255 lines
6.0 KiB
Rust
255 lines
6.0 KiB
Rust
use lexical_util::num;
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fn as_primitive<T: num::AsPrimitive>(t: T) {
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let _: u8 = t.as_u8();
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let _: u16 = t.as_u16();
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let _: u32 = t.as_u32();
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let _: u64 = t.as_u64();
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let _: u128 = t.as_u128();
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let _: usize = t.as_usize();
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let _: i8 = t.as_i8();
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let _: i16 = t.as_i16();
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let _: i32 = t.as_i32();
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let _: i64 = t.as_i64();
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let _: i128 = t.as_i128();
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let _: isize = t.as_isize();
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let _: f32 = t.as_f32();
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let _: f64 = t.as_f64();
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}
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#[test]
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fn as_primitive_test() {
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as_primitive(1u8);
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as_primitive(1u16);
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as_primitive(1u32);
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as_primitive(1u64);
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as_primitive(1u128);
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as_primitive(1usize);
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as_primitive(1i8);
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as_primitive(1i16);
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as_primitive(1i32);
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as_primitive(1i64);
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as_primitive(1i128);
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as_primitive(1isize);
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as_primitive(1f32);
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as_primitive(1f64);
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}
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fn as_cast<T: num::AsCast>(t: T) {
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let _: i8 = num::as_cast(t);
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let _: i16 = num::as_cast(t);
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let _: i32 = num::as_cast(t);
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let _: i64 = num::as_cast(t);
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let _: i128 = num::as_cast(t);
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let _: isize = num::as_cast(t);
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let _: u8 = num::as_cast(t);
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let _: u16 = num::as_cast(t);
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let _: u32 = num::as_cast(t);
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let _: u64 = num::as_cast(t);
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let _: u128 = num::as_cast(t);
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let _: usize = num::as_cast(t);
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let _: f32 = num::as_cast(t);
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let _: f64 = num::as_cast(t);
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}
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#[test]
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fn as_cast_test() {
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as_cast(1u8);
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as_cast(1u16);
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as_cast(1u32);
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as_cast(1u64);
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as_cast(1u128);
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as_cast(1usize);
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as_cast(1i8);
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as_cast(1i16);
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as_cast(1i32);
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as_cast(1i64);
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as_cast(1i128);
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as_cast(1isize);
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as_cast(1f32);
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as_cast(1f64);
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}
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fn check_number<T: num::Number>(x: T, mut y: T) {
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// Copy, partialeq, partialord
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let _ = x;
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assert!(x < y);
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assert!(x != y);
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// Operations
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let _ = y + x;
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let _ = y - x;
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let _ = y * x;
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let _ = y / x;
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let _ = y % x;
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y += x;
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y -= x;
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y *= x;
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y /= x;
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y %= x;
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// Conversions already tested.
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}
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#[test]
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fn number_test() {
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check_number(1u8, 5);
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check_number(1u16, 5);
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check_number(1u32, 5);
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check_number(1u64, 5);
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check_number(1u128, 5);
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check_number(1usize, 5);
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check_number(1i8, 5);
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check_number(1i16, 5);
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check_number(1i32, 5);
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check_number(1i64, 5);
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check_number(1i128, 5);
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check_number(1isize, 5);
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check_number(1f32, 5.0);
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check_number(1f64, 5.0);
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}
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fn check_integer<T: num::Integer>(mut x: T) {
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// Copy, partialeq, partialord, ord, eq
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let _ = x;
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assert!(x > T::ONE);
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assert!(x != T::ONE);
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assert_eq!(x.min(T::ONE), T::ONE);
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assert_eq!(x.max(T::ONE), x);
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// Operations
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let _ = x + T::ONE;
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let _ = x - T::ONE;
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let _ = x * T::ONE;
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let _ = x / T::ONE;
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let _ = x % T::ONE;
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x += T::ONE;
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x -= T::ONE;
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x *= T::ONE;
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x /= T::ONE;
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x %= T::ONE;
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// Bitwise operations
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let _ = x & T::ONE;
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let _ = x | T::ONE;
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let _ = x ^ T::ONE;
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x &= T::ONE;
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x |= T::ONE;
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x ^= T::ONE;
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// Bit shifts
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let _ = x << 1i32;
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let _ = x >> 1i32;
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x <<= 1i32;
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x >>= 1i32;
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// Conversions already tested.
