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以人工智能肠道图像识别模型评估结肠镜检查前肠道准备

Artificial intelligence colonic image recognition model for evaluating bowel preparation before colonoscopy
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摘要 目的观察人工智能肠道图像识别模型用于评估结肠镜检查前肠道准备的价值。方法回顾性分析190例接受肠道准备评估及结肠镜检查患者,根据评估肠道准备方法将其分为观察组(以人工智能肠道图像识别模型进行判断,n=100)和对照组(仅由患者将末次粪便性状与肠道清洁准备图进行对比而判断,n=90);比较2组肠道清洁度、肠镜检查时间及腺瘤检出率。结果观察组波士顿肠道准备量表(BBPS)评分及腺瘤检出率高于对照组,而肠镜检查时间短于对照组(P均<0.05)。结论检查前采用人工智能肠道图像识别模型评估肠道准备情况可提高BBPS评分及腺瘤检出率并缩短肠镜检查时间。 Objective To observe the value of artificial intelligence colonic image recognition model for evaluating bowel preparation before colonoscopy.Methods Data of 190 patients who underwent bowel preparation assessment and colonoscopy examination were retrospectively analyzed.The patients were divided into observation group(judging bowel preparation with artificial intelligence colonic image recognition model,n=100)or control group(judging bowel preparation by patient according to comparison of the last fecal characteristics with the bowel cleaning preparation map,n=90).The bowel cleanliness,operation time of colonoscopy and detection rate of adenomas were compared between groups.Results Boston bowel preparation scale(BBPS)score and detection rate of adenoma in observation group were both higher than those in control group,while colonoscopy time in observation group was shorter than that in control group(all P<0.05).Conclusion Artificial intelligence colonic image recognition model for evaluating bowel preparation could improve BBPS score and detection rate of adenoma,also shorten colonoscopy time of colonoscopy.
作者 林燕凤 赵舷宏 付朝丽 林梅顺 张英秀 谢晓婷 钟彩玲 刘佳 张北平 LIN Yanfeng;ZHAO Xianhong;FU Zhaoli;LIN Meishun;ZHANG Yingxiu;XIE Xiaoting;ZHONG Cailing;LIU Jia;ZHANG Beiping(Department of Gastroenterology,the Second Affiliated Hospital of Guangzhou University of Chinese Medicine,Guangzhou 510120,China)
出处 《中国医学影像技术》 CSCD 北大核心 2023年第7期1034-1038,共5页 Chinese Journal of Medical Imaging Technology
基金 2020年产学合作协同育人项目(202002117002)。
关键词 结肠镜检查 肠道准备 人工智能 colonoscopy bowel preparation artificial intelligence
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