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集成深度学习模型在超声胆囊图像诊断先天性胆道闭锁方面优于人类专家。

Ensembled deep learning model outperforms human experts in diagnosing biliary atresia from sonographic gallbladder images.

机构信息

Department of Medical Ultrasonics, Institute for Diagnostic and Interventional Ultrasound, The First Affiliated Hospital, Sun Yat-sen University, Guangzhou, P. R. China.

School of Computer Science and Engineering, Sun Yat-sen University, Guangzhou, P. R. China.

出版信息

Nat Commun. 2021 Feb 24;12(1):1259. doi: 10.1038/s41467-021-21466-z.

Abstract

It is still challenging to make accurate diagnosis of biliary atresia (BA) with sonographic gallbladder images particularly in rural area without relevant expertise. To help diagnose BA based on sonographic gallbladder images, an ensembled deep learning model is developed. The model yields a patient-level sensitivity 93.1% and specificity 93.9% [with areas under the receiver operating characteristic curve of 0.956 (95% confidence interval: 0.928-0.977)] on the multi-center external validation dataset, superior to that of human experts. With the help of the model, the performances of human experts with various levels are improved. Moreover, the diagnosis based on smartphone photos of sonographic gallbladder images through a smartphone app and based on video sequences by the model still yields expert-level performances. The ensembled deep learning model in this study provides a solution to help radiologists improve the diagnosis of BA in various clinical application scenarios, particularly in rural and undeveloped regions with limited expertise.

摘要

利用超声胆囊图像对胆道闭锁(BA)进行准确诊断仍然具有挑战性,特别是在没有相关专业知识的农村地区。为了帮助基于超声胆囊图像诊断 BA,开发了一种集成深度学习模型。该模型在多中心外部验证数据集上的患者级别的敏感性为 93.1%,特异性为 93.9%[受试者工作特征曲线下面积为 0.956(95%置信区间:0.928-0.977)],优于人类专家的表现。在模型的帮助下,不同水平的人类专家的表现得到了提高。此外,通过智能手机应用程序基于智能手机拍摄的超声胆囊图像以及通过模型基于视频序列进行的诊断仍然具有专家级别的表现。本研究中的集成深度学习模型为帮助放射科医生在各种临床应用场景中提高 BA 的诊断水平提供了一种解决方案,特别是在专业知识有限的农村和欠发达地区。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/206d/7904842/bb86fd5efb55/41467_2021_21466_Fig1_HTML.jpg

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