Multi-parameter atmospheric environment data generation method based on stacked LSTM-GRU
An atmospheric environment and data generation technology, applied in data processing applications, neural learning methods, ICT adaptation, etc., can solve problems such as large data volume, many data sample characteristics, and simultaneous generation of multiple atmospheric environment parameters without considering, and achieve high performance Good, the effect of reducing the generation time and speeding up the network training speed
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[0039] The stacked LSTM-GRU model is a combination of multi-layer long-short-term memory network and gated recurrent unit, with LSTM and GRU network layers as the basic architecture, and the middle hidden layer is stacked using LSTM layer and GRU layer for cyclic connection, using the fully connected layer Output multi-parameter atmospheric environment data, such as figure 1 shown. The layer structure of the constructed stacked LSTM-GRU model is as follows: figure 2 shown.
[0040] In order to achieve simultaneous output of multiple parameters, the repeat_vector layer and the time_distributed layer are added. The form of the Repeat_vector layer is Keras.layers.RepeatVector(n), the main function is to repeat the input n times. If the input shape is (None, 32), after adding the RepeatVector(3) layer, the output becomes (None, 3, 32), RepeatVector does not change the step size, but changes the dimension of each step.
[0041] The Time_distributed layer gives the model a one-to...
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