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首页> 外文期刊>NeuroImage >Effect of confounding variables on hemodynamic response function estimation using averaging and deconvolution analysis: An event-related NIRS study
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Effect of confounding variables on hemodynamic response function estimation using averaging and deconvolution analysis: An event-related NIRS study

机译:混淆变量对血流动力响应函数估计的效果和折折区分析:事件相关的NIRS研究

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摘要

Slow and rapid event-related designs are used in fMRI and functional near-infrared spectroscopy (fNIRS) experiments to temporally characterize the brain hemodynamic response to discrete events. Conventional averaging (CA) and the deconvolution method (DM) are the two techniques commonly used to estimate the Hemodynamic Response Function (HRF) profile in event-related designs. In this study, we conducted a series of simulations using synthetic and real NIRS data to examine the effect of the main confounding factors, including event sequence timing parameters, different types of noise, signal-to-noise ratio (SNR), temporal autocorrelation and temporal filtering on the performance of these techniques in slow and rapid event-related designs. We also compared systematic errors in the estimates of the fitted HRF amplitude, latency and duration for both techniques. We further compared the performance of deconvolution methods based on Finite Impulse Response (FIR) basis functions and gamma basis sets.
机译:在FMRI和功能近红外光谱(FNIR)实验中使用缓慢和快速的事件相关的设计,以在时间表征对离散事件的脑血液动力学反应。传统的平均(CA)和解卷积方法(DM)是通常用于估计事件相关设计中的血流动力学响应函数(HRF)简档的两种技术。在这项研究中,我们使用合成和真实的NIRS数据进行了一系列模拟,以检查主要混杂因子的效果,包括事件序列定时参数,不同类型的噪声,信噪比(SNR),时间自相关和在缓慢和快速的事件相关设计中对这些技术性能的时间过滤。我们还将系统错误与两种技术的拟合HRF幅度,延迟和持续时间的估计进行了比较。我们进一步比较了基于有限脉冲响应(FIR)基函数和伽马基集的去卷积方法的性能。

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