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Integrating Generative AI-Based Script Writing with Story Visualization: A Comprehensive Approach to Automated Narrative Creation

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Preprints.org
DOI
10.20944/preprints202507.1753.v1

The fusion of generative AI and advanced visual synthesis technologies has opened new frontiers in automated storytelling. While large language models (LLMs) have achieved remarkable proficiency in generating coherent and emotionally engaging narratives, a consistent challenge lies in bridging the semantic gap between textual scripts and their visual interpretation [1]. This paper presents a comprehensive framework that unites generative AI-based script writing with high-quality story visualization. We delve into cutting-edge techniques in narrative generation, explore semantic abstraction methods, and detail visual rendering pipelines powered by diffusion and multi-modal models [30]. Our integrated architecture emphasizes semantic alignment, temporal coherence, and narrative consistency throughout the storytelling process. Experimental evaluations and qualitative case studies validate the effectiveness of the approach across diverse genres. This work aims to serve as a foundational model for the next generation of storytelling systems, paving the way for applications in entertainment, education, and interactive media.

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