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Polyp Detection and Segmentation from Video Capsule Endoscopy: A Review

机译:视频胶囊内窥镜对息肉的检测和分割:综述

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Video capsule endoscopy (VCE) is used widely nowadays for visualizing the gastrointestinal (GI) tract. Capsule endoscopy exams are prescribed usually as an additional monitoring mechanism and can help in identifying polyps, bleeding, etc. To analyze the large scale video data produced by VCE exams, automatic image processing, computer vision, and learning algorithms are required. Recently, automatic polyp detection algorithms have been proposed with various degrees of success. Though polyp detection in colonoscopy and other traditional endoscopy procedure based images is becoming a mature field, due to its unique imaging characteristics, detecting polyps automatically in VCE is a hard problem. We review different polyp detection approaches for VCE imagery and provide systematic analysis with challenges faced by standard image processing and computer vision methods.
机译:如今,视频胶囊内窥镜检查(VCE)广泛用于可视化胃肠道(GI)。通常规定将胶囊内窥镜检查作为一种附加的监视机制,并且可以帮助识别息肉,出血等。要分析VCE检查产生的大规模视频数据,需要自动图像处理,计算机视觉和学习算法。最近,已经提出了自动息肉检测算法,并取得了不同程度的成功。尽管结肠镜检查和其他传统的基于内窥镜检查的图像中的息肉检测已成为一个成熟的领域,但由于其独特的成像特性,在VCE中自动检测息肉仍然是一个难题。我们回顾了VCE图像的各种息肉检测方法,并提供了标准图像处理和计算机视觉方法所面临挑战的系统分析。

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