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比利时vs摩洛哥足彩 ,
university of california san diego

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probability and statistics colloquium

bruno pelletier

univ. montpellier ii

clustering with level sets

abstract:

the objective of clustering, or unsupervised classification, is to partition a set of observations into different groups, or clusters, based on their similarities. following hartigan, a cluster is defined as a connected component of an upper level set of the underlying density. in this talk, we introduce a spectral clustering algorithm on estimated level sets, and we establish its strong consistency. we also discuss the estimation of the number of connected components of density level sets.

host: dimitris politis

march 3, 2009

12:00 pm

ap&m 6402

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