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Should instrumental variables be used as matching variables?

Research in EconomicsPublished 15 February 2016
Jeffrey M. Wooldridge
Citations146
SJR quartileQ3
SJR score0.35
SNIP0.46

Abstract

I show that for a linear model and estimating a coefficient on an endogenous explanatory variable, adding covariates that satisfy instrumental variables assumptions increases the amount of inconsistency. A special case is an endogenous binary treatment and estimating a constant treatment effect when matching on covariates that satisfy instrumental variables, rather than ignoribility, assumptions. I also establish a general result that implies that regression adjustment using the propensity score based on instrumental variables actually maximizes the inconsistency among regression-type estimators.

Keywords

Mathematics