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Near-optimal sample compression for nearest neighbors

13 April 2014
Lee-Ad Gottlieb
A. Kontorovich
ArXiv (abs)PDFHTML
Abstract

We present the first sample compression algorithm for nearest neighbors with non-trivial performance guarantees. We complement these guarantees by demonstrating almost matching hardness lower bounds, which show that our bound is nearly optimal. Our result yields new insight into margin-based nearest neighbor classification in metric spaces and allows us to significantly sharpen and simplify existing bounds. Some encouraging empirical results are also presented.

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