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Proceedings of Machine Learning Research

Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research Proceedings of Machine Learning Research
Proceedings of Machine Learning Research
PMLR · 2026-05-29 · via Proceedings of Machine Learning Research

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Volume 258: International Conference on Artificial Intelligence and Statistics, 3-5 May 2025, Splash Beach Resort in Mai Khao, Thailand

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Editors: Yingzhen Li, Stephan Mandt, Shipra Agrawal, Emtiyaz Khan

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Additive Model Boosting: New Insights and Path(ologie)s

; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1-9

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Paths and Ambient Spaces in Neural Loss Landscapes

Daniel Dold, Julius Kobialka, Nicolai Palm, Emanuel Sommer, David Rügamer, Oliver Dürr; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:10-18

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Automatically Adaptive Conformal Risk Control

Vincent Blot, Anastasios Nikolas Angelopoulos, Michael Jordan, Nicolas J-B. Brunel; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:19-27

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Cost-aware simulation-based inference

Ayush Bharti, Daolang Huang, Samuel Kaski, Francois-Xavier Briol; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:28-36

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Generalized Criterion for Identifiability of Additive Noise Models Using Majorization

Aramayis Dallakyan, Yang Ni; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:37-45

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Revisiting Online Learning Approach to Inverse Linear Optimization: A Fenchel–Young Loss Perspective and Gap-Dependent Regret Analysis

Shinsaku Sakaue, Han Bao, Taira Tsuchiya; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:46-54

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Locally Private Estimation with Public Features

Yuheng Ma, Ke Jia, Hanfang Yang; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:55-63

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A Family of Distributions of Random Subsets for Controlling Positive and Negative Dependence

Takahiro Kawashima, Hideitsu Hino; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:64-72

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Lower Bounds for Time-Varying Kernelized Bandits

Xu Cai, Jonathan Scarlett; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:73-81

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Randomized Iterative Solver as Iterative Refinement: A Simple Fix Towards Backward Stability

Ruihan Xu, Yiping Lu; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:82-90

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Flexible Copula-Based Mixed Models in Deep Learning: A Scalable Approach to Arbitrary Marginals

Giora Simchoni, Saharon Rosset; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:91-99

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Bayesian Inference in Recurrent Explicit Duration Switching Linear Dynamical Systems

Mikołaj Słupiński; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:100-108

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ClusterSC: Advancing Synthetic Control with Donor Selection

Saeyoung Rho, Andrew Tang, Noah Bergam, Rachel Cummings, Vishal Misra; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:109-117

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Efficient Estimation of a Gaussian Mean with Local Differential Privacy

Kalinin Nikita, Lukas Steinberger; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:118-126

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Credal Two-Sample Tests of Epistemic Uncertainty

Siu Lun Chau, Antonin Schrab, Arthur Gretton, Dino Sejdinovic, Krikamol Muandet; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:127-135

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Bayesian Off-Policy Evaluation and Learning for Large Action Spaces

Imad Aouali, Victor-Emmanuel Brunel, David Rohde, Anna Korba; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:136-144

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On the Convergence of Locally Adaptive and Scalable Diffusion-Based Sampling Methods for Deep Bayesian Neural Network Posteriors

Tim Rensmeyer, Oliver Niggemann; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:145-153

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Fine-Tuning with Uncertainty-Aware Priors Makes Vision and Language Foundation Models More Reliable

Tim G. J. Rudner, Xiang Pan, Yucen Lily Li, Ravid Shwartz-Ziv, Andrew Gordon Wilson; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:154-162

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Optimising Clinical Federated Learning through Mode Connectivity-based Model Aggregation

Anshul Thakur, Soheila Molaei, Patrick Schwab, Danielle Belgrave, Kim Branson, David A. Clifton; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:163-171

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S-CFE: Simple Counterfactual Explanations

Shpresim Sadiku, Moritz Wagner, Sai Ganesh Nagarajan, Sebastian Pokutta; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:172-180

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A Unifying Framework for Action-Conditional Self-Predictive Reinforcement Learning

Khimya Khetarpal, Zhaohan Daniel Guo, Bernardo Avila Pires, Yunhao Tang, Clare Lyle, Mark Rowland, Nicolas Heess, Diana L Borsa, Arthur Guez, Will Dabney; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:181-189

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Estimation of Large Zipfian Distributions with Sort and Snap

Peter Matthew Jacobs, Anirban Bhattacharya, Debdeep Pati, Lekha Patel, Jeff M. Phillips; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:190-198

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Relating Piecewise Linear Kolmogorov Arnold Networks to ReLU Networks

Nandi Schoots, Mattia Jacopo Villani, Niels uit de Bos; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:199-207

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$β$-th order Acyclicity Derivatives for DAG Learning

Madhumitha Shridharan, Garud Iyengar; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:208-216

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Conditional Generative Learning from Invariant Representations in Multi-Source: Robustness and Efficiency

Guojun Zhu, Sanguo Zhang, Mingyang Ren; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:217-225

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Harnessing the Power of Vicinity-Informed Analysis for Classification under Covariate Shift

Mitsuhiro Fujikawa, Youhei Akimoto, Jun Sakuma, Kazuto Fukuchi; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:226-234

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Bayesian Gaussian Process ODEs via Double Normalizing Flows

JIAN XU, Shian Du, Junmei Yang, Xinghao Ding, Delu Zeng, John Paisley; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:235-243

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The Local Learning Coefficient: A Singularity-Aware Complexity Measure

Edmund Lau, Zach Furman, George Wang, Daniel Murfet, Susan Wei; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:244-252

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Density Ratio Estimation via Sampling along Generalized Geodesics on Statistical Manifolds

Masanari Kimura, Howard Bondell; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:253-261

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Choice is what matters after Attention

Chenhan Fu, Guoming Wang, Juncheng Li, Rongxing Lu, Siliang Tang; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:262-270

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The Pivoting Framework: Frank-Wolfe Algorithms with Active Set Size Control

Mathieu Besançon, Sebastian Pokutta, Elias Samuel Wirth; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:271-279

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Accelerated Methods for Riemannian Min-Max Optimization Ensuring Bounded Geometric Penalties

David Martínez-Rubio, Christophe Roux, Christopher Criscitiello, Sebastian Pokutta; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:280-288

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Almost linear time differentially private release of synthetic graphs

Zongrui Zou, Jingcheng Liu, Jalaj Upadhyay; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:289-297

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Adversarial Training in High-Dimensional Regression: Generated Data and Neural Networks

Yue Xing; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:298-306

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A Bias-Variance Decomposition for Ensembles over Multiple Synthetic Datasets

Ossi Räisä, Antti Honkela; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:307-315

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Approximate information maximization for bandit games

Alex Barbier Chebbah, Christian L. Vestergaard, Jean-Baptiste Masson, Etienne Boursier; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:316-324

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Disentangling impact of capacity, objective, batchsize, estimators, and step-size on flow VI

Abhinav Agrawal, Justin Domke; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:325-333

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Generalization Lower Bounds for GD and SGD in Smooth Stochastic Convex Optimization

Peiyuan Zhang, Jiaye Teng, Jingzhao Zhang; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:334-342

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Learning in Herding Mean Field Games: Single-Loop Algorithm with Finite-Time Convergence Analysis

Sihan Zeng, Sujay Bhatt, Alec Koppel, Sumitra Ganesh; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:343-351

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Strong Screening Rules for Group-based SLOPE Models

Fabio Feser, Marina Evangelou; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:352-360

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Infinite-Horizon Reinforcement Learning with Multinomial Logit Function Approximation

Jaehyun Park, Junyeop Kwon, Dabeen Lee; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:361-369

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Constrained Multi-objective Bayesian Optimization through Optimistic Constraints Estimation

Diantong Li, Fengxue Zhang, Chong Liu, Yuxin Chen; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:370-378

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Prior-Dependent Allocations for Bayesian Fixed-Budget Best-Arm Identification in Structured Bandits

Nicolas Nguyen, Imad Aouali, András György, Claire Vernade; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:379-387

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Nyström Kernel Stein Discrepancy

Florian Kalinke, Zoltán Szabó, Bharath Sriperumbudur; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:388-396

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Some Targets Are Harder to Identify than Others: Quantifying the Target-dependent Membership Leakage

Achraf Azize, Debabrota Basu; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:397-405

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Near-Optimal Algorithm for Non-Stationary Kernelized Bandits

Shogo Iwazaki, Shion Takeno; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:406-414

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No-Regret Bayesian Optimization with Stochastic Observation Failures

Shogo Iwazaki, Tomohiko Tanabe, Mitsuru Irie, Shion Takeno, Kota Matsui, Yu Inatsu; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:415-423

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Nonparametric Factor Analysis and Beyond

Yujia Zheng, Yang Liu, Jiaxiong Yao, Yingyao Hu, Kun Zhang; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:424-432

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Improving Pre-trained Self-Supervised Embeddings Through Effective Entropy Maximization

Deep Chakraborty, Yann LeCun, Tim G. J. Rudner, Erik Learned-Miller; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:433-441

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Scalable Inference for Bayesian Multinomial Logistic-Normal Dynamic Linear Models

Manan Saxena, Tinghua Chen, Justin D Silverman; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:442-450

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Inverse Optimization with Prediction Market: A Characterization of Scoring Rules for Elciting System States

Han Bao, Shinsaku Sakaue; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:451-459

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HAVER: Instance-Dependent Error Bounds for Maximum Mean Estimation and Applications to Q-Learning and Monte Carlo Tree Search

Tuan Nguyen, Jay Barrett, Kwang-Sung Jun; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:460-468

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Ant Colony Sampling with GFlowNets for Combinatorial Optimization

Minsu Kim, Sanghyeok Choi, Hyeonah Kim, Jiwoo Son, Jinkyoo Park, Yoshua Bengio; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:469-477

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Function-Space MCMC for Bayesian Wide Neural Networks

Lucia Pezzetti, Stefano Favaro, Stefano Peluchetti; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:478-486

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A Theoretical Framework for Preventing Class Collapse in Supervised Contrastive Learning

Chungpa Lee, Jeongheon Oh, Kibok Lee, Jy-yong Sohn; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:487-495

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Signed Graph Autoencoder for Explainable and Polarization-Aware Network Embeddings

Nikolaos Nakis, Chrysoula Kosma, Giannis Nikolentzos, Michail Chatzianastasis, Iakovos Evdaimon, Michalis Vazirgiannis; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:496-504

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On the Asymptotic Mean Square Error Optimality of Diffusion Models

Benedikt Fesl, Benedikt Böck, Florian Strasser, Michael Baur, Michael Joham, Wolfgang Utschick; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:505-513

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Adaptive Extragradient Methods for Root-finding Problems under Relaxed Assumptions

Yang Luo, Michael J O’Neill; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:514-522

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Fourier Circuits in Neural Networks and Transformers: A Case Study of Modular Arithmetic with Multiple Inputs

Chenyang Li, Yingyu Liang, Zhenmei Shi, Zhao Song, Tianyi Zhou; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:523-531

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Signature Isolation Forest

Marta Campi, Guillaume Staerman, Gareth W. Peters, Tomoko Masui; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:532-540

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Elastic Representation: Mitigating Spurious Correlations for Group Robustness

Tao Wen, Zihan Wang, Quan Zhang, Qi Lei; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:541-549

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Scalable spectral representations for multiagent reinforcement learning in network MDPs

Zhaolin Ren, Runyu Zhang, Bo Dai, Na Li; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:550-558

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Bridging Domains with Approximately Shared Features

Ziliang Samuel Zhong, Xiang Pan, Qi Lei; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:559-567

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Epistemic Uncertainty and Excess Risk in Variational Inference

Futoshi Futami; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:568-576

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Learning Identifiable Structures Helps Avoid Bias in DNN-based Supervised Causal Learning

Jiaru Zhang, Rui Ding, Qiang Fu, Huang Bojun, Zizhen Deng, Yang Hua, Haibing Guan, Shi Han, Dongmei Zhang; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:577-585

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Selecting the Number of Communities for Weighted Degree-Corrected Stochastic Block Models

Yucheng Liu, Xiaodong Li; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:586-594

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Empirical Error Estimates for Graph Sparsification

Siyao Wang, Miles E. Lopes; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:595-603

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On the Geometry and Optimization of Polynomial Convolutional Networks

Vahid Shahverdi, Giovanni Luca Marchetti, Kathlén Kohn; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:604-612

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Data Reconstruction Attacks and Defenses: A Systematic Evaluation

Sheng Liu, Zihan Wang, Yuxiao Chen, Qi Lei; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:613-621

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Locally Private Sampling with Public Data

Behnoosh Zamanlooy, Mario Diaz, Shahab Asoodeh; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:622-630

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Reliable and Scalable Variable Importance Estimation via Warm-start and Early Stopping

Zexuan Sun, Garvesh Raskutti; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:631-639

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Reinforcement Learning for Adaptive MCMC

Congye Wang, Wilson Ye Chen, Heishiro Kanagawa, Chris J. Oates; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:640-648

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Prediction-Centric Uncertainty Quantification via MMD

Zheyang Shen, Jeremias Knoblauch, Samuel Power, Chris J. Oates; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:649-657

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Harnessing Causality in Reinforcement Learning with Bagged Decision Times

Daiqi Gao, Hsin-Yu Lai, Predrag Klasnja, Susan Murphy; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:658-666

