Research trends in the application of artificial intelligence in nursing of chronic disease: a bibliometric and network visualization study.

IF 3.2 Q1 HEALTH CARE SCIENCES & SERVICES
Frontiers in digital health Pub Date : 2025-06-18 eCollection Date: 2025-01-01 DOI:10.3389/fdgth.2025.1608266
Chao Du, Jing Zhou, Yuexin Yu
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引用次数: 0

Abstract

Purpose: The incidence of chronic diseases is increasing annually and exhibits a trend of multimorbidity, posing significant challenges to global healthcare and nursing. The rapid rise of artificial intelligence has provided broad application prospects in the field of chronic disease care. However, with the increasing number of related studies, there is a lack of systematic review and prediction of future trends in this area. Bibliometric methods provide possibility for addressing this gap. This study aimed to investigate the current status, hot topics, and future prospects of artificial intelligence in the field of chronic disease care.

Methods: Literature related to artificial intelligence and chronic disease care was retrieved from the Web of Science Core Collection database, published between 2001 and 31 December 2023. Bibliometric analysis and visualization was conducted using CiteSpace 5.7.R5 and VOSviewer 1.6.19 to analyze countries/regions, institutions, journals, references, and keywords.

Results: A total of 2438 articles were retrieved, indicating an explosive growth in publications over the past five years. The United States emerged as the earliest adopter of research in this domain (since 2002) and contributed the most publications (490 articles), with IEEE ACCESS being the most cited journal. Hot application areas of artificial intelligence in chronic disease care included "diabetic retinopathy", "heart disease prediction", "breast cancer", and "skin cancer". Major research methodologies encompassed "machine learning", "deep learning", "neural network", and "text mining". Potential future research hotspots include "internet of medical things".

Conclusion: This study unveils the current status and development trends of artificial intelligence in chronic disease care, offering novel insights for future artificial intelligence application research.

人工智能在慢性病护理中的应用研究趋势:文献计量学和网络可视化研究。
目的:慢性疾病的发病率呈逐年上升趋势,并呈现多发病趋势,对全球卫生保健和护理提出了重大挑战。人工智能的迅速崛起,在慢性病护理领域提供了广阔的应用前景。然而,随着相关研究的增多,缺乏对该领域未来趋势的系统回顾和预测。文献计量学方法为解决这一差距提供了可能性。本研究旨在探讨人工智能在慢性病护理领域的现状、热点问题及未来前景。方法:从Web of Science Core Collection数据库中检索2001年至2023年12月31日发表的人工智能与慢性病护理相关文献。使用CiteSpace 5.7进行文献计量分析和可视化。R5和VOSviewer 1.6.19对国家/地区、机构、期刊、参考文献和关键字进行分析。结果:共检索到2438篇文章,近5年发表量呈爆发式增长。美国是该领域研究的最早采用者(自2002年以来),并贡献了最多的出版物(490篇文章),其中IEEE ACCESS是被引用最多的期刊。人工智能在慢性病护理中的热门应用领域包括“糖尿病视网膜病变”、“心脏病预测”、“乳腺癌”、“皮肤癌”等。主要的研究方法包括“机器学习”、“深度学习”、“神经网络”和“文本挖掘”。未来潜在的研究热点包括“医疗物联网”。结论:本研究揭示了人工智能在慢性病护理中的现状和发展趋势,为未来人工智能的应用研究提供了新的见解。
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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CiteScore
4.20
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