Sep 2026· Journal on Wireless Communications and Networking· 0 citations
TL;DR
A novel null-space expansion scheme based on phase-only control to exploit the degrees of freedom of massive antenna elements even in analog beamformers is proposed and the impact of phase quantization error is evaluated to confirm the practical feasibility of the proposed scheme.
Abstract
This paper proposes a novel null-space expansion (NSE) scheme based on phase-only control to exploit the degrees of freedom of massive antenna elements even in analog beamformers. Downlink multi-user Multiple-Input Multiple-Output (MIMO) spatial multiplexing is performed through precoding in the baseband digital signal processing unit. In higher frequency bands, beamforming using array antennas is essential to compensate for distance attenuation. To balance implementation costs and MIMO spatial multiplexing, a hybrid architecture combining analog and digital processing has become mainstream. Meanwhile, in massive MIMO, which offers a large spatial degree of freedom, NSE has been proposed as an effective solution to mitigate the degradation of spatial multiplexing performance caused by propagation channel variations due to user mobility. However, its application has so far been limited to fully digital configurations. We newly apply NSE to the phase-only adaptive nulling (POAN) framework and clarify its effectiveness through computer simulations. Furthermore, since commercially available phase shifters are digitally controlled, we evaluate the impact of phase quantization error to confirm the practical feasibility of the proposed scheme.
Multiple-input multiple-output (MIMO) systems and multibeam phased arrays are essential for modern wireless communications. Conventional fully connected (FC) beamformers achieve the maximum array gain but rely on cross-connection networks with numerous phase shifters, leading to high power consumption and implementatio...
Yi-Qiu Liang, Hong-Ji Fan, Wei-Heng Chen et al.· IEEE transactions on microwa...· 0 citations
The extra-large multiple-input–multiple-output (XL-MIMO) technique has demonstrated significant potential for future wireless communications. In this article, we investigate the joint channel estimation (CE) and active user detection (AUD) for massive grant-free access in XL-MIMO systems. The conventional efficient joi...
Jia-Wei Zhuang, Jiaqi Fang, Gang Sun et al.· IEEE Internet of Things Jour...· 0 citations
Cell-free massive multiple-input multiple-output (CF-mMIMO) is a promising architecture for future wireless networks, yet its practical deployment is severely hindered by hardware impairments and time-varying channel conditions. To address these challenges, we investigate downlink transmission in a rate-splitting multi...
Le-Chen Li, Yao Zhang, Wenchao Xia et al.· 2026 IEEE/CIC International...· 0 citations
Repeater-assisted massive MIMO (RA-MIMO) provides a cost-effective solution for distributed macro-diversity without the high-capacity fronthaul of cell-free architectures. However, the distributed deployment of repeaters introduces propagation delay differences and timing misalignments, causing asynchronous reception a...
Cell-Free massive multiple-input multiple-output (CF-mMIMO) is a key technology for 6G networks, enabling efficient downlink beamforming by exploiting the channel reciprocity under time-division duplex (TDD) operation. However, mismatched radio-frequency (RF) gains in transceiver chains render the composite channel non...
Shi-Yuan Li, Shu Xu, Su-Ting Chen et al.· IEEE Transactions on Wireles...· 0 citations
This paper proposes a hybrid non-orthogonal multiple access (NOMA) framework for tacking the energy efficiency optimization problem of serving additional users with pre-configured beams in the near-field downlink of ultra-massive multiple-input multiple-output (MIMO) systems. This proposed approach formulates a resourc...
Jing Ye, Ke-Feng Guo, Guang-Xia Li et al.· 2026 IEEE/CIC International...· 0 citations
We use cookies to run the site and, with your consent, for analytics and to show ads.
See our Cookie Policy.