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首页> 外文期刊>Journal of Econometrics >Estimation of the binary response model using a mixture of distributions estimator (MOD)
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Estimation of the binary response model using a mixture of distributions estimator (MOD)

机译:使用混合分布估计器(MOD)估计二进制响应模型

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摘要

In this paper, we develop a semiparametric sieve estimator, which is termed a mixture of distributions estimator (MOD), to estimate a binary response model when the distribution of the errors is unknown. The estimator of the distribution function iscomposed of a mixture of smooth distributions, where the number of mixtures increases with the sample size. The model is semiparametric because it is assumed that a parametric index type restriction holds. Optimal rates of convergence are established forthe distribution function under the L_2 norm, and conditions are derived under which estimates of the parametric component are asymptotically normal. An appealing feature about MOD is that it is possible to restrict the estimator of the distribution function, a priori, to be smooth, nonnegative, nondecreasing, and to integrate to one. This has important practical and theoretical implications.
机译:在本文中,我们开发了一种半参数筛估计器(称为混合分布估计器(MOD)),以在误差分布未知时估计二进制响应模型。分布函数的估计值由平滑分布的混合物组成,其中混合物的数量随样本大小的增加而增加。该模型是半参数的,因为它假定参数索引类型限制成立。建立了L_2范数下分布函数的最优收敛速度,并推导了条件,其中参数分量的估计值渐近正态。关于MOD的一个吸引人的特征是,可以将分布函数的估计值先验地限制为平滑,非负,不递减并整合为一个。这具有重要的实践和理论意义。

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