1use std::assert_matches::assert_matches;
2use std::cmp::Ordering;
3
4use rustc_abi::{Align, BackendRepr, ExternAbi, Float, HasDataLayout, Primitive, Size};
5use rustc_codegen_ssa::base::{compare_simd_types, wants_msvc_seh, wants_wasm_eh};
6use rustc_codegen_ssa::common::{IntPredicate, TypeKind};
7use rustc_codegen_ssa::errors::{ExpectedPointerMutability, InvalidMonomorphization};
8use rustc_codegen_ssa::mir::operand::{OperandRef, OperandValue};
9use rustc_codegen_ssa::mir::place::{PlaceRef, PlaceValue};
10use rustc_codegen_ssa::traits::*;
11use rustc_hir as hir;
12use rustc_middle::mir::BinOp;
13use rustc_middle::ty::layout::{FnAbiOf, HasTyCtxt, HasTypingEnv, LayoutOf};
14use rustc_middle::ty::{self, GenericArgsRef, Ty};
15use rustc_middle::{bug, span_bug};
16use rustc_span::{Span, Symbol, sym};
17use rustc_symbol_mangling::mangle_internal_symbol;
18use rustc_target::callconv::{FnAbi, PassMode};
19use rustc_target::spec::{HasTargetSpec, PanicStrategy};
20use tracing::debug;
21
22use crate::abi::{FnAbiLlvmExt, LlvmType};
23use crate::builder::Builder;
24use crate::context::CodegenCx;
25use crate::llvm::{self, Metadata};
26use crate::type_::Type;
27use crate::type_of::LayoutLlvmExt;
28use crate::va_arg::emit_va_arg;
29use crate::value::Value;
30
31fn get_simple_intrinsic<'ll>(
32 cx: &CodegenCx<'ll, '_>,
33 name: Symbol,
34) -> Option<(&'ll Type, &'ll Value)> {
35 let llvm_name = match name {
36 sym::sqrtf16 => "llvm.sqrt.f16",
37 sym::sqrtf32 => "llvm.sqrt.f32",
38 sym::sqrtf64 => "llvm.sqrt.f64",
39 sym::sqrtf128 => "llvm.sqrt.f128",
40
41 sym::powif16 => "llvm.powi.f16.i32",
42 sym::powif32 => "llvm.powi.f32.i32",
43 sym::powif64 => "llvm.powi.f64.i32",
44 sym::powif128 => "llvm.powi.f128.i32",
45
46 sym::sinf16 => "llvm.sin.f16",
47 sym::sinf32 => "llvm.sin.f32",
48 sym::sinf64 => "llvm.sin.f64",
49 sym::sinf128 => "llvm.sin.f128",
50
51 sym::cosf16 => "llvm.cos.f16",
52 sym::cosf32 => "llvm.cos.f32",
53 sym::cosf64 => "llvm.cos.f64",
54 sym::cosf128 => "llvm.cos.f128",
55
56 sym::powf16 => "llvm.pow.f16",
57 sym::powf32 => "llvm.pow.f32",
58 sym::powf64 => "llvm.pow.f64",
59 sym::powf128 => "llvm.pow.f128",
60
61 sym::expf16 => "llvm.exp.f16",
62 sym::expf32 => "llvm.exp.f32",
63 sym::expf64 => "llvm.exp.f64",
64 sym::expf128 => "llvm.exp.f128",
65
66 sym::exp2f16 => "llvm.exp2.f16",
67 sym::exp2f32 => "llvm.exp2.f32",
68 sym::exp2f64 => "llvm.exp2.f64",
69 sym::exp2f128 => "llvm.exp2.f128",
70
71 sym::logf16 => "llvm.log.f16",
72 sym::logf32 => "llvm.log.f32",
73 sym::logf64 => "llvm.log.f64",
74 sym::logf128 => "llvm.log.f128",
75
76 sym::log10f16 => "llvm.log10.f16",
77 sym::log10f32 => "llvm.log10.f32",
78 sym::log10f64 => "llvm.log10.f64",
79 sym::log10f128 => "llvm.log10.f128",
80
81 sym::log2f16 => "llvm.log2.f16",
82 sym::log2f32 => "llvm.log2.f32",
83 sym::log2f64 => "llvm.log2.f64",
84 sym::log2f128 => "llvm.log2.f128",
85
86 sym::fmaf16 => "llvm.fma.f16",
87 sym::fmaf32 => "llvm.fma.f32",
88 sym::fmaf64 => "llvm.fma.f64",
89 sym::fmaf128 => "llvm.fma.f128",
90
91 sym::fmuladdf16 => "llvm.fmuladd.f16",
92 sym::fmuladdf32 => "llvm.fmuladd.f32",
93 sym::fmuladdf64 => "llvm.fmuladd.f64",
94 sym::fmuladdf128 => "llvm.fmuladd.f128",
95
96 sym::fabsf16 => "llvm.fabs.f16",
97 sym::fabsf32 => "llvm.fabs.f32",
98 sym::fabsf64 => "llvm.fabs.f64",
99 sym::fabsf128 => "llvm.fabs.f128",
100
101 sym::minnumf16 => "llvm.minnum.f16",
102 sym::minnumf32 => "llvm.minnum.f32",
103 sym::minnumf64 => "llvm.minnum.f64",
104 sym::minnumf128 => "llvm.minnum.f128",
105
106 sym::maxnumf16 => "llvm.maxnum.f16",
107 sym::maxnumf32 => "llvm.maxnum.f32",
108 sym::maxnumf64 => "llvm.maxnum.f64",
109 sym::maxnumf128 => "llvm.maxnum.f128",
110
111 sym::copysignf16 => "llvm.copysign.f16",
112 sym::copysignf32 => "llvm.copysign.f32",
113 sym::copysignf64 => "llvm.copysign.f64",
114 sym::copysignf128 => "llvm.copysign.f128",
115
116 sym::floorf16 => "llvm.floor.f16",
117 sym::floorf32 => "llvm.floor.f32",
118 sym::floorf64 => "llvm.floor.f64",
119 sym::floorf128 => "llvm.floor.f128",
120
121 sym::ceilf16 => "llvm.ceil.f16",
122 sym::ceilf32 => "llvm.ceil.f32",
123 sym::ceilf64 => "llvm.ceil.f64",
124 sym::ceilf128 => "llvm.ceil.f128",
125
126 sym::truncf16 => "llvm.trunc.f16",
127 sym::truncf32 => "llvm.trunc.f32",
128 sym::truncf64 => "llvm.trunc.f64",
129 sym::truncf128 => "llvm.trunc.f128",
130
131 sym::round_ties_even_f16 => "llvm.rint.f16",
136 sym::round_ties_even_f32 => "llvm.rint.f32",
137 sym::round_ties_even_f64 => "llvm.rint.f64",
138 sym::round_ties_even_f128 => "llvm.rint.f128",
139
140 sym::roundf16 => "llvm.round.f16",
141 sym::roundf32 => "llvm.round.f32",
142 sym::roundf64 => "llvm.round.f64",
143 sym::roundf128 => "llvm.round.f128",
144
145 sym::ptr_mask => "llvm.ptrmask",
146
147 _ => return None,
148 };
149 Some(cx.get_intrinsic(llvm_name))
150}
151
152impl<'ll, 'tcx> IntrinsicCallBuilderMethods<'tcx> for Builder<'_, 'll, 'tcx> {
153 fn codegen_intrinsic_call(
154 &mut self,
155 instance: ty::Instance<'tcx>,
156 fn_abi: &FnAbi<'tcx, Ty<'tcx>>,
157 args: &[OperandRef<'tcx, &'ll Value>],
158 llresult: &'ll Value,
159 span: Span,
160 ) -> Result<(), ty::Instance<'tcx>> {
161 let tcx = self.tcx;
162 let callee_ty = instance.ty(tcx, self.typing_env());
163
164 let ty::FnDef(def_id, fn_args) = *callee_ty.kind() else {
165 bug!("expected fn item type, found {}", callee_ty);
166 };
167
168 let sig = callee_ty.fn_sig(tcx);
169 let sig = tcx.normalize_erasing_late_bound_regions(self.typing_env(), sig);
170 let arg_tys = sig.inputs();
171 let ret_ty = sig.output();
172 let name = tcx.item_name(def_id);
173
174 let llret_ty = self.layout_of(ret_ty).llvm_type(self);
175 let result = PlaceRef::new_sized(llresult, fn_abi.ret.layout);
176
177 let simple = get_simple_intrinsic(self, name);
178 let llval = match name {
179 _ if simple.is_some() => {
180 let (simple_ty, simple_fn) = simple.unwrap();
181 self.call(
182 simple_ty,
183 None,
184 None,
185 simple_fn,
186 &args.iter().map(|arg| arg.immediate()).collect::<Vec<_>>(),
187 None,
188 Some(instance),
189 )
190 }
191 sym::is_val_statically_known => {
192 let intrinsic_type = args[0].layout.immediate_llvm_type(self.cx);
193 let kind = self.type_kind(intrinsic_type);
194 let intrinsic_name = match kind {
195 TypeKind::Pointer | TypeKind::Integer => {
196 Some(format!("llvm.is.constant.{intrinsic_type:?}"))
197 }
198 TypeKind::Half => Some(format!("llvm.is.constant.f16")),
200 TypeKind::Float => Some(format!("llvm.is.constant.f32")),
201 TypeKind::Double => Some(format!("llvm.is.constant.f64")),
202 TypeKind::FP128 => Some(format!("llvm.is.constant.f128")),
203 _ => None,
204 };
205 if let Some(intrinsic_name) = intrinsic_name {
206 self.call_intrinsic(&intrinsic_name, &[args[0].immediate()])
207 } else {
208 self.const_bool(false)
209 }
210 }
211 sym::select_unpredictable => {
212 let cond = args[0].immediate();
213 assert_eq!(args[1].layout, args[2].layout);
214 let select = |bx: &mut Self, true_val, false_val| {
215 let result = bx.select(cond, true_val, false_val);
216 bx.set_unpredictable(&result);
217 result
218 };
219 match (args[1].val, args[2].val) {
220 (OperandValue::Ref(true_val), OperandValue::Ref(false_val)) => {
221 assert!(true_val.llextra.is_none());
222 assert!(false_val.llextra.is_none());
223 assert_eq!(true_val.align, false_val.align);
224 let ptr = select(self, true_val.llval, false_val.llval);
225 let selected =
226 OperandValue::Ref(PlaceValue::new_sized(ptr, true_val.align));
227 selected.store(self, result);
228 return Ok(());
229 }
230 (OperandValue::Immediate(_), OperandValue::Immediate(_))
231 | (OperandValue::Pair(_, _), OperandValue::Pair(_, _)) => {
232 let true_val = args[1].immediate_or_packed_pair(self);
233 let false_val = args[2].immediate_or_packed_pair(self);
234 select(self, true_val, false_val)
235 }
236 (OperandValue::ZeroSized, OperandValue::ZeroSized) => return Ok(()),
237 _ => span_bug!(span, "Incompatible OperandValue for select_unpredictable"),
238 }
239 }
240 sym::catch_unwind => {
241 catch_unwind_intrinsic(
242 self,
243 args[0].immediate(),
244 args[1].immediate(),
245 args[2].immediate(),
246 llresult,
247 );
248 return Ok(());
249 }
250 sym::breakpoint => self.call_intrinsic("llvm.debugtrap", &[]),
251 sym::va_copy => {
252 self.call_intrinsic("llvm.va_copy", &[args[0].immediate(), args[1].immediate()])
253 }
254 sym::va_arg => {
255 match fn_abi.ret.layout.backend_repr {
256 BackendRepr::Scalar(scalar) => {
257 match scalar.primitive() {
258 Primitive::Int(..) => {
259 if self.cx().size_of(ret_ty).bytes() < 4 {
