1use std::fmt;
23use itertools::Either;
4use rustc_abias abi;
5use rustc_abi::{
6Align, BackendRepr, FIRST_VARIANT, FieldIdx, Primitive, Size, TagEncoding, VariantIdx, Variants,
7};
8use rustc_hir::LangItem;
9use rustc_middle::mir::interpret::{Pointer, Scalar, alloc_range};
10use rustc_middle::mir::{self, ConstValue};
11use rustc_middle::ty::layout::{LayoutOf, TyAndLayout};
12use rustc_middle::ty::{self, Ty};
13use rustc_middle::{bug, span_bug};
14use rustc_session::config::{AnnotateMoves, DebugInfo, OptLevel};
15use tracing::{debug, instrument};
1617use super::place::{PlaceRef, PlaceValue};
18use super::rvalue::transmute_scalar;
19use super::{FunctionCx, LocalRef};
20use crate::MemFlags;
21use crate::common::IntPredicate;
22use crate::traits::*;
2324/// The representation of a Rust value. The enum variant is in fact
25/// uniquely determined by the value's type, but is kept as a
26/// safety check.
27#[derive(#[automatically_derived]
impl<V: ::core::marker::Copy> ::core::marker::Copy for OperandValue<V> { }Copy, #[automatically_derived]
impl<V: ::core::clone::Clone> ::core::clone::Clone for OperandValue<V> {
#[inline]
fn clone(&self) -> OperandValue<V> {
match self {
OperandValue::Ref(__self_0) =>
OperandValue::Ref(::core::clone::Clone::clone(__self_0)),
OperandValue::Immediate(__self_0) =>
OperandValue::Immediate(::core::clone::Clone::clone(__self_0)),
OperandValue::Pair(__self_0, __self_1) =>
OperandValue::Pair(::core::clone::Clone::clone(__self_0),
::core::clone::Clone::clone(__self_1)),
OperandValue::ZeroSized => OperandValue::ZeroSized,
}
}
}Clone, #[automatically_derived]
impl<V: ::core::fmt::Debug> ::core::fmt::Debug for OperandValue<V> {
#[inline]
fn fmt(&self, f: &mut ::core::fmt::Formatter) -> ::core::fmt::Result {
match self {
OperandValue::Ref(__self_0) =>
::core::fmt::Formatter::debug_tuple_field1_finish(f, "Ref",
&__self_0),
OperandValue::Immediate(__self_0) =>
::core::fmt::Formatter::debug_tuple_field1_finish(f,
"Immediate", &__self_0),
OperandValue::Pair(__self_0, __self_1) =>
::core::fmt::Formatter::debug_tuple_field2_finish(f, "Pair",
__self_0, &__self_1),
OperandValue::ZeroSized =>
::core::fmt::Formatter::write_str(f, "ZeroSized"),
}
}
}Debug)]
28pub enum OperandValue<V> {
29/// A reference to the actual operand. The data is guaranteed
30 /// to be valid for the operand's lifetime.
31 /// The [`PlaceValue::llextra`], if any, is the extra data (vtable or length)
32 /// which indicates that it refers to an unsized rvalue.
33 ///
34 /// An `OperandValue` *must* be this variant for any type for which
35 /// [`rustc_abi::LayoutData::is_ssa_standalone`] returns `false`.
36 /// (That basically amounts to "isn't one of the other variants".)
37 ///
38 /// This holds a [`PlaceValue`] (like a [`PlaceRef`] does) with a pointer
39 /// to the location holding the value. The type behind that pointer is the
40 /// one returned by [`LayoutTypeCodegenMethods::backend_type`].
41 ///
42 /// Note that a [`load_operand`] which produces this variant didn't actually
43 /// *load* anything; it just put the pointer-to-place into this variant.
44 ///
45 /// [`load_operand`]: BuilderMethods::load_operand
46Ref(PlaceValue<V>),
47/// A single LLVM immediate value.
48 ///
49 /// An `OperandValue` *must* be this variant for any type that's
50 /// [`BackendRepr::Scalar`], [`BackendRepr::SimdVector`], or
51 /// [`BackendRepr::SimdScalableVector`].
52 ///
53 /// The backend value in this variant must be the *immediate* backend type,
54 /// as returned by [`LayoutTypeCodegenMethods::immediate_backend_type`].
55 ///
56 /// Notably, that means that in LLVM a `bool` is `i1` here, even though we
57 /// load and store `bool`s as LLVM's `i8` type. Methods such as
58 /// [`BuilderMethods::load_operand`] and [`OperandRef::store_with_annotation`]
59 /// will handle that correctly, but if you're using the value directly or
60 /// implementing such methods, be sure to convert using
61 /// [`BuilderMethods::from_immediate`] and [`BuilderMethods::to_immediate_scalar`]
62 /// in the appropriate places.
63Immediate(V),
64/// A pair of immediate LLVM values.
65 ///
66 /// Notably this includes wide pointers, where the two values are the pointer
67 /// and the metadata (slice length, vtable pointer, etc).
68 ///
69 /// # Invariants
70 /// - For `Pair(a, b)`, `a` is always at offset 0, but may have `FieldIdx(1..)`
71 /// - `b` is not at offset 0, because `V` is not a 1ZST type.
72 /// - `a` and `b` will have a different FieldIdx, but otherwise `b`'s may be lower
73 /// or they may not be adjacent, due to arbitrary numbers of 1ZST fields that
74 /// will not affect the shape of the data which determines if `Pair` will be used.
75 /// - An `OperandValue` *must* be this variant for any type that's [`BackendRepr::ScalarPair`].
76 /// - The backend values in this variant must be the *immediate* backend types,
77 /// as returned by [`LayoutTypeCodegenMethods::scalar_pair_element_backend_type`]
78 /// with `immediate: true`. See the note in [`Self::Immediate`].
79Pair(V, V),
80/// A value taking no bytes, and which therefore needs no LLVM value at all.
81 ///
82 /// If you ever need a `V` to pass to something, get a fresh poison value
83 /// from [`ConstCodegenMethods::const_poison`].
84 ///
85 /// An `OperandValue` *must* be this variant for any type for which
86 /// `is_zst` on its `Layout` returns `true`. Note however that
87 /// these values can still require alignment.
88ZeroSized,
89}
9091impl<V: CodegenObject> OperandValue<V> {
92/// Return the data pointer and optional metadata as backend values
93 /// if this value can be treat as a pointer.
94pub(crate) fn try_pointer_parts(self) -> Option<(V, Option<V>)> {
95match self {
96 OperandValue::Immediate(llptr) => Some((llptr, None)),
97 OperandValue::Pair(llptr, llextra) => Some((llptr, Some(llextra))),
98 OperandValue::Ref(_) | OperandValue::ZeroSized => None,
99 }
100 }
101102/// Treat this value as a pointer and return the data pointer and
103 /// optional metadata as backend values.
104 ///
105 /// If you're making a place, use [`Self::deref`] instead.
106pub(crate) fn pointer_parts(self) -> (V, Option<V>) {
107self.try_pointer_parts()
108 .unwrap_or_else(|| ::rustc_middle::util::bug::bug_fmt(format_args!("OperandValue cannot be a pointer: {0:?}",
self))bug!("OperandValue cannot be a pointer: {self:?}"))
109 }
110111/// Treat this value as a pointer and return the place to which it points.
112 ///
113 /// The pointer immediate doesn't inherently know its alignment,
114 /// so you need to pass it in. If you want to get it from a type's ABI
115 /// alignment, then maybe you want [`OperandRef::deref`] instead.
116 ///
117 /// This is the inverse of [`PlaceValue::address`].
118pub(crate) fn deref(self, align: Align) -> PlaceValue<V> {
119let (llval, llextra) = self.pointer_parts();
120PlaceValue { llval, llextra, align }
121 }
122123#[must_use]
124pub(crate) fn is_expected_variant_for_type<'tcx>(&self, ty: TyAndLayout<'tcx>) -> bool {
125match (self, ty.backend_repr) {
126 (OperandValue::ZeroSized, BackendRepr::Memory { .. }) => ty.is_zst(),
127 (OperandValue::Ref(_), BackendRepr::Memory { .. }) => !ty.is_zst(),
128 (
129 OperandValue::Immediate(_),
130 BackendRepr::Scalar(..)
131 | BackendRepr::SimdVector { .. }
132 | BackendRepr::SimdScalableVector { .. },
133 ) => true,
134 (OperandValue::Pair(_, _), BackendRepr::ScalarPair { .. }) => true,
135_ => false,
136 }
137 }
138}
139140/// An `OperandRef` is an "SSA" reference to a Rust value, along with
141/// its type.
142///
143/// NOTE: unless you know a value's type exactly, you should not
144/// generate LLVM opcodes acting on it and instead act via methods,
145/// to avoid nasty edge cases. In particular, using `Builder::store`
146/// directly is sure to cause problems -- use `OperandRef::store`
147/// instead.
148#[derive(#[automatically_derived]
impl<'tcx, V: ::core::marker::Copy> ::core::marker::Copy for
OperandRef<'tcx, V> {
}Copy, #[automatically_derived]
impl<'tcx, V: ::core::clone::Clone> ::core::clone::Clone for
OperandRef<'tcx, V> {
#[inline]
fn clone(&self) -> OperandRef<'tcx, V> {
OperandRef {
val: ::core::clone::Clone::clone(&self.val),
layout: ::core::clone::Clone::clone(&self.layout),
move_annotation: ::core::clone::Clone::clone(&self.move_annotation),
}
}
}Clone)]
149pub struct OperandRef<'tcx, V> {
150/// The value.
151pub val: OperandValue<V>,
152153/// The layout of value, based on its Rust type.
