下一代多址接入的资源分配设计:教程概览

IF 23.2 1区 计算机科学 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC Proceedings of the IEEE Pub Date : 2024-08-09 DOI:10.1109/JPROC.2024.3434700
Zhiqiang Wei;Dongfang Xu;Shuangyang Li;Shenghui Song;Derrick Wing Kwan Ng;Giuseppe Caire
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引用次数: 0

摘要

多址是每一代无线蜂窝网络的基础技术,它从根本上决定了无线资源共享的方式,对系统性能和收发器复杂度都有重要影响。同时,资源分配(RA)设计在多址通信中起着至关重要的作用,因为它可以同时管理大量的无线资源和干扰,对于向多用户提供高速、可靠的通信服务至关重要。考虑到RA设计本质上是特定于场景的,并且RA设计的优化工具通常是多种多样的,在本文中,我们为该领域的初级研究人员提供了一个全面的教程概述,旨在为下一代多址(NGMA)背景下的RA设计提供基础指导。我们的讨论涵盖了广泛的基本主题:从典型的系统模型,通过RA设计中有趣的问题公式,到探索各种潜在的优化解决方案方法。首先,我们确定了未来无线蜂窝网络中实现NGMA的三种类型的信道,即自然信道、可重构信道和功能信道。自然信道是传统的上行和下行通信信道;可重构通道被定义为可以通过新兴平台或技术(如智能反射面(IRS)、无人机(UAV)和可移动/流体天线(M/FA))主动重塑的通道;功能通道不仅支持通信,而且同时支持其他功能,典型的例子包括集成传感与通信(ISAC)和联合计算与通信(JCAC)通道。然后,我们介绍了适用于这三种信道的NGMA模型,这些模型涵盖了未来无线通信的大多数实际通信场景。随后,我们阐明了NGMA RA设计中固有的关键优化技术挑战,并将其分为面向速率、功率和可靠性的RA设计。然后给出了求解公式化RA设计问题的相应优化方法。最后,给出了仿真结果并进行了讨论,以阐明在NGMA中RA设计的实际意义和见解。
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Resource Allocation Design for Next-Generation Multiple Access: A Tutorial Overview
Multiple access is the cornerstone technology for each generation of wireless cellular networks, which fundamentally determines the method of radio resource sharing and significantly influences both the system performance and transceiver complexity. Meanwhile, resource allocation (RA) design plays a crucial role in multiple access, as it can manage both encompassing radio resources and interference, and it is critical for providing high-speed and reliable communication services to multiple users. Given that the RA design is intrinsically scenario-specific and the optimization tools for RA design are typically varied, in this article, we present a comprehensive tutorial overview for junior researchers in this field, aiming to offer a foundational guide for RA design in the context of next-generation multiple access (NGMA). Our discussion spans a broad range of fundamental topics: from typical system models, through intriguing problem formulation in RA design, to the exploration of various potential optimization solution methodologies. Initially, we identify three types of channels in future wireless cellular networks over which NGMA will be implemented, namely, natural channels, reconfigurable channels, and functional channels. Natural channels are traditional uplink and downlink communication channels; reconfigurable channels are defined as channels that can be proactively reshaped via emerging platforms or techniques, such as intelligent reflecting surface (IRS), unmanned aerial vehicle (UAV), and movable/fluid antenna (M/FA); and functional channels support not only communication but also other functionalities simultaneously, with typical examples, including integrated sensing and communication (ISAC) and joint computing and communication (JCAC) channels. Then, we introduce NGMA models applicable to these three types of channels that cover most of the practical communication scenarios of future wireless communications. Subsequently, we articulate the key optimization technical challenges inherent in the RA design for NGMA, categorizing them into rate-, power-, and reliability-oriented RA designs. The corresponding optimization approaches for solving the formulated RA design problems are then presented. Finally, the simulation results are presented and discussed to elucidate the practical implications and insights derived from RA designs in NGMA.
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来源期刊
Proceedings of the IEEE
Proceedings of the IEEE 工程技术-工程:电子与电气
CiteScore
46.40
自引率
1.00%
发文量
160
审稿时长
3-8 weeks
期刊介绍: Proceedings of the IEEE is the leading journal to provide in-depth review, survey, and tutorial coverage of the technical developments in electronics, electrical and computer engineering, and computer science. Consistently ranked as one of the top journals by Impact Factor, Article Influence Score and more, the journal serves as a trusted resource for engineers around the world.
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