Intention embedding method based social bot detection

Artificial intelligence generated content technology has significantly enhanced the disguise capabilities of social bots, presenting new challenges to existing bot detection methods. By modeling the intentions of social media users through intention representation, a intention embedding method based...

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Bibliographic Details
Main Authors: NIU Hongfeng, LI Jiawei, SONG Yunpeng, CAI Zhongmin
Format: Article
Language:zho
Published: Editorial Department of Journal on Communications 2024-11-01
Series:Tongxin xuebao
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Online Access:http://www.joconline.com.cn/zh/article/doi/10.11959/j.issn.1000-436x.2024205/
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Summary:Artificial intelligence generated content technology has significantly enhanced the disguise capabilities of social bots, presenting new challenges to existing bot detection methods. By modeling the intentions of social media users through intention representation, a intention embedding method based social bot detection was proposed, thereby avoiding the difficulty of directly detecting bots with enhanced behavioral camouflage at the action level on social platforms. Experimental results show that the detection model using intention embedding improves the accuracy of social bot detection by 5.58 percentage points compared to models not utilizing intention embedding, and it enhances the recognition capability of specific types of social bots, verifying the effectiveness of intention embedding in improving the performance of human-bot detection tasks.
ISSN:1000-436X