interpret: make read functions generic over operand type

This commit is contained in:
Ralf Jung 2023-07-25 22:19:18 +02:00
parent 00fb45dccd
commit 77ff1b83cd
19 changed files with 130 additions and 128 deletions

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@ -216,7 +216,7 @@ fn hook_special_const_fn(
let mut msg_place = self.deref_operand(&args[0])?;
while msg_place.layout.ty.is_ref() {
msg_place = self.deref_operand(&msg_place.into())?;
msg_place = self.deref_operand(&msg_place)?;
}
let msg = Symbol::intern(self.read_str(&msg_place)?);

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@ -86,7 +86,7 @@ pub(crate) fn const_to_valtree_inner<'tcx>(
Ok(ty::ValTree::zst())
}
ty::Bool | ty::Int(_) | ty::Uint(_) | ty::Float(_) | ty::Char => {
let Ok(val) = ecx.read_immediate(&place.into()) else {
let Ok(val) = ecx.read_immediate(place) else {
return Err(ValTreeCreationError::Other);
};
let val = val.to_scalar();
@ -102,7 +102,7 @@ pub(crate) fn const_to_valtree_inner<'tcx>(
ty::FnPtr(_) | ty::RawPtr(_) => Err(ValTreeCreationError::NonSupportedType),
ty::Ref(_, _, _) => {
let Ok(derefd_place)= ecx.deref_operand(&place.into()) else {
let Ok(derefd_place)= ecx.deref_operand(place) else {
return Err(ValTreeCreationError::Other);
};
debug!(?derefd_place);
@ -130,7 +130,7 @@ pub(crate) fn const_to_valtree_inner<'tcx>(
bug!("uninhabited types should have errored and never gotten converted to valtree")
}
let Ok(variant) = ecx.read_discriminant(&place.into()) else {
let Ok(variant) = ecx.read_discriminant(place) else {
return Err(ValTreeCreationError::Other);
};
branches(ecx, place, def.variant(variant).fields.len(), def.is_enum().then_some(variant), num_nodes)

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@ -56,7 +56,7 @@ pub fn cast(
}
CastKind::FnPtrToPtr | CastKind::PtrToPtr => {
let src = self.read_immediate(&src)?;
let src = self.read_immediate(src)?;
let res = self.ptr_to_ptr(&src, cast_ty)?;
self.write_immediate(res, dest)?;
}

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@ -5,8 +5,7 @@
use rustc_target::abi::{self, TagEncoding};
use rustc_target::abi::{VariantIdx, Variants};
use super::place::Writeable;
use super::{ImmTy, InterpCx, InterpResult, Machine, OpTy, Scalar};
use super::{ImmTy, InterpCx, InterpResult, Machine, Readable, Scalar, Writeable};
impl<'mir, 'tcx: 'mir, M: Machine<'mir, 'tcx>> InterpCx<'mir, 'tcx, M> {
/// Writes the discriminant of the given variant.
@ -97,11 +96,12 @@ pub fn write_discriminant(
#[instrument(skip(self), level = "trace")]
pub fn read_discriminant(
&self,
op: &OpTy<'tcx, M::Provenance>,
op: &impl Readable<'tcx, M::Provenance>,
) -> InterpResult<'tcx, VariantIdx> {
trace!("read_discriminant_value {:#?}", op.layout);
let ty = op.layout().ty;
trace!("read_discriminant_value {:#?}", op.layout());
// Get type and layout of the discriminant.
let discr_layout = self.layout_of(op.layout.ty.discriminant_ty(*self.tcx))?;
let discr_layout = self.layout_of(ty.discriminant_ty(*self.tcx))?;
trace!("discriminant type: {:?}", discr_layout.ty);
// We use "discriminant" to refer to the value associated with a particular enum variant.
@ -109,20 +109,19 @@ pub fn read_discriminant(
// declared list of variants -- they can differ with explicitly assigned discriminants.
// We use "tag" to refer to how the discriminant is encoded in memory, which can be either
// straight-forward (`TagEncoding::Direct`) or with a niche (`TagEncoding::Niche`).
let (tag_scalar_layout, tag_encoding, tag_field) = match op.layout.variants {
let (tag_scalar_layout, tag_encoding, tag_field) = match op.layout().variants {
Variants::Single { index } => {
// Do some extra checks on enums.
if op.layout.ty.is_enum() {
if ty.is_enum() {
// Hilariously, `Single` is used even for 0-variant enums.
// (See https://github.com/rust-lang/rust/issues/89765).
if matches!(op.layout.ty.kind(), ty::Adt(def, ..) if def.variants().is_empty())
{
if matches!(ty.kind(), ty::Adt(def, ..) if def.variants().is_empty()) {
throw_ub!(UninhabitedEnumVariantRead(index))
}
// For consisteny with `write_discriminant`, and to make sure that
// `project_downcast` cannot fail due to strange layouts, we declare immediate UB
// for uninhabited variants.
if op.layout.for_variant(self, index).abi.is_uninhabited() {
if op.layout().for_variant(self, index).abi.is_uninhabited() {
throw_ub!(UninhabitedEnumVariantRead(index))
}
}
@ -168,7 +167,7 @@ pub fn read_discriminant(
self.cast_from_int_like(scalar, tag_val.layout, discr_layout.ty).unwrap();
let discr_bits = discr_val.assert_bits(discr_layout.size);
// Convert discriminant to variant index, and catch invalid discriminants.
let index = match *op.layout.ty.kind() {
let index = match *ty.kind() {
ty::Adt(adt, _) => {
adt.discriminants(*self.tcx).find(|(_, var)| var.val == discr_bits)
}
@ -222,12 +221,8 @@ pub fn read_discriminant(
.checked_add(variant_index_relative)
.expect("overflow computing absolute variant idx"),
);
let variants = op
.layout
.ty
.ty_adt_def()
.expect("tagged layout for non adt")
.variants();
let variants =
ty.ty_adt_def().expect("tagged layout for non adt").variants();
assert!(variant_index < variants.next_index());
variant_index
} else {
@ -242,7 +237,7 @@ pub fn read_discriminant(
}
};
// For consisteny with `write_discriminant`, and to make sure that `project_downcast` cannot fail due to strange layouts, we declare immediate UB for uninhabited variants.
if op.layout.for_variant(self, index).abi.is_uninhabited() {
if op.layout().for_variant(self, index).abi.is_uninhabited() {
throw_ub!(UninhabitedEnumVariantRead(index))
}
Ok(index)

