Applications of Artificial Intelligence in the Automatic Diagnosis of Focal Liver Lesions: A Systematic Review.

IF 2.1 4区 医学 Q3 GASTROENTEROLOGY & HEPATOLOGY Journal of Gastrointestinal and Liver Diseases Pub Date : 2023-04-01 DOI:10.15403/jgld-4755
Stefan Lucian Popa, Simona Grad, Giuseppe Chiarioni, Annalisa Masier, Giulia Peserico, Vlad Dumitru Brata, Dinu Iuliu Dumitrascu, Alberto Fantin
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引用次数: 1

Abstract

Background and aims: Focal liver lesions (FLLs) are defined as abnormal solid or liquid masses differentiated from normal liver, frequently being clinically asymptomatic. The aim of this systematic review is to provide a comprehensive overview of current artificial intelligence (AI) applications, deep learning systems and convolutional neural networks, capable of performing a completely automated diagnosis of FLLs.

Methods: We searched PubMed, Cochrane Library, EMBASE, and WILEY databases using predefined keywords. Articles were screened for relevant publications about AI applications capable of automated diagnosis of FLLs. The search terms included: (focal liver lesions OR FLLs OR hepatic focal lesions OR liver focal lesions OR liver tumor OR hepatic tumor) AND (artificial intelligence OR machine learning OR neural networks OR deep learning OR automated diagnosis OR ultrasound OR US OR computer scan OR CT OR magnetic resonance imaging OR MRI OR computer-aided diagnosis OR automated computer tomography OR automated magnetic imaging).

Results: Our search identified a total of 32 articles analyzing complete automated imagistic diagnosis of FLLs, out of which 14 studies analyzing liver ultrasound images, 8 studies analyzing computer tomography images and 10 studies analyzing images obtained from magnetic resonance imaging.

Conclusions: We found significant evidence demonstrating that implementing a complete automated system for FLLs diagnosis using AI-based applications is currently feasible. Various automated AI-based applications have been analyzed. However, there is no clear evidence about the superiority of any of the systems.

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人工智能在局灶性肝脏病变自动诊断中的应用综述
背景和目的:局灶性肝脏病变(fll)被定义为与正常肝脏区分的异常固体或液体肿块,通常无临床症状。本系统综述的目的是全面概述当前人工智能(AI)应用,深度学习系统和卷积神经网络,能够执行完全自动化的fll诊断。方法:使用预定义关键词检索PubMed、Cochrane Library、EMBASE和WILEY数据库。文章筛选了能够自动诊断fll的人工智能应用的相关出版物。搜索词包括:(局灶性肝脏病变或FLLs或肝局灶性病变或肝肿瘤或肝肿瘤)和(人工智能或机器学习或神经网络或深度学习或自动诊断或超声或US或计算机扫描或CT或磁共振成像或MRI或计算机辅助诊断或自动计算机断层扫描或自动磁成像)。结果:我们共检索到32篇分析fll全自动影像学诊断的文章,其中14篇研究分析肝脏超声图像,8篇研究分析计算机断层扫描图像,10篇研究分析磁共振成像图像。结论:我们发现了重要的证据,表明使用基于人工智能的应用程序实现fll诊断的完整自动化系统目前是可行的。分析了各种基于人工智能的自动化应用程序。然而,没有明确的证据表明任何一种系统的优越性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
3.20
自引率
0.00%
发文量
61
审稿时长
6-12 weeks
期刊介绍: The Journal of Gastrointestinal and Liver Diseases (formerly Romanian Journal of Gastroenterology) publishes papers reporting original clinical and scientific research, which are of a high standard and which contribute to the advancement of knowledge in the field of gastroenterology and hepatology. The field comprises prevention, diagnosis and management of gastrointestinal and hepatobiliary disorders, as well as related molecular genetics, pathophysiology, and epidemiology. The journal also publishes reviews, editorials and short communications on those specific topics. Case reports will be accepted if of great interest and well investigated.
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