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The Bootstrap and Multiple Imputations: Harnessing Increased Computing Power for Improved Statistical Tests

The Journal of Economic PerspectivesPublished 1 November 2001
David Brownstone, Robert G. Valletta
Citations138
SJR quartileQ1
SJR score8.26
SNIP5.32

TL;DR

This work provides an intuitive overview of how to apply the bootstrap and multiple imputations techniques, referring to existing theoretical literature and various applied examples to illustrate both their possibilities and their pitfalls.

Abstract

The bootstrap and multiple imputations are two techniques that can enhance the accuracy of estimated confidence bands and critical values. Although they are computationally intensive, relying on repeated sampling from empirical data sets and associated estimates, modern computing power enables their application in a wide and growing number of econometric settings. We provide an intuitive overview of how to apply these techniques, referring to existing theoretical literature and various applied examples to illustrate both their possibilities and their pitfalls.

Keywords

MathematicsEconomics, Econometrics and Finance