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Learning the Pareto Front Using Bootstrapped Observation Samples

Wonyoung Kim, Garud Iyengar, Assaf Zeevi; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:667-675

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FedBaF: Federated Learning Aggregation Biased by a Foundation Model

Jong-Ik Park, Srinivasa Pranav, Jose M F Moura, Carlee Joe-Wong; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:676-684

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A Generalized Theory of Mixup for Structure-Preserving Synthetic Data

Chungpa Lee, Jongho Im, Joseph H.T. Kim; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:685-693

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On the Sample Complexity of Next-Token Prediction

Oğuz Kaan Yüksel, Nicolas Flammarion; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:694-702

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Amortized Probabilistic Conditioning for Optimization, Simulation and Inference

Paul Edmund Chang, Nasrulloh Ratu Bagus Satrio Loka, Daolang Huang, Ulpu Remes, Samuel Kaski, Luigi Acerbi; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:703-711

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Steering No-Regret Agents in MFGs under Model Uncertainty

Leo Widmer, Jiawei Huang, Niao He; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:712-720

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Bridging Multiple Worlds: Multi-marginal Optimal Transport for Causal Partial-identification Problem

Zijun Gao, Shu Ge, Jian Qian; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:721-729

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The Polynomial Iteration Complexity for Variance Exploding Diffusion Models: Elucidating SDE and ODE Samplers

Ruofeng Yang, Bo Jiang, Shuai Li; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:730-738

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To Give or Not to Give? The Impacts of Strategically Withheld Recourse

Yatong Chen, Andrew Estornell, Yevgeniy Vorobeychik, Yang Liu; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:739-747

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Optimal estimation of linear non-Gaussian structure equation models

Sunmin Oh, Seungsu Han, Gunwoong Park; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:748-756

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Stein Boltzmann Sampling: A Variational Approach for Global Optimization

Gaëtan Serré, Argyris Kalogeratos, Nicolas Vayatis; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:757-765

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Learning signals defined on graphs with optimal transport and Gaussian process regression

Raphael Carpintero Perez, Sébastien Da Veiga, Josselin Garnier, Brian Staber; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:766-774

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Score matching for bridges without learning time-reversals

Elizabeth Louise Baker, Moritz Schauer, Stefan Sommer; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:775-783

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Safe exploration in reproducing kernel Hilbert spaces

Abdullah Tokmak, Kiran G. Krishnan, Thomas B. Schön, Dominik Baumann; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:784-792

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Ordered $\mathcalV$-information Growth: A Fresh Perspective on Shared Information

Rohan Ghosh, Mehul Motani; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:793-801

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On Tradeoffs in Learning-Augmented Algorithms

Ziyad Benomar, Vianney Perchet; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:802-810

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Cubic regularized subspace Newton for non-convex optimization

Jim Zhao, Nikita Doikov, Aurelien Lucchi; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:811-819

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Consistent Validation for Predictive Methods in Spatial Settings

David R. Burt, Yunyi Shen, Tamara Broderick; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:820-828

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Get rid of your constraints and reparametrize: A study in NNLS and implicit bias

Hung-Hsu Chou, Johannes Maly, Claudio Mayrink Verdun, Bernardo Freitas Paulo da Costa, Heudson Mirandola; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:829-837

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Collaborative non-parametric two-sample testing

Alejandro David De la Concha Duarte, Nicolas Vayatis, Argyris Kalogeratos; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:838-846

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Tamed Langevin sampling under weaker conditions

Iosif Lytras, Panayotis Mertikopoulos; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:847-855

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Entropic Matching for Expectation Propagation of Markov Jump Processes

Yannick Eich, Bastian Alt, Heinz Koeppl; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:856-864

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Global Group Fairness in Federated Learning via Function Tracking

Yves Rychener, Daniel Kuhn, Yifan Hu; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:865-873

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Near-Optimal Sample Complexity in Reward-Free Kernel-based Reinforcement Learning

Aya Kayal, Sattar Vakili, Laura Toni, Alberto Bernacchia; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:874-882

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Poisoning Bayesian Inference via Data Deletion and Replication

Matthieu Carreau, Roi Naveiro, William N. Caballero; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:883-891

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Near-optimal algorithms for private estimation and sequential testing of collision probability

Robert Istvan Busa-Fekete, Umar Syed; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:892-900

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Fundamental Limits of Perfect Concept Erasure

Somnath Basu Roy Chowdhury, Kumar Avinava Dubey, Ahmad Beirami, Rahul Kidambi, Nicholas Monath, Amr Ahmed, Snigdha Chaturvedi; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:901-909

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Perfect Recovery for Random Geometric Graph Matching with Shallow Graph Neural Networks

Suqi Liu, Morgane Austern; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:910-918

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Microfoundation inference for strategic prediction

Daniele Bracale, Subha Maity, Felipe Maia Polo, Seamus Somerstep, Moulinath Banerjee, Yuekai Sun; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:919-927

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Heterogeneous Graph Structure Learning through the Lens of Data-generating Processes

Keyue Jiang, Bohan Tang, Xiaowen Dong, Laura Toni; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:928-936

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Superiority of Multi-Head Attention: A Theoretical Study in Shallow Transformers in In-Context Linear Regression

Yingqian Cui, Jie Ren, Pengfei He, Hui Liu, Jiliang Tang, Yue Xing; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:937-945

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Balls-and-Bins Sampling for DP-SGD

Lynn Chua, Badih Ghazi, Charlie Harrison, Pritish Kamath, Ravi Kumar, Ethan Jacob Leeman, Pasin Manurangsi, Amer Sinha, Chiyuan Zhang; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:946-954

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Distance Estimation for High-Dimensional Discrete Distributions

Kuldeep S. Meel, Gunjan Kumar, Yash Pote; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:955-963

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Type Information-Assisted Self-Supervised Knowledge Graph Denoising

Jiaqi Sun, Yujia Zheng, Xinshuai Dong, Haoyue Dai, Kun Zhang; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:964-972

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Learning the Distribution Map in Reverse Causal Performative Prediction

Daniele Bracale, Subha Maity, Yuekai Sun, Moulinath Banerjee; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:973-981

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Optimizing Neural Network Training and Quantization with Rooted Logistic Objectives

Zhu Wang, Praveen Raj Veluswami, Harsh Mishra, Sathya N. Ravi; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:982-990

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Planning and Learning in Risk-Aware Restless Multi-Arm Bandits

Nima Akbarzadeh, Yossiri Adulyasak, Erick Delage; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:991-999

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Pareto Set Identification With Posterior Sampling

Cyrille Kone, Marc Jourdan, Emilie Kaufmann; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1000-1008

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Convergence Analysis for General Probability Flow ODEs of Diffusion Models in Wasserstein Distances

Xuefeng Gao, Lingjiong Zhu; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1009-1017

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Geometry-Aware Generative Autoencoders for Warped Riemannian Metric Learning and Generative Modeling on Data Manifolds

Xingzhi Sun, Danqi Liao, Kincaid MacDonald, Yanlei Zhang, Guillaume Huguet, Guy Wolf, Ian Adelstein, Tim G. J. Rudner, Smita Krishnaswamy; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1018-1026

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Q-function Decomposition with Intervention Semantics for Factored Action Spaces

Junkyu Lee, Tian Gao, Elliot Nelson, Miao Liu, Debarun Bhattacharjya, Songtao Lu; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1027-1035

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HAR-former: Hybrid Transformer with an Adaptive Time-Frequency Representation Matrix for Long-Term Series Forecasting

Kenghao Zheng, Zi Long, Shuxin Wang; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1036-1044

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Bayesian Decision Theory on Decision Trees: Uncertainty Evaluation and Interpretability

Yuta Nakahara, Shota Saito, Naoki Ichijo, Koki Kazama, Toshiyasu Matsushima; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1045-1053

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Hybrid Transfer Reinforcement Learning: Provable Sample Efficiency from Shifted-Dynamics Data

Chengrui Qu, Laixi Shi, Kishan Panaganti, Pengcheng You, Adam Wierman; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1054-1062

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Trustworthy assessment of heterogeneous treatment effect estimator via analysis of relative error

Zijun Gao; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1063-1071

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Learning-Augmented Algorithms for Online Concave Packing and Convex Covering Problems

Elena Grigorescu, Young-San Lin, Maoyuan Song; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1072-1080

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On the Power of Adaptive Weighted Aggregation in Heterogeneous Federated Learning and Beyond

Dun Zeng, Zenglin Xu, SHIYU LIU, Yu Pan, Qifan Wang, Xiaoying Tang; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1081-1089

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Prior-Fitted Networks Scale to Larger Datasets When Treated as Weak Learners

Yuxin Wang, Botian Jiang, Yiran Guo, Quan Gan, David Wipf, Xuanjing Huang, Xipeng Qiu; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1090-1098

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Locally Optimal Descent for Dynamic Stepsize Scheduling

Gilad Yehudai, Alon Cohen, Amit Daniely, Yoel Drori, Tomer Koren, Mariano Schain; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1099-1107

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Online Student-$t$ Processes with an Overall-local Scale Structure for Modelling Non-stationary Data

Taole Sha, Michael Minyi Zhang; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1108-1116

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Policy Teaching via Data Poisoning in Learning from Human Preferences

Andi Nika, Jonathan Nöther, Debmalya Mandal, Parameswaran Kamalaruban, Adish Singla, Goran Radanovic; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1117-1125

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Model selection for behavioral learning data and applications to contextual bandits

Julien Aubert, Louis Köhler, Luc Lehéricy, Giulia Mezzadri, Patricia Reynaud-Bouret; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1126-1134

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Distributional Counterfactual Explanations With Optimal Transport

Lei You, Lele Cao, Mattias Nilsson, Bo Zhao, Lei Lei; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1135-1143

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$f$-PO: Generalizing Preference Optimization with $f$-divergence Minimization

Jiaqi Han, Mingjian Jiang, Yuxuan Song, Stefano Ermon, Minkai Xu; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1144-1152

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Variational Inference on the Boolean Hypercube with the Quantum Entropy

Eliot Beyler, Francis Bach; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1153-1161

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Optimal Multi-Objective Best Arm Identification with Fixed Confidence

Zhirui Chen, P. N. Karthik, Yeow Meng Chee, Vincent Y. F. Tan; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1162-1170

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Symmetry-Based Structured Matrices for Efficient Approximately Equivariant Networks

Ashwin Samudre, Mircea Petrache, Brian Nord, Shubhendu Trivedi; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1171-1179

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Evaluating Prediction-based Interventions with Human Decision Makers In Mind

Inioluwa Deborah Raji, Lydia T. Liu; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1180-1188

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Bandit Pareto Set Identification in a Multi-Output Linear Model

Cyrille Kone, Emilie Kaufmann, Laura Richert; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1189-1197

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posteriordb: Testing, Benchmarking and Developing Bayesian Inference Algorithms

Måns Magnusson, Jakob Torgander, Paul-Christian Bürkner, Lu Zhang, Bob Carpenter, Aki Vehtari; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1198-1206

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Efficient Optimization Algorithms for Linear Adversarial Training

Antonio H. Ribeiro, Thomas B. Schön, Dave Zachariah, Francis Bach; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1207-1215

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Learning a Single Index Model from Anisotropic Data with Vanilla Stochastic Gradient Descent

Guillaume Braun, Minh Ha Quang, Masaaki Imaizumi; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1216-1224

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A primer on linear classification with missing data

Angel David REYERO LOBO, Alexis Ayme, Claire Boyer, Erwan Scornet; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1225-1233

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Robust Score Matching

Richard Schwank, Andrew McCormack, Mathias Drton; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1234-1242

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On the Relationship Between Robustness and Expressivity of Graph Neural Networks

Lorenz Kummer, Wilfried N. Gansterer, Nils Morten Kriege; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1243-1251

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Parameter estimation in state space models using particle importance sampling

Yuxiong Gao, Wentao Li, Rong Chen; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1252-1260

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Class Imbalance in Anomaly Detection: Learning from an Exactly Solvable Model

Francesco Saverio Pezzicoli, Valentina Ros, François P. Landes, Marco Baity-Jesi; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1261-1269

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Unbiased Quantization of the $L_1$ Ball for Communication-Efficient Distributed Mean Estimation

Nithish Suresh Babu, Ritesh Kumar, Shashank Vatedka; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1270-1278

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MING: A Functional Approach to Learning Molecular Generative Models

Van Khoa Nguyen, Maciej Falkiewicz, Giangiacomo Mercatali, Alexandros Kalousis; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1279-1287

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Sequential Kernelized Stein Discrepancy

Diego Martinez-Taboada, Aaditya Ramdas; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1288-1296

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SubSearch: Robust Estimation and Outlier Detection for Stochastic Block Models via Subgraph Search

Leonardo Bianco, Christine Keribin, Zacharie Naulet; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1297-1305

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Optimal downsampling for Imbalanced Classification with Generalized Linear Models

Yan Chen, Jose Blanchet, Krzysztof Dembczynski, Laura Fee Nern, Aaron Eliasib Flores; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1306-1314

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Federated UCBVI: Communication-Efficient Federated Regret Minimization with Heterogeneous Agents

Safwan Labbi, Daniil Tiapkin, Lorenzo Mancini, Paul Mangold, Eric Moulines; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1315-1323

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Noisy Low-Rank Matrix Completion via Transformed $L_1$ Regularization and its Theoretical Properties

