1use std::assert_matches::assert_matches;
5
6use either::{Either, Left, Right};
7use rustc_abi as abi;
8use rustc_abi::{BackendRepr, HasDataLayout, Size};
9use rustc_hir::def::Namespace;
10use rustc_middle::mir::interpret::ScalarSizeMismatch;
11use rustc_middle::ty::layout::{HasTyCtxt, HasTypingEnv, TyAndLayout};
12use rustc_middle::ty::print::{FmtPrinter, PrettyPrinter};
13use rustc_middle::ty::{ConstInt, ScalarInt, Ty, TyCtxt};
14use rustc_middle::{bug, mir, span_bug, ty};
15use rustc_span::DUMMY_SP;
16use tracing::field::Empty;
17use tracing::trace;
18
19use super::{
20 CtfeProvenance, Frame, InterpCx, InterpResult, MPlaceTy, Machine, MemPlace, MemPlaceMeta,
21 OffsetMode, PlaceTy, Pointer, Projectable, Provenance, Scalar, alloc_range, err_ub,
22 from_known_layout, interp_ok, mir_assign_valid_types, throw_ub,
23};
24use crate::enter_trace_span;
25
26#[derive(Copy, Clone, Debug)]
34pub enum Immediate<Prov: Provenance = CtfeProvenance> {
35 Scalar(Scalar<Prov>),
37 ScalarPair(Scalar<Prov>, Scalar<Prov>),
40 Uninit,
42}
43
44impl<Prov: Provenance> From<Scalar<Prov>> for Immediate<Prov> {
45 #[inline(always)]
46 fn from(val: Scalar<Prov>) -> Self {
47 Immediate::Scalar(val)
48 }
49}
50
51impl<Prov: Provenance> Immediate<Prov> {
52 pub fn new_pointer_with_meta(
53 ptr: Pointer<Option<Prov>>,
54 meta: MemPlaceMeta<Prov>,
55 cx: &impl HasDataLayout,
56 ) -> Self {
57 let ptr = Scalar::from_maybe_pointer(ptr, cx);
58 match meta {
59 MemPlaceMeta::None => Immediate::from(ptr),
60 MemPlaceMeta::Meta(meta) => Immediate::ScalarPair(ptr, meta),
61 }
62 }
63
64 pub fn new_slice(ptr: Pointer<Option<Prov>>, len: u64, cx: &impl HasDataLayout) -> Self {
65 Immediate::ScalarPair(
66 Scalar::from_maybe_pointer(ptr, cx),
67 Scalar::from_target_usize(len, cx),
68 )
69 }
70
71 pub fn new_dyn_trait(
72 val: Pointer<Option<Prov>>,
73 vtable: Pointer<Option<Prov>>,
74 cx: &impl HasDataLayout,
75 ) -> Self {
76 Immediate::ScalarPair(
77 Scalar::from_maybe_pointer(val, cx),
78 Scalar::from_maybe_pointer(vtable, cx),
79 )
80 }
81
82 #[inline]
83 #[cfg_attr(debug_assertions, track_caller)] pub fn to_scalar(self) -> Scalar<Prov> {
85 match self {
86 Immediate::Scalar(val) => val,
87 Immediate::ScalarPair(..) => bug!("Got a scalar pair where a scalar was expected"),
88 Immediate::Uninit => bug!("Got uninit where a scalar was expected"),
89 }
90 }
91
92 #[inline]
93 #[cfg_attr(debug_assertions, track_caller)] pub fn to_scalar_int(self) -> ScalarInt {
95 self.to_scalar().try_to_scalar_int().unwrap()
96 }
97
98 #[inline]
99 #[cfg_attr(debug_assertions, track_caller)] pub fn to_scalar_pair(self) -> (Scalar<Prov>, Scalar<Prov>) {
101 match self {
102 Immediate::ScalarPair(val1, val2) => (val1, val2),
103 Immediate::Scalar(..) => bug!("Got a scalar where a scalar pair was expected"),
104 Immediate::Uninit => bug!("Got uninit where a scalar pair was expected"),
105 }
106 }
107
108 #[inline]
110 #[cfg_attr(debug_assertions, track_caller)] pub fn to_scalar_and_meta(self) -> (Scalar<Prov>, MemPlaceMeta<Prov>) {
