Abstract
Energy-efficient system design with controlled levels of electromagnetic pollution, without compromising on the user quality of experience and operator revenue, are essential considerations in the design of next-generation wireless communication networks. Integration of multiple services and multiple operator transmissions onto a common shared infrastructure is the solution forward to satisfy the contradictory subscriber and operator requirements and also to derive a future-proof fronthaul to support new techniques like opportunistic, co-operative and cognitive communications. This paper reports the link budget analysis, energy efficiency estimation and electromagnetic radiation calculation for a Multi-Operator Multi-Service Analog Radio over Fiber fronthaul for a small cell configuration. The BER analysis and the link budget analysis are presented for the central base station to remote antenna unit (RAU) link as well as the RAU to user equipment link. The estimated minimum transmission power sufficient to establish and maintain a quality connection suggests the possibility of eliminating the energy consuming power amplifiers in the transceivers and also achieve a reduced electromagnetic pollution in the environment.
Similar content being viewed by others
References
Attar, A., Li, H., Leung, V.: Green last mile: How fiber connected massively Distributed antenna systems can save energy. IEEE Wirel. Commun. (2011)
Guo, W., Wang, S., et al.: Automated small-cell deployment for heterogeneous cellular networks. IEEE Commun. Mag. 13, 0163–6804 (2013)
Nirmalathas, A., Lim, C., Novak, D., Waterhouse, R.: Radio over fiber Systems- OSA / ACP (2009)
Nirmalathas, A., Lim, C., Novak, D., Waterhouse, R.: Fiber WirelessNetworks and Subsystem technologies-Invited paper. J. Light wave Technol. 28 (2010)
Hoydis, J., Kobayashi, M., Debbah, M.: Green small-cell networks. IEEE Veh. Technol. Mag. 16, 37–43 (2011)
Amanna, A.: Green Communications - AnnotatedLiterature Review and Research Vision—Wireless @ VirginTech (2011)
Naylon, J.: Breaking barriers for small cell networks- white paper - www.cbnl.com (2013)
Thomas, V.A., Ghafoor, Salman, et al.: Baseband radio over fiber aided millimeter- wave distributed antenna for optical/wireless integration. IEEE Commun. Lett. 17, 1012 (2013)
Ji, W., Kang, Z.: Design of WDM RoF PON based on OFDM and optical heterodyne. J. Opt. Commun. Netw. 31, 2869 (2013)
Liu, C., Zhang, L., Zhu, M., et al.: A novel multi-service small-cell cloud radio access network for mobile backhaul and computing based on radio-over-fiber technologies. Journal of Light Wave Technology 31, 2869 (2013)
Hasan, Z., Boostanimehr, H., Bhargava, V.K.: Green cellular networks: a survey, some research issues and challenges. IEEE Commun. Surv. Tutor. 4, 524–540 (2011)
Xiao, L., Novato, D. and Wang P.: Power management for wireless base station in smart grid environment: Modeling and optimization, invited chapter in Green Radio Communication Networks, (Eds. Husain, E., Bhargava, V.K. and Fettweis, G.), Cambridge University Press (2012)
Vodafonegroupplc. Sustainability report, http://www.vodafone.com/content/index/about/sustainability (2010)
Prof. Girish Kumar: Report on cell tower radiation. DOT, Delhi, IIT Bombay (2010)
http://www.A+Presentation+on+hazards+of+cell+phones/ (2011)
Venkatapathy, P., Jena, J., Jandhyala, A.: Electromagnetic pollution index–a key attribute of green mobile communications, green technologies conference IEEE, pp 1–4 (2012)
Fragopoulou, A., et al.: Scientific Panel on Electromagnetic Field Health Risks: Consensus Points Recommendations, and Rationales - Scientific Meeting: Seletun, Norway, November 17-21, 2009, Reviews on Environmental Health, Vol. 25, No. 4, (2010)
Brindha, S., Meenakshi, M.: Radio over fiber system architecture: a boon to meet future energy and Pollution challenges. Optoelectron. Adv. Mater. Rapid Commun. 9, 855–864 (2015)
