arXiv Open Access 2025

PosterCraft: Rethinking High-Quality Aesthetic Poster Generation in a Unified Framework

SiXiang Chen Jianyu Lai Jialin Gao Tian Ye Haoyu Chen +9 lainnya
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Abstrak

Generating aesthetic posters is more challenging than simple design images: it requires not only precise text rendering but also the seamless integration of abstract artistic content, striking layouts, and overall stylistic harmony. To address this, we propose PosterCraft, a unified framework that abandons prior modular pipelines and rigid, predefined layouts, allowing the model to freely explore coherent, visually compelling compositions. PosterCraft employs a carefully designed, cascaded workflow to optimize the generation of high-aesthetic posters: (i) large-scale text-rendering optimization on our newly introduced Text-Render-2M dataset; (ii) region-aware supervised fine-tuning on HQ-Poster100K; (iii) aesthetic-text-reinforcement learning via best-of-n preference optimization; and (iv) joint vision-language feedback refinement. Each stage is supported by a fully automated data-construction pipeline tailored to its specific needs, enabling robust training without complex architectural modifications. Evaluated on multiple experiments, PosterCraft significantly outperforms open-source baselines in rendering accuracy, layout coherence, and overall visual appeal-approaching the quality of SOTA commercial systems. Our code, models, and datasets can be found in the Project page: https://ephemeral182.github.io/PosterCraft

Topik & Kata Kunci

Penulis (14)

S

SiXiang Chen

J

Jianyu Lai

J

Jialin Gao

T

Tian Ye

H

Haoyu Chen

H

Hengyu Shi

S

Shitong Shao

Y

Yunlong Lin

S

Song Fei

Z

Zhaohu Xing

Y

Yeying Jin

J

Junfeng Luo

X

Xiaoming Wei

L

Lei Zhu

Format Sitasi

Chen, S., Lai, J., Gao, J., Ye, T., Chen, H., Shi, H. et al. (2025). PosterCraft: Rethinking High-Quality Aesthetic Poster Generation in a Unified Framework. https://arxiv.org/abs/2506.10741

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Tahun Terbit
2025
Bahasa
en
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arXiv
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Open Access ✓