Efficient Interpolation of Density Estimators
November 10, 2020 Β· Declared Dead Β· π International Conference on Artificial Intelligence and Statistics
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Authors
Paxton Turner, Jingbo Liu, Philippe Rigollet
arXiv ID
2011.04922
Category
math.ST
Cross-listed
cs.LG,
stat.ML
Citations
3
Venue
International Conference on Artificial Intelligence and Statistics
Last Checked
6 months ago
Abstract
We study the problem of space and time efficient evaluation of a nonparametric estimator that approximates an unknown density. In the regime where consistent estimation is possible, we use a piecewise multivariate polynomial interpolation scheme to give a computationally efficient construction that converts the original estimator to a new estimator that can be queried efficiently and has low space requirements, all without adversely deteriorating the original approximation quality. Our result gives a new statistical perspective on the problem of fast evaluation of kernel density estimators in the presence of underlying smoothness. As a corollary, we give a succinct derivation of a classical result of Kolmogorov---Tikhomirov on the metric entropy of HΓΆlder classes of smooth functions.
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