代表(政治)
采样(信号处理)
单调函数
计算复杂性理论
数学优化
功能(生物学)
算法
样品(材料)
阶乘
多项式的
计算资源
计算机科学
数学
数学分析
滤波器(信号处理)
计算机视觉
化学
色谱法
进化生物学
政治
政治学
法学
生物
出处
期刊:Technometrics
[Informa]
日期:1991-05-01
卷期号:33 (2): 161-174
被引量:2753
标识
DOI:10.1080/00401706.1991.10484804
摘要
A computational model is a representation of some physical or other system of interest, first expressed mathematically and then implemented in the form of a computer program; it may be viewed as a function of inputs that, when evaluated, produces outputs. Motivation for this article comes from computational models that are deterministic, complicated enough to make classical mathematical analysis impractical and that have a moderate-to-large number of inputs. The problem of designing computational experiments to determine which inputs have important effects on an output is considered. The proposed experimental plans are composed of individually randomized one-factor-at-a-time designs, and data analysis is based on the resulting random sample of observed elementary effects, those changes in an output due solely to changes in a particular input. Advantages of this approach include a lack of reliance on assumptions of relative sparsity of important inputs, monotonicity of outputs with respect to inputs, or adequacy of a low-order polynomial as an approximation to the computational model.
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