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cs.CV2025

DreamO: A Unified Framework for Image Customization

Chong Mou, Yanze Wu, Wenxu Wu +15

Recently, extensive research on image customization (e.g., identity, subject, style, background, etc.) demonstrates strong customization capabilities in large-scale generative mode…

cs.CV2025

RealCustom++: Representing Images as Real Textual Word for Real-Time Customization

Zhendong Mao, Mengqi Huang, Fei Ding +3

Given a text and an image of a specific subject, text-to-image customization aims to generate new images that align with both the text and the subject's appearance. Existing works…

cs.CV2025

UMO: Scaling Multi-Identity Consistency for Image Customization via Matching Reward

Yufeng Cheng, Wenxu Wu, Shaojin Wu +3

Recent advancements in image customization exhibit a wide range of application prospects due to stronger customization capabilities. However, since we humans are more sensitive to…

cs.CV2025

USO: Unified Style and Subject-Driven Generation via Disentangled and Reward Learning

Shaojin Wu, Mengqi Huang, Yufeng Cheng +5

Existing literature typically treats style-driven and subject-driven generation as two disjoint tasks: the former prioritizes stylistic similarity, whereas the latter insists on su…

cs.CV2025

Less-to-More Generalization: Unlocking More Controllability by In-Context Generation

Shaojin Wu, Mengqi Huang, Wenxu Wu +3

Although subject-driven generation has been extensively explored in image generation due to its wide applications, it still has challenges in data scalability and subject expansibi…