src/kernels/hat_convolution.rs

Fri, 02 Dec 2022 18:08:40 +0200

author
Tuomo Valkonen <tuomov@iki.fi>
date
Fri, 02 Dec 2022 18:08:40 +0200
changeset 7
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parent 0
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permissions
-rw-r--r--

Remove ergodic tolerance; it's not useful.

0
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1 //! Implementation of the convolution of two hat functions,
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2 //! and its convolution with a [`CubeIndicator`].
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3 use numeric_literals::replace_float_literals;
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4 use serde::Serialize;
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5 use alg_tools::types::*;
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6 use alg_tools::norms::*;
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7 use alg_tools::loc::Loc;
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8 use alg_tools::sets::Cube;
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9 use alg_tools::bisection_tree::{
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10 Support,
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11 Constant,
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12 Bounds,
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13 LocalAnalysis,
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14 GlobalAnalysis,
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15 Bounded,
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16 };
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17 use alg_tools::mapping::Apply;
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18 use alg_tools::maputil::array_init;
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19
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20 use super::base::*;
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21 use super::ball_indicator::CubeIndicator;
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22
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23 /// Hat convolution kernel.
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24 ///
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25 /// This struct represents the function
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26 /// $$
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27 /// f(x\_1, …, x\_n) = \prod\_{i=1}^n \frac{4}{σ} (h\*h)(x\_i/σ)
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28 /// $$
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29 /// where the “hat function” $h(y)= \max(0, 1 - |2y|)$.
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30 /// The factor $4/σ$ normalises $∫ f d x = 1$.
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31 /// We have
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32 /// $$
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33 /// (h*h)(y) =
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34 /// \begin{cases}
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35 /// \frac{2}{3} (y+1)^3 & -1<y\leq -\frac{1}{2}, \\\\
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36 /// -2 y^3-2 y^2+\frac{1}{3} & -\frac{1}{2}<y\leq 0, \\\\
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37 /// 2 y^3-2 y^2+\frac{1}{3} & 0<y<\frac{1}{2}, \\\\
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38 /// -\frac{2}{3} (y-1)^3 & \frac{1}{2}\leq y<1. \\\\
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39 /// \end{cases}
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40 /// $$
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41 #[derive(Copy,Clone,Debug,Serialize,Eq)]
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42 pub struct HatConv<S : Constant, const N : usize> {
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43 /// The parameter $σ$ of the kernel.
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44 pub radius : S,
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45 }
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46
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47 impl<S1, S2, const N : usize> PartialEq<HatConv<S2, N>> for HatConv<S1, N>
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48 where S1 : Constant,
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49 S2 : Constant<Type=S1::Type> {
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50 fn eq(&self, other : &HatConv<S2, N>) -> bool {
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51 self.radius.value() == other.radius.value()
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52 }
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53 }
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54
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55 impl<'a, S, const N : usize> HatConv<S, N> where S : Constant {
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56 /// Returns the $σ$ parameter of the kernel.
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57 #[inline]
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58 pub fn radius(&self) -> S::Type {
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59 self.radius.value()
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60 }
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61 }
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62
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63 impl<'a, S, const N : usize> Apply<&'a Loc<S::Type, N>> for HatConv<S, N>
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64 where S : Constant {
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65 type Output = S::Type;
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66 #[inline]
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67 fn apply(&self, y : &'a Loc<S::Type, N>) -> Self::Output {
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68 let σ = self.radius();
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69 y.product_map(|x| {
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70 self.value_1d_σ1(x / σ) / σ
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71 })
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72 }
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73 }
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74
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75 impl<'a, S, const N : usize> Apply<Loc<S::Type, N>> for HatConv<S, N>
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76 where S : Constant {
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77 type Output = S::Type;
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78 #[inline]
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79 fn apply(&self, y : Loc<S::Type, N>) -> Self::Output {
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80 self.apply(&y)
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81 }
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82 }
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83
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84
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85 #[replace_float_literals(S::Type::cast_from(literal))]
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86 impl<'a, F : Float, S, const N : usize> HatConv<S, N>
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87 where S : Constant<Type=F> {
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88 /// Computes the value of the kernel for $n=1$ with $σ=1$.
