DocumentCode :
2234243
Title :
Performance analysis of fuzzy techniques hierarchical aggregation functions decision trees and Support Vector Machine (SVM)for the classification of epilepsy risk levels from EEG signals
Author :
Harikumar, R. ; Vijaykumar, T. ; Palanisamy, C.
Author_Institution :
Bannari Amman Inst. of Technol., Sathyamangalam, India
fYear :
2011
fDate :
22-24 Sept. 2011
Firstpage :
509
Lastpage :
514
Abstract :
The objective of this paper is to compare the performance of Hierarchical Soft (max-min) Decision Trees and Support Vector Machine (SVM) in optimization of fuzzy outputs for the classification of epilepsy risk levels from EEG (Electroencephalogram) signals. The fuzzy pre classifier is used to classify the risk levels of epilepsy based on extracted parameters like energy, variance, peaks, sharp and spike waves, duration, events and covariance from the EEG signals of the patient. Hierarchical Soft Decision Tree (HDT post classifiers with max-min criteria of four types) and Support Vector Machine (SVM) are applied on the classified data to identify the optimized risk level (singleton) which characterizes the patient´s risk level. The efficacy of the above methods is compared based on the bench mark parameters such as Performance Index (PI), and Quality Value (QV).
Keywords :
decision trees; electroencephalography; fuzzy set theory; medical signal processing; signal classification; support vector machines; EEG signals; electroencephalogram signal; epilepsy risk level classification; fuzzy preclassifier; fuzzy techniques hierarchical aggregation functions decision trees; hierarchical soft decision tree; performance analysis; performance index; quality value; support vector machine; Decision trees; Electroencephalography; Epilepsy; Optimization; Performance analysis; Support vector machines; Training; EEG Signals; Epilepsy Risk Levels; Fuzzy Logic; Hierarchical Soft Decision Trees; Support Vector Machine;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Recent Advances in Intelligent Computational Systems (RAICS), 2011 IEEE
Conference_Location :
Trivandrum
Print_ISBN :
978-1-4244-9478-1
Type :
conf
DOI :
10.1109/RAICS.2011.6069364
Filename :
6069364
Link To Document :
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