Files
addr2line
adler
aho_corasick
ansi_term
arraydeque
as_slice
atty
backtrace
base64
bincode_core
bitflags
byteorder
bytes
capnp
capnp_futures
capnp_rpc
cfg_if
chrono
clap
ctrlc
derivative
dlib
downcast_rs
enumflags2
enumflags2_derive
evdev_rs
evdev_sys
failure
failure_derive
flexi_logger
futures
futures_channel
futures_core
futures_executor
futures_io
futures_macro
futures_sink
futures_task
futures_util
async_await
future
io
lock
sink
stream
task
generic_array
getrandom
gimli
glob
hash32
heapless
hid_io_core
hid_io_protocol
hidapi
install_service
lazy_static
libc
libloading
libudev_sys
log
memchr
memmap
miniz_oxide
mio
nanoid
nix
num_cpus
num_enum
num_enum_derive
num_integer
num_traits
object
once_cell
open
pem
pin_project_lite
pin_utils
ppv_lite86
proc_macro2
proc_macro_hack
proc_macro_nested
quote
rand
rand_chacha
rand_core
rcgen
regex
regex_syntax
remove_dir_all
ring
rustc_demangle
rustls
scoped_tls
sct
serde
serde_derive
slab
smallvec
spin
stable_deref_trait
strsim
syn
synstructure
sys_info
tempfile
textwrap
thiserror
thiserror_impl
time
tokio
future
io
loom
macros
net
park
runtime
stream
sync
task
time
util
tokio_macros
tokio_rustls
tokio_util
typenum
udev
uhid_virt
uhidrs_sys
unicode_width
unicode_xid
untrusted
vec_map
wayland_client
wayland_commons
wayland_sys
webpki
which
x11
xcb
xkbcommon
yansi
yasna
zwp_virtual_keyboard
  1
  2
  3
  4
  5
  6
  7
  8
  9
 10
 11
 12
 13
 14
 15
 16
 17
 18
 19
 20
 21
 22
 23
 24
 25
 26
 27
 28
 29
 30
 31
 32
 33
 34
 35
 36
 37
 38
 39
 40
 41
 42
 43
 44
 45
 46
 47
 48
 49
 50
 51
 52
 53
 54
 55
 56
 57
 58
 59
 60
 61
 62
 63
 64
 65
 66
 67
 68
 69
 70
 71
 72
 73
 74
 75
 76
 77
 78
 79
 80
 81
 82
 83
 84
 85
 86
 87
 88
 89
 90
 91
 92
 93
 94
 95
 96
 97
 98
 99
100
101
102
103
104
105
//! Generic array are commonly used as a return value for hash digests, so
//! it's a good idea to allow to hexlify them easily. This module implements
//! `std::fmt::LowerHex` and `std::fmt::UpperHex` traits.
//!
//! Example:
//!
//! ```rust
//! # #[macro_use]
//! # extern crate generic_array;
//! # extern crate typenum;
//! # fn main() {
//! let array = arr![u8; 10, 20, 30];
//! assert_eq!(format!("{:x}", array), "0a141e");
//! # }
//! ```
//!

use core::{fmt, str, ops::Add, cmp::min};

use typenum::*;

use crate::{ArrayLength, GenericArray};

static LOWER_CHARS: &'static [u8] = b"0123456789abcdef";
static UPPER_CHARS: &'static [u8] = b"0123456789ABCDEF";

impl<T: ArrayLength<u8>> fmt::LowerHex for GenericArray<u8, T>
where
    T: Add<T>,
    <T as Add<T>>::Output: ArrayLength<u8>,
{
    fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
        let max_digits = f.precision().unwrap_or_else(|| self.len() * 2);
        let max_hex = (max_digits >> 1) + (max_digits & 1);

        if T::USIZE < 1024 {
            // For small arrays use a stack allocated
            // buffer of 2x number of bytes
            let mut res = GenericArray::<u8, Sum<T, T>>::default();

            self.iter().take(max_hex).enumerate().for_each(|(i, c)| {
                res[i * 2] = LOWER_CHARS[(c >> 4) as usize];
                res[i * 2 + 1] = LOWER_CHARS[(c & 0xF) as usize];
            });

            f.write_str(unsafe { str::from_utf8_unchecked(&res[..max_digits]) })?;
        } else {
            // For large array use chunks of up to 1024 bytes (2048 hex chars)
            let mut buf = [0u8; 2048];
            let mut digits_left = max_digits;

            for chunk in self[..max_hex].chunks(1024) {
                chunk.iter().enumerate().for_each(|(i, c)| {
                    buf[i * 2] = LOWER_CHARS[(c >> 4) as usize];
                    buf[i * 2 + 1] = LOWER_CHARS[(c & 0xF) as usize];
                });

                let n = min(chunk.len() * 2, digits_left);
                f.write_str(unsafe { str::from_utf8_unchecked(&buf[..n]) })?;
                digits_left -= n;
            }
        }
        Ok(())
    }
}

impl<T: ArrayLength<u8>> fmt::UpperHex for GenericArray<u8, T>
where
    T: Add<T>,
    <T as Add<T>>::Output: ArrayLength<u8>,
{
    fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
        let max_digits = f.precision().unwrap_or_else(|| self.len() * 2);
        let max_hex = (max_digits >> 1) + (max_digits & 1);

        if T::USIZE < 1024 {
            // For small arrays use a stack allocated
            // buffer of 2x number of bytes
            let mut res = GenericArray::<u8, Sum<T, T>>::default();

            self.iter().take(max_hex).enumerate().for_each(|(i, c)| {
                res[i * 2] = UPPER_CHARS[(c >> 4) as usize];
                res[i * 2 + 1] = UPPER_CHARS[(c & 0xF) as usize];
            });

            f.write_str(unsafe { str::from_utf8_unchecked(&res[..max_digits]) })?;
        } else {
            // For large array use chunks of up to 1024 bytes (2048 hex chars)
            let mut buf = [0u8; 2048];
            let mut digits_left = max_digits;

            for chunk in self[..max_hex].chunks(1024) {
                chunk.iter().enumerate().for_each(|(i, c)| {
                    buf[i * 2] = UPPER_CHARS[(c >> 4) as usize];
                    buf[i * 2 + 1] = UPPER_CHARS[(c & 0xF) as usize];
                });

                let n = min(chunk.len() * 2, digits_left);
                f.write_str(unsafe { str::from_utf8_unchecked(&buf[..n]) })?;
                digits_left -= n;
            }
        }
        Ok(())
    }
}