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基于人工智能的PET图像在肿瘤患者中的临床应用。

Clinical application of AI-based PET images in oncological patients.

作者信息

Dai Jiaona, Wang Hui, Xu Yuchao, Chen Xiyang, Tian Rong

机构信息

Department of Nuclear Medicine, West China Hospital, Sichuan University, Chengdu 610041, China.

School of Nuclear Science and Technology, University of South China, Hengyang City 421001, China.

出版信息

Semin Cancer Biol. 2023 Jun;91:124-142. doi: 10.1016/j.semcancer.2023.03.005. Epub 2023 Mar 10.

Abstract

Based on the advantages of revealing the functional status and molecular expression of tumor cells, positron emission tomography (PET) imaging has been performed in numerous types of malignant diseases for diagnosis and monitoring. However, insufficient image quality, the lack of a convincing evaluation tool and intra- and interobserver variation in human work are well-known limitations of nuclear medicine imaging and restrict its clinical application. Artificial intelligence (AI) has gained increasing interest in the field of medical imaging due to its powerful information collection and interpretation ability. The combination of AI and PET imaging potentially provides great assistance to physicians managing patients. Radiomics, an important branch of AI applied in medical imaging, can extract hundreds of abstract mathematical features of images for further analysis. In this review, an overview of the applications of AI in PET imaging is provided, focusing on image enhancement, tumor detection, response and prognosis prediction and correlation analyses with pathology or specific gene mutations in several types of tumors. Our aim is to describe recent clinical applications of AI-based PET imaging in malignant diseases and to focus on the description of possible future developments.

摘要

基于正电子发射断层扫描(PET)成像在揭示肿瘤细胞功能状态和分子表达方面的优势,其已被应用于多种恶性疾病的诊断和监测。然而,图像质量不足、缺乏令人信服的评估工具以及人工操作中观察者内部和观察者之间的差异是核医学成像众所周知的局限性,限制了其临床应用。由于人工智能(AI)强大的信息收集和解释能力,其在医学成像领域越来越受到关注。AI与PET成像的结合可能为管理患者的医生提供极大帮助。放射组学作为AI应用于医学成像的一个重要分支,可以提取数百个图像的抽象数学特征用于进一步分析。在本综述中,提供了AI在PET成像中的应用概述,重点关注图像增强、肿瘤检测、反应和预后预测以及与几种肿瘤的病理学或特定基因突变的相关性分析。我们的目的是描述基于AI的PET成像在恶性疾病中的近期临床应用,并重点描述未来可能的发展。

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