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89 #[inline]
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90 fn value_1d_σ1(&self, x : F) -> F {
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91 let y = x.abs();
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92 if y >= 1.0 {
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93 0.0
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94 } else if y > 0.5 {
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95 - (8.0/3.0) * (y - 1.0).powi(3)
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96 } else /* 0 ≤ y ≤ 0.5 */ {
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97 (4.0/3.0) + 8.0 * y * y * (y - 1.0)
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98 }
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99 }
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100 }
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101
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102 impl<'a, S, const N : usize> Support<S::Type, N> for HatConv<S, N>
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103 where S : Constant {
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104 #[inline]
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105 fn support_hint(&self) -> Cube<S::Type,N> {
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106 let σ = self.radius();
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107 array_init(|| [-σ, σ]).into()
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108 }
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109
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110 #[inline]
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111 fn in_support(&self, y : &Loc<S::Type,N>) -> bool {
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112 let σ = self.radius();
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113 y.iter().all(|x| x.abs() <= σ)
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114 }
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115
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116 #[inline]
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117 fn bisection_hint(&self, cube : &Cube<S::Type, N>) -> [Option<S::Type>; N] {
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118 let σ = self.radius();
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119 cube.map(|c, d| symmetric_peak_hint(σ, c, d))
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120 }
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121 }
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122
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123 #[replace_float_literals(S::Type::cast_from(literal))]
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124 impl<S, const N : usize> GlobalAnalysis<S::Type, Bounds<S::Type>> for HatConv<S, N>
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125 where S : Constant {
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126 #[inline]
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127 fn global_analysis(&self) -> Bounds<S::Type> {
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128 Bounds(0.0, self.apply(Loc::ORIGIN))
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129 }
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130 }
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131
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132 impl<S, const N : usize> LocalAnalysis<S::Type, Bounds<S::Type>, N> for HatConv<S, N>
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133 where S : Constant {
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134 #[inline]
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135 fn local_analysis(&self, cube : &Cube<S::Type, N>) -> Bounds<S::Type> {
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136 // The function is maximised/minimised where the 2-norm is minimised/maximised.
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137 let lower = self.apply(cube.maxnorm_point());
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138 let upper = self.apply(cube.minnorm_point());
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139 Bounds(lower, upper)
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140 }
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141 }
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142
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143 #[replace_float_literals(C::Type::cast_from(literal))]
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144 impl<'a, C : Constant, const N : usize> Norm<C::Type, L1>
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145 for HatConv<C, N> {
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146 #[inline]
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147 fn norm(&self, _ : L1) -> C::Type {
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148 1.0
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149 }
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150 }
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151
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152 #[replace_float_literals(C::Type::cast_from(literal))]
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153 impl<'a, C : Constant, const N : usize> Norm<C::Type, Linfinity>
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154 for HatConv<C, N> {
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155 #[inline]
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156 fn norm(&self, _ : Linfinity) -> C::Type {
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157 self.bounds().upper()
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158 }
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159 }
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160
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161 #[replace_float_literals(F::cast_from(literal))]
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162 impl<'a, F : Float, R, C, const N : usize> Apply<&'a Loc<F, N>>
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163 for Convolution<CubeIndicator<R, N>, HatConv<C, N>>
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164 where R : Constant<Type=F>,
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165 C : Constant<Type=F> {
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166
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167 type Output = F;
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168
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169 #[inline]
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170 fn apply(&self, y : &'a Loc<F, N>) -> F {
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171 let Convolution(ref ind, ref hatconv) = self;
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172 let β = ind.r.value();
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173 let σ = hatconv.radius();
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174
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175 // This is just a product of one-dimensional versions
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176 y.product_map(|x| {
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177 // With $u_σ(x) = u_1(x/σ)/σ$ the normalised hat convolution
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178 // we have
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179 // $$
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180 // [χ_{-β,β} * u_σ](x)
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181 // = ∫_{x-β}^{x+β} u_σ(z) d z
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182 // = (1/σ)∫_{x-β}^{x+β} u_1(z/σ) d z
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183 // = ∫_{(x-β)/σ}^{(x+β)/σ} u_1(z) d z
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184 // = [χ_{-β/σ, β/σ} * u_1](x/σ)
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185 // $$
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186 self.value_1d_σ1(x / σ, β / σ)
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187 })
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188 }
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189 }
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190
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191 impl<'a, F : Float, R, C, const N : usize> Apply<Loc<F, N>>
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192 for Convolution<CubeIndicator<R, N>, HatConv<C, N>>
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193 where R : Constant<Type=F>,
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194 C : Constant<Type=F> {
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195
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196 type Output = F;
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197
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198 #[inline]
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199 fn apply(&self, y : Loc<F, N>) -> F {
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200 self.apply(&y)
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201 }
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202 }
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203
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204
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205 #[replace_float_literals(F::cast_from(literal))]
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206 impl<F : Float, C, R, const N : usize> Convolution<CubeIndicator<R, N>, HatConv<C, N>>
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207 where R : Constant<Type=F>,
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208 C : Constant<Type=F> {
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209 #[inline]
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210 pub fn value_1d_σ1(&self, x : F, β : F) -> F {
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211 // The integration interval
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212 let a = x - β;
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213 let b = x + β;
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214
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215 #[inline]
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216 fn pow4<F : Float>(x : F) -> F {
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217 let y = x * x;
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218 y * y
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219 }
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220
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221 /// Integrate $f$, whose support is $[c, d]$, on $[a, b]$.
