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Connectivity Assessment and Training: A Partial Directed Coherence Approach

机译:连接性评估和培训:部分定向一致性方法

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Background. The multivariate autoregressive (MVAR) method to generate a linear model of multichannel signal processes has been employed in many fields but not applied to the assessment of quantitative electroencephalographic (QEEG) connectivity neurofeedback. A measure known as Partial Directed Coherence (PDC) derived in the MVAR framework can offer insensitivity to volume conduction and ability to provide information relating to the direction of information flow between electrode locations, as a function of frequency during QEEG assessment and neurofeedback. Method. This article outlines a variety of reasons why PDC and other related metrics could play a more fundamental role in elucidating the causal relationships underlying EEG connectivity than can be provided though a multivariate analysis of coherence alone. Results. Real-time PDC neurofeedback implementation issues are discussed, technical challenges are outlined, and research questions are proposed. Conclusion. MVAR-based methods are an additional means of relating global to local EEG activity as well as helping to bridge QEEG assessment and neurofeedback protocol generation and treatment.
机译:背景。用于生成多通道信号过程线性模型的多元自回归(MVAR)方法已在许多领域采用,但未应用于评估定量脑电图(QEEG)连接性神经反馈。在MVAR框架中得出的一种称为部分定向相干性(PDC)的措施可以提供对体积传导的不敏感性,并能够提供与电极位置之间信息流的方向有关的信息,这是QEEG评估和神经反馈过程中频率的函数。方法。本文概述了多种原因,说明PDC和其他相关指标在阐明EEG连接性的因果关系方面比单独进行多变量连贯性分析所能发挥的更根本的作用。结果。讨论了实时PDC神经反馈实施问题,概述了技术挑战,并提出了研究问题。结论。基于MVAR的方法是将全局与本地EEG活动相关联的另一种方法,并且有助于弥合QEEG评估和神经反馈协议的产生与治疗。

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