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Article: Cooperative communications with wireless energy harvesting over nakagami-m fading channels

TitleCooperative communications with wireless energy harvesting over nakagami-m fading channels
Authors
KeywordsEnergy harvesting
Imperfect CSI
Nakagami-m fading
Stochastic geometry.
Issue Date2017
Citation
IEEE Transactions on Communications, 2017, v. 65, n. 12, p. 5149-5164 How to Cite?
AbstractIn this paper, a dual-hop decode-to-forward cooperative system is considered where multiple relays are with finite energy storage and can harvest energy from the destination. In our analysis, the relays are spatially randomly located with invoking stochastic geometry. In an effort to improve spectral efficiency, an optimal source-relay link scheme is employed. Assuming Nakagami-m fading, two different scenarios are considered: 1) the single-antenna source with perfect channel state information (CSI) and 2) the multiple-antenna source with transmit antenna selection and imperfect CSI. In both scenarios, the destination node is equipped with a single transmit antenna to forward power via frequency radio signal to the relay candidates. For improving the system performance, multiple antennas at the destination are considered to process the multiple copies of the received signal from the best relay. For characterizing the performance of the proposed scenarios, exact closed-form analytical expressions for the outage probability are derived. To obtain further insights, we carry out diversity gain analysis by adopting asymptotic relative diversity. We also derive the exact closed-form analytical expression for the system throughput. Finally, simulation results are presented to corroborate the proposed analysis and to show that: 1) the system performance is improved by enlarging the area of the circle and the density of the relays and 2) the energy storage size has impacts on the performance of considered networks, which determines the maximal transmit power at relays.
Persistent Identifierhttp://hdl.handle.net/10722/349201
ISSN
2023 Impact Factor: 7.2
2020 SCImago Journal Rankings: 1.468

 

DC FieldValueLanguage
dc.contributor.authorYe, Jia-
dc.contributor.authorLei, Hongjiang-
dc.contributor.authorLiu, Yuanwei-
dc.contributor.authorPan, Gaofeng-
dc.contributor.authorBenevides da Costa, Daniel-
dc.contributor.authorNi, Qiang-
dc.contributor.authorDing, Zhiguo-
dc.date.accessioned2024-10-17T06:56:56Z-
dc.date.available2024-10-17T06:56:56Z-
dc.date.issued2017-
dc.identifier.citationIEEE Transactions on Communications, 2017, v. 65, n. 12, p. 5149-5164-
dc.identifier.issn0090-6778-
dc.identifier.urihttp://hdl.handle.net/10722/349201-
dc.description.abstractIn this paper, a dual-hop decode-to-forward cooperative system is considered where multiple relays are with finite energy storage and can harvest energy from the destination. In our analysis, the relays are spatially randomly located with invoking stochastic geometry. In an effort to improve spectral efficiency, an optimal source-relay link scheme is employed. Assuming Nakagami-m fading, two different scenarios are considered: 1) the single-antenna source with perfect channel state information (CSI) and 2) the multiple-antenna source with transmit antenna selection and imperfect CSI. In both scenarios, the destination node is equipped with a single transmit antenna to forward power via frequency radio signal to the relay candidates. For improving the system performance, multiple antennas at the destination are considered to process the multiple copies of the received signal from the best relay. For characterizing the performance of the proposed scenarios, exact closed-form analytical expressions for the outage probability are derived. To obtain further insights, we carry out diversity gain analysis by adopting asymptotic relative diversity. We also derive the exact closed-form analytical expression for the system throughput. Finally, simulation results are presented to corroborate the proposed analysis and to show that: 1) the system performance is improved by enlarging the area of the circle and the density of the relays and 2) the energy storage size has impacts on the performance of considered networks, which determines the maximal transmit power at relays.-
dc.languageeng-
dc.relation.ispartofIEEE Transactions on Communications-
dc.subjectEnergy harvesting-
dc.subjectImperfect CSI-
dc.subjectNakagami-m fading-
dc.subjectStochastic geometry.-
dc.titleCooperative communications with wireless energy harvesting over nakagami-m fading channels-
dc.typeArticle-
dc.description.naturelink_to_subscribed_fulltext-
dc.identifier.doi10.1109/TCOMM.2017.2740928-
dc.identifier.scopuseid_2-s2.0-85028449173-
dc.identifier.volume65-
dc.identifier.issue12-
dc.identifier.spage5149-
dc.identifier.epage5164-
dc.identifier.eissn1558-0857-

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