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多中心腹部MRI影像组学中的标准化策略:系统评价与荟萃分析

Normalization Strategies in Multi-Center Radiomics Abdominal MRI: Systematic Review and Meta-Analyses.

作者信息

Panic Jovana, Defeudis Arianna, Balestra Gabriella, Giannini Valentina, Rosati Samanta

机构信息

Department of Surgical Science, and Polytechnic of Turin, Department of Electronics and TelecommunicationsUniversity of Turin 10129 Turin Italy.

Department of Surgical ScienceUniversity of Turin 10129 Turin Italy.

出版信息

IEEE Open J Eng Med Biol. 2023 Apr 28;4:67-76. doi: 10.1109/OJEMB.2023.3271455. eCollection 2023.

Abstract

Artificial intelligence applied to medical image analysis has been extensively used to develop non-invasive diagnostic and prognostic signatures. However, these imaging biomarkers should be largely validated on multi-center datasets to prove their robustness before they can be introduced into clinical practice. The main challenge is represented by the great and unavoidable image variability which is usually addressed using different pre-processing techniques including spatial, intensity and feature normalization. The purpose of this study is to systematically summarize normalization methods and to evaluate their correlation with the radiomics model performances through meta-analyses. This review is carried out according to the PRISMA statement: 4777 papers were collected, but only 74 were included. Two meta-analyses were carried out according to two clinical aims: characterization and prediction of response. Findings of this review demonstrated that there are some commonly used normalization approaches, but not a commonly agreed pipeline that can allow to improve performance and to bridge the gap between bench and bedside.

摘要

应用于医学图像分析的人工智能已被广泛用于开发非侵入性诊断和预后特征。然而,在将这些成像生物标志物引入临床实践之前,应在多中心数据集中对其进行大量验证,以证明其稳健性。主要挑战在于巨大且不可避免的图像变异性,通常使用包括空间、强度和特征归一化在内的不同预处理技术来解决。本研究的目的是系统地总结归一化方法,并通过荟萃分析评估它们与放射组学模型性能的相关性。本综述按照PRISMA声明进行:共收集了4777篇论文,但仅纳入了74篇。根据两个临床目标进行了两项荟萃分析:特征描述和反应预测。本综述的结果表明,存在一些常用的归一化方法,但没有一个普遍认可的流程能够提高性能并弥合实验室与临床应用之间的差距。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3830/10241248/09499551444e/panic1-3271455.jpg

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