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Guiding the Training of Users With a Pattern Similarity Biofeedback to Improve the Performance of Myoelectric Pattern Recognition

机译:引导对用户的培训具有模式相似性生物反馈,以提高肌电模式识别的性能

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摘要

Next generation prosthetics will rely massively on myoelectric "Pattern Recognition" (PR) based control approaches, to improve their users' dexterity. One major identified factor of successful functioning of these approaches lies in the training of amputees and in their understanding of how those prosthetics works. We thus propose here an intuitive pattern similarity biofeedback which can be easily used to train amputees and allow them to optimize their muscular contractions to improve their control performance. Experiments were conducted on twenty able-bodied participants and one transradial amputee. Their performance in controlling an interface through a myoelectric PR algorithm was evaluated; before and after a short automatic user training session consisting in using the proposed visual biofeedback for ten participants, and using a generic PR algorithm output feedback for the others ten. Participants who were trained with the proposed biofeedback increased their classification score for the retrained gesture (by 39.4%), without affecting the overall classification performance (which progressed by 10.2%) through over-training and increase of False Positive rate as observed in the control group. Additional analysis indicates a clear change in contraction strategy only in the group who used the proposed biofeedback. These preliminary results highlight the potential of this method which does not focus so much on over-optimizing the pattern recognition algorithm or on physically training the users, but on providing them simple and intuitive information to adapt or change their motor strategies to solve some misclassification issues.
机译:下一代假肢将依靠肌电“模式识别”(PR)基于对照方法,以改善用户的灵巧。这些方法成功运作的一个主要确定因素在于对患有的培训以及他们了解这些假肢的工作原理。因此,我们在此提出了一种直观的模式相似性生物反馈,这可以很容易地用于训练术语并允许它们优化其肌肉收缩以改善它们的控制性能。实验是在20个能够体内的参与者和一个颅代截肢者中进行的。它们在通过肌电PR算法控制界面时的性能进行了评估;在短暂的自动用户培训会议之前和之后,包括用于十个参与者的所提出的视觉生物反馈,并使用仿古算法输出其他人的反馈。受过拟议的生物融资培训的参与者增加了被培训的姿态(39.4%)的分类得分,而不会通过过度培训和控制在控制中观察到的虚假阳性率的整体分类绩效(10.2%进展)团体。其他分析表明,仅在使用拟议生物融产的小组中只有收缩策略的明确变化。这些初步结果突出了这种方法的潜力,这些方法不会在过度优化模式识别算法或物理训练用户时,而是为他们提供简单和直观的信息,以适应或改变他们的电机策略以解决一些错误分类问题。

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