cs.AI updates on arXiv.org 07月15日 12:26
EventHunter: Dynamic Clustering and Ranking of Security Events from Hacker Forum Discussions
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本文提出一种基于Transformer的框架,自动检测、聚类和优先排序黑客论坛中的安全事件,有效减少噪声,揭示高优先级威胁,助力安全分析师采取主动应对措施。

arXiv:2507.09762v1 Announce Type: cross Abstract: Hacker forums provide critical early warning signals for emerging cybersecurity threats, but extracting actionable intelligence from their unstructured and noisy content remains a significant challenge. This paper presents an unsupervised framework that automatically detects, clusters, and prioritizes security events discussed across hacker forum posts. Our approach leverages Transformer-based embeddings fine-tuned with contrastive learning to group related discussions into distinct security event clusters, identifying incidents like zero-day disclosures or malware releases without relying on predefined keywords. The framework incorporates a daily ranking mechanism that prioritizes identified events using quantifiable metrics reflecting timeliness, source credibility, information completeness, and relevance. Experimental evaluation on real-world hacker forum data demonstrates that our method effectively reduces noise and surfaces high-priority threats, enabling security analysts to mount proactive responses. By transforming disparate hacker forum discussions into structured, actionable intelligence, our work addresses fundamental challenges in automated threat detection and analysis.

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黑客论坛 安全事件检测 Transformer 对比学习
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