Publication | Open Access
Graph Convolutional Neural Networks for Body Force Prediction
16
Citations
38
References
2020
Year
Geometric LearningConvolutional Neural NetworkEngineeringMachine LearningEngineering ProcessesGraph Signal ProcessingFeature MatrixKinesiologyImage AnalysisData ScienceRobot LearningHealth SciencesGeometric Feature ModelingFeature LearningComputer ScienceDeep LearningBody Force PredictionHuman MovementGraph Neural NetworkDrag Force
Many scientific and engineering processes produce spatially unstructured data. However, most data-driven models require a feature matrix that enforces both a set number and order of features for each sample. They thus cannot be easily constructed for an unstructured dataset. Therefore, a graph based data-driven model to perform inference on fields defined on an unstructured mesh, using a Graph Convolutional Neural Network (GCNN) is presented. The ability of the method to predict global properties from spatially irregular measurements with high accuracy is demonstrated by predicting the drag force associated with laminar flow around airfoils from scattered velocity measurements. The network can infer from field samples at different resolutions, and is invariant to the order in which the measurements within each sample are presented. The GCNN method, using inductive convolutional layers and adaptive pooling, is able to predict this quantity with a validation $R^{2}$ above 0.98, and a Normalized Mean Squared Error below 0.01, without relying on spatial structure.
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Physics-informed neural networks: A deep learning framework for solving forward and inverse problems involving nonlinear partial differential equations Maziar Raissi, Paris Perdikaris, George Em Karniadakis Journal of Computational Physics EngineeringPde-constrained OptimizationDeep Learning FrameworkAi FoundationInverse Problems | 2018 | 14.4K |
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