112 match self {
113 Immediate::ScalarPair(val1, val2) => (val1, MemPlaceMeta::Meta(val2)),
114 Immediate::Scalar(val) => (val, MemPlaceMeta::None),
115 Immediate::Uninit => bug!("Got uninit where a scalar or scalar pair was expected"),
116 }
117 }
118
119 pub fn assert_matches_abi(self, abi: BackendRepr, msg: &str, cx: &impl HasDataLayout) {
121 match (self, abi) {
122 (Immediate::Scalar(scalar), BackendRepr::Scalar(s)) => {
123 assert_eq!(scalar.size(), s.size(cx), "{msg}: scalar value has wrong size");
124 if !matches!(s.primitive(), abi::Primitive::Pointer(..)) {
125 assert!(
127 matches!(scalar, Scalar::Int(..)),
128 "{msg}: scalar value should be an integer, but has provenance"
129 );
130 }
131 }
132 (Immediate::ScalarPair(a_val, b_val), BackendRepr::ScalarPair(a, b)) => {
133 assert_eq!(
134 a_val.size(),
135 a.size(cx),
136 "{msg}: first component of scalar pair has wrong size"
137 );
138 if !matches!(a.primitive(), abi::Primitive::Pointer(..)) {
139 assert!(
140 matches!(a_val, Scalar::Int(..)),
141 "{msg}: first component of scalar pair should be an integer, but has provenance"
142 );
143 }
144 assert_eq!(
145 b_val.size(),
146 b.size(cx),
147 "{msg}: second component of scalar pair has wrong size"
148 );
149 if !matches!(b.primitive(), abi::Primitive::Pointer(..)) {
150 assert!(
151 matches!(b_val, Scalar::Int(..)),
152 "{msg}: second component of scalar pair should be an integer, but has provenance"
153 );
154 }
155 }
156 (Immediate::Uninit, _) => {
157 assert!(abi.is_sized(), "{msg}: unsized immediates are not a thing");
158 }
159 _ => {
160 bug!("{msg}: value {self:?} does not match ABI {abi:?})",)
161 }
162 }
163 }
164
165 pub fn clear_provenance<'tcx>(&mut self) -> InterpResult<'tcx> {
166 match self {
167 Immediate::Scalar(s) => {
168 s.clear_provenance()?;
169 }
170 Immediate::ScalarPair(a, b) => {
171 a.clear_provenance()?;
172 b.clear_provenance()?;
173 }
174 Immediate::Uninit => {}
175 }
176 interp_ok(())
177 }
178
179 pub fn has_provenance(&self) -> bool {
180 match self {
181 Immediate::Scalar(scalar) => matches!(scalar, Scalar::Ptr { .. }),
182 Immediate::ScalarPair(s1, s2) => {
183 matches!(s1, Scalar::Ptr { .. }) || matches!(s2, Scalar::Ptr { .. })
184 }
185 Immediate::Uninit => false,
186 }
187 }
188}
189
190#[derive(Clone)]
193pub struct ImmTy<'tcx, Prov: Provenance = CtfeProvenance> {
194 imm: Immediate<Prov>,
195 pub layout: TyAndLayout<'tcx>,
196}
197
198impl<Prov: Provenance> std::fmt::Display for ImmTy<'_, Prov> {
199 fn fmt(&self, f: &mut std::fmt::Formatter<'_>) -> std::fmt::Result {
200 fn print_scalar<'a, 'tcx, Prov: Provenance>(
202 p: &mut FmtPrinter<'a, 'tcx>,
203 s: Scalar<Prov>,
204 ty: Ty<'tcx>,
205 ) -> Result<(), std::fmt::Error> {
206 match s {
207 Scalar::Int(int) => p.pretty_print_const_scalar_int(int, ty, true),
208 Scalar::Ptr(ptr, _sz) => {
209 p.pretty_print_const_pointer(ptr, ty)
213 }
214 }
215 }
216 ty::tls::with(|tcx| {
217 match self.imm {
218 Immediate::Scalar(s) => {