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222 /// If $b > d$, add $g()$ to the result.
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223 #[inline]
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224 fn i<F: Float>(a : F, b : F, c : F, d : F, f : impl Fn(F) -> F,
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225 g : impl Fn() -> F) -> F {
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226 if b < c {
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227 0.0
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228 } else if b <= d {
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229 if a <= c {
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230 f(b) - f(c)
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231 } else {
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232 f(b) - f(a)
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233 }
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234 } else /* b > d */ {
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235 g() + if a <= c {
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236 f(d) - f(c)
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237 } else if a < d {
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238 f(d) - f(a)
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239 } else {
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240 0.0
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241 }
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242 }
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243 }
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244
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245 // Observe the factor 1/6 at the front from the antiderivatives below.
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246 // The factor 4 is from normalisation of the original function.
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247 (4.0/6.0) * i(a, b, -1.0, -0.5,
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248 // (2/3) (y+1)^3 on -1 < y ≤ - 1/2
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249 // The antiderivative is (2/12)(y+1)^4 = (1/6)(y+1)^4
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250 |y| pow4(y+1.0),
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251 || i(a, b, -0.5, 0.0,
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252 // -2 y^3 - 2 y^2 + 1/3 on -1/2 < y ≤ 0
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253 // The antiderivative is -1/2 y^4 - 2/3 y^3 + 1/3 y
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254 |y| y*(-y*y*(y*3.0 + 4.0) + 2.0),
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255 || i(a, b, 0.0, 0.5,
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256 // 2 y^3 - 2 y^2 + 1/3 on 0 < y < 1/2
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257 // The antiderivative is 1/2 y^4 - 2/3 y^3 + 1/3 y
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258 |y| y*(y*y*(y*3.0 - 4.0) + 2.0),
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259 || i(a, b, 0.5, 1.0,
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260 // -(2/3) (y-1)^3 on 1/2 < y ≤ 1
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261 // The antiderivative is -(2/12)(y-1)^4 = -(1/6)(y-1)^4
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262 |y| -pow4(y-1.0),
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263 || 0.0
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264 )
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265 )
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266 )
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267 )
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268 }
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269 }
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270
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271 impl<F : Float, R, C, const N : usize>
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272 Convolution<CubeIndicator<R, N>, HatConv<C, N>>
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273 where R : Constant<Type=F>,
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274 C : Constant<Type=F> {
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275
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276 #[inline]
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277 fn get_r(&self) -> F {
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278 let Convolution(ref ind, ref hatconv) = self;
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279 ind.r.value() + hatconv.radius()
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280 }
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281 }
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282
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283 impl<F : Float, R, C, const N : usize> Support<F, N>
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284 for Convolution<CubeIndicator<R, N>, HatConv<C, N>>
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285 where R : Constant<Type=F>,
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286 C : Constant<Type=F> {
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287
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288 #[inline]
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289 fn support_hint(&self) -> Cube<F, N> {
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290 let r = self.get_r();
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291 array_init(|| [-r, r]).into()
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292 }
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293
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294 #[inline]
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295 fn in_support(&self, y : &Loc<F, N>) -> bool {
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296 let r = self.get_r();
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297 y.iter().all(|x| x.abs() <= r)
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298 }
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299
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300 #[inline]
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301 fn bisection_hint(&self, cube : &Cube<F, N>) -> [Option<F>; N] {
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302 // It is not difficult to verify that [`HatConv`] is C^2.
