2023
DOI: 10.1109/mwc.003.2200239
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Artificial Intelligence Enabled NOMA Toward Next Generation Multiple Access

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Cited by 6 publications
(1 citation statement)
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“…The cluster-free objective aims to efficiently mitigate interference and improve system performance by enabling more adaptable and scenario-responsive NOMA communications. Xu et al [67] proposed a comprehensive framework that significantly increases the flexibility of successive interference cancellation operations, which is supported by advanced DRL with GNN paradigms (automated learning GNN termed as AutoGNN) to achieve scenario-adaptive and efficient communications in next-generation multiple access environments. The proposed algorithm leveraged the GNN+DRL integration to minimize interference and optimize beamforming in a flexible flow for cluster-free NOMA setting.…”
Section: Cluster-free Nomamentioning
confidence: 99%
“…The cluster-free objective aims to efficiently mitigate interference and improve system performance by enabling more adaptable and scenario-responsive NOMA communications. Xu et al [67] proposed a comprehensive framework that significantly increases the flexibility of successive interference cancellation operations, which is supported by advanced DRL with GNN paradigms (automated learning GNN termed as AutoGNN) to achieve scenario-adaptive and efficient communications in next-generation multiple access environments. The proposed algorithm leveraged the GNN+DRL integration to minimize interference and optimize beamforming in a flexible flow for cluster-free NOMA setting.…”
Section: Cluster-free Nomamentioning
confidence: 99%