A text sentiment analysis method combining BiLSTM with an Attention mechanism
A mechanism and text technology, applied in the field of natural language processing technology and text sentiment analysis, can solve the problems of model dimension disaster, high dimension difficult to train, etc.
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[0050] Further description will be made below in conjunction with the accompanying drawings and the experimental results carried out using the model proposed by the present invention.
[0051] figure 1It is a text sentiment analysis research framework based on deep learning designed by the present invention, and the specific research process is:
[0052] Step 1: Process the data
[0053] Since the data set contains some data that is irrelevant to model training, the read data is first processed to clean unnecessary characters such as line breaks and quotation marks, and at the same time convert uppercase letters to lowercase letters for better Process the eigenvectors.
[0054] Step 2: Divide the data set into a test set and a training set by 8:2
[0055] Step 3: Train word vectors
[0056] Step 3.1: Serialize the data
[0057] If the traditional sparse representation is used to represent words, it will cause the curse of dimensionality when solving this problem. Therefo...
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