DocumentCode :
2116511
Title :
Neural, Fuzzy And Neurofuzzy Approach To Classification Of Normal And Alcoholic Electroencephalograms
Author :
Yazdani, Ashkan ; Ataee, Pedram ; Setarehdan, S. Kamaledin ; Araabi, Babak N. ; Lucas, Caro
Author_Institution :
Univ. of Tehran, Tehran
fYear :
2007
fDate :
27-29 Sept. 2007
Firstpage :
102
Lastpage :
106
Abstract :
According to the literature, many psychiatric phenotypes, brain disorders and/or mental tasks can be detected by analyzing EEG signals. One such a psychiatric phenotype is alcoholism. In this paper the parameters of second order autoregressive model, peak amplitude of the power spectrum, mean of absolute value and the variance of the signal are extracted as features of the signal. The dimension of the feature vector is then reduced by means of PCA. Next a method based on fuzzy inference system as a fuzzy approach in classification is investigated. In this method first the data in each class is divided into two clusters separately and a Gaussian membership function is defined for each cluster. Classification is performed by means of if-then rules generated in the previous step. Then an adaptive neurofuzzy inference system is used for classification. Due to the ability of the neurofuzzy inference system to be trained higher classification accuracy is achieved. Finally with the use of a multilayer perceptron structure it is shown that an accuracy of 100% can be achieved for separating the two classes.
Keywords :
Gaussian processes; autoregressive processes; electroencephalography; feature extraction; fuzzy neural nets; inference mechanisms; medical signal processing; multilayer perceptrons; signal classification; EEG; Gaussian membership function; adaptive neurofuzzy inference system; alcoholic electroencephalograms; brain disorders; feature extraction; fuzzy inference system; mental tasks; multilayer perceptron; neural network; power spectrum; psychiatric phenotypes; second order autoregressive model; signal classification; Alcoholism; Brain modeling; Data mining; Electroencephalography; Feature extraction; Fuzzy systems; Power system modeling; Principal component analysis; Psychology; Signal analysis;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Image and Signal Processing and Analysis, 2007. ISPA 2007. 5th International Symposium on
Conference_Location :
Istanbul
ISSN :
1845-5921
Print_ISBN :
978-953-184-116-0
Type :
conf
DOI :
10.1109/ISPA.2007.4383672
Filename :
4383672
Link To Document :
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