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Low Complexity CNN Structure for Automatic Bleeding Zone Detection in Wireless Capsule Endoscopy Imaging

机译:无线胶囊内窥镜检查中自动出血区检测的低复杂性CNN结构

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Wireless capsule endoscopy (WCE) is a swallowable device used for screening different parts of the human digestive system. Automatic WCE image analysis methods reduce the duration of the screening procedure and alleviate the burden of manual screening by medical experts. Recent studies widely employ convolutional neural networks (CNNs) for automatic analysis of WCE images; however, these studies do not consider CNN’s structural and computational complexities. In this paper, we address the problem of simplifying the CNN’s structure. A low complexity CNN structure for bleeding zone detection is proposed which takes a single patch as input and then outputs a segmented patch of the same size. The proposed network is inspired by the FCN paradigm with a simplified structure. Since it is based on image patches, the resulting network benefits from moderate-sized intermediate feature maps. Moreover, the problem of redundant computations in patch-based methods is circumvented by non-overlapping patch processing. The proposed method is evaluated using the publicly available KID dataset for WCE image analysis. Experimental results show that the proposed network has better accuracy and AUC than previous structures while requiring less computational operations.
机译:无线胶囊内窥镜(WCE)是一种可吞咽的装置,用于筛选人体消化系统的不同部分。自动WCE图像分析方法减少筛选程序的持续时间,并通过医疗专家减轻手动筛选的负担。最近的研究广泛采用卷积神经网络(CNNS),用于自动分析WCE图像;然而,这些研究不考虑CNN的结构和计算复杂性。在本文中,我们解决了简化CNN结构的问题。提出了一种用于出血区域检测的低复杂性CNN结构,其采用单个贴片作为输入,然后输出相同尺寸的分段贴片。所提出的网络通过简化结构的FCN范例启发。由于它基于图像修补程序,因此由中等大小的中间特征映射产生的网络受益。此外,通过非重叠补丁处理来规避基于补丁的方法的冗余计算问题。使用公共可用的KID数据集进行WCE图像分析来评估所提出的方法。实验结果表明,该网络具有比以前的结构更好的准确性和AUC,同时需要较少的计算操作。

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