219 if let Some(ty) = tcx.lift(self.layout.ty) {
220 let s = FmtPrinter::print_string(tcx, Namespace::ValueNS, |p| {
221 print_scalar(p, s, ty)
222 })?;
223 f.write_str(&s)?;
224 return Ok(());
225 }
226 write!(f, "{:x}: {}", s, self.layout.ty)
227 }
228 Immediate::ScalarPair(a, b) => {
229 write!(f, "({:x}, {:x}): {}", a, b, self.layout.ty)
231 }
232 Immediate::Uninit => {
233 write!(f, "uninit: {}", self.layout.ty)
234 }
235 }
236 })
237 }
238}
239
240impl<Prov: Provenance> std::fmt::Debug for ImmTy<'_, Prov> {
241 fn fmt(&self, f: &mut std::fmt::Formatter<'_>) -> std::fmt::Result {
242 f.debug_struct("ImmTy")
244 .field("imm", &self.imm)
245 .field("ty", &format_args!("{}", self.layout.ty))
246 .finish()
247 }
248}
249
250impl<'tcx, Prov: Provenance> std::ops::Deref for ImmTy<'tcx, Prov> {
251 type Target = Immediate<Prov>;
252 #[inline(always)]
253 fn deref(&self) -> &Immediate<Prov> {
254 &self.imm
255 }
256}
257
258impl<'tcx, Prov: Provenance> ImmTy<'tcx, Prov> {
259 #[inline]
260 pub fn from_scalar(val: Scalar<Prov>, layout: TyAndLayout<'tcx>) -> Self {
261 debug_assert!(layout.backend_repr.is_scalar(), "`ImmTy::from_scalar` on non-scalar layout");
262 debug_assert_eq!(val.size(), layout.size);
263 ImmTy { imm: val.into(), layout }
264 }
265
266 #[inline]
267 pub fn from_scalar_pair(a: Scalar<Prov>, b: Scalar<Prov>, layout: TyAndLayout<'tcx>) -> Self {
268 debug_assert!(
269 matches!(layout.backend_repr, BackendRepr::ScalarPair(..)),
270 "`ImmTy::from_scalar_pair` on non-scalar-pair layout"
271 );
272 let imm = Immediate::ScalarPair(a, b);
273 ImmTy { imm, layout }
274 }
275
276 #[inline(always)]
277 pub fn from_immediate(imm: Immediate<Prov>, layout: TyAndLayout<'tcx>) -> Self {
278 debug_assert!(
280 match (imm, layout.backend_repr) {
281 (Immediate::Scalar(..), BackendRepr::Scalar(..)) => true,
282 (Immediate::ScalarPair(..), BackendRepr::ScalarPair(..)) => true,
283 (Immediate::Uninit, _) if layout.is_sized() => true,
284 _ => false,
285 },
286 "immediate {imm:?} does not fit to layout {layout:?}",
287 );
288 ImmTy { imm, layout }
289 }
290
291 #[inline]
292 pub fn uninit(layout: TyAndLayout<'tcx>) -> Self {
293 debug_assert!(layout.is_sized(), "immediates must be sized");
294 ImmTy { imm: Immediate::Uninit, layout }
295 }
296
297 #[inline]
298 pub fn from_scalar_int(s: ScalarInt, layout: TyAndLayout<'tcx>) -> Self {
299 Self::from_scalar(Scalar::from(s), layout)
300 }
301
302 #[inline]
303 pub fn from_uint(i: impl Into<u128>, layout: TyAndLayout<'tcx>) -> Self {
304 Self::from_scalar(Scalar::from_uint(i, layout.size), layout)
305 }
306
307 #[inline]
308 pub fn from_int(i: impl Into<i128>, layout: TyAndLayout<'tcx>) -> Self {
309 Self::from_scalar(Scalar::from_int(i, layout.size), layout)
310 }
311
312 #[inline]
313 pub fn from_bool(b: bool, tcx: TyCtxt<'tcx>) -> Self {
314 let layout = tcx
316 .layout_of(ty::TypingEnv::fully_monomorphized().as_query_input(tcx.types.bool))
317 .unwrap();
318 Self::from_scalar(Scalar::from_bool(b), layout)
319 }
320
321 #[inline]
