CANvas: Fast and Inexpensive Automotive Network Mapping
Sekar Kulandaivel, Tushar Goyal, Arnav Kumar Agrawal, Vyas Sekar
摘要
Modern vehicles contain tens of Electronic Control Units (ECUs), several of which communicate over the Controller Area Network (CAN) protocol. As such, in-vehicle networks have become a prime target for automotive network attacks. To understand the security of these networks, we argue that we need tools analogous to network mappers for traditional networks that provide an in-depth understanding of a network's structure. To this end, our goal is to develop an automotive network mapping tool that assists in identifying a vehicle's ECUs and their communication with each other. A significant challenge in designing this tool is the broadcast nature of the CAN protocol, as network messages contain no information about their sender or recipients. To address this challenge, we design and implement CANvas, an automotive network mapper that identifies transmitting ECUs with a pairwise clock offset tracking algorithm and identifies receiving ECUs with a forced ECU isolation technique. CANvas generates network maps in under an hour that identify a previously unknown ECU in a 2009 Toyota Prius and identify lenient message filters in a 2017 Ford Focus.
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- CANNON: Reliable and Stealthy Remote Shutdown Attacks via Unaltered Automotive MicrocontrollersSekar Kulandaivel, Shalabh Jain, Jorge Guajardo, Vyas SekarS&P 2021 · 被引用 35 次
- Exposing New Vulnerabilities of Error Handling Mechanism in CANKhaled Serag, Rohit Bhatia, Vireshwar Kumar, Z. Berkay Celik 等USENIX Security 2021 · 被引用 30 次
- CANflict: Exploiting Peripheral Conflicts for Data-Link Layer Attacks on Automotive NetworksAlvise de Faveri Tron, Stefano Longari, Michele Carminati, Mario Polino 等CCS 2022 · 被引用 21 次
- Constraint-Guided Clustering for Identifying in-Vehicle Electronic Control Units from Voltage DataBogdan Groza, Patricia Iosif, Lucian PopaAAAI 2026
- RIDAS: Real-time identification of attack sources on controller area networksJiwoo Shin, Hyunghoon Kim, Seyoung Lee, Wonsuk Choi 等USENIX Security 2023
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