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Implement Differentiable for Weighted and Shift
0 | 1 | |
5 | 2 | /*! |
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3 | Traits for representing the support of a [`Apply`], and analysing the mapping on a [`Cube`]. |
5 | 4 | */ |
0 | 5 | use serde::Serialize; |
6 | use std::ops::{MulAssign,DivAssign,Neg}; | |
5 | 7 | use crate::types::{Float, Num}; |
8 | use crate::maputil::map2; | |
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9 | use crate::mapping::{Apply, Differentiable}; |
5 | 10 | use crate::sets::Cube; |
11 | use crate::loc::Loc; | |
0 | 12 | use super::aggregator::Bounds; |
13 | use crate::norms::{Norm, L1, L2, Linfinity}; | |
14 | ||
5 | 15 | /// A trait for encoding constant [`Float`] values |
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16 | pub trait Constant : Copy + Sync + Send + 'static + std::fmt::Debug + Into<Self::Type> { |
5 | 17 | /// The type of the value |
0 | 18 | type Type : Float; |
5 | 19 | /// Returns the value of the constant |
0 | 20 | fn value(&self) -> Self::Type; |
21 | } | |
22 | ||
23 | impl<F : Float> Constant for F { | |
24 | type Type = F; | |
25 | #[inline] | |
26 | fn value(&self) -> F { *self } | |
27 | } | |
28 | ||
29 | ||
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30 | /// A trait for working with the supports of [`Apply`]s. |
5 | 31 | /// |
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32 | /// Apply is not a super-trait to allow more general use. |
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33 | pub trait Support<F : Num, const N : usize> : Sized + Sync + Send + 'static { |
5 | 34 | /// Return a cube containing the support of the function represented by `self`. |
35 | /// | |
36 | /// The hint may be larger than the actual support, but must contain it. | |
0 | 37 | fn support_hint(&self) -> Cube<F,N>; |
38 | ||
5 | 39 | /// Indicate whether `x` is in the support of the function represented by `self`. |
0 | 40 | fn in_support(&self, x : &Loc<F,N>) -> bool; |
41 | ||
5 | 42 | // Indicate whether `cube` is fully in the support of the function represented by `self`. |
0 | 43 | //fn fully_in_support(&self, cube : &Cube<F,N>) -> bool; |
44 | ||
5 | 45 | /// Return an optional hint for bisecting the support. |
46 | /// | |
47 | /// The output along each axis a possible coordinate at which to bisect `cube`. | |
48 | /// | |
49 | /// This is useful for nonsmooth functions to make finite element models as used by | |
50 | /// [`BTFN`][super::btfn::BTFN] minimisation/maximisation compatible with points of | |
51 | /// non-differentiability. | |
52 | /// | |
53 | /// The default implementation returns `[None; N]`. | |
0 | 54 | #[inline] |
5 | 55 | #[allow(unused_variables)] |
56 | fn bisection_hint(&self, cube : &Cube<F, N>) -> [Option<F>; N] { | |
57 | [None; N] | |
0 | 58 | } |
59 | ||
5 | 60 | /// Translate `self` by `x`. |
0 | 61 | #[inline] |
62 | fn shift(self, x : Loc<F, N>) -> Shift<Self, F, N> { | |
63 | Shift { shift : x, base_fn : self } | |
64 | } | |
65 | ||
5 | 66 | /// Multiply `self` by the scalar `a`. |
0 | 67 | #[inline] |
68 | fn weigh<C : Constant<Type=F>>(self, a : C) -> Weighted<Self, C> { | |
69 | Weighted { weight : a, base_fn : self } | |
70 | } | |
71 | } | |
72 | ||
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73 | /// Trait for globally analysing a property `A` of a [`Apply`]. |
5 | 74 | /// |
75 | /// Typically `A` is an [`Aggregator`][super::aggregator::Aggregator] such as | |
76 | /// [`Bounds`][super::aggregator::Bounds]. | |
0 | 77 | pub trait GlobalAnalysis<F : Num, A> { |
5 | 78 | /// Perform global analysis of the property `A` of `Self`. |
79 | /// | |
80 | /// As an example, in the case of `A` being [`Bounds`][super::aggregator::Bounds], | |
81 | /// this function will return global upper and lower bounds for the mapping | |
82 | /// represented by `self`. | |
0 | 83 | fn global_analysis(&self) -> A; |
84 | } | |
85 | ||
86 | // default impl<F, A, N, L> GlobalAnalysis<F, A, N> for L | |
87 | // where L : LocalAnalysis<F, A, N> { | |
