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[ARTICLE · art-118520] src=arxiv.org ↗ pub= topic=generative-ai verified=true sentiment=· neutral

Less Is More: Balancing Positive and Negative Space in Visual Concept Blending

Researchers introduced an automatic pipeline that explicitly applies positive and negative space in visual concept blending, using semantic reasoning from vision-language models and geometric constraints to identify integration regions, followed by a hybrid pixel-vector generation process with a multimodal agent as planner and evaluator. The approach demonstrated greater expressiveness, creativity, and concept recognizability in baseline comparisons and a user study, and generalizes to controllable image and infographic generation.

read1 min views1 publishedSep 2, 2026

arXiv:2609.00476v1 Announce Type: new Abstract: Graphic designers often blend visual concepts to communicate multiple ideas within a single image, leveraging positive and negative space to create balance, emphasis, and aesthetic appeal. While computational methods have begun to support automatic concept blending, they largely overlook the role of spatial composition in the design. To address this gap, we present an automatic pipeline that explicitly applies positive and negative space throughout the blending process. Our approach first identifies plausible regions for concept integration by combining semantic reasoning from vision-language models with geometric constraints derived from real-world examples. Conditioned on these regions, the system generates blended compositions using a hybrid pixel-vector pipeline: diffusion-based inpainting produces a fast, coarse initialization, which is then refined through vector-based optimization at the point level to ensure structural coherence and balanced semantic expression. A multimodal agent orchestrates this process as a planner and evaluator, enabling iterative improvement and interpretable control. Through an evaluation using both baseline comparisons and a user study, we demonstrate greater expressiveness, creativity, and concept recognizability by effectively leveraging positive and negative space. We further demonstrate the generalizability of our approach across diverse applications, including controllable image and infographic generation.

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