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Support Vector Regression Algorithms in the Forecasting of Daily Maximums of Tropospheric Ozone Concentration in Madrid

机译:支持向量回归算法在马德里对流层臭氧日浓度最大值预报中的应用

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In this paper we present the application of a support vector regression algorithm to a real problem of maximum daily tropospheric ozone forecast. The support vector regression approach proposed is hybridized with an heuristic for optimal selection of hyper-parameters. The prediction of maximum daily ozone is carried out in all the station of the air quality monitoring network of Madrid. In the paper we analyze how the ozone prediction depends on meteorological variables such as solar radiation and temperature, and also we perform a comparison against the results obtained using a multi-layer perceptron neural network in the same prediction problem.
机译:在本文中,我们介绍了支持向量回归算法在最大对流层每日臭氧预报的实际问题中的应用。提出的支持向量回归方法与启发式算法混合使用,以优化选择超参数。马德里空气质量监测网络的所有站点都对每日最大臭氧量进行了预测。在本文中,我们分析了臭氧的预测如何取决于气象变量(例如太阳辐射和温度),并且还与在同一预测问题中使用多层感知器神经网络获得的结果进行了比较。

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