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- W4379117516 abstract "Accurate prediction of structure’s displacement response is imperative to evaluate structure performance. With the aid of recent advances in deep learning, a data-driven model based on encoder-decoder convolutional neural network (CNN) is proposed to conduct full-field structure displacement response analysis, efficiently and accurately. A multi-channel input framework is developed to transform detailed physical features, including geometry, boundary conditions, and loads, into CNN-learnable data. The boundary conditions and loads are considered variables and mapped by approximation distance functions (ADFs) in the input framework. The proposed model is evaluated on two structures, including the simply supported plate, and wall with a changing opening. In the experiments, the relative errors of typical point displacement predictions are below 0.79%, and 0.70%, respectively. The testing results on walls with changing openings show the root mean square error (RMSE) of full-field displacement predictions is less than 0.072 and the coefficient of determination (R2) is over 0.9992. The results show that the proposed model can make accurate and efficient load-displacement assessments with the multi-channel data framework and avoid laborious repetitive modeling and training, for a class of structures with changing geometry and realistic size." @default.
- W4379117516 created "2023-06-03" @default.
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- W4379117516 date "2023-01-01" @default.
- W4379117516 modified "2023-09-27" @default.
- W4379117516 title "A Multi-channel Input Framework for Structure Displacement Response Prediction Using Convolutional Neural Network" @default.
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- W4379117516 doi "https://doi.org/10.1007/978-3-031-32511-3_141" @default.
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