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303 // Therefore, so is [`Convolution<CubeIndicator<R, N>, HatConv<C, N>>`] so that a finer
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304 // subdivision for the hint than this is not particularly useful.
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305 let r = self.get_r();
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306 cube.map(|c, d| symmetric_peak_hint(r, c, d))
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307 }
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308 }
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309
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310 impl<F : Float, R, C, const N : usize> GlobalAnalysis<F, Bounds<F>>
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311 for Convolution<CubeIndicator<R, N>, HatConv<C, N>>
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312 where R : Constant<Type=F>,
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313 C : Constant<Type=F> {
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314 #[inline]
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315 fn global_analysis(&self) -> Bounds<F> {
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316 Bounds(F::ZERO, self.apply(Loc::ORIGIN))
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317 }
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318 }
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319
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320 impl<F : Float, R, C, const N : usize> LocalAnalysis<F, Bounds<F>, N>
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321 for Convolution<CubeIndicator<R, N>, HatConv<C, N>>
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322 where R : Constant<Type=F>,
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323 C : Constant<Type=F> {
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324 #[inline]
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325 fn local_analysis(&self, cube : &Cube<F, N>) -> Bounds<F> {
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326 // The function is maximised/minimised where the absolute value is minimised/maximised.
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327 let lower = self.apply(cube.maxnorm_point());
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328 let upper = self.apply(cube.minnorm_point());
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329 //assert!(upper >= lower);
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330 if upper < lower {
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331 let Convolution(ref ind, ref hatconv) = self;
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332 let β = ind.r.value();
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333 let σ = hatconv.radius();
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334 eprintln!("WARNING: Hat convolution {β} {σ} upper bound {upper} < lower bound {lower} on {cube:?} with min-norm point {:?} and max-norm point {:?}", cube.minnorm_point(), cube.maxnorm_point());
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335 Bounds(upper, lower)
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336 } else {
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337 Bounds(lower, upper)
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338 }
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339 }
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340 }
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341
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342
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343 /// This [`BoundedBy`] implementation bounds $u * u$ by $(ψ * ψ) u$ for $u$ a hat convolution and
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344 /// $ψ = χ_{[-a,a]^N}$ for some $a>0$.
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345 ///
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346 /// This is based on the general formula for bounding $(uχ) * (uχ)$ by $(ψ * ψ) u$,
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347 /// where we take $ψ = χ_{[-a,a]^N}$ and $χ = χ_{[-σ,σ]^N}$ for $σ$ the width of the hat
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348 /// convolution.
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349 #[replace_float_literals(F::cast_from(literal))]
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350 impl<F, C, S, const N : usize>
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351 BoundedBy<F, SupportProductFirst<AutoConvolution<CubeIndicator<S, N>>, HatConv<C, N>>>
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352 for AutoConvolution<HatConv<C, N>>
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353 where F : Float,
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354 C : Constant<Type=F>,
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Tuomo Valkonen <tuomov@iki.fi>
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355 S : Constant<Type=F> {
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356
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357 fn bounding_factor(
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358 &self,
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359 kernel : &SupportProductFirst<AutoConvolution<CubeIndicator<S, N>>, HatConv<C, N>>
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360 ) -> Option<F> {
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361 // We use the comparison $ℱ[𝒜(ψ v)] ≤ L_1 ℱ[𝒜(ψ)u] ⟺ I_{v̂} v̂ ≤ L_1 û$ with
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362 // $ψ = χ_{[-w, w]}$ satisfying $supp v ⊂ [-w, w]$, i.e. $w ≥ σ$. Here $v̂ = ℱ[v]$ and
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363 // $I_{v̂} = ∫ v̂ d ξ. For this relationship to be valid, we need $v̂ ≥ 0$, which is guaranteed
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364 // by $v̂ = u_σ$ being an autoconvolution. With $u = v$, therefore $L_1 = I_v̂ = ∫ u_σ(ξ) d ξ$.
