Energy-Aware Resource Optimization for Improved URLLC in Multi-Hop Integrated Aerial Terrestrial Networks

IF 5.3 2区 计算机科学 Q1 TELECOMMUNICATIONS
Muhammad Awais;Haris Pervaiz;Muhammad Ali Jamshed;Wenjuan Yu;Qiang Ni
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Abstract

The development of futuristic wireless infrastructure necessitates low power consumption, high reliability, and massive connectivity. One of the most promising solutions to address these requirements is the integration of aerial base station (ABS) based communication systems that employ both in the air (aerial) and on the ground (terrestrial) components. This integration enhances line of sight connections, enabling the fulfillment of escalating quality-of-service (QoS) demands. This article examines the problem of resource allocation in ABS assisted multi-hop wireless networks. We investigate a joint optimization problem that involves subcarrier (SC) assignment, power allocation, and blocklength allocation, subject to delay, reliability, and QoS constraints to improve the sum-rate under the finite blocklength (FBL) regime. We propose an approach for SC allocation and selection of cooperative ABSs based on matching theory. Subsequently, we employ an alternating optimization method to propose a novel bisection-based low-complexity adaptation (BLCA) algorithm to optimize the resource allocation policy. This algorithm includes a two-step projected gradient descent-based strategy to optimize the power allocation on each SC using dynamic and geometric programming. Furthermore, we examine flexible blocklength and power allocation use cases under the next generation of multiple access techniques. Monte-Carlo simulations validate that the proposed algorithmic solution significantly achieves a near-optimal solution while requiring 1600 times less computational cost compared to benchmarks in its counterparts.
为改进多跳综合空中地面网络中的 URLLC 而进行能量感知资源优化
未来无线基础设施的发展需要低功耗、高可靠性和大规模连接。要满足这些要求,最有前途的解决方案之一是整合基于空中基站(ABS)的通信系统,该系统同时采用空中(空中)和地面(地面)组件。这种集成增强了视线连接,从而能够满足不断提高的服务质量(QoS)要求。本文探讨了 ABS 辅助多跳无线网络中的资源分配问题。我们研究了一个联合优化问题,该问题涉及子载波(SC)分配、功率分配和块长分配,受延迟、可靠性和 QoS 约束,以提高有限块长(FBL)机制下的总和速率。我们提出了一种基于匹配理论的 SC 分配和合作 ABS 选择方法。随后,我们采用交替优化方法,提出了一种新颖的基于分段的低复杂度适应(BLCA)算法,以优化资源分配策略。该算法包括一个基于两步投射梯度下降的策略,利用动态和几何编程优化每个 SC 上的功率分配。此外,我们还研究了下一代多址接入技术下灵活的块长度和功率分配用例。蒙特卡洛模拟验证了所提出的算法解决方案能显著实现接近最优的解决方案,同时与同类基准相比,所需的计算成本降低了 1600 倍。
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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来源期刊
IEEE Transactions on Green Communications and Networking
IEEE Transactions on Green Communications and Networking Computer Science-Computer Networks and Communications
CiteScore
9.30
自引率
6.20%
发文量
181
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