The Impact of User Mobility Patterns on Opportunistic Content Distribution Network

F. Tan, S. Ardon, R. Hsieh
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引用次数: 5

Abstract

Understanding the impact of mobility on opportunistic network is a challenging problem. This paper focuses on analyzing the impact of specific type of mobility characteristic, namely user mobility patterns. We base our analysis on opportunistic temporal-pairing access network (OPAN), an opportunistic content distribution framework that utilizes both pairings between nodes and infrastructure-based wireless network. Focusing our study to explore the impact of peak hour traffic (i.e. due to human mobility patterns involving routines and schedules) and hence node density (clustering) on opportunistic content distribution paradigm, we introduce two models based on a rail public transportation model, namely random train model and peak hour train model. Our simulation results show that peak hour traffic increases the downlink traffic (i.e. uses more downlink capacity) in OPAN however provides faster diffusion time for nodes to download content. Our simulation results further suggests that mobility patterns with high node clustering is more beneficial for content distribution in mobile opportunistic networks due to higher chance of forming direct pairing between nodes.
用户移动模式对机会主义内容分发网络的影响
理解机动性对机会主义网络的影响是一个具有挑战性的问题。本文重点分析了具体类型的移动性特征,即用户移动性模式的影响。我们的分析基于机会性时间配对接入网(OPAN),这是一种机会性内容分发框架,利用节点和基于基础设施的无线网络之间的配对。我们的研究重点是探讨高峰时段交通(即由于涉及日常和时间表的人类移动模式)以及节点密度(聚类)对机会主义内容分布范式的影响,我们引入了基于轨道公共交通模型的两个模型,即随机列车模型和高峰时段列车模型。我们的仿真结果表明,高峰时段流量增加了OPAN中的下行流量(即使用更多的下行容量),但为节点下载内容提供了更快的扩散时间。我们的模拟结果进一步表明,具有高节点聚类的移动模式更有利于移动机会网络中的内容分发,因为节点之间形成直接配对的机会更高。
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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