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低成本便携式脑机接口助康复
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本研究提出一种实时便携式脑机接口系统,支持中风患者手部康复。系统结合低成本3D打印外骨骼和嵌入式控制器,将脑电信号转换为手部动作。使用14通道Emotiv EPOC+头戴式设备记录脑电信号,并通过监督卷积自动编码器处理,提取有意义特征。系统在NVIDIA Jetson Nano平台上实现,显示其在家庭神经康复中的潜力。

arXiv:2510.15890v1 Announce Type: cross Abstract: This study presents a real-time, portable brain-computer interface (BCI) system designed to support hand rehabilitation for stroke patients. The system combines a low cost 3D-printed robotic exoskeleton with an embedded controller that converts brain signals into physical hand movements. EEG signals are recorded using a 14-channel Emotiv EPOC+ headset and processed through a supervised convolutional autoencoder (CAE) to extract meaningful latent features from single-trial data. The model is trained on publicly available EEG data from healthy individuals (WAY-EEG-GAL dataset), with electrode mapping adapted to match the Emotiv headset layout. Among several tested classifiers, Ada Boost achieved the highest accuracy (89.3%) and F1-score (0.89) in offline evaluations. The system was also tested in real time on five healthy subjects, achieving classification accuracies between 60% and 86%. The complete pipeline - EEG acquisition, signal processing, classification, and robotic control - is deployed on an NVIDIA Jetson Nano platform with a real-time graphical interface. These results demonstrate the system's potential as a low-cost, standalone solution for home-based neurorehabilitation.

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脑机接口 康复技术 中风患者 神经康复
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