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MINING COLONOSCOPY VIDEOS TO MEASURE QUALITY OF COLONOSCOPIC PROCEDURES

机译:挖掘结肠镜检查视频以衡量结肠镜检查程序的质量

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Colonoscopy is an endoscopic technique that allows a physician to inspect the inside of the human colon. Colonoscopy is the accepted screening method for detection of colorectal cancer or its precursor lesions, colorectal polyps. Indeed, colonoscopy has contributed to a decline in the number of colorectal cancer related deaths. However, not all cancers or large polyps are detected at the time of colonoscopy, and studies of why this occurs are needed. Currently, there is no objective way to measure in detail what exactly is achieved during the procedure (I.e., quality of the colonoscopic procedure). In this paper, we present new algorithms that analyze a video file created during colonoscopy and derive quality measurements of how the colon mucosa is inspected. The proposed algorithms are unique applications of existing data mining techniques: decision tree and support vector machine classifiers applied to videos from medical domain. The algorithms are to be integrated into a novel system aimed at automatic analysis for quality measures of colonoscopy.
机译:结肠镜检查是一种内窥镜检查技术,可让医生检查人结肠内部。结肠镜检查是用于检测大肠癌或其前体病变,大肠息肉的公认筛选方法。实际上,结肠镜检查已导致与大肠癌相关的死亡人数下降。但是,在结肠镜检查时,并非所有癌症或大息肉都可以被检测到,因此需要研究为什么会发生这种情况。当前,没有客观的方法来详细地测量在手术过程中到底实现了什么(即,结肠镜检查程序的质量)。在本文中,我们提出了新的算法,可以分析在结肠镜检查过程中创建的视频文件,并得出如何检查结肠粘膜的质量测量结果。提出的算法是现有数据挖掘技术的独特应用:决策树和支持向量机分类器应用于医疗领域的视频。该算法将被集成到一个新颖的系统中,该系统旨在自动分析结肠镜检查的质量。

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