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A rule-based method for automated surrogate model selection

机译:一种基于规则的自动代理模型选择方法

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摘要

Surrogate models have been widely used in engineering design because of their capability to approximate computationally complex engineering systems. In practice, the choice of surrogate models is extremely important since there are many types of surrogate models, and they also have different hyper-parameters. Traditional manual selection approaches are very time-consuming and cannot be generalized. To address these challenges, an evolutionary algorithm (EA)-based approaches are proposed and studied. However, they lack interpretability and are computationally expensive. To address these gaps, we create a rule-based method for an automatic surrogate model selection called AutoSM. The drastic increase in the selection pace by pre-screening of surrogate model types based on selection rule extraction is the scientific contribution of our proposed method. First, an interpretable decision tree is built to map four critical features, including problem scale, noise, size of sample and nonlinearity, to the types of surrogate model and select the promising surrogate model; then, a genetic algorithm (GA) is used to find the appropriate hyper-parameters for each selected surrogate model. The AutoSM is tested with three theoretical problems and two engineering problems, including a hot rod rolling and a blowpipe design problem. According to the empirical results, using the proposed AutoSM, we can find the promising surrogate model and associated hyper-parameter in 9 times less than other automatic selection approaches such as concurrent surrogate model selection (COSMOS) while maintaining the same accuracy and robustness in surrogate model selection. Besides, the proposed AutoSM, unlike previous FA-based automatic surrogate model selection methods, is not a black box and is interpretable.
机译:代理模型已广泛用于工程设计,因为它们可以近似计算复杂的工程系统。在实践中,替代模型的选择非常重要,因为有许多类型的代理模型,它们也具有不同的超参数。传统的手动选择方法非常耗时,不能概括。为了解决这些挑战,提出并研究了基于进化算法(EA)的方法。但是,它们缺乏可解释性,并且是计算昂贵的。为了解决这些空隙,我们为自动代理模型选择创建了一种基于规则的方法,称为AutoSM。基于选择规则提取的代理模型类型的预筛选,选择步伐的急剧增加是我们提出的方法的科学贡献。首先,建立一个可解释的决策树来映射四个关键特征,包括问题刻度,噪音,样本和非线性大小,对代理模型的类型,并选择有前途的代理模型;然后,遗传算法(GA)用于找到每个所选代理模型的适当的超参数。通过三个理论问题和两个工程问题测试Autosm,包括热棒轧制和吹料设计问题。根据经验结果,使用所提出的Autosm,我们可以在比其他自动选择方法(如并发代理模型选择(COSMO))等其他自动选择方法中找到有前途的代理模型和相关的超参数,同时保持同样的准确性和鲁棒性模型选择。此外,与以前的FA基自动代理模型选择方法不同,拟议的Autosm并不是一个黑匣子,也是可解释的。

著录项

  • 来源
    《Advanced engineering informatics》 |2020年第8期|101123.1-101123.16|共16页
  • 作者单位

    School of Mechanical Engineering Institute for Industrial Engineering Beijing Institute of Technology Beijing 100081 China;

    Systems Realization Laboratory School of Industrial and Systems Engineering University of Oklahoma OK 73019 USA;

    School of Mechanical Engineering Institute for Industrial Engineering Beijing Institute of Technology Beijing 100081 China;

    School of Mechanical Engineering Institute for Industrial Engineering Beijing Institute of Technology Beijing 100081 China;

    Systems Realization Laboratory School of Industrial and Systems Engineering University of Oklahoma OK 73019 USA;

    Systems Realization Laboratory School of Industrial and Systems Engineering University of Oklahoma OK 73019 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Surrogate modeling; Automated sunrogate model selection; Rule-based method; Metamodeling;

    机译:代理建模;自动播放模型选择;基于规则的方法;元模糊;

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