src/pdps.rs

Tue, 06 Dec 2022 14:12:38 +0200

author
Tuomo Valkonen <tuomov@iki.fi>
date
Tue, 06 Dec 2022 14:12:38 +0200
changeset 11
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Added tag v1.0.0-pre-arxiv for changeset b71edfd403aa

0
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1 /*!
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2 Solver for the point source localisation problem with primal-dual proximal splitting.
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3
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4 This corresponds to the manuscript
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5
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6 * Valkonen T. - _Proximal methods for point source localisation_. ARXIV TO INSERT.
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7
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8 The main routine is [`pointsource_pdps`]. It is based on specilisatinn of
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9 [`generic_pointsource_fb`] through relevant [`FBSpecialisation`] implementations.
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10 Both norm-2-squared and norm-1 data terms are supported. That is, implemented are solvers for
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11 <div>
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12 $$
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13 \min_{μ ∈ ℳ(Ω)}~ F_0(Aμ - b) + α \|μ\|_{ℳ(Ω)} + δ_{≥ 0}(μ),
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14 $$
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15 for both $F_0(y)=\frac{1}{2}\|y\|_2^2$ and $F_0(y)=\|y\|_1$ with the forward operator
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16 $A \in 𝕃(ℳ(Ω); ℝ^n)$.
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17 </div>
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18
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19 ## Approach
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20
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21 <p>
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22 The problem above can be written as
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23 $$
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24 \min_μ \max_y G(μ) + ⟨y, Aμ-b⟩ - F_0^*(μ),
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25 $$
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26 where $G(μ) = α \|μ\|_{ℳ(Ω)} + δ_{≥ 0}(μ)$.
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27 The Fenchel–Rockafellar optimality conditions, employing the predual in $ℳ(Ω)$, are
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28 $$
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29 0 ∈ A_*y + ∂G(μ)
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30 \quad\text{and}\quad
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31 Aμ - b ∈ ∂ F_0^*(y).
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32 $$
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33 The solution of the first part is as for forward-backward, treated in the manuscript.
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34 This is the task of <code>generic_pointsource_fb</code>, where we use <code>FBSpecialisation</code>
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35 to replace the specific residual $Aμ-b$ by $y$.
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36 For $F_0(y)=\frac{1}{2}\|y\|_2^2$ the second part reads $y = Aμ -b$.
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37 For $F_0(y)=\|y\|_1$ the second part reads $y ∈ ∂\|·\|_1(Aμ - b)$.
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38 </p>
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39
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40 Based on zero initialisation for $μ$, we use the [`Subdifferentiable`] trait to make an
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41 initialisation corresponding to the second part of the optimality conditions.
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42 In the algorithm itself, standard proximal steps are taking with respect to $F\_0^* + ⟨b, ·⟩$.
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43 */
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44
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45 use numeric_literals::replace_float_literals;
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46 use serde::{Serialize, Deserialize};
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47 use nalgebra::DVector;
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48 use clap::ValueEnum;
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49
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50 use alg_tools::iterate:: AlgIteratorFactory;
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51 use alg_tools::sets::Cube;
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52 use alg_tools::loc::Loc;
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53 use alg_tools::euclidean::Euclidean;
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54 use alg_tools::norms::{
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55 L1, Linfinity,
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56 Projection, Norm,
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57 };
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58 use alg_tools::bisection_tree::{
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59 BTFN,
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60 PreBTFN,
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61 Bounds,
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62 BTNodeLookup,
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63 BTNode,
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64 BTSearch,
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65 P2Minimise,
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66 SupportGenerator,
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67 LocalAnalysis,
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68 };
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69 use alg_tools::mapping::RealMapping;
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70 use alg_tools::nalgebra_support::ToNalgebraRealField;
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71 use alg_tools::linops::AXPY;
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72
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73 use crate::types::*;
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74 use crate::measures::DiscreteMeasure;
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75 use crate::measures::merging::{
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76 SpikeMerging,
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77 };
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78 use crate::forward_model::ForwardModel;
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79 use crate::seminorms::{
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80 DiscreteMeasureOp, Lipschitz
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81 };
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82 use crate::plot::{
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83 SeqPlotter,
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84 Plotting,
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85 PlotLookup
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86 };
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87 use crate::fb::{
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88 FBGenericConfig,
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89 FBSpecialisation,
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90 generic_pointsource_fb
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91 };
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92
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93 /// Acceleration
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94 #[derive(Clone, Copy, Eq, PartialEq, Serialize, Deserialize, ValueEnum, Debug)]
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95 pub enum Acceleration {
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96 /// No acceleration
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97 #[clap(name = "none")]
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98 None,
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99 /// Partial acceleration, $ω = 1/\sqrt{1+σ}$
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100 #[clap(name = "partial", help = "Partial acceleration, ω = 1/√(1+σ)")]
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101 Partial,
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102 /// Full acceleration, $ω = 1/\sqrt{1+2σ}$; no gap convergence guaranteed
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103 #[clap(name = "full", help = "Full acceleration, ω = 1/√(1+2σ); no gap convergence guaranteed")]
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104 Full
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105 }
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106
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107 /// Settings for [`pointsource_pdps`].
