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Outer Wall Segmentation of Abdominal Aortic Aneurysm by Variable Neighborhood Search Through Intensity and Gradient Spaces

机译:通过强度和梯度空间的可变邻域搜索对腹主动脉瘤的外壁分割

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摘要

Aortic aneurysm segmentation remains a challenge. Manual segmentation is a time-consuming process which is not practical for routine use. To address this limitation, several automated segmentation techniques for aortic aneurysm have been developed, such as edge detection-based methods, partial differential equation methods, and graph partitioning methods. However, automatic segmentation of aortic aneurysm is difficult due to high pixel similarity to adjacent tissue and a lack of color information in the medical image, preventing previous work from being applicable to difficult cases. This paper uses uses a variable neighborhood search that alternates between intensity-based and gradient-based segmentation techniques. By alternating between intensity and gradient spaces, the search can escape from local optima of each space. The experimental results demonstrate that the proposed method outperforms the other existing segmentation methods in the literature, based on measurements of dice similarity coefficient and jaccard similarity coefficient at the pixel level. In addition, it is shown to perform well for cases that are difficult to segment.
机译:主动脉瘤分割仍然是一个挑战。手动分段是一个耗时的过程,对于常规使用而言不切实际。为了解决这个限制,已经开发了几种用于主动脉瘤的自动分割技术,例如基于边缘检测的方法,偏微分方程方法和图形划分方法。然而,由于与邻近组织的高像素相似性以及医学图像中缺乏颜色信息,因此很难自动分割主动脉瘤。这使得先前的工作不适用于困难的病例。本文使用可变邻域搜索,该搜索在基于强度和基于梯度的分割技术之间交替。通过在强度空间和梯度空间之间交替,搜索可以脱离每个空间的局部最优值。实验结果表明,基于对骰子相似度系数和雅卡德相似度系数的测量,该方法优于文献中已有的其他分割方法。另外,对于难以分割的案例,它表现良好。

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