• DocumentCode
    692910
  • Title

    Physics-based seismic hazard analysis on petascale heterogeneous supercomputers

  • Author

    Cui, Yan ; Poyraz, E. ; Olsen, K.B. ; Zhou, J. ; Withers, K. ; Callaghan, S. ; Larkin, J. ; Guest, C. ; Choi, Daniel ; Chourasia, Amit ; Shi, Zhiyan ; Day, S.M. ; Maechling, P.J. ; Jordan, T.H.

  • Author_Institution
    Univ. of California, San Diego, La Jolla, CA, USA
  • fYear
    2013
  • fDate
    17-22 Nov. 2013
  • Firstpage
    1
  • Lastpage
    12
  • Abstract
    We have developed a highly scalable and efficient GPU-based finite-difference code (AWP) for earthquake simulation that implements high throughput, memory locality, communication reduction and communication / computation overlap and achieves linear scalability on Cray XK7 Titan at ORNL and NCSA´s Blue Waters system. We simulate realistic 0-10 Hz earthquake ground motions relevant to building engineering design using high-performance AWP. Moreover, we show that AWP provides a speedup by a factor of 110 in key strain tensor calculations critical to probabilistic seismic hazard analysis (PSHA). These performance improvements to critical scientific application software, coupled with improved co-scheduling capabilities of our workflow-managed systems, make a statewide hazard model a goal reachable with existing supercomputers. The performance improvements of GPU-based AWP are expected to save millions of core-hours over the next few years as physics-based seismic hazard analysis is developed using heterogeneous petascale supercomputers.
  • Keywords
    earthquake engineering; finite difference methods; geophysics computing; graphics processing units; mainframes; AWP; Blue Waters system; Cray XK7 Titan; GPU-based finite-difference code; NCSA; ORNL; PSHA; communication reduction; earthquake simulation; key strain tensor calculations; memory locality; petascale heterogeneous supercomputers; physics-based seismic hazard analysis; probabilistic seismic hazard analysis; statewide hazard model; workflow-managed systems; Computational modeling; Earthquakes; Graphics processing units; Hazards; Tensile stress; Three-dimensional displays; CyberShake; GPU; SCEC; earthquake ground motions; hybrid heterogeneous; seismic hazard analysis; weak scaling;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    High Performance Computing, Networking, Storage and Analysis (SC), 2013 International Conference for
  • Conference_Location
    Denver, CO
  • Print_ISBN
    978-1-4503-2378-9
  • Type

    conf

  • DOI
    10.1145/2503210.2503300
  • Filename
    6877503