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A New Data-Driven Design Method for Thin-Walled Vehicular Structures Under Crash Loading

机译:一种新的数据驱动设计方法,用于崩溃负载下的薄壁车辆结构

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A new design methodology based on data mining theory has been proposed and used in the vehicle crashworthiness design. The method allows exploring the big dataset of crash simulations to discover the underlying complicated relationships between response and design variables, and derive design rules based on the structural response to make decisions towards the component design. An S-shaped beam is used as an example to demonstrate the performance of this method. A large amount of simulations are conducted and the results form a big dataset. The dataset is then mined to build a decision tree. Based on the decision tree, the interrelationship among the geometric design variables are revealed, and then the design rules are derived to produce the design cases with good energy absorbing capacity. The accuracy of this method is verified by comparing the data mining model prediction and simulation data. The result indicates that the data mining based methodology could overcome the weakness of traditional design method, i.e. lack of capability in information discovery from big datasets.
机译:已经提出了一种基于数据挖掘理论的新设计方法,并用于车辆崩溃设计。该方法允许探索崩溃模拟的大数据集,以发现响应和设计变量之间的底层复杂关系,以及基于结构响应来实现对组件设计的决策的设计规则。使用S形光束作为示例以证明该方法的性能。进行大量模拟,结果形成大数据集。然后挖掘数据集以构建决策树。基于决策树,揭示了几何设计变量之间的相互关系,然后导出设计规则以产生具有良好能量吸收能力的设计案例。通过比较数据挖掘模型预测和仿真数据来验证该方法的准确性。结果表明,基于数据挖掘的方法可以克服传统设计方法的弱点,即缺乏信息发现的能力从大数据集。

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