Trait Ord
pub trait Ord: ~const Eq + ~const PartialOrd<Self> + PointeeSized
Trait for types that form a total order.
Implementations must be consistent with the PartialOrd implementation, and ensure max,
min, and clamp are consistent with cmp:
partial_cmp(a, b) == Some(cmp(a, b)).max(a, b) == max_by(a, b, cmp)(ensured by the default implementation).min(a, b) == min_by(a, b, cmp)(ensured by the default implementation).- For
a.clamp(min, max), see the method docs (ensured by the default implementation).
Violating these requirements is a logic error. The behavior resulting from a logic error is not
specified, but users of the trait must ensure that such logic errors do not result in
undefined behavior. This means that unsafe code must not rely on the correctness of these
methods.
Corollaries
From the above and the requirements of PartialOrd, it follows that for all a, b and c:
- exactly one of
a < b,a == bora > bis true; and <is transitive:a < bandb < cimpliesa < c. The same must hold for both==and>.
Mathematically speaking, the < operator defines a strict weak order. In cases where ==
conforms to mathematical equality, it also defines a strict total order.
Derivable
This trait can be used with #[derive].
When derived on structs, it will produce a
lexicographic ordering based on the
top-to-bottom declaration order of the struct's members.
When derived on enums, variants are ordered primarily by their discriminants. Secondarily,
they are ordered by their fields. By default, the discriminant is smallest for variants at the
top, and largest for variants at the bottom. Here's an example:
assert!;
However, manually setting the discriminants can override this default behavior:
assert!;
Lexicographical comparison
Lexicographical comparison is an operation with the following properties:
- Two sequences are compared element by element.
- The first mismatching element defines which sequence is lexicographically less or greater than the other.
- If one sequence is a prefix of another, the shorter sequence is lexicographically less than the other.
- If two sequences have equivalent elements and are of the same length, then the sequences are lexicographically equal.
- An empty sequence is lexicographically less than any non-empty sequence.
- Two empty sequences are lexicographically equal.
How can I implement Ord?
Ord requires that the type also be PartialOrd, PartialEq, and Eq.
Because Ord implies a stronger ordering relationship than PartialOrd, and both Ord and
PartialOrd must agree, you must choose how to implement Ord first. You can choose to
derive it, or implement it manually. If you derive it, you should derive all four traits. If you
implement it manually, you should manually implement all four traits, based on the
implementation of Ord.
Here's an example where you want to define the Character comparison by health and
experience only, disregarding the field mana:
use Ordering;
If all you need is to slice::sort a type by a field value, it can be simpler to use
slice::sort_by_key.
Examples of incorrect Ord implementations
use Ordering;
let a = Character ;
let b = Character ;
// Mistake: floating-point values do not form a total order and using the built-in comparison
// operands to implement `Ord` irregardless of that reality does not change it. Use
// `f32::total_cmp` if you need a total order for floating-point values.
// Reflexivity requirement of `Ord` is not given.
assert!;
assert!;
// Antisymmetry requirement of `Ord` is not given. Only one of a < c and c < a is allowed to be
// true, not both or neither.
assert_eq!;
use Ordering;
// For performance reasons implementing `PartialEq` this way is not the idiomatic way, but it
// ensures consistent behavior between `PartialEq`, `PartialOrd` and `Ord` in this example.
let a = Character ;
let b = Character ;
let c = Character ;
// Mistake: The implementation of `Ord` compares different fields depending on the value of
// `self.health`, the resulting order is not total.
// Transitivity requirement of `Ord` is not given. If a is smaller than b and b is smaller than
// c, by transitive property a must also be smaller than c.
assert!;
// Antisymmetry requirement of `Ord` is not given. Only one of a < c and c < a is allowed to be
// true, not both or neither.
assert_eq!;
The documentation of PartialOrd contains further examples, for example it's wrong for
PartialOrd and PartialEq to disagree.
