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Efficient Gradient-Based Optimization of Process Capability with Multiple, Potentially Nonnormal Outputs

机译:基于梯度的高效工艺能力优化,具有多个潜在的非正常输出

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摘要

A process output has multiple performance measures (response variables) that are related to multiple input variables (both controllable and noise variables). The input variables are modeled as random variables and the relationships are modeled by transfer functions that may be known functional relationships or response surfaces that have been estimated from experimental data. The performance measures have specification limits. The goal is to select the target (or mean) values for the controllable input variables to minimize the weighted probabilities that the response variables will have values outside their specification limits without making distributional assumptions on the response variables. A single set of simulation replications is used to efficiently estimate derivatives of the weighted probability of defectives with respect to the parameters of the probability distributions of each input variable. These derivative estimates are used in a gradient-based optimization algorithm to select the mean values for the controllable input variables. The problem is motivated by and the algorithm is applied to the design and production of a resin to be used in the manufacture of an infant car seat.
机译:过程输出具有与多个输入变量(可控变量和噪声变量)相关的多个性能度量(响应变量)。输入变量被建模为随机变量,并且这些关系通过传递函数建模,该传递函数可以是已知的函数关系或已经从实验数据中估计的响应面。性能指标有规格限制。目的是为可控输入变量选择目标(或平均值)值,以使响应变量的值超出其规格限制的加权概率最小化,而无需对响应变量进行分布假设。一组模拟复制用于相对于每个输入变量的概率分布的参数有效地估计缺陷的加权概率的导数。这些导数估算值用于基于梯度的优化算法中,以选择可控输入变量的平均值。该问题是由以下原因引起的,并且该算法被应用于树脂的设计和生产中,该树脂用于制造婴儿汽车座椅。

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    School of Management, Union Graduate College, Schenectady, New York, USA;

    Computing and Decision Sciences, GE Global Research, Niskayuna, New York, USA;

  • 收录信息 美国《科学引文索引》(SCI);
  • 原文格式 PDF
  • 正文语种 eng
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