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EMG pattern classification based on AR modeling

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dc.contributor Graduate Program in Biomedical Engineering.
dc.contributor.advisor Sankur, Bülent.
dc.contributor.author Erim, Zeynep.
dc.date.accessioned 2023-03-16T13:12:04Z
dc.date.available 2023-03-16T13:12:04Z
dc.date.issued 1986.
dc.identifier.other BM 1986 E75
dc.identifier.uri http://digitalarchive.boun.edu.tr/handle/123456789/18743
dc.description.abstract Myoelectric control of powered prostheses is a field of rehabilitation engineering that has received wide attention in the recent decades. In this thesis a historical perspective of the studies in the field is given. The physiological properties of muscles are reviewed. The linear models, algorithms for identifying model parameters, and basic pattern recognition considerations are outlined. A scheme to extract motion information from a single surface EMG channel is discussed. The results obtained in performance tests are given. Suggestions for future research topics are made. Major computer programs used are given in the appendix.
dc.format.extent 30cm.
dc.publisher Thesis (M.S.)-Bogazici University. Institute of Biomedical Engineering, 1986.
dc.relation Includes appendices.
dc.relation Includes appendices.
dc.subject.lcsh Electromyography.
dc.subject.lcsh Pattern perception.
dc.title EMG pattern classification based on AR modeling
dc.format.pages ix, 74 leaves;


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