• DocumentCode
    2010681
  • Title

    Technology-Driven, Highly-Scalable Dragonfly Topology

  • Author

    Kim, John ; Dally, William J. ; Scott, Steve ; Abts, Dennis

  • Author_Institution
    Northwestern Univ., Evanston, IL
  • fYear
    2008
  • fDate
    21-25 June 2008
  • Firstpage
    77
  • Lastpage
    88
  • Abstract
    Evolving technology and increasing pin-bandwidth motivate the use of high-radix routers to reduce the diameter, latency, and cost of interconnection networks. High-radix networks, however, require longer cables than their low-radix counterparts. Because cables dominate network cost, the number of cables, and particularly the number of long, global cables should be minimized to realize an efficient network. In this paper, we introduce the dragonfly topology which uses a group of high-radix routers as a virtual router to increase the effective radix of the network. With this organization, each minimally routed packet traverses at most one global channel. By reducing global channels, a dragonfly reduces cost by 20% compared to a flattened butterfly and by 52% compared to a folded Clos network in configurations with ges 16K nodes.We also introduce two new variants of global adaptive routing that enable load-balanced routing in the dragonfly. Each router in a dragonfly must make an adaptive routing decision based on the state of a global channel connected to a different router. Because of the indirect nature of this routing decision, conventional adaptive routing algorithms give degraded performance. We introduce the use of selective virtual-channel discrimination and the use of credit round-trip latency to both sense and signal channel congestion. The combination of these two methods gives throughput and latency that approaches that of an ideal adaptive routing algorithm.
  • Keywords
    multiprocessor interconnection networks; network routing; network topology; adaptive routing decision; credit round-trip latency; flattened butterfly; folded Clos network; global adaptive routing; high-radix routers; highly-scalable dragonfly topology; interconnection networks; load-balanced routing; pin-bandwidth; selective virtual-channel discrimination; signal channel congestion; technology-driven dragonfly topology; virtual router; Bandwidth; Cables; Computer architecture; Costs; Delay; Multiprocessor interconnection networks; Network topology; Optical network units; Optical sensors; Routing; dragonfly; interconnection networks; topology;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Computer Architecture, 2008. ISCA '08. 35th International Symposium on
  • Conference_Location
    Beijing
  • ISSN
    1063-6897
  • Print_ISBN
    978-0-7695-3174-8
  • Type

    conf

  • DOI
    10.1109/ISCA.2008.19
  • Filename
    4556717