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Tytuł artykułu

Analytical performance analysis of the M2M wireless link with an antenna selection system over interference limited dissimilar composite fading environments

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Języki publikacji
EN
Abstrakty
EN
This paper considers direct mobile-to-mobile (M2M) communications with a dual antenna selection (AS) system at a destination mobile node (DMN) in interference limited, dissimilar composite fading environments. In particular, we model dissimilar interference limited signals at the inputs of the dual branch AS system as (i) the ratio of two Nakagami-m (N) random variables (RVs) at the first branch and (ii) the ratio of two Rice RVs at the second branch, in order to account for non line-of-sight (NLOS) and line-of-sight (LOS) communications, respectively. Moreover, we assume variable powers of the desired as well as interference signals at the output of the DMN in order to account for the impact of shadowing. For the proposed model, we derive probability density functions, cumulative distribution functions, outage probabilities and average level crossing rates. The derived statistical results are evaluated for all the statistical measures considered and are graphically presented in order to provide insight into the impact of composite fading severities and LOS factors for the desired signal, as well as for the interference, on the system performances.
Rocznik
Strony
569--582
Opis fizyczny
Bibliogr. 36 poz., rys., wykr.
Twórcy
  • Faculty of Sciences and Mathematics, University of Priština in Kosovska Mitrovica, Lole Ribara 29, 38220 Kosovska Mitrovica, Serbia
autor
  • Faculty of Electronic Engineering, University of Niš, A. Medvedeva 14, 18000 Niš, Serbia
  • Faculty of Sciences and Mathematics, University of Priština in Kosovska Mitrovica, Lole Ribara 29, 38220 Kosovska Mitrovica, Serbia
  • Department of Signal Theory and Communications, Charles III University of Madrid, 28911 Leganes, Spain
  • Faculty of Economics, University of Priština in Kosovska Mitrovica, Kolašinska 156, 38220 Kosovska Mitrovica, Serbia
  • College of Applied Technical Sciences in Niš, A. Medvedeva 20, 18000 Niš, Serbia
Bibliografia
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  • [8] Djosic, D., Stefanovic, C., Milic, D. and Stefanovic, M. (2019). System performances of SC reception in asymmetric multipath fading environments, The University Thought, Publication in Natural Sciences 9(2): 56–62.
  • [9] Djošić, D., Milošević, N., Nikolić, Z., Dimitrijević, B., Bandjur, M. and Stefanović, M. (2017). Statistics of signal to interference ratio process at output of mobile-to-mobile Rayleigh fading channel in the presence of cochannel interference, Facta Universitatis, Automatic Control and Robotics 16(2): 185–196.
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  • [20] Milic, D., Djosic, D., Stefanovic, C., Panic, S. and Stefanovic, M. (2016). Second order statistics of the SC receiver over Rician fading channels in the presence of multiple Nakagami-m interferers, International Journal of Numerical Modelling: Electronic Networks, Devices and Fields 29: 222–229, DOI: 10.1002/jnm.2065.
  • [21] Milosevic, N., Stefanovic, C., Nikolic, Z., Bandjur, M. and Stefanovic, M. (2018a). First- and second-order statistics of interference-limited mobile-to-mobile Weibull fading channel, Journal of Circuits, Systems and Computers 27(11): 1850168.
  • [22] Milosevic, N., Stefanovic, M., Nikolic, Z., Spalevic, P. and Stefanovic, C. (2018b). Performance analysis of interference-limited mobile-to-mobile κ − μ fading channel, Wireless Personal Communications 101(3): 1685–1701.
  • [23] Mumtaz, S., Huq, K. and Rodriguez, J. (2014). Direct mobile-to-mobile communication: Paradigm for 5G, IEEE Wireless Communications 21(5): 14–23.
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  • [29] Stefanovic, C., Panic, S., Bhatia, V. and Kumar, N. (2021). On second-order statistics of the composite channel models for UAV-to-ground communications with UAV selection, IEEE Open Journal of the Communications Society 2: 534–544, DOI: 10.1109/OJCOMS.2021.3064873.
  • [30] Stefanovic, C., Pratesi, M. and Santucci, F. (2018a). Performance evaluation of cooperative communications over fading channels in vehicular networks, 2018 2nd URSI Atlantic Radio Science Meeting (AT-RASC), Meloneras, Spain, pp. 1–4.
  • [31] Stefanovic, C., Veljkovic, S., Stefanovic, M., Panic, S. and Jovkovic, S. (2018b). Second order statistics of SIR based macro diversity system for V2I communications over composite fading channels, First International Conference on Secure Cyber Computing and Communication (ICSCCC), Jalandhar, India, pp. 569–573.
  • [32] Stefanovic, D., Stefanovic, C., Djosic, D., Milic, D., Rancic, D. and Stefanovic, M. (2019). LCR of the ratio of the product of two squared Nakagami-m random processes and its application to wireless communication systems, 2019 18th International Symposium (INFOTEH), Jahorina, Bosnia and Herzegovina, pp. 1–4.
  • [33] Sun, W., Shen, L., Shao, H. and Liu, P. (2021). Dynamic location models of mobile sensors for travel time estimation on a freeway, International Journal of Applied Mathematics and Computer Science 31(2): 271–287, DOI: 10.34768/amcs-2021-0019.
  • [34] Talha, B. and Patzold, M. (2011). Channel models for mobile-to-mobile cooperative communication systems: A state of the art review, IEEE Vehicular Technology Magazine 6(2): 33–43.
  • [35] Wang, L.C., Liu, W.C. and Cheng, Y.H. (2008). Statistical analysis of a mobile-to-mobile Rician fading channel model, IEEE Transactions on Vehicular Technology 58(1): 32–38.
  • [36] Wu, J. and Fan, P. (2016). A survey on high mobility wireless communications: Challenges, opportunities and solutions, IEEE Access 4: 450–476, DOI: 10.1109/ACCESS.2016.2518085.
Uwagi
PL
Opracowanie rekordu ze środków MEiN, umowa nr SONP/SP/546092/2022 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2022-2023)
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-01eadbd7-0fa0-4a71-b7a5-2c28b6a7f8f9
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