Multi-modal sentiment classification method based on heterogeneous fusion network
A technology that integrates network and emotion classification, applied in biological neural network models, neural learning methods, text database clustering/classification, etc. Accuracy is not high and other problems, to achieve the effect of improving accuracy
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[0098] This embodiment describes the process of adopting a heterogeneous fusion network-based multimodal emotion classification method according to the present invention, such as figure 1 shown. The input data comes from the video emotion classification data set CMU-MOSI. The emotional label of the data set is represented by elements in {-3,-2,-1,0,1,2,3}, and there are 7 types in total, among which- 3, -2 and -1 are negative, 0, 1, 2 and 3 are non-negative. The input data includes complete video and video clips, all of which are extracted into three modal data of text, picture and audio.
[0099] First, a heterogeneous fusion network model based on deep learning is proposed. The heterogeneous fusion network model uses different forms, different strategies, and different angles to achieve data fusion. Two fusion forms of fusion between different modal data, two fusion strategies using feature layer fusion and decision layer fusion, and multi-modal global feature vectors cons...
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