154pub layout: TyAndLayout<'tcx>,
155156/// Annotation for profiler visibility of move/copy operations.
157 /// When set, the store operation should appear as an inlined call to this function.
158pub move_annotation: Option<ty::Instance<'tcx>>,
159}
160161impl<V: CodegenObject> fmt::Debugfor OperandRef<'_, V> {
162fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
163f.write_fmt(format_args!("OperandRef({0:?} @ {1:?})", self.val, self.layout))write!(f, "OperandRef({:?} @ {:?})", self.val, self.layout)164 }
165}
166167impl<'a, 'tcx, V: CodegenObject> OperandRef<'tcx, V> {
168pub fn zero_sized(layout: TyAndLayout<'tcx>) -> OperandRef<'tcx, V> {
169if !layout.is_zst() {
::core::panicking::panic("assertion failed: layout.is_zst()")
};assert!(layout.is_zst());
170OperandRef { val: OperandValue::ZeroSized, layout, move_annotation: None }
171 }
172173pub(crate) fn from_const<Bx: BuilderMethods<'a, 'tcx, Value = V>>(
174 bx: &mut Bx,
175 val: mir::ConstValue,
176 ty: Ty<'tcx>,
177 ) -> Self {
178let layout = bx.layout_of(ty);
179180let val = match val {
181 ConstValue::Scalar(x) => {
182let BackendRepr::Scalar(scalar) = layout.backend_repr else {
183::rustc_middle::util::bug::bug_fmt(format_args!("from_const: invalid ByVal layout: {0:#?}",
layout));bug!("from_const: invalid ByVal layout: {:#?}", layout);
184 };
185let llval = bx.scalar_to_backend(x, scalar, bx.immediate_backend_type(layout));
186 OperandValue::Immediate(llval)
187 }
188 ConstValue::ZeroSized => return OperandRef::zero_sized(layout),
189 ConstValue::Slice { alloc_id, meta } => {
190let BackendRepr::ScalarPair { a: a_scalar, b: _, b_offset: _ } =
191layout.backend_repr
192else {
193::rustc_middle::util::bug::bug_fmt(format_args!("from_const: invalid ScalarPair layout: {0:#?}",
layout));bug!("from_const: invalid ScalarPair layout: {:#?}", layout);
194 };
195let a = Scalar::from_pointer(Pointer::new(alloc_id.into(), Size::ZERO), &bx.tcx());
196let a_llval = bx.scalar_to_backend(
197a,
198a_scalar,
199bx.scalar_pair_element_backend_type(layout, 0, true),
200 );
201let b_llval = bx.const_usize(meta);
202 OperandValue::Pair(a_llval, b_llval)
203 }
204 ConstValue::Indirect { alloc_id, offset } => {
205let alloc = bx.tcx().global_alloc(alloc_id).unwrap_memory();
206return Self::from_const_alloc(bx, layout, alloc, offset);
207 }
208 };
209210OperandRef { val, layout, move_annotation: None }
211 }
212213fn from_const_alloc<Bx: BuilderMethods<'a, 'tcx, Value = V>>(
214 bx: &mut Bx,
215 layout: TyAndLayout<'tcx>,
216 alloc: rustc_middle::mir::interpret::ConstAllocation<'tcx>,
217 offset: Size,
218 ) -> Self {
219let alloc_align = alloc.inner().align;
220if !(alloc_align >= layout.align.abi) {
{
::core::panicking::panic_fmt(format_args!("{1:?} < {0:?}",
layout.align.abi, alloc_align));
}
};assert!(alloc_align >= layout.align.abi, "{alloc_align:?} < {:?}", layout.align.abi);
221222let read_scalar = |start, size, s: abi::Scalar, ty| {
223match alloc.0.read_scalar(
224bx,
225alloc_range(start, size),
226/*read_provenance*/ #[allow(non_exhaustive_omitted_patterns)] match s.primitive() {
abi::Primitive::Pointer(_) => true,
_ => false,
}matches!(s.primitive(), abi::Primitive::Pointer(_)),
227 ) {
228Ok(val) => bx.scalar_to_backend(val, s, ty),
229Err(_) => bx.const_poison(ty),
230 }
231 };
232233// It may seem like all types with `Scalar` or `ScalarPair` ABI are fair game at this point.
234 // However, `MaybeUninit<u64>` is considered a `Scalar` as far as its layout is concerned --
235 // and yet cannot be represented by an interpreter `Scalar`, since we have to handle the
236 // case where some of the bytes are initialized and others are not. So, we need an extra
237 // check that walks over the type of `mplace` to make sure it is truly correct to treat this
238 // like a `Scalar` (or `ScalarPair`).
239match layout.backend_repr {
240 BackendRepr::Scalar(s @ abi::Scalar::Initialized { .. }) => {
241let size = s.size(bx);
242{
match (&size, &layout.size) {
(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::Some(format_args!("abi::Scalar size does not match layout size")));
}
}
}
};assert_eq!(size, layout.size, "abi::Scalar size does not match layout size");
243let val = read_scalar(offset, size, s, bx.immediate_backend_type(layout));
244OperandRef { val: OperandValue::Immediate(val), layout, move_annotation: None }
245 }
246 BackendRepr::ScalarPair {
247 a: a @ abi::Scalar::Initialized { .. },
248 b: b @ abi::Scalar::Initialized { .. },
249 b_offset: local_b_offset,
250 } => {
251let (a_size, b_size) = (a.size(bx), b.size(bx));
252let alloc_b_offset = offset + local_b_offset;
253if !(alloc_b_offset.bytes() > 0) {
::core::panicking::panic("assertion failed: alloc_b_offset.bytes() > 0")
};assert!(alloc_b_offset.bytes() > 0);
254let a_val = read_scalar(
255offset,
256a_size,
257a,
258bx.scalar_pair_element_backend_type(layout, 0, true),
259 );
260let b_val = read_scalar(
261alloc_b_offset,
262b_size,
263b,
264bx.scalar_pair_element_backend_type(layout, 1, true),
265 );
266OperandRef { val: OperandValue::Pair(a_val, b_val), layout, move_annotation: None }
267 }
268_ if layout.is_zst() => OperandRef::zero_sized(layout),
269_ => {
270// Neither a scalar nor scalar pair. Load from a place
271let base_addr = bx.static_addr_of(alloc, None);
272273let llval = bx.const_ptr_byte_offset(base_addr, offset);
274bx.load_operand(PlaceRef::new_sized(llval, layout))
275 }
276 }
277 }
278279/// Asserts that this operand refers to a scalar and returns
280 /// a reference to its value.
281pub fn immediate(self) -> V {
282match self.val {
283 OperandValue::Immediate(s) => s,
284_ => ::rustc_middle::util::bug::bug_fmt(format_args!("not immediate: {0:?}", self))bug!("not immediate: {:?}", self),
285 }
286 }
287288/// Asserts that this operand is a pointer (or reference) and returns
289 /// the place to which it points. (This requires no code to be emitted
290 /// as we represent places using the pointer to the place.)
291 ///
292 /// This uses [`Ty::builtin_deref`] to include the type of the place and
293 /// assumes the place is aligned to the pointee's usual ABI alignment.
294 ///
295 /// If you don't need the type, see [`OperandValue::pointer_parts`]
296 /// or [`OperandValue::deref`].
297pub fn deref<Cx: CodegenMethods<'tcx>>(self, cx: &Cx) -> PlaceRef<'tcx, V> {
298if self.layout.ty.is_box() {
299// Derefer should have removed all Box derefs
300::rustc_middle::util::bug::bug_fmt(format_args!("dereferencing {0:?} in codegen",
self.layout.ty));bug!("dereferencing {:?} in codegen", self.layout.ty);
301 }
302303let projected_ty = self304 .layout
305 .ty
306 .builtin_deref(true)
307 .unwrap_or_else(|| ::rustc_middle::util::bug::bug_fmt(format_args!("deref of non-pointer {0:?}",
self))bug!("deref of non-pointer {:?}", self));
308309let layout = cx.layout_of(projected_ty);
310self.val.deref(layout.align.abi).with_type(layout)
311 }
312313/// Store this operand into a place, applying move/copy annotation if present.
314 ///
315 /// This is the preferred method for storing operands, as it automatically
316 /// applies profiler annotations for tracked move/copy operations.
317pub fn store_with_annotation<Bx: BuilderMethods<'a, 'tcx, Value = V>>(
318self,
319 bx: &mut Bx,
320 dest: PlaceRef<'tcx, V>,
321 ) {
322self.store_with_annotation_and_flags(bx, dest, MemFlags::empty())
323 }
324325/// Same as store_with_annotation(), but also specify flags for the store.
326pub fn store_with_annotation_and_flags<Bx: BuilderMethods<'a, 'tcx, Value = V>>(
327self,
328 bx: &mut Bx,
329 dest: PlaceRef<'tcx, V>,
330 flags: MemFlags,
331 ) {
332if let Some(instance) = self.move_annotation {
333bx.with_move_annotation(instance, |bx| self.val.store_with_flags(bx, dest, flags))
334 } else {
335self.val.store_with_flags(bx, dest, flags)
336 }
337 }
338339/// If this operand is a `Pair`, we return an aggregate with the two values.
340 /// For other cases, see `immediate`.
341 ///
342 /// Note: The use of this is discouraged outside cg_llvm, as some other backends
343 /// don't natively support packing multiple things into one like this.
