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首页> 外文期刊>Communications in Statistics >Robust surface estimation in multi-response multistage statistical optimization problems
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Robust surface estimation in multi-response multistage statistical optimization problems

机译:多响应多阶段统计优化问题中的鲁棒表面估计

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摘要

As the ordinary least squares (OLS) method is very sensitive to outliers as well as to correlated responses, a robust coefficient estimation method is proposed in this paper for multi-response surfaces in multistage processes based on M-estimators. In this approach, experimental designs are used in which the intermediate response variables may act as covariates in the next stages. The performances of both the ordinary multivariate OLS and the proposed robust multi-response surface approach are analyzed and compared through extensive simulation experiments. Sum of the squared errors in estimating the regression coefficients reveals the efficiency of the proposed robust approach.
机译:由于普通最小二乘法(OLS)对异常值和相关响应非常敏感,因此针对多阶段过程中的多响应曲面,基于M估计量,提出了一种鲁棒的系数估计方法。在这种方法中,使用实验设计,其中中间响应变量可以在下一阶段充当协变量。通过广泛的仿真实验,分析和比较了普通多元OLS和建议的鲁棒多响应曲面方法的性能。在估计回归系数时平方误差的总和揭示了所提出的鲁棒方法的效率。

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