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Non-nested models and the likelihood ratio statistic: A comparison of simulation and bootstrap based tests

机译:非嵌套模型和似然比统计:模拟和基于bootstrap的测试的比较

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摘要

We consider an alternative use of simulation in the context of using the Likelihood-Ratio statistic to test non-nested models. To date simulation has been used to estimate the Kullback-Leibler measure of closeness between two densities, which in turn 'mean adjusts' the Likelihood-Ratio statistic. Given that this adjustment is still based upon asymptotic arguments, an alternative procedure is to utilise bootstrap procedures to construct the empirical density. To our knowledge this study represents the first comparison of the properties of bootstrap and simulation-based tests applied to non-nested tests. More specifically, the design of experiments allows us to comment on the relative performance of these two testing frameworks across models with varying degrees of nonlinearity. In this respect although the primary focus of the paper is upon the relative evaluation of simulation and bootstrap-based nonnested procedures in testing across a class of nonlinear threshold models, the inclusion of a similar analysis of the more standard linear/log-linear models provides a point of comparison.
机译:在使用似然比统计量测试非嵌套模型的情况下,我们考虑使用模拟的替代方法。迄今为止,模拟已用于估计两个密度之间的紧密度的Kullback-Leibler量度,这反过来“均值”调整了似然比统计量。鉴于此调整仍基于渐近论证,另一种方法是利用自举法构建经验密度。就我们所知,这项研究代表了将引导程序和基于模拟的测试应用于非嵌套测试的特性的首次比较。更具体地说,实验的设计使我们能够在非线性程度不同的模型之间对这两个测试框架的相对性能进行评论。在这方面,尽管本文的主要重点是在跨一类非线性阈值模型进行测试时对仿真和基于引导程序的非嵌套过程的相对评估,但对更标准的线性/对数线性模型的相似分析的纳入可提供比较点。

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