344pub fn immediate_or_packed_pair<Bx: BuilderMethods<'a, 'tcx, Value = V>>(
345self,
346 bx: &mut Bx,
347 ) -> V {
348if let OperandValue::Pair(a, b) = self.val {
349let llty = bx.cx().immediate_backend_type(self.layout);
350{
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_ssa/src/mir/operand.rs:350",
"rustc_codegen_ssa::mir::operand", ::tracing::Level::DEBUG,
::tracing_core::__macro_support::Option::Some("compiler/rustc_codegen_ssa/src/mir/operand.rs"),
::tracing_core::__macro_support::Option::Some(350u32),
::tracing_core::__macro_support::Option::Some("rustc_codegen_ssa::mir::operand"),
::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};
__CALLSITE.metadata().fields().value_set_all(&[(::tracing::__macro_support::Option::Some(&format_args!("Operand::immediate_or_packed_pair: packing {0:?} into {1:?}",
self, llty) as &dyn ::tracing::field::Value))])
});
} else { ; }
};debug!("Operand::immediate_or_packed_pair: packing {:?} into {:?}", self, llty);
351// Reconstruct the immediate aggregate.
352let mut llpair = bx.cx().const_poison(llty);
353llpair = bx.insert_value(llpair, a, 0);
354llpair = bx.insert_value(llpair, b, 1);
355llpair356 } else {
357self.immediate()
358 }
359 }
360361/// If the type is a pair, we return a `Pair`, otherwise, an `Immediate`.
362 ///
363 /// Note: The use of this is discouraged outside cg_llvm, as some other backends
364 /// don't natively support packing multiple things into one like this.
365pub fn from_immediate_or_packed_pair<Bx: BuilderMethods<'a, 'tcx, Value = V>>(
366 bx: &mut Bx,
367 llval: V,
368 layout: TyAndLayout<'tcx>,
369 ) -> Self {
370let val = if let BackendRepr::ScalarPair { .. } = layout.backend_repr {
371{
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_ssa/src/mir/operand.rs:371",
"rustc_codegen_ssa::mir::operand", ::tracing::Level::DEBUG,
::tracing_core::__macro_support::Option::Some("compiler/rustc_codegen_ssa/src/mir/operand.rs"),
::tracing_core::__macro_support::Option::Some(371u32),
::tracing_core::__macro_support::Option::Some("rustc_codegen_ssa::mir::operand"),
::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};
__CALLSITE.metadata().fields().value_set_all(&[(::tracing::__macro_support::Option::Some(&format_args!("Operand::from_immediate_or_packed_pair: unpacking {0:?} @ {1:?}",
llval, layout) as &dyn ::tracing::field::Value))])
});
} else { ; }
};debug!("Operand::from_immediate_or_packed_pair: unpacking {:?} @ {:?}", llval, layout);
372373// Deconstruct the immediate aggregate.
374let a_llval = bx.extract_value(llval, 0);
375let b_llval = bx.extract_value(llval, 1);
376 OperandValue::Pair(a_llval, b_llval)
377 } else {
378 OperandValue::Immediate(llval)
379 };
380OperandRef { val, layout, move_annotation: None }
381 }
382383pub(crate) fn extract_field<Bx: BuilderMethods<'a, 'tcx, Value = V>>(
384&self,
385 fx: &mut FunctionCx<'a, 'tcx, Bx>,
386 bx: &mut Bx,
387 i: usize,
388 ) -> Self {
389let field = self.layout.field(bx.cx(), i);
390let offset = self.layout.fields.offset(i);
391392if self.layout.is_ssa_standalone() && !field.is_ssa_standalone() {
393// Part of https://github.com/rust-lang/compiler-team/issues/838
394::rustc_middle::util::bug::span_bug_fmt(fx.mir.span,
format_args!("Standalone type {0:?} cannot project to memory-dependent field type {1:?}",
self, field));span_bug!(
395 fx.mir.span,
396"Standalone type {self:?} cannot project to memory-dependent field type {field:?}",
397 );
398 }
399400let val = if field.is_zst() {
401 OperandValue::ZeroSized402 } else if field.size == self.layout.size {
403{
match (&offset.bytes(), &0) {
(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!(offset.bytes(), 0);
404fx.codegen_transmute_operand(bx, *self, field)
405 } else {
406let (in_scalar, imm) = match (self.val, self.layout.backend_repr) {
407// Extract a scalar component from a pair.
408(
409 OperandValue::Pair(a_llval, b_llval),
410 BackendRepr::ScalarPair { a, b, b_offset },
411 ) => {
412if offset.bytes() == 0 {
413{
match (&field.size, &a.size(bx.cx())) {
(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!(field.size, a.size(bx.cx()));
414 (Some(a), a_llval)
415 } else {
416{
match (&offset, &b_offset) {
(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!(offset, b_offset);
417{
match (&field.size, &b.size(bx.cx())) {
(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!(field.size, b.size(bx.cx()));
418 (Some(b), b_llval)
419 }
420 }
421422_ => {
423::rustc_middle::util::bug::span_bug_fmt(fx.mir.span,
format_args!("OperandRef::extract_field({0:?}): not applicable", self))span_bug!(fx.mir.span, "OperandRef::extract_field({:?}): not applicable", self)424 }
425 };
426 OperandValue::Immediate(match field.backend_repr {
427 BackendRepr::SimdVector { .. } => imm,
428 BackendRepr::Scalar(out_scalar) => {
429let Some(in_scalar) = in_scalarelse {
430::rustc_middle::util::bug::span_bug_fmt(fx.mir.span,
format_args!("OperandRef::extract_field({0:?}): missing input scalar for output scalar",
self))span_bug!(
431 fx.mir.span,
432"OperandRef::extract_field({:?}): missing input scalar for output scalar",
433self
434)435 };
436if in_scalar != out_scalar {
437// If the backend and backend_immediate types might differ,
438 // flip back to the backend type then to the new immediate.
439 // This avoids nop truncations, but still handles things like
440 // Bools in union fields needs to be truncated.
441let backend = bx.from_immediate(imm);
442bx.to_immediate_scalar(backend, out_scalar)
443 } else {
444imm445 }
446 }
447 BackendRepr::ScalarPair { a: _, b: _, b_offset: _ }
448 | BackendRepr::Memory { .. }
449 | BackendRepr::SimdScalableVector { .. } => ::rustc_middle::util::bug::bug_fmt(format_args!("impossible case reached"))bug!(),
450 })
451 };
452453OperandRef { val, layout: field, move_annotation: None }
454 }
455456/// Obtain the actual discriminant of a value.
457#[allow(clippy :: suspicious_else_formatting)]
{
let __tracing_attr_span;
let __tracing_attr_guard;
if ::tracing::Level::TRACE <= ::tracing::level_filters::STATIC_MAX_LEVEL
&&
::tracing::Level::TRACE <=
::tracing::level_filters::LevelFilter::current() ||
{ false } {
__tracing_attr_span =
{
use ::tracing::__macro_support::Callsite as _;
static __CALLSITE: ::tracing::callsite::DefaultCallsite =
{
static META: ::tracing::Metadata<'static> =
{
::tracing_core::metadata::Metadata::new("codegen_get_discr",
"rustc_codegen_ssa::mir::operand", ::tracing::Level::TRACE,
::tracing_core::__macro_support::Option::Some("compiler/rustc_codegen_ssa/src/mir/operand.rs"),
::tracing_core::__macro_support::Option::Some(457u32),
::tracing_core::__macro_support::Option::Some("rustc_codegen_ssa::mir::operand"),
::tracing_core::field::FieldSet::new(&[{
const NAME:
::tracing::__macro_support::FieldName<{
::tracing::__macro_support::FieldName::len("self")
}> =
::tracing::__macro_support::FieldName::new("self");
NAME.as_str()
},
{
const NAME:
::tracing::__macro_support::FieldName<{
::tracing::__macro_support::FieldName::len("cast_to")
}> =
::tracing::__macro_support::FieldName::new("cast_to");
NAME.as_str()
}], ::tracing_core::callsite::Identifier(&__CALLSITE)),
::tracing::metadata::Kind::SPAN)
};
::tracing::callsite::DefaultCallsite::new(&META)
};
let mut interest = ::tracing::subscriber::Interest::never();
if ::tracing::Level::TRACE <=
::tracing::level_filters::STATIC_MAX_LEVEL &&
::tracing::Level::TRACE <=
::tracing::level_filters::LevelFilter::current() &&
{ interest = __CALLSITE.interest(); !interest.is_never() }
&&
::tracing::__macro_support::__is_enabled(__CALLSITE.metadata(),
interest) {
let meta = __CALLSITE.metadata();
::tracing::Span::new(meta,
&{
#[allow(unused_imports)]
use ::tracing::field::{debug, display, Value};
meta.fields().value_set_all(&[(::tracing::__macro_support::Option::Some(&::tracing::field::debug(&self)
as &dyn ::tracing::field::Value)),
(::tracing::__macro_support::Option::Some(&::tracing::field::debug(&cast_to)
as &dyn ::tracing::field::Value))])
})
} else {
let span =
::tracing::__macro_support::__disabled_span(__CALLSITE.metadata());
{};
span
}
};
__tracing_attr_guard = __tracing_attr_span.enter();
}
#[warn(clippy :: suspicious_else_formatting)]
{
#[allow(unknown_lints, unreachable_code, clippy ::
diverging_sub_expression, clippy :: empty_loop, clippy ::
let_unit_value, clippy :: let_with_type_underscore, clippy ::
needless_return, clippy :: unreachable)]
if false {
let __tracing_attr_fake_return: V = loop {};
return __tracing_attr_fake_return;
}
{
let dl = &bx.tcx().data_layout;
let cast_to_layout = bx.cx().layout_of(cast_to);
let cast_to = bx.cx().immediate_backend_type(cast_to_layout);
if self.layout.is_uninhabited() {
return bx.cx().const_poison(cast_to);
