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Tell Me What Happened: Unifying Text-guided Video Completion via Multimodal Masked Video Generation

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Generating a video given the first several static frames is challenging as it anticipates reasonable future frames with temporal coherence. Besides video prediction, the ability to rewind from the last frame or infilling between the head and tail is also crucial, but they have rarely been explored for video completion. Since there could be different outcomes from the hints of just a few frames, a system that can follow natural language to perform video completion may significantly improve controllability. Inspired by this, we introduce a novel task, text-guided video completion (TVC), which requests the model to generate a video from partial frames guided by an instruction. We then propose Multimodal Masked Video Generation (MMVG) to address this TVC task. During training, MMVG discretizes the video frames into visual tokens and masks most of them to perform video completion from any time point. At inference time, a single MMVG model can address all 3 cases of TVC, including video prediction, rewind, and infilling, by applying corresponding masking conditions. We evaluate MMVG in various video scenarios, including egocentric, animation, and gaming. Extensive experimental results indicate that MMVG is effective in generating high-quality visual appearances with text guidance for TVC.

Tsu-Jui Fu, Licheng Yu, Ning Zhang, Cheng-Yang Fu, Jong-Chyi Su, William Yang Wang, Sean Bell• 2022

Related benchmarks

TaskDatasetResultRank
Text-to-Video GenerationMSR-VTT (test)
CLIP Similarity0.2644
85
Text-to-Video GenerationUCF-101
FVD328
61
Video PredictionBAIR (test)
FVD85.2
59
Video GenerationUCF101
FVD328
54
TVPredictionKitchen
FVD56
22
TVPredictionMUGEN
FVD57.2
22
Video GenerationUCF-101
FVD328
17
TVPredictionFlintstones
FVD106.3
14
TVInfillingFlintstones
FVD91.6
8
Video PredictionUCF-101 (test)
FVD194.6
6
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