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arXiv · 1812.05174

Uncertainty Quantification for Markov Processes via Variational Principles and Functional Inequalities

Abstract

Information-theory based variational principles have proven effective at providing scalable uncertainty quantification (i.e. robustness) bounds for quantities of interest in the presence of nonparametric model-form uncertainty. In this work, we combine such variational formulas with functional inequalities (Poincar{\'e}, $\log$-Sobolev, Liapunov functions) to derive explicit uncertainty quantification bounds for time-averaged observables, comparing a Markov process to a second (not necessarily Markov) process. These bounds are well-behaved in the infinite-time limit and apply to steady-states of both discrete and continuous-time Markov processes.

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BibTeXRIS

Jeremiah Birrell, Luc Rey-Bellet. 2018-12-12. Uncertainty Quantification for Markov Processes via Variational Principles and Functional Inequalities. https://doi.org/10.1137/19m1237429

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