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QoS-Aware NOMA Design for Downlink Pinching-Antenna Systems

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arxiv 2504.13723 v2 pith:Z6JJ57SJ submitted 2025-04-18 eess.SP

classification eess.SP
keywords systemsantennaantennaspinchingproblemformulatednomaphase
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Pinching antennas, implemented by applying small dielectric particles on a waveguide, have emerged as a promising flexible-antenna technology ideal for next-generation wireless communications systems. Unlike conventional flexible-antenna systems, pinching antennas offer the advantage of creating line-of-sight links by enabling antennas to be activated on the waveguide at a location close to the user. This paper investigates a typical two-user non-orthogonal multiple access (NOMA) downlink scenario, where multiple pinching antennas are activated on a single dielectric waveguide to assist NOMA transmission. We formulate the problem of maximizing the data rate of one user subject to the quality-of-service requirement of the other user by jointly optimizing the antenna locations and power allocation coefficients. The formulated problem is nonconvex and difficult to solve due to the impact of antenna locations on large-scale path loss and two types of phase shifts, namely in-waveguide phase shifts and free space propagation phase shifts. To this end, we propose an iterative algorithm based on block coordinate descent and successive convex approximation techniques. Moreover, we consider the special case with a single pinching antenna, which is a simplified version of the multi-antenna case. Although the formulated problem is still nonconvex, by using the inherent features of the formulated problem, we derive the global optimal solution in closed-form, which offers important insights on the performance of pinching-antenna systems. Simulation results demonstrate that the pinching-antenna system significantly outperforms conventional fixed-position antenna systems, and the proposed algorithm achieves performance comparable to the computationally intensive exhaustive search based approach.

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Cited by 5 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Pinching-Antenna System Design with LoS Blockage: Does In-Waveguide Attenuation Matter?

    eess.SP 2025-08 conditional novelty 5.0 of 10

    Under realistic LoS blockage, ignoring in-waveguide attenuation costs only about α^2/(β ln2) bps/Hz in large dense-blockage areas, but the loss grows with area squared when blockages are sparse.

  2. Pinching-Antenna Systems with LoS Blockages

    eess.SP 2025-07 conditional novelty 5.0 of 10

    A matching-based algorithm for assigning waveguides and activating pinching antennas uses LoS blockages to raise sum rate over fixed-antenna baselines in simulated obstructed indoor settings.

  3. Pinching-Antenna Systems with In-Waveguide Attenuation: Performance Analysis and Algorithm Design

    eess.SP 2025-06 reject novelty 5.0 of 10

    Pinching-antenna placement must trade free-space path loss against exponential in-waveguide attenuation; the paper gives a closed-form single-user solution and a rate-loss approximation, then extends to multi-user bea...

  4. Joint Beamforming for NOMA Assisted Pinching Antenna Systems (PASS)

    cs.IT 2025-06 conditional novelty 5.0 of 10

    A NOMA-assisted pinching antenna system with jointly optimized antenna positions, transmit beamforming, and power allocation is simulated to reduce downlink transmit power by over 95% versus a fixed massive MIMO-NOMA ...

  5. A Gradient Meta-Learning Joint Optimization for Beamforming and Antenna Position in Pinching-Antenna Systems

    cs.IR 2025-06 conditional novelty 4.0 of 10

    A gradient meta-learning algorithm with two unrolled neural networks jointly optimizes beamforming and pinching-antenna positions, reporting 5.6 bits/s/Hz weighted sum rate and a 32.7% gain over alternating optimizati...

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