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2. | | ROLIM, G. de S.; SENTELHAS, P. C.; BARBIERI, V. Planilhas no ambiente Excel para os cálculos de balanços hídricos: normal, sequencial, de cultura e de produtividade real e potencial. Revista Brasileira de Agrometeorologia, Santa Maria, v. 6, n. 1, p. 133-137, 1998. Biblioteca(s): Embrapa Agricultura Digital. |
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3. | | ROLIM, G. de S.; SENTELHAS, P. C.; UNGARO, M. R. G. Análise de risco climático para a cultura de girassol, em algumas localidades de São Paulo e do Paraná, usando os modelos DSSAT/OILCROP-SUN e FAO. Revista Brasileira de Agrometeorologia, Santa Maria, v.9, n.1, p. 91-102, 2001. Biblioteca(s): Embrapa Agricultura Digital. |
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7. | | PEDRO JÚNIOR, M. J.; HERNANDES, J. L.; ROLIM, G. de S. Sistema de condução em Y com e sem cobertura plástica: microclima, produção, qualidade do cacho e ocorrência de doenças fúngicas na videira 'Niagara Rosada'. Bragantia, Campinas, v. 70, n. 1, p. 228-233, 2011. Biblioteca(s): Embrapa Uva e Vinho. |
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9. | | NOVO, M. do C. de S. S.; TRANI, P. E.; ROLIM, G. de S.; BERNACCI, L. C. Desempenho de cultivares de jiló em casa de vegetação. Bragantia, Campinas, v. 67, n, 3, p. 693-700, 2008. Biblioteca(s): Embrapa Hortaliças. |
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10. | | NUNES, F. L.; CAMARGO, M. B. P. de; FAZUOLI, L. C.; ROLIM, G. de S.; PEZZOPANE, J. R. M. Modelos agrometereológicos de estimativa da duração do estádio floração-maturação para três cultivares de café arábica. Bragantia, Campinas, v.69, n. 4, p.1011-1018, 2010. Biblioteca(s): Embrapa Pecuária Sudeste. |
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12. | | SOUZA, P. S. de; GALLO, P. B.; ROLIM, G. de S.; CAMARGO, M. B. P. de; PEZZOPANE, J. R. M. Produtividade do cafeeiro em sistema arborizado nas condições de Mococa - SP. In: SIMPÓSIO DE PESQUISA DOS CAFÉS DO BRASIL, 6., 2009, Vitória. Inovação científica, competitividade e mudanças climáticas: anais... Vitória: Consórcio Pesquisa Café, 2009. Não paginado. Biblioteca(s): Embrapa Agricultura Digital. |
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13. | | PRELA-PANTANO, A.; DUARTE, A. P.; SILVA, D. F. da; ROLIM, G. de S.; CASER, D. V. Produtividade de milho, preciptação e ocorrência de enos na região do médio Paranapanema, SP, Brasil. Revista Brasileira de Milho e Sorgo, Sete Lagoas, v. 10, n. 2, p. 146-157, 2011. Biblioteca(s): Embrapa Milho e Sorgo. |
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14. | | ROLIM, G. de S; RIBEIRO, R. V.; AZEVEDO, F. A. de; CAMARGO, M. B. P. de; MACHADO, E. C. Previsão do número de frutos a partir da quantidade de estruturas reprodutivas em laranjeiras. Revista Brasileira de Fruticultura, Jaboticabal, v. 30, n. 1, p. 48-53, mar. 2008. Biblioteca(s): Embrapa Mandioca e Fruticultura. |
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15. | | MEIRELES, E. J. L.; CAMARGO, M. B P. de; ROLIM, G. de S.; FAHL, J. I.; THOMAZIELLO, R. A.; VOLPATO, M. M. L. Condições agrometeorológicas e fenológicas do cafeeiro arábica em Guaxupé, MG, no ano agrícola 2007-2008. In: SIMPÓSIO DE PESQUISA DOS CAFÉS DO BRASIL, 6., 2009, Vitória. Inovação científica, competitividade e mudanças climáticas: anais... Vitória: Consórcio Pesquisa Café, 2009. Biblioteca(s): Embrapa Café; Embrapa Unidades Centrais. |
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16. | | APARECIDO, L. E. de O.; MORAES, J. R. da S. C. de; ROLIM, G. de S.; MARTORANO, L. G.; MENESES, K. C. de; VALERIANO, T. T. B. Neural networks in climate spatialization and their application in the agricultural zoning of climate risk for sunflower in different sowing dates. Archives of Agronomy and Soil Science, v. 65, n. 11, p. 1477-1492, 2019. Biblioteca(s): Embrapa Amazônia Oriental. |
