ITSPITMay 21

Robust and Secure Blockage-Aware Pinching Antenna-assisted Wireless Communication

arXiv:2601.064307.71 citationsh-index: 11
Predicted impact top 87% in IT · last 90 daysOriginality Incremental advance
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This work addresses secure and robust wireless communication for multi-user systems with eavesdroppers, offering a novel approach to handle blockage and geometry-aware uncertainties in pinching antenna architectures.

The paper proposes a blockage-aware pinching antenna system that jointly optimizes beamforming, artificial noise, and antenna positions to maximize sum rate under secrecy constraints with imperfect CSI, achieving a 4.7 dB improvement over conventional fixed-antenna systems.

In this work, we investigate a blockage-aware pinching antenna (PA) system designed for secure and robust wireless communication. The considered system comprises a base station equipped with multiple waveguides, each hosting multiple PAs, and serves multiple single-antenna legitimate users in the presence of multi-antenna eavesdroppers under imperfect channel state information (CSI). To safeguard confidential transmissions, artificial noise (AN) is deliberately injected to degrade the eavesdropping channels. Recognizing that conventional linear CSI error bounds become overly conservative for spatially distributed PA architectures, we develop new geometry aware uncertainty sets that jointly characterize eavesdropper position and array-orientation errors. Building upon these sets, we formulate a robust joint optimization problem that determines per waveguide beamforming and AN covariance, individual PA power ratio allocation, and PA positions to maximize the system sum rate subject to secrecy constraints. The highly nonconvex design problem is efficiently addressed via a low computational complexity iterative algorithm that capitalizes on block coordinate descent, penalty based methods, majorization minimization, the S procedure, and Lipschitz based surrogate functions. Simulation results demonstrate that the sum rate achieved by the proposed algorithm outperforms conventional fixed-antenna systems by 4.7 dB, offering substantially improved rate and secrecy performance. In particular, (i) adaptive PA positioning preserves LoS to legitimate users while effectively exploiting waveguide geometry to disrupt eavesdropper channels, and (ii) neglecting blockage effects in the PA system significantly impacts the system design, leading to performance degradation and inadequate secrecy guarantees.

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