4.3 Article

Error Characterization of Significant Wave Heights in Multidecadal Satellite Altimeter Product, Model Hindcast, and In Situ Measurements Using the Triple Collocation Technique

期刊

出版社

AMER METEOROLOGICAL SOC
DOI: 10.1175/JTECH-D-21-0179.1

关键词

Sea state; Buoy observations; Satellite observations; Uncertainty; Numerical analysis/modeling

资金

  1. European Space Agency as part of the Sea State CCI project of the Climate Change Initiative (CCI) (ESA ESRIN) [4000123651/18/I-NB]

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Ocean wave measurements are crucial for various applications. Different data sources can be considered depending on scales and regions of interest. This study uses the triple collocation technique to estimate the random error variance of significant wave heights, providing new insights on error variability.
Ocean wave measurements are of major importance for a number of applications including climate studies, ship routing, marine engineering, safety at sea, and coastal risk management. Depending on the scales and regions of interest, a variety of data sources may be considered (e.g., in situ data, Voluntary Observing Ship observations, altimeter records, numerical wave models), each one with its own characteristics in terms of sampling frequency, spatial coverage, accuracy, and cost. To combine multiple source of wave information (e.g., for data assimilation scheme in numerical weather prediction models), the error characteristics of each measurement system need to be defined. In this study, we use the triple collocation technique to estimate the random error variance of significant wave heights from a comprehensive collection of collocated in situ, altimeter, and model data. The in situ dataset is a selection of 122 platforms provided by the Copernicus Marine Service In Situ Thematic Center. The altimeter dataset is the ESA Sea State CCI version1 L2P product. The model dataset is the WW3-LOPS hindcast forced with bias-corrected ERA5 winds and an adjusted T475 parameterization of wave generation and dissipation. Compared to previous similar analyses, the extensive (similar to 250 000 entries) triple collocation dataset generated for this study provides some new insights on the error variability associated to differences in in situ platforms, satellite missions, sea state conditions, and seasonal variability.

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