Optimizing mission critical data dissemination in massive IoT networks

Muhammad Junaid Farooq, Quanyan Zhu
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引用次数: 25

Abstract

Mission critical data dissemination in massive Internet of things (IoT) networks imposes constraints on the message transfer delay between devices. Due to low power and communication range of IoT devices, data is foreseen to be relayed over multiple device-to-device (D2D) links before reaching the destination. The coexistence of a massive number of IoT devices poses a challenge in maximizing the successful transmission capacity of the overall network alongside reducing the multi-hop transmission delay in order to support mission critical applications. There is a delicate interplay between the carrier sensing threshold of the contention based medium access protocol and the choice of packet forwarding strategy selected at each hop by the devices. The fundamental problem in optimizing the performance of such networks is to balance the tradeoff between conflicting performance objectives such as the spatial frequency reuse, transmission quality, and packet progress towards the destination. In this paper, we use a stochastic geometry approach to quantify the performance of multi-hop massive IoT networks in terms of the spatial frequency reuse and the transmission quality under different packet forwarding schemes. We also develop a comprehensive performance metric that can be used to optimize the system to achieve the best performance. The results can be used to select the best forwarding scheme and tune the carrier sensing threshold to optimize the performance of the network according to the delay constraints and transmission quality requirements.
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优化大规模物联网网络中关键任务数据的传播
在海量物联网(IoT)网络中,关键任务数据的传播对设备之间的消息传输延迟有一定的限制。由于物联网设备的低功耗和通信范围,预计数据在到达目的地之前将通过多个设备对设备(D2D)链路中继。大量物联网设备的共存对最大化整个网络的成功传输容量以及减少多跳传输延迟以支持关键任务应用提出了挑战。基于争用的介质访问协议的载波感知阈值与设备在每一跳选择的数据包转发策略之间存在微妙的相互作用。优化网络性能的根本问题是如何在空间频率复用、传输质量和数据包到达目的地的进度等相互冲突的性能目标之间进行权衡。在本文中,我们使用随机几何方法来量化多跳大规模物联网网络在不同分组转发方案下的空间频率重用和传输质量。我们还开发了一个全面的性能指标,可用于优化系统以实现最佳性能。研究结果可用于根据时延约束和传输质量要求选择最佳转发方案和调整载波感知阈值,优化网络性能。
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Keynote speaker Keynote speaker Ad-Hoc, Mobile, and Wireless Networks: 19th International Conference on Ad-Hoc Networks and Wireless, ADHOC-NOW 2020, Bari, Italy, October 19–21, 2020, Proceedings Retraction Note to: Mobility Aided Context-Aware Forwarding Approach for Destination-Less OppNets Ad-Hoc, Mobile, and Wireless Networks: 18th International Conference on Ad-Hoc Networks and Wireless, ADHOC-NOW 2019, Luxembourg, Luxembourg, October 1–3, 2019, Proceedings
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