}
let (tag_scalar, tag_encoding, tag_field) =
match self.layout.variants {
Variants::Empty => {
::core::panicking::panic_fmt(format_args!("internal error: entered unreachable code: {0}",
format_args!("we already handled uninhabited types")));
}
Variants::Single { index } => {
let discr_val =
if let Some(discr) =
self.layout.ty.discriminant_for_variant(bx.tcx(), index) {
discr.val
} else {
{
match (&index, &FIRST_VARIANT) {
(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);
}
}
}
};
0
};
return bx.cx().const_uint_big(cast_to, discr_val);
}
Variants::Multiple { tag, ref tag_encoding, tag_field, .. }
=> {
(tag, tag_encoding, tag_field)
}
};
let tag_op =
match self.val {
OperandValue::ZeroSized =>
::rustc_middle::util::bug::bug_fmt(format_args!("impossible case reached")),
OperandValue::Immediate(_) | OperandValue::Pair(_, _) => {
self.extract_field(fx, bx, tag_field.as_usize())
}
OperandValue::Ref(place) => {
let tag =
place.with_type(self.layout).project_field(bx,
tag_field.as_usize());
bx.load_operand(tag)
}
};
let tag_imm = tag_op.immediate();
match *tag_encoding {
TagEncoding::Direct => {
let signed =
match tag_scalar.primitive() {
Primitive::Int(_, signed) =>
!tag_scalar.is_bool() && signed,
_ => false,
};
bx.intcast(tag_imm, cast_to, signed)
}
TagEncoding::Niche {
untagged_variant, ref niche_variants, niche_start } => {
let (tag, tag_llty) =
match tag_scalar.primitive() {
Primitive::Pointer(_) => {
let t = bx.type_from_integer(dl.ptr_sized_integer());
let tag = bx.ptrtoint(tag_imm, t);
(tag, t)
}
_ =>
(tag_imm, bx.cx().immediate_backend_type(tag_op.layout)),
};
let relative_max =
niche_variants.last.as_u32() -
niche_variants.start.as_u32();
let niche_start_const =
bx.cx().const_uint_big(tag_llty, niche_start);
let (is_niche, tagged_discr, delta) =
if relative_max == 0 {
let is_niche =
bx.icmp(IntPredicate::IntEQ, tag, niche_start_const);
let tagged_discr =
bx.cx().const_uint(cast_to,
niche_variants.start.as_u32() as u64);
(is_niche, tagged_discr, 0)
} else {
if niche_variants.contains(&untagged_variant) &&
bx.cx().sess().opts.optimize != OptLevel::No {
let impossible =
niche_start.wrapping_add(u128::from(untagged_variant.as_u32())).wrapping_sub(u128::from(niche_variants.start.as_u32()));
let impossible =
bx.cx().const_uint_big(tag_llty, impossible);
let ne = bx.icmp(IntPredicate::IntNE, tag, impossible);
bx.assume(ne);
}
let tag_range = tag_scalar.valid_range(&dl);
let tag_size = tag_scalar.size(&dl);
let niche_end =
u128::from(relative_max).wrapping_add(niche_start);
let niche_end = tag_size.truncate(niche_end);
let relative_discr = bx.sub(tag, niche_start_const);
let cast_tag = bx.intcast(relative_discr, cast_to, false);
let is_niche =
if tag_range.no_unsigned_wraparound(tag_size) == Ok(true) {
if niche_start == tag_range.start {
let niche_end_const =
bx.cx().const_uint_big(tag_llty, niche_end);
bx.icmp(IntPredicate::IntULE, tag, niche_end_const)
} else {
{
match (&niche_end, &tag_range.end) {
(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);
}
}
}
};
bx.icmp(IntPredicate::IntUGE, tag, niche_start_const)
}
} else if tag_range.no_signed_wraparound(tag_size) ==
Ok(true) {
if niche_start == tag_range.start {
let niche_end_const =
bx.cx().const_uint_big(tag_llty, niche_end);
bx.icmp(IntPredicate::IntSLE, tag, niche_end_const)
} else {
{
match (&niche_end, &tag_range.end) {
(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);
}
}
}
};
bx.icmp(IntPredicate::IntSGE, tag, niche_start_const)
}
} else {
bx.icmp(IntPredicate::IntULE, relative_discr,
bx.cx().const_uint(tag_llty, relative_max as u64))
};
(is_niche, cast_tag, niche_variants.start.as_u32() as u128)
};
let tagged_discr =
if delta == 0 {
tagged_discr
} else {
bx.add(tagged_discr, bx.cx().const_uint_big(cast_to, delta))
};
let untagged_variant_const =
bx.cx().const_uint(cast_to,
u64::from(untagged_variant.as_u32()));
let discr =
bx.select(is_niche, tagged_discr, untagged_variant_const);
discr
}
}
}
}
}#[instrument(level = "trace", skip(fx, bx))]458pub fn codegen_get_discr<Bx: BuilderMethods<'a, 'tcx, Value = V>>(
459self,
460 fx: &mut FunctionCx<'a, 'tcx, Bx>,
461 bx: &mut Bx,
462 cast_to: Ty<'tcx>,
463 ) -> V {
464let dl = &bx.tcx().data_layout;
465let cast_to_layout = bx.cx().layout_of(cast_to);
466let cast_to = bx.cx().immediate_backend_type(cast_to_layout);
467468// We check uninhabitedness separately because a type like
469 // `enum Foo { Bar(i32, !) }` is still reported as `Variants::Single`,
470 // *not* as `Variants::Empty`.
471if self.layout.is_uninhabited() {
472return bx.cx().const_poison(cast_to);
473 }
474475let (tag_scalar, tag_encoding, tag_field) = match self.layout.variants {
476 Variants::Empty => unreachable!("we already handled uninhabited types"),
477 Variants::Single { index } => {
478let discr_val =
479if let Some(discr) = self.layout.ty.discriminant_for_variant(bx.tcx(), index) {
480 discr.val
481 } else {
482// This arm is for types which are neither enums nor coroutines,
483 // and thus for which the only possible "variant" should be the first one.
484assert_eq!(index, FIRST_VARIANT);
485// There's thus no actual discriminant to return, so we return
486 // what it would have been if this was a single-variant enum.
4870
488};
489return bx.cx().const_uint_big(cast_to, discr_val);
490 }
491 Variants::Multiple { tag, ref tag_encoding, tag_field, .. } => {
492 (tag, tag_encoding, tag_field)
493 }
494 };
495496// Read the tag/niche-encoded discriminant from memory.
497let tag_op = match self.val {
498 OperandValue::ZeroSized => bug!(),
499 OperandValue::Immediate(_) | OperandValue::Pair(_, _) => {
500self.extract_field(fx, bx, tag_field.as_usize())
501 }
502 OperandValue::Ref(place) => {
503let tag = place.with_type(self.layout).project_field(bx, tag_field.as_usize());
504 bx.load_operand(tag)
505 }
506 };
507let tag_imm = tag_op.immediate();
508509// Decode the discriminant (specifically if it's niche-encoded).
510match *tag_encoding {
511 TagEncoding::Direct => {
512let signed = match tag_scalar.primitive() {
513// We use `i1` for bytes that are always `0` or `1`,
514 // e.g., `#[repr(i8)] enum E { A, B }`, but we can't
515 // let LLVM interpret the `i1` as signed, because
516 // then `i1 1` (i.e., `E::B`) is effectively `i8 -1`.
517Primitive::Int(_, signed) => !tag_scalar.is_bool() && signed,
518_ => false,
519 };
520 bx.intcast(tag_imm, cast_to, signed)
521 }
522 TagEncoding::Niche { untagged_variant, ref niche_variants, niche_start } => {
523// Cast to an integer so we don't have to treat a pointer as a
524 // special case.
525let (tag, tag_llty) = match tag_scalar.primitive() {
526// FIXME(erikdesjardins): handle non-default addrspace ptr sizes
527Primitive::Pointer(_) => {
528let t = bx.type_from_integer(dl.ptr_sized_integer());
529let tag = bx.ptrtoint(tag_imm, t);
530 (tag, t)
531 }
532_ => (tag_imm, bx.cx().immediate_backend_type(tag_op.layout)),
533 };
534535// `layout_sanity_check` ensures that we only get here for cases where the discriminant
536 // value and the variant index match, since that's all `Niche` can encode.
537538let relative_max = niche_variants.last.as_u32() - niche_variants.start.as_u32();
539let niche_start_const = bx.cx().const_uint_big(tag_llty, niche_start);
540541// We have a subrange `niche_start..=niche_end` inside `range`.
542 // If the value of the tag is inside this subrange, it's a
543 // "niche value", an increment of the discriminant. Otherwise it
544 // indicates the untagged variant.
545 // A general algorithm to extract the discriminant from the tag
546 // is:
547 // relative_tag = tag - niche_start
548 // is_niche = relative_tag <= (ule) relative_max
549 // discr = if is_niche {
550 // cast(relative_tag) + niche_variants.start()
551 // } else {
552 // untagged_variant
553 // }
554 // However, we will likely be able to emit simpler code.
555let (is_niche, tagged_discr, delta) = if relative_max == 0 {
556// Best case scenario: only one tagged variant. This will
557 // likely become just a comparison and a jump.
558 // The algorithm is:
559 // is_niche = tag == niche_start
560 // discr = if is_niche {
561 // niche_start
562 // } else {
563 // untagged_variant
564 // }
565let is_niche = bx.icmp(IntPredicate::IntEQ, tag, niche_start_const);
566let tagged_discr =
567 bx.cx().const_uint(cast_to, niche_variants.start.as_u32() as u64);
568 (is_niche, tagged_discr, 0)
569 } else {
570// Thanks to parameter attributes and load metadata, LLVM already knows
571 // the general valid range of the tag. It's possible, though, for there
572 // to be an impossible value *in the middle*, which those ranges don't
573 // communicate, so it's worth an `assume` to let the optimizer know.