260 let promoted_result = emit_va_arg(self, args[0], tcx.types.i32);
265 self.trunc(promoted_result, llret_ty)
266 } else {
267 emit_va_arg(self, args[0], ret_ty)
268 }
269 }
270 Primitive::Float(Float::F16) => {
271 bug!("the va_arg intrinsic does not work with `f16`")
272 }
273 Primitive::Float(Float::F64) | Primitive::Pointer(_) => {
274 emit_va_arg(self, args[0], ret_ty)
275 }
276 Primitive::Float(Float::F32) => {
278 bug!("the va_arg intrinsic does not work with `f32`")
279 }
280 Primitive::Float(Float::F128) => {
281 bug!("the va_arg intrinsic does not work with `f128`")
282 }
283 }
284 }
285 _ => bug!("the va_arg intrinsic does not work with non-scalar types"),
286 }
287 }
288
289 sym::volatile_load | sym::unaligned_volatile_load => {
290 let tp_ty = fn_args.type_at(0);
291 let ptr = args[0].immediate();
292 let load = if let PassMode::Cast { cast: ty, pad_i32: _ } = &fn_abi.ret.mode {
293 let llty = ty.llvm_type(self);
294 self.volatile_load(llty, ptr)
295 } else {
296 self.volatile_load(self.layout_of(tp_ty).llvm_type(self), ptr)
297 };
298 let align = if name == sym::unaligned_volatile_load {
299 1
300 } else {
301 self.align_of(tp_ty).bytes() as u32
302 };
303 unsafe {
304 llvm::LLVMSetAlignment(load, align);
305 }
306 if !result.layout.is_zst() {
307 self.store_to_place(load, result.val);
308 }
309 return Ok(());
310 }
311 sym::volatile_store => {
312 let dst = args[0].deref(self.cx());
313 args[1].val.volatile_store(self, dst);
314 return Ok(());
315 }
316 sym::unaligned_volatile_store => {
317 let dst = args[0].deref(self.cx());
318 args[1].val.unaligned_volatile_store(self, dst);
319 return Ok(());
320 }
321 sym::prefetch_read_data
322 | sym::prefetch_write_data
323 | sym::prefetch_read_instruction
324 | sym::prefetch_write_instruction => {
325 let (rw, cache_type) = match name {
326 sym::prefetch_read_data => (0, 1),
327 sym::prefetch_write_data => (1, 1),
328 sym::prefetch_read_instruction => (0, 0),
329 sym::prefetch_write_instruction => (1, 0),
330 _ => bug!(),
331 };
332 self.call_intrinsic(
333 "llvm.prefetch",
334 &[
335 args[0].immediate(),
336 self.const_i32(rw),
337 args[1].immediate(),
338 self.const_i32(cache_type),
339 ],
340 )
341 }
342 sym::carrying_mul_add => {
343 let (size, signed) = fn_args.type_at(0).int_size_and_signed(self.tcx);
344
345 let wide_llty = self.type_ix(size.bits() * 2);
346 let args = args.as_array().unwrap();
347 let [a, b, c, d] = args.map(|a| self.intcast(a.immediate(), wide_llty, signed));
348
349 let wide = if signed {
350 let prod = self.unchecked_smul(a, b);
351 let acc = self.unchecked_sadd(prod, c);
352 self.unchecked_sadd(acc, d)
353 } else {
354 let prod = self.unchecked_umul(a, b);
355 let acc = self.unchecked_uadd(prod, c);
356 self.unchecked_uadd(acc, d)
357 };
358
359 let narrow_llty = self.type_ix(size.bits());
360 let low = self.trunc(wide, narrow_llty);
361 let bits_const = self.const_uint(wide_llty, size.bits());
362 let high = self.lshr(wide, bits_const);
364 let high = self.trunc(high, narrow_llty);
366
367 let pair_llty = self.type_struct(&[narrow_llty, narrow_llty], false);
368 let pair = self.const_poison(pair_llty);
369 let pair = self.insert_value(pair, low, 0);
370 let pair = self.insert_value(pair, high, 1);
371 pair
372 }
373 sym::ctlz
374 | sym::ctlz_nonzero
375 | sym::cttz
376 | sym::cttz_nonzero
377 | sym::ctpop
378 | sym::bswap
379 | sym::bitreverse
380 | sym::rotate_left
381 | sym::rotate_right
382 | sym::saturating_add
383 | sym::saturating_sub => {
384 let ty = arg_tys[0];
385 if !ty.is_integral() {
386 tcx.dcx().emit_err(InvalidMonomorphization::BasicIntegerType {
387 span,
388 name,
389 ty,
390 });
391 return Ok(());
392 }
393 let (size, signed) = ty.int_size_and_signed(self.tcx);
394 let width = size.bits();
395 match name {
396 sym::ctlz | sym::cttz => {
397 let y = self.const_bool(false);
398 let ret = self.call_intrinsic(
399 &format!("llvm.{name}.i{width}"),
400 &[args[0].immediate(), y],
401 );
402
403 self.intcast(ret, llret_ty, false)
404 }
405 sym::ctlz_nonzero => {
406 let y = self.const_bool(true);
407 let llvm_name = &format!("llvm.ctlz.i{width}");
408 let ret = self.call_intrinsic(llvm_name, &[args[0].immediate(), y]);
409 self.intcast(ret, llret_ty, false)
410 }
411 sym::cttz_nonzero => {
412 let y = self.const_bool(true);
413 let llvm_name = &format!("llvm.cttz.i{width}");
414 let ret = self.call_intrinsic(llvm_name, &[args[0].immediate(), y]);
415 self.intcast(ret, llret_ty, false)
416 }
417 sym::ctpop => {
418 let ret = self.call_intrinsic(
419 &format!("llvm.ctpop.i{width}"),
420 &[args[0].immediate()],
421 );
422 self.intcast(ret, llret_ty, false)
423 }
424 sym::bswap => {
425 if width == 8 {
426 args[0].immediate() } else {
428 self.call_intrinsic(
429 &format!("llvm.bswap.i{width}"),
430 &[args[0].immediate()],
431 )
432 }
433 }
434 sym::bitreverse => self.call_intrinsic(
435 &format!("llvm.bitreverse.i{width}"),
436 &[args[0].immediate()],
437 ),
438 sym::rotate_left | sym::rotate_right => {
439 let is_left = name == sym::rotate_left;
440 let val = args[0].immediate();
441 let raw_shift = args[1].immediate();
442 let llvm_name =
444 &format!("llvm.fsh{}.i{}", if is_left { 'l' } else { 'r' }, width);
445
446 let raw_shift = self.intcast(raw_shift, self.val_ty(val), false);
449
450 self.call_intrinsic(llvm_name, &[val, val, raw_shift])
451 }
452 sym::saturating_add | sym::saturating_sub => {
453 let is_add = name == sym::saturating_add;
454 let lhs = args[0].immediate();
455 let rhs = args[1].immediate();
456 let llvm_name = &format!(
457 "llvm.{}{}.sat.i{}",
458 if signed { 's' } else { 'u' },
459 if is_add { "add" } else { "sub" },
460 width
461 );
462 self.call_intrinsic(llvm_name, &[lhs, rhs])
463 }
464 _ => bug!(),
465 }
466 }
467
468 sym::raw_eq => {
469 use BackendRepr::*;
470 let tp_ty = fn_args.type_at(0);
471 let layout = self.layout_of(tp_ty).layout;
472 let use_integer_compare = match layout.backend_repr() {
473 Scalar(_) | ScalarPair(_, _) => true,
474 SimdVector { .. } => false,
475 Memory { .. } => {
476 layout.size() <= self.data_layout().pointer_size * 2
480 }
481 };
482
483 let a = args[0].immediate();
484 let b = args[1].immediate();
485 if layout.size().bytes() == 0 {
486 self.const_bool(true)
487 } else if use_integer_compare {
488 let integer_ty = self.type_ix(layout.size().bits());
489 let a_val = self.load(integer_ty, a, layout.align().abi);
490 let b_val = self.load(integer_ty, b, layout.align().abi);
491 self.icmp(IntPredicate::IntEQ, a_val, b_val)
492 } else {
493 let n = self.const_usize(layout.size().bytes());
494 let cmp = self.call_intrinsic("memcmp", &[a, b, n]);
495 match self.cx.sess().target.arch.as_ref() {
496 "avr" | "msp430" => self.icmp(IntPredicate::IntEQ, cmp, self.const_i16(0)),
497 _ => self.icmp(IntPredicate::IntEQ, cmp, self.const_i32(0)),
498 }
499 }
500 }
501
502 sym::compare_bytes => {
503 let cmp = self.call_intrinsic(
505 "memcmp",
506 &[args[0].immediate(), args[1].immediate(), args[2].immediate()],
507 );
508 self.sext(cmp, self.type_ix(32))
510 }
511
512 sym::black_box => {
513 args[0].val.store(self, result);
514 let result_val_span = [result.val.llval];
515 let (constraint, inputs): (&str, &[_]) = if result.layout.is_zst() {
525 ("~{memory}", &[])
526 } else {
527 ("r,~{memory}", &result_val_span)
528 };
529 crate::asm::inline_asm_call(
530 self,
531 "",
532 constraint,
533 inputs,
534 self.type_void(),
535 &[],
536 true,
537 false,
538 llvm::AsmDialect::Att,
539 &[span],
540 false,
541 None,
542 None,
543 )
544 .unwrap_or_else(|| bug!("failed to generate inline asm call for `black_box`"));
545
546 return Ok(());
548 }
549
550 _ if name.as_str().starts_with("simd_") => {
551 let mut loaded_args = Vec::new();
554 for (ty, arg) in arg_tys.iter().zip(args) {
555 loaded_args.push(
556 if ty.is_simd()
561 && let OperandValue::Ref(place) = arg.val
562 {
563 let (size, elem_ty) = ty.simd_size_and_type(self.tcx());
564 let elem_ll_ty = match elem_ty.kind() {
565 ty::Float(f) => self.type_float_from_ty(*f),
566 ty::Int(i) => self.type_int_from_ty(*i),
567 ty::Uint(u) => self.type_uint_from_ty(*u),
568 ty::RawPtr(_, _) => self.type_ptr(),
569 _ => unreachable!(),
570 };
571 let loaded =
572 self.load_from_place(self.type_vector(elem_ll_ty, size), place);
573 OperandRef::from_immediate_or_packed_pair(self, loaded, arg.layout)
574 } else {
575 *arg
576 },
577 );
578 }
579
580 let llret_ty = if ret_ty.is_simd()
581 && let BackendRepr::Memory { .. } = self.layout_of(ret_ty).layout.backend_repr
582 {
