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Author
- Wanting, Ji (1)
- Yujun, Ma (1)
Subject
- EfficientNet (1)
- MAT-EffNet (1)
- Multi-head Attention-b... (1)
Date issued
- 2023 (1)
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- true (1)
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Recent years have witnessed the popularity of using two-stream convolutional neural networks for action recognition. However, existing two-stream convolutional neural network-based action recognition approaches are incapable of distinguishing some roughly similar actions in videos such as sneezing and yawning. To solve this problem, we propose a Multi-head Attention-based Two-stream EfficientNet (MAT-EffNet) for action recognition, which can take advantage of the efficient feature extraction of EfficientNet. The proposed network consists of two streams (i.e., a spatial stream and a temporal stream), which first extract the spatial and temporal features from consecutive frames by using EfficientNet. |