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Resnet networks for plausibility detection in finite element simulations

Bickel, Sebastian; Schleich, Benjamin; Wartzack, Sandro


Type:
Year:
2022
Editor:
Mortensen, N.H.; Hansen, C.T. and Deininger, M.
Author:
Series:
NordDESIGN
Institution:
Friedrich-Alexander-Universität Erlangen-Nürnberg (FAU)
Section:
Product Validation
Page(s):
10
DOI number:
ISBN:
9781912254170
Abstract:
Today, product design without Finite Element (FE) simulation is hardly conceivable. In addition, the market promotes shorter development times and a greater product variety. This combination poses the risk of inexperienced users performing simulation tasks. An idea to support these is to check their FE models for plausibility. One approach utilizes calculated simulations to train a Deep Learning model that classifies the new simulations. However, a high recognition accuracy is required. Therefore, this paper investigates the ability of a ResNets to check the plausibility of simulations.
Keywords:

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