Probit Models with Dummy Endogenous Regressors

J. Arendt, Holm Anders Larsen
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引用次数: 24

Abstract

This study considers heckit-type approximations useful for a number of different trivariate probit models. They are simple to use and have no convergence problems like full maximum likelihood. Simulations show that a heckit and a least squares approximation perform as well as the trivariate probit estimator in small samples when the degree of endogeneity is not too severe. A simple double-heckit and a heteroskedasticity corrected heckit approximation seem particularly robust and promising for testing exogeneity. The methods are used to estimate the impact of physician advice on physical activity, where the heckit approximations work as well as full maximum likelihood.
具有虚拟内生回归量的概率模型
本研究认为heckit类型的近似对许多不同的三变量概率模型是有用的。它们使用起来很简单,没有像完全极大似然这样的收敛问题。仿真结果表明,当内生性程度不太严重时,heckit和最小二乘近似在小样本中的表现与三元概率估计一样好。一个简单的双heckit和异方差校正的heckit近似似乎特别稳健,并有希望测试外源性。这些方法用于估计医生建议对身体活动的影响,其中heckit近似值和完全最大可能性一样有效。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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