use core::convert::TryInto;
use core::iter::FusedIterator;
use core::str;
#[cfg(feature = "std")]
use std::io;
#[cfg(feature = "alloc")]
use crate::alloc::vec::Vec;
use crate::error::{InvalidCharError, OddLengthStringError};
#[derive(Debug)]
pub struct HexToBytesIter<I>
where
I: Iterator<Item = [u8; 2]>,
{
iter: I,
original_len: usize,
}
impl<'a> HexToBytesIter<HexDigitsIter<'a>> {
#[inline]
#[allow(dead_code)] pub(crate) fn new(s: &'a str) -> Result<Self, OddLengthStringError> {
if s.len() % 2 != 0 {
Err(OddLengthStringError { len: s.len() })
} else {
Ok(Self::new_unchecked(s))
}
}
#[inline]
pub(crate) fn new_unchecked(s: &'a str) -> Self {
Self::from_pairs(HexDigitsIter::new_unchecked(s.as_bytes()))
}
pub(crate) fn drain_to_slice(self, buf: &mut [u8]) -> Result<(), InvalidCharError> {
assert_eq!(self.len(), buf.len());
let mut ptr = buf.as_mut_ptr();
for byte in self {
unsafe {
core::ptr::write(ptr, byte?);
ptr = ptr.add(1);
}
}
Ok(())
}
#[cfg(feature = "alloc")]
pub(crate) fn drain_to_vec(self) -> Result<Vec<u8>, InvalidCharError> {
let len = self.len();
let mut ret = Vec::with_capacity(len);
let mut ptr = ret.as_mut_ptr();
for byte in self {
unsafe {
core::ptr::write(ptr, byte?);
ptr = ptr.add(1);
}
}
unsafe {
ret.set_len(len);
}
Ok(ret)
}
}
impl<I> HexToBytesIter<I>
where
I: Iterator<Item = [u8; 2]> + ExactSizeIterator,
{
#[inline]
pub fn from_pairs(iter: I) -> Self { Self { original_len: iter.len(), iter } }
}
impl<I> Iterator for HexToBytesIter<I>
where
I: Iterator<Item = [u8; 2]> + ExactSizeIterator,
{
type Item = Result<u8, InvalidCharError>;
#[inline]
fn next(&mut self) -> Option<Self::Item> {
let [hi, lo] = self.iter.next()?;
Some(hex_chars_to_byte(hi, lo).map_err(|(c, is_high)| InvalidCharError {
invalid: c,
pos: if is_high {
(self.original_len - self.iter.len() - 1) * 2
} else {
(self.original_len - self.iter.len() - 1) * 2 + 1
},
}))
}
#[inline]
fn size_hint(&self) -> (usize, Option<usize>) { self.iter.size_hint() }
#[inline]
fn nth(&mut self, n: usize) -> Option<Self::Item> {
let [hi, lo] = self.iter.nth(n)?;
Some(hex_chars_to_byte(hi, lo).map_err(|(c, is_high)| InvalidCharError {
invalid: c,
pos: if is_high {
(self.original_len - self.iter.len() - 1) * 2
} else {
(self.original_len - self.iter.len() - 1) * 2 + 1
},
}))
}
}
impl<I> DoubleEndedIterator for HexToBytesIter<I>
where
I: Iterator<Item = [u8; 2]> + DoubleEndedIterator + ExactSizeIterator,
{
#[inline]
fn next_back(&mut self) -> Option<Self::Item> {
let [hi, lo] = self.iter.next_back()?;
Some(hex_chars_to_byte(hi, lo).map_err(|(c, is_high)| InvalidCharError {
invalid: c,
pos: if is_high { self.iter.len() * 2 } else { self.iter.len() * 2 + 1 },
}))
}
#[inline]
fn nth_back(&mut self, n: usize) -> Option<Self::Item> {
let [hi, lo] = self.iter.nth_back(n)?;
Some(hex_chars_to_byte(hi, lo).map_err(|(c, is_high)| InvalidCharError {
invalid: c,
pos: if is_high { self.iter.len() * 2 } else { self.iter.len() * 2 + 1 },
}))
}
}
impl<I> ExactSizeIterator for HexToBytesIter<I> where I: Iterator<Item = [u8; 2]> + ExactSizeIterator
{}
impl<I> FusedIterator for HexToBytesIter<I> where
I: Iterator<Item = [u8; 2]> + ExactSizeIterator + FusedIterator
{
}
#[cfg(feature = "std")]
impl<I> io::Read for HexToBytesIter<I>
where
I: Iterator<Item = [u8; 2]> + ExactSizeIterator + FusedIterator,
