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| 0 | 1 | |
| 2 | use numeric_literals::replace_float_literals; | |
| 3 | use std::iter::Sum; | |
| 4 | use std::marker::PhantomData; | |
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5 | use std::sync::Arc; |
| 0 | 6 | use crate::types::Float; |
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7 | use crate::mapping::{ |
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8 | Instance, Mapping, DifferentiableImpl, DifferentiableMapping, Space, |
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9 | BasicDecomposition, |
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10 | }; |
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11 | //use crate::linops::{Apply, Linear}; |
| 0 | 12 | use crate::sets::Set; |
| 5 | 13 | use crate::sets::Cube; |
| 14 | use crate::loc::Loc; | |
| 0 | 15 | use super::support::*; |
| 16 | use super::bt::*; | |
| 17 | use super::refine::*; | |
| 18 | use super::aggregator::*; | |
| 19 | use super::either::*; | |
| 20 | use crate::fe_model::base::RealLocalModel; | |
| 21 | use crate::fe_model::p2_local_model::*; | |
| 22 | ||
| 5 | 23 | /// Presentation for (mathematical) functions constructed as a sum of components functions with |
| 24 | /// typically small support. | |
| 25 | /// | |
| 26 | /// The domain of the function is [`Loc`]`<F, N>`, where `F` is the type of floating point numbers, | |
| 27 | /// and `N` the dimension. | |
| 28 | /// | |
| 29 | /// The `generator` lists the component functions that have to implement [`Support`]. | |
| 30 | /// Identifiers of the components ([`SupportGenerator::Id`], usually `usize`) are stored stored | |
| 31 | /// in a [bisection tree][BTImpl], when one is provided as `bt`. However `bt` may also be `()` | |
| 32 | /// for a [`PreBTFN`] that is only useful for vector space operations with a full [`BTFN`]. | |
| 0 | 33 | #[derive(Clone,Debug)] |
| 34 | pub struct BTFN< | |
| 35 | F : Float, | |
| 36 | G : SupportGenerator<F, N>, | |
| 37 | BT /*: BTImpl<F, N>*/, | |
| 38 | const N : usize | |
| 39 | > /*where G::SupportType : LocalAnalysis<F, A, N>*/ { | |
| 40 | bt : BT, | |
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41 | generator : Arc<G>, |
| 0 | 42 | _phantoms : PhantomData<F>, |
| 43 | } | |
| 44 | ||
| 45 | impl<F : Float, G, BT, const N : usize> | |
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46 | Space for BTFN<F, G, BT, N> |
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47 | where |
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48 | G : SupportGenerator<F, N, Id=BT::Data>, |
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49 | G::SupportType : LocalAnalysis<F, BT::Agg, N>, |
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50 | BT : BTImpl<F, N> |
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51 | { |
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52 | type Decomp = BasicDecomposition; |
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53 | } |
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54 | |
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55 | impl<F : Float, G, BT, const N : usize> |
| 0 | 56 | BTFN<F, G, BT, N> |
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57 | where |
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58 | G : SupportGenerator<F, N, Id=BT::Data>, |
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59 | G::SupportType : LocalAnalysis<F, BT::Agg, N>, |
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60 | BT : BTImpl<F, N> |
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61 | { |
| 0 | 62 | |
| 5 | 63 | /// Create a new BTFN from a support generator and a pre-initialised bisection tree. |
| 64 | /// | |
| 65 | /// The bisection tree `bt` should be pre-initialised to correspond to the `generator`. | |
| 66 | /// Use [`Self::construct`] if no preinitialised tree is available. Use [`Self::new_refresh`] | |
| 67 | /// when the aggregators of the tree may need updates. | |
| 68 | /// | |
| 69 | /// See the documentation for [`BTFN`] on the role of the `generator`. | |
| 0 | 70 | pub fn new(bt : BT, generator : G) -> Self { |
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71 | Self::new_arc(bt, Arc::new(generator)) |
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72 | } |
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73 | |
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74 | fn new_arc(bt : BT, generator : Arc<G>) -> Self { |
| 0 | 75 | BTFN { |
| 76 | bt : bt, | |
| 77 | generator : generator, | |
| 78 | _phantoms : std::marker::PhantomData, | |
| 79 | } | |
| 80 | } | |
| 81 | ||
| 5 | 82 | /// Create a new BTFN support generator and a pre-initialised bisection tree, |
| 83 | /// cloning the tree and refreshing aggregators. | |
| 84 | /// | |
| 85 | /// The bisection tree `bt` should be pre-initialised to correspond to the `generator`, but | |
| 86 | /// the aggregator may be out of date. | |
| 87 | /// | |
| 88 | /// See the documentation for [`BTFN`] on the role of the `generator`. | |
| 0 | 89 | pub fn new_refresh(bt : &BT, generator : G) -> Self { |
| 90 | // clone().refresh_aggregator(…) as opposed to convert_aggregator | |
| 91 | // ensures that type is maintained. Due to Rc-pointer copy-on-write, | |
| 92 | // the effort is not significantly different. | |
| 93 | let mut btnew = bt.clone(); | |
| 94 | btnew.refresh_aggregator(&generator); | |
| 95 | BTFN::new(btnew, generator) | |
| 96 | } | |
| 97 | ||
| 5 | 98 | /// Create a new BTFN from a support generator, domain, and depth for a new [`BT`]. |
| 99 | /// | |
| 100 | /// The top node of the created [`BT`] will have the given `domain`. | |
| 101 | /// | |
| 102 | /// See the documentation for [`BTFN`] on the role of the `generator`. | |
| 0 | 103 | pub fn construct(domain : Cube<F, N>, depth : BT::Depth, generator : G) -> Self { |
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104 | Self::construct_arc(domain, depth, Arc::new(generator)) |
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105 | } |
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106 | |
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107 | fn construct_arc(domain : Cube<F, N>, depth : BT::Depth, generator : Arc<G>) -> Self { |
