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Binary response correlated random coefficient panel data models

机译:二元响应相关的随机系数面板数据模型

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In this paper, we consider binary response correlated random coefficient (CRC) panel data models which are frequently used in the analysis of treatment effects and demand of products. We focus on the nonparametric identification and estimation of panel data models under unobserved heterogeneity which is captured by random coefficients and when these random coefficients are correlated with regressors. Our identification conditions and estimation are based on the framework of the model with a special regressor, which is a novel approach proposed by Lewbel (1998, 2000) to solve the heterogeneity and endogeneity problem in the binary response models. With the help of the additional information on the special regressor, we can transform a binary response CRC model to a linear moment relation. We also construct a semiparametric estimator for the average slopes and derive the root n-normality result. Further, we propose a nonparametric method to test the correlations between random coefficients and regressors. Simulations are given to show the finite sample performance of our estimators and test statistics. (C) 2015 Elsevier B.V. All rights reserved.
机译:在本文中,我们考虑了二进制响应相关随机系数(CRC)面板数据模型,该模型经常用于分析产品的治疗效果和需求。我们专注于在未观察到的异质性下的面板数据模型的非参数识别和估计,该异质性由随机系数捕获,并且这些随机系数与回归变量相关。我们的识别条件和估计是基于具有特殊回归模型的模型框架,这是Lewbel(1998,2000)提出的解决二元响应模型中异质性和内生性问题的新方法。借助特殊回归器的附加信息,我们可以将二进制响应CRC模型转换为线性矩关系。我们还为平均斜率构造了一个半参数估计量,并得出了根n正态结果。此外,我们提出了一种非参数方法来测试随机系数和回归变量之间的相关性。仿真显示了我们的估计量和测试统计量的有限样本性能。 (C)2015 Elsevier B.V.保留所有权利。

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