A Comprehensive Analysis of the Role of Artificial Intelligence and Machine Learning in Modern Digital Forensics and Incident Response
Dipo Dunsin, Mohamed C. Ghanem, Karim Ouazzane, Vassil Vassilev

TL;DR
This paper provides a comprehensive analysis of how AI and ML are transforming digital forensics and incident response, highlighting current research, challenges, and future directions in the field.
Contribution
It offers an in-depth examination beyond surveys, exploring AI and ML applications, limitations, and research gaps in digital forensics and incident response.
Findings
AI enhances data recovery and analysis capabilities.
Challenges include handling large datasets and evolving cyber threats.
Research gaps highlight the need for ongoing development and collaboration.
Abstract
In the dynamic landscape of digital forensics, the integration of Artificial Intelligence (AI) and Machine Learning (ML) stands as a transformative technology, poised to amplify the efficiency and precision of digital forensics investigations. However, the use of ML and AI in digital forensics is still in its nascent stages. As a result, this paper gives a thorough and in-depth analysis that goes beyond a simple survey and review. The goal is to look closely at how AI and ML techniques are used in digital forensics and incident response. This research explores cutting-edge research initiatives that cross domains such as data collection and recovery, the intricate reconstruction of cybercrime timelines, robust big data analysis, pattern recognition, safeguarding the chain of custody, and orchestrating responsive strategies to hacking incidents. This endeavour digs far beneath the surface…
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Taxonomy
TopicsDigital and Cyber Forensics · Digital Media Forensic Detection · Advanced Malware Detection Techniques
