Advances in electromyogram signal classification to improve the quality of life for the disabled and aged people
The social demands for the Quality Of Life (QOL) are increasing with the exponentially expanding silver generation. To improve the QOL of the disabled and elderly people, robotic researchers and biomedical engineers have been trying to combine their techniques into the rehabilitation systems. Vario...
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my.iium.irep.56162020-10-20T03:31:21Z http://irep.iium.edu.my/5616/ Advances in electromyogram signal classification to improve the quality of life for the disabled and aged people Ahsan, Md. Rezwanul Ibrahimy, Muhammad Ibn Khalifa, Othman Omran T Technology (General) The social demands for the Quality Of Life (QOL) are increasing with the exponentially expanding silver generation. To improve the QOL of the disabled and elderly people, robotic researchers and biomedical engineers have been trying to combine their techniques into the rehabilitation systems. Various biomedical signals (biosignals) acquired from a specialized tissue, organ, or cell system like the nervous system are the driving force for the entire system. Examples of biosignals include Electro-Encephalogram (EEG), Electrooculogram (EOG), Electroneurogram (ENG) and (EMG). Approach: Among the biosignals, the research on EMG signal processing and controlling is currently expanding in various directions. EMG signal based research is ongoing for the development of simple, robust, user friendly, efficient interfacing devices/systems for the disabled. The advancement can be observed in the area of robotic devices, prosthesis limb, exoskeleton, wearable computer, I/O for virtual reality games and physical exercise equipments. An EMG signal based graphical controller or interfacing system enables the physically disabled to use word processing programs, other personal computer software and internet. Results: Depending on the application, the acquired and processed signals need to be classified for interpreting into mechanical force or machine/computer command. Conclusion: This study focused on the advances and improvements on different methodologies used for EMG signal classification with their efficiency, flexibility and applications. This review will be beneficial to the EMG signal researchers as a reference and comparison study of EMG classifier. For the development of robust, flexible and efficient applications,this study opened a pathway to the researchers in performing future comparative studies between different EMG classification methods. Science Publications 2010 Article PeerReviewed application/pdf en http://irep.iium.edu.my/5616/1/Advances_in_Electromyogram_Signal_Classification_to_Improve_the_Quality_of_Life_for_the_Disabled_and_Aged_People.pdf Ahsan, Md. Rezwanul and Ibrahimy, Muhammad Ibn and Khalifa, Othman Omran (2010) Advances in electromyogram signal classification to improve the quality of life for the disabled and aged people. Journal of Computer Science, 6 (7). pp. 705-715. ISSN 1549-3636 http://thescipub.com/jcs.toc |
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T Technology (General) Ahsan, Md. Rezwanul Ibrahimy, Muhammad Ibn Khalifa, Othman Omran Advances in electromyogram signal classification to improve the quality of life for the disabled and aged people |
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The social demands for the Quality Of Life (QOL) are increasing with the exponentially expanding silver generation. To improve the QOL of the disabled and elderly people, robotic researchers and biomedical engineers have been trying to combine their techniques into the
rehabilitation systems. Various biomedical signals (biosignals) acquired from a specialized tissue,
organ, or cell system like the nervous system are the driving force for the entire system. Examples of
biosignals include Electro-Encephalogram (EEG), Electrooculogram (EOG), Electroneurogram (ENG)
and (EMG). Approach: Among the biosignals, the research on EMG signal processing and controlling is currently expanding in various directions. EMG signal based research is ongoing for the development of simple, robust, user friendly, efficient interfacing devices/systems for the disabled. The advancement can be observed in the area of robotic devices, prosthesis limb, exoskeleton, wearable
computer, I/O for virtual reality games and physical exercise equipments. An EMG signal based graphical controller or interfacing system enables the physically disabled to use word processing programs, other personal computer software and internet. Results: Depending on the application, the acquired and processed signals need to be classified for interpreting into mechanical force or
machine/computer command. Conclusion: This study focused on the advances and improvements on different methodologies used for EMG signal classification with their efficiency, flexibility and applications. This review will be beneficial to the EMG signal researchers as a reference and
comparison study of EMG classifier. For the development of robust, flexible and efficient applications,this study opened a pathway to the researchers in performing future comparative studies between different EMG classification methods. |
format |
Article |
author |
Ahsan, Md. Rezwanul Ibrahimy, Muhammad Ibn Khalifa, Othman Omran |
author_facet |
Ahsan, Md. Rezwanul Ibrahimy, Muhammad Ibn Khalifa, Othman Omran |
author_sort |
Ahsan, Md. Rezwanul |
title |
Advances in electromyogram signal classification to improve the quality of life for the disabled and aged people |
title_short |
Advances in electromyogram signal classification to improve the quality of life for the disabled and aged people |
title_full |
Advances in electromyogram signal classification to improve the quality of life for the disabled and aged people |
title_fullStr |
Advances in electromyogram signal classification to improve the quality of life for the disabled and aged people |
title_full_unstemmed |
Advances in electromyogram signal classification to improve the quality of life for the disabled and aged people |
title_sort |
advances in electromyogram signal classification to improve the quality of life for the disabled and aged people |
publisher |
Science Publications |
publishDate |
2010 |
url |
http://irep.iium.edu.my/5616/1/Advances_in_Electromyogram_Signal_Classification_to_Improve_the_Quality_of_Life_for_the_Disabled_and_Aged_People.pdf http://irep.iium.edu.my/5616/ http://thescipub.com/jcs.toc |
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