BackgroundDesertification could be considered ultimate consequence of land degradation in an ecosystem. Iran with more than 75% arid and semi-arid areas involves fragile and susceptible ecosystems to desertification. We applied a statistical algorithm including regression trees and random forest techniques for determining main factors affecting desertification based on ESAs in Taybad-Bakharz region at northeastern Iran.ResultsThe results indicated a significant correlation between the desertification hazard value with variables of wind erosion, precipitation, aridity index, technology development, slope index, vegetation state and land use changes.ConclusionsRegression trees and random forest techniques in desertification hazard provide an absolute estimation of the relationship between dependent and independent variables. We can use a robust base for further investigations and refined with findings from in-depth studies carried out at the local scale.
An applied statistical method to identify desertification indicators in northeastern Iran
Mehdi Sarparast,M. Ownegh,A. Najafinejad,A. Sepehr
Published 2018 in Geoenvironmental Disasters
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- Publication year
2018
- Venue
Geoenvironmental Disasters
- Publication date
2018-03-12
- Fields of study
Environmental Science
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