2014-02-22 03:52:32 +11:00
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//! Integer and floating-point number formatting
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use fmt;
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2015-04-17 15:32:42 -07:00
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use ops::{Div, Rem, Sub};
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2014-12-12 10:59:41 -08:00
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use str;
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2015-07-18 18:58:42 -03:00
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use slice;
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use ptr;
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use mem;
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2014-02-22 03:52:32 +11:00
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2015-04-17 15:32:42 -07:00
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#[doc(hidden)]
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2017-04-20 15:12:42 -07:00
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trait Int: PartialEq + PartialOrd + Div<Output=Self> + Rem<Output=Self> +
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2015-04-17 15:32:42 -07:00
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Sub<Output=Self> + Copy {
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2017-04-20 15:12:42 -07:00
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fn zero() -> Self;
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2015-04-17 15:32:42 -07:00
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fn from_u8(u: u8) -> Self;
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fn to_u8(&self) -> u8;
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2016-05-06 09:31:11 -04:00
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fn to_u16(&self) -> u16;
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2015-07-18 18:58:42 -03:00
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fn to_u32(&self) -> u32;
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fn to_u64(&self) -> u64;
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2016-08-23 03:56:52 +03:00
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fn to_u128(&self) -> u128;
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2015-04-17 15:32:42 -07:00
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}
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macro_rules! doit {
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($($t:ident)*) => ($(impl Int for $t {
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2017-04-20 15:12:42 -07:00
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fn zero() -> $t { 0 }
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2015-04-17 15:32:42 -07:00
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fn from_u8(u: u8) -> $t { u as $t }
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fn to_u8(&self) -> u8 { *self as u8 }
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2016-05-06 09:31:11 -04:00
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fn to_u16(&self) -> u16 { *self as u16 }
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2015-07-18 18:58:42 -03:00
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fn to_u32(&self) -> u32 { *self as u32 }
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fn to_u64(&self) -> u64 { *self as u64 }
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2016-08-23 03:56:52 +03:00
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fn to_u128(&self) -> u128 { *self as u128 }
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2015-04-17 15:32:42 -07:00
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})*)
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}
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2017-02-01 15:57:50 -08:00
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doit! { i8 i16 i32 i64 i128 isize u8 u16 u32 u64 u128 usize }
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2015-04-17 15:32:42 -07:00
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2014-02-22 03:52:32 +11:00
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/// A type that represents a specific radix
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2014-07-25 08:26:17 -07:00
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#[doc(hidden)]
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2014-02-22 03:52:32 +11:00
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trait GenericRadix {
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/// The number of digits.
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2018-03-17 09:45:03 +09:00
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const BASE: u8;
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2014-02-22 03:52:32 +11:00
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/// A radix-specific prefix string.
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2018-03-17 09:45:03 +09:00
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const PREFIX: &'static str;
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2014-02-22 03:52:32 +11:00
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/// Converts an integer to corresponding radix digit.
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2018-03-17 09:45:03 +09:00
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fn digit(x: u8) -> u8;
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2014-02-22 03:52:32 +11:00
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/// Format an integer using the radix using a formatter.
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fn fmt_int<T: Int>(&self, mut x: T, f: &mut fmt::Formatter) -> fmt::Result {
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2016-08-23 03:56:52 +03:00
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// The radix can be as low as 2, so we need a buffer of at least 128
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2014-02-22 03:52:32 +11:00
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// characters for a base 2 number.
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2015-04-17 15:32:42 -07:00
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let zero = T::zero();
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2016-01-15 14:46:19 +00:00
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let is_nonnegative = x >= zero;
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2018-03-17 10:42:32 +09:00
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let mut buf: [u8; 128] = unsafe { mem::uninitialized() };
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2014-02-22 03:52:32 +11:00
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let mut curr = buf.len();
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2018-03-17 09:45:03 +09:00
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let base = T::from_u8(Self::BASE);
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2016-01-15 14:46:19 +00:00
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if is_nonnegative {
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2014-02-22 03:52:32 +11:00
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// Accumulate each digit of the number from the least significant
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// to the most significant figure.
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2014-09-14 20:27:36 -07:00
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for byte in buf.iter_mut().rev() {
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2018-03-17 09:45:03 +09:00
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let n = x % base; // Get the current place value.
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x = x / base; // Deaccumulate the number.
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*byte = Self::digit(n.to_u8()); // Store the digit in the buffer.
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2014-02-22 03:52:32 +11:00
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curr -= 1;
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2015-10-08 01:01:02 +03:00
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if x == zero {
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// No more digits left to accumulate.
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break
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};
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2014-02-22 03:52:32 +11:00
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}
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} else {
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// Do the same as above, but accounting for two's complement.
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2014-09-14 20:27:36 -07:00
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for byte in buf.iter_mut().rev() {
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2018-03-17 09:45:03 +09:00
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let n = zero - (x % base); // Get the current place value.
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x = x / base; // Deaccumulate the number.
