Clustering of variables defined on the hypersphere: a comparison of methods
Clustering of variables defined on the hypersphere: a comparison of methods
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Date
2012
Authors
Paulo Gomes
Adelaide Figueiredo
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Abstract
We discuss the identi cation of a mixture of Watson distributions de ned on the hypersphere
using the dynamic clusters algorithm and the EM algorithm (Estimation-Maximization). The
identi cation of the mixture allows us to obtain homogeneous groups of variables, such that each
group is associated with a privileged direction, whose maximum likelihood estimate corresponds
to the rst principal component of the group and is associated with a parameter that measures
the concentration around the privileged direction. Our aim is to compare the two algorithms
used in the identi cation of the mixture by analyzing simulated and real data.