2020
DOI: 10.2478/ausi-2020-0018
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A review on suppressed fuzzy c-means clustering models

Abstract: Suppressed fuzzy c-means clustering was proposed as an attempt to combine the better properties of hard and fuzzy c-means clustering, namely the quicker convergence of the former and the finer partition quality of the latter. In the meantime, it became much more than that. Its competitive behavior was revealed, based on which it received two generalization schemes. It was found a close relative of the so-called fuzzy c-means algorithm with generalized improved partition, which could improve its popularity due … Show more

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Cited by 6 publications
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