Optimization of lattice Boltzmann simulations on heterogeneous computers

Author:

Calore E1,Gabbana A1,Schifano SF1,Tripiccione R1

Affiliation:

1. University of Ferrara and INFN Ferrara, Italy

Abstract

High-performance computing systems are more and more often based on accelerators. Computing applications targeting those systems often follow a host-driven approach, in which hosts offload almost all compute-intensive sections of the code onto accelerators; this approach only marginally exploits the computational resources available on the host CPUs, limiting overall performances. The obvious step forward is to run compute-intensive kernels in a concurrent and balanced way on both hosts and accelerators. In this paper, we consider exactly this problem for a class of applications based on lattice Boltzmann methods, widely used in computational fluid dynamics. Our goal is to develop just one program, portable and able to run efficiently on several different combinations of hosts and accelerators. To reach this goal, we define common data layouts enabling the code to exploit the different parallel and vector options of the various accelerators efficiently, and matching the possibly different requirements of the compute-bound and memory-bound kernels of the application. We also define models and metrics that predict the best partitioning of workloads among host and accelerator, and the optimally achievable overall performance level. We test the performance of our codes and their scaling properties using, as testbeds, HPC clusters incorporating different accelerators: Intel Xeon Phi many-core processors, NVIDIA GPUs, and AMD GPUs.

Publisher

SAGE Publications

Subject

Hardware and Architecture,Theoretical Computer Science,Software

Reference32 articles.

Cited by 29 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. A highly-efficient locally encoded boundary scheme for lattice Boltzmann method on GPU;Computer Physics Communications;2024-02

2. Heterogeneous LBM Simulation Code with LRnLA Algorithms;Communications in Computational Physics;2023-06

3. Lightweight lattice Boltzmann;The Journal of Chemical Physics;2023-03-08

4. Implicit propagation of directly addressed grids in lattice Boltzmann methods;Concurrency and Computation: Practice and Experience;2023-02-06

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