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@ -170,7 +170,7 @@ fn visit_value(&mut self, mplace: &MPlaceTy<'tcx>) -> InterpResult<'tcx> {
let tcx = self.ecx.tcx;
let ty = mplace.layout.ty;
if let ty::Ref(_, referenced_ty, ref_mutability) = *ty.kind() {
let value = self.ecx.read_immediate(&mplace.into())?;
let value = self.ecx.read_immediate(mplace)?;
let mplace = self.ecx.ref_to_mplace(&value)?;
assert_eq!(mplace.layout.ty, referenced_ty);
// Handle trait object vtables.

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@ -226,7 +226,7 @@ pub fn emulate_intrinsic(
}
sym::discriminant_value => {
let place = self.deref_operand(&args[0])?;
let variant = self.read_discriminant(&place.into())?;
let variant = self.read_discriminant(&place)?;
let discr = self.discriminant_for_variant(place.layout, variant)?;
self.write_scalar(discr, dest)?;
}
@ -445,7 +445,7 @@ pub fn emulate_intrinsic(
input_len
);
self.copy_op(
&self.project_index(&input, index)?.into(),
&self.project_index(&input, index)?,
dest,
/*allow_transmute*/ false,
)?;
@ -610,7 +610,7 @@ pub(crate) fn copy_intrinsic(
count: &OpTy<'tcx, <M as Machine<'mir, 'tcx>>::Provenance>,
nonoverlapping: bool,
) -> InterpResult<'tcx> {
let count = self.read_target_usize(&count)?;
let count = self.read_target_usize(count)?;
let layout = self.layout_of(src.layout.ty.builtin_deref(true).unwrap().ty)?;
let (size, align) = (layout.size, layout.align.abi);
// `checked_mul` enforces a too small bound (the correct one would probably be target_isize_max),
@ -622,8 +622,8 @@ pub(crate) fn copy_intrinsic(
)
})?;
let src = self.read_pointer(&src)?;
let dst = self.read_pointer(&dst)?;
let src = self.read_pointer(src)?;
let dst = self.read_pointer(dst)?;
self.mem_copy(src, align, dst, align, size, nonoverlapping)
}
@ -636,9 +636,9 @@ pub(crate) fn write_bytes_intrinsic(
) -> InterpResult<'tcx> {
let layout = self.layout_of(dst.layout.ty.builtin_deref(true).unwrap().ty)?;
let dst = self.read_pointer(&dst)?;
let byte = self.read_scalar(&byte)?.to_u8()?;
let count = self.read_target_usize(&count)?;
let dst = self.read_pointer(dst)?;
let byte = self.read_scalar(byte)?.to_u8()?;
let count = self.read_target_usize(count)?;
// `checked_mul` enforces a too small bound (the correct one would probably be target_isize_max),
// but no actual allocation can be big enough for the difference to be noticeable.

