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rustc_codegen_llvm/
intrinsic.rs

1use std::cmp::Ordering;
2use std::ffi::c_uint;
3use std::{assert_matches, iter, ptr};
4
5use rustc_abi::{
6    AddressSpace, Align, BackendRepr, CVariadicStatus, Float, HasDataLayout, Integer,
7    NumScalableVectors, Primitive, Size, WrappingRange,
8};
9use rustc_codegen_ssa::RetagInfo;
10use rustc_codegen_ssa::base::{compare_simd_types, wants_msvc_seh, wants_wasm_eh};
11use rustc_codegen_ssa::common::{IntPredicate, TypeKind};
12use rustc_codegen_ssa::errors::{ExpectedPointerMutability, InvalidMonomorphization};
13use rustc_codegen_ssa::mir::IntrinsicResult;
14use rustc_codegen_ssa::mir::operand::{OperandRef, OperandValue};
15use rustc_codegen_ssa::mir::place::{PlaceRef, PlaceValue};
16use rustc_codegen_ssa::traits::*;
17use rustc_hir as hir;
18use rustc_hir::def_id::LOCAL_CRATE;
19use rustc_hir::find_attr;
20use rustc_middle::mir::BinOp;
21use rustc_middle::ty::layout::{FnAbiOf, HasTyCtxt, HasTypingEnv, LayoutOf};
22use rustc_middle::ty::offload_meta::OffloadMetadata;
23use rustc_middle::ty::{self, GenericArgsRef, Instance, SimdAlign, Ty, TyCtxt, TypingEnv};
24use rustc_middle::{bug, span_bug};
25use rustc_session::config::CrateType;
26use rustc_session::errors::feature_err;
27use rustc_session::lint::builtin::DEPRECATED_LLVM_INTRINSIC;
28use rustc_span::{ErrorGuaranteed, Span, Symbol, sym};
29use rustc_symbol_mangling::{mangle_internal_symbol, symbol_name_for_instance_in_crate};
30use rustc_target::callconv::PassMode;
31use rustc_target::spec::Arch;
32use tracing::debug;
33
34use crate::abi::FnAbiLlvmExt;
35use crate::builder::Builder;
36use crate::builder::autodiff::{adjust_activity_to_abi, generate_enzyme_call};
37use crate::builder::gpu_offload::{
38    OffloadKernelDims, gen_call_handling, gen_define_handling, register_offload,
39};
40use crate::context::CodegenCx;
41use crate::declare::declare_raw_fn;
42use crate::errors::{
43    AutoDiffWithoutEnable, AutoDiffWithoutLto, IntrinsicSignatureMismatch, IntrinsicWrongArch,
44    OffloadWithoutEnable, OffloadWithoutFatLTO, UnknownIntrinsic,
45};
46use crate::intrinsic::ty::typetree::fnc_typetrees;
47use crate::llvm::{self, Type, Value};
48use crate::type_of::LayoutLlvmExt;
49use crate::va_arg::emit_va_arg;
50
51fn call_simple_intrinsic<'ll, 'tcx>(
52    bx: &mut Builder<'_, 'll, 'tcx>,
53    name: Symbol,
54    args: &[OperandRef<'tcx, &'ll Value>],
55) -> Option<&'ll Value> {
56    let (base_name, type_params): (&'static str, &[&'ll Type]) = match name {
57        sym::sqrtf16 => ("llvm.sqrt", &[bx.type_f16()]),
58        sym::sqrtf32 => ("llvm.sqrt", &[bx.type_f32()]),
59        sym::sqrtf64 => ("llvm.sqrt", &[bx.type_f64()]),
60        sym::sqrtf128 => ("llvm.sqrt", &[bx.type_f128()]),
61
62        sym::powif16 => ("llvm.powi", &[bx.type_f16(), bx.type_i32()]),
63        sym::powif32 => ("llvm.powi", &[bx.type_f32(), bx.type_i32()]),
64        sym::powif64 => ("llvm.powi", &[bx.type_f64(), bx.type_i32()]),
65        sym::powif128 => ("llvm.powi", &[bx.type_f128(), bx.type_i32()]),
66
67        sym::sinf16 => ("llvm.sin", &[bx.type_f16()]),
68        sym::sinf32 => ("llvm.sin", &[bx.type_f32()]),
69        sym::sinf64 => ("llvm.sin", &[bx.type_f64()]),
70        sym::sinf128 => ("llvm.sin", &[bx.type_f128()]),
71
72        sym::cosf16 => ("llvm.cos", &[bx.type_f16()]),
73        sym::cosf32 => ("llvm.cos", &[bx.type_f32()]),
74        sym::cosf64 => ("llvm.cos", &[bx.type_f64()]),
75        sym::cosf128 => ("llvm.cos", &[bx.type_f128()]),
76
77        sym::powf16 => ("llvm.pow", &[bx.type_f16()]),
78        sym::powf32 => ("llvm.pow", &[bx.type_f32()]),
79        sym::powf64 => ("llvm.pow", &[bx.type_f64()]),
80        sym::powf128 => ("llvm.pow", &[bx.type_f128()]),
81
82        sym::expf16 => ("llvm.exp", &[bx.type_f16()]),
83        sym::expf32 => ("llvm.exp", &[bx.type_f32()]),
84        sym::expf64 => ("llvm.exp", &[bx.type_f64()]),
85        sym::expf128 => ("llvm.exp", &[bx.type_f128()]),
86
87        sym::exp2f16 => ("llvm.exp2", &[bx.type_f16()]),
88        sym::exp2f32 => ("llvm.exp2", &[bx.type_f32()]),
89        sym::exp2f64 => ("llvm.exp2", &[bx.type_f64()]),
90        sym::exp2f128 => ("llvm.exp2", &[bx.type_f128()]),
91
92        sym::logf16 => ("llvm.log", &[bx.type_f16()]),
93        sym::logf32 => ("llvm.log", &[bx.type_f32()]),
94        sym::logf64 => ("llvm.log", &[bx.type_f64()]),
95        sym::logf128 => ("llvm.log", &[bx.type_f128()]),
96
97        sym::log10f16 => ("llvm.log10", &[bx.type_f16()]),
98        sym::log10f32 => ("llvm.log10", &[bx.type_f32()]),
99        sym::log10f64 => ("llvm.log10", &[bx.type_f64()]),
100        sym::log10f128 => ("llvm.log10", &[bx.type_f128()]),
101
102        sym::log2f16 => ("llvm.log2", &[bx.type_f16()]),
103        sym::log2f32 => ("llvm.log2", &[bx.type_f32()]),
104        sym::log2f64 => ("llvm.log2", &[bx.type_f64()]),
105        sym::log2f128 => ("llvm.log2", &[bx.type_f128()]),
106
107        sym::fmaf16 => ("llvm.fma", &[bx.type_f16()]),
108        sym::fmaf32 => ("llvm.fma", &[bx.type_f32()]),
109        sym::fmaf64 => ("llvm.fma", &[bx.type_f64()]),
110        sym::fmaf128 => ("llvm.fma", &[bx.type_f128()]),
111
112        sym::fmuladdf16 => ("llvm.fmuladd", &[bx.type_f16()]),
113        sym::fmuladdf32 => ("llvm.fmuladd", &[bx.type_f32()]),
114        sym::fmuladdf64 => ("llvm.fmuladd", &[bx.type_f64()]),
115        sym::fmuladdf128 => ("llvm.fmuladd", &[bx.type_f128()]),
116
117        // FIXME: LLVM currently mis-compile those intrinsics, re-enable them
118        // when llvm/llvm-project#{139380,139381,140445} are fixed.
119        //sym::minimumf16 => ("llvm.minimum", &[bx.type_f16()]),
120        //sym::minimumf32 => ("llvm.minimum", &[bx.type_f32()]),
121        //sym::minimumf64 => ("llvm.minimum", &[bx.type_f64()]),
122        //sym::minimumf128 => ("llvm.minimum", &[cx.type_f128()]),
123        //
124        // FIXME: LLVM currently mis-compile those intrinsics, re-enable them
125        // when llvm/llvm-project#{139380,139381,140445} are fixed.
126        //sym::maximumf16 => ("llvm.maximum", &[bx.type_f16()]),
127        //sym::maximumf32 => ("llvm.maximum", &[bx.type_f32()]),
128        //sym::maximumf64 => ("llvm.maximum", &[bx.type_f64()]),
129        //sym::maximumf128 => ("llvm.maximum", &[cx.type_f128()]),
130        //
131        sym::copysignf16 => ("llvm.copysign", &[bx.type_f16()]),
132        sym::copysignf32 => ("llvm.copysign", &[bx.type_f32()]),
133        sym::copysignf64 => ("llvm.copysign", &[bx.type_f64()]),
134        sym::copysignf128 => ("llvm.copysign", &[bx.type_f128()]),
135
136        sym::floorf16 => ("llvm.floor", &[bx.type_f16()]),
137        sym::floorf32 => ("llvm.floor", &[bx.type_f32()]),
138        sym::floorf64 => ("llvm.floor", &[bx.type_f64()]),
139        sym::floorf128 => ("llvm.floor", &[bx.type_f128()]),
140
141        sym::ceilf16 => ("llvm.ceil", &[bx.type_f16()]),
142        sym::ceilf32 => ("llvm.ceil", &[bx.type_f32()]),
143        sym::ceilf64 => ("llvm.ceil", &[bx.type_f64()]),
144        sym::ceilf128 => ("llvm.ceil", &[bx.type_f128()]),
145
146        sym::truncf16 => ("llvm.trunc", &[bx.type_f16()]),
147        sym::truncf32 => ("llvm.trunc", &[bx.type_f32()]),
148        sym::truncf64 => ("llvm.trunc", &[bx.type_f64()]),
149        sym::truncf128 => ("llvm.trunc", &[bx.type_f128()]),
150
151        // We could use any of `rint`, `nearbyint`, or `roundeven`
152        // for this -- they are all identical in semantics when
153        // assuming the default FP environment.
154        // `rint` is what we used for $forever.
155        sym::round_ties_even_f16 => ("llvm.rint", &[bx.type_f16()]),
156        sym::round_ties_even_f32 => ("llvm.rint", &[bx.type_f32()]),
157        sym::round_ties_even_f64 => ("llvm.rint", &[bx.type_f64()]),
158        sym::round_ties_even_f128 => ("llvm.rint", &[bx.type_f128()]),
159
160        sym::roundf16 => ("llvm.round", &[bx.type_f16()]),
161        sym::roundf32 => ("llvm.round", &[bx.type_f32()]),
162        sym::roundf64 => ("llvm.round", &[bx.type_f64()]),
163        sym::roundf128 => ("llvm.round", &[bx.type_f128()]),
164
165        _ => return None,
166    };
167    Some(bx.call_intrinsic(
168        base_name,
169        type_params,
170        &args.iter().map(|arg| arg.immediate()).collect::<Vec<_>>(),
171    ))
172}
173
174impl<'ll, 'tcx> IntrinsicCallBuilderMethods<'tcx> for Builder<'_, 'll, 'tcx> {
175    fn codegen_intrinsic_call(
176        &mut self,
177        instance: ty::Instance<'tcx>,
178        args: &[OperandRef<'tcx, &'ll Value>],
179        result_layout: ty::layout::TyAndLayout<'tcx>,
180        result_place: Option<PlaceValue<&'ll Value>>,
181        span: Span,
182    ) -> IntrinsicResult<'tcx, &'ll Value> {
183        let tcx = self.tcx;
184        let llvm_version = crate::llvm_util::get_version();
185
186        let name = tcx.item_name(instance.def_id());
187        let fn_args = instance.args;
188
189        let simple = call_simple_intrinsic(self, name, args);
190        let llval = match name {
191            _ if simple.is_some() => simple.unwrap(),
192            sym::minimum_number_nsz_f16
193            | sym::minimum_number_nsz_f32
194            | sym::minimum_number_nsz_f64
195            | sym::minimum_number_nsz_f128
196            | sym::maximum_number_nsz_f16
197            | sym::maximum_number_nsz_f32
198            | sym::maximum_number_nsz_f64
199            | sym::maximum_number_nsz_f128
200                // Need at least LLVM 22 for `min/maximumnum` to not crash LLVM.
201                if llvm_version >= (22, 0, 0) =>
202            {
203                let intrinsic_name = if name.as_str().starts_with("min") {
204                    "llvm.minimumnum"
205                } else {
206                    "llvm.maximumnum"
207                };
208                let call = self.call_intrinsic(
209                    intrinsic_name,
210                    &[args[0].layout.immediate_llvm_type(self.cx)],
211                    &[args[0].immediate(), args[1].immediate()],
212                );
213                // `nsz` on minimumnum/maximumnum is special: its only effect is to make
214                // signed-zero ordering non-deterministic.
215                unsafe { llvm::LLVMRustSetNoSignedZeros(call) };
216                call
217            }
218            sym::ptr_mask => {
219                let ptr = args[0].immediate();
220                self.call_intrinsic(
221                    "llvm.ptrmask",
222                    &[self.val_ty(ptr), self.type_isize()],
223                    &[ptr, args[1].immediate()],
224                )
225            }
226            sym::autodiff => {
227                return codegen_autodiff(self, tcx, instance, args, result_layout, result_place);
228            }
229            sym::offload => {
230                if tcx.sess.opts.unstable_opts.offload.is_empty() {
231                    let _ = tcx.dcx().emit_almost_fatal(OffloadWithoutEnable);
232                }
233
234                if tcx.sess.lto() != rustc_session::config::Lto::Fat {
235                    let _ = tcx.dcx().emit_almost_fatal(OffloadWithoutFatLTO);
236                }
237
238                codegen_offload(self, tcx, instance, args);
239                // offload *has* a return type, but somehow works without mentioning the place
240                return IntrinsicResult::WroteIntoPlace;
241            }
242            sym::is_val_statically_known => {
243                if let OperandValue::Immediate(imm) = args[0].val {
244                    self.call_intrinsic(
245                        "llvm.is.constant",
246                        &[args[0].layout.immediate_llvm_type(self.cx)],
247                        &[imm],
248                    )
249                } else {
250                    self.const_bool(false)
251                }
252            }
253            sym::select_unpredictable => {
254                let cond = args[0].immediate();
255                {
    match (&args[1].layout, &args[2].layout) {
        (left_val, right_val) => {
            if !(*left_val == *right_val) {
                let kind = ::core::panicking::AssertKind::Eq;
                ::core::panicking::assert_failed(kind, &*left_val,
                    &*right_val, ::core::option::Option::None);
            }
        }
    }
};assert_eq!(args[1].layout, args[2].layout);
256                let select = |bx: &mut Self, true_val, false_val| {
257                    let result = bx.select(cond, true_val, false_val);
258                    bx.set_unpredictable(&result);
259                    result
260                };
261                match (args[1].val, args[2].val) {
262                    (OperandValue::Ref(true_val), OperandValue::Ref(false_val)) => {
263                        if !true_val.llextra.is_none() {
    ::core::panicking::panic("assertion failed: true_val.llextra.is_none()")
};assert!(true_val.llextra.is_none());
264                        if !false_val.llextra.is_none() {
    ::core::panicking::panic("assertion failed: false_val.llextra.is_none()")
};assert!(false_val.llextra.is_none());
265                        {
    match (&true_val.align, &false_val.align) {
        (left_val, right_val) => {
            if !(*left_val == *right_val) {
                let kind = ::core::panicking::AssertKind::Eq;
                ::core::panicking::assert_failed(kind, &*left_val,
                    &*right_val, ::core::option::Option::None);
            }
        }
    }
};assert_eq!(true_val.align, false_val.align);
266                        let ptr = select(self, true_val.llval, false_val.llval);
267                        let selected =
268                            OperandValue::Ref(PlaceValue::new_sized(ptr, true_val.align));
269                        let result = PlaceRef {
270                            val: result_place.unwrap(),
271                            layout: result_layout,
272                        };
273                        selected.store(self, result);
274                        return IntrinsicResult::WroteIntoPlace;
275                    }
276                    (OperandValue::Immediate(_), OperandValue::Immediate(_))
277                    | (OperandValue::Pair(_, _), OperandValue::Pair(_, _)) => {
278                        let true_val = args[1].immediate_or_packed_pair(self);
279                        let false_val = args[2].immediate_or_packed_pair(self);
280                        select(self, true_val, false_val)
281                    }
282                    (OperandValue::ZeroSized, OperandValue::ZeroSized) => return IntrinsicResult::Operand(OperandValue::ZeroSized),
283                    _ => ::rustc_middle::util::bug::span_bug_fmt(span,
    format_args!("Incompatible OperandValue for select_unpredictable"))span_bug!(span, "Incompatible OperandValue for select_unpredictable"),
284                }
285            }
286            sym::catch_unwind => {
287                catch_unwind_intrinsic(
288                    self,
289                    args[0].immediate(),
290                    args[1].immediate(),
291                    args[2].immediate(),
292                )
293            }
294            sym::breakpoint => self.call_intrinsic("llvm.debugtrap", &[], &[]),
295            sym::va_arg => {
296                let target = &self.cx.tcx.sess.target;
297                let stability = target.supports_c_variadic_definitions();
298                if let CVariadicStatus::Unstable { feature } = stability
299                    && !self.tcx.features().enabled(feature)
300                {
301                    let msg =
302                        ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("C-variadic function definitions on this target are unstable"))
    })format!("C-variadic function definitions on this target are unstable");
303                    feature_err(&*self.sess(), feature, span, msg).emit();
304                }
305
306                let BackendRepr::Scalar(scalar) = result_layout.backend_repr else {
307                    ::rustc_middle::util::bug::bug_fmt(format_args!("the va_arg intrinsic does not support non-scalar types"))bug!("the va_arg intrinsic does not support non-scalar types")
308                };
309
310                // We reject types that would never be passed as varargs in C because
311                // they get promoted to a larger type, specifically integers smaller than
312                // c_int and float type smaller than c_double.
313                match scalar.primitive() {
314                    Primitive::Pointer(_) => {
315                        // Pointers are always OK.
316                    }
317                    Primitive::Int(Integer::I128, _) => {
318                        // FIXME: maybe we should support these? At least on 32-bit powerpc
319                        // the logic in LLVM does not handle i128 correctly though.
320                        ::rustc_middle::util::bug::bug_fmt(format_args!("the va_arg intrinsic does not support `i128`/`u128`"))bug!("the va_arg intrinsic does not support `i128`/`u128`")
321                    }
322                    Primitive::Int(..) => {
323                        let int_width = self.cx().size_of(result_layout.ty).bits();
324                        let target_c_int_width = self.cx().sess().target.options.c_int_width;
325                        if int_width < u64::from(target_c_int_width) {
326                            // Smaller integer types are automatically promototed and `va_arg`
327                            // should not be called on them.
328                            ::rustc_middle::util::bug::bug_fmt(format_args!("va_arg got i{0} but needs at least c_int (an i{1})",
        int_width, target_c_int_width));bug!(
329                                "va_arg got i{} but needs at least c_int (an i{})",
330                                int_width,
331                                target_c_int_width
332                            );
333                        }
334                    }
335                    Primitive::Float(Float::F16) => {
336                        ::rustc_middle::util::bug::bug_fmt(format_args!("the va_arg intrinsic does not support `f16`"))bug!("the va_arg intrinsic does not support `f16`")
337                    }
338                    Primitive::Float(Float::F32) => {
339                        // c_double is actually f32 on avr.
340                        if self.cx().sess().target.arch != Arch::Avr {
341                            ::rustc_middle::util::bug::bug_fmt(format_args!("the va_arg intrinsic does not support `f32` on this target"))bug!("the va_arg intrinsic does not support `f32` on this target")
342                        }
343                    }
344                    Primitive::Float(Float::F64) => {
345                        // 64-bit floats are always OK.
346                    }
347                    Primitive::Float(Float::F128) => {
348                        // FIXME(f128) figure out whether we should support this.
349                        ::rustc_middle::util::bug::bug_fmt(format_args!("the va_arg intrinsic does not support `f128`"))bug!("the va_arg intrinsic does not support `f128`")
350                    }
351                }
352
353                emit_va_arg(self, args[0], result_layout.ty)
354            }
355
356            sym::volatile_load | sym::unaligned_volatile_load => {
357                let result = PlaceRef {
358                    val: result_place.unwrap(),
359                    layout: result_layout,
360                };
361
362                let ptr = args[0].immediate();
363                let load = self.volatile_load(result_layout.llvm_type(self), ptr);
364                let align = if name == sym::unaligned_volatile_load {
365                    1
366                } else {
367                    result_layout.align.bytes() as u32
368                };
369                unsafe {
370                    llvm::LLVMSetAlignment(load, align);
371                }
372                if !result_layout.is_zst() {
373                    self.store_to_place(load, result.val);
374                }
375                return IntrinsicResult::WroteIntoPlace;
376            }
377            sym::volatile_store => {
378                let dst = args[0].deref(self.cx());
379                args[1].val.volatile_store(self, dst);
380                return IntrinsicResult::Operand(OperandValue::ZeroSized);
381            }
382            sym::unaligned_volatile_store => {
383                let dst = args[0].deref(self.cx());
384                args[1].val.unaligned_volatile_store(self, dst);
385                return IntrinsicResult::Operand(OperandValue::ZeroSized);
386            }
387            sym::prefetch_read_data
388            | sym::prefetch_write_data
389            | sym::prefetch_read_instruction
390            | sym::prefetch_write_instruction => {
391                let (rw, cache_type) = match name {
392                    sym::prefetch_read_data => (0, 1),
393                    sym::prefetch_write_data => (1, 1),
394                    sym::prefetch_read_instruction => (0, 0),
395                    sym::prefetch_write_instruction => (1, 0),
396                    _ => ::rustc_middle::util::bug::bug_fmt(format_args!("impossible case reached"))bug!(),
397                };
398                let ptr = args[0].immediate();
399                let locality = fn_args.const_at(1).to_leaf().to_i32();
400                self.call_intrinsic(
401                    "llvm.prefetch",
402                    &[self.val_ty(ptr)],
403                    &[
404                        ptr,
405                        self.const_i32(rw),
406                        self.const_i32(locality),
407                        self.const_i32(cache_type),
408                    ],
409                );
410                return IntrinsicResult::Operand(OperandValue::ZeroSized);
411            }
412            sym::carrying_mul_add => {
413                let (size, signed) = fn_args.type_at(0).int_size_and_signed(self.tcx);
414
415                let wide_llty = self.type_ix(size.bits() * 2);
416                let args = args.as_array().unwrap();
417                let [a, b, c, d] = args.map(|a| self.intcast(a.immediate(), wide_llty, signed));
418
419                let wide = if signed {
420                    let prod = self.unchecked_smul(a, b);
421                    let acc = self.unchecked_sadd(prod, c);
422                    self.unchecked_sadd(acc, d)
423                } else {
424                    let prod = self.unchecked_umul(a, b);
425                    let acc = self.unchecked_uadd(prod, c);
426                    self.unchecked_uadd(acc, d)
427                };
428
429                let narrow_llty = self.type_ix(size.bits());
430                let low = self.trunc(wide, narrow_llty);
431                let bits_const = self.const_uint(wide_llty, size.bits());
432                // No need for ashr when signed; LLVM changes it to lshr anyway.
433                let high = self.lshr(wide, bits_const);
434                // FIXME: could be `trunc nuw`, even for signed.
435                let high = self.trunc(high, narrow_llty);
436
437                let pair_llty = self.type_struct(&[narrow_llty, narrow_llty], false);
438                let pair = self.const_poison(pair_llty);
439                let pair = self.insert_value(pair, low, 0);
440                let pair = self.insert_value(pair, high, 1);
441                pair
442            }
443
444            // FIXME move into the branch below when LLVM 22 is the lowest version we support.
445            sym::carryless_mul if llvm_version >= (22, 0, 0) => {
446                let ty = args[0].layout.ty;
447                if !ty.is_integral() {
448                    let err = tcx.dcx().emit_err(InvalidMonomorphization::BasicIntegerType {
449                        span,
450                        name,
451                        ty,
452                    });
453                    return IntrinsicResult::Err(err);
454                }
455                let (size, _) = ty.int_size_and_signed(self.tcx);
456                let width = size.bits();
457                let llty = self.type_ix(width);
458
459                let lhs = args[0].immediate();
460                let rhs = args[1].immediate();
461                self.call_intrinsic("llvm.clmul", &[llty], &[lhs, rhs])
462            }
463
464            sym::ctlz
465            | sym::ctlz_nonzero
466            | sym::cttz
467            | sym::cttz_nonzero
468            | sym::ctpop
469            | sym::bswap
470            | sym::bitreverse
471            | sym::saturating_add
472            | sym::saturating_sub
473            | sym::unchecked_funnel_shl
474            | sym::unchecked_funnel_shr => {
475                let ty = args[0].layout.ty;
476                if !ty.is_integral() {
477                    let err = tcx.dcx().emit_err(InvalidMonomorphization::BasicIntegerType {
478                        span,
479                        name,
480                        ty,
481                    });
482                    return IntrinsicResult::Err(err);
483                }
484                let (size, signed) = ty.int_size_and_signed(self.tcx);
485                let width = size.bits();
486                let llty = self.type_ix(width);
487                match name {
488                    sym::ctlz | sym::ctlz_nonzero | sym::cttz | sym::cttz_nonzero => {
489                        let y =
490                            self.const_bool(name == sym::ctlz_nonzero || name == sym::cttz_nonzero);
491                        let llvm_name = if name == sym::ctlz || name == sym::ctlz_nonzero {
492                            "llvm.ctlz"
493                        } else {
494                            "llvm.cttz"
495                        };
496                        let ret =
497                            self.call_intrinsic(llvm_name, &[llty], &[args[0].immediate(), y]);
498                        self.intcast(ret, result_layout.llvm_type(self), false)
499                    }
500                    sym::ctpop => {
501                        let ret =
502                            self.call_intrinsic("llvm.ctpop", &[llty], &[args[0].immediate()]);
503                        self.intcast(ret, result_layout.llvm_type(self), false)
504                    }
505                    sym::bswap => {
506                        if width == 8 {
507                            args[0].immediate() // byte swap a u8/i8 is just a no-op
508                        } else {
509                            self.call_intrinsic("llvm.bswap", &[llty], &[args[0].immediate()])
510                        }
511                    }
512                    sym::bitreverse => {
513                        self.call_intrinsic("llvm.bitreverse", &[llty], &[args[0].immediate()])
514                    }
515                    sym::unchecked_funnel_shl | sym::unchecked_funnel_shr => {
516                        let is_left = name == sym::unchecked_funnel_shl;
517                        let lhs = args[0].immediate();
518                        let rhs = args[1].immediate();
519                        let raw_shift = args[2].immediate();
520                        let llvm_name = ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("llvm.fsh{0}",
                if is_left { 'l' } else { 'r' }))
    })format!("llvm.fsh{}", if is_left { 'l' } else { 'r' });
521
522                        // llvm expects shift to be the same type as the values, but rust
523                        // always uses `u32`.
