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Registro Completo |
Biblioteca(s): |
Embrapa Café. |
Data corrente: |
10/01/2023 |
Data da última atualização: |
10/01/2023 |
Tipo da produção científica: |
Artigo em Periódico Indexado |
Autoria: |
FERREIRA, F. M.; EVANGELISTA, J. S. P. C.; CHAVES, S. F. da S.; ALVES, R. S.; SILVA, D. B.; MALIKOUSKI, R. G.; RESENDE, M. D. V. de; BHERING, L. L.; SANTOS, G. A. |
Afiliação: |
FILIPE MANOEL FERREIRA, UNIVERSIDADE FEDERAL DE VIÇOSA; JENIFFER SANTANA PINTO COELHO EVANGELISTA, UNIVERSIDADE FEDERAL DE VIÇOSA; SAULO FABRÍCIO DA SILVA CHAVES, UNIVERSIDADE FEDERAL DE VIÇOSA; RODRIGO SILVA ALVES, UNIVERSIDADE FEDERAL DE LAVRAS; DANDÁRA BONFIM SILVA, UNIVERSIDADE ESTADUAL PAULISTA JULIO DE MESQUITA FILHO; RENAN GARCIA MALIKOUSKI, UNIVERSIDADE FEDERAL DE VIÇOSA; MARCOS DEON VILELA DE RESENDE, CNPCa; LEONARDO LOPES BHERING, UNIVERSIDADE FEDERAL DE VIÇOSA; GLEISON AUGUSTO SANTOS, UNIVERSIDADE FEDERAL DE VIÇOSA. |
Título: |
Multivariate bayesian analysis for genetic evaluation and selection of eucalyptus in multiple environment trials. |
Ano de publicação: |
2022 |
Fonte/Imprenta: |
Bragantia, v. 81, e2922, 2022. |
Páginas: |
11 p. |
DOI: |
https://doi.org/10.1590/1678-4499.20210347 |
Idioma: |
Inglês |
Conteúdo: |
Forest plantations are strong allies in preserving natural resources, providing social and economic benefits. The plantations carried out in the coming years will be vital to meet the growing demand for forest products. To ensure the continuity of genetic progress and the good results achieved with the improvement of forest species, statistical methods that accurately selects superior genotypes are desirable. Multi-trait multi-environment trials are preferred over single-trait single-environment trials, since they can exploit the covariance between traits and environments, increasing the analysis?s prediction power. The Bayesian multi-trait multi-environments approach (BMTME) combines the cited advantages with the parsimony of Bayesian statistics promoting a more informative data analysis. Thus, the aims of this study were to estimate genetic parameters, evaluate genetic variability, and select eucalyptus clones through BMTME models. To this end, a data set with 215 eucalyptus clones evaluated in four environments for diameter at breast height and Pilodyn penetration was used. The Markov Chain Monte Carlo algorithm was applied to estimate the variance components and genetic parameters and to predict the genotypic values. The Smith-Hazel index was used to simultaneously achieve gains with selection for both traits. The BMTME approach provided high accuracies, being a good strategy to the evaluation of multiple environmental trials of Eucalyptus for breeding purposes. |
Thesaurus Nal: |
Bayesian theory; Eucalyptus; Forest trees; Multivariate analysis; Quantitative genetics; Tree breeding. |
Categoria do assunto: |
-- |
URL: |
https://ainfo.cnptia.embrapa.br/digital/bitstream/doc/1150839/1/Multivariate-Bayesian.pdf
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Marc: |
LEADER 02429naa a2200313 a 4500 001 2150839 005 2023-01-10 008 2022 bl uuuu u00u1 u #d 024 7 $ahttps://doi.org/10.1590/1678-4499.20210347$2DOI 100 1 $aFERREIRA, F. M. 245 $aMultivariate bayesian analysis for genetic evaluation and selection of eucalyptus in multiple environment trials.$h[electronic resource] 260 $c2022 300 $a11 p. 520 $aForest plantations are strong allies in preserving natural resources, providing social and economic benefits. The plantations carried out in the coming years will be vital to meet the growing demand for forest products. To ensure the continuity of genetic progress and the good results achieved with the improvement of forest species, statistical methods that accurately selects superior genotypes are desirable. Multi-trait multi-environment trials are preferred over single-trait single-environment trials, since they can exploit the covariance between traits and environments, increasing the analysis?s prediction power. The Bayesian multi-trait multi-environments approach (BMTME) combines the cited advantages with the parsimony of Bayesian statistics promoting a more informative data analysis. Thus, the aims of this study were to estimate genetic parameters, evaluate genetic variability, and select eucalyptus clones through BMTME models. To this end, a data set with 215 eucalyptus clones evaluated in four environments for diameter at breast height and Pilodyn penetration was used. The Markov Chain Monte Carlo algorithm was applied to estimate the variance components and genetic parameters and to predict the genotypic values. The Smith-Hazel index was used to simultaneously achieve gains with selection for both traits. The BMTME approach provided high accuracies, being a good strategy to the evaluation of multiple environmental trials of Eucalyptus for breeding purposes. 650 $aBayesian theory 650 $aEucalyptus 650 $aForest trees 650 $aMultivariate analysis 650 $aQuantitative genetics 650 $aTree breeding 700 1 $aEVANGELISTA, J. S. P. C. 700 1 $aCHAVES, S. F. da S. 700 1 $aALVES, R. S. 700 1 $aSILVA, D. B. 700 1 $aMALIKOUSKI, R. G. 700 1 $aRESENDE, M. D. V. de 700 1 $aBHERING, L. L. 700 1 $aSANTOS, G. A. 773 $tBragantia$gv. 81, e2922, 2022.
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Registro original: |
Embrapa Café (CNPCa) |
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Registro Completo
Biblioteca(s): |
Embrapa Meio Ambiente. |
Data corrente: |
27/03/2013 |
Data da última atualização: |
27/03/2013 |
Tipo da produção científica: |
Artigo de Divulgação na Mídia |
Autoria: |
GONCALVES, J. R. P.; ANDRADE, C. A. de. |
Afiliação: |
JOSE RICARDO PUPO GONCALVES, CNPMA; CRISTIANO ALBERTO DE ANDRADE, CNPMA. |
Título: |
Análise foliar - qual a melhor hora de fazer? |
Ano de publicação: |
2012 |
Fonte/Imprenta: |
Revista Campo & Negócios, dez. 2012. |
Páginas: |
26-28 |
Idioma: |
Português |
Thesagro: |
Análise foliar. |
Categoria do assunto: |
P Recursos Naturais, Ciências Ambientais e da Terra |
Marc: |
LEADER 00407naa a2200145 a 4500 001 1954402 005 2013-03-27 008 2012 bl --- 0-- u #d 100 1 $aGONCALVES, J. R. P. 245 $aAnálise foliar - qual a melhor hora de fazer?$h[electronic resource] 260 $c2012 300 $a26-28 650 $aAnálise foliar 700 1 $aANDRADE, C. A. de 773 $tRevista Campo & Negócios, dez. 2012.
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