Coordinated Beamforming, Interference-Aware Power Control, and Scheduling Framework for 6G Wireless Networks

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IN this study, we propose a novel sum-rate enhance-ment framework for future 6G multi-cell multiple-input multiple -output (MIMO) uplink networks, which exploits the coordi-nated beamforming, power control, and user scheduling (CBPS) technique. The proposed CBPS technique not only significantly mitigates the inter-cell interference in transmit beamforming for users but also eliminates the intra-cell interference among the users in the same cell the receive beamforming at base sta-tions (BSs). Additionally, we propose a user scheduling algorithm that selects the users whose effective channel vectors are mutually orthogonal to each other to increase the spectral efficiency and an interference-aware power control technique for users to further reduce inter-cell interference. It is worth noting that the proposed CBPS framework does not require information exchange among the BSs and operates in a non-iterative and distributed manner based on local channel state information (CSI) at both the BSs and users. Thus, it can be implemented for practical wireless systems with low complexity. Extensive simulation results show that the proposed CBPS framework significantly outperforms conventional techniques in multi-cell environments.
Publisher
KOREAN INST COMMUNICATIONS SCIENCES (K I C S)
Issue Date
2022-06
Language
English
Article Type
Article
Citation

JOURNAL OF COMMUNICATIONS AND NETWORKS, v.24, no.3, pp.292 - 304

ISSN
1229-2370
DOI
10.23919/JCN.2022.000013
URI
http://hdl.handle.net/10203/298973
Appears in Collection
EE-Journal Papers(저널논문)
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