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A modified graph cuts image segmentation algorithm with adaptive shape constraints and its application to computed tomography images

机译:修改的图表用自适应形状约束切割图像分割算法及其在计算断层摄影图像的应用

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The low contrast, blurred edges, and irregular contours of organs, such as the liver, kidney, and spleen, in abdominal computed tomography (CT) images hamper the machine-aided extraction of specific image regions pertaining to individual target organs. This problem is addressed herein by proposing an improved graph cuts segmentation algorithm with adaptive shape constraints. First, the original image is segmented based on multi-atlas registration. Then, the segmentation result is employed as a shape prior to constrain the shape of the final graph cuts segmentation result by adding a shape constraint energy term to the graph cuts energy function. The levels of shape constraint applied to the graph cuts energy function are adjusted according to differences in the probability of adjacent pixels residing within the target region, which are obtained in the initial segmentation process. Finally, the images of individual target organs in abdominal CT images are extracted by minimizing the energy function using the maximum-flow minimum-cut algorithm. Experimental results demonstrate that the proposed method can segment target organs well and can effectively reduce the occurrences of over-segmentation and under-segmentation caused by the conventional graph cuts algorithm. (C) 2020 Elsevier Ltd. All rights reserved.
机译:在腹部计算断层扫描(CT)图像中的肝脏,肾和脾脏等低对比度,模糊的边缘和不规则轮廓,例如肝脏,肾脏和脾脏,妨碍了与个体靶器官有关的特定图像区域的机器辅助提取。本文通过提出一种具有自适应形状约束的改进的图表切割分割算法来解决此问题。首先,原始图像基于多拟标记注册分段。然后,将分割结果用作在约束最终图的形状之前通过向图中添加形状约束能量术语来减少分割结果之前的形状。根据驻留在目标区域内的相邻像素的概率的差异,根据初始分割过程获得的相邻像素的概率的差异来调整适用于图形切割能量函数的形状约束。最后,通过使用最大流量最小切割算法最小化能量函数来提取腹部CT图像中各个靶器官的图像。实验结果表明,所提出的方法可以很好地将目标器官进行速度,并且可以有效地降低由传统的图形切割算法引起的过分分割和下分割的发生。 (c)2020 elestvier有限公司保留所有权利。

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