Kun Zhao, Jiayi Wang, Yifei Lou; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1324-1332

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Representer Theorems for Metric and Preference Learning: Geometric Insights and Algorithms

Peyman Morteza; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1333-1341

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UNHaP: Unmixing Noise from Hawkes Processes

Virginie Loison, Guillaume Staerman, Thomas Moreau; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1342-1350

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Axiomatic Explainer Globalness via Optimal Transport

Davin Hill, Joshua Bone, Aria Masoomi, Max Torop, Jennifer Dy; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1351-1359

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Integer Programming Based Methods and Heuristics for Causal Graph Learning

Sanjeeb Dash, Joao Goncalves, Tian Gao; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1360-1368

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The VampPrior Mixture Model

Andrew A. Stirn, David A. Knowles; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1369-1377

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MEDUSA: Medical Data Under Shadow Attacks via Hybrid Model Inversion

Asfandyar Azhar, Paul Thielen, Curtis Langlotz; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1378-1386

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Proximal Sampler with Adaptive Step Size

Bo Yuan, Jiaojiao Fan, Jiaming Liang, Yongxin Chen; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1387-1395

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Rate of Model Collapse in Recursive Training

Ananda Theertha Suresh, Andrew Thangaraj, Aditya Nanda Kishore Khandavally; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1396-1404

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A Shared Low-Rank Adaptation Approach to Personalized RLHF

Renpu Liu, Peng Wang, Donghao Li, Cong Shen, Jing Yang; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1405-1413

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Differentially private algorithms for linear queries via stochastic convex optimization

Giorgio Micali, Clement LEZANE, Annika Betken; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1414-1422

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Is Merging Worth It? Securely Evaluating the Information Gain for Causal Dataset Acquisition

Jake Fawkes, Lucile Ter-Minassian, Desi R. Ivanova, Uri Shalit, Christopher C. Holmes; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1423-1431

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Recursive Learning of Asymptotic Variational Objectives

Alessandro Mastrototaro, Mathias Müller, Jimmy Olsson; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1432-1440

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Improving Stochastic Cubic Newton with Momentum

El Mahdi Chayti, Nikita Doikov, Martin Jaggi; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1441-1449

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Adaptive Convergence Rates for Log-Concave Maximum Likelihood

Gil Kur, Aditya Guntuboyina; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1450-1458

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Learning to Negotiate via Voluntary Commitment

Shuhui Zhu, Baoxiang Wang, Sriram Ganapathi Subramanian, Pascal Poupart; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1459-1467

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Differentiable Calibration of Inexact Stochastic Simulation Models via Kernel Score Minimization

Ziwei Su, Diego Klabjan; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1468-1476

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Fully Dynamic Adversarially Robust Correlation Clustering in Polylogarithmic Update Time

Vladimir Braverman, Prathamesh Dharangutte, Shreyas Pai, Vihan Shah, Chen Wang; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1477-1485

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On Distributional Discrepancy for Experimental Design with General Assignment Probabilities

Anup Rao, Peng Zhang; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1486-1494

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Dynamic DBSCAN with Euler Tour Sequences

Seiyun Shin, Ilan Shomorony, Peter Macgregor; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1495-1503

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Differentially Private Range Queries with Correlated Input Perturbation

Prathamesh Dharangutte, Jie Gao, Ruobin Gong, Guanyang Wang; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1504-1512

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An Adaptive Method for Weak Supervision with Drifting Data

Alessio Mazzetto, Reza Esfandiarpoor, Akash Singirikonda, Eli Upfal, Stephen Bach; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1513-1521

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On the Inherent Privacy of Zeroth-Order Projected Gradient Descent

Devansh Gupta, Meisam Razaviyayn, Vatsal Sharan; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1522-1530

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Transformers are Provably Optimal In-context Estimators for Wireless Communications

Vishnu Teja Kunde, Vicram Rajagopalan, Chandra Shekhara Kaushik Valmeekam, Krishna Narayanan, Jean-Francois Chamberland, Dileep Kalathil, Srinivas Shakkottai; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1531-1539

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Multi-Player Approaches for Dueling Bandits

Or Raveh, Junya Honda, Masashi Sugiyama; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1540-1548

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Improved dependence on coherence in eigenvector and eigenvalue estimation error bounds

Hao Yan, Keith Levin; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1549-1557

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Provable Benefits of Task-Specific Prompts for In-context Learning

Xiangyu Chang, Yingcong Li, Muti Kara, Samet Oymak, Amit Roy-Chowdhury; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1558-1566

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Neural Point Processes for Pixel-wise Regression

Chengzhi Shi, Gözde Özcan, Miquel Sirera Perelló, Yuanyuan Li, Nina Iftikhar Shamsi, Stratis Ioannidis; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1567-1575

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Importance-weighted Positive-unlabeled Learning for Distribution Shift Adaptation

Atsutoshi Kumagai, Tomoharu Iwata, Hiroshi Takahashi, Taishi Nishiyama, Yasuhiro Fujiwara; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1576-1584

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Minimum Empirical Divergence for Sub-Gaussian Linear Bandits

Kapilan Balagopalan, Kwang-Sung Jun; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1585-1593

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Dissecting the Impact of Model Misspecification in Data-Driven Optimization

Adam N. Elmachtoub, Henry Lam, Haixiang Lan, Haofeng Zhang; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1594-1602

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ROTI-GCV: Generalized Cross-Validation for right-ROTationally Invariant Data

Kevin Luo, Yufan Li, Pragya Sur; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1603-1611

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Clustered Invariant Risk Minimization

Tomoya Murata, Atsushi Nitanda, Taiji Suzuki; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1612-1620

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Towards a mathematical theory for consistency training in diffusion models

Gen Li, Zhihan Huang, Yuting Wei; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1621-1629

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Training LLMs with MXFP4

Albert Tseng, Tao Yu, Youngsuk Park; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1630-1638

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Multi-agent Multi-armed Bandit Regret Complexity and Optimality

Mengfan Xu, Diego Klabjan; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1639-1647

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Models That Are Interpretable But Not Transparent

Chudi Zhong, Panyu Chen, Cynthia Rudin; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1648-1656

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Reinforcement Learning with Intrinsically Motivated Feedback Graph for Lost-sales Inventory Control

Zifan LIU, Xinran Li, Shibo Chen, Gen Li, Jiashuo Jiang, Jun Zhang; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1657-1665

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AxlePro: Momentum-Accelerated Batched Training of Kernel Machines

Yiming Zhang, Parthe Pandit; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1666-1674

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A Likelihood Based Approach for Watermark Detection

Xingchi Li, Guanxun Li, Xianyang Zhang; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1675-1683

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What and How does In-Context Learning Learn? Bayesian Model Averaging, Parameterization, and Generalization

Yufeng Zhang, Fengzhuo Zhang, Zhuoran Yang, Zhaoran Wang; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1684-1692

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Bayesian Circular Regression with von Mises Quasi-Processes

Yarden Cohen, Alexandre Khae Wu Navarro, Jes Frellsen, Richard E. Turner, Raziel Riemer, Ari Pakman; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1693-1701

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Cross Validation for Correlated Data in Classification Models

Oren Yuval, Saharon Rosset; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1702-1710

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Post-processing for Fair Regression via Explainable SVD

Zhiqun Zuo, Ding Zhu, Mohammad Mahdi Khalili; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1711-1719

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Truncated Inverse-Lévy Measure Representation of the Beta Process

Junyi Zhang, Angelos Dassios, Zhong Chong, Qiufei Yao; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1720-1728

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Consistent Amortized Clustering via Generative Flow Networks

Irit Chelly, Roy Uziel, Oren Freifeld, Ari Pakman; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1729-1737

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Adaptive RKHS Fourier Features for Compositional Gaussian Process Models

Xinxing Shi, Thomas Baldwin-McDonald, Mauricio A Álvarez; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1738-1746

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Statistical Inference for Feature Selection after Optimal Transport-based Domain Adaptation

Nguyen Thang Loi, Duong Tan Loc, Vo Nguyen Le Duy; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1747-1755

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Wasserstein Gradient Flow over Variational Parameter Space for Variational Inference

Dai Hai Nguyen, Tetsuya Sakurai, Hiroshi Mamitsuka; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1756-1764

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On Tractability of Learning Bayesian Networks with Ancestral Constraints

Juha Harviainen, Pekka Parviainen; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1765-1773

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High-probability Convergence Bounds for Online Nonlinear Stochastic Gradient Descent under Heavy-tailed Noise

Aleksandar Armacki, Shuhua Yu, Pranay Sharma, Gauri Joshi, Dragana Bajovic, Dusan Jakovetic, Soummya Kar; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1774-1782

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Hyperboloid GPLVM for Discovering Continuous Hierarchies via Nonparametric Estimation

Koshi Watanabe, Keisuke Maeda, Takahiro Ogawa, Miki Haseyama; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1783-1791

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From Learning to Optimize to Learning Optimization Algorithms

Camille Castera, Peter Ochs; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1792-1800

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Factor Analysis with Correlated Topic Model for Multi-Modal Data

Małgorzata Łazęcka, Ewa Maria Szczurek; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1801-1809

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Pure Exploration with Feedback Graphs

Alessio Russo, Yichen Song, Aldo Pacchiano; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1810-1818

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The Hardness of Validating Observational Studies with Experimental Data

Jake Fawkes, Michael O’Riordan, Athanasios Vlontzos, Oriol Corcoll, Ciarán Mark Gilligan-Lee; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1819-1827

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Learning Graph Node Embeddings by Smooth Pair Sampling

Konstantin Kutzkov; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1828-1836

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Personalized Convolutional Dictionary Learning of Physiological Time Series

Axel Roques, Samuel Gruffaz, Kyurae Kim, Alain Oliviero Durmus, Laurent Oudre; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1837-1845

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Approximating the Total Variation Distance between Gaussians

Arnab Bhattacharyya, Weiming Feng, Piyush Srivastava; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1846-1854

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Performative Prediction on Games and Mechanism Design

António Góis, Mehrnaz Mofakhami, Fernando P. Santos, Gauthier Gidel, Simon Lacoste-Julien; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1855-1863

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A Multi-Armed Bandit Approach to Online Selection and Evaluation of Generative Models

Xiaoyan Hu, Ho-fung Leung, Farzan Farnia; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1864-1872

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Partial Information Decomposition for Data Interpretability and Feature Selection

Charles Westphal, Stephen Hailes, Mirco Musolesi; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1873-1881

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Energy-consistent Neural Operators for Hamiltonian and Dissipative Partial Differential Equations

Yusuke Tanaka, Takaharu Yaguchi, Tomoharu Iwata, Naonori Ueda; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1882-1890

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On the Difficulty of Constructing a Robust and Publicly-Detectable Watermark

Jaiden Fairoze, Guillermo Ortiz-Jimenez, Mel Vecerik, Somesh Jha, Sven Gowal; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1891-1899

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Hierarchical Bias-Driven Stratification for Interpretable Causal Effect Estimation

Lucile Ter-Minassian, Liran Szlak, Ehud Karavani, Christopher C. Holmes, Yishai Shimoni; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1900-1908

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Model Evaluation in the Dark: Robust Classifier Metrics with Missing Labels

Danial Dervovic, Michael Cashmore; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1909-1917

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RetroDiff: Retrosynthesis as Multi-stage Distribution Interpolation

Yiming Wang, Yuxuan Song, Yiqun Wang, Minkai Xu, Rui Wang, Hao Zhou, Wei-Ying Ma; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1918-1926

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QuACK: A Multipurpose Queuing Algorithm for Cooperative $k$-Armed Bandits

Benjamin Howson, Sarah Lucie Filippi, Ciara Pike-Burke; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1927-1935

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Changepoint Estimation in Sparse Dynamic Stochastic Block Models under Near-Optimal Signal Strength

Shirshendu Chatterjee, Soumendu Sundar Mukherjee, TAMOJIT SADHUKHAN; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1936-1944

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Multi-Agent Credit Assignment with Pretrained Language Models

Wenhao Li, Dan Qiao, Baoxiang Wang, Xiangfeng Wang, Wei Yin, Hao Shen, Bo Jin, Hongyuan Zha; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1945-1953

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Contractivity and linear convergence in bilinear saddle-point problems: An operator-theoretic approach

Colin Dirren, Mattia Bianchi, Panagiotis D. Grontas, John Lygeros, Florian Dorfler; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1954-1962

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Change Point Detection in Hadamard Spaces by Alternating Minimization

Anica Kostic, Vincent Runge, Charles Truong; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1963-1971

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TempTest: Local Normalization Distortion and the Detection of Machine-generated Text

Tom Kempton, Stuart Burrell, Connor J Cheverall; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1972-1980

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StableMDS: A Novel Gradient Descent-Based Method for Stabilizing and Accelerating Weighted Multidimensional Scaling

Zhongxi Fang, Xun Su, Tomohisa Tabuchi, Jianming Huang, Hiroyuki Kasai; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1981-1989

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Differentially Private Continual Release of Histograms and Related Queries

Monika Henzinger, A. R. Sricharan, Teresa Anna Steiner; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1990-1998

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Implicit Diffusion: Efficient optimization through stochastic sampling

Pierre Marion, Anna Korba, Peter Bartlett, Mathieu Blondel, Valentin De Bortoli, Arnaud Doucet, Felipe Llinares-López, Courtney Paquette, Quentin Berthet; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:1999-2007

