Epilepsy detection on EEG data using backpropagation, firefly algorithm and simulated annealing

A. Damayanti, A. B. Pratiwi, Miswanto
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引用次数: 13

Abstract

Epilepsy is a central system disorder of human brain in which nerve cell activity becomes disrupted, causing seizures or periods of unsual behaviour, sensations and sometimes loss of consciousness. The electroencephalogram (EEG) is a measure of brain waves can be used in evaluation of brain disorders, one of which epilepsy. In this paper, epilepsy detection system on EEG data is built using combination of backpropagation and simulated annealing. Firefly algorithm and simulated annealing are used to determine optimal learning rate and number of unit hidden on backpropagation process. Then learning rate and number of unit hidden are used for trainning and validation backpropagation testing process on EEG data epilepsi detection. The percentages of success rate detection epilepsy EEG data obtained for 93.3% using the learning rate 0.93 and the number of hidden layer units as much as 7 to mean square error of 0.00535.
基于反向传播、萤火虫算法和模拟退火的脑电图数据癫痫检测
癫痫是一种人类大脑中枢系统紊乱,其中神经细胞活动受到破坏,导致癫痫发作或出现不寻常的行为、感觉,有时甚至丧失意识。脑电图(EEG)是一种测量脑电波的方法,可用于评估脑部疾病,癫痫就是其中之一。本文采用反向传播和模拟退火相结合的方法,建立了基于脑电数据的癫痫检测系统。采用萤火虫算法和模拟退火算法确定最优学习率和反向传播过程中隐藏的单元数。然后利用学习率和隐藏单元数对EEG数据的反向传播测试过程进行训练和验证。在学习率为0.93且隐含层单元数多达7个的情况下,检测癫痫脑电图数据的成功率百分比为93.3%,均方误差为0.00535。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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