Reliable and Secure Communications Through Compact Ultra-Massive Antenna Arrays
Metadatos
Mostrar el registro completo del ítemAutor
Vega Sánchez, José David; Carvajal Mora, Henry Ramiro; Orozco Garzón, Nathaly Verónica; López Martínez, Francisco JavierEditorial
IEEE
Materia
Compact ultramassive antenna array fluid antenna system outage probability
Fecha
2024-11-27Referencia bibliográfica
J. D. Vega-Sánchez, H. R. C. Mora, N. V. O. Garzón and F. J. López-Martínez, "Reliable and Secure Communications Through Compact Ultra-Massive Antenna Arrays," in IEEE Open Journal of the Communications Society, doi: 10.1109/OJCOMS.2024.3508463
Patrocinador
PID2023-149975OB-I00 (COSTUME) funded by MICIU/AEI/10.13039/501100011033 and by FEDER/UEResumen
Compact Ultramassive Antenna Array (CUMA) is a pioneering paradigm that leverages the
flexibility of the Fluid Antenna System (FAS) to enable a simple multiple access scheme for massive
connectivity without the need for precoding, power control at the base station or interference mitigation
in each user’s equipment. In order to overcome the mathematical intricacy required to analyze their
performance, we use an asymptotic matching approach to relax such complexity with remarkable accuracy.
First, we analyze the performance of the CUMA network in terms of the outage probability (OP) and the
ergodic rate (ER), deriving simple and highly accurate closed-form approximations of the channel statistics.
Then, we evaluate the potential of the CUMA scheme to provide secure multi-user communications
from a physical layer security perspective. Leveraging a tight approximation to the signal-to-interferenceratio
(SIR) distribution, we derive closed-form expressions for the secrecy outage probability (SOP).
We observe that the baseline CUMA (without side information processing) exhibits limited performance
when eavesdroppers are equipped with a CUMA of the same type. To improve their secure performance,
we suggest that a simple imperfect interference cancellation mechanism at the legitimate receiver may
substantially increase the secrecy performance. Monte Carlo simulations validate our approximations and
demonstrate their accuracy under different CUMA-based scenarios.