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1. Statistical learning to identify salient factors influencing FEMA public assistance outlays.

2. A remark about a learning risk lower bound.

3. Set-Valued Support Vector Machine with Bounded Error Rates.

4. Towards Understanding the Mechanism of Contrastive Learning via Similarity Structure: A Theoretical Analysis

5. Benign overfitting in linear regression

6. Bavarian: Betweenness Centrality Approximation with Variance-aware Rademacher Averages.

7. Information Losses in Neural Classifiers From Sampling

8. A Statistical Learning Theory Approach for the Analysis of the Trade-off Between Sample Size and Precision in Truncated Ordinary Least Squares

9. Revisiting generalization for deep learning : PAC-Bayes, flat minima, and generative models

10. Hold-out estimates of prediction models for Markov processes.

11. Distributions-free Martingales Test Distributions-shift.

12. Investigating the ability of PINNs to solve Burgers’ PDE near finite-time blowup

13. Machine learning advances for time series forecasting.

14. Set-valued Classification with Out-of-distribution Detection for Many Classes.

15. A Unified Recipe for Deriving (Time-Uniform) PAC-Bayes Bounds.

16. Risk Bounds for Positive-Unlabeled Learning Under the Selected At Random Assumption.

17. Compression, Generalization and Learning.

18. Learning an Explicit Hyper-parameter Prediction Function Conditioned on Tasks.

19. Improving the Interpretation of Data-Driven Water Consumption Models via the Use of Social Norms.

20. Statistical modeling and inference in the era of Data Science and Graphical Causal modeling.

21. MCRapper: Monte-Carlo Rademacher Averages for Poset Families and Approximate Pattern Mining.

22. Design and Testing Novel One-Class Classifier Based on Polynomial Interpolation With Application to Networking Security

23. The benefits of adversarial defense in generalization.

24. Learning from fuzzy labels: Theoretical issues and algorithmic solutions

25. Development of a machine learning model to support low cost real-time Legionella monitoring in premise plumbing systems.

26. Should Simplicity Be Always Preferred to Complexity in Supervised Machine Learning?

27. Data Streams Are Time Series: Challenging Assumptions

29. Detection of outliers in high-dimensional data using nu-support vector regression.

30. Nonlinear optimization and support vector machines.

31. Disagreement-Based Active Learning in Online Settings.

32. Stability selection enables robust learning of differential equations from limited noisy data.

33. Bohnenblust–Hille inequality for cyclic groups.

34. Developmental and evolutionary constraints on olfactory circuit selection.

35. Simple Models in Complex Worlds: Occam's Razor and Statistical Learning Theory.

36. Vector-Valued Least-Squares Regression under Output Regularity Assumptions.

37. An improper estimator with optimal excess risk in misspecified density estimation and logistic regression.

38. Empirical Risk Minimization under Random Censorship.

39. Learning from fuzzy labels: Theoretical issues and algorithmic solutions.

40. Deep neural networks for choice analysis: A statistical learning theory perspective.

41. Exponential inequalities for nonstationary Markov chains

42. Theoretical learning guarantees applied to acoustic modeling

43. Estimating optimal treatment rules with an instrumental variable: A partial identification learning approach.

44. A cost-effective approach to portfolio construction with range-based risk measures.

45. The Ridgelet Prior: A Covariance Function Approach to Prior Specification for Bayesian Neural Networks.

46. Failures of Model-dependent Generalization Bounds for Least-norm Interpolation.

47. Finite Time LTI System Identification.

48. Learning Whenever Learning is Possible: Universal Learning under General Stochastic Processes.

49. Energy conversion path and optimization model in COVID-19 under low carbon constraints based on statistical learning theory.

50. Quality evaluation of practical training of innovative and entrepreneurial talents in universities based on statistical learning theory after COVID-19 epidemic.

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