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Efficient segmentation based on Eikonal and diffusion equations

机译:基于Eikonal和扩散方程的有效分割

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Segmentation of regions of interest in an image has important applications in medical image analysis, particularly in computer aided diagnosis. Segmentation can enable further quantitative analysis of anatomical structures. We present efficient image segmentation schemes based on the solution of distinct partial differential equations (PDEs). For each known image region, a PDE is solved, the solution of which locally represents the weighted distance from a region known to have a certain segmentation label. To achieve this goal, we propose the use of two separate PDEs, the Eikonal equation and a diffusion equation. In each method, the segmentation labels are obtained by a competition criterion between the solutions to the PDEs corresponding to each region. We discuss how each method applies the concept of information propagation from the labelled image regions to the unknown image regions. Experimental results are presented on magnetic resonance, computed tomography, and ultrasound images and for both two-region and multi-region segmentation problems. These results demonstrate the high level of efficiency as well as the accuracy of the proposed methods.
机译:图像中感兴趣区域的分割在医学图像分析中,特别是在计算机辅助诊断中具有重要的应用。分割可以实现对解剖结构的进一步定量分析。我们基于不同的偏微分方程(PDE)的解决方案提出了有效的图像分割方案。对于每个已知图像区域,求解一个PDE,其解在局部表示距已知具有特定分割标签的区域的加权距离。为了实现此目标,我们建议使用两个独立的PDE,即Eikonal方程和扩散方程。在每种方法中,通过对应于每个区域的PDE的解之间的竞争标准来获得分割标签。我们讨论了每种方法如何将信息传播的概念从标记的图像区域传播到未知的图像区域。实验结果针对磁共振,计算机断层扫描和超声图像以及两区域和多区域分割问题进行了介绍。这些结果证明了所提出方法的高效率以及准确性。

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