De novo ultrascale atomistic simulations on high-end parallel supercomputers

被引:41
作者
Nakano, Aiichiro [1 ]
Kalia, Rajiv K. [1 ]
Nomura, Ken-Ichi [1 ]
Sharma, Ashish [1 ,2 ]
Vashishta, Priya [1 ]
Shimojo, Fuyuki [1 ]
Van Duin, Adri C. T. [3 ,4 ]
Goddard, William A., III [4 ]
Biswas, Rupak [5 ]
Srivastava, Deepak [5 ]
Yang, Lin H. [6 ]
机构
[1] Univ So Calif, Collaborat Adv Comp & Simulat, Los Angeles, CA 90089 USA
[2] Ohio State Univ, Dept Biomed Informat, Columbus, OH 43210 USA
[3] Kumamoto Univ, Fac Gen Educ, Dept Phys, Kumamoto 8608555, Japan
[4] CALTECH, Mat & Proc Simulat Ctr, Pasadena, CA 91125 USA
[5] NASA, Ames Res Ctr, NASA Adv Supercomp NAS Div, Moffett Field, CA 94035 USA
[6] Lawrence Livermore Natl Lab, Phys H Div, Livermore, CA 94551 USA
关键词
hierarchical simulation; molecular dynamics; reactive force field; quantum mechanics; density functional theory; parallel computing; grid computing;
D O I
10.1177/1094342007085015
中图分类号
TP3 [计算技术、计算机技术];
学科分类号
0812 ;
摘要
We present a de novo, hierarchical simulation framework for first-principles based predictive simulations of materials and their validation on high-end parallel supercomputers and geographically distributed clusters. In this framework, high-end chemically reactive and non-reactive molecular dynamics (MID) simulations explore a wide solution space to discover microscopic mechanisms that govern macroscopic material properties, into which highly accurate quantum mechanical (QM) simulations are embedded to validate the discovered mechanisms and quantify the uncertainty of the solution. The framework includes an embedded divide-and conquer (EDC) algorithmic framework for the design of linear-scaling simulation algorithms with minimal bandwidth complexity and tight error control. The EDC framework also enables adaptive hierarchical simulation with automated model transitioning assisted by graph-based event tracking. A tunable hierarchical cellular decomposition parallelization framework then maps the O(N) EDC algorithms onto petaflops computers, while achieving performance tunability through a hierarchy of parameterized cell data/ computation structures, as well as its implementation using hybrid grid remote procedure call + message passing + threads programming. High-end computing platforms such as IBM BlueGene/L, SGI Altix 3000 and the NSF TeraGrid provide an excellent test grounds for the framework. On these platforms, we have achieved unprecedented scales of quantum-mechanically accurate and well validated, chemically reactive atomistic simulations-1.06 billion-atom fast reactive force-field MID and 11.8 million-atom (1.04 trillion grid points) quantum-mechanical MID in the framework of the EDC density functional theory on adaptive multigrids-in addition to 134 billion-atom non-reactive space-time multiresolution MD, with the parallel efficiency as high as 0.998 on 65,536 dual-processor BlueGene/L nodes. We have also achieved an automated execution of hierarchical QM/MD simulation on a grid consisting of 6 supercomputer centers in the US and Japan (in total of 150,000 processor hours), in which the number of processors change dynamically on demand and resources are allocated and migrated dynamically in response to faults. Furthermore, performance portability has been demonstrated on a wide range of platforms such as BlueGene/L, Altix 3000, and AMD Opteron-based Linux clusters.
引用
收藏
页码:113 / 128
页数:16
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