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Time-Shift Correlation Algorithm for P300 Event Related Potential Brain-Computer Interface Implementation

机译:用于P300事件相关潜在脑电电脑界面实现的时移相关算法

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摘要

A high efficient time-shift correlation algorithm was proposed to deal with the peak time uncertainty of P300 evoked potential for a P300-based brain-computer interface (BCI). The time-shift correlation series data were collected as the input nodes of an artificial neural network (ANN), and the classification of four LED visual stimuli was selected as the output node. Two operating modes, including fast-recognition mode (FM) and accuracy-recognition mode (AM), were realized. The proposed BCI system was implemented on an embedded system for commanding an adult-size humanoid robot to evaluate the performance from investigating the ground truth trajectories of the humanoid robot. When the humanoid robot walked in a spacious area, the FM was used to control the robot with a higher information transfer rate (ITR). When the robot walked in a crowded area, the AM was used for high accuracy of recognition to reduce the risk of collision. The experimental results showed that, in 100 trials, the accuracy rate of FM was 87.8% and the average ITR was 52.73 bits/min. In addition, the accuracy rate was improved to 92% for the AM, and the average ITR decreased to 31.27 bits/min. due to strict recognition constraints.
机译:提出了一种高效的时移相关算法来处理P300基于脑电脑接口(BCI)的P300诱发电位的峰值时间不确定性。将时移相关序列数据收集为人工神经网络(ANN)的输入节点,并选择四个LED视觉刺激的分类作为输出节点。实现了两个操作模式,包括快速识别模式(FM)和精度识别模式(AM)。拟议的BCI系统是在嵌入式系统上实施的,用于指挥成人大小的人形机器人来评估对人形机器人的地面真理轨迹来评估性能。当人形机器人走在宽敞的区域时,FM用于控制具有更高信息传输速率(ITR)的机器人。当机器人走在一个拥挤的地区时,AM被用来用于降低碰撞风险的高精度。实验结果表明,在100项试验中,FM的精度率为87.8%,平均ITR为52.73位/分钟。此外,AM的精度率提高至92%,平均ITR降至31.27位/分钟。由于严格的识别约束。

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