{
#[inline]
fn read(&mut self, buf: &mut [u8]) -> io::Result<usize> {
let mut bytes_read = 0usize;
for dst in buf {
match self.next() {
Some(Ok(src)) => {
*dst = src;
bytes_read += 1;
}
Some(Err(e)) => return Err(io::Error::new(io::ErrorKind::InvalidData, e)),
None => break,
}
}
Ok(bytes_read)
}
}
#[derive(Debug)]
pub struct HexDigitsIter<'a> {
iter: core::slice::ChunksExact<'a, u8>,
}
impl<'a> HexDigitsIter<'a> {
#[inline]
fn new_unchecked(digits: &'a [u8]) -> Self { Self { iter: digits.chunks_exact(2) } }
}
impl Iterator for HexDigitsIter<'_> {
type Item = [u8; 2];
#[inline]
fn next(&mut self) -> Option<Self::Item> {
self.iter.next().map(|digits| digits.try_into().expect("HexDigitsIter invariant"))
}
#[inline]
fn size_hint(&self) -> (usize, Option<usize>) { self.iter.size_hint() }
#[inline]
fn nth(&mut self, n: usize) -> Option<Self::Item> {
self.iter.nth(n).map(|digits| digits.try_into().expect("HexDigitsIter invariant"))
}
}
impl DoubleEndedIterator for HexDigitsIter<'_> {
#[inline]
fn next_back(&mut self) -> Option<Self::Item> {
self.iter.next_back().map(|digits| digits.try_into().expect("HexDigitsIter invariant"))
}
#[inline]
fn nth_back(&mut self, n: usize) -> Option<Self::Item> {
self.iter.nth_back(n).map(|digits| digits.try_into().expect("HexDigitsIter invariant"))
}
}
impl ExactSizeIterator for HexDigitsIter<'_> {}
impl core::iter::FusedIterator for HexDigitsIter<'_> {}
fn hex_chars_to_byte(hi: u8, lo: u8) -> Result<u8, (u8, bool)> {
let hih = (hi as char).to_digit(16).ok_or((hi, true))?;
let loh = (lo as char).to_digit(16).ok_or((lo, false))?;
let ret = (hih << 4) + loh;
Ok(ret as u8)
}
#[cfg(test)]
mod tests {
use super::*;
#[test]
fn decode_iter_forward() {
let hex = "deadbeef";
let bytes = [0xde, 0xad, 0xbe, 0xef];
for (i, b) in HexToBytesIter::new(hex).unwrap().enumerate() {
assert_eq!(b.unwrap(), bytes[i]);
}
let mut iter = HexToBytesIter::new(hex).unwrap();
for i in (0..=bytes.len()).rev() {
assert_eq!(iter.len(), i);
let _ = iter.next();
}
}
#[test]
fn decode_iter_backward() {
let hex = "deadbeef";
let bytes = [0xef, 0xbe, 0xad, 0xde];
for (i, b) in HexToBytesIter::new(hex).unwrap().rev().enumerate() {
assert_eq!(b.unwrap(), bytes[i]);
}
let mut iter = HexToBytesIter::new(hex).unwrap().rev();
for i in (0..=bytes.len()).rev() {
assert_eq!(iter.len(), i);
let _ = iter.next();
}
}
#[test]
fn hex_to_digits_size_hint() {
let hex = "deadbeef";
let iter = HexDigitsIter::new_unchecked(hex.as_bytes());
assert_eq!(iter.size_hint(), (4, Some(4)));
}
#[test]
fn hex_to_bytes_size_hint() {
let hex = "deadbeef";
let iter = HexToBytesIter::new_unchecked(hex);
assert_eq!(iter.size_hint(), (4, Some(4)));
}
#[test]
fn hex_to_bytes_slice_drain() {
let hex = "deadbeef";
let want = [0xde, 0xad, 0xbe, 0xef];
let iter = HexToBytesIter::new_unchecked(hex);
let mut got = [0u8; 4];
iter.drain_to_slice(&mut got).unwrap();
assert_eq!(got, want);
let hex = "";
let want = [];
let iter = HexToBytesIter::new_unchecked(hex);
let mut got = [];
iter.drain_to_slice(&mut got).unwrap();
assert_eq!(got, want);
}
#[test]
#[should_panic]
#[allow(clippy::should_panic_without_expect)]
fn hex_to_bytes_slice_drain_panic_empty() {
let hex = "deadbeef";
let iter = HexToBytesIter::new_unchecked(hex);
let mut got = [];
