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Petascale turbulence simulation using a highly parallel fast multipole method on GPUs

delete2013-03-01
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OA
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R
Rio Yokota
L
Lorena A. Barba *
T
Tetsu Narumi
K
Kenji Yasuoka
DOI:10.1016/j.cpc.2012.09.011delete
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Abstract

Abstract

En 中文
This paper reports large-scale direct numerical simulations of homogeneous-isotropic fluid turbulence, achieving sustained performance of 1.08 petaflop/s on GPU hardware using single precision. The simulations use a vortex particle method to solve the Navier-Stokes equations, with a highly parallel fast multipole method (FMM) as numerical engine, and match the current record in mesh size for this application, a cube of 4096(3) computational points solved with a spectral method. The standard numerical approach used in this field is the pseudo-spectral method, relying on the FFT algorithm as the numerical engine. The particle-based simulations presented in this paper quantitatively match the kinetic energy spectrum obtained with a pseudo-spectral method, using a trusted code. In terms of parallel performance, weak scaling results show the FMM-based vortex method achieving 74% parallel efficiency on 4096 processes (one GPU per MPI process, 3 GPUS per node of the TSUBAME-2.0 system). The FFT-based spectral method is able to achieve just 14% parallel efficiency on the same number of MPI processes (using only CPU cores), due to the all-to-all communication pattern of the FFT algorithm. The calculation time for one time step was 108 s for the vortex method and 154 s for the spectral method, under these conditions. Computing with 69 billion particles, this work exceeds by an order of magnitude the largest vortex-method calculations to date. (c) 2012 Elsevier B.V. All rights reserved.
Keywords:
Isotropic turbulence
Fast multipole method
Integral equations
GPU
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Journal

Computer Physics Communications cover
Computer Physics Communications
IF:
3.4
Papers:
1.2W
Citations:
3.7W

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K
Keio University
Scholars:
2.2W
Papers: 1.6W
Citations: 13
B
boston university
Scholars:
3.8W
Papers: 3.2W
Citations: 67
U
university of electro-communications - japan
Scholars:
2.6K
Papers: 2.5K
Citations: 2
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