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Taking into account latency, amplitude, and morphology: Improved estimation of single-trial ERPs by wavelet filtering and multiple linear regression

机译:考虑延迟,振幅和形态:通过小波滤波和多元线性回归改进单试验ERp的估计

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摘要

Across-trial averaging is a widely used approach to enhance the signal-to-noise ratio (SNR) of event-related potentials (ERPs). However, across-trial variability of ERP latency and amplitude may contain physiologically relevant information that is lost by across-trial averaging. Hence, we aimed to develop a novel method that uses 1) wavelet filtering (WF) to enhance the SNR of ERPs and 2) a multiple linear regression with a dispersion term (MLRd) that takes into account shape distortions to estimate the single-trial latency and amplitude of ERP peaks. Using simulated ERP data sets containing different levels of noise, we provide evidence that, compared with other approaches, the proposed WF_MLRd method yields the most accurate estimate of single-trial ERP features. When applied to a real laser-evoked potential data set, the WF MLRd approach provides reliable estimation of single-trial latency, amplitude, and morphology of ERPs and thereby allows performing meaningful correlations at single-trial level. We obtained three main findings. First, WF significantly enhances the SNR of single-trial ERPs. Second, MLRd effectively captures and measures the variability in the morphology of single-trial ERPs, thus providing an accurate and unbiased estimate of their peak latency and amplitude. Third, intensity of pain perception significantly correlates with the single-trial estimates of N2 and P2 amplitude. These results indicate that WF_MLRd can be used to explore the dynamics between different ERP features, behavioral variables, and other neuroimaging measures of brain activity, thus providing new insights into the functional significance of the different brain processes underlying the brain responses to sensory stimuli. © 2011 the American Physiological Society.
机译:跨试验平均法是一种广泛使用的方法,用于增强事件相关电位(ERP)的信噪比(SNR)。但是,ERP潜伏期和幅度的跨试验变异性可能包含跨试验平均所丢失的生理相关信息。因此,我们旨在开发一种新颖的方法,该方法使用1)小波滤波(WF)来增强ERP的SNR,以及2)具有色散项(MLRd)的多元线性回归,其中考虑了形状失真来估计单次试验ERP峰值的延迟和幅度。使用包含不同噪声水平的模拟ERP数据集,我们提供的证据表明,与其他方法相比,提出的WF_MLRd方法可产生最准确的单次ERP功能估算。当应用于实际的激光诱发电位数据集时,WF MLRd方法可对ERP的单次试验潜伏期,幅度和形态提供可靠的估计,从而允许在单次试验级执行有意义的关联。我们获得了三个主要发现。首先,WF大大增强了单次试用ERP的SNR。其次,MLRd有效地捕获并测量了单次试用ERP的形态变化,从而提供了其峰值潜伏期和幅度的准确无偏的估计。第三,疼痛感的强度与N2和P2振幅的单次试验估计值显着相关。这些结果表明WF_MLRd可用于探索不同的ERP功能,行为变量和其他大脑活动的神经影像学测量之间的动态关系,从而提供新的见解,深入了解大脑对感觉刺激的响应背后的不同大脑过程的功能意义。 ©2011美国生理学会。

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