• DocumentCode
    1147989
  • Title

    Achieving superlinear speedup on a heterogeneous, distributed system

  • Author

    Mechoso, Carlos R. ; Farrara, John D. ; Spahr, Joseph A.

  • Author_Institution
    California Univ., Los Angeles, CA, USA
  • Volume
    2
  • Issue
    2
  • fYear
    1994
  • Firstpage
    57
  • Lastpage
    61
  • Abstract
    The CASA Gigabit Network Testbed, part of NSF and ARPA´s Gigabit Project, is investigating whether a metacomputer consisting of widely distributed, heterogeneous supercomputers connected by a high-speed network is viable for large scientific applications. A particular challenge is to determine if such a metacomputer can produce superlinear speedup despite latency and communication overheads. One of the applications in the CASA testbed is a model we developed that couples a global atmosphere model to a world ocean model. Simulations using such coupled general circulation models for climate studies demand considerable computer resources. When distributing such a model, we need to consider the methods for masking latency with computation, the communications bandwidth requirements for different decomposition strategies, the optimal computer architecture for each major phase of the computation, and the effects of latency and communication costs for different decomposition strategies. Here we focus an the last two issues, and demonstrate that choosing the appropriate computer architectures and masking communication with computation can produce superlinear speedup.<>
  • Keywords
    climatology; distributed processing; geophysics computing; parallel architectures; performance evaluation; ARPA; CASA; Gigabit Network Testbed; NSF; circulation models; climate studies; communication costs; communication overheads; communications bandwidth requirements; computer architectures; computer resources; decomposition strategies; global atmosphere model; heterogeneous distributed system; high-speed network; large scientific applications; latency; metacomputer; optimal computer architecture; superlinear speedup; widely distributed heterogeneous supercomputers; world ocean model; Application software; Atmosphere; Atmospheric modeling; Computer architecture; Delay; Distributed computing; High-speed networks; Oceans; Supercomputers; Testing;
  • fLanguage
    English
  • Journal_Title
    Parallel & Distributed Technology: Systems & Applications, IEEE
  • Publisher
    ieee
  • ISSN
    1063-6552
  • Type

    jour

  • DOI
    10.1109/88.311573
  • Filename
    311573