This paper proposes novel inference procedures for instrumental variable models in the presence of many, potentially weak instruments that are robust to the presence of heteroskedasticity. First, we provide an Anderson-Rubin-type test for the entire parameter vector that is valid under assumptions weaker than previously proposed Anderson-Rubin-type tests. Second, we consider the case of testing a subset of parameters under the assumption that a consistent estimator for the parameters not under test exists. We show that under the null, the proposed statistics have Gaussian limiting distributions and derive alternative chi-square approximations. An extensive simulation study shows the competitive finite sample properties in terms of size and power of our procedures. Finally, we provide an empirical application using college proximity instruments to estimate the returns to education.
机构:
Hiroshima Univ, Grad Sch Social Sci, 1-2-1 Kagamiyama, Higashihiroshima 7398525, JapanHiroshima Univ, Grad Sch Social Sci, 1-2-1 Kagamiyama, Higashihiroshima 7398525, Japan
Wang, Wenjie
Kaffo, Maximilien
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Int Monetary Fund, 700 19th St NW, Washington, DC 20431 USAHiroshima Univ, Grad Sch Social Sci, 1-2-1 Kagamiyama, Higashihiroshima 7398525, Japan
机构:
Chinese Univ Hong Kong, Dept Stat, Hong Kong, Peoples R ChinaChinese Univ Hong Kong, Dept Stat, Hong Kong, Peoples R China
Lin, Yiqi
Windmeijer, Frank
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Univ Oxford, Dept Stat, Oxford OX1 1NF, England
Univ Oxford, Nuffield Coll, Oxford, EnglandChinese Univ Hong Kong, Dept Stat, Hong Kong, Peoples R China
Windmeijer, Frank
Song, Xinyuan
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Chinese Univ Hong Kong, Dept Stat, Hong Kong, Peoples R ChinaChinese Univ Hong Kong, Dept Stat, Hong Kong, Peoples R China
Song, Xinyuan
Fan, Qingliang
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Chinese Univ Hong Kong, Dept Econ, Hong Kong, Peoples R China
Chinese Univ Hong Kong, Dept Econ, Shatin, 903 Esther Lee Bldg, Hong Kong, Peoples R ChinaChinese Univ Hong Kong, Dept Stat, Hong Kong, Peoples R China