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Prompt-based Consistent Video Colorization

2025/11/27 by S. G. Dani, Dani, Silvia, Tiberio Uricchio +3
Computer Science · #Generative Adversarial Networks and Image Synthesis #Face recognition and analysis #Multimodal Machine Learning Applications

paper · pdf · doi:10.48550/arxiv.2511.22330

Abstract

Existing video colorization methods struggle with temporal flickering or demand extensive manual input. We propose a novel approach automating high-fidelity video colorization using rich semantic guidance derived from language and segmentation. We employ a language-conditioned diffusion model to colorize grayscale frames. Guidance is provided via automatically generated object masks and textual prompts; our primary automatic method uses a generic prompt, achieving state-of-the-art results without specific color input. Temporal stability is achieved by warping color information from previous frames using optical flow (RAFT); a correction step detects and fixes inconsistencies introduced by warping. Evaluations on standard benchmarks (DAVIS30, VIDEVO20) show our method achieves state-of-the-art performance in colorization accuracy (PSNR) and visual realism (Colorfulness, CDC), demonstrating the efficacy of automated prompt-based guidance for consistent video colorization.

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