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Short Term Solar Irradiance Forecast Using Numerical Weather Prediction (NWP) with Gradient Boost Regression

机译:使用数值天气预报(NWP)和梯度Boost回归进行短期太阳辐照度预测

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Currently, the energy market is facing the challenge of significant increase in demand and it is a well known fact that the availability of fossil fuels is limited. The solar generation has evolved as the most promising solution to meet the demand, but the integration of solar generation to the power grid poses a stability threat due to its intermittent nature. To ensure the legitimate operation of the grid, accurate solar power forecast is essential. Apart from stability, accurate forecasting can also help in maintaining economic operation of the grid since it would help in appropriate installation of storage resources. In this study, we present an approach for short term solar irradiance forecast at a given location based on numerical weather prediction in combination with gradient boosting regression and bootstrap aggregation machine learning models. We considered additional parameters such as spatial parameters (elevation, latitude, longitude) and seasonal parameters (day and month of the year). Effectiveness of the proposed method will be evaluated based on Mean Square Error (MSE), Root Mean Square Error (RMSE), Mean Absolute Percentage Error (MAPE) and Mean Absolute Error (MAE) indices.
机译:当前,能源市场正面临着需求大量增加的挑战,众所周知的事实是化石燃料的供应受到限制。太阳能发电已经发展成为满足需求的最有希望的解决方案,但是由于太阳能发电的间歇性,将其集成到电网中会带来稳定性威胁。为了确保电网的合法运行,准确的太阳能发电预测至关重要。除了稳定性之外,准确的预测还可以帮助维持电网的经济运行,因为这将有助于适当地安装存储资源。在这项研究中,我们提出了一种基于数值天气预报结合梯度提升回归和自举聚合机器学习模型的给定位置的短期太阳辐照度预测的方法。我们考虑了其他参数,例如空间参数(海拔,纬度,经度)和季节性参数(一年中的日期和月份)。将基于均方误差(MSE),均方根误差(RMSE),均值绝对百分比误差(MAPE)和均值绝对误差(MAE)指标评估该方法的有效性。

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