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Improvement of Clustering for Hyperspectral Images using Spectral Information Divergence

Hamid Ezzatabadi Pour

Volume 10, Issue 3 , January 2019, , Pages 17-32

Abstract
  K-Means is one of the most frequently used unsupervised classification approaches for remotely sensed image analysis. In standard K-Means version, the Euclidean distance (ED) has used to estimate the dissimilarity between an unknown vector data and the cluster center. Since, this measure is very sensitive ...  Read More