RVPLAYER: Robotic Vehicle Forensics by Replay with What-if Reasoning
Hongjun Choi, Zhiyuan Cheng, Xiangyu Zhang
摘要
—Robotic vehicle (RV) attack forensics identifies root cause of an accident. Reproduction of accident and reasoning about its causation are critical steps in the process. Ideally, such investigation would be performed in real-world field tests by faithfully regenerating the environmental conditions and varying the different factors to understand causality. However, such analysis is extremely expensive and in many cases infeasible due to the difficulties of enforcing physical conditions. Existing RV forensics techniques focus on faithful accident reproduction in simulation and hence lack the support of causality reasoning. They also entail substantial overhead. We propose R V P LAYER , a system for RV forensics. It supports replay with what-if reasoning inside simulator (e.g., checking if an accident can be avoided by changing some control parameter, code, or vehicle states). It is a low-cost replacement of the expensive field test based forensics. It features an efficient demand-driven adaptive logging method capturing non-deterministic physical conditions, and a novel replay technique supporting various replay policies that selectively enable/disable information during replay for root cause analysis. Our evaluation on 6 RVs (4 real and 2 virtual), 5 real-world auto-driving traces, and 1194 attack instances of various kinds reported in the literature shows that it can precisely pinpoint the root causes of these attacks without false positives. It has only 6.57% of the overhead of a simple logging design.
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引用它的顶会 Paper3
- ROCAS: Root Cause Analysis of Autonomous Driving Accidents via Cyber-Physical Co-mutationShiwei Feng, Yapeng Ye, Qingkai Shi, Zhiyuan Cheng 等ASE 2024 · 被引用 4 次
- MoDitector: Module-Directed Testing for Autonomous Driving SystemsRenzhi Wang, Mingfei Cheng, Xiaofei Xie, Yuan Zhou 等ISSTA 2025 · 被引用 3 次
- ADGFUZZ: Assignment Dependency-Guided Fuzzing for Robotic VehiclesYuncheng Wang, Yaowen Zheng, Puzhuo Liu, Dongliang Fang 等NDSS 2026 · 被引用 1 次
它引用的顶会 Paper18
- ProTracer: Towards Practical Provenance Tracing by Alternating Between Logging and TaintingShiqing Ma, Xiangyu Zhang, Dongyan XuNDSS 2016 · 被引用 253 次
- Detecting Attacks Against Robotic Vehicles: A Control Invariant ApproachHongjun Choi, Wen-Chuan Lee, Yousra Aafer, Fan Fei 等CCS 2018 · 被引用 201 次
- All Your GPS Are Belong To Us: Towards Stealthy Manipulation of Road Navigation SystemsKexiong Curtis Zeng, Shinan Liu, Yuanchao Shu, Dong Wang 等USENIX Security 2018 · 被引用 174 次
- MPI: Multiple Perspective Attack Investigation with Semantic Aware Execution PartitioningShiqing Ma, Juan Zhai, Fei Wang, Kyu Hyung Lee 等USENIX Security 2017 · 被引用 136 次
- A Systematic Framework to Generate Invariants for Anomaly Detection in Industrial Control SystemsCheng Feng, Venkata Reddy Palleti, Aditya Mathur, Deeph ChanaNDSS 2019 · 被引用 135 次
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