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Predicting user personality with social interactions in Weibo

Yuting Jiang (Aalto University, Helsinki, Finland)
Shengli Deng (School of Information Management, Wuhan University, Wuhan, China)
Hongxiu Li (Tampere University, Tampere, Finland)
Yong Liu (Aalto University, Helsinki, Finland)

Aslib Journal of Information Management

ISSN: 2050-3806

Article publication date: 1 September 2021

Issue publication date: 13 October 2021

836

Abstract

Purpose

The purposes of this paper are to (1) explore how personality traits pertaining to the dominance influence steadiness compliance model manifest themselves in terms of user interaction behavior on social media and (2) examine whether social interaction data on social media platforms can predict user personality.

Design/methodology/approach

Social interaction data was collected from 198 users of Sina Weibo, a popular social media platform in China. Their personality traits were also measured via questionnaire. Machine learning techniques were applied to predict the personality traits based on the social interaction data.

Findings

The results demonstrated that the proposed classifiers had high prediction accuracy, indicating that our approach is reliable and can be used with social interaction data on social media platforms to predict user personality. “Reposting,” “being reposted,” “commenting” and “being commented on” were found to be the key interaction features that reflected Weibo users' personalities, whereas “liking” was not found to be a key feature.

Originality/value

The findings of this study are expected to enrich personality prediction research based on social media data and to provide insights into the potential of employing social media data for the purpose of personality prediction in the context of the Weibo social media platform in China.

Keywords

Acknowledgements

This research is supported in part by National Natural Science Foundation, PR China (Grant No. 71974149) and Wuhan University artificial intelligence project (Grant No. 2020AI021).

Citation

Jiang, Y., Deng, S., Li, H. and Liu, Y. (2021), "Predicting user personality with social interactions in Weibo", Aslib Journal of Information Management, Vol. 73 No. 6, pp. 839-864. https://doi.org/10.1108/AJIM-02-2021-0048

Publisher

:

Emerald Publishing Limited

Copyright © 2021, Emerald Publishing Limited

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