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  1. Efficient Numerical Integration in Reproducing Kernel Hilbert Spaces via Leverage Scores Sampling

    Published in JMLR (2026)
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  2. Distribution Free Tests for Model Selection Based on Maximum Mean Discrepancy with Estimated Parameters

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  3. Statistical field theory for Markov decision processes under uncertainty

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  4. Bayesian Data Sketching for Varying Coefficient Regression Models

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  5. Bagged k-Distance for Mode-Based Clustering Using the Probability of Localized Level Sets

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  6. Linear cost and exponentially convergent approximation of Gaussian Matérn processes on intervals

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  7. Invariant Subspace Decomposition

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  8. Posterior Concentrations of Fully-Connected Bayesian Neural Networks with General Priors on the Weights

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  9. Outlier Robust and Sparse Estimation of Linear Regression Coefficients

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  10. Affine Rank Minimization via Asymptotic Log-Det Iteratively Reweighted Least Squares

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  11. Causal Effect of Functional Treatment

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  12. Uplift Model Evaluation with Ordinal Dominance Graphs

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  13. High-Dimensional L2-Boosting: Rate of Convergence

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  14. Feature Learning in Finite-Width Bayesian Deep Linear Networks with Multiple Outputs and Convolutional Layers

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  15. How good is your Laplace approximation of the Bayesian posterior? Finite-sample computable error bounds for a variety of useful divergences

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  16. Integral Probability Metrics Meet Neural Networks: The Radon-Kolmogorov-Smirnov Test

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  17. On Inference for the Support Vector Machine

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  18. Random Pruning Over-parameterized Neural Networks Can Improve Generalization: A Training Dynamics Analysis

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  19. Causal Abstraction: A Theoretical Foundation for Mechanistic Interpretability

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  20. Implicit vs Unfolded Graph Neural Networks

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