Globally Optimal Movable Antenna-Enhanced multiuser Communication: Discrete Antenna Positioning, Motion Power Consumption, and Imperfect CSI
Yifei Wu, Dongfang Xu, Derrick Wing Kwan Ng, Wolfgang Gerstacker, and Robert Schober

TL;DR
This paper develops an optimal and practical framework for movable antenna multiuser systems, considering discrete positioning, power consumption, and imperfect CSI, to minimize total power while ensuring user SINR requirements.
Contribution
It introduces a joint optimization of beamforming and discrete MA positions under power and CSI uncertainty, with novel algorithms for optimal and low-complexity solutions.
Findings
BnB algorithms achieve optimal solutions.
SCA algorithms converge quickly to near-optimal performance.
Joint optimization reduces total power consumption effectively.
Abstract
Movable antennas (MAs) represent a promising paradigm to enhance the spatial degrees of freedom of conventional multi-antenna systems by dynamically adapting the positions of antenna elements within a designated transmit area. In particular, by employing electro-mechanical MA drivers, the positions of the MA elements can be adjusted to shape a favorable spatial correlation for improving system performance. Although preliminary research has explored beamforming designs for MA systems, the intricacies of the power consumption and the precise positioning of MA elements are not well understood. Moreover, the assumption of perfect CSI adopted in the literature is impractical due to the significant pilot overhead and the extensive time to acquire perfect CSI. To address these challenges, we model the motion of MA elements through discrete steps and quantify the associated power consumption as…
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Taxonomy
TopicsAdvanced MIMO Systems Optimization · Indoor and Outdoor Localization Technologies · Energy Harvesting in Wireless Networks
