论文标题

fMRI中评估相同步方法:比较研究和新方法

Evaluating phase synchronization methods in fMRI: a comparison study and new approaches

论文作者

Honari, Hamed, Choe, Ann S., Lindquist, Martin A.

论文摘要

近年来,使用静止状态功能性磁共振成像(RS-FMRI)数据来测量不同大脑区域之间的时变功能连通性的兴趣越来越大。评估来自不同大脑区域信号之间关系的一种方法是在时间上测量其相位同步(PS)。进行此类分析有几种方法,在这里,我们比较了使用PS度量的方法与滑动窗口,此处称为窗口相同步(WPS),以及直接测量瞬时相位同步(IPS)的方法。特别是,IPS最近获得了流行,因为它提供了时间分辨FMRI连接性的单个时间点分辨率。在本文中,我们讨论了执行PS分析所需的基本假设,并强调了带路过滤数据以获得有效结果的必要性。我们回顾了评估PS的各种方法,并在IPS框架中引入了一种新方法,表示相对阶段(CRP)的余弦。我们通过一系列模拟和应用程序与RS-FMRI数据进行对比。我们的结果表明,CRP胜过其他经过测试的方法,并克服了与IPS分析中常见的正相关到未发现的时间过渡有关的问题。此外,与相一致性相反,CRP展开了PS度量的分布,这使PS矩阵随后的聚类中有益于重复出现的大脑状态。

In recent years there has been growing interest in measuring time-varying functional connectivity between different brain regions using resting-state functional magnetic resonance imaging (rs-fMRI) data. One way to assess the relationship between signals from different brain regions is to measure their phase synchronization (PS) across time. There are several ways to perform such analyses, and here we compare methods that utilize a PS metric together with a sliding window, referred to here as windowed phase synchronization (WPS), with those that directly measure the instantaneous phase synchronization (IPS). In particular, IPS has recently gained popularity as it offers single time-point resolution of time-resolved fMRI connectivity. In this paper, we discuss the underlying assumptions required for performing PS analyses and emphasize the necessity of band-pass filtering the data to obtain valid results. We review various methods for evaluating PS and introduce a new approach within the IPS framework denoted the cosine of the relative phase (CRP). We contrast methods through a series of simulations and application to rs-fMRI data. Our results indicate that CRP outperforms other tested methods and overcomes issues related to undetected temporal transitions from positive to negative associations common in IPS analysis. Further, in contrast to phase coherence, CRP unfolds the distribution of PS measures, which benefits subsequent clustering of PS matrices into recurring brain states.

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