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DETECTING DEFICIENT COVERAGE IN GASTROENTEROLOGICAL PROCEDURES

机译:检测缺乏胃肠学程序的缺陷

摘要

The present disclosure is directed towards systems and methods that leverage machine-learned models to decrease the rate at which abnormal sites are missed during a gastroenterological procedure. In particular, the system and methods of the present disclosure can use machine-learning techniques to determine the coverage rate achieved during a gastroenterological procedure. Measuring the coverage rate of the gastroenterological procedure can allow medical professionals to be alerted when the coverage output is deficient and thus allow an additional coverage to be achieved and as a result increase in the detection rate for abnormal sites (e.g., adenoma, polyp, lesion, tumor, etc.) during the gastroenterological procedure.
机译:本公开涉及利用机器学习模型的系统和方法,以降低在胃肠学程序期间错过异常位点的速率。 特别地,本公开的系统和方法可以使用机器学习技术来确定在胃肠学过程期间实现的覆盖率。 测量胃肠学程序的覆盖率可以允许医疗专业人员在覆盖输出缺陷时要警告,因此允许额外的覆盖率,结果增加异常位点的检出率(例如,腺瘤,息肉,病变 在胃肠学程序期间,肿瘤等)。

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