A method and system for short-term wind power prediction based on deep learning network
A technology of wind power forecasting and deep learning network, applied in neural learning methods, forecasting, biological neural network models, etc., can solve the problem of too many human resources and computing resources, reduce computing resources and human resources, and reduce modeling time. , the effect of improving the prediction accuracy
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Embodiment 1
[0056] A schematic flow chart of a short-term wind power forecasting method based on a deep learning network provided by the present invention is as follows figure 1 shown, including:
[0057] S1: Obtain the numerical weather prediction data of the area where the wind power to be predicted is located;
[0058] S2: Input the numerical weather forecast data into the pre-trained deep learning mapping model to obtain the predicted value of wind power;
[0059] Among them, the deep learning mapping model includes the corresponding relationship between the numerical weather prediction data and the wind power prediction value; the numerical weather prediction data forms a grid according to the position, and each grid point in the grid includes multiple weather parameters.
[0060] Specifically, the present invention specifically includes:
[0061] Step 1: Organize the regional numerical weather prediction data.
[0062] Organize the obtained regional numerical weather prediction d...
Embodiment 2
[0087] Based on the same inventive concept, the present invention also provides a short-term wind power forecasting system based on a deep learning network.
[0088] The basic structure of the system is as Figure 4 As shown, including: data acquisition module and wind power prediction module;
[0089] The data collection module is used to obtain the numerical weather prediction data of the area where the wind power to be predicted is located;
[0090] The wind power prediction module is used to input the numerical weather prediction data into the pre-trained deep learning mapping model to obtain the predicted value of wind power;
[0091] Among them, the deep learning mapping model includes the corresponding relationship between the numerical weather prediction data and the wind power prediction value; the numerical weather prediction data forms a grid according to the position, and each grid point in the grid includes multiple weather parameters.
[0092] The detailed stru...
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