Security Verification of Low-Trust Architectures
Qinhan Tan, Yonathan Fisseha, Shibo Chen, Lauren Biernacki, Jean-Baptiste Jeannin, Sharad Malik, Todd M. Austin
Abstract
Low-trust architectures work on, from the viewpoint of software, always-encrypted data, and significantly reduce the amount of hardware trust to a small software-free enclave component. In this paper, we perform a complete formal verification of a specific low-trust architecture, the Sequestered Encryption (SE) architecture, to show that the design is secure against direct data disclosures and digital side channels for all possible programs. We first define the security requirements of the ISA of SE low-trust architecture. Looking upwards, this ISA serves as an abstraction of the hardware for the software, and is used to show how any program comprising these instructions cannot leak information, including through digital side channels. Looking downwards this ISA is a specification for the hardware, and is used to define the proof obligations for any RTL implementation arising from the ISA-level security requirements. These cover both functional and digital side-channel leakage. Next, we show how these proof obligations can be successfully discharged using commercial formal verification tools. We demonstrate the efficacy of our RTL security verification technique for seven different correct and buggy implementations of the SE architecture. CCS CONCEPTS • Security and privacy → Formal methods and theory of security; Information flow control; Security requirements; Side-channel analysis and countermeasures.
Ask about this paper
Your agent reads all of it.
Lune indexed this paper to the last equation, along with the top-tier papers that cite it. Ask a question and the answer quotes them.
Your agent calls
Luneget_paper_fulltext
Free to start. No credit card required.
Terminal
Install the CLIlune papers fulltext 7d64336f-264c-4ddc-aaf7-d28ee4a8731fCited by top-tier papers3
- RTL Verification for Secure Speculation Using Contract Shadow LogicQinhan Tan, Yuheng Yang, Thomas Bourgeat, Sharad Malik et al.ASPLOS 2025 · 12 citations
- SoK: Analysis of Accelerator TEE DesignsChenxu Wang, Junjie Huang, Yujun Liang, Xuanyao Peng et al.NDSS 2026 · 2 citations
- Compass: Navigating the Design Space of Taint Schemes for RTL Security VerificationYuheng Yang, Qinhan Tan, Thomas Bourgeat, Sharad Malik et al.ASPLOS 2026 · 1 citation
Builds on15
- Sanctum: Minimal Hardware Extensions for Strong Software IsolationVictor Costan, Ilia A. Lebedev, Srinivas DevadasUSENIX Security 2016 · 649 citations
- Keystone: an open framework for architecting trusted execution environmentsDayeol Lee, David Kohlbrenner, Shweta Shinde, Krste Asanovic et al.EuroSys 2020 · 381 citations
- CIPHERLEAKS: Breaking Constant-time Cryptography on AMD SEV via the Ciphertext Side ChannelMengyuan Li, Yinqian Zhang, Huibo Wang, Kang Li et al.USENIX Security 2021 · 130 citations
- Hardware-Software Contracts for Secure SpeculationMarco Guarnieri, Boris Köpf, Jan Reineke, Pepe VilaS&P 2021 · 111 citations
- Data Oblivious ISA Extensions for Side Channel-Resistant and High Performance ComputingJiyong Yu, Lucas Hsiung, Mohamad El Hajj, Christopher W. FletcherNDSS 2019 · 106 citations
Related papers
- Specification and Verification of Strong Timing Isolation of Hardware EnclavesStella Lau, Thomas Bourgeat, Clément Pit-Claudel, Adam ChlipalaCCS 2024 · 1 citation
- Specification and Verification of Side-channel Security for Open-source Processors via Leakage ContractsZilong Wang, Gideon Mohr, Klaus von Gleissenthall, Jan Reineke et al.CCS 2023 · 20 citations
- SecTEE: A Software-based Approach to Secure Enclave Architecture Using TEEShijun Zhao, Qianying Zhang, Yu Qin, Wei Feng et al.CCS 2019 · 95 citations
- VRASED: A Verified Hardware/Software Co-Design for Remote AttestationIvan De Oliveira Nunes, Karim Eldefrawy, Norrathep Rattanavipanon, Michael Steiner et al.USENIX Security 2019 · 135 citations
- RTL2MμPATH: Multi-μPATH Synthesis with Applications to Hardware Security VerificationYao Hsiao, Nikos Nikoleris, Artem Khyzha, Dominic P. Mulligan et al.MICRO 2024 · 12 citations
