RT Journal Article ID 0b326c4f1f447c8f A1 Perumalla, Kalyan A1 Karimabadi, Homa A1 Fujimoto, Richard T1 Efficient Parallel Execution of Event-Driven Electromagnetic Hybrid Models JF International Journal for Multiscale Computational Engineering JO JMC YR 2007 FD 2007-07-01 VO 5 IS 1 SP 27 OP 38 AB New discrete-event formulations of physics simulation models are emerging that can outperform traditional time-stepped models, especially in simulations containing multiple timescales. Detailed simulation of the Earth's magnetosphere, for example, requires execution of submodels that operate at timescales that differ by orders of magnitude. In contrast to time-stepped simulation, which requires tightly coupled updates to almost the entire system state at regular time intervals, the new approaches that use discrete event simulation (DES) modeling help evolve the states of submodels on relatively independent timescales. However, in contrast to the relative ease of parallelization of time-stepped codes, the parallelization of DES-based models raises challenges with respect to their scalability and performance. One of the key challenges is to improve the computation granularity to offset synchronization and communication overheads within and across processors. Our previous work on parallelization was limited in scalability and run-time performance due to such challenges. Here, we report on optimizations we performed on DES-based plasma simulation models to improve parallel execution performance. The mapping of the model to simulation processes is optimized via aggregation techniques, and the parallel run-time engine is optimized for communication and memory efficiency. The net result is the capability to simulate hybrid particle-in-cell models with over two billion ion particles using 512 processors on supercomputing platforms. PB Begell House LK https://www.dl.begellhouse.com/journals/61fd1b191cf7e96f,62eaf5c935d4bac7,0b326c4f1f447c8f.html