Generating Cyber Threat Intelligence to Discover Potential Security Threats Using Classification and Topic Modeling
Md Imran Hossen, Ashraful Islam, Farzana Anowar, Eshtiak Ahmed,, Mohammad Masudur Rahman, Xiali (Sharon) Hei

TL;DR
This paper develops an automated approach for cyber threat intelligence extraction from hacker forums using classification and topic modeling, enhancing proactive cybersecurity threat detection.
Contribution
It introduces a methodology combining supervised and unsupervised learning on hacker forum data for effective cyber threat identification.
Findings
Deep neural network classifiers outperform traditional models.
LDA and NMF reveal meaningful threat-related topics.
The approach improves detection accuracy over manual analysis.
Abstract
Due to the variety of cyber-attacks or threats, the cybersecurity community enhances the traditional security control mechanisms to an advanced level so that automated tools can encounter potential security threats. Very recently, Cyber Threat Intelligence (CTI) has been presented as one of the proactive and robust mechanisms because of its automated cybersecurity threat prediction. Generally, CTI collects and analyses data from various sources e.g., online security forums, social media where cyber enthusiasts, analysts, even cybercriminals discuss cyber or computer security-related topics and discovers potential threats based on the analysis. As the manual analysis of every such discussion (posts on online platforms) is time-consuming, inefficient, and susceptible to errors, CTI as an automated tool can perform uniquely to detect cyber threats. In this paper, we identify and explore…
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Taxonomy
TopicsSpam and Phishing Detection · Cybercrime and Law Enforcement Studies · Complex Network Analysis Techniques
