Papers › GenHowTo: Learning to Generate Actions and State Transformations from Instructional Videos

GenHowTo: Learning to Generate Actions and State Transformations from Instructional Videos

12 Dec 2023CVPR 2024 1arXiv:2312.07322archive 2025-07-28

Tomáš Souček, Dima Damen, Michael Wray, Ivan Laptev, Josef Sivic

We address the task of generating temporally consistent and physically plausible images of actions and object state transformations. Given an input image and a text prompt describing the targeted transformation, our generated images preserve the environment and transform objects in the initial image. Our contributions are threefold. First, we leverage a large body of instructional videos and automatically mine a dataset of triplets of consecutive frames corresponding to initial object states, actions, and resulting object transformations. Second, equipped with this data, we develop and train a conditioned diffusion model dubbed GenHowTo. Third, we evaluate GenHowTo on a variety of objects and actions and show superior performance compared to existing methods. In particular, we introduce a quantitative evaluation where GenHowTo achieves 88% and 74% on seen and unseen interaction categories, respectively, outperforming prior work by a large margin.

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