88 | // #[inline] | |
89 | // fn global_analysis(&self) -> Bounds<F> { | |
90 | // self.local_analysis(&self.support_hint()) | |
91 | // } | |
92 | // } | |
93 | ||
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94 | /// Trait for locally analysing a property `A` of a [`Apply`] (implementing [`Support`]) |
5 | 95 | /// within a [`Cube`]. |
96 | /// | |
97 | /// Typically `A` is an [`Aggregator`][super::aggregator::Aggregator] such as | |
98 | /// [`Bounds`][super::aggregator::Bounds]. | |
0 | 99 | pub trait LocalAnalysis<F : Num, A, const N : usize> : GlobalAnalysis<F, A> + Support<F, N> { |
5 | 100 | /// Perform local analysis of the property `A` of `Self`. |
101 | /// | |
102 | /// As an example, in the case of `A` being [`Bounds`][super::aggregator::Bounds], | |
103 | /// this function will return upper and lower bounds within `cube` for the mapping | |
104 | /// represented by `self`. | |
0 | 105 | fn local_analysis(&self, cube : &Cube<F, N>) -> A; |
106 | } | |
107 | ||
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108 | /// Trait for determining the upper and lower bounds of an float-valued [`Apply`]. |
5 | 109 | /// |
0 | 110 | /// This is a blanket-implemented alias for [`GlobalAnalysis`]`<F, Bounds<F>>` |
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111 | /// [`Apply`] is not a supertrait to allow flexibility in the implementation of either |
0 | 112 | /// reference or non-reference arguments. |
113 | pub trait Bounded<F : Float> : GlobalAnalysis<F, Bounds<F>> { | |
114 | /// Return lower and upper bounds for the values of of `self`. | |
115 | #[inline] | |
116 | fn bounds(&self) -> Bounds<F> { | |
117 | self.global_analysis() | |
118 | } | |
119 | } | |
120 | ||
121 | impl<F : Float, T : GlobalAnalysis<F, Bounds<F>>> Bounded<F> for T { } | |
122 | ||
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123 | /// Shift of [`Support`] and [`Apply`]; output of [`Support::shift`]. |
0 | 124 | #[derive(Copy,Clone,Debug,Serialize)] // Serialize! but not implemented by Loc. |
125 | pub struct Shift<T, F, const N : usize> { | |
126 | shift : Loc<F, N>, | |
127 | base_fn : T, | |
128 | } | |
129 | ||
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130 | impl<'a, T, V, F : Float, const N : usize> Apply<&'a Loc<F, N>> for Shift<T,F,N> |
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131 | where T : Apply<Loc<F, N>, Output=V> { |
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132 | type Output = V; |
0 | 133 | #[inline] |
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134 | fn apply(&self, x : &'a Loc<F, N>) -> Self::Output { |
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135 | self.base_fn.apply(x - &self.shift) |
0 | 136 | } |
137 | } | |
138 | ||
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139 | impl<'a, T, V, F : Float, const N : usize> Apply<Loc<F, N>> for Shift<T,F,N> |
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140 | where T : Apply<Loc<F, N>, Output=V> { |
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141 | type Output = V; |
0 | 142 | #[inline] |
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143 | fn apply(&self, x : Loc<F, N>) -> Self::Output { |
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144 | self.base_fn.apply(x - &self.shift) |
0 | 145 | } |
146 | } | |
147 | ||
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148 | impl<'a, T, V, F : Float, const N : usize> Differentiable<&'a Loc<F, N>> for Shift<T,F,N> |
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149 | where T : Differentiable<Loc<F, N>, Output=V> { |
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150 | type Output = V; |
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151 | #[inline] |
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152 | fn differential(&self, x : &'a Loc<F, N>) -> Self::Output { |
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153 | self.base_fn.differential(x - &self.shift) |
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154 | } |
