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Nonparametric Bayesian Calibration of Computer Models

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arxiv 2509.22597 v4 pith:TZKPHBUO submitted 2025-09-26 stat.ME math.STstat.COstat.TH

Nonparametric Bayesian Calibration of Computer Models

classification stat.ME math.STstat.COstat.TH
keywords bayesiannonparametricposteriorcomputercalibrationcorrespondingdensityestablishing
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Combining field data and computer models is a crucial step for making inferences, predictions, and decisions for complex science and engineering systems. We formulate and analyze a nonparametric Bayesian methodology for calibrating the distribution of parameters in a computer model using field observations. Our results include establishing; a unique nonparametric Bayesian posterior corresponding to a chosen prior with an explicit formula for the posterior density; a maximum entropy property of the posterior corresponding to the uniform prior; the almost everywhere continuity of the posterior density; and a comprehensive statistical analysis of an estimator based on importance sampling. They also include establishing the well-posedness of the nonparametric Bayesian solution of the calibration problem. We illustrate the results using several examples.

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  1. Non-Parametric Model Calibration with Stochastic Control Parameters

    stat.ME 2026-07 conditional novelty 5.0

    A nonparametric calibration method enforces a known marginal for control parameters by augmenting the model output with those parameters and using optimal transport when paired data are unavailable.