Flexible Physical Layer based Resource Allocation for Machine Type Communications Towards 6G

Yalçin Sadi, Serhat Erküçük, E. Panayirci
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引用次数: 11

Abstract

The exponential growth of Internet of Things applications necessitates the design of next generation cellular systems to provide native support for machine type communications (MTC). While 5G aims at providing this native support under domain of massive MTC (mMTC) as one of the three major domains it focuses; i.e., enhanced mobile broadband, ultra reliable low latency communication, and mMTC, the enabling technologies and communication architectures are still limited and incomplete considering the nearly standardized efforts under 3GPP Releases 15 and 16. Studies towards 6G should elaborate on enabling truly massive MTC flexibly to support fast growing machine-to-machine (M2M) services with massive number of devices and very diverse quality of service (QoS) requirements. In this paper, we study radio resource allocation for mMTC based on the envisioned flexible physical layer architecture for 5G and beyond, possibly including 6G. We first present an overview of the 5G New Radio physical layer aspects particularly focusing on multiple numerologies and discuss the 3GPP features in Releases 15–17 as possible enablers of a flexible radio resource allocation scheme. Then, we propose a polynomial-time persistent resource allocation scheme for M2M communications aiming at meeting diverse QoS requirements of the M2M applications while achieving spectral efficiency. Finally, we present some numerical results and discuss future research directions for access schemes to enable truly massive MTC.
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面向6G的基于灵活物理层的机器通信资源分配
物联网应用的指数级增长要求设计下一代蜂窝系统以提供对机器类型通信(MTC)的本地支持。而5G的目标是在大规模MTC (mMTC)领域下提供这种原生支持,作为其关注的三大领域之一;例如,增强型移动宽带、超可靠低延迟通信和mMTC,考虑到3GPP版本15和16中几乎标准化的努力,使能技术和通信架构仍然有限和不完整。对6G的研究应详细阐述如何使真正大规模的MTC能够灵活地支持快速增长的机器对机器(M2M)业务,这些业务具有大量设备和非常多样化的服务质量(QoS)需求。在本文中,我们研究了基于5G及以后(可能包括6G)设想的灵活物理层架构的mMTC无线电资源分配。我们首先概述了5G新无线电物理层的各个方面,特别关注多个数字学,并讨论了版本15-17中的3GPP功能,这些功能可能成为灵活的无线电资源分配方案的推动者。在此基础上,提出了一种多项式时间持久的M2M通信资源分配方案,以满足M2M应用对QoS的不同要求,同时实现频谱效率。最后,我们给出了一些数值结果,并讨论了实现真正大规模MTC的接入方案的未来研究方向。
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