#![deny(missing_docs, clippy::indexing_slicing)]
#![cfg_attr(not(test), no_std)]
#![cfg_attr(feature = "simd-nightly", feature(stdsimd))]
#![recursion_limit = "2048"]
pub mod byteorder;
pub use crate::byteorder::*;
pub use zerocopy_derive::*;
use core::{
cell::{Ref, RefMut},
cmp::Ordering,
fmt::{self, Debug, Display, Formatter},
marker::PhantomData,
mem::{self, MaybeUninit},
num::{
NonZeroI128, NonZeroI16, NonZeroI32, NonZeroI64, NonZeroI8, NonZeroIsize, NonZeroU128,
NonZeroU16, NonZeroU32, NonZeroU64, NonZeroU8, NonZeroUsize, Wrapping,
},
ops::{Deref, DerefMut},
ptr, slice,
};
#[cfg(feature = "alloc")]
extern crate alloc;
#[cfg(feature = "alloc")]
use {
alloc::boxed::Box,
core::{alloc::Layout, ptr::NonNull},
};
mod zerocopy {
pub use crate::*;
}
macro_rules! impl_for_composite_types {
($trait:ident) => {
unsafe impl<T> $trait for PhantomData<T> {
fn only_derive_is_allowed_to_implement_this_trait()
where
Self: Sized,
{
}
}
unsafe impl<T: $trait> $trait for [T] {
fn only_derive_is_allowed_to_implement_this_trait()
where
Self: Sized,
{
}
}
unsafe impl<T: $trait> $trait for Wrapping<T> {
fn only_derive_is_allowed_to_implement_this_trait()
where
Self: Sized,
{
}
}
unsafe impl $trait for () {
fn only_derive_is_allowed_to_implement_this_trait()
where
Self: Sized,
{
}
}
unsafe impl<T: $trait, const N: usize> $trait for [T; N] {
fn only_derive_is_allowed_to_implement_this_trait()
where
Self: Sized,
{
}
}
};
}
macro_rules! impl_for_types {
($trait:ident, $($types:ty),* $(,)?) => (
$(
unsafe impl $trait for $types {
fn only_derive_is_allowed_to_implement_this_trait() {}
}
)*
);
}
macro_rules! impl_for_primitives {
($trait:ident) => {
impl_for_types!(
$trait,
u8,
i8,
u16,
i16,
u32,
i32,
u64,
i64,
u128,
i128,
usize,
isize,
f32,
f64,
Option<NonZeroU8>,
Option<NonZeroU16>,
Option<NonZeroU32>,
Option<NonZeroU64>,
Option<NonZeroU128>,
Option<NonZeroUsize>,
Option<NonZeroI8>,
Option<NonZeroI16>,
Option<NonZeroI32>,
Option<NonZeroI64>,
Option<NonZeroI128>,
Option<NonZeroIsize>,
);
};
}
pub unsafe trait FromBytes {
#[doc(hidden)]
fn only_derive_is_allowed_to_implement_this_trait()
where
Self: Sized;
fn read_from<B: ByteSlice>(bytes: B) -> Option<Self>
where
Self: Sized,
{
let lv = LayoutVerified::<_, Unalign<Self>>::new_unaligned(bytes)?;
Some(lv.read().into_inner())
}
fn read_from_prefix<B: ByteSlice>(bytes: B) -> Option<Self>
where
Self: Sized,
{
let (lv, _suffix) = LayoutVerified::<_, Unalign<Self>>::new_unaligned_from_prefix(bytes)?;
Some(lv.read().into_inner())
}
fn read_from_suffix<B: ByteSlice>(bytes: B) -> Option<Self>
where
Self: Sized,
{
let (_prefix, lv) = LayoutVerified::<_, Unalign<Self>>::new_unaligned_from_suffix(bytes)?;
Some(lv.read().into_inner())
}
fn new_zeroed() -> Self
where
Self: Sized,
{
unsafe {
mem::zeroed()
}
}
#[cfg(feature = "alloc")]
fn new_box_zeroed() -> Box<Self>
where
Self: Sized,
{
let layout = Layout::new::<Self>();
if layout.size() == 0 {
return Box::new(Self::new_zeroed());
}
unsafe {
let ptr = alloc::alloc::alloc_zeroed(layout) as *mut Self;
if ptr.is_null() {
alloc::alloc::handle_alloc_error(layout);
}
Box::from_raw(ptr)
}
}
#[cfg(feature = "alloc")]
fn new_box_slice_zeroed(len: usize) -> Box<[Self]>
where
Self: Sized,
{
unsafe {
let layout = Layout::from_size_align_unchecked(
mem::size_of::<Self>().checked_mul(len).unwrap(),
mem::align_of::<Self>(),
);
if layout.size() != 0 {
let ptr = alloc::alloc::alloc_zeroed(layout) as *mut Self;
if ptr.is_null() {
alloc::alloc::handle_alloc_error(layout);
}
Box::from_raw(slice::from_raw_parts_mut(ptr, len))
} else {
Box::from_raw(slice::from_raw_parts_mut(NonNull::<Self>::dangling().as_ptr(), len))
}
}
}
}
pub unsafe trait AsBytes {
#[doc(hidden)]
fn only_derive_is_allowed_to_implement_this_trait()
where
Self: Sized;
fn as_bytes(&self) -> &[u8] {
unsafe {
let len = mem::size_of_val(self);
slice::from_raw_parts(self as *const Self as *const u8, len)
}
}
fn as_bytes_mut(&mut self) -> &mut [u8]
where
Self: FromBytes,
{
unsafe {
let len = mem::size_of_val(self);
slice::from_raw_parts_mut(self as *mut Self as *mut u8, len)
}
}
fn write_to<B: ByteSliceMut>(&self, mut bytes: B) -> Option<()> {
if bytes.len() != mem::size_of_val(self) {
return None;
}
bytes.copy_from_slice(self.as_bytes());
Some(())
}
fn write_to_prefix<B: ByteSliceMut>(&self, mut bytes: B) -> Option<()> {
let size = mem::size_of_val(self);
bytes.get_mut(..size)?.copy_from_slice(self.as_bytes());
Some(())
}
fn write_to_suffix<B: ByteSliceMut>(&self, mut bytes: B) -> Option<()> {
let start = bytes.len().checked_sub(mem::size_of_val(self))?;
bytes
.get_mut(start..)
