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Enhanced automatic colon segmentation for better cancer diagnosis

机译:增强的自动结肠分段,以便更好的癌症诊断

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Colon segmentation is the first stage towards polyp detection, the main cause of colon cancer. Due to the immense importance of colon cancer diagnosis which is the second leading cause of death in the world, the segmentation phase must guarantee that no polyps are missed, especially the flat ones that are usually hard to detect. This work validates the 3D automated colon segmentation approach using the convex contour model previously proposed in literature. It also adds improvements to its pre-processing stage in order to better capture the colon walls and to enhance the results of the subsequent phases of the segmentation process. Experiments were conducted on 27 colon data sets that include 30 polyps. Moreover, 30 synthesized polyps with various shapes and sizes were placed at challenging areas of the colon's complex structure. Experiments conducted show a significant improvement in the construction of colon walls and the rate of polyp detection over that provided by the original technique.
机译:结肠分割是涉及息肉检测的第一阶段,结肠癌的主要原因。由于结肠癌诊断的巨大重要性,这是世界上死亡的第二个主要原因,细分阶段必须保证没有错过息肉,特别是通常难以检测的乒乓球。这项工作验证了使用先前在文献中提出的凸轮廓模型的3D自动结肠分割方法。它还增加了预处理阶段的改进,以便更好地捕获结肠壁并增强分段过程的后续相的结果。在包括30个息肉的27个结肠数据集上进行实验。此外,具有各种形状和尺寸的30个合成息肉被放置在结肠复杂结构的具有挑战性区域。进行的实验表明结肠壁建造的显着改善和通过原始技术提供的息肉检测速率。

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