Short-term PV generation system direct power prediction model on wavelet neural network and weather type clustering

Ying Yang, Lei Dong

科研成果: 书/报告/会议事项章节会议稿件同行评审

24 引用 (Scopus)

摘要

With the increase of the capacity of PV generated systems, how to eliminate the problem caused by the randomness of power output for photovoltaic system becomes more significant. Most of the existing photovoltaic prediction is Based on the solar radiation. However, it's difficult to implement in China due to insufficient solar radiation station available and poor forecasting performance. In addition, indirect forecasting cannot consider the factors related with PV system. A novel power forecasting model using historical power is proposed to solve the problems. Furthermore, in order to adapt sudden weather changes, the future weather type was recognized by using self-organizing feature map(SOM). Then, PV power generation in each weather type could be forecasted from its corresponding forecast network and the over fitting issue of single network model could be addressed. Wavelet neural network is combined with wavelet analysis and neural network. It is compatible with the good time-frequency property and good fault tolerant ability of neural network. Wavelet neural network can optimize the forecasting model. The experimental results indicate that the prediction has high precision and can be applied in stable operation of photovoltaic generation system.

源语言英语
主期刊名Proceedings - 2013 5th International Conference on Intelligent Human-Machine Systems and Cybernetics, IHMSC 2013
207-211
页数5
DOI
出版状态已出版 - 2013
活动2013 5th International Conference on Intelligent Human-Machine Systems and Cybernetics, IHMSC 2013 - Hangzhou, Zhejiang, 中国
期限: 26 8月 201327 8月 2013

出版系列

姓名Proceedings - 2013 5th International Conference on Intelligent Human-Machine Systems and Cybernetics, IHMSC 2013
1

会议

会议2013 5th International Conference on Intelligent Human-Machine Systems and Cybernetics, IHMSC 2013
国家/地区中国
Hangzhou, Zhejiang
时期26/08/1327/08/13

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