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International Journal of Sensors, Wireless Communications and Control

Editor-in-Chief

ISSN (Print): 2210-3279
ISSN (Online): 2210-3287

Research Article

Front-End Survivability in Wireless Optical Broadband Access Network

Author(s): Sangita Solanki*, Raksha Upadhyay and Uma Rathore Bhatt

Volume 12, Issue 3, 2022

Published on: 14 April, 2022

Page: [245 - 253] Pages: 9

DOI: 10.2174/2210327912666220217153910

Price: $65

Abstract

Background: Survivability is one of the key issues of wireless optical broadband (WOBAN) access networks. Survivability means providing continuous services to users if a device/link failure occurs in the network. The component /link failure can occur in the network due to any reason. In this condition, huge data loss will occur in the network.

Methods: In this paper, we consider the front-end survivability in WOBAN. We propose a novel maximum protection minimum link cost routing algorithm (MPMLC) that provides path protection with a minimum link cost to the front-end of the WOBAN. The proposed MPMLC algorithm assigns weight/cost to a wireless link using link-state prediction (LSP). The path with minimum cost is selected to route the traffic (actual/affected due to failure) of the front-end network.

Results: The proposed algorithm outperforms in terms of reduced network delay and wireless link cost. It is also observed from simulation results that when multiple link failures occur in the network, the proposed MPMLC algorithm exhibit better results in reduced wireless link cost than the existing algorithm.

Conclusion: The proposed MPMLC offers better candidature than the existing algorithm for the frontend survivability of the WOBAN.

Keywords: Wireless network, optical network, MPMCL, MHRA, LSP & survivability, broadband access network.

