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Operator learning

Learn an operator between infinite dimensional Hilbert spaces or Banach spaces

Papers

Showing 251300 of 347 papers

TitleStatusHype
Operator Learning for Reconstructing Flow Fields from Sparse Measurements: an Energy Transformer Approach0
Operator Learning for Robust Stabilization of Linear Markov-Jumping Hyperbolic PDEs0
U-WNO:U-Net-enhanced Wavelet Neural Operator for fetal head segmentation0
Operator-learning-inspired Modeling of Neural Ordinary Differential Equations0
Operator Learning Meets Numerical Analysis: Improving Neural Networks through Iterative Methods0
Operator Learning of Lipschitz Operators: An Information-Theoretic Perspective0
Operator learning regularization for macroscopic permeability prediction in dual-scale flow problem0
An Overview on Machine Learning Methods for Partial Differential Equations: from Physics Informed Neural Networks to Deep Operator Learning0
A novel data generation scheme for surrogate modelling with deep operator networks0
An Introduction to Kernel and Operator Learning Methods for Homogenization by Self-consistent Clustering Analysis0
Alpha-VI DeepONet: A prior-robust variational Bayesian approach for enhancing DeepONets with uncertainty quantification0
Operator learning with PCA-Net: upper and lower complexity bounds0
opPINN: Physics-Informed Neural Network with operator learning to approximate solutions to the Fokker-Planck-Landau equation0
Optimal deep learning of holomorphic operators between Banach spaces0
Optimization for Neural Operators can Benefit from Width0
Orthogonal greedy algorithm for linear operator learning with shallow neural network0
An Enhanced V-cycle MgNet Model for Operator Learning in Numerical Partial Differential Equations0
Parametric Learning of Time-Advancement Operators for Unstable Flame Evolution0
Analysis Operator Learning and Its Application to Image Reconstruction0
Physics and geometry informed neural operator network with application to acoustic scattering0
Physics-Informed Deep B-Spline Networks for Dynamical Systems0
Physics-Informed Deep Inverse Operator Networks for Solving PDE Inverse Problems0
Koopman operator learning using invertible neural networks0
Physics-Informed Latent Neural Operator for Real-time Predictions of Complex Physical Systems0
Physics-informed Multiple-Input Operators for efficient dynamic response prediction of structures0
Analysis of Fast Structured Dictionary Learning0
Physics informed WNO0
PMNO: A novel physics guided multi-step neural operator predictor for partial differential equations0
Holistic Physics Solver: Learning PDEs in a Unified Spectral-Physical Space0
Analysis of Fast Alternating Minimization for Structured Dictionary Learning0
A Mathematical Guide to Operator Learning0
A Kernel Approach for PDE Discovery and Operator Learning0
Projection Methods for Operator Learning and Universal Approximation0
AI Foundation Models for Weather and Climate: Applications, Design, and Implementation0
A Hybrid Kernel-Free Boundary Integral Method with Operator Learning for Solving Parametric Partial Differential Equations In Complex Domains0
Variable-Input Deep Operator Networks0
Pseudo-Physics-Informed Neural Operators: Enhancing Operator Learning from Limited Data0
Quantifying Training Difficulty and Accelerating Convergence in Neural Network-Based PDE Solvers0
Randomized prior wavelet neural operator for uncertainty quantification0
Recurrent Neural Operators: Stable Long-Term PDE Prediction0
Reduced Order Modeling of a MOOSE-based Advanced Manufacturing Model with Operator Learning0
A Hybrid Framework for Efficient Koopman Operator Learning0
Scattering with Neural Operators0
Scientific Machine Learning Seismology0
Variational Autoencoding Neural Operators0
Separable Cosparse Analysis Operator Learning0
A foundational neural operator that continuously learns without forgetting0
SetONet: A Deep Set-based Operator Network for Solving PDEs with permutation invariant variable input sampling0
Variational Bayes Deep Operator Network: A data-driven Bayesian solver for parametric differential equations0
Smooth and Sparse Latent Dynamics in Operator Learning with Jerk Regularization0
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