A more superior hybrid M/T-NOMA cognitive communication scheme is proposed, in which the system will adaptively select the one with higher system throughput between M-NOMA and T-NOMA as the final transmission scheme.
Abstract
In this paper, we consider a coexisting network of cellular transmission and device-to-device (D2D) communication, in which BS wants to communicate with far user, meanwhile, a D2D source desires to transmit information to a D2D destination. However, due to heavy shadowing or severe path loss, their direct links are not available. To cope with this problem, a relay is employed to assist the involved transmission. For such a relay-assisted spectrum sharing network, two transmission schemes are designed, i.e., multiple access broadcast NOMA (M-NOMA) scheme and time division broadcast NOMA (T-NOMA) scheme. For each scheme, we first perform power optimization to minimize the outage probability (OP) of D2D communication under the quality of service (QoS) constraint of cellular transmission. Based on the optimization results, we derive the OPs for both cellular and D2D signals. To gain more insights, the asymptotic OPs and the average throughput for both schemes are provided as well. On this basis, we further propose a more superior hybrid M/T-NOMA cognitive communication scheme, in which the system will adaptively select the one with higher system throughput between M-NOMA and T-NOMA as the final transmission scheme. Simulation results validate the accuracy of our analyses, and reveal the performance gain of our schemes over the benchmark schemes.
This paper enhances the proposed system cell-edge user performance and derives analytical frameworks for outage probability, throughput, and ergodic capacity of PR, SR, respectively and determines the optimal power allocation scheme to enhance the performance of PR/SR signals.
Simulation results demonstrate that the APS NOMA scheme outperforms both the FPS NOMA and Orthogonal Multiple Access schemes, reducing OP significantly across a range of SNRs, making it highly effective for reliable and energy-efficient communication in future wireless networks.
S. Ajibowu, O. Adeleke, M. Asafa et al.· Nigerian Journal of Technolo...· 0 citations
This paper proposes a joint transmit antenna selection (TAS) and selection combining (SC)-assisted multi-hop decode-and-forward (DF) scheme employing power-domain non-orthogonal multiple access (PD-NOMA). In the proposed protocol, a source transmits its data to a destination via a preestablished multi-hop route. TAS/SC is applied at each hop to enhance transmission reliability. Meanwhile, PD-NOMA is utilized to simultaneously transmit the source data and the data of an additional node that is not part of the source-destination route. We evaluate the end-to-end (e2e) outage probability (OPe2e) and system throughput (TP-e2e) of the proposed scheme through both analytical derivations and simulations over Rayleigh fading channels. The results show that the proposed scheme achieves the same diversity gain as the conventional TAS/SC-assisted multi-hop DF scheme without PD-NOMA. In addition, at high transmit signal-to-noise ratio (SNR) regions, the proposed scheme provides a significantly higher multiplexing gain.
Quang Minh Pham, Dat Dinh Tran, Le Thi Ngoc Diep et al.· IEEE Jordan Conference on Ap...· 0 citations
Simulation results show that relaying information via FD-HAPS significantly improves the capacity of cell-edge UEs compared with a terrestrial-only network.
Simulation results demonstrate the effectiveness of the proposed framework and show that the BD-RIS-assisted system achieves up to a 45.2% sum-rate improvement compared with conventional single-connected RIS (SC-RIS) architectures while maintaining robustness against CSI uncertainty and satisfying all system constraints.
Zain Ali, Muhammad Asif, S. Althunibat et al.· IEEE Access· 0 citations
The simulation results reveal that the proposed HC-DA-UA framework always outperforms the existing counterparts in terms of sum-rate, whilst substantially decreasing the computational complexity and signalling overhead, thus it is an efficient and scalable solution for next-generation hardware-impaired distributed wireless communication networks.
P. Poojitha, D. Karunakar Reddy· International Journal for Re...· 0 citations
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