Locally stationary spatio-temporal interpolation of Argo profiling float data
Abstract
Argo floats measure seawater temperature and salinity in the upper 2,000 m of the global ocean. Statistical analysis of the resulting spatio-temporal dataset is challenging due to its nonstationary structure and large size. We propose mapping these data using locally stationary Gaussian process regression where covariance parameter estimation and spatio-temporal prediction are carried out in a moving-window fashion. This yields computationally tractable nonstationary anomaly fields without the need to explicitly model the nonstationary covariance structure. We also investigate Student- distributed fine-scale variation as a means to account for non-Gaussian heavy tails in ocean temperature data. Cross-validation studies comparing the proposed approach with the existing state-of-the-art demonstrate clear improvements in point predictions and show that accounting for the nonstationarity and non-Gaussianity is crucial for obtaining well-calibrated uncertainties. This approach also provides data-driven local estimates of the spatial and temporal dependence scales for the global ocean which are of scientific interest in their own right.
Cite
@article{arxiv.1711.00460,
title = {Locally stationary spatio-temporal interpolation of Argo profiling float data},
author = {Mikael Kuusela and Michael L. Stein},
journal= {arXiv preprint arXiv:1711.00460},
year = {2018}
}
Comments
28 pages, 8 figures, changes to the presentation throughout, some material moved to the supplement, author version of the published paper