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Paper · arXiv 2409.12576

StoryMaker: Towards Holistic Consistent Characters in Text-to-image Generation

Zhengguang Zhou, Jing Li, Huaxia Li, Nemo Chen, Xu Tang

16 upvotesSeptember 19, 2024arXiv 预印本
AI 摘要

StoryMaker enhances personalized image generation by maintaining holistic consistency of multiple characters in scenes, using a Positional-aware Perceiver Resampler and segment-specific cross-attention constraints.

Positional-aware Perceiver Resamplercross-attentionsegmentation masksMSE lossLoRApose conditioning

Abstract

Tuning-free personalized image generation methods have achieved significant success in maintaining facial consistency, i.e., identities, even with multiple characters. However, the lack of holistic consistency in scenes with multiple characters hampers these methods' ability to create a cohesive narrative. In this paper, we introduce StoryMaker, a personalization solution that preserves not only facial consistency but also clothing, hairstyles, and body consistency, thus facilitating the creation of a story through a series of images. StoryMaker incorporates conditions based on face identities and cropped character images, which include clothing, hairstyles, and bodies. Specifically, we integrate the facial identity information with the cropped character images using the Positional-aware Perceiver Resampler (PPR) to obtain distinct character features. To prevent intermingling of multiple characters and the background, we separately constrain the cross-attention impact regions of different characters and the background using MSE loss with segmentation masks. Additionally, we train the generation network conditioned on poses to promote decoupling from poses. A LoRA is also employed to enhance fidelity and quality. Experiments underscore the effectiveness of our approach. StoryMaker supports numerous applications and is compatible with other societal plug-ins. Our source codes and model weights are available at https://github.com/RedAIGC/StoryMaker.

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