• DocumentCode
    1113713
  • Title

    Multicast Capacity of Optical Packet Ring for Hotspot Traffic

  • Author

    An Der Heiden, Matthias ; Sortais, Michel ; Scheutzow, Michael ; Reisslein, Martin ; Seeling, Patrick ; Herzog, Martin ; Maier, Martin

  • Author_Institution
    Tech. Univ. of Berlin, Berlin
  • Volume
    25
  • Issue
    9
  • fYear
    2007
  • Firstpage
    2638
  • Lastpage
    2652
  • Abstract
    Hotspot traffic is common in metro ring networks connecting access networks with backbone networks, and these metro rings are also expected to support a mix of unicast, multicast, and broadcast traffic. Shortest path (SP) routing, as employed in the IEEE 802.17 Resilient Packet Ring (RPR), is widely considered for metro rings as it maximizes spatial reuse and, thus, the achievable packet throughput (capacity) for uniform traffic. In this paper, we analyze the capacity of bidirectional optical ring networks, such as RPR, employing SP routing for multicast (nonuniform) hotspot traffic (whereby unicast and broadcast are considered as special cases of multicast). We find that, when the traffic originating at the hotspot exceeds a critical threshold, then SP routing leads to substantial reductions in capacity to a value close to one simultaneous packet transmission. To overcome this limitation of SP routing, we propose a simple combined SP/one-copy routing Hotspot traffic is common in metro ring networks connecting access networks with backbone networks, and these metro rings are also expected to support a mix of unicast, multicast, and broadcast traffic. Shortest path (SP) routing, as employed in the IEEE 802.17 resilient packet ring (RPR), is widely considered for metro rings as it maximizes spatial reuse and, thus, the achievable packet throughput (capacity) for uniform traffic. In this paper, we analyze the capacity of bidirectional optical ring networks, such as RPR, employing SP routing for multicast (nonuniform) hotspot traffic (whereby unicast and broadcast are considered as special cases of multicast). We find that, when the traffic originating at the hotspot exceeds a critical threshold, then SP routing leads to substantial reductions in capacity to a value close to one simultaneous packet transmission. To overcome this limitation of SP routing, we propose a simple combined SP/one-copy routing strategy that provides a capacity of at least two simultaneous packe- t transmissions.strategy that provides a capacity of at least two simultaneous packet transmissions.
  • Keywords
    multicast communication; optical fibre networks; packet switching; telecommunication network routing; telecommunication traffic; IEEE 802.17 resilient packet ring; SP routing; bidirectional optical ring networks; metro ring networks; multicast capacity; multicast hotspot traffic; one-copy routing strategy; optical packet ring; shortest path routing; simultaneous packet transmissions; Broadcasting; Floods; HDTV; Metropolitan area networks; Optical fiber networks; Optical packet switching; Routing; Telecommunication traffic; Throughput; Unicast; Hotspot traffic; multicast; packet throughput; shortest path (SP) routing; spatial reuse;
  • fLanguage
    English
  • Journal_Title
    Lightwave Technology, Journal of
  • Publisher
    ieee
  • ISSN
    0733-8724
  • Type

    jour

  • DOI
    10.1109/JLT.2007.902092
  • Filename
    4298950