.expect("`start` should be in-bounds of `bytes`")
.copy_from_slice(self.as_bytes());
Some(())
}
}
impl_for_types!(
AsBytes,
bool,
char,
str,
NonZeroU8,
NonZeroU16,
NonZeroU32,
NonZeroU64,
NonZeroU128,
NonZeroUsize,
NonZeroI8,
NonZeroI16,
NonZeroI32,
NonZeroI64,
NonZeroI128,
NonZeroIsize,
);
unsafe impl<T> FromBytes for MaybeUninit<T> {
fn only_derive_is_allowed_to_implement_this_trait()
where
Self: Sized,
{
}
}
impl_for_primitives!(FromBytes);
impl_for_primitives!(AsBytes);
impl_for_composite_types!(FromBytes);
impl_for_composite_types!(AsBytes);
pub unsafe trait Unaligned {
#[doc(hidden)]
fn only_derive_is_allowed_to_implement_this_trait()
where
Self: Sized;
}
impl_for_types!(Unaligned, u8, i8, bool);
impl_for_composite_types!(Unaligned);
#[cfg(feature = "simd")]
mod simd {
#[allow(unused_macros)] macro_rules! simd_arch_mod {
($arch:ident, $($typ:ident),*) => {
mod $arch {
use core::arch::$arch::{$($typ),*};
use crate::*;
impl_for_types!(FromBytes, $($typ),*);
impl_for_types!(AsBytes, $($typ),*);
}
};
}
#[cfg(target_arch = "x86")]
simd_arch_mod!(x86, __m128, __m128d, __m128i, __m256, __m256d, __m256i);
#[cfg(target_arch = "x86_64")]
simd_arch_mod!(x86_64, __m128, __m128d, __m128i, __m256, __m256d, __m256i);
#[cfg(target_arch = "wasm32")]
simd_arch_mod!(wasm32, v128);
#[cfg(all(feature = "simd-nightly", target_arch = "powerpc"))]
simd_arch_mod!(
powerpc,
vector_bool_long,
vector_double,
vector_signed_long,
vector_unsigned_long
);
#[cfg(all(feature = "simd-nightly", target_arch = "powerpc64"))]
simd_arch_mod!(
powerpc64,
vector_bool_long,
vector_double,
vector_signed_long,
vector_unsigned_long
);
#[cfg(all(feature = "simd-nightly", target_arch = "aarch64"))]
#[rustfmt::skip]
simd_arch_mod!(
aarch64, float32x2_t, float32x4_t, float64x1_t, float64x2_t, int8x8_t, int8x8x2_t,
int8x8x3_t, int8x8x4_t, int8x16_t, int8x16x2_t, int8x16x3_t, int8x16x4_t, int16x4_t,
int16x8_t, int32x2_t, int32x4_t, int64x1_t, int64x2_t, poly8x8_t, poly8x8x2_t, poly8x8x3_t,
poly8x8x4_t, poly8x16_t, poly8x16x2_t, poly8x16x3_t, poly8x16x4_t, poly16x4_t, poly16x8_t,
poly64x1_t, poly64x2_t, uint8x8_t, uint8x8x2_t, uint8x8x3_t, uint8x8x4_t, uint8x16_t,
uint8x16x2_t, uint8x16x3_t, uint8x16x4_t, uint16x4_t, uint16x8_t, uint32x2_t, uint32x4_t,
uint64x1_t, uint64x2_t
);
#[cfg(all(feature = "simd-nightly", target_arch = "arm"))]
#[rustfmt::skip]
simd_arch_mod!(arm, int8x4_t, uint8x4_t);
}
#[derive(FromBytes, Unaligned, Copy)]
#[repr(C, packed)]
pub struct Unalign<T>(T);
impl<T: Copy> Clone for Unalign<T> {
fn clone(&self) -> Unalign<T> {
*self
}
}
impl<T> Unalign<T> {
pub fn new(val: T) -> Unalign<T> {
Unalign(val)
}
pub fn into_inner(self) -> T {
let Unalign(val) = self;
val
}
pub fn get_ptr(&self) -> *const T {
ptr::addr_of!(self.0)
}
pub fn get_mut_ptr(&mut self) -> *mut T {
ptr::addr_of_mut!(self.0)
}
}
impl<T: Copy> Unalign<T> {
pub fn get(&self) -> T {
let Unalign(val) = *self;
val
}
}
unsafe impl<T: AsBytes> AsBytes for Unalign<T> {
fn only_derive_is_allowed_to_implement_this_trait()
where
Self: Sized,
{
}
}
#[doc(hidden)]
pub use core::mem::transmute as __real_transmute;
#[macro_export]
macro_rules! transmute {
($e:expr) => {{
let e = $e;
if false {
fn transmute<T: $crate::AsBytes, U: $crate::FromBytes>(_t: T) -> U {
unreachable!()
}
transmute(e)
} else {
unsafe { $crate::__real_transmute(e) }
}
}}
}
pub struct LayoutVerified<B, T: ?Sized>(B, PhantomData<T>);
impl<B, T> LayoutVerified<B, T>
where
B: ByteSlice,
{
#[inline]
pub fn new(bytes: B) -> Option<LayoutVerified<B, T>> {
if bytes.len() != mem::size_of::<T>() || !aligned_to(bytes.deref(), mem::align_of::<T>()) {
return None;
}
Some(LayoutVerified(bytes, PhantomData))
}
#[inline]
pub fn new_from_prefix(bytes: B) -> Option<(LayoutVerified<B, T>, B)> {
if bytes.len() < mem::size_of::<T>() || !aligned_to(bytes.deref(), mem::align_of::<T>()) {
return None;
}
let (bytes, suffix) = bytes.split_at(mem::size_of::<T>());
Some((LayoutVerified(bytes, PhantomData), suffix))
}
#[inline]
pub fn new_from_suffix(bytes: B) -> Option<(B, LayoutVerified<B, T>)> {
let bytes_len = bytes.len();
if bytes_len < mem::size_of::<T>() {
return None;
}
let (prefix, bytes) = bytes.split_at(bytes_len - mem::size_of::<T>());
if !aligned_to(bytes.deref(), mem::align_of::<T>()) {
return None;
}
Some((prefix, LayoutVerified(bytes, PhantomData)))
}
}
impl<B, T> LayoutVerified<B, [T]>
where
B: ByteSlice,
{
#[inline]
pub fn new_slice(bytes: B) -> Option<LayoutVerified<B, [T]>> {
assert_ne!(mem::size_of::<T>(), 0);
if bytes.len() % mem::size_of::<T>() != 0
|| !aligned_to(bytes.deref(), mem::align_of::<T>())
{
return None;
}
Some(LayoutVerified(bytes, PhantomData))
}
#[inline]
pub fn new_slice_from_prefix(bytes: B, count: usize) -> Option<(LayoutVerified<B, [T]>, B)> {
let expected_len = match mem::size_of::<T>().checked_mul(count) {
Some(len) => len,
None => return None,
};
if bytes.len() < expected_len {
return None;
}
let (prefix, bytes) = bytes.split_at(expected_len);
Self::new_slice(prefix).map(move |l| (l, bytes))
}
#[inline]
pub fn new_slice_from_suffix(bytes: B, count: usize) -> Option<(B, LayoutVerified<B, [T]>)> {
let expected_len = match mem::size_of::<T>().checked_mul(count) {
Some(len) => len,
None => return None,
};
if bytes.len() < expected_len {
return None;
}
let (bytes, suffix) = bytes.split_at(expected_len);
Self::new_slice(suffix).map(move |l| (bytes, l))
}
}
fn map_zeroed<B: ByteSliceMut, T: ?Sized>(
opt: Option<LayoutVerified<B, T>>,
) -> Option<LayoutVerified<B, T>> {
match opt {
Some(mut lv) => {
lv.0.fill(0);
Some(lv)
}
None => None,
}
}
