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Computational Intelligence for Smart Air Quality Monitors Calibration

机译:智能空气质量监测仪校准的计算智能

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Machine learning techniques will take an increasingly central role in the distributed sensing realm and specifically in smart cities scenarios. Pervasive air quality monitoring as one of the primary city service requires a significant effort in term of data processing for extracting the needed semantic value. In this paper, after briefly reviewing the emerging relevant literature, we compare several machine learning tools for the purpose of devising intelligent calibration components to be run on board or in cloud computing architectures for pollutant concentration estimation. Two cities field experiments provide the needed on field recorded datasets to validate the approaches. Results are discussed both in terms of performance and computational impact for the specific application.
机译:机器学习技术将在分布式传感领域,尤其是在智能城市场景中,扮演越来越重要的角色。普遍的空气质量监测作为城市的主要服务之一,需要大量的数据处理工作来提取所需的语义值。在本文中,在简要回顾了新兴的相关文献之后,我们比较了几种机器学习工具,目的是设计可在板载或云计算体系结构中运行的智能校准组件,以进行污染物浓度估算。两个城市的现场实验提供了现场记录的数据集所需的验证方法。在性能和对特定应用程序的计算影响方面讨论了结果。

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