首页> 外文期刊>Magnetic resonance in medicine: official journal of the Society of Magnetic Resonance in Medicine >Improved intravoxel incoherent motion analysis of diffusion weighted imaging by data driven Bayesian modeling
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Improved intravoxel incoherent motion analysis of diffusion weighted imaging by data driven Bayesian modeling

机译:数据驱动的贝叶斯建模改进了弥散加权成像的体素不相干运动分析

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摘要

In addition to the diffusion coefficient, fitting the intravoxel incoherent motion model to multiple b-value diffusion-weighted MR data gives pseudo-diffusion measures associated with rapid signal attenuation at low b-values that are of use in the assessment of a number of pathologies. When summary measures are required, such as the average parameter for a region of interest, least-squares based methods give adequate estimation accuracy. However, using least-squares methods for pixel-wise fitting typically gives noisy estimates, especially for the pseudo-diffusion parameters, which limits the applicability of the approach for assessing spatial features and heterogeneity. In this article, a Bayesian approach using a shrinkage prior model is proposed and is shown to substantially reduce estimation uncertainty so that spatial features in the parameters maps are more clearly apparent. The Bayesian approach has no user-defined parameters, so measures of parameter variation (heterogeneity) over regions of interest are determined by the data alone, whereas it is shown that for the least-squares estimates, measures of variation are essentially determined by user-defined constraints on the parameters. Use of a Bayesian shrinkage prior approach is, therefore, recommended for intravoxel incoherent motion modeling.
机译:除扩散系数外,将体素不相干运动模型拟合到多个b值扩散加权MR数据可提供与低b值处的快速信号衰减相关的伪扩散测量,可用于评估多种病理。当需要汇总度量(例如感兴趣区域的平均参数)时,基于最小二乘法的方法可提供足够的估计精度。然而,使用最小二乘法进行逐像素拟合通常会产生嘈杂的估计,尤其是对于伪扩散参数,这限制了该方法用于评估空间特征和异质性的适用性。在本文中,提出了一种使用收缩先验模型的贝叶斯方法,该方法被证明可以大大减少估计的不确定性,从而使参数图中的空间特征更加清晰可见。贝叶斯方法没有用户定义的参数,因此感兴趣区域上参数变化(异质性)的度量仅由数据确定,而对于最小二乘估计,变异的度量基本上由用户确定-定义的参数约束。因此,建议在体素内非相干运动建模中使用贝叶斯收缩先验方法。

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