fn map_prefix_tuple_zeroed<B: ByteSliceMut, T: ?Sized>(
opt: Option<(LayoutVerified<B, T>, B)>,
) -> Option<(LayoutVerified<B, T>, B)> {
match opt {
Some((mut lv, rest)) => {
lv.0.fill(0);
Some((lv, rest))
}
None => None,
}
}
fn map_suffix_tuple_zeroed<B: ByteSliceMut, T: ?Sized>(
opt: Option<(B, LayoutVerified<B, T>)>,
) -> Option<(B, LayoutVerified<B, T>)> {
map_prefix_tuple_zeroed(opt.map(|(a, b)| (b, a))).map(|(a, b)| (b, a))
}
impl<B, T> LayoutVerified<B, T>
where
B: ByteSliceMut,
{
#[inline]
pub fn new_zeroed(bytes: B) -> Option<LayoutVerified<B, T>> {
map_zeroed(Self::new(bytes))
}
#[inline]
pub fn new_from_prefix_zeroed(bytes: B) -> Option<(LayoutVerified<B, T>, B)> {
map_prefix_tuple_zeroed(Self::new_from_prefix(bytes))
}
#[inline]
pub fn new_from_suffix_zeroed(bytes: B) -> Option<(B, LayoutVerified<B, T>)> {
map_suffix_tuple_zeroed(Self::new_from_suffix(bytes))
}
}
impl<B, T> LayoutVerified<B, [T]>
where
B: ByteSliceMut,
{
#[inline]
pub fn new_slice_zeroed(bytes: B) -> Option<LayoutVerified<B, [T]>> {
map_zeroed(Self::new_slice(bytes))
}
#[inline]
pub fn new_slice_from_prefix_zeroed(
bytes: B,
count: usize,
) -> Option<(LayoutVerified<B, [T]>, B)> {
map_prefix_tuple_zeroed(Self::new_slice_from_prefix(bytes, count))
}
#[inline]
pub fn new_slice_from_suffix_zeroed(
bytes: B,
count: usize,
) -> Option<(B, LayoutVerified<B, [T]>)> {
map_suffix_tuple_zeroed(Self::new_slice_from_suffix(bytes, count))
}
}
impl<B, T> LayoutVerified<B, T>
where
B: ByteSlice,
T: Unaligned,
{
#[inline]
pub fn new_unaligned(bytes: B) -> Option<LayoutVerified<B, T>> {
if bytes.len() != mem::size_of::<T>() {
return None;
}
Some(LayoutVerified(bytes, PhantomData))
}
#[inline]
pub fn new_unaligned_from_prefix(bytes: B) -> Option<(LayoutVerified<B, T>, B)> {
if bytes.len() < mem::size_of::<T>() {
return None;
}
let (bytes, suffix) = bytes.split_at(mem::size_of::<T>());
Some((LayoutVerified(bytes, PhantomData), suffix))
}
#[inline]
pub fn new_unaligned_from_suffix(bytes: B) -> Option<(B, LayoutVerified<B, T>)> {
let bytes_len = bytes.len();
if bytes_len < mem::size_of::<T>() {
return None;
}
let (prefix, bytes) = bytes.split_at(bytes_len - mem::size_of::<T>());
Some((prefix, LayoutVerified(bytes, PhantomData)))
}
}
impl<B, T> LayoutVerified<B, [T]>
where
B: ByteSlice,
T: Unaligned,
{
#[inline]
pub fn new_slice_unaligned(bytes: B) -> Option<LayoutVerified<B, [T]>> {
assert_ne!(mem::size_of::<T>(), 0);
if bytes.len() % mem::size_of::<T>() != 0 {
return None;
}
Some(LayoutVerified(bytes, PhantomData))
}
#[inline]
pub fn new_slice_unaligned_from_prefix(
bytes: B,
count: usize,
) -> Option<(LayoutVerified<B, [T]>, B)> {
let expected_len = match mem::size_of::<T>().checked_mul(count) {
Some(len) => len,
None => return None,
};
if bytes.len() < expected_len {
return None;
}
let (prefix, bytes) = bytes.split_at(expected_len);
Self::new_slice_unaligned(prefix).map(move |l| (l, bytes))
}
#[inline]
pub fn new_slice_unaligned_from_suffix(
bytes: B,
count: usize,
) -> Option<(B, LayoutVerified<B, [T]>)> {
let expected_len = match mem::size_of::<T>().checked_mul(count) {
Some(len) => len,
None => return None,
};
if bytes.len() < expected_len {
return None;
}
let (bytes, suffix) = bytes.split_at(expected_len);
Self::new_slice_unaligned(suffix).map(move |l| (bytes, l))
}
}
impl<B, T> LayoutVerified<B, T>
where
B: ByteSliceMut,
T: Unaligned,
{
#[inline]
pub fn new_unaligned_zeroed(bytes: B) -> Option<LayoutVerified<B, T>> {
map_zeroed(Self::new_unaligned(bytes))
}
#[inline]
pub fn new_unaligned_from_prefix_zeroed(bytes: B) -> Option<(LayoutVerified<B, T>, B)> {
map_prefix_tuple_zeroed(Self::new_unaligned_from_prefix(bytes))
}
#[inline]
pub fn new_unaligned_from_suffix_zeroed(bytes: B) -> Option<(B, LayoutVerified<B, T>)> {
map_suffix_tuple_zeroed(Self::new_unaligned_from_suffix(bytes))
}
}
impl<B, T> LayoutVerified<B, [T]>
where
B: ByteSliceMut,
T: Unaligned,
{
#[inline]
pub fn new_slice_unaligned_zeroed(bytes: B) -> Option<LayoutVerified<B, [T]>> {
map_zeroed(Self::new_slice_unaligned(bytes))
}
#[inline]
pub fn new_slice_unaligned_from_prefix_zeroed(
bytes: B,
count: usize,
) -> Option<(LayoutVerified<B, [T]>, B)> {
map_prefix_tuple_zeroed(Self::new_slice_unaligned_from_prefix(bytes, count))
}
#[inline]
pub fn new_slice_unaligned_from_suffix_zeroed(
bytes: B,
count: usize,
) -> Option<(B, LayoutVerified<B, [T]>)> {
map_suffix_tuple_zeroed(Self::new_slice_unaligned_from_suffix(bytes, count))
}
}
impl<'a, B, T> LayoutVerified<B, T>
where
B: 'a + ByteSlice,
T: FromBytes,
{
pub fn into_ref(self) -> &'a T {
unsafe { self.deref_helper() }
}
}
impl<'a, B, T> LayoutVerified<B, T>
where
B: 'a + ByteSliceMut,
T: FromBytes + AsBytes,
{
pub fn into_mut(mut self) -> &'a mut T {
unsafe { self.deref_mut_helper() }
}
}
impl<'a, B, T> LayoutVerified<B, [T]>
where
B: 'a + ByteSlice,
T: FromBytes,
{
pub fn into_slice(self) -> &'a [T] {
unsafe { self.deref_slice_helper() }
}
}
impl<'a, B, T> LayoutVerified<B, [T]>
where
B: 'a + ByteSliceMut,
T: FromBytes + AsBytes,
{
pub fn into_mut_slice(mut self) -> &'a mut [T] {
unsafe { self.deref_mut_slice_helper() }
}
}
impl<B, T> LayoutVerified<B, T>
where
B: ByteSlice,
T: FromBytes,
{
unsafe fn deref_helper<'a>(&self) -> &'a T {
&*(self.0.as_ptr() as *const T)
}
}
impl<B, T> LayoutVerified<B, T>
where
B: ByteSliceMut,
T: FromBytes + AsBytes,
{
unsafe fn deref_mut_helper<'a>(&mut self) -> &'a mut T {
&mut *(self.0.as_mut_ptr() as *mut T)
}
}
impl<B, T> LayoutVerified<B, [T]>
where
B: ByteSlice,
T: FromBytes,
{
unsafe fn deref_slice_helper<'a>(&self) -> &'a [T] {
let len = self.0.len();