524                        let raw_shift = self.intcast(raw_shift, self.val_ty(lhs), false);
525
526                        self.call_intrinsic(llvm_name, &[llty], &[lhs, rhs, raw_shift])
527                    }
528                    sym::saturating_add | sym::saturating_sub => {
529                        let is_add = name == sym::saturating_add;
530                        let lhs = args[0].immediate();
531                        let rhs = args[1].immediate();
532                        let llvm_name = ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("llvm.{0}{1}.sat",
                if signed { 's' } else { 'u' },
                if is_add { "add" } else { "sub" }))
    })format!(
533                            "llvm.{}{}.sat",
534                            if signed { 's' } else { 'u' },
535                            if is_add { "add" } else { "sub" },
536                        );
537                        self.call_intrinsic(llvm_name, &[llty], &[lhs, rhs])
538                    }
539                    _ => ::rustc_middle::util::bug::bug_fmt(format_args!("impossible case reached"))bug!(),
540                }
541            }
542
543            sym::fabs => {
544                let ty = args[0].layout.ty;
545                let ty::Float(f) = ty.kind() else {
546                    ::rustc_middle::util::bug::span_bug_fmt(span,
    format_args!("the `fabs` intrinsic requires a floating-point argument, got {0:?}",
        ty));span_bug!(span, "the `fabs` intrinsic requires a floating-point argument, got {:?}", ty);
547                };
548                let llty = self.type_float_from_ty(*f);
549                let llvm_name = "llvm.fabs";
550                self.call_intrinsic(
551                    llvm_name,
552                    &[llty],
553                    &args.iter().map(|arg| arg.immediate()).collect::<Vec<_>>(),
554                )
555            }
556
557            sym::raw_eq => {
558                use BackendRepr::*;
559                let tp_ty = fn_args.type_at(0);
560                let layout = self.layout_of(tp_ty).layout;
561                let use_integer_compare = match layout.backend_repr() {
562                    Scalar(_) | ScalarPair(_, _) => true,
563                    SimdVector { .. } => false,
564                    SimdScalableVector { .. } => {
565                        let err = tcx.dcx().emit_err(InvalidMonomorphization::NonScalableType {
566                            span,
567                            name: sym::raw_eq,
568                            ty: tp_ty,
569                        });
570                        return IntrinsicResult::Err(err);
571                    }
572                    Memory { .. } => {
573                        // For rusty ABIs, small aggregates are actually passed
574                        // as `RegKind::Integer` (see `FnAbi::adjust_for_abi`),
575                        // so we re-use that same threshold here.
576                        layout.size() <= self.data_layout().pointer_size() * 2
577                    }
578                };
579
580                let a = args[0].immediate();
581                let b = args[1].immediate();
582                if layout.size().bytes() == 0 {
583                    self.const_bool(true)
584                } else if use_integer_compare {
585                    let integer_ty = self.type_ix(layout.size().bits());
586                    let a_val = self.load(integer_ty, a, layout.align().abi);
587                    let b_val = self.load(integer_ty, b, layout.align().abi);
588                    self.icmp(IntPredicate::IntEQ, a_val, b_val)
589                } else {
590                    let n = self.const_usize(layout.size().bytes());
591                    let cmp = self.call_intrinsic("memcmp", &[], &[a, b, n]);
592                    self.icmp(IntPredicate::IntEQ, cmp, self.const_int(self.type_int(), 0))
593                }
594            }
595
596            sym::compare_bytes => {
597                // Here we assume that the `memcmp` provided by the target is a NOP for size 0.
598                let cmp = self.call_intrinsic(
599                    "memcmp",
600                    &[],
601                    &[args[0].immediate(), args[1].immediate(), args[2].immediate()],
602                );
603                // Some targets have `memcmp` returning `i16`, but the intrinsic is always `i32`.
604                self.sext(cmp, self.type_ix(32))
605            }
606
607            sym::black_box => {
608                let result = PlaceRef {
609                    val: result_place.unwrap(),
610                    layout: result_layout,
611                };
612                args[0].val.store(self, result);
613                let result_val_span = [result.val.llval];
614                // We need to "use" the argument in some way LLVM can't introspect, and on
615                // targets that support it we can typically leverage inline assembly to do
616                // this. LLVM's interpretation of inline assembly is that it's, well, a black
617                // box. This isn't the greatest implementation since it probably deoptimizes
618                // more than we want, but it's so far good enough.
619                //
620                // For zero-sized types, the location pointed to by the result may be
621                // uninitialized. Do not "use" the result in this case; instead just clobber
622                // the memory.
623                let (constraint, inputs): (&str, &[_]) = if result.layout.is_zst() {
624                    ("~{memory}", &[])
625                } else {
626                    ("r,~{memory}", &result_val_span)
627                };
628                crate::asm::inline_asm_call(
629                    self,
630                    "",
631                    constraint,
632                    inputs,
633                    self.type_void(),
634                    &[],
635                    true,
636                    false,
637                    llvm::AsmDialect::Att,
638                    &[span],
639                    false,
640                    None,
641                    None,
642                )
643                .unwrap_or_else(|| ::rustc_middle::util::bug::bug_fmt(format_args!("failed to generate inline asm call for `black_box`"))bug!("failed to generate inline asm call for `black_box`"));
644
645                // We have copied the value to `result` already.
646                return IntrinsicResult::WroteIntoPlace;
647            }
648
649            sym::gpu_launch_sized_workgroup_mem => {
650                // Generate an anonymous global per call, with these properties:
651                // 1. The global is in the address space for workgroup memory
652                // 2. It is an `external` global
653                // 3. It is correctly aligned for the pointee `T`
654                // All instances of extern addrspace(gpu_workgroup) globals are merged in the LLVM backend.
655                // The name is irrelevant.
656                // See https://docs.nvidia.com/cuda/cuda-c-programming-guide/#shared
657                let name = if llvm_version < (23, 0, 0) && tcx.sess.target.arch == Arch::Nvptx64 {
658                    // The auto-assigned name for extern shared globals in the nvptx backend does
659                    // not compile in ptxas. Workaround this issue by assigning a name.
660                    // Fixed in LLVM 23.
661                    "gpu_launch_sized_workgroup_mem"
662                } else {
663                    ""
664                };
665                let global = self.declare_global_in_addrspace(
666                    name,
667                    self.type_array(self.type_i8(), 0),
668                    AddressSpace::GPU_WORKGROUP,
669                );
670                let ty::RawPtr(inner_ty, _) = result_layout.ty.kind() else { ::core::panicking::panic("internal error: entered unreachable code")unreachable!() };
671                // The alignment of the global is used to specify the *minimum* alignment that
672                // must be obeyed by the GPU runtime.
673                // When multiple of these global variables are used by a kernel, the maximum alignment is taken.
674                // See https://github.com/llvm/llvm-project/blob/a271d07488a85ce677674bbe8101b10efff58c95/llvm/lib/Target/AMDGPU/AMDGPULowerModuleLDSPass.cpp#L821
675                let alignment = self.align_of(*inner_ty).bytes() as u32;
676                unsafe {
677                    // FIXME Workaround the above issue by taking maximum alignment if the global existed
678                    if tcx.sess.target.arch == Arch::Nvptx64 {
679                        if alignment > llvm::LLVMGetAlignment(global) {
680                            llvm::LLVMSetAlignment(global, alignment);
681                        }
682                    } else {
683                        llvm::LLVMSetAlignment(global, alignment);
684                    }
685                }
686                self.cx().const_pointercast(global, self.type_ptr())
687            }
688
689            sym::amdgpu_dispatch_ptr => {
690                let val = self.call_intrinsic("llvm.amdgcn.dispatch.ptr", &[], &[]);
691                // Relying on `LLVMBuildPointerCast` to produce an addrspacecast
692                self.pointercast(val, self.type_ptr())
693            }
694
695            sym::sve_tuple_create2 => {
696                {
    match self.layout_of(fn_args.type_at(0)).backend_repr {
        BackendRepr::SimdScalableVector {
            number_of_vectors: NumScalableVectors(1), .. } => {}
        ref left_val => {
            ::core::panicking::assert_matches_failed(left_val,
                "BackendRepr::SimdScalableVector\n{ number_of_vectors: NumScalableVectors(1), .. }",
                ::core::option::Option::None);
        }
    }
};assert_matches!(
697                    self.layout_of(fn_args.type_at(0)).backend_repr,
698                    BackendRepr::SimdScalableVector {
699                        number_of_vectors: NumScalableVectors(1),
700                        ..
701                    }
702                );
703                let tuple_ty = self.layout_of(fn_args.type_at(1));
704                {
    match tuple_ty.backend_repr {
        BackendRepr::SimdScalableVector {
            number_of_vectors: NumScalableVectors(2), .. } => {}
        ref left_val => {
            ::core::panicking::assert_matches_failed(left_val,
                "BackendRepr::SimdScalableVector\n{ number_of_vectors: NumScalableVectors(2), .. }",
                ::core::option::Option::None);
        }
    }
};assert_matches!(
705                    tuple_ty.backend_repr,
706                    BackendRepr::SimdScalableVector {
707                        number_of_vectors: NumScalableVectors(2),
708                        ..
709                    }
710                );
711                let ret = self.const_poison(self.backend_type(tuple_ty));
712                let ret = self.insert_value(ret, args[0].immediate(), 0);
713                self.insert_value(ret, args[1].immediate(), 1)
714            }
715
716            sym::sve_tuple_create3 => {
717                {
    match self.layout_of(fn_args.type_at(0)).backend_repr {
        BackendRepr::SimdScalableVector {
            number_of_vectors: NumScalableVectors(1), .. } => {}
        ref left_val => {
            ::core::panicking::assert_matches_failed(left_val,
                "BackendRepr::SimdScalableVector\n{ number_of_vectors: NumScalableVectors(1), .. }",
                ::core::option::Option::None);
        }
    }
};assert_matches!(
718                    self.layout_of(fn_args.type_at(0)).backend_repr,
719                    BackendRepr::SimdScalableVector {
720                        number_of_vectors: NumScalableVectors(1),
721                        ..
722                    }
723                );
724                let tuple_ty = self.layout_of(fn_args.type_at(1));
725                {
    match tuple_ty.backend_repr {
        BackendRepr::SimdScalableVector {
            number_of_vectors: NumScalableVectors(3), .. } => {}
        ref left_val => {
            ::core::panicking::assert_matches_failed(left_val,
                "BackendRepr::SimdScalableVector\n{ number_of_vectors: NumScalableVectors(3), .. }",
                ::core::option::Option::None);
        }
    }
};assert_matches!(
726                    tuple_ty.backend_repr,
727                    BackendRepr::SimdScalableVector {
728                        number_of_vectors: NumScalableVectors(3),
729                        ..
730                    }
731                );
732                let ret = self.const_poison(self.backend_type(tuple_ty));
733                let ret = self.insert_value(ret, args[0].immediate(), 0);
734                let ret = self.insert_value(ret, args[1].immediate(), 1);
735                self.insert_value(ret, args[2].immediate(), 2)
736            }
737
738            sym::sve_tuple_create4 => {
739                {
    match self.layout_of(fn_args.type_at(0)).backend_repr {
        BackendRepr::SimdScalableVector {
            number_of_vectors: NumScalableVectors(1), .. } => {}
        ref left_val => {
            ::core::panicking::assert_matches_failed(left_val,
                "BackendRepr::SimdScalableVector\n{ number_of_vectors: NumScalableVectors(1), .. }",
                ::core::option::Option::None);
        }
    }
};assert_matches!(
740                    self.layout_of(fn_args.type_at(0)).backend_repr,
741                    BackendRepr::SimdScalableVector {
742                        number_of_vectors: NumScalableVectors(1),
743                        ..
744                    }
745                );
746                let tuple_ty = self.layout_of(fn_args.type_at(1));
747                {
    match tuple_ty.backend_repr {
        BackendRepr::SimdScalableVector {
            number_of_vectors: NumScalableVectors(4), .. } => {}
        ref left_val => {
            ::core::panicking::assert_matches_failed(left_val,
                "BackendRepr::SimdScalableVector\n{ number_of_vectors: NumScalableVectors(4), .. }",
                ::core::option::Option::None);
        }
    }
};assert_matches!(
748                    tuple_ty.backend_repr,
749                    BackendRepr::SimdScalableVector {
750                        number_of_vectors: NumScalableVectors(4),
751                        ..
752                    }
753                );
754                let ret = self.const_poison(self.backend_type(tuple_ty));
755                let ret = self.insert_value(ret, args[0].immediate(), 0);
756                let ret = self.insert_value(ret, args[1].immediate(), 1);
757                let ret = self.insert_value(ret, args[2].immediate(), 2);
758                self.insert_value(ret, args[3].immediate(), 3)
759            }
760
761            sym::sve_tuple_get => {
762                {
    match self.layout_of(fn_args.type_at(0)).backend_repr {
        BackendRepr::SimdScalableVector {
            number_of_vectors: NumScalableVectors(2 | 3 | 4 | 5 | 6 | 7 | 8),
            .. } => {}
        ref left_val => {
            ::core::panicking::assert_matches_failed(left_val,
                "BackendRepr::SimdScalableVector\n{ number_of_vectors: NumScalableVectors(2 | 3 | 4 | 5 | 6 | 7 | 8), .. }",
                ::core::option::Option::None);
        }
    }
};assert_matches!(
763                    self.layout_of(fn_args.type_at(0)).backend_repr,
764                    BackendRepr::SimdScalableVector {
765                        number_of_vectors: NumScalableVectors(2 | 3 | 4 | 5 | 6 | 7 | 8),
766                        ..
767                    }
768                );
769                {
    match self.layout_of(fn_args.type_at(1)).backend_repr {
        BackendRepr::SimdScalableVector {
            number_of_vectors: NumScalableVectors(1), .. } => {}
        ref left_val => {
            ::core::panicking::assert_matches_failed(left_val,
                "BackendRepr::SimdScalableVector\n{ number_of_vectors: NumScalableVectors(1), .. }",
                ::core::option::Option::None);
        }
    }
};assert_matches!(
770                    self.layout_of(fn_args.type_at(1)).backend_repr,
771                    BackendRepr::SimdScalableVector {
772                        number_of_vectors: NumScalableVectors(1),
773                        ..
774                    }
775                );
776                self.extract_value(
777                    args[0].immediate(),
778                    fn_args.const_at(2).to_leaf().to_i32() as u64,
779                )
780            }
781
782            sym::sve_tuple_set => {
783                {
    match self.layout_of(fn_args.type_at(0)).backend_repr {
        BackendRepr::SimdScalableVector {
            number_of_vectors: NumScalableVectors(2 | 3 | 4 | 5 | 6 | 7 | 8),
            .. } => {}
        ref left_val => {
            ::core::panicking::assert_matches_failed(left_val,
                "BackendRepr::SimdScalableVector\n{ number_of_vectors: NumScalableVectors(2 | 3 | 4 | 5 | 6 | 7 | 8), .. }",
                ::core::option::Option::None);
        }
    }
};assert_matches!(
784                    self.layout_of(fn_args.type_at(0)).backend_repr,
785                    BackendRepr::SimdScalableVector {
786                        number_of_vectors: NumScalableVectors(2 | 3 | 4 | 5 | 6 | 7 | 8),
787                        ..
788                    }
789                );
790                {
    match self.layout_of(fn_args.type_at(1)).backend_repr {
        BackendRepr::SimdScalableVector {
            number_of_vectors: NumScalableVectors(1), .. } => {}
        ref left_val => {
            ::core::panicking::assert_matches_failed(left_val,
                "BackendRepr::SimdScalableVector\n{ number_of_vectors: NumScalableVectors(1), .. }",
                ::core::option::Option::None);
        }
    }
};assert_matches!(
791                    self.layout_of(fn_args.type_at(1)).backend_repr,
792                    BackendRepr::SimdScalableVector {
793                        number_of_vectors: NumScalableVectors(1),
794                        ..
795                    }
796                );
797                self.insert_value(
798                    args[0].immediate(),
799                    args[1].immediate(),
800                    fn_args.const_at(2).to_leaf().to_i32() as u64,
801                )
802            }
803
804            _ if name.as_str().starts_with("simd_") => {
805                // Unpack non-power-of-2 #[repr(packed, simd)] arguments.
806                // This gives them the expected layout of a regular #[repr(simd)] vector.
807                let mut loaded_args = Vec::new();
808                for arg in args {
809                    loaded_args.push(
810                        // #[repr(packed, simd)] vectors are passed like arrays (as references,
811                        // with reduced alignment and no padding) rather than as immediates.
812                        // We can use a vector load to fix the layout and turn the argument
813                        // into an immediate.
814                        if arg.layout.ty.is_simd()
815                            && let OperandValue::Ref(place) = arg.val
816                        {
817                            let (size, elem_ty) = arg.layout.ty.simd_size_and_type(self.tcx());
818                            let elem_ll_ty = match elem_ty.kind() {
819                                ty::Float(f) => self.type_float_from_ty(*f),
820                                ty::Int(i) => self.type_int_from_ty(*i),
821                                ty::Uint(u) => self.type_uint_from_ty(*u),
822                                ty::RawPtr(_, _) => self.type_ptr(),
823                                _ => ::core::panicking::panic("internal error: entered unreachable code")unreachable!(),
824                            };
825                            let loaded =
826                                self.load_from_place(self.type_vector(elem_ll_ty, size), place);
827                            OperandRef::from_immediate_or_packed_pair(self, loaded, arg.layout)
828                        } else {
829                            *arg
830                        },
831                    );
832                }
833
834                let llret_ty = if result_layout.ty.is_simd()
835                    && let BackendRepr::Memory { .. } = result_layout.backend_repr
836                {
837                    let (size, elem_ty) = result_layout.ty.simd_size_and_type(self.tcx());
838                    let elem_ll_ty = match elem_ty.kind() {
839                        ty::Float(f) => self.type_float_from_ty(*f),
840                        ty::Int(i) => self.type_int_from_ty(*i),
841                        ty::Uint(u) => self.type_uint_from_ty(*u),
842                        ty::RawPtr(_, _) => self.type_ptr(),
843                        _ => ::core::panicking::panic("internal error: entered unreachable code")unreachable!(),
844                    };
845                    self.type_vector(elem_ll_ty, size)
846                } else {
847                    result_layout.llvm_type(self)
848                };
849
850                match generic_simd_intrinsic(
851                    self,
852                    name,
853                    fn_args,
854                    &loaded_args,
855                    result_layout.ty,
856                    llret_ty,
857                    span,
858                ) {
859                    Ok(llval) => llval,
860                    // If there was an error, just skip this invocation... we'll abort compilation
861                    // anyway, but we can keep codegen'ing to find more errors.
862                    Err(err) => return IntrinsicResult::Err(err),
863                }
864            }
865
866            sym::return_address => {
867                match self.sess().target.arch {
868                    // Expand this list as needed
869                    | Arch::Wasm32
870                    | Arch::Wasm64 => {
871                        let ty = self.type_ptr();
872                        self.const_null(ty)
873                    }
874                    _ => {
875                        let ty = self.type_ix(32);
876                        let val = self.const_int(ty, 0);
877
878                        let type_params: &[&'ll Type] = if llvm_version < (23, 0, 0) {
879                            &[]
880                        } else {
881                            &[self.type_ptr()]
882                        };
883
884                        self.call_intrinsic("llvm.returnaddress", type_params, &[val])
885                    }
886                }
887            }
888
889            _ => {
890                {
    use ::tracing::__macro_support::Callsite as _;
    static __CALLSITE: ::tracing::callsite::DefaultCallsite =
        {
            static META: ::tracing::Metadata<'static> =
                {
                    ::tracing_core::metadata::Metadata::new("event compiler/rustc_codegen_llvm/src/intrinsic.rs:890",
                        "rustc_codegen_llvm::intrinsic", ::tracing::Level::DEBUG,
                        ::tracing_core::__macro_support::Option::Some("compiler/rustc_codegen_llvm/src/intrinsic.rs"),
                        ::tracing_core::__macro_support::Option::Some(890u32),
                        ::tracing_core::__macro_support::Option::Some("rustc_codegen_llvm::intrinsic"),
                        ::tracing_core::field::FieldSet::new(&["message"],
                            ::tracing_core::callsite::Identifier(&__CALLSITE)),
                        ::tracing::metadata::Kind::EVENT)
                };
            ::tracing::callsite::DefaultCallsite::new(&META)
        };
    let enabled =
        ::tracing::Level::DEBUG <= ::tracing::level_filters::STATIC_MAX_LEVEL
                &&
                ::tracing::Level::DEBUG <=
                    ::tracing::level_filters::LevelFilter::current() &&
            {
                let interest = __CALLSITE.interest();
                !interest.is_never() &&
                    ::tracing::__macro_support::__is_enabled(__CALLSITE.metadata(),
                        interest)
            };
    if enabled {
        (|value_set: ::tracing::field::ValueSet|
                    {
                        let meta = __CALLSITE.metadata();
                        ::tracing::Event::dispatch(meta, &value_set);
                        ;
                    })({
                #[allow(unused_imports)]
                use ::tracing::field::{debug, display, Value};
                let mut iter = __CALLSITE.metadata().fields().iter();
                __CALLSITE.metadata().fields().value_set(&[(&::tracing::__macro_support::Iterator::next(&mut iter).expect("FieldSet corrupted (this is a bug)"),
                                    ::tracing::__macro_support::Option::Some(&format_args!("unknown intrinsic \'{0}\' -- falling back to default body",
                                                    name) as &dyn Value))])
            });
    } else { ; }
};debug!("unknown intrinsic '{}' -- falling back to default body", name);
891                // Call the fallback body instead of generating the intrinsic code
892                let fallback = ty::Instance::new_raw(instance.def_id(), instance.args);
893                return IntrinsicResult::Fallback(fallback);
894            }
895        };
896
897        if let BackendRepr::Memory { .. } = result_layout.backend_repr {
898            // We have an llvm immediate, but that's not what cg_ssa expects,
899            // so write it into the place (that always exists for memory)
900            if !result_layout.is_zst() {
901                self.store_to_place(llval, result_place.unwrap());
902            }
903            IntrinsicResult::WroteIntoPlace
904        } else {
905            IntrinsicResult::Operand(
906                OperandRef::from_immediate_or_packed_pair(self, llval, result_layout).val,
907            )
908        }
909    }
910
911    fn codegen_llvm_intrinsic_call(
912        &mut self,
913        instance: ty::Instance<'tcx>,
914        args: &[OperandRef<'tcx, Self::Value>],
915        _is_cleanup: bool,
916    ) -> Self::Value {
917        let tcx = self.tcx();
918
919        let fn_ty = instance.ty(tcx, self.typing_env());
920        let fn_sig = match *fn_ty.kind() {
921            ty::FnDef(def_id, args) => tcx.instantiate_bound_regions_with_erased(
922                tcx.fn_sig(def_id).instantiate(tcx, args).skip_norm_wip(),
923            ),
924            _ => ::core::panicking::panic("internal error: entered unreachable code")unreachable!(),
925        };
926        if !!fn_sig.c_variadic() {
    ::core::panicking::panic("assertion failed: !fn_sig.c_variadic()")
};assert!(!fn_sig.c_variadic());
927
928        let ret_layout = self.layout_of(fn_sig.output());
929        let llreturn_ty = if ret_layout.is_zst() {
930            self.type_void()
931        } else {
932            ret_layout.immediate_llvm_type(self)
933        };
934
935        let mut llargument_tys = Vec::with_capacity(fn_sig.inputs().len());
936        for &arg in fn_sig.inputs() {
937            let arg_layout = self.layout_of(arg);
938            if arg_layout.is_zst() {
939                continue;
940            }
941            llargument_tys.push(arg_layout.immediate_llvm_type(self));
942        }
943
944        let fn_ptr = if let Some(&llfn) = self.intrinsic_instances.borrow().get(&instance) {
945            llfn
946        } else {
947            let sym = tcx.symbol_name(instance).name;
948
949            let llfn = if let Some(llfn) = self.get_declared_value(sym) {
950                llfn
951            } else {
952                intrinsic_fn(self, sym, llreturn_ty, llargument_tys, instance)
953            };
954
955            self.intrinsic_instances.borrow_mut().insert(instance, llfn);
956
957            llfn
958        };
959        let fn_ty = self.get_type_of_global(fn_ptr);
960
961        let mut llargs = ::alloc::vec::Vec::new()vec![];
962
963        for arg in args {
964            match arg.val {
965                OperandValue::ZeroSized => {}
966                OperandValue::Immediate(a) => llargs.push(a),
967                OperandValue::Pair(a, b) => {
968                    llargs.push(a);
969                    llargs.push(b);
970                }
971                OperandValue::Ref(op_place_val) => {
972                    let mut llval = op_place_val.llval;
973                    // We can't use `PlaceRef::load` here because the argument
974                    // may have a type we don't treat as immediate, but the ABI
975                    // used for this call is passing it by-value. In that case,
976                    // the load would just produce `OperandValue::Ref` instead
977                    // of the `OperandValue::Immediate` we need for the call.
