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Automated classification of terrestrial images: The contribution to the remote sensing of snow cover

Academic Article
Publication Date:
2019
abstract:
The relation between the fraction of snow cover and the spectral behavior of the surface is a critical issue that must be approached in order to retrieve the snow cover extent from remotely sensed data. Ground-based cameras are an important source of datasets for the preparation of long time series concerning the snow cover. This study investigates the support provided by terrestrial photography for the estimation of a site-specific threshold to discriminate the snow cover. The case study is located in the Italian Alps (Falcade, Italy). The images taken over a ten-year period were analyzed using an automated snow-not-snow detection algorithm based on Spectral Similarity. The performance of the Spectral Similarity approach was initially investigated comparing the results with different supervised methods on a training dataset, and subsequently through automated procedures on the entire dataset. Finally, the integration with satellite snow products explored the opportunity offered by terrestrial photography for calibrating and validating satellite-based data over a decade.
Iris type:
01.01 Articolo in rivista
Keywords:
Cold regions; Fractional snow cover; Remote sensing; Terrestrial photography
List of contributors:
Salvatori, Rosamaria; Salzano, Roberto
Authors of the University:
SALVATORI ROSAMARIA
SALZANO ROBERTO
Handle:
https://iris.cnr.it/handle/20.500.14243/403798
Published in:
GEOSCIENCES
Journal
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http://www.scopus.com/record/display.url?eid=2-s2.0-85065307099&origin=inward
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