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Application of Social Big Data to Identify Trends of School Bullying Forms in South Korea

Cited 11 time in Web of Science Cited 15 time in Scopus
Authors

Kim, Hayoung; Han, Yoonsun; Song, Juyoung; Song, Tae Min

Issue Date
2019-07-02
Publisher
Multidisciplinary Digital Publishing Institute (MDPI)
Citation
International Journal of Environmental Research and Public Health, Vol.16 No.14, p. 2596
Abstract
As the contemporary phenomenon of school bullying has become more widespread, diverse, and frequent among adolescents in Korea, social big data may off er a new methodological paradigm for understanding the trends of school bullying in the digital era. This study identified Term Frequency-Inverse Document Frequency (TF-IDF) and Future Signals of 177 school bullying forms to understand the current and future bullying experiences of adolescents from 436,508 web documents collected between 1 January 2013, and 31 December 2017. In social big data, sexual bullying rapidly increased, and physical and cyber bullying had high frequency with a high rate of growth. School bullying forms, such as "group assault" and "sexual harassment", appeared as Weak Signals, and "cyber bullying" was a Strong Signal. Findings considering five school bullying forms (verbal, physical, relational, sexual, and cyber bullying) are valuable for developing insights into the burgeoning phenomenon of school bullying.
ISSN
1661-7827
URI
https://hdl.handle.net/10371/203768
DOI
https://doi.org/10.3390/ijerph16142596
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