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Fallacious Node Algorithm for Performance Enhancement in Optical-Burst-Switching Networks

  • Hardeep Singh Saini EMAIL logo and Amit Wason
Published/Copyright: August 9, 2017
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Abstract

In this paper, fallacious node algorithm is formulated for performance enhancement of an optical-burst-switching (OBS) network. With the procedural and observational analysis, we have demonstrated that the blocking probability is extremely unnoticeable, during a call establishment, while collectively discarding the faulty nodes from the selected paths. There may be distinguishing values of blocking probability because of random value of congestion on each path. The blocking probability is restrained so as not to be more than 10 % on several values on traffic and congestion. The blocking probability diminishes and becomes imperceptible with the incorporation of fallacious node algorithm and subsequently the performance of optical network is highly aggrandized. Thus the fallacious node algorithm manifests incredible prospects for optical networks as the key features such as the accessibility; sustainability and reliability of the network are highly appreciated and upgraded.

Reference

1. Xiong Y, Marc V, Hakki CC. Control architecture in optical burst-switched WDM networks. IEEE J Sel Areas Commun 2000;18(10):1838–1851. DOI:10.1109/49.887906.Search in Google Scholar

2. Rosberg Z, Hai LV, Zukerman M. Performance analyses of optical burst switching networks. IEEE J Sel Areas Commun 2003;21(7):1187–1197. DOI:10.1109/JSAC.2003.815909.Search in Google Scholar

3. Huang Y, Heritage JP, Mukherjee B. A new fault-management method using congestion-avoidance routing for optical burst-switched networks. Photonic Network Commun 2008;16(2):117–125. DOI:10.1007/s11107-008-0123-4.Search in Google Scholar

4. Huang Y, Heritage JP, Mukherjee B Dynamic routing with preplanned congestion avoidance for survivable optical burst switched (OBS) networks. In Proceeding of IEEE Technical Digest Optical Fiber Communication Conference (OFC/NFOEC), 6–11 March 2005 in Anaheim, CA, USA. DOI:10.1109/OFC.2005.192716.Search in Google Scholar

5. Kamal SK, Inderpreet K Implementation of genetic algorithm for optimization of network route. In Proceeding of Second International Conference on Computer and Communication Technologies, Springer Advances in Intelligent Systems and Computing, 24–26 July 2015 in Hyderabad, India, 381:7–14. DOI:10.1007/978-81-322-2526-3_2Search in Google Scholar

6. Ramesh G, Vadivelu SS. A reliable and fault-tolerant routing for optical WDM networks. Int J Comput Sci Inf Security 2009;6(2):48–54.Search in Google Scholar

7. Wang J, Fagertun AM, Ruepp S, Dittmann L. Energy efficient routing algorithms in dynamic optical core networks with dual energy sources. IEEE 14th International Conference on High Performance Switching and Routing (HPSR) 8–11 July 2013 in Taipei: 109–114. DOI:10.1109/HPSR.2013.6602299Search in Google Scholar

8. Zyane A, Guennoun Z, Taous O. Performance evaluation of shortest path routing algorithms in wide all-optical WDM networks. IEEE International Conference on Multimedia Computing and Systems (ICMCS) 14–16 April 2014 in Marrakech: 831–836. DOI:10.1109/ICMCS.2014.6911259.Search in Google Scholar

9. Kim S, Zhang XJ, Lumetta SS. Rapid and efficient protection for all-optical WDM mesh networks. IEEE J Sel Areas Commun 2007;25(9):68–82. DOI:10.1109/JSAC-OCN.2007.026306.Search in Google Scholar

10. Patel JK, Kim SU, Subramaniam DH, Choi HA A framework for managing faults and attacks in all optical transport networks. In Proceeding of the DAPRA Information Survivability Conference and Exposition II June 2013 in Anaheim, CA, USA: 137–145. DOI:10.1109/DISCEX.2001.932166.Search in Google Scholar

11. Xin Y, Teng J, Edwards GK, Rouskas GN, Stevenson D Fault management with fast restoration for optical burst switched networks. In Proceeding of First International Conference on Broadband Networks (BROADNETS 04) October 2004 in San Jose, CA, USA: 34–42. DOI:10.1109/BROADNETS.2004.41.Search in Google Scholar

12. Zeng H, Vukovic A, Huang C A novel end-to-end fault detection and localization protocol for wavelength-routed WDM networks. In Proceeding of SPIE 01/2005; 5970, 2005. DOI:10.1117/12.628194.Search in Google Scholar

13. Arunachalam M, Rajamani V. Distributed fault detection and localization algorithm using artificial neural network in optical WDM networks. Eur J Scientific Res 2011;56:194–203. http://www.eurojournals.com/ejsr.htm.Search in Google Scholar

14. Gaughan PT, Dao BV, Yalamanchili S, Schimmel DE. Distributed, deadlock-free routing in faulty, pipelined, direct interconnection networks. IEEE Trans Comput 1996;45(6):651–665. DOI:10.1109/12.506422.Search in Google Scholar

15. Tapolcai J, Ho PH, Babarczi P, Ronyai L. Neighborhood failure localization in all-optical networks via monitoring trails. IEEE/ACM Trans Networking 2014;23(6):1719–1728. DOI:10.1109/TNET.2014.2342222.Search in Google Scholar

16. Li JS, Yang CF, Chen JH. Star-block design in two level survivable optical networks. IEEE/ACM Trans Networking 2011;19(2):526–539. DOI:10.1109/TNET.2010.2069571.Search in Google Scholar

Received: 2017-05-25
Accepted: 2017-07-14
Published Online: 2017-08-09
Published in Print: 2019-07-26

© 2019 Walter de Gruyter GmbH, Berlin/Boston

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