Distribution of a Stochastic Control Algorithm Applied to Gas Storage Valuation

C. Makassikis, S. Vialle, X. Warin
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引用次数: 14

Abstract

This paper introduces a research project that aims to speed-up and size-up some gas storage valuations, based on a Stochastic Dynamic Programming algorithm. Such valuations are typically needed by investment projects and yield prices of gas storage spaces and facilities. However, they involve computations which require great amounts of CPU power or memory. As a result, their parallelization on PC clusters or supercomputers becomes highly attractive and sometimes unavoidable despite its complexity. Our parallelization strategy is based on a message passing paradigm, and distributes both computations and data on a cluster, in order to achieve speed-up and size-up. It includes some complex and optimized data exchanges which are dynamically computed, planned and achieved at each computation step. This optimized data distribution and memory management allows to process large problems on a high number of processors. Moreover, our parallel implementation is able to support different price models, and our first experiments on a standard 32 PC cluster show very good performances particularly for complex price models.
一种用于储气库评价的随机控制算法的分布
本文介绍了一个基于随机动态规划算法的研究项目,旨在加速和确定一些天然气储存的估值。投资项目通常需要这样的估值,天然气储存空间和设施的收益率价格也需要这样的估值。然而,它们涉及到需要大量CPU能力或内存的计算。因此,它们在PC集群或超级计算机上的并行化变得非常有吸引力,有时是不可避免的,尽管它很复杂。我们的并行化策略基于消息传递范式,并将计算和数据分布在集群上,以实现加速和大小调整。它包括一些复杂而优化的数据交换,这些数据交换在每个计算步骤中都是动态计算、计划和实现的。这种优化的数据分布和内存管理允许在大量处理器上处理大型问题。此外,我们的并行实现能够支持不同的价格模型,我们在标准32 PC集群上的第一次实验显示出非常好的性能,特别是对于复杂的价格模型。
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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