Leveraging what you know: Versatile space-filling designs

IF 1.3 4区 工程技术 Q4 ENGINEERING, INDUSTRIAL
Lu Lu, C. Anderson‐Cook
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引用次数: 1

Abstract

Abstract Space-filling designs continue to gain popularity for computer experiments. Uniformity of space-filling characteristics has been broadly sought after to provide good estimation and prediction abilities for a variety of complex models. This article presents case studies when additional information on the features of the underlying relationship may be leveraged for selecting alternative space-filling designs that offer improvements to meet specific experimental goals. Three types of nontraditional space-filling designs are illustrated to achieve different objectives to (1) allow varied density of design points across the input space, (2) obtain balanced performance on covering the input space and the range of the response values, and (3) effectively augment existing runs to achieve certain space-filling characteristic in a sequential experiment. The mechanics for implementing these design choices are described and their flexibility to adapt to other experimental scenarios is illustrated.
利用你所知道的:多用途的空间填充设计
摘要填充空间的设计在计算机实验中越来越受欢迎。空间填充特性的一致性已被广泛追求,以为各种复杂模型提供良好的估计和预测能力。本文介绍了一些案例研究,其中可以利用有关潜在关系特征的额外信息来选择替代空间填充设计,这些设计可以提供改进以满足特定的实验目标。举例说明了三种类型的非传统空间填充设计,以实现不同的目标:(1)允许在输入空间上改变设计点的密度,(2)在覆盖输入空间和响应值的范围方面获得平衡的性能,以及(3)在连续实验中有效地增加现有的运行以实现特定的空间填充特性。描述了实现这些设计选择的机制,并说明了它们适应其他实验场景的灵活性。
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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来源期刊
Quality Engineering
Quality Engineering ENGINEERING, INDUSTRIAL-STATISTICS & PROBABILITY
CiteScore
3.90
自引率
10.00%
发文量
52
审稿时长
>12 weeks
期刊介绍: Quality Engineering aims to promote a rich exchange among the quality engineering community by publishing papers that describe new engineering methods ready for immediate industrial application or examples of techniques uniquely employed. You are invited to submit manuscripts and application experiences that explore: Experimental engineering design and analysis Measurement system analysis in engineering Engineering process modelling Product and process optimization in engineering Quality control and process monitoring in engineering Engineering regression Reliability in engineering Response surface methodology in engineering Robust engineering parameter design Six Sigma method enhancement in engineering Statistical engineering Engineering test and evaluation techniques.
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