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Prompt-Based Learning for Thread Structure Prediction in Cybersecurity Forums

  • Kazuaki Kashihara,
  • Kuntal Kumar Pal,
  • Chitta Baral,
  • Robert P. Trevino

摘要

With recent trends indicating cyber crimes increasing in both frequency and cost, it is imperative to develop new methods that leverage data-rich hacker forums to assist in combating ever evolving cyber threats. Defining interactions within these forums is critical as it facilitates identifying highly skilled users, which can improve prediction of novel threats and future cyber attacks. We propose a method called Next Paragraph Prediction with Instructional Prompting (NPP-IP) to predict thread structures while grounded on the context around posts. This is the first time to apply an instructional prompting approach to the cybersecurity domain. We evaluate our NPP-IP with the Reddit dataset and Hacker Forums dataset that has posts and thread structures of real hacker forums’ threads, and compare our method’s performance with existing methods. The experimental evaluation shows that our proposed method can predict the thread structure on average \(14\%\) better than existing best methods allowing for better social network prediction based on forum interactions.