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Different Estimation Procedures for the Parameters of the Extended Exponential Geometric Distribution for Medical Data

机译:医学数据扩展指数几何分布参数的不同估计程序

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摘要

We have considered different estimation procedures for the unknown parameters of the extended exponential geometric distribution. We introduce different types of estimators such as the maximum likelihood, method of moments, modified moments, L-moments, ordinary and weighted least squares, percentile, maximum product of spacings, and minimum distance estimators. The different estimators are compared by using extensive numerical simulations. We discovered that the maximum product of spacings estimator has the smallest mean square errors and mean relative estimates, nearest to one, for both parameters, proving to be the most efficient method compared to other methods. Combining these results with the good properties of the method such as consistency, asymptotic efficiency, normality, and invariance we conclude that the maximum product of spacings estimator is the best one for estimating the parameters of the extended exponential geometric distribution in comparison with its competitors. For the sake of illustration, we apply our proposed methodology in two important data sets, demonstrating that the EEG distribution is a simple alternative to be used for lifetime data.
机译:我们已经考虑了扩展指数几何分布的未知参数的不同估计程序。我们介绍了不同类型的估计器,例如最大似然,矩方法,修正矩,L矩,普通和加权最小二乘,百分位数,最大间距乘积和最小距离估计器。通过使用大量的数值模拟来比较不同的估计量。我们发现,对于两个参数,间距估计器的最大乘积具有最小的均方误差和均值相对估计,与其他方法相比,这是最有效的方法。将这些结果与该方法的良好特性(如一致性,渐近效率,正态性和不变性)相结合,我们得出结论,与估计值相比,间距估计器的最大乘积是估计扩展指数几何分布参数的最佳乘积。为了说明起见,我们将我们提出的方法应用于两个重要的数据集,这表明EEG分布是用于生命周期数据的简单替代方法。

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