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A Prognostic Approach Based on Fuzzy-Logic Methodology to Forecast PM10 Levels in Khaldiya Residential Area, Kuwait

机译:基于模糊逻辑方法的预测科威特哈尔迪亚居民区PM10水平的预测方法

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A prognostic approach is proposed based on a fuzzy-logic model to estimate suspended dust concentrations, related to PM10, in a specific residential area in Kuwait with high traffic and industrial influences. Seven input variables, including four important meteorological parameters (wind speed, wind direction, relative humidity and solar radiation) and the ambient concentrations of three gaseous pollutants (methane, carbon monoxide and ozone) were fuzzified using a sytem with a graphical user interface (GUI) and an artificial intelligence-based approach. Trapezoidal membership functions with ten and fifteen levels were employed for the fuzzy subsets of each model variable. A Mamdani-type fuzzy inference system (FIS) was developed to introduce a total of 146 rules in the IF-THEN format. The product (prod) and the centre of gravity (centroid) methods were performed as the inference operator and defuzzification methods, respectively, for the proposed FIS. The results obtained using uzzy-logic were compared with the outputs of an exponential regression model. The predictive performances of the models were compared based on various descriptive statistical indicators, and the proposed method was tested against additional observed data. The prognostic model presented in this work produced very small deviations from the actual results, and showed better predictive performance than the other model with regard to forecasting PM10 levels, with a very high determination coefficient of over 0.99.
机译:提出了一种基于模糊逻辑模型的预测方法,以估计科威特特定居民区中交通和工业影响较大的,与PM10有关的悬浮粉尘浓度。使用带有图形用户界面(GUI)的系统对七个输入变量进行模糊处理,包括四个重要的气象参数(风速,风向,相对湿度和太阳辐射)以及三种气态污染物(甲烷,一氧化碳和臭氧)的环境浓度)和基于人工智能的方法。每个模型变量的模糊子集采用十和十五级的梯形隶属函数。开发了Mamdani型模糊推理系统(FIS),以IF-THEN格式引入总共146条规则。拟议的FIS分别采用乘积(prod)和重心(质心)方法作为推理算子和去模糊方法。使用uzzy-logic获得的结果与指数回归模型的输出进行了比较。基于各种描述性统计指标比较了模型的预测性能,并针对其他观察到的数据测试了该方法的有效性。在这项工作中提出的预后模型与实际结果的偏差很小,在预测PM10水平方面显示出比其他模型更好的预测性能,很高的确定系数超过0.99。

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