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@ -24,7 +24,7 @@
pub use self::intern::{intern_const_alloc_recursive, InternKind};
pub use self::machine::{compile_time_machine, AllocMap, Machine, MayLeak, StackPopJump};
pub use self::memory::{AllocKind, AllocRef, AllocRefMut, FnVal, Memory, MemoryKind};
pub use self::operand::{ImmTy, Immediate, OpTy, Operand};
pub use self::operand::{ImmTy, Immediate, OpTy, Operand, Readable};
pub use self::place::{MPlaceTy, MemPlace, MemPlaceMeta, Place, PlaceTy, Writeable};
pub use self::projection::Projectable;
pub use self::terminator::FnArg;

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@ -180,20 +180,6 @@ fn from(mplace: MPlaceTy<'tcx, Prov>) -> Self {
}
}
impl<'tcx, Prov: Provenance> From<&'_ MPlaceTy<'tcx, Prov>> for OpTy<'tcx, Prov> {
#[inline(always)]
fn from(mplace: &MPlaceTy<'tcx, Prov>) -> Self {
OpTy { op: Operand::Indirect(**mplace), layout: mplace.layout, align: Some(mplace.align) }
}
}
impl<'tcx, Prov: Provenance> From<&'_ mut MPlaceTy<'tcx, Prov>> for OpTy<'tcx, Prov> {
#[inline(always)]
fn from(mplace: &mut MPlaceTy<'tcx, Prov>) -> Self {
OpTy { op: Operand::Indirect(**mplace), layout: mplace.layout, align: Some(mplace.align) }
}
}
impl<'tcx, Prov: Provenance> From<ImmTy<'tcx, Prov>> for OpTy<'tcx, Prov> {
#[inline(always)]
fn from(val: ImmTy<'tcx, Prov>) -> Self {
@ -201,20 +187,6 @@ fn from(val: ImmTy<'tcx, Prov>) -> Self {
}
}
impl<'tcx, Prov: Provenance> From<&'_ ImmTy<'tcx, Prov>> for OpTy<'tcx, Prov> {
#[inline(always)]
fn from(val: &ImmTy<'tcx, Prov>) -> Self {
OpTy { op: Operand::Immediate(val.imm), layout: val.layout, align: None }
}
}
impl<'tcx, Prov: Provenance> From<&'_ mut ImmTy<'tcx, Prov>> for OpTy<'tcx, Prov> {
#[inline(always)]
fn from(val: &mut ImmTy<'tcx, Prov>) -> Self {
OpTy { op: Operand::Immediate(val.imm), layout: val.layout, align: None }
}
}
impl<'tcx, Prov: Provenance> ImmTy<'tcx, Prov> {
#[inline]
pub fn from_scalar(val: Scalar<Prov>, layout: TyAndLayout<'tcx>) -> Self {
@ -341,7 +313,7 @@ fn to_op<'mir, M: Machine<'mir, 'tcx, Provenance = Prov>>(
&self,
_ecx: &InterpCx<'mir, 'tcx, M>,
) -> InterpResult<'tcx, OpTy<'tcx, M::Provenance>> {
Ok(self.into())
Ok(self.clone().into())
}
}
@ -400,6 +372,31 @@ fn to_op<'mir, M: Machine<'mir, 'tcx, Provenance = Prov>>(
}
}
pub trait Readable<'tcx, Prov: Provenance>: Projectable<'tcx, Prov> {
fn as_mplace_or_imm(&self) -> Either<MPlaceTy<'tcx, Prov>, ImmTy<'tcx, Prov>>;
}
impl<'tcx, Prov: Provenance + 'static> Readable<'tcx, Prov> for OpTy<'tcx, Prov> {
#[inline(always)]
fn as_mplace_or_imm(&self) -> Either<MPlaceTy<'tcx, Prov>, ImmTy<'tcx, Prov>> {
self.as_mplace_or_imm()
}
}
impl<'tcx, Prov: Provenance + 'static> Readable<'tcx, Prov> for MPlaceTy<'tcx, Prov> {
