Artificial intelligence significantly facilitates development in the mental health of college students: a bibliometric analysis.

Journal: Frontiers in psychology

Volume: 15

Issue: 

Year of Publication: 

Affiliated Institutions:  Wuhan University China Institute of Boundary and Ocean Studies, Wuhan, China. Faculty of Pharmacy, Hubei University of Chinese Medicine, Wuhan, China. Hubei Shizhen Laboratory, Wuhan, China.

Abstract summary 

College students are currently grappling with severe mental health challenges, and research on artificial intelligence (AI) related to college students mental health, as a crucial catalyst for promoting psychological well-being, is rapidly advancing. Employing bibliometric methods, this study aim to analyze and discuss the research on AI in college student mental health.Publications pertaining to AI and college student mental health were retrieved from the Web of Science core database. The distribution of publications were analyzed to gage the predominant productivity. Data on countries, authors, journal, and keywords were analyzed using VOSViewer, exploring collaboration patterns, disciplinary composition, research hotspots and trends.Spanning 2003 to 2023, the study encompassed 1722 publications, revealing notable insights: (1) a gradual rise in annual publications, reaching its zenith in 2022; (2) and emerged were the most productive and influential sources in this field, with significant contributions from China, the United States, and their affiliated higher education institutions; (3) the primary mental health issues were depression and anxiety, with machine learning and AI having the widest range of applications; (4) an imperative for enhanced international and interdisciplinary collaboration; (5) research hotspots exploring factors influencing college student mental health and AI applications.This study provides a succinct yet comprehensive overview of this field, facilitating a nuanced understanding of prospective applications of AI in college student mental health. Professionals can leverage this research to discern the advantages, risks, and potential impacts of AI in this critical field.

Authors & Co-authors:  Chen Yuan Dong Cai Ai Zhou

Study Outcome 

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Statistics
Citations :  Abd-Alrazaq A., Alajlani M., Ahmad R., AlSaad R., Aziz S., Ahmed A., et al. . (2024). The performance of wearable AI in detecting stress among students: systematic review and Meta-analysis. J. Med. Internet Res. 26:e52622. doi: 10.2196/52622, PMID:
Authors :  6
Identifiers
Doi : 1375294
SSN : 1664-1078
Study Population
Male,Female
Mesh Terms
Other Terms
artificial intelligence;bibliometric;college students;machine learning;mental health
Study Design
Study Approach
Country of Study
Publication Country
Switzerland