Detection of and Compensation for EMG Disturbances for Powered Lower Limb Prosthesis Control

Volume: 24, Issue: 2, Pages: 226 - 234
Published: Feb 1, 2016
Abstract
Myoelectric pattern recognition algorithms have been proposed for the control of powered lower limb prostheses, but electromyography (EMG) signal disturbances remain an obstacle to clinical implementation. To address this problem, we used a log-likelihood metric to detect simulated EMG disturbances and real disturbances acquired from EMG containing electrode shift. We found that features extracted from disturbed EMG have much lower log...
Paper Details
Title
Detection of and Compensation for EMG Disturbances for Powered Lower Limb Prosthesis Control
Published Date
Feb 1, 2016
Volume
24
Issue
2
Pages
226 - 234
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