Identification of and Correction for Publication Bias
Author(s) -
Isaiah Andrews,
Maximilian Kasy
Publication year - 2019
Publication title -
american economic review
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 16.936
H-Index - 297
eISSN - 1944-7981
pISSN - 0002-8282
DOI - 10.1257/aer.20180310
Subject(s) - replication (statistics) , estimator , publication bias , inference , identification (biology) , econometrics , meta analysis , computer science , statistical inference , statistics , confidence interval , psychology , artificial intelligence , mathematics , biology , medicine , botany
Some empirical results are more likely to be published than others. Selective publication leads to biased estimates and distorted inference. We propose two approaches for identifying the conditional probability of publication as a function of a study’s results, the first based on systematic replication studies and the second on meta-studies. For known conditional publication probabilities, we propose bias-corrected estimators and confidence sets. We apply our methods to recent replication studies in experimental economics and psychology, and to a meta-study on the effect of the minimum wage. When replication and meta-study data are available, we find similar results from both.(JEL C13, C90, I23, J23, J38, L82)
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