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首页> 外文期刊>IEEE transactions on neural systems and rehabilitation engineering >Linear and Nonlinear Regression Techniques for Simultaneous and Proportional Myoelectric Control
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Linear and Nonlinear Regression Techniques for Simultaneous and Proportional Myoelectric Control

机译:同时和比例肌电控制的线性和非线性回归技术

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摘要

In recent years the number of active controllable joints in electrically powered hand-prostheses has increased significantly. However, the control strategies for these devices in current clinical use are inadequate as they require separate and sequential control of each degree-of-freedom (DoF). In this study we systematically compare linear and nonlinear regression techniques for an independent, simultaneous and proportional myoelectric control of wrist movements with two DoF. These techniques include linear regression, mixture of linear experts (ME), multilayer-perceptron, and kernel ridge regression (KRR). They are investigated offline with electro-myographic signals acquired from ten able-bodied subjects and one person with congenital upper limb deficiency. The control accuracy is reported as a function of the number of electrodes and the amount and diversity of training data providing guidance for the requirements in clinical practice. The results showed that KRR, a nonparametric statistical learning method, outperformed the other methods. However, simple transformations in the feature space could linearize the problem, so that linear models could achieve similar performance as KRR at much lower computational costs. Especially ME, a physiologically inspired extension of linear regression represents a promising candidate for the next generation of prosthetic devices.
机译:近年来,电动人工假体中活动可控关节的数量已大大增加。但是,由于目前需要对每个自由度(DoF)进行单独和顺序控制,因此这些设备在当前临床应用中的控制策略是不够的。在这项研究中,我们系统地比较了线性和非线性回归技术,以独立,同时和成比例的肌电控制手腕运动的两个自由度。这些技术包括线性回归,线性专家混合(ME),多层感知器和核岭回归(KRR)。他们通过从十个身体健全的受试者和一个患有先天性上肢缺乏症的人获取的肌电信号进行离线调查。据报道,控制精度是电极数量,训练数据的数量和多样性的函数,可为临床实践中的要求提供指导。结果表明,非参数统计学习方法KRR优于其他方法。但是,特征空间中的简单变换可以使问题线性化,因此线性模型可以以低得多的计算成本实现与KRR相似的性能。尤其是ME,一种由生理学启发的线性回归延伸代表了下一代假体设备的有希望的候选者。

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