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Secure Authentication in the Grid: A Formal Analysis of DNP3: SAv5

机译:网格中的安全身份验证:DNP3:SAv5的形式分析

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Most of the world's power grids are controlled remotely. Their control messages are sent over potentially insecure channels, driving the need for an authentication mechanism. The main communication mechanism for power grids and other utilities is defined by an IEEE standard, referred to as DNP3; this includes the Secure Authentication v5 (SAv5) protocol, which aims to ensure that messages are authenticated. We provide the first security analysis of the complete DNP3: SAv5 protocol. Previous work has considered the message-passing sub-protocol of SAv5 in isolation, and considered some aspects of the intended security properties. In contrast, we formally model and analyse the complex composition of the protocol's three sub-protocols. In doing so, we consider the full state machine, and the possibility of cross-protocol attacks. Furthermore, we model fine-grained security properties that closely match the standard's intended security properties. For our analysis, we leverage the TAMARIN prover for the symbolic analysis of security protocols. Our analysis shows that the core DNP3: SAv5 design meets its intended security properties. Notably, we show that a previously reported attack does not apply to the standard. However, our analysis also leads to several concrete recommendations for improving future versions of the standard.
机译:世界上大多数的电网都远程控制。它们的控制消息通过可能不安全的渠道发送,驾驶需要认证机制。电网和其他实用程序的主要通信机制由IEEE标准定义,称为DNP3;这包括安全身份验证V5(SAV5)协议,其旨在确保验证消息。我们提供完整DNP3:SAV5协议的第一个安全分析。以前的工作已经考虑了SAV5的消息传递子协议,并考虑了预期安全属性的某些方面。相比之下,我们正式模拟并分析协议三个子协议的复杂组成。在这样做时,我们考虑完整的状态机,以及交叉协议攻击的可能性。此外,我们模拟了与标准的预期安全性属性密切匹配的细粒度安全性质。有关我们的分析,我们利用Tamarin先驱进行安全协议的象征性分析。我们的分析表明,核心DNP3:Sav5设计符合其预期的安全性。值得注意的是,我们表明先前报告的攻击不适用于标准。但是,我们的分析还导致了改进该标准未来版本的几个具体建议。

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