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108 #[derive(Clone, Copy, Eq, PartialEq, Serialize, Deserialize, Debug)]
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109 #[serde(default)]
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110 pub struct PDPSConfig<F : Float> {
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111 /// Primal step length scaling. We must have `τ0 * σ0 < 1`.
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112 pub τ0 : F,
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113 /// Dual step length scaling. We must have `τ0 * σ0 < 1`.
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114 pub σ0 : F,
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115 /// Accelerate if available
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116 pub acceleration : Acceleration,
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117 /// Generic parameters
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118 pub insertion : FBGenericConfig<F>,
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119 }
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120
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121 #[replace_float_literals(F::cast_from(literal))]
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122 impl<F : Float> Default for PDPSConfig<F> {
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123 fn default() -> Self {
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124 let τ0 = 0.5;
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125 PDPSConfig {
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126 τ0,
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127 σ0 : 0.99/τ0,
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128 acceleration : Acceleration::Partial,
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129 insertion : Default::default()
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130 }
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131 }
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132 }
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133
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134 /// Trait for subdifferentiable objects
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135 pub trait Subdifferentiable<F : Float, V, U=V> {
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136 /// Calculate some subdifferential at `x`
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137 fn some_subdifferential(&self, x : V) -> U;
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138 }
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139
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140 /// Type for indicating norm-2-squared data fidelity.
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141 pub struct L2Squared;
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142
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143 impl<F : Float, V : Euclidean<F>> Subdifferentiable<F, V> for L2Squared {
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144 fn some_subdifferential(&self, x : V) -> V { x }
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145 }
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146
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147 impl<F : Float + nalgebra::RealField> Subdifferentiable<F, DVector<F>> for L1 {
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148 fn some_subdifferential(&self, mut x : DVector<F>) -> DVector<F> {
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149 // nalgebra sucks for providing second copies of the same stuff that's elsewhere as well.
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150 x.iter_mut()
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151 .for_each(|v| if *v != F::ZERO { *v = *v/<F as NumTraitsFloat>::abs(*v) });
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152 x
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153 }
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154 }
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155
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156 /// Specialisation of [`generic_pointsource_fb`] to PDPS.
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157 pub struct PDPS<
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158 'a,
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159 F : Float + ToNalgebraRealField,
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160 A : ForwardModel<Loc<F, N>, F>,
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161 D,
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162 const N : usize
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163 > {
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164 /// The data
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165 b : &'a A::Observable,
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166 /// The forward operator
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167 opA : &'a A,
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168 /// Primal step length
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169 τ : F,
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170 // Dual step length
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171 σ : F,
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172 /// Whether acceleration should be applied (if data term supports)
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173 acceleration : Acceleration,
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174 /// The dataterm. Only used by the type system.
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175 _dataterm : D,
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176 /// Previous dual iterate.
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177 y_prev : A::Observable,
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178 }
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179
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180 /// Implementation of [`FBSpecialisation`] for μPDPS with norm-2-squared data fidelity.
