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ATI: Any Trajectory Instruction for Controllable Video Generation

28 May 2025
Angtian Wang
Haibin Huang
Jacob Zhiyuan Fang
Yiding Yang
Chongyang Ma
    DiffMVGen
ArXiv (abs)PDFHTML
Main:7 Pages
7 Figures
Bibliography:3 Pages
1 Tables
Abstract

We propose a unified framework for motion control in video generation that seamlessly integrates camera movement, object-level translation, and fine-grained local motion using trajectory-based inputs. In contrast to prior methods that address these motion types through separate modules or task-specific designs, our approach offers a cohesive solution by projecting user-defined trajectories into the latent space of pre-trained image-to-video generation models via a lightweight motion injector. Users can specify keypoints and their motion paths to control localized deformations, entire object motion, virtual camera dynamics, or combinations of these. The injected trajectory signals guide the generative process to produce temporally consistent and semantically aligned motion sequences. Our framework demonstrates superior performance across multiple video motion control tasks, including stylized motion effects (e.g., motion brushes), dynamic viewpoint changes, and precise local motion manipulation. Experiments show that our method provides significantly better controllability and visual quality compared to prior approaches and commercial solutions, while remaining broadly compatible with various state-of-the-art video generation backbones. Project page: this https URL.

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@article{wang2025_2505.22944,
  title={ ATI: Any Trajectory Instruction for Controllable Video Generation },
  author={ Angtian Wang and Haibin Huang and Jacob Zhiyuan Fang and Yiding Yang and Chongyang Ma },
  journal={arXiv preprint arXiv:2505.22944},
  year={ 2025 }
}
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