Required Methods
fn cmp(&self, other: &Self) -> OrderingThis method returns an
Orderingbetweenselfandother.By convention,
self.cmp(&other)returns the ordering matching the expressionself <operator> otherif true.Examples
use Ordering; assert_eq!; assert_eq!; assert_eq!;
Provided Methods
fn max(self, other: Self) -> Self where Self: Sized,Compares and returns the maximum of two values.
Returns the second argument if the comparison determines them to be equal.
Examples
assert_eq!; assert_eq!;use Ordering; ; assert_eq!;fn min(self, other: Self) -> Self where Self: Sized,Compares and returns the minimum of two values.
Returns the first argument if the comparison determines them to be equal.
Examples
assert_eq!; assert_eq!;use Ordering; ; assert_eq!;fn clamp(self, min: Self, max: Self) -> Self where Self: Sized,Restrict a value to a certain interval.
Returns
maxifselfis greater thanmax, andminifselfis less thanmin. Otherwise this returnsself.Panics
Panics if
min > max.Examples
assert_eq!; assert_eq!; assert_eq!;fn clamp_to<R>(self, range: R) -> Self where Self: Sized, R: ~const ClampBounds<Self>,Restrict a value to a certain range.
This is equal to
max,min, orclamp, depending on whether the range ismin..,..=max, ormin..=max, respectively. Exclusive ranges are not permitted.Panics
Panics on
min..=maxifmin > max.Examples
assert_eq!; assert_eq!; assert_eq!; assert_eq!;
Implementors
impl Ord for ()impl Ord for Alignmentimpl Ord for AsciiCharimpl Ord for Big32x40impl Ord for Big8x3impl Ord for ByteStrimpl Ord for CStrimpl Ord for CharCaseimpl Ord for CodePointimpl Ord for CodePointInnerimpl Ord for CpuidResultimpl Ord for Durationimpl Ord for Errorimpl Ord for ErrorKindimpl Ord for FieldIdimpl Ord for I32NotAllOnesimpl Ord for I64NotAllOnesimpl Ord for IpAddrimpl Ord for Ipv4Addrimpl Ord for Ipv6Addrimpl Ord for Ipv6MulticastScopeimpl Ord for Location<'_>impl Ord for Nanosecondsimpl Ord for NonZeroCharInnerimpl Ord for NonZeroI128Innerimpl Ord for NonZeroI16Innerimpl Ord for NonZeroI32Innerimpl Ord for NonZeroI64Innerimpl Ord for NonZeroI8Innerimpl Ord for NonZeroIsizeInnerimpl Ord for NonZeroU128Innerimpl Ord for NonZeroU16Innerimpl Ord for NonZeroU32Innerimpl Ord for NonZeroU64Innerimpl Ord for NonZeroU8Innerimpl Ord for NonZeroUsizeInnerimpl Ord for Orderingimpl Ord for PhantomPinnedimpl Ord for SocketAddrimpl Ord for SocketAddrV4impl Ord for SocketAddrV6impl Ord for TypeIdimpl Ord for U32NotAllOnesimpl Ord for U64NotAllOnesimpl Ord for UsizeNoHighBitimpl Ord for VariantIdimpl Ord for Wtf8impl Ord for boolimpl Ord for charimpl Ord for i128impl Ord for i16impl Ord for i32impl Ord for i64impl Ord for i8impl Ord for isizeimpl Ord for neverimpl Ord for strimpl Ord for u128impl Ord for u16impl Ord for u32impl Ord for u64impl Ord for u8impl Ord for usizeimpl<'a> Ord for PhantomContravariantLifetime<'a>impl<'a> Ord for PhantomCovariantLifetime<'a>impl<'a> Ord for PhantomInvariantLifetime<'a>impl<A> Ord for &A