Add doc-tests for apply_norm and apply_metric_distance.
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@ -127,12 +127,36 @@ impl<N: Real, R: Dim, C: Dim, S: Storage<N, R, C>> Matrix<N, R, C, S> {
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}
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/// Uses the given `norm` to compute the norm of `self`.
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///
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/// # Example
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///
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/// ```
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/// # use nalgebra::{Vector3, UniformNorm, LpNorm, EuclideanNorm};
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///
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/// let v = Vector3::new(1.0, 2.0, 3.0);
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/// assert_eq!(v.apply_norm(&UniformNorm), 3.0);
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/// assert_eq!(v.apply_norm(&LpNorm(1)), 6.0);
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/// assert_eq!(v.apply_norm(&EuclideanNorm), v.norm());
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/// ```
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#[inline]
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pub fn apply_norm(&self, norm: &impl Norm<N>) -> N {
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norm.norm(self)
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}
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/// Uses the metric induced by the given `norm` to compute the metric distance between `self` and `rhs`.
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///
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/// # Example
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///
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/// ```
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/// # use nalgebra::{Vector3, UniformNorm, LpNorm, EuclideanNorm};
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///
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/// let v1 = Vector3::new(1.0, 2.0, 3.0);
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/// let v2 = Vector3::new(10.0, 20.0, 30.0);
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///
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/// assert_eq!(v1.apply_metric_distance(&v2, &UniformNorm), 27.0);
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/// assert_eq!(v1.apply_metric_distance(&v2, &LpNorm(1)), 27.0 + 18.0 + 9.0);
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/// assert_eq!(v1.apply_metric_distance(&v2, &EuclideanNorm), (v1 - v2).norm());
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/// ```
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#[inline]
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pub fn apply_metric_distance<R2, C2, S2>(&self, rhs: &Matrix<N, R2, C2, S2>, norm: &impl Norm<N>) -> N
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where R2: Dim, C2: Dim, S2: Storage<N, R2, C2>,
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