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RSCS: a parallel simplex algorithm for the Nimrod/O optimization toolset

机译:RSCS:NIMROD / O优化工具集的并行单纯仪算法

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This paper describes a method of parallelisation of the popular Nelder-Mead simplex optimization algorithms that can lead to enhanced performance on parallel and distributed computing resources. A reducing set of simplex vertices are used to derive search directions generally closely aligned with the local gradient. When tested on a range of problems drawn from real-world applications in science and engineering, this reducing set concurrent simplex (RSCS) variant of the Nelder-Mead algorithm compared favourably with the original algorithm, and also with the inherently parallel multidirectional search algorithm (MDS). All algorithms were implemented and tested in a general-purpose, grid-enabled optimization toolset.
机译:本文介绍了流行的NELDER-MEAD SIMPLEX优化算法的平行方法,可以导致并行和分布式计算资源的性能提高。缩小的单纯形顶点集用于导出通常与本地梯度紧密对齐的搜索方向。在从实际科学和工程中的实际应用中汲取的一系列问题上进行测试时,这减少了纳德尔米德算法的并发单纯形(RSCS)变体与原始算法相比,以及固有并行多向搜索算法( MDS)。所有算法都是在通用的网格的优化工具集中实现和测试。

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