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Markov Decision Processes With Applications in Wireless Sensor Networks: A Survey

机译:马尔可夫决策过程及其在无线传感器网络中的应用:一项调查

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摘要

Wireless sensor networks (WSNs) consist of autonomous and resource-limited devices. The devices cooperate to monitor one or more physical phenomena within an area of interest. WSNs operate as stochastic systems because of randomness in the monitored environments. For long service time and low maintenance cost, WSNs require adaptive and robust methods to address data exchange, topology formulation, resource and power optimization, sensing coverage and object detection, and security challenges. In these problems, sensor nodes are used to make optimized decisions from a set of accessible strategies to achieve design goals. This survey reviews numerous applications of the Markov decision process (MDP) framework, a powerful decision-making tool to develop adaptive algorithms and protocols for WSNs. Furthermore, various solution methods are discussed and compared to serve as a guide for using MDPs in WSNs.
机译:无线传感器网络(WSN)由自治和资源受限的设备组成。这些设备协作以监视感兴趣区域内的一个或多个物理现象。由于受监视环境中的随机性,WSN充当随机系统。对于较长的服务时间和较低的维护成本,WSN要求采用自适应且健壮的方法来解决数据交换,拓扑结构制定,资源和功率优化,感应覆盖和对象检测以及安全性挑战。在这些问题中,传感器节点用于根据一组可访问的策略来做出最佳决策,以实现设计目标。这项调查回顾了马尔可夫决策过程(MDP)框架的大量应用,该框架是为WSN开发自适应算法和协议的强大决策工具。此外,讨论并比较了各种解决方案方法,以作为在WSN中使用MDP的指南。

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