let elem_size = mem::size_of::<T>();
debug_assert_ne!(elem_size, 0);
debug_assert_eq!(len % elem_size, 0);
let elems = len / elem_size;
slice::from_raw_parts(self.0.as_ptr() as *const T, elems)
}
}
impl<B, T> LayoutVerified<B, [T]>
where
B: ByteSliceMut,
T: FromBytes + AsBytes,
{
unsafe fn deref_mut_slice_helper<'a>(&mut self) -> &'a mut [T] {
let len = self.0.len();
let elem_size = mem::size_of::<T>();
debug_assert_ne!(elem_size, 0);
debug_assert_eq!(len % elem_size, 0);
let elems = len / elem_size;
slice::from_raw_parts_mut(self.0.as_mut_ptr() as *mut T, elems)
}
}
#[inline]
fn aligned_to(bytes: &[u8], align: usize) -> bool {
(bytes as *const _ as *const () as usize) % align == 0
}
impl<B, T> LayoutVerified<B, T>
where
B: ByteSlice,
T: ?Sized,
{
#[inline]
pub fn bytes(&self) -> &[u8] {
&self.0
}
}
impl<B, T> LayoutVerified<B, T>
where
B: ByteSliceMut,
T: ?Sized,
{
#[inline]
pub fn bytes_mut(&mut self) -> &mut [u8] {
&mut self.0
}
}
impl<B, T> LayoutVerified<B, T>
where
B: ByteSlice,
T: FromBytes,
{
#[inline]
pub fn read(&self) -> T {
unsafe { ptr::read(self.0.as_ptr() as *const T) }
}
}
impl<B, T> LayoutVerified<B, T>
where
B: ByteSliceMut,
T: AsBytes,
{
#[inline]
pub fn write(&mut self, t: T) {
unsafe { ptr::write(self.0.as_mut_ptr() as *mut T, t) }
}
}
impl<B, T> Deref for LayoutVerified<B, T>
where
B: ByteSlice,
T: FromBytes,
{
type Target = T;
#[inline]
fn deref(&self) -> &T {
unsafe { self.deref_helper() }
}
}
impl<B, T> DerefMut for LayoutVerified<B, T>
where
B: ByteSliceMut,
T: FromBytes + AsBytes,
{
#[inline]
fn deref_mut(&mut self) -> &mut T {
unsafe { self.deref_mut_helper() }
}
}
impl<B, T> Deref for LayoutVerified<B, [T]>
where
B: ByteSlice,
T: FromBytes,
{
type Target = [T];
#[inline]
fn deref(&self) -> &[T] {
unsafe { self.deref_slice_helper() }
}
}
impl<B, T> DerefMut for LayoutVerified<B, [T]>
where
B: ByteSliceMut,
T: FromBytes + AsBytes,
{
#[inline]
fn deref_mut(&mut self) -> &mut [T] {
unsafe { self.deref_mut_slice_helper() }
}
}
impl<T, B> Display for LayoutVerified<B, T>
where
B: ByteSlice,
T: FromBytes + Display,
{
#[inline]
fn fmt(&self, fmt: &mut Formatter<'_>) -> fmt::Result {
let inner: &T = self;
inner.fmt(fmt)
}
}
impl<T, B> Display for LayoutVerified<B, [T]>
where
B: ByteSlice,
T: FromBytes,
[T]: Display,
{
#[inline]
fn fmt(&self, fmt: &mut Formatter<'_>) -> fmt::Result {
let inner: &[T] = self;
inner.fmt(fmt)
}
}
impl<T, B> Debug for LayoutVerified<B, T>
where
B: ByteSlice,
T: FromBytes + Debug,
{
#[inline]
fn fmt(&self, fmt: &mut Formatter<'_>) -> fmt::Result {
let inner: &T = self;
fmt.debug_tuple("LayoutVerified").field(&inner).finish()
}
}
impl<T, B> Debug for LayoutVerified<B, [T]>
where
B: ByteSlice,
T: FromBytes + Debug,
{
#[inline]
fn fmt(&self, fmt: &mut Formatter<'_>) -> fmt::Result {
let inner: &[T] = self;
fmt.debug_tuple("LayoutVerified").field(&inner).finish()
}
}
impl<T, B> Eq for LayoutVerified<B, T>
where
B: ByteSlice,
T: FromBytes + Eq,
{
}
impl<T, B> Eq for LayoutVerified<B, [T]>
where
B: ByteSlice,
T: FromBytes + Eq,
{
}
impl<T, B> PartialEq for LayoutVerified<B, T>
where
B: ByteSlice,
T: FromBytes + PartialEq,
{
#[inline]
fn eq(&self, other: &Self) -> bool {
self.deref().eq(other.deref())
}
}
impl<T, B> PartialEq for LayoutVerified<B, [T]>
where
B: ByteSlice,
T: FromBytes + PartialEq,
{
#[inline]
fn eq(&self, other: &Self) -> bool {
self.deref().eq(other.deref())
}
}
impl<T, B> Ord for LayoutVerified<B, T>
where
B: ByteSlice,
T: FromBytes + Ord,
{
#[inline]
fn cmp(&self, other: &Self) -> Ordering {
let inner: &T = self;
let other_inner: &T = other;
inner.cmp(other_inner)
}
}
impl<T, B> Ord for LayoutVerified<B, [T]>
where
B: ByteSlice,
T: FromBytes + Ord,
{
#[inline]
fn cmp(&self, other: &Self) -> Ordering {
let inner: &[T] = self;
let other_inner: &[T] = other;
inner.cmp(other_inner)
}
}
impl<T, B> PartialOrd for LayoutVerified<B, T>
where
B: ByteSlice,
T: FromBytes + PartialOrd,
{
#[inline]
fn partial_cmp(&self, other: &Self) -> Option<Ordering> {
let inner: &T = self;
let other_inner: &T = other;
inner.partial_cmp(other_inner)
}
}
impl<T, B> PartialOrd for LayoutVerified<B, [T]>
where
B: ByteSlice,
T: FromBytes + PartialOrd,
{
#[inline]
fn partial_cmp(&self, other: &Self) -> Option<Ordering> {
let inner: &[T] = self;
let other_inner: &[T] = other;
inner.partial_cmp(other_inner)
}
}
mod sealed {
use core::cell::{Ref, RefMut};
pub trait Sealed {}
impl<'a> Sealed for &'a [u8] {}
impl<'a> Sealed for &'a mut [u8] {}
impl<'a> Sealed for Ref<'a, [u8]> {}
impl<'a> Sealed for RefMut<'a, [u8]> {}
}
#[allow(clippy::missing_safety_doc)] pub unsafe trait ByteSlice: Deref<Target = [u8]> + Sized + self::sealed::Sealed {
#[inline]
fn as_ptr(&self) -> *const u8 {
<[u8]>::as_ptr(self)
}
fn split_at(self, mid: usize) -> (Self, Self);
}
#[allow(clippy::missing_safety_doc)] pub unsafe trait ByteSliceMut: ByteSlice + DerefMut {
#[inline]
fn as_mut_ptr(&mut self) -> *mut u8 {
<[u8]>::as_mut_ptr(self)
}
}
unsafe impl<'a> ByteSlice for &'a [u8] {
#[inline]
fn split_at(self, mid: usize) -> (Self, Self) {
<[u8]>::split_at(self, mid)
}
}
unsafe impl<'a> ByteSlice for &'a mut [u8] {
#[inline]
fn split_at(self, mid: usize) -> (Self, Self) {
<[u8]>::split_at_mut(self, mid)
}
}
unsafe impl<'a> ByteSlice for Ref<'a, [u8]> {
#[inline]
fn split_at(self, mid: usize) -> (Self, Self) {
Ref::map_split(self, |slice| <[u8]>::split_at(slice, mid))
}
}
unsafe impl<'a> ByteSlice for RefMut<'a, [u8]> {
#[inline]
fn split_at(self, mid: usize) -> (Self, Self) {
RefMut::map_split(self, |slice| <[u8]>::split_at_mut(slice, mid))
}
}
