DocumentCode :
156929
Title :
Automatic classification of sleep stages using EEG records based on Fuzzy c-means (FCM) algorithm
Author :
Obayya, Marwa ; Abou-Chadi, F.E.Z.
fYear :
2014
fDate :
28-30 April 2014
Firstpage :
265
Lastpage :
272
Abstract :
Currently in the world there is an alarming number of people who suffer from sleep disorders. A number of biomedical signals, such as EEG, EMG, ECG and EOG are used in sleep labs among others for diagnosis and treatment of sleep related disorders. The usual method for sleep stages classification is visual inspection by a sleep specialist. This is a very time consuming and laborious exercise. Automatic sleep stages classification can facilitate this process. In this work an attempt was made to classify six sleep stages consisting of Awake, Stage1, Stage2, Stage3, Stage4, and REMS. Spectral analysis, Wavelet transform and Fuzzy clustering based on fuzzy c-means algorithm (FCM) were deployed for this purpose. Twelve recordings of a healthy six stages studied per 30s epochs. The results demonstrated that the performance for automatically discriminated for these six sleep stages from each other when using wavelet packet with sym3 where the classification was with average 92.27%.
Keywords :
electroencephalography; fuzzy set theory; medical disorders; medical signal processing; pattern clustering; signal classification; sleep; spectral analysis; wavelet transforms; ECG; EEG records; EMG; EOG; FCM algorithm; REMS classification; automatic sleep stage classification; awake stage classification; biomedical signals; fuzzy c-means algorithm; fuzzy clustering; sleep disorder diagnosis; sleep disorder treatment; sleep labs; sleep specialist visual inspection; sleep stage1 classification; sleep stage2 classification; sleep stage3 classification; sleep stage4 classification; spectral analysis; sym3; time 30 s; wavelet packet; wavelet transform; Discrete wavelet transforms; Electroencephalography; Feature extraction; Sleep; Vectors; Wavelet packets; electroencephalogram (EEG); fuzzy c-means; sleep analysis;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Radio Science Conference (NRSC), 2014 31st National
Conference_Location :
Cairo
Print_ISBN :
978-1-4799-3820-9
Type :
conf
DOI :
10.1109/NRSC.2014.6835085
Filename :
6835085
Link To Document :
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