| 0 | 108 | let mut bt = BT::new(domain, depth); |
| 109 | for (d, support) in generator.all_data() { | |
| 110 | bt.insert(d, &support); | |
| 111 | } | |
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112 | Self::new_arc(bt, generator) |
| 0 | 113 | } |
| 114 | ||
| 5 | 115 | /// Convert the aggregator of the [`BTFN`] to a different one. |
| 116 | /// | |
| 117 | /// This will construct a [`BTFN`] with the same components and generator as the (consumed) | |
| 118 | /// `self`, but a new `BT` with [`Aggregator`]s of type `ANew`. | |
| 0 | 119 | pub fn convert_aggregator<ANew>(self) -> BTFN<F, G, BT::Converted<ANew>, N> |
| 120 | where ANew : Aggregator, | |
| 121 | G : SupportGenerator<F, N, Id=BT::Data>, | |
| 122 | G::SupportType : LocalAnalysis<F, ANew, N> { | |
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123 | BTFN::new_arc(self.bt.convert_aggregator(&*self.generator), self.generator) |
| 0 | 124 | } |
| 125 | ||
| 126 | /// Change the generator (after, e.g., a scaling of the latter). | |
| 5 | 127 | fn new_generator(&self, generator : G) -> Self { |
| 0 | 128 | BTFN::new_refresh(&self.bt, generator) |
| 129 | } | |
| 130 | ||
| 131 | /// Refresh aggregator after updates to generator | |
| 132 | fn refresh_aggregator(&mut self) { | |
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133 | self.bt.refresh_aggregator(&*self.generator); |
| 0 | 134 | } |
| 135 | ||
| 136 | } | |
| 137 | ||
| 5 | 138 | impl<F : Float, G, BT, const N : usize> |
| 139 | BTFN<F, G, BT, N> | |
| 140 | where G : SupportGenerator<F, N> { | |
| 141 | /// Change the [bisection tree][BTImpl] of the [`BTFN`] to a different one. | |
| 142 | /// | |
| 143 | /// This can be used to convert a [`PreBTFN`] to a full [`BTFN`], or the change | |
| 144 | /// the aggreagator; see also [`self.convert_aggregator`]. | |
| 145 | pub fn instantiate< | |
| 146 | BTNew : BTImpl<F, N, Data=G::Id>, | |
| 147 | > (self, domain : Cube<F, N>, depth : BTNew::Depth) -> BTFN<F, G, BTNew, N> | |
| 148 | where G::SupportType : LocalAnalysis<F, BTNew::Agg, N> { | |
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149 | BTFN::construct_arc(domain, depth, self.generator) |
| 5 | 150 | } |
| 151 | } | |
| 152 | ||
| 153 | /// A BTFN with no bisection tree. | |
| 154 | /// | |
| 155 | /// Most BTFN methods are not available, but if a BTFN is going to be summed with another | |
| 156 | /// before other use, it will be more efficient to not construct an unnecessary bisection tree | |
| 157 | /// that would be shortly dropped. | |
| 0 | 158 | pub type PreBTFN<F, G, const N : usize> = BTFN<F, G, (), N>; |
| 159 | ||
| 160 | impl<F : Float, G, const N : usize> PreBTFN<F, G, N> where G : SupportGenerator<F, N> { | |
| 161 | ||
| 5 | 162 | /// Create a new [`PreBTFN`] with no bisection tree. |
| 0 | 163 | pub fn new_pre(generator : G) -> Self { |
| 164 | BTFN { | |
| 165 | bt : (), | |
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166 | generator : Arc::new(generator), |
| 0 | 167 | _phantoms : std::marker::PhantomData, |
| 168 | } | |
| 169 | } | |
| 170 | } | |
| 171 | ||
| 172 | impl<F : Float, G, BT, const N : usize> | |
| 173 | BTFN<F, G, BT, N> | |
| 174 | where G : SupportGenerator<F, N, Id=usize>, | |
| 175 | G::SupportType : LocalAnalysis<F, BT::Agg, N>, | |
| 176 | BT : BTImpl<F, N, Data=usize> { | |
| 177 | ||
| 178 | /// Helper function for implementing [`std::ops::Add`]. | |
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179 | fn add_another<G2>(&self, g2 : Arc<G2>) -> BTFN<F, BothGenerators<G, G2>, BT, N> |
| 0 | 180 | where G2 : SupportGenerator<F, N, Id=usize>, |
| 181 | G2::SupportType : LocalAnalysis<F, BT::Agg, N> { | |
| 182 | ||
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183 | let mut bt = self.bt.clone(); |
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184 | let both = BothGenerators(Arc::clone(&self.generator), g2); |
| 0 | 185 | |
| 186 | for (d, support) in both.all_right_data() { | |
| 187 | bt.insert(d, &support); | |
| 188 | } | |
| 189 | ||
| 190 | BTFN { | |
| 191 | bt : bt, | |
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192 | generator : Arc::new(both), |
| 0 | 193 | _phantoms : std::marker::PhantomData, |
| 194 | } | |
| 195 | } | |
| 196 | } | |
| 197 | ||
| 198 | macro_rules! make_btfn_add { | |
| 199 | ($lhs:ty, $preprocess:path, $($extra_trait:ident)?) => { | |
| 200 | impl<'a, F : Float, G1, G2, BT1, BT2, const N : usize> | |
| 201 | std::ops::Add<BTFN<F, G2, BT2, N>> for | |
| 202 | $lhs | |
| 203 | where BT1 : BTImpl<F, N, Data=usize>, | |
| 204 | G1 : SupportGenerator<F, N, Id=usize> + $($extra_trait)?, | |
| 205 | G2 : SupportGenerator<F, N, Id=usize>, | |
| 206 | G1::SupportType : LocalAnalysis<F, BT1::Agg, N>, | |
| 207 | G2::SupportType : LocalAnalysis<F, BT1::Agg, N> { | |
| 208 | type Output = BTFN<F, BothGenerators<G1, G2>, BT1, N>; | |
| 209 | #[inline] | |
| 210 | fn add(self, other : BTFN<F, G2, BT2, N>) -> Self::Output { | |
| 211 | $preprocess(self).add_another(other.generator) | |
| 212 | } | |
| 213 | } | |
| 214 | ||
| 215 | impl<'a, 'b, F : Float, G1, G2, BT1, BT2, const N : usize> | |
| 216 | std::ops::Add<&'b BTFN<F, G2, BT2, N>> for | |
| 217 | $lhs | |
| 218 | where BT1 : BTImpl<F, N, Data=usize>, | |
| 219 | G1 : SupportGenerator<F, N, Id=usize> + $($extra_trait)?, | |
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220 | G2 : SupportGenerator<F, N, Id=usize>, |
| 0 | 221 | G1::SupportType : LocalAnalysis<F, BT1::Agg, N>, |
| 222 | G2::SupportType : LocalAnalysis<F, BT1::Agg, N> { | |
| 223 | ||
| 224 | type Output = BTFN<F, BothGenerators<G1, G2>, BT1, N>; | |
| 225 | #[inline] | |
| 226 | fn add(self, other : &'b BTFN<F, G2, BT2, N>) -> Self::Output { | |
| 227 | $preprocess(self).add_another(other.generator.clone()) | |
| 228 | } | |
| 229 | } | |
| 230 | } | |
| 231 | } | |
| 232 | ||
| 233 | make_btfn_add!(BTFN<F, G1, BT1, N>, std::convert::identity, ); | |
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234 | make_btfn_add!(&'a BTFN<F, G1, BT1, N>, Clone::clone, ); |
| 0 | 235 | |
| 236 | macro_rules! make_btfn_sub { | |
| 237 | ($lhs:ty, $preprocess:path, $($extra_trait:ident)?) => { | |
