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PM10 and gaseous pollutants trends from air quality monitoring networks in Bari province: principal component analysis and absolute principal component scores on a two years and half data set

机译:来自巴里省空气质量监测网络的PM10和气态污染物趋势:基于两年半数据集的主成分分析和绝对主成分评分

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摘要

BackgroundThe chemical composition of aerosols and particle size distributions are the most significant factors affecting air quality. In particular, the exposure to finer particles can cause short and long-term effects on human health. In the present paper PM10 (particulate matter with aerodynamic diameter lower than 10 μm), CO, NOx (NO and NO2), Benzene and Toluene trends monitored in six monitoring stations of Bari province are shown. The data set used was composed by bi-hourly means for all parameters (12 bi-hourly means per day for each parameter) and it’s referred to the period of time from January 2005 and May 2007. The main aim of the paper is to provide a clear illustration of how large data sets from monitoring stations can give information about the number and nature of the pollutant sources, and mainly to assess the contribution of the traffic source to PM10 concentration level by using multivariate statistical techniques such as Principal Component Analysis (PCA) and Absolute Principal Component Scores (APCS).
机译:背景技术气溶胶的化学成分和粒径分布是影响空气质量的最重要因素。尤其是,暴露于较细的颗粒会导致对人体健康的短期和长期影响。在本文中,PM10(空气动力学直径小于10μm的颗粒物),CO,NOx(NO和NO2),苯和甲苯的趋势显示在巴里省的六个监测站中。所使用的数据集由所有参数的每两小时平均值组成(每个参数每天12次每两小时平均值),它是指2005年1月至2007年5月这段时间。本文的主要目的是提供清楚地说明了监控站的大量数据可以提供有关污染物源数量和性质的信息,并且主要是通过使用多元统计技术(例如主成分分析(PCA))来评估交通源对PM10浓度水平的贡献)和绝对主成分评分(APCS)。

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