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Parametric regression scheme for distributions: Analysis of DTI fiber tract diffusion changes in early brain development

机译:分布的参数回归方案:早期大脑发育中DTI纤维束扩散变化的分析

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Temporal modeling frameworks often operate on scalar variables by summarizing data at initial stages as statistical summaries of the underlying distributions. For instance, DTI analysis often employs summary statistics, like mean, for regions of interest and properties along fiber tracts for population studies and hypothesis testing. This reduction via discarding of variability information may introduce significant errors which propagate through the procedures. We propose a novel framework which uses distribution-valued variables to retain and utilize the local variability information. Classic linear regression is adapted to employ these variables for model estimation. The increased stability and reliability of our proposed method when compared with regression using single-valued statistical summaries, is demonstrated in a validation experiment with synthetic data. Our driving application is the modeling of age-related changes along DTI white matter tracts. Results are shown for the spatiotemporal population trajectory of genu tract estimated from 45 healthy infants and compared with a Krabbe's patient.
机译:时间建模框架通常通过将初始阶段的数据汇总为基础分布的统计汇总,对标量变量进行操作。例如,DTI分析通常对目标区域和沿纤维束的属性使用汇总统计(如均值)进行人口研究和假设检验。通过丢弃可变性信息而进行的减少可能会引入重大错误,这些错误会在整个过程中传播。我们提出了一个新颖的框架,该框架使用分布值变量来保留和利用局部变异性信息。经典线性回归适用于将这些变量用于模型估计。与使用单值统计摘要进行回归相比,我们提出的方法具有更高的稳定性和可靠性,这在合成数据验证实验中得到了证明。我们的驾驶应用是对DTI白质区域中与年龄相关的变化进行建模。结果显示了45位健康婴儿的生殖道时空人口轨迹,并与Krabbe病患进行了比较。

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