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A Benchmark for Endoluminal Scene Segmentation of Colonoscopy Images

机译:结肠镜检查图像腔内场景分割的基准

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摘要

Colorectal cancer (CRC) is the third cause of cancer death worldwide. Currently, the standard approach to reduce CRC-related mortality is to perform regular screening in search for polyps and colonoscopy is the screening tool of choice. The main limitations of this screening procedure are polyp miss rate and the inability to perform visual assessment of polyp malignancy. These drawbacks can be reduced by designing decision support systems (DSS) aiming to help clinicians in the different stages of the procedure by providing endoluminal scene segmentation. Thus, in this paper, we introduce an extended benchmark of colonoscopy image segmentation, with the hope of establishing a new strong benchmark for colonoscopy image analysis research. The proposed dataset consists of 4 relevant classes to inspect the endoluminal scene, targeting different clinical needs. Together with the dataset and taking advantage of advances in semantic segmentation literature, we provide new baselines by training standard fully convolutional networks (FCNs). We perform a comparative study to show that FCNs significantly outperform, without any further postprocessing, prior results in endoluminal scene segmentation, especially with respect to polyp segmentation and localization.
机译:大肠癌(CRC)是全球癌症死亡的第三大原因。当前,降低CRC相关死亡率的标准方法是进行常规筛查以寻找息肉,而结肠镜检查是首选的筛查工具。该筛查程序的主要局限性是息肉漏诊率和无法进行息肉恶性肿瘤的视觉评估。这些缺点可以通过设计决策支持系统(DSS)来减少,这些决策支持系统旨在通过提供腔内场景分割来帮助处于不同阶段的临床医生。因此,在本文中,我们介绍了结肠镜检查图像分割的扩展基准,希望为结肠镜检查图像分析研究建立新的强大基准。拟议的数据集包括4个相关类别,以检查腔内场景,针对不同的临床需求。结合数据集并利用语义分割文献的进步,我们通过训练标准的全卷积网络(FCN)提供了新的基线。我们进行了一项比较研究,以显示FCNs在腔内场景分割方面,特别是在息肉分割和定位方面,比没有任何进一步的后处理的结果要好得多。

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