Text-Guided Mask-free Local Image Retouching
December 15, 2022 · Declared Dead · 🏛 IEEE International Conference on Multimedia and Expo
"Paper promises code 'coming soon'"
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Authors
Zerun Liu, Fan Zhang, Jingxuan He, Jin Wang, Zhangye Wang, Lechao Cheng
arXiv ID
2212.07603
Category
cs.CV: Computer Vision
Citations
8
Venue
IEEE International Conference on Multimedia and Expo
Last Checked
1 month ago
Abstract
In the realm of multi-modality, text-guided image retouching techniques emerged with the advent of deep learning. Most currently available text-guided methods, however, rely on object-level supervision to constrain the region that may be modified. This not only makes it more challenging to develop these algorithms, but it also limits how widely deep learning can be used for image retouching. In this paper, we offer a text-guided mask-free image retouching approach that yields consistent results to address this concern. In order to perform image retouching without mask supervision, our technique can construct plausible and edge-sharp masks based on the text for each object in the image. Extensive experiments have shown that our method can produce high-quality, accurate images based on spoken language. The source code will be released soon.
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