583 let (size, elem_ty) = ret_ty.simd_size_and_type(self.tcx());
584 let elem_ll_ty = match elem_ty.kind() {
585 ty::Float(f) => self.type_float_from_ty(*f),
586 ty::Int(i) => self.type_int_from_ty(*i),
587 ty::Uint(u) => self.type_uint_from_ty(*u),
588 ty::RawPtr(_, _) => self.type_ptr(),
589 _ => unreachable!(),
590 };
591 self.type_vector(elem_ll_ty, size)
592 } else {
593 llret_ty
594 };
595
596 match generic_simd_intrinsic(
597 self,
598 name,
599 callee_ty,
600 fn_args,
601 &loaded_args,
602 ret_ty,
603 llret_ty,
604 span,
605 ) {
606 Ok(llval) => llval,
607 Err(()) => return Ok(()),
610 }
611 }
612
613 _ => {
614 debug!("unknown intrinsic '{}' -- falling back to default body", name);
615 return Err(ty::Instance::new(instance.def_id(), instance.args));
617 }
618 };
619
620 if !fn_abi.ret.is_ignore() {
621 if let PassMode::Cast { .. } = &fn_abi.ret.mode {
622 self.store(llval, result.val.llval, result.val.align);
623 } else {
624 OperandRef::from_immediate_or_packed_pair(self, llval, result.layout)
625 .val
626 .store(self, result);
627 }
628 }
629 Ok(())
630 }
631
632 fn abort(&mut self) {
633 self.call_intrinsic("llvm.trap", &[]);
634 }
635
636 fn assume(&mut self, val: Self::Value) {
637 if self.cx.sess().opts.optimize != rustc_session::config::OptLevel::No {
638 self.call_intrinsic("llvm.assume", &[val]);
639 }
640 }
641
642 fn expect(&mut self, cond: Self::Value, expected: bool) -> Self::Value {
643 if self.cx.sess().opts.optimize != rustc_session::config::OptLevel::No {
644 self.call_intrinsic("llvm.expect.i1", &[cond, self.const_bool(expected)])
645 } else {
646 cond
647 }
648 }
649
650 fn type_test(&mut self, pointer: Self::Value, typeid: Self::Metadata) -> Self::Value {
651 let typeid = self.get_metadata_value(typeid);
654 self.call_intrinsic("llvm.type.test", &[pointer, typeid])
655 }
656
657 fn type_checked_load(
658 &mut self,
659 llvtable: &'ll Value,
660 vtable_byte_offset: u64,
661 typeid: &'ll Metadata,
662 ) -> Self::Value {
663 let typeid = self.get_metadata_value(typeid);
664 let vtable_byte_offset = self.const_i32(vtable_byte_offset as i32);
665 let type_checked_load =
666 self.call_intrinsic("llvm.type.checked.load", &[llvtable, vtable_byte_offset, typeid]);
667 self.extract_value(type_checked_load, 0)
668 }
669
670 fn va_start(&mut self, va_list: &'ll Value) -> &'ll Value {
671 self.call_intrinsic("llvm.va_start", &[va_list])
672 }
673
674 fn va_end(&mut self, va_list: &'ll Value) -> &'ll Value {
675 self.call_intrinsic("llvm.va_end", &[va_list])
676 }
677}
678
679fn catch_unwind_intrinsic<'ll>(
680 bx: &mut Builder<'_, 'll, '_>,
681 try_func: &'ll Value,
682 data: &'ll Value,
683 catch_func: &'ll Value,
684 dest: &'ll Value,
685) {
686 if bx.sess().panic_strategy() == PanicStrategy::Abort {
687 let try_func_ty = bx.type_func(&[bx.type_ptr()], bx.type_void());
688 bx.call(try_func_ty, None, None, try_func, &[data], None, None);
689 let ret_align = bx.tcx().data_layout.i32_align.abi;
692 bx.store(bx.const_i32(0), dest, ret_align);
693 } else if wants_msvc_seh(bx.sess()) {
694 codegen_msvc_try(bx, try_func, data, catch_func, dest);
695 } else if wants_wasm_eh(bx.sess()) {
696 codegen_wasm_try(bx, try_func, data, catch_func, dest);
697 } else if bx.sess().target.os == "emscripten" {
698 codegen_emcc_try(bx, try_func, data, catch_func, dest);
699 } else {
700 codegen_gnu_try(bx, try_func, data, catch_func, dest);
701 }
702}
703
704fn codegen_msvc_try<'ll>(
712 bx: &mut Builder<'_, 'll, '_>,
713 try_func: &'ll Value,
714 data: &'ll Value,
715 catch_func: &'ll Value,
716 dest: &'ll Value,
717) {
718 let (llty, llfn) = get_rust_try_fn(bx, &mut |mut bx| {
719 bx.set_personality_fn(bx.eh_personality());
720
721 let normal = bx.append_sibling_block("normal");
722 let catchswitch = bx.append_sibling_block("catchswitch");
723 let catchpad_rust = bx.append_sibling_block("catchpad_rust");
724 let catchpad_foreign = bx.append_sibling_block("catchpad_foreign");
725 let caught = bx.append_sibling_block("caught");
726
727 let try_func = llvm::get_param(bx.llfn(), 0);
728 let data = llvm::get_param(bx.llfn(), 1);
729 let catch_func = llvm::get_param(bx.llfn(), 2);
730
731 let ptr_size = bx.tcx().data_layout.pointer_size;
787 let ptr_align = bx.tcx().data_layout.pointer_align.abi;
788 let slot = bx.alloca(ptr_size, ptr_align);
789 let try_func_ty = bx.type_func(&[bx.type_ptr()], bx.type_void());
790 bx.invoke(try_func_ty, None, None, try_func, &[data], normal, catchswitch, None, None);
791
792 bx.switch_to_block(normal);
793 bx.ret(bx.const_i32(0));
794
795 bx.switch_to_block(catchswitch);
796 let cs = bx.catch_switch(None, None, &[catchpad_rust, catchpad_foreign]);
797
798 let type_info_vtable = bx.declare_global("??_7type_info@@6B@", bx.type_ptr());
813 let type_name = bx.const_bytes(b"rust_panic\0");
814 let type_info =
815 bx.const_struct(&[type_info_vtable, bx.const_null(bx.type_ptr()), type_name], false);
816 let tydesc = bx.declare_global(
817 &mangle_internal_symbol(bx.tcx, "__rust_panic_type_info"),
818 bx.val_ty(type_info),
819 );
820
821 llvm::set_linkage(tydesc, llvm::Linkage::LinkOnceODRLinkage);
822 if bx.cx.tcx.sess.target.supports_comdat() {
823 llvm::SetUniqueComdat(bx.llmod, tydesc);
824 }
825 llvm::set_initializer(tydesc, type_info);
826
827 bx.switch_to_block(catchpad_rust);
834 let flags = bx.const_i32(8);
835 let funclet = bx.catch_pad(cs, &[tydesc, flags, slot]);
836 let ptr = bx.load(bx.type_ptr(), slot, ptr_align);
837 let catch_ty = bx.type_func(&[bx.type_ptr(), bx.type_ptr()], bx.type_void());
838 bx.call(catch_ty, None, None, catch_func, &[data, ptr], Some(&funclet), None);
839 bx.catch_ret(&funclet, caught);
840
841 bx.switch_to_block(catchpad_foreign);
843 let flags = bx.const_i32(64);
844 let null = bx.const_null(bx.type_ptr());
845 let funclet = bx.catch_pad(cs, &[null, flags, null]);
846 bx.call(catch_ty, None, None, catch_func, &[data, null], Some(&funclet), None);
847 bx.catch_ret(&funclet, caught);
848
849 bx.switch_to_block(caught);
850 bx.ret(bx.const_i32(1));
851 });
852
853 let ret = bx.call(llty, None, None, llfn, &[try_func, data, catch_func], None, None);
856 let i32_align = bx.tcx().data_layout.i32_align.abi;
857 bx.store(ret, dest, i32_align);
858}
859
860fn codegen_wasm_try<'ll>(
862 bx: &mut Builder<'_, 'll, '_>,
863 try_func: &'ll Value,
864 data: &'ll Value,
865 catch_func: &'ll Value,
866 dest: &'ll Value,
867) {
868 let (llty, llfn) = get_rust_try_fn(bx, &mut |mut bx| {
869 bx.set_personality_fn(bx.eh_personality());
870
871 let normal = bx.append_sibling_block("normal");
872 let catchswitch = bx.append_sibling_block("catchswitch");
873 let catchpad = bx.append_sibling_block("catchpad");
874 let caught = bx.append_sibling_block("caught");
875
876 let try_func = llvm::get_param(bx.llfn(), 0);
877 let data = llvm::get_param(bx.llfn(), 1);
878 let catch_func = llvm::get_param(bx.llfn(), 2);
879
880 let try_func_ty = bx.type_func(&[bx.type_ptr()], bx.type_void());
904 bx.invoke(try_func_ty, None, None, try_func, &[data], normal, catchswitch, None, None);
905
906 bx.switch_to_block(normal);
907 bx.ret(bx.const_i32(0));
908
909 bx.switch_to_block(catchswitch);
910 let cs = bx.catch_switch(None, None, &[catchpad]);
911
912 bx.switch_to_block(catchpad);
913 let null = bx.const_null(bx.type_ptr());
914 let funclet = bx.catch_pad(cs, &[null]);
915
916 let ptr = bx.call_intrinsic("llvm.wasm.get.exception", &[funclet.cleanuppad()]);
917 let _sel = bx.call_intrinsic("llvm.wasm.get.ehselector", &[funclet.cleanuppad()]);
918
919 let catch_ty = bx.type_func(&[bx.type_ptr(), bx.type_ptr()], bx.type_void());
920 bx.call(catch_ty, None, None, catch_func, &[data, ptr], Some(&funclet), None);
921 bx.catch_ret(&funclet, caught);
922
923 bx.switch_to_block(caught);
924 bx.ret(bx.const_i32(1));
925 });
926
927 let ret = bx.call(llty, None, None, llfn, &[try_func, data, catch_func], None, None);
930 let i32_align = bx.tcx().data_layout.i32_align.abi;
931 bx.store(ret, dest, i32_align);
932}
933
934fn codegen_gnu_try<'ll>(
946 bx: &mut Builder<'_, 'll, '_>,
947 try_func: &'ll Value,
948 data: &'ll Value,
949 catch_func: &'ll Value,
950 dest: &'ll Value,
951) {
952 let (llty, llfn) = get_rust_try_fn(bx, &mut |mut bx| {
953 let then = bx.append_sibling_block("then");
966 let catch = bx.append_sibling_block("catch");
967
968 let try_func = llvm::get_param(bx.llfn(), 0);
969 let data = llvm::get_param(bx.llfn(), 1);
970 let catch_func = llvm::get_param(bx.llfn(), 2);
971 let try_func_ty = bx.type_func(&[bx.type_ptr()], bx.type_void());