| 238 | impl<'a, F : Float, G1, G2, BT1, BT2, const N : usize> | |
| 239 | std::ops::Sub<BTFN<F, G2, BT2, N>> for | |
| 240 | $lhs | |
| 241 | where BT1 : BTImpl<F, N, Data=usize>, | |
| 242 | G1 : SupportGenerator<F, N, Id=usize> + $($extra_trait)?, | |
| 243 | G2 : SupportGenerator<F, N, Id=usize>, | |
| 244 | G1::SupportType : LocalAnalysis<F, BT1::Agg, N>, | |
| 245 | G2::SupportType : LocalAnalysis<F, BT1::Agg, N> { | |
| 246 | type Output = BTFN<F, BothGenerators<G1, G2>, BT1, N>; | |
| 247 | #[inline] | |
| 248 | fn sub(self, other : BTFN<F, G2, BT2, N>) -> Self::Output { | |
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249 | $preprocess(self).add_another(Arc::new( |
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250 | Arc::try_unwrap(other.generator) |
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251 | .unwrap_or_else(|arc| (*arc).clone()) |
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252 | .neg() |
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253 | )) |
| 0 | 254 | } |
| 255 | } | |
| 256 | ||
| 257 | impl<'a, 'b, F : Float, G1, G2, BT1, BT2, const N : usize> | |
| 258 | std::ops::Sub<&'b BTFN<F, G2, BT2, N>> for | |
| 259 | $lhs | |
| 260 | where BT1 : BTImpl<F, N, Data=usize>, | |
| 261 | G1 : SupportGenerator<F, N, Id=usize> + $($extra_trait)?, | |
| 262 | G2 : SupportGenerator<F, N, Id=usize> + Clone, | |
| 263 | G1::SupportType : LocalAnalysis<F, BT1::Agg, N>, | |
| 264 | G2::SupportType : LocalAnalysis<F, BT1::Agg, N>, | |
| 5 | 265 | &'b G2 : std::ops::Neg<Output=G2> { |
| 0 | 266 | |
| 267 | type Output = BTFN<F, BothGenerators<G1, G2>, BT1, N>; | |
| 268 | #[inline] | |
| 269 | fn sub(self, other : &'b BTFN<F, G2, BT2, N>) -> Self::Output { | |
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270 | $preprocess(self).add_another(Arc::new((*other.generator).clone().neg())) |
| 0 | 271 | } |
| 272 | } | |
| 273 | } | |
| 274 | } | |
| 275 | ||
| 276 | make_btfn_sub!(BTFN<F, G1, BT1, N>, std::convert::identity, ); | |
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277 | make_btfn_sub!(&'a BTFN<F, G1, BT1, N>, std::convert::identity, ); |
| 0 | 278 | |
| 279 | macro_rules! make_btfn_scalarop_rhs { | |
| 280 | ($trait:ident, $fn:ident, $trait_assign:ident, $fn_assign:ident) => { | |
| 281 | impl<F : Float, G, BT, const N : usize> | |
| 282 | std::ops::$trait_assign<F> | |
| 283 | for BTFN<F, G, BT, N> | |
| 284 | where BT : BTImpl<F, N>, | |
| 285 | G : SupportGenerator<F, N, Id=BT::Data>, | |
| 286 | G::SupportType : LocalAnalysis<F, BT::Agg, N> { | |
| 287 | #[inline] | |
| 288 | fn $fn_assign(&mut self, t : F) { | |
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289 | Arc::make_mut(&mut self.generator).$fn_assign(t); |
| 0 | 290 | self.refresh_aggregator(); |
| 291 | } | |
| 292 | } | |
| 293 | ||
| 294 | impl<F : Float, G, BT, const N : usize> | |
| 295 | std::ops::$trait<F> | |
| 296 | for BTFN<F, G, BT, N> | |
| 297 | where BT : BTImpl<F, N>, | |
| 298 | G : SupportGenerator<F, N, Id=BT::Data>, | |
| 299 | G::SupportType : LocalAnalysis<F, BT::Agg, N> { | |
| 300 | type Output = Self; | |
| 301 | #[inline] | |
| 302 | fn $fn(mut self, t : F) -> Self::Output { | |
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303 | Arc::make_mut(&mut self.generator).$fn_assign(t); |
| 0 | 304 | self.refresh_aggregator(); |
| 305 | self | |
| 306 | } | |
| 307 | } | |
| 308 | ||
| 309 | impl<'a, F : Float, G, BT, const N : usize> | |
| 310 | std::ops::$trait<F> | |
| 311 | for &'a BTFN<F, G, BT, N> | |
| 312 | where BT : BTImpl<F, N>, | |
| 313 | G : SupportGenerator<F, N, Id=BT::Data>, | |
| 314 | G::SupportType : LocalAnalysis<F, BT::Agg, N>, | |
| 315 | &'a G : std::ops::$trait<F,Output=G> { | |
| 316 | type Output = BTFN<F, G, BT, N>; | |
| 317 | #[inline] | |
| 318 | fn $fn(self, t : F) -> Self::Output { | |
| 319 | self.new_generator(self.generator.$fn(t)) | |
| 320 | } | |
| 321 | } | |
| 322 | } | |
| 323 | } | |
| 324 | ||
| 325 | make_btfn_scalarop_rhs!(Mul, mul, MulAssign, mul_assign); | |
| 326 | make_btfn_scalarop_rhs!(Div, div, DivAssign, div_assign); | |
| 327 | ||
| 328 | macro_rules! make_btfn_scalarop_lhs { | |
| 329 | ($trait:ident, $fn:ident, $fn_assign:ident, $($f:ident)+) => { $( | |
| 330 | impl<G, BT, const N : usize> | |
| 331 | std::ops::$trait<BTFN<$f, G, BT, N>> | |
| 332 | for $f | |
| 333 | where BT : BTImpl<$f, N>, | |
| 334 | G : SupportGenerator<$f, N, Id=BT::Data>, | |
| 335 | G::SupportType : LocalAnalysis<$f, BT::Agg, N> { | |
| 336 | type Output = BTFN<$f, G, BT, N>; | |
| 337 | #[inline] | |
| 338 | fn $fn(self, mut a : BTFN<$f, G, BT, N>) -> Self::Output { | |
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339 | Arc::make_mut(&mut a.generator).$fn_assign(self); |
| 0 | 340 | a.refresh_aggregator(); |
| 341 | a | |
| 342 | } | |
| 343 | } | |
| 344 | ||
| 345 | impl<'a, G, BT, const N : usize> | |
| 346 | std::ops::$trait<&'a BTFN<$f, G, BT, N>> | |
| 347 | for $f | |
| 348 | where BT : BTImpl<$f, N>, | |
| 349 | G : SupportGenerator<$f, N, Id=BT::Data> + Clone, | |
| 350 | G::SupportType : LocalAnalysis<$f, BT::Agg, N>, | |
| 351 | // FIXME: This causes compiler overflow | |
| 352 | /*&'a G : std::ops::$trait<$f,Output=G>*/ { | |
| 353 | type Output = BTFN<$f, G, BT, N>; | |
| 354 | #[inline] | |
| 355 | fn $fn(self, a : &'a BTFN<$f, G, BT, N>) -> Self::Output { | |
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356 | let mut tmp = (*a.generator).clone(); |
| 0 | 357 | tmp.$fn_assign(self); |
| 358 | a.new_generator(tmp) | |
| 359 | // FIXME: Prevented by the compiler overflow above. | |
| 360 | //a.new_generator(a.generator.$fn(a)) | |
| 361 | } | |
| 362 | } | |
| 363 | )+ } | |
| 364 | } | |
| 365 | ||
| 366 | make_btfn_scalarop_lhs!(Mul, mul, mul_assign, f32 f64); | |
| 367 | make_btfn_scalarop_lhs!(Div, div, div_assign, f32 f64); | |
| 368 | ||
| 369 | macro_rules! make_btfn_unaryop { | |
| 370 | ($trait:ident, $fn:ident) => { | |
| 371 | impl<F : Float, G, BT, const N : usize> | |
| 372 | std::ops::$trait | |
| 373 | for BTFN<F, G, BT, N> | |
| 374 | where BT : BTImpl<F, N>, | |
| 375 | G : SupportGenerator<F, N, Id=BT::Data>, | |
