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Optimal Engineering System Design Guided by Data-Mining Methods

机译:数据挖掘方法指导的最佳工程系统设计

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摘要

An optimal engineering design problem is challenging because nonlinear objective functions usually need to be evaluated in a high-dimensional design space. This article presents a data-mining-aided optimal design method, that is able to find a competitive design solution with a relatively low computational cost. The method consists of four components: (1) a uniform-coverage selection method, that chooses design representatives from among a large number of original design alternatives for a nonrectangular design space; (2) feature functions, of which evaluation is computationally economical as the surrogate for the design objective function; (3) a clustering method, that generates a design library based on the evaluation of feature functions instead of an objective function; and (4) a classification method to create the design selection rules, eventually leading us to a competitive design. Those components are implemented to facilitate the optimal fixture layout design in a multistation panel assembly process. The benefit of the data-mining-aided optimal design is clearly demonstrated by comparison with both local optimization methods (e.g., simplex search) and random search-based optimizations (e.g., simulated annealing).
机译:最佳的工程设计问题具有挑战性,因为通常需要在高维设计空间中评估非线性目标函数。本文提出了一种数据挖掘辅助的最佳设计方法,该方法能够以较低的计算成本找到有竞争力的设计解决方案。该方法包括四个部分:(1)统一覆盖率选择方法,该方法从非矩形设计空间的大量原始设计替代方案中选择设计代表; (2)特征函数,其评估在计算上是经济的,可以代替设计目标函数; (3)一种聚类方法,其基于特征函数而不是目标函数的评估来生成设计库; (4)建立设计选择规则的分类方法,最终使我们获得竞争性设计。在多工位面板组装过程中,实施这些组件是为了促进最佳的灯具布局设计。通过与局部优化方法(例如,单纯形搜索)和基于随机搜索的优化(例如,模拟退火)进行比较,可以清楚地证明数据挖掘辅助的最佳设计的优势。

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