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Performance Evaluation of 60-GHz-WPAN System Distributed Over Multi-Mode Fiber

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Języki publikacji
EN
Abstrakty
EN
The manuscript deals with the assessment of Radio over Fiber (RoF) system including pure electrical baseband, pure radio frequency band centered around 60 GHz, and hybrid radiooptical system at the same RF band using a global simulation. In this work we focus on RoF solution to improve the low coverage of the 60 GHz channel caused by high free-space attenuation. A realistic co-simulation of the Wireless Personal Area Network (WPAN) IEEE802.15.3c-RoF was performed in a residential environment for Line-Of-Sight (LOS) and Non-Line-Of-Sight (NLOS). In this work, we demonstrated a 60 GHz radio on Multi-Mode Fiber (MMF) using Optical Carrier Suppression (OCS) modulation. The BER (Bit Error Ratio) performance of this system is measured by varying the following parameters: optical launched power, fiber length, modulation format, Channel coding and Signal to Noise Ratio. We show that the RoF at 60 GHz can reach a minimum of 300 m of MMF without optical amplifiers followed by a 5 m wireless transmission with BER less than 10⁻³ in the LOS and NLOS environments.
Słowa kluczowe
Twórcy
  • Department Electronics, Informatics and Telecommunications, Ecole Nationale des Sciences Appliquees, ENSAO, Morocco
  • Department Electronics, Informatics and Telecommunications, Ecole Nationale des Sciences Appliquees, ENSAO, Morocco
autor
  • IEMN - Institute of Electronics, Microelectronics and Nanotechnology, University Lille, France
Bibliografia
  • [1] ”IEEE Standard for Information technology – Local and metropolitan area networks – Specific requirements – Part 15.3: Amendment 2: Millimeter-wave-based Alternative Physical Layer Extension”’, in IEEE Std 802.15.3c-2009 (Amendment to IEEE Std 802.15.3-2003) , vol., no., pp.1-200, Oct. 12 2009.
  • [2] (2010, December) ECMA-387 High Rate 60 GHz PHY MAC and HDMI PAL. [Online]. https://www.ecmainternational.org/publications/files/ECMA-ST/ECMA-387.pdf
  • [3] (2010, May) WirelessHD Specification Overview. [Online]. http://www.wirelesshd.org/
  • [4] ”IEEE Draft Standard for Local and Metropolitan Area Networks - Specific Requirements - Part 11: Wireless LAN Medium Access Control (MAC) and Physical Layer (PHY) Specifications - Amendment 3: Enhancements for Very High Throughput in the 60 GHz Band”, in IEEE P802.11ad/D5.0, September 2011, (Draft Amendment based on IEEE P802.11REVmb D10.0) as amended by IEEE 802.11ae D5.0 and IEEE 802.11aa D6.0) , vol., no., pp.1-601, Dec. 20 2011
  • [5] J. Guillory, E. Tanguy, et al., ”A 60 GHz Wireless Home Area Network With Radio Over Fiber Repeaters”, Journal of Lightwave Technology, Vol. 29, pp. 2482-2488, 2011.
  • [6] C. H. Lee, Microwave Photonics, 2nd ed.: CRC Press, 2013.
  • [7] K. Yang, et al., ”Transmission of 60 GHz wired/wireless based on full-duplex radio-over-fiberusing dual-sextupling frequency”, IET Communications, Vol. 6, pp. 2900-2906, 2012.
  • [8] I. Gasulla, J.Capmany, ”Phase-modulated radio over fiber multimode links”, Optics Express, Vol. 20, pp. 11710-11717, 2012.
  • [9] I. B. Djordjevic, ”LDPC-Coded OFDM Transmission Over Graded-Index Plastic Optical Fiber Links”, IEEE Photonics Technology Letters, Vol. 19, pp. 871-873, 2007.
  • [10] I. Dayoub, et al., ”Radio-optic demonstrator for distributed antenna system indoor wireless applications using low-cost VCSELs’, European Transactions on Telecommunications, Vol. 18, pp. 811-814, 2007.
  • [11] M. G. Larrode, et al., ”Overcoming Modal Bandwidth Limitation in Radio-over-Multimode Fiber Links”, IEEE Photonics Technology Letters, Vol. 18, pp. 2428-2430, 2006.
  • [12] X. Wei, et al., ”Application of Turbo codes in optical OFDM multimode fiber communication system”, Optics Communications, Vol. 281, pp. 1118-1122, 2008.
  • [13] M. Elyahyaoui, A. El Moussati, et al., ”Performance evaluation of coherent optical OFDM communications using LDPC codes”, International Journal of Microwave and Optical Technology, Vol. 11, pp. 72-79, 2016.
  • [14] G. Baghersalimi, et al., ”Pilot-aided estimation and equalisation of a radio-over-fiber system in wideband code division multiple access”, IET Communications, Vol. 7, pp. 999-1007, 2013.
  • [15] H. Sawada, et al., ”Proposal of novel statistic channel model for millimeter wave WPAN”, Asia-Pacific Microwave Conference, pp. 1855-1858, December 2006,
  • [16] S.K. Yong et al., ”TG3c Channel Modeling Sub-committee Final Report,” IEEE802.15-07-0584-01-003c, Mar. 2007.
  • [17] K. Charade, et al., ”analysis of fi-wi indoornetwork architecture based on 802.15.3c”, IEEE 11th Consumer Communications and Networking Conference Las Vegas, pp.101-106, January 2014.
  • [18] D. Pepe and D. Zito, Applications of Matlab in Science and Engineering: InTech Open Access, 2011.
  • [19] A. A. M. Saleh, Valenzuela, ”A Statistical Model for Indoor Multipath Propagation”, IEEE Journal on Selected Areas in Communications, Vol. 5, pp. 128-137, 1987.
  • [20] (2007) TG3C Channel model Matlab code. [Online]. https://mentor.ieee.org/802.15/documents/
  • [21] J. Zhensheng, et al., ”A full-duplex radio-over fiber system based on optical carrier suppression and reuse”, IEEE Photonics Technology Letters, Vol. 18, pp. 17261728, 2006.
  • [22] R. E. Freund, et al.,”High-Speed Transmission in Multimode Fibers”, Journal of Lightwave Technology, Vol. 28, pp. 569-586, 2010.
  • [23] M. Liso Nicolas, et al ”Physical layer simulation results for IEEE 802.15.3c with differentchannel models”, Advances in Radio Science, Vol. 9, pp.173-177, 2011
Uwagi
PL
Opracowanie ze środków MNiSW w ramach umowy 812/P-DUN/2016 na działalność upowszechniającą naukę (zadania 2017).
Typ dokumentu
Bibliografia
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