Pinching Antenna-aided NOMA Systems with Internal Eavesdropping
Haolian Chi, Kunrui Cao, Zhou Su, Lei Zhou, Panagiotis D. Diamantoulakis, Yuanwei Liu, and George K. Karagiannidis

TL;DR
This paper explores the integration of pinching antennas with NOMA systems to enhance security against internal eavesdropping by optimizing power strategies and analyzing secrecy performance.
Contribution
It introduces a novel PA-aided NOMA framework with flexible regulation of PA coupling length and proposes power optimization strategies for secure transmission.
Findings
PA-aided NOMA improves security against internal eavesdropping.
Closed-form expressions for secrecy outage probability are derived.
Flexible power strategies enhance secure communication performance.
Abstract
As a novel member of flexible antennas, the pinching antenna (PA) is realized by integrating small dielectric particles on a waveguide, offering unique regulatory capabilities on constructing line-of-sight (LoS) links and enhancing transceiver channels, reducing path loss and signal blockage. Meanwhile, non-orthogonal multiple access (NOMA) has become a potential technology of next-generation communications due to its remarkable advantages in spectrum efficiency and user access capability. The integration of PA and NOMA enables synergistic leveraging of PA's channel regulation capability and NOMA's multi-user multiplexing advantage, forming a complementary technical framework to deliver high-performance communication solutions. However, the use of successive interference cancellation (SIC) introduces significant security risks to power-domain NOMA systems when internal eavesdropping is…
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Taxonomy
TopicsAdvanced Wireless Communication Technologies · Wireless Communication Security Techniques · Plasmonic and Surface Plasmon Research
