首页> 外文期刊>Journal of magnetic resonance imaging: JMRI >Robust, unbiased general linear model estimation of phMRI signal amplitude in the presence of variation in the temporal response profile.
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Robust, unbiased general linear model estimation of phMRI signal amplitude in the presence of variation in the temporal response profile.

机译:在时间响应曲线存在变化的情况下,phMRI信号幅度的鲁棒,无偏一般线性模型估计。

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PURPOSE: To determine a simple yet robust method to generate parsimonious design matrices that accurately estimate the "pharmacological MRI" (phMRI) response amplitude in the presence of both confounding signals and variability in temporal profile. Variability in the temporal response profile of phMRI time series data is often observed. If not properly accounted for, this variation can result in inaccurate and unevenly biased signal amplitude estimates when modeled within a general linear model (GLM) framework. MATERIALS AND METHODS: The approach uses a low-rank singular value decomposition (SVD) approximation to a set of vectors capturing anticipated variations of no interest around the signal model to generate additional regressors for the design matrix. The method is demonstrated for both plateau and bolus type phMRI response profiles in the presence of variation in signal onset and/or shape, and applied to an in vivo blood oxygenation level-dependent (BOLD) phMRI study of buprenorphine in healthy human subjects. RESULTS: In general, 2-3 additional regressors, capturing >75% of the anticipated variance, resulted in robust and unbiased signal amplitude estimates in the presence of substantial variability. CONCLUSION: This method provides a simple and flexible means to provide robust phMRI amplitude estimates within a GLM framework.
机译:目的:确定一种简单而健壮的方法来生成简约设计矩阵,该模板可在存在混杂信号和时间变化的情况下准确估算“药理学MRI”(phMRI)反应幅度。经常观察到phMRI时间序列数据的时间响应曲线的变化。如果未适当说明,则在一般线性模型(GLM)框架中进行建模时,此变化可能会导致信号幅度估计的不准确和不均匀偏差。材料和方法:该方法对一组向量使用低秩奇异值分解(SVD)近似值,以捕获信号模型周围无用的预期变化,从而为设计矩阵生成其他回归变量。在信号发生和/或形状变化的情况下,该方法可用于高原和大剂量phMRI反应谱,并且已用于健康人受试者中丁丙诺啡的体内血液氧合水平依赖性(BOLD)phMRI研究。结果:通常,在存在较大可变性的情况下,捕获2-35%的额外回归变量,捕获> 75%的预期方差,可以得到可靠且无偏的信号幅度估计。结论:该方法提供了一种简单灵活的方法,可以在GLM框架内提供可靠的phMRI振幅估计。

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