On the application of remote sensing time series analysis for land cover mapping: spectral indices for crops classification

Collu, C.
First
Writing - Original Draft Preparation
;
Dessì, F.
Member of the Collaboration Group
;
Simonetti, D.
Software
;
Melis, M. T.
Supervision
2022-01-01

Abstract

This study aims to introduce a semi-automatic classification workflow for the production of a land use/land cover (LULC) map of the island of Sardinia (Italy) following the CORINE legend schema, and a ground spatial resolution compatible with a scale of 1:25.000. The classification is based on free high-resolution satellite imagery from Sentinel-1 and Sentinel-2 collected in 2020, ancillary data derived from Sardinian Geoportal, Joint Research Centre (JRC) and OpenStreetMap. The LULC map production includes three steps: 1) pixel-based classification, realized with two different approaches, that use i) information derived from existing thematic maps eventually re-coded in case of incoherencies observed between datasets and/or satellite data products, and ii) spectral indices and parameter thresholds defined on the basis of multitemporal analysis; 2) segmentation of Sentinel-1 and 2 annual composites, and pre-labelling of segments with the pixel-based classified map, obtaining the preliminary map; 3) visual inspection procedure in order to confirm, or re-assign, classes to polygons. The accuracy of the preliminary map was tested in a sample area and on specific class of non-irrigated crops through ground truth data collected from a detailed photo-interpretation, estimating 97% of overall accuracy. The results show a great improvement from existing thematic maps in terms of detail, with the possibility of a yearly updating of the map via automatic processes. However, some limitations were found, due to the high fragmentation of Sardinian landscape and the high variety of crop types and agricultural practices, that could affect the efficiency of the classifier.
2022
Inglese
International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences - ISPRS Archives
COPERNICUS GESELLSCHAFT MBH
BAHNHOFSALLE 1E, GOTTINGEN, 37081, GERMANY
XLIII-B3-2022
B3-2022
61
68
8
https://isprs-archives.copernicus.org/articles/XLIII-B3-2022/61/2022/
24th ISPRS Congress on Imaging Today, Foreseeing Tomorrow, Commission III
Contributo
Comitato scientifico
June 2022
Nice
internazionale
scientifica
Sentinel
Land cover
agricultural mapping
multispectral analysis
Sardinia
Goal 15: Life on land
Goal 13: Climate action
no
4 Contributo in Atti di Convegno (Proceeding)::4.1 Contributo in Atti di convegno
Collu, C.; Dessì, F.; Simonetti, D.; Lasio, P.; Botti, P.; Melis, M. T.
273
6
4.1 Contributo in Atti di convegno
open
info:eu-repo/semantics/conferencePaper
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