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155 | } |
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156 | |
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157 | impl<'a, T, V, F : Float, const N : usize> Differentiable<Loc<F, N>> for Shift<T,F,N> |
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158 | where T : Differentiable<Loc<F, N>, Output=V> { |
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159 | type Output = V; |
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160 | #[inline] |
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161 | fn differential(&self, x : Loc<F, N>) -> Self::Output { |
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162 | self.base_fn.differential(x - &self.shift) |
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163 | } |
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164 | } |
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165 | |
0 | 166 | impl<'a, T, F : Float, const N : usize> Support<F,N> for Shift<T,F,N> |
167 | where T : Support<F, N> { | |
168 | #[inline] | |
169 | fn support_hint(&self) -> Cube<F,N> { | |
170 | self.base_fn.support_hint().shift(&self.shift) | |
171 | } | |
172 | ||
173 | #[inline] | |
174 | fn in_support(&self, x : &Loc<F,N>) -> bool { | |
175 | self.base_fn.in_support(&(x - &self.shift)) | |
176 | } | |
177 | ||
178 | // fn fully_in_support(&self, _cube : &Cube<F,N>) -> bool { | |
179 | // //self.base_fn.fully_in_support(cube.shift(&vectorneg(self.shift))) | |
180 | // todo!("Not implemented, but not used at the moment") | |
181 | // } | |
182 | ||
183 | #[inline] | |
184 | fn bisection_hint(&self, cube : &Cube<F,N>) -> [Option<F>; N] { | |
185 | let base_hint = self.base_fn.bisection_hint(cube); | |
186 | map2(base_hint, &self.shift, |h, s| h.map(|z| z + *s)) | |
187 | } | |
188 | ||
189 | } | |
190 | ||
191 | impl<'a, T, F : Float, const N : usize> GlobalAnalysis<F, Bounds<F>> for Shift<T,F,N> | |
192 | where T : LocalAnalysis<F, Bounds<F>, N> { | |
193 | #[inline] | |
194 | fn global_analysis(&self) -> Bounds<F> { | |
195 | self.base_fn.global_analysis() | |
196 | } | |
197 | } | |
198 | ||
199 | impl<'a, T, F : Float, const N : usize> LocalAnalysis<F, Bounds<F>, N> for Shift<T,F,N> | |
200 | where T : LocalAnalysis<F, Bounds<F>, N> { | |
201 | #[inline] | |
202 | fn local_analysis(&self, cube : &Cube<F, N>) -> Bounds<F> { | |
203 | self.base_fn.local_analysis(&cube.shift(&(-self.shift))) | |
204 | } | |
205 | } | |
206 | ||
207 | macro_rules! impl_shift_norm { | |
208 | ($($norm:ident)*) => { $( | |
209 | impl<'a, T, F : Float, const N : usize> Norm<F, $norm> for Shift<T,F,N> | |
210 | where T : Norm<F, $norm> { | |
211 | #[inline] | |
212 | fn norm(&self, n : $norm) -> F { | |
213 | self.base_fn.norm(n) | |
214 | } | |
215 | } | |
216 | )* } | |
217 | } | |
218 | ||
219 | impl_shift_norm!(L1 L2 Linfinity); | |
220 | ||
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221 | /// Weighting of a [`Support`] and [`Apply`] by scalar multiplication; |
5 | 222 | /// output of [`Support::weigh`]. |
0 | 223 | #[derive(Copy,Clone,Debug,Serialize)] |
224 | pub struct Weighted<T, C : Constant> { | |
5 | 225 | /// The weight |
0 | 226 | pub weight : C, |
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227 | /// The base [`Support`] or [`Apply`] being weighted. |
0 | 228 | pub base_fn : T, |
229 | } | |
230 | ||
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231 | impl<'a, T, V, F : Float, C, const N : usize> Apply<&'a Loc<F, N>> for Weighted<T, C> |
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232 | where T : for<'b> Apply<&'b Loc<F, N>, Output=V>, |
0 | 233 | V : std::ops::Mul<F,Output=V>, |
234 | C : Constant<Type=F> { | |
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235 | type Output = V; |
0 | 236 | #[inline] |
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237 | fn apply(&self, x : &'a Loc<F, N>) -> Self::Output { |
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238 | self.base_fn.apply(x) * self.weight.value() |
0 | 239 | } |
240 | } | |
241 | ||
