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Machine learning analysis of a large set of homopolymers to predict glass transition temperatures

Abstract Glass transition temperature of polymers, Tg, is an important thermophysical property, which sometimes can be difficult to measure experimentally. In this regard, data-driven machine learning approaches are important alternatives to assess Tg values, in a high-throughput way. In this study,...

Whakaahuatanga katoa

I tiakina i:
Ngā taipitopito rārangi puna kōrero
Ngā kaituhi matua: Gerardo M. Casanola-Martin, Anas Karuth, Hai Pham-The, Humbert González-Díaz, Dean C. Webster, Bakhtiyor Rasulev
Hōputu: Artigo
Reo:Inglês
I whakaputaina: Nature Portfolio 2024-10-01
Rangatū:Communications Chemistry
Urunga tuihono:https://doi.org/10.1038/s42004-024-01305-0
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