| 376 | G::SupportType : LocalAnalysis<F, BT::Agg, N> { | |
| 377 | type Output = Self; | |
| 378 | #[inline] | |
| 379 | fn $fn(mut self) -> Self::Output { | |
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380 | self.generator = Arc::new(Arc::unwrap_or_clone(self.generator).$fn()); |
| 0 | 381 | self.refresh_aggregator(); |
| 382 | self | |
| 383 | } | |
| 384 | } | |
| 385 | ||
| 386 | /*impl<'a, F : Float, G, BT, const N : usize> | |
| 387 | std::ops::$trait | |
| 388 | for &'a BTFN<F, G, BT, N> | |
| 389 | where BT : BTImpl<F, N>, | |
| 390 | G : SupportGenerator<F, N, Id=BT::Data>, | |
| 391 | G::SupportType : LocalAnalysis<F, BT::Agg, N>, | |
| 392 | &'a G : std::ops::$trait<Output=G> { | |
| 393 | type Output = BTFN<F, G, BT, N>; | |
| 394 | #[inline] | |
| 395 | fn $fn(self) -> Self::Output { | |
| 396 | self.new_generator(std::ops::$trait::$fn(&self.generator)) | |
| 397 | } | |
| 398 | }*/ | |
| 399 | } | |
| 400 | } | |
| 401 | ||
| 402 | make_btfn_unaryop!(Neg, neg); | |
| 403 | ||
| 404 | // | |
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405 | // Apply, Mapping, Differentiate |
| 0 | 406 | // |
| 407 | ||
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408 | impl<F : Float, G, BT, V, const N : usize> Mapping<Loc<F, N>> |
| 0 | 409 | for BTFN<F, G, BT, N> |
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410 | where |
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411 | BT : BTImpl<F, N>, |
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412 | G : SupportGenerator<F, N, Id=BT::Data>, |
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413 | G::SupportType : LocalAnalysis<F, BT::Agg, N> + Mapping<Loc<F, N>, Codomain = V>, |
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414 | V : Sum + Space, |
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415 | { |
| 0 | 416 | |
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417 | type Codomain = V; |
| 0 | 418 | |
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419 | fn apply<I : Instance<Loc<F,N>>>(&self, x : I) -> Self::Codomain { |
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420 | let xc = x.cow(); |
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421 | self.bt.iter_at(&*xc) |
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422 | .map(|&d| self.generator.support_for(d).apply(&*xc)).sum() |
| 0 | 423 | } |
| 424 | } | |
| 425 | ||
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426 | impl<F : Float, G, BT, V, const N : usize> DifferentiableImpl<Loc<F, N>> |
| 0 | 427 | for BTFN<F, G, BT, N> |
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428 | where |
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429 | BT : BTImpl<F, N>, |
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430 | G : SupportGenerator<F, N, Id=BT::Data>, |
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431 | G::SupportType : LocalAnalysis<F, BT::Agg, N> |
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432 | + DifferentiableMapping<Loc<F, N>, DerivativeDomain = V>, |
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433 | V : Sum + Space, |
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434 | { |
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435 | |
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436 | type Derivative = V; |
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437 | |
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438 | fn differential_impl<I : Instance<Loc<F, N>>>(&self, x :I) -> Self::Derivative { |
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439 | let xc = x.cow(); |
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440 | self.bt.iter_at(&*xc) |
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441 | .map(|&d| self.generator.support_for(d).differential(&*xc)) |
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442 | .sum() |
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443 | } |
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444 | } |
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445 | |
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446 | // |
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447 | // GlobalAnalysis |
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448 | // |
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449 | |
| 0 | 450 | impl<F : Float, G, BT, const N : usize> GlobalAnalysis<F, BT::Agg> |
| 451 | for BTFN<F, G, BT, N> | |
| 452 | where BT : BTImpl<F, N>, | |
| 453 | G : SupportGenerator<F, N, Id=BT::Data>, | |
| 454 | G::SupportType : LocalAnalysis<F, BT::Agg, N> { | |
| 455 | ||
| 456 | #[inline] | |
| 457 | fn global_analysis(&self) -> BT::Agg { | |
| 458 | self.bt.global_analysis() | |
| 459 | } | |
| 460 | } | |
| 461 | ||
| 462 | // | |
| 463 | // Blanket implementation of BTFN as a linear functional over objects | |
| 464 | // that are linear functionals over BTFN. | |
| 465 | // | |
| 466 | ||
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467 | /* |
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468 | impl<'b, X, F : Float, G, BT, const N : usize> Apply<&'b X, F> |
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469 | for BTFN<F, G, BT, N> |
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470 | where BT : BTImpl<F, N>, |
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471 | G : SupportGenerator<F, N, Id=BT::Data>, |
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472 | G::SupportType : LocalAnalysis<F, BT::Agg, N>, |
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473 | X : for<'a> Apply<&'a BTFN<F, G, BT, N>, F> { |
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474 | |
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475 | #[inline] |
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476 | fn apply(&self, x : &'b X) -> F { |
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477 | x.apply(&self) |
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478 | } |
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479 | } |
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480 | |
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481 | impl<X, F : Float, G, BT, const N : usize> Apply<X, F> |
