Aug 2026· International Journal for Research in Applied Science and Engineering Technology· 0 citations
TL;DR
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.
Abstract
Massive multiple-input multiple-output (CF-mMIMO) systems have been identified as a promising technique for
wireless communication, in terms of the enhancement of spectral efficiency, network coverage and user fairness. The key issues
to be addressed for practical deployment are impairments in the hardware, inter-cell interference, high computational
complexity, and high number of backhaul signalling, all of which impact system performance. To tackle these problems, in this
paper, a Hierarchical Cluster-Based Distortion-Aware User Association (HC-DA-UA) framework for the distributed CFmMIMO system under hardware impairments is proposed to solve these problems. The proposed method first clusters the
distributed base stations based on the channel energy in a dynamic way to minimize the coordination overhead. Then a
hierarchical distributed beamforming method is used to optimise the precoding in each cluster to minimise distortion caused by
non-ideal hardware components. In addition, a distortion-aware user association mechanism is used to select the best serving
base station for each user, taking into account the signal received and the distortion induced by the hardware and the
interference. A second beamforming module called an interference estimation module further enhances the beamforming
process to yield the most optimal achievable beamforming signal-to-interference-plus-noise-and-distortion ratio (SINDR). 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.
Rate-Splitting Multiple Access (RSMA) has emerged as a robust interference management strategy for future wireless networks. This paper investigates the performance of a hierarchical RSMA scheme in the downlink of a multi-antenna system, designed to efficiently serve clustered user deployments. We derive exact and asymptotic closed-form expressions for the outage probability of users under Nakagami- $m$ fading channels, considering a two-layer message splitting architecture (systemcommon, group-common, and private streams). Furthermore, to ensure fairness and reliability, we formulate a min-max power allocation problem to minimize the worst-case outage probability among users. A Geometric Programming-based algorithm is proposed to solve the resulting non-convex optimization problem. The numerical results validate the theoretical analysis and demonstrate the impact of different strategies for using this model, such as the number of users per group, user allocation strategies, and the number of base station transmit antennas.
Raphael Parreira De Souza, E. Olivo· International Mediterranean...· 0 citations
Simulation results show that user-clustering offers better connectivity and scheduling performance than the case where no clustering is applied, and NOMA is proposed to be applied among all users to boost resource sharing.
Z. Al-Abbasi· Wireless personal communicat...· 0 citations
The proposed framework does not optimize only computational speed, but also clarifies the trade-off among execution time, SINR, spectral efficiency, and fairness under dynamic uplink CF-mMIMO conditions, indicating that this architecture serves as an adaptable platform to evaluate dynamic uplink power distribution across CF-mMIMO networks.
Hussein A. Jasim, M. F. A. Rasid, F. Hashim et al.· Engineer· 0 citations
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.
Yafang Zhang, Ye Tian, Haixia Li et al.· Scientific Reports· 0 citations