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Robust Standard Errors in Small Samples: Some Practical Advice

机译:小样本中的稳健标准误差:一些实用建议

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We study the properties of heteroskedasticity-robust confidence intervals for regression parameters. We show that confidence intervals based on a degrees-of-freedom correction suggested by Bell and McCaffrey (2002) are a natural extension of a principled approach to the Behrens-Fisher problem. We suggest a further improvement for the case with clustering. We show that these standard errors can lead to substantial improvements in coverage rates even for samples with fifty or more clusters.We recommend that researchers routinely calculate the Bell-McCaffrey degrees-of-freedom adjustment to assess potential problems with conventional robust standard errors.
机译:我们研究了异方差-稳健置信区间的回归参数属性。我们证明,基于贝尔和麦卡弗里(2002)建议的自由度校正的置信区间是对贝伦斯-费舍尔问题的一种有原则方法的自然延伸。对于群集情况,我们建议进一步改进。我们证明,即使对于具有五十个或更多簇的样本,这些标准误差也可以极大地提高覆盖率。我们建议研究人员常规计算Bell-McCaffrey自由度调整量,以评估具有常规稳健标准误差的潜在问题。

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