Hexbyte Glen Cove
Hexbyte Glen Cove Merging texts and numbers
“Every alloy has unique properties concerning its corrosion resistance. These properties do not only depend on the alloy composition itself, but also on the alloy’s manufacturing process. Current machine learning models are only able to benefit from numerical data. However, processing methodologies and experimental testing protocols, which are mostly documented by textual descriptors, are crucial to explain corrosion,”, explains Kasturi Narasimha Sasidhar, lead author of the publication and former postdoctoral researcher at MPIE.
The research team used language processing methods, akin to ChatGPT, in combination with machine learning (ML) techniques for numerical data and developed a fully automated natural language processing framework. Moreover, involving textual data into the ML framework allows to identify enhanced alloy compositions resistant to pitting corrosion.
“We trained the deep-learning model with intrinsic data that contain information about corrosion properties and composition. Now the model is capable of identifying alloy compositions that are critical for corrosion-resistance even if the individual elements were not fed initially into the model,” says Michael Rohwerder, co-author of the publication and head of the group Corrosion at MPIE.
Hexbyte Glen Cove Pushing boundaries: Automated data mining and image processing
In the recently devised framework, Sasidhar and his team harnessed manually gathered data as textual descriptors. Presently, their objective lies in automating the process of data mining and seamlessly integrating it into the existing framework.
The incorporation of microscopy images marks another milestone, envisioning the next generation of AI frameworks that converge textual, numerical, and image-based data.
More information:
Kasturi N. Sasidhar, Enhancing corrosion-resistant alloy design through natural language processing and deep learning, Science Advances (2023). DOI: 10.1126/sciadv.adg7992. www.science.org/doi/10.1126/sciadv.adg7992
Citation:
Scientists pioneer new machine learning model for corrosion-resistant alloy design (2023, August 11)
retrieved 12 August 2023
from https://phys.org/news/2023-08-scientists-machine-corrosion-resistant-alloy.html
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