4.8 Article

Studying Complex Evolution of Hyperelastic Materials under External Field Stimuli using Artificial Neural Networks with Spatiotemporal Features in a Small-Scale Dataset

Journal

ADVANCED MATERIALS
Volume 34, Issue 26, Pages -

Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/adma.202200908

Keywords

additive manufacturing; deep learning; machine learning; material design; porous silicone rubber

Funding

  1. National Natural Science Foundation of China [U2030203,22075258]

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Deep-learning methods have shown promise in dealing with complex structure-performance relationships for materials. This study demonstrates the importance of constructing accurate descriptors when training deep-learning models on small experimental datasets. The proposed approach, using a convolutional bidirectional long short-term memory model, shows potential as a powerful tool for innovative material design and exploring material properties under complex conditions.
Deep-learning (DL) methods, in consideration of their excellence in dealing with highly complex structure-performance relationships for materials, are expected to become a new design paradigm for breakthroughs in material performance. However, in most cases, it is impractical to collect massive-scale experimental data or open-source theoretical databases to support training DL models with sufficient prediction accuracy. In a dataset consisting of 483 porous silicone rubber observations generated via ink-writing additive manufacturing, this work demonstrates that constructing low-dimensional, accurate descriptors is the prerequisite for obtaining high-precision DL models based on small experimental datasets. On this basis, a unique convolutional bidirectional long short-term memory model with spatiotemporal features extraction capability is designed, whose hierarchical learning mechanism further reduces the requirement for the amount of data by taking full advantage of data information. The proposed approach can be expected as a powerful tool for innovative material design on small experimental datasets, which can also be used to explore the evolutionary mechanisms of the structures and properties of materials under complex working conditions.

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