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Information-Theoretic Causal Discovery in Topological Order

Sascha Xu, Sarah Mameche, Jilles Vreeken; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2008-2016

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A Unified Evaluation Framework for Epistemic Predictions

Shireen Kudukkil Manchingal, Muhammad Mubashar, Kaizheng Wang, Fabio Cuzzolin; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2017-2025

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LMEraser: Large Model Unlearning via Adaptive Prompt Tuning

Jie Xu, Zihan Wu, Cong Wang, Xiaohua Jia; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2026-2034

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All models are wrong, some are useful: Model Selection with Limited Labels

Patrik Okanovic, Andreas Kirsch, Jannes Kasper, Torsten Hoefler, Andreas Krause, Nezihe Merve Gürel; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2035-2043

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Active Bipartite Ranking with Smooth Posterior Distributions

James Cheshire, Stephan Clémençon; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2044-2052

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The Sample Complexity of Stackelberg Games

Francesco Bacchiocchi, Matteo Bollini, Matteo Castiglioni, Alberto Marchesi, Nicola Gatti; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2053-2061

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Bayes without Underfitting: Fully Correlated Deep Learning Posteriors via Alternating Projections

Marco Miani, Hrittik Roy, Søren Hauberg; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2062-2070

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Computation-Aware Kalman Filtering and Smoothing

Marvin Pförtner, Jonathan Wenger, Jon Cockayne, Philipp Hennig; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2071-2079

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Robust Gradient Descent for Phase Retrieval

Alex Buna, Patrick Rebeschini; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2080-2088

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Distribution-Aware Mean Estimation under User-level Local Differential Privacy

Corentin Pla, Maxime Vono, Hugo Richard; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2089-2097

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Calibrated Computation-Aware Gaussian Processes

Disha Hegde, Mohamed Adil, Jon Cockayne; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2098-2106

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Towards Fair Graph Learning without Demographic Information

Zichong Wang, Nhat Hoang, Xingyu Zhang, Kevin Bello, Xiangliang Zhang, Sundararaja Sitharama Iyengar, Wenbin Zhang; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2107-2115

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Data-Driven Upper Confidence Bounds with Near-Optimal Regret for Heavy-Tailed Bandits

Ambrus Tamás, Szabolcs Szentpéteri, Balázs Csáji; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2116-2124

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Gaussian Smoothing in Saliency Maps: The Stability-Fidelity Trade-Off in Neural Network Interpretability

Zhuorui Ye, Farzan Farnia; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2125-2133

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Disentangling Interactions and Dependencies in Feature Attributions

Gunnar König, Eric Günther, Ulrike von Luxburg; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2134-2142

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A Causal Framework for Evaluating Deferring Systems

Filippo Palomba, Andrea Pugnana, Jose Manuel Alvarez, Salvatore Ruggieri; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2143-2151

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Generalization Bounds for Dependent Data using Online-to-Batch Conversion.

Sagnik Chatterjee, MANUJ MUKHERJEE, Alhad Sethi; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2152-2160

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Tensor Network-Constrained Kernel Machines as Gaussian Processes

Frederiek Wesel, Kim Batselier; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2161-2169

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Accuracy on the wrong line: On the pitfalls of noisy data for out-of-distribution generalisation

Amartya Sanyal, Yaxi Hu, Yaodong Yu, Yian Ma, Yixin Wang, Bernhard Schölkopf; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2170-2178

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Classification of High-dimensional Time Series in Spectral Domain Using Explainable Features with Applications to Neuroimaging Data

Sarbojit Roy, Malik Shahid Sultan, Tania Reyes Vallejo, Leena Ali Ibrahim, Hernando Ombao; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2179-2187

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Incremental Uncertainty-aware Performance Monitoring with Active Labeling Intervention

Alexander Koebler, Thomas Decker, Ingo Thon, Volker Tresp, Florian Buettner; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2188-2196

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Legitimate ground-truth-free metrics for deep uncertainty classification scoring

Arthur Pignet, Chiara Regniez, John Klein; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2197-2205

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Information-Theoretic Measures on Lattices for Higher-Order Interactions

Zhaolu Liu, Mauricio Barahona, Robert Peach; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2206-2214

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Common Learning Constraints Alter Interpretations of Direct Preference Optimization

Lemin Kong, Xiangkun Hu, Tong He, David Wipf; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2215-2223

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A Random Matrix Theory Perspective on the Spectrum of Learned Features and Asymptotic Generalization Capabilities

Yatin Dandi, Luca Pesce, Hugo Cui, Florent Krzakala, Yue Lu, Bruno Loureiro; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2224-2232

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Best-Arm Identification in Unimodal Bandits

Riccardo Poiani, Marc Jourdan, Emilie Kaufmann, Rémy Degenne; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2233-2241

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ChronosX: Adapting Pretrained Time Series Models with Exogenous Variables

Sebastian Pineda Arango, Pedro Mercado, Shubham Kapoor, Abdul Fatir Ansari, Lorenzo Stella, Huibin Shen, Hugo Henri Joseph Senetaire, Ali Caner Turkmen, Oleksandr Shchur, Danielle C. Maddix, Michael Bohlke-Schneider, Bernie Wang, Syama Sundar Rangapuram; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2242-2250

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Reward Maximization for Pure Exploration: Minimax Optimal Good Arm Identification for Nonparametric Multi-Armed Bandits

Brian M Cho, Dominik Meier, Kyra Gan, Nathan Kallus; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2251-2259

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Efficient Trajectory Inference in Wasserstein Space Using Consecutive Averaging

Amartya Banerjee, Harlin Lee, Nir Sharon, Caroline Moosmüller; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2260-2268

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Efficient Exploitation of Hierarchical Structure in Sparse Reward Reinforcement Learning

Gianluca Drappo, Arnaud Robert, Marcello Restelli, Aldo A. Faisal, Alberto Maria Metelli, Ciara Pike-Burke; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2269-2277

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Distributional Adversarial Loss

Saba Ahmadi, Siddharth Bhandari, Avrim Blum, Chen Dan, Prabhav Jain; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2278-2286

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A Subquadratic Time Approximation Algorithm for Individually Fair k-Center

Matthijs Ebbens, Nicole Funk, Jan Höckendorff, Christian Sohler, Vera Weil; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2287-2295

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Global Optimization of Gaussian Process Acquisition Functions Using a Piecewise-Linear Kernel Approximation

Yilin Xie, Shiqiang Zhang, Joel Paulson, Calvin Tsay; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2296-2304

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Credibility-Aware Multimodal Fusion Using Probabilistic Circuits

Sahil Sidheekh, Pranuthi Tenali, Saurabh Mathur, Erik Blasch, Kristian Kersting, Sriraam Natarajan; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2305-2313

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Learning from biased positive-unlabeled data via threshold calibration

Paweł Teisseyre, Timo Martens, Jessa Bekker, Jesse Davis; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2314-2322

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Near-Polynomially Competitive Active Logistic Regression

Yihan Zhou, Eric Price, Trung Nguyen; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2323-2331

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DeCaf: A Causal Decoupling Framework for OOD Generalization on Node Classification

Xiaoxue Han, Huzefa Rangwala, Yue Ning; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2332-2340

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Fair Resource Allocation in Weakly Coupled Markov Decision Processes

Xiaohui Tu, Yossiri Adulyasak, Nima Akbarzadeh, Erick Delage; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2341-2349

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Robust Fair Clustering with Group Membership Uncertainty Sets

Sharmila Duppala, Juan Luque, John P Dickerson, Seyed A. Esmaeili; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2350-2358

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FLIPHAT: Joint Differential Privacy for High Dimensional Linear Bandits

Saptarshi Roy, Sunrit Chakraborty, Debabrota Basu; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2359-2367

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When the Universe is Too Big: Bounding Consideration Probabilities for Plackett-Luce Rankings

Ben Aoki-Sherwood, Catherine Bregou, David Liben-Nowell, Kiran Tomlinson, Thomas Zeng; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2368-2376

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Conditional diffusions for amortized neural posterior estimation

Tianyu Chen, Vansh Bansal, James G. Scott; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2377-2385

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On adaptivity and minimax optimality of two-sided nearest neighbors

Tathagata Sadhukhan, Manit Paul, Raaz Dwivedi; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2386-2394

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Decision from Suboptimal Classifiers: Excess Risk Pre- and Post-Calibration

Alexandre Perez-Lebel, Gael Varoquaux, Sanmi Koyejo, Matthieu Doutreligne, Marine Le Morvan; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2395-2403

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Statistical Guarantees for Unpaired Image-to-Image Cross-Domain Analysis using GANs

Saptarshi Chakraborty, Peter Bartlett; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2404-2412

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From Gradient Clipping to Normalization for Heavy Tailed SGD

Florian Hübler, Ilyas Fatkhullin, Niao He; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2413-2421

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Deep Optimal Sensor Placement for Black Box Stochastic Simulations

Paula Cordero Encinar, Tobias Schröder, Peter Yatsyshin, Andrew B. Duncan; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2422-2430

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Adversarially-Robust TD Learning with Markovian Data: Finite-Time Rates and Fundamental Limits

Sreejeet Maity, Aritra Mitra; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2431-2439

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Explaining ViTs Using Information Flow

Chase Walker, Md Rubel Ahmed, Sumit Kumar Jha, Rickard Ewetz; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2440-2448

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Zero-Shot Action Generalization with Limited Observations

Abdullah Alchihabi, Hanping Zhang, Yuhong Guo; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2449-2457

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Conditional Prediction ROC Bands for Graph Classification

Yujia Wu, Bo Yang, Elynn Chen, Yuzhou Chen, Zheshi Zheng; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2458-2466

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Fundamental computational limits of weak learnability in high-dimensional multi-index models

Emanuele Troiani, Yatin Dandi, Leonardo Defilippis, Lenka Zdeborova, Bruno Loureiro, Florent Krzakala; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2467-2475

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MDP Geometry, Normalization and Reward Balancing Solvers

Arsenii Mustafin, Aleksei Pakharev, Alex Olshevsky, Ioannis Paschalidis; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2476-2484

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BudgetIV: Optimal Partial Identification of Causal Effects with Mostly Invalid Instruments

Jordan Penn, Lee M. Gunderson, Gecia Bravo-Hermsdorff, Ricardo Silva, David Watson; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2485-2493

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Variation Due to Regularization Tractably Recovers Bayesian Deep Learning Uncertainty

James McInerney, Nathan Kallus; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2494-2502

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Variance-Dependent Regret Bounds for Nonstationary Linear Bandits

Zhiyong Wang, Jize Xie, Yi Chen, John C.S. Lui, Dongruo Zhou; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2503-2511

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Spectral Differential Network Analysis for High-Dimensional Time Series

Michael Hellstern, Byol Kim, Zaid Harchaoui, Ali Shojaie; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2512-2520

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Time-series attribution maps with regularized contrastive learning

Steffen Schneider, Rodrigo González Laiz, Anastasiia Filippova, Markus Frey, Mackenzie W Mathis; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2521-2529

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A High Dimensional Statistical Model for Adversarial Training: Geometry and Trade-Offs

Kasimir Tanner, Matteo Vilucchio, Bruno Loureiro, Florent Krzakala; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2530-2538

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Revisiting LocalSGD and SCAFFOLD: Improved Rates and Missing Analysis

Ruichen Luo, Sebastian U Stich, Samuel Horváth, Martin Takáč; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2539-2547

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An Iterative Algorithm for Rescaled Hyperbolic Functions Regression

Yeqi Gao, Zhao Song, Junze Yin; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2548-2556

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Analyzing the Role of Permutation Invariance in Linear Mode Connectivity

Keyao Zhan, Puheng Li, Lei Wu; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2557-2565

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Restructuring Tractable Probabilistic Circuits

Honghua Zhang, Benjie Wang, Marcelo Arenas, Guy Van den Broeck; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2566-2574

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Asynchronous Decentralized Optimization with Constraints: Achievable Speeds of Convergence for Directed Graphs

Firooz Shahriari-Mehr, Ashkan Panahi; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2575-2583

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Synthesis and Analysis of Data as Probability Measures With Entropy-Regularized Optimal Transport

Brendan Mallery, James M. Murphy, Shuchin Aeron; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2584-2592

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Sampling From Multiscale Densities With Delayed Rejection Generalized Hamiltonian Monte Carlo

Gilad Turok, Chirag Modi, Bob Carpenter; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2593-2601

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Differentially Private Graph Data Release: Inefficiencies & Unfairness

Ferdinando Fioretto, Diptangshu Sen, Juba Ziani; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2602-2610

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Improving N-Glycosylation and Biopharmaceutical Production Predictions Using AutoML-Built Residual Hybrid Models

Pedro Seber, Richard Braatz; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2611-2619

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Parabolic Continual Learning

Haoming Yang, Ali Hasan, Vahid Tarokh; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2620-2628

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Robust Kernel Hypothesis Testing under Data Corruption

Antonin Schrab, Ilmun Kim; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2629-2637

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A Multi-Task Learning Approach to Linear Multivariate Forecasting

Liran Nochumsohn, Hedi Zisling, Omri Azencot; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2638-2646

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Looped ReLU MLPs May Be All You Need as Practical Programmable Computers

Yingyu Liang, Zhizhou Sha, Zhenmei Shi, Zhao Song, Yufa Zhou; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2647-2655

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Pick-to-Learn and Self-Certified Gaussian Process Approximations

Daniel Marks, Dario Paccagnan; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2656-2664

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Q-learning for Quantile MDPs: A Decomposition, Performance, and Convergence Analysis

Jia Lin Hau, Erick Delage, Esther Derman, Mohammad Ghavamzadeh, Marek Petrik; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2665-2673

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Sparse Activations as Conformal Predictors

Margarida M Campos, João Cálem, Sophia Sklaviadis, Mario A. T. Figueiredo, Andre Martins; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2674-2682

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Robust Multi-fidelity Bayesian Optimization with Deep Kernel and Partition

Fengxue Zhang, Thomas Desautels, Yuxin Chen; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2683-2691

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Is Prior-Free Black-Box Non-Stationary Reinforcement Learning Feasible?

