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首页> 外文期刊>Statistica Sinica >OPTIMAL DESIGN FOR MULTIPLE REGRESSION WITH INFORMATION DRIVEN BY THE LINEAR PREDICTOR
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OPTIMAL DESIGN FOR MULTIPLE REGRESSION WITH INFORMATION DRIVEN BY THE LINEAR PREDICTOR

机译:用线性预测器驱动的信息的多元回归最佳设计

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In this paper we consider nonlinear models with an arbitrary number of covariates for which the information additionally depends on the value of the linear predictor. We establish the general result that for many optimality criteria the support points of an optimal design lie on the edges of the design region, if this design region is a polyhedron. Based on this result we show that under certain conditions the D-optimal designs can be constructed from the D-optimal designs in the marginal models with single covariates. This can be applied to a broad class of models, which include the Poisson, the negative binomial as well as the proportional hazards model with both type I and random censoring.
机译:在本文中,我们考虑具有任意数量的协变量的非线性模型,其中信息还取决于线性预测器的值。 我们建立了许多最优标准的一般结果,即如果该设计区域是多面体,则最佳设计的支持点位于设计区域的边缘。 基于这一结果,我们表明,在某些条件下,D-OPTEMAL设计可以由具有单一协变量的边缘模型中的D-OPTEMAL设计构建。 这可以应用于广泛的模型,包括泊松,负二项式以及具有I型和随机审查的比例危险模型。

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