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Robust prediction and extrapolation designs for censored data

机译:审查数据的鲁棒预测和外推设计

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摘要

In this paper we present the construction of robust designs for a possibly misspecified generalized linear regression model when the data are censored. The minimax designs and unbiased designs are found for maximum likelihood estimation in the context of both prediction and extrapolation problems. This paper extends preceding work of robust designs for complete data by incorporating censoring and maximum likelihood estimation. It also broadens former work of robust designs for censored data from others by considering both nonlinearity and much more arbitrary uncertainty in the fitted regression response and by dropping all restrictions on the structure of the regressors. Solutions are derived by a nonsmooth optimization technique analytically and given in full generality. A typical example in accelerated life testing is also demonstrated. We also investigate implementation schemes which are utilized to approximate a robust design having a density. Some exact designs are obtained using an optimal implementation scheme.
机译:在本文中,当数据被审查时,我们提出了针对可能错误指定的广义线性回归模型的稳健设计的构造。在预测和外推问题的背景下,找到了极大极小设计和无偏设计用于最大似然估计。本文通过结合审查和最大似然估计,扩展了针对完整数据的健壮设计的先前工作。通过同时考虑非线性和拟合回归响应中更多的不确定性,以及通过消除对回归结构的所有限制,它还扩大了以前针对其他数据的健壮设计的工作。解决方案是通过非平滑优化技术分析得出的,并且具有完全概括性。还演示了加速寿命测试中的一个典型示例。我们还研究了实现方案,该方案用于近似具有密度的鲁棒设计。使用最佳实施方案可以获得一些精确的设计。

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