Lorenzi M, Ayache N, Pennec X
Asclepios Research Project, INRIA Sophia Antipolis, 2004 route des Lucioles BP 93, 06 902 Sophia Antipolis, France.
Neuroimage. 2015 Jul 15;115:224-34. doi: 10.1016/j.neuroimage.2015.04.051. Epub 2015 May 8.
In this study we introduce the regional flux analysis, a novel approach to deformation based morphometry based on the Helmholtz decomposition of deformations parameterized by stationary velocity fields. We use the scalar pressure map associated to the irrotational component of the deformation to discover the critical regions of volume change. These regions are used to consistently quantify the associated measure of volume change by the probabilistic integration of the flux of the longitudinal deformations across the boundaries. The presented framework unifies voxel-based and regional approaches, and robustly describes the volume changes at both group-wise and subject-specific level as a spatial process governed by consistently defined regions. Our experiments on the large cohorts of the ADNI dataset show that the regional flux analysis is a powerful and flexible instrument for the study of Alzheimer's disease in a wide range of scenarios: cross-sectional deformation based morphometry, longitudinal discovery and quantification of group-wise volume changes, and statistically powered and robust quantification of hippocampal and ventricular atrophy.
在本研究中,我们引入了区域通量分析,这是一种基于由平稳速度场参数化的变形的亥姆霍兹分解的基于变形的形态计量学的新方法。我们使用与变形的无旋分量相关的标量压力图来发现体积变化的关键区域。这些区域用于通过纵向变形通量在边界上的概率积分来一致地量化相关的体积变化度量。所提出的框架统一了基于体素和区域的方法,并将组水平和个体水平的体积变化稳健地描述为受一致定义区域支配的空间过程。我们在ADNI数据集的大量队列上进行的实验表明,区域通量分析是一种强大且灵活的工具,可用于在广泛场景中研究阿尔茨海默病:基于横截面变形的形态计量学、纵向发现和量化组水平的体积变化,以及对海马体和脑室萎缩进行有统计学效力且稳健的量化。