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Hierarchical Attention-Based Multimodal Fusion Network for Video Emotion Recognition
Xiaodong Liu1, Songyang Li1, Miao Wang1
1School of Computing Henan University of Engineering, Zhengzhou, China.
Computational Intelligence and Neuroscience
|October 7, 2021
Summary
This study introduces a novel hierarchical attention network to improve video emotion recognition by fusing facial, scene, and global image features. The method effectively captures context and enhances accuracy in recognizing emotions from videos.
Area of Science:
- Computer Science
- Artificial Intelligence
- Multimedia Analysis
Background:
- Contextual information like scenes and objects significantly impacts video emotion recognition accuracy.
- Existing methods often overlook the varying emotional cues present across different images and modalities.
- Improving multimodal fusion is crucial for accurate video-based emotion understanding.
Purpose of the Study:
- To propose a hierarchical attention-based multimodal fusion network for enhanced video emotion recognition.
- To address the challenge of differing emotional clues across various images and modalities.
- To improve the accuracy and robustness of emotion recognition in videos.
Main Methods:
- Developed a multimodal feature extraction module with subnetworks for facial, scene, and global image features.
- Implemented a hierarchical attention mechanism to aggregate features and emotion scores within and across modalities.
- Designed a multimodal feature fusion module to generate the final video emotion representation.
Main Results:
- The proposed hierarchical attention network effectively extracts and fuses multimodal features.
- Experimental results demonstrate significant improvements in video emotion recognition accuracy.
- The method successfully addresses the issue of varying emotional clues in different images and modalities.
Conclusions:
- The hierarchical attention-based multimodal fusion network offers a promising approach for video emotion recognition.
- Incorporating context and employing attention-based fusion enhances the understanding of video-based emotions.
- The proposed method provides a robust and effective solution for complex emotion recognition tasks in videos.
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