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VALID TWO-STEP IDENTIFICATION-ROBUST CONFIDENCE SETS FOR GMM
VALID TWO-STEP IDENTIFICATION-ROBUST CONFIDENCE SETS FOR GMM
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VALID TWO-STEP IDENTIFICATION-ROBUST CONFIDENCE SETS FOR GMM
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VALID TWO-STEP IDENTIFICATION-ROBUST CONFIDENCE SETS FOR GMM
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VALID TWO-STEP IDENTIFICATION-ROBUST CONFIDENCE SETS FOR GMM
VALID TWO-STEP IDENTIFICATION-ROBUST CONFIDENCE SETS FOR GMM
Journal Article

VALID TWO-STEP IDENTIFICATION-ROBUST CONFIDENCE SETS FOR GMM

2018
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Overview
In models with potentially weak identification, researchers often decide whether to report a robust confidence set based on an initial assessment of model identification. Two-step procedures of this sort can generate large coverage distortions for reported confidence sets, and existing procedures for controlling these distortions are quite limited. This paper introduces a generally applicable approach to detecting weak identification and constructing two-step confidence sets in GMM. This approach controls coverage distortions under weak identification and indicates strong identification, with probability tending to 1 when the model is well identified.
Publisher
MIT Press,MIT Press Journals, The