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Internet of Things Solution for Intelligent Air Pollution Prediction and Visualization

机译:物联网解决方案,用于智能空气污染预测和可视化

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Air pollution monitoring and control is becoming a key priority in urban areas due to its substantial effect on human morbidity and mortality. This paper presents a system architecture for intelligent pollution visualization and future pollution prediction by encompassing pollution measurements and meteorological parameters. First, a pollution model using spatial interpolation is built. By adding meteorological parameters this model is further used to identify the pollution field evolution and the position of potential sources of air pollution. Using deep learning techniques, the system provides predictions for future pollution levels as well as times to reaching alarming thresholds. The whole system is encompassed in a fast, easy to use web service and a client that visually renders the system responses. The system is built and tested on data for the city of Skopje. Although the spatial resolution of the system data is low, the results are satisfactory and promising. Since the system can be seamlessly deployed on an Internet of Things sensing architecture, the improved data spatial resolution will improve performance.
机译:由于其对人类发病率和死亡率的重大影响,空气污染监测和控制正成为城市地区的重要优先事项。本文通过涵盖污染测量和气象参数,提出了一种用于智能污染可视化和未来污染预测的系统架构。首先,建立使用空间插值的污染模型。通过添加气象参数,该模型可进一步用于识别污染场的演变以及潜在的空气污染源的位置。该系统使用深度学习技术,为将来的污染水平以及达到警报阈值的时间提供了预测。整个系统包含在快速,易于使用的Web服务中,并且客户端以可视方式呈现系统响应。该系统是根据斯科普里市的数据进行构建和测试的。尽管系统数据的空间分辨率较低,但结果令人满意且很有希望。由于该系统可以无缝部署在物联网传感体系结构上,因此改进的数据空间分辨率将提高性能。

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