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Nonparametric interval estimation for the mean of a zero-inflated population

机译:零充气人口平均值的非参数间隔估计

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摘要

In many statistical analysis, data may consist of excess zero values and the non-zero values are highly positively skewed. Confidence intervals based on a normal approximation for such zero-inflated data may have low coverage probabilities. An empirical likelihood (EL) and adjusted empirical likelihood methods are proposed to construct a non-parametric confidence interval for the mean of zero-inflated population, which are very simple and easy to implement. These EL confidence intervals were compared with existing confidence intervals. Simulation studies are carried out. Finally, the method is implemented in a real data set.
机译:在许多统计分析中,数据可以由过量的零值组成,并且非零值高度呈偏斜。基于这种零膨胀数据的正常近似的置信区间可能具有低覆盖概率。提出了经验似然(EL)和调整后的经验似然方法,为零充气群体的平均值构建非参数置信区间,这非常简单且易于实施。将这些EL置信区间与现有的置信区间进行比较。进行仿真研究。最后,该方法在真实数据集中实现。

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