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ShapeWords: Guiding Text-to-Image Synthesis with 3D Shape-Aware Prompts

Authors :
Petrov, Dmitry
Goyal, Pradyumn
Shivashok, Divyansh
Tao, Yuanming
Averkiou, Melinos
Kalogerakis, Evangelos
Publication Year :
2024

Abstract

We introduce ShapeWords, an approach for synthesizing images based on 3D shape guidance and text prompts. ShapeWords incorporates target 3D shape information within specialized tokens embedded together with the input text, effectively blending 3D shape awareness with textual context to guide the image synthesis process. Unlike conventional shape guidance methods that rely on depth maps restricted to fixed viewpoints and often overlook full 3D structure or textual context, ShapeWords generates diverse yet consistent images that reflect both the target shape's geometry and the textual description. Experimental results show that ShapeWords produces images that are more text-compliant, aesthetically plausible, while also maintaining 3D shape awareness.<br />Comment: Project webpage: https://lodurality.github.io/shapewords/

Details

Database :
arXiv
Publication Type :
Report
Accession number :
edsarx.2412.02912
Document Type :
Working Paper