Argyrios Gerogiannis, Yu-Han Huang, Venugopal Veeravalli; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2692-2700

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Your Finetuned Large Language Model is Already a Powerful Out-of-distribution Detector

Andi Zhang, Tim Z. Xiao, Weiyang Liu, Robert Bamler, Damon Wischik; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2701-2709

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When Can We Solve the Weighted Low Rank Approximation Problem in Truly Subquadratic Time?

Chenyang Li, Yingyu Liang, Zhenmei Shi, Zhao Song; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2710-2718

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Spectral Representation for Causal Estimation with Hidden Confounders

Haotian Sun, Antoine Moulin, Tongzheng Ren, Arthur Gretton, Bo Dai; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2719-2727

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Geometric Collaborative Filtering with Convergence

Hisham Husain, Julien Monteil; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2728-2736

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Learning Infinite-Horizon Average-Reward Linear Mixture MDPs of Bounded Span

Woojin Chae, Kihyuk Hong, Yufan Zhang, Ambuj Tewari, Dabeen Lee; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2737-2745

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Flexible and Efficient Probabilistic PDE Solvers through Gaussian Markov Random Fields

Tim Weiland, Marvin Pförtner, Philipp Hennig; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2746-2754

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Learning Laplacian Positional Encodings for Heterophilous Graphs

Michael Ito, Jiong Zhu, Dexiong Chen, Danai Koutra, Jenna Wiens; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2755-2763

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Understanding GNNs and Homophily in Dynamic Node Classification

Michael Ito, Danai Koutra, Jenna Wiens; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2764-2772

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Causal Discovery on Dependent Binary Data

Alex Chen, Qing Zhou; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2773-2781

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A Safe Bayesian Learning Algorithm for Constrained MDPs with Bounded Constraint Violation

Krishna C Kalagarla, Rahul Jain, Pierluigi Nuzzo; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2782-2790

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Statistical Learning of Distributionally Robust Stochastic Control in Continuous State Spaces

Shengbo Wang, Nian Si, Jose Blanchet, Zhengyuan Zhou; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2791-2799

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Calm Composite Losses: Being Improper Yet Proper Composite

Han Bao, Nontawat Charoenphakdee; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2800-2808

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Optimistic Safety for Online Convex Optimization with Unknown Linear Constraints

Spencer Hutchinson, Tianyi Chen, Mahnoosh Alizadeh; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2809-2817

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Approximate Global Convergence of Independent Learning in Multi-Agent Systems

Ruiyang Jin, Zaiwei Chen, Yiheng Lin, Jie Song, Adam Wierman; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2818-2826

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Protein Fitness Landscape: Spectral Graph Theory Perspective

Hao Zhu, Daniel M. Steinberg, Piotr Koniusz; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2827-2835

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A Tight Regret Analysis of Non-Parametric Repeated Contextual Brokerage

François Bachoc, Tommaso Cesari, Roberto Colomboni; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2836-2844

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Evidential Uncertainty Probes for Graph Neural Networks

Linlin Yu, Kangshuo Li, Pritom Kumar Saha, Yifei Lou, Feng Chen; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2845-2853

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Quantifying the Optimization and Generalization Advantages of Graph Neural Networks Over Multilayer Perceptrons

Wei Huang, Yuan Cao, Haonan Wang, Xin Cao, Taiji Suzuki; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2854-2862

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Memory-Efficient Optimization with Factorized Hamiltonian Descent

Son Nguyen, Lizhang Chen, Bo Liu, Qiang Liu; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2863-2871

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Computing high-dimensional optimal transport by flow neural networks

Chen Xu, Xiuyuan Cheng, Yao Xie; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2872-2880

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Is Gibbs sampling faster than Hamiltonian Monte Carlo on GLMs?

Son Luu, Zuheng Xu, Nikola Surjanovic, Miguel Biron-Lattes, Trevor Campbell, Alexandre Bouchard-Cote; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2881-2889

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On Preference-based Stochastic Linear Contextual Bandits with Knapsacks

Xin Liu; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2890-2898

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Decoupling epistemic and aleatoric uncertainties with possibility theory

Nong Minh Hieu, Jeremie Houssineau, Neil K. Chada, Emmanuel Delande; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2899-2907

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Permutation Invariant Functions: Statistical Testing, Density Estimation, and Metric Entropy

Wee Chaimanowong, Ying Zhu; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2908-2916

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Recurrent Neural Goodness-of-Fit Test for Time Series

Aoran Zhang, Wenbin Zhou, Liyan Xie, Shixiang Zhu; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2917-2925

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Transfer Learning for High-dimensional Reduced Rank Time Series Models

Mingliang Ma, Abolfazl Safikhani; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2926-2934

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Decision-Point Guided Safe Policy Improvement

Abhishek Sharma, Leo Benac, Sonali Parbhoo, Finale Doshi-Velez; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2935-2943

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Understanding Inverse Reinforcement Learning under Overparameterization: Non-Asymptotic Analysis and Global Optimality

Ruijia Zhang, Siliang Zeng, Chenliang Li, Alfredo Garcia, Mingyi Hong; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2944-2952

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New User Event Prediction Through the Lens of Causal Inference

Henry Yuchi, Shixiang Zhu, Li Dong, Yigit M. Arisoy, Matthew C. Spencer; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2953-2961

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Variational Combinatorial Sequential Monte Carlo for Bayesian Phylogenetics in Hyperbolic Space

Alex Chen, Philippe Chlenski, Kenneth Munyuza, Antonio Khalil Moretti, Christian A. Naesseth, Itsik Pe’er; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2962-2970

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Multi-level Advantage Credit Assignment for Cooperative Multi-Agent Reinforcement Learning

Xutong Zhao, Yaqi Xie; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2971-2979

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Sampling in High-Dimensions using Stochastic Interpolants and Forward-Backward Stochastic Differential Equations

Anand Jerry George, Nicolas Macris; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2980-2988

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Reinforcement Learning for Infinite-Horizon Average-Reward Linear MDPs via Approximation by Discounted-Reward MDPs

Kihyuk Hong, Woojin Chae, Yufan Zhang, Dabeen Lee, Ambuj Tewari; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2989-2997

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Functional Stochastic Gradient MCMC for Bayesian Neural Networks

Mengjing Wu, Junyu Xuan, Jie Lu; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:2998-3006

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Meta-learning from Heterogeneous Tensors for Few-shot Tensor Completion

Tomoharu Iwata, Atsutoshi Kumagai; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3007-3015

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HR-Bandit: Human-AI Collaborated Linear Recourse Bandit

Junyu Cao, Ruijiang Gao, Esmaeil Keyvanshokooh; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3016-3024

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ADEPT: Hierarchical Bayes Approach to Personalized Federated Unsupervised Learning

Kaan Ozkara, Bruce Huang, Ruida Zhou, Suhas Diggavi; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3025-3033

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Domain Adaptation and Entanglement: an Optimal Transport Perspective

Okan Koc, Alexander Soen, Chao-Kai Chiang, Masashi Sugiyama; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3034-3042

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Invertible Fourier Neural Operators for Tackling Both Forward and Inverse Problems

Da Long, Zhitong Xu, Qiwei Yuan, Yin Yang, Shandian Zhe; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3043-3051

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Meta-learning Task-specific Regularization Weights for Few-shot Linear Regression

Tomoharu Iwata, Atsutoshi Kumagai, Yasutoshi Ida; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3052-3060

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Subspace Recovery in Winsorized PCA: Insights into Accuracy and Robustness

Sangil Han, Kyoowon Kim, Sungkyu Jung; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3061-3069

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Stochastic Gradient Descent for Bézier Simplex Representation of Pareto Set in Multi-Objective Optimization

Yasunari Hikima, Ken Kobayashi, Akinori Tanaka, Akiyoshi Sannai, Naoki Hamada; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3070-3078

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HACSurv: A Hierarchical Copula-Based Approach for Survival Analysis with Dependent Competing Risks

Xin Liu, Weijia Zhang, Min-Ling Zhang; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3079-3087

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Causal discovery in mixed additive noise models

Ruicong Yao, Tim Verdonck, Jakob Raymaekers; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3088-3096

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Riemann$^2$: Learning Riemannian Submanifolds from Riemannian Data

Leonel Rozo, Miguel González-Duque, Noémie Jaquier, Søren Hauberg; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3097-3105

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High Dimensional Bayesian Optimization using Lasso Variable Selection

Vu Viet Hoang, Hung The Tran, Sunil Gupta, Vu Nguyen; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3106-3114

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Differentiable Causal Structure Learning with Identifiability by NOTIME

Jeroen Berrevoets, Jakob Raymaekers, Mihaela van der Schaar, Tim Verdonck, Ruicong Yao; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3115-3123

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Out-of-distribution robustness for multivariate analysis via causal regularisation

Homer Durand, Gherardo Varando, Nathan Mankovich, Gustau Camps-Valls; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3124-3132

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Memorization in Attention-only Transformers

Léo Dana, Muni Sreenivas Pydi, Yann Chevaleyre; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3133-3141

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Multimodal Learning with Uncertainty Quantification based on Discounted Belief Fusion

Grigor Bezirganyan, Sana Sellami, Laure Berti-Equille, Sébastien Fournier; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3142-3150

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Koopman-Equivariant Gaussian Processes

Petar Bevanda, Max Beier, Alexandre Capone, Stefan Georg Sosnowski, Sandra Hirche, Armin Lederer; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3151-3159

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Continuous Structure Constraint Integration for Robust Causal Discovery

Lyuzhou Chen, Taiyu Ban, Derui Lyu, Yijia Sun, Kangtao Hu, Xiangyu Wang, Huanhuan Chen; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3160-3168

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Infinite Width Limits of Self Supervised Neural Networks

Maximilian Fleissner, Gautham Govind Anil, Debarghya Ghoshdastidar; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3169-3177

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Safety in the Face of Adversity: Achieving Zero Constraint Violation in Online Learning with Slowly Changing Constraints

Bassel Hamoud, Ilnura Usmanova, Kfir Yehuda Levy; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3178-3186

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What Ails Generative Structure-based Drug Design: Expressivity is Too Little or Too Much?

Rafal Karczewski, Samuel Kaski, Markus Heinonen, Vikas K Garg; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3187-3195

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TRADE: Transfer of Distributions between External Conditions with Normalizing Flows

Stefan Wahl, Armand Rousselot, Felix Draxler, Ullrich Koethe; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3196-3204

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Sketch-and-Project Meets Newton Method: Global $O(1/k^2)$ Convergence with Low-Rank Updates

Slavomir Hanzely; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3205-3213

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Statistical Test for Auto Feature Engineering by Selective Inference

Tatsuya Matsukawa, Tomohiro Shiraishi, Shuichi Nishino, Teruyuki Katsuoka, Ichiro Takeuchi; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3214-3222

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Differential Privacy in Distributed Learning: Beyond Uniformly Bounded Stochastic Gradients

Yue Huang, Jiaojiao Zhang, Qing Ling; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3223-3231

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Performative Reinforcement Learning with Linear Markov Decision Process

Debmalya Mandal, Goran Radanovic; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3232-3240

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On the Identifiability of Causal Abstractions

Xiusi Li, Sékou-Oumar Kaba, Siamak Ravanbakhsh; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3241-3249

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Powerful batch conformal prediction for classification

Ulysse Gazin, Ruth Heller, Etienne Roquain, Aldo Solari; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3250-3258

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Composition and Control with Distilled Energy Diffusion Models and Sequential Monte Carlo

James Thornton, Louis Béthune, Ruixiang ZHANG, Arwen Bradley, Preetum Nakkiran, Shuangfei Zhai; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3259-3267

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Fixed-Budget Change Point Identification in Piecewise Constant Bandits

Joseph Lazzaro, Ciara Pike-Burke; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3268-3276

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Tensor Network Based Feature Learning Model

Albert Saiapin, Kim Batselier; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3277-3285

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Sample Compression Unleashed: New Generalization Bounds for Real Valued Losses

Mathieu Bazinet, Valentina Zantedeschi, Pascal Germain; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3286-3294

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Global Ground Metric Learning with Applications to scRNA data

Damin Kühn, Michael T Schaub; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3295-3303

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Independent Learning in Performative Markov Potential Games

Rilind Sahitaj, Paulius Sasnauskas, Yiğit Yalın, Debmalya Mandal, Goran Radanovic; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3304-3312

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Parallel Backpropagation for Inverse of a Convolution with Application to Normalizing Flows

Sandeep Nagar, Girish Varma; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3313-3321

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A Differential Inclusion Approach for Learning Heterogeneous Sparsity in Neuroimaging Analysis

Wenjing Han, Yueming Wu, Xinwei Sun, Lingjing Hu, Yizhou Wang; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3322-3330

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Narrowing the Gap between Adversarial and Stochastic MDPs via Policy Optimization

Daniil Tiapkin, Evgenii Chzhen, Gilles Stoltz; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3331-3339

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SNAP: Sequential Non-Ancestor Pruning for Targeted Causal Effect Estimation With an Unknown Graph

Mátyás Schubert, Tom Claassen, Sara Magliacane; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3340-3348

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Do Regularization Methods for Shortcut Mitigation Work As Intended?

