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A three-dimensional spatio-temporal EEG pattern analyzing system

机译:三维时空脑电模式分析系统

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Spatio-temporal pattern analysis of EEG is an important tool in brain research. An EEG pattern analysis system based on a hierarchical multi-method approach is proposed here. The system consists of multiple steps including extraction of target signal, acquisition of intracranial electric activity distribution, adaptive segmentation of EEG and spatio-temporal pattern recognition. Some modern signal processing methods such as common spatial subspace decomposition, hidden Markov model are adopted. This paper also proposes an algorithm named LORETA-FOCUSS to estimate the current density inside the brain with a high spatial resolution. Microstate analysis of EEG is extended to the 3-D situation. The system was applied to the brain computer interface problem and achieved the highest accuracy of 88.89% with an average accuracy of 81.48% when classifying two imaginary movement tasks, while the data were not manually preselected. The result has proved spatio-temporal EEG pattern analysis is an efficient way in brain research.
机译:脑电的时空模式分析是大脑研究的重要工具。本文提出了一种基于层次化多方法的脑电模式分析系统。该系统包括多个步骤,包括目标信号的提取,颅内电活动分布的采集,脑电图的自适应分割和时空模式识别。采用了一些现代信号处理方法,如通用空间子空间分解,隐马尔可夫模型。本文还提出了一种名为LORETA-FOCUSS的算法,可以以高空间分辨率估算大脑内部的电流密度。脑电图的微状态分析扩展到了3-D情况。该系统应用于脑部计算机接口问题,在对两个假想的运动任务进行分类时达到了最高的准确度88.89%,平均准确度81.48%,而没有手动选择数据。结果证明时空脑电图模式分析是大脑研究的有效方法。

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