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A Game Theoretic Approach for Balancing Energy Consumption in Clustered Wireless Sensor Networks

机译:平衡无线传感器网络能耗的博弈论方法

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摘要

Clustering is an effective topology control method in wireless sensor networks (WSNs), since it can enhance the network lifetime and scalability. To prolong the network lifetime in clustered WSNs, an efficient cluster head (CH) optimization policy is essential to distribute the energy among sensor nodes. Recently, game theory has been introduced to model clustering. Each sensor node is considered as a rational and selfish player which will play a clustering game with an equilibrium strategy. Then it decides whether to act as the CH according to this strategy for a tradeoff between providing required services and energy conservation. However, how to get the equilibrium strategy while maximizing the payoff of sensor nodes has rarely been addressed to date. In this paper, we present a game theoretic approach for balancing energy consumption in clustered WSNs. With our novel payoff function, realistic sensor behaviors can be captured well. The energy heterogeneity of nodes is considered by incorporating a penalty mechanism in the payoff function, so the nodes with more energy will compete for CHs more actively. We have obtained the Nash equilibrium (NE) strategy of the clustering game through convex optimization. Specifically, each sensor node can achieve its own maximal payoff when it makes the decision according to this strategy. Through plenty of simulations, our proposed game theoretic clustering is proved to have a good energy balancing performance and consequently the network lifetime is greatly enhanced.
机译:群集是无线传感器网络(WSN)中有效的拓扑控制方法,因为它可以延长网络寿命和可伸缩性。为了延长群集WSN中的网络寿命,有效的群集头(CH)优化策略对于在传感器节点之间分配能量至关重要。最近,博弈论已被引入到模型聚类中。每个传感器节点都被认为是一个理性且自私的参与者,它将以均衡策略参与集群游戏。然后,它根据此策略决定是否充当CH,以在提供所需服务和节能之间进行权衡。然而,迄今为止很少解决如何在使传感器节点的收益最大化的同时获得平衡策略的问题。在本文中,我们提出了一种用于平衡WSN能耗的博弈论方法。利用我们新颖的支付功能,可以很好地捕捉现实的传感器行为。通过在回报函数中加入惩罚机制来考虑节点的能量异质性,因此能量更多的节点将更积极地竞争CH。通过凸优化,我们获得了聚类博弈的纳什均衡(NE)策略。具体来说,每个传感器节点根据此策略做出决策时都可以实现自己的最大回报。通过大量的仿真,我们提出的博弈论聚类被证明具有良好的能量平衡性能,因此网络寿命大大提高。

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