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17. | | PERUZZI, N. J.; MEYER, A. da S.; ROLIM, G. de S.; NATALE, W.; SOUZA, H. A. de; GABRIEL FILHO, L. R. A.; ROZANE, D. E.; CHAVARETTE, F. R. Modelagem fuzzy para previsão da produtividade de goiabeira 'Paluma' em sistema agroindustrial em função da época de poda e do estado nutricional. In: CONGRESSO BRASILEIRO DE SISTEMAS FUZZY, 2., 2012, Natal. Recentes avancos em sistemas "Fuzzy". Natal: Sociedade Brasileira de Matematica Aplicada e Computacional, 2012. p. 735-744. Biblioteca(s): Embrapa Caprinos e Ovinos. |
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18. | | MORAES, J. R. da S. C.; MARTORANO, L. G.; BARBOSA, A. M. da S.; APARECIDO, L. E. de O.; ROLIM, G. de S. Performance do modelo ECMWF nas estimações de chuva e temperatura do ar no município de Belterra, Pará. In: SEMINÁRIO DE PESQUISA DA FLORESTA NACIONAL DO TAPAJÓS, 3.; SEMINÁRIO DE PESQUISA DA RESERVA EXTRATIVISTA TAPAJÓS ARAPIUNS, 1., 2017, Santarém. Anais... Santarém: Instituto Chico Mendes de Conservação da Biodiversidade: ICMBio, 2018. p. 171. Biblioteca(s): Embrapa Amazônia Oriental. |
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19. | | MORAES, J. R. da S. C. de; ROLIM, G. de S.; MARTORANO, L. G.; APARECIDO, L. E. de O.; OLIVEIRA, M. do S. P. de; FARIAS NETO, J. T. de. Agrometeorological models to forecast açaí (Euterpe oleracea Mart.) yield in the Eastern Amazon. Journal of the Science of Food and Agriculture, v. 100, n. 4, p. 1558-1569, Mar. 2020. Biblioteca(s): Embrapa Amazônia Oriental. |
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20. | | MORAES, J. R. da S. C. de; ROLIM, G. de S.; MARTORANO, L. G.; APARECIDO, L. E. de O.; BISPO, R. C.; VALERIANO, T. T. B.; ESTEVES, J. T. Performance of the ECMWF in air temperature and precipitation estimates in the Brazilian Amazon. Theoretical and Applied Climatology, v. 141, p. 803-816, 2020. Biblioteca(s): Embrapa Amazônia Oriental. |
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Registros recuperados : 22 | |
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Registro Completo
Biblioteca(s): |
Embrapa Acre; Embrapa Amazônia Oriental. |
Data corrente: |
31/10/2018 |
Data da última atualização: |
10/01/2019 |
Tipo da produção científica: |
Artigo em Periódico Indexado |
Circulação/Nível: |
A - 1 |
Autoria: |
APARECIDO, L. E. de O.; MORAES, J. R. da S. C. de; ROLIM, G. de S.; MARTORANO, L. G.; SOARES, S. dos S.; MENESES, K. C. de; COSTA, C. T. S.; MESQUITA, D. Z.; BARBOSA, A. M. da S.; AMARAL, E. F. do; BARDALES, N. G. |
Afiliação: |
Lucas Eduardo de Oliveira Aparecido, Federal Institute of Education, Science and Technology of Mato Grosso do Sul; José Reinaldo da Silva Cabral de Moraes, Federal Institute of Education, Science and Technology of Mato Grosso do Sul; Glauco de Souza Rolim, São Paulo State University; LUCIETA GUERREIRO MARTORANO, CPATU; Sabrina dos Santos Soares, Federal Institute of Education, Science and Technology of Mato Grosso do Sul; Kamila Cunha de Meneses, São Paulo State University; Cicero Teixeira Silva Costa, Federal Institute of Education, Science and Technology of Mato Grosso do Sul; Daniel Zimmermann Mesquita, Federal Institute of Education, Science and Technology of Mato Grosso do Sul; Aline Michelle da Silva Barbosa, São Paulo State University; EUFRAN FERREIRA DO AMARAL, CPAF-AC; Nilson Gomes Bardales, EMBRAPA. |
Título: |
Neural networks in spatialization of meteorological elements and their application in the climatic agricultural zoning of bamboo. |
