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1. Efficient sampling approaches based on generalized Golub-Kahan methods for large-scale hierarchical Bayesian inverse problems

2. Randomized and Inner-product Free Krylov Methods for Large-scale Inverse Problems

3. A Paired Autoencoder Framework for Inverse Problems via Bayes Risk Minimization

4. Efficient hyperparameter estimation in Bayesian inverse problems using sample average approximation

5. Inexact Generalized Golub-Kahan Methods for Large-Scale Bayesian Inverse Problems

6. Inner Product Free Krylov Methods for Large-Scale Inverse Problems

8. Paired Autoencoders for Likelihood-free Estimation in Inverse Problems

9. Iterative Reconstruction Methods for Cosmological X-Ray Tomography

10. Efficient iterative methods for hyperparameter estimation in large-scale linear inverse problems

12. Flexible Krylov Methods for Group Sparsity Regularization

13. Goal-oriented Uncertainty Quantification for Inverse Problems via Variational Encoder-Decoder Networks

14. Hybrid Projection Methods for Solution Decomposition in Large-scale Bayesian Inverse Problems

15. Efficient learning methods for large-scale optimal inversion design

16. slimTrain -- A Stochastic Approximation Method for Training Separable Deep Neural Networks

17. Computational methods for large-scale inverse problems: a survey on hybrid projection methods

18. Learning Regularization Parameters of Inverse Problems via Deep Neural Networks

19. Hybrid Projection Methods with Recycling for Inverse Problems

20. Hybrid Projection Methods for Large-scale Inverse Problems with Mixed Gaussian Priors

21. Sampled Limited Memory Methods for Massive Linear Inverse Problems

23. Sampled Tikhonov Regularization for Large Linear Inverse Problems

24. Uncertainty quantification in large Bayesian linear inverse problems using Krylov subspace methods

25. Flexible Krylov methods for $\ell_p$ regularization

26. Optimal Experimental Design for Constrained Inverse Problems

27. Efficient generalized Golub-Kahan based methods for dynamic inverse problems

28. Stochastic Newton and Quasi-Newton Methods for Large Linear Least-squares Problems

29. Motion Estimation and Correction in Photoacoustic Tomographic Reconstruction

30. Generalized hybrid iterative methods for large-scale Bayesian inverse problems

31. Optimal regularized inverse matrices for inverse problems

33. A joint reconstruction and model selection approach for large-scale linear inverse modeling (msHyBR v2).

35. Optimal Regularization Parameters for General-Form Tikhonov Regularization

36. An Efficient Approach for Computing Optimal Low-Rank Regularized Inverse Matrices

38. Uncertainty quantification for goal-oriented inverse problems via variational encoder-decoder networks

39. Paired Autoencoders for Inverse Problems

40. Iterative Sampled Methods for Massive and Separable Nonlinear Inverse Problems

41. A Joint Reconstruction and Model Selection Approach for Large Scale Inverse Modeling.

48. HYBRID PROJECTION METHODS FOR SOLUTION DECOMPOSITION IN LARGE-SCALE BAYESIAN INVERSE PROBLEMS.

49. EFFICIENT LEARNING METHODS FOR LARGE-SCALE OPTIMAL INVERSION DESIGN.

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