Two-stream Flow-guided Convolutional Attention Networks for Action Recognition

August 30, 2017 Β· Declared Dead Β· πŸ› 2017 IEEE International Conference on Computer Vision Workshops (ICCVW)

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Authors An Tran, Loong-Fah Cheong arXiv ID 1708.09268 Category cs.CV: Computer Vision Citations 62 Venue 2017 IEEE International Conference on Computer Vision Workshops (ICCVW) Last Checked 5 months ago
Abstract
This paper proposes a two-stream flow-guided convolutional attention networks for action recognition in videos. The central idea is that optical flows, when properly compensated for the camera motion, can be used to guide attention to the human foreground. We thus develop cross-link layers from the temporal network (trained on flows) to the spatial network (trained on RGB frames). These cross-link layers guide the spatial-stream to pay more attention to the human foreground areas and be less affected by background clutter. We obtain promising performances with our approach on the UCF101, HMDB51 and Hollywood2 datasets.
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