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Fully Convolutional DenseNets for Polyp Segmentation in Colonoscopy

机译:结肠镜检查中息肉分割的完全卷积性钝细

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Early diagnosis and resection of colorectal polyps can effectively reduce the incidence and mortality rate. Colorectal cancer is a common gastrointestinal malignancy, ranking one of the three major malignancies around the world. With the improvement of living standards and dietary habits related problems, the incidence and mortality of colorectal cancer are showing an upward trend. Colorectal cancer is mostly from adenoma polyp malignant change, so early detection has important clinical significance. Although colonoscopy conducted by doctors is considered the most effective way in detecting polyps, uncertainty such as fatigue can affect the results. To solve this problem, we propose a fully convolutional densenet method to achieve the automatic detection and segmentation of colorectal polyps by computer. In this paper, we apply densenet to full convolutional network in segmentation of colorectal polyp, under the condition that not requiring post-processing and pre-training situation, we compare the number of parameters in different layers and assess accuracy and IOU respectively in segmentation of colorectal polyps. The results show that accuracy is improved as the layer increases gradually. When the layer number is 78(N=78), accuracy reaches 97.1% and the average IOU is 83.4%. In addition, we make a comparison with the state-of-the-art polyp segmentation method, the results reveal our method make a considerable improvement.
机译:结肠直肠息肉的早期诊断和切除可以有效降低发病率和死亡率。结直肠癌是一种常见的胃肠道恶性肿瘤,排名世界上三个主要的恶性肿瘤之一。随着生活水平和饮食习惯相关问题的改善,结肠直肠癌的发病率和死亡率都显示出上升趋势。结肠直肠癌主要来自腺瘤息肉恶性变化,因此早期检测具有重要的临床意义。虽然医生进行的结肠镜检查被认为是检测息肉中最有效的方法,但疲劳等不确定性会影响结果。为解决这个问题,我们提出了一种完全卷积的DENSENET方法,实现计算机的自动检测和分割。在本文中,我们将DENSENET应用于整数息肉的完整卷积网络,在不需要后处理和预训练情况的条件下,我们将不同层数的参数数分别进行比较分别分段分别评估准确性和IO的准确性和iou结肠直肠息肉。结果表明,随着层逐渐增加,准确性得到改善。当层数为78(n = 78)时,精度达到97.1%,平均iou为83.4%。此外,我们与最先进的息肉分割方法进行了比较,结果揭示了我们的方法具有相当大的改进。

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