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Pancreas and Cyst Segmentation

机译:胰腺和囊肿分割

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Accurate segmentation of abdominal organs from medical images is an essential part of surgical planning and computer-aided disease diagnosis. Many existing algorithms are specialized for the segmentation of healthy organs. Cystic pancreas segmentation is especially challenging due to its low contrast boundaries, variability in shape, location and the stage of the pancreatic cancer. We present a semi-automatic segmentation algorithm for pancreata with cysts. In contrast to existing automatic segmentation approaches for healthy pancreas segmentation which are amenable to atlas/statistical shape approaches, a pancreas with cysts can have even higher variability with respect to the shape of the pancreas due to the size and shape of the cyst(s). Hence, fine results are better attained with semi-automatic steerable approaches. We use a novel combination of random walker and region growing approaches to delineate the boundaries of the pancreas and cysts with respective best Dice coefficients of 85.1% and 86.7%, and respective best volumetric overlap errors of 26.0% and 23.5%. Results show that the proposed algorithm for pancreas and pancreatic cyst segmentation is accurate and stable.
机译:从医学图像准确分割腹部器官是手术计划和计算机辅助疾病诊断的重要组成部分。许多现有算法专用于健康器官的分割。囊性胰腺分割由于其低对比度边界,形状,位置和胰腺癌分期的可变性而特别具有挑战性。我们提出了一种半自动胰腺囊肿分割算法。与适用于图谱/统计形状方法的用于健康胰腺分割的现有自动分割方法相反,由于囊肿的大小和形状,具有囊肿的胰腺相对于胰腺形状的变异性甚至更高。 。因此,使用半自动转向方法可以更好地获得良好的结果。我们使用随机沃克和区域生长方法的新颖组合来描绘胰腺和囊肿的边界,其各自的最佳Dice系数分别为85.1%和86.7%,各自的最佳体积重叠误差为26.0%和23.5%。结果表明,所提出的胰腺和胰腺囊肿分割算法准确,稳定。

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