Fusion of image segmentation algorithms using consensus clustering
Preprint 2013 en
Authors
MÖ
Mete Özay
FV
Fatoş T. Yarman Vural
SK
Sanjeev R. Kulkarni
Abstract
1 min read
A new segmentation fusion method is proposed that ensembles the output of several segmentation algorithms applied on a remotely sensed image. The candidate segmentation sets are processed to achieve a consensus segmentation using a stochastic optimization algorithm based on the Filtered Stochastic BOEM (Best One Element Move) method. For this purpose, Filtered Stochastic BOEM is reformulated as a segmentation fusion problem by designing a new distance learning approach. The proposed algorithm also embeds the computation of the optimum number of clusters into the segmentation fusion problem.
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