Author
Listed:
- Mykhailo Popov
(State Institution “Scientific Centre for Aerospace Research of the Earth of the Institute of Geological Sciences of the National Academy of Sciences of Ukraine”, Olesia Honchara Str., 55-B, 01054 Kyiv, Ukraine)
- Sergey Stankevich
(State Institution “Scientific Centre for Aerospace Research of the Earth of the Institute of Geological Sciences of the National Academy of Sciences of Ukraine”, Olesia Honchara Str., 55-B, 01054 Kyiv, Ukraine)
- Anna Kozlova
(State Institution “Scientific Centre for Aerospace Research of the Earth of the Institute of Geological Sciences of the National Academy of Sciences of Ukraine”, Olesia Honchara Str., 55-B, 01054 Kyiv, Ukraine)
- Artem Andreiev
(State Institution “Scientific Centre for Aerospace Research of the Earth of the Institute of Geological Sciences of the National Academy of Sciences of Ukraine”, Olesia Honchara Str., 55-B, 01054 Kyiv, Ukraine)
- Artur Lysenko
(State Institution “Scientific Centre for Aerospace Research of the Earth of the Institute of Geological Sciences of the National Academy of Sciences of Ukraine”, Olesia Honchara Str., 55-B, 01054 Kyiv, Ukraine)
- Mykola Lubskyi
(State Institution “Scientific Centre for Aerospace Research of the Earth of the Institute of Geological Sciences of the National Academy of Sciences of Ukraine”, Olesia Honchara Str., 55-B, 01054 Kyiv, Ukraine)
- Anna Khyzhniak
(State Institution “Scientific Centre for Aerospace Research of the Earth of the Institute of Geological Sciences of the National Academy of Sciences of Ukraine”, Olesia Honchara Str., 55-B, 01054 Kyiv, Ukraine)
Abstract
Land degradation (LD) is one of the most pressing environmental problems on a global scale, directly threatening ecosystem resilience, food security, and sustainable land use. Traditional methods used to assess land degradation are often limited by high labor intensity and insufficient integration of heterogeneous geospatial datasets. In this study, we propose an evidence-based approach to LD mapping that integrates multi-source Earth observation (EO) data products with the Dempster–Shafer theory of evidence. A geospatial data cube was constructed based on precipitation, soil moisture, terrain slope, land surface temperature, land cover transitions, vegetation productivity, and soil organic carbon indices. Our classification workflow combined expert knowledge with probabilistic evidence weighting to define LD classes at a regional scale, and our methodology was tested in the Kryvyi Rih Iron Ore Basin (Ukraine), a region under intense anthropogenic and natural pressure. Field-based validation demonstrated the high reliability of the proposed approach, achieving a Kendall rank correlation coefficient of 0.832, which outperforms alternative methods based on Support Vector Machines (SVMs) and Trends.Earth.
Suggested Citation
Mykhailo Popov & Sergey Stankevich & Anna Kozlova & Artem Andreiev & Artur Lysenko & Mykola Lubskyi & Anna Khyzhniak, 2026.
"Evidence-Based Land Degradation Assessment with Earth Observation Data Products,"
Sustainability, MDPI, vol. 18(13), pages 1-25, July.
Handle:
RePEc:gam:jsusta:v:18:y:2026:i:13:p:6681-:d:1980860
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