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Updating a nonlinear discriminant function estimated from a mixture of two inverse Weibull distributions

机译:更新由两个反向Weibull分布的混合物估计的非线性判别函数

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摘要

In this paper, we investigate the problem of updating a discriminant function on the basis of data of unknown origin. We consider the updating procedure for the nonlinear discriminant function on the basis of two inverse Weibull distributions in situations when the additional observations are mixed or classified. Then, we introduce the nonlinear discriminant function of the underlying model. Also, we calculate the total probabilities of misclassification. In addition, we investigate the performance of the updating procedures through series of simulation experiments by means of the relative efficiencies. Finally, we analyze a simulated data set by using the findings of the paper.
机译:在本文中,我们研究了基于未知来源的数据更新判别函数的问题。在混合或分类附加观测值的情况下,我们基于两个逆威布尔分布考虑非线性判别函数的更新过程。然后,我们介绍了基础模型的非线性判别函数。此外,我们计算了错误分类的总概率。此外,我们通过相对效率的一系列模拟实验来研究更新程序的性能。最后,我们利用本文的发现分析了一个模拟的数据集。

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