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242 | impl<'a, T, V, F : Float, C, const N : usize> Apply<Loc<F, N>> for Weighted<T, C> |
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243 | where T : Apply<Loc<F, N>, Output=V>, |
0 | 244 | V : std::ops::Mul<F,Output=V>, |
245 | C : Constant<Type=F> { | |
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246 | type Output = V; |
0 | 247 | #[inline] |
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248 | fn apply(&self, x : Loc<F, N>) -> Self::Output { |
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249 | self.base_fn.apply(x) * self.weight.value() |
0 | 250 | } |
251 | } | |
252 | ||
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253 | impl<'a, T, V, F : Float, C, const N : usize> Differentiable<&'a Loc<F, N>> for Weighted<T, C> |
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254 | where T : for<'b> Differentiable<&'b Loc<F, N>, Output=V>, |
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255 | V : std::ops::Mul<F, Output=V>, |
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256 | C : Constant<Type=F> { |
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257 | type Output = V; |
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258 | #[inline] |
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259 | fn differential(&self, x : &'a Loc<F, N>) -> Self::Output { |
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260 | self.base_fn.differential(x) * self.weight.value() |
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261 | } |
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262 | } |
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263 | |
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264 | impl<'a, T, V, F : Float, C, const N : usize> Differentiable<Loc<F, N>> for Weighted<T, C> |
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265 | where T : Differentiable<Loc<F, N>, Output=V>, |
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266 | V : std::ops::Mul<F, Output=V>, |
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267 | C : Constant<Type=F> { |
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268 | type Output = V; |
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269 | #[inline] |
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270 | fn differential(&self, x : Loc<F, N>) -> Self::Output { |
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271 | self.base_fn.differential(x) * self.weight.value() |
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272 | } |
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273 | } |
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274 | |
0 | 275 | impl<'a, T, F : Float, C, const N : usize> Support<F,N> for Weighted<T, C> |
276 | where T : Support<F, N>, | |
277 | C : Constant<Type=F> { | |
278 | ||
279 | #[inline] | |
280 | fn support_hint(&self) -> Cube<F,N> { | |
281 | self.base_fn.support_hint() | |
282 | } | |
283 | ||
284 | #[inline] | |
285 | fn in_support(&self, x : &Loc<F,N>) -> bool { | |
286 | self.base_fn.in_support(x) | |
287 | } | |
288 | ||
289 | // fn fully_in_support(&self, cube : &Cube<F,N>) -> bool { | |
290 | // self.base_fn.fully_in_support(cube) | |
291 | // } | |
292 | ||
293 | #[inline] | |
294 | fn bisection_hint(&self, cube : &Cube<F,N>) -> [Option<F>; N] { | |
295 | self.base_fn.bisection_hint(cube) | |
296 | } | |
297 | } | |
298 | ||
299 | impl<'a, T, F : Float, C> GlobalAnalysis<F, Bounds<F>> for Weighted<T, C> | |
300 | where T : GlobalAnalysis<F, Bounds<F>>, | |
301 | C : Constant<Type=F> { | |
302 | #[inline] | |
303 | fn global_analysis(&self) -> Bounds<F> { | |
304 | let Bounds(lower, upper) = self.base_fn.global_analysis(); | |
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305 | debug_assert!(lower <= upper); |
0 | 306 | match self.weight.value() { |
307 | w if w < F::ZERO => Bounds(w * upper, w * lower), | |
308 | w => Bounds(w * lower, w * upper), | |
309 | } | |
310 | } | |
311 | } | |
312 | ||
313 | impl<'a, T, F : Float, C, const N : usize> LocalAnalysis<F, Bounds<F>, N> for Weighted<T, C> | |
