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Hand Rehabilitation Using Virtual Reality Electromyography Signals

机译:使用虚拟现实电学信号信号康复

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Recent studies have suggested that virtual reality (VR) has considerable potential for motor rehabilitation. Wearable devices using electromyography (EMG) signals have been rapidly developed for medical use. In this study, a new training system was designed for motor rehabilitation. The system is based on the fusion of VR and EMG signal processing. In this system, after EMG signals are acquired and denoised, and their features are extracted, a mathematical approach using a support vector machine (SVM) is applied to classify gestures. Subsequently, the gestures are sent to a VR environment for rehabilitation training tasks. Stroke patients can use this system. Experimental results indicate the effectiveness and convenience of the system. The approach also shows several advantages. First, no camera is necessary; thus, the space occupied by the system is reduced. Second, gesture control provides a convenient and motivational approach to use the system in rehabilitation tasks. Future research directions include adding gestures; improving recognition accuracy; and integrating various sensors, including those for recording inertia and ECG signals.
机译:最近的研究表明,虚拟现实(VR)对电机康复有相当大的潜力。使用肌电图(EMG)信号的可穿戴设备已迅速开发用于医疗用途。在这项研究中,为电机康复设计了一种新的培训系统。该系统基于VR和EMG信号处理的融合。在该系统中,获取和去噪之后,提取它们的特征,使用支持向量机(SVM)的数学方法应用于分类手势。随后,将手势发送到VR环境以进行康复培训任务。中风患者可以使用该系统。实验结果表明系统的有效性和便利性。该方法还展示了几个优点。首先,不需要相机;因此,减少了系统占据的空间。其次,手势控制提供了一种方便且激励的方法来利用康复任务中的系统。未来的研究方向包括添加手势;提高识别准确性;并集成各种传感器,包括用于记录惯性和ECG信号的传感器。

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