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Self-Supervised Learning for Android Malware Detection on...
[Submitted on 24 Apr 2026 (v1), last revised 4 Jun 2026 (this ve · 2026-04-28 · via cs.LG updates on arXiv.org

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Abstract:Android malware detectors built with machine learning often suffer from temporal bias: models are trained and evaluated without respecting apps' actual release times, inflating accuracy and weakening real-world robustness. We address this by constructing a time-stamped dataset of benign and malicious Android apps and introducing a timestamp-verification procedure to ensure temporal accuracy. We then propose a detection framework that uses Bootstrap Your Own Latent (BYOL) for self-supervised pre-training to learn obfuscation-resilient representations, followed by supervised classification. Under time-aware evaluation, the method attains 98% accuracy and 89% F1. We further characterize malware behavior by analyzing true positives and false negatives using VirusTotal and the MITRE ATT&CK framework. To support reproducibility and further innovation, we release our dataset and source code.

Submission history

From: Maryam Tanha [view email]
[v1] Fri, 24 Apr 2026 21:24:48 UTC (253 KB)
[v2] Thu, 4 Jun 2026 18:21:13 UTC (253 KB)