Difuzer: Uncovering Suspicious Hidden Sensitive Operations in Android Apps
Jordan Samhi, Li Li, Tegawendé F. Bissyandé, Jacques Klein
摘要
One prominent tactic used to keep malicious behavior from being detected during dynamic test campaigns is logic bombs, where malicious operations are triggered only when specific conditions are satisfied. Defusing logic bombs remains an unsolved problem in the literature. In this work, we propose to investigate Suspicious Hidden Sensitive Operations (SHSOs) as a step towards triaging logic bombs. To that end, we develop a novel hybrid approach that combines static analysis and anomaly detection techniques to uncover SHSOs, which we predict as likely implementations of logic bombs. Concretely, Difuzer identifies SHSO entry-points using an instrumentation engine and an inter-procedural data-flow analysis. Then, it extracts trigger-specific features to characterize SHSOs and leverages One-Class SVM to implement an unsupervised learning model for detecting abnormal triggers. We evaluate our prototype and show that it yields a precision of 99.02% to detect SHSOs among which 29.7% are logic bombs. Difuzer outperforms the state-of-the-art in revealing more logic bombs while yielding less false positives in about one order of magnitude less time. All our artifacts are released to the community.
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引用它的顶会 Paper5
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- PacDroid: A Pointer-Analysis-Centric Framework for Security Vulnerabilities in Android AppsMenglong Chen, Tian Tan, Minxue Pan, Yue LiICSE 2025 · 被引用 1 次
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它引用的顶会 Paper6
- TriggerScope: Towards Detecting Logic Bombs in Android ApplicationsYanick Fratantonio, Antonio Bianchi, William K. Robertson, Engin Kirda 等S&P 2016 · 被引用 161 次
- Following Devil's Footprints: Cross-Platform Analysis of Potentially Harmful Libraries on Android and iOSKai Chen, Xueqiang Wang, Yi Chen, Peng Wang 等S&P 2016 · 被引用 111 次
- Finding Clues for Your Secrets: Semantics-Driven, Learning-Based Privacy Discovery in Mobile AppsYuhong Nan, Zhemin Yang, Xiaofeng Wang, Yuan Zhang 等NDSS 2018 · 被引用 79 次
- Dark Hazard: Learning-based, Large-Scale Discovery of Hidden Sensitive Operations in Android AppsXiaorui Pan, Xueqiang Wang, Yue Duan, XiaoFeng Wang 等NDSS 2017 · 被引用 69 次
- Automatic Uncovering of Hidden Behaviors From Input Validation in Mobile AppsQingchuan Zhao, Chaoshun Zuo, Brendan Dolan-Gavitt, Giancarlo Pellegrino 等S&P 2020 · 被引用 33 次
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