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Comparing the Effects of Signal Noise on Pattern Recognition and Linear Regression-Based Myoelectric Controllers

机译:比较信号噪声对模式识别和基于线性回归的肌电控制器的影响

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Myoelectric pattern recognition using linear discriminant analysis (LDA) classifiers has been a wellestablished control method for upper limb prostheses for many years. More recently, linear regression (LR) controllers have been proposed as an alternative solution due to their ability to control multiple degrees of freedom (DOF) simultaneously. The aim of this experiment was to compare the online performance of LDA and LR control systems under three electromyographic (EMG) signal conditions: baseline, noise in all channels, and noise in a single channel. To simulate the last two conditions, different levels of Gaussian noise were added to the EMG signals. Completion rate, path efficiency, dwelling time, and completion time were computed after virtual Fitts' Law tasks. While both controllers were significantly affected by the lowest noise levels, we found no significant differences between the controllers under the baseline and all-channel noise conditions. However, the LDA controller outperformed the LR controller in the single-channel noise condition. Therefore, while both controllers are comparable in most cases, the added complexity of simultaneous control affects an LR controller's performance under certain noise conditions. Based on these results, neither control system should be dismissed in future developments.
机译:多年来,使用线性判别分析(LDA)分类器进行的肌电模式识别已成为上肢假体的公认控制方法。最近,由于线性回归(LR)控制器同时控制多个自由度(DOF)的能力,已经提出了线性回归(LR)控制器作为替代解决方案。本实验的目的是比较三种肌电(EMG)信号条件下LDA和LR控制系统的在线性能:基线,所有通道的噪声和单个通道的噪声。为了模拟最后两个条件,将不同级别的高斯噪声添加到了EMG信号中。完成虚拟费茨定律任务后,计算完工率,路径效率,居住时间和完成时间。尽管两个控制器都受到最低噪声水平的显着影响,但我们发现在基线和全通道噪声条件下,控制器之间没有显着差异。但是,在单通道噪声条件下,LDA控制器的性能优于LR控制器。因此,尽管两个控制器在大多数情况下都是可比的,但同时控制的复杂性增加了在某些噪声条件下LR控制器的性能。基于这些结果,在未来的发展中都不应该取消任何控制系统。

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