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Spatially-Constrained Probability Distribution Model of Incoherent Motion (SPIM) for Abdominal Diffusion-Weighted MRI

机译:腹部弥散加权MRI非相干运动(SPIM)的空间约束概率分布模型

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摘要

Quantitative diffusion-weighted MR imaging (DW-MRI) of the body enables characterization of the tissue microenvironment by measuring variations in the mobility of water molecules. The diffusion signal decay model parameters are increasingly used to evaluate various diseases of abdominal organs such as the liver and spleen. However, previous signal decay models (i.e., mono-exponential, bi-exponential intra-voxel incoherent motion (IVIM) and stretched exponential models) only provide insight into the average of the distribution of the signal decay rather than explicitly describe the entire range of diffusion scales. In this work, we propose a probability distribution model of incoherent motion that uses a mixture of Gamma distributions to fully characterize the multi-scale nature of diffusion within a voxel. Further, we improve the robustness of the distribution parameter estimates by integrating spatial homogeneity prior into the probability distribution model of incoherent motion (SPIM) and by using the fusion bootstrap solver (FBM) to estimate the model parameters. We evaluated the improvement in quantitative DW-MRI analysis achieved with the SPIM model in terms of accuracy, precision and reproducibility of parameter estimation in both simulated data and in 68 abdominal in-vivo DW-MRIs. Our results show that the SPIM model not only substantially reduced parameter estimation errors by up to 26%; it also significantly improved the robustness of the parameter estimates (paired Students t-test, p < 0.0001) by reducing the coefficient of variation (CV) of estimated parameters compared to those produced by previous models. In addition, the SPIM model improves the parameter estimates reproducibility for both intra- (up to 47%) and inter-session (up to 30%) estimates compared to those generated by previous models. Thus, the SPIM model has the potential to improve accuracy, precision and robustness of quantitative abdominal DW-MRI analysis for clinical applications.
机译:身体的定量扩散加权MR成像(DW-MRI)通过测量水分子迁移率的变化来表征组织微环境。扩散信号衰减模型参数越来越多地用于评估腹部器官(如肝脏和脾脏)的各种疾病。但是,以前的信号衰减模型(即,单指数,双指数内部体素不相干运动(IVIM)和拉伸指数模型)只能提供对信号衰减分布平均值的了解,而不能明确描述信号衰减的整个范围。扩散尺度。在这项工作中,我们提出了一种非相干运动的概率分布模型,该模型使用混合的Gamma分布来充分表征体素内扩散的多尺度性质。此外,我们通过将空间均匀性集成到非相干运动的概率分布模型(SPIM)中并使用融合自举求解器(FBM)估计模型参数来提高分布参数估计的鲁棒性。我们评估了SPIM模型在定量DW-MRI分析中在模拟数据和68例腹部DW-MRI中参数估计的准确性,准确性和可重复性方面的改进。我们的结果表明,SPIM模型不仅将参数估计误差大幅降低了多达26%;与以前的模型相比,通过减少估计参数的变异系数(CV),它还显着提高了参数估计的稳健性(配对的学生t检验,p <0.0001)。此外,与以前的模型生成的模型相比,SPIM模型可以提高参数估计的可重复性,可用于内部(高达47%)和会话间(高达30%)估计。因此,SPIM模型具有改善临床应用中腹部DW-MRI定量分析的准确性,准确性和鲁棒性的潜力。

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