972 bx.invoke(try_func_ty, None, None, try_func, &[data], then, catch, None, None);
973
974 bx.switch_to_block(then);
975 bx.ret(bx.const_i32(0));
976
977 bx.switch_to_block(catch);
984 let lpad_ty = bx.type_struct(&[bx.type_ptr(), bx.type_i32()], false);
985 let vals = bx.landing_pad(lpad_ty, bx.eh_personality(), 1);
986 let tydesc = bx.const_null(bx.type_ptr());
987 bx.add_clause(vals, tydesc);
988 let ptr = bx.extract_value(vals, 0);
989 let catch_ty = bx.type_func(&[bx.type_ptr(), bx.type_ptr()], bx.type_void());
990 bx.call(catch_ty, None, None, catch_func, &[data, ptr], None, None);
991 bx.ret(bx.const_i32(1));
992 });
993
994 let ret = bx.call(llty, None, None, llfn, &[try_func, data, catch_func], None, None);
997 let i32_align = bx.tcx().data_layout.i32_align.abi;
998 bx.store(ret, dest, i32_align);
999}
1000
1001fn codegen_emcc_try<'ll>(
1005 bx: &mut Builder<'_, 'll, '_>,
1006 try_func: &'ll Value,
1007 data: &'ll Value,
1008 catch_func: &'ll Value,
1009 dest: &'ll Value,
1010) {
1011 let (llty, llfn) = get_rust_try_fn(bx, &mut |mut bx| {
1012 let then = bx.append_sibling_block("then");
1030 let catch = bx.append_sibling_block("catch");
1031
1032 let try_func = llvm::get_param(bx.llfn(), 0);
1033 let data = llvm::get_param(bx.llfn(), 1);
1034 let catch_func = llvm::get_param(bx.llfn(), 2);
1035 let try_func_ty = bx.type_func(&[bx.type_ptr()], bx.type_void());
1036 bx.invoke(try_func_ty, None, None, try_func, &[data], then, catch, None, None);
1037
1038 bx.switch_to_block(then);
1039 bx.ret(bx.const_i32(0));
1040
1041 bx.switch_to_block(catch);
1047 let tydesc = bx.eh_catch_typeinfo();
1048 let lpad_ty = bx.type_struct(&[bx.type_ptr(), bx.type_i32()], false);
1049 let vals = bx.landing_pad(lpad_ty, bx.eh_personality(), 2);
1050 bx.add_clause(vals, tydesc);
1051 bx.add_clause(vals, bx.const_null(bx.type_ptr()));
1052 let ptr = bx.extract_value(vals, 0);
1053 let selector = bx.extract_value(vals, 1);
1054
1055 let rust_typeid = bx.call_intrinsic("llvm.eh.typeid.for", &[tydesc]);
1057 let is_rust_panic = bx.icmp(IntPredicate::IntEQ, selector, rust_typeid);
1058 let is_rust_panic = bx.zext(is_rust_panic, bx.type_bool());
1059
1060 let ptr_size = bx.tcx().data_layout.pointer_size;
1063 let ptr_align = bx.tcx().data_layout.pointer_align.abi;
1064 let i8_align = bx.tcx().data_layout.i8_align.abi;
1065 assert!(i8_align <= ptr_align);
1067 let catch_data = bx.alloca(2 * ptr_size, ptr_align);
1068 bx.store(ptr, catch_data, ptr_align);
1069 let catch_data_1 = bx.inbounds_ptradd(catch_data, bx.const_usize(ptr_size.bytes()));
1070 bx.store(is_rust_panic, catch_data_1, i8_align);
1071
1072 let catch_ty = bx.type_func(&[bx.type_ptr(), bx.type_ptr()], bx.type_void());
1073 bx.call(catch_ty, None, None, catch_func, &[data, catch_data], None, None);
1074 bx.ret(bx.const_i32(1));
1075 });
1076
1077 let ret = bx.call(llty, None, None, llfn, &[try_func, data, catch_func], None, None);
1080 let i32_align = bx.tcx().data_layout.i32_align.abi;
1081 bx.store(ret, dest, i32_align);
1082}
1083
1084fn gen_fn<'a, 'll, 'tcx>(
1087 cx: &'a CodegenCx<'ll, 'tcx>,
1088 name: &str,
1089 rust_fn_sig: ty::PolyFnSig<'tcx>,
1090 codegen: &mut dyn FnMut(Builder<'a, 'll, 'tcx>),
1091) -> (&'ll Type, &'ll Value) {
1092 let fn_abi = cx.fn_abi_of_fn_ptr(rust_fn_sig, ty::List::empty());
1093 let llty = fn_abi.llvm_type(cx);
1094 let llfn = cx.declare_fn(name, fn_abi, None);
1095 cx.set_frame_pointer_type(llfn);
1096 cx.apply_target_cpu_attr(llfn);
1097 llvm::set_linkage(llfn, llvm::Linkage::InternalLinkage);
1099 let llbb = Builder::append_block(cx, llfn, "entry-block");
1100 let bx = Builder::build(cx, llbb);
1101 codegen(bx);
1102 (llty, llfn)
1103}
1104
1105fn get_rust_try_fn<'a, 'll, 'tcx>(
1110 cx: &'a CodegenCx<'ll, 'tcx>,
1111 codegen: &mut dyn FnMut(Builder<'a, 'll, 'tcx>),
1112) -> (&'ll Type, &'ll Value) {
1113 if let Some(llfn) = cx.rust_try_fn.get() {
1114 return llfn;
1115 }
1116
1117 let tcx = cx.tcx;
1119 let i8p = Ty::new_mut_ptr(tcx, tcx.types.i8);
1120 let try_fn_ty = Ty::new_fn_ptr(
1122 tcx,
1123 ty::Binder::dummy(tcx.mk_fn_sig(
1124 [i8p],
1125 tcx.types.unit,
1126 false,
1127 hir::Safety::Unsafe,
1128 ExternAbi::Rust,
1129 )),
1130 );
1131 let catch_fn_ty = Ty::new_fn_ptr(
1133 tcx,
1134 ty::Binder::dummy(tcx.mk_fn_sig(
1135 [i8p, i8p],
1136 tcx.types.unit,
1137 false,
1138 hir::Safety::Unsafe,
1139 ExternAbi::Rust,
1140 )),
1141 );
1142 let rust_fn_sig = ty::Binder::dummy(cx.tcx.mk_fn_sig(
1144 [try_fn_ty, i8p, catch_fn_ty],
1145 tcx.types.i32,
1146 false,
1147 hir::Safety::Unsafe,
1148 ExternAbi::Rust,
1149 ));
1150 let rust_try = gen_fn(cx, "__rust_try", rust_fn_sig, codegen);
1151 cx.rust_try_fn.set(Some(rust_try));
1152 rust_try
1153}
1154
1155fn generic_simd_intrinsic<'ll, 'tcx>(
1156 bx: &mut Builder<'_, 'll, 'tcx>,
1157 name: Symbol,
1158 callee_ty: Ty<'tcx>,
1159 fn_args: GenericArgsRef<'tcx>,
1160 args: &[OperandRef<'tcx, &'ll Value>],
1161 ret_ty: Ty<'tcx>,
1162 llret_ty: &'ll Type,
1163 span: Span,
1164) -> Result<&'ll Value, ()> {
1165 macro_rules! return_error {
1166 ($diag: expr) => {{
1167 bx.sess().dcx().emit_err($diag);
1168 return Err(());
1169 }};
1170 }
1171
1172 macro_rules! require {
1173 ($cond: expr, $diag: expr) => {
1174 if !$cond {
1175 return_error!($diag);
1176 }
1177 };
1178 }
1179
1180 macro_rules! require_simd {
1181 ($ty: expr, $variant:ident) => {{
1182 require!($ty.is_simd(), InvalidMonomorphization::$variant { span, name, ty: $ty });
1183 $ty.simd_size_and_type(bx.tcx())
1184 }};
1185 }
1186
1187 macro_rules! require_int_ty {
1189 ($ty: expr, $diag: expr) => {
1190 match $ty {
1191 ty::Int(i) => i.bit_width().unwrap_or_else(|| bx.data_layout().pointer_size.bits()),
1192 _ => {
1193 return_error!($diag);
1194 }
1195 }
1196 };
1197 }
1198
1199 macro_rules! require_int_or_uint_ty {
1201 ($ty: expr, $diag: expr) => {
1202 match $ty {
1203 ty::Int(i) => i.bit_width().unwrap_or_else(|| bx.data_layout().pointer_size.bits()),
1204 ty::Uint(i) => {
1205 i.bit_width().unwrap_or_else(|| bx.data_layout().pointer_size.bits())
1206 }
1207 _ => {
1208 return_error!($diag);
1209 }
1210 }
1211 };
1212 }
1213
1214 fn vector_mask_to_bitmask<'a, 'll, 'tcx>(
1228 bx: &mut Builder<'a, 'll, 'tcx>,
1229 i_xn: &'ll Value,
1230 in_elem_bitwidth: u64,
1231 in_len: u64,
1232 ) -> &'ll Value {
1233 let shift_idx = bx.cx.const_int(bx.type_ix(in_elem_bitwidth), (in_elem_bitwidth - 1) as _);
1235 let shift_indices = vec![shift_idx; in_len as _];
1236 let i_xn_msb = bx.lshr(i_xn, bx.const_vector(shift_indices.as_slice()));
1237 bx.trunc(i_xn_msb, bx.type_vector(bx.type_i1(), in_len))
1239 }
1240
1241 let tcx = bx.tcx();
1242 let sig = tcx.normalize_erasing_late_bound_regions(bx.typing_env(), callee_ty.fn_sig(tcx));
1243 let arg_tys = sig.inputs();
1244
1245 if cfg!(debug_assertions) {
1247 for (ty, arg) in arg_tys.iter().zip(args) {
1248 if ty.is_simd() {
1249 assert_matches!(arg.val, OperandValue::Immediate(_));
1250 }
1251 }
1252 }
1253
1254 if name == sym::simd_select_bitmask {
1255 let (len, _) = require_simd!(arg_tys[1], SimdArgument);
1256
1257 let expected_int_bits = len.max(8).next_power_of_two();
1258 let expected_bytes = len.div_ceil(8);
1259
1260 let mask_ty = arg_tys[0];
1261 let mask = match mask_ty.kind() {
1262 ty::Int(i) if i.bit_width() == Some(expected_int_bits) => args[0].immediate(),
1263 ty::Uint(i) if i.bit_width() == Some(expected_int_bits) => args[0].immediate(),
1264 ty::Array(elem, len)
1265 if matches!(elem.kind(), ty::Uint(ty::UintTy::U8))
1266 && len
1267 .try_to_target_usize(bx.tcx)
1268 .expect("expected monomorphic const in codegen")
1269 == expected_bytes =>
1270 {
1271 let place = PlaceRef::alloca(bx, args[0].layout);
1272 args[0].val.store(bx, place);
1273 let int_ty = bx.type_ix(expected_bytes * 8);
1274 bx.load(int_ty, place.val.llval, Align::ONE)
1275 }
1276 _ => return_error!(InvalidMonomorphization::InvalidBitmask {
1277 span,
1278 name,
1279 mask_ty,
1280 expected_int_bits,
1281 expected_bytes
1282 }),
1283 };
1284
1285 let i1 = bx.type_i1();
1286 let im = bx.type_ix(len);
1287 let i1xn = bx.type_vector(i1, len);
1288 let m_im = bx.trunc(mask, im);
1289 let m_i1s = bx.bitcast(m_im, i1xn);
1290 return Ok(bx.select(m_i1s, args[1].immediate(), args[2].immediate()));
1291 }
1292
1293 let (in_len, in_elem) = require_simd!(arg_tys[0], SimdInput);
1295 let in_ty = arg_tys[0];
1296
1297 let comparison = match name {
1298 sym::simd_eq => Some(BinOp::Eq),
1299 sym::simd_ne => Some(BinOp::Ne),
1300 sym::simd_lt => Some(BinOp::Lt),
1301 sym::simd_le => Some(BinOp::Le),
1302 sym::simd_gt => Some(BinOp::Gt),