978                    llval = self.load(self.backend_type(arg.layout), llval, op_place_val.align);
979                    if let BackendRepr::Scalar(scalar) = arg.layout.backend_repr {
980                        if scalar.is_bool() {
981                            self.range_metadata(llval, WrappingRange { start: 0, end: 1 });
982                        }
983                        // We store bools as `i8` so we need to truncate to `i1`.
984                        llval = self.to_immediate_scalar(llval, scalar);
985                    }
986                    llargs.push(llval);
987                }
988            }
989        }
990
991        {
    use ::tracing::__macro_support::Callsite as _;
    static __CALLSITE: ::tracing::callsite::DefaultCallsite =
        {
            static META: ::tracing::Metadata<'static> =
                {
                    ::tracing_core::metadata::Metadata::new("event compiler/rustc_codegen_llvm/src/intrinsic.rs:991",
                        "rustc_codegen_llvm::intrinsic", ::tracing::Level::DEBUG,
                        ::tracing_core::__macro_support::Option::Some("compiler/rustc_codegen_llvm/src/intrinsic.rs"),
                        ::tracing_core::__macro_support::Option::Some(991u32),
                        ::tracing_core::__macro_support::Option::Some("rustc_codegen_llvm::intrinsic"),
                        ::tracing_core::field::FieldSet::new(&["message"],
                            ::tracing_core::callsite::Identifier(&__CALLSITE)),
                        ::tracing::metadata::Kind::EVENT)
                };
            ::tracing::callsite::DefaultCallsite::new(&META)
        };
    let enabled =
        ::tracing::Level::DEBUG <= ::tracing::level_filters::STATIC_MAX_LEVEL
                &&
                ::tracing::Level::DEBUG <=
                    ::tracing::level_filters::LevelFilter::current() &&
            {
                let interest = __CALLSITE.interest();
                !interest.is_never() &&
                    ::tracing::__macro_support::__is_enabled(__CALLSITE.metadata(),
                        interest)
            };
    if enabled {
        (|value_set: ::tracing::field::ValueSet|
                    {
                        let meta = __CALLSITE.metadata();
                        ::tracing::Event::dispatch(meta, &value_set);
                        ;
                    })({
                #[allow(unused_imports)]
                use ::tracing::field::{debug, display, Value};
                let mut iter = __CALLSITE.metadata().fields().iter();
                __CALLSITE.metadata().fields().value_set(&[(&::tracing::__macro_support::Iterator::next(&mut iter).expect("FieldSet corrupted (this is a bug)"),
                                    ::tracing::__macro_support::Option::Some(&format_args!("call intrinsic {0:?} with args ({1:?})",
                                                    instance, llargs) as &dyn Value))])
            });
    } else { ; }
};debug!("call intrinsic {:?} with args ({:?})", instance, llargs);
992
993        for (dest_ty, arg) in iter::zip(self.func_params_types(fn_ty), &mut llargs) {
994            let src_ty = self.val_ty(arg);
995            if !can_autocast(self, src_ty, dest_ty) {
    {
        ::core::panicking::panic_fmt(format_args!("Cannot match `{0:?}` (expected) with {1:?} (found) in `{2:?}",
                dest_ty, src_ty, fn_ptr));
    }
};assert!(
996                can_autocast(self, src_ty, dest_ty),
997                "Cannot match `{dest_ty:?}` (expected) with {src_ty:?} (found) in `{fn_ptr:?}"
998            );
999
1000            *arg = autocast(self, arg, src_ty, dest_ty);
1001        }
1002
1003        let llret = unsafe {
1004            llvm::LLVMBuildCallWithOperandBundles(
1005                self.llbuilder,
1006                fn_ty,
1007                fn_ptr,
1008                llargs.as_ptr(),
1009                llargs.len() as c_uint,
1010                ptr::dangling(),
1011                0,
1012                c"".as_ptr(),
1013            )
1014        };
1015
1016        let src_ty = self.val_ty(llret);
1017        let dest_ty = llreturn_ty;
1018        if !can_autocast(self, dest_ty, src_ty) {
    {
        ::core::panicking::panic_fmt(format_args!("Cannot match `{0:?}` (expected) with `{1:?}` (found) in `{2:?}`",
                src_ty, dest_ty, fn_ptr));
    }
};assert!(
1019            can_autocast(self, dest_ty, src_ty),
1020            "Cannot match `{src_ty:?}` (expected) with `{dest_ty:?}` (found) in `{fn_ptr:?}`"
1021        );
1022
1023        autocast(self, llret, src_ty, dest_ty)
1024    }
1025
1026    fn abort(&mut self) {
1027        self.call_intrinsic("llvm.trap", &[], &[]);
1028    }
1029
1030    fn assume(&mut self, val: Self::Value) {
1031        if self.cx.sess().opts.optimize != rustc_session::config::OptLevel::No {
1032            self.call_intrinsic("llvm.assume", &[], &[val]);
1033        }
1034    }
1035
1036    fn expect(&mut self, cond: Self::Value, expected: bool) -> Self::Value {
1037        if self.cx.sess().opts.optimize != rustc_session::config::OptLevel::No {
1038            self.call_intrinsic(
1039                "llvm.expect",
1040                &[self.type_i1()],
1041                &[cond, self.const_bool(expected)],
1042            )
1043        } else {
1044            cond
1045        }
1046    }
1047
1048    fn type_checked_load(
1049        &mut self,
1050        llvtable: &'ll Value,
1051        vtable_byte_offset: u64,
1052        typeid: &[u8],
1053    ) -> Self::Value {
1054        let typeid = self.create_metadata(typeid);
1055        let typeid = self.get_metadata_value(typeid);
1056        let vtable_byte_offset = self.const_i32(vtable_byte_offset as i32);
1057        let type_checked_load = self.call_intrinsic(
1058            "llvm.type.checked.load",
1059            &[],
1060            &[llvtable, vtable_byte_offset, typeid],
1061        );
1062        self.extract_value(type_checked_load, 0)
1063    }
1064
1065    fn va_start(&mut self, va_list: &'ll Value) {
1066        self.call_intrinsic("llvm.va_start", &[self.val_ty(va_list)], &[va_list]);
1067    }
1068
1069    fn retag_reg(&mut self, ptr: Self::Value, info: &RetagInfo<Self::Value>) -> Self::Value {
1070        codegen_retag_inner(self, "__rust_retag_reg", ptr, info)
1071    }
1072
1073    fn retag_mem(&mut self, ptr: Self::Value, info: &RetagInfo<Self::Value>) {
1074        codegen_retag_inner(self, "__rust_retag_mem", ptr, info);
1075    }
1076}
1077
1078fn llvm_arch_for(rust_arch: &Arch) -> Option<&'static str> {
1079    Some(match rust_arch {
1080        Arch::AArch64 | Arch::Arm64EC => "aarch64",
1081        Arch::AmdGpu => "amdgcn",
1082        Arch::Arm => "arm",
1083        Arch::Bpf => "bpf",
1084        Arch::Hexagon => "hexagon",
1085        Arch::LoongArch32 | Arch::LoongArch64 => "loongarch",
1086        Arch::Mips | Arch::Mips32r6 | Arch::Mips64 | Arch::Mips64r6 => "mips",
1087        Arch::Nvptx64 => "nvvm",
1088        Arch::PowerPC | Arch::PowerPC64 => "ppc",
1089        Arch::RiscV32 | Arch::RiscV64 => "riscv",
1090        Arch::S390x => "s390",
1091        Arch::SpirV => "spv",
1092        Arch::Wasm32 | Arch::Wasm64 => "wasm",
1093        Arch::X86 | Arch::X86_64 => "x86",
1094        _ => return None, // fallback for unknown archs
1095    })
1096}
1097
1098fn can_autocast<'ll>(cx: &CodegenCx<'ll, '_>, rust_ty: &'ll Type, llvm_ty: &'ll Type) -> bool {
1099    if rust_ty == llvm_ty {
1100        return true;
1101    }
1102
1103    match cx.type_kind(llvm_ty) {
1104        // Some LLVM intrinsics return **non-packed** structs, but they can't be mimicked from Rust
1105        // due to auto field-alignment in non-packed structs (packed structs are represented in LLVM
1106        // as, well, packed structs, so they won't match with those either)
1107        TypeKind::Struct if cx.type_kind(rust_ty) == TypeKind::Struct => {
1108            let rust_element_tys = cx.struct_element_types(rust_ty);
1109            let llvm_element_tys = cx.struct_element_types(llvm_ty);
1110
1111            if rust_element_tys.len() != llvm_element_tys.len() {
1112                return false;
1113            }
1114
1115            iter::zip(rust_element_tys, llvm_element_tys).all(
1116                |(rust_element_ty, llvm_element_ty)| {
1117                    can_autocast(cx, rust_element_ty, llvm_element_ty)
1118                },
1119            )
1120        }
1121        TypeKind::Vector => {
1122            let llvm_element_ty = cx.element_type(llvm_ty);
1123            let element_count = cx.vector_length(llvm_ty) as u64;
1124
1125            if llvm_element_ty == cx.type_bf16() {
1126                rust_ty == cx.type_vector(cx.type_i16(), element_count)
1127            } else if llvm_element_ty == cx.type_i1() {
1128                let int_width = element_count.next_power_of_two().max(8);
1129                rust_ty == cx.type_ix(int_width)
1130            } else {
1131                false
1132            }
1133        }
1134        TypeKind::BFloat => rust_ty == cx.type_i16(),
1135        TypeKind::X86_AMX if cx.type_kind(rust_ty) == TypeKind::Vector => {
1136            let element_ty = cx.element_type(rust_ty);
1137            let element_count = cx.vector_length(rust_ty) as u64;
1138
1139            let element_size_bits = match cx.type_kind(element_ty) {
1140                TypeKind::Half => 16,
1141                TypeKind::Float => 32,
1142                TypeKind::Double => 64,
1143                TypeKind::FP128 => 128,
1144                TypeKind::Integer => cx.int_width(element_ty),
1145                TypeKind::Pointer => cx.int_width(cx.isize_ty),
1146                _ => ::rustc_middle::util::bug::bug_fmt(format_args!("Vector element type `{0:?}` not one of integer, float or pointer",
        element_ty))bug!(
1147                    "Vector element type `{element_ty:?}` not one of integer, float or pointer"
1148                ),
1149            };
1150
1151            element_size_bits * element_count == 8192
1152        }
1153        _ => false,
1154    }
1155}
1156
1157fn autocast<'ll>(
1158    bx: &mut Builder<'_, 'll, '_>,
1159    val: &'ll Value,
1160    src_ty: &'ll Type,
1161    dest_ty: &'ll Type,
1162) -> &'ll Value {
1163    if src_ty == dest_ty {
1164        return val;
1165    }
1166    match (bx.type_kind(src_ty), bx.type_kind(dest_ty)) {
1167        // re-pack structs
1168        (TypeKind::Struct, TypeKind::Struct) => {
1169            let mut ret = bx.const_poison(dest_ty);
1170            for (idx, (src_element_ty, dest_element_ty)) in
1171                iter::zip(bx.struct_element_types(src_ty), bx.struct_element_types(dest_ty))
1172                    .enumerate()
1173            {
1174                let elt = bx.extract_value(val, idx as u64);
1175                let casted_elt = autocast(bx, elt, src_element_ty, dest_element_ty);
1176                ret = bx.insert_value(ret, casted_elt, idx as u64);
1177            }
1178            ret
1179        }
1180        // cast from the i1xN vector type to the primitive type
1181        (TypeKind::Vector, TypeKind::Integer) if bx.element_type(src_ty) == bx.type_i1() => {
1182            let vector_length = bx.vector_length(src_ty) as u64;
1183            let int_width = vector_length.next_power_of_two().max(8);
1184
1185            let val = if vector_length == int_width {
1186                val
1187            } else {
1188                // zero-extends vector
1189                let shuffle_indices = match vector_length {
1190                    0 => {
    ::core::panicking::panic_fmt(format_args!("internal error: entered unreachable code: {0}",
            format_args!("zero length vectors are not allowed")));
}unreachable!("zero length vectors are not allowed"),
1191                    1 => ::alloc::boxed::box_assume_init_into_vec_unsafe(::alloc::intrinsics::write_box_via_move(::alloc::boxed::Box::new_uninit(),
        [0, 1, 1, 1, 1, 1, 1, 1]))vec![0, 1, 1, 1, 1, 1, 1, 1],
1192                    2 => ::alloc::boxed::box_assume_init_into_vec_unsafe(::alloc::intrinsics::write_box_via_move(::alloc::boxed::Box::new_uninit(),
        [0, 1, 2, 2, 2, 2, 2, 2]))vec![0, 1, 2, 2, 2, 2, 2, 2],
1193                    3 => ::alloc::boxed::box_assume_init_into_vec_unsafe(::alloc::intrinsics::write_box_via_move(::alloc::boxed::Box::new_uninit(),
        [0, 1, 2, 3, 3, 3, 3, 3]))vec![0, 1, 2, 3, 3, 3, 3, 3],
1194                    4.. => (0..int_width as i32).collect(),
1195                };
1196                let shuffle_mask =
1197                    shuffle_indices.into_iter().map(|i| bx.const_i32(i)).collect::<Vec<_>>();
1198                bx.shuffle_vector(val, bx.const_null(src_ty), bx.const_vector(&shuffle_mask))
1199            };
1200            bx.bitcast(val, dest_ty)
1201        }
1202        // cast from the primitive type to the i1xN vector type
1203        (TypeKind::Integer, TypeKind::Vector) if bx.element_type(dest_ty) == bx.type_i1() => {
1204            let vector_length = bx.vector_length(dest_ty) as u64;
1205            let int_width = vector_length.next_power_of_two().max(8);
1206
1207            let intermediate_ty = bx.type_vector(bx.type_i1(), int_width);
1208            let intermediate = bx.bitcast(val, intermediate_ty);
1209
1210            if vector_length == int_width {
1211                intermediate
1212            } else {
1213                let shuffle_mask: Vec<_> =
1214                    (0..vector_length).map(|i| bx.const_i32(i as i32)).collect();
1215                bx.shuffle_vector(
1216                    intermediate,
1217                    bx.const_poison(intermediate_ty),
1218                    bx.const_vector(&shuffle_mask),
1219                )
1220            }
1221        }
1222        (TypeKind::Vector, TypeKind::X86_AMX) => {
1223            bx.call_intrinsic("llvm.x86.cast.vector.to.tile", &[src_ty], &[val])
1224        }
1225        (TypeKind::X86_AMX, TypeKind::Vector) => {
1226            bx.call_intrinsic("llvm.x86.cast.tile.to.vector", &[dest_ty], &[val])
1227        }
1228        _ => bx.bitcast(val, dest_ty), // for `bf16(xN)` <-> `u16(xN)`
1229    }
1230}
1231
1232fn intrinsic_fn<'ll, 'tcx>(
1233    bx: &Builder<'_, 'll, 'tcx>,
1234    name: &str,
1235    rust_return_ty: &'ll Type,
1236    rust_argument_tys: Vec<&'ll Type>,
1237    instance: ty::Instance<'tcx>,
1238) -> &'ll Value {
1239    let tcx = bx.tcx;
1240
1241    let rust_fn_ty = bx.type_func(&rust_argument_tys, rust_return_ty);
1242
1243    let intrinsic = llvm::Intrinsic::lookup(name.as_bytes());
1244
1245    if let Some(intrinsic) = intrinsic
1246        && intrinsic.is_target_specific()
1247    {
1248        let (llvm_arch, _) = name[5..].split_once('.').unwrap();
1249        let rust_arch = &tcx.sess.target.arch;
1250
1251        if let Some(correct_llvm_arch) = llvm_arch_for(rust_arch)
1252            && llvm_arch != correct_llvm_arch
1253        {
1254            tcx.dcx().emit_fatal(IntrinsicWrongArch {
1255                name,
1256                target_arch: rust_arch.desc(),
1257                span: tcx.def_span(instance.def_id()),
1258            });
1259        }
1260    }
1261
1262    if let Some(intrinsic) = intrinsic
1263        && !intrinsic.is_overloaded()
1264    {
1265        // FIXME: also do this for overloaded intrinsics
1266        let llfn = intrinsic.get_declaration(bx.llmod, &[]);
1267        let llvm_fn_ty = bx.get_type_of_global(llfn);
1268
1269        let llvm_return_ty = bx.get_return_type(llvm_fn_ty);
1270        let llvm_argument_tys = bx.func_params_types(llvm_fn_ty);
1271        let llvm_is_variadic = bx.func_is_variadic(llvm_fn_ty);
1272
1273        let is_correct_signature = !llvm_is_variadic
1274            && rust_argument_tys.len() == llvm_argument_tys.len()
1275            && iter::once((rust_return_ty, llvm_return_ty))
1276                .chain(iter::zip(rust_argument_tys, llvm_argument_tys))
1277                .all(|(rust_ty, llvm_ty)| can_autocast(bx, rust_ty, llvm_ty));
1278
1279        if !is_correct_signature {
1280            tcx.dcx().emit_fatal(IntrinsicSignatureMismatch {
1281                name,
1282                llvm_fn_ty: &::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("{0:?}", llvm_fn_ty))
    })format!("{llvm_fn_ty:?}"),
1283                rust_fn_ty: &::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("{0:?}", rust_fn_ty))
    })format!("{rust_fn_ty:?}"),
1284                span: tcx.def_span(instance.def_id()),
1285            });
1286        }
1287
1288        return llfn;
1289    }
1290
1291    // Function addresses in Rust are never significant, allowing functions to be merged.
1292    let llfn = declare_raw_fn(
1293        bx,
1294        name,
1295        llvm::CCallConv,
1296        llvm::UnnamedAddr::Global,
1297        llvm::Visibility::Default,
1298        rust_fn_ty,
1299    );
1300
1301    if intrinsic.is_none() {
1302        let mut new_llfn = None;
1303        let can_upgrade = unsafe { llvm::LLVMRustUpgradeIntrinsicFunction(llfn, &mut new_llfn) };
1304
1305        if !can_upgrade {
1306            // This is either plain wrong, or this can be caused by incompatible LLVM versions
1307            tcx.dcx().emit_fatal(UnknownIntrinsic { name, span: tcx.def_span(instance.def_id()) });
1308        } else if let Some(def_id) = instance.def_id().as_local() {
1309            // we can emit diagnostics only for local crates
1310            let hir_id = tcx.local_def_id_to_hir_id(def_id);
1311
1312            // not all intrinsics are upgraded to some other intrinsics, most are upgraded to instruction sequences
1313            let msg = if let Some(new_llfn) = new_llfn {
1314                ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("using deprecated intrinsic `{1}`, `{0}` can be used instead",
                str::from_utf8(&llvm::get_value_name(new_llfn)).unwrap(),
                name))
    })format!(
1315                    "using deprecated intrinsic `{name}`, `{}` can be used instead",
1316                    str::from_utf8(&llvm::get_value_name(new_llfn)).unwrap()
1317                )
1318            } else {
1319                ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("using deprecated intrinsic `{0}`",
                name))
    })format!("using deprecated intrinsic `{name}`")
1320            };
1321
1322            tcx.emit_node_lint(
1323                DEPRECATED_LLVM_INTRINSIC,
1324                hir_id,
1325                rustc_errors::DiagDecorator(|d| {
1326                    d.primary_message(msg).span(tcx.hir_span(hir_id));
1327                }),
1328            );
1329        }
1330    }
1331
1332    llfn
1333}
1334
1335fn catch_unwind_intrinsic<'ll, 'tcx>(
1336    bx: &mut Builder<'_, 'll, 'tcx>,
1337    try_func: &'ll Value,
1338    data: &'ll Value,
1339    catch_func: &'ll Value,
1340) -> &'ll Value {
1341    if !bx.sess().panic_strategy().unwinds() {
1342        let try_func_ty = bx.type_func(&[bx.type_ptr()], bx.type_void());
1343        bx.call(try_func_ty, None, None, try_func, &[data], None, None);
1344        // Return 0 unconditionally from the intrinsic call;
1345        // we can never unwind.
1346        bx.const_bool(false)
1347    } else if wants_msvc_seh(bx.sess()) {
1348        codegen_msvc_try(bx, try_func, data, catch_func)
1349    } else if wants_wasm_eh(bx.sess()) {
1350        codegen_wasm_try(bx, try_func, data, catch_func)
1351    } else {
1352        codegen_gnu_try(bx, try_func, data, catch_func)
1353    }
1354}
1355
1356// MSVC's definition of the `rust_try` function.
1357//
1358// This implementation uses the new exception handling instructions in LLVM
1359// which have support in LLVM for SEH on MSVC targets. Although these
1360// instructions are meant to work for all targets, as of the time of this
1361// writing, however, LLVM does not recommend the usage of these new instructions
1362// as the old ones are still more optimized.
1363fn codegen_msvc_try<'ll, 'tcx>(
1364    bx: &mut Builder<'_, 'll, 'tcx>,
1365    try_func: &'ll Value,
1366    data: &'ll Value,
1367    catch_func: &'ll Value,
1368) -> &'ll Value {
1369    let (llty, llfn) = get_rust_try_fn(bx, &mut |mut bx| {
1370        bx.set_personality_fn(bx.eh_personality());
1371
1372        let normal = bx.append_sibling_block("normal");
1373        let catchswitch = bx.append_sibling_block("catchswitch");
1374        let catchpad_rust = bx.append_sibling_block("catchpad_rust");
1375        let catchpad_foreign = bx.append_sibling_block("catchpad_foreign");
1376        let caught = bx.append_sibling_block("caught");
1377
1378        let try_func = llvm::get_param(bx.llfn(), 0);
1379        let data = llvm::get_param(bx.llfn(), 1);
1380        let catch_func = llvm::get_param(bx.llfn(), 2);
1381
1382        // We're generating an IR snippet that looks like:
1383        //
1384        //   declare bool @rust_try(%try_func, %data, %catch_func) {
1385        //      %slot = alloca i8*
1386        //      invoke %try_func(%data) to label %normal unwind label %catchswitch
1387        //
1388        //   normal:
1389        //      ret i1 false
1390        //
1391        //   catchswitch:
1392        //      %cs = catchswitch within none [%catchpad_rust, %catchpad_foreign] unwind to caller
1393        //
1394        //   catchpad_rust:
1395        //      %tok = catchpad within %cs [%type_descriptor, 8, %slot]
1396        //      %ptr = load %slot
1397        //      call %catch_func(%data, %ptr)
1398        //      catchret from %tok to label %caught
1399        //
1400        //   catchpad_foreign:
1401        //      %tok = catchpad within %cs [null, 64, null]
1402        //      call %catch_func(%data, null)
1403        //      catchret from %tok to label %caught
1404        //
1405        //   caught:
1406        //      ret i1 true
1407        //   }
1408        //
1409        // This structure follows the basic usage of throw/try/catch in LLVM.
1410        // For example, compile this C++ snippet to see what LLVM generates:
1411        //
1412        //      struct rust_panic {
1413        //          rust_panic(const rust_panic&);
1414        //          ~rust_panic();
1415        //
1416        //          void* x[2];
1417        //      };
1418        //
1419        //      int __rust_try(
1420        //          void (*try_func)(void*),
1421        //          void *data,
1422        //          void (*catch_func)(void*, void*) noexcept
1423        //      ) {
1424        //          try {
1425        //              try_func(data);
1426        //              return 0;
1427        //          } catch(rust_panic& a) {
1428        //              catch_func(data, &a);
1429        //              return 1;
1430        //          } catch(...) {
1431        //              catch_func(data, NULL);
1432        //              return 1;
1433        //          }
1434        //      }
1435        //
1436        // More information can be found in libstd's seh.rs implementation.
1437        let ptr_size = bx.tcx().data_layout.pointer_size();
1438        let ptr_align = bx.tcx().data_layout.pointer_align().abi;
1439        let slot = bx.alloca(ptr_size, ptr_align);
1440        let try_func_ty = bx.type_func(&[bx.type_ptr()], bx.type_void());
1441        bx.invoke(try_func_ty, None, None, try_func, &[data], normal, catchswitch, None, None);
1442
1443        bx.switch_to_block(normal);
1444        bx.ret(bx.const_bool(false));
1445
1446        bx.switch_to_block(catchswitch);
1447        let cs = bx.catch_switch(None, None, &[catchpad_rust, catchpad_foreign]);
1448
1449        // We can't use the TypeDescriptor defined in libpanic_unwind because it
1450        // might be in another DLL and the SEH encoding only supports specifying
1451        // a TypeDescriptor from the current module.
