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Covert Communications in STAR-RIS Assisted NOMA IoT Networks over Nakagami-m Fading Channels

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Covert Communications in STAR-RIS Assisted NOMA IoT Networks over Nakagami-m Fading Channels. / Li, Qiang; Xu, Dongyang; Zhang, Keyue et al.
In: IEEE Internet of Things Journal, Vol. 11, No. 12, 15.06.2024, p. 22456-22470.

Research output: Contribution to Journal/MagazineJournal articlepeer-review

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Li Q, Xu D, Zhang K, Navaie K, Ding Z. Covert Communications in STAR-RIS Assisted NOMA IoT Networks over Nakagami-m Fading Channels. IEEE Internet of Things Journal. 2024 Jun 15;11(12):22456-22470. Epub 2024 Mar 27. doi: 10.1109/jiot.2024.3381596

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Li, Qiang ; Xu, Dongyang ; Zhang, Keyue et al. / Covert Communications in STAR-RIS Assisted NOMA IoT Networks over Nakagami-m Fading Channels. In: IEEE Internet of Things Journal. 2024 ; Vol. 11, No. 12. pp. 22456-22470.

Bibtex

@article{0c2ce36a0d1d4919be84ea7e3ef7469b,
title = "Covert Communications in STAR-RIS Assisted NOMA IoT Networks over Nakagami-m Fading Channels",
abstract = "The combination of simultaneously transmitting and reflecting-reconfigurable intelligent surface (STAR-RIS) and non-orthogonal multiple (NOMA) brings the necessary full-space degrees of freedom and spatial multiplexing gains for the Internet of Things (IoT) networks. The inherent network heterogeneity and sharing of wireless channels may however increase the exposure of the information interactions to the third party. To address this issue, we propose a covert communication scheme in STAR-RIS assisted NOMA networks over Nakagami-m fading channels, where both downlink and uplink IoT scenarios are considered. Under the NOMA protocol with imperfect successive interference cancellation (SIC), an IoT access point interacts with two IoT users aided by a STAR-RIS without being detected by two wardens. In this scenario, the two IoT users are located on both sides of the STAR-RIS which adopts coherent phase shifting and operates according to the mode switching protocol. To evaluate the wardens{\textquoteright} detection performance, the Kullback-Leibler (KL) divergence is used. Furthermore, the cascaded channel gains of IoT users and wardens are respectively characterized as Gamma and complex Gaussian random variables. The closed-form expressions of the expectations of KL divergence and the interruption probabilities for downlink and uplink are derived. To further improve the performance, we formulate the effective covert rate maximization as the joint optimization problems of the transmit power and power allocation coefficient for downlink and uplink, subject to the constraints for covertness, reliability and power budget, which are respectively resolved analytically. Extensive simulation results indicate that the proposed scheme improves covertness compared with the benchmarks.",
keywords = "Computer Networks and Communications, Computer Science Applications, Hardware and Architecture, Information Systems, Signal Processing",
author = "Qiang Li and Dongyang Xu and Keyue Zhang and Keivan Navaie and Zhiguo Ding",
year = "2024",
month = jun,
day = "15",
doi = "10.1109/jiot.2024.3381596",
language = "English",
volume = "11",
pages = "22456--22470",
journal = "IEEE Internet of Things Journal",
issn = "2327-4662",
publisher = "IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC",
number = "12",

}

RIS

TY - JOUR

T1 - Covert Communications in STAR-RIS Assisted NOMA IoT Networks over Nakagami-m Fading Channels

AU - Li, Qiang

AU - Xu, Dongyang

AU - Zhang, Keyue

AU - Navaie, Keivan

AU - Ding, Zhiguo

PY - 2024/6/15

Y1 - 2024/6/15

N2 - The combination of simultaneously transmitting and reflecting-reconfigurable intelligent surface (STAR-RIS) and non-orthogonal multiple (NOMA) brings the necessary full-space degrees of freedom and spatial multiplexing gains for the Internet of Things (IoT) networks. The inherent network heterogeneity and sharing of wireless channels may however increase the exposure of the information interactions to the third party. To address this issue, we propose a covert communication scheme in STAR-RIS assisted NOMA networks over Nakagami-m fading channels, where both downlink and uplink IoT scenarios are considered. Under the NOMA protocol with imperfect successive interference cancellation (SIC), an IoT access point interacts with two IoT users aided by a STAR-RIS without being detected by two wardens. In this scenario, the two IoT users are located on both sides of the STAR-RIS which adopts coherent phase shifting and operates according to the mode switching protocol. To evaluate the wardens’ detection performance, the Kullback-Leibler (KL) divergence is used. Furthermore, the cascaded channel gains of IoT users and wardens are respectively characterized as Gamma and complex Gaussian random variables. The closed-form expressions of the expectations of KL divergence and the interruption probabilities for downlink and uplink are derived. To further improve the performance, we formulate the effective covert rate maximization as the joint optimization problems of the transmit power and power allocation coefficient for downlink and uplink, subject to the constraints for covertness, reliability and power budget, which are respectively resolved analytically. Extensive simulation results indicate that the proposed scheme improves covertness compared with the benchmarks.

AB - The combination of simultaneously transmitting and reflecting-reconfigurable intelligent surface (STAR-RIS) and non-orthogonal multiple (NOMA) brings the necessary full-space degrees of freedom and spatial multiplexing gains for the Internet of Things (IoT) networks. The inherent network heterogeneity and sharing of wireless channels may however increase the exposure of the information interactions to the third party. To address this issue, we propose a covert communication scheme in STAR-RIS assisted NOMA networks over Nakagami-m fading channels, where both downlink and uplink IoT scenarios are considered. Under the NOMA protocol with imperfect successive interference cancellation (SIC), an IoT access point interacts with two IoT users aided by a STAR-RIS without being detected by two wardens. In this scenario, the two IoT users are located on both sides of the STAR-RIS which adopts coherent phase shifting and operates according to the mode switching protocol. To evaluate the wardens’ detection performance, the Kullback-Leibler (KL) divergence is used. Furthermore, the cascaded channel gains of IoT users and wardens are respectively characterized as Gamma and complex Gaussian random variables. The closed-form expressions of the expectations of KL divergence and the interruption probabilities for downlink and uplink are derived. To further improve the performance, we formulate the effective covert rate maximization as the joint optimization problems of the transmit power and power allocation coefficient for downlink and uplink, subject to the constraints for covertness, reliability and power budget, which are respectively resolved analytically. Extensive simulation results indicate that the proposed scheme improves covertness compared with the benchmarks.

KW - Computer Networks and Communications

KW - Computer Science Applications

KW - Hardware and Architecture

KW - Information Systems

KW - Signal Processing

U2 - 10.1109/jiot.2024.3381596

DO - 10.1109/jiot.2024.3381596

M3 - Journal article

VL - 11

SP - 22456

EP - 22470

JO - IEEE Internet of Things Journal

JF - IEEE Internet of Things Journal

SN - 2327-4662

IS - 12

ER -