Use este identificador para citar ou linkar para este item: http://repositorio.ufla.br/jspui/handle/1/34302
Título: Modelos não lineares: aplicação da análise bayesiana aos dados originais e isotonizados do acúmulo do nitrogênio no feijoeiro cv. Jalo
Autores: Morais, Augusto Ramalho de
Amorim, Isabel de Soua
Muniz, Joel Augusto
Silva, Alessandra Querino da
Guimarães, Paulo Henrique Sales
Palavras-chave: Regressão não linear
Modelo logístico
Curva de crescimento
Nonlinear regression
Logistic model
Growth curve
Data do documento: 17-Mai-2019
Editor: Universidade Federal de Lavras
Citação: SILVA, L. M. Modelos não lineares: aplicação da análise bayesiana aos dados originais e isotonizados do acúmulo do nitrogênio no feijoeiro cv. Jalo. 2019. 96 p. Tese (Doutorado em Estatística e Experimentação Agropecuária) – Universidade Federal de Lavras, Lavras, 2019.
Resumo: The mass accumulation data has an ordering characteristic, so the application of the isotonic transformation smoothes the data so that the efficiency of the adjustment is increased. Based on the nonlinear regression models, which allow to synthesize information in a few parameters, facilitating and aiding in the explanation of the processes involved in plant growth, logistic and Gompertz nonlinear models were used in the original and isotonized data to describe the accumulation of nitrogen of common bean cv. Jalo; using the Akaike information criterion (AIC) and adjusted coefficient of determination as measures of adjustment qualities. Estimates of maximum asymptotic weight, growth rate and inflection point were obtained, which varied according to the planting system and sowing density. The methodology on the Bayesian nonlinear modeling of growth in nitrogen accumulation allowed us to compare, through the logistic model, the types of management for both the original data and the isotonized data. Therefore, the use of isotonic regression was efficient for the reduction of experimental precision. The logistic nonlinear model presents better adjustment quality for the description of nitrogen accumulation in which its accumulation increased during the crop cycle. No-tillage presented higher nitrogen accumulation than conventional tillage. The Bayesian methodology was efficient when using data isotonia, as there was a reduction of the standard deviation of the estimates for most of the parameters, implying a decrease in the amplitude of the confidence intervals.
URI: http://repositorio.ufla.br/jspui/handle/1/34302
Aparece nas coleções:Estatística e Experimentação Agropecuária - Doutorado (Teses)

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