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A Two-Level Approach Towards Semantic Colon Segmentation: Removing Extra-Colonic Findings

机译:语义结肠分割的两级方法:删除多余的结肠发现

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Computer aided detection (CAD) of colonic polyps in computed tomographic colonography has tremendously impacted colorectal cancer diagnosis using 3D medical imaging. It is a prerequisite for all CAD systems to extract the air-distended colon segments from 3D abdomen computed tomography scans. In this paper, we present a two-level statistical approach of first separating colon segments from small intestine, stomach and other extra-colonic parts by classification on a new geometric feature set; then evaluating the overall performance confidence using distance and geometry statistics over patients. The proposed method is fully automatic and validated using both the classification results in the first level and its numerical impacts on false positive reduction of extra-colonic findings in a CAD system. It shows superior performance than the state-of-art knowledge or anatomy based colon segmentation algorithms [1,2,3].
机译:计算机断层扫描结肠造影术中结肠息肉的计算机辅助检测(CAD)已极大地影响了使用3D医学成像技术对大肠癌的诊断。这是所有CAD系统从3D腹部计算机断层扫描中提取出空气膨胀的结肠段的先决条件。在本文中,我们提出了一种两级统计方法:首先通过在新的几何特征集上进行分类,将结肠段与小肠,胃和其他结肠外部分分开;然后使用患者的距离和几何统计信息来评估总体表现信心。所提出的方法是全自动的,并使用第一级的分类结果及其对CAD系统中结肠外发现的假阳性减少的数值影响进行了验证。它显示出比基于最新知识或基于解剖结构的结肠分割算法[1,2,3]更好的性能。

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