322 pub fn from_ordering(c: std::cmp::Ordering, tcx: TyCtxt<'tcx>) -> Self {
323 let ty = tcx.ty_ordering_enum(DUMMY_SP);
325 let layout =
326 tcx.layout_of(ty::TypingEnv::fully_monomorphized().as_query_input(ty)).unwrap();
327 Self::from_scalar(Scalar::Int(c.into()), layout)
328 }
329
330 pub fn from_pair(a: Self, b: Self, cx: &(impl HasTypingEnv<'tcx> + HasTyCtxt<'tcx>)) -> Self {
331 let layout = cx
332 .tcx()
333 .layout_of(
334 cx.typing_env().as_query_input(Ty::new_tup(cx.tcx(), &[a.layout.ty, b.layout.ty])),
335 )
336 .unwrap();
337 Self::from_scalar_pair(a.to_scalar(), b.to_scalar(), layout)
338 }
339
340 #[inline]
343 pub fn to_scalar_int(&self) -> InterpResult<'tcx, ScalarInt> {
344 let s = self.to_scalar().to_scalar_int()?;
345 if s.size() != self.layout.size {
346 throw_ub!(ScalarSizeMismatch(ScalarSizeMismatch {
347 target_size: self.layout.size.bytes(),
348 data_size: s.size().bytes(),
349 }));
350 }
351 interp_ok(s)
352 }
353
354 #[inline]
355 pub fn to_const_int(self) -> ConstInt {
356 assert!(self.layout.ty.is_integral());
357 let int = self.imm.to_scalar_int();
358 assert_eq!(int.size(), self.layout.size);
359 ConstInt::new(int, self.layout.ty.is_signed(), self.layout.ty.is_ptr_sized_integral())
360 }
361
362 #[inline]
363 #[cfg_attr(debug_assertions, track_caller)] pub fn to_pair(self, cx: &(impl HasTyCtxt<'tcx> + HasTypingEnv<'tcx>)) -> (Self, Self) {
365 let layout = self.layout;
366 let (val0, val1) = self.to_scalar_pair();
367 (
368 ImmTy::from_scalar(val0, layout.field(cx, 0)),
369 ImmTy::from_scalar(val1, layout.field(cx, 1)),
370 )
371 }
372
373 fn offset_(&self, offset: Size, layout: TyAndLayout<'tcx>, cx: &impl HasDataLayout) -> Self {
377 if cfg!(debug_assertions) {
379 self.assert_matches_abi(
380 self.layout.backend_repr,
381 "invalid input to Immediate::offset",
382 cx,
383 );
384 }
385 assert!(
389 offset + layout.size <= self.layout.size,
390 "attempting to project to field at offset {} with size {} into immediate with layout {:#?}",
391 offset.bytes(),
392 layout.size.bytes(),
393 self.layout,
394 );
395 let inner_val: Immediate<_> = match (**self, self.layout.backend_repr) {
398 (Immediate::Uninit, _) => Immediate::Uninit,
400 _ if layout.is_uninhabited() => Immediate::Uninit,
404 _ if layout.is_zst() => Immediate::Uninit,
407 _ if matches!(layout.backend_repr, BackendRepr::Memory { .. })
410 && matches!(layout.variants, abi::Variants::Single { .. })
411 && matches!(&layout.fields, abi::FieldsShape::Arbitrary { offsets, .. } if offsets.len() == 0) =>
412 {
413 Immediate::Uninit
414 }
415 _ if layout.size == self.layout.size => {
417 assert_eq!(offset.bytes(), 0);
418 **self
419 }
420 (Immediate::ScalarPair(a_val, b_val), BackendRepr::ScalarPair(a, b)) => {
422 Immediate::from(if offset.bytes() == 0 {
423 a_val
424 } else {
425 assert_eq!(offset, a.size(cx).align_to(b.align(cx).abi));
426 b_val
427 })
428 }
429 _ => bug!(
431 "invalid field access on immediate {} at offset {}, original layout {:#?}",
432 self,
433 offset.bytes(),
