基于异构网络模型的上行NOMA集群形成与功率分配

Arbab Waheed Ahmad, Nasir Mehmood Bahadar
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引用次数: 3

摘要

非正交多址(NOMA)使下一代移动通信系统能够以更好的连接性和更高的频谱效率实现极高的数据速率。在下行链路NOMA中,将多个用户设备(ue)分组在一个集群中,以便从演进节点b (eNB)向属于该集群的所有终端传输单个复合功率信号。然后,集群中的每个UE从复合功率信号中检索自己的信号,同时实现连续干扰消除(SIC)。然而,在NOMA上行链路传输中,每个终端都不知道小区中其他终端的传输情况。因此,每个UE被视为上行链路中唯一的个体实体,因此独立地传输功率。因此,在上行链路中,不能将多台终端组成一个集群,向eNB发送单一的复合功率信号。为了实现上行NOMA的频谱效率,本文利用异构网络(HetNet)模型的概念,提出了一种两步功率分配方案。属于特定地理区域的ue被分组到类似于集群的小单元中,并为每个集群定义一个集群- enb (ceNB)。集群内的终端在第一步中单独独立地向ceNB发送,然后在第二步中,ceNB将多个终端以单一叠加的复合功率信号复用,同时为不同的用户分配不同的功率电平。最后,ceNB再将叠加的复合功率信号传输到eNB。数值结果表明,该技术优于传统的正交多址(OMA)技术。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Exploiting Heterogeneous Networks model for Cluster Formation and Power Allocation in Uplink NOMA
Non-orthogonal multiple access (NOMA) enables the next generation mobile communication systems to achieve extremely high data rate with better connectivity and higher spectral efficiency. In downlink NOMA, multiple user-equipments (UEs) are grouped in a single cluster so that a single composite power signal can be transmitted from the evolved nodeB (eNB) for all UEs belong to that cluster. Each UE in the cluster then retrieves its own signal from the composite power signal while implementing successive interference cancellation (SIC). However, in NOMA uplink transmission, each UE is unaware about the transmission of other UEs in the cell. Hence each UE is considered as a unique individual entity in uplink and therefore transmits power independently. Therefore in uplink, multiple UEs cannot be grouped into a single cluster so as to transmit a single composite power signal to the eNB. In order to achieve spectral efficiency in uplink NOMA, in this paper we exploit the concept of Heterogeneous network (HetNet) model and propose a two-step power allocation scheme. UEs belong to a specific geographical area are grouped in a small cell alike cluster and a cluster-eNB (ceNB) is defined for each cluster. UEs inside the cluster transmits individually and independently to the ceNB during the first step and afterwards the ceNB multiplex multiple UEs in a single superimposed composite power signal while allocating distinct power levels to different users in the second step. Finally, the ceNB then transmits the superimposed composite power signal to the eNB. The numerical results demonstrate that the proposed technique outperforms the conventional orthogonal multiple access (OMA) technique.
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