unsafe impl<'a> ByteSliceMut for &'a mut [u8] {}
unsafe impl<'a> ByteSliceMut for RefMut<'a, [u8]> {}
#[cfg(feature = "alloc")]
mod alloc_support {
use alloc::vec::Vec;
use super::*;
pub fn extend_vec_zeroed<T: FromBytes>(v: &mut Vec<T>, additional: usize) {
insert_vec_zeroed(v, v.len(), additional);
}
pub fn insert_vec_zeroed<T: FromBytes>(v: &mut Vec<T>, position: usize, additional: usize) {
assert!(position <= v.len());
v.reserve(additional);
unsafe {
let ptr = v.as_mut_ptr();
ptr.add(position).copy_to(ptr.add(position + additional), v.len() - position);
ptr.add(position).write_bytes(0, additional);
v.set_len(v.len() + additional);
}
}
#[cfg(test)]
mod tests {
use super::*;
#[test]
fn test_extend_vec_zeroed() {
let mut v: Vec<u64> = Vec::with_capacity(3);
v.push(100);
v.push(200);
v.push(300);
extend_vec_zeroed(&mut v, 3);
assert_eq!(v.len(), 6);
assert_eq!(&*v, &[100, 200, 300, 0, 0, 0]);
drop(v);
let mut v: Vec<u64> = Vec::new();
extend_vec_zeroed(&mut v, 3);
assert_eq!(v.len(), 3);
assert_eq!(&*v, &[0, 0, 0]);
drop(v);
}
#[test]
fn test_extend_vec_zeroed_zst() {
let mut v: Vec<()> = Vec::with_capacity(3);
v.push(());
v.push(());
v.push(());
extend_vec_zeroed(&mut v, 3);
assert_eq!(v.len(), 6);
assert_eq!(&*v, &[(), (), (), (), (), ()]);
drop(v);
let mut v: Vec<()> = Vec::new();
extend_vec_zeroed(&mut v, 3);
assert_eq!(&*v, &[(), (), ()]);
drop(v);
}
#[test]
fn test_insert_vec_zeroed() {
let mut v: Vec<u64> = Vec::new();
insert_vec_zeroed(&mut v, 0, 2);
assert_eq!(v.len(), 2);
assert_eq!(&*v, &[0, 0]);
drop(v);
let mut v: Vec<u64> = Vec::with_capacity(3);
v.push(100);
v.push(200);
v.push(300);
insert_vec_zeroed(&mut v, 0, 2);
assert_eq!(v.len(), 5);
assert_eq!(&*v, &[0, 0, 100, 200, 300]);
drop(v);
let mut v: Vec<u64> = Vec::with_capacity(3);
v.push(100);
v.push(200);
v.push(300);
insert_vec_zeroed(&mut v, 1, 1);
assert_eq!(v.len(), 4);
assert_eq!(&*v, &[100, 0, 200, 300]);
drop(v);
let mut v: Vec<u64> = Vec::with_capacity(3);
v.push(100);
v.push(200);
v.push(300);
insert_vec_zeroed(&mut v, 3, 1);
assert_eq!(v.len(), 4);
assert_eq!(&*v, &[100, 200, 300, 0]);
drop(v);
}
#[test]
fn test_insert_vec_zeroed_zst() {
let mut v: Vec<()> = Vec::new();
insert_vec_zeroed(&mut v, 0, 2);
assert_eq!(v.len(), 2);
assert_eq!(&*v, &[(), ()]);
drop(v);
let mut v: Vec<()> = Vec::with_capacity(3);
v.push(());
v.push(());
v.push(());
insert_vec_zeroed(&mut v, 0, 2);
assert_eq!(v.len(), 5);
assert_eq!(&*v, &[(), (), (), (), ()]);
drop(v);
let mut v: Vec<()> = Vec::with_capacity(3);
v.push(());
v.push(());
v.push(());
insert_vec_zeroed(&mut v, 1, 1);
assert_eq!(v.len(), 4);
assert_eq!(&*v, &[(), (), (), ()]);
drop(v);
let mut v: Vec<()> = Vec::with_capacity(3);
v.push(());
v.push(());
v.push(());
insert_vec_zeroed(&mut v, 3, 1);
assert_eq!(v.len(), 4);
assert_eq!(&*v, &[(), (), (), ()]);
drop(v);
}
#[test]
fn test_new_box_zeroed() {
assert_eq!(*u64::new_box_zeroed(), 0);
}
#[test]
fn test_new_box_zeroed_array() {
drop(<[u32; 0x1000]>::new_box_zeroed());
}
#[test]
fn test_new_box_zeroed_zst() {
#[allow(clippy::unit_cmp)]
{
assert_eq!(*<()>::new_box_zeroed(), ());
}
}
#[test]
fn test_new_box_slice_zeroed() {
let mut s: Box<[u64]> = u64::new_box_slice_zeroed(3);
assert_eq!(s.len(), 3);
assert_eq!(&*s, &[0, 0, 0]);
s[1] = 3;
assert_eq!(&*s, &[0, 3, 0]);
}
#[test]
fn test_new_box_slice_zeroed_empty() {
let s: Box<[u64]> = u64::new_box_slice_zeroed(0);
assert_eq!(s.len(), 0);
}
#[test]
fn test_new_box_slice_zeroed_zst() {
let mut s: Box<[()]> = <()>::new_box_slice_zeroed(3);
assert_eq!(s.len(), 3);
assert!(s.get(10).is_none());
#[allow(clippy::unit_cmp)]
{
assert_eq!(s[1], ());
}
s[2] = ();
}
#[test]
fn test_new_box_slice_zeroed_zst_empty() {
let s: Box<[()]> = <()>::new_box_slice_zeroed(0);
assert_eq!(s.len(), 0);
}
}
}
#[cfg(feature = "alloc")]
#[doc(inline)]
pub use alloc_support::*;
#[cfg(test)]
mod tests {
#![allow(clippy::unreadable_literal)]
use core::ops::Deref;
use super::*;
#[derive(Default)]
struct AlignedBuffer<T, B> {
buf: B,
_t: T,
}
impl<T, B: Default> AlignedBuffer<T, B> {
fn clear_buf(&mut self) {
self.buf = B::default();
}
}
fn u64_to_bytes(u: u64) -> [u8; 8] {
unsafe { ptr::read(&u as *const u64 as *const [u8; 8]) }
}
#[test]
fn test_read_write() {
const VAL: u64 = 0x12345678;
#[cfg(target_endian = "big")]
const VAL_BYTES: [u8; 8] = VAL.to_be_bytes();
#[cfg(target_endian = "little")]
const VAL_BYTES: [u8; 8] = VAL.to_le_bytes();
assert_eq!(u64::read_from(&VAL_BYTES[..]), Some(VAL));
let bytes_with_prefix: [u8; 16] = transmute!([VAL_BYTES, [0; 8]]);
assert_eq!(u64::read_from_prefix(&bytes_with_prefix[..]), Some(VAL));
assert_eq!(u64::read_from_suffix(&bytes_with_prefix[..]), Some(0));
let bytes_with_suffix: [u8; 16] = transmute!([[0; 8], VAL_BYTES]);
assert_eq!(u64::read_from_prefix(&bytes_with_suffix[..]), Some(0));
assert_eq!(u64::read_from_suffix(&bytes_with_suffix[..]), Some(VAL));
let mut bytes = [0u8; 8];
assert_eq!(VAL.write_to(&mut bytes[..]), Some(()));
assert_eq!(bytes, VAL_BYTES);
let mut bytes = [0u8; 16];
assert_eq!(VAL.write_to_prefix(&mut bytes[..]), Some(()));
let want: [u8; 16] = transmute!([VAL_BYTES, [0; 8]]);
assert_eq!(bytes, want);
let mut bytes = [0u8; 16];
assert_eq!(VAL.write_to_suffix(&mut bytes[..]), Some(()));
let want: [u8; 16] = transmute!([[0; 8], VAL_BYTES]);
assert_eq!(bytes, want);
}
#[test]
fn test_transmute() {
let array_of_u8s = [0u8, 1, 2, 3, 4, 5, 6, 7];
let array_of_arrays = [[0, 1], [2, 3], [4, 5], [6, 7]];
let x: [[u8; 2]; 4] = transmute!(array_of_u8s);
assert_eq!(x, array_of_arrays);
let x: [u8; 8] = transmute!(array_of_arrays);