Ano de publicação: |
2018 |
Fonte/Imprenta: |
International Journal of Biometeorology, v. 62, n. 11, p. 1955-1962, Nov. 2018. |
DOI: |
10.1007/s00484-018-1596-1 |
Idioma: |
Inglês |
Conteúdo: |
Bamboo has an important role in international commerce due to its diverse uses, but fewstudies have been conducted to evaluate its climatic adaptability. Thus, the objective of this study was to construct an agricultural zoning for climate risk (ZARC) for bamboo usingmeteorological elements spatialized byneural networks.Climatedata includedair temperature (TAIR, °C) and rainfall (P) from 4947 meteorological stations in Brazil from the years 1950 to 2016. Regions were considered climatically apt for bamboo cultivation when TAIR varied between 18 and 35 °C, and P was between 500 and 2800 mm year−1, or PWINTER was between 90 and 180 mm year−1. The remainder of the areas was considered marginal or inapt for bamboo cultivation. A multilayer perceptron (MLP) neural network with amultilayered Bbackpropagation^ training algorithmwas used to spatialize the territorial variability of eachclimatic element for thewhole area ofBrazil.Usingtheoverlappingof theTAIR,P, andPWINTERmaps preparedbyMLP, and the established climatic criteria of bamboo, we established the agricultural zoning for bamboo. Brazil demonstrates high seasonal climatic variabilitywith TAIR varying between 14 and 30°C, andPvarying between< 400 and 4000mmyear−1.TheZARCshowed that 87%of Brazil is climatically apt for bamboo cultivation. The states that were classified as apt in 100% of their territories were Mato Grosso do Sul, Goiás, Tocantins, Rio de Janeiro, Espírito Santo, Sergipe, Alagoas, Ceará, Piauí, Maranhão, Rondônia, and Acre. The regions that have restrictions due to lowTAIR represent just 11% of Brazilian territory. This agroclimatic zoning allowed for the classification of regions based on aptitude of climate for bamboo cultivation and showed that 71% of the total national territory is considered to be apt for bamboo cultivation. The regions that have restrictions are part of southern Brazil due to low values of TAIR and portions of the northern region that have high levels of P which is favorable for the development of diseases. MenosBamboo has an important role in international commerce due to its diverse uses, but fewstudies have been conducted to evaluate its climatic adaptability. Thus, the objective of this study was to construct an agricultural zoning for climate risk (ZARC) for bamboo usingmeteorological elements spatialized byneural networks.Climatedata includedair temperature (TAIR, °C) and rainfall (P) from 4947 meteorological stations in Brazil from the years 1950 to 2016. Regions were considered climatically apt for bamboo cultivation when TAIR varied between 18 and 35 °C, and P was between 500 and 2800 mm year−1, or PWINTER was between 90 and 180 mm year−1. The remainder of the areas was considered marginal or inapt for bamboo cultivation. A multilayer perceptron (MLP) neural network with amultilayered Bbackpropagation^ training algorithmwas used to spatialize the territorial variability of eachclimatic element for thewhole area ofBrazil.Usingtheoverlappingof theTAIR,P, andPWINTERmaps preparedbyMLP, and the established climatic criteria of bamboo, we established the agricultural zoning for bamboo. Brazil demonstrates high seasonal climatic variabilitywith TAIR varying between 14 and 30°C, andPvarying between< 400 and 4000mmyear−1.TheZARCshowed that 87%of Brazil is climatically apt for bamboo cultivation. The states that were classified as apt in 100% of their territories were Mato Grosso do Sul, Goiás, Tocantins, Rio de Janeiro, Espírito Santo, Sergipe, Alagoas, Ceará, Piau... Mostrar Tudo |
