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Grant-Free Radio Access IoT Networks: Scalability Analysis in Coexistence Scenarios

机译:无授予无线电接入物联网网络:共存场景中的可伸缩性分析

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IoT networks with grant-free radio access, like SigFox and LoRa, offer low-cost durable communications over unlicensed band. These networks are becoming more and more popular due to the ever-increasing need for ultra durable, in terms of battery lifetime, IoT networks. Most studies evaluate the system performance assuming single radio access technology deployment. In this paper, we study the impact of coexisting competing radio access technologies on the system performance. Considering K technologies, defined by time and frequency activity factors, bandwidth, and power, which share a set of radio resources, we derive closed-form expressions for the successful transmission probability, expected battery lifetime, and experienced delay as a function of distance to the serving access point. Our analytical model, which is validated by simulation results, provides a tool to evaluate the coexistence scenarios and analyze how introduction of a new coexisting technology may degrade the system performance in terms of success probability and battery lifetime. We further investigate solutions in which this destructive effect could be compensated, e.g., by densifying the network to a certain extent and utilizing joint reception.
机译:诸如SigFox和LoRa之类的具有无授予无线电访问权限的IoT网络可在非许可频段上提供低成本,持久的通信。由于对电池寿命和物联网网络的超耐用性的不断增长的需求,这些网络变得越来越受欢迎。大多数研究假设部署了单个无线电接入技术,就对系统性能进行了评估。在本文中,我们研究了共存竞争的无线接入技术对系统性能的影响。考虑到由时间和频率活动因子,带宽和功率定义的K种技术共享一组无线电资源,我们得出了成功传输概率,预期电池寿命和经历的延迟与距离的函数的封闭式表达式。服务访问点。我们的分析模型通过仿真结果进行了验证,它提供了一种工具来评估共存方案并分析成功引入新共存技术如何可能会降低成功率和电池寿命,从而降低系统性能。我们进一步研究可以通过例如在一定程度上使网络致密并利用联合接收来补偿这种破坏性影响的解决方案。

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