434 self.layout
435 ),
436 };
437 inner_val.assert_matches_abi(
439 layout.backend_repr,
440 "invalid field type in Immediate::offset",
441 cx,
442 );
443
444 ImmTy::from_immediate(inner_val, layout)
445 }
446}
447
448impl<'tcx, Prov: Provenance> Projectable<'tcx, Prov> for ImmTy<'tcx, Prov> {
449 #[inline(always)]
450 fn layout(&self) -> TyAndLayout<'tcx> {
451 self.layout
452 }
453
454 #[inline(always)]
455 fn meta(&self) -> MemPlaceMeta<Prov> {
456 debug_assert!(self.layout.is_sized()); MemPlaceMeta::None
458 }
459
460 fn offset_with_meta<M: Machine<'tcx, Provenance = Prov>>(
461 &self,
462 offset: Size,
463 _mode: OffsetMode,
464 meta: MemPlaceMeta<Prov>,
465 layout: TyAndLayout<'tcx>,
466 ecx: &InterpCx<'tcx, M>,
467 ) -> InterpResult<'tcx, Self> {
468 assert_matches!(meta, MemPlaceMeta::None); interp_ok(self.offset_(offset, layout, ecx))
470 }
471
472 #[inline(always)]
473 fn to_op<M: Machine<'tcx, Provenance = Prov>>(
474 &self,
475 _ecx: &InterpCx<'tcx, M>,
476 ) -> InterpResult<'tcx, OpTy<'tcx, M::Provenance>> {
477 interp_ok(self.clone().into())
478 }
479}
480
481#[derive(Copy, Clone, Debug)]
485pub(super) enum Operand<Prov: Provenance = CtfeProvenance> {
486 Immediate(Immediate<Prov>),
487 Indirect(MemPlace<Prov>),
488}
489
490#[derive(Clone)]
491pub struct OpTy<'tcx, Prov: Provenance = CtfeProvenance> {
492 op: Operand<Prov>, pub layout: TyAndLayout<'tcx>,
494}
495
496impl<Prov: Provenance> std::fmt::Debug for OpTy<'_, Prov> {
497 fn fmt(&self, f: &mut std::fmt::Formatter<'_>) -> std::fmt::Result {
498 f.debug_struct("OpTy")
500 .field("op", &self.op)
501 .field("ty", &format_args!("{}", self.layout.ty))
502 .finish()
503 }
504}
505
506impl<'tcx, Prov: Provenance> From<ImmTy<'tcx, Prov>> for OpTy<'tcx, Prov> {
507 #[inline(always)]
508 fn from(val: ImmTy<'tcx, Prov>) -> Self {
509 OpTy { op: Operand::Immediate(val.imm), layout: val.layout }
510 }
511}
512
513impl<'tcx, Prov: Provenance> From<MPlaceTy<'tcx, Prov>> for OpTy<'tcx, Prov> {
514 #[inline(always)]
515 fn from(mplace: MPlaceTy<'tcx, Prov>) -> Self {
516 OpTy { op: Operand::Indirect(*mplace.mplace()), layout: mplace.layout }
517 }
518}
519
520impl<'tcx, Prov: Provenance> OpTy<'tcx, Prov> {
521 #[inline(always)]
522 pub(super) fn op(&self) -> &Operand<Prov> {
523 &self.op
524 }
525}
526
527impl<'tcx, Prov: Provenance> Projectable<'tcx, Prov> for OpTy<'tcx, Prov> {
528 #[inline(always)]
529 fn layout(&self) -> TyAndLayout<'tcx> {
530 self.layout
531 }
532
533 #[inline]
534 fn meta(&self) -> MemPlaceMeta<Prov> {
535 match self.as_mplace_or_imm() {
536 Left(mplace) => mplace.meta(),
537 Right(_) => {
538 debug_assert!(self.layout.is_sized(), "unsized immediates are not a thing");
539 MemPlaceMeta::None
540 }
541 }
542 }
543
544 fn offset_with_meta<M: Machine<'tcx, Provenance = Prov>>(
545 &self,
546 offset: Size,
547 mode: OffsetMode,
548 meta: MemPlaceMeta<Prov>,
549 layout: TyAndLayout<'tcx>,
550 ecx: &InterpCx<'tcx, M>,
551 ) -> InterpResult<'tcx, Self> {
552 match self.as_mplace_or_imm() {
