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Simulating the weak death of the neutron in a femtoscale universe with near-Exascale computing

Authors :
Berkowitz, Evan
Clark, M. A.
Gambhir, Arjun
McElvain, Ken
Nicholson, Amy
Rinaldi, Enrico
Vranas, Pavlos
Walker-Loud, André
Chang, Chia Cheng
Joó, Bálint
Kurth, Thorsten
Orginos, Kostas
Source :
Supercomputing 2018, pp. 697-705
Publication Year :
2018

Abstract

The fundamental particle theory called Quantum Chromodynamics (QCD) dictates everything about protons and neutrons, from their intrinsic properties to interactions that bind them into atomic nuclei. Quantities that cannot be fully resolved through experiment, such as the neutron lifetime (whose precise value is important for the existence of light-atomic elements that make the sun shine and life possible), may be understood through numerical solutions to QCD. We directly solve QCD using Lattice Gauge Theory and calculate nuclear observables such as neutron lifetime. We have developed an improved algorithm that exponentially decreases the time-to solution and applied it on the new CORAL supercomputers, Sierra and Summit. We use run-time autotuning to distribute GPU resources, achieving 20% performance at low node count. We also developed optimal application mapping through a job manager, which allows CPU and GPU jobs to be interleaved, yielding 15% of peak performance when deployed across large fractions of CORAL.<br />Comment: 2018 Gordon Bell Finalist: 9 pages, 9 figures; v2: fixed 2 typos and appended acknowledgements

Details

Database :
arXiv
Journal :
Supercomputing 2018, pp. 697-705
Publication Type :
Report
Accession number :
edsarx.1810.01609
Document Type :
Working Paper
Full Text :
https://doi.org/10.1109/SC.2018.00058