Haoyang Hong, Ioanna Papanikolaou, Sonali Parbhoo; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3349-3357

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Hyperbolic Prototypical Entailment Cones for Image Classification

Samuele Fonio, Roberto Esposito, Marco Aldinucci; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3358-3366

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Information Transfer Across Clinical Tasks via Adaptive Parameter Optimisation

Anshul Thakur, Elena Gal, Soheila Molaei, Xiao Gu, Patrick Schwab, Danielle Belgrave, Kim Branson, David A. Clifton; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3367-3375

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Online-to-PAC generalization bounds under graph-mixing dependencies

Baptiste Abélès, Gergely Neu, Eugenio Clerico; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3376-3384

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Covariance Selection over Networks

Wenfu Xia, Fengpei Li, Ying Sun, Ziping Zhao; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3385-3393

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Sparse Causal Effect Estimation using Two-Sample Summary Statistics in the Presence of Unmeasured Confounding

Shimeng Huang, Niklas Pfister, Jack Bowden; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3394-3402

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Vecchia Gaussian Process Ensembles on Internal Representations of Deep Neural Networks

Felix Jimenez, Matthias Katzfuss; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3403-3411

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Separation-Based Distance Measures for Causal Graphs

Jonas Wahl, Jakob Runge; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3412-3420

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Order-Optimal Regret with Novel Policy Gradient Approaches in Infinite-Horizon Average Reward MDPs

Swetha Ganesh, Washim Uddin Mondal, Vaneet Aggarwal; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3421-3429

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FreqMoE: Enhancing Time Series Forecasting through Frequency Decomposition Mixture of Experts

Ziqi Liu; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3430-3438

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Enhanced Adaptive Gradient Algorithms for Nonconvex-PL Minimax Optimization

Feihu Huang, Chunyu Xuan, Xinrui Wang, Siqi Zhang, Songcan Chen; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3439-3447

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Federated Causal Inference: Multi-Study ATE Estimation beyond Meta-Analysis

Rémi Khellaf, Aurélien Bellet, Julie Josse; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3448-3456

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Optimal Time Complexity Algorithms for Computing General Random Walk Graph Kernels on Sparse Graphs

Krzysztof Marcin Choromanski, Isaac Reid, Arijit Sehanobish, Kumar Avinava Dubey; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3457-3465

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Variational Inference in Location-Scale Families: Exact Recovery of the Mean and Correlation Matrix

Charles Margossian, Lawrence K. Saul; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3466-3474

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A Theoretical Understanding of Chain-of-Thought: Coherent Reasoning and Error-Aware Demonstration

Yingqian Cui, Pengfei He, Xianfeng Tang, Qi He, Chen Luo, Jiliang Tang, Yue Xing; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3475-3483

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A graphical global optimization framework for parameter estimation of statistical models with nonconvex regularization functions

Danial Davarnia, Mohammadreza Kiaghadi; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3484-3492

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High-Dimensional Differential Parameter Inference in Exponential Family using Time Score Matching

Daniel James Williams, Leyang Wang, Qizhen Ying, Song Liu, Mladen Kolar; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3493-3501

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Large Covariance Matrix Estimation With Nonnegative Correlations

Yixin Yan, QIAO YANG, Ziping Zhao; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3502-3510

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TVineSynth: A Truncated C-Vine Copula Generator of Synthetic Tabular Data to Balance Privacy and Utility

Elisabeth Griesbauer, Claudia Czado, Arnoldo Frigessi, Ingrid Hobæk Haff; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3511-3519

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Fairness Risks for Group-Conditionally Missing Demographics

Kaiqi Jiang, Wenzhe Fan, Mao Li, Xinhua Zhang; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3520-3528

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Anytime-Valid A/B Testing of Counting Processes

Michael Lindon, Nathan Kallus; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3529-3537

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Diffusion Models under Group Transformations

Haoye Lu, Spencer Szabados, Yaoliang Yu; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3538-3546

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Theoretical Convergence Guarantees for Variational Autoencoders

Sobihan Surendran, Antoine Godichon-Baggioni, Sylvain Le Corff; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3547-3555

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Infinite-dimensional Diffusion Bridge Simulation via Operator Learning

Gefan Yang, Elizabeth Louise Baker, Michael Lind Severinsen, Christy Anna Hipsley, Stefan Sommer; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3556-3564

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Natural Language Counterfactual Explanations for Graphs Using Large Language Models

Flavio Giorgi, Cesare Campagnano, Fabrizio Silvestri, Gabriele Tolomei; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3565-3573

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Nonparametric estimation of Hawkes processes with RKHSs

Anna Bonnet, Maxime Sangnier; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3574-3582

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Rethinking Neural-based Matrix Inversion: Why can’t, and Where can

Yuliang Ji, Jian Wu, Yuanzhe Xi; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3583-3591

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A Safe Exploration Approach to Constrained Markov Decision Processes

Tingting Ni, Maryam Kamgarpour; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3592-3600

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Towards Cost Sensitive Decision Making

Yang Li, Junier Oliva; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3601-3609

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Weighted Sum of Gaussian Process Latent Variable Models

James A C Odgers, Ruby Sedgwick, Chrysoula Dimitra Kappatou, Ruth Misener, Sarah Lucie Filippi; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3610-3618

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Survival Models: Proper Scoring Rule and Stochastic Optimization with Competing Risks

Julie Alberge, Vincent Maladiere, Olivier Grisel, Judith Abécassis, Gael Varoquaux; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3619-3627

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Density-Dependent Group Testing

Rahil Morjaria, Saikiran Bulusu, Venkata Gandikota, Sidharth Jaggi; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3628-3636

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Offline RL via Feature-Occupancy Gradient Ascent

Gergely Neu, Nneka Okolo; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3637-3645

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Gated Recurrent Neural Networks with Weighted Time-Delay Feedback

N. Benjamin Erichson, Soon Hoe Lim, Michael W. Mahoney; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3646-3654

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LC-Tsallis-INF: Generalized Best-of-Both-Worlds Linear Contextual Bandits

Masahiro Kato, Shinji Ito; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3655-3663

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Theoretically Grounded Pruning of Large Ground Sets for Constrained, Discrete Optimization

Ankur Nath, Alan Kuhnle; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3664-3672

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A Novel Convex Gaussian Min Max Theorem for Repeated Features

David Bosch, Ashkan Panahi; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3673-3681

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Unveiling the Role of Randomization in Multiclass Adversarial Classification: Insights from Graph Theory

Lucas Gnecco Heredia, Matteo Sammut, Muni Sreenivas Pydi, Rafael Pinot, Benjamin Negrevergne, Yann Chevaleyre; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3682-3690

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On the Computational Tractability of the (Many) Shapley Values

Reda Marzouk, Shahaf Bassan, Guy Katz, De la Higuera; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3691-3699

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Causal Representation Learning from General Environments under Nonparametric Mixing

Ignavier Ng, Shaoan Xie, Xinshuai Dong, Peter Spirtes, Kun Zhang; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3700-3708

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Conditioning diffusion models by explicit forward-backward bridging

Adrien Corenflos, Zheng Zhao, Thomas B. Schön, Simo Särkkä, Jens Sjölund; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3709-3717

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Stochastic Approximation with Unbounded Markovian Noise: A General-Purpose Theorem

Shaan Ul Haque, Siva Theja Maguluri; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3718-3726

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Learning Visual-Semantic Subspace Representations

Gabriel Moreira, Manuel Marques, Joao Costeira, Alexander G Hauptmann; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3727-3735

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Kernel Single Proxy Control for Deterministic Confounding

Liyuan Xu, Arthur Gretton; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3736-3744

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Copula Based Trainable Calibration Error Estimator of Multi-Label Classification with Label Interdependencies

Arkapal Panda, Utpal Garain; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3745-3753

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Causal Discovery-Driven Change Point Detection in Time Series

Shanyun Gao, Raghavendra Addanki, Tong Yu, Ryan A. Rossi, Murat Kocaoglu; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3754-3762

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Scalable Out-of-Distribution Robustness in the Presence of Unobserved Confounders

Parjanya Prajakta Prashant, Seyedeh Baharan Khatami, Bruno Ribeiro, Babak Salimi; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3763-3771

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SemlaFlow – Efficient 3D Molecular Generation with Latent Attention and Equivariant Flow Matching

Ross Irwin, Alessandro Tibo, Jon Paul Janet, Simon Olsson; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3772-3780

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Two-Timescale Linear Stochastic Approximation: Constant Stepsizes Go a Long Way

Jeongyeol Kwon, Luke Dotson, Yudong Chen, Qiaomin Xie; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3781-3789

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Your copula is a classifier in disguise: classification-based copula density estimation

David Huk, Mark Steel, Ritabrata Dutta; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3790-3798

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On Subjective Uncertainty Quantification and Calibration in Natural Language Generation

Ziyu Wang, Christopher C. Holmes; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3799-3807

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Primal-Dual Spectral Representation for Off-policy Evaluation

Yang Hu, Tianyi Chen, Na Li, Kai Wang, Bo Dai; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3808-3816

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Multi-marginal Schrödinger Bridges with Iterative Reference Refinement

Yunyi Shen, Renato Berlinghieri, Tamara Broderick; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3817-3825

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RTD-Lite: Scalable Topological Analysis for Comparing Weighted Graphs in Learning Tasks

Eduard Tulchinskii, Daria Voronkova, Ilya Trofimov, Evgeny Burnaev, Serguei Barannikov; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3826-3834

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Stochastic Compositional Minimax Optimization with Provable Convergence Guarantees

Yuyang Deng, Fuli Qiao, Mehrdad Mahdavi; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3835-3843

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Tighter Confidence Bounds for Sequential Kernel Regression

Hamish Flynn, David Reeb; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3844-3852

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Adapting to Online Distribution Shifts in Deep Learning: A Black-Box Approach

Dheeraj Baby, Boran Han, Shuai Zhang, Cuixiong Hu, Bernie Wang, Yu-Xiang Wang; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3853-3861

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InnerThoughts: Disentangling Representations and Predictions in Large Language Models

Didier Chételat, Joseph Cotnareanu, Rylee Thompson, Yingxue Zhang, Mark Coates; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3862-3870

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Risk-sensitive Bandits: Arm Mixture Optimality and Regret-efficient Algorithms

Meltem Tatlı, Arpan Mukherjee, Prashanth L. A., Karthikeyan Shanmugam, Ali Tajer; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3871-3879

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Semiparametric conformal prediction

Ji Won Park, Kyunghyun Cho; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3880-3888

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Learning Geometrically-Informed Lyapunov Functions with Deep Diffeomorphic RBF Networks

Samuel Tesfazgi, Leonhard Sprandl, Sandra Hirche; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3889-3897

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Max-Rank: Efficient Multiple Testing for Conformal Prediction

Alexander Timans, Christoph-Nikolas Straehle, Kaspar Sakmann, Christian A. Naesseth, Eric Nalisnick; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3898-3906

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Near-Optimal Sample Complexity for Iterated CVaR Reinforcement Learning with a Generative Model

Zilong Deng, Simon Khan, Shaofeng Zou; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3907-3915

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Steinmetz Neural Networks for Complex-Valued Data

Shyam Venkatasubramanian, Ali Pezeshki, Vahid Tarokh; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3916-3924

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Feasible Learning

Juan Ramirez, Ignacio Hounie, Juan Elenter, Jose Gallego-Posada, Meraj Hashemizadeh, Alejandro Ribeiro, Simon Lacoste-Julien; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3925-3933

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Task Shift: From Classification to Regression in Overparameterized Linear Models

Tyler LaBonte, Kuo-Wei Lai, Vidya Muthukumar; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3934-3942

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Fast Convergence of Softmax Policy Mirror Ascent

Reza Asad, Reza Babanezhad Harikandeh, Issam H. Laradji, Nicolas Le Roux, Sharan Vaswani; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3943-3951

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Scalable Implicit Graphon Learning

Ali Azizpour, Nicolas Zilberstein, Santiago Segarra; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3952-3960

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Application of Structured State Space Models to High energy physics with locality sensitive hashing

Cheng Jiang, Sitian Qian; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3961-3969

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Analysis of Two-Stage Rollout Designs with Clustering for Causal Inference under Network Interference

Mayleen Cortez-Rodriguez, Matthew Eichhorn, Christina Yu; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3970-3978

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The Size of Teachers as a Measure of Data Complexity: PAC-Bayes Excess Risk Bounds and Scaling Laws

Gintare Karolina Dziugaite, Daniel M. Roy; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3979-3987

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DDEQs: Distributional Deep Equilibrium Models through Wasserstein Gradient Flows

Jonathan Geuter, Clément Bonet, Anna Korba, David Alvarez-Melis; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3988-3996

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Bridging the Theoretical Gap in Randomized Smoothing

