Online electromyographic control of a robotic prosthesis.
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Where this comes from
- Record sourced from PubMed, PMID 18334405.
- Also identified by DOI 10.1109/TBME.2007.909536.
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Abstract
This paper presents a two-part study investigating the use of forearm surface electromyographic (EMG) signals for real-time control of a robotic arm. In the first part of the study, we explore and extend current classification-based paradigms for myoelectric control to obtain high accuracy (92-98%) on an eight-class offline classification problem, with up to 16 classifications/s. This offline study suggested that a high degree of control could be achieved with very little training time (under 10 min). The second part of this paper describes the design of an online control system for a robotic arm with 4 degrees of freedom. We evaluated the performance of the EMG-based real-time control system by comparing it with a keyboard-control baseline in a three-subject study for a variety of complex tasks.
Medical subject headings
- Artificial Limbs
- Electromyography
- Joint Prosthesis
- Pattern Recognition, Automated
- Robotics
- Therapy, Computer-Assisted
- User-Computer Interface