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Optimal Latin Hypercube Designs for Computer Experiments Based on Multiple Objectives

机译:基于多目标的计算机实验最佳拉丁超立方体设计

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摘要

Latin hypercube designs (LHDs) have broad applications in constructing computer experiments and sampling for Monte-Carlo integration due to its nice property of having projections evenly distributed on the univariate distribution of each input variable. The LHDs have been combined with some commonly used computer experimental design criteria to achieve enhanced design performance. For example, the Maximin-LHDs were developed to improve its space-filling property in the full dimension of all input variables. The MaxPro-LHDs were proposed in recent years to obtain nicer projections in any subspace of input variables. This thesis integrates both space-filling and projection characteristics for LHDs and develops new algorithms for constructing optimal LHDs that achieve nice properties on both criteria based on using the Pareto front optimization approach. The new LHDs are evaluated through case studies and compared with traditional methods to demonstrate their improved performance.;Keywords: Design of computer experiments; Gaussian process; Latin hypercube design; Screening design; Space-filling design; Multiple objective optimization; Pareto front search algorithms.
机译:拉丁超立方体设计(LHD)由于在每个输入变量的单变量分布上均匀分布投影的良好特性,在构建用于蒙特卡洛积分的计算机实验和采样中具有广泛的应用。 LHD已与一些常用的计算机实验设计标准结合在一起以实现增强的设计性能。例如,Maximin-LHD的开发旨在在所有输入变量的完整维度上改善其空间填充特性。近年来提出了MaxPro-LHD,以在输入变量的任何子空间中获得更好的投影。本文综合了LHD的空间填充和投影特性,并基于Pareto前沿优化方法,开发了构建最优LHD的新算法,该LHD在两个标准上均具有良好的性能。通过案例研究对新的LHD进行评估,并将其与传统方法进行比较以证明其改进的性能。高斯过程;拉丁超立方体设计;筛选设计;空间填充设计;多目标优化;帕累托前搜索算法。

著录项

  • 作者

    Hou, Ruizhe.;

  • 作者单位

    University of South Florida.;

  • 授予单位 University of South Florida.;
  • 学科 Statistics.
  • 学位 M.A.
  • 年度 2018
  • 页码 54 p.
  • 总页数 54
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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