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either
| 5 | 1 | /*! |
| 2 | Integration with nalgebra. | |
| 3 | ||
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4 | This module mainly implements [`Euclidean`], [`Norm`], [`Linear`], etc. for [`nalgebra`] |
| 5 | 5 | matrices and vectors. |
| 6 | It also provides [`ToNalgebraRealField`] as a vomit-inducingly ugly workaround to nalgebra | |
| 7 | force-feeding its own versions of the same basic mathematical methods on `f32` and `f64` as | |
| 8 | [`num_traits`] does. | |
| 9 | */ | |
| 0 | 10 | |
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11 | use crate::euclidean::*; |
| 162 | 12 | use crate::instance::{Decomposition, Instance, MyCow, Ownable, Space}; |
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13 | use crate::linops::*; |
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14 | use crate::norms::*; |
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15 | use crate::types::Float; |
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16 | use nalgebra::base::allocator::Allocator; |
| 158 | 17 | use nalgebra::base::constraint::{DimEq, SameNumberOfColumns, SameNumberOfRows, ShapeConstraint}; |
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18 | use nalgebra::base::dimension::*; |
| 0 | 19 | use nalgebra::{ |
| 156 | 20 | ClosedAddAssign, ClosedMulAssign, DefaultAllocator, Dim, LpNorm, Matrix, MatrixView, OMatrix, |
| 158 | 21 | OVector, RawStorage, RealField, Scalar, SimdComplexField, Storage, StorageMut, UniformNorm, |
| 159 | 22 | Vector, U1, |
| 0 | 23 | }; |
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24 | use num_traits::identities::{One, Zero}; |
| 0 | 25 | use std::ops::Mul; |
| 26 | ||
| 150 | 27 | impl<S, M, N, E> Ownable for Matrix<E, M, N, S> |
| 28 | where | |
| 29 | S: Storage<E, M, N>, | |
| 30 | M: Dim, | |
| 31 | N: Dim, | |
| 32 | E: Scalar + Zero + One, | |
| 33 | DefaultAllocator: Allocator<M, N>, | |
| 34 | { | |
| 35 | type OwnedVariant = OMatrix<E, M, N>; | |
| 36 | ||
| 37 | #[inline] | |
| 38 | fn into_owned(self) -> Self::OwnedVariant { | |
| 39 | Matrix::into_owned(self) | |
| 40 | } | |
| 41 | ||
| 42 | /// Returns an owned instance of a reference. | |
| 43 | fn clone_owned(&self) -> Self::OwnedVariant { | |
| 44 | Matrix::clone_owned(self) | |
| 45 | } | |
| 162 | 46 | |
| 47 | fn cow_owned<'b>(self) -> MyCow<'b, Self::OwnedVariant> | |
| 48 | where | |
| 49 | Self: 'b, | |
| 50 | { | |
| 166 | 51 | MyCow::Owned(self.into_owned()) |
| 52 | } | |
| 53 | ||
| 54 | fn ref_cow_owned<'b>(&'b self) -> MyCow<'b, Self::OwnedVariant> | |
| 55 | where | |
| 56 | Self: 'b, | |
| 57 | { | |
| 58 | MyCow::Owned(self.clone_owned()) | |
| 162 | 59 | } |
| 150 | 60 | } |
| 61 | ||
| 159 | 62 | trait StridesOk<E, N, M = U1, S = <DefaultAllocator as Allocator<N, M>>::Buffer<E>>: |
| 63 | DimEq<Dyn, S::RStride> | |
| 64 | + DimEq<Dyn, S::CStride> | |
| 65 | + DimEq<Dyn, <<DefaultAllocator as Allocator<N, M>>::Buffer<E> as RawStorage<E, N, M>>::RStride> | |
| 66 | + DimEq<Dyn, <<DefaultAllocator as Allocator<N, M>>::Buffer<E> as RawStorage<E, N, M>>::CStride> | |
| 67 | where | |
| 68 | S: RawStorage<E, N, M>, | |
| 69 | E: Scalar, | |
| 70 | N: Dim, | |
| 71 | M: Dim, | |
| 72 | DefaultAllocator: Allocator<N, M>, | |
| 73 | { | |
| 74 | } | |
| 75 | ||
| 76 | impl<S, E, N, M> StridesOk<E, N, M, S> for ShapeConstraint | |
| 77 | where | |
| 78 | ShapeConstraint: DimEq<Dyn, S::RStride> | |
| 79 | + DimEq<Dyn, S::CStride> | |
| 80 | + DimEq< | |
| 81 | Dyn, | |
| 82 | <<DefaultAllocator as Allocator<N, M>>::Buffer<E> as RawStorage<E, N, M>>::RStride, | |
| 83 | > + DimEq< | |
| 84 | Dyn, | |
| 85 | <<DefaultAllocator as Allocator<N, M>>::Buffer<E> as RawStorage<E, N, M>>::CStride, | |
| 86 | >, | |
| 87 | S: Storage<E, N, M>, | |
| 88 | E: Scalar, | |
| 89 | N: Dim, | |
| 90 | M: Dim, | |
| 91 | DefaultAllocator: Allocator<N, M>, | |
| 92 | { | |
| 93 | } | |
| 94 | ||
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95 | impl<SM, N, M, E> Space for Matrix<E, N, M, SM> |
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96 | where |
| 150 | 97 | SM: Storage<E, N, M>, |
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98 | N: Dim, |
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99 | M: Dim, |
| 165 | 100 | E: Scalar + Zero + One + Copy, |
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101 | DefaultAllocator: Allocator<N, M>, |
| 159 | 102 | ShapeConstraint: StridesOk<E, N, M, SM> + StridesOk<E, N, M>, |
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103 | { |
| 164 | 104 | type Principal = OMatrix<E, N, M>; |