1303 sym::simd_ge => Some(BinOp::Ge),
1304 _ => None,
1305 };
1306
1307 if let Some(cmp_op) = comparison {
1308 let (out_len, out_ty) = require_simd!(ret_ty, SimdReturn);
1309
1310 require!(
1311 in_len == out_len,
1312 InvalidMonomorphization::ReturnLengthInputType {
1313 span,
1314 name,
1315 in_len,
1316 in_ty,
1317 ret_ty,
1318 out_len
1319 }
1320 );
1321 require!(
1322 bx.type_kind(bx.element_type(llret_ty)) == TypeKind::Integer,
1323 InvalidMonomorphization::ReturnIntegerType { span, name, ret_ty, out_ty }
1324 );
1325
1326 return Ok(compare_simd_types(
1327 bx,
1328 args[0].immediate(),
1329 args[1].immediate(),
1330 in_elem,
1331 llret_ty,
1332 cmp_op,
1333 ));
1334 }
1335
1336 if name == sym::simd_shuffle_const_generic {
1337 let idx = fn_args[2].expect_const().to_value().valtree.unwrap_branch();
1338 let n = idx.len() as u64;
1339
1340 let (out_len, out_ty) = require_simd!(ret_ty, SimdReturn);
1341 require!(
1342 out_len == n,
1343 InvalidMonomorphization::ReturnLength { span, name, in_len: n, ret_ty, out_len }
1344 );
1345 require!(
1346 in_elem == out_ty,
1347 InvalidMonomorphization::ReturnElement { span, name, in_elem, in_ty, ret_ty, out_ty }
1348 );
1349
1350 let total_len = in_len * 2;
1351
1352 let indices: Option<Vec<_>> = idx
1353 .iter()
1354 .enumerate()
1355 .map(|(arg_idx, val)| {
1356 let idx = val.unwrap_leaf().to_i32();
1357 if idx >= i32::try_from(total_len).unwrap() {
1358 bx.sess().dcx().emit_err(InvalidMonomorphization::SimdIndexOutOfBounds {
1359 span,
1360 name,
1361 arg_idx: arg_idx as u64,
1362 total_len: total_len.into(),
1363 });
1364 None
1365 } else {
1366 Some(bx.const_i32(idx))
1367 }
1368 })
1369 .collect();
1370 let Some(indices) = indices else {
1371 return Ok(bx.const_null(llret_ty));
1372 };
1373
1374 return Ok(bx.shuffle_vector(
1375 args[0].immediate(),
1376 args[1].immediate(),
1377 bx.const_vector(&indices),
1378 ));
1379 }
1380
1381 if name == sym::simd_shuffle {
1382 let idx_ty = args[2].layout.ty;
1384 let n: u64 = if idx_ty.is_simd()
1385 && matches!(idx_ty.simd_size_and_type(bx.cx.tcx).1.kind(), ty::Uint(ty::UintTy::U32))
1386 {
1387 idx_ty.simd_size_and_type(bx.cx.tcx).0
1388 } else {
1389 return_error!(InvalidMonomorphization::SimdShuffle { span, name, ty: idx_ty })
1390 };
1391
1392 let (out_len, out_ty) = require_simd!(ret_ty, SimdReturn);
1393 require!(
1394 out_len == n,
1395 InvalidMonomorphization::ReturnLength { span, name, in_len: n, ret_ty, out_len }
1396 );
1397 require!(
1398 in_elem == out_ty,
1399 InvalidMonomorphization::ReturnElement { span, name, in_elem, in_ty, ret_ty, out_ty }
1400 );
1401
1402 let total_len = u128::from(in_len) * 2;
1403
1404 let indices = args[2].immediate();
1406 for i in 0..n {
1407 let val = bx.const_get_elt(indices, i as u64);
1408 let idx = bx
1409 .const_to_opt_u128(val, true)
1410 .unwrap_or_else(|| bug!("typeck should have already ensured that these are const"));
1411 if idx >= total_len {
1412 return_error!(InvalidMonomorphization::SimdIndexOutOfBounds {
1413 span,
1414 name,
1415 arg_idx: i,
1416 total_len,
1417 });
1418 }
1419 }
1420
1421 return Ok(bx.shuffle_vector(args[0].immediate(), args[1].immediate(), indices));
1422 }
1423
1424 if name == sym::simd_insert {
1425 require!(
1426 in_elem == arg_tys[2],
1427 InvalidMonomorphization::InsertedType {
1428 span,
1429 name,
1430 in_elem,
1431 in_ty,
1432 out_ty: arg_tys[2]
1433 }
1434 );
1435 let idx = bx
1436 .const_to_opt_u128(args[1].immediate(), false)
1437 .expect("typeck should have ensure that this is a const");
1438 if idx >= in_len.into() {
1439 return_error!(InvalidMonomorphization::SimdIndexOutOfBounds {
1440 span,
1441 name,
1442 arg_idx: 1,
1443 total_len: in_len.into(),
1444 });
1445 }
1446 return Ok(bx.insert_element(
1447 args[0].immediate(),
1448 args[2].immediate(),
1449 bx.const_i32(idx as i32),
1450 ));
1451 }
1452 if name == sym::simd_extract {
1453 require!(
1454 ret_ty == in_elem,
1455 InvalidMonomorphization::ReturnType { span, name, in_elem, in_ty, ret_ty }
1456 );
1457 let idx = bx
1458 .const_to_opt_u128(args[1].immediate(), false)
1459 .expect("typeck should have ensure that this is a const");
1460 if idx >= in_len.into() {
1461 return_error!(InvalidMonomorphization::SimdIndexOutOfBounds {
1462 span,
1463 name,
1464 arg_idx: 1,
1465 total_len: in_len.into(),
1466 });
1467 }
1468 return Ok(bx.extract_element(args[0].immediate(), bx.const_i32(idx as i32)));
1469 }
1470
1471 if name == sym::simd_select {
1472 let m_elem_ty = in_elem;
1473 let m_len = in_len;
1474 let (v_len, _) = require_simd!(arg_tys[1], SimdArgument);
1475 require!(
1476 m_len == v_len,
1477 InvalidMonomorphization::MismatchedLengths { span, name, m_len, v_len }
1478 );
1479 let in_elem_bitwidth = require_int_ty!(
1480 m_elem_ty.kind(),
1481 InvalidMonomorphization::MaskType { span, name, ty: m_elem_ty }
1482 );
1483 let m_i1s = vector_mask_to_bitmask(bx, args[0].immediate(), in_elem_bitwidth, m_len);
1484 return Ok(bx.select(m_i1s, args[1].immediate(), args[2].immediate()));
1485 }
1486
1487 if name == sym::simd_bitmask {
1488 let expected_int_bits = in_len.max(8).next_power_of_two();
1497 let expected_bytes = in_len.div_ceil(8);
1498
1499 let in_elem_bitwidth = require_int_or_uint_ty!(
1501 in_elem.kind(),
1502 InvalidMonomorphization::VectorArgument { span, name, in_ty, in_elem }
1503 );
1504
1505 let i1xn = vector_mask_to_bitmask(bx, args[0].immediate(), in_elem_bitwidth, in_len);
1506 let i_ = bx.bitcast(i1xn, bx.type_ix(in_len));
1508
1509 match ret_ty.kind() {
1510 ty::Uint(i) if i.bit_width() == Some(expected_int_bits) => {
1511 return Ok(bx.zext(i_, bx.type_ix(expected_int_bits)));
1513 }
1514 ty::Array(elem, len)
1515 if matches!(elem.kind(), ty::Uint(ty::UintTy::U8))
1516 && len
1517 .try_to_target_usize(bx.tcx)
1518 .expect("expected monomorphic const in codegen")
1519 == expected_bytes =>
1520 {
1521 let ze = bx.zext(i_, bx.type_ix(expected_bytes * 8));
1523
1524 let ptr = bx.alloca(Size::from_bytes(expected_bytes), Align::ONE);
1526 bx.store(ze, ptr, Align::ONE);
1527 let array_ty = bx.type_array(bx.type_i8(), expected_bytes);
1528 return Ok(bx.load(array_ty, ptr, Align::ONE));
1529 }
1530 _ => return_error!(InvalidMonomorphization::CannotReturn {
1531 span,
1532 name,
1533 ret_ty,
1534 expected_int_bits,
1535 expected_bytes
1536 }),
1537 }
1538 }
1539
1540 fn simd_simple_float_intrinsic<'ll, 'tcx>(
1541 name: Symbol,
1542 in_elem: Ty<'_>,
1543 in_ty: Ty<'_>,
1544 in_len: u64,
1545 bx: &mut Builder<'_, 'll, 'tcx>,
1546 span: Span,
1547 args: &[OperandRef<'tcx, &'ll Value>],
1548 ) -> Result<&'ll Value, ()> {
1549 macro_rules! return_error {
1550 ($diag: expr) => {{
1551 bx.sess().dcx().emit_err($diag);
1552 return Err(());
1553 }};
1554 }
1555
1556 let (elem_ty_str, elem_ty) = if let ty::Float(f) = in_elem.kind() {
1557 let elem_ty = bx.cx.type_float_from_ty(*f);
1558 match f.bit_width() {
1559 16 => ("f16", elem_ty),
1560 32 => ("f32", elem_ty),
1561 64 => ("f64", elem_ty),
1562 128 => ("f128", elem_ty),
1563 _ => return_error!(InvalidMonomorphization::FloatingPointVector {
1564 span,
1565 name,
1566 f_ty: *f,
1567 in_ty,
1568 }),
1569 }
1570 } else {
1571 return_error!(InvalidMonomorphization::FloatingPointType { span, name, in_ty });
1572 };
1573
1574 let vec_ty = bx.type_vector(elem_ty, in_len);
1575
1576 let (intr_name, fn_ty) = match name {
1577 sym::simd_ceil => ("ceil", bx.type_func(&[vec_ty], vec_ty)),
1578 sym::simd_fabs => ("fabs", bx.type_func(&[vec_ty], vec_ty)),
1579 sym::simd_fcos => ("cos", bx.type_func(&[vec_ty], vec_ty)),
1580 sym::simd_fexp2 => ("exp2", bx.type_func(&[vec_ty], vec_ty)),
1581 sym::simd_fexp => ("exp", bx.type_func(&[vec_ty], vec_ty)),
1582 sym::simd_flog10 => ("log10", bx.type_func(&[vec_ty], vec_ty)),
1583 sym::simd_flog2 => ("log2", bx.type_func(&[vec_ty], vec_ty)),
1584 sym::simd_flog => ("log", bx.type_func(&[vec_ty], vec_ty)),
1585 sym::simd_floor => ("floor", bx.type_func(&[vec_ty], vec_ty)),
1586 sym::simd_fma => ("fma", bx.type_func(&[vec_ty, vec_ty, vec_ty], vec_ty)),
1587 sym::simd_relaxed_fma => ("fmuladd", bx.type_func(&[vec_ty, vec_ty, vec_ty], vec_ty)),
1588 sym::simd_fsin => ("sin", bx.type_func(&[vec_ty], vec_ty)),
1589 sym::simd_fsqrt => ("sqrt", bx.type_func(&[vec_ty], vec_ty)),
1590 sym::simd_round => ("round", bx.type_func(&[vec_ty], vec_ty)),
1591 sym::simd_trunc => ("trunc", bx.type_func(&[vec_ty], vec_ty)),
1592 _ => return_error!(InvalidMonomorphization::UnrecognizedIntrinsic { span, name }),
1593 };
1594 let llvm_name = &format!("llvm.{intr_name}.v{in_len}{elem_ty_str}");