553 Left(mplace) => {
554 interp_ok(mplace.offset_with_meta(offset, mode, meta, layout, ecx)?.into())
555 }
556 Right(imm) => {
557 assert_matches!(meta, MemPlaceMeta::None); interp_ok(imm.offset_(offset, layout, ecx).into())
560 }
561 }
562 }
563
564 #[inline(always)]
565 fn to_op<M: Machine<'tcx, Provenance = Prov>>(
566 &self,
567 _ecx: &InterpCx<'tcx, M>,
568 ) -> InterpResult<'tcx, OpTy<'tcx, M::Provenance>> {
569 interp_ok(self.clone())
570 }
571}
572
573impl<'tcx, M: Machine<'tcx>> InterpCx<'tcx, M> {
574 fn read_immediate_from_mplace_raw(
579 &self,
580 mplace: &MPlaceTy<'tcx, M::Provenance>,
581 ) -> InterpResult<'tcx, Option<ImmTy<'tcx, M::Provenance>>> {
582 if mplace.layout.is_unsized() {
583 return interp_ok(None);
585 }
586
587 let Some(alloc) = self.get_place_alloc(mplace)? else {
588 return interp_ok(Some(ImmTy::uninit(mplace.layout)));
590 };
591
592 interp_ok(match mplace.layout.backend_repr {
599 BackendRepr::Scalar(abi::Scalar::Initialized { value: s, .. }) => {
600 let size = s.size(self);
601 assert_eq!(size, mplace.layout.size, "abi::Scalar size does not match layout size");
602 let scalar = alloc.read_scalar(
603 alloc_range(Size::ZERO, size),
604 matches!(s, abi::Primitive::Pointer(_)),
605 )?;
606 Some(ImmTy::from_scalar(scalar, mplace.layout))
607 }
608 BackendRepr::ScalarPair(
609 abi::Scalar::Initialized { value: a, .. },
610 abi::Scalar::Initialized { value: b, .. },
611 ) => {
612 let (a_size, b_size) = (a.size(self), b.size(self));
616 let b_offset = a_size.align_to(b.align(self).abi);
617 assert!(b_offset.bytes() > 0); let a_val = alloc.read_scalar(
619 alloc_range(Size::ZERO, a_size),
620 matches!(a, abi::Primitive::Pointer(_)),
621 )?;
622 let b_val = alloc.read_scalar(
623 alloc_range(b_offset, b_size),
624 matches!(b, abi::Primitive::Pointer(_)),
625 )?;
626 Some(ImmTy::from_immediate(Immediate::ScalarPair(a_val, b_val), mplace.layout))
627 }
628 _ => {
629 None
631 }
632 })
633 }
634
635 pub fn read_immediate_raw(
644 &self,
645 src: &impl Projectable<'tcx, M::Provenance>,
646 ) -> InterpResult<'tcx, Either<MPlaceTy<'tcx, M::Provenance>, ImmTy<'tcx, M::Provenance>>> {
647 interp_ok(match src.to_op(self)?.as_mplace_or_imm() {
648 Left(ref mplace) => {
649 if let Some(val) = self.read_immediate_from_mplace_raw(mplace)? {
650 Right(val)
651 } else {
652 Left(mplace.clone())
653 }
654 }
655 Right(val) => Right(val),
656 })
657 }
658
659 #[inline(always)]
663 pub fn read_immediate(
664 &self,
665 op: &impl Projectable<'tcx, M::Provenance>,
666 ) -> InterpResult<'tcx, ImmTy<'tcx, M::Provenance>> {
667 if !matches!(
668 op.layout().backend_repr,
669 BackendRepr::Scalar(abi::Scalar::Initialized { .. })
670 | BackendRepr::ScalarPair(
671 abi::Scalar::Initialized { .. },
672 abi::Scalar::Initialized { .. }
673 )
674 ) {
675 span_bug!(self.cur_span(), "primitive read not possible for type: {}", op.layout().ty);
676 }
677 let imm = self.read_immediate_raw(op)?.right().unwrap();
678 if matches!(*imm, Immediate::Uninit) {
