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Automatic Segmentation of the Left Atrium from MR Images via Variational Region Growing With a Moments-Based Shape Prior

机译:通过基于矩量的形状先验的变化区域增长从MR图像自动分割左心房

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摘要

The planning and evaluation of left atrial ablation procedures are commonly based on the segmentation of the left atrium, which is a challenging task due to large anatomical variations. In this paper, we propose an automatic approach for segmenting the left atrium from magnetic resonance imagery. The segmentation problem is formulated as a problem in variational region growing. In particular, the method starts locally by searching for a seed region of the left atrium from an MR slice. A global constraint is imposed by applying a shape prior to the left atrium represented by Zernike moments. The overall growing process is guided by the robust statistics of intensities from the seed region along with the shape prior to capture the entire atrial region. The robustness and accuracy of our approach are demonstrated by experimental results from 64 human MR images.
机译:左心房消融手术的计划和评估通常基于左心房的分割,由于解剖学差异较大,这是一项艰巨的任务。在本文中,我们提出了一种从磁共振图像中分割左心房的自动方法。将分割问题表述为变化区域增长中的问题。特别地,该方法通过从MR切片搜索左心房的种子区域而局部地开始。通过在由Zernike矩表示的左心房之前应用形状来施加全局约束。整个生长过程由种子区域强度的强大统计数据以及捕获整个心房区域之前的形状的统计数据决定。我们的方法的鲁棒性和准确性由64张人类MR图像的实验结果证明。

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