McFIL: Model Counting Functionality-Inherent Leakage
Maximilian Zinkus, Yinzhi Cao, Matthew D. Green
摘要
Protecting the confidentiality of private data and using it for useful collaboration have long been at odds. Modern cryptography is bridging this gap through rapid growth in secure protocols such as multi-party computation, fully-homomorphic encryption, and zero-knowledge proofs. However, even with provable indistinguishability or zero-knowledgeness, confidentiality loss from leakage inherent to the functionality may partially or even completely compromise secret values without ever falsifying proofs of security. In this work, we describe McFIL, an algorithmic approach and accompanying software implementation which automatically quantifies intrinsic leakage for a given functionality. Extending and generalizing the Chosen-Ciphertext attack framework of Beck et al. with a practical heuristic, our approach not only quantifies but maximizes functionality-inherent leakage using Maximum Model Counting within a SAT solver. As a result, McFIL automatically derives approximately-optimal adversary inputs that, when used in secure protocols, maximize information leakage of private values.
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引用它的顶会 Paper3
- Auditable Algorithms for Approximate Model CountingKuldeep S. Meel, Supratik Chakraborty, S. AkshayAAAI 2024 · 被引用 2 次
- PolySys: an Algebraic Leakage Attack EngineZachary Espiritu, Seny Kamara, Tarik Moataz, Andrew ParkUSENIX Security 2025
- Learning from Functionality Outputs: Private Join and Compute in the Real WorldFrancesca Falzon, Tianxin TangUSENIX Security 2025
它引用的顶会 Paper3
- Bulletproofs: Short Proofs for Confidential Transactions and MoreBenedikt Bünz, Jonathan Bootle, Dan Boneh, Andrew Poelstra 等S&P 2018 · 被引用 1,285 次
- SOK: (State of) The Art of War: Offensive Techniques in Binary AnalysisYan Shoshitaishvili, Ruoyu Wang, Christopher Salls, Nick Stephens 等S&P 2016 · 被引用 1,085 次
- Automating the Development of Chosen Ciphertext AttacksGabrielle Beck, Maximilian Zinkus, Matthew GreenUSENIX Security 2020
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