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首页> 外文期刊>Biomedical signal processing and control >EEG-FES-Force-MMG closed-loop control systems of a volunteer with paraplegia considering motor imagery with fatigue recognition and automatic shut-off
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EEG-FES-Force-MMG closed-loop control systems of a volunteer with paraplegia considering motor imagery with fatigue recognition and automatic shut-off

机译:eg-fes-force-fore-mmg志愿者的闭环控制系统与截瘫,考虑疲劳识别和自动关闭的电机图像

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People with spinal cord injury (SCI) may have their paralyzed muscles activated through functional electrical stimulation (FES). This neuromodulation technique has been used frequently to assist in controlling the movement of neuroprostheses. Electroencephalography (EEG) is able to trigger FES from the motor imagery captured through movements intentions. This research presents an isometric neuromuscular control system of the quadriceps muscle activated by EEG. Additionally, the detection of neuromuscular fatigue through the mechanomyography (MMG) technique is proposed, which is used to shut-off the system. A pilot study was performed on a chronic 42-year-old paraplegic (no voluntary contraction below the spinal cord injury level T8) volunteer. To do so, the training procedure for EEG signals was divided into the calibration and feedback phases. In the first one, four EEG channels and the Linear Discriminant Analysis (LDA) classifier were used to classify between motor imagery of the right leg and remain at rest. The maximum accuracy obtained during this stage was 77%. In the feedback phase, the volunteer was able to activate FES through brain-computer interface (BCI) in two tests (defined as Test 1 and Test 2) with the same procedure in different days. The closed-loop force control was tested with the setpoint of 2 kgf and 2.5 kgf and proved to be stable on both tests, successfully turning off the FES using the fatigue threshold from the MMG signal, being the main contribution of this work.
机译:脊髓损伤(SCI)的人可能会通过功能电刺激(FES)激活其瘫痪的肌肉。这种神经调节技术经常用于控制神经调节剂的运动。脑电图(EEG)能够从通过移动意图捕获的电机图像触发FES。本研究介绍了EEG激活的Quadriceps肌肉的等距神经肌肉控制系统。另外,提出了通过机制(MMG)技术的神经肌肉疲劳的检测,用于关闭系统。在慢性42岁的截瘫(没有脊髓损伤水平T8)志愿者的慢性42岁截瘫(没有自愿收缩)进行试验研究。为此,EEG信号的培训过程分为校准和反馈阶段。在第一个,四个EEG通道和线性判别分析(LDA)分类器用于分类右腿的电动机图像,并保持静止。该阶段获得的最大精度为77%。在反馈阶段,志愿者能够在两个测试中通过脑 - 计算机接口(BCI)激活FES(定义为测试1和测试2),在不同的日子中具有相同的程序。用2kGF和2.5kGF的设定点测试闭环力控制,并在两个测试中证明是稳定的,使用MMG信号的疲劳阈值成功关闭FE,是这项工作的主要贡献。

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