计算网格解决不确定数据下的大规模优化问题

C. Triki, L. Grandinetti
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引用次数: 4

摘要

在本文中,我们讨论了使用计算网格来解决随机优化问题。这些问题通常很难解决,并且通常以大量变量和约束为特征。此外,对于某些应用程序,需要实现实时解决方案。如果不使用高性能计算,获得合理的结果是一个困难的目标。我们提出了一种网格路径跟踪算法,并讨论了一些实验结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Computational grids to solve large scale optimization problems with uncertain data
In this paper, we discuss the use of computational grids to solve stochastic optimization problems. These problems are generally difficult to solve and are often characterized by a high number of variables and constraints. Furthermore, for some applications, it is required to achieve a real-time solution. Obtaining reasonable results is a difficult objective without the use of high-performance computing. We present a grid-enabled path-following algorithm and we discuss some experimental results.
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