Inverse Discrete Elastic Rod

Fuente: arXiv
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Bibliographic Details
Main Authors: Li, Jiahao, Liu, Mingchao, Liang, Haiyi, Wu, HengAn, Huang, Weicheng
Format: Preprint
Published: 2025
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author Li, Jiahao
Liu, Mingchao
Liang, Haiyi
Wu, HengAn
Huang, Weicheng
author_facet Li, Jiahao
Liu, Mingchao
Liang, Haiyi
Wu, HengAn
Huang, Weicheng
contents Inverse design of slender elastic structures underlies a wide range of applications in computer graphics, flexible electronics, biomedical devices, and soft robotics. Traditional optimization-based approaches, however, are often orders of magnitude slower than forward dynamic simulations and typically impose restrictive boundary conditions. In this work, we present an inverse discrete elastic rods (inverse-DER) method that enables efficient and accurate inverse design under general loading and boundary conditions. By reformulating the inverse problem as a static equilibrium in the reference configuration, our method attains computational efficiency comparable to forward simulations while preserving high fidelity. This framework allows rapid determination of undeformed geometries for elastic fabrication structures that naturally deform into desired target shapes upon actuation or loading. We validate the approach through both physical prototypes and forward simulations, demonstrating its accuracy, robustness, and potential for real-world design applications.
format Preprint
id arxiv_https___arxiv_org_abs_2512_06830
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Inverse Discrete Elastic Rod
Li, Jiahao
Liu, Mingchao
Liang, Haiyi
Wu, HengAn
Huang, Weicheng
Graphics
Inverse design of slender elastic structures underlies a wide range of applications in computer graphics, flexible electronics, biomedical devices, and soft robotics. Traditional optimization-based approaches, however, are often orders of magnitude slower than forward dynamic simulations and typically impose restrictive boundary conditions. In this work, we present an inverse discrete elastic rods (inverse-DER) method that enables efficient and accurate inverse design under general loading and boundary conditions. By reformulating the inverse problem as a static equilibrium in the reference configuration, our method attains computational efficiency comparable to forward simulations while preserving high fidelity. This framework allows rapid determination of undeformed geometries for elastic fabrication structures that naturally deform into desired target shapes upon actuation or loading. We validate the approach through both physical prototypes and forward simulations, demonstrating its accuracy, robustness, and potential for real-world design applications.
title Inverse Discrete Elastic Rod
topic Graphics
url https://arxiv.org/abs/2512.06830