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首页> 外文期刊>Stochastic environmental research and risk assessment >Using finite mixtures of M-quantile regression models to handle unobserved heterogeneity in assessing the effect of meteorology and traffic on air quality
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Using finite mixtures of M-quantile regression models to handle unobserved heterogeneity in assessing the effect of meteorology and traffic on air quality

机译:在评估气象和交通对空气质量的影响时,使用M分位数回归模型的有限混合来处理未观察到的异质性

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摘要

Between 2012 and 2015, the PMetro project collected space-time aerosol and gas measurements by using instruments integrated on one of the Minimetro cabins, a public conveyance of the town of Perugia (Italy). In this work, we use PMetro data to study the effect of vehicular traffic and meteorological measurements on the distribution of fine particulate matter by fitting a finite mixture of M-quantile regression models. Using this methodology, it is possible to account for heterogeneity in the data using random effects with a discrete distribution with masses and probabilities directly estimated from the data. This allows us to relax assumptions on the parametric shape of the distribution of the random effects and grants extra-flexibility. In addition, it allows us to investigate the relationship between fine particulate matter concentration and the covariates at different levels of the conditional response distribution. Empirical results show that radon concentration and vehicular traffic have the largest effect on the distribution of fineparticulate matter and provide some guidelines for policy makers.
机译:在2012年至2015年之间,PMetro项目通过使用Minimetro机舱之一(意大利佩鲁贾镇的公共交通工具)上集成的仪器收集了时空气溶胶和气体的测量值。在这项工作中,我们使用PMetro数据通过拟合M分位数回归模型的有限混合来研究车辆交通和气象测量对细颗粒物分布的影响。使用这种方法,可以使用具有直接从数据中估计出的质量和概率的离散分布的随机效应来解释数据中的异质性。这使我们可以放宽对随机效应分布的参数形状的假设,并赋予额外的灵活性。另外,它使我们能够研究细颗粒物浓度与条件响应分布不同水平上的协变量之间的关系。实证结果表明,concentration浓度和车辆流量对细颗粒物的分布影响最大,并为决策者提供了一些指导。

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