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Paper · arXiv 2402.03040

InteractiveVideo: User-Centric Controllable Video Generation with Synergistic Multimodal Instructions

Yiyuan Zhang, Yuhao Kang, Zhixin Zhang, Xiaohan Ding, Sanyuan Zhao, Xiangyu Yue

19 upvotesFebruary 5, 2024arXiv 预印本
AI 摘要

InteractiveVideo is a user-centric framework enabling dynamic interaction and fine-grained refinement of video generation through multimodal inputs.

Synergistic Multimodal Instruction mechanism

Abstract

We introduce InteractiveVideo, a user-centric framework for video generation. Different from traditional generative approaches that operate based on user-provided images or text, our framework is designed for dynamic interaction, allowing users to instruct the generative model through various intuitive mechanisms during the whole generation process, e.g. text and image prompts, painting, drag-and-drop, etc. We propose a Synergistic Multimodal Instruction mechanism, designed to seamlessly integrate users' multimodal instructions into generative models, thus facilitating a cooperative and responsive interaction between user inputs and the generative process. This approach enables iterative and fine-grained refinement of the generation result through precise and effective user instructions. With InteractiveVideo, users are given the flexibility to meticulously tailor key aspects of a video. They can paint the reference image, edit semantics, and adjust video motions until their requirements are fully met. Code, models, and demo are available at https://github.com/invictus717/InteractiveVideo

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InteractiveVideo: User-Centric Controllable Video Generation with Synergistic Multimodal Instructions | TensorX