| 156 | 105 | type Decomp = MatrixDecomposition; |
| 106 | } | |
| 107 | ||
| 108 | #[derive(Copy, Clone, Debug)] | |
| 109 | pub struct MatrixDecomposition; | |
| 110 | ||
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111 | impl<E, M, K, S> Decomposition<Matrix<E, M, K, S>> for MatrixDecomposition |
| 156 | 112 | where |
| 158 | 113 | S: Storage<E, M, K>, |
| 156 | 114 | M: Dim, |
| 115 | K: Dim, | |
| 165 | 116 | E: Scalar + Zero + One + Copy, |
| 156 | 117 | DefaultAllocator: Allocator<M, K>, |
| 159 | 118 | ShapeConstraint: StridesOk<E, M, K, S> + StridesOk<E, M, K>, |
| 156 | 119 | { |
| 120 | type Decomposition<'b> | |
| 121 | = OMatrix<E, M, K> | |
| 122 | where | |
| 123 | Matrix<E, M, K, S>: 'b; | |
| 124 | type Reference<'b> | |
| 158 | 125 | = MatrixView<'b, E, M, K, Dyn, Dyn> |
| 156 | 126 | where |
| 127 | Matrix<E, M, K, S>: 'b; | |
| 128 | ||
| 129 | #[inline] | |
| 157 | 130 | fn lift<'b>(r: Self::Reference<'b>) -> Self::Decomposition<'b> |
| 131 | where | |
| 132 | S: 'b, | |
| 133 | { | |
| 156 | 134 | r.into_owned() |
| 135 | } | |
| 136 | } | |
| 137 | ||
| 159 | 138 | impl<S1, S2, M, K, E> Instance<Matrix<E, M, K, S1>, MatrixDecomposition> for Matrix<E, M, K, S2> |
| 139 | where | |
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140 | S1: Storage<E, M, K>, |
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141 | S2: Storage<E, M, K>, |
| 159 | 142 | M: Dim, |
| 143 | K: Dim, | |
| 165 | 144 | E: Scalar + Zero + One + Copy, |
| 159 | 145 | DefaultAllocator: Allocator<M, K>, |
| 146 | ShapeConstraint: StridesOk<E, M, K, S1> + StridesOk<E, M, K, S2>, | |
| 147 | { | |
| 168 | 148 | #[inline] |
| 170 | 149 | fn either<'b, R>( |
| 150 | self, | |
| 151 | f: impl FnOnce(OMatrix<E, M, K>) -> R, | |
| 152 | _g: impl FnOnce(MatrixView<'b, E, M, K, Dyn, Dyn>) -> R, | |
| 153 | ) -> R | |
| 154 | where | |
| 155 | Self: 'b, | |
| 156 | { | |
| 157 | // TODO: should not turn non-owned matrices into owned | |
| 158 | f(self.into_owned()) | |
| 159 | } | |
| 160 | ||
| 161 | #[inline] | |
| 159 | 162 | fn eval_decompose<'b, R>(self, f: impl FnOnce(OMatrix<E, M, K>) -> R) -> R |
| 163 | where | |
| 164 | Self: 'b, | |
| 165 | { | |
| 166 | f(self.into_owned()) | |
| 167 | } | |
| 158 | 168 | |
| 168 | 169 | #[inline] |
| 159 | 170 | fn eval_ref_decompose<'b, R>( |
| 171 | &'b self, | |
| 172 | f: impl FnOnce(<MatrixDecomposition as Decomposition<Matrix<E, M, K, S1>>>::Reference<'b>) -> R, | |
| 173 | ) -> R | |
| 174 | where | |
| 175 | Self: 'b, | |
| 176 | Matrix<E, M, K, S1>: 'b, | |
| 177 | { | |
| 178 | f(self.as_view::<M, K, Dyn, Dyn>()) | |
| 179 | } | |
| 156 | 180 | |
| 159 | 181 | #[inline] |
| 182 | fn own(self) -> OMatrix<E, M, K> { | |
| 183 | self.into_owned() | |
| 184 | } | |
| 168 | 185 | |
| 186 | #[inline] | |
| 187 | fn cow<'b>(self) -> MyCow<'b, OMatrix<E, M, K>> | |
| 188 | where | |
| 189 | Self: 'b, | |
| 190 | { | |
| 191 | self.cow_owned() | |
| 192 | } | |
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193 | } |
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194 | |
| 159 | 195 | impl<'a, S1, S2, M, K, E> Instance<Matrix<E, M, K, S1>, MatrixDecomposition> |
| 196 | for &'a Matrix<E, M, K, S2> | |
| 197 | where | |
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198 | S1: Storage<E, M, K>, |
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199 | S2: Storage<E, M, K>, |
| 159 | 200 | M: Dim, |
| 201 | K: Dim, | |
| 165 | 202 | E: Scalar + Zero + One + Copy, |
| 159 | 203 | DefaultAllocator: Allocator<M, K>, |
| 204 | ShapeConstraint: StridesOk<E, M, K, S1> + StridesOk<E, M, K, S2>, | |
| 205 | { | |
| 170 | 206 | #[inline] |
| 207 | fn either<'b, R>( | |
| 208 | self, | |
| 209 | _f: impl FnOnce(OMatrix<E, M, K>) -> R, | |
| 210 | g: impl FnOnce(MatrixView<'b, E, M, K, Dyn, Dyn>) -> R, | |
| 211 | ) -> R | |
| 212 | where | |
| 213 | Self: 'b, | |
| 214 | { | |
| 215 | g(self.as_view()) | |
| 216 | } | |
| 217 | ||
| 159 | 218 | fn eval_decompose<'b, R>(self, f: impl FnOnce(OMatrix<E, M, K>) -> R) -> R |
| 219 | where | |
| 220 | Self: 'b, | |
| 221 | { | |
| 222 | f(self.into_owned()) | |
| 223 | } | |
| 224 | ||
| 225 | fn eval_ref_decompose<'b, R>( | |
| 226 | &'b self, | |
| 227 | f: impl FnOnce(<MatrixDecomposition as Decomposition<Matrix<E, M, K, S1>>>::Reference<'b>) -> R, | |
| 228 | ) -> R | |
| 229 | where | |
| 230 | Self: 'b, | |
| 231 | Matrix<E, M, K, S1>: 'b, | |
| 232 | { | |
| 233 | f((*self).as_view::<M, K, Dyn, Dyn>()) | |
| 234 | } | |
| 235 | ||
| 236 | #[inline] | |
| 237 | fn own(self) -> OMatrix<E, M, K> { | |
| 238 | self.into_owned() | |
