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Smoothing fields of weighted collections with applications to diffusion MRI processing

机译:加权集合的平滑字段在扩散MRI处理中的应用

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摘要

Using modern diffusion weighted magnetic resonance imaging protocols, the orientations of multiple neuronal fiber tracts within each voxel can be estimated. Further analysis of these populations, including application of fiber tracking and tract segmentation methods, is often hindered by lack of spatial smoothness of the estimated orientations. For example, a single noisy voxel can cause a fiber tracking method to switch tracts in a simple crossing tract geometry. In this work, a generalized spatial smoothing framework that handles multiple orientations as well as their fractional contributions within each voxel is proposed. The approach estimates an optimal fuzzy correspondence of orientations and fractional contributions between voxels and smooths only between these correspondences. Avoiding a requirement to obtain exact correspondences of orientations reduces smoothing anomalies due to propagation of erroneous correspondences around noisy voxels. Phantom experiments are used to demonstrate both visual and quantitative improvements in postprocessing steps. Improvement over smoothing in the measurement domain is also demonstrated using both phantoms and in vivo human data.
机译:使用现代扩散加权磁共振成像协议,可以估计每个体素内多个神经元纤维束的方向。对这些种群的进一步分析,包括应用纤维追踪和束分割方法,常常由于缺乏估计方向的空间平滑性而受到阻碍。例如,单个嘈杂的体素会导致纤维跟踪方法以简单的交叉束几何形状转换束。在这项工作中,提出了一种通用的空间平滑框架,该框架可处理多个方向及其在每个体素内的贡献。该方法估计体素之间的方向和分数贡献的最佳模糊对应关系,并且仅平滑这些对应关系之间的平滑关系。避免要求获得精确的方向对应关系,可以减少由于错误的对应关系在嘈杂的体素周围传播而导致的平滑异常。虚拟实验用于证明后处理步骤的视觉和定量改进。同时使用幻像和体内人类数据证明了在测量范围内平滑度方面的改进。

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