• DocumentCode
    748289
  • Title

    Availability analysis of span-restorable mesh networks

  • Author

    Clouqueur, Matthieu ; Grover, Wayne D.

  • Author_Institution
    TR Labs., Edmonton, Alta., Canada
  • Volume
    20
  • Issue
    4
  • fYear
    2002
  • fDate
    5/1/2002 12:00:00 AM
  • Firstpage
    810
  • Lastpage
    821
  • Abstract
    The most common aim in designing a survivable network is to achieve restorability against all single span failures, with a minimal investment in spare capacity. This leaves dual-failure situations as the main factor to consider in quantifying how the availability of services benefit from the investment in restorability. We approach the question in part with a theoretical framework and in part with a series of computational routing trials. The computational part of the analysis includes all details of graph topology, capacity distribution, and the details of the restoration process, effects that were generally subject to significant approximations in prior work. The main finding is that a span-restorable mesh network can be extremely robust under dual-failure events against which they are not specifically designed. In a modular-capacity environment, an adaptive restoration process was found to restore as much as 95% of failed capacity on average over all dual-failure scenarios, even though the network was designed with minimal spare capacity to assure only single-failure restorability. The results also imply that for a priority service class, mesh networks could provide even higher availability than dedicated 1+1 APS. This is because there are almost no dual-failure scenarios for which some partial restoration level is not possible, whereas with 1+1 APS (or rings) there are an assured number of dual-failure scenarios for which the path restorability is zero. Results suggest conservatively that 20% or more of the paths in a mesh network could enjoy this ultra-high availability service by assigning fractional recovery capacity preferentially to those paths upon a dual failure scenario
  • Keywords
    adaptive systems; graph theory; network topology; optical fibre networks; telecommunication network reliability; telecommunication network routing; adaptive restoration; approximations; availability analysis; capacity distribution; computational routing trials; dual-failure events; fractional recovery capacity; graph topology; mesh network; modular-capacity environment; optical transport network; span failures; span-restorable mesh networks; survivable network design; ultra-high availability service; Availability; Delay; Distributed computing; Investments; Mesh networks; Optical fiber networks; Protection; Routing; Signal restoration; Wavelength measurement;
  • fLanguage
    English
  • Journal_Title
    Selected Areas in Communications, IEEE Journal on
  • Publisher
    ieee
  • ISSN
    0733-8716
  • Type

    jour

  • DOI
    10.1109/JSAC.2002.1003046
  • Filename
    1003046