1452        //
1453        // However this isn't an issue since the MSVC runtime uses string
1454        // comparison on the type name to match TypeDescriptors rather than
1455        // pointer equality.
1456        //
1457        // So instead we generate a new TypeDescriptor in each module that uses
1458        // `try` and let the linker merge duplicate definitions in the same
1459        // module.
1460        //
1461        // When modifying, make sure that the type_name string exactly matches
1462        // the one used in library/panic_unwind/src/seh.rs.
1463        let type_info_vtable = bx.declare_global("??_7type_info@@6B@", bx.type_ptr());
1464        let type_name = bx.const_bytes(b"rust_panic\0");
1465        let type_info =
1466            bx.const_struct(&[type_info_vtable, bx.const_null(bx.type_ptr()), type_name], false);
1467        let tydesc = bx.declare_global(
1468            &mangle_internal_symbol(bx.tcx, "__rust_panic_type_info"),
1469            bx.val_ty(type_info),
1470        );
1471
1472        llvm::set_linkage(tydesc, llvm::Linkage::LinkOnceODRLinkage);
1473        if bx.cx.tcx.sess.target.supports_comdat() {
1474            llvm::SetUniqueComdat(bx.llmod, tydesc);
1475        }
1476        llvm::set_initializer(tydesc, type_info);
1477
1478        // The flag value of 8 indicates that we are catching the exception by
1479        // reference instead of by value. We can't use catch by value because
1480        // that requires copying the exception object, which we don't support
1481        // since our exception object effectively contains a Box.
1482        //
1483        // Source: MicrosoftCXXABI::getAddrOfCXXCatchHandlerType in clang
1484        bx.switch_to_block(catchpad_rust);
1485        let flags = bx.const_i32(8);
1486        let funclet = bx.catch_pad(cs, &[tydesc, flags, slot]);
1487        let ptr = bx.load(bx.type_ptr(), slot, ptr_align);
1488        let catch_ty = bx.type_func(&[bx.type_ptr(), bx.type_ptr()], bx.type_void());
1489        bx.call(catch_ty, None, None, catch_func, &[data, ptr], Some(&funclet), None);
1490        bx.catch_ret(&funclet, caught);
1491
1492        // The flag value of 64 indicates a "catch-all".
1493        bx.switch_to_block(catchpad_foreign);
1494        let flags = bx.const_i32(64);
1495        let null = bx.const_null(bx.type_ptr());
1496        let funclet = bx.catch_pad(cs, &[null, flags, null]);
1497        bx.call(catch_ty, None, None, catch_func, &[data, null], Some(&funclet), None);
1498        bx.catch_ret(&funclet, caught);
1499
1500        bx.switch_to_block(caught);
1501        bx.ret(bx.const_bool(true));
1502    });
1503
1504    // Note that no invoke is used here because by definition this function
1505    // can't panic (that's what it's catching).
1506    let ret = bx.call(llty, None, None, llfn, &[try_func, data, catch_func], None, None);
1507    ret
1508}
1509
1510// WASM's definition of the `rust_try` function.
1511fn codegen_wasm_try<'ll, 'tcx>(
1512    bx: &mut Builder<'_, 'll, 'tcx>,
1513    try_func: &'ll Value,
1514    data: &'ll Value,
1515    catch_func: &'ll Value,
1516) -> &'ll Value {
1517    let (llty, llfn) = get_rust_try_fn(bx, &mut |mut bx| {
1518        bx.set_personality_fn(bx.eh_personality());
1519
1520        let normal = bx.append_sibling_block("normal");
1521        let catchswitch = bx.append_sibling_block("catchswitch");
1522        let catchpad = bx.append_sibling_block("catchpad");
1523        let caught = bx.append_sibling_block("caught");
1524
1525        let try_func = llvm::get_param(bx.llfn(), 0);
1526        let data = llvm::get_param(bx.llfn(), 1);
1527        let catch_func = llvm::get_param(bx.llfn(), 2);
1528
1529        // We're generating an IR snippet that looks like:
1530        //
1531        //   declare i1 @rust_try(%try_func, %data, %catch_func) {
1532        //      %slot = alloca i8*
1533        //      invoke %try_func(%data) to label %normal unwind label %catchswitch
1534        //
1535        //   normal:
1536        //      ret i1 false
1537        //
1538        //   catchswitch:
1539        //      %cs = catchswitch within none [%catchpad] unwind to caller
1540        //
1541        //   catchpad:
1542        //      %tok = catchpad within %cs [null]
1543        //      %ptr = call @llvm.wasm.get.exception(token %tok)
1544        //      %sel = call @llvm.wasm.get.ehselector(token %tok)
1545        //      call %catch_func(%data, %ptr)
1546        //      catchret from %tok to label %caught
1547        //
1548        //   caught:
1549        //      ret i1 true
1550        //   }
1551        //
1552        let try_func_ty = bx.type_func(&[bx.type_ptr()], bx.type_void());
1553        bx.invoke(try_func_ty, None, None, try_func, &[data], normal, catchswitch, None, None);
1554
1555        bx.switch_to_block(normal);
1556        bx.ret(bx.const_bool(false));
1557
1558        bx.switch_to_block(catchswitch);
1559        let cs = bx.catch_switch(None, None, &[catchpad]);
1560
1561        bx.switch_to_block(catchpad);
1562        let null = bx.const_null(bx.type_ptr());
1563        let funclet = bx.catch_pad(cs, &[null]);
1564
1565        let ptr = bx.call_intrinsic("llvm.wasm.get.exception", &[], &[funclet.cleanuppad()]);
1566        let _sel = bx.call_intrinsic("llvm.wasm.get.ehselector", &[], &[funclet.cleanuppad()]);
1567
1568        let catch_ty = bx.type_func(&[bx.type_ptr(), bx.type_ptr()], bx.type_void());
1569        bx.call(catch_ty, None, None, catch_func, &[data, ptr], Some(&funclet), None);
1570        bx.catch_ret(&funclet, caught);
1571
1572        bx.switch_to_block(caught);
1573        bx.ret(bx.const_bool(true));
1574    });
1575
1576    // Note that no invoke is used here because by definition this function
1577    // can't panic (that's what it's catching).
1578    let ret = bx.call(llty, None, None, llfn, &[try_func, data, catch_func], None, None);
1579    ret
1580}
1581
1582// Definition of the standard `try` function for Rust using the GNU-like model
1583// of exceptions (e.g., the normal semantics of LLVM's `landingpad` and `invoke`
1584// instructions).
1585//
1586// This codegen is a little surprising because we always call a shim
1587// function instead of inlining the call to `invoke` manually here. This is done
1588// because in LLVM we're only allowed to have one personality per function
1589// definition. The call to the `try` intrinsic is being inlined into the
1590// function calling it, and that function may already have other personality
1591// functions in play. By calling a shim we're guaranteed that our shim will have
1592// the right personality function.
1593fn codegen_gnu_try<'ll, 'tcx>(
1594    bx: &mut Builder<'_, 'll, 'tcx>,
1595    try_func: &'ll Value,
1596    data: &'ll Value,
1597    catch_func: &'ll Value,
1598) -> &'ll Value {
1599    let (llty, llfn) = get_rust_try_fn(bx, &mut |mut bx| {
1600        // Codegens the shims described above:
1601        //
1602        //   bx:
1603        //      invoke %try_func(%data) normal %normal unwind %catch
1604        //
1605        //   normal:
1606        //      ret 0
1607        //
1608        //   catch:
1609        //      (%ptr, _) = landingpad
1610        //      call %catch_func(%data, %ptr)
1611        //      ret 1
1612        let then = bx.append_sibling_block("then");
1613        let catch = bx.append_sibling_block("catch");
1614
1615        let try_func = llvm::get_param(bx.llfn(), 0);
1616        let data = llvm::get_param(bx.llfn(), 1);
1617        let catch_func = llvm::get_param(bx.llfn(), 2);
1618        let try_func_ty = bx.type_func(&[bx.type_ptr()], bx.type_void());
1619        bx.invoke(try_func_ty, None, None, try_func, &[data], then, catch, None, None);
1620
1621        bx.switch_to_block(then);
1622        bx.ret(bx.const_bool(false));
1623
1624        // Type indicator for the exception being thrown.
1625        //
1626        // The first value in this tuple is a pointer to the exception object
1627        // being thrown. The second value is a "selector" indicating which of
1628        // the landing pad clauses the exception's type had been matched to.
1629        // rust_try ignores the selector.
1630        bx.switch_to_block(catch);
1631        let lpad_ty = bx.type_struct(&[bx.type_ptr(), bx.type_i32()], false);
1632        let vals = bx.landing_pad(lpad_ty, bx.eh_personality(), 1);
1633        let tydesc = bx.const_null(bx.type_ptr());
1634        bx.add_clause(vals, tydesc);
1635        let ptr = bx.extract_value(vals, 0);
1636        let catch_ty = bx.type_func(&[bx.type_ptr(), bx.type_ptr()], bx.type_void());
1637        bx.call(catch_ty, None, None, catch_func, &[data, ptr], None, None);
1638        bx.ret(bx.const_bool(true));
1639    });
1640
1641    // Note that no invoke is used here because by definition this function
1642    // can't panic (that's what it's catching).
1643    let ret = bx.call(llty, None, None, llfn, &[try_func, data, catch_func], None, None);
1644    ret
1645}
1646
1647// Helper function to give a Block to a closure to codegen a shim function.
1648// This is currently primarily used for the `try` intrinsic functions above.
1649fn gen_fn<'a, 'll, 'tcx>(
1650    cx: &'a CodegenCx<'ll, 'tcx>,
1651    name: &str,
1652    rust_fn_sig: ty::PolyFnSig<'tcx>,
1653    codegen: &mut dyn FnMut(Builder<'a, 'll, 'tcx>),
1654) -> (&'ll Type, &'ll Value) {
1655    let fn_abi = cx.fn_abi_of_fn_ptr(rust_fn_sig, ty::List::empty());
1656    let llty = fn_abi.llvm_type(cx);
1657    let llfn = cx.declare_fn(name, fn_abi, None);
1658    cx.set_frame_pointer_type(llfn);
1659    cx.apply_target_cpu_attr(llfn);
1660    // FIXME(eddyb) find a nicer way to do this.
1661    llvm::set_linkage(llfn, llvm::Linkage::InternalLinkage);
1662    let llbb = Builder::append_block(cx, llfn, "entry-block");
1663    let bx = Builder::build(cx, llbb);
1664    codegen(bx);
1665    (llty, llfn)
1666}
1667
1668// Helper function used to get a handle to the `__rust_try` function used to
1669// catch exceptions.
1670//
1671// This function is only generated once and is then cached.
1672fn get_rust_try_fn<'a, 'll, 'tcx>(
1673    cx: &'a CodegenCx<'ll, 'tcx>,
1674    codegen: &mut dyn FnMut(Builder<'a, 'll, 'tcx>),
1675) -> (&'ll Type, &'ll Value) {
1676    if let Some(llfn) = cx.rust_try_fn.get() {
1677        return llfn;
1678    }
1679
1680    // Define the type up front for the signature of the rust_try function.
1681    let tcx = cx.tcx;
1682    let i8p = Ty::new_mut_ptr(tcx, tcx.types.i8);
1683    // `unsafe fn(*mut Data) -> ()`
1684    let try_fn_ty = Ty::new_fn_ptr(
1685        tcx,
1686        ty::Binder::dummy(tcx.mk_fn_sig_rust_abi([i8p], tcx.types.unit, hir::Safety::Unsafe)),
1687    );
1688    // `unsafe fn(*mut Data, *mut i8) -> ()`
1689    let catch_fn_ty = Ty::new_fn_ptr(
1690        tcx,
1691        ty::Binder::dummy(tcx.mk_fn_sig_rust_abi([i8p, i8p], tcx.types.unit, hir::Safety::Unsafe)),
1692    );
1693    // `unsafe fn(unsafe fn(*mut Data) -> (), *mut Data, unsafe fn(*mut Data, *mut i8) -> ()) -> bool`
1694    let rust_fn_sig = ty::Binder::dummy(cx.tcx.mk_fn_sig_rust_abi(
1695        [try_fn_ty, i8p, catch_fn_ty],
1696        tcx.types.bool,
1697        hir::Safety::Unsafe,
1698    ));
1699    let rust_try = gen_fn(cx, "__rust_try", rust_fn_sig, codegen);
1700    cx.rust_try_fn.set(Some(rust_try));
1701    rust_try
1702}
1703
1704fn codegen_retag_inner<'ll, 'tcx>(
1705    bx: &mut Builder<'_, 'll, 'tcx>,
1706    name: &'static str,
1707    ptr: &'ll Value,
1708    info: &RetagInfo<&'ll Value>,
1709) -> &'ll Value {
1710    let size = bx.const_usize(info.size.bytes());
1711    let perms = bx.const_u8(info.flags.bits());
1712
1713    bx.call_intrinsic(
1714        name,
1715        // Retag intrinsics have special handling within `CodegenCx::declare_intrinsic`
1716        // to ensure that each form has the correct return type.
1717        &[bx.type_ptr(), bx.val_ty(size), bx.type_i8(), bx.type_ptr(), bx.type_ptr()],
1718        &[ptr, size, perms, info.im_layout, info.pin_layout],
1719    )
1720}
1721
1722fn codegen_autodiff<'ll, 'tcx>(
1723    bx: &mut Builder<'_, 'll, 'tcx>,
1724    tcx: TyCtxt<'tcx>,
1725    instance: ty::Instance<'tcx>,
1726    args: &[OperandRef<'tcx, &'ll Value>],
1727    result_layout: ty::layout::TyAndLayout<'tcx>,
1728    result_place: Option<PlaceValue<&'ll Value>>,
1729) -> IntrinsicResult<'tcx, &'ll Value> {
1730    if !tcx.sess.opts.unstable_opts.autodiff.contains(&rustc_session::config::AutoDiff::Enable) {
1731        let _ = tcx.dcx().emit_almost_fatal(AutoDiffWithoutEnable);
1732    }
1733
1734    let ct = tcx.crate_types();
1735    let lto = tcx.sess.lto();
1736    if ct.len() == 1 && ct.contains(&CrateType::Executable) {
1737        if lto != rustc_session::config::Lto::Fat {
1738            let _ = tcx.dcx().emit_almost_fatal(AutoDiffWithoutLto);
1739        }
1740    } else {
1741        if lto != rustc_session::config::Lto::Fat && !tcx.sess.opts.cg.linker_plugin_lto.enabled() {
1742            let _ = tcx.dcx().emit_almost_fatal(AutoDiffWithoutLto);
1743        }
1744    }
1745
1746    let fn_args = instance.args;
1747    let callee_ty = instance.ty(tcx, bx.typing_env());
1748
1749    let sig = callee_ty.fn_sig(tcx).skip_binder();
1750
1751    let ret_ty = sig.output();
1752    let llret_ty = bx.layout_of(ret_ty).llvm_type(bx);
1753
1754    let source_fn_ptr_ty = fn_args.into_type_list(tcx)[0];
1755    let fn_to_diff = args[0].immediate();
1756
1757    let (diff_id, diff_args) = match fn_args.into_type_list(tcx)[1].kind() {
1758        ty::FnDef(def_id, diff_args) => (def_id, diff_args),
1759        _ => ::rustc_middle::util::bug::bug_fmt(format_args!("invalid args"))bug!("invalid args"),
1760    };
1761
1762    let fn_diff = match Instance::try_resolve(tcx, bx.cx.typing_env(), *diff_id, diff_args) {
1763        Ok(Some(instance)) => instance,
1764        Ok(None) => ::rustc_middle::util::bug::bug_fmt(format_args!("could not resolve ({0:?}, {1:?}) to a specific autodiff instance",
        diff_id, diff_args))bug!(
1765            "could not resolve ({:?}, {:?}) to a specific autodiff instance",
1766            diff_id,
1767            diff_args
1768        ),
1769        Err(err) => {
1770            // An error has already been emitted
1771            return IntrinsicResult::Err(err);
1772        }
1773    };
1774
1775    let val_arr = get_args_from_tuple(bx, args[2], fn_diff);
1776    let diff_symbol = symbol_name_for_instance_in_crate(tcx, fn_diff.clone(), LOCAL_CRATE);
1777
1778    let Some(Some(mut diff_attrs)) =
1779        {
    {
        'done:
            {
            for i in
                ::rustc_hir::attrs::HasAttrs::get_attrs(fn_diff.def_id(),
                    &tcx) {
                #[allow(unused_imports)]
                use rustc_hir::attrs::AttributeKind::*;
                let i: &rustc_hir::Attribute = i;
                match i {
                    rustc_hir::Attribute::Parsed(RustcAutodiff(attr)) => {
                        break 'done Some(attr.clone());
                    }
                    rustc_hir::Attribute::Unparsed(..) =>
                        {}
                        #[deny(unreachable_patterns)]
                        _ => {}
                }
            }
            None
        }
    }
}find_attr!(tcx, fn_diff.def_id(), RustcAutodiff(attr) => attr.clone())
1780    else {
1781        ::rustc_middle::util::bug::bug_fmt(format_args!("could not find autodiff attrs"))bug!("could not find autodiff attrs")
1782    };
1783
1784    adjust_activity_to_abi(
1785        tcx,
1786        source_fn_ptr_ty,
1787        TypingEnv::fully_monomorphized(),
1788        &mut diff_attrs.input_activity,
1789    );
1790
1791    let fnc_tree = fnc_typetrees(tcx, source_fn_ptr_ty);
1792
1793    // Build body
1794    generate_enzyme_call(
1795        bx,
1796        bx.cx,
1797        fn_to_diff,
1798        &diff_symbol,
1799        llret_ty,
1800        &val_arr,
1801        &diff_attrs,
1802        result_layout,
1803        result_place,
1804        fnc_tree,
1805    )
1806}
1807
1808// Generates the LLVM code to offload a Rust function to a target device (e.g., GPU).
1809// For each kernel call, it generates the necessary globals (including metadata such as
1810// size and pass mode), manages memory mapping to and from the device, handles all
1811// data transfers, and launches the kernel on the target device.
1812fn codegen_offload<'ll, 'tcx>(
1813    bx: &mut Builder<'_, 'll, 'tcx>,
1814    tcx: TyCtxt<'tcx>,
1815    instance: ty::Instance<'tcx>,
1816    args: &[OperandRef<'tcx, &'ll Value>],
1817) {
1818    let cx = bx.cx;
1819    let fn_args = instance.args;
1820
1821    let (target_id, target_args) = match fn_args.into_type_list(tcx)[0].kind() {
1822        ty::FnDef(def_id, params) => (def_id, params),
1823        _ => ::rustc_middle::util::bug::bug_fmt(format_args!("invalid offload intrinsic arg"))bug!("invalid offload intrinsic arg"),
1824    };
1825
1826    let fn_target = match Instance::try_resolve(tcx, cx.typing_env(), *target_id, target_args) {
1827        Ok(Some(instance)) => instance,
1828        Ok(None) => ::rustc_middle::util::bug::bug_fmt(format_args!("could not resolve ({0:?}, {1:?}) to a specific offload instance",
        target_id, target_args))bug!(
1829            "could not resolve ({:?}, {:?}) to a specific offload instance",
1830            target_id,
1831            target_args
1832        ),
1833        Err(_) => {
1834            // An error has already been emitted
1835            return;
1836        }
1837    };
1838
1839    let offload_dims = OffloadKernelDims::from_operands(bx, &args[1], &args[2]);
1840    let dyn_cache = match args[3].val {
1841        OperandValue::Immediate(val) => val,
1842        _ => { ::core::panicking::panic_fmt(format_args!("unparsable")); }panic!("unparsable"),
1843    };
1844    let args = get_args_from_tuple(bx, args[4], fn_target);
1845    let target_symbol = symbol_name_for_instance_in_crate(tcx, fn_target, LOCAL_CRATE);
1846
1847    let sig = tcx.fn_sig(fn_target.def_id()).skip_binder();
1848    let sig = tcx.instantiate_bound_regions_with_erased(sig);
1849    let inputs = sig.inputs();
1850
1851    let fn_abi = cx.fn_abi_of_instance(fn_target, ty::List::empty());
1852
1853    let mut metadata = Vec::new();
1854    let mut types = Vec::new();
1855
1856    for (i, arg_abi) in fn_abi.args.iter().enumerate() {
1857        let ty = inputs[i];
1858        let decomposed = OffloadMetadata::handle_abi(cx, tcx, ty, arg_abi);
1859
1860        for (meta, entry_ty) in decomposed {
1861            metadata.push(meta);
1862            types.push(bx.cx.layout_of(entry_ty).llvm_type(bx.cx));
1863        }
1864    }
1865
1866    let offload_globals_ref = cx.offload_globals.borrow();
1867    let offload_globals = match offload_globals_ref.as_ref() {
1868        Some(globals) => globals,
1869        None => {
1870            // Offload is not initialized, cannot continue
1871            return;
1872        }
1873    };
1874    register_offload(cx);
1875    let offload_data = gen_define_handling(&cx, &metadata, target_symbol, offload_globals);
1876    gen_call_handling(
1877        bx,
1878        &offload_data,
1879        &args,
1880        &types,
1881        &metadata,
1882        offload_globals,
1883        &offload_dims,
1884        &dyn_cache,
1885    );
1886}
1887
1888fn get_args_from_tuple<'ll, 'tcx>(
1889    bx: &mut Builder<'_, 'll, 'tcx>,
1890    tuple_op: OperandRef<'tcx, &'ll Value>,
1891    fn_instance: Instance<'tcx>,
1892) -> Vec<&'ll Value> {
1893    let cx = bx.cx;
1894    let fn_abi = cx.fn_abi_of_instance(fn_instance, ty::List::empty());
1895
1896    match tuple_op.val {
1897        OperandValue::Immediate(val) => ::alloc::boxed::box_assume_init_into_vec_unsafe(::alloc::intrinsics::write_box_via_move(::alloc::boxed::Box::new_uninit(),
        [val]))vec![val],
1898        OperandValue::Pair(v1, v2) => ::alloc::boxed::box_assume_init_into_vec_unsafe(::alloc::intrinsics::write_box_via_move(::alloc::boxed::Box::new_uninit(),
        [v1, v2]))vec![v1, v2],
1899        OperandValue::Ref(ptr) => {
1900            let tuple_place = PlaceRef { val: ptr, layout: tuple_op.layout };
1901
1902            let mut result = Vec::with_capacity(fn_abi.args.len());
1903            let mut tuple_index = 0;
1904
1905            for arg in &fn_abi.args {
1906                match arg.mode {
1907                    PassMode::Ignore => {}
1908                    PassMode::Direct(_) | PassMode::Cast { .. } => {
1909                        let field = tuple_place.project_field(bx, tuple_index);
1910                        let llvm_ty = field.layout.llvm_type(bx.cx);
1911                        let val = bx.load(llvm_ty, field.val.llval, field.val.align);
1912                        result.push(val);
1913                        tuple_index += 1;
1914                    }
1915                    PassMode::Pair(_, _) => {
1916                        let field = tuple_place.project_field(bx, tuple_index);
1917                        let llvm_ty = field.layout.llvm_type(bx.cx);
1918                        let pair_val = bx.load(llvm_ty, field.val.llval, field.val.align);
1919                        result.push(bx.extract_value(pair_val, 0));
1920                        result.push(bx.extract_value(pair_val, 1));
1921                        tuple_index += 1;
1922                    }
1923                    PassMode::Indirect { .. } => {
1924                        let field = tuple_place.project_field(bx, tuple_index);
1925                        result.push(field.val.llval);
1926                        tuple_index += 1;
1927                    }
1928                }
1929            }
1930
1931            result
1932        }
1933
1934        OperandValue::ZeroSized => ::alloc::vec::Vec::new()vec![],
1935    }
1936}
1937
1938fn generic_simd_intrinsic<'ll, 'tcx>(
1939    bx: &mut Builder<'_, 'll, 'tcx>,
1940    name: Symbol,
1941    fn_args: GenericArgsRef<'tcx>,
1942    args: &[OperandRef<'tcx, &'ll Value>],
1943    ret_ty: Ty<'tcx>,
1944    llret_ty: &'ll Type,
1945    span: Span,
1946) -> Result<&'ll Value, ErrorGuaranteed> {
1947    macro_rules! return_error {
1948        ($diag: expr) => {{
1949            let err = bx.sess().dcx().emit_err($diag);
1950            return Err(err);
1951        }};
1952    }
1953
1954    macro_rules! require {
1955        ($cond: expr, $diag: expr) => {
1956            if !$cond {
1957                return_error!($diag);
1958            }
1959        };
1960    }
1961
1962    macro_rules! require_simd {
1963        ($ty: expr, $variant:ident) => {{
1964            require!($ty.is_simd(), InvalidMonomorphization::$variant { span, name, ty: $ty });
1965            $ty.simd_size_and_type(bx.tcx())
1966        }};
1967    }
1968
1969    macro_rules! require_simd_or_scalable {
1970        ($ty: expr, $variant:ident) => {{
1971            require!(
1972                $ty.is_simd() || $ty.is_scalable_vector(),
1973                InvalidMonomorphization::$variant { span, name, ty: $ty }
1974            );
1975            if $ty.is_simd() {
1976                let (len, ty) = $ty.simd_size_and_type(bx.tcx());
1977                (len, ty, None)
1978            } else {
1979                let (count, ty, num_vecs) =
1980                    $ty.scalable_vector_parts(bx.tcx()).expect("`is_scalable_vector` was wrong");
1981                (count as u64, ty, Some(num_vecs))
1982            }
1983        }};
1984    }
1985
1986    /// Returns the bitwidth of the `$ty` argument if it is an `Int` or `Uint` type.