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}
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#[test]
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fn integer_test() {
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check_integer(65u8);
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check_integer(65u16);
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check_integer(65u32);
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check_integer(65u64);
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check_integer(65u128);
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check_integer(65usize);
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check_integer(65i8);
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check_integer(65i16);
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check_integer(65i32);
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check_integer(65i64);
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check_integer(65i128);
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check_integer(65isize);
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}
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#[test]
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fn ceil_divmod_test() {
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use lexical_util::num::Integer;
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assert_eq!(5usize.ceil_divmod(7), (1, -2));
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assert_eq!(0usize.ceil_divmod(7), (0, 0));
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assert_eq!(35usize.ceil_divmod(7), (5, 0));
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assert_eq!(36usize.ceil_divmod(7), (6, -6));
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}
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#[cfg(any(feature = "parse-floats", feature = "write-floats"))]
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fn check_float<T: num::Float>(mut x: T) {
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// Copy, partialeq, partialord
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let _ = x;
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assert!(x > T::ONE);
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assert!(x != T::ONE);
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// Operations
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let _ = x + T::ONE;
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let _ = x - T::ONE;
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let _ = x * T::ONE;
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let _ = x / T::ONE;
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let _ = x % T::ONE;
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let _ = -x;
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x += T::ONE;
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x -= T::ONE;
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x *= T::ONE;
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x /= T::ONE;
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x %= T::ONE;
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// Check functions
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let _ = x.to_bits();
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assert_eq!(T::from_bits(x.to_bits()), x);
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let _ = x.is_sign_positive();
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let _ = x.is_sign_negative();
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let _ = x.ln();
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let _ = x.floor();
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// Check properties
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let _ = x.to_bits() & T::SIGN_MASK;
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let _ = x.to_bits() & T::EXPONENT_MASK;
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let _ = x.to_bits() & T::HIDDEN_BIT_MASK;
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let _ = x.to_bits() & T::MANTISSA_MASK;
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assert!(T::from_bits(T::INFINITY_BITS).is_special());
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}
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#[test]
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#[cfg(any(feature = "parse-floats", feature = "write-floats"))]
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fn float_test() {
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use lexical_util::num::Float;
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check_float(123f32);
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check_float(123f64);
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// b00000000000000000000000000000001
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let f: f32 = 1e-45;
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assert!(f.is_odd());
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assert!(f.next().is_even());
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assert!(f.next_positive().is_even());
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assert!(f.prev().is_even());
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assert!(f.prev_positive().is_even());
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assert!(f.round_positive_even().is_even());
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assert_eq!(f.prev().next(), f);
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assert_eq!(f.prev_positive().next_positive(), f);
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assert_eq!(f.round_positive_even(), f.next());
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// b00111101110011001100110011001101
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let f: f32 = 0.1;
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assert!(f.is_odd());
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assert!(f.next().is_even());
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assert!(f.next_positive().is_even());
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assert!(f.prev().is_even());
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assert!(f.prev_positive().is_even());
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assert!(f.round_positive_even().is_even());
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assert_eq!(f.prev().next(), f);
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assert_eq!(f.prev_positive().next_positive(), f);
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assert_eq!(f.round_positive_even(), f.next());
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// b01000000000000000000000000000000
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let f: f32 = 1.0;
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assert!(f.is_even());
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assert!(f.next().is_odd());
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assert!(f.next_positive().is_odd());
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assert!(f.prev().is_odd());
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assert!(f.prev_positive().is_odd());
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assert!(f.round_positive_even().is_even());
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assert_eq!(f.prev().next(), f);
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assert_eq!(f.prev_positive().next_positive(), f);
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assert_ne!(f.round_positive_even(), f.next());
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}
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