Story2Board: A Training-Free Approach for Expressive Storyboard Generation episode artwork

EPISODE · Aug 15, 2025 · 21 MIN

Story2Board: A Training-Free Approach for Expressive Storyboard Generation

from Daily Paper Cast · host Jingwen Liang, Gengyu Wang

🤗 Upvotes: 42 | cs.CV, cs.GR, cs.LG Authors: David Dinkevich, Matan Levy, Omri Avrahami, Dvir Samuel, Dani Lischinski Title: Story2Board: A Training-Free Approach for Expressive Storyboard Generation Arxiv: http://arxiv.org/abs/2508.09983v1 Abstract: We present Story2Board, a training-free framework for expressive storyboard generation from natural language. Existing methods narrowly focus on subject identity, overlooking key aspects of visual storytelling such as spatial composition, background evolution, and narrative pacing. To address this, we introduce a lightweight consistency framework composed of two components: Latent Panel Anchoring, which preserves a shared character reference across panels, and Reciprocal Attention Value Mixing, which softly blends visual features between token pairs with strong reciprocal attention. Together, these mechanisms enhance coherence without architectural changes or fine-tuning, enabling state-of-the-art diffusion models to generate visually diverse yet consistent storyboards. To structure generation, we use an off-the-shelf language model to convert free-form stories into grounded panel-level prompts. To evaluate, we propose the Rich Storyboard Benchmark, a suite of open-domain narratives designed to assess layout diversity and background-grounded storytelling, in addition to consistency. We also introduce a new Scene Diversity metric that quantifies spatial and pose variation across storyboards. Our qualitative and quantitative results, as well as a user study, show that Story2Board produces more dynamic, coherent, and narratively engaging storyboards than existing baselines.

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