Javascript must be enabled to continue!
Validation of the Copernicus Marine Med-WAV modelled spectrum with available buoy measurements in the Mediterranean Sea
View through CrossRef
The Med-WAV system of the Mediterranean component (MED MFC) of the Copernicus Marine Environment Service regularly provides high-resolution analysis, forecast, and reanalysis of wave products. The Mediterranean Sea Waves Analysis and Forecast product (MEDSEA_ANALYSISFORECAST_WAV_006_017, Korres et al., 2022) has been operational since 2017. The hourly wave spectrum is computed at each model grid point and is discretised using 32 logarithmically allocated frequency bins and 24 equally distributed directional bins. Hourly wave parameters are obtained through the wave spectrum, with spectral parameters significant wave height and mean wave period (spectral moments (0,2) wave period) being continuously validated against satellite altimeter data and buoy measurements. Thus, careful monitoring has contributed to a more accurate representation of the Mediterranean wave system via system upgrades (Ravdas et al., 2018). Αccess to the wave spectrum itself may provide additional information on the sea state, revealing, for example, if it is composed of mixed sea systems. For the Med-WAV system, wave spectra have been available since June 2021 (not part of the Copernicus Marine Service catalogue) and are already used for wave downscaling applications within the Med Sea. Studies concerning comparisons of the modelled spectral shape and in-situ data for the Mediterranean basin are limited to this date. Such an analysis can lead to further parameter validation and contribute to system improvements. In-situ 1-D spectra are available through Copernicus Marine in-situ TAC (2022) (product INSITU_GLO_WAV_DISCRETE_MY_013_045) from buoys deployed in the west part of the basin. The modelled 1-D spectra (following the integration of the 2-D modelled spectrum over all directions) are compared against quality-controlled data from selected deep water buoys. Besides the spectral shape, further comparisons are performed, focusing on parameters that are of interest to the engineering community, e.g. the spectral moments (-1,0) wave period, the spectral moments (0,1) wave period, and the orbital wave velocity (Stopa et al., 2016). The model skill is assessed through commonly used quality metrics such as bias, root mean square difference, and scatter index. References:Korres, G., Oikonomou, C., Denaxa, D., & Sotiropoulou, M. (2022). Mediterranean Sea Waves Analysis and Forecast (CMEMS MED-Waves, MEDWAΜ4 system) (Version 1) Data set. Copernicus Monitoring Environment Marine Service (CMEMS). https://doi.org/10.25423/CMCC/MEDSEA_ANALYSISFORECAST_WAV_006_017_MEDWAM4 Ravdas M., Zacharioudaki A. and Korres G. (2018): Implementation and validation of a new operational wave forecasting system of the Mediterranean Monitoring and Forecasting Centre in the framework of the Copernicus Marine Environment Monitoring Service, Nat. Hazards Earth Syst. Sci., 18, 2675–2695, https://doi.org/10.5194/nhess-18-2675-2018Copernicus Marine in situ TAC (2022). Copernicus Marine In Situ - Global Ocean Wave Observations Reanalysis. SEANOE. https://doi.org/10.17882/70345Stopa J., Ardhuin F., Babanin A. and Zieger S. (2016): Comparison and validation of physical wave parameterizations in spectral wave models, Ocean Modelling, 103, 2-17, http://dx.doi.org/10.1016/j.ocemod.2015.09.003  
Title: Validation of the Copernicus Marine Med-WAV modelled spectrum with available buoy measurements in the Mediterranean Sea
Description:
The Med-WAV system of the Mediterranean component (MED MFC) of the Copernicus Marine Environment Service regularly provides high-resolution analysis, forecast, and reanalysis of wave products.
The Mediterranean Sea Waves Analysis and Forecast product (MEDSEA_ANALYSISFORECAST_WAV_006_017, Korres et al.
, 2022) has been operational since 2017.
The hourly wave spectrum is computed at each model grid point and is discretised using 32 logarithmically allocated frequency bins and 24 equally distributed directional bins.
Hourly wave parameters are obtained through the wave spectrum, with spectral parameters significant wave height and mean wave period (spectral moments (0,2) wave period) being continuously validated against satellite altimeter data and buoy measurements.
Thus, careful monitoring has contributed to a more accurate representation of the Mediterranean wave system via system upgrades (Ravdas et al.
, 2018).
Αccess to the wave spectrum itself may provide additional information on the sea state, revealing, for example, if it is composed of mixed sea systems.
For the Med-WAV system, wave spectra have been available since June 2021 (not part of the Copernicus Marine Service catalogue) and are already used for wave downscaling applications within the Med Sea.