679 throw_ub!(InvalidUninitBytes(None));
680 }
681 interp_ok(imm)
682 }
683
684 pub fn read_scalar(
686 &self,
687 op: &impl Projectable<'tcx, M::Provenance>,
688 ) -> InterpResult<'tcx, Scalar<M::Provenance>> {
689 interp_ok(self.read_immediate(op)?.to_scalar())
690 }
691
692 pub fn read_pointer(
697 &self,
698 op: &impl Projectable<'tcx, M::Provenance>,
699 ) -> InterpResult<'tcx, Pointer<Option<M::Provenance>>> {
700 self.read_scalar(op)?.to_pointer(self)
701 }
702 pub fn read_target_usize(
704 &self,
705 op: &impl Projectable<'tcx, M::Provenance>,
706 ) -> InterpResult<'tcx, u64> {
707 self.read_scalar(op)?.to_target_usize(self)
708 }
709 pub fn read_target_isize(
711 &self,
712 op: &impl Projectable<'tcx, M::Provenance>,
713 ) -> InterpResult<'tcx, i64> {
714 self.read_scalar(op)?.to_target_isize(self)
715 }
716
717 pub fn read_str(&self, mplace: &MPlaceTy<'tcx, M::Provenance>) -> InterpResult<'tcx, &str> {
719 let len = mplace.len(self)?;
720 let bytes = self.read_bytes_ptr_strip_provenance(mplace.ptr(), Size::from_bytes(len))?;
721 let s = std::str::from_utf8(bytes).map_err(|err| err_ub!(InvalidStr(err)))?;
722 interp_ok(s)
723 }
724
725 pub fn local_to_op(
727 &self,
728 local: mir::Local,
729 layout: Option<TyAndLayout<'tcx>>,
730 ) -> InterpResult<'tcx, OpTy<'tcx, M::Provenance>> {
731 self.local_at_frame_to_op(self.frame(), local, layout)
732 }
733
734 pub fn local_at_frame_to_op(
740 &self,
741 frame: &Frame<'tcx, M::Provenance, M::FrameExtra>,
742 local: mir::Local,
743 layout: Option<TyAndLayout<'tcx>>,
744 ) -> InterpResult<'tcx, OpTy<'tcx, M::Provenance>> {
745 let layout = self.layout_of_local(frame, local, layout)?;
746 let op = *frame.locals[local].access()?;
747 if matches!(op, Operand::Immediate(_)) {
748 assert!(!layout.is_unsized());
749 }
750 M::after_local_read(self, frame, local)?;
751 interp_ok(OpTy { op, layout })
752 }
753
754 pub fn place_to_op(
758 &self,
759 place: &PlaceTy<'tcx, M::Provenance>,
760 ) -> InterpResult<'tcx, OpTy<'tcx, M::Provenance>> {
761 match place.as_mplace_or_local() {
762 Left(mplace) => interp_ok(mplace.into()),
763 Right((local, offset, locals_addr, _)) => {
764 debug_assert!(place.layout.is_sized()); debug_assert_eq!(locals_addr, self.frame().locals_addr());
766 let base = self.local_to_op(local, None)?;
767 interp_ok(match offset {
768 Some(offset) => base.offset(offset, place.layout, self)?,
769 None => {
770 debug_assert_eq!(place.layout, base.layout);
772 base
773 }
774 })
775 }
776 }
777 }
778
779 pub fn eval_place_to_op(
782 &self,
783 mir_place: mir::Place<'tcx>,
784 layout: Option<TyAndLayout<'tcx>>,
785 ) -> InterpResult<'tcx, OpTy<'tcx, M::Provenance>> {
786 let _trace = enter_trace_span!(
787 M,
788 step::eval_place_to_op,
789 ?mir_place,
790 tracing_separate_thread = Empty
791 );
792
793 let layout = if mir_place.projection.is_empty() { layout } else { None };
796
797 let mut op = self.local_to_op(mir_place.local, layout)?;
798 for elem in mir_place.projection.iter() {
800 op = self.project(&op, elem)?
