Iterative Estimation of Nonparametric Regressions with Continuous Endogenous Variables and Discrete Instruments
Samuele Centorrino, Frédérique Fève, Jean-Pierre Florens
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We consider a nonparametric regression model with continuous endogenous independent variables when only discrete instruments are available that are independent of the error term. Although this framework is very relevant for applied research, its implementation is challenging, as the regression function becomes the solution to a nonlinear integral equation. We propose a simple iterative procedure to estimate such models and showcase some of its asymptotic properties. In a simulation experiment, we detail its implementation in the case when the instrumental variable is binary. We conclude with an empirical application to returns to education.