Discriminative Latent Semantic Graph for Video Captioning
Yang Bai, Junyan Wang, Yang Long, Bingzhang Hu, Yang Song, Maurice Pagnucco, Yu Guan
摘要
Video captioning aims to automatically generate natural language sentences that can describe the visual contents of a given video. Existing generative models like encoder-decoder frameworks cannot explicitly explore the object-level interactions and frame-level information from complex spatio-temporal data to generate semantic-rich captions. Our main contribution is to identify three key problems in a joint framework for future video summarization tasks. 1) Enhanced Object Proposal: we propose a novel Conditional Graph that can fuse spatio-temporal information into latent object proposal. 2) Visual Knowledge: Latent Proposal Aggregation is proposed to dynamically extract visual words with higher semantic levels. 3) Sentence Validation: A novel Discriminative Language Validator is proposed to verify generated captions so that key semantic concepts can be effectively preserved. Our experiments on two public datasets (MVSD and MSR-VTT) manifest significant improvements over state-of-the-art approaches on all metrics, especially for BLEU-4 and CIDEr. Our code is available at https://github.com/baiyang4/D-LSG-Video-Caption.
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- Joint Commonsense and Relation Reasoning for Image and Video CaptioningJingyi Hou, Xinxiao Wu, Xiaoxun Zhang, Yayun Qi 等AAAI 2020 · 被引用 52 次
- Spatio-Temporal Graph for Video Captioning With Knowledge DistillationBoxiao Pan, Haoye Cai, De-An Huang, Kuan-Hui Lee 等CVPR 2020
- Object Relational Graph With Teacher-Recommended Learning for Video CaptioningZiqi Zhang, Yaya Shi, Chunfeng Yuan, Bing Li 等CVPR 2020
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