| 239 | } | |
| 168 | 240 | |
| 241 | #[inline] | |
| 242 | fn cow<'b>(self) -> MyCow<'b, OMatrix<E, M, K>> | |
| 243 | where | |
| 244 | Self: 'b, | |
| 245 | { | |
| 246 | self.cow_owned() | |
| 247 | } | |
| 159 | 248 | } |
| 158 | 249 | |
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250 | impl<SM, N, M, K, E> Mapping<OMatrix<E, M, K>> for Matrix<E, N, M, SM> |
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251 | where |
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252 | SM: Storage<E, N, M>, |
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253 | N: Dim, |
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254 | M: Dim, |
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255 | K: Dim, |
| 165 | 256 | E: Scalar + Zero + One + Copy + ClosedMulAssign + ClosedAddAssign, |
| 167 | 257 | DefaultAllocator: Allocator<N, K> + Allocator<M, K> + Allocator<N, M>, |
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258 | ShapeConstraint: StridesOk<E, N, M, SM> + StridesOk<E, M, K> + StridesOk<E, N, K>, |
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259 | { |
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260 | type Codomain = OMatrix<E, N, K>; |
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261 | |
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262 | #[inline] |
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263 | fn apply<I: Instance<OMatrix<E, M, K>>>(&self, x: I) -> Self::Codomain { |
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264 | x.either(|owned| self.mul(owned), |refr| self.mul(refr)) |
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265 | } |
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266 | } |
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267 | |
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268 | impl<'a, SM, N, M, K, E> Linear<OMatrix<E, M, K>> for Matrix<E, N, M, SM> |
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269 | where |
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270 | SM: Storage<E, N, M>, |
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271 | N: Dim, |
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272 | M: Dim, |
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273 | K: Dim, |
| 165 | 274 | E: Scalar + Zero + One + Copy + ClosedMulAssign + ClosedAddAssign, |
| 167 | 275 | DefaultAllocator: Allocator<N, K> + Allocator<M, K> + Allocator<N, M>, |
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276 | ShapeConstraint: StridesOk<E, N, M, SM> + StridesOk<E, M, K> + StridesOk<E, N, K>, |
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277 | { |
| 0 | 278 | } |
| 279 | ||
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280 | impl<SM, SV2, N, M, K, E> GEMV<E, OMatrix<E, M, K>, Matrix<E, N, K, SV2>> for Matrix<E, N, M, SM> |
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281 | where |
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282 | SM: Storage<E, N, M>, |
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283 | SV2: StorageMut<E, N, K>, |
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284 | N: Dim, |
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285 | M: Dim, |
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286 | K: Dim, |
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287 | E: Scalar + Zero + One + Float, |
| 167 | 288 | DefaultAllocator: Allocator<N, K> + Allocator<M, K> + Allocator<N, M>, |
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289 | ShapeConstraint: StridesOk<E, N, M, SM> + StridesOk<E, N, K, SV2> + StridesOk<E, M, K>, |
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290 | { |
| 0 | 291 | #[inline] |
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292 | fn gemv<I: Instance<OMatrix<E, M, K>>>( |
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293 | &self, y: &mut Matrix<E, N, K, SV2>, α: E, x: I, β: E |
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294 | ) { |
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295 | x.eval(|x̃| Matrix::gemm(y, α, self, x̃, β)) |
| 0 | 296 | } |
| 297 | ||
| 298 | #[inline] | |
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299 | fn apply_mut<'a, I: Instance<OMatrix<E, M, K>>>(&self, y: &mut Matrix<E, N, K, SV2>, x: I) { |
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300 | x.eval(|x̃| self.mul_to(x̃, y)) |
| 0 | 301 | } |
| 302 | } | |
| 303 | ||
| 150 | 304 | impl<S, M, N, E> VectorSpace for Matrix<E, M, N, S> |
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305 | where |
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306 | S: Storage<E, M, N>, |
