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An Improved Inference for IV Regressions

Liyu Dou, Pengjin Min, Wenjie Wang and Yichong Zhang

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Abstract: Empirical instrumental variables (IV) studies often report separate results based on low-dimensional instruments and many base instruments. This paper proposes a combination test that integrates these commonly reported statistics. The test linearly combines a cluster-robust Wald statistic based on low-dimensional IVs with leave-one-cluster-out Lagrangian Multiplier (LM) and Anderson-Rubin (AR) statistics constructed from many IVs. Under strong identification of the low-dimensional IVs, we establish joint asymptotic normality and asymptotic optimality of the proposed test. The procedure yields costless efficiency improvements, automatically adapts to weak identification of many instruments, and is accompanied by a practical rule of thumb for assessing efficiency gains.

Date: 2025-06, Revised 2026-02
New Economics Papers: this item is included in nep-ecm
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