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[肿瘤放射学中的人工智能:一篇(预)综述]

[Artificial intelligence in oncological radiology : A (p)review].

作者信息

Bucher Andreas M, Kleesiek Jens

机构信息

Institut für Diagnostische und Interventionelle Radiologie, Universitätsklinikum Frankfurt am Main, Theodor-Stern Kai 7, 60590, Frankfurt am Main, Deutschland.

Translationale bildgestützte Onkologie, Institut für KI in der Medizin (IKIM), Universitätsmedizin Essen, Essen, Deutschland.

出版信息

Radiologe. 2021 Jan;61(1):52-59. doi: 10.1007/s00117-020-00787-y.

Abstract

BACKGROUND

Artificial intelligence (AI) has the potential to fundamentally change medicine within the coming decades. Radiological imaging is one of the primary fields of its clinical application.

OBJECTIVES

In this article, we summarize previous AI developments with a focus on oncological radiology. Based on selected examples, we derive scenarios for developments in the next 10 years.

MATERIALS AND METHODS

This work is based on a review of various literature and product databases, publications by regulatory authorities, reports, and press releases.

CONCLUSIONS

The clinical use of AI applications is still in an early stage of development. The large number of research publications shows the potential of the field. Several certified products have already become available to users. However, for a widespread adoption of AI applications in clinical routine, several fundamental prerequisites are still awaited. These include the generation of evidence justifying the use of algorithms through representative clinical studies, adjustments to the framework for approval processes and dedicated education and teaching resources for its users. It is expected that use of AI methods will increase, thus, creating new opportunities for improved diagnostics, therapy, and more efficient workflows.

摘要

背景

在未来几十年内,人工智能(AI)有可能从根本上改变医学。放射成像技术是其临床应用的主要领域之一。

目的

在本文中,我们总结了以往人工智能的发展情况,重点关注肿瘤放射学。基于选定的示例,我们推导了未来10年的发展情景。

材料与方法

这项工作基于对各种文献和产品数据库、监管机构的出版物、报告及新闻稿的综述。

结论

人工智能应用的临床使用仍处于早期发展阶段。大量的研究出版物显示了该领域的潜力。已有几款经过认证的产品可供用户使用。然而,要使人工智能应用在临床常规中得到广泛应用,仍有待满足几个基本前提条件。这些条件包括通过具有代表性的临床研究生成证明算法使用合理性的证据、调整审批流程框架以及为用户提供专门的教育和教学资源。预计人工智能方法的使用将会增加,从而为改进诊断、治疗以及提高工作流程效率创造新的机会。

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