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Color Based Stool Region Detection in Colonoscopy Videos for Quality Measurements

机译:结肠镜检查视频中基于颜色的凳子区域检测以进行质量测量

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摘要

Colonoscopy is the accepted screening method for detecting colorectal cancer or colorectal polyps. One of the main factors affecting the diagnostic accuracy of colonoscopy is the quality of bowel preparation. Despite a large body of published data on methods that could optimize cleansing, a substantial level of inadequate cleansing occurs in 10% to 75% of patients in randomized controlled trials. In this paper, we propose a novel approach that automatically determines percentages of stool areas in images of digitized colonoscopy video files, and automatically computes an estimate of the BBPS (Boston Bowel Preparation Scale) score based on the percentages of stool areas. It involves the classification of image pixels based on their color features using a new method of planes on RGB (Red, Green and Blue) color space. Our experiments show that the proposed stool classification method is sound and very suitable for colonoscopy video analysis where variation of color features is considerably high.
机译:结肠镜检查是用于检测大肠癌或大肠息肉的公认筛选方法。影响肠镜诊断准确性的主要因素之一是肠准备的质量。尽管有大量关于可以优化清洁效果的方法的公开数据,但在随机对照试验中,仍有10%至75%的患者出现了严重的清洁不足水平。在本文中,我们提出了一种新颖的方法,该方法可自动确定数字化结肠镜检查视频文件图像中粪便面积的百分比,并根据粪便面积的百分比自动计算BBPS(波士顿肠道准备量表)得分的估算值。它涉及使用RGB(红色,绿色和蓝色)颜色空间上的平面的新方法根据图像像素的颜色特征对图像进行分类。我们的实验表明,提出的粪便分类方法是合理的,非常适合结肠镜检查视频分析,该分析中颜色特征的变化非常大。

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