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307 | M: Dim, |
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308 | N: Dim, |
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309 | E: Scalar + Zero + One + Float, |
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310 | DefaultAllocator: Allocator<M, N>, |
| 159 | 311 | ShapeConstraint: StridesOk<E, M, N, S>, |
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312 | { |
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313 | type Field = E; |
| 164 | 314 | type PrincipalV = OMatrix<E, M, N>; |
| 0 | 315 | |
| 316 | #[inline] | |
| 164 | 317 | fn similar_origin(&self) -> Self::PrincipalV { |
| 150 | 318 | let (n, m) = self.shape_generic(); |
| 319 | OMatrix::zeros_generic(n, m) | |
| 320 | } | |
| 321 | } | |
| 322 | ||
| 323 | impl<SM, SV1, M, N, E> AXPY<Matrix<E, M, N, SV1>> for Matrix<E, M, N, SM> | |
| 324 | where | |
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325 | SM: StorageMut<E, M, N>, |
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326 | SV1: Storage<E, M, N>, |
| 150 | 327 | M: Dim, |
| 328 | N: Dim, | |
| 329 | E: Scalar + Zero + One + Float, | |
| 330 | DefaultAllocator: Allocator<M, N>, | |
| 159 | 331 | ShapeConstraint: StridesOk<E, M, N, SM> + StridesOk<E, M, N, SV1>, |
| 150 | 332 | { |
| 333 | #[inline] | |
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334 | fn axpy<I: Instance<Matrix<E, M, N, SV1>>>(&mut self, α: E, x: I, β: E) { |
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335 | x.eval(|x̃| { |
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336 | assert_eq!(self.ncols(), x̃.ncols()); |
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337 | // nalgebra does not implement axpy for matrices, and flattenining |
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338 | // also seems difficult, so loop over columns. |
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339 | for (mut y, ỹ) in self.column_iter_mut().zip(x̃.column_iter()) { |
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340 | Vector::axpy(&mut y, α, &ỹ, β) |
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341 | } |
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342 | }) |
| 0 | 343 | } |
| 344 | ||
| 345 | #[inline] | |
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346 | fn copy_from<I: Instance<Matrix<E, M, N, SV1>>>(&mut self, y: I) { |
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347 | y.eval(|ỹ| Matrix::copy_from(self, ỹ)) |
| 0 | 348 | } |
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349 | |
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350 | #[inline] |
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351 | fn set_zero(&mut self) { |
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352 | self.iter_mut().for_each(|e| *e = E::ZERO); |
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353 | } |
| 0 | 354 | } |
| 355 | ||
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356 | /* Implemented automatically as Euclidean. |
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357 | impl<SM,M,E> Projection<E, L2> for Vector<E,M,SM> |
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358 | where SM: StorageMut<E,M> + Clone, |
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359 | M : Dim, E : Scalar + Zero + One + Float + RealField, |
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360 | DefaultAllocator : Allocator<M> { |
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361 | #[inline] |
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362 | fn proj_ball_mut(&mut self, ρ : E, _ : L2) { |
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363 | let n = self.norm(L2); |
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364 | if n > ρ { |
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365 | self.iter_mut().for_each(|v| *v *= ρ/n) |
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366 | } |
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367 | } |
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368 | }*/ |
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369 | |
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370 | impl<SM, M, E> Projection<E, Linfinity> for Vector<E, M, SM> |
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371 | where |
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372 | SM: StorageMut<E, M> + Clone, |
| 150 | 373 | M: Dim, |
| 374 | E: Scalar + Zero + One + Float + RealField, | |
| 375 | DefaultAllocator: Allocator<M>, | |
| 159 | 376 | ShapeConstraint: StridesOk<E, M, U1, SM>, |
| 150 | 377 | { |