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482 | for BTFN<F, G, BT, N> |
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483 | where BT : BTImpl<F, N>, |
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484 | G : SupportGenerator<F, N, Id=BT::Data>, |
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485 | G::SupportType : LocalAnalysis<F, BT::Agg, N>, |
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486 | X : for<'a> Apply<&'a BTFN<F, G, BT, N>, F> { |
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487 | |
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488 | #[inline] |
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489 | fn apply(&self, x : X) -> F { |
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490 | x.apply(&self) |
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491 | } |
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492 | } |
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493 | |
| 0 | 494 | impl<X, F : Float, G, BT, const N : usize> Linear<X> |
| 495 | for BTFN<F, G, BT, N> | |
| 496 | where BT : BTImpl<F, N>, | |
| 497 | G : SupportGenerator<F, N, Id=BT::Data>, | |
| 498 | G::SupportType : LocalAnalysis<F, BT::Agg, N>, | |
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499 | X : for<'a> Apply<&'a BTFN<F, G, BT, N>, F> { |
| 0 | 500 | type Codomain = F; |
| 501 | } | |
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502 | */ |
| 0 | 503 | |
| 504 | /// Helper trait for performing approximate minimisation using P2 elements. | |
| 5 | 505 | /// |
| 506 | /// `U` is the domain, generally [`Loc`]`<F, N>`, and `F` the type of floating point numbers. | |
| 507 | /// `Self` is generally a set of `U`, for example, [`Cube`]`<F, N>`. | |
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508 | pub trait P2Minimise<U : Space, F : Float> : Set<U> { |
| 5 | 509 | /// Minimise `g` over the set presented by `Self`. |
| 510 | /// | |
| 511 | /// The function returns `(x, v)` where `x` is the minimiser `v` an approximation of `g(x)`. | |
| 0 | 512 | fn p2_minimise<G : Fn(&U) -> F>(&self, g : G) -> (U, F); |
| 513 | ||
| 514 | } | |
| 515 | ||
| 516 | impl<F : Float> P2Minimise<Loc<F, 1>, F> for Cube<F, 1> { | |
| 517 | fn p2_minimise<G : Fn(&Loc<F, 1>) -> F>(&self, g : G) -> (Loc<F, 1>, F) { | |
| 518 | let interval = Simplex(self.corners()); | |
| 519 | interval.p2_model(&g).minimise(&interval) | |
| 520 | } | |
| 521 | } | |
| 522 | ||
| 523 | #[replace_float_literals(F::cast_from(literal))] | |
| 524 | impl<F : Float> P2Minimise<Loc<F, 2>, F> for Cube<F, 2> { | |
| 525 | fn p2_minimise<G : Fn(&Loc<F, 2>) -> F>(&self, g : G) -> (Loc<F, 2>, F) { | |
| 526 | if false { | |
| 527 | // Split into two triangle (simplex) with separate P2 model in each. | |
| 528 | // The six nodes of each triangle are the corners and the edges. | |
| 529 | let [a, b, c, d] = self.corners(); | |
| 530 | let [va, vb, vc, vd] = [g(&a), g(&b), g(&c), g(&d)]; | |
| 531 | ||
| 532 | let ab = midpoint(&a, &b); | |
| 533 | let bc = midpoint(&b, &c); | |
| 534 | let ca = midpoint(&c, &a); | |
| 535 | let cd = midpoint(&c, &d); | |
| 536 | let da = midpoint(&d, &a); | |
| 537 | let [vab, vbc, vca, vcd, vda] = [g(&ab), g(&bc), g(&ca), g(&cd), g(&da)]; | |
| 538 | ||
| 539 | let s1 = Simplex([a, b, c]); | |
| 5 | 540 | let m1 = P2LocalModel::<F, 2, 3>::new( |
| 0 | 541 | &[a, b, c, ab, bc, ca], |
| 542 | &[va, vb, vc, vab, vbc, vca] | |
| 543 | ); | |
| 544 | ||
| 545 | let r1@(_, v1) = m1.minimise(&s1); | |
| 546 | ||
| 547 | let s2 = Simplex([c, d, a]); | |
| 5 | 548 | let m2 = P2LocalModel::<F, 2, 3>::new( |
| 0 | 549 | &[c, d, a, cd, da, ca], |
| 550 | &[vc, vd, va, vcd, vda, vca] | |
| 551 | ); | |
| 552 | ||
| 553 | let r2@(_, v2) = m2.minimise(&s2); | |
| 554 | ||
| 555 | if v1 < v2 { r1 } else { r2 } | |
| 556 | } else { | |
| 557 | // Single P2 model for the entire cube. | |
| 558 | let [a, b, c, d] = self.corners(); | |
| 559 | let [va, vb, vc, vd] = [g(&a), g(&b), g(&c), g(&d)]; | |
| 560 | let [e, f] = match 'r' { | |
| 561 | 'm' => [(&a + &b + &c) / 3.0, (&c + &d + &a) / 3.0], | |
| 562 | 'c' => [midpoint(&a, &b), midpoint(&a, &d)], | |
| 563 | 'w' => [(&a + &b * 2.0) / 3.0, (&a + &d * 2.0) / 3.0], | |
| 564 | 'r' => { | |
| 565 | // Pseudo-randomise edge midpoints | |
| 566 | let Loc([x, y]) = a; | |
| 567 | let tmp : f64 = (x+y).as_(); | |
| 568 | match tmp.to_bits() % 4 { | |
| 569 | 0 => [midpoint(&a, &b), midpoint(&a, &d)], | |
| 570 | 1 => [midpoint(&c, &d), midpoint(&a, &d)], | |
| 571 | 2 => [midpoint(&a, &b), midpoint(&b, &c)], | |
| 572 | _ => [midpoint(&c, &d), midpoint(&b, &c)], | |
| 573 | } | |
| 574 | }, | |
| 575 | _ => [self.center(), (&a + &b) / 2.0], | |
| 576 | }; | |
| 577 | let [ve, vf] = [g(&e), g(&f)]; | |
| 578 | ||
| 5 | 579 | let m1 = P2LocalModel::<F, 2, 3>::new( |
| 0 | 580 | &[a, b, c, d, e, f], |
| 581 | &[va, vb, vc, vd, ve, vf], | |
| 582 | ); | |
| 583 | ||
| 584 | m1.minimise(self) | |
| 585 | } | |
| 586 | } | |
| 587 | } | |
| 588 | ||
| 5 | 589 | /// Helper type to use [`P2Refiner`] for maximisation. |
| 0 | 590 | struct RefineMax; |
| 5 | 591 | |
| 592 | /// Helper type to use [`P2Refiner`] for minimisation. | |
| 0 | 593 | struct RefineMin; |
| 594 | ||
| 5 | 595 | /// A bisection tree [`Refiner`] for maximising or minimising a [`BTFN`]. |
| 596 | /// | |
| 0 | 597 | /// The type parameter `T` should be either [`RefineMax`] or [`RefineMin`]. |
| 598 | struct P2Refiner<F : Float, T> { | |
| 5 | 599 | /// The maximum / minimum should be above / below this threshold. |
| 600 | /// If the threshold cannot be satisfied, the refiner will return `None`. | |
| 0 | 601 | bound : Option<F>, |
| 5 | 602 | /// Tolerance for function value estimation. |
| 0 | 603 | tolerance : F, |
| 5 | 604 | /// Maximum number of steps to execute the refiner for |
| 0 | 605 | max_steps : usize, |
| 5 | 606 | /// Either [`RefineMax`] or [`RefineMin`]. Used only for type system purposes. |
| 0 | 607 | #[allow(dead_code)] // `how` is just for type system purposes. |
| 608 | how : T, | |
| 609 | } | |
| 610 | ||
| 611 | impl<F : Float, G, const N : usize> Refiner<F, Bounds<F>, G, N> | |
| 612 | for P2Refiner<F, RefineMax> | |
