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An improved and efficient biased estimation technique in logistic regression model

机译:逻辑回归模型中改进有效的偏置估计技术

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摘要

In this article, we propose a new improved and efficient biased estimation method which is a modified restricted Liu-type estimator satisfying some sub-space linear restrictions in the binary logistic regression model. We study the properties of the new estimator under the mean squared error matrix criterion and our results show that under certain conditions the new estimator is superior to some other estimators. Moreover, a Monte Carlo simulation study is conducted to show the performance of the new estimator in the simulated mean squared error and predictive median squared errors sense. Finally, a real application is considered.
机译:在本文中,我们提出了一种新的改进和有效的偏置估计方法,该估计方法是一种修改的限制刘型估计,满足二元逻辑回归模型中的一些子空间线性限制。我们在平均方形错误矩阵标准下研究了新估计器的性质,我们的结果表明,在某些条件下,新的估算器优于其他一些估算。此外,进行了蒙特卡罗仿真研究以显示模拟平均平方误差和预测中值方差误差感的新估计器的性能。最后,考虑了真正的应用程序。

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