| 378 | #[inline] | |
| 164 | 379 | fn proj_ball(self, ρ: E, exp: Linfinity) -> <Self as Space>::Principal { |
| 150 | 380 | let mut owned = self.into_owned(); |
| 381 | owned.proj_ball_mut(ρ, exp); | |
| 382 | owned | |
| 383 | } | |
| 384 | } | |
| 385 | ||
| 386 | impl<SM, M, E> ProjectionMut<E, Linfinity> for Vector<E, M, SM> | |
| 387 | where | |
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388 | SM: StorageMut<E, M> + Clone, |
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389 | M: Dim, |
| 165 | 390 | E: Scalar + Zero + One + Copy + Float + RealField, |
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391 | DefaultAllocator: Allocator<M>, |
| 159 | 392 | ShapeConstraint: StridesOk<E, M, U1, SM>, |
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393 | { |
| 0 | 394 | #[inline] |
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395 | fn proj_ball_mut(&mut self, ρ: E, _: Linfinity) { |
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396 | self.iter_mut() |
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397 | .for_each(|v| *v = num_traits::clamp(*v, -ρ, ρ)) |
| 0 | 398 | } |
| 399 | } | |
| 400 | ||
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401 | impl<'own, SM, N, M, K, E> Adjointable<OMatrix<E, M, K>, OMatrix<E, N, K>> for Matrix<E, N, M, SM> |
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402 | where |
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403 | SM: Storage<E, N, M>, |
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404 | N: Dim, |
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405 | M: Dim, |
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406 | K: Dim, |
| 165 | 407 | E: Scalar + Zero + One + Copy + SimdComplexField, |
| 159 | 408 | DefaultAllocator: Allocator<N, K> + Allocator<M, K> + Allocator<N, M> + Allocator<M, N>, |
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409 | ShapeConstraint: |
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410 | StridesOk<E, N, M, SM> + StridesOk<E, N, K> + StridesOk<E, M, N> + StridesOk<E, M, K>, |
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411 | { |
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412 | type AdjointCodomain = OMatrix<E, M, K>; |
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413 | type Adjoint<'a> |
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414 | = OMatrix<E, M, N> |
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415 | where |
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416 | SM: 'a; |
| 0 | 417 | |
| 418 | #[inline] | |
| 419 | fn adjoint(&self) -> Self::Adjoint<'_> { | |
| 420 | Matrix::adjoint(self) | |
| 421 | } | |
| 422 | } | |
| 423 | ||
| 424 | /// This function is [`nalgebra::EuclideanNorm::metric_distance`] without the `sqrt`. | |
| 425 | #[inline] | |
| 426 | fn metric_distance_squared<T, R1, C1, S1, R2, C2, S2>( | |
| 427 | /*ed: &EuclideanNorm,*/ | |
| 428 | m1: &Matrix<T, R1, C1, S1>, | |
| 429 | m2: &Matrix<T, R2, C2, S2>, | |
| 430 | ) -> T::SimdRealField | |
| 431 | where | |
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432 | T: SimdComplexField, |
| 0 | 433 | R1: Dim, |
| 434 | C1: Dim, | |
| 435 | S1: Storage<T, R1, C1>, | |
| 436 | R2: Dim, | |
| 437 | C2: Dim, | |
| 438 | S2: Storage<T, R2, C2>, | |
| 439 | ShapeConstraint: SameNumberOfRows<R1, R2> + SameNumberOfColumns<C1, C2>, | |
| 440 | { | |
| 441 | m1.zip_fold(m2, T::SimdRealField::zero(), |acc, a, b| { | |
| 442 | let diff = a - b; | |
| 443 | acc + diff.simd_modulus_squared() | |
| 444 | }) | |
| 445 | } | |
| 446 | ||
| 447 | // TODO: should allow different input storages in `Euclidean`. | |
| 448 | ||
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449 | impl<E, M, S> Euclidean<E> for Vector<E, M, S> |
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450 | where |
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451 | M: Dim, |
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452 | S: Storage<E, M>, |
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453 | E: Float + Scalar + Zero + One + RealField, |
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454 | DefaultAllocator: Allocator<M>, |
| 159 | 455 | ShapeConstraint: StridesOk<E, M, U1, S>, |
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456 | { |
| 164 | 457 | type PrincipalE = OVector<E, M>; |
| 151 | 458 | |
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459 | #[inline] |
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460 | fn dot<I: Instance<Self>>(&self, other: I) -> E { |
| 158 | 461 | other.eval_ref_decompose(|ref r| Vector::<E, M, S>::dot(self, r)) |
