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SD-KDE: Score-Debiased Kernel Density Estimation

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arxiv 2504.19084 v2 pith:TM2R2TBV submitted 2025-04-27 cs.LG stat.ML

classification cs.LGstat.ML
keywords densityestimationfunctionscoresd-kdestepbandwidthkernel
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We propose a novel method for density estimation that leverages an estimated score function to debias kernel density estimation (SD-KDE). In our approach, each data point is adjusted by taking a single step along the score function with a specific choice of step size, followed by standard KDE with a modified bandwidth. The step size and modified bandwidth are chosen to remove the leading order bias in the KDE. Our experiments on synthetic tasks in 1D, 2D and on MNIST, demonstrate that our proposed SD-KDE method significantly reduces the mean integrated squared error compared to the standard Silverman KDE, even with noisy estimates in the score function. These results underscore the potential of integrating score-based corrections into nonparametric density estimation.

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Cited by 1 Pith paper

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  1. Simulating Fokker-Planck equations via mean field control of score-based normalizing flows

    math.OC 2025-06 conditional novelty 4.0 of 10

    A mean field control formulation using score-based normalizing flows simulates Fokker-Planck equations deterministically, with a convergence theorem for Ornstein-Uhlenbeck processes and experiments on Langevin and cha...

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