Jackknife Inference for Fixed Effects Models

Abstract

This paper develops a general method of inference for fixed effects models which is (i) automatic, (ii) computationally inexpensive, (iii) tuning parameter-free, and (iv) highly model agnostic. Specifically, we show how to combine a collection of subsample estimators into a jackknife t-statistic, from which hypothesis tests, confidence intervals, and p-values are readily obtained.

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