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Score tests for zero-inflation and overdispersion in two-level count data

机译:对两级计数数据中的零通货膨胀和过度分散进行评分测试

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摘要

In a Poisson regression model in which observations are either clustered or represented by repeated measurements of counts, the number of observed zero counts is sometimes greater than the expected frequency by the Poisson distribution and overdispersion may remain even after modeling excess zeros. The zero-inflated negative binomial (ZINB) mixed regression model is suggested to analyze such data. Previous studies have proposed score statistics for testing zero-inflation and overdispersion separately in correlated count data. Here, we also deal with simultaneous score tests for zero-inflation and overdispersion in two-level count data by using the ZINB mixed regression model. Score tests are suggested for (1) zero-inflation in the presence of overdispersion, (2) overdispersion in the presence of zero-inflation, and (3) zero-inflation and overdispersion simultaneously. The level and power of score test statistics are evaluated by a simulation study. The simulation results indicate that score test statistics may occasionally underestimate or overestimate the nominal significance level due to variation in random effects. This study proposes a parametric bootstrap method to overcome this problem. The simulation results of the bootstrap test indicate that score tests hold the nominal level and provide good power.
机译:在泊松回归模型中,观察结果是聚类的或通过重复测量计数来表示,观察到的零计数的数量有时大于通过泊松分布的预期频率,即使在对多余的零建模后,过分散也可能保留。建议使用零膨胀负二项式(ZINB)混合回归模型来分析此类数据。先前的研究提出了分数统计数据,用于分别在相关计数数据中测试零通货膨胀和过度分散。在这里,我们还使用ZINB混合回归模型处理两级计数数据中零通货膨胀和过度分散的同时评分测试。分数测试建议用于(1)在存在过度分散的情况下零膨胀,(2)在存在零膨胀的情况下过度分散,以及(3)同时存在零膨胀和过度分散的情况。通过模拟研究评估分数测试统计数据的水平和功效。模拟结果表明,由于随机效应的变化,分数测试统计数据有时可能会低估或高估名义显着性水平。这项研究提出了一种参数自举方法来克服这个问题。引导测试的仿真结果表明,分数测试保持名义水平并提供良好的性能。

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