Fifth generation (5G) networks are expected to connect a huge number of Internet of Things (IoT) devices in many usage scenarios. The challenges of typical massive IoT applications with sporadic and short packet uplink transmissions are well studied, while not enough attention is given to the delivery of content of common interest, such as software/firmware updates and remote control, towards IoT devices in emerging point-to-multipoint scenarios. Moreover, the delivery of delay-sensitive IoT traffic is not sufficiently addressed in the literature. In this work we (i) identify the drawbacks of the current Single-Cell Point-to-Multipoint (SC-PTM) solution for unplanned critical traffic delivery in cellular IoT (cIoT) networks, and (ii) propose paging and multicast schemes for a fast distribution of critical updates after, e.g., bug fixes or system failures. We benchmark the performance of the proposed paging scheme against similar solutions available in the literature. Our extended SC-PTM framework is energy efficient and guarantees low service latency, as demonstrated both analytically and by simulations.
翻译:第五代(5G)网络预计将在许多使用情景中连接大量物联网(IoT)设备,对典型的大型IoT应用软件的零星和短包上行传输的挑战进行了充分研究,同时对软件/硬件更新和远程控制等共同感兴趣的内容在新出现的点到多点假设情况下提供给IoT设备的问题没有给予足够的重视。此外,在文献中,交付对延迟敏感的IoT流量问题没有得到充分的处理。在这项工作中,我们(一) 查明了目前单中点到多点(SC-PTM)解决方案对移动电话IoT(cIoT)网络计划性关键交通交付的缺陷,并(二) 提出在错误修正或系统故障后快速分发关键更新的定位和多播种计划。我们用文献中的类似解决方案来衡量拟议的调控计划的性能。我们扩展的SC-PTM框架具有能源效率和保证了低服务耐用度,这在分析上和模拟中都证明了。