYOUT.to_vec();
431 exempt.sort_unstable();
432 assert_eq!(written, exempt);
433 }
434
435 #[test]
436 fn every_described_instruction_is_reachable_from_a_rule() {
437 let written = heads();
438 for &(opcode, _) in x86_64::INSTS {
439 if CONVENTION.contains(&opcode) || LAYOUT.contains(&opcode) || FRAME.contains(&opcode) {
440 continue;
441 }
442 if NARROW.contains(&opcode) || BARRIER.contains(&opcode) || X87.contains(&opcode) {
443 continue;
444 }
445 if ATOMIC.contains(&opcode) || PAYLOAD.contains(&opcode) {
446 continue;
447 }
448 let head = format!("{PREFIX}{opcode}");
449 assert!(
450 written.contains(&head.as_str()),
451 "{opcode} is described and no rule in {} selects it",
452 TABLE.source
453 );
454 }
455 }
456
457 /// The same claim about the barrier as the ones above make about the convention and the frame:
458 /// the list holds instructions this target really describes, and holds only the ones that have
459 /// no operands, since an instruction with an operand is one a rule could have been written for.
460 #[test]
461 fn every_instruction_exempt_from_a_rule_is_one_the_memory_model_really_writes() {
462 for &opcode in BARRIER {
463 let form = x86_64::form(opcode).expect("an instruction this target describes");
464 assert!(form.operands().is_empty(), "{opcode} has operands, so a rule could name it");
465 }
466 }
467
468 /// The same claim about the atomic list, read off the thing that put the entry there: an
469 /// instruction is exempt for this reason exactly when it writes more than one value, and an
470 /// instruction that writes one is one a rule could have been written for.
471 #[test]
472 fn every_instruction_exempt_from_a_rule_is_one_that_writes_more_than_one_value() {
473 let written = heads();
474 for &opcode in ATOMIC {
475 let form = x86_64::form(opcode).expect("an instruction this target describes");
476 let writes = form.operands().iter().filter(|desc| desc.role.is_def()).count();
477 assert!(writes > 1, "{opcode} writes one value, so a rule could name it");
478 assert!(
479 !written.contains(&format!("{PREFIX}{opcode}").as_str()),
480 "a rule in {} selects {opcode}, which `crate::lower` also writes by hand",
481 TABLE.source
482 );
483 }
484 }
485
486 /// The same claim about the payload list, read off the thing that puts an entry there.
487 ///
488 /// Two halves. Each of these writes one value, which is what says the reason above is not the
489 /// reason here, so a list that grew to cover an instruction the atomic list should have had
490 /// fails. And there really is more than one operation behind the one IR opcode, which is the
491 /// whole of why a pattern cannot name any of them, and is a fact about the IR that would stop
492 /// being true if the operations were ever given opcodes of their own.
493 #[test]
494 fn every_instruction_exempt_because_its_operation_is_beside_it_writes_one_value() {
495 assert!(
496 rucc_ir::RmwOp::all().count() > 1,
497 "one operation per opcode would be a head a rule could match"
498 );
499 let written = heads();
500 for &opcode in PAYLOAD {
501 let form = x86_64::form(opcode).expect("an instruction this target describes");
502 let writes = form.operands().iter().filter(|desc| desc.role.is_def()).count();
503 assert_eq!(writes, 1, "{opcode} writes more than one value, so it is the other list's");
504 assert!(
505 !written.contains(&format!("{PREFIX}{opcode}").as_str()),
506 "a rule in {} selects {opcode}, which `crate::lower` also writes by hand",
507 TABLE.source
508 );
509 }
510 }
511
512 /// The staleness rule every list in this project is kept under, on the one list here whose
513 /// entries are meant to leave. A rule that starts selecting one of these is `tamnd/rucc#375`
514 /// arriving, and the entry goes with it. An entry naming an instruction nothing describes is a
515 /// misspelling, and it would sit here exempting nothing.
516 #[test]
517 fn an_instruction_a_rule_now_selects_is_off_the_list_of_the_ones_left_for_later() {
518 let written = heads();
519 for &opcode in NARROW {
520 let head = format!("{PREFIX}{opcode}");
521 assert!(
522 !written.contains(&head.as_str()),
523 "a rule in {} selects {opcode} now, so it is not waiting on tamnd/rucc#375",
524 TABLE.source
525 );
526 assert!(
527 x86_64::INSTS.iter().any(|&(described, _)| described == opcode),
528 "{opcode} is not an instruction anything describes"
529 );
530 }
531 }
532
533 /// The same staleness rule on the x87 pair, and one thing more that is particular to them.
534 ///
535 /// They are a pair. An instruction that pushes onto the x87 stack and nothing that pops off it
536 /// again would leave the stack one deeper than the function found it, which is not a mistake
537 /// the allocator or the block layout could catch, since neither of them knows the stack is
538 /// there. So the two arrive together and leave together, and that is what this says.
539 #[test]
540 fn the_x87_stack_is_reached_by_a_pair_and_by_nothing_else() {
541 let written = heads();
542 for &opcode in X87 {
543 assert!(
544 x86_64::INSTS.iter().any(|&(described, _)| described == opcode),
545 "{opcode} is not an instruction anything describes"
546 );
547 assert!(
548 !written.contains(&format!("{PREFIX}{opcode}").as_str()),
549 "a rule in {} selects {opcode}, which `crate::lower` also writes by hand",
550 TABLE.source
551 );
552 }
553 // One way onto the stack per format a value can be read from, one way off it per format a
554 // value can be written to, the control word pair that is neither, and the arithmetic. The
555 // count is here as well as in the target description because this list is what says none
556 // of them is reachable, and a name that arrived here without its partner would be a format
557 // this target can convert in one direction and not the other.
558 assert_eq!(X87.len(), 30, "twelve that move a value and eighteen that work on one");
559 }
560}