801 }
802
803 trace!("eval_place_to_op: got {:?}", op);
804 if cfg!(debug_assertions) {
806 let normalized_place_ty = self
807 .instantiate_from_current_frame_and_normalize_erasing_regions(
808 mir_place.ty(&self.frame().body.local_decls, *self.tcx).ty,
809 )?;
810 if !mir_assign_valid_types(
811 *self.tcx,
812 self.typing_env(),
813 self.layout_of(normalized_place_ty)?,
814 op.layout,
815 ) {
816 span_bug!(
817 self.cur_span(),
818 "eval_place of a MIR place with type {} produced an interpreter operand with type {}",
819 normalized_place_ty,
820 op.layout.ty,
821 )
822 }
823 }
824 interp_ok(op)
825 }
826
827 #[inline]
831 pub fn eval_operand(
832 &self,
833 mir_op: &mir::Operand<'tcx>,
834 layout: Option<TyAndLayout<'tcx>>,
835 ) -> InterpResult<'tcx, OpTy<'tcx, M::Provenance>> {
836 let _trace =
837 enter_trace_span!(M, step::eval_operand, ?mir_op, tracing_separate_thread = Empty);
838
839 use rustc_middle::mir::Operand::*;
840 let op = match mir_op {
841 &Copy(place) | &Move(place) => self.eval_place_to_op(place, layout)?,
843
844 Constant(constant) => {
845 let c = self.instantiate_from_current_frame_and_normalize_erasing_regions(
846 constant.const_,
847 )?;
848
849 self.eval_mir_constant(&c, constant.span, layout)?
854 }
855 };
856 trace!("{:?}: {:?}", mir_op, op);
857 interp_ok(op)
858 }
859
860 pub(crate) fn const_val_to_op(
861 &self,
862 val_val: mir::ConstValue,
863 ty: Ty<'tcx>,
864 layout: Option<TyAndLayout<'tcx>>,
865 ) -> InterpResult<'tcx, OpTy<'tcx, M::Provenance>> {
866 let adjust_scalar = |scalar| -> InterpResult<'tcx, _> {
868 interp_ok(match scalar {
869 Scalar::Ptr(ptr, size) => Scalar::Ptr(self.global_root_pointer(ptr)?, size),
870 Scalar::Int(int) => Scalar::Int(int),
871 })
872 };
873 let layout =
874 from_known_layout(self.tcx, self.typing_env(), layout, || self.layout_of(ty).into())?;
875 let imm = match val_val {
876 mir::ConstValue::Indirect { alloc_id, offset } => {
877 let ptr = self.global_root_pointer(Pointer::new(
879 CtfeProvenance::from(alloc_id).as_immutable(),
880 offset,
881 ))?;
882 return interp_ok(self.ptr_to_mplace(ptr.into(), layout).into());
883 }
884 mir::ConstValue::Scalar(x) => adjust_scalar(x)?.into(),
885 mir::ConstValue::ZeroSized => Immediate::Uninit,
886 mir::ConstValue::Slice { alloc_id, meta } => {
887 let ptr = Pointer::new(CtfeProvenance::from(alloc_id).as_immutable(), Size::ZERO);
889 Immediate::new_slice(self.global_root_pointer(ptr)?.into(), meta, self)
890 }
891 };
892 interp_ok(OpTy { op: Operand::Immediate(imm), layout })
893 }
894}
895
896#[cfg(target_pointer_width = "64")]
898mod size_asserts {
899 use rustc_data_structures::static_assert_size;
900
901 use super::*;
902 static_assert_size!(ImmTy<'_>, 64);
904 static_assert_size!(Immediate, 48);
905 static_assert_size!(OpTy<'_>, 72);
906 static_assert_size!(Operand, 56);
907 }