#[inline(always)]
fn as_mplace_or_imm(&self) -> Either<MPlaceTy<'tcx, Prov>, ImmTy<'tcx, Prov>> {
Left(self.clone())
}
}
impl<'tcx, Prov: Provenance> Readable<'tcx, Prov> for ImmTy<'tcx, Prov> {
#[inline(always)]
fn as_mplace_or_imm(&self) -> Either<MPlaceTy<'tcx, Prov>, ImmTy<'tcx, Prov>> {
Right(self.clone())
}
}
impl<'mir, 'tcx: 'mir, M: Machine<'mir, 'tcx>> InterpCx<'mir, 'tcx, M> {
/// Try reading an immediate in memory; this is interesting particularly for `ScalarPair`.
/// Returns `None` if the layout does not permit loading this as a value.
@ -472,7 +469,7 @@ fn read_immediate_from_mplace_raw(
/// ConstProp needs it, though.
pub fn read_immediate_raw(
&self,
src: &OpTy<'tcx, M::Provenance>,
src: &impl Readable<'tcx, M::Provenance>,
) -> InterpResult<'tcx, Either<MPlaceTy<'tcx, M::Provenance>, ImmTy<'tcx, M::Provenance>>> {
Ok(match src.as_mplace_or_imm() {
Left(ref mplace) => {
@ -492,14 +489,18 @@ pub fn read_immediate_raw(
#[inline(always)]
pub fn read_immediate(
&self,
op: &OpTy<'tcx, M::Provenance>,
op: &impl Readable<'tcx, M::Provenance>,
) -> InterpResult<'tcx, ImmTy<'tcx, M::Provenance>> {
if !matches!(
op.layout.abi,
op.layout().abi,
Abi::Scalar(abi::Scalar::Initialized { .. })
| Abi::ScalarPair(abi::Scalar::Initialized { .. }, abi::Scalar::Initialized { .. })
) {
span_bug!(self.cur_span(), "primitive read not possible for type: {:?}", op.layout.ty);
span_bug!(
self.cur_span(),
"primitive read not possible for type: {:?}",
op.layout().ty
);
}
let imm = self.read_immediate_raw(op)?.right().unwrap();
if matches!(*imm, Immediate::Uninit) {
@ -511,7 +512,7 @@ pub fn read_immediate(
/// Read a scalar from a place
pub fn read_scalar(
&self,
op: &OpTy<'tcx, M::Provenance>,
op: &impl Readable<'tcx, M::Provenance>,
) -> InterpResult<'tcx, Scalar<M::Provenance>> {
Ok(self.read_immediate(op)?.to_scalar())
}
@ -522,16 +523,22 @@ pub fn read_scalar(
/// Read a pointer from a place.
pub fn read_pointer(
&self,
op: &OpTy<'tcx, M::Provenance>,
op: &impl Readable<'tcx, M::Provenance>,
) -> InterpResult<'tcx, Pointer<Option<M::Provenance>>> {
self.read_scalar(op)?.to_pointer(self)
}
/// Read a pointer-sized unsigned integer from a place.
pub fn read_target_usize(&self, op: &OpTy<'tcx, M::Provenance>) -> InterpResult<'tcx, u64> {
pub fn read_target_usize(
&self,
op: &impl Readable<'tcx, M::Provenance>,
) -> InterpResult<'tcx, u64> {
self.read_scalar(op)?.to_target_usize(self)
}
/// Read a pointer-sized signed integer from a place.
pub fn read_target_isize(&self, op: &OpTy<'tcx, M::Provenance>) -> InterpResult<'tcx, i64> {
pub fn read_target_isize(
&self,
op: &impl Readable<'tcx, M::Provenance>,
) -> InterpResult<'tcx, i64> {
self.read_scalar(op)?.to_target_isize(self)
}

