无线传感器网络中节点不当行为的量化:基于社会选择的方法

Subarna Chatterjee, Subhadeep Sarkar, S. Misra
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引用次数: 2

摘要

本工作的重点是无线传感器网络(WSNs)中节点错误行为的量化。行为不端的节点在wsn中很常见,一旦检测到,就会受到惩罚,在某些情况下会从网络中消除。然而,节点不当行为可能是相对的,即节点可能仅对特定的一组节点表现出恶意或自私,而对其余节点可能正常工作。在这些情况下,从网络中完全消除节点是不公平的。这项工作减轻了上述问题,并通过提出的不当行为度量(MoM)从数学上评估节点的不当行为程度。该算法基于社会选择理论,将行为不端的节点作为投票备选,将行为正常的节点作为投票人。通过对社会选择的多数排序,最终公平地得到每个选择的最小方差。
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Quantification of node misbehavior in wireless sensor networks: A social choice-based approach
This work focuses on the quantification of node misbehavior in wireless sensor networks (WSNs). Misbehaving nodes are common within WSNs which are once detected, are penalized and in some cases eliminated from the network. However, node misbehavior might be relative i.e., a node may exhibit maliciousness or selfishness only to a specific set of nodes and may function normally for the rest. In these cases, a complete elimination of the node from the network is unfair. This work mitigates the aforesaid problem and mathematically evaluates the extent of misbehavior of a node through the proposed Metric of Misbehavior (MoM). Based on the Theory of Social Choice, the proposed algorithm considers the misbehaving nodes as the voting alternatives and the normally behaving nodes as the voters. Based on majority ranking of social choice, eventually MoM is obtained for every alternative in a fair manner.
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