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462 | } |
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463 | |
| 0 | 464 | #[inline] |
| 465 | fn norm2_squared(&self) -> E { | |
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466 | Vector::<E, M, S>::norm_squared(self) |
| 0 | 467 | } |
| 468 | ||
| 469 | #[inline] | |
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470 | fn dist2_squared<I: Instance<Self>>(&self, other: I) -> E { |
| 158 | 471 | other.eval_ref_decompose(|ref r| metric_distance_squared(self, r)) |
| 0 | 472 | } |
| 473 | } | |
| 474 | ||
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475 | impl<E, M, S> StaticEuclidean<E> for Vector<E, M, S> |
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476 | where |
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477 | M: DimName, |
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478 | S: Storage<E, M>, |
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479 | E: Float + Scalar + Zero + One + RealField, |
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480 | DefaultAllocator: Allocator<M>, |
| 159 | 481 | ShapeConstraint: StridesOk<E, M, U1, S>, |
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482 | { |
| 0 | 483 | #[inline] |
| 484 | fn origin() -> OVector<E, M> { | |
| 485 | OVector::zeros() | |
| 486 | } | |
| 487 | } | |
| 488 | ||
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489 | /// The default norm for `Vector` is [`L2`]. |
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490 | impl<E, M, S> Normed<E> for Vector<E, M, S> |
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491 | where |
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492 | M: Dim, |
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493 | S: Storage<E, M>, |
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494 | E: Float + Scalar + Zero + One + RealField, |
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495 | DefaultAllocator: Allocator<M>, |
| 159 | 496 | ShapeConstraint: StridesOk<E, M, U1, S>, |
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497 | { |
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498 | type NormExp = L2; |
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499 | |
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500 | #[inline] |
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501 | fn norm_exponent(&self) -> Self::NormExp { |
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502 | L2 |
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503 | } |
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504 | |
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505 | #[inline] |
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506 | fn is_zero(&self) -> bool { |
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507 | Vector::<E, M, S>::norm_squared(self) == E::ZERO |
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508 | } |
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509 | } |
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510 | |
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511 | impl<E, M, S> HasDual<E> for Vector<E, M, S> |
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512 | where |
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513 | M: Dim, |
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514 | S: Storage<E, M>, |
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515 | E: Float + Scalar + Zero + One + RealField, |
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516 | DefaultAllocator: Allocator<M>, |
| 159 | 517 | ShapeConstraint: StridesOk<E, M, U1, S>, |
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518 | { |
| 151 | 519 | type DualSpace = OVector<E, M>; |
| 138 | 520 | |
| 521 | fn dual_origin(&self) -> OVector<E, M> { | |
| 522 | OVector::zeros_generic(M::from_usize(self.len()), Const) | |
| 523 | } | |
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524 | } |
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525 | |
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526 | impl<E, M, S> Norm<L1, E> for Vector<E, M, S> |
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527 | where |
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528 | M: Dim, |
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529 | S: Storage<E, M>, |
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530 | E: Float + Scalar + Zero + One + RealField, |
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531 | DefaultAllocator: Allocator<M>, |
| 159 | 532 | ShapeConstraint: StridesOk<E, M, U1, S>, |