Blaise Delattre, Paul Caillon, Quentin Barthélemy, Erwan Fagnou, Alexandre Allauzen; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:3997-4005

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Distributional Off-policy Evaluation with Bellman Residual Minimization

Sungee Hong, Zhengling Qi, Raymond K. W. Wong; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4006-4014

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Theory of Agreement-on-the-Line in Linear Models and Gaussian Data

Christina Baek, Aditi Raghunathan, J Zico Kolter; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4015-4023

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SteinDreamer: Variance Reduction for Text-to-3D Score Distillation via Stein Identity

Peihao Wang, Zhiwen Fan, Dejia Xu, Dilin Wang, Sreyas Mohan, Forrest Iandola, Rakesh Ranjan, Yilei Li, Qiang Liu, Zhangyang Wang, Vikas Chandra; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4024-4032

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Theoretical Analysis of Leave-one-out Cross Validation for Non-differentiable Penalties under High-dimensional Settings

Haolin Zou, Arnab Auddy, Kamiar Rahnama Rad, Arian Maleki; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4033-4041

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Sampling from the Random Linear Model via Stochastic Localization Up to the AMP Threshold

Han Cui, Zhiyuan Yu, Jingbo Liu; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4042-4050

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qPOTS: Efficient Batch Multiobjective Bayesian Optimization via Pareto Optimal Thompson Sampling

Ashwin Renganathan, Kade Carlson; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4051-4059

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Estimating the Spectral Moments of the Kernel Integral Operator from Finite Sample Matrices

Chanwoo Chun, SueYeon Chung, Daniel Lee; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4060-4068

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Enhancing Feature-Specific Data Protection via Bayesian Coordinate Differential Privacy

Maryam Aliakbarpour, Syomantak Chaudhuri, Thomas Courtade, Alireza Fallah, Michael Jordan; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4069-4077

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Bayesian Principles Improve Prompt Learning In Vision-Language Models

Mingyu Kim, Jongwoo Ko, Mijung Park; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4078-4086

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Unbiased and Sign Compression in Distributed Learning: Comparing Noise Resilience via SDEs

Enea Monzio Compagnoni, Rustem Islamov, Frank Norbert Proske, Aurelien Lucchi; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4087-4095

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Privacy in Metalearning and Multitask Learning: Modeling and Separations

Maryam Aliakbarpour, Konstantina Bairaktari, Adam Smith, Marika Swanberg, Jonathan Ullman; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4096-4104

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Visualizing token importance for black-box language models

Paulius Rauba, Qiyao Wei, Mihaela van der Schaar; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4105-4113

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Tight Analysis of Difference-of-Convex Algorithm (DCA) Improves Convergence Rates for Proximal Gradient Descent

Teodor Rotaru, Panagiotis Patrinos, François Glineur; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4114-4122

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All or None: Identifiable Linear Properties of Next-Token Predictors in Language Modeling

Emanuele Marconato, Sebastien Lachapelle, Sebastian Weichwald, Luigi Gresele; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4123-4131

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Learning High-dimensional Gaussians from Censored Data

Arnab Bhattacharyya, Constantinos Costis Daskalakis, Themis Gouleakis, Yuhao Wang; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4132-4140

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Deep Generative Quantile Bayes

Jungeum Kim, Percy S. Zhai, Veronika Rockova; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4141-4149

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Double Debiased Machine Learning for Mediation Analysis with Continuous Treatments

Houssam Zenati, Judith Abécassis, Julie Josse, Bertrand Thirion; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4150-4158

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InfoNCE: Identifying the Gap Between Theory and Practice

Evgenia Rusak, Patrik Reizinger, Attila Juhos, Oliver Bringmann, Roland S. Zimmermann, Wieland Brendel; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4159-4167

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Achieving $\widetilde\mathcalO(\sqrtT)$ Regret in Average-Reward POMDPs with Known Observation Models

Alessio Russo, Alberto Maria Metelli, Marcello Restelli; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4168-4176

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Approximate Equivariance in Reinforcement Learning

Jung Yeon Park, Sujay Bhatt, Sihan Zeng, Lawson L.S. Wong, Alec Koppel, Sumitra Ganesh, Robin Walters; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4177-4185

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The cost of local and global fairness in Federated Learning

Yuying Duan, Gelei Xu, Yiyu Shi, Michael Lemmon; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4186-4194

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Local Stochastic Sensitivity Analysis For Dynamical Systems

Nishant Panda, Jehanzeb H Chaudhry, Natalie Klein, James Carzon, Troy Butler; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4195-4203

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Learning Gaussian Multi-Index Models with Gradient Flow: Time Complexity and Directional Convergence

Berfin Simsek, Amire Bendjeddou, Daniel Hsu; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4204-4212

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Variance-Aware Linear UCB with Deep Representation for Neural Contextual Bandits

Ha Manh Bui, Enrique Mallada, Anqi Liu; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4213-4221

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Robust Estimation in metric spaces: Achieving Exponential Concentration with a Fréchet Median

Jakwang Kim, Jiyoung Park, Anirban Bhattacharya; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4222-4230

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From Deep Additive Kernel Learning to Last-Layer Bayesian Neural Networks via Induced Prior Approximation

Wenyuan Zhao, Haoyuan Chen, Tie Liu, Rui Tuo, Chao Tian; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4231-4239

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Effective Bayesian Causal Inference via Structural Marginalisation and Autoregressive Orders

Christian Toth, Christian Knoll, Franz Pernkopf, Robert Peharz; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4240-4248

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Linear Submodular Maximization with Bandit Feedback

Wenjing Chen, Victoria G. Crawford; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4249-4257

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Cross-modality Matching and Prediction of Perturbation Responses with Labeled Gromov-Wasserstein Optimal Transport

Jayoung Ryu, Charlotte Bunne, Luca Pinello, Aviv Regev, Romain Lopez; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4258-4266

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Signal Recovery from Random Dot-Product Graphs under Local Differential Privacy

Siddharth Vishwanath, Jonathan Hehir; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4267-4275

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Synthetic Potential Outcomes and Causal Mixture Identifiability

Bijan Mazaheri, Chandler Squires, Caroline Uhler; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4276-4284

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Characterizing the Accuracy-Communication-Privacy Trade-off in Distributed Stochastic Convex Optimization

Sudeep Salgia, Nikola Pavlovic, Yuejie Chi, Qing Zhao; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4285-4293

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Time-varying Gaussian Process Bandits with Unknown Prior

Juliusz Ziomek, Masaki Adachi, Michael A Osborne; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4294-4302

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Logarithmic Neyman Regret for Adaptive Estimation of the Average Treatment Effect

Ojash Neopane, Aaditya Ramdas, Aarti Singh; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4303-4311

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Behavior-Inspired Neural Networks for Relational Inference

Yulong Yang, Bowen Feng, Keqin Wang, Naomi Leonard, Adji Bousso Dieng, Christine Allen-Blanchette; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4312-4320

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MODL: Multilearner Online Deep Learning

Antonios Valkanas, Boris N. Oreshkin, Mark Coates; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4321-4329

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Active Feature Acquisition for Personalised Treatment Assignment

Julianna Piskorz, Nicolás Astorga, Jeroen Berrevoets, Mihaela van der Schaar; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4330-4338

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ScoreFusion: Fusing Score-based Generative Models via Kullback–Leibler Barycenters

Hao Liu, Tony Junze Ye, Jose Blanchet, Nian Si; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4339-4347

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Loss Gradient Gaussian Width based Generalization and Optimization Guarantees

Arindam Banerjee, Qiaobo Li, Yingxue Zhou; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4348-4356

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On the Power of Multitask Representation Learning with Gradient Descent

Qiaobo Li, Zixiang Chen, Yihe Deng, Yiwen Kou, Yuan Cao, Quanquan Gu; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4357-4365

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Graph Machine Learning based Doubly Robust Estimator for Network Causal Effects

Seyedeh Baharan Khatami, Harsh Parikh, Haowei Chen, Sudeepa Roy, Babak Salimi; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4366-4374

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Cross-Modal Imputation and Uncertainty Estimation for Spatial Transcriptomics

Xiangyu Guo, Ricardo Henao; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4375-4383

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M$^2$AD: Multi-Sensor Multi-System Anomaly Detection through Global Scoring and Calibrated Thresholding

Sarah Alnegheimish, Zelin He, Matthew Reimherr, Akash Chandrayan, Abhinav Pradhan, Luca D’Angelo; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4384-4392

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Prepacking: A Simple Method for Fast Prefilling and Increased Throughput in Large Language Models

Siyan Zhao, Daniel Mingyi Israel, Guy Van den Broeck, Aditya Grover; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4393-4401

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Stochastic Rounding for LLM Training: Theory and Practice

Kaan Ozkara, Tao Yu, Youngsuk Park; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4402-4410

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Posterior Mean Matching: Generative Modeling through Online Bayesian Inference

Sebastian Salazar, Michal Kucer, Yixin Wang, Emily Casleton, David Blei; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4411-4419

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Offline Multi-task Transfer RL with Representational Penalization

Avinandan Bose, Simon Shaolei Du, Maryam Fazel; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4420-4428

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Corruption Robust Offline Reinforcement Learning with Human Feedback

Debmalya Mandal, Andi Nika, Parameswaran Kamalaruban, Adish Singla, Goran Radanovic; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4429-4437

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Keeping up with dynamic attackers: Certifying robustness to adaptive online data poisoning

Avinandan Bose, Laurent Lessard, Maryam Fazel, Krishnamurthy Dj Dvijotham; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4438-4446

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Bypassing the Exponential Dependency: Looped Transformers Efficiently Learn In-context by Multi-step Gradient Descent

Bo Chen, Xiaoyu Li, Yingyu Liang, Zhenmei Shi, Zhao Song; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4447-4455

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Online Assortment and Price Optimization Under Contextual Choice Models

Yigit Efe Erginbas, Thomas Courtade, Kannan Ramchandran; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4456-4464

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SINE: Scalable MPE Inference for Probabilistic Graphical Models using Advanced Neural Embeddings

Shivvrat Arya, Tahrima Rahman, Vibhav Giridhar Gogate; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4465-4473

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Quantifying Knowledge Distillation using Partial Information Decomposition

Pasan Dissanayake, Faisal Hamman, Barproda Halder, Ilia Sucholutsky, Qiuyi Zhang, Sanghamitra Dutta; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4474-4482

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Efficient and Asymptotically Unbiased Constrained Decoding for Large Language Models

Haotian Ye, Himanshu Jain, Chong You, Ananda Theertha Suresh, Haowei Lin, James Zou, Felix Yu; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4483-4491

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Cost-Aware Optimal Pairwise Pure Exploration

Di Wu, Chengshuai Shi, Ruida Zhou, Cong Shen; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4492-4500

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Understanding Expert Structures on Minimax Parameter Estimation in Contaminated Mixture of Experts

Fanqi Yan, Huy Nguyen, Le Quang Dung, Pedram Akbarian, Nhat Ho; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4501-4509

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Batch, match, and patch: low-rank approximations for score-based variational inference

Chirag Modi, Diana Cai, Lawrence K. Saul; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4510-4518

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Stochastic Weight Sharing for Bayesian Neural Networks

Moule Lin, Shuhao Guan, Weipeng Jing, Goetz Botterweck, Andrea Patane; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4519-4527

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Beyond Discretization: Learning the Optimal Solution Path

Qiran Dong, Paul Grigas, Vishal Gupta; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4528-4536

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Faster WIND: Accelerating Iterative Best-of-$N$ Distillation for LLM Alignment

Tong Yang, Jincheng Mei, Hanjun Dai, Zixin Wen, Shicong Cen, Dale Schuurmans, Yuejie Chi, Bo Dai; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4537-4545

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Causal Temporal Regime Structure Learning

Abdellah Rahmani, Pascal Frossard; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4546-4554

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Linearized Wasserstein Barycenters: Synthesis, Analysis, Representational Capacity, and Applications

Matthew Werenski, Brendan Mallery, Shuchin Aeron, James M. Murphy; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4555-4563

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General Staircase Mechanisms for Optimal Differential Privacy

Alex Kulesza, Ananda Theertha Suresh, Yuyan Wang; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4564-4572

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Understanding the Effect of GCN Convolutions in Regression Tasks

Juntong Chen, Johannes Schmidt-Hieber, Claire Donnat, Olga Klopp; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4573-4581

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Diffusion Models as Constrained Samplers for Optimization with Unknown Constraints

Lingkai Kong, Yuanqi Du, Wenhao Mu, Kirill Neklyudov, Valentin De Bortoli, Dongxia Wu, Haorui Wang, Aaron M Ferber, Yian Ma, Carla P Gomes, Chao Zhang; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4582-4590

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Learning Pareto manifolds in high dimensions: How can regularization help?

