AI RESEARCH
Improving Dynamic Object Interactions in Text-to-Video Generation with AI Feedback
arXiv CS.LG
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ArXi:2412.02617v2 Announce Type: replace Large text-to-video models hold immense potential for a wide range of downstream applications. However, they struggle to accurately depict dynamic object interactions, often resulting in unrealistic movements and frequent violations of real-world physics. One solution inspired by large language models is to align generated outputs with desired outcomes using external feedback. In this work, we investigate the use of feedback to enhance the quality of object dynamics in text-to-video models.