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Machine learning identifies scale-free properties in disordered materials

Engineering and Technology

Machine learning identifies scale-free properties in disordered materials

S. Yu, X. Piao, et al.

Discover how Sunkyu Yu, Xianji Piao, and Namkyoo Park harness machine learning to revolutionize our understanding of wave-matter interactions in disordered structures. This study unveils novel neural networks that not only predict wave localization but also generate robust disordered structures with scale-free properties, enhancing resilience against defects.... show more
Abstract
The vast amount of design freedom in disordered systems expands the parameter space for signal processing. However, this large degree of freedom has hindered the deterministic design of disordered systems for target functionalities. Here, we employ a machine learning approach for predicting and designing wave-matter interactions in disordered structures, thereby identifying scale-free properties for waves. To abstract and map the features of wave behaviors and disordered structures, we develop disorder-to-localization and localization-to-disorder convolutional neural networks, each of which enables the instantaneous prediction of wave localization in disordered structures and the instantaneous generation of disordered structures from given localizations. We demonstrate that the structural properties of the network architectures lead to the identification of scale-free disordered structures having heavy-tailed distributions, thus achieving multiple orders of magnitude improvement in robustness to accidental defects. Our results verify the critical role of neural network structures in determining machine-learning-generated real-space structures and their defect immunity.
Publisher
Nature Communications
Published On
Sep 24, 2020
Authors
Sunkyu Yu, Xianji Piao, Namkyoo Park
Tags
machine learning
wave-matter interactions
disordered structures
neural networks
predictive modeling
localization
scale invariance
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