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dc.contributor.authorAguilar, Amílcar
dc.contributor.authorBarrios, Mirna
dc.contributor.authorMercado, Leida
dc.contributor.authorSuchini Ramírez, José Gabriel
dc.contributor.authory 14 autores más.
dc.date.accessioned2014-10-20T04:27:31Z
dc.date.available2014-10-20T04:27:31Z
dc.date.issued2022es_ES
dc.identifier.urihttps://repositorio.catie.ac.cr/handle/11554/4674
dc.description.abstractLocation-specific information is required to support decision making in crop variety management, especially under increasingly challenging climate conditions. Data synthesis can aggregate data from individual trials to produce information that supports decision making in plant breeding programs, extension services, and of farmers. Data from on-farm trials using the novel approach of triadic comparison of technologies (tricot) are increasingly available, from which more insights could be gained using a data synthesis approach. The objective of our study was to present the applicability of a rank-based data synthesis approach to several datasets from tricot trials to generate location-specific information supporting decision making in crop variety management. Our study focuses on tricot data from14 trials of common bean (Phaseolus vulgaris L.) performed between 2015 and 2018 across four countries in Central America (Costa Rica, El Salvador, Honduras, and Nicaragua). The combined data of 17 common bean genotypes were rank aggregated and analyzed with the Plackett– Luce model. Model-based recursive partitioning was used to assess the influence of spatially explicit environmental covariates on the performance of common bean genotypes. Location-specific performance was predicted for the three main growing seasons in Central America. We demonstrate how the rank-based data synthesis methodology allows integrating tricot trial data fromheterogenous sources to provide location-specific information to support decision making in crop variety management. Maps of genotype performance can support decision making in crop variety evaluation such as variety recommendations to farmers and variety release processeses_ES
dc.format.extent21 páginas
dc.language.isoenes_ES
dc.publisherCrop Breeding & Geneticses_ES
dc.relation.ispartofCrop Science
dc.relation.urihttps://doi.org/10.1002/csc2.20817
dc.subjectMANEJO DEL CULTIVOes_ES
dc.subjectCROP MANAGEMENTes_ES
dc.subjectDATOS DE LA INVESTIGACIÓNes_ES
dc.subjectRESEARCH DATAes_ES
dc.subjectENSAYOS DE VARIEDADESes_ES
dc.subjectVARIETY TRIALSes_ES
dc.subjectTOMA DE DECISIONESes_ES
dc.subjectDECISION MAKINGes_ES
dc.subjectAMÉRICA CENTRAL
dc.subjectTRICOT
dc.subjectDATA SYNTHESIS
dc.titleRank-based data synthesis of common bean on-farm trials across four Central American countrieses_ES
dc.typeArtículoes_ES
dcterms.rightsacceso abiertoes
dc.creator.idhttps://orcid.org/0000-0002-0012-3997
dc.identifier.statusopenAccess


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