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Asymmetric GARCH type models for asymmetric volatility characteristics analysis and wind power forecasting

机译:不对称加油型模型用于不对称波动特性分析和风力预测

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Wind power forecasting is of great significance to the safety, reliability and stability of power grid. In this study, the GARCH type models are employed to explore the asymmetric features of wind power time series and improved forecasting precision. Benchmark Symmetric Curve (BSC) and Asymmetric Curve Index (ACI) are proposed as new asymmetric volatility analytical tool, and several generalized applications are presented. In the case study, the utility of the GARCH-type models in depicting time-varying volatility of wind power time series is demonstrated with the asymmetry effect, verified by the asymmetric parameter estimation. With benefit of the enhanced News Impact Curve (NIC) analysis, the responses in volatility to the magnitude and the sign of shocks are emphasized. The results are all confirmed to be consistent despite varied model specifications. The case study verifies that the models considering the asymmetric effect of volatility benefit the wind power forecasting performance.
机译:风电预测对电网的安全性,可靠性和稳定性具有重要意义。在这项研究中,采用GARCH型模型来探讨风电时间序列的不对称特征和改进的预测精度。基准对称曲线(BSC)和非对称曲线索引(ACI)被提出为新的不对称挥发性分析工具,并提出了几种广义应用。在案例研究中,通过不对称参数估计验证,对描绘风力时间序列的时变波动率的加粗型模型的效用。有益于增强的新闻影响曲线(NIC)分析,强调了对幅度波动的反应和冲击的迹象。尽管模型规格不同,结果均确认符合一致。案例研究验证了考虑波动性不对称效果的模型有利于风力预测性能。

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