VideoBERT: A Joint Model for Video and Language Representation Learning
April 03, 2019 ยท Declared Dead ยท ๐ IEEE International Conference on Computer Vision
"No code URL or promise found in abstract"
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Authors
Chen Sun, Austin Myers, Carl Vondrick, Kevin Murphy, Cordelia Schmid
arXiv ID
1904.01766
Category
cs.CV: Computer Vision
Cross-listed
cs.AI
Citations
1.4K
Venue
IEEE International Conference on Computer Vision
Last Checked
1 month ago
Abstract
Self-supervised learning has become increasingly important to leverage the abundance of unlabeled data available on platforms like YouTube. Whereas most existing approaches learn low-level representations, we propose a joint visual-linguistic model to learn high-level features without any explicit supervision. In particular, inspired by its recent success in language modeling, we build upon the BERT model to learn bidirectional joint distributions over sequences of visual and linguistic tokens, derived from vector quantization of video data and off-the-shelf speech recognition outputs, respectively. We use VideoBERT in numerous tasks, including action classification and video captioning. We show that it can be applied directly to open-vocabulary classification, and confirm that large amounts of training data and cross-modal information are critical to performance. Furthermore, we outperform the state-of-the-art on video captioning, and quantitative results verify that the model learns high-level semantic features.
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