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181 #[replace_float_literals(F::cast_from(literal))]
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182 impl<
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183 'a,
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184 F : Float + ToNalgebraRealField,
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185 A : ForwardModel<Loc<F, N>, F>,
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186 const N : usize
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187 > FBSpecialisation<F, A::Observable, N> for PDPS<'a, F, A, L2Squared, N>
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188 where for<'b> &'b A::Observable : std::ops::Add<A::Observable, Output=A::Observable> {
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189
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190 fn update(
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191 &mut self,
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192 μ : &mut DiscreteMeasure<Loc<F, N>, F>,
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193 μ_base : &DiscreteMeasure<Loc<F, N>, F>
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194 ) -> (A::Observable, Option<F>) {
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195 let σ = self.σ;
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196 let τ = self.τ;
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197 let ω = match self.acceleration {
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198 Acceleration::None => 1.0,
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199 Acceleration::Partial => {
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200 let ω = 1.0 / (1.0 + σ).sqrt();
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201 self.σ = σ * ω;
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202 self.τ = τ / ω;
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203 ω
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204 },
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205 Acceleration::Full => {
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206 let ω = 1.0 / (1.0 + 2.0 * σ).sqrt();
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207 self.σ = σ * ω;
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208 self.τ = τ / ω;
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209 ω
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210 },
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211 };
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212
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213 μ.prune();
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214
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215 let mut y = self.b.clone();
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216 self.opA.gemv(&mut y, 1.0 + ω, μ, -1.0);
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217 self.opA.gemv(&mut y, -ω, μ_base, 1.0);
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218 y.axpy(1.0 / (1.0 + σ), &self.y_prev, σ / (1.0 + σ));
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219 self.y_prev.copy_from(&y);
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220
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221 (y, Some(self.τ))
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222 }
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223
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224 fn calculate_fit(
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225 &self,
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226 μ : &DiscreteMeasure<Loc<F, N>, F>,
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227 _y : &A::Observable
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228 ) -> F {
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229 self.calculate_fit_simple(μ)
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230 }
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231
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232 fn calculate_fit_simple(
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233 &self,
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234 μ : &DiscreteMeasure<Loc<F, N>, F>,
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235 ) -> F {
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236 let mut residual = self.b.clone();
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237 self.opA.gemv(&mut residual, 1.0, μ, -1.0);
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238 residual.norm2_squared_div2()
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239 }
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240 }
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241
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242 /// Implementation of [`FBSpecialisation`] for μPDPS with norm-1 data fidelity.
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243 #[replace_float_literals(F::cast_from(literal))]
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244 impl<
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245 'a,
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246 F : Float + ToNalgebraRealField,
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247 A : ForwardModel<Loc<F, N>, F>,
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248 const N : usize
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249 > FBSpecialisation<F, A::Observable, N> for PDPS<'a, F, A, L1, N>
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250 where A::Observable : Projection<F, Linfinity> + Norm<F, L1>,
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251 for<'b> &'b A::Observable : std::ops::Add<A::Observable, Output=A::Observable> {
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252 fn update(
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253 &mut self,
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254 μ : &mut DiscreteMeasure<Loc<F, N>, F>,
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255 μ_base : &DiscreteMeasure<Loc<F, N>, F>
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256 ) -> (A::Observable, Option<F>) {
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257 let σ = self.σ;
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258
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259 μ.prune();
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260
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261 //let ȳ = self.opA.apply(μ) * 2.0 - self.opA.apply(μ_base);
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262 //*y = proj_{[-1,1]}(&self.y_prev + (ȳ - self.b) * σ)
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263 let mut y = self.y_prev.clone();
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264 self.opA.gemv(&mut y, 2.0 * σ, μ, 1.0);
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265 self.opA.gemv(&mut y, -σ, μ_base, 1.0);
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266 y.axpy(-σ, self.b, 1.0);
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267 y.proj_ball_mut(1.0, Linfinity);
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268 self.y_prev.copy_from(&y);
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269
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270 (y, None)
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271 }
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272
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273 fn calculate_fit(
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274 &self,
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275 μ : &DiscreteMeasure<Loc<F, N>, F>,
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276 _y : &A::Observable
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277 ) -> F {
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278 self.calculate_fit_simple(μ)
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279 }
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280
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281 fn calculate_fit_simple(
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282 &self,
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283 μ : &DiscreteMeasure<Loc<F, N>, F>,
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284 ) -> F {
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285 let mut residual = self.b.clone();
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286 self.opA.gemv(&mut residual, 1.0, μ, -1.0);
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287 residual.norm(L1)
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288 }
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289 }
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290
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291 /// Iteratively solve the pointsource localisation problem using primal-dual proximal splitting.
