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Accuracy to detection timing for assisting repetitive facilitation exercise system using MRCP and SVM

机译:使用MRCP和SVM辅助重复便利锻炼系统的检测时机精度

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摘要

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 measured the movement-related cortical potential (MRCP) and constructed a support vector machine system. In this paper, we validated the prediction timing of the system at the highest accuracy by the system using EEG and MRCP. 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 average accuracy was 72.9% and the highest at the prediction timing 280 ms. We conclude that 280 ms is the most suitable to predict the judgment that a patient intends to exercise or not.
机译:本文提出了一种脑机接口系统以辅助重复促进锻炼的可行性研究。重复促进锻炼是偏瘫患者的有效康复方法。在重复的促进锻炼中,治疗师会刺激患者的瘫痪部位,同时运动指令会沿着神经通路运行。但是,成功的重复性简化锻炼很难实现,甚至熟练的医生也无法检测出何时在患者的大脑中发生了运动命令。我们提出了一种脑机接口系统,用于自动检测运动命令并刺激患者的瘫痪部位。为了从患者脑电图(EEG)数据确定运动命令,我们测量了运动相关皮层电势(MRCP),并构建了支持向量机系统。在本文中,我们通过使用EEG和MRCP的系统,以最高的精度验证了系统的预测时序。在实验中,当提示参与者弯曲肘部时,我们测量了脑电图。我们使用交叉验证方法分析了脑电数据。我们发现平均准确度为72.9%,在预测时间280毫秒处最高。我们认为280毫秒最适合预测患者是否打算运动的判断。

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