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Global Horizontal Irradiance Forecast at Kanto Region in Japan by Qunatile Regression of Support Vector Machine

机译:支持向量机的分位式回归在日本的康多地区全球水平辐照预测

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In the interests of the stable operation of the transmission system, transmission system operators (TSOs) procure regulating power supplies to cope with significant deviations from renewable energy forecasts. Therefore, it becomes important to improve the average precision of the one-day ahead forecast and to decrease the maximum error of the forecast in a power transmission system with a large number of photovoltaic systems. In this paper, the quantile regression using support vector machines is applied to the prediction of the previous day’s solar radiation, and it is confirmed that maximum width of the error can be reduced while suppressing the minimum length of the prediction error.
机译:为了稳定运行传输系统的稳定运行,传输系统运营商(TSOS)采购调节电源以应对可再生能源预测的显着偏差。 因此,提高一天前预测的平均精度并降低具有大量光伏系统的电力传输系统中预测的最大误差变得重要。 在本文中,使用支持向量机的量子回归应用于前一天的太阳辐射的预测,并且确认可以减少误差的最大宽度,同时抑制预测误差的最小长度。

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