Please use this identifier to cite or link to this item: https://dspace.iiti.ac.in/handle/123456789/11116
Title: On Performance of a SWIPT Enabled FD CRN with HIs and Imperfect SIC over &#x03B1
-&#x03BC
Fading Channel
Authors: Kumar, Deepak
Bhatia, Vimal
Keywords: Cognitive radio;Energy efficiency;Energy transfer;Finite difference method;Intelligent systems;Monte Carlo methods;Outages;Probability;Radio transceivers;Reliability;Throughput;Cognitive radio network;Fadings channels;Full-duplex;Overlay spectrum sharing protocol;Power splitting;Power splitting protocol;Power systems reliability;Receiver;Spectrum sharing;Switching protocols;Time switching;Time switching protocol;Fading channels
Issue Date: 2022
Publisher: Institute of Electrical and Electronics Engineers Inc.
Citation: Kumar, D., Singya, P. K., Krejcar, O., & Bhatia, V. (2022). On performance of a SWIPT enabled FD CRN with HIs and imperfect SIC over α-μ fading channel. IEEE Transactions on Cognitive Communications and Networking, , 1-1. doi:10.1109/TCCN.2022.3220791
Abstract: This paper investigates the performance of overlay full-duplex cooperative cognitive radio network in the presence of imperfect self interference cancellation over generalized &#x03B1
-&#x03BC
fading channels effected by nonlinearity of the propagation medium. In practice, physical transceivers create distortion which degrades the performance, hence, the impact of transceiver hardware impairments (HIs) is considered. To overcome the energy constraint problem, a hybrid simultaneous wireless information and power transfer receiver is adopted that includes both the time switching and the power splitting protocols. To improve reliability of the communication link, we employ a hybrid relaying protocol that combines both the decode-and-forward and amplify-and-forward relaying protocols. The closed-form expressions of outage probability and asymptotic outage probability are derived for both the primary and the secondary networks over &#x03B1
-&#x03BC
fading channels. The diversity order, throughput, and energy efficiency of the considered network are derived. Optimal values of time switching factor is obtained for which the considered network exhibits optimum outage probability, maximum throughput and energy efficiency. Further, optimal value of power splitting factor is obtained for which the considered network shows maximum throughput and energy efficiency. Finally, the Monte-Carlo simulations validate correctness of the derived closed-form expressions. IEEE
URI: https://doi.org/10.1109/TCCN.2022.3220791
https://dspace.iiti.ac.in/handle/123456789/11116
ISSN: 2332-7731
Type of Material: Journal Article
Appears in Collections:Department of Electrical Engineering

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