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533 | { |
| 0 | 534 | #[inline] |
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535 | fn norm(&self, _: L1) -> E { |
| 70 | 536 | nalgebra::Norm::norm(&LpNorm(1), self) |
| 0 | 537 | } |
| 538 | } | |
| 539 | ||
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540 | impl<E, M, S> Dist<L1, E> for Vector<E, M, S> |
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541 | where |
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542 | M: Dim, |
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543 | S: Storage<E, M> + Clone, |
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544 | E: Float + Scalar + Zero + One + RealField, |
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545 | DefaultAllocator: Allocator<M>, |
| 159 | 546 | ShapeConstraint: StridesOk<E, M, U1, S>, |
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547 | { |
| 0 | 548 | #[inline] |
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549 | fn dist<I: Instance<Self>>(&self, other: I, _: L1) -> E { |
| 158 | 550 | other.eval_ref_decompose(|ref r| nalgebra::Norm::metric_distance(&LpNorm(1), self, r)) |
| 0 | 551 | } |
| 552 | } | |
| 553 | ||
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554 | impl<E, M, S> Norm<L2, E> for Vector<E, M, S> |
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555 | where |
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556 | M: Dim, |
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557 | S: Storage<E, M>, |
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558 | E: Float + Scalar + Zero + One + RealField, |
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559 | DefaultAllocator: Allocator<M>, |
| 159 | 560 | ShapeConstraint: StridesOk<E, M, U1, S>, |
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561 | { |
| 0 | 562 | #[inline] |
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563 | fn norm(&self, _: L2) -> E { |
| 70 | 564 | nalgebra::Norm::norm(&LpNorm(2), self) |
| 0 | 565 | } |
| 566 | } | |
| 567 | ||
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568 | impl<E, M, S> Dist<L2, E> for Vector<E, M, S> |
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569 | where |
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570 | M: Dim, |
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571 | S: Storage<E, M> + Clone, |
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572 | E: Float + Scalar + Zero + One + RealField, |
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573 | DefaultAllocator: Allocator<M>, |
| 159 | 574 | ShapeConstraint: StridesOk<E, M, U1, S>, |
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575 | { |
| 0 | 576 | #[inline] |
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577 | fn dist<I: Instance<Self>>(&self, other: I, _: L2) -> E { |
| 158 | 578 | other.eval_ref_decompose(|ref r| nalgebra::Norm::metric_distance(&LpNorm(2), self, r)) |
| 0 | 579 | } |
| 580 | } | |
| 581 | ||
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582 | impl<E, M, S> Norm<Linfinity, E> for Vector<E, M, S> |
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583 | where |
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584 | M: Dim, |
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585 | S: Storage<E, M>, |
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586 | E: Float + Scalar + Zero + One + RealField, |
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587 | DefaultAllocator: Allocator<M>, |
| 159 | 588 | ShapeConstraint: StridesOk<E, M, U1, S>, |
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589 | { |
| 0 | 590 | #[inline] |
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591 | fn norm(&self, _: Linfinity) -> E { |
| 70 | 592 | nalgebra::Norm::norm(&UniformNorm, self) |
| 0 | 593 | } |
| 594 | } | |
| 595 | ||
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596 | impl<E, M, S> Dist<Linfinity, E> for Vector<E, M, S> |
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597 | where |
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598 | M: Dim, |
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599 | S: Storage<E, M> + Clone, |
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600 | E: Float + Scalar + Zero + One + RealField, |
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601 | DefaultAllocator: Allocator<M>, |
| 159 | 602 | ShapeConstraint: StridesOk<E, M, U1, S>, |
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603 | { |
| 0 | 604 | #[inline] |
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605 | fn dist<I: Instance<Self>>(&self, other: I, _: Linfinity) -> E { |
