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Biblioteca (s) :  INIA Tacuarembó.
Fecha :  02/12/2019
Actualizado :  02/12/2019
Tipo de producción científica :  Abstracts/Resúmenes
Autor :  MEDEIROS, W.; PUPIN, S.; TORRES, D.; PAVAN, B.E.; FERRAUDO, A.S.; DE MORAES, M.L.T.; DE PAULA, R.C.
Afiliación :  WILLIAM MEDEIROS; SILVELISE PUPIN; DIEGO GABRIEL TORRES DINI, INIA (Instituto Nacional de Investigación Agropecuaria), Uruguay; BRUNO ETTORE PAVAN; ANTONIO SÉRGIO FERRAUDO; MARIO LUIZ TEIXEIRA DE MORAES; RINALDO CESAR DE PAULA.
Título :  Artificial neural networks for predicting the genetic value of Eucalyptus progenies.
Fecha de publicación :  2019
Fuente / Imprenta :  In: Pesquisa florestal brasileira = Brazilian journal of forestry research., v. 39, e201902043, Special issue, 2019. Colombo : Embrapa Florestas, 2019. Congreso IUFRO, 25., Curitiba, Brasil, 29 setiembre-05 octubre, 2019. Abstracts.
Páginas :  p. 187-188
Idioma :  Inglés
Contenido :  The main goal of researchers in genetic breeding programs is to select superior genotypes and recommend varieties through effective selection methods. Thus, the objective of this study was to evaluate the performance of Artificial Neural Networks (ANN) in predicting genetic values for progeny selection of Eucalyptus sp. For the training of ANN, 64 experiments were simulated that varied among means (5, 10, 15 and 20), heritability (10, 20, 30 and 40%) and coefficient of variation (10, 20, 30 and 40%). For validation of ANN, data from a progeny test of Eucalyptus camaldulensis was used. The genetic values of both the simulated and progeny data were obtained by the REML / BLUP procedure. The ANN used was a multiple layer type with three inputs (phenotype value, block means, and progeny mean), a hidden layer containing four neurons and one exit layer. The algorithm used was backpropagation. The correlation between genetic values predicted by the BLUP methodology and those obtained by ANN was 99% in the training phase and 91% in the validation stage. The good performance of ANN in the validation stage reflected in the correlation of the ordering of individuals (92%) and families (99%) of E. camaldulensis by the two methods. Thus, multiple layer ANN showed good performance in predicting genetic values in progeny tests of Eucalyptus sp. for DBH which are promising tools for selection of progenies in forest breeding programs.
Palabras claves :  EUCALYPTS.
Asunto categoría :  K10 Producción forestal
Marc :  Presentar Marc Completo
Registro original :  INIA Tacuarembó (TBO)
Biblioteca Identificación Origen Tipo / Formato Clasificación Cutter Registro Volumen Estado
TBO103112 - 1PXIPC - DD

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1.Imagen marcada / sin marcar LEADLEY, P.; GONZALEZ, A.; OBURA, D.; KRUG, C.B.; LONDOÑO-MURCIA, M.C.; MILLETTE, K.L.; RADULOVICI, A.; RANKOVIC, A.; SHANNON, L.J.; ARCHER, E.; ATO ARMAH, F.; NIC BAX, N,; CHAUDHARI, K.; COSTELLO, M.J.; DÁVALOS, L.M.; ROQUE, F DE O; DECLERCK, F.; DEE, L.E.; ESSL, F.; FERRIER, S.; GENOVESI, P.; GUARIGUATA, M.R.; HASHIMOTO, S.; IFEJIKA SPERANZA, CH.; ISBELL, F.; KOK, M.; LAVERY, S.D.; LECLÈRE, D.; LOYOLA, R.; LWASA, S.; MCGEOCH, M.; MORI, A.S.; NICHOLSON, E.; OCHOA, J.M.; ÖLLERER, K.; POLASKY, S.; RONDININI, C.; SCHROER, S.; SELOMANE, O.; SHEN, X.; STRASSBURG, B.; RASHID SUMAILA, U.; TITTENSOR, D.P.; TURAK, E.; URBINA, L.; VALLEJOS, M.; VÁZQUEZ-DOMÍNGUEZ, E.; VERBURG, P.H.; VISCONTI, P.; WOODLEY, S.; XU, J. Achieving global biodiversity goals by 2050 requires urgent and integrated actions. One Earth, 2022, Volume 5, Issue 6, Pages 597-603. doi: https://doi.org/10.1016/j.oneear.2022.05.009 Artticle history: Available online 17 June 2022, Version of Record 17 June 2022.
Tipo: Artículos en Revistas Indexadas InternacionalesCirculación / Nivel : Internacional - --
Biblioteca(s): INIA La Estanzuela.
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