Poornima, S., Meenakshi, M., Brindha, S.: Optimization model for the design of cost effective pollution free green cellular communication, Green ICT 2013, CIIT Int. J. (2013)
http://stakeholders.ofcom.org.uk/consultations/variation-28ghz/summary, http://www.ispreview.co.uk/index.php/2013/07/uk-wireless-broadband-operators-gain-indefinite-28ghz-licenses.html
Li, Z., Yan, L., Pan, W., Luo, B., Ye, Jia, Jiang, Hengyun: Simultaneous transmission of multiple wireless services over fiber with reduced network complexities. Journal of Optical Communication and Networking 6, 26 (2014)
Gomes, N.J., Nkansah, A., Wake, D.: Radio-over-MMFtechniques–part I: RF to microwave frequency systems. Journal of Light Wave Technology 26, 2388–2395 (2008)
Alves, T.M., Morant, M., Cartaxo, A.V., Llorente, R.: Design of directly modulated long-reach PONs reaching 125 km for provisioning of hybrid wired-wireless quintuple-playservice. Journal of Optical Communication and Networking 5, 848–857 (2013)
Chowdhury, Arshad: Member IEEE, Hung-Chang Chien, Member IEEE, Shu-Hao Fan, Student Member IEEE, Multi-Band Transport Technologies for In-Building Host-Neutral Wireless Over Fiber Access Systems, Journal of Light wave Technology, Vol. 28, No. 16, August 15, (2010)
wake, D., Nathan, A., Gomas, N.J.: A comparison of radio over fiber link types for the support of wideband radio channels. J. Light Wave Technol., vol. 28 (2010)
Yang, Y., Lim, C., Nirmalathas, A.: JWA82.pdf-comparison of energy consumption of integrated optical-wireless access networks, OSA/OFC/NFOEC (2011)
Al-Raweshidy, H., Komaki, S., ed.: Radio over Fiber Technologies for Mobile Communication Networks, chapter 4-Artech House, Inc., London, ISBN: 1-58053-148-2 (2002)
Arnold et al.: Power consumption modeling of different base station types in heterogeneous Cellular networks. In Proceedings of 19th future network and mobile summit, Italy (2010)
RSOFT OPTSIM V2015.06 User Manual, USA (2015) Web: http://optics.synopsys.com
Proakis, J.G., Salehi, M.: Fundamentals of communication systems, 15th edn. Pearson Prentice Hall, India, ISBN: 978-81-317-0573-5
Agrawal, G.P.: Fiber optic communication systems, 3rd Edn. Wiley India, and ISBN: 978-81-265-1386-4
Tucker, R.S.: Green optical communication—Part I: Energy limitations in transport. IEEE J. Sel. Top. Quantum Electron. 17, (2011)
Carena, A., Curri, V., Bosco, G., Poggiolini, P.: Modeling of the impact of nonlinear propagation effects in uncompensated optical coherent transmission links. Journal of Light Wave Technology 30, 1524 (2012)
Xu, Z-z, Wang, H-x, Ji, Y.: Multichannel resource allocation mechanism for 60 GHz radio-over- fiberlocal access networks. Journal of Optical Communication and Networking 5, 254 (2013)
Armour, S., Thompson, J., Frederickos, V.: Energy Efficient architectures and techniques for Green radio access Networks, 2010, Invited paper
Badic, B., et al.: Energy Efficient Radio Access Architectures for Green Radio: Large versus Small Cell Size Deployment, Proceedings of IEEE 70th Vehicular Tech. Conference Fall, 20–23 Sept. 2009, Anchorage, AK
cp.literature.agilent.com/litweb/pdf/5988-4975EN.pdf
keiser, Gerd: Optical fiber Communication, 4th editionTata Mcgraw Hill, India, and ISBN: 978-1-25-900687-6.
Taniguchi, T., Sakurai, N., Kimura, H,, et al.: Technical trends in millimeter wave band Radio-on-Fiber access systems. PIERS Proceedings, Beijing, March 23–27, (2009)
Hirata, A., Takahashi, H., et al.: Transmission characteristics of 120 GHz band wireless link Using Radio on Fiber technologies. J. Light wave Technol., Vol., 26, No 15, August 1(2008) 2338–2344
Author information
Authors and Affiliations
Corresponding author
Rights and permissions
About this article
Cite this article
Saminathan, B., Tamilarasan, I. & Murugappan, M. Energy and electromagnetic pollution considerations in ARoF-based multi-operator multi-service systems. Photon Netw Commun 34, 221–240 (2017). https://doi.org/10.1007/s11107-017-0686-z
Received:
Accepted:
Published:
Issue Date:
DOI: https://doi.org/10.1007/s11107-017-0686-z