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NLP Inspired Training Mechanics For Modeling Transient Dynamics

Authors :
Ghule, Lalit
Ranade, Rishikesh
Pathak, Jay
Publication Year :
2022

Abstract

In recent years, Machine learning (ML) techniques developed for Natural Language Processing (NLP) have permeated into developing better computer vision algorithms. In this work, we use such NLP-inspired techniques to improve the accuracy, robustness and generalizability of ML models for simulating transient dynamics. We introduce teacher forcing and curriculum learning based training mechanics to model vortical flows and show an enhancement in accuracy for ML models, such as FNO and UNet by more than 50%.

Details

Database :
arXiv
Publication Type :
Report
Accession number :
edsarx.2211.02716
Document Type :
Working Paper