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DOE OSTI · 1889525

Computer Science Research Needs for Parallel Discrete Event Simulation (PDES)

Abstract

Historically, scientific computing efforts have demonstrated the clear need for, and effective use of, supercomputing with traditional time-stepped simulations. Nevertheless, there are several areas in the mission spaces of the U.S. Department of Energy and other agencies waiting to tap advanced computing research using a different, discrete event style of modeling, simulation, and analysis. These span a wide spectrum of applications including energy grid resilience, urban planning and policy, transportation science, building technologies, emergency response and planning, environmental impact analysis, computational epidemiology, Internet communications, cyber security, and cyber-physical systems, to name only a few. Even within traditional scientific applications, the role of discrete event modes of execution is increasing in the form of new event-based mathematical solvers such as quantized state integration methods and discrete-continuous hybrid system solvers. Co-design of advanced supercomputing hardware systems is another area that exploits discrete event simulation at its core for effective analyses. Complex systems, entity behaviors and interconnections play a significant role in all these applications, which are mapped to large-scale models with discrete event formulations.

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BibTeXRIS

Perumalla, K., Bremer, M., Brown, K., Chan, C., Eidenbenz, S., Hemmert, K. S., Hoisie, A., Newton, B., Nutaro, J., Oppelstrup, T., Ross, R., Schordan, M., Urban, N.. 2022-05-11. Computer Science Research Needs for Parallel Discrete Event Simulation (PDES). https://doi.org/10.2172/1889525

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