Palavras-Chave: |
Aclimatación; Climate risk; Crop zoning; Modeling; Multilayer perceptron; Redes neuronales; Training algorithm; Zonificación agrícola. |
Thesagro: |
Aclimatação; Bambu; Bambusa Vulgaris; Climatologia; Modelo Matemático; Risco Climático; Zoneamento Agrícola. |
Thesaurus NAL: |
Acclimation; Agricultural zoning; Bamboos; Climatology; Mathematical models; Neural networks. |
Categoria do assunto: |
P Recursos Naturais, Ciências Ambientais e da Terra |
Marc: |
LEADER 03571naa a2200505 a 4500 001 2098629 005 2019-01-10 008 2018 bl uuuu u00u1 u #d 024 7 $a10.1007/s00484-018-1596-1$2DOI 100 1 $aAPARECIDO, L. E. de O. 245 $aNeural networks in spatialization of meteorological elements and their application in the climatic agricultural zoning of bamboo.$h[electronic resource] 260 $c2018 520 $aBamboo has an important role in international commerce due to its diverse uses, but fewstudies have been conducted to evaluate its climatic adaptability. Thus, the objective of this study was to construct an agricultural zoning for climate risk (ZARC) for bamboo usingmeteorological elements spatialized byneural networks.Climatedata includedair temperature (TAIR, °C) and rainfall (P) from 4947 meteorological stations in Brazil from the years 1950 to 2016. Regions were considered climatically apt for bamboo cultivation when TAIR varied between 18 and 35 °C, and P was between 500 and 2800 mm year−1, or PWINTER was between 90 and 180 mm year−1. The remainder of the areas was considered marginal or inapt for bamboo cultivation. A multilayer perceptron (MLP) neural network with amultilayered Bbackpropagation^ training algorithmwas used to spatialize the territorial variability of eachclimatic element for thewhole area ofBrazil.Usingtheoverlappingof theTAIR,P, andPWINTERmaps preparedbyMLP, and the established climatic criteria of bamboo, we established the agricultural zoning for bamboo. Brazil demonstrates high seasonal climatic variabilitywith TAIR varying between 14 and 30°C, andPvarying between< 400 and 4000mmyear−1.TheZARCshowed that 87%of Brazil is climatically apt for bamboo cultivation. The states that were classified as apt in 100% of their territories were Mato Grosso do Sul, Goiás, Tocantins, Rio de Janeiro, Espírito Santo, Sergipe, Alagoas, Ceará, Piauí, Maranhão, Rondônia, and Acre. The regions that have restrictions due to lowTAIR represent just 11% of Brazilian territory. This agroclimatic zoning allowed for the classification of regions based on aptitude of climate for bamboo cultivation and showed that 71% of the total national territory is considered to be apt for bamboo cultivation. The regions that have restrictions are part of southern Brazil due to low values of TAIR and portions of the northern region that have high levels of P which is favorable for the development of diseases. 650 $aAcclimation 650 $aAgricultural zoning 650 $aBamboos 650 $aClimatology 650 $aMathematical models 650 $aNeural networks 650 $aAclimatação 650 $aBambu 650 $aBambusa Vulgaris 650 $aClimatologia 650 $aModelo Matemático 650 $aRisco Climático 650 $aZoneamento Agrícola 653 $aAclimatación 653 $aClimate risk 653 $aCrop zoning 653 $aModeling 653 $aMultilayer perceptron 653 $aRedes neuronales 653 $aTraining algorithm 653 $aZonificación agrícola 700 1 $aMORAES, J. R. da S. C. de 700 1 $aROLIM, G. de S. 700 1 $aMARTORANO, L. G. 700 1 $aSOARES, S. dos S. 700 1 $aMENESES, K. C. de 700 1 $aCOSTA, C. T. S. 700 1 $aMESQUITA, D. Z. 700 1 $aBARBOSA, A. M. da S. 700 1 $aAMARAL, E. F. do 700 1 $aBARDALES, N. G. 773 $tInternational Journal of Biometeorology$gv. 62, n. 11, p. 1955-1962, Nov. 2018.
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