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Crowdsourcing Cybersecurity: Cyber Attack Detection using Social Media

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arxiv 1702.07745 v1 pith:VK2IFUJK submitted 2017-02-24 cs.CR cs.HCcs.IRcs.SI

classification cs.CRcs.HCcs.IRcs.SI
keywords mediasocialapproachcyber-attackseventeventssensoraccount
verification ladder T0 review T1 audit T2 compute T3 formal
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Social media is often viewed as a sensor into various societal events such as disease outbreaks, protests, and elections. We describe the use of social media as a crowdsourced sensor to gain insight into ongoing cyber-attacks. Our approach detects a broad range of cyber-attacks (e.g., distributed denial of service (DDOS) attacks, data breaches, and account hijacking) in an unsupervised manner using just a limited fixed set of seed event triggers. A new query expansion strategy based on convolutional kernels and dependency parses helps model reporting structure and aids in identifying key event characteristics. Through a large-scale analysis over Twitter, we demonstrate that our approach consistently identifies and encodes events, outperforming existing methods.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. EventHunter: Dynamic Clustering and Ranking of Security Events from Hacker Forum Discussions

    cs.CR 2025-07 conditional novelty 4.0 of 10

    EventHunter automatically clusters fragmented hacker-forum posts into security events and ranks them by timeliness, relevance, credibility, and completeness.

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