叙事画布受故事启发的图像合成

Harshitha G N, Ms. Jeevitha M
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引用次数: 0

摘要

本研究提出了 "叙事画布"(Narrative Canvas)--一种基于稳定扩散的故事启发图片合成新框架。我们的方法利用深度学习模型,从叙事输入中生成具有视觉吸引力和逻辑性的图画。通过整合尖端的文本到图片合成算法,Narrative Canvas 可确保图片忠实地传达故事的中心主题并保持人物性格的一致性。所建议的技术使用 COYO-300M 数据集对模型进行训练和微调,使其能够有效处理各种故事内容。实验结果表明,我们的系统可以生成高质量的视觉效果,与故事情节相辅相成,改善故事体验。这项工作为自动生成内容创造了新的机遇,尤其是在互动媒体、数字艺术和儿童文学领域。关键字故事启发的图像合成、稳定扩散、深度学习、文本到图像合成、叙事一致性、COYO-300M 数据集、自动内容创建
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Narrative Canvas: Story-Inspired Image Synthesis
This research proposes Narrative Canvas, a novel framework for Stable Diffusion-based story-inspired picture synthesis. Our method uses deep learning models to produce visually appealing and logical drawings from narrative inputs. Through the integration of cutting-edge text-to-image synthesis algorithms, Narrative Canvas ensures that images faithfully convey the story's central themes and maintain character consistency. The suggested technique trains and fine-tunes the model using the COYO-300M data set, allowing it to handle a variety of storytelling aspects with effectiveness. The outcomes of our experiments show that our system can generate high-quality visuals that complement the storyline and improve the storytelling experience. This work creates new opportunities for automated content generation, especially in interactive media, digital art, and children's literature. Key Words: Story-inspired image synthesis, Stable Diffusion, deep learning, text-to-image synthesis, narrative consistency, COYO-300M data set, automated content creation
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