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158 results on '"Wilson, Andrew"'

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1. Searching for Efficient Linear Layers over a Continuous Space of Structured Matrices

2. Unlocking Tokens as Data Points for Generalization Bounds on Larger Language Models

3. Just How Flexible are Neural Networks in Practice?

4. Scalable and Flexible Causal Discovery with an Efficient Test for Adjacency

5. Large Language Models Must Be Taught to Know What They Don't Know

6. Transferring Knowledge from Large Foundation Models to Small Downstream Models

7. Compute Better Spent: Replacing Dense Layers with Structured Matrices

8. Modeling Caption Diversity in Contrastive Vision-Language Pretraining

9. Generating Potent Poisons and Backdoors from Scratch with Guided Diffusion

10. Mind the GAP: Improving Robustness to Subpopulation Shifts with Group-Aware Priors

11. Chronos: Learning the Language of Time Series

12. Controllable Prompt Tuning For Balancing Group Distributional Robustness

13. Fine-Tuned Language Models Generate Stable Inorganic Materials as Text

14. Position: Bayesian Deep Learning is Needed in the Age of Large-Scale AI

15. Visual Explanations of Image-Text Representations via Multi-Modal Information Bottleneck Attribution

16. Non-Vacuous Generalization Bounds for Large Language Models

17. Function-Space Regularization in Neural Networks: A Probabilistic Perspective

18. Understanding the Detrimental Class-level Effects of Data Augmentation

19. Perspectives on the State and Future of Deep Learning - 2023

20. Materials Expert-Artificial Intelligence for Materials Discovery

21. Simplifying Neural Network Training Under Class Imbalance

22. A Performance-Driven Benchmark for Feature Selection in Tabular Deep Learning

23. Battle of the Backbones: A Large-Scale Comparison of Pretrained Models across Computer Vision Tasks

24. Large Language Models Are Zero-Shot Time Series Forecasters

25. CoLA: Exploiting Compositional Structure for Automatic and Efficient Numerical Linear Algebra

26. Simple and Fast Group Robustness by Automatic Feature Reweighting

27. User-defined Event Sampling and Uncertainty Quantification in Diffusion Models for Physical Dynamical Systems

28. A Study of Bayesian Neural Network Surrogates for Bayesian Optimization

29. Protein Design with Guided Discrete Diffusion

30. A Stable and Scalable Method for Solving Initial Value PDEs with Neural Networks

31. A Cookbook of Self-Supervised Learning

32. The No Free Lunch Theorem, Kolmogorov Complexity, and the Role of Inductive Biases in Machine Learning

33. Fortuna: A Library for Uncertainty Quantification in Deep Learning

34. Learning Multimodal Data Augmentation in Feature Space

35. Chroma-VAE: Mitigating Shortcut Learning with Generative Classifiers

36. PAC-Bayes Compression Bounds So Tight That They Can Explain Generalization

37. K-SAM: Sharpness-Aware Minimization at the Speed of SGD

38. Bayesian Optimization with Conformal Prediction Sets

39. On Feature Learning in the Presence of Spurious Correlations

40. How Much Data Are Augmentations Worth? An Investigation into Scaling Laws, Invariance, and Implicit Regularization

41. The Lie Derivative for Measuring Learned Equivariance

42. Uncertainty Calibration in Bayesian Neural Networks via Distance-Aware Priors

43. Low-Precision Arithmetic for Fast Gaussian Processes

44. Volatility Based Kernels and Moving Average Means for Accurate Forecasting with Gaussian Processes

45. Transfer Learning with Deep Tabular Models

46. Low-Precision Stochastic Gradient Langevin Dynamics

47. Pre-Train Your Loss: Easy Bayesian Transfer Learning with Informative Priors

48. Last Layer Re-Training is Sufficient for Robustness to Spurious Correlations

49. On Uncertainty, Tempering, and Data Augmentation in Bayesian Classification

50. Accelerating Bayesian Optimization for Biological Sequence Design with Denoising Autoencoders

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