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Wireless Sensor Network Internal Attacker Identification with Multiple Evidence by Dempster-Shafer Theory

机译:证据证据论的无线传感器网络内部攻击者识别

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Wireless sensor Network (WSN) is known to be vulnerable to variety of attacks due to the construction of nodes and distributed network infrastructure. In order to ensure its functionality especially in malicious environments, security mechanisms are essential. Malicious or insider attacker has gained prominence and poses the most challenging attacks to WSN. Many works has been done to secure WSN from internal attacker but most of it relay on either training data set or predefined threshold. Without a fixed security infrastructure WSN need to find the internal attacker. Normally, internal attacker node behavioral pattern is different from the other neighbor good nodes in the system, but neighbor node can be attacked as well. In this paper, we use Dempster-Shafer theory (DST) of combined multiple evidence to identify the malicious or internal attacker in WSN. This theory reflects with the uncertain event or uncertainty as well as uncertainty of the observation. Moreover, it gives a numerical procedure for fusing together multiple pieces of evidence from unreliable neighbor with higher degree of conflict reliability.
机译:由于节点的构建和分布式网络基础结构,无线传感器网络(WSN)容易受到各种攻击。为了确保其功能(尤其是在恶意环境中),安全机制至关重要。恶意或内部攻击者已广为人知,并向WSN提出了最具挑战性的攻击。为了保护WSN免受内部攻击者的侵害,已经做了许多工作,但是其中大多数都依赖于训练数据集或预定义的阈值。如果没有固定的安全基础结构,则WSN需要找到内部攻击者。通常,内部攻击者节点的行为模式与系统中的其他邻居良好节点不同,但是邻居节点也可以受到攻击。在本文中,我们使用结合多种证据的Dempster-Shafer理论(DST)来识别WSN中的恶意或内部攻击者。该理论反映了不确定事件或不确定性以及观测的不确定性。此外,它提供了一种数值过程,可以将来自不可靠邻居的多个证据融合在一起,并且具有较高的冲突可靠性。

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