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@ -18,7 +18,7 @@
use super::{
alloc_range, mir_assign_valid_types, AllocId, AllocRef, AllocRefMut, CheckInAllocMsg,
ConstAlloc, ImmTy, Immediate, InterpCx, InterpResult, Machine, MemoryKind, OpTy, Operand,
Pointer, Projectable, Provenance, Scalar,
Pointer, Projectable, Provenance, Readable, Scalar,
};
#[derive(Copy, Clone, Hash, PartialEq, Eq, Debug)]
@ -246,7 +246,7 @@ fn to_op<'mir, M: Machine<'mir, 'tcx, Provenance = Prov>>(
&self,
_ecx: &InterpCx<'mir, 'tcx, M>,
) -> InterpResult<'tcx, OpTy<'tcx, M::Provenance>> {
Ok(self.into())
Ok(self.clone().into())
}
}
@ -442,7 +442,7 @@ pub fn ref_to_mplace(
#[instrument(skip(self), level = "debug")]
pub fn deref_operand(
&self,
src: &OpTy<'tcx, M::Provenance>,
src: &impl Readable<'tcx, M::Provenance>,
) -> InterpResult<'tcx, MPlaceTy<'tcx, M::Provenance>> {
let val = self.read_immediate(src)?;
trace!("deref to {} on {:?}", val.layout.ty, *val);
@ -766,7 +766,7 @@ pub fn write_uninit(
#[instrument(skip(self), level = "debug")]
pub fn copy_op(
&mut self,
src: &OpTy<'tcx, M::Provenance>,
src: &impl Readable<'tcx, M::Provenance>,
dest: &impl Writeable<'tcx, M::Provenance>,
allow_transmute: bool,
) -> InterpResult<'tcx> {
@ -787,19 +787,19 @@ pub fn copy_op(
#[instrument(skip(self), level = "debug")]
fn copy_op_no_validate(
&mut self,
src: &OpTy<'tcx, M::Provenance>,
src: &impl Readable<'tcx, M::Provenance>,
dest: &impl Writeable<'tcx, M::Provenance>,
allow_transmute: bool,
) -> InterpResult<'tcx> {
// We do NOT compare the types for equality, because well-typed code can
// actually "transmute" `&mut T` to `&T` in an assignment without a cast.
let layout_compat =
mir_assign_valid_types(*self.tcx, self.param_env, src.layout, dest.layout());
mir_assign_valid_types(*self.tcx, self.param_env, src.layout(), dest.layout());
if !allow_transmute && !layout_compat {
span_bug!(
self.cur_span(),
"type mismatch when copying!\nsrc: {:?},\ndest: {:?}",
src.layout.ty,
src.layout().ty,
dest.layout().ty,
);
}
@ -813,13 +813,13 @@ fn copy_op_no_validate(
// actually sized, due to a trivially false where-clause
// predicate like `where Self: Sized` with `Self = dyn Trait`.
// See #102553 for an example of such a predicate.
if src.layout.is_unsized() {
throw_inval!(SizeOfUnsizedType(src.layout.ty));
if src.layout().is_unsized() {
throw_inval!(SizeOfUnsizedType(src.layout().ty));
}
if dest.layout().is_unsized() {
throw_inval!(SizeOfUnsizedType(dest.layout().ty));
}
assert_eq!(src.layout.size, dest.layout().size);
assert_eq!(src.layout().size, dest.layout().size);
// Yay, we got a value that we can write directly.
return if layout_compat {
self.write_immediate_no_validate(*src_val, dest)
@ -831,7 +831,7 @@ fn copy_op_no_validate(
let dest_mem = dest.force_mplace(self)?;
self.write_immediate_to_mplace_no_validate(
*src_val,
src.layout,
src.layout(),
dest_mem.align,
*dest_mem,
)