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365 let SupportProductFirst(AutoConvolution(ref ind), hatconv2) = kernel;
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366 let σ = self.0.radius();
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367 let a = ind.r.value();
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368 let bounding_1d = 4.0 / (3.0 * σ);
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369
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370 // Check that the cutting indicator of the comparison
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371 // `SupportProductFirst<AutoConvolution<CubeIndicator<S, N>>, HatConv<C, N>>`
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372 // is wide enough, and that the hat convolution has the same radius as ours.
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373 if σ <= a && hatconv2 == &self.0 {
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374 Some(bounding_1d.powi(N as i32))
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375 } else {
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376 // We cannot compare
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377 None
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378 }
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379 }
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380 }
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381
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382 /// This [`BoundedBy`] implementation bounds $u * u$ by $u$ for $u$ a hat convolution.
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383 ///
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384 /// This is based on Example 3.3 in the manuscript.
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385 #[replace_float_literals(F::cast_from(literal))]
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386 impl<F, C, const N : usize>
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387 BoundedBy<F, HatConv<C, N>>
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388 for AutoConvolution<HatConv<C, N>>
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389 where F : Float,
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Tuomo Valkonen <tuomov@iki.fi>
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390 C : Constant<Type=F> {
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391
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392 /// Returns an estimate of the factor $L_1$.
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393 ///
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394 /// Returns `None` if `kernel` does not have the same width as hat convolution that `self`
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395 /// is based on.
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396 fn bounding_factor(
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397 &self,
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398 kernel : &HatConv<C, N>
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Tuomo Valkonen <tuomov@iki.fi>
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399 ) -> Option<F> {
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400 if kernel == &self.0 {
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diff changeset
401 Some(1.0)
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402 } else {
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Tuomo Valkonen <tuomov@iki.fi>
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403 // We cannot compare
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Tuomo Valkonen <tuomov@iki.fi>
parents:
diff changeset
404 None
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Tuomo Valkonen <tuomov@iki.fi>
parents:
diff changeset
405 }
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Tuomo Valkonen <tuomov@iki.fi>
parents:
diff changeset
406 }
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Tuomo Valkonen <tuomov@iki.fi>
parents:
diff changeset
407 }
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Tuomo Valkonen <tuomov@iki.fi>
parents:
diff changeset
408
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409 #[cfg(test)]
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Tuomo Valkonen <tuomov@iki.fi>
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410 mod tests {
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Tuomo Valkonen <tuomov@iki.fi>
parents:
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411 use alg_tools::lingrid::linspace;
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Tuomo Valkonen <tuomov@iki.fi>
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412 use alg_tools::mapping::Apply;
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Tuomo Valkonen <tuomov@iki.fi>
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413 use alg_tools::norms::Linfinity;
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Tuomo Valkonen <tuomov@iki.fi>
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414 use alg_tools::loc::Loc;
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Tuomo Valkonen <tuomov@iki.fi>
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415 use crate::kernels::{BallIndicator, CubeIndicator, Convolution};
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Tuomo Valkonen <tuomov@iki.fi>
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416 use super::HatConv;
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Tuomo Valkonen <tuomov@iki.fi>
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417
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418 /// Tests numerically that [`HatConv<f64, 1>`] is monotone.
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419 #[test]
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Tuomo Valkonen <tuomov@iki.fi>
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420 fn hatconv_monotonicity() {
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421 let grid = linspace(0.0, 1.0, 100000);
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Tuomo Valkonen <tuomov@iki.fi>
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422 let hatconv : HatConv<f64, 1> = HatConv{ radius : 1.0 };
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Tuomo Valkonen <tuomov@iki.fi>
parents:
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423 let mut vals = grid.into_iter().map(|t| hatconv.apply(Loc::from(t)));
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parents:
diff changeset
424 let first = vals.next().unwrap();
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Tuomo Valkonen <tuomov@iki.fi>
parents:
diff changeset
425 let monotone = vals.fold((first, true), |(prev, ok), t| (prev, ok && prev >= t)).1;
eb3c7813b67a Initial version
Tuomo Valkonen <tuomov@iki.fi>
parents:
diff changeset
426 assert!(monotone);
eb3c7813b67a Initial version
Tuomo Valkonen <tuomov@iki.fi>
parents:
diff changeset
427 }
eb3c7813b67a Initial version
Tuomo Valkonen <tuomov@iki.fi>
parents:
diff changeset
428
eb3c7813b67a Initial version
Tuomo Valkonen <tuomov@iki.fi>
parents:
diff changeset
429 /// Tests numerically that [`Convolution<CubeIndicator<f64, 1>, HatConv<f64, 1>>`] is monotone.
