Traits of a Leader: User Influence Level Prediction through Sociolinguistic Modeling
Traits of a Leader: User Influence Level Prediction through Sociolinguistic Modeling
Recognition of a user's influence level has attracted much attention as human interactions move online. Influential users have the ability to sway others' opinions to achieve some goals. As a result, predicting users' level of influence can help to understand social networks, forecast trends, prevent misinformation, etc. However, predicting user influence is a challenging problem because the concept of influence is specific to a situation or a domain, and user communications are limited to text. In this work, we define user influence level as a function of community endorsement and develop a model that significantly outperforms the baseline by leveraging demographic and personality data. This approach consistently improves RankDCG scores across eight different domains.
Denys Katerenchuk、Rivka Levitan
信息传播、知识传播科学、科学研究计算技术、计算机技术
Denys Katerenchuk,Rivka Levitan.Traits of a Leader: User Influence Level Prediction through Sociolinguistic Modeling[EB/OL].(2025-01-05)[2025-08-02].https://arxiv.org/abs/2501.04046.点此复制
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