| 613 | where Cube<F, N> : P2Minimise<Loc<F, N>, F>, | |
| 614 | G : SupportGenerator<F, N>, | |
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615 | G::SupportType : Mapping<Loc<F, N>, Codomain=F> |
| 0 | 616 | + LocalAnalysis<F, Bounds<F>, N> { |
| 617 | type Result = Option<(Loc<F, N>, F)>; | |
| 618 | type Sorting = UpperBoundSorting<F>; | |
| 619 | ||
| 620 | fn refine( | |
| 621 | &self, | |
| 622 | aggregator : &Bounds<F>, | |
| 623 | cube : &Cube<F, N>, | |
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624 | data : &[G::Id], |
| 0 | 625 | generator : &G, |
| 626 | step : usize | |
| 627 | ) -> RefinerResult<Bounds<F>, Self::Result> { | |
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628 | |
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629 | if self.bound.map_or(false, |b| aggregator.upper() <= b + self.tolerance) { |
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630 | // The upper bound is below the maximisation threshold. Don't bother with this cube. |
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631 | return RefinerResult::Uncertain(*aggregator, None) |
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632 | } |
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633 | |
| 0 | 634 | // g gives the negative of the value of the function presented by `data` and `generator`. |
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635 | let g = move |x : &Loc<F, N>| { |
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636 | let f = move |&d| generator.support_for(d).apply(x); |
| 0 | 637 | -data.iter().map(f).sum::<F>() |
| 638 | }; | |
| 639 | // … so the negative of the minimum is the maximm we want. | |
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640 | let (x, _neg_v) = cube.p2_minimise(g); |
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641 | //let v = -neg_v; |
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642 | let v = -g(&x); |
| 0 | 643 | |
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644 | if step < self.max_steps && (aggregator.upper() > v + self.tolerance |
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645 | /*|| aggregator.lower() > v - self.tolerance*/) { |
| 0 | 646 | // The function isn't refined enough in `cube`, so return None |
| 647 | // to indicate that further subdivision is required. | |
| 648 | RefinerResult::NeedRefinement | |
| 649 | } else { | |
| 650 | // The data is refined enough, so return new hopefully better bounds | |
| 651 | // and the maximiser. | |
| 652 | let res = (x, v); | |
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653 | let bounds = Bounds(v, v); |
| 0 | 654 | RefinerResult::Uncertain(bounds, Some(res)) |
| 655 | } | |
| 656 | } | |
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657 | |
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658 | fn fuse_results(r1 : &mut Self::Result, r2 : Self::Result) { |
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659 | match (*r1, r2) { |
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660 | (Some((_, v1)), Some((_, v2))) => if v1 < v2 { *r1 = r2 } |
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661 | (None, Some(_)) => *r1 = r2, |
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662 | (_, _) => {}, |
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663 | } |
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664 | } |
| 0 | 665 | } |
| 666 | ||
| 667 | ||
| 668 | impl<F : Float, G, const N : usize> Refiner<F, Bounds<F>, G, N> | |
| 669 | for P2Refiner<F, RefineMin> | |
| 670 | where Cube<F, N> : P2Minimise<Loc<F, N>, F>, | |
| 671 | G : SupportGenerator<F, N>, | |
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672 | G::SupportType : Mapping<Loc<F, N>, Codomain=F> |
| 0 | 673 | + LocalAnalysis<F, Bounds<F>, N> { |
| 674 | type Result = Option<(Loc<F, N>, F)>; | |
| 675 | type Sorting = LowerBoundSorting<F>; | |
| 676 | ||
| 677 | fn refine( | |
| 678 | &self, | |
| 679 | aggregator : &Bounds<F>, | |
| 680 | cube : &Cube<F, N>, | |
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681 | data : &[G::Id], |
| 0 | 682 | generator : &G, |
| 683 | step : usize | |
| 684 | ) -> RefinerResult<Bounds<F>, Self::Result> { | |
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685 | |
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686 | if self.bound.map_or(false, |b| aggregator.lower() >= b - self.tolerance) { |
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687 | // The lower bound is above the minimisation threshold. Don't bother with this cube. |
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688 | return RefinerResult::Uncertain(*aggregator, None) |
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689 | } |
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690 | |
| 0 | 691 | // g gives the value of the function presented by `data` and `generator`. |
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692 | let g = move |x : &Loc<F, N>| { |
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693 | let f = move |&d| generator.support_for(d).apply(x); |
| 0 | 694 | data.iter().map(f).sum::<F>() |
| 695 | }; | |
| 696 | // Minimise it. | |
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697 | let (x, _v) = cube.p2_minimise(g); |
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698 | let v = g(&x); |
| 0 | 699 | |
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700 | if step < self.max_steps && (aggregator.lower() < v - self.tolerance |
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701 | /*|| aggregator.upper() < v + self.tolerance*/) { |
| 0 | 702 | // The function isn't refined enough in `cube`, so return None |
| 703 | // to indicate that further subdivision is required. | |
| 704 | RefinerResult::NeedRefinement | |
| 705 | } else { | |
| 706 | // The data is refined enough, so return new hopefully better bounds | |
| 707 | // and the minimiser. | |
| 708 | let res = (x, v); | |
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709 | let l = aggregator.lower(); |
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710 | let bounds = if l > v { |
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711 | eprintln!("imprecision!"); |
