Reworking wild bootstrap-based inference for clustered errors

被引:5
|
作者
Webb, Matthew D. D. [1 ]
机构
[1] Carleton Univ, Dept Econ, Ottawa, ON, Canada
关键词
DIFFERENCE-IN-DIFFERENCES; ROBUST STANDARD ERRORS; SMALL NUMBER;
D O I
10.1111/caje.12661
中图分类号
F [经济];
学科分类号
02 ;
摘要
Cluster-robust inference is increasingly common in empirical research. With few clusters, inference is often conducted using the wild cluster bootstrap. With conventional bootstrap weights the set of valid P$$ P $$-values can create ambiguities in inference. I consider several modifications to the bootstrap procedure to resolve these ambiguities. Monte Carlo simulations provide evidence that both a new 6-point bootstrap weight distribution and a kernel density estimation approach improve the reliability of inference. A brief empirical example highlights the implications of these findings.
引用
收藏
页码:839 / 858
页数:20
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