assert_eq!(x, array_of_u8s);
#[derive(AsBytes)]
#[repr(transparent)]
struct PanicOnDrop(());
impl Drop for PanicOnDrop {
fn drop(&mut self) {
panic!("PanicOnDrop::drop");
}
}
let _: () = transmute!(PanicOnDrop(()));
}
#[test]
fn test_address() {
let buf = [0];
let lv = LayoutVerified::<_, u8>::new(&buf[..]).unwrap();
let buf_ptr = buf.as_ptr();
let deref_ptr = lv.deref() as *const u8;
assert_eq!(buf_ptr, deref_ptr);
let buf = [0];
let lv = LayoutVerified::<_, [u8]>::new_slice(&buf[..]).unwrap();
let buf_ptr = buf.as_ptr();
let deref_ptr = lv.deref().as_ptr();
assert_eq!(buf_ptr, deref_ptr);
}
fn test_new_helper<'a>(mut lv: LayoutVerified<&'a mut [u8], u64>) {
assert_eq!(*lv, 0);
assert_eq!(lv.read(), 0);
const VAL1: u64 = 0xFF00FF00FF00FF00;
*lv = VAL1;
assert_eq!(lv.bytes(), &u64_to_bytes(VAL1));
*lv = 0;
lv.write(VAL1);
assert_eq!(lv.bytes(), &u64_to_bytes(VAL1));
const VAL2: u64 = !VAL1; lv.bytes_mut().copy_from_slice(&u64_to_bytes(VAL2)[..]);
assert_eq!(*lv, VAL2);
assert_eq!(lv.read(), VAL2);
}
fn test_new_helper_slice<'a>(mut lv: LayoutVerified<&'a mut [u8], [u64]>, typed_len: usize) {
assert_eq!(&*lv, vec![0; typed_len].as_slice());
let untyped_len = typed_len * 8;
assert_eq!(lv.bytes().len(), untyped_len);
assert_eq!(lv.bytes().as_ptr(), lv.as_ptr() as *const u8);
const VAL1: u64 = 0xFF00FF00FF00FF00;
for typed in &mut *lv {
*typed = VAL1;
}
assert_eq!(lv.bytes(), VAL1.to_ne_bytes().repeat(typed_len).as_slice());
const VAL2: u64 = !VAL1; lv.bytes_mut().copy_from_slice(&VAL2.to_ne_bytes().repeat(typed_len));
assert!(lv.iter().copied().all(|x| x == VAL2));
}
fn test_new_helper_unaligned<'a>(mut lv: LayoutVerified<&'a mut [u8], [u8; 8]>) {
assert_eq!(*lv, [0; 8]);
assert_eq!(lv.read(), [0; 8]);
const VAL1: [u8; 8] = [0xFF, 0x00, 0xFF, 0x00, 0xFF, 0x00, 0xFF, 0x00];
*lv = VAL1;
assert_eq!(lv.bytes(), &VAL1);
*lv = [0; 8];
lv.write(VAL1);
assert_eq!(lv.bytes(), &VAL1);
const VAL2: [u8; 8] = [0x00, 0xFF, 0x00, 0xFF, 0x00, 0xFF, 0x00, 0xFF]; lv.bytes_mut().copy_from_slice(&VAL2[..]);
assert_eq!(*lv, VAL2);
assert_eq!(lv.read(), VAL2);
}
fn test_new_helper_slice_unaligned<'a>(mut lv: LayoutVerified<&'a mut [u8], [u8]>, len: usize) {
assert_eq!(&*lv, vec![0u8; len].as_slice());
assert_eq!(lv.bytes().len(), len);
assert_eq!(lv.bytes().as_ptr(), lv.as_ptr());
let mut expected_bytes = [0xFF, 0x00].iter().copied().cycle().take(len).collect::<Vec<_>>();
lv.copy_from_slice(&expected_bytes);
assert_eq!(lv.bytes(), expected_bytes.as_slice());
for byte in &mut expected_bytes {
*byte = !*byte; }
lv.bytes_mut().copy_from_slice(&expected_bytes);
assert_eq!(&*lv, expected_bytes.as_slice());
}
#[test]
fn test_new_aligned_sized() {
let mut buf = AlignedBuffer::<u64, [u8; 8]>::default();
test_new_helper(LayoutVerified::<_, u64>::new(&mut buf.buf[..]).unwrap());
buf.buf = [0xFFu8; 8];
test_new_helper(LayoutVerified::<_, u64>::new_zeroed(&mut buf.buf[..]).unwrap());
{
buf.clear_buf();
let (lv, suffix) = LayoutVerified::<_, u64>::new_from_prefix(&mut buf.buf[..]).unwrap();
assert!(suffix.is_empty());
test_new_helper(lv);
}
{
buf.buf = [0xFFu8; 8];
let (lv, suffix) =
LayoutVerified::<_, u64>::new_from_prefix_zeroed(&mut buf.buf[..]).unwrap();
assert!(suffix.is_empty());
test_new_helper(lv);
}
{
buf.clear_buf();
let (prefix, lv) = LayoutVerified::<_, u64>::new_from_suffix(&mut buf.buf[..]).unwrap();
assert!(prefix.is_empty());
test_new_helper(lv);
}
{
buf.buf = [0xFFu8; 8];
let (prefix, lv) =
LayoutVerified::<_, u64>::new_from_suffix_zeroed(&mut buf.buf[..]).unwrap();
assert!(prefix.is_empty());
test_new_helper(lv);
}
let mut buf = AlignedBuffer::<u64, [u8; 16]>::default();
test_new_helper_slice(LayoutVerified::<_, [u64]>::new_slice(&mut buf.buf[..]).unwrap(), 2);
buf.buf = [0xFFu8; 16];
test_new_helper_slice(
LayoutVerified::<_, [u64]>::new_slice_zeroed(&mut buf.buf[..]).unwrap(),
2,
);
{
buf.clear_buf();
let (lv, suffix) =
LayoutVerified::<_, [u64]>::new_slice_from_prefix(&mut buf.buf[..], 1).unwrap();
assert_eq!(suffix, [0; 8]);
test_new_helper_slice(lv, 1);
}
{
buf.buf = [0xFFu8; 16];
let (lv, suffix) =
LayoutVerified::<_, [u64]>::new_slice_from_prefix_zeroed(&mut buf.buf[..], 1)
.unwrap();
assert_eq!(suffix, [0xFF; 8]);
test_new_helper_slice(lv, 1);
}
{
buf.clear_buf();
let (prefix, lv) =
LayoutVerified::<_, [u64]>::new_slice_from_suffix(&mut buf.buf[..], 1).unwrap();
assert_eq!(prefix, [0; 8]);
test_new_helper_slice(lv, 1);
}
{
buf.buf = [0xFFu8; 16];
let (prefix, lv) =
LayoutVerified::<_, [u64]>::new_slice_from_suffix_zeroed(&mut buf.buf[..], 1)
.unwrap();
assert_eq!(prefix, [0xFF; 8]);
test_new_helper_slice(lv, 1);
}
}
#[test]
fn test_new_unaligned_sized() {
let mut buf = [0u8; 8];
test_new_helper_unaligned(
LayoutVerified::<_, [u8; 8]>::new_unaligned(&mut buf[..]).unwrap(),
);
buf = [0xFFu8; 8];
test_new_helper_unaligned(
LayoutVerified::<_, [u8; 8]>::new_unaligned_zeroed(&mut buf[..]).unwrap(),
);
{
buf = [0u8; 8];
let (lv, suffix) =
LayoutVerified::<_, [u8; 8]>::new_unaligned_from_prefix(&mut buf[..]).unwrap();
assert!(suffix.is_empty());
test_new_helper_unaligned(lv);
}
{
buf = [0xFFu8; 8];
let (lv, suffix) =
LayoutVerified::<_, [u8; 8]>::new_unaligned_from_prefix_zeroed(&mut buf[..])
.unwrap();
assert!(suffix.is_empty());
test_new_helper_unaligned(lv);
}
{
buf = [0u8; 8];
let (prefix, lv) =
LayoutVerified::<_, [u8; 8]>::new_unaligned_from_suffix(&mut buf[..]).unwrap();
assert!(prefix.is_empty());
test_new_helper_unaligned(lv);
}
{
buf = [0xFFu8; 8];
let (prefix, lv) =
LayoutVerified::<_, [u8; 8]>::new_unaligned_from_suffix_zeroed(&mut buf[..])
