Asymmetric distance estimation with sketches for similarity search in high-dimensional spaces

Wei Dong(Princeton University), Moses Charikar(Princeton University), Kai Li(Princeton University)
Unknown
July 20, 2008
Cited by 100

Abstract

Efficient similarity search in high-dimensional spaces is important to content-based retrieval systems. Recent studies have shown that sketches can effectively approximate L1 distance in high-dimensional spaces, and that filtering with sketches can speed up similarity search by an order of magnitude. It is a challenge to further reduce the size of sketches, which are already compact, without compromising accuracy of distance estimation.


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