Wavelet-based estimation of long-memory noise in Diffuse Optical Imaging

C. Matteau-Pelletier, M. Dehaes, F. Lesage, J. Lina
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Abstract

In this work we extend a previously proposed method for functional Magnetic Resonance Imaging (fMRI) to estimate the parameters of a linear model of diffuse optical imaging (DOI) time series. The regression is performed in the wavelet domain to infer drift coefficients at different scales and to estimate the strength of the hemodynamic response function (HRF). This multiresolution approach benefits from the whitening property of the Discrete Wavelet Transform (DWT), and we observe an estimation improvement which is then related to a quantitative measure of 1/f noise. The performances of the method are evaluated against a standard spline-cosine GLM approach with simulated HRF and real background physiology.
漫射光学成像中基于小波的长记忆噪声估计
在这项工作中,我们扩展了先前提出的功能性磁共振成像(fMRI)方法,以估计漫射光学成像(DOI)时间序列的线性模型的参数。在小波域进行回归,以推断不同尺度的漂移系数,并估计血流动力学响应函数(HRF)的强度。这种多分辨率方法得益于离散小波变换(DWT)的白化特性,并且我们观察到一种估计改进,然后与1/f噪声的定量测量相关。通过模拟HRF和真实背景生理,对该方法的性能进行了标准样条-余弦GLM方法的评估。
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