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Saturday, December 7 • 7:00pm - 11:59pm
Density estimation from unweighted k-nearest neighbor graphs: a roadmap

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Consider an unweighted k-nearest neighbor graph on n points that have been sampled i.i.d. from some unknown density p on R^d. We prove how one can estimate the density p just from the unweighted adjacency matrix of the graph, without knowing the points themselves or their distance or similarity scores. The key insights are that local differences in link numbers can be used to estimate some local function of p, and that integrating this function along shortest paths leads to an estimate of the underlying density.
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Saturday December 7, 2013 7:00pm - 11:59pm PST
Harrah's Special Events Center, 2nd Floor
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  • posterid Sat56
  • location Poster# Sat56

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