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首页> 外文期刊>Journal of Mathematics and Statistics >Bootstrap Method for Dependent Data Structure and Measure of Statistical Precision | Science Publications
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Bootstrap Method for Dependent Data Structure and Measure of Statistical Precision | Science Publications

机译:依赖数据结构的Bootstrap方法和统计精度的度量科学出版物

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> Problem statement: This article emphasized on the construction of valid inferential procedures for an estimator θ^ as a measure of its statistical precision for dependent data structure. Approach: The truncated geometric bootstrap estimates of standard error and other measures of statistical precision such as bias, coefficient of variation, ratio and root mean square error are considered. Results: We extend it to other measures of statistical precision such as bootstrap confidence interval for an estimator θ^ and illustrate with real geological data. Conclusion/Recommendations: The bootstrap estimates of standard error and other measures of statistical accuracy such as bias, ratio, coefficient of variation and root mean square error reveals the suitability of the method for dependent data structure.
机译: > 问题陈述:本文着重介绍了针对估计器θ ^ 的有效推论过程的构造,以衡量其对相关数据结构的统计精度。 。 方法:考虑标准误差的截断几何自举估计以及其他统计精度度量,例如偏差,变异系数,比率和均方根误差。 结果:我们将其扩展到其他统计精度指标上,例如估算器θ ^ 的引导置信区间,并用真实的地质数据进行说明。 结论/建议:标准误差的自举估计以及其他统计准确性的度量标准,例如偏差,比率,变异系数和均方根误差,表明该方法适用于相关数据结构。

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