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Locality-sensitive hashing in function spaces (2002.03909v1)

Published 10 Feb 2020 in cs.LG, math.PR, and stat.ML

Abstract: We discuss the problem of performing similarity search over function spaces. To perform search over such spaces in a reasonable amount of time, we use {\it locality-sensitive hashing} (LSH). We present two methods that allow LSH functions on $\mathbb{R}N$ to be extended to $Lp$ spaces: one using function approximation in an orthonormal basis, and another using (quasi-)Monte Carlo-style techniques. We use the presented hashing schemes to construct an LSH family for Wasserstein distance over one-dimensional, continuous probability distributions.

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Authors (2)
  1. Will Shand (2 papers)
  2. Stephen Becker (63 papers)