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Motor command detection for a repetitive facilitation exercise assistance system

机译:电机指令检测重复促进运动辅助系统

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This paper presents a feasibility study of a brain-machine interface system to assist repetitive facilitation exercise. Repetitive facilitation exercise is an effective rehabilitation method for patients with hemiplegia. In repetitive facilitation exercise, a therapist stimulates the paralyzed part of the patient while motor commands run along the nerve pathway. However, successful repetitive facilitation exercise is difficult to achieve and even a skilled practitioner cannot detect when a motor command occurs in patient's brain. We proposed a brain-machine interface system for automatically detecting motor commands and stimulating the paralyzed part of a patient. To determine motor commands from patient electroencephalogram (EEG) data, we constructed a support vector machine (SVM) system. In this paper, we validated that the discrimination ratio of the motor command by EEG using SVM was higher than the success rate of the repetitive facilitation exercise administered by a therapist. In the experiments, we measured the EEG when the participant bent their elbow when prompted to do so. We analyzed the EEG data using a cross-validation method. We found that the discrimination ratio for each participant was at least 69%, which is above the success rate for repetitive facilitation exercise administered by a therapist. We conclude that the EEG using SVM is useful for detecting motor commands.
机译:本文介绍了脑机接口系统的可行性研究,以协助重复的便利练习。重复的促进运动是偏瘫患者的有效康复方法。在重复的促进运动中,治疗师刺激患者的瘫痪部分,而电动机命令沿着神经途径运行。然而,成功的重复促进运动难以实现,甚至熟练的从业者何时在患者的大脑中发生电机命令时无法检测到何时发生。我们提出了一个脑机接口系统,用于自动检测电动机命令并刺激患者的瘫痪部分。要从患者脑电图(EEG)数据中确定电机命令,我们构建了支持向量机(SVM)系统。在本文中,我们验证了EEG使用SVM的电机命令的判别比率高于治疗师施用的重复促进运动的成功率。在实验中,当参与者弯曲时,我们测量了脑电图,当提示为此这样做时。我们使用交叉验证方法分析了EEG数据。我们发现,每个参与者的歧视率至少为69 %,高于治疗师给药的重复促进运动的成功率。我们得出结论,使用SVM的EEG可用于检测电动机命令。

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