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Grouped effects estimators in fixed effects models

机译:固定效应模型中的分组效应估计量

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摘要

We consider estimation of nonlinear panel data models with common and individual specific parameters. Fixed effects estimators are known to suffer from the incidental parameters problem, which can lead to large biases in estimates of common parameters. Pooled estimators, which ignore heterogeneity across individuals, are also generally inconsistent. We assume that individuals in the data are grouped on multiple levels where groups are defined by some observable external classification. We consider "group effects" estimators, where individual specific parameters are assumed common across groups at some level. We provide conditions under which group effects estimates of common parameters are asymptotically unbiased and normal. The conditions suggest a tradeoff between two sources of bias, one due to incidental parameters and the other due to misspecification of unobserved heterogeneity. (C) 2014 Published by Elsevier B.V.
机译:我们考虑对具有共同和个别特定参数的非线性面板数据模型进行估计。已知固定效应估计器会遇到附带参数问题,这可能会导致通用参数估计值出现较大偏差。忽略个体间异质性的集合估计量通常也不一致。我们假设数据中的个人按多个级别分组,其中通过一些可观察的外部分类来定义组。我们考虑“群体效应”估算器,其中各个特定参数在某个级别上被认为是跨群体通用的。我们提供了条件,在这些条件下,常用参数的群效应估计是渐近无偏的和正常的。这些条件表明在两种偏差来源之间进行权衡,一种是由于附带的参数,另一种是由于未观察到的异质性的错误指定。 (C)2014由Elsevier B.V.发布

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