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The Fabrication of Reality and Fantasy: Scene Generation with LLM-Assisted Prompt Interpretation

17 July 2024
Yi Yao
Chan-Feng Hsu
Jhe-Hao Lin
Hongxia Xie
Terence Lin
Yi-Ning Huang
Hong-Han Shuai
Wen-Huang Cheng
    DiffM
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Abstract

In spite of recent advancements in text-to-image generation, limitations persist in handling complex and imaginative prompts due to the restricted diversity and complexity of training data. This work explores how diffusion models can generate images from prompts requiring artistic creativity or specialized knowledge. We introduce the Realistic-Fantasy Benchmark (RFBench), a novel evaluation framework blending realistic and fantastical scenarios. To address these challenges, we propose the Realistic-Fantasy Network (RFNet), a training-free approach integrating diffusion models with LLMs. Extensive human evaluations and GPT-based compositional assessments demonstrate our approach's superiority over state-of-the-art methods. Our code and dataset is available at https://leo81005.github.io/Reality-and-Fantasy/.

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