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  5. Hurst exponent based brain behavior analysis of stroke patients using eeg signals
 
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Hurst exponent based brain behavior analysis of stroke patients using eeg signals

Journal
Lecture Notes in Electrical Engineering
ISSN
18761100
Date Issued
2021-01-01
Author(s)
Choong W.Y.
Wan Khairunizam Wan Ahmad
Universiti Malaysia Perlis
Murugappan M.
Omar M.I.
Bong S.Z.
Ahmad Kadri Junoh
Universiti Malaysia Perlis
Zuradzman Mohamad Razlan
Universiti Malaysia Perlis
Shahriman Abu Bakar
Universiti Malaysia Perlis
Wan Azani Wan Mustafa
DOI
10.1007/978-981-15-5281-6_66
Abstract
The stroke patients perceive emotions differently with normal people due to emotional disturbances, the emotional impairment of the stroke patients can be effectively analyzed using the EEG signal. The EEG signal has been known as non-linear and the neuronal oscillation under different mental states can be observed by non-linear method. The non-linear analysis of different emotional states in the EEG signal was performed by using hurst exponent (HURST). In this study, the long-range temporal correlation (LRTC) was examined in the emotional EEG signal of stroke patients and normal control subjects. The estimation of the HURST was more statistically significant in normal group than the stroke groups. In this study, the statistical test on the HURST has shown a more significant different among the emotional states of normal subject compared to the stroke patients. Particularly, it was also found that the gamma frequency band in the emotional EEG has shown more statistically significant among the different emotional states.
Funding(s)
Ministry of Higher Education, Malaysia
Subjects
  • Electroencephalogram ...

File(s)
Research repository notification.pdf (4.4 MB)
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