Tobias Wegel, Filip Kovačević, Alexandru Tifrea, Fanny Yang; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4591-4599

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Optimal Stochastic Trace Estimation in Generative Modeling

Xinyang Liu, Hengrong Du, Wei Deng, Ruqi Zhang; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4600-4608

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Beyond Size-Based Metrics: Measuring Task-Specific Complexity in Symbolic Regression

Krzysztof Kacprzyk, Mihaela van der Schaar; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4609-4617

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Differentially Private Kernelized Contextual Bandits

Nikola Pavlovic, Sudeep Salgia, Qing Zhao; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4618-4626

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Federated Communication-Efficient Multi-Objective Optimization

Baris Askin, Pranay Sharma, Gauri Joshi, Carlee Joe-Wong; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4627-4635

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Understanding the Learning Dynamics of LoRA: A Gradient Flow Perspective on Low-Rank Adaptation in Matrix Factorization

Ziqing Xu, Hancheng Min, Lachlan Ewen MacDonald, Jinqi Luo, Salma Tarmoun, Enrique Mallada, Rene Vidal; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4636-4644

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Variational Schrödinger Momentum Diffusion

Kevin Rojas, Yixin Tan, Molei Tao, Yuriy Nevmyvaka, Wei Deng; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4645-4653

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Learning to Forget: Bayesian Time Series Forecasting using Recurrent Sparse Spectrum Signature Gaussian Processes

Csaba Tóth, Masaki Adachi, Michael A Osborne, Harald Oberhauser; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4654-4662

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The Uniformly Rotated Mondrian Kernel

Calvin Osborne, Eliza O’Reilly; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4663-4671

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Adversarial Vulnerabilities in Large Language Models for Time Series Forecasting

Fuqiang Liu, Sicong Jiang, Luis Miranda-Moreno, Seongjin Choi, Lijun Sun; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4672-4680

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Variational Adversarial Training Towards Policies with Improved Robustness

Juncheng Dong, Hao-Lun Hsu, Qitong Gao, Vahid Tarokh, Miroslav Pajic; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4681-4689

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Testing Conditional Independence with Deep Neural Network Based Binary Expansion Testing (DeepBET)

Yang Yang, Kai Zhang, Ping-Shou Zhong; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4690-4698

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Order-Optimal Regret in Distributed Kernel Bandits using Uniform Sampling with Shared Randomness

Nikola Pavlovic, Sudeep Salgia, Qing Zhao; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4699-4707

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On the Consistent Recovery of Joint Distributions from Conditionals

Mahbod Majid, Rattana Pukdee, Vishwajeet Agrawal, Burak Varıcı, Pradeep Kumar Ravikumar; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4708-4716

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Transfer Neyman-Pearson Algorithm for Outlier Detection

Mohammadreza Mousavi Kalan, Eitan J. Neugut, Samory Kpotufe; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4717-4725

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I-trustworthy Models. A framework for trustworthiness evaluation of probabilistic classifiers

Ritwik Vashistha, Arya Farahi; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4726-4734

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Quantile Additive Trend Filtering

Zhi Zhang, Kyle Ritscher, OSCAR HERNAN MADRID PADILLA; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4735-4743

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A Computation-Efficient Method of Measuring Dataset Quality based on the Coverage of the Dataset

Beomjun Kim, Jaehwan Kim, Kangyeon Kim, Sunwoo Kim, Heejin Ahn; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4744-4752

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Invariant Link Selector for Spatial-Temporal Out-of-Distribution Problem

Katherine Tieu, Dongqi Fu, Jun Wu, Jingrui He; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4753-4761

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Advancing Fairness in Precision Medicine: A Universal Framework for Optimal Treatment Estimation in Censored Data

Hongni Wang, Junxi Zhang, Na Li, Linglong Kong, Bei Jiang, Xiaodong Yan; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4762-4770

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A Shapley-value Guided Rationale Editor for Rationale Learning

Zixin Kuang, Meng-Fen Chiang, Wang-Chien Lee; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4771-4779

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Bilevel Reinforcement Learning via the Development of Hyper-gradient without Lower-Level Convexity

Yan Yang, Bin Gao, Ya-xiang Yuan; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4780-4788

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Regularity in Canonicalized Models: A Theoretical Perspective

Behrooz Tahmasebi, Stefanie Jegelka; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4789-4797

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Graph-based Complexity for Causal Effect by Empirical Plug-in

Rina Dechter, Anna K Raichev, Jin Tian, Alexander Ihler; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4798-4806

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Conditional simulation via entropic optimal transport: Toward non-parametric estimation of conditional Brenier maps

Ricardo Baptista, Aram-Alexandre Pooladian, Michael Brennan, Youssef Marzouk, Jonathan Niles-Weed; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4807-4815

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A Robust Kernel Statistical Test of Invariance: Detecting Subtle Asymmetries

Ashkan Soleymani, Behrooz Tahmasebi, Stefanie Jegelka, Patrick Jaillet; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4816-4824

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Leveraging Frozen Batch Normalization for Co-Training in Source-Free Domain Adaptation

Xianwen Deng, Yijun Wang, Zhi Xue; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4825-4833

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Structure based SAT dataset for analysing GNN generalisation

Yi Fu, Anthony Tompkins, Yang Song, Maurice Pagnucco; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4834-4842

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How Well Can Transformers Emulate In-Context Newton’s Method?

Angeliki Giannou, Liu Yang, Tianhao Wang, Dimitris Papailiopoulos, Jason D. Lee; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4843-4851

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Nonparametric Distributional Regression via Quantile Regression

Cheng Peng, Stan Uryasev; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4852-4860

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Learning Stochastic Nonlinear Dynamics with Embedded Latent Transfer Operators

Naichang Ke, Ryogo Tanaka, Yoshinobu Kawahara; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4861-4869

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Deep Clustering via Probabilistic Ratio-Cut Optimization

Ayoub Ghriss, Claire Monteleoni; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4870-4878

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Gaussian Mean Testing under Truncation

Clement Louis Canonne, Themis Gouleakis, Yuhao Wang, Qiping Yang; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4879-4887

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Conformal Prediction Under Generalized Covariate Shift with Posterior Drift

Baozhen Wang, Xingye Qiao; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4888-4896

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Robust Offline Policy Learning with Observational Data from Multiple Sources

Aldo Gael Carranza, Susan Athey; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4897-4905

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Mixed-Feature Logistic Regression Robust to Distribution Shifts

Qingshi Sun, Nathan Justin, Andres Gomez, Phebe Vayanos; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4906-4914

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Algorithmic Accountability in Small Data: Sample-Size-Induced Bias Within Classification Metrics

Jarren Briscoe, Garrett Kepler, Daryl Robert DeFord, Assefaw Gebremedhin; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4915-4923

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Knowledge Graph Completion with Mixed Geometry Tensor Factorization

Viacheslav Yusupov, Maxim Rakhuba, Evgeny Frolov; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4924-4932

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Unconditionally Calibrated Priors for Beta Mixture Density Networks

Alix Lhéritier, Maurizio Filippone; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4933-4941

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Black-Box Uniform Stability for Non-Euclidean Empirical Risk Minimization

Simon Vary, David Martínez-Rubio, Patrick Rebeschini; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4942-4950

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Weighted Euclidean Distance Matrices over Mixed Continuous and Categorical Inputs for Gaussian Process Models

Mingyu Pu, Wang Songhao, Haowei Wang, Szu Hui Ng; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4951-4959

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Robust Classification by Coupling Data Mollification with Label Smoothing

Markus Heinonen, Ba-Hien Tran, Michael Kampffmeyer, Maurizio Filippone; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4960-4968

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Towards Regulatory-Confirmed Adaptive Clinical Trials: Machine Learning Opportunities and Solutions

Omer Noy Klein, Alihan Hüyük, Ron Shamir, Uri Shalit, Mihaela van der Schaar; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4969-4977

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Wasserstein Distributionally Robust Bayesian Optimization with Continuous Context

Francesco Micheli, Efe C. Balta, Anastasios Tsiamis, John Lygeros; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4978-4986

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Noise-Aware Differentially Private Variational Inference

Talal Alrawajfeh, Joonas Jälkö, Antti Honkela; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4987-4995

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LITE: Efficiently Estimating Gaussian Probability of Maximality

Nicolas Menet, Jonas Hübotter, Parnian Kassraie, Andreas Krause; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:4996-5004

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Counting Graphlets of Size k under Local Differential Privacy

Vorapong Suppakitpaisarn, Donlapark Ponnoprat, Nicha Hirankarn, Quentin Hillebrand; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:5005-5013

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Sampling from Bayesian Neural Network Posteriors with Symmetric Minibatch Splitting Langevin Dynamics

Daniel Paulin, Peter A. Whalley, Neil K. Chada, Benedict J. Leimkuhler; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:5014-5022

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Refined Analysis of Constant Step Size Federated Averaging and Federated Richardson-Romberg Extrapolation

Paul Mangold, Alain Oliviero Durmus, Aymeric Dieuleveut, Sergey Samsonov, Eric Moulines; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:5023-5031

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On Local Posterior Structure in Deep Ensembles

Mikkel Jordahn, Jonas Vestergaard Jensen, Mikkel N. Schmidt, Michael Riis Andersen; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:5032-5040

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Personalizing Low-Rank Bayesian Neural Networks Via Federated Learning

Boning Zhang, Dongzhu Liu, Osvaldo Simeone, Guanchu Wang, Dimitrios Pezaros, Guangxu Zhu; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:5041-5049

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Statistical Guarantees for Lifelong Reinforcement Learning using PAC-Bayes Theory

Zhi Zhang, Chris Chow, Yasi Zhang, Yanchao Sun, Haochen Zhang, Eric Hanchen Jiang, Han Liu, Furong Huang, Yuchen Cui, OSCAR HERNAN MADRID PADILLA; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:5050-5058

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Level Set Teleportation: An Optimization Perspective

Aaron Mishkin, Alberto Bietti, Robert M. Gower; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:5059-5067

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On the Convergence of Continual Federated Learning Using Incrementally Aggregated Gradients

Satish Kumar Keshri, Nazreen Shah, Ranjitha Prasad; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:5068-5076

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Analyzing Generative Models by Manifold Entropic Metrics

Daniel Galperin, Ullrich Koethe; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:5077-5085

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DPFL: Decentralized Personalized Federated Learning

Salma Kharrat, Marco Canini, Samuel Horváth; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:5086-5094

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Density Ratio-based Proxy Causal Learning Without Density Ratios

Bariscan Bozkurt, Ben Deaner, Dimitri Meunier, Liyuan Xu, Arthur Gretton; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:5095-5103

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Certifiably Quantisation-Robust training and inference of Neural Networks

Hue Dang, Matthew Robert Wicker, Goetz Botterweck, Andrea Patane; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:5104-5112

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AlleNoise - large-scale text classification benchmark dataset with real-world label noise

Alicja Rączkowska, Aleksandra Osowska-Kurczab, Jacek Szczerbiński, Kalina Jasinska-Kobus, Klaudia Nazarko; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:5113-5121

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Strategic Conformal Prediction

Daniel Csillag, Claudio Jose Struchiner, Guilherme Tegoni Goedert; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:5122-5130

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Hypernym Bias: Unraveling Deep Classifier Training Dynamics through the Lens of Class Hierarchy

Roman Malashin, Yachnaya Valeria, Alexandr V. Mullin; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:5131-5139

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Unifying Feature-Based Explanations with Functional ANOVA and Cooperative Game Theory

Fabian Fumagalli, Maximilian Muschalik, Eyke Hüllermeier, Barbara Hammer, Julia Herbinger; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:5140-5148

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M-HOF-Opt: Multi-Objective Hierarchical Output Feedback Optimization via Multiplier Induced Loss Landscape Scheduling

Xudong Sun, Nutan Chen, Alexej Gossmann, Yu Xing, Matteo Wohlrapp, Emilio Dorigatti, Carla Feistner, Felix Drost, Daniele Scarcella, Lisa Helen Beer, Carsten Marr; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:5149-5157

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An Empirical Bernstein Inequality for Dependent Data in Hilbert Spaces and Applications

Erfan Mirzaei, Andreas Maurer, Vladimir R Kostic, Massimiliano Pontil; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:5158-5166

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Training Neural Samplers with Reverse Diffusive KL Divergence

Jiajun He, Wenlin Chen, Mingtian Zhang, David Barber, José Miguel Hernández-Lobato; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:5167-5175

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Every Call is Precious: Global Optimization of Black-Box Functions with Unknown Lipschitz Constants

Fares Fourati, Salma Kharrat, Vaneet Aggarwal, Mohamed-Slim Alouini; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:5176-5184

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Mean-Field Microcanonical Gradient Descent

Marcus Häggbom, Morten Karlsmark, Joakim Andén; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:5185-5193

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Clustering Context in Off-Policy Evaluation

Daniel Guzman Olivares, Philipp Schmidt, Jacek Golebiowski, Artur Bekasov; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:5194-5202

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Task-Driven Discrete Representation Learning

Long Tung Vuong; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:5203-5211

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Emergence of Globally Attracting Fixed Points in Deep Neural Networks With Nonlinear Activations

Amir Joudaki, Thomas Hofmann; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:5212-5220

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Exposing Privacy Gaps: Membership Inference Attack on Preference Data for LLM Alignment

Qizhang Feng, Siva Rajesh Kasa, SANTHOSH KUMAR KASA, Hyokun Yun, Choon Hui Teo, Sravan Babu Bodapati; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:5221-5229

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The Strong Product Model for Network Inference without Independence Assumptions

Bailey Andrew, David Robert Westhead, Luisa Cutillo; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:5230-5238

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A Convex Relaxation Approach to Generalization Analysis for Parallel Positively Homogeneous Networks

Uday Kiran Reddy Tadipatri, Benjamin David Haeffele, Joshua Agterberg, Rene Vidal; Proceedings of The 28th International Conference on Artificial Intelligence and Statistics, PMLR 258:5239-5247

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