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A New Estimation Method Based on Order Statistics in the Families of Symmetric Location-scale Distributions

机译:对称位置尺度分布族中基于阶次统计的新估计方法

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In this study, new unbiased and nonlinear estimators based on order statistics are proposed for the family of symmetric location-scale distributions and these estimators can be computed from both uncensored and symmetric doubly Type II censored samples. In addition, other relevant unbiased estimators are proposed to estimate standard deviations of these new estimators. A simulation study has been performed to evaluate the performance of the new estimators compared to BLU estimators for small sample sizes. As a result of the simulation study, the new estimators proposed for the location-scale family in general performed nearly as good as BLU estimators. Furthermore, the computational advantage of the proposed estimators over BLU and ML estimators are worthy of notice. In addition, these new estimators have been applied to real data, and the estimation results obtained have been compatible with those of BLUE methods.
机译:在这项研究中,针对对称位置尺度分布族,提出了基于阶次统计量的新的无偏和非线性估计器,并且这些估计器可以从未经审查的和对称的双重II型删失样本中计算出来。另外,提出了其他相关的无偏估计量来估计这些新估计量的标准差。对于小样本量,已进行了仿真研究,以评估新估算器与BLU估算器的性能。作为模拟研究的结果,为位置范围族提出的新估计量总体上与BLU估计量差不多。此外,与BLU和ML估算器相比,拟议的估算器的计算优势值得关注。此外,这些新的估算器已应用于实际数据,并且获得的估算结果与BLUE方法的估算结果兼容。

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