.unwrap();
assert!(prefix.is_empty());
test_new_helper_unaligned(lv);
}
let mut buf = [0u8; 16];
test_new_helper_slice_unaligned(
LayoutVerified::<_, [u8]>::new_slice_unaligned(&mut buf[..]).unwrap(),
16,
);
buf = [0xFFu8; 16];
test_new_helper_slice_unaligned(
LayoutVerified::<_, [u8]>::new_slice_unaligned_zeroed(&mut buf[..]).unwrap(),
16,
);
{
buf = [0u8; 16];
let (lv, suffix) =
LayoutVerified::<_, [u8]>::new_slice_unaligned_from_prefix(&mut buf[..], 8)
.unwrap();
assert_eq!(suffix, [0; 8]);
test_new_helper_slice_unaligned(lv, 8);
}
{
buf = [0xFFu8; 16];
let (lv, suffix) =
LayoutVerified::<_, [u8]>::new_slice_unaligned_from_prefix_zeroed(&mut buf[..], 8)
.unwrap();
assert_eq!(suffix, [0xFF; 8]);
test_new_helper_slice_unaligned(lv, 8);
}
{
buf = [0u8; 16];
let (prefix, lv) =
LayoutVerified::<_, [u8]>::new_slice_unaligned_from_suffix(&mut buf[..], 8)
.unwrap();
assert_eq!(prefix, [0; 8]);
test_new_helper_slice_unaligned(lv, 8);
}
{
buf = [0xFFu8; 16];
let (prefix, lv) =
LayoutVerified::<_, [u8]>::new_slice_unaligned_from_suffix_zeroed(&mut buf[..], 8)
.unwrap();
assert_eq!(prefix, [0xFF; 8]);
test_new_helper_slice_unaligned(lv, 8);
}
}
#[test]
fn test_new_oversized() {
let mut buf = AlignedBuffer::<u64, [u8; 16]>::default();
{
let (lv, suffix) = LayoutVerified::<_, u64>::new_from_prefix(&mut buf.buf[..]).unwrap();
assert_eq!(suffix.len(), 8);
test_new_helper(lv);
}
{
buf.buf = [0xFFu8; 16];
let (lv, suffix) =
LayoutVerified::<_, u64>::new_from_prefix_zeroed(&mut buf.buf[..]).unwrap();
assert_eq!(suffix, &[0xFFu8; 8]);
test_new_helper(lv);
}
{
buf.clear_buf();
let (prefix, lv) = LayoutVerified::<_, u64>::new_from_suffix(&mut buf.buf[..]).unwrap();
assert_eq!(prefix.len(), 8);
test_new_helper(lv);
}
{
buf.buf = [0xFFu8; 16];
let (prefix, lv) =
LayoutVerified::<_, u64>::new_from_suffix_zeroed(&mut buf.buf[..]).unwrap();
assert_eq!(prefix, &[0xFFu8; 8]);
test_new_helper(lv);
}
}
#[test]
fn test_new_unaligned_oversized() {
let mut buf = [0u8; 16];
{
let (lv, suffix) =
LayoutVerified::<_, [u8; 8]>::new_unaligned_from_prefix(&mut buf[..]).unwrap();
assert_eq!(suffix.len(), 8);
test_new_helper_unaligned(lv);
}
{
buf = [0xFFu8; 16];
let (lv, suffix) =
LayoutVerified::<_, [u8; 8]>::new_unaligned_from_prefix_zeroed(&mut buf[..])
.unwrap();
assert_eq!(suffix, &[0xFF; 8]);
test_new_helper_unaligned(lv);
}
{
buf = [0u8; 16];
let (prefix, lv) =
LayoutVerified::<_, [u8; 8]>::new_unaligned_from_suffix(&mut buf[..]).unwrap();
assert_eq!(prefix.len(), 8);
test_new_helper_unaligned(lv);
}
{
buf = [0xFFu8; 16];
let (prefix, lv) =
LayoutVerified::<_, [u8; 8]>::new_unaligned_from_suffix_zeroed(&mut buf[..])
.unwrap();
assert_eq!(prefix, &[0xFF; 8]);
test_new_helper_unaligned(lv);
}
}
#[test]
#[allow(clippy::cognitive_complexity)]
fn test_new_error() {
let mut buf = AlignedBuffer::<u64, [u8; 16]>::default();
assert!(LayoutVerified::<_, u64>::new(&buf.buf[..]).is_none());
assert!(LayoutVerified::<_, u64>::new_zeroed(&mut buf.buf[..]).is_none());
assert!(LayoutVerified::<_, [u8; 8]>::new_unaligned(&buf.buf[..]).is_none());
assert!(LayoutVerified::<_, [u8; 8]>::new_unaligned_zeroed(&mut buf.buf[..]).is_none());
let mut buf = AlignedBuffer::<u64, [u8; 4]>::default();
assert!(LayoutVerified::<_, u64>::new(&buf.buf[..]).is_none());
assert!(LayoutVerified::<_, u64>::new_zeroed(&mut buf.buf[..]).is_none());
assert!(LayoutVerified::<_, [u8; 8]>::new_unaligned(&buf.buf[..]).is_none());
assert!(LayoutVerified::<_, [u8; 8]>::new_unaligned_zeroed(&mut buf.buf[..]).is_none());
assert!(LayoutVerified::<_, u64>::new_from_prefix(&buf.buf[..]).is_none());
assert!(LayoutVerified::<_, u64>::new_from_prefix_zeroed(&mut buf.buf[..]).is_none());
assert!(LayoutVerified::<_, u64>::new_from_suffix(&buf.buf[..]).is_none());
assert!(LayoutVerified::<_, u64>::new_from_suffix_zeroed(&mut buf.buf[..]).is_none());
assert!(LayoutVerified::<_, [u8; 8]>::new_unaligned_from_prefix(&buf.buf[..]).is_none());
assert!(LayoutVerified::<_, [u8; 8]>::new_unaligned_from_prefix_zeroed(&mut buf.buf[..])
.is_none());
assert!(LayoutVerified::<_, [u8; 8]>::new_unaligned_from_suffix(&buf.buf[..]).is_none());
assert!(LayoutVerified::<_, [u8; 8]>::new_unaligned_from_suffix_zeroed(&mut buf.buf[..])
