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Trends in machine learning for predicting personality disorder: a bibliometric analysis

Sulistiani, HeniSyarif, AdmiWarsito, WarsitoBerawi, Khairun Nisa
Indonesian Journal of Electrical Engineering and Computer Science (Sinta 1)Vol. 38 No. 1 (2025)1 Mei 2025
DOI10.11591/ijeecs.v38.i2.pp1299-1307

Abstrak

Over the last decade, research on artificial intelligence (AI) in the medical field has increased. However, unlike other disciplines, AI in personality disorders is still in the minority. For this reason, we conduct a map research using bibliometric and build a visualization map using VOSviewer in AI to predict personality disorders. We conducted a literature review using the systematic literature review (SLR) method, consisting of three stages: planning, implementation, and reporting. The evaluation involved 22 scientific articles on AI in predicting personality disorders indexed by Scopus Quartile Q1–Q4 from the Google Scholar database during the last five years, from 2018–2023. In the meantime, the results of bibliometric analysis have led to the discovery of information about the most productive publishers, the evolution of scientific articles, and the quantity of citations. In addition, VOSviewer’s visualization of the most frequently occurring terms in abstracts and titles has made it easier for researchers to find novel and infrequently studied subjects in AI on personality disorders.

Kata Kunci

Artificial intelligenceBibliometric analysisMachine learningPersonality disorderSystematic literature review

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Trends in machine learning for predicting personality disorder: a bibliometric analysis | Indonesian Journal of Electrical Engineering and Computer Science | Publiora