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292 ///
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293 /// The `dataterm` should be either [`L1`] for norm-1 data term or [`L2Squared`] for norm-2-squared.
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294 /// The settings in `config` have their [respective documentation](PDPSConfig). `opA` is the
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295 /// forward operator $A$, $b$ the observable, and $\lambda$ the regularisation weight.
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296 /// The operator `op𝒟` is used for forming the proximal term. Typically it is a convolution
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297 /// operator. Finally, the `iterator` is an outer loop verbosity and iteration count control
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298 /// as documented in [`alg_tools::iterate`].
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299 ///
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300 /// For the mathematical formulation, see the [module level](self) documentation and the manuscript.
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301 ///
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302 /// Returns the final iterate.
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303 #[replace_float_literals(F::cast_from(literal))]
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304 pub fn pointsource_pdps<'a, F, I, A, GA, 𝒟, BTA, G𝒟, S, K, D, const N : usize>(
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305 opA : &'a A,
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306 b : &'a A::Observable,
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307 α : F,
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308 op𝒟 : &'a 𝒟,
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309 config : &PDPSConfig<F>,
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310 iterator : I,
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311 plotter : SeqPlotter<F, N>,
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312 dataterm : D,
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313 ) -> DiscreteMeasure<Loc<F, N>, F>
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314 where F : Float + ToNalgebraRealField,
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315 I : AlgIteratorFactory<IterInfo<F, N>>,
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316 for<'b> &'b A::Observable : std::ops::Neg<Output=A::Observable>
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317 + std::ops::Add<A::Observable, Output=A::Observable>,
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318 //+ std::ops::Mul<F, Output=A::Observable>, // <-- FIXME: compiler overflow
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319 A::Observable : std::ops::MulAssign<F>,
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320 GA : SupportGenerator<F, N, SupportType = S, Id = usize> + Clone,
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321 A : ForwardModel<Loc<F, N>, F, PreadjointCodomain = BTFN<F, GA, BTA, N>>
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322 + Lipschitz<𝒟, FloatType=F>,
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323 BTA : BTSearch<F, N, Data=usize, Agg=Bounds<F>>,
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324 G𝒟 : SupportGenerator<F, N, SupportType = K, Id = usize> + Clone,
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325 𝒟 : DiscreteMeasureOp<Loc<F, N>, F, PreCodomain = PreBTFN<F, G𝒟, N>>,
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326 𝒟::Codomain : RealMapping<F, N>,
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327 S: RealMapping<F, N> + LocalAnalysis<F, Bounds<F>, N>,
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328 K: RealMapping<F, N> + LocalAnalysis<F, Bounds<F>, N>,
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329 BTNodeLookup: BTNode<F, usize, Bounds<F>, N>,
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330 Cube<F, N>: P2Minimise<Loc<F, N>, F>,
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331 PlotLookup : Plotting<N>,
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332 DiscreteMeasure<Loc<F, N>, F> : SpikeMerging<F>,
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333 PDPS<'a, F, A, D, N> : FBSpecialisation<F, A::Observable, N>,
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334 D : Subdifferentiable<F, A::Observable> {
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335
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336 let y = dataterm.some_subdifferential(-b);
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337 let l = opA.lipschitz_factor(&op𝒟).unwrap().sqrt();
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338 let τ = config.τ0 / l;
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339 let σ = config.σ0 / l;
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340
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341 let pdps = PDPS {
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342 b,
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343 opA,
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344 τ,
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345 σ,
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346 acceleration : config.acceleration,
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347 _dataterm : dataterm,
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348 y_prev : y.clone(),
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349 };
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350
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351 generic_pointsource_fb(
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352 opA, α, op𝒟, τ, &config.insertion, iterator, plotter, y,
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353 pdps
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354 )
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355 }

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