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通过手部和器械追踪将人工智能整合到手术中:一项系统的文献综述

Artificial intelligence integration in surgery through hand and instrument tracking: a systematic literature review.

作者信息

Yangi Kivanc, On Thomas J, Xu Yuan, Gholami Arianna S, Hong Jinpyo, Reed Alexander G, Puppalla Pravarakhya, Chen Jiuxu, Tangsrivimol Jonathan A, Li Baoxin, Santello Marco, Lawton Michael T, Preul Mark C

机构信息

The Loyal and Edith Davis Neurosurgical Research Laboratory, Department of Neurosurgery, Barrow Neurological Institute, St. Joseph's Hospital and Medical Center, Phoenix, AZ, United States.

School of Computing and Augmented Intelligence, Arizona State University, Tempe, AZ, United States.

出版信息

Front Surg. 2025 Feb 26;12:1528362. doi: 10.3389/fsurg.2025.1528362. eCollection 2025.

Abstract

OBJECTIVE

This systematic literature review of the integration of artificial intelligence (AI) applications in surgical practice through hand and instrument tracking provides an overview of recent advancements and analyzes current literature on the intersection of surgery with AI. Distinct AI algorithms and specific applications in surgical practice are also examined.

METHODS

An advanced search using medical subject heading terms was conducted in Medline (via PubMed), SCOPUS, and Embase databases for articles published in English. A strict selection process was performed, adhering to PRISMA guidelines.

RESULTS

A total of 225 articles were retrieved. After screening, 77 met inclusion criteria and were included in the review. Use of AI algorithms in surgical practice was uncommon during 2013-2017 but has gained significant popularity since 2018. Deep learning algorithms ( = 62) are increasingly preferred over traditional machine learning algorithms ( = 15). These technologies are used in surgical fields such as general surgery ( = 19), neurosurgery ( = 10), and ophthalmology ( = 9). The most common functional sensors and systems used were prerecorded videos ( = 29), cameras ( = 21), and image datasets ( = 7). The most common applications included laparoscopic ( = 13), robotic-assisted ( = 13), basic ( = 12), and endoscopic ( = 8) surgical skills training, as well as surgical simulation training ( = 8).

CONCLUSION

AI technologies can be tailored to address distinct needs in surgical education and patient care. The use of AI in hand and instrument tracking improves surgical outcomes by optimizing surgical skills training. It is essential to acknowledge the current technical and social limitations of AI and work toward filling those gaps in future studies.

摘要

目的

本系统文献综述通过手部和器械追踪对人工智能(AI)在外科手术实践中的应用整合进行了概述,介绍了近期进展,并分析了外科手术与AI交叉领域的现有文献。还研究了不同的AI算法以及在外科手术实践中的具体应用。

方法

在Medline(通过PubMed)、SCOPUS和Embase数据库中使用医学主题词进行高级搜索,以查找英文发表的文章。严格按照PRISMA指南进行筛选。

结果

共检索到225篇文章。筛选后,77篇符合纳入标准并纳入综述。2013 - 2017年期间,AI算法在外科手术实践中的应用并不常见,但自2018年以来已变得非常流行。深度学习算法(n = 62)比传统机器学习算法(n = 15)越来越受青睐。这些技术应用于普通外科(n = 19)、神经外科(n = 10)和眼科(n = 9)等外科领域。最常用的功能传感器和系统是预录制视频(n = 29)、摄像头(n = 21)和图像数据集(n = 7)。最常见的应用包括腹腔镜手术(n = 13)、机器人辅助手术(n = 13)、基础手术(n = 12)和内镜手术(n = 8)技能培训,以及手术模拟训练(n = 8)。

结论

AI技术可进行定制,以满足外科教育和患者护理中的不同需求。在手部和器械追踪中使用AI可通过优化手术技能培训来改善手术效果。必须认识到AI当前的技术和社会局限性,并努力在未来研究中填补这些空白。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/830f/11897506/bdb57cffa879/fsurg-12-1528362-g001.jpg

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