Traversal Strategies for Wireless Power Transfer in Mobile Ad-Hoc Networks

C. Angelopoulos, Julia Buwaya, Orestis Evangelatos, J. Rolim
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引用次数: 23

Abstract

We investigate the problem of wireless power transfer in mobile ad-hoc networks. In particular we investigate which traversal strategy should a Mobile Charger follow in order to efficiently recharge agents that are randomly and dynamically moving inside an area of interest. We first formally define this problem as the Charger Traversal Decision Problem and prove its computational hardness. We then define a weighting function which evaluates several network parameters in order to prioritize the nodes during the charging process. Based on this function we define three traversal strategies for the MC; a global-knowledge strategy that uses an Integer Linear Program to optimize its trajectory; a global-knowledge strategy which tessellates the network area and prioritizes the charging process over each tile; a local-knowledge strategy that uses local network information collected and ferried distributively by the moving agents. We also evaluate two naive zero-knowledge strategies; a space-filling deterministic one in which the MC systematically sweeps the network area and a randomized one in which the MC performs a blind random walk. We evaluate these strategies both in homogeneous and heterogeneous agent distributions and for various network sizes with respect to number of alive nodes over time, energy distribution among the nodes over time and charging efficiency over distance traveled. Our findings indicate that in small networks network agnostic strategies are sufficient. However, as the network scales the use of local distributed network information achieves good performance-overhead trade-offs.
移动Ad-Hoc网络中无线电力传输的遍历策略
我们研究了移动自组织网络中的无线电力传输问题。我们特别研究了移动充电器应该遵循哪种遍历策略,以便有效地为在感兴趣的区域内随机动态移动的代理充电。首先将该问题正式定义为充电器遍历决策问题,并证明了其计算难度。然后,我们定义了一个加权函数来评估几个网络参数,以便在充电过程中对节点进行优先排序。基于这个函数,我们定义了MC的三种遍历策略;使用整数线性规划优化其轨迹的全局知识策略;一种全局知识策略,该策略对网络区域进行细分,并对每个单元的收费过程进行优先级排序;一种局部知识策略,利用由移动代理分散收集和传递的局部网络信息。我们还评估了两种朴素零知识策略;一种是空间填充确定性模型,其中MC系统地扫描网络区域;另一种是随机模型,其中MC进行盲随机行走。我们评估了这些策略在同质和异质代理分布以及不同网络规模下的动态节点数量、节点之间的能量分布和行驶距离的充电效率。我们的研究结果表明,在小型网络中,网络不可知策略是足够的。然而,随着网络的扩展,使用本地分布式网络信息可以实现良好的性能开销权衡。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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