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Constrained free form deformation based algorithm for geometric distortion correction of echo planar diffusion tensor images

机译:基于约束自由形式变形的回波平面扩散张量图像几何畸变校正算法

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In order to differentiate between normal and abnormal variations in brain diffusion tensor images, it is necessary to develop medical atlases. Atlas creation requires removal of spatial distortions in individual subject diffusion weighted images. In this paper we suggest a new approach using non-linear warping based on optic flow to map both baseline and diffusion weighted echo planar images to the anatomically correct T2 weighted spin echo image. The method is readily implemented and does not require a pre-processing step of rigid alignment. A global histogram matching precedes the base line EP image correction. A Markov random field based classification algorithm was implemented to cluster T2 weighted images into four different tissue type classes. This information was then used to synthesize diffusion based image models used in the warping algorithm to correct the geometric distortions in the diffusion weighted EP images.
机译:为了区分脑扩散张量图像的正常和异常变化,有必要开发医学地图集。地图集的创建需要消除单个对象扩散加权图像中的空间畸变。在本文中,我们提出了一种新的方法,该方法使用基于光流的非线性翘曲将基线和扩散加权回波平面图像映射到解剖学上正确的T2加权自旋回波图像。该方法易于实施并且不需要刚性对准的预处理步骤。全局直方图匹配在基线EP图像校正之前。实现了基于马尔可夫随机场的分类算法,将T2加权图像聚类为四个不同的组织类型类别。然后,此信息将用于合成在翘曲算法中使用的基于扩散的图像模型,以校正扩散加权的EP图像中的几何畸变。

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