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712 | Bounds(l, l) |
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713 | } else { |
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714 | Bounds(v, v) |
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715 | }; |
| 0 | 716 | RefinerResult::Uncertain(bounds, Some(res)) |
| 717 | } | |
| 718 | } | |
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719 | |
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720 | fn fuse_results(r1 : &mut Self::Result, r2 : Self::Result) { |
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721 | match (*r1, r2) { |
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722 | (Some((_, v1)), Some((_, v2))) => if v1 > v2 { *r1 = r2 } |
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723 | (_, Some(_)) => *r1 = r2, |
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724 | (_, _) => {}, |
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725 | } |
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726 | } |
| 0 | 727 | } |
| 728 | ||
| 729 | ||
| 5 | 730 | /// A bisection tree [`Refiner`] for checking that a [`BTFN`] is within a stated |
| 731 | //// upper or lower bound. | |
| 732 | /// | |
| 733 | /// The type parameter `T` should be either [`RefineMax`] for upper bound or [`RefineMin`] | |
| 734 | /// for lower bound. | |
| 0 | 735 | |
| 736 | struct BoundRefiner<F : Float, T> { | |
| 5 | 737 | /// The upper/lower bound to check for |
| 0 | 738 | bound : F, |
| 5 | 739 | /// Tolerance for function value estimation. |
| 0 | 740 | tolerance : F, |
| 5 | 741 | /// Maximum number of steps to execute the refiner for |
| 0 | 742 | max_steps : usize, |
| 743 | #[allow(dead_code)] // `how` is just for type system purposes. | |
| 5 | 744 | /// Either [`RefineMax`] or [`RefineMin`]. Used only for type system purposes. |
| 0 | 745 | how : T, |
| 746 | } | |
| 747 | ||
| 748 | impl<F : Float, G, const N : usize> Refiner<F, Bounds<F>, G, N> | |
| 749 | for BoundRefiner<F, RefineMax> | |
| 750 | where G : SupportGenerator<F, N> { | |
| 751 | type Result = bool; | |
| 752 | type Sorting = UpperBoundSorting<F>; | |
| 753 | ||
| 754 | fn refine( | |
| 755 | &self, | |
| 756 | aggregator : &Bounds<F>, | |
| 757 | _cube : &Cube<F, N>, | |
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758 | _data : &[G::Id], |
| 0 | 759 | _generator : &G, |
| 760 | step : usize | |
| 761 | ) -> RefinerResult<Bounds<F>, Self::Result> { | |
| 762 | if aggregator.upper() <= self.bound + self.tolerance { | |
| 763 | // Below upper bound within tolerances. Indicate uncertain success. | |
| 764 | RefinerResult::Uncertain(*aggregator, true) | |
| 765 | } else if aggregator.lower() >= self.bound - self.tolerance { | |
| 766 | // Above upper bound within tolerances. Indicate certain failure. | |
| 767 | RefinerResult::Certain(false) | |
| 768 | } else if step < self.max_steps { | |
| 769 | // No decision possible, but within step bounds - further subdivision is required. | |
| 770 | RefinerResult::NeedRefinement | |
| 771 | } else { | |
| 772 | // No decision possible, but past step bounds | |
| 773 | RefinerResult::Uncertain(*aggregator, false) | |
| 774 | } | |
| 775 | } | |
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776 | |
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777 | fn fuse_results(r1 : &mut Self::Result, r2 : Self::Result) { |
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778 | *r1 = *r1 && r2; |
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779 | } |
| 0 | 780 | } |
| 781 | ||
| 5 | 782 | impl<F : Float, G, const N : usize> Refiner<F, Bounds<F>, G, N> |
| 783 | for BoundRefiner<F, RefineMin> | |
| 784 | where G : SupportGenerator<F, N> { | |
| 785 | type Result = bool; | |
| 786 | type Sorting = UpperBoundSorting<F>; | |
| 787 | ||
| 788 | fn refine( | |
| 789 | &self, | |
| 790 | aggregator : &Bounds<F>, | |
| 791 | _cube : &Cube<F, N>, | |
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792 | _data : &[G::Id], |
| 5 | 793 | _generator : &G, |
| 794 | step : usize | |
| 795 | ) -> RefinerResult<Bounds<F>, Self::Result> { | |
| 796 | if aggregator.lower() >= self.bound - self.tolerance { | |
| 797 | // Above lower bound within tolerances. Indicate uncertain success. | |
| 798 | RefinerResult::Uncertain(*aggregator, true) | |
| 799 | } else if aggregator.upper() <= self.bound + self.tolerance { | |
| 800 | // Below lower bound within tolerances. Indicate certain failure. | |
| 801 | RefinerResult::Certain(false) | |
| 802 | } else if step < self.max_steps { | |
| 803 | // No decision possible, but within step bounds - further subdivision is required. | |
| 804 | RefinerResult::NeedRefinement | |
| 805 | } else { | |
| 806 | // No decision possible, but past step bounds | |
| 807 | RefinerResult::Uncertain(*aggregator, false) | |
| 808 | } | |
| 809 | } | |
|
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Multithreaded bisection tree operations
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810 | |
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811 | fn fuse_results(r1 : &mut Self::Result, r2 : Self::Result) { |
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812 | *r1 = *r1 && r2; |
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813 | } |
| 5 | 814 | } |
| 0 | 815 | |
|
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816 | // FIXME: The most likely reason for the “Refiner failure” expectation in the methods below |
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817 | // is numerical inaccuracy: the `glb` maintained in `HeapContainer` (`refine.rs`) becomes bigger |
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Tuomo Valkonen <tuomov@iki.fi>
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818 | // than the *upper bound* of nodes attempted to be inserted into the `heap` in the container. |
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Tuomo Valkonen <tuomov@iki.fi>
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819 | // But the `glb` is there exactly to prevent that. Due to numerical inaccuracy, however, a |
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Tuomo Valkonen <tuomov@iki.fi>
