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Pattern recognition system for the discrimination of multiple sclerosis from cerebral microangiopathy lesions based on texture analysis of magnetic resonance images

✍ Scribed by Pantelis Theocharakis; Dimitris Glotsos; Ioannis Kalatzis; Spiros Kostopoulos; Pantelis Georgiadis; Koralia Sifaki; Katerina Tsakouridou; Menelaos Malamas; George Delibasis; Dionisis Cavouras; George Nikiforidis


Publisher
Elsevier Science
Year
2009
Tongue
English
Weight
274 KB
Volume
27
Category
Article
ISSN
0730-725X

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✦ Synopsis


In this study, a pattern recognition system has been developed for the discrimination of multiple sclerosis (MS) from cerebral microangiopathy (CM) lesions based on computer-assisted texture analysis of magnetic resonance images. Twenty-three textural features were calculated from MS and CM regions of interest, delineated by experienced radiologists on fluid attenuated inversion recovery images and obtained from 11 patients diagnosed with clinically definite MS and from 18 patients diagnosed with clinically definite CM. The probabilistic neural network classifier was used to construct the proposed pattern recognition system and the generalization of the system to unseen data was evaluated using an external cross validation process. According to the findings of the present study, statistically significant differences exist in the values of the textural features between CM and MS: MS regions were darker, of higher contrast, less homogeneous and rougher as compared to CM.