574 // Most importantly, this means when optimizing a variant test like
575 // `SELECT(is_niche, complex, CONST) == CONST` it's ok to simplify that
576 // to `!is_niche` because the `complex` part can't possibly match.
577 //
578 // This was previously asserted on `tagged_discr` below, where the
579 // impossible value is more obvious, but that caused an intermediate
580 // value to become multi-use and thus not optimize, so instead this
581 // assumes on the original input which is always multi-use. See
582 // <https://github.com/llvm/llvm-project/issues/134024#issuecomment-3131782555>
583 //
584 // FIXME: If we ever get range assume operand bundles in LLVM (so we
585 // don't need the `icmp`s in the instruction stream any more), it
586 // might be worth moving this back to being on the switch argument
587 // where it's more obviously applicable.
588if niche_variants.contains(&untagged_variant)
589 && bx.cx().sess().opts.optimize != OptLevel::No
590 {
591let impossible = niche_start
592 .wrapping_add(u128::from(untagged_variant.as_u32()))
593 .wrapping_sub(u128::from(niche_variants.start.as_u32()));
594let impossible = bx.cx().const_uint_big(tag_llty, impossible);
595let ne = bx.icmp(IntPredicate::IntNE, tag, impossible);
596 bx.assume(ne);
597 }
598599// With multiple niched variants we'll have to actually compute
600 // the variant index from the stored tag.
601 //
602 // However, there's still one small optimization we can often do for
603 // determining *whether* a tag value is a natural value or a niched
604 // variant. The general algorithm involves a subtraction that often
605 // wraps in practice, making it tricky to analyse. However, in cases
606 // where there are few enough possible values of the tag that it doesn't
607 // need to wrap around, we can instead just look for the contiguous
608 // tag values on the end of the range with a single comparison.
609 //
610 // For example, take the type `enum Demo { A, B, Untagged(bool) }`.
611 // The `bool` is {0, 1}, and the two other variants are given the
612 // tags {2, 3} respectively. That means the `tag_range` is
613 // `[0, 3]`, which doesn't wrap as unsigned (nor as signed), so
614 // we can test for the niched variants with just `>= 2`.
615 //
616 // That means we're looking either for the niche values *above*
617 // the natural values of the untagged variant:
618 //
619 // niche_start niche_end
620 // | |
621 // v v
622 // MIN -------------+---------------------------+---------- MAX
623 // ^ | is niche |
624 // | +---------------------------+
625 // | |
626 // tag_range.start tag_range.end
627 //
628 // Or *below* the natural values:
629 //
630 // niche_start niche_end
631 // | |
632 // v v
633 // MIN ----+-----------------------+---------------------- MAX
634 // | is niche | ^
635 // +-----------------------+ |
636 // | |
637 // tag_range.start tag_range.end
638 //
639 // With those two options and having the flexibility to choose
640 // between a signed or unsigned comparison on the tag, that
641 // covers most realistic scenarios. The tests have a (contrived)
642 // example of a 1-byte enum with over 128 niched variants which
643 // wraps both as signed as unsigned, though, and for something
644 // like that we're stuck with the general algorithm.
645646let tag_range = tag_scalar.valid_range(&dl);
647let tag_size = tag_scalar.size(&dl);
648let niche_end = u128::from(relative_max).wrapping_add(niche_start);
649let niche_end = tag_size.truncate(niche_end);
650651let relative_discr = bx.sub(tag, niche_start_const);
652let cast_tag = bx.intcast(relative_discr, cast_to, false);
653let is_niche = if tag_range.no_unsigned_wraparound(tag_size) == Ok(true) {
654if niche_start == tag_range.start {
655let niche_end_const = bx.cx().const_uint_big(tag_llty, niche_end);
656 bx.icmp(IntPredicate::IntULE, tag, niche_end_const)
657 } else {
658assert_eq!(niche_end, tag_range.end);
659 bx.icmp(IntPredicate::IntUGE, tag, niche_start_const)
660 }
661 } else if tag_range.no_signed_wraparound(tag_size) == Ok(true) {
662if niche_start == tag_range.start {
663let niche_end_const = bx.cx().const_uint_big(tag_llty, niche_end);
664 bx.icmp(IntPredicate::IntSLE, tag, niche_end_const)
665 } else {
666assert_eq!(niche_end, tag_range.end);
667 bx.icmp(IntPredicate::IntSGE, tag, niche_start_const)
668 }
669 } else {
670 bx.icmp(
671 IntPredicate::IntULE,
672 relative_discr,
673 bx.cx().const_uint(tag_llty, relative_max as u64),
674 )
675 };
676677 (is_niche, cast_tag, niche_variants.start.as_u32() as u128)
678 };
679680let tagged_discr = if delta == 0 {
681 tagged_discr
682 } else {
683 bx.add(tagged_discr, bx.cx().const_uint_big(cast_to, delta))
684 };
685686let untagged_variant_const =
687 bx.cx().const_uint(cast_to, u64::from(untagged_variant.as_u32()));
688689let discr = bx.select(is_niche, tagged_discr, untagged_variant_const);
690691// In principle we could insert assumes on the possible range of `discr`, but
692 // currently in LLVM this isn't worth it because the original `tag` will
693 // have either a `range` parameter attribute or `!range` metadata,
694 // or come from a `transmute` that already `assume`d it.
695696discr
697 }
698 }
699 }
700}
701702/// Each of these variants starts out as `Either::Right` when it's uninitialized,
703/// then setting the field changes that to `Either::Left` with the backend value.
704#[derive(#[automatically_derived]
impl<V: ::core::fmt::Debug> ::core::fmt::Debug for OperandValueBuilder<V> {
#[inline]
fn fmt(&self, f: &mut ::core::fmt::Formatter) -> ::core::fmt::Result {
match self {
OperandValueBuilder::ZeroSized =>
::core::fmt::Formatter::write_str(f, "ZeroSized"),
OperandValueBuilder::Immediate(__self_0) =>
::core::fmt::Formatter::debug_tuple_field1_finish(f,
"Immediate", &__self_0),
OperandValueBuilder::Pair(__self_0, __self_1) =>
::core::fmt::Formatter::debug_tuple_field2_finish(f, "Pair",
__self_0, &__self_1),
OperandValueBuilder::Vector(__self_0) =>
::core::fmt::Formatter::debug_tuple_field1_finish(f, "Vector",
&__self_0),
}
}
}Debug, #[automatically_derived]
impl<V: ::core::marker::Copy> ::core::marker::Copy for OperandValueBuilder<V>
{
}Copy, #[automatically_derived]
impl<V: ::core::clone::Clone> ::core::clone::Clone for OperandValueBuilder<V>
{
#[inline]
fn clone(&self) -> OperandValueBuilder<V> {
match self {
OperandValueBuilder::ZeroSized => OperandValueBuilder::ZeroSized,
OperandValueBuilder::Immediate(__self_0) =>
OperandValueBuilder::Immediate(::core::clone::Clone::clone(__self_0)),
OperandValueBuilder::Pair(__self_0, __self_1) =>
OperandValueBuilder::Pair(::core::clone::Clone::clone(__self_0),
::core::clone::Clone::clone(__self_1)),
OperandValueBuilder::Vector(__self_0) =>
OperandValueBuilder::Vector(::core::clone::Clone::clone(__self_0)),
}
}
}Clone)]
705enum OperandValueBuilder<V> {
706 ZeroSized,
707 Immediate(Either<V, abi::Scalar>),
708 Pair(Either<V, abi::Scalar>, Either<V, abi::Scalar>),
709/// `repr(simd)` types need special handling because they each have a non-empty
710 /// array field (which uses [`OperandValue::Ref`]) despite the SIMD type itself
711 /// using [`OperandValue::Immediate`] which for any other kind of type would
712 /// mean that its one non-ZST field would also be [`OperandValue::Immediate`].
713Vector(Either<V, ()>),
714}
715716/// Allows building up an `OperandRef` by setting fields one at a time.
717#[derive(#[automatically_derived]
impl<'tcx, V: ::core::fmt::Debug> ::core::fmt::Debug for
OperandRefBuilder<'tcx, V> {
#[inline]
fn fmt(&self, f: &mut ::core::fmt::Formatter) -> ::core::fmt::Result {
::core::fmt::Formatter::debug_struct_field2_finish(f,
"OperandRefBuilder", "val", &self.val, "layout", &&self.layout)
}
}Debug, #[automatically_derived]
impl<'tcx, V: ::core::marker::Copy> ::core::marker::Copy for
OperandRefBuilder<'tcx, V> {
}Copy, #[automatically_derived]
impl<'tcx, V: ::core::clone::Clone> ::core::clone::Clone for
OperandRefBuilder<'tcx, V> {
#[inline]
fn clone(&self) -> OperandRefBuilder<'tcx, V> {
OperandRefBuilder {
val: ::core::clone::Clone::clone(&self.val),
layout: ::core::clone::Clone::clone(&self.layout),
}
}
}Clone)]
718pub(super) struct OperandRefBuilder<'tcx, V> {
719 val: OperandValueBuilder<V>,
720 layout: TyAndLayout<'tcx>,
721}
722723impl<'a, 'tcx, V: CodegenObject> OperandRefBuilder<'tcx, V> {
724/// Creates an uninitialized builder for an instance of the `layout`.
