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首页> 外文期刊>Econometrics >Testing in a Random Effects Panel Data Model with Spatially Correlated Error Components and Spatially Lagged Dependent Variables
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Testing in a Random Effects Panel Data Model with Spatially Correlated Error Components and Spatially Lagged Dependent Variables

机译:在具有空间相关的误差分量和空间滞后因变量的随机效应面板数据模型中进行测试

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We propose a random effects panel data model with both spatially correlated error components and spatially lagged dependent variables. We focus on diagnostic testing procedures and derive Lagrange multiplier (LM) test statistics for a variety of hypotheses within this model. We first construct the joint LM test for both the individual random effects and the two spatial effects (spatial error correlation and spatial lag dependence). We then provide LM tests for the individual random effects and for the two spatial effects separately. In addition, in order to guard against local model misspecification, we derive locally adjusted (robust) LM tests based on the Bera and Yoon principle (Bera and Yoon, 1993). We conduct a small Monte Carlo simulation to show the good finite sample performances of these LM test statistics and revisit the cigarette demand example in Baltagi and Levin (1992) to illustrate our testing procedures.
机译:我们提出了一个具有空间相关误差分量和空间滞后因变量的随机效应面板数据模型。我们专注于诊断测试程序,并针对该模型内的各种假设得出拉格朗日乘数(LM)测试统计信息。我们首先针对单个随机效应和两个空间效应(空间误差相关性和空间滞后依赖性)构建联合LM检验。然后,我们分别为单个随机效应和两个空间效应提供LM测试。另外,为了防止局部模型的错误指定,我们基于贝拉和约恩原理推导了局部调整(稳健)的LM测试(贝拉和约恩,1993)。我们进行了一个小的蒙特卡洛模拟,以显示这些LM测试统计数据的良好有限样本性能,并重新访问Baltagi和Levin(1992)中的卷烟需求示例,以说明我们的测试程序。

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