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Specification tests based on MCMC output

机译:基于MCMC输出的规范测试

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摘要

Two test statistics are proposed to determine model specification after a model is estimated by an MCMC method. The first test is the MCMC version of IOSA test and its asymptotic null distribution is normal. The second test is motivated from the power enhancement technique of Fan et al. (2015). It combines a component (J(1)) that tests a null point hypothesis in an expanded model and a power enhancement component (J(0)) obtained from the first test. It is shown that J(0) converges to zero when the null model is correctly specified and diverges when the null model is misspecified. Also shown is that J(1) is asymptotically chi(2)-distributed, suggesting that the second test is asymptotically pivotal, when the null model is correctly specified. The main feature of the first test is that no alternative model is needed. The second test has several properties. First, its size distortion is small and hence bootstrap methods can be avoided. Second, it is easy to compute from MCMC output and hence is applicable to a wide range of models, including latent variable models for which frequentist methods are difficult to use. Third, when the test statistic rejects the null model and"! takes a large value, the test suggests the source of misspecification. The finite sample performance is investigated using simulated data. The method is illustrated in a linear regression model, a linear state-space model, and a stochastic volatility model using real data. (C) 2018 Elsevier B.V. All rights reserved.
机译:在用MCMC方法估计模型后,提出了两种测试统计量来确定模型规格。第一个测试是IOSA测试的MCMC版本,其渐近零分布为正态。第二项测试的动机来自Fan等人(2015)的功率增强技术。它结合了在扩展模型中测试零点假设的分量(J(1))和从第一次测试中获得的功率增强分量(J(0))。结果表明,当正确指定零模型时,J(0)收敛于零,当错误指定零模型时,J(0)发散。还表明J(1)是渐近chi(2)-分布的,这表明当正确指定零模型时,第二个检验是渐近关键的。第一次测试的主要特点是不需要替代模型。第二个测试有几个属性。首先,它的大小失真很小,因此可以避免自举方法。其次,它很容易从MCMC输出进行计算,因此适用于广泛的模型,包括难以使用频点法的潜变量模型。第三,当测试统计量拒绝了空模型,并且“!取了一个较大的值时,测试表明了错误指定的来源。使用模拟数据研究了有限样本性能。该方法在线性回归模型、线性状态空间模型和使用真实数据的随机波动性模型中得到了说明。(C)2018 Elsevier B.V.版权所有。

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