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[1]
Maier M, Rimal BP. Invited paper: The audacity of fiber wire-less (FiWi) networks: revisited for clouds and cloudlets. China Commun 2015; 12(8): 33-45.
[http://dx.doi.org/10.1109/CC.2015.7224704]
[2]
Yu J, Li X, Zhou W. Tutorial: Broadband fiberwireless inte-gration for 5G+ commu 4nication. APL Photonics 2018; 3(11): 111101.
[3]
Solanki S, Upadhyay R, Bhatt R. Cloud integrated wireless optical broadband access network with survivability. Int J Sensors Wirel Commun Control 2021; 11: 244-51.
[4]
Solanki S, Upadhyay R, Bhatt R. Placement of routers and cloud components in cloud-integrated wireless-optical broad-band access network. First Int Conf Sust Technol Comput In-tell 2020; 433-7.
[5]
Rimal PB, Van DP, Maier M. Mobile-edge computing vs. cen-tralized cloud computing over a converged FiWi access net-work. IEEE Trans Netw Serv Manag 2017; 14(3): 498-513.
[http://dx.doi.org/10.1109/TNSM.2017.2706085]
[6]
Wang R, Liang A, Zhou C, Wu D, Zhang H. QoS- aware ener-gysaving mechanism for hybrid optical-wireless broadband access networks. Photonic Netw Commun 2017; 34: 1-11.
[7]
Lévesque M, Aurzada F, Maier M, Joós G. Coexistence anal-ysis of H2H and M2M traffic in FiWi smart grid communica-tions infrastructures based on multi-tier business models. IEEE Trans Commun 2014; 62(11): 3931-42.
[http://dx.doi.org/10.1109/TCOMM.2014.2359885]
[8]
Van DP, Rimal PB, Maier M, Valcarenghi L. Design, analysis, and hardware emulation of a novel energy conservation scheme for sensor enhanced FiWi networks (ECO-SFiWi). IEEE J Sel Areas Comm 2016; 34(5): 1645-62.
[http://dx.doi.org/10.1109/JSAC.2016.2545380]
[9]
Beyranvand H, Lévesque M, Maier M, Salehi AJ, Verikoukis C, Tipper D. Toward 5G: FiWi enhanced LTE-A HetNets with reliable low-latency fiber backhaul sharing and WiFi offload-ing. IEEE/ACM Trans Netw 2017; 25(2): 690-707.
[http://dx.doi.org/10.1109/TNET.2016.2599780]
[10]
Chauhan N, Bhatt RU, Upadhyay R. An optimization frame-work for FiWi access network: Comprehensive solution for green & survivable deployment. Opt Fiber Technol 2019; 53: 102002.
[http://dx.doi.org/10.1016/j.yofte.2019.102002]
[11]
Prabha B, Ramprasad VA. Performance analysis of survivable hybrid wireless optical broadband access networks. Asian J Res Soc Sci Humanit 2017; 7(3): 884-98.
[http://dx.doi.org/10.5958/2249-7315.2017.00214.3]
[12]
Chan CL, Lee SC, Yeong KC, Tan SW. Prioritising redundant network component for HOWBAN survivability using FMEA. Wirel Commun Mob Comput 2017; 2017: 1-13.
[http://dx.doi.org/10.1155/2017/6250893]
[13]
Fu M, Chai Z, Le Z. Quality of recovery evaluation of the protection schemes for fiber-wireless access networks. J Op-tic Commun 2016; 37(1): 37-45.
[http://dx.doi.org/10.1515/joc-2015-0010]
[14]
Zhang H, Wang R, Wang H, Wu G. A new lossless fault- tolerance mechanism in hybrid wireless-optical broadband access network. IEEE Access 2018; 6: 19427-40.
[http://dx.doi.org/10.1109/ACCESS.2018.2805458]
[15]
Sarkar S, Yen H, Dixit S, Mukherjee B. DARA: Delay-aware routing algorithm in a hybrid wireless- optical broadband access network (WOBAN Proc IEEE ICC. Glasgow, Scotland. 2007.
[http://dx.doi.org/10.1109/ICC.2007.410]
[16]
The next step in the evolution of wireless mesh networking. 2013. Available from: http://docshare04.docshare.tips/files/25900/259009736.pdf./
[17]
Thota S, Bhaumik P, Chowdhury P, Mukherjee B, Sarkar S. Exploiting wireless connectivity for robustness in WOBAN. IEEE Netw 2013; 27(4): 72-9.
[http://dx.doi.org/10.1109/MNET.2013.6574668]
[18]
Yu Y, Ranaweera C, Lim C, Guo L. Hybrid fiber wireless network: An optimization framework for survivable deploy-ment. J Optic Com Net 2017; 9: 466-78.
[19]
Zhang H, Wang R, Wang H, et al. A new protection scheme based on daily traffic demand for survivable Fi-Wi access network. In: IEEE Network; Kansas City, MO, USA. 2018.20-24 May 2018.
[20]
Bhatt RU, Yadav KP. chouhan N. Spanning tree approach for protecting segment level failure in Fi-Wi access network. Int J Sci Technol Res 2019; 8(11): 1779-85.
[21]
Zhou Z, Lin T, Thulasiraman K. Survivable cloud network design against multiple failures through protecting spanning trees. J Lightwave Technol 2017; 35: 288-98.
[http://dx.doi.org/10.1109/JLT.2016.2637352]
[22]
Chan LC, Lee CS, Ong YK, Tan WS. Impact of backup power in optimizing deployment cost of hybrid optical wireless broadband access network with survivability. Wireless Per-sonal Commun. Int J 2018; 103: 1677-97.
[http://dx.doi.org/10.1007/s11277-018-5874-3]
[23]
Yu Y, Liu Y, Peng Y. Placement of ONUs and wireless rout-ers in fiber-wireless access network with survivability con-straints. Appl Mech Mater 2013; 411: 791-4.
[http://dx.doi.org/10.4028/www.scientific.net/AMM.411-414.791]
[24]
Bhatt RU, Sarsodia T, Upadhyay R. Performance evaluation of survivable fiber-wireless (FiWi) access network. Procedia Comput Sci 2015; 46: 1049-55.
[http://dx.doi.org/10.1016/j.procs.2015.01.016]
[25]
Liu Y, Song Q, Ma R, Li B. Protection based on backup radi-os and backup fibers for survivable fiber wireless (FiWi) ac-cess network. J Netw Comput Appl 2013; 36: 1057-69.
[http://dx.doi.org/10.1016/j.jnca.2013.01.014]
[26]
Liu S. Novel unequal clustering routing protocol considering energy balancing based on network partition & distance for mobile education. J Netw Comput Appl 2017; 88(15): 1-9.
[27]
Zhang DG. LI G, Zhang K. An energy-balanced routing meth-od based on forward-aware factor for wireless sensor net-work. IEEE Trans Industr Inform 2014; 10(1): 766-73.
[http://dx.doi.org/10.1109/TII.2013.2250910]
[28]
Yang JN, Mao GQ. Optimal base station antenna downtilt in downlink cellular networks. IEEE Trans Wirel Commun 2019; 18(3): 1779-91.
[http://dx.doi.org/10.1109/TWC.2019.2897296]
[29]
Zhang T. Novel optimized link state routing protocol based on quantum genetic strategy for mobile learning. J Netw Comput Appl 2018; 2018(122): 37-49.
[http://dx.doi.org/10.1016/j.jnca.2018.07.018]
[30]
Zhang T, Zhang J. A kind of effective data aggregating method based on compressive sensing for wireless sensor network. EURASIP J Wirel Commun Netw 2018; 2018(159): 1-15.
[http://dx.doi.org/10.1186/s13638-018-1176-4]
[31]
Chen L, Zhang J. A multi-path routing protocol based on link lifetime and energy consumption prediction for mobile edge computing IEEE Access 2020; 8(1): 69058-71.
[32]
Chen C, Cui YY. New method of energy efficient subcarrier allocation based on evolutionary game theory. Mob Netw Appl 2021; 26(2): 523-36.
[http://dx.doi.org/10.1007/s11036-018-1123-y]
[33]
Wang X, Song XD. A novel approach to mapped correlation of ID for RFID anti-collision. IEEE Trans Serv Comput 2014; 7(4): 741-8.
[http://dx.doi.org/10.1109/TSC.2014.2370642]
[34]
Ge H. New multi-hop clustering algorithm for vehicular ad hoc networks. IEEE Trans Intell Transp Syst 2019; 20(4): 1517-30.
[http://dx.doi.org/10.1109/TITS.2018.2853165]
[35]
Zhang T. Novel self-adaptive routing service algorithm for application of vanet. Appl Intell 2019; 49(5): 1866-79.
[http://dx.doi.org/10.1007/s10489-018-1368-y]
[36]
Mishra V, Upadhyay R, Bhatt UR, Kumar A. DEC TDMA: A delay controlled and energy efficient clustered TDMA mecha-nism for FiWi access network. Optik (Stuttg) 2020; 225(2): 164921.

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