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Hybrid BCI for Controlling a Robotic Arm over an IP Network

机译:用于控制IP网络的机器人臂的混合BCI

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摘要

A fully online EEG-based hybrid brain-computer interface (BCI) is presented. The BCI is used to control a robotic arm in three degrees of freedom. The system utilises the commercially available Emotiv SDK and EPOC neuroheadset. Using facial gestures, test subjects were able to carry out six different actions with an average detection accuracy of 66.1%. SSVEPs are used as a biofeedback mechanism to implement an attention-based "brain switch". When the user gazes at the light stimulus, an SSVEP is detected in the brain and the system is either activated or deactivated. Since SSVEPs cannot be detected simultaneously with facial expressions due to noise, the "brain switch" may only be used to provide a user with the ability to mentally turn the system on or off, thereby reducing the number of false positives during rest periods. All 13 test subjects used in the experiment had different responses to SSVEP frequencies in the range of 3-20 Hz. Each subject has an optimal or resonant frequency. The average true-positive detection rate or accuracy at each individual's optimal frequency is 74.2% (11.8% false positives) when using the Minimum Energy Classification (MEC) algorithm. A defining feature of the system is that it is highly extensible. The inter process communication (IPC) framework enables users to interact with multiple client objects over an IP network.
机译:提供了一个完整的在线eEG的混合脑 - 计算机接口(BCI)。 BCI用于控制三个自由度的机器人臂。该系统利用市售的EMOTIV SDK和EPOC神经头组。使用面部手势,测试对象能够进行六种不同的动作,平均检测精度为66.1%。 SSVEPS用作生物回收机制,以实现基于关注的“大脑交换机”。当用户凝视光刺激时,在大脑中检测到SSVEP,系统被激活或停用。由于由于噪声引起的面部表达不能同时检测到SSVEPS,因此“大脑开关”只能用于向用户提供心灵转动系统的能力,从而减少休息时段期间的误报的数量。实验中使用的所有13个测试受试者对3-20Hz的SSVEP频率的反应不同。每个受试者具有最佳或谐振频率。使用最小能量分类(MEC)算法时,每个单独的最佳频率的平均真正阳性检测率或精度为74.2%(误报率为11.8%)。系统的定义特征是它是高度可扩展的。帧间流程通信(IPC)框架使用户能够通过IP网络与多个客户端对象交互。

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