where A: ~const Ord + PointeeSized,impl<A> Ord for &mut A where A: ~const Ord + PointeeSized,impl<A: ~const Ord, Z: ~const Ord, Y: ~const Ord, X: ~const Ord, W: ~const Ord, V: ~const Ord, U: ~const Ord, T: ~const Ord> Ord for (A, Z, Y, X, W, V, U, T)impl<B: ~const Ord, A: ~const Ord, Z: ~const Ord, Y: ~const Ord, X: ~const Ord, W: ~const Ord, V: ~const Ord, U: ~const Ord, T: ~const Ord> Ord for (B, A, Z, Y, X, W, V, U, T)impl<C: ~const Ord, B: ~const Ord, A: ~const Ord, Z: ~const Ord, Y: ~const Ord, X: ~const Ord, W: ~const Ord, V: ~const Ord, U: ~const Ord, T: ~const Ord> Ord for (C, B, A, Z, Y, X, W, V, U, T)impl<D: ~const Ord, C: ~const Ord, B: ~const Ord, A: ~const Ord, Z: ~const Ord, Y: ~const Ord, X: ~const Ord, W: ~const Ord, V: ~const Ord, U: ~const Ord, T: ~const Ord> Ord for (D, C, B, A, Z, Y, X, W, V, U, T)impl<Dyn: PointeeSized> Ord for DynMetadata<Dyn>impl<E: ~const Ord, D: ~const Ord, C: ~const Ord, B: ~const Ord, A: ~const Ord, Z: ~const Ord, Y: ~const Ord, X: ~const Ord, W: ~const Ord, V: ~const Ord, U: ~const Ord, T: ~const Ord> Ord for (E, D, C, B, A, Z, Y, X, W, V, U, T)impl<F> Ord for fn(T) -> Ret where F: FnPtr,impl<F: FnPtr> Ord for Fimpl<K: Ord, V> Ord for KeyAndValue<K, V>impl<Ptr: Deref<Target: Ord>> Ord for Pin<Ptr>impl<T> Ord for NonZero<T> where T: ZeroablePrimitive + ~const Ord,impl<T> Ord for PhantomContravariant<T> where T: ?Sized,impl<T> Ord for PhantomCovariant<T> where T: ?Sized,impl<T> Ord for PhantomInvariant<T> where T: ?Sized,impl<T> Ord for SyncView<T> where T: Sync + ~const Ord + ?Sized,impl<T, const N: usize> Ord for Simd<T, N> where T: SimdElement + Ord,impl<T: ?Sized + Ord> Ord for ManuallyDrop<T>impl<T: ?Sized + Ord> Ord for RefCell<T>impl<T: ?Sized, const VARIANT: u32, const FIELD: u32> Ord for FieldRepresentingType<T, VARIANT, FIELD>impl<T: Ord + Copy> Ord for Cell<T>impl<T: Ord> Ord for Poll<T>impl<T: Ord> Ord for Saturating<T>impl<T: Ord> Ord for Wrapping<T>impl<T: PointeeSized> Ord for *const Timpl<T: PointeeSized> Ord for *mut Timpl<T: PointeeSized> Ord for NonNull<T>impl<T: PointeeSized> Ord for PhantomData<T>impl<T: ~const Ord> Ord for (T,)impl<T: ~const Ord> Ord for Option<T>impl<T: ~const Ord> Ord for Reverse<T>impl<T: ~const Ord> Ord for [T]impl<T: ~const Ord, E: ~const Ord> Ord for Result<T, E>impl<T: ~const Ord, const N: usize> Ord for [T; N]impl<U: ~const Ord, T: ~const Ord> Ord for (U, T)impl<V: ~const Ord, U: ~const Ord, T: ~const Ord> Ord for (V, U, T)impl<W: ~const Ord, V: ~const Ord, U: ~const Ord, T: ~const Ord> Ord for (W, V, U, T)impl<X: ~const Ord, W: ~const Ord, V: ~const Ord, U: ~const Ord, T: ~const Ord> Ord for (X, W, V, U, T)impl<Y: Ord, R: Ord> Ord for CoroutineState<Y, R>impl<Y: ~const Ord, X: ~const Ord, W: ~const Ord, V: ~const Ord, U: ~const Ord, T: ~const Ord> Ord for (Y, X, W, V, U, T)impl<Z: ~const Ord, Y: ~const Ord, X: ~const Ord, W: ~const Ord, V: ~const Ord, U: ~const Ord, T: ~const Ord> Ord for (Z, Y, X, W, V, U, T)