Survival of~the~Stealthiest: Evolving Low-Entropy Ransomware via~Genetic Algorithms

August 20, 2026 ยท Grace Period ยท ๐Ÿ› Search-Based Software Engineering (SSBSE 2026), Jul 2026, Montr{รฉ}al, Canada. pp.142-147

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Authors Efrat Levenberg, Kristina Sviazhina, Ayelet Butman, Pierre Parrend, Harel Berger arXiv ID 2608.19821 Category cs.CR: Cryptography & Security Citations 0 Venue Search-Based Software Engineering (SSBSE 2026), Jul 2026, Montr{รฉ}al, Canada. pp.142-147
Abstract
Traditional ransomware deployment often relies on massive encryption procedure, triggering immediate detection by modern defense systems. This work introduces a paradigm shift in cryptographic attacks by framing ransomware execution as a Search-Based Software Engineering (SBSE) optimization problem. This approach addresses the persistence gap observed in modern threats, where attacks aim to remain undercover for hours rather than minutes. Using a Genetic Algorithm (GA), we optimize data encryption under a hard constraint on the statistical deviation from baseline system activity. We demonstrate that our evolved attack patterns can evade behavioral monitors under fingerprinting techniques. Our results suggest that search-based methods provide a powerful framework for generating evasive malware, highlighting an emerging challenge for automated software defense.
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