Extended performance measurements of scalable 6LoWPAN networks in an Automated Physical Testbed

A. Yushev, P. Lehmann, A. Sikora, V. Groza
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引用次数: 7

Abstract

IPv6 over Low power Wireless Personal Area Networks, also known as 6LoWPAN, is becoming more and more a de facto standard for such communications for the Internet of Things, be it in the field of home and building automation, of industrial and process automation, or of smart metering and environmental monitoring. For all of these applications, scalability is a major precondition, as the complexity of the networks continuously increase. To maintain this growing amount of connected nodes a various 6LoWPAN implementations are available. One of the mentioned was developed by the authors' team and was tested on an Automated Physical Testbed for Wireless Systems at the Laboratory Embedded Systems and Communication Electronics of Offenburg University of Applied Sciences, which allows the flexible setup and full control of arbitrary topologies. It also supports time-varying topologies and thus helps to measure performance of the RPL implementation. The results of the measurements prove an excellent stability and a very good short and long-term performance also under dynamic conditions. In all measurements, there is an advantage of minimum 10% with regard to the average times, like global repair time; but the advantage with reagr to average values can reach up to 30%. Moreover, it can be proven that the performance predictions from other papers are consistent with the executed real-life implementations.
在自动化物理测试台上扩展可扩展6LoWPAN网络的性能测量
IPv6基于低功耗无线个人区域网络,也被称为6LoWPAN,正越来越成为物联网通信的事实上的标准,无论是在家庭和楼宇自动化,工业和过程自动化,还是智能计量和环境监测领域。对于所有这些应用程序,随着网络的复杂性不断增加,可伸缩性是一个主要的先决条件。为了维护不断增长的连接节点数量,可以使用各种6LoWPAN实现。其中一种是由作者的团队开发的,并在奥芬堡应用科学大学嵌入式系统和通信电子实验室的无线系统自动化物理测试台上进行了测试,该测试台允许灵活设置和完全控制任意拓扑。它还支持时变拓扑,因此有助于度量RPL实现的性能。测量结果表明,在动态条件下,该系统具有优异的稳定性和良好的短期和长期性能。在所有测量中,与平均时间(如全球维修时间)相比,至少有10%的优势;但是,与平均值相比,reagr的优势可以达到30%。此外,可以证明其他论文的性能预测与实际执行的实现是一致的。
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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