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A Refined Generalization Analysis for Extreme Multi-class Supervised Contrastive Representation Learning Ensemble Distributionally Robust Bayesian Optimisation The Proxy Presumption: From Semantic Embeddings to Valid Social Measures Modulated learning for private and distributed regression with just a single sample per client device Query-efficient model evaluation using cached responses Functional-prior-based approaches to Bayesian PDE-constrained inversion using physics-informed neural networks Optimal Experiments for Partial Causal Effect Identification Order-Agnostic Autoregressive Modelling with Missing Data Grokking or Glitching? How Low-Precision Drives Slingshot Loss Spikes Tuning Derivatives for Causal Fairness in Machine Learning Spherical Flows for Sampling Categorical Data Bayesian Rain Field Reconstruction using Commercial Microwave Links and Diffusion Model Priors GRALIS: A Unified Canonical Framework for Linear Attribution Methods via Riesz Representation Sharp Capacity Thresholds in Linear Associative Memory: From Winner-Take-All to Listwise Retrieval Unified Framework of Distributional Regret in Multi-Armed Bandits and Reinforcement Learning Jacobian-Velocity Bounds for Deployment Risk Under Covariate Drift Self-Attention as Transport: Limits of Symmetric Spectral Diagnostics Perturbation is All You Need for Extrapolating Language Models Adapt or Forget: Provable Tradeoffs Between Adam and SGD in Nonstationary Optimization Realizable Bayes-Consistency for General Metric Losses Graph Convolutional Support Vector Regression for Robust Spatiotemporal Forecasting of Urban Air Pollution Segmenting Human-LLM Co-authored Text via Change Point Detection Stochastic Schrödinger Diffusion Models for Pure-State Ensemble Generation Understanding Self-Supervised Learning via Latent Distribution Matching The Geometric Mechanics of Contrastive Representation Learning: Alignment Potentials, Entropic Dispersion, and Cross-modal Divergence Imbalanced Classification under Capacity Constraints On the Spectral Structure and Objective Equivalence of Orthogonal Multilabel Fisher Discriminants Partially Observed Structural Causal Models First-Order Efficiency for Probabilistic Value Estimation via A Statistical Viewpoint Robust and Fast Training via Per-Sample Clipping
Exact Sampling of Gibbs Measures with Estimated Losses
[Submitted on 24 Apr 2024 (v1), last revised 6 Sep 2026 (this ve · 2024-04-24 · via stat updates on arXiv.org

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Abstract:A popular strategy for ameliorating some of the shortcomings of Bayesian posterior inference is to instead target a Gibbs measure based on losses that connect a parameter of interest to observed data, and which are known to be robust to misspecification. Existing theory for these procedures treats these losses as being analytically available, but in many situations these losses must be stochastically estimated using pseudo-observations. In these settings, and even under strong assumptions, we show that posteriors based on standard Markov chain Monte Carlo (MCMC) algorithms exhibit strong dependence on the number of these pseudo-observations, and require utilizing a diverging number of pseudo-observations to ensure posterior concentration. To remedy this issue, we introduce a modified piecewise deterministic Markov process (PDMP) sampler, and formally show that its posterior draws have no dependence on the number of pseudo-observations used to estimate the loss within a Gibbs measure. We verify the practical utility of this approach on five examples spanning intractable likelihoods and intractable losses.

Submission history

From: David Frazier [view email]
[v1] Wed, 24 Apr 2024 05:08:11 UTC (151 KB)
[v2] Wed, 23 Apr 2025 01:06:34 UTC (6,716 KB)
[v3] Sun, 6 Sep 2026 22:47:49 UTC (5,145 KB)