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UNDERSTANDING THE EFFECTS OF MODEL UNCERTAINTY IN ROBUST DESIGN WITH COMPUTER EXPERIMENTS

机译:借助计算机实验了解模型不确定性在鲁棒设计中的作用

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摘要

The use of metamodels in simulation-based robust design introduces a new source of uncertainty that we term model interpolation uncertainty. Most existing approaches for treating interpolation uncertainty in computer experiments have been developed for deterministic optimization and are not applicable to design under uncertainty. With the randomness present in noise and/or design variables that propagates through the metamodel, the effects of model interpolation uncertainty are not nearly as transparent as in deterministic optimization. In this work, a methodology is developed within a Bayesian framework for quantifying the impact of interpolation uncertainty on robust design objective. By viewing the true response surface as a realization of a random process, as is common in kriging and other Bayesian analyses of computer experiments, we derive a closed-form analytical expression for a Bayesian prediction interval on the robust design objective function. This provides a simple, intuitively appealing tool for distinguishing the best design alternative and conducting more efficient computer experiments. Even though our proposed methodology is illustrated with a simple container design and an automotive engine piston design example here, the developed analytical approach is the most useful when applied to high-dimensional complex design problems in a similar manner.
机译:在基于仿真的鲁棒性设计中使用元模型引入了不确定性的新来源,我们称其为模型插值不确定性。在计算机实验中,大多数现有的用于处理插值不确定性的方法都是为确定性优化而开发的,不适用于不确定性下的设计。由于通过元模型传播的噪声和/或设计变量中存在随机性,因此模型插值不确定性的影响不如确定性优化中的透明。在这项工作中,在贝叶斯框架内开发了一种方法,用于量化插值不确定性对稳健设计目标的影响。通过将真实的响应面视为随机过程的实现(如克里金法和其他计算机实验的贝叶斯分析中所常见的那样),我们得出了鲁棒设计目标函数上贝叶斯预测区间的闭式分析表达式。这提供了一个简单而直观的工具,用于区分最佳设计替代方案并进行更有效的计算机实验。尽管此处以简单的容器设计和汽车发动机活塞设计为例说明了我们提出的方法,但是当以类似方式将其应用于高维复杂设计问题时,开发的分析方法是最有用的。

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