Multi-mode rainfall estimation method integrated with machine learning
A machine learning and multi-mode technology, applied in neural learning methods, character and pattern recognition, prediction, etc., can solve problems such as weak predictions
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[0020] The specific embodiment of the present invention is further described below in conjunction with accompanying drawing:
[0021] A multi-mode precipitation prediction method of integrated machine learning is characterized in that: it is characterized in that it comprises the following steps:
[0022] Step 1: Data preprocessing: Calculate observations and 22 CMIP6 model history and different paths (ssp245, ssp585) in the future period of heavy precipitation, continuous dry days, average total precipitation, and continuous maximum 5-day precipitation climate index, using double lines Interpolate the CMIP6 results to the grid points consistent with the observation data, and use the data slices of the time axis to obtain the extreme precipitation indices in the period of 1.5, 2, and 3 degrees of warming in the future in China;
[0023] Step 2: Dataset construction: Divide the CMIP6 model data into training data, evaluation verification data, and future climate prediction data...
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