725 ///
726 /// ICEs for [`BackendRepr::Memory`] types (other than ZSTs), which should
727 /// be built up inside a [`PlaceRef`] instead as they need an allocated place
728 /// into which to write the values of the fields.
729pub(super) fn new(layout: TyAndLayout<'tcx>) -> Self {
730let val = match layout.backend_repr {
731 BackendRepr::Memory { .. } if layout.is_zst() => OperandValueBuilder::ZeroSized,
732 BackendRepr::Scalar(s) => OperandValueBuilder::Immediate(Either::Right(s)),
733 BackendRepr::ScalarPair { a, b, b_offset: _ } => {
734 OperandValueBuilder::Pair(Either::Right(a), Either::Right(b))
735 }
736 BackendRepr::SimdVector { .. } | BackendRepr::SimdScalableVector { .. } => {
737 OperandValueBuilder::Vector(Either::Right(()))
738 }
739 BackendRepr::Memory { .. } => {
740::rustc_middle::util::bug::bug_fmt(format_args!("Cannot use non-ZST Memory-ABI type in operand builder: {0:?}",
layout));bug!("Cannot use non-ZST Memory-ABI type in operand builder: {layout:?}");
741 }
742 };
743OperandRefBuilder { val, layout }
744 }
745746/// Creates an initialized builder for updating an existing `operand`.
747 ///
748 /// ICEs for [`BackendRepr::Memory`] types (other than ZSTs), which use
749 /// which use [`OperandValue::Ref`]. In this case, updates should be
750 /// performed by writing into the place
751pub(super) fn from_existing(operand: OperandRef<'tcx, V>) -> Self {
752let layout = operand.layout;
753let val = match (operand.val, layout.backend_repr) {
754 (OperandValue::ZeroSized, _) => OperandValueBuilder::ZeroSized,
755 (OperandValue::Immediate(v), BackendRepr::Scalar(_)) => {
756 OperandValueBuilder::Immediate(Either::Left(v))
757 }
758 (OperandValue::Immediate(v), BackendRepr::SimdVector { .. }) => {
759 OperandValueBuilder::Vector(Either::Left(v))
760 }
761 (OperandValue::Pair(a, b), BackendRepr::ScalarPair { a: _, b: _, b_offset: _ }) => {
762 OperandValueBuilder::Pair(Either::Left(a), Either::Left(b))
763 }
764 (_, BackendRepr::Memory { .. }) => {
765::rustc_middle::util::bug::bug_fmt(format_args!("Cannot use non-ZST Memory-ABI type in operand builder: {0:?}",
layout));bug!("Cannot use non-ZST Memory-ABI type in operand builder: {layout:?}");
766 }
767_ => {
768::rustc_middle::util::bug::bug_fmt(format_args!("Operand cannot be used with `from_existing`: {0:?}",
operand))bug!("Operand cannot be used with `from_existing`: {operand:?}")769 }
770 };
771OperandRefBuilder { val, layout }
772 }
773774pub(super) fn insert_field<Bx: BuilderMethods<'a, 'tcx, Value = V>>(
775&mut self,
776 bx: &mut Bx,
777 variant: VariantIdx,
778 field: FieldIdx,
779 field_operand: OperandRef<'tcx, V>,
780 ) {
781if let OperandValue::ZeroSized = field_operand.val {
782// A ZST never adds any state, so just ignore it.
783 // This special-casing is worth it because of things like
784 // `Result<!, !>` where `Ok(never)` is legal to write,
785 // but the type shows as FieldShape::Primitive so we can't
786 // actually look at the layout for the field being set.
787return;
788 }
789790let is_zero_offset = if let abi::FieldsShape::Primitive = self.layout.fields {
791// The other branch looking at field layouts ICEs for primitives,
792 // so we need to handle them separately.
793 // Because we handled ZSTs above (like the metadata in a thin pointer),
794 // the only possibility is that we're setting the one-and-only field.
795if !!self.layout.is_zst() {
::core::panicking::panic("assertion failed: !self.layout.is_zst()")
};assert!(!self.layout.is_zst());
796{
match (&variant, &FIRST_VARIANT) {
(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!(variant, FIRST_VARIANT);
797{
match (&field, &FieldIdx::ZERO) {
(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!(field, FieldIdx::ZERO);
798true
799} else {
800let variant_layout = self.layout.for_variant(bx.cx(), variant);
801let field_offset = variant_layout.fields.offset(field.as_usize());
802field_offset == Size::ZERO803 };
804805let mut update = |tgt: &mut Either<V, abi::Scalar>, src, from_scalar| {
806let to_scalar = tgt.unwrap_right();
807// We transmute here (rather than just `from_immediate`) because in
808 // `Result<usize, *const ()>` the field of the `Ok` is an integer,
809 // but the corresponding scalar in the enum is a pointer.
810let imm = transmute_scalar(bx, src, from_scalar, to_scalar);
811*tgt = Either::Left(imm);
812 };
813814match (field_operand.val, field_operand.layout.backend_repr) {
815 (OperandValue::ZeroSized, _) => {
::core::panicking::panic_fmt(format_args!("internal error: entered unreachable code: {0}",
format_args!("Handled above")));
}unreachable!("Handled above"),
816 (OperandValue::Immediate(v), BackendRepr::Scalar(from_scalar)) => match &mut self.val {
817 OperandValueBuilder::Immediate(val @ Either::Right(_)) if is_zero_offset => {
818update(val, v, from_scalar);
819 }
820 OperandValueBuilder::Pair(fst @ Either::Right(_), _) if is_zero_offset => {
821update(fst, v, from_scalar);
822 }
823 OperandValueBuilder::Pair(_, snd @ Either::Right(_)) if !is_zero_offset => {
824update(snd, v, from_scalar);
825 }
826_ => {
827::rustc_middle::util::bug::bug_fmt(format_args!("Tried to insert {0:?} into {1:?}.{2:?} of {3:?}",
field_operand, variant, field, self))bug!("Tried to insert {field_operand:?} into {variant:?}.{field:?} of {self:?}")828 }
829 },
830 (OperandValue::Immediate(v), BackendRepr::SimdVector { .. }) => match &mut self.val {
831 OperandValueBuilder::Vector(val @ Either::Right(())) if is_zero_offset => {
832*val = Either::Left(v);
833 }
834_ => {
835::rustc_middle::util::bug::bug_fmt(format_args!("Tried to insert {0:?} into {1:?}.{2:?} of {3:?}",
field_operand, variant, field, self))bug!("Tried to insert {field_operand:?} into {variant:?}.{field:?} of {self:?}")836 }
837 },
838 (
839 OperandValue::Pair(a, b),
840 BackendRepr::ScalarPair { a: from_sa, b: from_sb, b_offset: _ },
841 ) => match &mut self.val {
842 OperandValueBuilder::Pair(fst @ Either::Right(_), snd @ Either::Right(_)) => {
843update(fst, a, from_sa);
844update(snd, b, from_sb);
845 }
846_ => {
847::rustc_middle::util::bug::bug_fmt(format_args!("Tried to insert {0:?} into {1:?}.{2:?} of {3:?}",
field_operand, variant, field, self))bug!("Tried to insert {field_operand:?} into {variant:?}.{field:?} of {self:?}")848 }
849 },
850 (OperandValue::Ref(place), BackendRepr::Memory { .. }) => match &mut self.val {
851 OperandValueBuilder::Vector(val @ Either::Right(())) => {
852let ibty = bx.cx().immediate_backend_type(self.layout);
853let simd = bx.load_from_place(ibty, place);
854*val = Either::Left(simd);
855 }
856_ => {
857::rustc_middle::util::bug::bug_fmt(format_args!("Tried to insert {0:?} into {1:?}.{2:?} of {3:?}",
field_operand, variant, field, self))bug!("Tried to insert {field_operand:?} into {variant:?}.{field:?} of {self:?}")858 }
859 },
860_ => ::rustc_middle::util::bug::bug_fmt(format_args!("Operand cannot be used with `insert_field`: {0:?}",
field_operand))bug!("Operand cannot be used with `insert_field`: {field_operand:?}"),
861 }
862 }
863864/// Insert the immediate value `imm` for field `f` in the *type itself*,
865 /// rather than into one of the variants.
866 ///
867 /// Most things want [`Self::insert_field`] instead, but this one is
868 /// necessary for writing things like enum tags that aren't in any variant.
869pub(super) fn insert_imm(&mut self, f: FieldIdx, imm: V) {
870let field_offset = self.layout.fields.offset(f.as_usize());
871let is_zero_offset = field_offset == Size::ZERO;
872match &mut self.val {
873 OperandValueBuilder::Immediate(val @ Either::Right(_)) if is_zero_offset => {
874*val = Either::Left(imm);
875 }
876 OperandValueBuilder::Pair(fst @ Either::Right(_), _) if is_zero_offset => {
877*fst = Either::Left(imm);
878 }
879 OperandValueBuilder::Pair(_, snd @ Either::Right(_)) if !is_zero_offset => {
880*snd = Either::Left(imm);
881 }
882_ => ::rustc_middle::util::bug::bug_fmt(format_args!("Tried to insert {0:?} into field {1:?} of {2:?}",
imm, f, self))bug!("Tried to insert {imm:?} into field {f:?} of {self:?}"),
883 }
884 }
885886/// Replaces the current immediate value at the offset `offset`
887 /// with the value `imm`. A value must already be present.
888 ///
889 /// This is used along with [`Self::from_existing`] to perform in-place updates
890 /// of any operand.
