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首页> 外文期刊>Journal of Statistical Planning and Inference >A note on all-bias designs with applications in spline regression models
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A note on all-bias designs with applications in spline regression models

机译:关于全偏差设计及其在样条回归模型中的应用的说明

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摘要

If a model is fitted to empirical data, bias can arise from terms which are not incorporated in the model assumptions. As a consequence the commonly used optimality criteria based on the generalized variance of the estimator of the model parameters may not lead to efficient designs for the statistical analysis. In this note some general aspects of all-bias designs are presented, which were introduced in this context by Box and Draper (1959). Using an interesting correspondence between the points of all-bias designs and the knots of quadrature formulas we establish sufficient conditions such that a given design is an all-bias design. The results are illustrated in the special case of spline regression models. In particular our results generalize recent findings of Woods and Lewis (2006).
机译:如果将模型拟合到经验数据,则可能会因未纳入模型假设的术语而产生偏差。结果,基于模型参数的估计器的广义方差的常用的最优性标准可能不会导致用于统计分析的有效设计。本说明中介绍了全偏置设计的一些一般方面,Box and Draper(1959)在此背景下进行了介绍。使用全偏向设计的点与正交公式的结点之间的有趣关系,我们建立了足够的条件,以使给定的设计成为全偏向设计。在样条回归模型的特殊情况下说明了结果。特别是,我们的结果概括了伍兹和刘易斯(2006)的最新发现。

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