• DocumentCode
    1829125
  • Title

    Comparison Studies of Large-scale Conventional Molecular Dynamics Simulation on Parallel Machines

  • Author

    Wang, Yun-Che ; Wu, Chun-Yi ; Chung, I-Hsin

  • Author_Institution
    Dept. of Civil Eng., Nat. Cheng Kung Univ., Tainan, Taiwan
  • fYear
    2012
  • fDate
    25-27 June 2012
  • Firstpage
    959
  • Lastpage
    963
  • Abstract
    Molecular dynamics simulation is an important and powerful tool in studying physical and chemical properties of materials, in particular, at the nanoscales. Conventional molecular dynamics, as oppose to the ab initio molecular dynamics, adopts the Newton´s second law to predict particle position in the next time step with the assistance of empirical interatomic potential to calculate the forces between neighboring particles. Large-scale MD systems, consisting millions of atoms, require sophisticated parallelization in computer codes to improve computational efficiency. In this work, the IBM Blue Gene/P, a linux PC cluster and GPU/CUDA are used to test the computation performance of the MD code, LAMMPS, and other codes. Furthermore, strong and weak scaling were tested to determine the parallel efficiency of the codes, and to study effects of system size and number of computing cores. It is found that both strong and weak scaling are achievable in the tested problem sizes. Furthermore, due to reduced CPU clock frequency in the Blue Gene/P machine, its performance is inferior than that of the linux cluster if the number of the computing cores involved is small. Effects of computation algorithms also strongly influence the performance of the codes on the machines. Blue Gene/P is extremely suitable for large-scale problem sizes with many processors involved. When the problem fits in the GPU architecture, the performance of the GPU/CUDA may be comparable with that of Blue Gene/P. In addition to the parallel performance, the accuracy of the physical problem is verified to ensure the MD simulation produce correct results.
  • Keywords
    Linux; graphics processing units; molecular dynamics method; multiprocessing systems; parallel algorithms; parallel architectures; parallel machines; potential energy functions; workstation clusters; CPU clock frequency reduction; GPU architecture; GPU/CUDA performance; IBM Blue Gene/P machine; LAMMPS; Linux PC cluster; chemical properties; code performance; computation algorithms; computational efficiency; computer code parallelization; computing cores; interatomic potential; large-scale MD systems; large-scale conventional molecular dynamics simulation; parallel machines; particle position prediction; physical properties; Clocks; Computational modeling; Data communication; Graphics processing unit; Materials; Supercomputers; GPU/CUDA; blue gene; molecular dyanmics simulation; parallel computing; supercomputer;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    High Performance Computing and Communication & 2012 IEEE 9th International Conference on Embedded Software and Systems (HPCC-ICESS), 2012 IEEE 14th International Conference on
  • Conference_Location
    Liverpool
  • Print_ISBN
    978-1-4673-2164-8
  • Type

    conf

  • DOI
    10.1109/HPCC.2012.139
  • Filename
    6332275