Deep learning-based picture-text fusion microblog emotion analysis method
A sentiment analysis and deep learning technology, applied in the field of sentiment analysis, can solve the problems of limited coverage of sentiment dictionaries, poor performance, and difficulty in coping, and achieve the effects of representativeness, improved accuracy, and fast convergence.
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[0048] refer to figure 1 , figure 2 , a deep learning-based image-text fusion microblog sentiment analysis method, including the following steps:
[0049] S1 collects graphic and text microblog data and performs preprocessing: collects graphic and text microblog data from microblog and performs preprocessing;
[0050] S2 Extracting the emotional features of graphic microblog text: using a two-way long-short-term memory neural network to extract the emotional features of graphic microblog text;
[0051] S3 extracts the emotional features of graphic and text microblog pictures: using convolutional neural network to extract the emotional features of graphic and text microblog pictures;
[0052] S4 conducts emotional analysis of micro-blog with graphic-text fusion: integrates the text emotional features obtained in step S2 and the image emotional features obtained in step S3 to construct a graphic-text micro-blog sentiment classification model, and performs graphic-text fusion ...
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