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A dynamic evaluation framework for ambient air pollution monitoring

机译:动态监测环境空气污染评估框架

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摘要

Accurate real-time prediction of urban air quality is one of the most important problems in control and improve ambient air condition globally. Therefore, the modeling and applications of air pollutant forecasting and evaluation has attracted the attention of researchers in recent years. Based on the method of fuzzy mathematical synthetic evaluation, this paper built a dynamic evaluation model for the purpose of mastering the future air quality immediately. A newly proposed computational intelligence optimization algorithm is improved to optimize the least square support vector machine, which can generate rolling forecasts of six air pollutants concentration. The information of future air quality status is built by the fuzzy synthetic assessment model based on entropy weighing method. The results and analysis of air quality monitoring show that accurate and reliable forecast of urban air pollutants concentration are possible and the air quality conditions can be evaluated objectively. Through the simulation design, it proves that the proposed dynamic evaluation model can provide a practical tool for ambient air ambient quality evaluation.
机译:准确实时地预测城市空气质量是全球控制和改善周围空气状况的最重要问题之一。因此,近年来空气污染物预测与评价的建模与应用引起了研究人员的关注。基于模糊数学综合评价方法,建立了动态​​评价模型,以期掌握未来的空气质量。改进了一种新提出的计算智能优化算法,以优化最小二乘支持向量机,该机器可以生成六种空气污染物浓度的滚动预测。基于熵权法的模糊综合评价模型建立了未来空气质量状况信息。空气质量监测的结果和分析表明,对城市空气污染物浓度进行准确可靠的预测是可能的,并且可以客观地评估空气质量状况。通过仿真设计,证明了所提出的动态评价模型可以为环境空气环境质量评价提供实用工具。

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