1595 let f = bx.declare_cfn(llvm_name, llvm::UnnamedAddr::No, fn_ty);
1596 let c = bx.call(
1597 fn_ty,
1598 None,
1599 None,
1600 f,
1601 &args.iter().map(|arg| arg.immediate()).collect::<Vec<_>>(),
1602 None,
1603 None,
1604 );
1605 Ok(c)
1606 }
1607
1608 if std::matches!(
1609 name,
1610 sym::simd_ceil
1611 | sym::simd_fabs
1612 | sym::simd_fcos
1613 | sym::simd_fexp2
1614 | sym::simd_fexp
1615 | sym::simd_flog10
1616 | sym::simd_flog2
1617 | sym::simd_flog
1618 | sym::simd_floor
1619 | sym::simd_fma
1620 | sym::simd_fsin
1621 | sym::simd_fsqrt
1622 | sym::simd_relaxed_fma
1623 | sym::simd_round
1624 | sym::simd_trunc
1625 ) {
1626 return simd_simple_float_intrinsic(name, in_elem, in_ty, in_len, bx, span, args);
1627 }
1628
1629 fn llvm_vector_str(bx: &Builder<'_, '_, '_>, elem_ty: Ty<'_>, vec_len: u64) -> String {
1633 match *elem_ty.kind() {
1634 ty::Int(v) => format!(
1635 "v{}i{}",
1636 vec_len,
1637 v.normalize(bx.target_spec().pointer_width).bit_width().unwrap()
1639 ),
1640 ty::Uint(v) => format!(
1641 "v{}i{}",
1642 vec_len,
1643 v.normalize(bx.target_spec().pointer_width).bit_width().unwrap()
1645 ),
1646 ty::Float(v) => format!("v{}f{}", vec_len, v.bit_width()),
1647 ty::RawPtr(_, _) => format!("v{}p0", vec_len),
1648 _ => unreachable!(),
1649 }
1650 }
1651
1652 fn llvm_vector_ty<'ll>(cx: &CodegenCx<'ll, '_>, elem_ty: Ty<'_>, vec_len: u64) -> &'ll Type {
1653 let elem_ty = match *elem_ty.kind() {
1654 ty::Int(v) => cx.type_int_from_ty(v),
1655 ty::Uint(v) => cx.type_uint_from_ty(v),
1656 ty::Float(v) => cx.type_float_from_ty(v),
1657 ty::RawPtr(_, _) => cx.type_ptr(),
1658 _ => unreachable!(),
1659 };
1660 cx.type_vector(elem_ty, vec_len)
1661 }
1662
1663 if name == sym::simd_gather {
1664 let (_, element_ty0) = require_simd!(in_ty, SimdFirst);
1675 let (out_len, element_ty1) = require_simd!(arg_tys[1], SimdSecond);
1676 let (out_len2, element_ty2) = require_simd!(arg_tys[2], SimdThird);
1678 require_simd!(ret_ty, SimdReturn);
1679
1680 require!(
1682 in_len == out_len,
1683 InvalidMonomorphization::SecondArgumentLength {
1684 span,
1685 name,
1686 in_len,
1687 in_ty,
1688 arg_ty: arg_tys[1],
1689 out_len
1690 }
1691 );
1692 require!(
1693 in_len == out_len2,
1694 InvalidMonomorphization::ThirdArgumentLength {
1695 span,
1696 name,
1697 in_len,
1698 in_ty,
1699 arg_ty: arg_tys[2],
1700 out_len: out_len2
1701 }
1702 );
1703
1704 require!(
1706 ret_ty == in_ty,
1707 InvalidMonomorphization::ExpectedReturnType { span, name, in_ty, ret_ty }
1708 );
1709
1710 require!(
1711 matches!(
1712 *element_ty1.kind(),
1713 ty::RawPtr(p_ty, _) if p_ty == in_elem && p_ty.kind() == element_ty0.kind()
1714 ),
1715 InvalidMonomorphization::ExpectedElementType {
1716 span,
1717 name,
1718 expected_element: element_ty1,
1719 second_arg: arg_tys[1],
1720 in_elem,
1721 in_ty,
1722 mutability: ExpectedPointerMutability::Not,
1723 }
1724 );
1725
1726 let mask_elem_bitwidth = require_int_ty!(
1727 element_ty2.kind(),
1728 InvalidMonomorphization::ThirdArgElementType {
1729 span,
1730 name,
1731 expected_element: element_ty2,
1732 third_arg: arg_tys[2]
1733 }
1734 );
1735
1736 let alignment_ty = bx.type_i32();
1738 let alignment = bx.const_i32(bx.align_of(in_elem).bytes() as i32);
1739
1740 let mask = vector_mask_to_bitmask(bx, args[2].immediate(), mask_elem_bitwidth, in_len);
1742 let mask_ty = bx.type_vector(bx.type_i1(), in_len);
1743
1744 let llvm_pointer_vec_ty = llvm_vector_ty(bx, element_ty1, in_len);
1746 let llvm_pointer_vec_str = llvm_vector_str(bx, element_ty1, in_len);
1747
1748 let llvm_elem_vec_ty = llvm_vector_ty(bx, element_ty0, in_len);
1750 let llvm_elem_vec_str = llvm_vector_str(bx, element_ty0, in_len);
1751
1752 let llvm_intrinsic =
1753 format!("llvm.masked.gather.{llvm_elem_vec_str}.{llvm_pointer_vec_str}");
1754 let fn_ty = bx.type_func(
1755 &[llvm_pointer_vec_ty, alignment_ty, mask_ty, llvm_elem_vec_ty],
1756 llvm_elem_vec_ty,
1757 );
1758 let f = bx.declare_cfn(&llvm_intrinsic, llvm::UnnamedAddr::No, fn_ty);
1759 let v = bx.call(
1760 fn_ty,
1761 None,
1762 None,
1763 f,
1764 &[args[1].immediate(), alignment, mask, args[0].immediate()],
1765 None,
1766 None,
1767 );
1768 return Ok(v);
1769 }
1770
1771 if name == sym::simd_masked_load {
1772 let mask_ty = in_ty;
1782 let (mask_len, mask_elem) = (in_len, in_elem);
1783
1784 let pointer_ty = arg_tys[1];
1786
1787 let values_ty = arg_tys[2];
1789 let (values_len, values_elem) = require_simd!(values_ty, SimdThird);
1790
1791 require_simd!(ret_ty, SimdReturn);
1792
1793 require!(
1795 values_len == mask_len,
1796 InvalidMonomorphization::ThirdArgumentLength {
1797 span,
1798 name,
1799 in_len: mask_len,
1800 in_ty: mask_ty,
1801 arg_ty: values_ty,
1802 out_len: values_len
1803 }
1804 );
1805
1806 require!(
1808 ret_ty == values_ty,
1809 InvalidMonomorphization::ExpectedReturnType { span, name, in_ty: values_ty, ret_ty }
1810 );
1811
1812 require!(
1813 matches!(
1814 *pointer_ty.kind(),
1815 ty::RawPtr(p_ty, _) if p_ty == values_elem && p_ty.kind() == values_elem.kind()
1816 ),
1817 InvalidMonomorphization::ExpectedElementType {
1818 span,
1819 name,
1820 expected_element: values_elem,
1821 second_arg: pointer_ty,
1822 in_elem: values_elem,
1823 in_ty: values_ty,
1824 mutability: ExpectedPointerMutability::Not,
1825 }
1826 );
1827
1828 let m_elem_bitwidth = require_int_ty!(
1829 mask_elem.kind(),
1830 InvalidMonomorphization::ThirdArgElementType {
1831 span,
1832 name,
1833 expected_element: values_elem,
1834 third_arg: mask_ty,
1835 }
1836 );
1837
1838 let mask = vector_mask_to_bitmask(bx, args[0].immediate(), m_elem_bitwidth, mask_len);
1839 let mask_ty = bx.type_vector(bx.type_i1(), mask_len);
1840
1841 let alignment_ty = bx.type_i32();
1843 let alignment = bx.const_i32(bx.align_of(values_elem).bytes() as i32);
1844
1845 let llvm_pointer = bx.type_ptr();
1846
1847 let llvm_elem_vec_ty = llvm_vector_ty(bx, values_elem, values_len);
1849 let llvm_elem_vec_str = llvm_vector_str(bx, values_elem, values_len);
1850
1851 let llvm_intrinsic = format!("llvm.masked.load.{llvm_elem_vec_str}.p0");
1852 let fn_ty = bx
1853 .type_func(&[llvm_pointer, alignment_ty, mask_ty, llvm_elem_vec_ty], llvm_elem_vec_ty);
1854 let f = bx.declare_cfn(&llvm_intrinsic, llvm::UnnamedAddr::No, fn_ty);
1855 let v = bx.call(
1856 fn_ty,
1857 None,
1858 None,
1859 f,
1860 &[args[1].immediate(), alignment, mask, args[2].immediate()],
1861 None,
1862 None,
1863 );
1864 return Ok(v);
1865 }
1866
1867 if name == sym::simd_masked_store {
1868 let mask_ty = in_ty;
1878 let (mask_len, mask_elem) = (in_len, in_elem);
1879
1880 let pointer_ty = arg_tys[1];
1882
1883 let values_ty = arg_tys[2];
1885 let (values_len, values_elem) = require_simd!(values_ty, SimdThird);
1886
1887 require!(
1889 values_len == mask_len,
1890 InvalidMonomorphization::ThirdArgumentLength {
1891 span,
1892 name,
1893 in_len: mask_len,
1894 in_ty: mask_ty,
1895 arg_ty: values_ty,
1896 out_len: values_len
1897 }
1898 );
1899
1900 require!(
1902 matches!(
1903 *pointer_ty.kind(),
1904 ty::RawPtr(p_ty, p_mutbl)
1905 if p_ty == values_elem && p_ty.kind() == values_elem.kind() && p_mutbl.is_mut()
1906 ),
1907 InvalidMonomorphization::ExpectedElementType {
1908 span,
1909 name,
1910 expected_element: values_elem,
1911 second_arg: pointer_ty,
1912 in_elem: values_elem,
1913 in_ty: values_ty,
1914 mutability: ExpectedPointerMutability::Mut,
1915 }
1916 );
1917
1918 let m_elem_bitwidth = require_int_ty!(
1919 mask_elem.kind(),
1920 InvalidMonomorphization::ThirdArgElementType {
1921 span,
1922 name,
1923 expected_element: values_elem,
1924 third_arg: mask_ty,
1925 }
1926 );
1927
1928 let mask = vector_mask_to_bitmask(bx, args[0].immediate(), m_elem_bitwidth, mask_len);
1929 let mask_ty = bx.type_vector(bx.type_i1(), mask_len);
1930
1931 let alignment_ty = bx.type_i32();
1933 let alignment = bx.const_i32(bx.align_of(values_elem).bytes() as i32);
1934
1935 let ret_t = bx.type_void();
1936
1937 let llvm_pointer = bx.type_ptr();
1938
1939 let llvm_elem_vec_ty = llvm_vector_ty(bx, values_elem, values_len);
1941 let llvm_elem_vec_str = llvm_vector_str(bx, values_elem, values_len);
1942
1943 let llvm_intrinsic = format!("llvm.masked.store.{llvm_elem_vec_str}.p0");
1944 let fn_ty = bx.type_func(&[llvm_elem_vec_ty, llvm_pointer, alignment_ty, mask_ty], ret_t);
1945 let f = bx.declare_cfn(&llvm_intrinsic, llvm::UnnamedAddr::No, fn_ty);
1946 let v = bx.call(
1947 fn_ty,
1948 None,
1949 None,
1950 f,
1951 &[args[2].immediate(), args[1].immediate(), alignment, mask],
1952 None,
1953 None,
