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IDEAL
2000
Springer

Clustering by Similarity in an Auxiliary Space

13 years 8 months ago
Clustering by Similarity in an Auxiliary Space
Abstract. We present a clustering method for continuous data. It defines local clusters into the (primary) data space but derives its similarity measure from the posterior distributions of additional discrete data that occur as pairs with the primary data. As a case study, enterprises are clustered by deriving the similarity measure from bankruptcy sensitivity. In another case study, a content-based clustering for text documents is found by measuring differences between their metadata (keyword distributions). We show that minimizing our Kullback
Janne Sinkkonen, Samuel Kaski
Added 25 Aug 2010
Updated 25 Aug 2010
Type Conference
Year 2000
Where IDEAL
Authors Janne Sinkkonen, Samuel Kaski
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