.is_none());
let mut buf = AlignedBuffer::<u64, [u8; 12]>::default();
assert!(LayoutVerified::<_, [u64]>::new_slice(&buf.buf[..]).is_none());
assert!(LayoutVerified::<_, [u64]>::new_slice_zeroed(&mut buf.buf[..]).is_none());
assert!(LayoutVerified::<_, [[u8; 8]]>::new_slice_unaligned(&buf.buf[..]).is_none());
assert!(
LayoutVerified::<_, [[u8; 8]]>::new_slice_unaligned_zeroed(&mut buf.buf[..]).is_none()
);
let mut buf = AlignedBuffer::<u64, [u8; 12]>::default();
assert!(LayoutVerified::<_, [u64]>::new_slice_from_prefix(&buf.buf[..], 2).is_none());
assert!(
LayoutVerified::<_, [u64]>::new_slice_from_prefix_zeroed(&mut buf.buf[..], 2).is_none()
);
assert!(LayoutVerified::<_, [u64]>::new_slice_from_suffix(&buf.buf[..], 2).is_none());
assert!(
LayoutVerified::<_, [u64]>::new_slice_from_suffix_zeroed(&mut buf.buf[..], 2).is_none()
);
assert!(LayoutVerified::<_, [[u8; 8]]>::new_slice_unaligned_from_prefix(&buf.buf[..], 2)
.is_none());
assert!(LayoutVerified::<_, [[u8; 8]]>::new_slice_unaligned_from_prefix_zeroed(
&mut buf.buf[..],
2
)
.is_none());
assert!(LayoutVerified::<_, [[u8; 8]]>::new_slice_unaligned_from_suffix(&buf.buf[..], 2)
.is_none());
assert!(LayoutVerified::<_, [[u8; 8]]>::new_slice_unaligned_from_suffix_zeroed(
&mut buf.buf[..],
2
)
.is_none());
let mut buf = AlignedBuffer::<u64, [u8; 13]>::default();
assert!(LayoutVerified::<_, u64>::new(&buf.buf[1..]).is_none());
assert!(LayoutVerified::<_, u64>::new_zeroed(&mut buf.buf[1..]).is_none());
assert!(LayoutVerified::<_, u64>::new_from_prefix(&buf.buf[1..]).is_none());
assert!(LayoutVerified::<_, u64>::new_from_prefix_zeroed(&mut buf.buf[1..]).is_none());
assert!(LayoutVerified::<_, [u64]>::new_slice(&buf.buf[1..]).is_none());
assert!(LayoutVerified::<_, [u64]>::new_slice_zeroed(&mut buf.buf[1..]).is_none());
assert!(LayoutVerified::<_, [u64]>::new_slice_from_prefix(&buf.buf[1..], 1).is_none());
assert!(LayoutVerified::<_, [u64]>::new_slice_from_prefix_zeroed(&mut buf.buf[1..], 1)
.is_none());
assert!(LayoutVerified::<_, [u64]>::new_slice_from_suffix(&buf.buf[1..], 1).is_none());
assert!(LayoutVerified::<_, [u64]>::new_slice_from_suffix_zeroed(&mut buf.buf[1..], 1)
.is_none());
assert!(LayoutVerified::<_, u64>::new_from_suffix(&buf.buf[..]).is_none());
assert!(LayoutVerified::<_, u64>::new_from_suffix_zeroed(&mut buf.buf[..]).is_none());
let mut buf = AlignedBuffer::<u64, [u8; 16]>::default();
let unreasonable_len = std::usize::MAX / mem::size_of::<u64>() + 1;
assert!(LayoutVerified::<_, [u64]>::new_slice_from_prefix(&buf.buf[..], unreasonable_len)
.is_none());
assert!(LayoutVerified::<_, [u64]>::new_slice_from_prefix_zeroed(
&mut buf.buf[..],
unreasonable_len
)
.is_none());
assert!(LayoutVerified::<_, [u64]>::new_slice_from_suffix(&buf.buf[..], unreasonable_len)
.is_none());
assert!(LayoutVerified::<_, [u64]>::new_slice_from_suffix_zeroed(
&mut buf.buf[..],
unreasonable_len
)
.is_none());
assert!(LayoutVerified::<_, [[u8; 8]]>::new_slice_unaligned_from_prefix(
&buf.buf[..],
unreasonable_len
)
.is_none());
assert!(LayoutVerified::<_, [[u8; 8]]>::new_slice_unaligned_from_prefix_zeroed(
&mut buf.buf[..],
unreasonable_len
)
.is_none());
assert!(LayoutVerified::<_, [[u8; 8]]>::new_slice_unaligned_from_suffix(
&buf.buf[..],
unreasonable_len
)
.is_none());
assert!(LayoutVerified::<_, [[u8; 8]]>::new_slice_unaligned_from_suffix_zeroed(
&mut buf.buf[..],
unreasonable_len
)
.is_none());
}
mod test_zst_panics {
macro_rules! zst_test {
($name:ident($($tt:tt)*)) => {
#[test]
#[should_panic = "assertion failed"]
fn $name() {
let mut buffer = [0u8];
let lv = $crate::LayoutVerified::<_, [()]>::$name(&mut buffer[..], $($tt)*);
unreachable!("should have panicked, got {:?}", lv);
}
}
}
zst_test!(new_slice());
zst_test!(new_slice_zeroed());
zst_test!(new_slice_from_prefix(1));
zst_test!(new_slice_from_prefix_zeroed(1));
zst_test!(new_slice_from_suffix(1));
zst_test!(new_slice_from_suffix_zeroed(1));
zst_test!(new_slice_unaligned());
zst_test!(new_slice_unaligned_zeroed());
zst_test!(new_slice_unaligned_from_prefix(1));
zst_test!(new_slice_unaligned_from_prefix_zeroed(1));
zst_test!(new_slice_unaligned_from_suffix(1));
zst_test!(new_slice_unaligned_from_suffix_zeroed(1));
}
#[test]
fn test_as_bytes_methods() {
#[derive(Debug, Eq, PartialEq, FromBytes, AsBytes)]
#[repr(C)]
struct Foo {
a: u32,
b: Wrapping<u32>,
c: Option<NonZeroU32>,
}
let mut foo = Foo { a: 1, b: Wrapping(2), c: None };
let expected: Vec<u8> = if cfg!(target_endian = "little") {
vec![1, 0, 0, 0, 2, 0, 0, 0, 0, 0, 0, 0]
} else {
vec![0, 0, 0, 1, 0, 0, 0, 2, 0, 0, 0, 0]
};
assert_eq!(foo.as_bytes(), expected.as_bytes());
foo.as_bytes_mut()[0] = 3;
let expected_a = if cfg!(target_endian = "little") { 0x00_00_00_03 } else { 0x03_00_00_01 };
assert_eq!(foo, Foo { a: expected_a, b: Wrapping(2), c: None });
let foo = &mut [
Foo { a: 1, b: Wrapping(2), c: None },
Foo { a: 3, b: Wrapping(4), c: NonZeroU32::new(1) },
];
let expected = if cfg!(target_endian = "little") {
vec![1, 0, 0, 0, 2, 0, 0, 0, 0, 0, 0, 0, 3, 0, 0, 0, 4, 0, 0, 0, 1, 0, 0, 0]
} else {
vec![0, 0, 0, 1, 0, 0, 0, 2, 0, 0, 0, 0, 0, 0, 0, 3, 0, 0, 0, 4, 0, 0, 0, 1]
};
assert_eq!(foo.as_bytes(), expected);
foo.as_bytes_mut()[8] = 5;
foo.as_bytes_mut()[16] = 6;
let expected_c_1 = NonZeroU32::new(if cfg!(target_endian = "little") {
0x00_00_00_05
} else {
0x05_00_00_00
});
let expected_b_2 =
Wrapping(if cfg!(target_endian = "little") { 0x00_00_00_06 } else { 0x06_00_00_04 });
assert_eq!(
foo,
&[
Foo { a: 1, b: Wrapping(2), c: expected_c_1 },
Foo { a: 3, b: expected_b_2, c: NonZeroU32::new(1) },
]
);
}
#[test]
fn test_array() {
#[derive(FromBytes, AsBytes)]
#[repr(C)]
struct Foo {
a: [u16; 33],
}
let foo = Foo { a: [0xFFFF; 33] };
let expected = [0xFFu8; 66];
assert_eq!(foo.as_bytes(), &expected[..]);
}
#[test]
fn test_display_debug() {
let buf = AlignedBuffer::<u64, [u8; 8]>::default();
let lv = LayoutVerified::<_, u64>::new(&buf.buf[..]).unwrap();
assert_eq!(format!("{}", lv), "0");
assert_eq!(format!("{:?}", lv), "LayoutVerified(0)");
let buf = AlignedBuffer::<u64, [u8; 8]>::default();
let lv = LayoutVerified::<_, [u64]>::new_slice(&buf.buf[..]).unwrap();
assert_eq!(format!("{:?}", lv), "LayoutVerified([0])");
}
#[test]
fn test_eq() {
let buf1 = 0_u64;
let lv1 = LayoutVerified::<_, u64>::new(buf1.as_bytes()).unwrap();
let buf2 = 0_u64;
let lv2 = LayoutVerified::<_, u64>::new(buf2.as_bytes()).unwrap();
assert_eq!(lv1, lv2);
}
#[test]
fn test_ne() {
let buf1 = 0_u64;
let lv1 = LayoutVerified::<_, u64>::new(buf1.as_bytes()).unwrap();
let buf2 = 1_u64;
let lv2 = LayoutVerified::<_, u64>::new(buf2.as_bytes()).unwrap();
assert_ne!(lv1, lv2);
}
#[test]
fn test_ord() {
let buf1 = 0_u64;
let lv1 = LayoutVerified::<_, u64>::new(buf1.as_bytes()).unwrap();
let buf2 = 1_u64;
let lv2 = LayoutVerified::<_, u64>::new(buf2.as_bytes()).unwrap();
assert!(lv1 < lv2);
}
#[test]
fn test_new_zeroed() {
assert_eq!(u64::new_zeroed(), 0);
#[allow(clippy::unit_cmp)]
{
assert_eq!(<()>::new_zeroed(), ());
}
}
}