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How to Evaluate Phase Differences between Trial Groups in Ongoing Electrophysiological Signals

机译:如何评估正在进行的电生理信号中试验组之间的相位差

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摘要

A growing number of studies endeavor to reveal periodicities in sensory and cognitive functions, by comparing the distribution of ongoing (pre-stimulus) oscillatory phases between two (or more) trial groups reflecting distinct experimental outcomes. A systematic relation between the phase of spontaneous electrophysiological signals, before a stimulus is even presented, and the eventual result of sensory or cognitive processing for that stimulus, would be indicative of an intrinsic periodicity in the underlying neural process. Prior studies of phase-dependent perception have used a variety of analytical methods to measure and evaluate phase differences, and there is currently no established standard practice in this field. The present report intends to remediate this need, by systematically comparing the statistical power of various measures of “phase opposition” between two trial groups, in a number of real and simulated experimental situations. Seven measures were evaluated: one parametric test (circular Watson-Williams test), and three distinct measures of phase opposition (phase bifurcation index, phase opposition sum, and phase opposition product) combined with two procedures for non-parametric statistical testing (permutation, or a combination of z-score and permutation). While these are obviously not the only existing or conceivable measures, they have all been used in recent studies. All tested methods performed adequately on a previously published dataset (Busch et al., ). On a variety of artificially constructed datasets, no single measure was found to surpass all others, but instead the suitability of each measure was contingent on several experimental factors: the time, frequency, and depth of oscillatory phase modulation; the absolute and relative amplitudes of post-stimulus event-related potentials for the two trial groups; the absolute and relative trial numbers for the two groups; and the number of permutations used for non-parametric testing. The concurrent use of two phase opposition measures, the parametric Watson-Williams test and a non-parametric test based on summing inter-trial coherence values for the two trial groups, appears to provide the most satisfactory outcome in all situations tested. Matlab code is provided to automatically compute these phase opposition measures.
机译:越来越多的研究通过比较两个(或多个)试验组之间反映不同实验结果的正在进行的(刺激前)振荡阶段的分布,努力揭示感觉和认知功能的周期性。甚至在出现刺激之前,自发电生理信号的相位之间的系统关系,以及对该刺激的感觉或认知处理的最终结果,将表明潜在的神经过程的内在周期性。先前的相位依赖感知研究已经使用了多种分析方法来测量和评估相位差,并且目前在该领域还没有建立标准的实践。本报告旨在通过在两个真实和模拟实验情况下,系统地比较两个试验组之间“相对立”的各种度量的统计功效,来补救这一需要。评估了七项措施:一项参数检验(圆形Watson-Williams检验),和三种不同的相移度量(相分叉指数,相对和和相乘积),并结合了两种用于非参数统计检验的程序(排列,或z得分和置换的组合)。虽然这些显然不是仅有的现有或可以想到的措施,但它们已全部用于最近的研究中。所有测试的方法都可以在以前发布的数据集上充分执行(Busch等人,)。在各种人工构建的数据集上,没有发现任何一种方法能超越所有其他方法,但是每种方法的适用性取决于几个实验因素:振荡相位调制的时间,频率和深度;两个试验组刺激后事件相关电位的绝对和相对幅度;两组的绝对和相对试验次数;以及用于非参数测试的排列数量。在两个试验组中,同时使用两个相位对立措施,即参数Watson-Williams检验和基于两个试验组的试验间一致性值求和的非参数检验,似乎可以提供最令人满意的结果。提供了Matlab代码以自动计算这些相位对策。

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