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Detection of anatomical landmarks in human colon from computed tomographic colonography images

机译:从计算机断层形成梭摄影图像中检测人类结肠的解剖标志

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Colon cancer is the second leading cause of cancer-related deaths per year in industrial nations. Virtual colonoscopy is a new, less invasive alternative to the usually practiced optical colonoscopy for colorectal polyp and cancer screening. In this paper, we present some physics-based modeling and pattern recognition techniques to identify anatomical landmarks in the human colon like the haustral folds and the tenia coli to further exploit the benefits of virtual colonoscopy. A combination of heat diffusion field algorithm and fuzzy c-means clustering algorithm is used to detect the haustral folds in human colon from volumetric computed tomography (CT) images. Each voxel on the corresponding colon surface is parameterized using the colon centerline information and associated local Frenet frames. The parameterized fold information is utilized to establish the tentative location of one tenia coli. Preliminary results on automated detection of tenia coli are shown on the colon surface.
机译:结肠癌是工业国家每年癌症相关死亡的第二个主要原因。虚拟结肠镜检查是一种新的,较少的侵入性替代方案,用于含有结肠直肠息肉和癌症筛选的通常实践的光学结肠镜检查。在本文中,我们提出了一些基于物理的建模和模式识别技术,以识别人类结肠等的解剖标志,如外国折叠和替补大肠杆菌以进一步利用虚拟结肠镜检查的益处。热扩散现场算法和模糊C-MERIAL聚类算法的组合用于检测来自体积计算断层扫描(CT)图像的人类结肠中的国有折叠。相应的结肠表面上的每个体素使用Colon Centerline信息和相关的本地Frenet框架参数化。参数化折叠信息用于建立一个Tenia Coli的暂定位置。在结肠表面上显示了Tenia Coli自动检测的初步结果。

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