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4. | | ALTHOFF, D.; FILGUEIRAS, R.; BAZAME, H. C.; RODRIGUES, L. N. CONVENTIONAL WEATHER STATIONS: IMPROVING REFERENCE EVAPOTRANSPIRATION ESTIMATES. In: INOVAGRI INTERNATIONAL MEETING, 5.; CONGRESSO NACIONAL DE IRRIGAÇÃO E DRENAGEM, 28.; SIMPÓSIO LATINO AMERICANO DE SALINIDADE, 1., 2019, Fortaleza. Anais... Fortaleza: Instituto de Pesquisa e Inovação na Agricultura Irrigada: UFC: ABID, 2019. 9 p. Biblioteca(s): Embrapa Cerrados. |
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11. | | BRITO, R. R. de; FILGUEIRAS, R.; SANTOS, J. E. O.; LEDA, V. C.; ANDRADE JUNIOR, A. S. de; ZIMBACK, C. R. L. Índices de vegetação SAVI, NDVI e temperatura de brilho na caracterização da cobertura vegetativa do Distrito de Irrigação dos Tabuleiros Litorâneos do Piauí - DITALPI. In: SIMPÓSIO BRASILEIRO DE SENSORIAMENTO REMOTO - SBSR, 17., 2015, João Pessoa. Anais... [São José dos Campos]: INPE, 2015. Biblioteca(s): Embrapa Meio-Norte. |
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12. | | PASTORI, P. L.; FILGUEIRAS, R. M. C.; OSTER, A. H.; BARBOSA, M. G.; SILVEIRA, M. R. S. da; PAIVA, L. G. G. Postharvest quality of tomato fruits bagged with nonwoven fabric (TNT). Revista Colombiana de Ciencias Hortícolas, v. 11, n. 1, p. 80-88, 2017. Biblioteca(s): Embrapa Agroindústria Tropical. |
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13. | | COELHO, E. F.; SANTOS, D. L.; LIMA, L. W. F. de; CASTRICINI, A.; BARROS, D. L.; FILGUEIRAS, R.; CUNHA, F. F. da. Water regimes on soil covered with plastic film mulch and relationships with soil water availability, yield, and water use efficiency of papaya trees. Brazilian Journal of Agricultural and Environmental, v.26, n.8, p.594-601, 2022. Biblioteca(s): Embrapa Mandioca e Fruticultura. |
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14. | | MELO, J. W. S.; FERREIRA, D. N. M.; MENDES, J. A.; FILGUEIRAS, R. M. C.; TEODORO, A. V.; FERREIRA, J. M. S.; GUZZO, E. C.; SOUZA, I. V. de; MENDONÇA, R. S. de; CALVET, E. C.; PAZ NETO, A. A.; GONDIM JÚNIOR, M. G. C.; MORAIS, E. G. F. de; GODOY, M. S.; SANTOS, J. R. dos; SILVA, R. I. R.; SILVA, V. B. da; NORTE, R. F.; OLIVA, A. B.; SANTOS, R. D. P. dos; DOMINGOS, C. A. The invasive red palm mite, Raoiella indica Hirst (Acari: Tenuipalpidae), in Brazil: range extension and arrival into the most threatened area, the Northeast Region. International Journal of Acarology, v. 44, n. 4-5, p.146-149, 2018. Na publicação: Denise Navia; Elisangela G. F. de Morais. Biblioteca(s): Embrapa Recursos Genéticos e Biotecnologia; Embrapa Tabuleiros Costeiros. |
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Registros recuperados : 14 | |
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Registro Completo
Biblioteca(s): |
Embrapa Cerrados. |
Data corrente: |
03/12/2020 |
Data da última atualização: |
07/12/2020 |
Tipo da produção científica: |
Artigo em Periódico Indexado |
Circulação/Nível: |
A - 1 |
Autoria: |
ALTHOFF, D.; FILGUEIRAS, R.; RODRIGUES, L. N. |
Afiliação: |
LINEU NEIVA RODRIGUES, CPAC. |
Título: |
Estimating Small Reservoir Evaporation Using Machine Learning Models for the Brazilian Savannah. |
Ano de publicação: |
2020 |
Fonte/Imprenta: |
Journal of Hydrologic Engineering, v. 25, n. 8, 2020. |
Páginas: |
11 p. |
Idioma: |
Português |
Conteúdo: |
Small dams are infrastructures that regulate water supply for multiple users and play a key role in the agricultural development of the Brazilian savannah region known as the Cerrado. Evaporation is one of the major components of the hydrological cycle of small reservoirs, and should be better quantified. Studies based on machine learning techniques usually adjust models based on large datasets, which are frequently unavailable in developing countries. This study adjusted and evaluated the performance of different evaporation machine learning models that were regressed on a very small dataset and for restrictive scenarios. The performance of each model was assessed with five climatic input combinations. The performance of the random forest models was one of the better for the input combinations, and was considered to be one of the more robust machine learning techniques among those assessed for estimating evaporation from a small reservoir in the region. The Penman (benchmark) equation performed worse, as it overestimated evaporation by 14.7% on average. Strategies for improving the performance and applicability of models and overcoming data scarcity in remote areas are further discussed. |
Thesagro: |
Barragem; Cerrado; Evaporação; Modelo Matemático. |
Categoria do assunto: |
-- |
Marc: |
LEADER 01800naa a2200205 a 4500 001 2127558 005 2020-12-07 008 2020 bl uuuu u00u1 u #d 100 1 $aALTHOFF, D. 245 $aEstimating Small Reservoir Evaporation Using Machine Learning Models for the Brazilian Savannah.$h[electronic resource] 260 $c2020 300 $a11 p. 520 $aSmall dams are infrastructures that regulate water supply for multiple users and play a key role in the agricultural development of the Brazilian savannah region known as the Cerrado. Evaporation is one of the major components of the hydrological cycle of small reservoirs, and should be better quantified. Studies based on machine learning techniques usually adjust models based on large datasets, which are frequently unavailable in developing countries. This study adjusted and evaluated the performance of different evaporation machine learning models that were regressed on a very small dataset and for restrictive scenarios. The performance of each model was assessed with five climatic input combinations. The performance of the random forest models was one of the better for the input combinations, and was considered to be one of the more robust machine learning techniques among those assessed for estimating evaporation from a small reservoir in the region. The Penman (benchmark) equation performed worse, as it overestimated evaporation by 14.7% on average. Strategies for improving the performance and applicability of models and overcoming data scarcity in remote areas are further discussed. 650 $aBarragem 650 $aCerrado 650 $aEvaporação 650 $aModelo Matemático 700 1 $aFILGUEIRAS, R. 700 1 $aRODRIGUES, L. N. 773 $tJournal of Hydrologic Engineering$gv. 25, n. 8, 2020.
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