| 158 | 606 | other.eval_ref_decompose(|ref r| nalgebra::Norm::metric_distance(&UniformNorm, self, r)) |
| 0 | 607 | } |
| 608 | } | |
| 609 | ||
| 5 | 610 | /// Helper trait to hide the symbols of [`nalgebra::RealField`]. |
| 611 | /// | |
| 612 | /// By assuming `ToNalgebraRealField` intead of `nalgebra::RealField` as a trait bound, | |
| 613 | /// functions can piggyback `nalgebra::RealField` without exponsing themselves to it. | |
| 614 | /// Thus methods from [`num_traits`] can be used directly without similarly named methods | |
| 615 | /// from [`nalgebra`] conflicting with them. Only when absolutely necessary to work with | |
| 616 | /// nalgebra, one can convert to the nalgebra view of the same type using the methods of | |
| 617 | /// this trait. | |
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618 | pub trait ToNalgebraRealField: Float { |
| 5 | 619 | /// The nalgebra type corresponding to this type. Usually same as `Self`. |
| 620 | /// | |
| 621 | /// This type only carries `nalgebra` traits. | |
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622 | type NalgebraType: RealField; |
| 5 | 623 | /// The “mixed” type corresponding to this type. Usually same as `Self`. |
| 624 | /// | |
| 625 | /// This type carries both `num_traits` and `nalgebra` traits. | |
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626 | type MixedType: RealField + Float; |
| 0 | 627 | |
| 5 | 628 | /// Convert to the nalgebra view of `self`. |
| 0 | 629 | fn to_nalgebra(self) -> Self::NalgebraType; |
| 5 | 630 | |
| 631 | /// Convert to the mixed (nalgebra and num_traits) view of `self`. | |
| 0 | 632 | fn to_nalgebra_mixed(self) -> Self::MixedType; |
| 633 | ||
| 5 | 634 | /// Convert from the nalgebra view of `self`. |
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635 | fn from_nalgebra(t: Self::NalgebraType) -> Self; |
| 5 | 636 | |
| 637 | /// Convert from the mixed (nalgebra and num_traits) view to `self`. | |
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638 | fn from_nalgebra_mixed(t: Self::MixedType) -> Self; |
| 0 | 639 | } |
| 640 | ||
| 641 | impl ToNalgebraRealField for f32 { | |
| 642 | type NalgebraType = f32; | |
| 643 | type MixedType = f32; | |
| 644 | ||
| 645 | #[inline] | |
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646 | fn to_nalgebra(self) -> Self::NalgebraType { |
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647 | self |
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648 | } |
| 0 | 649 | |
| 650 | #[inline] | |
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651 | fn to_nalgebra_mixed(self) -> Self::MixedType { |
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652 | self |
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653 | } |
| 0 | 654 | |
| 655 | #[inline] | |
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656 | fn from_nalgebra(t: Self::NalgebraType) -> Self { |
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657 | t |
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658 | } |
| 0 | 659 | |
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660 | #[inline] |
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661 | fn from_nalgebra_mixed(t: Self::MixedType) -> Self { |
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662 | t |
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663 | } |
| 0 | 664 | } |
| 665 | ||
| 666 | impl ToNalgebraRealField for f64 { | |
| 667 | type NalgebraType = f64; | |
| 668 | type MixedType = f64; | |
| 669 | ||
| 670 | #[inline] | |
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671 | fn to_nalgebra(self) -> Self::NalgebraType { |
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672 | self |
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673 | } |
| 0 | 674 | |
| 675 | #[inline] | |
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676 | fn to_nalgebra_mixed(self) -> Self::MixedType { |
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677 | self |
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678 | } |
| 0 | 679 | |
| 680 | #[inline] | |
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681 | fn from_nalgebra(t: Self::NalgebraType) -> Self { |
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682 | t |
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683 | } |
| 0 | 684 | |
| 685 | #[inline] | |
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686 | fn from_nalgebra_mixed(t: Self::MixedType) -> Self { |
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687 | t |
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688 | } |
| 0 | 689 | } |