• DocumentCode
    739789
  • Title

    A Joint Multi-Layer Planning Algorithm for IP Over Flexible Optical Networks

  • Author

    Gkamas, Vasileios ; Christodoulopoulos, Konstantinos ; Varvarigos, Emmanouel

  • Author_Institution
    Comput. Eng. & Inf. Dept., Univ. of Patras, Patras, Greece
  • Volume
    33
  • Issue
    14
  • fYear
    2015
  • Firstpage
    2965
  • Lastpage
    2977
  • Abstract
    We consider the multi-layer network planning problem for IP over flexible optical networks, which consists of three subproblems at two layers: the Routing problem at the IP-layer (IPR), the routing, modulation level (RML), and the spectrum allocation (SA) problems at the optical layer. The input includes the IP end-to-end traffic matrix, the modular model of the IP/MPLS routers, and the feasible transmission configurations of the flexible optical transponders. Demands are served for their requested rates by selecting the IP/MPLS routers modules to be used, the routes in the IP (virtual) topology, and the corresponding paths and spectrum slots in the underlying optical topology, together with the optical transponders´ configurations. The proposed algorithm follows a multi-cost approach that solves jointly the IPR, the RML, and the SA problems. It serves demands one-by-one, reusing existing equipment and favoring the deployment of new equipment that could also be reused by subsequent connections, aiming to minimize the total network cost. The problem definition is generic and the proposed algorithm is applicable to both fixed- and flex-grid optical networks. We evaluate the performance gains that can be obtained by the proposed joint multi-layer network planning solution, as opposed to a sequential planning solution that separately plans the IP and optical layers. We also compare a flexible network, using flex-grid optical switches and flexible optical transponders, to a mixed line rate (MLR) network, using fixed-grid or flex-grid optical switches but fixed optical transponders.
  • Keywords
    network routing; optical communication equipment; optical fibre networks; optical modulation; optical switches; transponders; IP end-to-end traffic matrix; IP topology; IP-MPLS routers; IP-layer; IPR; MLR; RML; SA problems; feasible transmission configurations; fixed optical transponders; fixed-grid optical networks; fixed-grid optical switches; flex-grid optical networks; flex-grid optical switches; flexible optical networks; flexible optical transponders; joint multilayer network planning solution; joint multilayer planning algorithm; mixed line rate network; modular model; multilayer network planning problem; optical layer; optical topology; optical transponder configurations; performance gains; routing problem; routing, modulation level; sequential planning solution; spectrum allocation problems; spectrum slots; IP networks; Multiprotocol label switching; Optical fiber networks; Optical switches; Planning; Transponders; Distance adaptive routing and spectrum allocation; Flex-grid; IP over WDM; IP over flexible (elastic) optical networks; Multi-cost algorithm; Planning; Routing Modulation level and Spectrum allocation (RMLSA); flex-grid; multi-cost algorithm; planning; routing modulation level and spectrum allocation (RMLSA);
  • fLanguage
    English
  • Journal_Title
    Lightwave Technology, Journal of
  • Publisher
    ieee
  • ISSN
    0733-8724
  • Type

    jour

  • DOI
    10.1109/JLT.2015.2424920
  • Filename
    7090952