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On Approximation of Orientation Distributions by Means of Spherical Ridgelets

机译:用球面脊小波近似取向分布

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Visualization and analysis of the micro-architecture of brain parenchyma by means of magnetic resonance imaging is nowadays believed to be one of the most powerful tools used for the assessment of various cerebral conditions as well as for understanding the intracerebral connectivity. Unfortunately, the conventional diffusion tensor imaging (DTI) used for estimating the local orientations of neural fibers is incapable of performing reliably in the situations when a voxel of interest accommodates multiple fiber tracts. In this case, a much more accurate analysis is possible using the high angular resolution diffusion imaging (HARDI) that represents local diffusion by its apparent coefficients measured as a discrete function of spatial orientations. In this note, a novel approach to enhancing and modeling the HARDI signals using multiresolution bases of spherical ridgelets is presented. In addition to its desirable properties of being adaptive, sparsifying, and efficiently computable, the proposed modeling leads to analytical computation of the orientation distribution functions associated with the measured diffusion, thereby providing a fast and robust analytical solution for q-ball imaging.
机译:如今,通过磁共振成像对脑实质的微结构进行可视化和分析被认为是用于评估各种脑部疾病以及了解脑内连通性的最强大工具之一。不幸的是,用于估计神经纤维局部取向的常规扩散张量成像(DTI)在目标体素容纳多个纤维束的情况下无法可靠地执行。在这种情况下,使用高角度分辨率扩散成像(HARDI)可以进行更准确的分析,该成像通过以空间方位离散函数测量的视在系数表示局部扩散。在本说明中,提出了一种使用球形脊突的多分辨率基准增强和建模HARDI信号的新颖方法。除了具有自适应,稀疏和可有效计算的理想特性外,所提出的模型还导致与测得的扩散相关的方向分布函数的解析计算,从而为q球成像提供了快速而强大的解析解决方案。

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