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多层次线性模型中估计量的比较研究。

A comparative study of estimators in multilevel linear models.

机构信息

Department of Statistics Govt Post Graduate College, Abbottabad, Pakistan.

Department of Statistics Govt Post Graduate College, Kohat, Pakistan.

出版信息

PLoS One. 2021 Nov 18;16(11):e0259960. doi: 10.1371/journal.pone.0259960. eCollection 2021.

Abstract

Multilevel Models are widely used in organizational research, educational research, epidemiology, psychology, biology and medical fields. In this paper, we recommend the situations where Bootstrap procedures through Minimum Norm Quadratic Unbiased Estimator (MINQUE) can be extremely handy than that of Restricted Maximum Likelihood (REML) in multilevel level linear regression models. In our simulation study the bootstrap by means of MINQUE is superior to REML in conditions where normality does not hold. Moreover, the real data application also supports our findings in terms of accuracy of estimates and their standard errors.

摘要

多层次模型广泛应用于组织研究、教育研究、流行病学、心理学、生物学和医学领域。在本文中,我们建议在多层次线性回归模型中,通过最小范数二次无偏估计量(MINQUE)进行自举程序的情况比限制最大似然(REML)更为方便。在我们的模拟研究中,在非正态性的情况下,MINQUE 自举法优于 REML。此外,实际数据的应用也支持了我们在估计值及其标准误差的准确性方面的发现。

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本文引用的文献

1
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