Please use this identifier to cite or link to this item: https://ir.swu.ac.th/jspui/handle/123456789/14814
Title: Comparison study of muscular-contraction classification between independent component analysis and artificial neural network
Authors: Sueaseenak D.
Wibirama S.
Chanwimalueang T.
Pintavirooj C.
Sangworasil M.
Keywords: Acquisition systems
ANN
ANN classification
Artificial Neural Network
B-spline interpolation technique
Comparison study
Computational time
Electromyogram
EMG
EMG signal
ICA
Multi-channel
Muscle contractions
Muscular contraction
PCA
Surface electrode
Surface mapping
Topological mapping
Backpropagation
Hemodynamics
Muscle
Neural networks
Shrinkage
Splines
Independent component analysis
Issue Date: 2008
Abstract: We developed a multi-channel electromyogram acquisition system using PSOC microcontroller to acquire multichannel EMG signals. An array of 4 x 4 surface electrodes was used to record the EMG signal. The obtained signals were classified by a back-propagation-type artificial neural network. B-spline interpolation technique has been utilized to map the EMG signal on the muscle surface. The topological mapping of the EMG is then analyzed to classify the pattern of muscle contraction using independent component analysis. The proposed system was successfully demonstrated to record EMG data and its surface mapping. The comparison study of muscular contraction classification using independent component analysis and artificial neural network demonstrates shows that performance of ANN classification is as comparable as that of the ICA. The computational time of ANN is also less than that of the ICA. © 2008 IEEE.
URI: https://ir.swu.ac.th/jspui/handle/123456789/14814
https://www.scopus.com/inward/record.uri?eid=2-s2.0-67549107947&doi=10.1109%2fISCIT.2008.4700236&partnerID=40&md5=74a30fe48577f80bc6f2466186853dd1
Appears in Collections:Scopus 1983-2021

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