1987    macro_rules! require_int_or_uint_ty {
1988        ($ty: expr, $diag: expr) => {
1989            match $ty {
1990                ty::Int(i) => {
1991                    i.bit_width().unwrap_or_else(|| bx.data_layout().pointer_size().bits())
1992                }
1993                ty::Uint(i) => {
1994                    i.bit_width().unwrap_or_else(|| bx.data_layout().pointer_size().bits())
1995                }
1996                _ => {
1997                    return_error!($diag);
1998                }
1999            }
2000        };
2001    }
2002
2003    let llvm_version = crate::llvm_util::get_version();
2004
2005    /// Converts a vector mask, where each element has a bit width equal to the data elements it is used with,
2006    /// down to an i1 based mask that can be used by llvm intrinsics.
2007    ///
2008    /// The rust simd semantics are that each element should either consist of all ones or all zeroes,
2009    /// but this information is not available to llvm. Truncating the vector effectively uses the lowest bit,
2010    /// but codegen for several targets is better if we consider the highest bit by shifting.
2011    ///
2012    /// For x86 SSE/AVX targets this is beneficial since most instructions with mask parameters only consider the highest bit.
2013    /// So even though on llvm level we have an additional shift, in the final assembly there is no shift or truncate and
2014    /// instead the mask can be used as is.
2015    ///
2016    /// For aarch64 and other targets there is a benefit because a mask from the sign bit can be more
2017    /// efficiently converted to an all ones / all zeroes mask by comparing whether each element is negative.
2018    fn vector_mask_to_bitmask<'a, 'll, 'tcx>(
2019        bx: &mut Builder<'a, 'll, 'tcx>,
2020        i_xn: &'ll Value,
2021        in_elem_bitwidth: u64,
2022        in_len: u64,
2023    ) -> &'ll Value {
2024        // Shift the MSB to the right by "in_elem_bitwidth - 1" into the first bit position.
2025        let shift_idx = bx.cx.const_int(bx.type_ix(in_elem_bitwidth), (in_elem_bitwidth - 1) as _);
2026        let shift_indices = ::alloc::vec::from_elem(shift_idx, in_len as _)vec![shift_idx; in_len as _];
2027        let i_xn_msb = bx.lshr(i_xn, bx.const_vector(shift_indices.as_slice()));
2028        // Truncate vector to an <i1 x N>
2029        bx.trunc(i_xn_msb, bx.type_vector(bx.type_i1(), in_len))
2030    }
2031
2032    // Sanity-check: all vector arguments must be immediates.
2033    if truecfg!(debug_assertions) {
2034        for arg in args {
2035            if arg.layout.ty.is_simd() {
2036                {
    match arg.val {
        OperandValue::Immediate(_) => {}
        ref left_val => {
            ::core::panicking::assert_matches_failed(left_val,
                "OperandValue::Immediate(_)", ::core::option::Option::None);
        }
    }
};assert_matches!(arg.val, OperandValue::Immediate(_));
2037            }
2038        }
2039    }
2040
2041    if name == sym::simd_select_bitmask {
2042        let (len, _) = {
    if !args[1].layout.ty.is_simd() {
        {
            let err =
                bx.sess().dcx().emit_err(InvalidMonomorphization::SimdArgument {
                        span,
                        name,
                        ty: args[1].layout.ty,
                    });
            return Err(err);
        };
    };
    args[1].layout.ty.simd_size_and_type(bx.tcx())
}require_simd!(args[1].layout.ty, SimdArgument);
2043
2044        let expected_int_bits = len.max(8).next_power_of_two();
2045        let expected_bytes = len.div_ceil(8);
2046
2047        let mask_ty = args[0].layout.ty;
2048        let mask = match mask_ty.kind() {
2049            ty::Int(i) if i.bit_width() == Some(expected_int_bits) => args[0].immediate(),
2050            ty::Uint(i) if i.bit_width() == Some(expected_int_bits) => args[0].immediate(),
2051            ty::Array(elem, len)
2052                if #[allow(non_exhaustive_omitted_patterns)] match elem.kind() {
    ty::Uint(ty::UintTy::U8) => true,
    _ => false,
}matches!(elem.kind(), ty::Uint(ty::UintTy::U8))
2053                    && len
2054                        .try_to_target_usize(bx.tcx)
2055                        .expect("expected monomorphic const in codegen")
2056                        == expected_bytes =>
2057            {
2058                let place = PlaceRef::alloca(bx, args[0].layout);
2059                args[0].val.store(bx, place);
2060                let int_ty = bx.type_ix(expected_bytes * 8);
2061                bx.load(int_ty, place.val.llval, Align::ONE)
2062            }
2063            _ => {
    let err =
        bx.sess().dcx().emit_err(InvalidMonomorphization::InvalidBitmask {
                span,
                name,
                mask_ty,
                expected_int_bits,
                expected_bytes,
            });
    return Err(err);
}return_error!(InvalidMonomorphization::InvalidBitmask {
2064                span,
2065                name,
2066                mask_ty,
2067                expected_int_bits,
2068                expected_bytes
2069            }),
2070        };
2071
2072        let i1 = bx.type_i1();
2073        let im = bx.type_ix(len);
2074        let i1xn = bx.type_vector(i1, len);
2075        let m_im = bx.trunc(mask, im);
2076        let m_i1s = bx.bitcast(m_im, i1xn);
2077        return Ok(bx.select(m_i1s, args[1].immediate(), args[2].immediate()));
2078    }
2079
2080    if name == sym::simd_splat {
2081        let (out_len, out_ty) = {
    if !ret_ty.is_simd() {
        {
            let err =
                bx.sess().dcx().emit_err(InvalidMonomorphization::SimdReturn {
                        span,
                        name,
                        ty: ret_ty,
                    });
            return Err(err);
        };
    };
    ret_ty.simd_size_and_type(bx.tcx())
}require_simd!(ret_ty, SimdReturn);
2082
2083        if !(args[0].layout.ty == out_ty) {
    {
        let err =
            bx.sess().dcx().emit_err(InvalidMonomorphization::ExpectedVectorElementType {
                    span,
                    name,
                    expected_element: out_ty,
                    vector_type: ret_ty,
                });
        return Err(err);
    };
};require!(
2084            args[0].layout.ty == out_ty,
2085            InvalidMonomorphization::ExpectedVectorElementType {
2086                span,
2087                name,
2088                expected_element: out_ty,
2089                vector_type: ret_ty,
2090            }
2091        );
2092
2093        // `insertelement <N x elem> poison, elem %x, i32 0`
2094        let poison_vec = bx.const_poison(llret_ty);
2095        let idx0 = bx.const_i32(0);
2096        let v0 = bx.insert_element(poison_vec, args[0].immediate(), idx0);
2097
2098        // `shufflevector <N x elem> v0, <N x elem> poison, <N x i32> zeroinitializer`
2099        // The masks is all zeros, so this splats lane 0 (which has our element in it).
2100        let mask_ty = bx.type_vector(bx.type_i32(), out_len);
2101        let splat = bx.shuffle_vector(v0, poison_vec, bx.const_null(mask_ty));
2102
2103        return Ok(splat);
2104    }
2105
2106    let supports_scalable = match name {
2107        sym::simd_cast | sym::simd_select => true,
2108        _ => false,
2109    };
2110
2111    // Every intrinsic below takes a SIMD vector as its first argument. Some intrinsics also accept
2112    // scalable vectors. `require_simd_or_scalable` is used regardless as it'll do the right thing
2113    // for non-scalable vectors, and an additional check to prohibit scalable vectors for those
2114    // intrinsics that do not support them is added.
2115    if !supports_scalable {
2116        let _ = {
    if !args[0].layout.ty.is_simd() {
        {
            let err =
                bx.sess().dcx().emit_err(InvalidMonomorphization::SimdInput {
                        span,
                        name,
                        ty: args[0].layout.ty,
                    });
            return Err(err);
        };
    };
    args[0].layout.ty.simd_size_and_type(bx.tcx())
}require_simd!(args[0].layout.ty, SimdInput);
2117    }
2118    let (in_len, in_elem, in_num_vecs) = {
    if !(args[0].layout.ty.is_simd() ||
                args[0].layout.ty.is_scalable_vector()) {
        {
            let err =
                bx.sess().dcx().emit_err(InvalidMonomorphization::SimdInput {
                        span,
                        name,
                        ty: args[0].layout.ty,
                    });
            return Err(err);
        };
    };
    if args[0].layout.ty.is_simd() {
        let (len, ty) = args[0].layout.ty.simd_size_and_type(bx.tcx());
        (len, ty, None)
    } else {
        let (count, ty, num_vecs) =
            args[0].layout.ty.scalable_vector_parts(bx.tcx()).expect("`is_scalable_vector` was wrong");
        (count as u64, ty, Some(num_vecs))
    }
}require_simd_or_scalable!(args[0].layout.ty, SimdInput);
2119    let in_ty = args[0].layout.ty;
2120
2121    let comparison = match name {
2122        sym::simd_eq => Some(BinOp::Eq),
2123        sym::simd_ne => Some(BinOp::Ne),
2124        sym::simd_lt => Some(BinOp::Lt),
2125        sym::simd_le => Some(BinOp::Le),
2126        sym::simd_gt => Some(BinOp::Gt),
2127        sym::simd_ge => Some(BinOp::Ge),
2128        _ => None,
2129    };
2130
2131    if let Some(cmp_op) = comparison {
2132        let (out_len, out_ty) = {
    if !ret_ty.is_simd() {
        {
            let err =
                bx.sess().dcx().emit_err(InvalidMonomorphization::SimdReturn {
                        span,
                        name,
                        ty: ret_ty,
                    });
            return Err(err);
        };
    };
    ret_ty.simd_size_and_type(bx.tcx())
}require_simd!(ret_ty, SimdReturn);
2133
2134        if !(in_len == out_len) {
    {
        let err =
            bx.sess().dcx().emit_err(InvalidMonomorphization::ReturnLengthInputType {
                    span,
                    name,
                    in_len,
                    in_ty,
                    ret_ty,
                    out_len,
                });
        return Err(err);
    };
};require!(
2135            in_len == out_len,
2136            InvalidMonomorphization::ReturnLengthInputType {
2137                span,
2138                name,
2139                in_len,
2140                in_ty,
2141                ret_ty,
2142                out_len
2143            }
2144        );
2145        if !(bx.type_kind(bx.element_type(llret_ty)) == TypeKind::Integer) {
    {
        let err =
            bx.sess().dcx().emit_err(InvalidMonomorphization::ReturnIntegerType {
                    span,
                    name,
                    ret_ty,
                    out_ty,
                });
        return Err(err);
    };
};require!(
2146            bx.type_kind(bx.element_type(llret_ty)) == TypeKind::Integer,
2147            InvalidMonomorphization::ReturnIntegerType { span, name, ret_ty, out_ty }
2148        );
2149
2150        return Ok(compare_simd_types(
2151            bx,
2152            args[0].immediate(),
2153            args[1].immediate(),
2154            in_elem,
2155            llret_ty,
2156            cmp_op,
2157        ));
2158    }
2159
2160    if name == sym::simd_shuffle_const_generic {
2161        let idx = fn_args[2].expect_const().to_branch();
2162        let n = idx.len() as u64;
2163
2164        let (out_len, out_ty) = {
    if !ret_ty.is_simd() {
        {
            let err =
                bx.sess().dcx().emit_err(InvalidMonomorphization::SimdReturn {
                        span,
                        name,
                        ty: ret_ty,
                    });
            return Err(err);
        };
    };
    ret_ty.simd_size_and_type(bx.tcx())
}require_simd!(ret_ty, SimdReturn);
2165        if !(out_len == n) {
    {
        let err =
            bx.sess().dcx().emit_err(InvalidMonomorphization::ReturnLength {
                    span,
                    name,
                    in_len: n,
                    ret_ty,
                    out_len,
                });
        return Err(err);
    };
};require!(
2166            out_len == n,
2167            InvalidMonomorphization::ReturnLength { span, name, in_len: n, ret_ty, out_len }
2168        );
2169        if !(in_elem == out_ty) {
    {
        let err =
            bx.sess().dcx().emit_err(InvalidMonomorphization::ReturnElement {
                    span,
                    name,
                    in_elem,
                    in_ty,
                    ret_ty,
                    out_ty,
                });
        return Err(err);
    };
};require!(
2170            in_elem == out_ty,
2171            InvalidMonomorphization::ReturnElement { span, name, in_elem, in_ty, ret_ty, out_ty }
2172        );
2173
2174        let total_len = in_len * 2;
2175
2176        let indices: Option<Vec<_>> = idx
2177            .iter()
2178            .enumerate()
2179            .map(|(arg_idx, val)| {
2180                let idx = val.to_leaf().to_i32();
2181                if idx >= i32::try_from(total_len).unwrap() {
2182                    bx.sess().dcx().emit_err(InvalidMonomorphization::SimdIndexOutOfBounds {
2183                        span,
2184                        name,
2185                        arg_idx: arg_idx as u64,
2186                        total_len: total_len.into(),
2187                    });
2188                    None
2189                } else {
2190                    Some(bx.const_i32(idx))
2191                }
2192            })
2193            .collect();
2194        let Some(indices) = indices else {
2195            return Ok(bx.const_null(llret_ty));
2196        };
2197
2198        return Ok(bx.shuffle_vector(
2199            args[0].immediate(),
2200            args[1].immediate(),
2201            bx.const_vector(&indices),
2202        ));
2203    }
2204
2205    if name == sym::simd_shuffle {
2206        // Make sure this is actually a SIMD vector.
2207        let idx_ty = args[2].layout.ty;
2208        let n: u64 = if idx_ty.is_simd()
2209            && #[allow(non_exhaustive_omitted_patterns)] match idx_ty.simd_size_and_type(bx.cx.tcx).1.kind()
    {
    ty::Uint(ty::UintTy::U32) => true,
    _ => false,
}matches!(idx_ty.simd_size_and_type(bx.cx.tcx).1.kind(), ty::Uint(ty::UintTy::U32))
2210        {
2211            idx_ty.simd_size_and_type(bx.cx.tcx).0
2212        } else {
2213            {
    let err =
        bx.sess().dcx().emit_err(InvalidMonomorphization::SimdShuffle {
                span,
                name,
                ty: idx_ty,
            });
    return Err(err);
}return_error!(InvalidMonomorphization::SimdShuffle { span, name, ty: idx_ty })
2214        };
2215
2216        let (out_len, out_ty) = {
    if !ret_ty.is_simd() {
        {
            let err =
                bx.sess().dcx().emit_err(InvalidMonomorphization::SimdReturn {
                        span,
                        name,
                        ty: ret_ty,
                    });
            return Err(err);
        };
    };
    ret_ty.simd_size_and_type(bx.tcx())
}require_simd!(ret_ty, SimdReturn);
2217        if !(out_len == n) {
    {
        let err =
            bx.sess().dcx().emit_err(InvalidMonomorphization::ReturnLength {
                    span,
                    name,
                    in_len: n,
                    ret_ty,
                    out_len,
                });
        return Err(err);
    };
};require!(
2218            out_len == n,
2219            InvalidMonomorphization::ReturnLength { span, name, in_len: n, ret_ty, out_len }
2220        );
2221        if !(in_elem == out_ty) {
    {
        let err =
            bx.sess().dcx().emit_err(InvalidMonomorphization::ReturnElement {
                    span,
                    name,
                    in_elem,
                    in_ty,
                    ret_ty,
                    out_ty,
                });
        return Err(err);
    };
};require!(
2222            in_elem == out_ty,
2223            InvalidMonomorphization::ReturnElement { span, name, in_elem, in_ty, ret_ty, out_ty }
2224        );
2225
2226        let total_len = u128::from(in_len) * 2;
2227
2228        // Check that the indices are in-bounds.
2229        let indices = args[2].immediate();
2230        for i in 0..n {
2231            let val = bx.const_get_elt(indices, i as u64);
2232            let idx = bx
2233                .const_to_opt_u128(val, true)
2234                .unwrap_or_else(|| ::rustc_middle::util::bug::bug_fmt(format_args!("typeck should have already ensured that these are const"))bug!("typeck should have already ensured that these are const"));
2235            if idx >= total_len {
2236                {
    let err =
        bx.sess().dcx().emit_err(InvalidMonomorphization::SimdIndexOutOfBounds {
                span,
                name,
                arg_idx: i,
                total_len,
            });
    return Err(err);
};return_error!(InvalidMonomorphization::SimdIndexOutOfBounds {
2237                    span,
2238                    name,
2239                    arg_idx: i,
2240                    total_len,
2241                });
2242            }
2243        }
2244
2245        return Ok(bx.shuffle_vector(args[0].immediate(), args[1].immediate(), indices));
2246    }
2247
2248    if name == sym::simd_insert || name == sym::simd_insert_dyn {
2249        if !(in_elem == args[2].layout.ty) {
    {
        let err =
            bx.sess().dcx().emit_err(InvalidMonomorphization::InsertedType {
                    span,
                    name,
                    in_elem,
                    in_ty,
                    out_ty: args[2].layout.ty,
                });
        return Err(err);
    };
};require!(
2250            in_elem == args[2].layout.ty,
2251            InvalidMonomorphization::InsertedType {
2252                span,
2253                name,
2254                in_elem,
2255                in_ty,
2256                out_ty: args[2].layout.ty
2257            }
2258        );
2259
2260        let index_imm = if name == sym::simd_insert {
2261            let idx = bx
2262                .const_to_opt_u128(args[1].immediate(), false)
2263                .expect("typeck should have ensure that this is a const");
2264            if idx >= in_len.into() {
2265                {
    let err =
        bx.sess().dcx().emit_err(InvalidMonomorphization::SimdIndexOutOfBounds {
                span,
                name,
                arg_idx: 1,
                total_len: in_len.into(),
            });
    return Err(err);
};return_error!(InvalidMonomorphization::SimdIndexOutOfBounds {
2266                    span,
2267                    name,
2268                    arg_idx: 1,
2269                    total_len: in_len.into(),
2270                });
2271            }
2272            bx.const_i32(idx as i32)
2273        } else {
2274            args[1].immediate()
2275        };
2276
2277        return Ok(bx.insert_element(args[0].immediate(), args[2].immediate(), index_imm));
2278    }
2279    if name == sym::simd_extract || name == sym::simd_extract_dyn {
2280        if !(ret_ty == in_elem) {
    {
        let err =
            bx.sess().dcx().emit_err(InvalidMonomorphization::ReturnType {
                    span,
                    name,
                    in_elem,
                    in_ty,
                    ret_ty,
                });
        return Err(err);
    };
};require!(
2281            ret_ty == in_elem,
2282            InvalidMonomorphization::ReturnType { span, name, in_elem, in_ty, ret_ty }
2283        );
2284        let index_imm = if name == sym::simd_extract {
2285            let idx = bx
2286                .const_to_opt_u128(args[1].immediate(), false)
2287                .expect("typeck should have ensure that this is a const");
2288            if idx >= in_len.into() {
2289                {
    let err =
        bx.sess().dcx().emit_err(InvalidMonomorphization::SimdIndexOutOfBounds {
                span,
                name,
                arg_idx: 1,
                total_len: in_len.into(),
            });
    return Err(err);
};return_error!(InvalidMonomorphization::SimdIndexOutOfBounds {
2290                    span,
2291                    name,
2292                    arg_idx: 1,
2293                    total_len: in_len.into(),
2294                });
2295            }
2296            bx.const_i32(idx as i32)
2297        } else {
2298            args[1].immediate()
2299        };
2300
2301        return Ok(bx.extract_element(args[0].immediate(), index_imm));
2302    }
2303
2304    if name == sym::simd_select {
2305        let m_elem_ty = in_elem;
2306        let m_len = in_len;
2307        let (v_len, _, _) = {
    if !(args[1].layout.ty.is_simd() ||
                args[1].layout.ty.is_scalable_vector()) {
        {
            let err =
                bx.sess().dcx().emit_err(InvalidMonomorphization::SimdArgument {
                        span,
                        name,
                        ty: args[1].layout.ty,
                    });
            return Err(err);
        };
    };
    if args[1].layout.ty.is_simd() {
        let (len, ty) = args[1].layout.ty.simd_size_and_type(bx.tcx());
        (len, ty, None)
    } else {
        let (count, ty, num_vecs) =
            args[1].layout.ty.scalable_vector_parts(bx.tcx()).expect("`is_scalable_vector` was wrong");
        (count as u64, ty, Some(num_vecs))
    }
}require_simd_or_scalable!(args[1].layout.ty, SimdArgument);
2308        if !(m_len == v_len) {
    {
        let err =
            bx.sess().dcx().emit_err(InvalidMonomorphization::MismatchedLengths {
                    span,
                    name,
                    m_len,
                    v_len,
                });
        return Err(err);
    };
};require!(
2309            m_len == v_len,
2310            InvalidMonomorphization::MismatchedLengths { span, name, m_len, v_len }
2311        );
2312
2313        let m_i1s = if args[1].layout.ty.is_scalable_vector() {
2314            match m_elem_ty.kind() {
2315                ty::Bool => {}
2316                _ => {
    let err =
        bx.sess().dcx().emit_err(InvalidMonomorphization::MaskWrongElementType {
                span,
                name,
                ty: m_elem_ty,
            });
    return Err(err);
}return_error!(InvalidMonomorphization::MaskWrongElementType {
2317                    span,
2318                    name,
2319                    ty: m_elem_ty
2320                }),
2321            };
2322            let i1 = bx.type_i1();
2323            let i1xn = bx.type_scalable_vector(i1, m_len as u64);
2324            bx.trunc(args[0].immediate(), i1xn)
2325        } else {
2326            let in_elem_bitwidth = match m_elem_ty.kind() {
    ty::Int(i) => {
        i.bit_width().unwrap_or_else(||
                bx.data_layout().pointer_size().bits())
    }
    ty::Uint(i) => {
        i.bit_width().unwrap_or_else(||
                bx.data_layout().pointer_size().bits())
    }
    _ => {
        {
            let err =
                bx.sess().dcx().emit_err(InvalidMonomorphization::MaskWrongElementType {
                        span,
                        name,
                        ty: m_elem_ty,
                    });
            return Err(err);
        };
    }
}require_int_or_uint_ty!(
2327                m_elem_ty.kind(),
2328                InvalidMonomorphization::MaskWrongElementType { span, name, ty: m_elem_ty }
2329            );
2330            vector_mask_to_bitmask(bx, args[0].immediate(), in_elem_bitwidth, m_len)
2331        };
2332
2333        return Ok(bx.select(m_i1s, args[1].immediate(), args[2].immediate()));
2334    }
2335
2336    if name == sym::simd_bitmask {
2337        // The `fn simd_bitmask(vector) -> unsigned integer` intrinsic takes a vector mask and
2338        // returns one bit for each lane (which must all be `0` or `!0`) in the form of either:
2339        // * an unsigned integer
2340        // * an array of `u8`
2341        // If the vector has less than 8 lanes, a u8 is returned with zeroed trailing bits.
2342        //
2343        // The bit order of the result depends on the byte endianness, LSB-first for little
2344        // endian and MSB-first for big endian.