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@ -494,7 +494,7 @@ fn check_assertion(
trace!("assertion on {:?} should be {:?}", value, expected);
let expected = Scalar::from_bool(expected);
let value_const = self.use_ecx(location, |this| this.ecx.read_scalar(&value))?;
let value_const = self.use_ecx(location, |this| this.ecx.read_scalar(value))?;
if expected != value_const {
// Poison all places this operand references so that further code
@ -664,7 +664,7 @@ fn visit_terminator(&mut self, terminator: &Terminator<'tcx>, location: Location
}
TerminatorKind::SwitchInt { ref discr, ref targets } => {
if let Some(ref value) = self.eval_operand(&discr, location)
&& let Some(value_const) = self.use_ecx(location, |this| this.ecx.read_scalar(&value))
&& let Some(value_const) = self.use_ecx(location, |this| this.ecx.read_scalar(value))
&& let Ok(constant) = value_const.try_to_int()
&& let Ok(constant) = constant.to_bits(constant.size())
{

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@ -472,7 +472,7 @@ fn read_scalar_atomic(
// This is fine with StackedBorrow and race checks because they don't concern metadata on
// the *value* (including the associated provenance if this is an AtomicPtr) at this location.
// Only metadata on the location itself is used.
let scalar = this.allow_data_races_ref(move |this| this.read_scalar(&place.into()))?;
let scalar = this.allow_data_races_ref(move |this| this.read_scalar(place))?;
this.validate_overlapping_atomic(place)?;
this.buffered_atomic_read(place, atomic, scalar, || {
this.validate_atomic_load(place, atomic)
@ -513,7 +513,7 @@ fn atomic_op_immediate(
this.atomic_access_check(place)?;
this.validate_overlapping_atomic(place)?;
let old = this.allow_data_races_mut(|this| this.read_immediate(&place.into()))?;
let old = this.allow_data_races_mut(|this| this.read_immediate(place))?;
// Atomics wrap around on overflow.
let val = this.binary_op(op, &old, rhs)?;
@ -538,7 +538,7 @@ fn atomic_exchange_scalar(
this.atomic_access_check(place)?;
this.validate_overlapping_atomic(place)?;
let old = this.allow_data_races_mut(|this| this.read_scalar(&place.into()))?;
let old = this.allow_data_races_mut(|this| this.read_scalar(place))?;
this.allow_data_races_mut(|this| this.write_scalar(new, place))?;
this.validate_atomic_rmw(place, atomic)?;
@ -560,7 +560,7 @@ fn atomic_min_max_scalar(
this.atomic_access_check(place)?;
this.validate_overlapping_atomic(place)?;
let old = this.allow_data_races_mut(|this| this.read_immediate(&place.into()))?;
let old = this.allow_data_races_mut(|this| this.read_immediate(place))?;
let lt = this.binary_op(mir::BinOp::Lt, &old, &rhs)?.to_scalar().to_bool()?;
let new_val = if min {
@ -603,7 +603,7 @@ fn atomic_compare_exchange_scalar(
// to read with the failure ordering and if successful then try again with the success
// read ordering and write in the success case.
// Read as immediate for the sake of `binary_op()`
let old = this.allow_data_races_mut(|this| this.read_immediate(&(place.into())))?;
let old = this.allow_data_races_mut(|this| this.read_immediate(place))?;
// `binary_op` will bail if either of them is not a scalar.
let eq = this.binary_op(mir::BinOp::Eq, &old, expect_old)?;
// If the operation would succeed, but is "weak", fail some portion

View File

@ -246,7 +246,7 @@ fn on_main_stack_empty<'tcx>(
this.machine.main_fn_ret_place.unwrap().ptr,
this.machine.layouts.isize,
);
let exit_code = this.read_target_isize(&ret_place.into())?;
let exit_code = this.read_target_isize(&ret_place)?;
// Need to call this ourselves since we are not going to return to the scheduler
// loop, and we want the main thread TLS to not show up as memory leaks.
this.terminate_active_thread()?;

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@ -166,7 +166,7 @@ fn eval_path_scalar(&self, path: &[&str]) -> Scalar<Provenance> {
let const_val = this.eval_global(cid, None).unwrap_or_else(|err| {
panic!("failed to evaluate required Rust item: {path:?}\n{err:?}")
});
this.read_scalar(&const_val.into())
this.read_scalar(&const_val)
.unwrap_or_else(|err| panic!("failed to read required Rust item: {path:?}\n{err:?}"))
}
@ -623,7 +623,7 @@ fn set_last_error(&mut self, scalar: Scalar<Provenance>) -> InterpResult<'tcx> {
fn get_last_error(&mut self) -> InterpResult<'tcx, Scalar<Provenance>> {
let this = self.eval_context_mut();
let errno_place = this.last_error_place()?;
this.read_scalar(&errno_place.into())
this.read_scalar(&errno_place)
}
/// This function tries to produce the most similar OS error from the `std::io::ErrorKind`
@ -772,7 +772,7 @@ fn read_scalar_at_offset(
) -> InterpResult<'tcx, Scalar<Provenance>> {
let this = self.eval_context_ref();
let value_place = this.deref_operand_and_offset(op, offset, base_layout, value_layout)?;
this.read_scalar(&value_place.into())
this.read_scalar(&value_place)
}
fn write_scalar_at_offset(
@ -797,10 +797,10 @@ fn read_timespec(
) -> InterpResult<'tcx, Option<Duration>> {
let this = self.eval_context_mut();
let seconds_place = this.project_field(tp, 0)?;
let seconds_scalar = this.read_scalar(&seconds_place.into())?;
let seconds_scalar = this.read_scalar(&seconds_place)?;
let seconds = seconds_scalar.to_target_isize(this)?;
let nanoseconds_place = this.project_field(tp, 1)?;
let nanoseconds_scalar = this.read_scalar(&nanoseconds_place.into())?;
let nanoseconds_scalar = this.read_scalar(&nanoseconds_place)?;
let nanoseconds = nanoseconds_scalar.to_target_isize(this)?;
Ok(try {

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@ -88,7 +88,7 @@ pub(crate) fn cleanup<'mir>(
}
// Deallocate environ var list.
let environ = ecx.machine.env_vars.environ.unwrap();
let old_vars_ptr = ecx.read_pointer(&environ.into())?;
let old_vars_ptr = ecx.read_pointer(&environ)?;
ecx.deallocate_ptr(old_vars_ptr, None, MiriMemoryKind::Runtime.into())?;
Ok(())
}
@ -432,7 +432,7 @@ fn update_environ(&mut self) -> InterpResult<'tcx> {
let this = self.eval_context_mut();
// Deallocate the old environ list, if any.
if let Some(environ) = this.machine.env_vars.environ {
let old_vars_ptr = this.read_pointer(&environ.into())?;
let old_vars_ptr = this.read_pointer(&environ)?;
this.deallocate_ptr(old_vars_ptr, None, MiriMemoryKind::Runtime.into())?;
} else {
// No `environ` allocated yet, let's do that.

