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dc.contributor.author Francklin de Souza Congio, Guilhermo
dc.contributor.author Bannink, André
dc.contributor.author Mayorga, Olga L.
dc.contributor.author Rodrigues, Joao P.P.
dc.contributor.author Bougouin, Adeline
dc.contributor.author Kebreab, Ermias
dc.contributor.author Silva, Ricardo R.
dc.contributor.author Mauricío, Rogeiro M.
dc.contributor.author da Silva, Sila C.
dc.contributor.author Oliveira, Patricia P.A.
dc.contributor.author Muñoz, Camila
dc.contributor.author Pereira, Luiz G.R.
dc.contributor.author Gómez, Carlos
dc.contributor.author Ariza-Nieto, Claudia
dc.contributor.author Ribeiro-Filho, Henrique M.N.
dc.contributor.author Castelán Ortega, Octavio Alonso
dc.contributor.author Rosero-Noguera, Jaime R.
dc.contributor.author Tieri, Maria
dc.date.accessioned 2023-02-02T04:45:03Z
dc.date.available 2023-02-02T04:45:03Z
dc.date.issued 2022-06-15
dc.identifier.issn 0048-9697
dc.identifier.uri http://hdl.handle.net/20.500.11799/137695
dc.description Este documento representa un esfuerzo internacional para desarrollar modelos matemáticos de predicción para calcular las emisiones de metano por el ganado bovino productor de leche en América Latina. es
dc.description.abstract Successful mitigation efforts entail accurate estimation of on-farm emission and prediction models can be an alternative to current laborious and costly in vivo CH4 measurement techniques. This study aimed to: (1) collate a database of individual dairy cattle CH4 emission data from studies conducted in the Latin America and Caribbean (LAC) region; (2) identify key variables for predicting CH4 production (g d−1) and yield [g kg−1 of dry matter intake (DMI)]; (3) develop and cross-validate these newly-developed models; and (4) compare models' predictive ability with equations currently used to support national greenhouse gas (GHG) inventories. A total of 42 studies including 1327 individual dairy cattle records were collated. After removing outliers, the final database retained 34 studies and 610 animal records. Production and yield of CH4 were predicted by fitting mixed-effects models with a random effect of study. Evaluation of developed models and fourteen extant equations was assessed on all-data, confined, and grazing cows subsets. Feed intake was the most important predictor of CH4 production. Our best-developed CH4 production models outperformed Tier 2 equations from the Intergovernmental Panel on Climate Change (IPCC) in the all-data and grazing subsets, whereas they had similar performance for confined animals. Developed CH4 production models that include milk yield can be accurate and useful when feed intake is missing. Some extant equations had similar predictive performance to our best-developed models and can be an option for predicting CH4 production from LAC dairy cows. Extant equations were not accurate in predicting CH4 yield. The use of the newly-developed models rather than extant equations based on energy conversion factors, as applied by the IPCC, can substantially improve the accuracy of GHG inventories in LAC countries. es
dc.description.sponsorship CONACYT CB2013-22418-T UAEM 3944/2015E es
dc.language.iso eng es
dc.publisher Elsevier es
dc.rights restrictedAccess es
dc.rights.uri http://creativecommons.org/licenses/by-nc-nd/4.0 es
dc.subject Diet es
dc.subject Empirical modeling es
dc.subject Enteric methane es
dc.subject GHG inventory es
dc.subject Prediction equations es
dc.subject.classification CIENCIAS AGROPECUARIAS Y BIOTECNOLOGÍA es
dc.title Prediction of enteric methane production and yield in dairy cattle using a Latin America and Caribbean database es
dc.type Artículo es
dc.provenance Científica es
dc.road Dorada es
dc.organismo Medicina Veterinaria y Zootecnia es
dc.ambito Internacional es
dc.cve.CenCos 21401 es
dc.relation.vol 825


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  • Título
  • Prediction of enteric methane production and yield in dairy cattle using a Latin America and Caribbean database
  • Autor
  • Francklin de Souza Congio, Guilhermo
  • Bannink, André
  • Mayorga, Olga L.
  • Rodrigues, Joao P.P.
  • Bougouin, Adeline
  • Kebreab, Ermias
  • Silva, Ricardo R.
  • Mauricío, Rogeiro M.
  • da Silva, Sila C.
  • Oliveira, Patricia P.A.
  • Muñoz, Camila
  • Pereira, Luiz G.R.
  • Gómez, Carlos
  • Ariza-Nieto, Claudia
  • Ribeiro-Filho, Henrique M.N.
  • Castelán Ortega, Octavio Alonso
  • Rosero-Noguera, Jaime R.
  • Tieri, Maria
  • Fecha de publicación
  • 2022-06-15
  • Editor
  • Elsevier
  • Tipo de documento
  • Artículo
  • Palabras clave
  • Diet
  • Empirical modeling
  • Enteric methane
  • GHG inventory
  • Prediction equations
  • Los documentos depositados en el Repositorio Institucional de la Universidad Autónoma del Estado de México se encuentran a disposición en Acceso Abierto bajo la licencia Creative Commons: Atribución-NoComercial-SinDerivar 4.0 Internacional (CC BY-NC-ND 4.0)

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