Knowledge mapping and research hotspots of artificial intelligence on ICU and Anesthesia: from a global bibliometric perspective

Congjun Li, Ruihao Zhou, Guo Chen, Xuechao Hao, Tao Zhu
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Abstract

The swift advancement of technology has led to the widespread utilization of artificial intelligence (AI) in the diagnosis of diseases and prediction of prognoses, particularly in the field of intensive care unit (ICU) and Anesthesia. Numerous evidential data have demonstrated the extensive potential of AI in monitoring and predicting patient outcomes in these fields. Using bibliometric analysis, this study provides an overview of the current state of knowledge regarding the application of AI in ICU and Anesthesia and investigates prospective avenues for future research. Web of Science Core Collection was queried on May 6, 2023, to select articles and reviews regarding AI in ICU and Anesthesia. Subsequently, various analytical tools including Microsoft Excel 2022, VOSviewer (version 1.6.16), Citespace (version 6.2.R2), and an online bibliometric platform were employed to examine the publication year, citations, authors, countries, institutions, journals, and keywords associated with this subject area. This study selected 2196 articles from the literature. focusing on AI-related research within the fields of ICU and Anesthesia, which has increased exponentially over the past decade. Among them, the USA ranked first with 634 publications and had close international cooperation. Harvard Medical School was the most productive institution. In terms of publications, Scientific Reports (impact factor (IF) 4.996) had the most, while Critical Care Medicine (IF 9.296) had the most citations. According to numerous references, researchers may focus on the following research hotspots: “Early Warning Scores”, “Covid-19″, “Sepsis” and “Neural Networks”. “Procalcitonin” and “Convolutional Neural Networks” were the hottest burst keywords. The potential applications of AI in the fields of ICU and Anesthesia have garnered significant attention from scholars, prompting an increase in research endeavors. In addition, it is imperative for various countries and institutions to enhance their collaborative efforts in this area. The research focus in the upcoming years will center on sepsis and coronavirus, as well as the development of predictive models utilizing neural network algorithms to improve well-being and quality of life in surviving patients.

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从全球文献计量学角度看重症监护室和麻醉人工智能的知识图谱和研究热点
随着技术的飞速发展,人工智能(AI)被广泛应用于疾病诊断和预后预测,尤其是在重症监护室(ICU)和麻醉领域。大量证据数据表明,人工智能在监测和预测这些领域的患者预后方面具有广泛的潜力。通过文献计量分析,本研究概述了人工智能在重症监护室和麻醉领域应用的知识现状,并探讨了未来研究的前景。本研究于 2023 年 5 月 6 日查询了科学网核心文献集,选择了有关人工智能在重症监护室和麻醉中的应用的文章和评论。随后,我们使用了各种分析工具,包括 Microsoft Excel 2022、VOSviewer(1.6.16 版)、Citespace(6.2.R2 版)和在线文献计量平台,以检查与该主题领域相关的发表年份、引文、作者、国家、机构、期刊和关键词。本研究从文献中选取了 2196 篇文章,重点关注 ICU 和麻醉领域中与人工智能相关的研究,这些研究在过去十年中呈指数级增长。其中,美国以 634 篇论文位居榜首,并有密切的国际合作。哈佛大学医学院是发表论文最多的机构。在出版物方面,《科学报告》(影响因子(IF)4.996)最多,而《重症医学》(IF 9.296)的引用次数最多。根据大量参考文献,研究人员可以关注以下研究热点:预警评分"、"Covid-19"、"败血症 "和 "神经网络"。"原降钙素 "和 "卷积神经网络 "是最热门的突发关键词。人工智能在重症监护和麻醉领域的潜在应用引起了学者们的极大关注,促使研究工作不断增加。此外,各个国家和机构加强在这一领域的合作也势在必行。未来几年的研究重点将集中在败血症和冠状病毒,以及利用神经网络算法开发预测模型,以改善存活病人的福祉和生活质量。
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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