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@ -97,7 +97,7 @@ fn emulate_intrinsic_by_name(
"volatile_load" => {
let [place] = check_arg_count(args)?;
let place = this.deref_operand(place)?;
this.copy_op(&place.into(), dest, /*allow_transmute*/ false)?;
this.copy_op(&place, dest, /*allow_transmute*/ false)?;
}
"volatile_store" => {
let [place, dest] = check_arg_count(args)?;

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@ -57,7 +57,7 @@ enum Op {
};
for i in 0..dest_len {
let op = this.read_immediate(&this.project_index(&op, i)?.into())?;
let op = this.read_immediate(&this.project_index(&op, i)?)?;
let dest = this.project_index(&dest, i)?;
let val = match which {
Op::MirOp(mir_op) => this.unary_op(mir_op, &op)?.to_scalar(),
@ -172,8 +172,8 @@ enum Op {
};
for i in 0..dest_len {
let left = this.read_immediate(&this.project_index(&left, i)?.into())?;
let right = this.read_immediate(&this.project_index(&right, i)?.into())?;
let left = this.read_immediate(&this.project_index(&left, i)?)?;
let right = this.read_immediate(&this.project_index(&right, i)?)?;
let dest = this.project_index(&dest, i)?;
let val = match which {
Op::MirOp(mir_op) => {
@ -232,9 +232,9 @@ enum Op {
assert_eq!(dest_len, c_len);
for i in 0..dest_len {
let a = this.read_scalar(&this.project_index(&a, i)?.into())?;
let b = this.read_scalar(&this.project_index(&b, i)?.into())?;
let c = this.read_scalar(&this.project_index(&c, i)?.into())?;
let a = this.read_scalar(&this.project_index(&a, i)?)?;
let b = this.read_scalar(&this.project_index(&b, i)?)?;
let c = this.read_scalar(&this.project_index(&c, i)?)?;
let dest = this.project_index(&dest, i)?;
// Works for f32 and f64.
@ -295,13 +295,13 @@ enum Op {
};
// Initialize with first lane, then proceed with the rest.
let mut res = this.read_immediate(&this.project_index(&op, 0)?.into())?;
let mut res = this.read_immediate(&this.project_index(&op, 0)?)?;
if matches!(which, Op::MirOpBool(_)) {
// Convert to `bool` scalar.
res = imm_from_bool(simd_element_to_bool(res)?);
}
for i in 1..op_len {
let op = this.read_immediate(&this.project_index(&op, i)?.into())?;
let op = this.read_immediate(&this.project_index(&op, i)?)?;
res = match which {
Op::MirOp(mir_op) => {
this.binary_op(mir_op, &res, &op)?
@ -355,7 +355,7 @@ enum Op {
let mut res = init;
for i in 0..op_len {
let op = this.read_immediate(&this.project_index(&op, i)?.into())?;
let op = this.read_immediate(&this.project_index(&op, i)?)?;
res = this.binary_op(mir_op, &res, &op)?;
}
this.write_immediate(*res, dest)?;
@ -372,9 +372,9 @@ enum Op {
assert_eq!(dest_len, no_len);
for i in 0..dest_len {
let mask = this.read_immediate(&this.project_index(&mask, i)?.into())?;
let yes = this.read_immediate(&this.project_index(&yes, i)?.into())?;
let no = this.read_immediate(&this.project_index(&no, i)?.into())?;
let mask = this.read_immediate(&this.project_index(&mask, i)?)?;
let yes = this.read_immediate(&this.project_index(&yes, i)?)?;
let no = this.read_immediate(&this.project_index(&no, i)?)?;
let dest = this.project_index(&dest, i)?;
let val = if simd_element_to_bool(mask)? { yes } else { no };
@ -403,8 +403,8 @@ enum Op {
& 1u64
.checked_shl(simd_bitmask_index(i, dest_len, this.data_layout().endian))
.unwrap();
let yes = this.read_immediate(&this.project_index(&yes, i.into())?.into())?;
let no = this.read_immediate(&this.project_index(&no, i.into())?.into())?;
let yes = this.read_immediate(&this.project_index(&yes, i.into())?)?;
let no = this.read_immediate(&this.project_index(&no, i.into())?)?;
let dest = this.project_index(&dest, i.into())?;
let val = if mask != 0 { yes } else { no };
@ -435,7 +435,7 @@ enum Op {
let from_exposed_cast = intrinsic_name == "from_exposed_addr";
for i in 0..dest_len {
let op = this.read_immediate(&this.project_index(&op, i)?.into())?;
let op = this.read_immediate(&this.project_index(&op, i)?)?;
let dest = this.project_index(&dest, i)?;
let val = match (op.layout.ty.kind(), dest.layout.ty.kind()) {
@ -503,10 +503,10 @@ enum Op {
let dest = this.project_index(&dest, i)?;
let val = if src_index < left_len {
this.read_immediate(&this.project_index(&left, src_index)?.into())?
this.read_immediate(&this.project_index(&left, src_index)?)?
} else if src_index < left_len.checked_add(right_len).unwrap() {
let right_idx = src_index.checked_sub(left_len).unwrap();
this.read_immediate(&this.project_index(&right, right_idx)?.into())?
this.read_immediate(&this.project_index(&right, right_idx)?)?
} else {
span_bug!(
this.cur_span(),
@ -528,14 +528,14 @@ enum Op {
assert_eq!(dest_len, mask_len);
for i in 0..dest_len {
let passthru = this.read_immediate(&this.project_index(&passthru, i)?.into())?;
let ptr = this.read_immediate(&this.project_index(&ptrs, i)?.into())?;
let mask = this.read_immediate(&this.project_index(&mask, i)?.into())?;
let passthru = this.read_immediate(&this.project_index(&passthru, i)?)?;
let ptr = this.read_immediate(&this.project_index(&ptrs, i)?)?;
let mask = this.read_immediate(&this.project_index(&mask, i)?)?;
let dest = this.project_index(&dest, i)?;
let val = if simd_element_to_bool(mask)? {
let place = this.deref_operand(&ptr.into())?;
this.read_immediate(&place.into())?
let place = this.deref_operand(&ptr)?;
this.read_immediate(&place)?
} else {
passthru
};
@ -552,12 +552,12 @@ enum Op {
assert_eq!(ptrs_len, mask_len);
for i in 0..ptrs_len {
let value = this.read_immediate(&this.project_index(&value, i)?.into())?;
let ptr = this.read_immediate(&this.project_index(&ptrs, i)?.into())?;
let mask = this.read_immediate(&this.project_index(&mask, i)?.into())?;
let value = this.read_immediate(&this.project_index(&value, i)?)?;
let ptr = this.read_immediate(&this.project_index(&ptrs, i)?)?;
let mask = this.read_immediate(&this.project_index(&mask, i)?)?;
if simd_element_to_bool(mask)? {
let place = this.deref_operand(&ptr.into())?;
let place = this.deref_operand(&ptr)?;
this.write_immediate(*value, &place)?;
}
}
@ -578,7 +578,7 @@ enum Op {
let mut res = 0u64;
for i in 0..op_len {
let op = this.read_immediate(&this.project_index(&op, i.into())?.into())?;
let op = this.read_immediate(&this.project_index(&op, i.into())?)?;
if simd_element_to_bool(op)? {
res |= 1u64
.checked_shl(simd_bitmask_index(i, op_len, this.data_layout().endian))

