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Feasibility analysis of black-box processes using an adaptive sampling kriging based method

机译:基于自适应采样克里金法的黑匣子流程可行性分析

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Accurate knowledge of the effect of parameter uncertainty on process performance is vital for optimal and feasible operation. The objective of this work is to develop a systematic methodology for performing feasibility analysis over a multivariate factor space when the explicit form of a process model is lacking or when its evaluation is expensive. For this purpose a Kriging based surrogate approximation of the process model based on experimental or simulated data is used. In this work, two issues are addressed: feasibility evaluation of black-box processes using Kriging and introduction of an adaptive sampling methodology in order to minimize sampling cost, while maintaining feasibility space accuracy. The adaptive sampling strategy identifies critical regions and directs the search towards regions where feasibility boundaries exist or where the Kriging prediction uncertainty is high. The average error of Kriging prediction as well as cross-validation methods are used to validate the robustness of the produced model of the initial experimental design which is found to highly affect the final prediction.
机译:准确了解参数不确定性对过程性能的影响对于优化可行的操作至关重要。这项工作的目的是开发一种系统的方法,用于在缺乏过程模型的显式形式或评估成本很高的情况下,对多元因素空间进行可行性分析。为此,使用基于Kriging的基于实验或模拟数据的过程模型替代近似。在这项工作中,解决了两个问题:使用Kriging对黑匣子流程进行可行性评估,并引入自适应采样方法以最小化采样成本,同时保持可行性空间精度。自适应采样策略可识别关键区域,并将搜索引导至存在可行性边界或克里格预测不确定性较高的区域。使用克里格预测的平均误差以及交叉验证方法来验证所产生的初始实验设计模型的鲁棒性,该模型会严重影响最终预测。

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