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      Slash Spatial Linear Modeling: Soybean Yield Variability as a Function of Soil Chemical Properties

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          Abstract

          ABSTRACT: In geostatistical modeling of soil chemical properties, one or more influential observations in a dataset may impair the construction of interpolation maps and their accuracy. An alternative to avoid the problem would be to use most robust models, based on distributions that have heavier tails. Therefore, this study proposes a spatial linear model based on the slash distribution (SSLM) in order to characterize the spatial variability of soybean yields as a function of soil chemical properties. The likelihood ratio statistic (LR) was applied to verify the significance of parameters associated with the model. We evaluated the sensitivity of the maximum likelihood estimators by means of local influence analysis for both the soybean response and the linear predictor. In the proposed model, we analyzed data gathered from a commercial grain production area (127.18 ha) located in the western part of the state of Paraná (Brazil). The results showed that the slash distribution allowed us to adjust the high kurtosis of the data set distribution and the LR test confirmed that the soil chemical properties of phosphorus, potassium, pH, and organic matter were significant for the SSLM. Diagnostic analysis indicated that the atypical value of the sample set was not influential in the parameter estimation process. Construction of the interpolation map based on the proposed model is not affected when considering the atypical and/or influential observations. Thus, SSLM becomes a robust alternative in the study of soybean yield variability as a function of soil chemical properties, making it possible to investigate the productive potential of the areas.

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          Most cited references41

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          AN EXAMINATION OF THE DEGTJAREFF METHOD FOR DETERMINING SOIL ORGANIC MATTER, AND A PROPOSED MODIFICATION OF THE CHROMIC ACID TITRATION METHOD

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            Sistema brasileiro de classificação de solos

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              Field-Scale Variability of Soil Properties in Central Iowa Soils

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                Author and article information

                Journal
                rbcs
                Revista Brasileira de Ciência do Solo
                Rev. Bras. Ciênc. Solo
                Sociedade Brasileira de Ciência do Solo (Viçosa, MG, Brazil )
                1806-9657
                2018
                : 42
                : e0170030
                Affiliations
                [3] Macul Santiago orgnamePontifícia Universidad Católica de Chile orgdiv1Departamento de Estadística Chile
                [1] Toledo Paraná orgnameUniversidade Tecnológica Federal do Paraná Brazil
                [2] Cascavel Paraná orgnameUniversidade Estadual do Oeste do Paraná orgdiv1Centro de Ciências Exatas e Tecnológicas orgdiv2Programa de Pós-Graduação em Engenharia Agrícola Brazil
                Article
                S0100-06832018000100301 S0100-0683(18)04200000301
                10.1590/18069657rbcs20170030
                4f29f077-342c-405f-9a11-beaf7f04bd3b

                This work is licensed under a Creative Commons Attribution 4.0 International License.

                History
                : 31 August 2017
                : 31 January 2017
                Page count
                Figures: 0, Tables: 0, Equations: 0, References: 41, Pages: 0
                Product

                SciELO Brazil

                Categories
                Division 1 - Soil in Space and Time

                yield estimators,maximum likelihood,slash distribution,spatial variability

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