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Movable Antenna Enabled Integrated Sensing and Communication
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In this paper, we investigate a novel integrated sensing and communication (ISAC) system aided by movable antennas (MAs). A bistatic radar system, in which the base station (BS) is configured with MAs, is integrated into a multi-user multiple-input-single-output (MU-MISO) system. Flexible beamforming is studied by jointly optimizing the antenna coefficients and the antenna positions. Compared to conventional fixed-position antennas (FPAs), MAs provide a new degree of freedom (DoF) in beamforming to reconfigure the field response, and further improve the received signal quality for both wireless communication and sensing. We propose a communication rate and sensing mutual information (MI) maximization problem by flexible beamforming optimization. The complex fractional objective function with logarithms are first transformed with the fractional programming (FP) framework. Then, we propose an efficient algorithm to address the non-convex problem with coupled variables by alternatively solving four sub-problems. We derive the closed-form expression to update the antenna coefficients by Karush-Kuhn-Tucker (KKT) conditions. To improve the direct gradient ascent (DGA) scheme in updating the positions of the antennas, a 3-stage search-based projected GA (SPGA) method is proposed. Simulation results show that MAs significantly enhance the overall performance of the ISAC system, achieving 59.8\% performance gain compared to conventional ISAC system enabled by FPAs. Meanwhile, the proposed SPGA-based method has remarkable performance improvement compared the DGA method in antenna position optimization.
Forward citations
Cited by 2 Pith papers
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Distortion-Aware Hybrid Beamforming for Integrated Sensing and Communication
A distortion-aware hybrid beamforming algorithm for integrated sensing and communication maximizes weighted rate under nonlinear power amplifier distortion.
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Movable Antenna-Assisted Integrated Sensing and Communication Systems
Movable antennas placed on both transmit and receive sides of an ISAC base station, with jointly optimized positions and beamformers, improve sensing SINR by roughly 57% over fixed antenna baselines in simulation.
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