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*byte = Self::digit(n.to_u8()); // Store the digit in the buffer.
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2014-02-22 03:52:32 +11:00
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curr -= 1;
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2015-10-08 01:01:02 +03:00
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if x == zero {
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2015-10-08 01:08:33 +03:00
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// No more digits left to accumulate.
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2015-10-08 01:01:02 +03:00
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break
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2015-10-08 01:08:33 +03:00
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};
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2014-02-22 03:52:32 +11:00
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}
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}
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2015-01-07 11:58:31 -05:00
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let buf = unsafe { str::from_utf8_unchecked(&buf[curr..]) };
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2018-03-17 09:45:03 +09:00
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f.pad_integral(is_nonnegative, Self::PREFIX, buf)
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2014-02-22 03:52:32 +11:00
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}
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}
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/// A binary (base 2) radix
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2015-01-03 22:54:18 -05:00
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#[derive(Clone, PartialEq)]
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2014-02-22 03:52:32 +11:00
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struct Binary;
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/// An octal (base 8) radix
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2015-01-03 22:54:18 -05:00
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#[derive(Clone, PartialEq)]
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2014-02-22 03:52:32 +11:00
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struct Octal;
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2014-04-20 01:35:14 -04:00
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/// A hexadecimal (base 16) radix, formatted with lower-case characters
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2015-01-03 22:54:18 -05:00
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#[derive(Clone, PartialEq)]
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2014-02-22 03:52:32 +11:00
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struct LowerHex;
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2014-04-20 01:35:14 -04:00
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/// A hexadecimal (base 16) radix, formatted with upper-case characters
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2015-01-03 22:54:18 -05:00
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#[derive(Clone, PartialEq)]
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2015-02-28 19:30:06 -08:00
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struct UpperHex;
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2014-02-22 03:52:32 +11:00
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macro_rules! radix {
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($T:ident, $base:expr, $prefix:expr, $($x:pat => $conv:expr),+) => {
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impl GenericRadix for $T {
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2018-03-17 09:45:03 +09:00
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const BASE: u8 = $base;
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const PREFIX: &'static str = $prefix;
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fn digit(x: u8) -> u8 {
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2014-02-22 03:52:32 +11:00
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match x {
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$($x => $conv,)+
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2018-05-28 19:42:11 -07:00
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x => panic!("number not in the range 0..={}: {}", Self::BASE - 1, x),
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2014-02-22 03:52:32 +11:00
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}
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}
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}
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}
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}
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2018-05-28 19:42:11 -07:00
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radix! { Binary, 2, "0b", x @ 0 ..= 1 => b'0' + x }
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radix! { Octal, 8, "0o", x @ 0 ..= 7 => b'0' + x }
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radix! { LowerHex, 16, "0x", x @ 0 ..= 9 => b'0' + x,
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x @ 10 ..= 15 => b'a' + (x - 10) }
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radix! { UpperHex, 16, "0x", x @ 0 ..= 9 => b'0' + x,
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x @ 10 ..= 15 => b'A' + (x - 10) }
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2014-02-22 03:52:32 +11:00
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macro_rules! int_base {
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($Trait:ident for $T:ident as $U:ident -> $Radix:ident) => {
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2015-01-24 09:15:42 -08:00
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#[stable(feature = "rust1", since = "1.0.0")]
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2014-02-22 03:52:32 +11:00
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impl fmt::$Trait for $T {
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fn fmt(&self, f: &mut fmt::Formatter) -> fmt::Result {
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$Radix.fmt_int(*self as $U, f)
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}
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}
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}
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}
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2014-12-20 00:09:35 -08:00
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2015-02-28 19:30:06 -08:00
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macro_rules! debug {
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($T:ident) => {
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2015-01-24 09:15:42 -08:00
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#[stable(feature = "rust1", since = "1.0.0")]
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2015-01-20 15:45:07 -08:00
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impl fmt::Debug for $T {
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2018-01-28 21:55:05 -07:00
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#[inline]
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2014-12-20 00:09:35 -08:00
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fn fmt(&self, f: &mut fmt::Formatter) -> fmt::Result {
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2018-03-13 14:08:15 +01:00
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if f.debug_lower_hex() {
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fmt::LowerHex::fmt(self, f)
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} else if f.debug_upper_hex() {
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fmt::UpperHex::fmt(self, f)
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} else {
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fmt::Display::fmt(self, f)
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}
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2014-12-20 00:09:35 -08:00
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}
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}
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}
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}
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2015-07-18 18:58:42 -03:00
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2014-02-22 03:52:32 +11:00
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macro_rules! integer {
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($Int:ident, $Uint:ident) => {
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2014-11-14 09:18:10 -08:00
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int_base! { Binary for $Int as $Uint -> Binary }
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int_base! { Octal for $Int as $Uint -> Octal }
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int_base! { LowerHex for $Int as $Uint -> LowerHex }
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int_base! { UpperHex for $Int as $Uint -> UpperHex }
