会话密钥分配使CAN和CAN- fd消息认证变得实用

Yang Xiao, Shanghao Shi, Ning Zhang, W. Lou, Y. T. Hou
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引用次数: 8

摘要

以CAN总线为代表的汽车通信网络因实现汽车ecu之间的实时通信而备受赞誉,但也因缺乏有效的安全机制而受到批评。各种攻击表明,这种安全缺陷使车辆容易受到对抗性控制,从而危及乘客的安全。最近由AUTOSAR领导的标准化工作为开发具有内置安全机制的下一代汽车通信技术提供了一般指导方针。一个关键的安全机制是ecu之间的消息认证,以防止消息欺骗和重放攻击。虽然以前的工作已经提出了许多消息身份验证方案,但没有很好地解决符合AUTOSAR的会话密钥建立问题。在本文中,我们通过提出符合autosar的密钥管理架构来填补这一空白,该架构考虑了汽车环境施加的实际需求。基于此体系结构,我们描述了一个称为SKDC的基线会话密钥分发协议,该协议实现了所有设计的安全功能,并提出了一种新的基于秘密共享的称为SSKT的协议,该协议提高了通信效率。SKDC和SSKT都是为CAN/CAN- fd总线部署定制的。我们在商用微控制器板上实现了这两种协议,并通过硬件实验和外推分析评估了它们的性能。结果表明,在两种协议性能良好的情况下,SSKT在规模上实现了更高的计算和通信效率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Session Key Distribution Made Practical for CAN and CAN-FD Message Authentication
Automotive communication networks, represented by the CAN bus, are acclaimed for enabling real-time communication between vehicular ECUs but also criticized for their lack of effective security mechanisms. Various attacks have demonstrated that this security deficit renders a vehicle vulnerable to adversarial control that jeopardizes passenger safety. A recent standardization effort led by AUTOSAR has provided general guidelines for developing next-generation automotive communication technologies with built-in security mechanisms. A key security mechanism is message authentication between ECUs for countering message spoofing and replay attack. While many message authentication schemes have been proposed by previous work, the important issue of session key establishment with AUTOSAR compliance was not well addressed. In this paper, we fill this gap by proposing an AUTOSAR-compliant key management architecture that takes into account practical requirements imposed by the automotive environment. Based on this architecture, we describe a baseline session key distribution protocol called SKDC that realizes all designed security functionalities, and propose a novel secret-sharing-based protocol called SSKT that yields improved communication efficiency. Both SKDC and SSKT are customized for CAN/CAN-FD bus deployment. We implemented the two protocols on commercial microcontroller boards and evaluated their performance with hardware experiment and extrapolation analysis. The result shows while both protocols are performant, SSKT achieves superior computation and communication efficiency at scale.
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