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Big data platform for air quality analysis and prediction

机译:空气质量分析和预测的大数据平台

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With the advance of industry, air quality (AQ) is increasingly becoming worse. There are increasingly AQ monitors device have been deployed around country for monitoring air-quality all year long. To estimate and predict AQ, such as PM (particulate matter) 2.5, become an important issue for government to improve people's quality of life. As we can know, there are many factors can affect the AQ, such as traffic, factory exhaust emissions, weather, incineration of garbage, and so on. In most well-developed countries, these pollution sources are monitored for future environmental policy making. In this paper, we will propose a semantic ETL (Extract-Transform-Load) framework on cloud platform for AQ prediction. In the platform, we exploit ontology to concretize the relationship of PM 2.5 from various data sources and to merge those data with the same concept but different naming into the unified database. We implement the ETL framework on the cloud platform, which includes computing nodes and storage nodes. The computing nodes are used to execute data mining algorithms for predicting, and storage modes are used to store retrieved, preprocessed, and analyzed data. We utilize restful web service as the front end API to retrieve analyzed data, and finally we exploit browser to show the visualized result to demonstrate the estimation and prediction. It shows that the big data access framework on the cloud platform can work well for air quality analysis.
机译:随着行业的进步,空气质量(AQ)越来越糟糕。越来越多的AQ监视器设备已经部署了全国各地的全部空气质量。估计和预测aq,如PM(颗粒物)2.5,成为政府提高人民生活质量的重要问题。正如我们所知道的,有很多因素会影响AQ,如交通,工厂排放,天气,垃圾焚烧等。在大多数发达国家,这些污染来源受到未来环境政策制定的监测。在本文中,我们将在云平台上提出一个关于AQ预测的云平台上的语义ETL(提取变换负载)框架。在该平台中,我们利用本体论可以利用各种数据源的PM 2.5的关系,并将这些数据与相同的概念合并,但不同的命名进入统一数据库。我们在云平台上实现ETL框架,包括计算节点和存储节点。计算节点用于执行用于预测的数据挖掘算法,并且存储模式用于存储检索,预处理和分析的数据。我们利用RESTful Web Service作为前端API来检索分析的数据,最后我们利用浏览器来显示可视化结果以演示估计和预测。它表明云平台上的大数据访问框架可以很好地用于空气质量分析。

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