Removal of non-informative frames for wireless capsule endoscopy video segmentation

Zhe Sun, Baopu Li, Ran Zhou, Huimin Zheng, M. Meng
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引用次数: 12

Abstract

Wireless capsule endoscopy (WCE) video segmentation plays an important part in WCE automatic diagnosis since it provides an effective method to help physicians and save time. In the automatic WCE video segmentation process, impurities frames with opaque digestive juice, food residues and excrement not only waste plentiful time, but also cause a lower accuracy of segmentation for its variation of color and pattern. The major impurities which have great affection for WCE video segmentation can be divided into two categories, gastric juice and bubbles. Thus, in this paper, a novel two-stage preprocessing approach is proposed to remove impurities frames in WCE videos. In the first stage, frames of gastric juice are eliminated by using local HS histogram features. In the second stage, a new approach is carried out to remove the bubbles frames in the WCE video, which combines Color Local Binary Patterns (CLBP) algorithm with Discrete Cosine Transform (DCT). K-Nearest Neighbor (KNN) classifier is used in both stages for its rapidity. Experiments demonstrate that the proposed scheme is an effective approach for removing non-informative frames in WCE video and the accuracies of each stage can reach as high as 99.31% and 97.54% respectively.
无线胶囊内窥镜视频分割中非信息帧的去除
无线胶囊内窥镜(Wireless capsule endoscopy, WCE)视频分割是WCE自动诊断的重要组成部分,它提供了一种有效的方法来帮助医生,节省时间。在WCE视频自动分割过程中,含有不透明的消化液、食物残渣和粪便的杂质帧不仅浪费了大量的时间,而且由于其颜色和图案的变化导致分割精度降低。对WCE视频分割影响较大的主要杂质可分为胃液和气泡两类。因此,本文提出了一种新的两阶段预处理方法来去除WCE视频中的杂质帧。第一阶段,利用局部HS直方图特征消除胃液帧;第二阶段,将彩色局部二值模式(CLBP)算法与离散余弦变换(DCT)相结合,提出了一种去除WCE视频中的气泡帧的新方法。这两个阶段都使用k -最近邻(KNN)分类器,因为它的速度快。实验表明,该方案是一种有效的去除WCE视频中非信息帧的方法,每个阶段的准确率分别高达99.31%和97.54%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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