2021
Conference article  Open Access

Mesoscale patterns identification through SST image processing

Reggiannini M., Janeiro J., Martins F., Papini O., Pieri G.

Image processing  Remote sensing  Mesoscale patterns  Sea surface temperature 

Mesoscale marine phenomena represent important features to understand and include within predictive models, which provide valuable information for proper environmental policy making. For example the rearrangement of the organic substances, consequent to the dynamics of the water masses affected by the mentioned phenomena, meaningfully modifies the actual condition of local habitats. Indeed it may facilitate the onset of non resident living species at the expense of resident ones, eventually affecting related human activity, such as commercial fishery. Objective of this work is the detection and identification of mesoscale events, in terms of specific marine surface patterns that are observed throughout such events, e.g. water filaments, countercurrents, meanders due to upwelling wind actions stress. These phenomena can be studied and monitored through the analysis of Sea Surface Temperature images captured by satellite missions, such as Metop, and MODIS Terra/Aqua. A quantitative description of such events is proposed, based on dedicated algorithms that extract temporal and spatial features from the images, and exploit them to provide a signature discriminating different observed scenarios. Preliminary results of the application of the proposed approach to a dataset related to the southwestern region of the Iberian Peninsula are presented.

Source: ROBOVIS 2021 - 2nd International Conference on Robotics, Computer Vision and Intelligent Systems, pp. 165–172, Online Conference, 27-28/10/2021

Publisher: SciTePress, Lisbona, PRT


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BibTeX entry
@inproceedings{oai:it.cnr:prodotti:458165,
	title = {Mesoscale patterns identification through SST image processing},
	author = {Reggiannini M. and Janeiro J. and Martins F. and Papini O. and Pieri G.},
	publisher = {SciTePress, Lisbona, PRT},
	doi = {10.5220/0010714600003061},
	booktitle = {ROBOVIS 2021 - 2nd International Conference on Robotics, Computer Vision and Intelligent Systems, pp. 165–172, Online Conference, 27-28/10/2021},
	year = {2021}
}

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