A new parametric feature descriptor for the classification of epileptic and control EEG records in pediatric
Mercedes Cabrerizo1, Melvin Ayala, Mohammed Goryawala
1Center for Advanced Technology and Education, College of Engineering and Computing, Florida International University, Miami, FL 33174, USA. cabreriz@fiu.edu
Abstract:
This study evaluates the sensitivity, specificity and accuracy in associating scalp EEG to either control or epileptic patients by means of artificial neural networks (ANNs) and support vector machines (SVMs). A confluence of frequency and temporal parameters are extracted from the EEG to serve as input features to well-configured ANN and SVM networks. Through these classification results, we thus can infer the occurrence of high-risk (epileptic) as well as low risk (control) patients for potential follow up procedures.
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