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Analyzing the feasibility of time correlated spectral entropy for the assessment of neuronal synchrony

机译:分析时间相关频谱熵评估神经元同步性的可行性

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In this paper, we study neuronal network analysis based on microelectrode measurements. We search for potential relations between time correlated changes in spectral distributions and synchrony for neuronal network activity. Spectral distribution is quantified by spectral entropy as a measure of uniformity/complexity and this measure is calculated as a function of time for the recorded neuronal signals, i.e., time variant spectral entropy. Time variant correlations in the spectral distributions between different parts of a neuronal network, i.e., of concurrent measurements via different microelectrodes, are calculated to express the relation with a single scalar. We demonstrate these relations with in vivo rat hippocampal recordings, and observe the time courses of the correlations between different regions of hippocampus in three sequential recordings. Additionally, we evaluate the results with a commonly employed causality analysis method to assess the possible correlated findings. Results show that time correlated spectral entropy reveals different levels of interrelations in neuronal networks, which can be interpreted as different levels of neuronal network synchrony.
机译:在本文中,我们研究基于微电极测量的神经网络分析。我们搜索频谱分布中与时间相关的变化与神经网络活动同步之间的潜在关系。频谱分布通过频谱熵来量化,作为对均匀性/复杂度的度量,并且该度量是针对所记录的神经元信号的时间的函数,即随时间变化的频谱熵来计算的。计算神经元网络的不同部分之间的频谱分布(即通过不同微电极的同时测量)之间的时变相关性,以表达与单个标量的关系。我们证明了与体内大鼠海马记录的这些关系,并在三个连续的记录中观察了海马不同区域之间相关性的时程。此外,我们使用常用的因果分析方法评估结果,以评估可能的相关发现。结果表明,与时间相关的频谱熵揭示了神经元网络中不同级别的相互关系,这可以解释为神经元网络同步性的不同级别。

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