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Analysis of crash counts using a multilevel zero-inflated negative binomial model

机译:使用多级零充气负二项式模型分析崩溃计数

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Due to that roadway crashes are generally discrete and rare, researchers frequently have several observational units (e.g., census tract, segment) with excess zeros reported crashes during the period. In this study, a multilevel zero-inflated negative binomial (MZINB) model was developed for analysis, allowing for overdispersion and excess zeros, as well as the factors of roadway design and traffic characteristic. Several goodness-of-fit measures are used for examining and comparing, using Markov chain Monte Carlo (MCMC) methods. The estimation results show that MZINB model is better than multilevel zero-inflated Poisson (MZIP) model and zero-inflated negative binomial (ZINB) and zero-inflated Poisson (ZIP) models.
机译:由于道路崩溃一般是离散和罕见的,研究人员经常有几个观察单位(例如,人口普查,部分),其在该期间报告的崩溃报告。在该研究中,开发了一种多级零膨胀的负二项式(MZINB)模型进行分析,允许过度分散和过量的零,以及道路设计和交通特性的因素。使用Markov Chain Monte Carlo(MCMC)方法使用几种拟合良好措施来检查和比较。估计结果表明,MzInb模型优于多级零充气泊松(MZIP)模型和零充气负二进制(ZinB)和零充气泊松(ZIP)模型。

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