2345        let expected_int_bits = in_len.max(8).next_power_of_two();
2346        let expected_bytes = in_len.div_ceil(8);
2347
2348        // Integer vector <i{in_bitwidth} x in_len>:
2349        let in_elem_bitwidth = match in_elem.kind() {
    ty::Int(i) => {
        i.bit_width().unwrap_or_else(||
                bx.data_layout().pointer_size().bits())
    }
    ty::Uint(i) => {
        i.bit_width().unwrap_or_else(||
                bx.data_layout().pointer_size().bits())
    }
    _ => {
        {
            let err =
                bx.sess().dcx().emit_err(InvalidMonomorphization::MaskWrongElementType {
                        span,
                        name,
                        ty: in_elem,
                    });
            return Err(err);
        };
    }
}require_int_or_uint_ty!(
2350            in_elem.kind(),
2351            InvalidMonomorphization::MaskWrongElementType { span, name, ty: in_elem }
2352        );
2353
2354        let i1xn = vector_mask_to_bitmask(bx, args[0].immediate(), in_elem_bitwidth, in_len);
2355        // Bitcast <i1 x N> to iN:
2356        let i_ = bx.bitcast(i1xn, bx.type_ix(in_len));
2357
2358        match ret_ty.kind() {
2359            ty::Uint(i) if i.bit_width() == Some(expected_int_bits) => {
2360                // Zero-extend iN to the bitmask type:
2361                return Ok(bx.zext(i_, bx.type_ix(expected_int_bits)));
2362            }
2363            ty::Array(elem, len)
2364                if #[allow(non_exhaustive_omitted_patterns)] match elem.kind() {
    ty::Uint(ty::UintTy::U8) => true,
    _ => false,
}matches!(elem.kind(), ty::Uint(ty::UintTy::U8))
2365                    && len
2366                        .try_to_target_usize(bx.tcx)
2367                        .expect("expected monomorphic const in codegen")
2368                        == expected_bytes =>
2369            {
2370                // Zero-extend iN to the array length:
2371                let ze = bx.zext(i_, bx.type_ix(expected_bytes * 8));
2372
2373                // Convert the integer to a byte array
2374                let ptr = bx.alloca(Size::from_bytes(expected_bytes), Align::ONE);
2375                bx.store(ze, ptr, Align::ONE);
2376                let array_ty = bx.type_array(bx.type_i8(), expected_bytes);
2377                return Ok(bx.load(array_ty, ptr, Align::ONE));
2378            }
2379            _ => {
    let err =
        bx.sess().dcx().emit_err(InvalidMonomorphization::CannotReturn {
                span,
                name,
                ret_ty,
                expected_int_bits,
                expected_bytes,
            });
    return Err(err);
}return_error!(InvalidMonomorphization::CannotReturn {
2380                span,
2381                name,
2382                ret_ty,
2383                expected_int_bits,
2384                expected_bytes
2385            }),
2386        }
2387    }
2388
2389    fn simd_simple_float_intrinsic<'ll, 'tcx>(
2390        name: Symbol,
2391        in_elem: Ty<'_>,
2392        in_ty: Ty<'_>,
2393        in_len: u64,
2394        bx: &mut Builder<'_, 'll, 'tcx>,
2395        span: Span,
2396        args: &[OperandRef<'tcx, &'ll Value>],
2397    ) -> Result<&'ll Value, ErrorGuaranteed> {
2398        macro_rules! return_error {
2399            ($diag: expr) => {{
2400                let err = bx.sess().dcx().emit_err($diag);
2401                return Err(err);
2402            }};
2403        }
2404
2405        let ty::Float(f) = in_elem.kind() else {
2406            {
    let err =
        bx.sess().dcx().emit_err(InvalidMonomorphization::BasicFloatType {
                span,
                name,
                ty: in_ty,
            });
    return Err(err);
};return_error!(InvalidMonomorphization::BasicFloatType { span, name, ty: in_ty });
2407        };
2408        let elem_ty = bx.cx.type_float_from_ty(*f);
2409
2410        let vec_ty = bx.type_vector(elem_ty, in_len);
2411
2412        let intr_name = match name {
2413            sym::simd_ceil => "llvm.ceil",
2414            sym::simd_fabs => "llvm.fabs",
2415            sym::simd_fcos => "llvm.cos",
2416            sym::simd_fexp2 => "llvm.exp2",
2417            sym::simd_fexp => "llvm.exp",
2418            sym::simd_flog10 => "llvm.log10",
2419            sym::simd_flog2 => "llvm.log2",
2420            sym::simd_flog => "llvm.log",
2421            sym::simd_floor => "llvm.floor",
2422            sym::simd_fma => "llvm.fma",
2423            sym::simd_relaxed_fma => "llvm.fmuladd",
2424            sym::simd_fsin => "llvm.sin",
2425            sym::simd_fsqrt => "llvm.sqrt",
2426            sym::simd_round => "llvm.round",
2427            sym::simd_round_ties_even => "llvm.rint",
2428            sym::simd_trunc => "llvm.trunc",
2429            _ => {
    let err =
        bx.sess().dcx().emit_err(InvalidMonomorphization::UnrecognizedIntrinsic {
                span,
                name,
            });
    return Err(err);
}return_error!(InvalidMonomorphization::UnrecognizedIntrinsic { span, name }),
2430        };
2431        Ok(bx.call_intrinsic(
2432            intr_name,
2433            &[vec_ty],
2434            &args.iter().map(|arg| arg.immediate()).collect::<Vec<_>>(),
2435        ))
2436    }
2437
2438    if #[allow(non_exhaustive_omitted_patterns)] match name {
    sym::simd_ceil | sym::simd_fabs | sym::simd_fcos | sym::simd_fexp2 |
        sym::simd_fexp | sym::simd_flog10 | sym::simd_flog2 | sym::simd_flog |
        sym::simd_floor | sym::simd_fma | sym::simd_fsin | sym::simd_fsqrt |
        sym::simd_relaxed_fma | sym::simd_round | sym::simd_round_ties_even |
        sym::simd_trunc => true,
    _ => false,
}std::matches!(
2439        name,
2440        sym::simd_ceil
2441            | sym::simd_fabs
2442            | sym::simd_fcos
2443            | sym::simd_fexp2
2444            | sym::simd_fexp
2445            | sym::simd_flog10
2446            | sym::simd_flog2
2447            | sym::simd_flog
2448            | sym::simd_floor
2449            | sym::simd_fma
2450            | sym::simd_fsin
2451            | sym::simd_fsqrt
2452            | sym::simd_relaxed_fma
2453            | sym::simd_round
2454            | sym::simd_round_ties_even
2455            | sym::simd_trunc
2456    ) {
2457        return simd_simple_float_intrinsic(name, in_elem, in_ty, in_len, bx, span, args);
2458    }
2459
2460    fn llvm_vector_ty<'ll>(cx: &CodegenCx<'ll, '_>, elem_ty: Ty<'_>, vec_len: u64) -> &'ll Type {
2461        let elem_ty = match *elem_ty.kind() {
2462            ty::Int(v) => cx.type_int_from_ty(v),
2463            ty::Uint(v) => cx.type_uint_from_ty(v),
2464            ty::Float(v) => cx.type_float_from_ty(v),
2465            ty::RawPtr(_, _) => cx.type_ptr(),
2466            _ => ::core::panicking::panic("internal error: entered unreachable code")unreachable!(),
2467        };
2468        cx.type_vector(elem_ty, vec_len)
2469    }
2470
2471    if name == sym::simd_gather {
2472        // simd_gather(values: <N x T>, pointers: <N x *_ T>,
2473        //             mask: <N x i{M}>) -> <N x T>
2474        // * N: number of elements in the input vectors
2475        // * T: type of the element to load
2476        // * M: any integer width is supported, will be truncated to i1
2477
2478        // All types must be simd vector types
2479
2480        // The second argument must be a simd vector with an element type that's a pointer
2481        // to the element type of the first argument
2482        let (_, element_ty0) = {
    if !in_ty.is_simd() {
        {
            let err =
                bx.sess().dcx().emit_err(InvalidMonomorphization::SimdFirst {
                        span,
                        name,
                        ty: in_ty,
                    });
            return Err(err);
        };
    };
    in_ty.simd_size_and_type(bx.tcx())
}require_simd!(in_ty, SimdFirst);
2483        let (out_len, element_ty1) = {
    if !args[1].layout.ty.is_simd() {
        {
            let err =
                bx.sess().dcx().emit_err(InvalidMonomorphization::SimdSecond {
                        span,
                        name,
                        ty: args[1].layout.ty,
                    });
            return Err(err);
        };
    };
    args[1].layout.ty.simd_size_and_type(bx.tcx())
}require_simd!(args[1].layout.ty, SimdSecond);
2484        // The element type of the third argument must be a signed integer type of any width:
2485        let (out_len2, element_ty2) = {
    if !args[2].layout.ty.is_simd() {
        {
            let err =
                bx.sess().dcx().emit_err(InvalidMonomorphization::SimdThird {
                        span,
                        name,
                        ty: args[2].layout.ty,
                    });
            return Err(err);
        };
    };
    args[2].layout.ty.simd_size_and_type(bx.tcx())
}require_simd!(args[2].layout.ty, SimdThird);
2486        {
    if !ret_ty.is_simd() {
        {
            let err =
                bx.sess().dcx().emit_err(InvalidMonomorphization::SimdReturn {
                        span,
                        name,
                        ty: ret_ty,
                    });
            return Err(err);
        };
    };
    ret_ty.simd_size_and_type(bx.tcx())
};require_simd!(ret_ty, SimdReturn);
2487
2488        // Of the same length:
2489        if !(in_len == out_len) {
    {
        let err =
            bx.sess().dcx().emit_err(InvalidMonomorphization::SecondArgumentLength {
                    span,
                    name,
                    in_len,
                    in_ty,
                    arg_ty: args[1].layout.ty,
                    out_len,
                });
        return Err(err);
    };
};require!(
2490            in_len == out_len,
2491            InvalidMonomorphization::SecondArgumentLength {
2492                span,
2493                name,
2494                in_len,
2495                in_ty,
2496                arg_ty: args[1].layout.ty,
2497                out_len
2498            }
2499        );
2500        if !(in_len == out_len2) {
    {
        let err =
            bx.sess().dcx().emit_err(InvalidMonomorphization::ThirdArgumentLength {
                    span,
                    name,
                    in_len,
                    in_ty,
                    arg_ty: args[2].layout.ty,
                    out_len: out_len2,
                });
        return Err(err);
    };
};require!(
2501            in_len == out_len2,
2502            InvalidMonomorphization::ThirdArgumentLength {
2503                span,
2504                name,
2505                in_len,
2506                in_ty,
2507                arg_ty: args[2].layout.ty,
2508                out_len: out_len2
2509            }
2510        );
2511
2512        // The return type must match the first argument type
2513        if !(ret_ty == in_ty) {
    {
        let err =
            bx.sess().dcx().emit_err(InvalidMonomorphization::ExpectedReturnType {
                    span,
                    name,
                    in_ty,
                    ret_ty,
                });
        return Err(err);
    };
};require!(
2514            ret_ty == in_ty,
2515            InvalidMonomorphization::ExpectedReturnType { span, name, in_ty, ret_ty }
2516        );
2517
2518        if !#[allow(non_exhaustive_omitted_patterns)] match *element_ty1.kind() {
            ty::RawPtr(p_ty, _) if
                p_ty == in_elem && p_ty.kind() == element_ty0.kind() => true,
            _ => false,
        } {
    {
        let err =
            bx.sess().dcx().emit_err(InvalidMonomorphization::ExpectedElementType {
                    span,
                    name,
                    expected_element: element_ty1,
                    second_arg: args[1].layout.ty,
                    in_elem,
                    in_ty,
                    mutability: ExpectedPointerMutability::Not,
                });
        return Err(err);
    };
};require!(
2519            matches!(
2520                *element_ty1.kind(),
2521                ty::RawPtr(p_ty, _) if p_ty == in_elem && p_ty.kind() == element_ty0.kind()
2522            ),
2523            InvalidMonomorphization::ExpectedElementType {
2524                span,
2525                name,
2526                expected_element: element_ty1,
2527                second_arg: args[1].layout.ty,
2528                in_elem,
2529                in_ty,
2530                mutability: ExpectedPointerMutability::Not,
2531            }
2532        );
2533
2534        let mask_elem_bitwidth = match element_ty2.kind() {
    ty::Int(i) => {
        i.bit_width().unwrap_or_else(||
                bx.data_layout().pointer_size().bits())
    }
    ty::Uint(i) => {
        i.bit_width().unwrap_or_else(||
                bx.data_layout().pointer_size().bits())
    }
    _ => {
        {
            let err =
                bx.sess().dcx().emit_err(InvalidMonomorphization::MaskWrongElementType {
                        span,
                        name,
                        ty: element_ty2,
                    });
            return Err(err);
        };
    }
}require_int_or_uint_ty!(
2535            element_ty2.kind(),
2536            InvalidMonomorphization::MaskWrongElementType { span, name, ty: element_ty2 }
2537        );
2538
2539        // Alignment of T, must be a constant integer value:
2540        let alignment = bx.align_of(in_elem).bytes();
2541
2542        // Truncate the mask vector to a vector of i1s:
2543        let mask = vector_mask_to_bitmask(bx, args[2].immediate(), mask_elem_bitwidth, in_len);
2544
2545        // Type of the vector of pointers:
2546        let llvm_pointer_vec_ty = llvm_vector_ty(bx, element_ty1, in_len);
2547
2548        // Type of the vector of elements:
2549        let llvm_elem_vec_ty = llvm_vector_ty(bx, element_ty0, in_len);
2550
2551        let args: &[&'ll Value] = if llvm_version < (22, 0, 0) {
2552            let alignment = bx.const_i32(alignment as i32);
2553            &[args[1].immediate(), alignment, mask, args[0].immediate()]
2554        } else {
2555            &[args[1].immediate(), mask, args[0].immediate()]
2556        };
2557
2558        let call =
2559            bx.call_intrinsic("llvm.masked.gather", &[llvm_elem_vec_ty, llvm_pointer_vec_ty], args);
2560        if llvm_version >= (22, 0, 0) {
2561            crate::attributes::apply_to_callsite(
2562                call,
2563                crate::llvm::AttributePlace::Argument(0),
2564                &[crate::llvm::CreateAlignmentAttr(bx.llcx, alignment)],
2565            )
2566        }
2567        return Ok(call);
2568    }
2569
2570    fn llvm_alignment<'ll, 'tcx>(
2571        bx: &mut Builder<'_, 'll, 'tcx>,
2572        alignment: SimdAlign,
2573        vector_ty: Ty<'tcx>,
2574        element_ty: Ty<'tcx>,
2575    ) -> u64 {
2576        match alignment {
2577            SimdAlign::Unaligned => 1,
2578            SimdAlign::Element => bx.align_of(element_ty).bytes(),
2579            SimdAlign::Vector => bx.align_of(vector_ty).bytes(),
2580        }
2581    }
2582
2583    if name == sym::simd_masked_load {
2584        // simd_masked_load<_, _, _, const ALIGN: SimdAlign>(mask: <N x i{M}>, pointer: *_ T, values: <N x T>) -> <N x T>
2585        // * N: number of elements in the input vectors
2586        // * T: type of the element to load
2587        // * M: any integer width is supported, will be truncated to i1
2588        // Loads contiguous elements from memory behind `pointer`, but only for
2589        // those lanes whose `mask` bit is enabled.
2590        // The memory addresses corresponding to the “off” lanes are not accessed.
2591
2592        let alignment = fn_args[3].expect_const().to_branch()[0].to_leaf().to_simd_alignment();
2593
2594        // The element type of the "mask" argument must be a signed integer type of any width
2595        let mask_ty = in_ty;
2596        let (mask_len, mask_elem) = (in_len, in_elem);
2597
2598        // The second argument must be a pointer matching the element type
2599        let pointer_ty = args[1].layout.ty;
2600
2601        // The last argument is a passthrough vector providing values for disabled lanes
2602        let values_ty = args[2].layout.ty;
2603        let (values_len, values_elem) = {
    if !values_ty.is_simd() {
        {
            let err =
                bx.sess().dcx().emit_err(InvalidMonomorphization::SimdThird {
                        span,
                        name,
                        ty: values_ty,
                    });
            return Err(err);
        };
    };
    values_ty.simd_size_and_type(bx.tcx())
}require_simd!(values_ty, SimdThird);
2604
2605        {
    if !ret_ty.is_simd() {
        {
            let err =
                bx.sess().dcx().emit_err(InvalidMonomorphization::SimdReturn {
                        span,
                        name,
                        ty: ret_ty,
                    });
            return Err(err);
        };
    };
    ret_ty.simd_size_and_type(bx.tcx())
};require_simd!(ret_ty, SimdReturn);
2606
2607        // Of the same length:
2608        if !(values_len == mask_len) {
    {
        let err =
            bx.sess().dcx().emit_err(InvalidMonomorphization::ThirdArgumentLength {
                    span,
                    name,
                    in_len: mask_len,
                    in_ty: mask_ty,
                    arg_ty: values_ty,
                    out_len: values_len,
                });
        return Err(err);
    };
};require!(
2609            values_len == mask_len,
2610            InvalidMonomorphization::ThirdArgumentLength {
2611                span,
2612                name,
2613                in_len: mask_len,
2614                in_ty: mask_ty,
2615                arg_ty: values_ty,
2616                out_len: values_len
2617            }
2618        );
2619
2620        // The return type must match the last argument type
2621        if !(ret_ty == values_ty) {
    {
        let err =
            bx.sess().dcx().emit_err(InvalidMonomorphization::ExpectedReturnType {
                    span,
                    name,
                    in_ty: values_ty,
                    ret_ty,
                });
        return Err(err);
    };
};require!(
2622            ret_ty == values_ty,
2623            InvalidMonomorphization::ExpectedReturnType { span, name, in_ty: values_ty, ret_ty }
2624        );
2625
2626        if !#[allow(non_exhaustive_omitted_patterns)] match *pointer_ty.kind() {
            ty::RawPtr(p_ty, _) if
                p_ty == values_elem && p_ty.kind() == values_elem.kind() =>
                true,
            _ => false,
        } {
    {
        let err =
            bx.sess().dcx().emit_err(InvalidMonomorphization::ExpectedElementType {
                    span,
                    name,
                    expected_element: values_elem,
                    second_arg: pointer_ty,
                    in_elem: values_elem,
                    in_ty: values_ty,
                    mutability: ExpectedPointerMutability::Not,
                });
        return Err(err);
    };
};require!(
2627            matches!(
2628                *pointer_ty.kind(),
2629                ty::RawPtr(p_ty, _) if p_ty == values_elem && p_ty.kind() == values_elem.kind()
2630            ),
2631            InvalidMonomorphization::ExpectedElementType {
2632                span,
2633                name,
2634                expected_element: values_elem,
2635                second_arg: pointer_ty,
2636                in_elem: values_elem,
2637                in_ty: values_ty,
2638                mutability: ExpectedPointerMutability::Not,
2639            }
2640        );
2641
2642        let m_elem_bitwidth = match mask_elem.kind() {
    ty::Int(i) => {
        i.bit_width().unwrap_or_else(||
                bx.data_layout().pointer_size().bits())
    }
    ty::Uint(i) => {
        i.bit_width().unwrap_or_else(||
                bx.data_layout().pointer_size().bits())
    }
    _ => {
        {
            let err =
                bx.sess().dcx().emit_err(InvalidMonomorphization::MaskWrongElementType {
                        span,
                        name,
                        ty: mask_elem,
                    });
            return Err(err);
        };
    }
}require_int_or_uint_ty!(
2643            mask_elem.kind(),
2644            InvalidMonomorphization::MaskWrongElementType { span, name, ty: mask_elem }
2645        );
2646
2647        let mask = vector_mask_to_bitmask(bx, args[0].immediate(), m_elem_bitwidth, mask_len);
2648
2649        // Alignment of T, must be a constant integer value:
2650        let alignment = llvm_alignment(bx, alignment, values_ty, values_elem);
2651
2652        let llvm_pointer = bx.type_ptr();
2653
2654        // Type of the vector of elements:
2655        let llvm_elem_vec_ty = llvm_vector_ty(bx, values_elem, values_len);
2656
2657        let args: &[&'ll Value] = if llvm_version < (22, 0, 0) {
2658            let alignment = bx.const_i32(alignment as i32);
2659
2660            &[args[1].immediate(), alignment, mask, args[2].immediate()]
2661        } else {
2662            &[args[1].immediate(), mask, args[2].immediate()]
2663        };
2664
2665        let call = bx.call_intrinsic("llvm.masked.load", &[llvm_elem_vec_ty, llvm_pointer], args);
2666        if llvm_version >= (22, 0, 0) {
2667            crate::attributes::apply_to_callsite(
2668                call,
2669                crate::llvm::AttributePlace::Argument(0),
2670                &[crate::llvm::CreateAlignmentAttr(bx.llcx, alignment)],
2671            )
2672        }
2673        return Ok(call);
2674    }
2675
2676    if name == sym::simd_masked_store {
2677        // simd_masked_store<_, _, _, const ALIGN: SimdAlign>(mask: <N x i{M}>, pointer: *mut T, values: <N x T>) -> ()
2678        // * N: number of elements in the input vectors
2679        // * T: type of the element to load
2680        // * M: any integer width is supported, will be truncated to i1
2681        // Stores contiguous elements to memory behind `pointer`, but only for
2682        // those lanes whose `mask` bit is enabled.
2683        // The memory addresses corresponding to the “off” lanes are not accessed.
