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Generalized Tensor-Based Morphometry of HIV/AIDS Using Multivariate Statistics on Deformation Tensors

机译:基于变形张量的多元统计的基于张量的HIV / AIDS形态计量学

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摘要

This paper investigates the performance of a new multivariate method for tensor-based morphometry (TBM). Statistics on Riemannian manifolds are developed that exploit the full information in deformation tensor fields. In TBM, multiple brain images are warped to a common neuroanatomical template via 3-D nonlinear registration; the resulting deformation fields are analyzed statistically to identify group differences in anatomy. Rather than study the Jacobian determinant (volume expansion factor) of these deformations, as is common, we retain the full deformation tensors and apply a manifold version of Hotelling’s T 2 test to them, in a Log-Euclidean domain. In 2-D and 3-D magnetic resonance imaging (MRI) data from 26 HIV/AIDS patients and 14 matched healthy subjects, we compared multivariate tensor analysis versus univariate tests of simpler tensor-derived indices: the Jacobian determinant, the trace, geodesic anisotropy, and eigenvalues of the deformation tensor, and the angle of rotation of its eigenvectors. We detected consistent, but more extensive patterns of structural abnormalities, with multivariate tests on the full tensor manifold. Their improved power was established by analyzing cumulative p-value plots using false discovery rate (FDR) methods, appropriately controlling for false positives. This increased detection sensitivity may empower drug trials and large-scale studies of disease that use tensor-based morphometry.
机译:本文研究了基于张量的形态学(TBM)的一种新的多元方法的性能。利用变形张量场中的全部信息,开发了黎曼流形的统计数据。在TBM中,通过3D非线性配准将多个大脑图像扭曲为通用的神经解剖模板;对产生的变形场进行统计分析,以识别解剖结构中的组差异。我们没有像通常那样研究这些变形的雅可比行列式(体积膨胀因子),而是保留了完整的变形张量,并在对数欧几里得中应用了Hotelling的T 2 检验的流形形式。域。在来自26位HIV / AIDS患者和14位匹配的健康受试者的2-D和3-D磁共振成像(MRI)数据中,我们比较了简单张量衍生指标的多元张量分析与单变量检验:雅可比行列式,迹线,测地线各向异性,变形张量的特征值及其特征向量的旋转角度。我们在整个张量歧管上进行了多变量测试,发现了一致但更广泛的结构异常模式。通过使用错误发现率(FDR)方法分析累积的p值图并适当控制错误肯定率,可以建立其增强的功能。这种提高的检测灵敏度可以使药物试验和使用基于张量形态学的疾病的大规模研究获得授权。

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