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首页> 外文期刊>Journal of applied statistics >Latin hypercube designs based on strong orthogonal arrays and Kriging modelling to improve the payload distribution of trains
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Latin hypercube designs based on strong orthogonal arrays and Kriging modelling to improve the payload distribution of trains

机译:基于强正交阵列和Kriging模型的拉丁超立方体设计,提高火车的有效载荷分配

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摘要

Nowadays, computer experiments are used increasingly more to solve complex engineering and technological issues. Computer experiments are analysed through suitable metamodels acting as statistical interpolators of the simulated input-output data: Kriging is the most appropriate and widely used one. We optimise the braking performance of freight trains through computer experiments and Kriging modelling by focussing on the payload distribution along the train, so as to reduce the effects of in-train forces among wagons during a train emergency braking. One contribution of this manuscript is that to improve the freight train efficiency in terms of braking performance, we consider that the train is composed of several train sections with each one characterised by its own overall payload. A suitable Latin hypercube design is planned for the computer experiment that achieves excellent space-filling properties with a relatively low number of experimental runs. Kriging models with anisotropic covariance function are subsequently applied to assess which is the best payload distribution capable of reducting the in-train forces according to the specific train-set arrangement considered. The results are very satisfactory and confirm that our approach represents a valid method to be successfully applied by interested Railway Undertakings.
机译:如今,计算机实验越来越多地用于解决复杂的工程和技术问题。通过合适的元模型分析计算机实验,作为模拟输入输出数据的统计插值器:Kriging是最合适和广泛使用的。通过通过计算机实验和Kriging建模通过专注于火车的有效载荷分布来优化货运训练的制动性能,从而减少火车紧急制动期间货车中火车势力的影响。这份手稿的一项贡献是在制动性能方面提高货运列车效率,我们认为该列车由几个列车部分组成,每个列车部分都有其所在的整体有效载荷的特征。计划适用于计算机实验的合适的拉丁超立方体设计,以实现具有相对较低数量的实验运行的空间灌装性能。随后应用具有各向异性协方差功能的Kriging模型,以评估,这是能够根据考虑的特定列车组布置减少车内力的最佳有效载荷分布。结果非常令人满意,并确认我们的方法代表了感兴趣的铁路承诺成功应用的有效方法。

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