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Study on sEMG-Based Exercise Therapy for Upper Limb of Severe Hemiplegic Patients

机译:严重偏瘫患者上肢运动疗法研究

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sEMG, as a kind of bioelectrical signal reflecting muscle motion state, generally applies to motion recognition and human interface. Healthy subjects are selected in most studies, while for hemiplegic patients, especially patients with severe hemiplegia, high accuracy motion recognition is difficult to acquire due to the non-ideal sEMG signal from dysfunction muscles. Therefore, this paper presents an upper limb exercise therapy, based on 5 defined motions and 6 Muscle-Units, for patients with severe hemiplegia. Through the sampling and analysis of sEMG signals from 8 subjects, including 4 healthy and 4 hemiplegic patients, we draw a conclusion of the relevance between specific motions and Muscle-Units, which can be used as a reference for paralyzed arm training. According to this relevance, six Muscle-Units can be classified into two categories: major Muscle-Units and minor Muscle-Units. In order to improve the interest and positivity of patients, a PC based virtual interactive platform is established. The sEMG signal from major Muscle-Units is processed with a moving average algorithm, and the result is used as the control signal for training interaction.
机译:SEMG作为反射肌肉运动状态的一种生物电信号,通常适用于运动识别和人类界面。在大多数研究中选择健康受试者,而对于偏瘫患者,特别是严重偏瘫的患者,由于功能障碍肌肉的非理想半信号,难以获得高精度运动识别。因此,本文呈上肢体运动疗法,基于5个定义的偏瘫患者的5个定义的运动和6个肌肉单元。通过来自8个受试者的SEMG信号的采样和分析,包括4名健康和4名偏瘫患者,我们得出了具体运动和肌肉单元之间的相关性,这可以用作瘫痪的手臂训练的参考。根据这一相关性,六只肌肉单元可以分为两类:主要肌肉单位和次要肌肉单位。为了提高患者的兴趣和积极性,建立了基于PC的虚拟交互式平台。来自主要肌肉单元的SEMG信号用移动的平均算法处理,结果用作用于训练交互的控制信号。

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