eb3c7813b67a Initial version
Tuomo Valkonen <tuomov@iki.fi>
parents:
diff changeset
430 #[test]
eb3c7813b67a Initial version
Tuomo Valkonen <tuomov@iki.fi>
parents:
diff changeset
431 fn convolution_cubeind_hatconv_monotonicity() {
eb3c7813b67a Initial version
Tuomo Valkonen <tuomov@iki.fi>
parents:
diff changeset
432 let grid = linspace(-2.0, 0.0, 100000);
eb3c7813b67a Initial version
Tuomo Valkonen <tuomov@iki.fi>
parents:
diff changeset
433 let hatconv : Convolution<CubeIndicator<f64, 1>, HatConv<f64, 1>>
eb3c7813b67a Initial version
Tuomo Valkonen <tuomov@iki.fi>
parents:
diff changeset
434 = Convolution(BallIndicator { r : 0.5, exponent : Linfinity },
eb3c7813b67a Initial version
Tuomo Valkonen <tuomov@iki.fi>
parents:
diff changeset
435 HatConv{ radius : 1.0 } );
eb3c7813b67a Initial version
Tuomo Valkonen <tuomov@iki.fi>
parents:
diff changeset
436 let mut vals = grid.into_iter().map(|t| hatconv.apply(Loc::from(t)));
eb3c7813b67a Initial version
Tuomo Valkonen <tuomov@iki.fi>
parents:
diff changeset
437 let first = vals.next().unwrap();
eb3c7813b67a Initial version
Tuomo Valkonen <tuomov@iki.fi>
parents:
diff changeset
438 let monotone = vals.fold((first, true), |(prev, ok), t| (prev, ok && prev <= t)).1;
eb3c7813b67a Initial version
Tuomo Valkonen <tuomov@iki.fi>
parents:
diff changeset
439 assert!(monotone);
eb3c7813b67a Initial version
Tuomo Valkonen <tuomov@iki.fi>
parents:
diff changeset
440
eb3c7813b67a Initial version
Tuomo Valkonen <tuomov@iki.fi>
parents:
diff changeset
441 let grid = linspace(0.0, 2.0, 100000);
eb3c7813b67a Initial version
Tuomo Valkonen <tuomov@iki.fi>
parents:
diff changeset
442 let hatconv : Convolution<CubeIndicator<f64, 1>, HatConv<f64, 1>>
eb3c7813b67a Initial version
Tuomo Valkonen <tuomov@iki.fi>
parents:
diff changeset
443 = Convolution(BallIndicator { r : 0.5, exponent : Linfinity },
eb3c7813b67a Initial version
Tuomo Valkonen <tuomov@iki.fi>
parents:
diff changeset
444 HatConv{ radius : 1.0 } );
eb3c7813b67a Initial version
Tuomo Valkonen <tuomov@iki.fi>
parents:
diff changeset
445 let mut vals = grid.into_iter().map(|t| hatconv.apply(Loc::from(t)));
eb3c7813b67a Initial version
Tuomo Valkonen <tuomov@iki.fi>
parents:
diff changeset
446 let first = vals.next().unwrap();
eb3c7813b67a Initial version
Tuomo Valkonen <tuomov@iki.fi>
parents:
diff changeset
447 let monotone = vals.fold((first, true), |(prev, ok), t| (prev, ok && prev >= t)).1;
eb3c7813b67a Initial version
Tuomo Valkonen <tuomov@iki.fi>
parents:
diff changeset
448 assert!(monotone);
eb3c7813b67a Initial version
Tuomo Valkonen <tuomov@iki.fi>
parents:
diff changeset
449 }
eb3c7813b67a Initial version
Tuomo Valkonen <tuomov@iki.fi>
parents:
diff changeset
450 }

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