arXiv · 2509.23279
Vid-Freeze: Protecting Images from Malicious Image-to-Video Generation via Temporal Freezing
Abstract
The rapid progress of image-to-video (I2V) generation models has introduced significant risks by enabling deceptive or malicious video synthesis from a single image. Prior defenses such as I2VGuard attempt to immunize images by inducing spatio-temporal degradation, which does not necessarily provide meaningful protection, since residual motion can still convey malicious intent. In this work, we introduce Vid-Freeze -- a novel adversarial defense that adds imperceptible perturbations to enforce temporal freezing in generated videos. Our method explicitly targets attention dynamics in I2V models to suppress motion synthesis. As a result, immunized images produce standstill or near-static videos, effectively blocking malicious content generation. Experiments demonstrate strong protection across models and support temporal freezing as a promising direction for proactive and meaningful defense against I2V misuse.
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Rohit Chowdhury, Aniruddha Bala, Rohan Jaiswal, Siddharth Roheda. 2025-09-27. Vid-Freeze: Protecting Images from Malicious Image-to-Video Generation via Temporal Freezing. https://arxiv.org/abs/2509.23279
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