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Identifying social bots via heterogeneous motifs based on Na\"ive Bayes model

About

Identifying social bots has become a critical challenge due to their significant influence on social media ecosystems. Despite advancements in detection methods, most topology-based approaches insufficiently account for the heterogeneity of neighborhood preferences and lack a systematic theoretical foundation, relying instead on intuition and experience. Here, we propose a theoretical framework for detecting social bots utilizing heterogeneous motifs based on the Na\"ive Bayes model. Specifically, we refine homogeneous motifs into heterogeneous ones by incorporating node-label information, effectively capturing the heterogeneity of neighborhood preferences. Additionally, we systematically evaluate the contribution of different node pairs within heterogeneous motifs to the likelihood of a node being identified as a social bot. Furthermore, we mathematically quantify the maximum capability of each heterogeneous motif, enabling the estimation of its potential benefits. Comprehensive evaluations on four large, publicly available benchmarks confirm that our method surpasses state-of-the-art techniques, achieving superior performance across five evaluation metrics. Moreover, our results reveal that selecting motifs with the highest capability achieves detection performance comparable to using all heterogeneous motifs. Overall, our framework offers an effective and theoretically grounded solution for social bot detection, significantly enhancing cybersecurity measures in social networks.

Yijun Ran, Jingjing Xiao, Xiao-Ke Xu• 2025

Related benchmarks

TaskDatasetResultRank
Bot DetectionTwiBot-20
Accuracy82.7
101
Bot DetectionCresci-15
Accuracy98.7
38
Bot DetectionTwibot-22
Accuracy87.4
38
Social Bot DetectionCresci-15 (test)
AUC0.992
13
Social Bot DetectionMGTAB (test)
AUC0.907
13
Social Bot DetectionTwiBot-20 (test)
AUC91.4
13
Social Bot DetectionTwiBot-22 (test)
AUC94.2
13
Social Bot DetectionMGTAB
Accuracy82.6
13
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