A Framework for Identifying Compromised Nodes in Sensor Networks

Qing Zhang, Ting Yu, P. Ning
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引用次数: 51

Abstract

Sensor networks are often subject to physical attacks. Once a node's cryptographic key is compromised, an attacker may completely impersonate it, and introduce arbitrary false information into the network. Basic cryptographic security mechanisms are often not effective in this situation. Most techniques to address this problem focus on detecting and tolerating false information introduced by compromised nodes. They cannot pinpoint exactly where the false information is introduced and who is responsible for it. We still lack effective techniques to accurately identify compromised nodes so that they can be excluded from a sensor network once and for all. In this paper, we propose an application-independent framework for identifying compromised sensor nodes. The framework provides an appropriate abstraction of application-specific detection mechanisms, and models the unique properties of sensor networks. Based on the framework, we develop alert reasoning algorithms to identify compromised nodes. The algorithm assumes that compromised nodes may collude at will. We show that our algorithm is optimal in the sense that it identifies the largest number of compromised nodes without introducing false positives. We evaluate the effectiveness of the designed algorithm through comprehensive experiments
一种传感器网络中受损节点识别框架
传感器网络经常受到物理攻击。一旦节点的加密密钥被泄露,攻击者就可以完全模仿它,并将任意的虚假信息引入网络。在这种情况下,基本的加密安全机制通常是无效的。解决此问题的大多数技术都侧重于检测和容忍受损节点引入的错误信息。他们无法准确地指出虚假信息是在哪里引入的,谁应该对此负责。我们仍然缺乏有效的技术来准确地识别受损节点,以便将它们一劳永逸地排除在传感器网络之外。在本文中,我们提出了一个独立于应用程序的框架来识别受损的传感器节点。该框架提供了特定于应用程序的检测机制的适当抽象,并对传感器网络的独特属性进行了建模。基于该框架,我们开发了警报推理算法来识别受损节点。该算法假设受损节点可以随意串通。我们证明了我们的算法是最优的,因为它在不引入误报的情况下识别出最大数量的受损节点。通过综合实验对所设计算法的有效性进行了评价
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