Air quality prediction method based on deep bidirectional long-short-term memory network
A long-term and short-term memory, air quality technology, applied in prediction, neural learning method, biological neural network model, etc., can solve real-time change interference, increase air pollutant prediction, difficulty and other problems
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[0026] Such as figure 1 The flow chart of the algorithm is shown, and the structure of the two-way long-short-term memory network is as follows: figure 2 shown. The specific steps of this algorithm are as follows:
[0027] Step 1: Perform preprocessing after data collection to obtain time series data of pollutants, and divide the data set into training set, verification set and test set;
[0028] Step 2: Input the data of the training set into the deep two-way long short-term memory network for training until the network converges;
[0029] Step 3: Input the data of the verification set into the network for verification, and adjust the parameters of the network to finally obtain the optimal parameters;
[0030] Step 4: Save the final model, input the test set to test the recognition effect, and the final model can be used in the actual air quality prediction link.
[0031] Described step 1 comprises the following steps:
[0032] Step 1.1: Data collection: The data collec...
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