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首页> 外文期刊>Journal of Applied Meteorology and Climatology >Long Memory and Time Trends in Particulate Matter Pollution (PM2.5 and PM10) in the 50 US States
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Long Memory and Time Trends in Particulate Matter Pollution (PM2.5 and PM10) in the 50 US States

机译:50个美国颗粒物质污染(PM2.5和PM10)的长记忆和时间趋势

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This paper focuses on the analysis of the time series behavior of the air quality in the 50 U.S. states by looking at the statistical properties of particulate matter (PM10 and PM2.5) datasets. We use long daily time series of outdoor air quality indices to examine issues such as the degree of persistence as well as the existence of time trends in data. For this purpose, we use a long-memory fractionally integrated framework. The results show significant negative time trend coefficients in a number of states and evidence of long memory in the majority of the cases. In general, we observe heterogeneous results across counties though we notice higher degrees of persistence in the states on the west with respect to those on the east, where there is a general decreasing trend. It is hoped that the findings in the paper will continue to assist in quantitative evidence-based air quality regulation and policies.
机译:本文通过查看颗粒物质(PM10和PM2.5)数据集的统计性质,侧重于分析了50 U.S.状态的空气质量的时间序列行为。 我们使用长期的日常时间序列户外空气质量指标来检查持久性程度等问题以及数据中的时间趋势。 为此目的,我们使用长内存分馏综合框架。 结果显示了大多数案例中多种状态的显着负时间趋势系数和漫长记忆的证据。 一般而言,我们观察跨境的异质结果,尽管我们在西方的各州的持续程度上有关东方的国家,那里有一般性下降趋势。 希望本文的调查结果将继续协助定量证据的空中质量监管和政策。

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