2014
DOI: 10.1109/tnsre.2013.2287383
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Is Accurate Mapping of EMG Signals on Kinematics Needed for Precise Online Myoelectric Control?

Abstract: In this paper, we present a systematic analysis of the relationship between the accuracy of the mapping between EMG and hand kinematics and the control performance in goal-oriented tasks of three simultaneous and proportional myoelectric control algorithms: nonnegative matrix factorization (NMF), linear regression (LR), and artificial neural networks (ANN). The purpose was to investigate the impact of the precision of the kinematics estimation by a myoelectric controller for accurately complete goal-directed t… Show more

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Cited by 191 publications
(197 citation statements)
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“…This fact has not been greatly investigated as far as we know, and it has a clear impact on the practical usability of all systems, such as that presented in this paper. Secondly, and even more importantly, it has even been shown [21,22] that offline accuracy hardly reflects practical usability. Therefore, a deeper investigation of the proposed technique in a real-sized daily living setup is necessary.…”
Section: Discussionmentioning
confidence: 99%
“…This fact has not been greatly investigated as far as we know, and it has a clear impact on the practical usability of all systems, such as that presented in this paper. Secondly, and even more importantly, it has even been shown [21,22] that offline accuracy hardly reflects practical usability. Therefore, a deeper investigation of the proposed technique in a real-sized daily living setup is necessary.…”
Section: Discussionmentioning
confidence: 99%
“…In myoeletric control, a movement of more than one DOF can be decomposed as the linear combination of basic DOFs, and the latent synergy basis and the control signal are nonnegative [29,30].…”
Section: Sparse Non-negative Matrix Factorizationmentioning
confidence: 99%
“…The effect of some of these factors can be mitigated, such as increasing the distance between surface electrodes [39] and alignment with respect to muscle fibres [40] to improve signal acquisition. However, the results from offline validation often cannot be easily translated into real-world situations [41].…”
Section: Pattern Recognition Controlmentioning
confidence: 99%