iter.drain_to_slice(&mut got).unwrap();
}
#[test]
#[should_panic]
#[allow(clippy::should_panic_without_expect)]
fn hex_to_bytes_slice_drain_panic_too_small() {
let hex = "deadbeef";
let iter = HexToBytesIter::new_unchecked(hex);
let mut got = [0u8; 3];
iter.drain_to_slice(&mut got).unwrap();
}
#[test]
#[should_panic]
#[allow(clippy::should_panic_without_expect)]
fn hex_to_bytes_slice_drain_panic_too_big() {
let hex = "deadbeef";
let iter = HexToBytesIter::new_unchecked(hex);
let mut got = [0u8; 5];
iter.drain_to_slice(&mut got).unwrap();
}
#[test]
fn hex_to_bytes_slice_drain_first_char_error() {
let hex = "geadbeef";
let iter = HexToBytesIter::new_unchecked(hex);
let mut got = [0u8; 4];
assert_eq!(
iter.drain_to_slice(&mut got).unwrap_err(),
InvalidCharError { invalid: b'g', pos: 0 }
);
}
#[test]
fn hex_to_bytes_slice_drain_middle_char_error() {
let hex = "deadgeef";
let iter = HexToBytesIter::new_unchecked(hex);
let mut got = [0u8; 4];
assert_eq!(
iter.drain_to_slice(&mut got).unwrap_err(),
InvalidCharError { invalid: b'g', pos: 4 }
);
}
#[test]
fn hex_to_bytes_slice_drain_end_char_error() {
let hex = "deadbeeg";
let iter = HexToBytesIter::new_unchecked(hex);
let mut got = [0u8; 4];
assert_eq!(
iter.drain_to_slice(&mut got).unwrap_err(),
InvalidCharError { invalid: b'g', pos: 7 }
);
}
#[cfg(feature = "alloc")]
#[test]
fn hex_to_bytes_vec_drain() {
let hex = "deadbeef";
let want = [0xde, 0xad, 0xbe, 0xef];
let iter = HexToBytesIter::new_unchecked(hex);
let got = iter.drain_to_vec().unwrap();
assert_eq!(got, want);
let hex = "";
let iter = HexToBytesIter::new_unchecked(hex);
let got = iter.drain_to_vec().unwrap();
assert!(got.is_empty());
}
#[cfg(feature = "alloc")]
#[test]
fn hex_to_bytes_vec_drain_first_char_error() {
let hex = "geadbeef";
let iter = HexToBytesIter::new_unchecked(hex);
assert_eq!(iter.drain_to_vec().unwrap_err(), InvalidCharError { invalid: b'g', pos: 0 });
}
#[cfg(feature = "alloc")]
#[test]
fn hex_to_bytes_vec_drain_middle_char_error() {
let hex = "deadgeef";
let iter = HexToBytesIter::new_unchecked(hex);
assert_eq!(iter.drain_to_vec().unwrap_err(), InvalidCharError { invalid: b'g', pos: 4 });
}
#[cfg(feature = "alloc")]
#[test]
fn hex_to_bytes_vec_drain_end_char_error() {
let hex = "deadbeeg";
let iter = HexToBytesIter::new_unchecked(hex);
assert_eq!(iter.drain_to_vec().unwrap_err(), InvalidCharError { invalid: b'g', pos: 7 });
}
#[test]
#[cfg(feature = "std")]
fn hex_to_bytes_iter_read() {
use std::io::Read;
let hex = "deadbeef";
let mut iter = HexToBytesIter::new(hex).unwrap();
let mut buf = [0u8; 4];
let bytes_read = iter.read(&mut buf).unwrap();
assert_eq!(bytes_read, 4);
assert_eq!(buf, [0xde, 0xad, 0xbe, 0xef]);
let hex = "deadbeef";
let mut iter = HexToBytesIter::new(hex).unwrap();
let mut buf = [0u8; 2];
let bytes_read = iter.read(&mut buf).unwrap();
assert_eq!(bytes_read, 2);
assert_eq!(buf, [0xde, 0xad]);
let hex = "deadbeef";
let mut iter = HexToBytesIter::new(hex).unwrap();
let mut buf = [0u8; 6];
let bytes_read = iter.read(&mut buf).unwrap();
assert_eq!(bytes_read, 4);
assert_eq!(buf[..4], [0xde, 0xad, 0xbe, 0xef]);
let hex = "deadbeefXX";
let mut iter = HexToBytesIter::new(hex).unwrap();
let mut buf = [0u8; 6];
let err = iter.read(&mut buf).unwrap_err();
assert_eq!(err.kind(), io::ErrorKind::InvalidData);
}
}