Mahmoud I. Kamel

Work place: Faculty of Computing and Information Technology King Abdulaziz University KAU, Jeddah, Saudi Arabia

E-mail: miali@kau.edu.sa

Website:

Research Interests: Computer Science & Information Technology, Computer systems and computational processes, Artificial Intelligence, Pattern Recognition

Biography

Dr. M.I. Kamel All. Born in 1955, Cairo, Bsc. from Electronic Egypt, and communication department (1978) Cairo university. PhD.Systems and Computer Engineering, 1991, Al-Azhar University. Visiting Professor, University of Al Ain United Arab Emirates, Al Ain, United Arab
Emirates (1993). 1993 - 2002: Consultant, Research Center, Cairo University, Cairo, Egypt. 2002-2012 King Abdulaziz University (Computer Science Department). Research Interests: Industrial Automatic Control, Modeling and Simulation, Artificial Intelligence, Pattern Recognition, Brain Computer Interface

Author Articles
EEG based Autism Diagnosis Using Regularized Fisher Linear Discriminant Analysis

By Mahmoud I. Kamel Mohammed J. Alhaddad Hussein M. Malibary Khalid Thabit Foud Dahlwi Ebtehal A. Alsaggaf Anas A. Hadi

DOI: https://doi.org/10.5815/ijigsp.2012.03.06, Pub. Date: 8 Apr. 2012

Diagnosis of autism is one of the difficult problems facing researchers. To reveal the discriminative pattern between autistic and normal children via electroencephalogram (EEG) analysis is a big challenge. The feature extraction is averaged Fast Fourier Transform (FFT) with the Regulated Fisher Linear Discriminant (RFLD) classifier. 
Gaussinaty condition for the optimality of Regulated Fisher Linear Discriminant (RFLD) has been achieved by a well-conditioned appropriate preprocessing of the data, as well as optimal shrinkage technique for the Lambda parameter. Winsorised Filtered Data gave the best result.

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