Affiliation : Department of Electrical Engineering, Amirkabir University of Technology
Country : Iran
Category : Information Technology Management
Volume, Issue, Month, Year : 8, 2, January, 2018
Abstract
Magnetic
resonance imaging (MRI) can support and substitute clinical information in the
diagnosis of multiple sclerosis (MS) by presenting lesion. In this paper, we
present an algorithm for MS lesion segmentation. We revisit the modification of
properties of fuzzy c means algorithms and the canny edge detection. Using
reformulated fuzzy c means algorithms, apply canny contraction principle, and
establish a relationship between MS lesions and edge detection. For the special
case of FCM, we derive a sufficient condition for fixed lesions, allowing
identification of them as (local) minima of the objective function.
Keyword : Multiple Sclerosis, MRI, T2, fuzzy c-means (FCM), Canny.
For More Details : https://airccj.org/CSCP/vol8/csit88210.pdf
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