On Clustering Users' Behaviors in Video Sessions

Abstract
We study the extraction of characteristics of user behavior in video session encoded as stochastic matrices of finite Markov chain. These behaviors are clustered using a dissimilarity based on the Kullbach-Leibler divergence between probability distributions. The center of each cluster is regarded as the model that generates the behaviors assigned to the cluster. This choice is based on the relationship that we establish between the...
Paper Details
Title
On Clustering Users' Behaviors in Video Sessions
Published Date
Jun 25, 2007
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