314 | where T : LocalAnalysis<F, Bounds<F>, N>, | |
315 | C : Constant<Type=F> { | |
316 | #[inline] | |
317 | fn local_analysis(&self, cube : &Cube<F, N>) -> Bounds<F> { | |
318 | let Bounds(lower, upper) = self.base_fn.local_analysis(cube); | |
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319 | debug_assert!(lower <= upper); |
0 | 320 | match self.weight.value() { |
321 | w if w < F::ZERO => Bounds(w * upper, w * lower), | |
322 | w => Bounds(w * lower, w * upper), | |
323 | } | |
324 | } | |
325 | } | |
326 | ||
327 | macro_rules! make_weighted_scalarop_rhs { | |
328 | ($trait:ident, $fn:ident, $trait_assign:ident, $fn_assign:ident) => { | |
329 | impl<F : Float, T> std::ops::$trait_assign<F> for Weighted<T, F> { | |
330 | #[inline] | |
331 | fn $fn_assign(&mut self, t : F) { | |
332 | self.weight.$fn_assign(t); | |
333 | } | |
334 | } | |
335 | ||
336 | impl<'a, F : Float, T> std::ops::$trait<F> for Weighted<T, F> { | |
337 | type Output = Self; | |
338 | #[inline] | |
339 | fn $fn(mut self, t : F) -> Self { | |
340 | self.weight.$fn_assign(t); | |
341 | self | |
342 | } | |
343 | } | |
344 | ||
345 | impl<'a, F : Float, T> std::ops::$trait<F> for &'a Weighted<T, F> | |
346 | where T : Clone { | |
347 | type Output = Weighted<T, F>; | |
348 | #[inline] | |
349 | fn $fn(self, t : F) -> Self::Output { | |
350 | Weighted { weight : self.weight.$fn(t), base_fn : self.base_fn.clone() } | |
351 | } | |
352 | } | |
353 | } | |
354 | } | |
355 | ||
356 | make_weighted_scalarop_rhs!(Mul, mul, MulAssign, mul_assign); | |
357 | make_weighted_scalarop_rhs!(Div, div, DivAssign, div_assign); | |
358 | ||
359 | macro_rules! impl_weighted_norm { | |
360 | ($($norm:ident)*) => { $( | |
361 | impl<'a, T, F : Float> Norm<F, $norm> for Weighted<T,F> | |
362 | where T : Norm<F, $norm> { | |
363 | #[inline] | |
364 | fn norm(&self, n : $norm) -> F { | |
365 | self.base_fn.norm(n) * self.weight.abs() | |
366 | } | |
367 | } | |
368 | )* } | |
369 | } | |
370 | ||
371 | impl_weighted_norm!(L1 L2 Linfinity); | |
372 | ||
373 | ||
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374 | /// Normalisation of [`Support`] and [`Apply`] to L¹ norm 1. |
5 | 375 | /// |
0 | 376 | /// Currently only scalar-valued functions are supported. |
377 | #[derive(Copy, Clone, Debug, Serialize, PartialEq)] | |
5 | 378 | pub struct Normalised<T>( |
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379 | /// The base [`Support`] or [`Apply`]. |
5 | 380 | pub T |
381 | ); | |
0 | 382 | |
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383 | impl<'a, T, F : Float, const N : usize> Apply<&'a Loc<F, N>> for Normalised<T> |
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384 | where T : Norm<F, L1> + for<'b> Apply<&'b Loc<F, N>, Output=F> { |
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385 | type Output = F; |
0 | 386 | #[inline] |
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387 | fn apply(&self, x : &'a Loc<F, N>) -> Self::Output { |
0 | 388 | let w = self.0.norm(L1); |
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389 | if w == F::ZERO { F::ZERO } else { self.0.apply(x) / w } |
0 | 390 | } |
391 | } | |
392 | ||
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393 | impl<'a, T, F : Float, const N : usize> Apply<Loc<F, N>> for Normalised<T> |
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394 | where T : Norm<F, L1> + Apply<Loc<F,N>, Output=F> { |
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395 | type Output = F; |
0 | 396 | #[inline] |
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397 | fn apply(&self, x : Loc<F, N>) -> Self::Output { |
0 | 398 | let w = self.0.norm(L1); |
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399 | if w == F::ZERO { F::ZERO } else { self.0.apply(x) / w } |
0 | 400 | } |
401 | } | |
402 | ||
403 | impl<'a, T, F : Float, const N : usize> Support<F,N> for Normalised<T> | |
404 | where T : Norm<F, L1> + Support<F, N> { | |
405 | ||
406 | #[inline] | |
407 | fn support_hint(&self) -> Cube<F,N> { | |
