Study on the effects of self-similar traffic on the IEEE 802.15.4 wireless sensor networks

Chi-Ming Wong, Huai-Kuei Wu
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引用次数: 3

Abstract

A significant number of previous studies have shown, however, network traffic exhibited frequently large bursty traffic possesses self-similar properties. For the future applications of wireless sensor networks (WSNs) with large number of cluster structures, such as Internet of Things (IoT) and smart grid, the network traffic should not be assumed as conventional Poisson process. We thus employ ON/OFF traffic source with the duration of heavy-tailed distribution in one or both of the states instead of Poisson traffic to be as the asymptotically self-similar traffic for experimenting on the performance of IEEE 802.15.4 WSNs. In this paper, we will show the impact on the performance of IEEE 802.15.4 WSNs in different traffic sources such as Poisson and Pareto ON/OFF distribution by ns2 simulator. For the Pareto ON/OFF distribution traffic, we demonstrate that the packet delay and throughput appear bursty-like high value in some certain time scales, especially for the low traffic load; and the throughput will be no longer bursty-like while the traffic load increases. Intuitively, the bursty-like high delay may result in loss of some important real-time packets. For the Poisson traffic, both the throughput and packet delay appear non-bursty, especially for the high traffic load.
自相似流量对IEEE 802.15.4无线传感器网络的影响研究
然而,大量的研究表明,频繁出现的网络流量具有自相似的特性。对于具有大量集群结构的无线传感器网络(WSNs)的未来应用,如物联网(IoT)和智能电网,网络流量不应假设为传统的泊松过程。因此,我们采用在一种或两种状态下具有重尾分布持续时间的开/关流量源代替泊松流量作为渐近自相似流量,对IEEE 802.15.4无线传感器网络的性能进行实验。在本文中,我们将通过ns2模拟器展示不同流量源(如泊松分布和帕累托开/关分布)对IEEE 802.15.4 WSNs性能的影响。对于Pareto ON/OFF分布流量,我们证明了数据包延迟和吞吐量在某些特定的时间尺度上出现突发性的高值,特别是在低流量负载下;当流量负载增加时,吞吐量将不再是突发性的。直观地说,这种突发式的高延迟可能会导致一些重要的实时数据包丢失。对于泊松业务,吞吐量和分组延迟都表现为非突发的,特别是在高业务负载下。
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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