2684
2685        let alignment = fn_args[3].expect_const().to_branch()[0].to_leaf().to_simd_alignment();
2686
2687        // The element type of the "mask" argument must be a signed integer type of any width
2688        let mask_ty = in_ty;
2689        let (mask_len, mask_elem) = (in_len, in_elem);
2690
2691        // The second argument must be a pointer matching the element type
2692        let pointer_ty = args[1].layout.ty;
2693
2694        // The last argument specifies the values to store to memory
2695        let values_ty = args[2].layout.ty;
2696        let (values_len, values_elem) = {
    if !values_ty.is_simd() {
        {
            let err =
                bx.sess().dcx().emit_err(InvalidMonomorphization::SimdThird {
                        span,
                        name,
                        ty: values_ty,
                    });
            return Err(err);
        };
    };
    values_ty.simd_size_and_type(bx.tcx())
}require_simd!(values_ty, SimdThird);
2697
2698        // Of the same length:
2699        if !(values_len == mask_len) {
    {
        let err =
            bx.sess().dcx().emit_err(InvalidMonomorphization::ThirdArgumentLength {
                    span,
                    name,
                    in_len: mask_len,
                    in_ty: mask_ty,
                    arg_ty: values_ty,
                    out_len: values_len,
                });
        return Err(err);
    };
};require!(
2700            values_len == mask_len,
2701            InvalidMonomorphization::ThirdArgumentLength {
2702                span,
2703                name,
2704                in_len: mask_len,
2705                in_ty: mask_ty,
2706                arg_ty: values_ty,
2707                out_len: values_len
2708            }
2709        );
2710
2711        // The second argument must be a mutable pointer type matching the element type
2712        if !#[allow(non_exhaustive_omitted_patterns)] match *pointer_ty.kind() {
            ty::RawPtr(p_ty, p_mutbl) if
                p_ty == values_elem && p_ty.kind() == values_elem.kind() &&
                    p_mutbl.is_mut() => true,
            _ => false,
        } {
    {
        let err =
            bx.sess().dcx().emit_err(InvalidMonomorphization::ExpectedElementType {
                    span,
                    name,
                    expected_element: values_elem,
                    second_arg: pointer_ty,
                    in_elem: values_elem,
                    in_ty: values_ty,
                    mutability: ExpectedPointerMutability::Mut,
                });
        return Err(err);
    };
};require!(
2713            matches!(
2714                *pointer_ty.kind(),
2715                ty::RawPtr(p_ty, p_mutbl)
2716                    if p_ty == values_elem && p_ty.kind() == values_elem.kind() && p_mutbl.is_mut()
2717            ),
2718            InvalidMonomorphization::ExpectedElementType {
2719                span,
2720                name,
2721                expected_element: values_elem,
2722                second_arg: pointer_ty,
2723                in_elem: values_elem,
2724                in_ty: values_ty,
2725                mutability: ExpectedPointerMutability::Mut,
2726            }
2727        );
2728
2729        let m_elem_bitwidth = match mask_elem.kind() {
    ty::Int(i) => {
        i.bit_width().unwrap_or_else(||
                bx.data_layout().pointer_size().bits())
    }
    ty::Uint(i) => {
        i.bit_width().unwrap_or_else(||
                bx.data_layout().pointer_size().bits())
    }
    _ => {
        {
            let err =
                bx.sess().dcx().emit_err(InvalidMonomorphization::MaskWrongElementType {
                        span,
                        name,
                        ty: mask_elem,
                    });
            return Err(err);
        };
    }
}require_int_or_uint_ty!(
2730            mask_elem.kind(),
2731            InvalidMonomorphization::MaskWrongElementType { span, name, ty: mask_elem }
2732        );
2733
2734        let mask = vector_mask_to_bitmask(bx, args[0].immediate(), m_elem_bitwidth, mask_len);
2735
2736        // Alignment of T, must be a constant integer value:
2737        let alignment = llvm_alignment(bx, alignment, values_ty, values_elem);
2738
2739        let llvm_pointer = bx.type_ptr();
2740
2741        // Type of the vector of elements:
2742        let llvm_elem_vec_ty = llvm_vector_ty(bx, values_elem, values_len);
2743
2744        let args: &[&'ll Value] = if llvm_version < (22, 0, 0) {
2745            let alignment = bx.const_i32(alignment as i32);
2746            &[args[2].immediate(), args[1].immediate(), alignment, mask]
2747        } else {
2748            &[args[2].immediate(), args[1].immediate(), mask]
2749        };
2750
2751        let call = bx.call_intrinsic("llvm.masked.store", &[llvm_elem_vec_ty, llvm_pointer], args);
2752        if llvm_version >= (22, 0, 0) {
2753            crate::attributes::apply_to_callsite(
2754                call,
2755                crate::llvm::AttributePlace::Argument(1),
2756                &[crate::llvm::CreateAlignmentAttr(bx.llcx, alignment)],
2757            )
2758        }
2759        return Ok(call);
2760    }
2761
2762    if name == sym::simd_scatter {
2763        // simd_scatter(values: <N x T>, pointers: <N x *mut T>,
2764        //             mask: <N x i{M}>) -> ()
2765        // * N: number of elements in the input vectors
2766        // * T: type of the element to load
2767        // * M: any integer width is supported, will be truncated to i1
2768
2769        // All types must be simd vector types
2770        // The second argument must be a simd vector with an element type that's a pointer
2771        // to the element type of the first argument
2772        let (_, element_ty0) = {
    if !in_ty.is_simd() {
        {
            let err =
                bx.sess().dcx().emit_err(InvalidMonomorphization::SimdFirst {
                        span,
                        name,
                        ty: in_ty,
                    });
            return Err(err);
        };
    };
    in_ty.simd_size_and_type(bx.tcx())
}require_simd!(in_ty, SimdFirst);
2773        let (element_len1, element_ty1) = {
    if !args[1].layout.ty.is_simd() {
        {
            let err =
                bx.sess().dcx().emit_err(InvalidMonomorphization::SimdSecond {
                        span,
                        name,
                        ty: args[1].layout.ty,
                    });
            return Err(err);
        };
    };
    args[1].layout.ty.simd_size_and_type(bx.tcx())
}require_simd!(args[1].layout.ty, SimdSecond);
2774        let (element_len2, element_ty2) = {
    if !args[2].layout.ty.is_simd() {
        {
            let err =
                bx.sess().dcx().emit_err(InvalidMonomorphization::SimdThird {
                        span,
                        name,
                        ty: args[2].layout.ty,
                    });
            return Err(err);
        };
    };
    args[2].layout.ty.simd_size_and_type(bx.tcx())
}require_simd!(args[2].layout.ty, SimdThird);
2775
2776        // Of the same length:
2777        if !(in_len == element_len1) {
    {
        let err =
            bx.sess().dcx().emit_err(InvalidMonomorphization::SecondArgumentLength {
                    span,
                    name,
                    in_len,
                    in_ty,
                    arg_ty: args[1].layout.ty,
                    out_len: element_len1,
                });
        return Err(err);
    };
};require!(
2778            in_len == element_len1,
2779            InvalidMonomorphization::SecondArgumentLength {
2780                span,
2781                name,
2782                in_len,
2783                in_ty,
2784                arg_ty: args[1].layout.ty,
2785                out_len: element_len1
2786            }
2787        );
2788        if !(in_len == element_len2) {
    {
        let err =
            bx.sess().dcx().emit_err(InvalidMonomorphization::ThirdArgumentLength {
                    span,
                    name,
                    in_len,
                    in_ty,
                    arg_ty: args[2].layout.ty,
                    out_len: element_len2,
                });
        return Err(err);
    };
};require!(
2789            in_len == element_len2,
2790            InvalidMonomorphization::ThirdArgumentLength {
2791                span,
2792                name,
2793                in_len,
2794                in_ty,
2795                arg_ty: args[2].layout.ty,
2796                out_len: element_len2
2797            }
2798        );
2799
2800        if !#[allow(non_exhaustive_omitted_patterns)] match *element_ty1.kind() {
            ty::RawPtr(p_ty, p_mutbl) if
                p_ty == in_elem && p_mutbl.is_mut() &&
                    p_ty.kind() == element_ty0.kind() => true,
            _ => false,
        } {
    {
        let err =
            bx.sess().dcx().emit_err(InvalidMonomorphization::ExpectedElementType {
                    span,
                    name,
                    expected_element: element_ty1,
                    second_arg: args[1].layout.ty,
                    in_elem,
                    in_ty,
                    mutability: ExpectedPointerMutability::Mut,
                });
        return Err(err);
    };
};require!(
2801            matches!(
2802                *element_ty1.kind(),
2803                ty::RawPtr(p_ty, p_mutbl)
2804                    if p_ty == in_elem && p_mutbl.is_mut() && p_ty.kind() == element_ty0.kind()
2805            ),
2806            InvalidMonomorphization::ExpectedElementType {
2807                span,
2808                name,
2809                expected_element: element_ty1,
2810                second_arg: args[1].layout.ty,
2811                in_elem,
2812                in_ty,
2813                mutability: ExpectedPointerMutability::Mut,
2814            }
2815        );
2816
2817        // The element type of the third argument must be an integer type of any width:
2818        let mask_elem_bitwidth = match element_ty2.kind() {
    ty::Int(i) => {
        i.bit_width().unwrap_or_else(||
                bx.data_layout().pointer_size().bits())
    }
    ty::Uint(i) => {
        i.bit_width().unwrap_or_else(||
                bx.data_layout().pointer_size().bits())
    }
    _ => {
        {
            let err =
                bx.sess().dcx().emit_err(InvalidMonomorphization::MaskWrongElementType {
                        span,
                        name,
                        ty: element_ty2,
                    });
            return Err(err);
        };
    }
}require_int_or_uint_ty!(
2819            element_ty2.kind(),
2820            InvalidMonomorphization::MaskWrongElementType { span, name, ty: element_ty2 }
2821        );
2822
2823        // Alignment of T, must be a constant integer value:
2824        let alignment = bx.align_of(in_elem).bytes();
2825
2826        // Truncate the mask vector to a vector of i1s:
2827        let mask = vector_mask_to_bitmask(bx, args[2].immediate(), mask_elem_bitwidth, in_len);
2828
2829        // Type of the vector of pointers:
2830        let llvm_pointer_vec_ty = llvm_vector_ty(bx, element_ty1, in_len);
2831
2832        // Type of the vector of elements:
2833        let llvm_elem_vec_ty = llvm_vector_ty(bx, element_ty0, in_len);
2834        let args: &[&'ll Value] = if llvm_version < (22, 0, 0) {
2835            let alignment = bx.const_i32(alignment as i32);
2836            &[args[0].immediate(), args[1].immediate(), alignment, mask]
2837        } else {
2838            &[args[0].immediate(), args[1].immediate(), mask]
2839        };
2840        let call = bx.call_intrinsic(
2841            "llvm.masked.scatter",
2842            &[llvm_elem_vec_ty, llvm_pointer_vec_ty],
2843            args,
2844        );
2845        if llvm_version >= (22, 0, 0) {
2846            crate::attributes::apply_to_callsite(
2847                call,
2848                crate::llvm::AttributePlace::Argument(1),
2849                &[crate::llvm::CreateAlignmentAttr(bx.llcx, alignment)],
2850            )
2851        }
2852        return Ok(call);
2853    }
2854
2855    macro_rules! arith_red {
2856        ($name:ident : $integer_reduce:ident, $float_reduce:ident, $ordered:expr, $op:ident,
2857         $identity:expr) => {
2858            if name == sym::$name {
2859                require!(
2860                    ret_ty == in_elem,
2861                    InvalidMonomorphization::ReturnType { span, name, in_elem, in_ty, ret_ty }
2862                );
2863                return match in_elem.kind() {
2864                    ty::Int(_) | ty::Uint(_) => {
2865                        let r = bx.$integer_reduce(args[0].immediate());
2866                        if $ordered {
2867                            // if overflow occurs, the result is the
2868                            // mathematical result modulo 2^n:
2869                            Ok(bx.$op(args[1].immediate(), r))
2870                        } else {
2871                            Ok(bx.$integer_reduce(args[0].immediate()))
2872                        }
2873                    }
2874                    ty::Float(f) => {
2875                        let acc = if $ordered {
2876                            // ordered arithmetic reductions take an accumulator
2877                            args[1].immediate()
2878                        } else {
2879                            // unordered arithmetic reductions use the identity accumulator
2880                            match f.bit_width() {
2881                                32 => bx.const_real(bx.type_f32(), $identity),
2882                                64 => bx.const_real(bx.type_f64(), $identity),
2883                                v => return_error!(
2884                                    InvalidMonomorphization::UnsupportedSymbolOfSize {
2885                                        span,
2886                                        name,
2887                                        symbol: sym::$name,
2888                                        in_ty,
2889                                        in_elem,
2890                                        size: v,
2891                                        ret_ty
2892                                    }
2893                                ),
2894                            }
2895                        };
2896                        Ok(bx.$float_reduce(acc, args[0].immediate()))
2897                    }
2898                    _ => return_error!(InvalidMonomorphization::UnsupportedSymbol {
2899                        span,
2900                        name,
2901                        symbol: sym::$name,
2902                        in_ty,
2903                        in_elem,
2904                        ret_ty
2905                    }),
2906                };
2907            }
2908        };
2909    }
2910
2911    if name == sym::simd_reduce_add_ordered {
    if !(ret_ty == in_elem) {
        {
            let err =
                bx.sess().dcx().emit_err(InvalidMonomorphization::ReturnType {
                        span,
                        name,
                        in_elem,
                        in_ty,
                        ret_ty,
                    });
            return Err(err);
        };
    };
    return match in_elem.kind() {
            ty::Int(_) | ty::Uint(_) => {
                let r = bx.vector_reduce_add(args[0].immediate());
                if true {
                    Ok(bx.add(args[1].immediate(), r))
                } else { Ok(bx.vector_reduce_add(args[0].immediate())) }
            }
            ty::Float(f) => {
                let acc =
                    if true {
                        args[1].immediate()
                    } else {
                        match f.bit_width() {
                            32 => bx.const_real(bx.type_f32(), -0.0),
                            64 => bx.const_real(bx.type_f64(), -0.0),
                            v => {
                                let err =
                                    bx.sess().dcx().emit_err(InvalidMonomorphization::UnsupportedSymbolOfSize {
                                            span,
                                            name,
                                            symbol: sym::simd_reduce_add_ordered,
                                            in_ty,
                                            in_elem,
                                            size: v,
                                            ret_ty,
                                        });
                                return Err(err);
                            }
                        }
                    };
                Ok(bx.vector_reduce_fadd(acc, args[0].immediate()))
            }
            _ => {
                let err =
                    bx.sess().dcx().emit_err(InvalidMonomorphization::UnsupportedSymbol {
                            span,
                            name,
                            symbol: sym::simd_reduce_add_ordered,
                            in_ty,
                            in_elem,
                            ret_ty,
                        });
                return Err(err);
            }
        };
};arith_red!(simd_reduce_add_ordered: vector_reduce_add, vector_reduce_fadd, true, add, -0.0);
2912    if name == sym::simd_reduce_mul_ordered {
    if !(ret_ty == in_elem) {
        {
            let err =
                bx.sess().dcx().emit_err(InvalidMonomorphization::ReturnType {
                        span,
                        name,
                        in_elem,
                        in_ty,
                        ret_ty,
                    });
            return Err(err);
        };
    };
    return match in_elem.kind() {
            ty::Int(_) | ty::Uint(_) => {
                let r = bx.vector_reduce_mul(args[0].immediate());
                if true {
                    Ok(bx.mul(args[1].immediate(), r))
                } else { Ok(bx.vector_reduce_mul(args[0].immediate())) }
            }
            ty::Float(f) => {
                let acc =
                    if true {
                        args[1].immediate()
                    } else {
                        match f.bit_width() {
                            32 => bx.const_real(bx.type_f32(), 1.0),
                            64 => bx.const_real(bx.type_f64(), 1.0),
                            v => {
                                let err =
                                    bx.sess().dcx().emit_err(InvalidMonomorphization::UnsupportedSymbolOfSize {
                                            span,
                                            name,
                                            symbol: sym::simd_reduce_mul_ordered,
                                            in_ty,
                                            in_elem,
                                            size: v,
                                            ret_ty,
                                        });
                                return Err(err);
                            }
                        }
                    };
                Ok(bx.vector_reduce_fmul(acc, args[0].immediate()))
            }
            _ => {
                let err =
                    bx.sess().dcx().emit_err(InvalidMonomorphization::UnsupportedSymbol {
                            span,
                            name,
                            symbol: sym::simd_reduce_mul_ordered,
                            in_ty,
                            in_elem,
                            ret_ty,
                        });
                return Err(err);
            }
        };
};arith_red!(simd_reduce_mul_ordered: vector_reduce_mul, vector_reduce_fmul, true, mul, 1.0);
2913    if name == sym::simd_reduce_add_unordered {
    if !(ret_ty == in_elem) {
        {
            let err =
                bx.sess().dcx().emit_err(InvalidMonomorphization::ReturnType {
                        span,
                        name,
                        in_elem,
                        in_ty,
                        ret_ty,
                    });
            return Err(err);
        };
    };
    return match in_elem.kind() {
            ty::Int(_) | ty::Uint(_) => {
                let r = bx.vector_reduce_add(args[0].immediate());
                if false {
                    Ok(bx.add(args[1].immediate(), r))
                } else { Ok(bx.vector_reduce_add(args[0].immediate())) }
            }
            ty::Float(f) => {
                let acc =
                    if false {
                        args[1].immediate()
                    } else {
                        match f.bit_width() {
                            32 => bx.const_real(bx.type_f32(), -0.0),
                            64 => bx.const_real(bx.type_f64(), -0.0),
                            v => {
                                let err =
                                    bx.sess().dcx().emit_err(InvalidMonomorphization::UnsupportedSymbolOfSize {
                                            span,
                                            name,
                                            symbol: sym::simd_reduce_add_unordered,
                                            in_ty,
                                            in_elem,
                                            size: v,
                                            ret_ty,
                                        });
                                return Err(err);
                            }
                        }
                    };
                Ok(bx.vector_reduce_fadd_reassoc(acc, args[0].immediate()))
            }
            _ => {
                let err =
                    bx.sess().dcx().emit_err(InvalidMonomorphization::UnsupportedSymbol {
                            span,
                            name,
                            symbol: sym::simd_reduce_add_unordered,
                            in_ty,
                            in_elem,
                            ret_ty,
                        });
                return Err(err);
            }
        };
};arith_red!(
2914        simd_reduce_add_unordered: vector_reduce_add,
2915        vector_reduce_fadd_reassoc,
2916        false,
2917        add,
2918        -0.0
2919    );
2920    if name == sym::simd_reduce_mul_unordered {
    if !(ret_ty == in_elem) {
        {
            let err =
                bx.sess().dcx().emit_err(InvalidMonomorphization::ReturnType {
                        span,
                        name,
                        in_elem,
                        in_ty,
                        ret_ty,
                    });
            return Err(err);
        };
    };
    return match in_elem.kind() {
            ty::Int(_) | ty::Uint(_) => {
                let r = bx.vector_reduce_mul(args[0].immediate());
                if false {
                    Ok(bx.mul(args[1].immediate(), r))
                } else { Ok(bx.vector_reduce_mul(args[0].immediate())) }
            }
            ty::Float(f) => {
                let acc =
                    if false {
                        args[1].immediate()
                    } else {
                        match f.bit_width() {
                            32 => bx.const_real(bx.type_f32(), 1.0),
                            64 => bx.const_real(bx.type_f64(), 1.0),
                            v => {
                                let err =
                                    bx.sess().dcx().emit_err(InvalidMonomorphization::UnsupportedSymbolOfSize {
                                            span,
                                            name,
                                            symbol: sym::simd_reduce_mul_unordered,
                                            in_ty,
                                            in_elem,
                                            size: v,
                                            ret_ty,
                                        });
                                return Err(err);
                            }
                        }
                    };
                Ok(bx.vector_reduce_fmul_reassoc(acc, args[0].immediate()))
            }
            _ => {
                let err =
                    bx.sess().dcx().emit_err(InvalidMonomorphization::UnsupportedSymbol {
                            span,
                            name,
                            symbol: sym::simd_reduce_mul_unordered,
                            in_ty,
                            in_elem,
                            ret_ty,
                        });
                return Err(err);
            }
        };
};arith_red!(
2921        simd_reduce_mul_unordered: vector_reduce_mul,
2922        vector_reduce_fmul_reassoc,
2923        false,
2924        mul,
2925        1.0
2926    );
2927
2928    macro_rules! minmax_red {
2929        ($name:ident: $int_red:ident) => {
2930            if name == sym::$name {
2931                require!(
2932                    ret_ty == in_elem,
2933                    InvalidMonomorphization::ReturnType { span, name, in_elem, in_ty, ret_ty }
2934                );
2935                return match in_elem.kind() {
2936                    ty::Int(_i) => Ok(bx.$int_red(args[0].immediate(), true)),
2937                    ty::Uint(_u) => Ok(bx.$int_red(args[0].immediate(), false)),
2938                    _ => return_error!(InvalidMonomorphization::UnsupportedSymbol {
2939                        span,
2940                        name,
2941                        symbol: sym::$name,
2942                        in_ty,
2943                        in_elem,
2944                        ret_ty
2945                    }),
2946                };
2947            }
2948        };
2949    }
2950
2951    // Currently no support for float due to <https://github.com/llvm/llvm-project/issues/185827>.
2952    if name == sym::simd_reduce_min {
    if !(ret_ty == in_elem) {
        {
            let err =
                bx.sess().dcx().emit_err(InvalidMonomorphization::ReturnType {
                        span,
                        name,
                        in_elem,
                        in_ty,
                        ret_ty,
                    });
            return Err(err);
        };
    };
    return match in_elem.kind() {
            ty::Int(_i) =>
                Ok(bx.vector_reduce_min(args[0].immediate(), true)),
            ty::Uint(_u) =>
                Ok(bx.vector_reduce_min(args[0].immediate(), false)),
            _ => {
                let err =
                    bx.sess().dcx().emit_err(InvalidMonomorphization::UnsupportedSymbol {
                            span,
                            name,
                            symbol: sym::simd_reduce_min,
                            in_ty,
                            in_elem,
                            ret_ty,
                        });
                return Err(err);
            }
        };
};minmax_red!(simd_reduce_min: vector_reduce_min);
2953    if name == sym::simd_reduce_max {
    if !(ret_ty == in_elem) {
        {
            let err =
                bx.sess().dcx().emit_err(InvalidMonomorphization::ReturnType {
                        span,
                        name,
                        in_elem,
                        in_ty,
                        ret_ty,
                    });
            return Err(err);
        };
    };
    return match in_elem.kind() {
            ty::Int(_i) =>
                Ok(bx.vector_reduce_max(args[0].immediate(), true)),
            ty::Uint(_u) =>
                Ok(bx.vector_reduce_max(args[0].immediate(), false)),
            _ => {
                let err =
                    bx.sess().dcx().emit_err(InvalidMonomorphization::UnsupportedSymbol {
                            span,
                            name,
                            symbol: sym::simd_reduce_max,
                            in_ty,
                            in_elem,
                            ret_ty,
                        });
                return Err(err);
            }
        };
};minmax_red!(simd_reduce_max: vector_reduce_max);
2954
2955    macro_rules! bitwise_red {
2956        ($name:ident : $red:ident, $boolean:expr) => {
2957            if name == sym::$name {
2958                let input = if !$boolean {
2959                    require!(
2960                        ret_ty == in_elem,
2961                        InvalidMonomorphization::ReturnType { span, name, in_elem, in_ty, ret_ty }
2962                    );
2963                    args[0].immediate()
2964                } else {
2965                    let bitwidth = match in_elem.kind() {
2966                        ty::Int(i) => {
2967                            i.bit_width().unwrap_or_else(|| bx.data_layout().pointer_size().bits())
2968                        }
2969                        ty::Uint(i) => {
2970                            i.bit_width().unwrap_or_else(|| bx.data_layout().pointer_size().bits())
2971                        }
2972                        _ => return_error!(InvalidMonomorphization::UnsupportedSymbol {
2973                            span,
2974                            name,
2975                            symbol: sym::$name,
2976                            in_ty,
2977                            in_elem,
2978                            ret_ty
2979                        }),
2980                    };
2981
2982                    vector_mask_to_bitmask(bx, args[0].immediate(), bitwidth, in_len as _)
2983                };
2984                return match in_elem.kind() {
2985                    ty::Int(_) | ty::Uint(_) => {
2986                        let r = bx.$red(input);
2987                        Ok(r)
2988                    }
2989                    _ => return_error!(InvalidMonomorphization::UnsupportedSymbol {
2990                        span,
2991                        name,
2992                        symbol: sym::$name,
2993                        in_ty,
2994                        in_elem,
2995                        ret_ty
2996                    }),
2997                };
2998            }
2999        };
3000    }
3001
3002    if name == sym::simd_reduce_and {
    let input =
        if !false {
            if !(ret_ty == in_elem) {
                {
                    let err =
                        bx.sess().dcx().emit_err(InvalidMonomorphization::ReturnType {
                                span,
                                name,
                                in_elem,
                                in_ty,
                                ret_ty,
                            });
                    return Err(err);
                };
            };
            args[0].immediate()
        } else {
            let bitwidth =
                match in_elem.kind() {
                    ty::Int(i) => {
                        i.bit_width().unwrap_or_else(||
                                bx.data_layout().pointer_size().bits())
                    }
                    ty::Uint(i) => {
                        i.bit_width().unwrap_or_else(||
                                bx.data_layout().pointer_size().bits())
                    }
                    _ => {
                        let err =
                            bx.sess().dcx().emit_err(InvalidMonomorphization::UnsupportedSymbol {
                                    span,
                                    name,
                                    symbol: sym::simd_reduce_and,
                                    in_ty,
                                    in_elem,
                                    ret_ty,
                                });
                        return Err(err);
                    }
                };
            vector_mask_to_bitmask(bx, args[0].immediate(), bitwidth,
                in_len as _)
        };
    return match in_elem.kind() {
            ty::Int(_) | ty::Uint(_) => {
                let r = bx.vector_reduce_and(input);
                Ok(r)
            }
            _ => {
                let err =
                    bx.sess().dcx().emit_err(InvalidMonomorphization::UnsupportedSymbol {
                            span,
                            name,
                            symbol: sym::simd_reduce_and,
                            in_ty,
                            in_elem,
                            ret_ty,
                        });
                return Err(err);
            }
        };
};bitwise_red!(simd_reduce_and: vector_reduce_and, false);
3003    if name == sym::simd_reduce_or {
    let input =
        if !false {
            if !(ret_ty == in_elem) {
                {
                    let err =
                        bx.sess().dcx().emit_err(InvalidMonomorphization::ReturnType {
                                span,
                                name,
                                in_elem,
                                in_ty,
                                ret_ty,
                            });
                    return Err(err);
                };
            };
            args[0].immediate()
