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Movable Antenna-Enhanced Wireless Communications: General Architectures and Implementation Methods
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Movable antennas (MAs), traditionally explored in antenna design, have recently garnered significant attention in wireless communications due to their ability to dynamically adjust the antenna positions to changes in the propagation environment. However, previous research has primarily focused on characterizing the performance limits of various MA-assisted wireless communication systems, with less emphasis on their practical implementation. To address this gap, in this article, we propose several general MA architectures that extend existing designs by varying several key aspects to cater to different application scenarios and tradeoffs between cost and performance. Additionally, we draw from fields such as antenna design and mechanical control to provide an overview of candidate implementation methods for the proposed MA architectures, utilizing either direct mechanical or equivalent electronic control. Simulation results are finally presented to support our discussion.
Forward citations
Cited by 4 Pith papers
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Movable-Antenna Array Enhanced Downlink NOMA
A movable-antenna base station with jointly optimized antenna positions and beamforming is shown in simulation to improve downlink NOMA sum rate over fixed-antenna and orthogonal access baselines.
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A Derivative-Free Position Optimization Approach for Movable Antenna Multi-User Communication Systems
A derivative-free, zeroth-order optimization method positions multiple movable antennas in a multi-user MISO system using only received pilot measurements, outperforming CSI-estimation-based positioning in simulation ...
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Joint Transceiver Design for RIS Enhanced Dual-Functional Radar-Communication with Movable Antenna
A fractional-programming BCD algorithm for jointly optimizing beamformers, receive filters, movable-antenna positions, and RIS coefficients raises radar SINR by about 5 dB over fixed-position antennas in simulations.
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Antenna Position Optimization for Movable Antenna-Empowered Near-Field Sensing
Movable antenna positions that minimize worst-case Cramer-Rao bounds in near-field sensing are derived, yielding two-group arrays for single-parameter estimation and three-group arrays for joint angle-distance estimation.
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