1954 );
1955 return Ok(v);
1956 }
1957
1958 if name == sym::simd_scatter {
1959 let (_, element_ty0) = require_simd!(in_ty, SimdFirst);
1969 let (element_len1, element_ty1) = require_simd!(arg_tys[1], SimdSecond);
1970 let (element_len2, element_ty2) = require_simd!(arg_tys[2], SimdThird);
1971
1972 require!(
1974 in_len == element_len1,
1975 InvalidMonomorphization::SecondArgumentLength {
1976 span,
1977 name,
1978 in_len,
1979 in_ty,
1980 arg_ty: arg_tys[1],
1981 out_len: element_len1
1982 }
1983 );
1984 require!(
1985 in_len == element_len2,
1986 InvalidMonomorphization::ThirdArgumentLength {
1987 span,
1988 name,
1989 in_len,
1990 in_ty,
1991 arg_ty: arg_tys[2],
1992 out_len: element_len2
1993 }
1994 );
1995
1996 require!(
1997 matches!(
1998 *element_ty1.kind(),
1999 ty::RawPtr(p_ty, p_mutbl)
2000 if p_ty == in_elem && p_mutbl.is_mut() && p_ty.kind() == element_ty0.kind()
2001 ),
2002 InvalidMonomorphization::ExpectedElementType {
2003 span,
2004 name,
2005 expected_element: element_ty1,
2006 second_arg: arg_tys[1],
2007 in_elem,
2008 in_ty,
2009 mutability: ExpectedPointerMutability::Mut,
2010 }
2011 );
2012
2013 let mask_elem_bitwidth = require_int_ty!(
2015 element_ty2.kind(),
2016 InvalidMonomorphization::ThirdArgElementType {
2017 span,
2018 name,
2019 expected_element: element_ty2,
2020 third_arg: arg_tys[2]
2021 }
2022 );
2023
2024 let alignment_ty = bx.type_i32();
2026 let alignment = bx.const_i32(bx.align_of(in_elem).bytes() as i32);
2027
2028 let mask = vector_mask_to_bitmask(bx, args[2].immediate(), mask_elem_bitwidth, in_len);
2030 let mask_ty = bx.type_vector(bx.type_i1(), in_len);
2031
2032 let ret_t = bx.type_void();
2033
2034 let llvm_pointer_vec_ty = llvm_vector_ty(bx, element_ty1, in_len);
2036 let llvm_pointer_vec_str = llvm_vector_str(bx, element_ty1, in_len);
2037
2038 let llvm_elem_vec_ty = llvm_vector_ty(bx, element_ty0, in_len);
2040 let llvm_elem_vec_str = llvm_vector_str(bx, element_ty0, in_len);
2041
2042 let llvm_intrinsic =
2043 format!("llvm.masked.scatter.{llvm_elem_vec_str}.{llvm_pointer_vec_str}");
2044 let fn_ty =
2045 bx.type_func(&[llvm_elem_vec_ty, llvm_pointer_vec_ty, alignment_ty, mask_ty], ret_t);
2046 let f = bx.declare_cfn(&llvm_intrinsic, llvm::UnnamedAddr::No, fn_ty);
2047 let v = bx.call(
2048 fn_ty,
2049 None,
2050 None,
2051 f,
2052 &[args[0].immediate(), args[1].immediate(), alignment, mask],
2053 None,
2054 None,
2055 );
2056 return Ok(v);
2057 }
2058
2059 macro_rules! arith_red {
2060 ($name:ident : $integer_reduce:ident, $float_reduce:ident, $ordered:expr, $op:ident,
2061 $identity:expr) => {
2062 if name == sym::$name {
2063 require!(
2064 ret_ty == in_elem,
2065 InvalidMonomorphization::ReturnType { span, name, in_elem, in_ty, ret_ty }
2066 );
2067 return match in_elem.kind() {
2068 ty::Int(_) | ty::Uint(_) => {
2069 let r = bx.$integer_reduce(args[0].immediate());
2070 if $ordered {
2071 Ok(bx.$op(args[1].immediate(), r))
2074 } else {
2075 Ok(bx.$integer_reduce(args[0].immediate()))
2076 }
2077 }
2078 ty::Float(f) => {
2079 let acc = if $ordered {
2080 args[1].immediate()
2082 } else {
2083 match f.bit_width() {
2085 32 => bx.const_real(bx.type_f32(), $identity),
2086 64 => bx.const_real(bx.type_f64(), $identity),
2087 v => return_error!(
2088 InvalidMonomorphization::UnsupportedSymbolOfSize {
2089 span,
2090 name,
2091 symbol: sym::$name,
2092 in_ty,
2093 in_elem,
2094 size: v,
2095 ret_ty
2096 }
2097 ),
2098 }
2099 };
2100 Ok(bx.$float_reduce(acc, args[0].immediate()))
2101 }
2102 _ => return_error!(InvalidMonomorphization::UnsupportedSymbol {
2103 span,
2104 name,
2105 symbol: sym::$name,
2106 in_ty,
2107 in_elem,
2108 ret_ty
2109 }),
2110 };
2111 }
2112 };
2113 }
2114
2115 arith_red!(simd_reduce_add_ordered: vector_reduce_add, vector_reduce_fadd, true, add, -0.0);
2116 arith_red!(simd_reduce_mul_ordered: vector_reduce_mul, vector_reduce_fmul, true, mul, 1.0);
2117 arith_red!(
2118 simd_reduce_add_unordered: vector_reduce_add,
2119 vector_reduce_fadd_reassoc,
2120 false,
2121 add,
2122 -0.0
2123 );
2124 arith_red!(
2125 simd_reduce_mul_unordered: vector_reduce_mul,
2126 vector_reduce_fmul_reassoc,
2127 false,
2128 mul,
2129 1.0
2130 );
2131
2132 macro_rules! minmax_red {
2133 ($name:ident: $int_red:ident, $float_red:ident) => {
2134 if name == sym::$name {
2135 require!(
2136 ret_ty == in_elem,
2137 InvalidMonomorphization::ReturnType { span, name, in_elem, in_ty, ret_ty }
2138 );
2139 return match in_elem.kind() {
2140 ty::Int(_i) => Ok(bx.$int_red(args[0].immediate(), true)),
2141 ty::Uint(_u) => Ok(bx.$int_red(args[0].immediate(), false)),
2142 ty::Float(_f) => Ok(bx.$float_red(args[0].immediate())),
2143 _ => return_error!(InvalidMonomorphization::UnsupportedSymbol {
2144 span,
2145 name,
2146 symbol: sym::$name,
2147 in_ty,
2148 in_elem,
2149 ret_ty
2150 }),
2151 };
2152 }
2153 };
2154 }
2155
2156 minmax_red!(simd_reduce_min: vector_reduce_min, vector_reduce_fmin);
2157 minmax_red!(simd_reduce_max: vector_reduce_max, vector_reduce_fmax);
2158
2159 macro_rules! bitwise_red {
2160 ($name:ident : $red:ident, $boolean:expr) => {
2161 if name == sym::$name {
2162 let input = if !$boolean {
2163 require!(
2164 ret_ty == in_elem,
2165 InvalidMonomorphization::ReturnType { span, name, in_elem, in_ty, ret_ty }
2166 );
2167 args[0].immediate()
2168 } else {
2169 let bitwidth = match in_elem.kind() {
2170 ty::Int(i) => {
2171 i.bit_width().unwrap_or_else(|| bx.data_layout().pointer_size.bits())
2172 }
2173 ty::Uint(i) => {
2174 i.bit_width().unwrap_or_else(|| bx.data_layout().pointer_size.bits())
2175 }
2176 _ => return_error!(InvalidMonomorphization::UnsupportedSymbol {
2177 span,
2178 name,
2179 symbol: sym::$name,
2180 in_ty,
2181 in_elem,
2182 ret_ty
2183 }),
2184 };
2185
2186 vector_mask_to_bitmask(bx, args[0].immediate(), bitwidth, in_len as _)
2187 };
2188 return match in_elem.kind() {
2189 ty::Int(_) | ty::Uint(_) => {
2190 let r = bx.$red(input);
2191 Ok(if !$boolean { r } else { bx.zext(r, bx.type_bool()) })
2192 }
2193 _ => return_error!(InvalidMonomorphization::UnsupportedSymbol {
2194 span,
2195 name,
2196 symbol: sym::$name,
2197 in_ty,
2198 in_elem,
2199 ret_ty
2200 }),
2201 };
2202 }
2203 };
2204 }
2205
2206 bitwise_red!(simd_reduce_and: vector_reduce_and, false);
2207 bitwise_red!(simd_reduce_or: vector_reduce_or, false);
2208 bitwise_red!(simd_reduce_xor: vector_reduce_xor, false);
2209 bitwise_red!(simd_reduce_all: vector_reduce_and, true);
2210 bitwise_red!(simd_reduce_any: vector_reduce_or, true);
2211
2212 if name == sym::simd_cast_ptr {
2213 let (out_len, out_elem) = require_simd!(ret_ty, SimdReturn);
2214 require!(
2215 in_len == out_len,
2216 InvalidMonomorphization::ReturnLengthInputType {
2217 span,
2218 name,
2219 in_len,
2220 in_ty,
2221 ret_ty,
2222 out_len
2223 }
2224 );
2225
2226 match in_elem.kind() {
2227 ty::RawPtr(p_ty, _) => {
2228 let metadata = p_ty.ptr_metadata_ty(bx.tcx, |ty| {
2229 bx.tcx.normalize_erasing_regions(bx.typing_env(), ty)
2230 });
2231 require!(
2232 metadata.is_unit(),
2233 InvalidMonomorphization::CastWidePointer { span, name, ty: in_elem }
2234 );
2235 }
2236 _ => {
2237 return_error!(InvalidMonomorphization::ExpectedPointer { span, name, ty: in_elem })
2238 }
2239 }
2240 match out_elem.kind() {
2241 ty::RawPtr(p_ty, _) => {
2242 let metadata = p_ty.ptr_metadata_ty(bx.tcx, |ty| {
2243 bx.tcx.normalize_erasing_regions(bx.typing_env(), ty)
2244 });
2245 require!(
2246 metadata.is_unit(),
2247 InvalidMonomorphization::CastWidePointer { span, name, ty: out_elem }
2248 );
2249 }
2250 _ => {
2251 return_error!(InvalidMonomorphization::ExpectedPointer { span, name, ty: out_elem })
2252 }
2253 }
2254
2255 return Ok(args[0].immediate());
2256 }
2257
2258 if name == sym::simd_expose_provenance {
2259 let (out_len, out_elem) = require_simd!(ret_ty, SimdReturn);
2260 require!(
2261 in_len == out_len,
2262 InvalidMonomorphization::ReturnLengthInputType {
2263 span,
2264 name,
2265 in_len,
2266 in_ty,
2267 ret_ty,
2268 out_len
2269 }
2270 );
2271
2272 match in_elem.kind() {
2273 ty::RawPtr(_, _) => {}
2274 _ => {
2275 return_error!(InvalidMonomorphization::ExpectedPointer { span, name, ty: in_elem })
2276 }
2277 }
2278 match out_elem.kind() {
2279 ty::Uint(ty::UintTy::Usize) => {}
2280 _ => return_error!(InvalidMonomorphization::ExpectedUsize { span, name, ty: out_elem }),
2281 }
2282
2283 return Ok(bx.ptrtoint(args[0].immediate(), llret_ty));
2284 }
2285
2286 if name == sym::simd_with_exposed_provenance {
2287 let (out_len, out_elem) = require_simd!(ret_ty, SimdReturn);
