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USING A BIMODAL KERNEL FOR A NONPARAMETRIC REGRESSION SPECIFICATION TEST

机译:使用双模核进行非参数回归规范测试

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摘要

For a nonparametric regression model with a fixed design, we consider the model specification test based on a kernel. We find that a bimodal kernel is useful for the model specification test with a correlated error, whereas a conventional unimodal kernel is useful only for an iid error. Another finding is that the model specification test suffers from a convergence rate change depending on whether the errors are correlated or not. These results are verified by deriving an asymptotic null distribution and asymptotic (local) power, and by performing a simulation. The validity of the bimodal kernel for testing is demonstrated with the "drum roller" data (see Laslett (1994) and Altman (1994)).
机译:对于具有固定设计的非参数回归模型,我们考虑基于内核的模型规格测试。我们发现,双峰核可用于具有相关误差的模型规范测试,而常规单峰核仅可用于iid误差。另一个发现是模型规范测试的收敛速度会发生变化,具体取决于误差是否相关。通过得出渐近零分布和渐近(局部)幂并通过执行仿真来验证这些结果。用“鼓辊”数据证明了双峰核用于测试的有效性(参见Laslett(1994)和Altman(1994))。

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