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CTISum: A new benchmark dataset for Cyber Threat Intelligence summarization

  • Wei Peng
  • , Junmei Ding
  • , Wei Wang
  • , Lei Cui
  • , Wei Cai
  • , Zhiyu Hao*
  • , Xiaochun Yun
  • *Corresponding author for this work
  • Zhongguancun Laboratory
  • Beijing University of Posts and Telecommunications

Research output: Contribution to journalArticlepeer-review

Abstract

Cyber Threat Intelligence (CTI) summarization involves generating concise and accurate highlights from web intelligence data with domain knowledge, which is critical to automatically summarize the knowledge and conclusion contained in CTI reports. Despite that, the development of efficient techniques for summarizing CTI reports, comprising facts, analytical insights, attack processes, and more, has been hindered by the lack of suitable datasets. To address this gap, we introduce CTISum, a new benchmark dataset designed for the CTI summarization task. Recognizing the significance of understanding attack processes, we also propose a novel fine-grained subtask: attack process summarization, which aims to help defenders assess risks, identify security gaps, and uncover vulnerabilities. Specifically, a multi-stage annotation pipeline is designed to collect and annotate CTI data from diverse web sources, alongside a comprehensive benchmarking of CTISum using both extractive, abstractive and LLMs-based summarization methods. Experimental results reveal that current state-of-the-art AI models (including GPT-4o) face significant challenges when applied to CTISum, highlighting that automatic summarization of CTI reports remains an open research problem. The code and example dataset can be made publicly available at https://github.com/pengwei-iie/CTISum.

Original languageEnglish
Article number104928
JournalComputers and Security
Volume168
DOIs
StatePublished - Sep 2026
Externally publishedYes

Keywords

  • Cyber threat intelligence
  • Dataset and benchmark
  • Information systems
  • Summarization

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