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Probabilistic simulation framework for EEG-based BCI design

机译:基于EEG的BCI设计的概率仿真框架

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A simulation framework could decrease the burden of attending long and tiring experimental sessions on the potential users of brain-computer interface (BCI) systems. Specifically during the initial design of a BCI, a simulation framework that could replicate the operational performance of the system would be a useful tool for designers to make design choices. In this manuscript, we develop a Monte Carlo-based probabilistic simulation framework for electroencephalography (EEG) based BCI design. We employ one event-related potential (ERP) based typing and one steady-state evoked potential (SSVEP) based control interface as testbeds. We compare the results of simulations with real-time experiments. Even though over- and underestimation of the performance is possible, the statistical results over the Monte Carlo simulations show that the developed framework generally provides a good approximation of the real-time system performance.
机译:仿真框架可以减轻参加脑机接口(BCI)系统潜在用户的长期且累人的实验会议的负担。特别是在BCI的初始设计过程中,可以复制系统运行性能的仿真框架对于设计师进行设计选择将是一个有用的工具。在此手稿中,我们为基于脑电图(EEG)的BCI设计开发了基于Monte Carlo的概率模拟框架。我们使用一种基于事件相关电位(ERP)的类型和一种基于稳态诱发电位(SSVEP)的控制界面作为测试平台。我们将模拟结果与实时实验进行比较。即使可能会高估或低估性​​能,但基于蒙特卡洛模拟的统计结果表明,开发的框架通常可以很好地近似实时系统的性能。

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