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首页> 外文期刊>Journal of Econometrics >Nonlinear IV unit root tests in panels with cross-sectional dependency
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Nonlinear IV unit root tests in panels with cross-sectional dependency

机译:具有截面依赖性的面板中的非线性IV单位根检验

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We propose a unit root test for panels with cross-sectional dependency. We allow general dependency structure among the innovations that generate data for each of the cross-sectional units. Each unit may have different sample size, and therefore unbalanced panels are also permitted in our framework. Yet, the test is asymptotically normal, and does not require any tabulation of the critical values. Our test is based on nonlinear IV estimation of the usual augmented Dickey-Fuller type regression foreach cross-sectional unit, using as instruments nonlinear transformations of the lagged levels. The actual test statistic is simply defined as a standardized sum of individual IV t-ratios. We show in the paper that such a standardized sum of individual IV t-ratios has limit normal distribution as long as the panels have large individual time series observations and are asymptotically balanced in a very weak sense. We may have the number of cross-sectional units arbitrarily small or large. In particular,the usual sequential asymptotics, upon which most of the available asymptotic theories for panel unit root models heavily rely, are not required. Finite sample performance of our test is examined via a set of simulations, and compared with those of other commonly used panel unit root tests. Our test generally performs better than the existing tests in terms of both finite sample sizes and powers. We apply our nonlinear IV method to test for the purchasing power parity hypothesis in panels.
机译:我们建议对具有横截面依赖性的面板进行单位根检验。我们允许在为每个横截面单元生成数据的创新中采用一般的依赖关系结构。每个单元的样本量可能不同,因此在我们的框架中也允许使用不平衡的面板。但是,该测试是渐近正常的,不需要任何关键值列表。我们的测试基于对每个横截面单位的常规增强Dickey-Fuller类型回归的非线性IV估计,并使用了滞后水平的非线性变换作为工具。实际的测试统计量简单定义为各个IV t比率的标准化总和。我们在论文中表明,只要面板具有较大的单个时间序列观测值并且在非常弱的意义上渐近平衡,则这样的单个IV t比率的标准化总和便会限制正态分布。我们的横截面单元数可以任意小或大。特别是,不需要用于面板单位根模型的大多数可用渐近理论都严重依赖的通常的顺序渐近论。我们通过一系列模拟来检验我们测试的有限样本性能,并将其与其他常用面板单位根测试的性能进行比较。就有限样本量和功效而言,我们的测试通常比现有测试表现更好。我们应用非线性IV方法来检验面板中的购买力平价假设。

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