408 | self.0.support_hint() | |
409 | } | |
410 | ||
411 | #[inline] | |
412 | fn in_support(&self, x : &Loc<F,N>) -> bool { | |
413 | self.0.in_support(x) | |
414 | } | |
415 | ||
416 | // fn fully_in_support(&self, cube : &Cube<F,N>) -> bool { | |
417 | // self.0.fully_in_support(cube) | |
418 | // } | |
419 | ||
420 | #[inline] | |
421 | fn bisection_hint(&self, cube : &Cube<F,N>) -> [Option<F>; N] { | |
422 | self.0.bisection_hint(cube) | |
423 | } | |
424 | } | |
425 | ||
426 | impl<'a, T, F : Float> GlobalAnalysis<F, Bounds<F>> for Normalised<T> | |
427 | where T : Norm<F, L1> + GlobalAnalysis<F, Bounds<F>> { | |
428 | #[inline] | |
429 | fn global_analysis(&self) -> Bounds<F> { | |
430 | let Bounds(lower, upper) = self.0.global_analysis(); | |
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431 | debug_assert!(lower <= upper); |
0 | 432 | let w = self.0.norm(L1); |
433 | debug_assert!(w >= F::ZERO); | |
434 | Bounds(w * lower, w * upper) | |
435 | } | |
436 | } | |
437 | ||
438 | impl<'a, T, F : Float, const N : usize> LocalAnalysis<F, Bounds<F>, N> for Normalised<T> | |
439 | where T : Norm<F, L1> + LocalAnalysis<F, Bounds<F>, N> { | |
440 | #[inline] | |
441 | fn local_analysis(&self, cube : &Cube<F, N>) -> Bounds<F> { | |
442 | let Bounds(lower, upper) = self.0.local_analysis(cube); | |
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443 | debug_assert!(lower <= upper); |
0 | 444 | let w = self.0.norm(L1); |
445 | debug_assert!(w >= F::ZERO); | |
446 | Bounds(w * lower, w * upper) | |
447 | } | |
448 | } | |
449 | ||
450 | impl<'a, T, F : Float> Norm<F, L1> for Normalised<T> | |
451 | where T : Norm<F, L1> { | |
452 | #[inline] | |
453 | fn norm(&self, _ : L1) -> F { | |
454 | let w = self.0.norm(L1); | |
455 | if w == F::ZERO { F::ZERO } else { F::ONE } | |
456 | } | |
457 | } | |
458 | ||
459 | macro_rules! impl_normalised_norm { | |
460 | ($($norm:ident)*) => { $( | |
461 | impl<'a, T, F : Float> Norm<F, $norm> for Normalised<T> | |
462 | where T : Norm<F, $norm> + Norm<F, L1> { | |
463 | #[inline] | |
464 | fn norm(&self, n : $norm) -> F { | |
465 | let w = self.0.norm(L1); | |
466 | if w == F::ZERO { F::ZERO } else { self.0.norm(n) / w } | |
467 | } | |
468 | } | |
469 | )* } | |
470 | } | |
471 | ||
472 | impl_normalised_norm!(L2 Linfinity); | |
473 | ||
474 | /* | |
475 | impl<F : Num, S : Support<F, N>, const N : usize> LocalAnalysis<F, NullAggregator, N> for S { | |
476 | fn local_analysis(&self, _cube : &Cube<F, N>) -> NullAggregator { NullAggregator } | |
477 | } | |
478 | ||
479 | impl<F : Float, S : Bounded<F>, const N : usize> LocalAnalysis<F, Bounds<F>, N> for S { | |
480 | #[inline] | |
481 | fn local_analysis(&self, cube : &Cube<F, N>) -> Bounds<F> { | |
482 | self.bounds(cube) | |
483 | } | |
484 | }*/ | |
485 | ||
5 | 486 | /// Generator of [`Support`]-implementing component functions based on low storage requirement |
487 | /// [ids][`Self::Id`]. | |
0 | 488 | pub trait SupportGenerator<F : Float, const N : usize> |
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489 | : MulAssign<F> + DivAssign<F> + Neg<Output=Self> + Clone + Sync + Send + 'static { |
5 | 490 | /// The identification type |
0 | 491 | type Id : 'static + Copy; |
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492 | /// The type of the [`Support`] (often also a [`Apply`]). |
0 | 493 | type SupportType : 'static + Support<F, N>; |
5 | 494 | /// An iterator over all the [`Support`]s of the generator. |
0 | 495 | type AllDataIter<'a> : Iterator<Item=(Self::Id, Self::SupportType)> where Self : 'a; |
496 | ||
5 | 497 | /// Returns the component identified by `id`. |
498 | /// | |
499 | /// Panics if `id` is an invalid identifier. | |
500 | fn support_for(&self, id : Self::Id) -> Self::SupportType; | |
0 | 501 | |
5 | 502 | /// Returns the number of different components in this generator. |
0 | 503 | fn support_count(&self) -> usize; |
504 | ||
5 | 505 | /// Returns an iterator over all pairs of `(id, support)`. |
0 | 506 | fn all_data(&self) -> Self::AllDataIter<'_>; |
507 | } | |
508 |