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EYES: Mitigating forwarding misbehavior in energy harvesting motivated networks

机译:眼睛:缓解能源收集动机网络中的转发异常

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Energy harvesting motivated networks (EHNets) has been becoming increasingly popular in the presence of Internet-of-Things (IoT). Each self-sustainable node periodically harvests energy from an immediate environment but it is admittedly vulnerable to a Denial-of-Service (DoS) attack in the EHNets. In this paper, we propose a novel countermeasure, called EYES, to the forwarding misbehavior of multiple colluding malicious nodes in the realm of EHNets. Under the charge-and-spend harvesting policy, we first establish a set of adversarial scenarios, analyze its forwarding operations, and identify vulnerable cases. The EYES consists of two schemes, SlyDog and LazyDog, and cooperatively detects the forwarding misbehavior. In the SlyDog, each node actively disguises itself as an energy harvesting node and stealthily monitors the forwarding operations of adjacent nodes. In the LazyDog, however, each node periodically requests the number of overheard packets from its adjacent nodes and validates any prior uncertain forwarding operation. The combination of two schemes can efficiently detect the forwarding misbehaviors of colluding malicious nodes and quickly isolate them from the network. We also present a simple analytical model and its numerical result in terms of detection rate. We evaluate the proposed countermeasure through extensive simulation experiments using the OMNeT + + and compare its performance with two existing schemes, the hop-by-hop cooperative detection (HCD) and Watchdog. Simulation results show that the EYES provides 70-92% detection rate and achieves 23-60% lower detection latency compared to the HCD and Watchdog. The EYES also shows a competitive performance in packet delivery ratio.
机译:在物联网(IoT)的存在下,能量收集激励网络(EHNet)变得越来越流行。每个可自我维持的节点都会定期从附近的环境中收集能量,但是它很容易受到EHNets中拒绝服务(DoS)攻击的攻击。在本文中,我们针对EHNet领域中多个共谋恶意节点的转发行为提出了一种名为EYES的新对策。在收支相抵的政策下,我们首先建立了一组对抗性方案,分析其转发操作,并确定易受攻击的案件。 EYES由SlyDog和LazyDog这两个方案组成,并协同检测转发不当行为。在SlyDog中,每个节点都主动伪装成一个能量收集节点,并秘密监视相邻节点的转发操作。但是,在LazyDog中,每个节点都会定期从其相邻节点请求监听到的数据包的数量,并验证任何先前的不确定转发操作。两种方案的结合可以有效地检测出恶意节点勾结的转发行为,并迅速将其与网络隔离。我们还提出了一种简单的分析模型及其在检出率方面的数值结果。我们通过使用OMNeT ++进行的广泛模拟实验评估了提出的对策,并将其性能与两种现有方案(逐跳协作检测(HCD)和看门狗)进行了比较。仿真结果表明,与HCD和看门狗相比,EYES提供了70-92%的检测率,并降低了23-60%的检测延迟。 EYES在数据包传输率方面也显示出竞争优势。

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