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Quasi-Optimization of Uplink Power for Enabling Green URLLC in Mobile UAV-Assisted IoT Networks: A Perturbation-Based Approach

机译:用于在移动无人机辅助物联网网络中启用绿色URLLC的上行链路功率的准优化:基于扰动的方法

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摘要

Efficient resource allocation can maximize power efficiency, which is an important performance metric in future fifth-generation (5G) communications. The minimization of sum uplink power in order to enable green communications while concurrently fulfilling the strict demands of ultrareliability for short packets is an essential and central challenge that needs to be addressed in the design of 5G and subsequent wireless communication systems. To address this challenge, this article analyzes the joint optimization of various unmanned aerial vehicle (UAV) systems parameters, including the UAV’s position, height, beamwidth, and the resource allocation for uplink communications between ground Internet-of-Things (IoT) devices and a UAV employing short ultrareliable and low-latency (URLLC) data packets. Toward achieving the aforesaid task, we proposed a perturbation-based iterative optimization to minimize the sum uplink power in order to determine the optimal position for the UAV, its height, beamwidth of its antenna, and the blocklength allocated for each IoT device. It is shown that the proposed algorithm has lower time complexity, yields better performance than other benchmark algorithms, and achieves similar performance to exhaustive search. Moreover, the results also demonstrate that Shannon’s formula is not an optimum choice for modeling sum power for short packets as it can significantly underestimate the sum power, where our calculations show that there is an average difference of 47.51% for the given parameters between our proposed approach and Shannon’s formula. Finally, our results confirm that the proposed algorithm allows ultrahigh reliability for all the users and converges rapidly.
机译:高效的资源分配可以最大化功率效率,这是未来第五代(5G)通信的重要性能度量。总和上行链路功率的最小化,以便能够实现绿色通信,同时满足短数据包的超灵活性的严格要求是需要在5G和随后的无线通信系统的设计中寻址的必要和中央挑战。为了解决这一挑战,本文分析了各种无人机(UAV)系统参数的联合优化,包括UAV的位置,高度,波线宽度以及地面内网关(物联网)设备之间的上行链路通信的资源分配使用短的Utrariable和低延迟(URLLC)数据包的UAV。为了实现上述任务,我们提出了一种基于扰动的迭代优化,以最小化总和上行链路功率,以便确定UAV的最佳位置,其天线的高度,波束宽,以及为每个IOT设备分配的块长度。结果表明,该算法具有较低的时间复杂性,产生的性能比其他基准算法更好,并且实现了与详尽的搜索相似的性能。此外,结果还表明,Shannon的公式不是为简短数据包建模的最佳选择,因为它可以显着低估SUM功率,在我们的计算表明我们提出的给定参数的平均差异为47.51%方法和香农的公式。最后,我们的结果证实,该算法允许所有用户的超高可靠性,并迅速收敛。

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