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  • 한국과학기술정보연구원(KISTI) 서울분원 대회의실(별관 3층)
  • 2024년 07월 03일(수) 13:30
 

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Exploring Depression Research Trends Using BERTopic and LDA

식품보건융합연구 / The Korean Journal of Food & Health Convergence (KJFHC), (E)2586-7342
2023, v.9 no.1, pp.19-28
https://doi.org/https://doi.org/10.13106/kjfhc.2023.vol9.no1.19.
Woo-Ryeong, YANG (Dept. of Business Informatics, Hangyang University)
Hoe-Chang, YANG (Dept. of Distribution Management, Jangan University)
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Abstract

The purpose of this study is to explore which areas have been more interested in depression research in Korea through analysis of academic papers related to depression, and then to provide insights that can solve future depression problems. 1,032 papers searched with the keyword "depression" in scienceON were analyzed using Python 3.7 for word frequency analysis, word co-occurrence analysis, BERTopic, LDA, and OLS regression analysis. The results of word frequency and co-occurrence frequency analysis showed that related words were composed around words such as patient, disorder and symptom. As a result of topic modeling, a total of 13 topics including 'childhood depression' and 'eating anxiety' were derived. And it has been identified as a topic of interest that 'suicidal thoughts', 'treatment', 'occupational health', and 'health treatment program' were statistically significant topics, while 'child depression' and 'female treatment' were relatively less. As a result of the analysis of research trends, future research will not only study physiological and psychological factors but also social and environmental causes, as well as it was suggested that various collaborative studies of experts in academia were needed such as convergence and complex perspectives for depression relief and treatment.

keywords
Depression, Depression Disorder, Research Trend, BERTopic, LDA

식품보건융합연구