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820 | // newly subdivided node may have lower upper bound than the original lower bound that should |
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821 | // have been above the `glb` since the node was picked from the queue. Due to the subdivision |
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822 | // process, if a node whose lower bound is at the `glb` is picked, all of its refined subnodes |
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Tuomo Valkonen <tuomov@iki.fi>
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823 | // should have lower bound at least the old `glb`, so in a single-threaded situation there should |
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824 | // always be nodes above the `glb` in the queue. In a multi-threaded situation a node below the |
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825 | // `glb` may be picked by some thread. When that happens, that thread inserts no new nodes into |
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826 | // the queue. If the queue empties as a result of that, the thread goes to wait for other threads |
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827 | // to produce results. Since some node had a node whose lower bound was above the `glb`, eventually |
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828 | // there should be a result, or new nodes above the `glb` inserted into the queue. Then the waiting |
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829 | // threads can also continue processing. If, however, numerical inaccuracy destroyes the `glb`, |
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830 | // the queue may run out, and we get “Refiner failure”. |
| 0 | 831 | impl<F : Float, G, BT, const N : usize> BTFN<F, G, BT, N> |
| 832 | where BT : BTSearch<F, N, Agg=Bounds<F>>, | |
| 833 | G : SupportGenerator<F, N, Id=BT::Data>, | |
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834 | G::SupportType : Mapping<Loc<F, N>, Codomain=F> |
| 0 | 835 | + LocalAnalysis<F, Bounds<F>, N>, |
| 836 | Cube<F, N> : P2Minimise<Loc<F, N>, F> { | |
| 837 | ||
| 5 | 838 | /// Maximise the `BTFN` within stated value `tolerance`. |
| 839 | /// | |
| 840 | /// At most `max_steps` refinement steps are taken. | |
| 841 | /// Returns the approximate maximiser and the corresponding function value. | |
| 0 | 842 | pub fn maximise(&mut self, tolerance : F, max_steps : usize) -> (Loc<F, N>, F) { |
| 843 | let refiner = P2Refiner{ tolerance, max_steps, how : RefineMax, bound : None }; | |
|
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844 | self.bt.search_and_refine(refiner, &self.generator).expect("Refiner failure.").unwrap() |
| 0 | 845 | } |
| 846 | ||
| 5 | 847 | /// Maximise the `BTFN` within stated value `tolerance` subject to a lower bound. |
| 848 | /// | |
| 849 | /// At most `max_steps` refinement steps are taken. | |
| 850 | /// Returns the approximate maximiser and the corresponding function value when one is found | |
| 851 | /// above the `bound` threshold, otherwise `None`. | |
| 0 | 852 | pub fn maximise_above(&mut self, bound : F, tolerance : F, max_steps : usize) |
| 853 | -> Option<(Loc<F, N>, F)> { | |
| 854 | let refiner = P2Refiner{ tolerance, max_steps, how : RefineMax, bound : Some(bound) }; | |
|
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855 | self.bt.search_and_refine(refiner, &self.generator).expect("Refiner failure.") |
| 0 | 856 | } |
| 857 | ||
| 5 | 858 | /// Minimise the `BTFN` within stated value `tolerance`. |
| 859 | /// | |
| 860 | /// At most `max_steps` refinement steps are taken. | |
| 861 | /// Returns the approximate minimiser and the corresponding function value. | |
| 0 | 862 | pub fn minimise(&mut self, tolerance : F, max_steps : usize) -> (Loc<F, N>, F) { |
| 863 | let refiner = P2Refiner{ tolerance, max_steps, how : RefineMin, bound : None }; | |
|
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Tuomo Valkonen <tuomov@iki.fi>
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864 | self.bt.search_and_refine(refiner, &self.generator).expect("Refiner failure.").unwrap() |
| 0 | 865 | } |
| 866 | ||
| 5 | 867 | /// Minimise the `BTFN` within stated value `tolerance` subject to a lower bound. |
| 868 | /// | |
| 869 | /// At most `max_steps` refinement steps are taken. | |
| 870 | /// Returns the approximate minimiser and the corresponding function value when one is found | |
| 871 | /// above the `bound` threshold, otherwise `None`. | |
| 0 | 872 | pub fn minimise_below(&mut self, bound : F, tolerance : F, max_steps : usize) |
| 873 | -> Option<(Loc<F, N>, F)> { | |
| 874 | let refiner = P2Refiner{ tolerance, max_steps, how : RefineMin, bound : Some(bound) }; | |
|
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875 | self.bt.search_and_refine(refiner, &self.generator).expect("Refiner failure.") |
| 0 | 876 | } |
| 5 | 877 | |
| 878 | /// Verify that the `BTFN` has a given upper `bound` within indicated `tolerance`. | |
| 879 | /// | |
| 880 | /// At most `max_steps` refinement steps are taken. | |
| 0 | 881 | pub fn has_upper_bound(&mut self, bound : F, tolerance : F, max_steps : usize) -> bool { |
| 882 | let refiner = BoundRefiner{ bound, tolerance, max_steps, how : RefineMax }; | |
|
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Multithreaded bisection tree operations
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|
883 | self.bt.search_and_refine(refiner, &self.generator).expect("Refiner failure.") |
| 0 | 884 | } |
| 5 | 885 | |
| 886 | /// Verify that the `BTFN` has a given lower `bound` within indicated `tolerance`. | |
| 887 | /// | |
| 888 | /// At most `max_steps` refinement steps are taken. | |
| 889 | pub fn has_lower_bound(&mut self, bound : F, tolerance : F, max_steps : usize) -> bool { | |
| 890 | let refiner = BoundRefiner{ bound, tolerance, max_steps, how : RefineMin }; | |
|
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Multithreaded bisection tree operations
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891 | self.bt.search_and_refine(refiner, &self.generator).expect("Refiner failure.") |
| 5 | 892 | } |
| 0 | 893 | } |