pub struct Angle(pub f32);Tuple Fields§
§0: f32Methods from Deref<Target = f32>§
pub const RADIX: u32 = 2
pub const BITS: u32 = 32
pub const MANTISSA_DIGITS: u32 = 24
pub const DIGITS: u32 = 6
pub const EPSILON: f32 = 1.19209290e-07_f32
pub const MIN: f32 = -3.40282347e+38_f32
pub const MIN_POSITIVE: f32 = 1.17549435e-38_f32
pub const MAX: f32 = 3.40282347e+38_f32
pub const MIN_EXP: i32 = -125
pub const MAX_EXP: i32 = 128
pub const MIN_10_EXP: i32 = -37
pub const MAX_10_EXP: i32 = 38
pub const NAN: f32
pub const INFINITY: f32
pub const NEG_INFINITY: f32
pub const MAX_EXACT_INTEGER: i32
pub const MIN_EXACT_INTEGER: i32
pub const SIGN_MASK: u32 = 0x8000_0000
pub const EXPONENT_MASK: u32 = 0x7f80_0000
pub const MANTISSA_MASK: u32 = 0x007f_ffff
1.62.0 · Sourcepub fn total_cmp(&self, other: &f32) -> Ordering
pub fn total_cmp(&self, other: &f32) -> Ordering
Returns the ordering between self and other.
Unlike the standard partial comparison between floating point numbers,
this comparison always produces an ordering in accordance to
the totalOrder predicate as defined in the IEEE 754 (2008 revision)
floating point standard. The values are ordered in the following sequence:
- negative quiet NaN
- negative signaling NaN
- negative infinity
- negative numbers
- negative subnormal numbers
- negative zero
- positive zero
- positive subnormal numbers
- positive numbers
- positive infinity
- positive signaling NaN
- positive quiet NaN.
The ordering established by this function does not always agree with the
PartialOrd and PartialEq implementations of f32. For example,
they consider negative and positive zero equal, while total_cmp
doesn’t.
The interpretation of the signaling NaN bit follows the definition in the IEEE 754 standard, which may not match the interpretation by some of the older, non-conformant (e.g. MIPS) hardware implementations.
§Example
struct GoodBoy {
name: String,
weight: f32,
}
let mut bois = vec![
GoodBoy { name: "Pucci".to_owned(), weight: 0.1 },
GoodBoy { name: "Woofer".to_owned(), weight: 99.0 },
GoodBoy { name: "Yapper".to_owned(), weight: 10.0 },
GoodBoy { name: "Chonk".to_owned(), weight: f32::INFINITY },
GoodBoy { name: "Abs. Unit".to_owned(), weight: f32::NAN },
GoodBoy { name: "Floaty".to_owned(), weight: -5.0 },
];
bois.sort_by(|a, b| a.weight.total_cmp(&b.weight));
// `f32::NAN` could be positive or negative, which will affect the sort order.
if f32::NAN.is_sign_negative() {
assert!(bois.into_iter().map(|b| b.weight)
.zip([f32::NAN, -5.0, 0.1, 10.0, 99.0, f32::INFINITY].iter())
.all(|(a, b)| a.to_bits() == b.to_bits()))
} else {
assert!(bois.into_iter().map(|b| b.weight)
.zip([-5.0, 0.1, 10.0, 99.0, f32::INFINITY, f32::NAN].iter())
.all(|(a, b)| a.to_bits() == b.to_bits()))
}Trait Implementations§
Source§impl CommandArg for Angle
impl CommandArg for Angle
fn parse_arg(input: &mut ParseInput<'_>) -> Result<Self, CommandArgParseError>
fn arg_from_str(string: &str) -> Result<Self, CommandArgParseError>
impl Copy for Angle
impl StructuralPartialEq for Angle
Auto Trait Implementations§
impl Freeze for Angle
impl RefUnwindSafe for Angle
impl Send for Angle
impl Sync for Angle
impl Unpin for Angle
impl UnsafeUnpin for Angle
impl UnwindSafe for Angle
Blanket Implementations§
Source§impl<T> BorrowMut<T> for Twhere
T: ?Sized,
impl<T> BorrowMut<T> for Twhere
T: ?Sized,
Source§fn borrow_mut(&mut self) -> &mut T
fn borrow_mut(&mut self) -> &mut T
Source§impl<T> CloneToUninit for Twhere
T: Clone,
impl<T> CloneToUninit for Twhere
T: Clone,
§impl<T> Downcast for Twhere
T: Any,
impl<T> Downcast for Twhere
T: Any,
§fn into_any(self: Box<T>) -> Box<dyn Any>
fn into_any(self: Box<T>) -> Box<dyn Any>
Box<dyn Trait> (where Trait: Downcast) to Box<dyn Any>, which can then be
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downcast into Rc<ConcreteType> where ConcreteType implements Trait.§fn as_any(&self) -> &(dyn Any + 'static)
fn as_any(&self) -> &(dyn Any + 'static)
&Trait (where Trait: Downcast) to &Any. This is needed since Rust cannot
generate &Any’s vtable from &Trait’s.§fn as_any_mut(&mut self) -> &mut (dyn Any + 'static)
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impl<T> DowncastSend for T
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impl<T> FromTemplate for T
§impl<T> FromWorld for Twhere
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impl<T> FromWorld for Twhere
T: Default,
§fn from_world(_world: &mut World) -> T
fn from_world(_world: &mut World) -> T
Creates Self using default().
§impl<T> Instrument for T
impl<T> Instrument for T
§fn instrument(self, span: Span) -> Instrumented<Self>
fn instrument(self, span: Span) -> Instrumented<Self>
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§impl<T> IntoResult<T> for T
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§fn into_result(self) -> Result<T, RunSystemError>
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§fn build_template(
&self,
_context: &mut TemplateContext<'_, '_>,
) -> Result<<T as Template>::Output, BevyError>
fn build_template( &self, _context: &mut TemplateContext<'_, '_>, ) -> Result<<T as Template>::Output, BevyError>
entity context to produce a [Template::Output].§fn clone_template(&self) -> T
fn clone_template(&self) -> T
Clone.