891pub(super) fn update_imm(&mut self, offset: Size, imm: V) {
892let is_zero_offset = offset == Size::ZERO;
893match &mut self.val {
894 OperandValueBuilder::Immediate(val @ Either::Left(_)) if is_zero_offset => {
895*val = Either::Left(imm);
896 }
897 OperandValueBuilder::Pair(fst @ Either::Left(_), _) if is_zero_offset => {
898*fst = Either::Left(imm);
899 }
900 OperandValueBuilder::Pair(_, snd @ Either::Left(_)) if !is_zero_offset => {
901*snd = Either::Left(imm);
902 }
903_ => ::rustc_middle::util::bug::bug_fmt(format_args!("Tried to update {0:?} at offset {1:?} of {2:?}",
imm, offset, self))bug!("Tried to update {imm:?} at offset {offset:?} of {self:?}"),
904 }
905 }
906907/// After having set all necessary fields, this converts the builder back
908 /// to the normal `OperandRef`.
909 ///
910 /// ICEs if any required fields were not set.
911pub(super) fn build(&self, cx: &impl CodegenMethods<'tcx, Value = V>) -> OperandRef<'tcx, V> {
912let OperandRefBuilder { val, layout } = *self;
913914// For something like `Option::<u32>::None`, it's expected that the
915 // payload scalar will not actually have been set, so this converts
916 // unset scalars to corresponding `undef` values so long as the scalar
917 // from the layout allows uninit.
918let unwrap = |r: Either<V, abi::Scalar>| match r {
919 Either::Left(v) => v,
920 Either::Right(s) if s.is_uninit_valid() => {
921let bty = cx.type_from_scalar(s);
922cx.const_undef(bty)
923 }
924 Either::Right(_) => ::rustc_middle::util::bug::bug_fmt(format_args!("OperandRef::build called while fields are missing {0:?}",
self))bug!("OperandRef::build called while fields are missing {self:?}"),
925 };
926927let val = match val {
928 OperandValueBuilder::ZeroSized => OperandValue::ZeroSized,
929 OperandValueBuilder::Immediate(v) => OperandValue::Immediate(unwrap(v)),
930 OperandValueBuilder::Pair(a, b) => OperandValue::Pair(unwrap(a), unwrap(b)),
931 OperandValueBuilder::Vector(v) => match v {
932 Either::Left(v) => OperandValue::Immediate(v),
933 Either::Right(())
934if let BackendRepr::SimdVector { element, .. } = layout.backend_repr
935 && element.is_uninit_valid() =>
936 {
937let bty = cx.immediate_backend_type(layout);
938 OperandValue::Immediate(cx.const_undef(bty))
939 }
940 Either::Right(()) => {
941::rustc_middle::util::bug::bug_fmt(format_args!("OperandRef::build called while fields are missing {0:?}",
self))bug!("OperandRef::build called while fields are missing {self:?}")942 }
943 },
944 };
945OperandRef { val, layout, move_annotation: None }
946 }
947}
948949/// Default size limit for move/copy annotations (in bytes). 64 bytes is a common size of a cache
950/// line, and the assumption is that anything this size or below is very cheap to move/copy, so only
951/// annotate copies larger than this.
952const MOVE_ANNOTATION_DEFAULT_LIMIT: u64 = 65;
953954impl<'a, 'tcx, V: CodegenObject> OperandValue<V> {
955/// Returns an `OperandValue` that's generally UB to use in any way.
956 ///
957 /// Depending on the `layout`, returns `ZeroSized` for ZSTs, an `Immediate` or
958 /// `Pair` containing poison value(s), or a `Ref` containing a poison pointer.
959 ///
960 /// Supports sized types only.
961pub fn poison<Bx: BuilderMethods<'a, 'tcx, Value = V>>(
962 bx: &mut Bx,
963 layout: TyAndLayout<'tcx>,
964 ) -> OperandValue<V> {
965if !layout.is_sized() {
::core::panicking::panic("assertion failed: layout.is_sized()")
};assert!(layout.is_sized());
966match layout.backend_repr {
967_ if layout.is_zst() => OperandValue::ZeroSized,
968 BackendRepr::Scalar(_)
969 | BackendRepr::SimdVector { .. }
970 | BackendRepr::SimdScalableVector { .. } => {
971let ibty = bx.cx().immediate_backend_type(layout);
972 OperandValue::Immediate(bx.const_poison(ibty))
973 }
974 BackendRepr::ScalarPair { .. } => {
975let ibty0 = bx.cx().scalar_pair_element_backend_type(layout, 0, true);
976let ibty1 = bx.cx().scalar_pair_element_backend_type(layout, 1, true);
977 OperandValue::Pair(bx.const_poison(ibty0), bx.const_poison(ibty1))
978 }
979 BackendRepr::Memory { .. } => {
980let ptr = bx.cx().type_ptr();
981 OperandValue::Ref(PlaceValue::new_sized(bx.const_poison(ptr), layout.align.abi))
982 }
983 }
984 }
985986pub fn store<Bx: BuilderMethods<'a, 'tcx, Value = V>>(
987self,
988 bx: &mut Bx,
989 dest: PlaceRef<'tcx, V>,
990 ) {
991self.store_with_flags(bx, dest, MemFlags::empty());
992 }
993994pub fn volatile_store<Bx: BuilderMethods<'a, 'tcx, Value = V>>(
995self,
996 bx: &mut Bx,
997 dest: PlaceRef<'tcx, V>,
998 ) {
999self.store_with_flags(bx, dest, MemFlags::VOLATILE);
1000 }
10011002pub fn nontemporal_store<Bx: BuilderMethods<'a, 'tcx, Value = V>>(
1003self,
1004 bx: &mut Bx,
1005 dest: PlaceRef<'tcx, V>,
1006 ) {
1007self.store_with_flags(bx, dest, MemFlags::NONTEMPORAL);
1008 }
10091010pub(crate) fn store_with_flags<Bx: BuilderMethods<'a, 'tcx, Value = V>>(
1011self,
1012 bx: &mut Bx,
1013 dest: PlaceRef<'tcx, V>,
1014 flags: MemFlags,
1015 ) {
1016{
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_ssa/src/mir/operand.rs:1016",
"rustc_codegen_ssa::mir::operand", ::tracing::Level::DEBUG,
::tracing_core::__macro_support::Option::Some("compiler/rustc_codegen_ssa/src/mir/operand.rs"),
::tracing_core::__macro_support::Option::Some(1016u32),
::tracing_core::__macro_support::Option::Some("rustc_codegen_ssa::mir::operand"),
::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};
__CALLSITE.metadata().fields().value_set_all(&[(::tracing::__macro_support::Option::Some(&format_args!("OperandRef::store: operand={0:?}, dest={1:?}",
self, dest) as &dyn ::tracing::field::Value))])
});
} else { ; }
};debug!("OperandRef::store: operand={:?}, dest={:?}", self, dest);
1017match self {
1018 OperandValue::ZeroSized => {
1019// Avoid generating stores of zero-sized values, because the only way to have a
1020 // zero-sized value is through `undef`/`poison`, and the store itself is useless.
1021}
1022 OperandValue::Ref(val) => {
1023if !dest.layout.is_sized() {
{
::core::panicking::panic_fmt(format_args!("cannot directly store unsized values"));
}
};assert!(dest.layout.is_sized(), "cannot directly store unsized values");
1024if val.llextra.is_some() {
1025::rustc_middle::util::bug::bug_fmt(format_args!("cannot directly store unsized values"));bug!("cannot directly store unsized values");
1026 }
1027bx.typed_place_copy_with_flags(dest.val, val, dest.layout, flags);
1028 }
1029 OperandValue::Immediate(s) => {
1030let val = bx.from_immediate(s);
1031bx.store_with_flags(val, dest.val.llval, dest.val.align, flags);
1032 }
1033 OperandValue::Pair(a, b) => {
1034let BackendRepr::ScalarPair { a: _, b: _, b_offset } = dest.layout.backend_repr
1035else {
1036::rustc_middle::util::bug::bug_fmt(format_args!("store_with_flags: invalid ScalarPair layout: {0:#?}",
dest.layout));bug!("store_with_flags: invalid ScalarPair layout: {:#?}", dest.layout);
1037 };
10381039let val = bx.from_immediate(a);
1040let align = dest.val.align;
1041bx.store_with_flags(val, dest.val.llval, align, flags);
10421043let llptr = bx.inbounds_ptradd(dest.val.llval, bx.const_usize(b_offset.bytes()));
1044let val = bx.from_immediate(b);
1045let align = dest.val.align.restrict_for_offset(b_offset);
1046// The CAPTURES_READ_ONLY flag only applies to the first element.
1047bx.store_with_flags(val, llptr, align, flags & !MemFlags::CAPTURES_READ_ONLY);
1048 }
1049 }
1050 }
1051}
10521053impl<'a, 'tcx, Bx: BuilderMethods<'a, 'tcx>> FunctionCx<'a, 'tcx, Bx> {
1054fn maybe_codegen_consume_direct(
1055&mut self,
1056 bx: &mut Bx,
1057 place_ref: mir::PlaceRef<'tcx>,
1058 ) -> Option<OperandRef<'tcx, Bx::Value>> {
1059{
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_ssa/src/mir/operand.rs:1059",
"rustc_codegen_ssa::mir::operand", ::tracing::Level::DEBUG,
::tracing_core::__macro_support::Option::Some("compiler/rustc_codegen_ssa/src/mir/operand.rs"),
::tracing_core::__macro_support::Option::Some(1059u32),
::tracing_core::__macro_support::Option::Some("rustc_codegen_ssa::mir::operand"),
::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};
__CALLSITE.metadata().fields().value_set_all(&[(::tracing::__macro_support::Option::Some(&format_args!("maybe_codegen_consume_direct(place_ref={0:?})",
place_ref) as &dyn ::tracing::field::Value))])
});
} else { ; }
};debug!("maybe_codegen_consume_direct(place_ref={:?})", place_ref);
10601061match self.locals[place_ref.local] {
1062 LocalRef::Operand(mut o) => {
1063// We only need to handle the projections that
1064 // `LocalAnalyzer::process_place` let make it here.
