Trends and Current Topics in the Field of Artificial Intelligence in Hospitals: A Text Mining Analysis

سال انتشار: 1405
نوع سند: مقاله ژورنالی
زبان: انگلیسی
مشاهده: 90

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شناسه ملی سند علمی:

JR_HPR-11-1_002

تاریخ نمایه سازی: 16 تیر 1405

چکیده مقاله:

Background: Artificial Intelligence (AI), as a transformative technology, has found widespread applications in the health and hospital sectors.Objectives: The present study aimed to analyze scientific articles related to AI in hospitals using text mining methods to identify dominant topics and emerging trends.Methods: In the present study, text mining and topic modeling approaches were used to analyze research trends and identify dominant topics. The research steps included data collection from Scopus, text preprocessing, extraction of frequent words, topic modeling using Latent Dirichlet Allocation (LDA), and visualization. All steps were performed using the Python programming language and open-source libraries, such as NLTK, Gensim, Matplotlib, scikit-learn, and pyLDAvis.Results: A total of ۲۲۳۸ records related to AI in hospitals were collected from Scopus since ۲۰۰۰. The terms "patient," "model," "machine learning," and "artificial intelligence" were identified as the most frequently used terms. The dominant topic clusters included "patient monitoring," "data-driven systems," "service innovation and emerging technologies," "clinical outcome prediction," "COVID-۱۹ risk prediction," "mortality and hospitalization prediction," "health tourism," "management and implementation," and "hospital death prediction." Most articles were in the clusters "clinical outcome prediction modeling" (۶۶۳ documents) and "mortality and hospitalization prediction" (۳۳۵ documents). The publication trend has accelerated significantly since ۲۰۱۸, especially in the clusters "clinical outcome prediction" and "management and implementation."Conclusion: Conclusion: Artificial intelligence in hospitals has grown rapidly over the last two decades. The shift from limited applications in modeling and prediction to interdisciplinary areas and innovative services indicates the gradual growth of this technology and its role in improving the quality of care, optimizing organizational processes, and developing new services.

نویسندگان

Mahnaz Mohseni

Department of Knowledge and Information Science, Payame Noor University, Tehran, Iran

Meisam Dastani

Infectious Diseases Research Center, Gonabad University of Medical Sciences, Gonabad, Iran

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