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ARTIST: Improving the Generation of Text-rich Images with Disentangled Diffusion Models and Large Language Models (2406.12044v3)

Published 17 Jun 2024 in cs.CV

Abstract: Diffusion models have demonstrated exceptional capabilities in generating a broad spectrum of visual content, yet their proficiency in rendering text is still limited: they often generate inaccurate characters or words that fail to blend well with the underlying image. To address these shortcomings, we introduce a novel framework named, ARTIST, which incorporates a dedicated textual diffusion model to focus on the learning of text structures specifically. Initially, we pretrain this textual model to capture the intricacies of text representation. Subsequently, we finetune a visual diffusion model, enabling it to assimilate textual structure information from the pretrained textual model. This disentangled architecture design and training strategy significantly enhance the text rendering ability of the diffusion models for text-rich image generation. Additionally, we leverage the capabilities of pretrained LLMs to interpret user intentions better, contributing to improved generation quality. Empirical results on the MARIO-Eval benchmark underscore the effectiveness of the proposed method, showing an improvement of up to 15% in various metrics.

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Authors (8)
  1. Jianyi Zhang (39 papers)
  2. Yufan Zhou (36 papers)
  3. Jiuxiang Gu (73 papers)
  4. Curtis Wigington (13 papers)
  5. Tong Yu (119 papers)
  6. Yiran Chen (176 papers)
  7. Tong Sun (49 papers)
  8. Ruiyi Zhang (98 papers)
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