• DocumentCode
    864028
  • Title

    Demonstration of the highly reliable Hikari router network based on a newly developed disjoint path selection scheme

  • Author

    Okamoto, Satoru ; Oki, Eiji ; Shimano, Katsuhiro ; Sahara, Akio ; Yamanaka, Naoaki

  • Volume
    40
  • Issue
    11
  • fYear
    2002
  • fDate
    11/1/2002 12:00:00 AM
  • Firstpage
    52
  • Lastpage
    59
  • Abstract
    Integration of multiprotocol label switching functions and multiprotocol lambda switching functions can enhance the throughput of IP networks and remove bottlenecks that are derived from electrical packet processing. To enhance the packet forwarding capability, NTT proposed a photonic MPLS concept that includes MPλS, and demonstrated IP, MPLS, and photonic MPLS integrated router systems called the photonic MPLS router. This router system is now called the Hikari router. The word Hikari is Japanese meaning beam, light, lightwave, optical, photonic, and sunshine. The amount of IP data traffic has grown remarkably. Massive IP routers and flexible route control mechanisms are now required to cope with the increased amount of traffic. The Hikari router can offer two solutions utilizing photonic switching technologies, and photonic network operation and management technologies. The first solution is utilizing photonic switching technologies realized using optical-switch-based crossconnect systems. The other solution is realized using the MPLS and MPλS signaling protocol and photonic network protection functions. In this article we report on the implementation of the Hikari router systems, propose a newly developed disjoint path selection scheme for generalized MPLS networks with shared risk link group constraints, and demonstrate the signaling protocol and network protection functions. The demonstration system achieves a distributed optical path set-up/tear-down protocol with an extended constraint-based routing label distribution protocol. Fast self-healing through automatic protection switching and a new restoration scheme are also implemented. These functions are successfully implemented, and the performance is verified on a demonstration network. The protection switching scheme achieves protection in less than 20 ms, and the optical path restoration scheme achieves restoration in less than 500 ms.
  • Keywords
    Internet; computer network management; computer network reliability; optical fibre networks; packet switching; protocols; telecommunication network routing; telecommunication signalling; wavelength division multiplexing; IP networks; MPλS signaling protocol; MPLS signaling protocol; automatic protection switching; bottlenecks; disjoint path selection scheme; distributed optical path set-up/tear-down protocol; extended constraint-based routing label distribution protocol; management technologies; multiprotocol label switching functions; multiprotocol lambda switching functions; network protection functions; optical-switch-based crossconnect systems; packet forwarding capability; photonic MPLS concept; photonic MPLS router; photonic network operation; photonic network protection functions; photonic switching; reliable Hikari router network; restoration scheme; self-healing; shared risk link group constraints; Communication system traffic control; IP networks; Multiprotocol label switching; Optical beams; Packet switching; Photonics; Protection switching; Routing protocols; Technology management; Throughput;
  • fLanguage
    English
  • Journal_Title
    Communications Magazine, IEEE
  • Publisher
    ieee
  • ISSN
    0163-6804
  • Type

    jour

  • DOI
    10.1109/MCOM.2002.1046993
  • Filename
    1046993