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Model exploration using OpenMOLE a workflow engine for large scale distributed design of experiments and parameter tuning

机译:模型探索使用OpenMole进行实验和参数调谐的大规模分布式设计的工作流引擎

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OpenMOLE is a scientific workflow engine with a strong emphasis on workload distribution. Workflows are designed using a high level Domain Specific Language (DSL) built on top of Scala. It exposes natural parallelism constructs to easily delegate the workload resulting from a workflow to a wide range of distributed computing environments. In this work, we briefly expose the strong assets of OpenMOLE and demonstrate its efficiency at exploring the parameter set of an agent simulation model. We perform a multi-objective optimisation on this model using computationally expensive Genetic Algorithms (GA). OpenMOLE hides the complexity of designing such an experiment thanks to its DSL, and transparently distributes the optimisation process. The example shows how an initialisation of the GA with a population of 200,000 individuals can be evaluated in one hour on the European Grid Infrastructure.
机译:OpenMole是一个科学工作流引擎,强调工作量分销。工作流程使用高级域特定语言(DSL)设计在Scala之上。它暴露了自然并行结构,以便轻松地将工作流程委托为广泛的分布式计算环境委托产生。在这项工作中,我们简要揭示了OpenMole的强大资产,并在探索代理模拟模型的参数集时展示其效率。我们使用计算昂贵的遗传算法(GA)对该模型进行多目标优化。由于其DSL,OpenMole隐藏了设计这样的实验的复杂性,并透明地分配了优化过程。该示例显示了如何在欧洲网格基础设施的一小时内评估GA的初始化群体的初始化。

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