Studies concerning comparisons of the modelled spectral shape and in-situ data for the Mediterranean basin are limited to this date.
Such an analysis can lead to further parameter validation and contribute to system improvements.
In-situ 1-D spectra are available through Copernicus Marine in-situ TAC (2022) (product INSITU_GLO_WAV_DISCRETE_MY_013_045) from buoys deployed in the west part of the basin.
The modelled 1-D spectra (following the integration of the 2-D modelled spectrum over all directions) are compared against quality-controlled data from selected deep water buoys.
Besides the spectral shape, further comparisons are performed, focusing on parameters that are of interest to the engineering community, e.
g.
the spectral moments (-1,0) wave period, the spectral moments (0,1) wave period, and the orbital wave velocity (Stopa et al.
, 2016).
The model skill is assessed through commonly used quality metrics such as bias, root mean square difference, and scatter index.
 References:Korres, G.
, Oikonomou, C.
, Denaxa, D.
, & Sotiropoulou, M.
(2022).
Mediterranean Sea Waves Analysis and Forecast (CMEMS MED-Waves, MEDWAΜ4 system) (Version 1) Data set.
Copernicus Monitoring Environment Marine Service (CMEMS).
https://doi.
org/10.
25423/CMCC/MEDSEA_ANALYSISFORECAST_WAV_006_017_MEDWAM4 Ravdas M.
, Zacharioudaki A.
and Korres G.
(2018): Implementation and validation of a new operational wave forecasting system of the Mediterranean Monitoring and Forecasting Centre in the framework of the Copernicus Marine Environment Monitoring Service, Nat.
Hazards Earth Syst.
Sci.
, 18, 2675–2695, https://doi.
org/10.
5194/nhess-18-2675-2018Copernicus Marine in situ TAC (2022).
 Copernicus Marine In Situ - Global Ocean Wave Observations Reanalysis.
SEANOE.
 https://doi.
org/10.
17882/70345Stopa J.
, Ardhuin F.
, Babanin A.
and Zieger S.
(2016): Comparison and validation of physical wave parameterizations in spectral wave models, Ocean Modelling, 103, 2-17, http://dx.
doi.
org/10.
1016/j.
ocemod.
2015.
09.
003  .
Related Results
Validation of Drifting Buoy Data for Ocean Wave Observation
Validation of Drifting Buoy Data for Ocean Wave Observation
Drifting buoys collect wave data in the open ocean far from land and in areas with strong currents. However, the validation of the drifting buoy wave data is limited. Here, we comp...
Validation in Doctoral Education: Exploring PhD Students’ Perceptions of Belonging to Scaffold Doctoral Identity Work
Validation in Doctoral Education: Exploring PhD Students’ Perceptions of Belonging to Scaffold Doctoral Identity Work
Aim/Purpose: The aim of this article is to make a case of the role of validation in doctoral education. The purpose is to detail findings from three studies which explore PhD stude...
Horizontal Spar Wave Direction Monitoring Buoy
Horizontal Spar Wave Direction Monitoring Buoy
ABSTRACT
The equilibrium position of a center tethered buoyant spar buoy on the surface of the ocean is parallel to the crests of the wave train.
...
Revidering av miljöövervakningen i trendsjöar : färre nät eller färre provfisken?
Revidering av miljöövervakningen i trendsjöar : färre nät eller färre provfisken?
Sedan år 2007 utförs standardiserade provfisken med nordiska översiktsnät (SS-EN 14757) i knappt hälften av de så kallade trendsjöarna inom nationell miljöövervakning. 15 sjöar pro...
Near-real-time maximum wave height estimates over the Mediterranean Sea
Near-real-time maximum wave height estimates over the Mediterranean Sea
The Med-WAV system of the Mediterranean component (MED MFC) of the Copernicus Marine Environment Service has consistently been providing high-resolution wave product analyses, fore...
PETRI-MED: Advancing Satellite-Based Monitoring for Microbial Plankton Biodiversity in the Mediterranean Sea
PETRI-MED: Advancing Satellite-Based Monitoring for Microbial Plankton Biodiversity in the Mediterranean Sea
The assessment and monitoring of microbial plankton biodiversity are essential to obtain a robust evaluation of the health status of marine environments. The PETRI-MED project addr...
Vietnam’s Marine Environmental Security: Cross-Border Challenges and Vietnam concept
Vietnam’s Marine Environmental Security: Cross-Border Challenges and Vietnam concept
Background and objective: Since beginning of the 21st century, security in the South China Sea/East Vietnam Sea has emerged as a big problem with degraded maritime environment and ...

