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首页> 外文期刊>Automation Science and Engineering, IEEE Transactions on >Game-Theoretic Modeling of Joint Topology Control and Power Scheduling for Wireless Heterogeneous Sensor Networks
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Game-Theoretic Modeling of Joint Topology Control and Power Scheduling for Wireless Heterogeneous Sensor Networks

机译:无线异构传感器网络联合拓扑控制和功率调度的博弈论建模

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摘要

Wireless Heterogeneous Sensor Network (WHSN) facilitates ubiquitous information acquisition for Ambient Intelligence (AmI) systems. It is of great importance of power management and topology control for WHSN to achieve desirable network performances, such as clustering properties, connectivity and power efficiency. This paper proposes a game theoretic model of topology control to analyze the decentralized interactions among heterogeneous sensors. We study the utility function for nodes to achieve desirable frame success rate and node degree, while minimizing the power consumption. Specifically, we propose a static complete-information game formulation for power scheduling and then prove the existence of the Nash equilibrium with simultaneous move. Because the heterogeneous sensors typically react to neighboring environment based on local information and the states of sensors are evolving over time, the power-scheduling problem in WHSN is further formulated into a more realistic incomplete-information dynamic game model with sequential move. We then analyze the separating equilibrium, one of the perfect Bayesian equilibriums resulted from the dynamic game, with the sensors revealing their operational states from their actions. The sufficient and necessary conditions for the existence of separating equilibrium are derived for the dynamic Bayesian game, which provide theoretical basis to the proposed power scheduling algorithms, NEPow and BEPow. The primary contributions of this paper include applying game theory to analyze the distributed decision-making process of individual sensor nodes and to analyze the desirable utilities of heterogeneous sensor nodes. Simulations are presented to validate the proposed algorithms and the results show their ability of maintaining reliable connectivity, reducing power consumption, while achieving desirable network performances.
机译:无线异构传感器网络(WHSN)促进了环境智能(AmI)系统的普遍信息获取。 WHSN的电源管理和拓扑控制对于实现理想的网络性能(如群集属性,连接性和电源效率)非常重要。本文提出了一种拓扑控制的博弈模型,以分析异构传感器之间的分散相互作用。我们研究了节点的效用函数,以实现理想的帧成功率和节点度,同时将功耗降至最低。具体来说,我们提出了一种用于功率调度的静态完整信息博弈公式,然后证明了同时移动的纳什均衡的存在。由于异类传感器通常会根据本地信息对邻近环境做出反应,并且传感器的状态会随着时间的推移而发展,因此WHSN中的功率调度问题被进一步表述为具有顺序移动性的更实际的不完全信息动态博弈模型。然后,我们分析分离均衡,这是动态博弈产生的理想贝叶斯均衡之一,传感器通过其动作揭示了其运行状态。为动态贝叶斯博弈导出了存在分离均衡的充要条件,为提出的功率调度算法NEPow和BEPow提供了理论依据。本文的主要贡献包括运用博弈论来分析单个传感器节点的分布式决策过程,并分析异构传感器节点的理想效用。进行了仿真,以验证所提出的算法,结果表明,它们能够保持可靠的连接性,降低功耗并同时实现理想的网络性能。

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