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Resumen
In a previous study we introduced structural equation modelling (SEM) for digital soil mapping in the Argentine Pampas. An attractive property of SEM is that it incorporates pedological knowledge explicitly through a mathematical implementation of a conceptual model. Many soil processes operate within the soil profile; therefore, SEM might be suitable for simultaneous prediction of soil properties for multiple soil layers. In this way, relations between [ver mas...]
dc.contributor.authorAngelini, Marcos Esteban
dc.contributor.authorHeuvelink, Gerard B.M.
dc.contributor.authorKempen, Bas
dc.date.accessioned2017-11-03T17:58:47Z
dc.date.available2017-11-03T17:58:47Z
dc.date.issued2017-09
dc.identifier.issn1351-0754 (Print)
dc.identifier.issn1365-2389 (Online)
dc.identifier.otherDOI: 10.1111/ejss.12446
dc.identifier.urihttp://hdl.handle.net/20.500.12123/1668
dc.identifier.urihttp://onlinelibrary.wiley.com/doi/10.1111/ejss.12446/epdf
dc.description.abstractIn a previous study we introduced structural equation modelling (SEM) for digital soil mapping in the Argentine Pampas. An attractive property of SEM is that it incorporates pedological knowledge explicitly through a mathematical implementation of a conceptual model. Many soil processes operate within the soil profile; therefore, SEM might be suitable for simultaneous prediction of soil properties for multiple soil layers. In this way, relations between soil properties in different horizons can be included that might result in more consistent predictions. The objectives of this study were therefore to apply SEM to multi-layer and multivariate soil mapping, and to test SEM functionality for suggestions to improve the modelling. We applied SEM to model and predict the lateral and vertical distribution of the cation exchange capacity (CEC), organic carbon (OC) and clay content of three major soil horizons, A, B and C, for a 23 000-km2 region in the Argentine Pampas. We developed a conceptual model based on pedological hypotheses. Next, we derived a mathematical model and calibrated it with environmental covariates and soil data from 320 soil profiles. Cross-validation of predicted soil properties showed that SEM explained only marginally more of the variance than a linear regression model. However, assessment of the covariation showed that SEM reproduces the covariance between variables much more accurately than linear regression. We concluded that SEM can be used to predict several soil properties in multiple layers by considering the interrelations between soil properties and layers.eng
dc.formatapplication/pdfes_AR
dc.language.isoenges_AR
dc.rightsinfo:eu-repo/semantics/openAccesses_AR
dc.rights.urihttp://creativecommons.org/licenses/by-nc-sa/4.0/
dc.sourceEuropean Journal of Soil Science 68 (5) : 575–591 (September 2017)
dc.subjectSueloes_AR
dc.subjectSoileng
dc.subjectAnálisis Multivariante
dc.subjectMultivariate Analysiseng
dc.subjectCartografía
dc.subjectCartographyeng
dc.titleMultivariate mapping of soil with structural equation modellinges_AR
dc.typeinfo:ar-repo/semantics/artículoes_AR
dc.typeinfo:eu-repo/semantics/articlees_AR
dc.typeinfo:eu-repo/semantics/publishedVersiones_AR
dc.rights.licenseCreative Commons Attribution-NonCommercial-ShareAlike 4.0 International (CC BY-NC-SA 4.0)
dc.description.filFil: Angelini, Marcos Esteban. Wageningen University. Soil Geography and Landscape Group; Holanda. ISRIC — World Soil Information; Holanda. Instituto Nacional de Tecnología Agropecuaria (INTA). Instituto de Suelos;Argentina
dc.description.filFil: Heuvelink, G.B.M. Wageningen University. Soil Geography and Landscape Group; Holanda. ISRIC — World Soil Information; Holanda
dc.description.filFil: Kempen, B. ISRIC — World Soil Information; Holanda
dc.subtypecientifico


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