2020
DOI: 10.48550/arxiv.2010.06010
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Machine Learning for Material Characterization with an Application for Predicting Mechanical Properties

Abstract: Currently, the growth of material data from experiments and simulations is expanding beyond processable amounts. This makes the development of new data-driven methods for the discovery of patterns among multiple lengthscales and time-scales and structure-property relationships essential. These data-driven approaches show enormous promise within materials science. The following review covers machine learning applications for metallic material characterization. Many parameters associated with the processing and … Show more

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References 130 publications
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