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An average sliding window correlation method for dynamic functional connectivity

机译:动态功能连通性的平均滑动窗口相关方法

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摘要

Sliding window correlation (SWC) is utilized in many studies to analyze the temporal characteristics of brain connectivity. However, spurious artifacts have been reported in simulated data using this technique. Several suggestions have been made through the development of the SWC technique. Recently, it has been proposed to utilize a SWC window length of 100 s given that the lowest nominal fMRI frequency is 0.01 Hz. The main pitfall is the loss of temporal resolution due to a large window length. In this work, we propose an average sliding window correlation (ASWC) approach that presents several advantages over the SWC. One advantage is the requirement for a smaller window length. This is important because shorter lengths allow for a more accurate estimation of transient dynamicity of functional connectivity. Another advantage is the behavior of ASWC as a tunable high pass filter. We demonstrate the advantages of ASWC over SWC using simulated signals with configurable functional connectivity dynamics. We present analytical models explaining the behavior of ASWC and SWC for several dynamic connectivity cases. We also include a real data example to demonstrate the application of the new method. In summary, ASWC shows lower artifacts and resolves faster transient connectivity fluctuations, resulting in a lower mean square error than in SWC.
机译:滑动窗口相关性(SWC)在许多研究中用于分析大脑连接的时间特征。但是,已经使用这种技术在仿真数据中报告了伪造的伪像。通过SWC技术的发展已经提出了一些建议。最近,考虑到最低标称fMRI频率为0.01 Hz,已经提出利用100 s的SWC窗口长度。主要的陷阱是由于窗口长度过长而导致时间分辨率的损失。在这项工作中,我们提出了一种平均滑动窗口相关(ASWC)方法,该方法相对于SWC展现了一些优势。一个优点是需要较小的窗口长度。这很重要,因为较短的长度可以更准确地估算功能连接的瞬态动态。另一个优点是ASWC作为可调高通滤波器的性能。我们使用具有可配置功能连接动态性的模拟信号证明了ASWC优于SWC的优势。我们提供分析模型,解释几种动态连接情况下ASWC和SWC的行为。我们还提供了一个真实的数据示例来演示新方法的应用。总而言之,ASWC显示的伪像更少,并且可以解决更快的瞬态连接波动,从而导致均方误差比SWC更低。

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