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Artificial intelligence technologies for the detection of colorectal lesions: The future is now
Authors:Simona Attardo  Viveksandeep Thoguluva Chandrasekar  Marco Spadaccini  Roberta Maselli  Harsh K Patel  Madhav Desai  Antonio Capogreco  Matteo Badalamenti  Piera Alessia Galtieri  Gaia Pellegatta  Alessandro Fugazza  Silvia Carrara  rea Anderloni  Pietro Occhipinti  Cesare Hassan  Prateek Sharma  Alessandro Repici
Abstract:
Several studies have shown a significant adenoma miss rate up to 35% during screening colonoscopy, especially in patients with diminutive adenomas. The use of artificial intelligence(AI) in colonoscopy has been gaining popularity by helping endoscopists in polyp detection, with the aim to increase their adenoma detection rate(ADR) and polyp detection rate(PDR) in order to reduce the incidence of interval cancers. The efficacy of deep convolutional neural network(DCNN)-based AI system for polyp detection has been trained and tested in ex vivo settings such as colonoscopy still images or videos. Recent trials have evaluated the real-time efficacy of DCNN-based systems showing promising results in term of improved ADR and PDR. In this review we reported data from the preliminary ex vivo experiences and summarized the results of the initial randomized controlled trials.
Keywords:Endoscopy   Colonoscopy   Screening   Surveillance   Technology   Quality   Artificial intelligence
本文献已被 CNKI 等数据库收录!
点击此处可从《World journal of gastroenterology : WJG》浏览原始摘要信息
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