1065for elem in place_ref.projection {
1066match *elem {
1067 mir::ProjectionElem::Field(f, _) => {
1068if !!o.layout.ty.is_any_ptr() {
{
::core::panicking::panic_fmt(format_args!("Bad PlaceRef: destructing pointers should use cast/PtrMetadata, but tried to access field {0:?} of pointer {1:?}",
f, o));
}
};assert!(
1069 !o.layout.ty.is_any_ptr(),
1070"Bad PlaceRef: destructing pointers should use cast/PtrMetadata, \
1071 but tried to access field {f:?} of pointer {o:?}",
1072 );
1073 o = o.extract_field(self, bx, f.index());
1074 }
1075 mir::PlaceElem::Downcast(_, vidx) => {
1076if true {
{
match (&o.layout.variants, &abi::Variants::Single { index: vidx }) {
(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);
}
}
}
};
};debug_assert_eq!(
1077 o.layout.variants,
1078 abi::Variants::Single { index: vidx },
1079 );
1080let layout = o.layout.for_variant(bx.cx(), vidx);
1081 o = OperandRef { layout, ..o }
1082 }
1083_ => return None,
1084 }
1085 }
10861087Some(o)
1088 }
1089 LocalRef::PendingOperand => {
1090::rustc_middle::util::bug::bug_fmt(format_args!("use of {0:?} before def",
place_ref));bug!("use of {:?} before def", place_ref);
1091 }
1092 LocalRef::Place(..) | LocalRef::UnsizedPlace(..) => {
1093// watch out for locals that do not have an
1094 // alloca; they are handled somewhat differently
1095None1096 }
1097 }
1098 }
10991100pub fn codegen_consume(
1101&mut self,
1102 bx: &mut Bx,
1103 place_ref: mir::PlaceRef<'tcx>,
1104 ) -> OperandRef<'tcx, Bx::Value> {
1105{
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_ssa/src/mir/operand.rs:1105",
"rustc_codegen_ssa::mir::operand", ::tracing::Level::DEBUG,
::tracing_core::__macro_support::Option::Some("compiler/rustc_codegen_ssa/src/mir/operand.rs"),
::tracing_core::__macro_support::Option::Some(1105u32),
::tracing_core::__macro_support::Option::Some("rustc_codegen_ssa::mir::operand"),
::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};
__CALLSITE.metadata().fields().value_set_all(&[(::tracing::__macro_support::Option::Some(&format_args!("codegen_consume(place_ref={0:?})",
place_ref) as &dyn ::tracing::field::Value))])
});
} else { ; }
};debug!("codegen_consume(place_ref={:?})", place_ref);
11061107let ty = self.monomorphized_place_ty(place_ref);
1108let layout = bx.cx().layout_of(ty);
11091110// ZSTs don't require any actual memory access.
1111if layout.is_zst() {
1112return OperandRef::zero_sized(layout);
1113 }
11141115if let Some(o) = self.maybe_codegen_consume_direct(bx, place_ref) {
1116return o;
1117 }
11181119// for most places, to consume them we just load them
1120 // out from their home
1121let place = self.codegen_place(bx, place_ref);
1122bx.load_operand(place)
1123 }
11241125pub fn codegen_operand(
1126&mut self,
1127 bx: &mut Bx,
1128 operand: &mir::Operand<'tcx>,
1129 ) -> OperandRef<'tcx, Bx::Value> {
1130{
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_ssa/src/mir/operand.rs:1130",
"rustc_codegen_ssa::mir::operand", ::tracing::Level::DEBUG,
::tracing_core::__macro_support::Option::Some("compiler/rustc_codegen_ssa/src/mir/operand.rs"),
::tracing_core::__macro_support::Option::Some(1130u32),
::tracing_core::__macro_support::Option::Some("rustc_codegen_ssa::mir::operand"),
::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};
__CALLSITE.metadata().fields().value_set_all(&[(::tracing::__macro_support::Option::Some(&format_args!("codegen_operand(operand={0:?})",
operand) as &dyn ::tracing::field::Value))])
});
} else { ; }
};debug!("codegen_operand(operand={:?})", operand);
11311132match *operand {
1133 mir::Operand::Copy(ref place) | mir::Operand::Move(ref place) => {
1134let kind = match operand {
1135 mir::Operand::Move(_) => LangItem::CompilerMove,
1136 mir::Operand::Copy(_) => LangItem::CompilerCopy,
1137_ => ::core::panicking::panic("internal error: entered unreachable code")unreachable!(),
1138 };
11391140// Check if we should annotate this move/copy for profiling
1141let move_annotation = self.move_copy_annotation_instance(bx, place.as_ref(), kind);
11421143OperandRef { move_annotation, ..self.codegen_consume(bx, place.as_ref()) }
1144 }
11451146 mir::Operand::RuntimeChecks(checks) => {
1147let layout = bx.layout_of(bx.tcx().types.bool);
1148let BackendRepr::Scalar(scalar) = layout.backend_repr else {
1149::rustc_middle::util::bug::bug_fmt(format_args!("from_const: invalid ByVal layout: {0:#?}",
layout));bug!("from_const: invalid ByVal layout: {:#?}", layout);
1150 };
1151let x = Scalar::from_bool(checks.value(bx.tcx().sess));
1152let llval = bx.scalar_to_backend(x, scalar, bx.immediate_backend_type(layout));
1153let val = OperandValue::Immediate(llval);
1154OperandRef { val, layout, move_annotation: None }
1155 }
11561157 mir::Operand::Constant(ref constant) => {
1158let constant_ty = self.monomorphize(constant.ty());
1159// Most SIMD vector constants should be passed as immediates.
1160 // (In particular, some intrinsics really rely on this.)
1161if constant_ty.is_simd() {
1162// However, some SIMD types do not actually use the vector ABI
1163 // (in particular, packed SIMD types do not). Ensure we exclude those.
1164 //
1165 // We also have to exclude vectors of pointers because `immediate_const_vector`
1166 // does not work for those.
1167let layout = bx.layout_of(constant_ty);
1168let (_, element_ty) = constant_ty.simd_size_and_type(bx.tcx());
1169if let BackendRepr::SimdVector { .. } = layout.backend_repr
1170 && element_ty.is_numeric()
1171 {
1172let (llval, ty) = self.immediate_const_vector(bx, constant);
1173return OperandRef {
1174 val: OperandValue::Immediate(llval),
1175 layout: bx.layout_of(ty),
1176 move_annotation: None,
1177 };
1178 }
1179 }
1180self.eval_mir_constant_to_operand(bx, constant)
1181 }
1182 }
1183 }
11841185/// Creates an `Instance` for annotating a move/copy operation at codegen time.
1186 ///
1187 /// Returns `Some(instance)` if the operation should be annotated with debug info, `None`
1188 /// otherwise. The instance represents a monomorphized `compiler_move<T, SIZE>` or
1189 /// `compiler_copy<T, SIZE>` function that can be used to create debug scopes.
1190 ///
1191 /// There are a number of conditions that must be met for an annotation to be created, but aside
1192 /// from the basics (annotation is enabled, we're generating debuginfo), the primary concern is
1193 /// moves/copies which could result in a real `memcpy`. So we check for the size limit, but also
1194 /// that the underlying representation of the type is in memory.
1195fn move_copy_annotation_instance(
1196&self,
1197 bx: &Bx,
1198 place: mir::PlaceRef<'tcx>,
1199 kind: LangItem,
1200 ) -> Option<ty::Instance<'tcx>> {
1201let tcx = bx.tcx();
1202let sess = tcx.sess;
12031204// Skip if we're not generating debuginfo
1205if sess.opts.debuginfo == DebugInfo::None {
1206return None;
1207 }
12081209// Check if annotation is enabled and get size limit (otherwise skip)
1210let size_limit = match sess.opts.unstable_opts.annotate_moves {
1211 AnnotateMoves::Disabled => return None,
1212 AnnotateMoves::Enabled(None) => MOVE_ANNOTATION_DEFAULT_LIMIT,
1213 AnnotateMoves::Enabled(Some(limit)) => limit,
1214 };
12151216let ty = self.monomorphized_place_ty(place);
1217let layout = bx.cx().layout_of(ty);
1218let ty_size = layout.size.bytes();
12191220// Only annotate if type has a memory representation and exceeds size limit (and has a
1221 // non-zero size)
1222if layout.is_zst()
1223 || ty_size < size_limit1224 || !#[allow(non_exhaustive_omitted_patterns)] match layout.backend_repr {
BackendRepr::Memory { .. } => true,
_ => false,
}matches!(layout.backend_repr, BackendRepr::Memory { .. })1225 {
1226return None;
1227 }
12281229// Look up the DefId for compiler_move or compiler_copy lang item
1230let def_id = tcx.lang_items().get(kind)?;
12311232// Create generic args: compiler_move<T, SIZE> or compiler_copy<T, SIZE>
1233let size_const = ty::Const::from_target_usize(tcx, ty_size);
1234let generic_args = tcx.mk_args(&[ty.into(), size_const.into()]);
12351236// Create the Instance
1237let typing_env = self.mir.typing_env(tcx);
1238let instance = ty::Instance::expect_resolve(
1239tcx,
1240typing_env,
1241def_id,
1242generic_args,
1243 rustc_span::DUMMY_SP, // span only used for error messages
1244);
12451246Some(instance)
1247 }
1248}