Uncertainty Quantification of Density and Stratification Estimates with Implications for Predicting Ocean Dynamics

Author:

Manderson A.1,Rayson M. D.2,Cripps E.1,Girolami M.3,Gosling J. P.4,Hodkiewicz M.5,Ivey G. N.2,Jones N. L.2

Affiliation:

1. a Department of Mathematics and Statistics, University of Western Australia, Perth, Western Australia, Australia

2. b Oceans Graduate School, University of Western Australia, Perth, Western Australia, Australia

3. c Department of Mathematics, Imperial College London, and Alan Turing Institute, British Library, London, United Kingdom

4. d School of Mathematics, University of Leeds, Leeds, United Kingdom

5. e Faculty of Engineering and Mathematical Sciences, University of Western Australia, Perth, Western Australia, Australia

Abstract

AbstractWe present a statistical method for reconstructing continuous background density profiles that embeds incomplete measurements and a physically intuitive density stratification model within a Bayesian hierarchal framework. A double hyperbolic tangent function is used as a parametric density stratification model that captures various pycnocline structures in the upper ocean and offers insight into several density profile characteristics (e.g., pycnocline depth). The posterior distribution is used to quantify uncertainty and is estimated using recent advances in Markov chain Monte Carlo sampling. Temporally evolving posterior distributions of density profile characteristics, isopycnal heights, and nonlinear ocean process models for internal gravity waves are presented as examples of how uncertainty propagates through models dependent on the density stratification. The results show 0.95 posterior interval widths that ranged from 2.5% to 4% of the expected values for the linear internal wave phase speed and 15%–40% for the nonlinear internal wave steepening parameter. The data, collected over a year from a through-the-column mooring, and code, implemented in the software package Stan, accompany the article.

Funder

Australian Research Council Industrial Transformation Research Hub

Engineering and Physical Sciences Research Council

Royal Academy of Engineering

Alan Turing Institute

Publisher

American Meteorological Society

Subject

Atmospheric Science,Ocean Engineering

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