ASAP: reconciling asynchronous real-time operations and proofs of execution in simple embedded systems
Adam Caulfield, Norrathep Rattanavipanon, Ivan De Oliveira Nunes
摘要
Embedded devices are increasingly ubiquitous and their importance is hard to overestimate. While they often support safety-critical functions (e.g., in medical devices and sensor-alarm combinations), they are usually implemented under strict cost/energy budgets, using low-end microcontroller units (MCUs) that lack sophisticated security mechanisms. Motivated by this issue, recent work developed architectures capable of generating Proofs of Execution (PoX) for the correct/expected software in potentially compromised low-end MCUs. In practice, this capability can be leveraged to provide "integrity from birth" to sensor data, by binding the sensed results/outputs to an unforgeable cryptographic proof of execution of the expected sensing process. Despite this significant progress, current PoX schemes for low-end MCUs ignore the real-time needs of many applications. In particular, security of current PoX schemes precludes any interrupts during the execution being proved. We argue that lack of asynchronous capabilities (i.e., interrupts within PoX) can obscure PoX usefulness, as several applications require processing real-time and asynchronous events. To bridge this gap, we propose, implement, and evaluate an Architecture for Secure Asynchronous Processing in PoX (ASAP). ASAP is secure under full software compromise, enables asynchronous PoX, and incurs less hardware overhead than prior work.
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引用它的顶会 Paper4
- PEARTS: Provable Execution in Real-Time Embedded SystemsAntonio Joia Neto, Norrathep Rattanavipanon, Ivan De Oliveira NunesS&P 2025
- ARI: Attestation of Real-time Mission Execution IntegrityJinwen Wang, Yujie Wang, Ao Li, Yang Xiao 等USENIX Security 2023
- ACFA: Secure Runtime Auditing & Guaranteed Device Healing via Active Control Flow AttestationAdam Caulfield, Norrathep Rattanavipanon, Ivan De Oliveira NunesUSENIX Security 2023
- IDA: Hybrid Attestation with Support for Interrupts and TOCTOUFatemeh Arkannezhad, Justin Feng, Nader SehatbakhshNDSS 2024
它引用的顶会 Paper7
- Sanctum: Minimal Hardware Extensions for Strong Software IsolationVictor Costan, Ilia A. Lebedev, Srinivas DevadasUSENIX Security 2016 · 被引用 649 次
- C-FLAT: Control-Flow Attestation for Embedded Systems SoftwareTigist Abera, N. Asokan, Lucas Davi, Jan-Erik Ekberg 等CCS 2016 · 被引用 311 次
- VRASED: A Verified Hardware/Software Co-Design for Remote AttestationIvan De Oliveira Nunes, Karim Eldefrawy, Norrathep Rattanavipanon, Michael Steiner 等USENIX Security 2019 · 被引用 135 次
- OAT: Attesting Operation Integrity of Embedded DevicesZhichuang Sun, Bo Feng, Long Lu, Somesh JhaS&P 2020 · 被引用 89 次
- DIALED: Data Integrity Attestation for Low-end Embedded DevicesIvan De Oliveira Nunes, Sashidhar Jakkamsetti, Gene TsudikDAC 2021 · 被引用 27 次
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