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Slot Routing as a Solution for Optically Transparent Scalable WDM Wide Area Networks*

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Abstract

All-optical Wavelength Division Multiplexing (WDM) backbones are believed to be a fundamental component in future high speed networks. Currently, the most pursued approach for Wide Area Networks (WANs) is wavelength routing, in which communication circuits are established between node pairs by means of lightpaths (paths of light) spanning one or more fiber-optic links. This approach has, however, two drawbacks. Since the number of wavelengths and links in a network is finite, not all node pairs can be connected via a dedicated lightpath directly. Consequently, some node pairs will communicate using a concatenation of lightpaths, which requires electronic switching of in transit information, loosing the advantages of optical transparency. Secondly, typically some form of (electronic) traffic grooming will be necessary to make efficient use of the fixed lightpath capacity. This paper proposes to design all-optical WANs using a novel approach, called photonic slot routing. With photonic slot routing, entire slots, each carrying multiple packets on distinct wavelengths, are switched transparently and individually, using available fast and wavelength non-sensitive devices. The advantage of using photonic slot routing is threefold. All node pairs in the network communicate all-optically. Traffic aggregation necessary to efficiently use the capacity of the wavelength channels is optically achieved. The solution is practical as it is based on proven optical technologies. In addition, through the use of wavelength non-sensitive devices the proposed WAN design yields intrinsic scalability in the number of wavelengths.

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References

  1. C. A. Brackett, Dense wavelength division networks: Principles and applications, IEEE Journal on Selected Areas in Communications, vol. 8, no.6, (Aug. 1989), pp. 948–964.

    Google Scholar 

  2. B. Mukherjee, WDM-based local lightwave networks, Part I: Single-hop systems, IEEE Network, vol. 6, no.3, (May 1992), pp. 12–27.

    Google Scholar 

  3. IEEE Communications Magazine, vol. 36, no.2, (Feb. 1998).

    Google Scholar 

  4. I. Chlamtac, Rational, directions and issues surrounding high speed computer networks, IEEE Proceedings, vol. 78, no.1, (Jan. 1989), pp. 94–120.

    Google Scholar 

  5. I. Chlamtac, A. Ganz, G. Karmi, Lightpath communications: An approach to high bandwidth optical WANs, IEEE Transactions on Communications, vol. 40, no.7, (July 1992), pp. 1171–1182.

    Google Scholar 

  6. I. Chlamtac, A. Farago, T. Zhang, Lightpath (wavelength) routing in large WDM networks, IEEE Journal on Selected Areas in Communications, joint issue with Journal of Lightwave Technology, vol. 14, no.5, (June 1996), pp. 909–913.

    Google Scholar 

  7. O. Gerstel, R. Ramaswami, G. Sasaki, Cost effective traffic grooming in WDM rings, Proc. of IEEE INFOCOM 98, (San Francisco, CA, March/April 1998), vol. 1, pp. 69–77.

    Google Scholar 

  8. M.-S. Chen, N. R. Dono, R. Ramaswami, A media-access protocol for packet-switched wavelength division multiaccess metropolitan area networks, IEEE Journal on Selected Areas in Communications, vol. 8, no.6, (Aug. 1990), pp. 1048–1057.

    Google Scholar 

  9. I. Chlamtac, A. Fumagalli, L. G. Kazovsky, P. T. Poggiolini, A contention/collision free WDM ring network for multi gigabit packet switched communication, Journal of High Speed Networks, vol. 4, no.2, (1995), pp. 201–219.

    Google Scholar 

  10. S. Banerjee, B. Mukherjee, Fairnet: A WDM-based multiple channel lightwave network with adaptive and fair scheduling policy, Journal of Lightwave Technology, vol. 11, no.5–6, (May/June 1993), pp. 1104–1111.

    Google Scholar 

  11. I. Chlamtac, V. Elek, A. Fumagalli, Cs. Szabó, A scalable optical network based on folded bus architecture, Proc. of EUROPTO—European Symposium on Advanced Imaging and Network Technologies (EOS-SPIE) (Berlin, FR Germany, Oct. 1996), pp. 213–224.

  12. I. Chlamtac, V. Elek, A. Fumagalli, A fair slot routing solution for scalability in all-optical packet switched networks, Journal of High Speed Networks, vol. 6, no.3, (1997), pp. 181–196.

    Google Scholar 

  13. R. Kannan, R. Bartos, K. Y. Lee, F. Jordan, STWnet: A high bandwidth space-time-wavelength multiplexed optical switching network, Proc. of IEEE INFOCOM 97 (Kobe, Japan, April 1997), vol. 2, pp. 777–784.

    Google Scholar 

  14. M. R. Garey, D. S. Johnson, Computers and intractability, A guide to the theory of NP-completeness (W. H. Freedman and Company, San Francisco, 1979).

    Google Scholar 

  15. P. Doussiere, Recent advances in conventional and gain clamped semiconductor optical amplifiers, Proc. of Optical Amplifiers and their Applications, TOPS (Monterey, CA, July 1996), vol. 5, pp. 170–188.

    Google Scholar 

  16. J. D. Walker, F. G. Patterson, S. P. Dijaili, R. J. Deri, A gainclamped, crosstalk free, vertical cavity lasing semiconductor optical amplifier for WDM applications, Proc. of Integrated Photonics (Boston, MA, USA, April/May 1996), pp. 474–477.

  17. L. R. Foulds, Graph theory applications (Springer-Verlag, New York, 1992).

    Google Scholar 

  18. E. W. Dijkstra, A note on two problems in connexion with graphs, Numerical Mathematics, vol. 1, (Oct. 1959), pp. 269–271.

    Google Scholar 

  19. D. J. A. Welsh, M. B. Powell, An upper bound for the chromatic number of a graph and its application to timetabling problems, The Computer Journal, vol. 140, no.10, (1967), pp. 85–86.

    Google Scholar 

  20. J. Randall Brown, Chromatic scheduling and the chromatic number problem, Management Science, vol. 19, no.4, (Dec. 1972), pp. 456–463.

    Google Scholar 

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Chlamtac, I., Fumagalli, A. & Wedzinga, G. Slot Routing as a Solution for Optically Transparent Scalable WDM Wide Area Networks*. Photonic Network Communications 1, 9–21 (1999). https://doi.org/10.1023/A:1010060529536

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  • DOI: https://doi.org/10.1023/A:1010060529536

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