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Knowledge-based digital soil mapping for predicting soil properties in two representative watersheds
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Escola Superior de Agricultura "Luiz de Queiroz
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Programa de Pós-Graduação
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Abstract
The estimation of soil physical and chemical properties at non-sampled areas is
valuable information for land management, sustainability and water yield. This work aimed to
model and map soil physical-chemical properties by means of knowledge-based digital soil mapping approach as a study case in two watersheds representative of different physiographical
regions in Brazil. Two watersheds with contrasting soil-landscape features were studied regarding the spatial modeling and prediction of physical and chemical properties. Since the method
uses only one value of soil property for each soil type, the way of choosing typical values as well
the role of land use as a covariate in the prediction were tested. Mean prediction error (MPE) and
root mean square prediction error (RMSPE) were used to assess the accuracy of the prediction
methods. The knowledge-based digital soil mapping by means of fuzzy logics is an accurate
option for spatial prediction of soil properties considering: 1) lesser intense sampling scheme;
2) scarce financial resources for intensive sampling in Brazil; 3) adequacy to properties with
non-linearity distribution, such as saturated hydraulic conductivity. Land use seems to influence
spatial distribution of soil properties thus, it was applied in the soil modeling and prediction. The
way of choosing typical values for each condition varied not only according to the prediction
method, but also with the nature of spatial distribution of each soil property.
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MENEZES, M. D. de et al. Knowledge-based digital soil mapping for predicting soil properties in two representative watersheds. Scientia Agricola, Piracicaba, v. 75, n. 2, p. 144-153, Mar./Apr. 2018.
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Exceto quando indicado de outra forma, a licença deste item é descrita como Attribution 4.0 International

