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April 29, 1996Physical Review Letters544 citations

Superparamagnetic Clustering of Data

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MBMarcelo BlattSWShai WisemanEDEytan Domany

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Abstract

We present a new approach for clustering, based on the physical properties of an inhomogeneous ferromagnetic model. We do not assume any structure of the underlying distribution of the data. A Potts spin is assigned to each data point and short range interactions between neighboring points are introduced. Spin-spin correlations, measured (by Monte Carlo procedure) in a superparamagnetic regime in which aligned domains appear, serve to partition the data points into clusters. Our method outperforms other algorithms for toy problems as well as for real data.

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Cite This Study

Blatt et al. (1996) studied this question.

synapsesocial.com/papers/6a0b6049f6ae10cc607fc8fdhttps://doi.org/10.1103/physrevlett.76.3251
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