Ad Hoc网络中跳数分布的分布式学习

S. Shamoun
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引用次数: 0

摘要

本文研究了利用网络内数据学习移动自组织网络跳数分布的可行性。节点维护来自接收到的所有数据包源的跳数直方图,并彼此共享该直方图。这可以用来学习所有节点对或节点组之间的分布。仿真结果表明了该方法的有效性以及各种因素的影响。与跳数分布的理论和实验分析相比,该方法的优点是它不依赖于节点分布、传播和网络协议的特定模型,并且可以用于实时学习分布。这对于快速有效运行自组织网络所需的方法的动态优化是有用的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Distributed Learning of Hop Count Distributions in Ad Hoc Networks
This is a study of the feasibility of learning the hop count distribution of a mobile ad hoc network using in-network data. The nodes maintain a histogram of the hop count from the source of all packets received and share the histograms with one another. This can be used to learn the distribution between all pairs of nodes or groups of nodes. The effectiveness of this method and the effect of various factors is shown by simulation. The advantage of this method over theoretical and experimental analysis of the hop count distribution is that it is not tied to specific models of node distribution, propagation, and network protocols, and can be used to learn the distribution in real time. It is useful for the dynamic optimization of methods needed for the efficient and effective operation of an ad hoc network.
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