Affiliation:
1. Laboratory of Innovative Technologies, National School of Applied Sciences, Tangier, Morocco
Abstract
The FCM (fuzzy c-mean) algorithm has been extended and modified in many ways in order to solve the image segmentation problem. However, almost all the extensions require the adjustment of at least one parameter that depends on the image itself. To overcome this problem and provide a robust fuzzy clustering algorithm that is fully free of the empirical parameters and noise type-independent, we propose a new factor that includes the local spatial and the gray level information. Actually, this work provides three extensions of the FCM algorithm that proved their efficiency on synthetic and real images.
Subject
Computational Mathematics,Control and Optimization,Control and Systems Engineering
Cited by
8 articles.
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