Knowledge Enhanced Model for Live Video Comment Generation

April 28, 2023 · Declared Dead · 🏛 IEEE International Conference on Multimedia and Expo

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Authors Jieting Chen, Junkai Ding, Wenping Chen, Qin Jin arXiv ID 2304.14657 Category cs.CV: Computer Vision Cross-listed cs.MM Citations 6 Venue IEEE International Conference on Multimedia and Expo Last Checked 1 month ago
Abstract
Live video commenting is popular on video media platforms, as it can create a chatting atmosphere and provide supplementary information for users while watching videos. Automatically generating live video comments can improve user experience and enable human-like generation for bot chatting. Existing works mostly focus on short video datasets while ignoring other important video types such as long videos like movies. In this work, we collect a new Movie Live Comments (MovieLC) dataset to support research on live video comment generation for long videos. We also propose a knowledge enhanced generation model inspired by the divergent and informative nature of live video comments. Our model adopts a pre-training encoder-decoder framework and incorporates external knowledge. Extensive experiments show that both objective metrics and human evaluation demonstrate the effectiveness of our proposed model. The MovieLC dataset and our code will be released.
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