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COMPUTATIONALLY INEXPENSIVE METAMODEL ASSESSMENT STRATEGIES

机译:计算无用的元模型评估策略

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摘要

In many scientific and engineering domains, it is common to analyze and simulate complex physical systems using mathematical models. Although computing resources continue to increase in power and speed, discipline-specific computer simulation modules continue to grow in complexity and remain computationally expensive, limiting their use in design optimization. The use of different approximation strategies as inexpensive metamodels of the discipline-specific simulation models has led to the development of various metamodel-based integration frameworks and associated research topics. In particular, integration of the discipline-specific metamodels requires an assessment of the overall system error based on the individual approximation errors. As a result, there is a need to develop efficient methods to assess metamodel fidelity at the system and subsystem level. In this paper, we investigate computationally inexpensive assessment methods for metamodel validation at the subsystem level and evaluate a two-stage validation approach on two classes of test problems: 1. Three response functions from a Boeing simulation model, and 2. two response functions from a set of problems for testing optimization codes. Preliminary results indicate that the two stage-validation approach is promising, since it requires no additional computationally expensive disciplinary model evaluations and can provide a practical estimate of the true error measure.
机译:在许多科学和工程领域,通常使用数学模型来分析和模拟复杂的物理系统。尽管计算资源的能力和速度不断提高,但是特定学科的计算机仿真模块的复杂性不断提高,并且计算量仍然很大,从而限制了它们在设计优化中的使用。使用不同的近似策略作为特定学科的仿真模型的廉价元模型已导致各种基于元模型的集成框架和相关研究主题的发展。特别是,特定学科的元模型的集成需要基于各个近似误差来评估整个系统误差。结果,需要开发有效的方法来评估系统和子系统级别的元模型保真度。在本文中,我们研究了在子系统级别进行元模型验证的廉价计算方法,并针对两类测试问题评估了两阶段验证方法:1.波音仿真模型的三个响应函数,以及2.波音仿真模型的两个响应函数一组测试优化代码的问题。初步结果表明,两阶段验证方法是有前途的,因为它不需要其他计算上昂贵的学科模型评估,并且可以提供实际误差度量的实际估计。

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