POSE: getting over grainsize in parallel discrete event simulation

Terry Wilmarth, L. Kalé
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引用次数: 27

Abstract

Parallel discrete event simulations (PDES) encompass a broad range of analytical simulations. Their utility lies in their ability to model a system and provide information about its behavior in a timely manner. Current PDES methods provide limited performance improvements over sequential simulation. Many logical models for applications have fine granularity making them challenging to parallelize. In POSE, we examine the overhead required for optimistically synchronizing events. We have designed an object model based on the concept of visualization and new adaptive optimistic methods to improve the performance of finegrained PDES applications. These novel approaches exploit the speculative nature of optimistic protocols to improve single-processor parallel over sequential performance and achieve scalability for previously hard-to-parallelize fine-grained simulations.
在并行离散事件模拟中获得超粒度
并行离散事件模拟(PDES)涵盖了广泛的分析模拟。它们的效用在于它们能够对系统建模并及时提供有关其行为的信息。目前的PDES方法提供有限的性能改进比顺序模拟。应用程序的许多逻辑模型都有很细的粒度,这使得它们很难并行化。在POSE中,我们将研究乐观同步事件所需的开销。为了提高细粒度PDES应用程序的性能,我们设计了一个基于可视化概念和新的自适应乐观方法的对象模型。这些新颖的方法利用了乐观协议的推测性,以提高单处理器并行优于顺序性能,并实现了以前难以并行化的细粒度模拟的可伸缩性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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