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Unified framework for anisotropic interpolation and smoothing of diffusion tensor images.

机译:各向异性张量和扩散张量图像平滑的统一框架。

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摘要

To enhance the performance of diffusion tensor imaging (DTI)-based fiber tractography, this study proposes a unified framework for anisotropic interpolation and smoothing of DTI data. The critical component of this framework is an anisotropic sigmoid interpolation kernel which is adaptively modulated by the local image intensity gradient profile. The adaptive modulation of the sigmoid kernel permits image smoothing in homogeneous regions and meanwhile guarantees preservation of structural boundaries. The unified scheme thus allows piece-wise smooth, continuous and boundary preservation interpolation of DTI data, so that smooth fiber tracts can be tracked in a continuous manner and confined within the boundaries of the targeted structure. The new interpolation method is compared with conventional interpolation methods on the basis of fiber tracking from synthetic and in vivo DTI data, which demonstrates the effectiveness of this unified framework.
机译:为了增强基于扩散张量成像(DTI)的纤维束成像的性能,本研究提出了用于DTI数据的各向异性插值和平滑的统一框架。该框架的关键部分是各向异性的S型插值内核,该内核通过局部图像强度梯度轮廓进行自适应调制。 S形核的自适应调制可在均匀区域内使图像平滑,同时保证保留结构边界。因此,统一的方案允许对DTI数据进行分段平滑,连续和边界保留插值,以便可以连续方式跟踪平滑的光纤束并将其限制在目标结构的边界内。在合成和体内D​​TI数据进行光纤跟踪的基础上,将新的插值方法与常规插值方法进行了比较,证明了此统一框架的有效性。

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