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Beyond Fixed Luminance: Towards Panchromatic and Orthochromatic Image Colorization

Authors

Do you know Swarnim Maheshwari?You can claim authorship or link another user.Do you know Syed Imam Ali?You can claim authorship or link another user.Do you know Vineeth N. Balasubramanian?You can claim authorship or link another user.

Abstract

Most image colorization systems operate in $Lab$ space by predicting chroma ($ab$) while preserving an input-derived luminance channel ($L$). While effective on standard benchmarks, this fixed-luminance design restricts brightness changes and becomes unreliable when grayscale formation deviates from natural-image luminance, as in historical orthochromatic photography. We propose a luminance-agnostic colorization framework that formulates colorization as full-RGB image editing using a foundation image-editing model. To bridge modern panchromatic and historical orthochromatic conditions, we introduce a mixed grayscale objective that trains the model under both standard luminance grayscale and a red-insensitive grayscale formation. Experiments on COCO, ImageNet, and a multi-instance benchmark show that our method is competitive on standard grayscale inputs and substantially more robust under orthochromatic inputs, with qualitative comparisons and a human study indicating fewer visible color artifacts.

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Publication notes

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Accepted at ECCV 2026