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An MDP-Based Dynamic Optimization Methodology for Wireless Sensor Networks

机译:基于MDP的无线传感器网络动态优化方法

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摘要

Wireless sensor networks (WSNs) are distributed systems that have proliferated across diverse application domains (e.g., security/defense, health care, etc.). One commonality across all WSN domains is the need to meet application requirements (i.e., lifetime, responsiveness, etc.) through domain specific sensor node design. Techniques such as sensor node parameter tuning enable WSN designers to specialize tunable parameters (i.e., processor voltage and frequency, sensing frequency, etc.) to meet these application requirements. However, given WSN domain diversity, varying environmental situations (stimuli), and sensor node complexity, sensor node parameter tuning is a very challenging task. In this paper, we propose an automated Markov Decision Process (MDP)-based methodology to prescribe optimal sensor node operation (selection of values for tunable parameters such as processor voltage, processor frequency, and sensing frequency) to meet application requirements and adapt to changing environmental stimuli. Numerical results confirm the optimality of our proposed methodology and reveal that our methodology more closely meets application requirements compared to other feasible policies.
机译:无线传感器网络(WSN)是分布在各种应用程序域(例如安全/防御,医疗保健等)中的分布式系统。通过特定于域的传感器节点设计来满足所有WSN域的一种共性是需要满足应用程序要求(即生存期,响应性等)。传感器节点参数调整等技术使WSN设计人员能够专门调整参数(即处理器电压和频率,感应频率等),以满足这些应用要求。但是,考虑到WSN域的多样性,变化的环境情况(刺激)以及传感器节点的复杂性,传感器节点参数调整是一项非常具有挑战性的任务。在本文中,我们提出了一种基于马尔可夫决策过程(MDP)的自动化方法,以规定最佳传感器节点操作(选择可调参数(例如处理器电压,处理器频率和感应频率)的值)以满足应用要求并适应变化环境刺激。数值结果证实了我们提出的方法的最优性,并表明与其他可行策略相比,我们的方法更符合应用要求。

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