Dynamical Data for More Efficient and Generalizable Learning: A Case Study in Disordered Elastic Networks

Fuente: arXiv
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Main Authors: Salman, Salman N., Shteingolts, Sergey A., Levie, Ron, Mendels, Dan
Format: Preprint
Published: 2025
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author Salman, Salman N.
Shteingolts, Sergey A.
Levie, Ron
Mendels, Dan
author_facet Salman, Salman N.
Shteingolts, Sergey A.
Levie, Ron
Mendels, Dan
contents Machine learning models often require large datasets and struggle to generalize beyond their training distribution. These limitations pose significant challenges in scientific and engineering contexts, where generating exhaustive datasets is often impractical and the goal is frequently to discover novel solutions outside the training domain. In this work, we explore the use of dynamical data through a graph neural network-based simulator to enable efficient system-to-property learning and out-of-distribution prediction in the context of uniaxial compression of two-dimensional disordered elastic networks. We find that the simulator can learn the underlying physical dynamics from a small number of training examples and accurately reproduce the temporal evolution of unseen networks. Notably, the simulator is able to accurately predict emergent properties such as the Poisson's ratio and its dependence on strain, even though it was not explicitly trained for this task. In addition, it generalizes well across variations in system temperature, strain amplitude, and most significantly, Poisson's ratios beyond the training range. These findings suggest that using dynamical data to train machine learning models can support more data efficient and generalizable approaches for materials and molecular design, especially in data-scarce settings.
format Preprint
id arxiv_https___arxiv_org_abs_2505_21125
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Dynamical Data for More Efficient and Generalizable Learning: A Case Study in Disordered Elastic Networks
Salman, Salman N.
Shteingolts, Sergey A.
Levie, Ron
Mendels, Dan
Chemical Physics
Materials Science
Machine learning models often require large datasets and struggle to generalize beyond their training distribution. These limitations pose significant challenges in scientific and engineering contexts, where generating exhaustive datasets is often impractical and the goal is frequently to discover novel solutions outside the training domain. In this work, we explore the use of dynamical data through a graph neural network-based simulator to enable efficient system-to-property learning and out-of-distribution prediction in the context of uniaxial compression of two-dimensional disordered elastic networks. We find that the simulator can learn the underlying physical dynamics from a small number of training examples and accurately reproduce the temporal evolution of unseen networks. Notably, the simulator is able to accurately predict emergent properties such as the Poisson's ratio and its dependence on strain, even though it was not explicitly trained for this task. In addition, it generalizes well across variations in system temperature, strain amplitude, and most significantly, Poisson's ratios beyond the training range. These findings suggest that using dynamical data to train machine learning models can support more data efficient and generalizable approaches for materials and molecular design, especially in data-scarce settings.
title Dynamical Data for More Efficient and Generalizable Learning: A Case Study in Disordered Elastic Networks
topic Chemical Physics
Materials Science
url https://arxiv.org/abs/2505.21125