A new photovoltaic power prediction method based on AFSA-Elman
A power prediction, photovoltaic technology, applied in prediction, computational model, biological model, etc., can solve the problems of power system paralysis, loss, power system security and stability impact, etc., to improve prediction accuracy and overcome randomness. Effect
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[0093] First collect the original data and establish a data sample set: the original data set used in this experiment came from a photovoltaic power station in Zhejiang from March 1 to August 31, 2015. SCADA data with a resolution of 5 seconds was collected, which was divided into electrical data and meteorological data. There are two types of data. The electrical data is the current and voltage values output by the inverter. The meteorological data comes from the weather station installed in the photovoltaic power station, including light intensity Q, power P, temperature T, humidity H, wind speed S, etc. Then do further preprocessing on the data, remove abnormal data, and then normalize the processed data by formula (1), and limit the model input value between [0,1]:
[0094]The Mallet fast algorithm of orthogonal transformation is used for the processed power sequence, and the power signal is decomposed into high-frequency detail signal d i (i=1,2,3,…n) and low frequency...
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