Please use this identifier to cite or link to this item: https://www.um.edu.mt/library/oar/handle/123456789/56832
Title: Gap filling of the CALYPSO HF radar sea surface current data through past measurements and satellite wind observations
Authors: Gauci, Adam
Drago, Aldo
Abela, John
Keywords: Meteorology -- Observations
Water quality monitoring stations
Marine pollution
Water quality management
Marine ecology
Coastal ecology
Coastal zone management -- Environmental aspects
Marine ecosystem management
Marine ecosystem health
Coastal ecosystem health
Issue Date: 2016
Publisher: Hindawi Publishing Corporation
Citation: Gauci, A., Drago, A., & Abela, J. (2016). Gap filling of the CALYPSO HF radar sea surface current data through past measurements and satellite wind observations. International Journal of Navigation and Observation, 2605198.
Abstract: High frequency (HF) radar installations are becoming essential components of operational real-time marine monitoring systems. The underlying technology is being further enhanced to fully exploit the potential of mapping sea surface currents and wave fields over wide areas with high spatial and temporal resolution, even in adverse meteo-marine conditions. Data applications are opening to many different sectors, reaching out beyond research and monitoring, targeting downstream services in support to key national and regional stakeholders. In the CALYPSO project, the HF radar system composed of CODAR SeaSonde stations installed in the Malta Channel is specifically serving to assist in the response against marine oil spills and to support search and rescue at sea. One key drawback concerns the sporadic inconsistency in the spatial coverage of radar data which is dictated by the sea state as well as by interference from unknown sources that may be competing with transmissions in the same frequency band. This work investigates the use of Machine Learning techniques to fill in missing data in a high resolution grid. Past radar data and wind vectors obtained from satellites are used to predict missing information and provide a more consistent dataset.
URI: https://www.um.edu.mt/library/oar/handle/123456789/56832
Appears in Collections:Scholarly Works - FacSciGeo

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