Escher Tile Deformation via Closed-Form Solution

Fuente: arXiv
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Main Authors: Chen, Crane He, Kim, Vladimir G.
Format: Preprint
Published: 2025
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author Chen, Crane He
Kim, Vladimir G.
author_facet Chen, Crane He
Kim, Vladimir G.
contents We present a real-time deformation method for Escher tiles -- interlocking organic forms that seamlessly tessellate the plane following symmetry rules. We formulate the problem as determining a periodic displacement field. The goal is to deform Escher tiles without introducing gaps or overlaps. The resulting displacement field is obtained in closed form by an analytical solution. Our method processes tiles of 17 wallpaper groups across various representations such as images and meshes. Rather than treating tiles as mere boundaries, we consider them as textured shapes, ensuring that both the boundary and interior deform simultaneously. To enable fine-grained artistic input, our interactive tool features a user-controllable adaptive fall-off parameter, allowing precise adjustment of locality and supporting deformations with meaningful semantic control. We demonstrate the effectiveness of our method through various examples, including photo editing and shape sculpting, showing its use in applications such as fabrication and animation.
format Preprint
id arxiv_https___arxiv_org_abs_2506_23388
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Escher Tile Deformation via Closed-Form Solution
Chen, Crane He
Kim, Vladimir G.
Graphics
Computational Geometry
Mathematical Software
Metric Geometry
We present a real-time deformation method for Escher tiles -- interlocking organic forms that seamlessly tessellate the plane following symmetry rules. We formulate the problem as determining a periodic displacement field. The goal is to deform Escher tiles without introducing gaps or overlaps. The resulting displacement field is obtained in closed form by an analytical solution. Our method processes tiles of 17 wallpaper groups across various representations such as images and meshes. Rather than treating tiles as mere boundaries, we consider them as textured shapes, ensuring that both the boundary and interior deform simultaneously. To enable fine-grained artistic input, our interactive tool features a user-controllable adaptive fall-off parameter, allowing precise adjustment of locality and supporting deformations with meaningful semantic control. We demonstrate the effectiveness of our method through various examples, including photo editing and shape sculpting, showing its use in applications such as fabrication and animation.
title Escher Tile Deformation via Closed-Form Solution
topic Graphics
Computational Geometry
Mathematical Software
Metric Geometry
url https://arxiv.org/abs/2506.23388