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Movable-Antenna Position Optimization for Physical-Layer Security via Discrete Sampling
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Fluid antennas (FAs) and mobile antennas (MAs) are innovative technologies in wireless communications that are able to proactively improve channel conditions by dynamically adjusting the transmit/receive antenna positions within a given spatial region. In this paper, we investigate an MA-enhanced multiple-input single-output (MISO) secure communication system, aiming to maximize the secrecy rate by jointly optimizing the positions of multiple MAs. Instead of continuously searching for the optimal MA positions as in prior works, we propose to discretize the transmit region into multiple sampling points, thereby converting the continuous antenna position optimization into a discrete sampling point selection problem. However, this point selection problem is combinatory and thus difficult to be optimally solved. To tackle this challenge, we ingeniously transform this combinatory problem into a recursive path selection problem in graph theory and propose a partial enumeration algorithm to obtain its optimal solution without the need for high-complexity exhaustive search. To further reduce the complexity, a linear-time sequential update algorithm is also proposed to obtain a high-quality suboptimal solution. Numerical results show that our proposed algorithms yield much higher secrecy rates as compared to the conventional FPA and other baseline schemes.
Forward citations
Cited by 3 Pith papers
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Does Movable Antenna Present A Dual-edged Nature? From the Perspective of Physical Layer Security: A Joint Design of Fixed-position Antenna and Movable Antenna
A hybrid FPA-MA array with joint position and beamforming optimization is claimed to raise physical-layer secrecy rate by up to 42% over FPA-only and 9% over MA-only baselines, but the analytical and numerical support...
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Hybrid Near-Far Field 6D Movable Antenna Design Exploiting Directional Sparsity and Deep Learning
The paper proposes a hybrid near-far field channel model for 6D movable antennas, a directional-sparsity-based channel estimator, and a deep reinforcement learning algorithm for joint position, rotation, and beamformi...
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An Effective Equivalence Model of Analyzing PLS of Multiple Eavesdroppers Facing Low-altitude Communication Systems
The paper approximates multiple colluding eavesdroppers by one virtual eavesdropper with movable antennas, but the approximation is enforced by fitting the virtual distance to make average signal strengths equal.
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