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Please use this identifier to cite or link to this item: http://purl.org/purl/4228

Title: Spectral clustering independent component analysis for tissue classification from brain MRI
Authors: Kannan, Balakrishnan
Anil, Kumar
Sindhumol, S
Keywords: Multispectral analysis
Magnetic resonance imaging
Spectral angle mapping
Independent component analysis
Support vector machine
Issue Date: 30-Jul-2013
Publisher: Elsevier
Abstract: A spectral angle based feature extraction method, Spectral Clustering Independent Component Analysis (SC-ICA), is proposed in this work to improve the brain tissue classification from Magnetic Resonance Images (MRI). SC-ICA provides equal priority to global and local features; thereby it tries to resolve the inefficiency of conventional approaches in abnormal tissue extraction. First, input multispectral MRI is divided into different clusters by a spectral distance based clustering. Then, Independent Component Analysis (ICA) is applied on the clustered data, in conjunction with Support Vector Machines (SVM) for brain tissue analysis. Normal and abnormal datasets, consisting of real and synthetic T1-weighted, T2-weighted and proton density/fluid-attenuated inversion recovery images, were used to evaluate the performance of the new method. Comparative analysis with ICA based SVM and other conventional classifiers established the stability and efficiency of SC-ICA based classification, especially in reproduction of small abnormalities. Clinical abnormal case analysis demonstrated it through the highest Tanimoto Index/accuracy values, 0.75/98.8%, observed against ICA based SVM results, 0.17/96.1%, for reproduced lesions. Experimental results recommend the proposed method as a promising approach in clinical and pathological studies of brain diseases
Description: Biomedical Signal Processing and Control 8 (2013) 667– 674
URI: http://dyuthi.cusat.ac.in/purl/4228
Appears in Collections:Dr. Kannan Balakrishnan

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