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Continuous presentation for multi-objective channel selection in brain-computer interfaces

机译:在脑机接口中连续演示多目标通道选择

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摘要

A novel presentation for channel selection problem in Brain-Computer Interfaces (BCI) is introduced here. Continuous presentation in a projected two-dimensional space of the Electroencephalograph (EEG) cap is proposed. A multi-objective particle swarm optimization method (D 2 MOPSO) is employed where particles move in the EEG cap space to locate the optimum set of solutions that minimize the number of selected channels and the classification error rate. This representation focuses on the local relationships among EEG channels as the physical location of the channels is explicitly represented in the search space avoiding picking up channels that are known to be uncorrelated with the mental task. In addition continuous presentation is a more natural way for problem solving in PSO framework. The method is validated on 10 subjects performing right-vs-left motor imagery BCI. The results are compared to these obtained using Sequential Floating Forward Search (SFFS) and shows significant enhancement in classification accuracy but most importantly in the distribution of the selected channels. © 2012 IEEE.
机译:这里介绍了关于脑机接口(BCI)中的频道选择问题的新颖演示。建议在脑电图(EEG)帽的投影二维空间中连续显示。采用多目标粒子群优化方法(D 2 MOPSO),其中粒子在EEG帽空间中移动,以找到最佳解决方案集,以最小化所选通道的数量和分类错误率。这种表示方式着重于EEG通道之间的局部关系,因为在搜索空间中明确表示了通道的物理位置,从而避免拾取已知与心理任务无关的通道。此外,连续演示是在PSO框架中解决问题的更自然的方法。该方法在执行右vs左运动图像BCI的10位受试者上得到验证。将结果与使用顺序浮动前向搜索(SFFS)获得的结果进行比较,结果显示分类准确度显着提高,但最重要的是所选频道的分布。 ©2012 IEEE。

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