2288 require!(
2289 in_len == out_len,
2290 InvalidMonomorphization::ReturnLengthInputType {
2291 span,
2292 name,
2293 in_len,
2294 in_ty,
2295 ret_ty,
2296 out_len
2297 }
2298 );
2299
2300 match in_elem.kind() {
2301 ty::Uint(ty::UintTy::Usize) => {}
2302 _ => return_error!(InvalidMonomorphization::ExpectedUsize { span, name, ty: in_elem }),
2303 }
2304 match out_elem.kind() {
2305 ty::RawPtr(_, _) => {}
2306 _ => {
2307 return_error!(InvalidMonomorphization::ExpectedPointer { span, name, ty: out_elem })
2308 }
2309 }
2310
2311 return Ok(bx.inttoptr(args[0].immediate(), llret_ty));
2312 }
2313
2314 if name == sym::simd_cast || name == sym::simd_as {
2315 let (out_len, out_elem) = require_simd!(ret_ty, SimdReturn);
2316 require!(
2317 in_len == out_len,
2318 InvalidMonomorphization::ReturnLengthInputType {
2319 span,
2320 name,
2321 in_len,
2322 in_ty,
2323 ret_ty,
2324 out_len
2325 }
2326 );
2327 if in_elem == out_elem {
2329 return Ok(args[0].immediate());
2330 }
2331
2332 #[derive(Copy, Clone)]
2333 enum Sign {
2334 Unsigned,
2335 Signed,
2336 }
2337 use Sign::*;
2338
2339 enum Style {
2340 Float,
2341 Int(Sign),
2342 Unsupported,
2343 }
2344
2345 let (in_style, in_width) = match in_elem.kind() {
2346 ty::Int(i) => (
2349 Style::Int(Signed),
2350 i.normalize(bx.tcx().sess.target.pointer_width).bit_width().unwrap(),
2351 ),
2352 ty::Uint(u) => (
2353 Style::Int(Unsigned),
2354 u.normalize(bx.tcx().sess.target.pointer_width).bit_width().unwrap(),
2355 ),
2356 ty::Float(f) => (Style::Float, f.bit_width()),
2357 _ => (Style::Unsupported, 0),
2358 };
2359 let (out_style, out_width) = match out_elem.kind() {
2360 ty::Int(i) => (
2361 Style::Int(Signed),
2362 i.normalize(bx.tcx().sess.target.pointer_width).bit_width().unwrap(),
2363 ),
2364 ty::Uint(u) => (
2365 Style::Int(Unsigned),
2366 u.normalize(bx.tcx().sess.target.pointer_width).bit_width().unwrap(),
2367 ),
2368 ty::Float(f) => (Style::Float, f.bit_width()),
2369 _ => (Style::Unsupported, 0),
2370 };
2371
2372 match (in_style, out_style) {
2373 (Style::Int(sign), Style::Int(_)) => {
2374 return Ok(match in_width.cmp(&out_width) {
2375 Ordering::Greater => bx.trunc(args[0].immediate(), llret_ty),
2376 Ordering::Equal => args[0].immediate(),
2377 Ordering::Less => match sign {
2378 Sign::Signed => bx.sext(args[0].immediate(), llret_ty),
2379 Sign::Unsigned => bx.zext(args[0].immediate(), llret_ty),
2380 },
2381 });
2382 }
2383 (Style::Int(Sign::Signed), Style::Float) => {
2384 return Ok(bx.sitofp(args[0].immediate(), llret_ty));
2385 }
2386 (Style::Int(Sign::Unsigned), Style::Float) => {
2387 return Ok(bx.uitofp(args[0].immediate(), llret_ty));
2388 }
2389 (Style::Float, Style::Int(sign)) => {
2390 return Ok(match (sign, name == sym::simd_as) {
2391 (Sign::Unsigned, false) => bx.fptoui(args[0].immediate(), llret_ty),
2392 (Sign::Signed, false) => bx.fptosi(args[0].immediate(), llret_ty),
2393 (_, true) => bx.cast_float_to_int(
2394 matches!(sign, Sign::Signed),
2395 args[0].immediate(),
2396 llret_ty,
2397 ),
2398 });
2399 }
2400 (Style::Float, Style::Float) => {
2401 return Ok(match in_width.cmp(&out_width) {
2402 Ordering::Greater => bx.fptrunc(args[0].immediate(), llret_ty),
2403 Ordering::Equal => args[0].immediate(),
2404 Ordering::Less => bx.fpext(args[0].immediate(), llret_ty),
2405 });
2406 }
2407 _ => { }
2408 }
2409 return_error!(InvalidMonomorphization::UnsupportedCast {
2410 span,
2411 name,
2412 in_ty,
2413 in_elem,
2414 ret_ty,
2415 out_elem
2416 });
2417 }
2418 macro_rules! arith_binary {
2419 ($($name: ident: $($($p: ident),* => $call: ident),*;)*) => {
2420 $(if name == sym::$name {
2421 match in_elem.kind() {
2422 $($(ty::$p(_))|* => {
2423 return Ok(bx.$call(args[0].immediate(), args[1].immediate()))
2424 })*
2425 _ => {},
2426 }
2427 return_error!(
2428 InvalidMonomorphization::UnsupportedOperation { span, name, in_ty, in_elem }
2429 );
2430 })*
2431 }
2432 }
2433 arith_binary! {
2434 simd_add: Uint, Int => add, Float => fadd;
2435 simd_sub: Uint, Int => sub, Float => fsub;
2436 simd_mul: Uint, Int => mul, Float => fmul;
2437 simd_div: Uint => udiv, Int => sdiv, Float => fdiv;
2438 simd_rem: Uint => urem, Int => srem, Float => frem;
2439 simd_shl: Uint, Int => shl;
2440 simd_shr: Uint => lshr, Int => ashr;
2441 simd_and: Uint, Int => and;
2442 simd_or: Uint, Int => or;
2443 simd_xor: Uint, Int => xor;
2444 simd_fmax: Float => maxnum;
2445 simd_fmin: Float => minnum;
2446
2447 }
2448 macro_rules! arith_unary {
2449 ($($name: ident: $($($p: ident),* => $call: ident),*;)*) => {
2450 $(if name == sym::$name {
2451 match in_elem.kind() {
2452 $($(ty::$p(_))|* => {
2453 return Ok(bx.$call(args[0].immediate()))
2454 })*
2455 _ => {},
2456 }
2457 return_error!(
2458 InvalidMonomorphization::UnsupportedOperation { span, name, in_ty, in_elem }
2459 );
2460 })*
2461 }
2462 }
2463 arith_unary! {
2464 simd_neg: Int => neg, Float => fneg;
2465 }
2466
2467 if matches!(
2469 name,
2470 sym::simd_bswap | sym::simd_bitreverse | sym::simd_ctlz | sym::simd_ctpop | sym::simd_cttz
2471 ) {
2472 let vec_ty = bx.cx.type_vector(
2473 match *in_elem.kind() {
2474 ty::Int(i) => bx.cx.type_int_from_ty(i),
2475 ty::Uint(i) => bx.cx.type_uint_from_ty(i),
2476 _ => return_error!(InvalidMonomorphization::UnsupportedOperation {
2477 span,
2478 name,
2479 in_ty,
2480 in_elem
2481 }),
2482 },
2483 in_len as u64,
2484 );
2485 let intrinsic_name = match name {
2486 sym::simd_bswap => "bswap",
2487 sym::simd_bitreverse => "bitreverse",
2488 sym::simd_ctlz => "ctlz",
2489 sym::simd_ctpop => "ctpop",
2490 sym::simd_cttz => "cttz",
2491 _ => unreachable!(),
2492 };
2493 let int_size = in_elem.int_size_and_signed(bx.tcx()).0.bits();
2494 let llvm_intrinsic = &format!("llvm.{}.v{}i{}", intrinsic_name, in_len, int_size,);
2495
2496 return match name {
2497 sym::simd_bswap if int_size == 8 => Ok(args[0].immediate()),
2499 sym::simd_ctlz | sym::simd_cttz => {
2500 let fn_ty = bx.type_func(&[vec_ty, bx.type_i1()], vec_ty);
2502 let dont_poison_on_zero = bx.const_int(bx.type_i1(), 0);
2503 let f = bx.declare_cfn(llvm_intrinsic, llvm::UnnamedAddr::No, fn_ty);
2504 Ok(bx.call(
2505 fn_ty,
2506 None,
2507 None,
2508 f,
2509 &[args[0].immediate(), dont_poison_on_zero],
2510 None,
2511 None,
2512 ))
2513 }
2514 sym::simd_bswap | sym::simd_bitreverse | sym::simd_ctpop => {
2515 let fn_ty = bx.type_func(&[vec_ty], vec_ty);
2517 let f = bx.declare_cfn(llvm_intrinsic, llvm::UnnamedAddr::No, fn_ty);
2518 Ok(bx.call(fn_ty, None, None, f, &[args[0].immediate()], None, None))
2519 }
2520 _ => unreachable!(),
2521 };
2522 }
2523
2524 if name == sym::simd_arith_offset {
2525 let pointee = in_elem.builtin_deref(true).unwrap_or_else(|| {
2527 span_bug!(span, "must be called with a vector of pointer types as first argument")
2528 });
2529 let layout = bx.layout_of(pointee);
2530 let ptrs = args[0].immediate();
2531 let (_offsets_len, offsets_elem) = arg_tys[1].simd_size_and_type(bx.tcx());
2534 if !matches!(offsets_elem.kind(), ty::Int(ty::IntTy::Isize) | ty::Uint(ty::UintTy::Usize)) {
2535 span_bug!(
2536 span,
2537 "must be called with a vector of pointer-sized integers as second argument"
2538 );
2539 }
2540 let offsets = args[1].immediate();
2541
2542 return Ok(bx.gep(bx.backend_type(layout), ptrs, &[offsets]));
2543 }
2544
2545 if name == sym::simd_saturating_add || name == sym::simd_saturating_sub {
2546 let lhs = args[0].immediate();
2547 let rhs = args[1].immediate();
2548 let is_add = name == sym::simd_saturating_add;
2549 let ptr_bits = bx.tcx().data_layout.pointer_size.bits() as _;
2550 let (signed, elem_width, elem_ty) = match *in_elem.kind() {
2551 ty::Int(i) => (true, i.bit_width().unwrap_or(ptr_bits), bx.cx.type_int_from_ty(i)),
2552 ty::Uint(i) => (false, i.bit_width().unwrap_or(ptr_bits), bx.cx.type_uint_from_ty(i)),
2553 _ => {
2554 return_error!(InvalidMonomorphization::ExpectedVectorElementType {
2555 span,
2556 name,
2557 expected_element: arg_tys[0].simd_size_and_type(bx.tcx()).1,
2558 vector_type: arg_tys[0]
2559 });
2560 }
2561 };
2562 let llvm_intrinsic = &format!(
2563 "llvm.{}{}.sat.v{}i{}",
2564 if signed { 's' } else { 'u' },
2565 if is_add { "add" } else { "sub" },
2566 in_len,
2567 elem_width
2568 );
2569 let vec_ty = bx.cx.type_vector(elem_ty, in_len as u64);
2570
2571 let fn_ty = bx.type_func(&[vec_ty, vec_ty], vec_ty);
2572 let f = bx.declare_cfn(llvm_intrinsic, llvm::UnnamedAddr::No, fn_ty);
2573 let v = bx.call(fn_ty, None, None, f, &[lhs, rhs], None, None);
2574 return Ok(v);
2575 }
2576
2577 span_bug!(span, "unknown SIMD intrinsic");
2578}