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Enhancing the Scalability of Simulations by Embracing Multiple Levels of Parallelization

机译:通过包含多个并行化级别来增强仿真的可扩展性

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摘要

Current and upcoming architectures of desktop and high performance computers offer increasing means for parallel execution. Since the computational demands induced by ever more realistic models increase steadily, this trend is of growing importance for systems biology. Simulations of these models may involve the consideration of multiple parameter combinations, their replications, data collection, and data analysis - all of which offer different opportunities for parallelization. We present a brief theoretical analysis of these opportunities in order to show their potential impact on the overall computation time. The benefits of using more than one opportunity for parallelization are illustrated by a set of benchmark experiments, which furthermore show that parallelizability should be exploited in a flexible manner to achieve speedup.
机译:当前和即将推出的台式机和高性能计算机的体系结构为并行执行提供了越来越多的手段。由于由越来越现实的模型引起的计算需求稳步增长,因此这种趋势对于系统生物学越来越重要。这些模型的仿真可能涉及多个参数组合,它们的复制,数据收集和数据分析的考虑-所有这些都为并行化提供了不同的机会。我们对这些机会进行了简要的理论分析,以显示它们对总体计算时间的潜在影响。一组基准实验说明了使用多个机会进行并行化的好处,此外,这些实验还表明,应以灵活的方式利用并行性来实现加速。

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