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摘要:
In a real communication scenario, it is very difficult to obtain the real-time channel state infor-mation ( CSI) accurately, so the non-orthogonal multiple access ( NOMA) system with statistical CSI has been researched. Aiming at the problem that the maximization of system sum rate cannot be solved directly, a step-by-step resource allocation optimization scheme based on machine learning is proposed. First, in order to achieve a trade-off between the system sum rate and user fairness, the system throughput formula is derived. Then, according to the combinatorial characteristics of the system throughput maximization problem, the original optimization problem is divided into two sub-problems, that are power allocation and user grouping. Finally, genetic algorithm is introduced to solve the sub-problem of power allocation, and hungarian algorithm is introduced to solve the sub-problem of user grouping. By comparing the ergodic data rate of NOMA users with statistical CSI and perfect CSI, the effectiveness of the statistical CSI sorting is verified. Compared with the orthogonal multiple access ( OMA) scheme, the NOMA scheme with the fixed user grouping scheme and the random user grouping scheme, the system throughput performance of the proposed scheme is signifi-cantly improved.
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篇名 A joint optimization scheme of resource allocation in downlink NOMA with statistical channel state information
来源期刊 高技术通讯(英文版) 学科
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年,卷(期) 2022,(1) 所属期刊栏目
研究方向 页码范围 107-114
页数 8页 分类号
字数 语种 英文
DOI 10.3772/j.issn.1006-6748.2022.01.013
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高技术通讯(英文版)
季刊
1006-6748
11-3683/N
大16开
北京三里河路54号2143信箱
1987
eng
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