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@ -74,9 +74,9 @@ fn epoll_ctl(
let event = this.deref_operand_as(event, this.libc_ty_layout("epoll_event"))?;
let events = this.project_field(&event, 0)?;
let events = this.read_scalar(&events.into())?.to_u32()?;
let events = this.read_scalar(&events)?.to_u32()?;
let data = this.project_field(&event, 1)?;
let data = this.read_scalar(&data.into())?;
let data = this.read_scalar(&data)?;
let event = EpollEvent { events, data };
if let Some(epfd) = this.machine.file_handler.handles.get_mut(&epfd) {

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@ -133,7 +133,7 @@ fn emulate_foreign_item_by_name(
let (written, size_needed) = this.write_path_to_c_str(
&path,
buf_ptr,
this.read_scalar(&bufsize.into())?.to_u32()?.into(),
this.read_scalar(&bufsize)?.to_u32()?.into(),
)?;
if written {

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@ -323,7 +323,7 @@ fn WaitOnAddress(
let layout = this.machine.layouts.uint(size).unwrap();
let futex_val = this
.read_scalar_atomic(&MPlaceTy::from_aligned_ptr(ptr, layout), AtomicReadOrd::Relaxed)?;
let compare_val = this.read_scalar(&MPlaceTy::from_aligned_ptr(compare, layout).into())?;
let compare_val = this.read_scalar(&MPlaceTy::from_aligned_ptr(compare, layout))?;
if futex_val == compare_val {
// If the values are the same, we have to block.