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Intelligent Grimm -- Open-ended Visual Storytelling via Latent Diffusion Models

About

Generative models have recently exhibited exceptional capabilities in text-to-image generation, but still struggle to generate image sequences coherently. In this work, we focus on a novel, yet challenging task of generating a coherent image sequence based on a given storyline, denoted as open-ended visual storytelling. We make the following three contributions: (i) to fulfill the task of visual storytelling, we propose a learning-based auto-regressive image generation model, termed as StoryGen, with a novel vision-language context module, that enables to generate the current frame by conditioning on the corresponding text prompt and preceding image-caption pairs; (ii) to address the data shortage of visual storytelling, we collect paired image-text sequences by sourcing from online videos and open-source E-books, establishing processing pipeline for constructing a large-scale dataset with diverse characters, storylines, and artistic styles, named StorySalon; (iii) Quantitative experiments and human evaluations have validated the superiority of our StoryGen, where we show StoryGen can generalize to unseen characters without any optimization, and generate image sequences with coherent content and consistent character. Code, dataset, and models are available at https://haoningwu3639.github.io/StoryGen_Webpage/

Chang Liu, Haoning Wu, Yujie Zhong, Xiaoyun Zhang, Yanfeng Wang, Weidi Xie• 2023

Related benchmarks

TaskDatasetResultRank
Cinematic Story GenerationViStoryBench
CSD (Cross)0.371
24
Story VisualizationStorySalon long stories (test)
CLIP-T0.223
13
Story VisualizationStorySalon regular-length (test)
CLIP-T0.255
10
Regular-Length Story VisualizationStoryGen Regular-Length Story Visualization (Human Evaluation)
Alignment3.72
8
Long Story VisualizationStoryGen Human Evaluation Set Long Story Visualization
Alignment3.51
7
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