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A fuzzy regression with support vector machine approach to the estimation of horizontal global solar radiation

机译:支持向量机的模糊回归估计水平太阳总辐射

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Accurate estimation of the amount of horizontal global solar radiation for a particular field is an important input for decision processes in solar radiation investments. In this article, we focus on the estimation of yearly mean daily horizontal global solar radiation by using an approach that utilizes fuzzy regression functions with support vector machine (FRF-SVM). This approach is not seriously affected by outlier observations and does not suffer from the over-fitting problem. To demonstrate the utility of the FRF-SVM approach in the estimation of horizontal global solar radiation, we conduct an empirical study over a dataset collected in Turkey and applied the FRF-SVM approach with several kernel functions. Then, we compare the estimation accuracy of the FRF-SVM approach to an adaptive neuro-fuzzy system and a coplot supported-genetic programming approach. We observe that the FRF-SVM approach with a Gaussian kernel function is not affected by both outliers and over-fitting problem and gives the most accurate estimates of horizontal global solar radiation among the applied approaches. Consequently, the use of hybrid fuzzy functions and support vector machine approaches is found beneficial in long-term forecasting of horizontal global solar radiation over a region with complex climatic and terrestrial characteristics. (C) 2017 Elsevier Ltd. All rights reserved.
机译:准确估计特定领域的水平全球太阳辐射量是太阳辐射投资决策过程的重要输入。在本文中,我们将重点放在通过使用带有支持向量机(FRF-SVM)的模糊回归函数的方法来估算年平均日平均水平全球太阳辐射。这种方法不受异常值观察的严重影响,也不会遭受过度拟合的问题。为了证明FRF-SVM方法在估算全球水平太阳辐射中的效用,我们对土耳其收集的数据集进行了实证研究,并将FRF-SVM方法应用于几个核函数。然后,我们比较了FRF-SVM方法对自适应神经模糊系统和coplot支持的遗传规划方法的估计精度。我们观察到具有高斯核函数的FRF-SVM方法不受异常值和过度拟合问题的影响,并且在所应用的方法中给出了对水平全球太阳辐射的最准确估计。因此,发现混合模糊函数和支持向量机方法的使用在长期预测具有复杂气候和陆地特征的区域中的水平全球太阳辐射中是有益的。 (C)2017 Elsevier Ltd.保留所有权利。

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