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2015-02-28 19:30:06 -08:00
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debug! { $Int }
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2014-11-14 09:18:10 -08:00
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int_base! { Binary for $Uint as $Uint -> Binary }
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int_base! { Octal for $Uint as $Uint -> Octal }
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int_base! { LowerHex for $Uint as $Uint -> LowerHex }
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int_base! { UpperHex for $Uint as $Uint -> UpperHex }
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2015-02-28 19:30:06 -08:00
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debug! { $Uint }
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2014-02-22 03:52:32 +11:00
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}
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}
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2015-02-28 19:30:06 -08:00
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integer! { isize, usize }
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2014-11-14 09:18:10 -08:00
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integer! { i8, u8 }
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integer! { i16, u16 }
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integer! { i32, u32 }
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integer! { i64, u64 }
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2016-08-23 03:56:52 +03:00
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integer! { i128, u128 }
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2015-07-18 18:58:42 -03:00
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const DEC_DIGITS_LUT: &'static[u8] =
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b"0001020304050607080910111213141516171819\
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2021222324252627282930313233343536373839\
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4041424344454647484950515253545556575859\
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6061626364656667686970717273747576777879\
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8081828384858687888990919293949596979899";
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macro_rules! impl_Display {
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($($t:ident),*: $conv_fn:ident) => ($(
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2015-11-16 19:54:28 +03:00
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#[stable(feature = "rust1", since = "1.0.0")]
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2015-07-18 18:58:42 -03:00
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impl fmt::Display for $t {
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#[allow(unused_comparisons)]
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fn fmt(&self, f: &mut fmt::Formatter) -> fmt::Result {
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2016-01-15 14:46:19 +00:00
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let is_nonnegative = *self >= 0;
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let mut n = if is_nonnegative {
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2015-07-18 18:58:42 -03:00
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self.$conv_fn()
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} else {
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// convert the negative num to positive by summing 1 to it's 2 complement
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(!self.$conv_fn()).wrapping_add(1)
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};
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2016-11-28 02:18:34 +01:00
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let mut buf: [u8; 39] = unsafe { mem::uninitialized() };
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2015-07-18 18:58:42 -03:00
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let mut curr = buf.len() as isize;
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let buf_ptr = buf.as_mut_ptr();
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let lut_ptr = DEC_DIGITS_LUT.as_ptr();
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unsafe {
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2016-08-23 03:56:52 +03:00
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// need at least 16 bits for the 4-characters-at-a-time to work.
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if ::mem::size_of::<$t>() >= 2 {
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// eagerly decode 4 characters at a time
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2015-07-18 18:58:42 -03:00
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while n >= 10000 {
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let rem = (n % 10000) as isize;
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n /= 10000;
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let d1 = (rem / 100) << 1;
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let d2 = (rem % 100) << 1;
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curr -= 4;
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ptr::copy_nonoverlapping(lut_ptr.offset(d1), buf_ptr.offset(curr), 2);
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ptr::copy_nonoverlapping(lut_ptr.offset(d2), buf_ptr.offset(curr + 2), 2);
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}
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}
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// if we reach here numbers are <= 9999, so at most 4 chars long
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let mut n = n as isize; // possibly reduce 64bit math
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// decode 2 more chars, if > 2 chars
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if n >= 100 {
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let d1 = (n % 100) << 1;
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n /= 100;
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curr -= 2;
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ptr::copy_nonoverlapping(lut_ptr.offset(d1), buf_ptr.offset(curr), 2);
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}
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// decode last 1 or 2 chars
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if n < 10 {
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curr -= 1;
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2017-08-29 10:01:12 -07:00
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*buf_ptr.offset(curr) = (n as u8) + b'0';
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2015-07-18 18:58:42 -03:00
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} else {
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let d1 = n << 1;
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curr -= 2;
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ptr::copy_nonoverlapping(lut_ptr.offset(d1), buf_ptr.offset(curr), 2);
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}
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}
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let buf_slice = unsafe {
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str::from_utf8_unchecked(
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slice::from_raw_parts(buf_ptr.offset(curr), buf.len() - curr as usize))
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};
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2016-01-15 14:46:19 +00:00
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f.pad_integral(is_nonnegative, "", buf_slice)
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2015-07-18 18:58:42 -03:00
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}
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})*);
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}
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impl_Display!(i8, u8, i16, u16, i32, u32: to_u32);
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impl_Display!(i64, u64: to_u64);
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2016-08-23 03:56:52 +03:00
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impl_Display!(i128, u128: to_u128);
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2016-05-06 09:31:11 -04:00
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#[cfg(target_pointer_width = "16")]
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impl_Display!(isize, usize: to_u16);
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2015-07-18 18:58:42 -03:00
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#[cfg(target_pointer_width = "32")]
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impl_Display!(isize, usize: to_u32);
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#[cfg(target_pointer_width = "64")]
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impl_Display!(isize, usize: to_u64);
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