        } else {
            let bitwidth =
                match in_elem.kind() {
                    ty::Int(i) => {
                        i.bit_width().unwrap_or_else(||
                                bx.data_layout().pointer_size().bits())
                    }
                    ty::Uint(i) => {
                        i.bit_width().unwrap_or_else(||
                                bx.data_layout().pointer_size().bits())
                    }
                    _ => {
                        let err =
                            bx.sess().dcx().emit_err(InvalidMonomorphization::UnsupportedSymbol {
                                    span,
                                    name,
                                    symbol: sym::simd_reduce_or,
                                    in_ty,
                                    in_elem,
                                    ret_ty,
                                });
                        return Err(err);
                    }
                };
            vector_mask_to_bitmask(bx, args[0].immediate(), bitwidth,
                in_len as _)
        };
    return match in_elem.kind() {
            ty::Int(_) | ty::Uint(_) => {
                let r = bx.vector_reduce_or(input);
                Ok(r)
            }
            _ => {
                let err =
                    bx.sess().dcx().emit_err(InvalidMonomorphization::UnsupportedSymbol {
                            span,
                            name,
                            symbol: sym::simd_reduce_or,
                            in_ty,
                            in_elem,
                            ret_ty,
                        });
                return Err(err);
            }
        };
};bitwise_red!(simd_reduce_or: vector_reduce_or, false);
3004    if name == sym::simd_reduce_xor {
    let input =
        if !false {
            if !(ret_ty == in_elem) {
                {
                    let err =
                        bx.sess().dcx().emit_err(InvalidMonomorphization::ReturnType {
                                span,
                                name,
                                in_elem,
                                in_ty,
                                ret_ty,
                            });
                    return Err(err);
                };
            };
            args[0].immediate()
        } else {
            let bitwidth =
                match in_elem.kind() {
                    ty::Int(i) => {
                        i.bit_width().unwrap_or_else(||
                                bx.data_layout().pointer_size().bits())
                    }
                    ty::Uint(i) => {
                        i.bit_width().unwrap_or_else(||
                                bx.data_layout().pointer_size().bits())
                    }
                    _ => {
                        let err =
                            bx.sess().dcx().emit_err(InvalidMonomorphization::UnsupportedSymbol {
                                    span,
                                    name,
                                    symbol: sym::simd_reduce_xor,
                                    in_ty,
                                    in_elem,
                                    ret_ty,
                                });
                        return Err(err);
                    }
                };
            vector_mask_to_bitmask(bx, args[0].immediate(), bitwidth,
                in_len as _)
        };
    return match in_elem.kind() {
            ty::Int(_) | ty::Uint(_) => {
                let r = bx.vector_reduce_xor(input);
                Ok(r)
            }
            _ => {
                let err =
                    bx.sess().dcx().emit_err(InvalidMonomorphization::UnsupportedSymbol {
                            span,
                            name,
                            symbol: sym::simd_reduce_xor,
                            in_ty,
                            in_elem,
                            ret_ty,
                        });
                return Err(err);
            }
        };
};bitwise_red!(simd_reduce_xor: vector_reduce_xor, false);
3005    if name == sym::simd_reduce_all {
    let input =
        if !true {
            if !(ret_ty == in_elem) {
                {
                    let err =
                        bx.sess().dcx().emit_err(InvalidMonomorphization::ReturnType {
                                span,
                                name,
                                in_elem,
                                in_ty,
                                ret_ty,
                            });
                    return Err(err);
                };
            };
            args[0].immediate()
        } else {
            let bitwidth =
                match in_elem.kind() {
                    ty::Int(i) => {
                        i.bit_width().unwrap_or_else(||
                                bx.data_layout().pointer_size().bits())
                    }
                    ty::Uint(i) => {
                        i.bit_width().unwrap_or_else(||
                                bx.data_layout().pointer_size().bits())
                    }
                    _ => {
                        let err =
                            bx.sess().dcx().emit_err(InvalidMonomorphization::UnsupportedSymbol {
                                    span,
                                    name,
                                    symbol: sym::simd_reduce_all,
                                    in_ty,
                                    in_elem,
                                    ret_ty,
                                });
                        return Err(err);
                    }
                };
            vector_mask_to_bitmask(bx, args[0].immediate(), bitwidth,
                in_len as _)
        };
    return match in_elem.kind() {
            ty::Int(_) | ty::Uint(_) => {
                let r = bx.vector_reduce_and(input);
                Ok(r)
            }
            _ => {
                let err =
                    bx.sess().dcx().emit_err(InvalidMonomorphization::UnsupportedSymbol {
                            span,
                            name,
                            symbol: sym::simd_reduce_all,
                            in_ty,
                            in_elem,
                            ret_ty,
                        });
                return Err(err);
            }
        };
};bitwise_red!(simd_reduce_all: vector_reduce_and, true);
3006    if name == sym::simd_reduce_any {
    let input =
        if !true {
            if !(ret_ty == in_elem) {
                {
                    let err =
                        bx.sess().dcx().emit_err(InvalidMonomorphization::ReturnType {
                                span,
                                name,
                                in_elem,
                                in_ty,
                                ret_ty,
                            });
                    return Err(err);
                };
            };
            args[0].immediate()
        } else {
            let bitwidth =
                match in_elem.kind() {
                    ty::Int(i) => {
                        i.bit_width().unwrap_or_else(||
                                bx.data_layout().pointer_size().bits())
                    }
                    ty::Uint(i) => {
                        i.bit_width().unwrap_or_else(||
                                bx.data_layout().pointer_size().bits())
                    }
                    _ => {
                        let err =
                            bx.sess().dcx().emit_err(InvalidMonomorphization::UnsupportedSymbol {
                                    span,
                                    name,
                                    symbol: sym::simd_reduce_any,
                                    in_ty,
                                    in_elem,
                                    ret_ty,
                                });
                        return Err(err);
                    }
                };
            vector_mask_to_bitmask(bx, args[0].immediate(), bitwidth,
                in_len as _)
        };
    return match in_elem.kind() {
            ty::Int(_) | ty::Uint(_) => {
                let r = bx.vector_reduce_or(input);
                Ok(r)
            }
            _ => {
                let err =
                    bx.sess().dcx().emit_err(InvalidMonomorphization::UnsupportedSymbol {
                            span,
                            name,
                            symbol: sym::simd_reduce_any,
                            in_ty,
                            in_elem,
                            ret_ty,
                        });
                return Err(err);
            }
        };
};bitwise_red!(simd_reduce_any: vector_reduce_or, true);
3007
3008    if name == sym::simd_cast_ptr {
3009        let (out_len, out_elem) = {
    if !ret_ty.is_simd() {
        {
            let err =
                bx.sess().dcx().emit_err(InvalidMonomorphization::SimdReturn {
                        span,
                        name,
                        ty: ret_ty,
                    });
            return Err(err);
        };
    };
    ret_ty.simd_size_and_type(bx.tcx())
}require_simd!(ret_ty, SimdReturn);
3010        if !(in_len == out_len) {
    {
        let err =
            bx.sess().dcx().emit_err(InvalidMonomorphization::ReturnLengthInputType {
                    span,
                    name,
                    in_len,
                    in_ty,
                    ret_ty,
                    out_len,
                });
        return Err(err);
    };
};require!(
3011            in_len == out_len,
3012            InvalidMonomorphization::ReturnLengthInputType {
3013                span,
3014                name,
3015                in_len,
3016                in_ty,
3017                ret_ty,
3018                out_len
3019            }
3020        );
3021
3022        match in_elem.kind() {
3023            ty::RawPtr(p_ty, _) => {
3024                let metadata = p_ty.ptr_metadata_ty(bx.tcx, |ty| {
3025                    bx.tcx.normalize_erasing_regions(bx.typing_env(), ty)
3026                });
3027                if !metadata.is_unit() {
    {
        let err =
            bx.sess().dcx().emit_err(InvalidMonomorphization::CastWidePointer {
                    span,
                    name,
                    ty: in_elem,
                });
        return Err(err);
    };
};require!(
3028                    metadata.is_unit(),
3029                    InvalidMonomorphization::CastWidePointer { span, name, ty: in_elem }
3030                );
3031            }
3032            _ => {
3033                {
    let err =
        bx.sess().dcx().emit_err(InvalidMonomorphization::ExpectedPointer {
                span,
                name,
                ty: in_elem,
            });
    return Err(err);
}return_error!(InvalidMonomorphization::ExpectedPointer { span, name, ty: in_elem })
3034            }
3035        }
3036        match out_elem.kind() {
3037            ty::RawPtr(p_ty, _) => {
3038                let metadata = p_ty.ptr_metadata_ty(bx.tcx, |ty| {
3039                    bx.tcx.normalize_erasing_regions(bx.typing_env(), ty)
3040                });
3041                if !metadata.is_unit() {
    {
        let err =
            bx.sess().dcx().emit_err(InvalidMonomorphization::CastWidePointer {
                    span,
                    name,
                    ty: out_elem,
                });
        return Err(err);
    };
};require!(
3042                    metadata.is_unit(),
3043                    InvalidMonomorphization::CastWidePointer { span, name, ty: out_elem }
3044                );
3045            }
3046            _ => {
3047                {
    let err =
        bx.sess().dcx().emit_err(InvalidMonomorphization::ExpectedPointer {
                span,
                name,
                ty: out_elem,
            });
    return Err(err);
}return_error!(InvalidMonomorphization::ExpectedPointer { span, name, ty: out_elem })
3048            }
3049        }
3050
3051        return Ok(args[0].immediate());
3052    }
3053
3054    if name == sym::simd_expose_provenance {
3055        let (out_len, out_elem) = {
    if !ret_ty.is_simd() {
        {
            let err =
                bx.sess().dcx().emit_err(InvalidMonomorphization::SimdReturn {
                        span,
                        name,
                        ty: ret_ty,
                    });
            return Err(err);
        };
    };
    ret_ty.simd_size_and_type(bx.tcx())
}require_simd!(ret_ty, SimdReturn);
3056        if !(in_len == out_len) {
    {
        let err =
            bx.sess().dcx().emit_err(InvalidMonomorphization::ReturnLengthInputType {
                    span,
                    name,
                    in_len,
                    in_ty,
                    ret_ty,
                    out_len,
                });
        return Err(err);
    };
};require!(
3057            in_len == out_len,
3058            InvalidMonomorphization::ReturnLengthInputType {
3059                span,
3060                name,
3061                in_len,
3062                in_ty,
3063                ret_ty,
3064                out_len
3065            }
3066        );
3067
3068        match in_elem.kind() {
3069            ty::RawPtr(_, _) => {}
3070            _ => {
3071                {
    let err =
        bx.sess().dcx().emit_err(InvalidMonomorphization::ExpectedPointer {
                span,
                name,
                ty: in_elem,
            });
    return Err(err);
}return_error!(InvalidMonomorphization::ExpectedPointer { span, name, ty: in_elem })
3072            }
3073        }
3074        match out_elem.kind() {
3075            ty::Uint(ty::UintTy::Usize) => {}
3076            _ => {
    let err =
        bx.sess().dcx().emit_err(InvalidMonomorphization::ExpectedUsize {
                span,
                name,
                ty: out_elem,
            });
    return Err(err);
}return_error!(InvalidMonomorphization::ExpectedUsize { span, name, ty: out_elem }),
3077        }
3078
3079        return Ok(bx.ptrtoint(args[0].immediate(), llret_ty));
3080    }
3081
3082    if name == sym::simd_with_exposed_provenance {
3083        let (out_len, out_elem) = {
    if !ret_ty.is_simd() {
        {
            let err =
                bx.sess().dcx().emit_err(InvalidMonomorphization::SimdReturn {
                        span,
                        name,
                        ty: ret_ty,
                    });
            return Err(err);
        };
    };
    ret_ty.simd_size_and_type(bx.tcx())
}require_simd!(ret_ty, SimdReturn);
3084        if !(in_len == out_len) {
    {
        let err =
            bx.sess().dcx().emit_err(InvalidMonomorphization::ReturnLengthInputType {
                    span,
                    name,
                    in_len,
                    in_ty,
                    ret_ty,
                    out_len,
                });
        return Err(err);
    };
};require!(
3085            in_len == out_len,
3086            InvalidMonomorphization::ReturnLengthInputType {
3087                span,
3088                name,
3089                in_len,
3090                in_ty,
3091                ret_ty,
3092                out_len
3093            }
3094        );
3095
3096        match in_elem.kind() {
3097            ty::Uint(ty::UintTy::Usize) => {}
3098            _ => {
    let err =
        bx.sess().dcx().emit_err(InvalidMonomorphization::ExpectedUsize {
                span,
                name,
                ty: in_elem,
            });
    return Err(err);
}return_error!(InvalidMonomorphization::ExpectedUsize { span, name, ty: in_elem }),
3099        }
3100        match out_elem.kind() {
3101            ty::RawPtr(_, _) => {}
3102            _ => {
3103                {
    let err =
        bx.sess().dcx().emit_err(InvalidMonomorphization::ExpectedPointer {
                span,
                name,
                ty: out_elem,
            });
    return Err(err);
}return_error!(InvalidMonomorphization::ExpectedPointer { span, name, ty: out_elem })
3104            }
3105        }
3106
3107        return Ok(bx.inttoptr(args[0].immediate(), llret_ty));
3108    }
3109
3110    if name == sym::simd_cast || name == sym::simd_as {
3111        let (out_len, out_elem, out_num_vecs) = {
    if !(ret_ty.is_simd() || ret_ty.is_scalable_vector()) {
        {
            let err =
                bx.sess().dcx().emit_err(InvalidMonomorphization::SimdReturn {
                        span,
                        name,
                        ty: ret_ty,
                    });
            return Err(err);
        };
    };
    if ret_ty.is_simd() {
        let (len, ty) = ret_ty.simd_size_and_type(bx.tcx());
        (len, ty, None)
    } else {
        let (count, ty, num_vecs) =
            ret_ty.scalable_vector_parts(bx.tcx()).expect("`is_scalable_vector` was wrong");
        (count as u64, ty, Some(num_vecs))
    }
}require_simd_or_scalable!(ret_ty, SimdReturn);
3112        if !(in_len == out_len) {
    {
        let err =
            bx.sess().dcx().emit_err(InvalidMonomorphization::ReturnLengthInputType {
                    span,
                    name,
                    in_len,
                    in_ty,
                    ret_ty,
                    out_len,
                });
        return Err(err);
    };
};require!(
3113            in_len == out_len,
3114            InvalidMonomorphization::ReturnLengthInputType {
3115                span,
3116                name,
3117                in_len,
3118                in_ty,
3119                ret_ty,
3120                out_len
3121            }
3122        );
3123        if !(in_num_vecs == out_num_vecs) {
    {
        let err =
            bx.sess().dcx().emit_err(InvalidMonomorphization::ReturnNumVecsInputType {
                    span,
                    name,
                    in_num_vecs: in_num_vecs.unwrap_or(NumScalableVectors(1)),
                    in_ty,
                    ret_ty,
                    out_num_vecs: out_num_vecs.unwrap_or(NumScalableVectors(1)),
                });
        return Err(err);
    };
};require!(
3124            in_num_vecs == out_num_vecs,
3125            InvalidMonomorphization::ReturnNumVecsInputType {
3126                span,
3127                name,
3128                in_num_vecs: in_num_vecs.unwrap_or(NumScalableVectors(1)),
3129                in_ty,
3130                ret_ty,
3131                out_num_vecs: out_num_vecs.unwrap_or(NumScalableVectors(1))
3132            }
3133        );
3134
3135        // Casting cares about nominal type, not just structural type
3136        if in_elem == out_elem {
3137            return Ok(args[0].immediate());
3138        }
3139
3140        #[derive(#[automatically_derived]
impl ::core::marker::Copy for Sign { }Copy, #[automatically_derived]
impl ::core::clone::Clone for Sign {
    #[inline]
    fn clone(&self) -> Sign { *self }
}Clone)]
3141        enum Sign {
3142            Unsigned,
3143            Signed,
3144        }
3145        use Sign::*;
3146
3147        enum Style {
3148            Float,
3149            Int(Sign),
3150            Unsupported,
3151        }
3152
3153        let (in_style, in_width) = match in_elem.kind() {
3154            // vectors of pointer-sized integers should've been
3155            // disallowed before here, so this unwrap is safe.
3156            ty::Int(i) => (
3157                Style::Int(Signed),
3158                i.normalize(bx.tcx().sess.target.pointer_width).bit_width().unwrap(),
3159            ),
3160            ty::Uint(u) => (
3161                Style::Int(Unsigned),
3162                u.normalize(bx.tcx().sess.target.pointer_width).bit_width().unwrap(),
3163            ),
3164            ty::Float(f) => (Style::Float, f.bit_width()),
3165            _ => (Style::Unsupported, 0),
3166        };
3167        let (out_style, out_width) = match out_elem.kind() {
3168            ty::Int(i) => (
3169                Style::Int(Signed),
3170                i.normalize(bx.tcx().sess.target.pointer_width).bit_width().unwrap(),
3171            ),
3172            ty::Uint(u) => (
3173                Style::Int(Unsigned),
3174                u.normalize(bx.tcx().sess.target.pointer_width).bit_width().unwrap(),
3175            ),
3176            ty::Float(f) => (Style::Float, f.bit_width()),
3177            _ => (Style::Unsupported, 0),
3178        };
3179
3180        match (in_style, out_style) {
3181            (Style::Int(sign), Style::Int(_)) => {
3182                return Ok(match in_width.cmp(&out_width) {
3183                    Ordering::Greater => bx.trunc(args[0].immediate(), llret_ty),
3184                    Ordering::Equal => args[0].immediate(),
3185                    Ordering::Less => match sign {
3186                        Sign::Signed => bx.sext(args[0].immediate(), llret_ty),
3187                        Sign::Unsigned => bx.zext(args[0].immediate(), llret_ty),
3188                    },
3189                });
3190            }
3191            (Style::Int(Sign::Signed), Style::Float) => {
3192                return Ok(bx.sitofp(args[0].immediate(), llret_ty));
3193            }
3194            (Style::Int(Sign::Unsigned), Style::Float) => {
3195                return Ok(bx.uitofp(args[0].immediate(), llret_ty));
3196            }
3197            (Style::Float, Style::Int(sign)) => {
3198                return Ok(match (sign, name == sym::simd_as) {
3199                    (Sign::Unsigned, false) => bx.fptoui(args[0].immediate(), llret_ty),
3200                    (Sign::Signed, false) => bx.fptosi(args[0].immediate(), llret_ty),
3201                    (_, true) => bx.cast_float_to_int(
3202                        #[allow(non_exhaustive_omitted_patterns)] match sign {
    Sign::Signed => true,
    _ => false,
}matches!(sign, Sign::Signed),
3203                        args[0].immediate(),
3204                        llret_ty,
3205                    ),
3206                });
3207            }
3208            (Style::Float, Style::Float) => {
3209                return Ok(match in_width.cmp(&out_width) {
3210                    Ordering::Greater => bx.fptrunc(args[0].immediate(), llret_ty),
3211                    Ordering::Equal => args[0].immediate(),
3212                    Ordering::Less => bx.fpext(args[0].immediate(), llret_ty),
3213                });
3214            }
3215            _ => {
    let err =
        bx.sess().dcx().emit_err(InvalidMonomorphization::UnsupportedCast {
                span,
                name,
                in_ty,
                in_elem,
                ret_ty,
                out_elem,
            });
    return Err(err);
}return_error!(InvalidMonomorphization::UnsupportedCast {
3216                span,
3217                name,
3218                in_ty,
3219                in_elem,
3220                ret_ty,
3221                out_elem
3222            }),
3223        }
3224    }
3225    macro_rules! arith_binary {
3226        ($($name: ident: $($($p: ident),* => $call: ident),*;)*) => {
3227            $(if name == sym::$name {
3228                match in_elem.kind() {
3229                    $($(ty::$p(_))|* => {
3230                        return Ok(bx.$call(args[0].immediate(), args[1].immediate()))
3231                    })*
3232                    _ => {},
3233                }
3234                return_error!(
3235                    InvalidMonomorphization::UnsupportedOperation { span, name, in_ty, in_elem }
3236                );
3237            })*
3238        }
3239    }
3240    if name == sym::simd_minimum_number_nsz {
    match in_elem.kind() {
        ty::Float(_) => {
            return Ok(bx.minimum_number_nsz(args[0].immediate(),
                        args[1].immediate()))
        }
        _ => {}
    }
    {
        let err =
            bx.sess().dcx().emit_err(InvalidMonomorphization::UnsupportedOperation {
                    span,
                    name,
                    in_ty,
                    in_elem,
                });
        return Err(err);
    };
}arith_binary! {
3241        simd_add: Uint, Int => add, Float => fadd;
3242        simd_sub: Uint, Int => sub, Float => fsub;
3243        simd_mul: Uint, Int => mul, Float => fmul;
3244        simd_div: Uint => udiv, Int => sdiv, Float => fdiv;
3245        simd_rem: Uint => urem, Int => srem, Float => frem;
3246        simd_shl: Uint, Int => shl;
3247        simd_shr: Uint => lshr, Int => ashr;
3248        simd_and: Uint, Int => and;
3249        simd_or: Uint, Int => or;
3250        simd_xor: Uint, Int => xor;
3251        simd_maximum_number_nsz: Float => maximum_number_nsz;
3252        simd_minimum_number_nsz: Float => minimum_number_nsz;
3253
3254    }
3255    macro_rules! arith_unary {
3256        ($($name: ident: $($($p: ident),* => $call: ident),*;)*) => {
3257            $(if name == sym::$name {
3258                match in_elem.kind() {
3259                    $($(ty::$p(_))|* => {
3260                        return Ok(bx.$call(args[0].immediate()))
3261                    })*
3262                    _ => {},
3263                }
3264                return_error!(
3265                    InvalidMonomorphization::UnsupportedOperation { span, name, in_ty, in_elem }
3266                );
3267            })*
3268        }
3269    }
3270    if name == sym::simd_neg {
    match in_elem.kind() {
        ty::Int(_) => { return Ok(bx.neg(args[0].immediate())) }
        ty::Float(_) => { return Ok(bx.fneg(args[0].immediate())) }
        _ => {}
    }
    {
        let err =
            bx.sess().dcx().emit_err(InvalidMonomorphization::UnsupportedOperation {
                    span,
                    name,
                    in_ty,
                    in_elem,
                });
        return Err(err);
    };
}arith_unary! {
3271        simd_neg: Int => neg, Float => fneg;
3272    }
3273
3274    // Unary integer intrinsics
3275    if #[allow(non_exhaustive_omitted_patterns)] match name {
    sym::simd_bswap | sym::simd_bitreverse | sym::simd_ctlz | sym::simd_ctpop
        | sym::simd_cttz | sym::simd_carryless_mul | sym::simd_funnel_shl |
        sym::simd_funnel_shr => true,
    _ => false,
}matches!(
3276        name,
3277        sym::simd_bswap
3278            | sym::simd_bitreverse
3279            | sym::simd_ctlz
3280            | sym::simd_ctpop
3281            | sym::simd_cttz
3282            | sym::simd_carryless_mul
3283            | sym::simd_funnel_shl
3284            | sym::simd_funnel_shr
3285    ) {
3286        let vec_ty = bx.cx.type_vector(
3287            match *in_elem.kind() {
3288                ty::Int(i) => bx.cx.type_int_from_ty(i),
3289                ty::Uint(i) => bx.cx.type_uint_from_ty(i),
3290                _ => {
    let err =
        bx.sess().dcx().emit_err(InvalidMonomorphization::UnsupportedOperation {
                span,
                name,
                in_ty,
                in_elem,
            });
    return Err(err);
}return_error!(InvalidMonomorphization::UnsupportedOperation {
3291                    span,
3292                    name,
3293                    in_ty,
3294                    in_elem
3295                }),
3296            },
3297            in_len as u64,
3298        );
3299        let llvm_intrinsic = match name {
3300            sym::simd_bswap => "llvm.bswap",
3301            sym::simd_bitreverse => "llvm.bitreverse",
3302            sym::simd_ctlz => "llvm.ctlz",
3303            sym::simd_ctpop => "llvm.ctpop",
3304            sym::simd_cttz => "llvm.cttz",
3305            sym::simd_funnel_shl => "llvm.fshl",
3306            sym::simd_funnel_shr => "llvm.fshr",
3307            sym::simd_carryless_mul => "llvm.clmul",
3308            _ => ::core::panicking::panic("internal error: entered unreachable code")unreachable!(),
3309        };
3310        let int_size = in_elem.int_size_and_signed(bx.tcx()).0.bits();
3311
3312        return match name {
3313            // byte swap is no-op for i8/u8
3314            sym::simd_bswap if int_size == 8 => Ok(args[0].immediate()),
3315            sym::simd_ctlz | sym::simd_cttz => {
3316                // for the (int, i1 immediate) pair, the second arg adds `(0, true) => poison`
3317                let dont_poison_on_zero = bx.const_int(bx.type_i1(), 0);
3318                Ok(bx.call_intrinsic(
3319                    llvm_intrinsic,
3320                    &[vec_ty],
3321                    &[args[0].immediate(), dont_poison_on_zero],
3322                ))
3323            }
3324            sym::simd_bswap | sym::simd_bitreverse | sym::simd_ctpop => {
3325                // simple unary argument cases
3326                Ok(bx.call_intrinsic(llvm_intrinsic, &[vec_ty], &[args[0].immediate()]))
3327            }
3328            sym::simd_funnel_shl | sym::simd_funnel_shr => Ok(bx.call_intrinsic(
3329                llvm_intrinsic,
3330                &[vec_ty],
3331                &[args[0].immediate(), args[1].immediate(), args[2].immediate()],
3332            )),
3333            sym::simd_carryless_mul => {
3334                if crate::llvm_util::get_version() >= (22, 0, 0) {
3335                    Ok(bx.call_intrinsic(
3336                        llvm_intrinsic,
3337                        &[vec_ty],
3338                        &[args[0].immediate(), args[1].immediate()],
3339                    ))
3340                } else {
3341                    ::rustc_middle::util::bug::span_bug_fmt(span,
    format_args!("`simd_carryless_mul` needs LLVM 22 or higher"));span_bug!(span, "`simd_carryless_mul` needs LLVM 22 or higher");
3342                }
3343            }
3344            _ => ::core::panicking::panic("internal error: entered unreachable code")unreachable!(),
3345        };
3346    }
3347
3348    if name == sym::simd_arith_offset {
3349        // This also checks that the first operand is a ptr type.
3350        let pointee = in_elem.builtin_deref(true).unwrap_or_else(|| {
3351            ::rustc_middle::util::bug::span_bug_fmt(span,
    format_args!("must be called with a vector of pointer types as first argument"))span_bug!(span, "must be called with a vector of pointer types as first argument")
3352        });
3353        let layout = bx.layout_of(pointee);
3354        let ptrs = args[0].immediate();
3355        // The second argument must be a ptr-sized integer.
3356        // (We don't care about the signedness, this is wrapping anyway.)
3357        let (_offsets_len, offsets_elem) = args[1].layout.ty.simd_size_and_type(bx.tcx());
3358        if !#[allow(non_exhaustive_omitted_patterns)] match offsets_elem.kind() {
    ty::Int(ty::IntTy::Isize) | ty::Uint(ty::UintTy::Usize) => true,
    _ => false,
}matches!(offsets_elem.kind(), ty::Int(ty::IntTy::Isize) | ty::Uint(ty::UintTy::Usize)) {
3359            ::rustc_middle::util::bug::span_bug_fmt(span,
    format_args!("must be called with a vector of pointer-sized integers as second argument"));span_bug!(
3360                span,
3361                "must be called with a vector of pointer-sized integers as second argument"
3362            );
3363        }
3364        let offsets = args[1].immediate();
3365
3366        return Ok(bx.gep(bx.backend_type(layout), ptrs, &[offsets]));
3367    }
3368
3369    if name == sym::simd_saturating_add || name == sym::simd_saturating_sub {
3370        let lhs = args[0].immediate();
3371        let rhs = args[1].immediate();
3372        let is_add = name == sym::simd_saturating_add;
3373        let (signed, elem_ty) = match *in_elem.kind() {
3374            ty::Int(i) => (true, bx.cx.type_int_from_ty(i)),
3375            ty::Uint(i) => (false, bx.cx.type_uint_from_ty(i)),
3376            _ => {
3377                {
    let err =
        bx.sess().dcx().emit_err(InvalidMonomorphization::ExpectedVectorElementType {
                span,
                name,
                expected_element: args[0].layout.ty.simd_size_and_type(bx.tcx()).1,
                vector_type: args[0].layout.ty,
            });
    return Err(err);
};return_error!(InvalidMonomorphization::ExpectedVectorElementType {
3378                    span,
3379                    name,
3380                    expected_element: args[0].layout.ty.simd_size_and_type(bx.tcx()).1,
3381                    vector_type: args[0].layout.ty
3382                });
3383            }
3384        };
3385        let llvm_intrinsic = ::alloc::__export::must_use({
        ::alloc::fmt::format(format_args!("llvm.{0}{1}.sat",
                if signed { 's' } else { 'u' },
                if is_add { "add" } else { "sub" }))
    })format!(
3386            "llvm.{}{}.sat",
3387            if signed { 's' } else { 'u' },
3388            if is_add { "add" } else { "sub" },
3389        );
3390        let vec_ty = bx.cx.type_vector(elem_ty, in_len as u64);
3391
3392        return Ok(bx.call_intrinsic(llvm_intrinsic, &[vec_ty], &[lhs, rhs]));
3393    }
3394
3395    ::rustc_middle::util::bug::span_bug_fmt(span,
    format_args!("unknown SIMD intrinsic"));span_bug!(span, "unknown SIMD intrinsic");
3396}