Overview of Joint Regression Analysis

dc.contributor.authorPereira, Dulce
dc.date.accessioned2008-06-03T11:59:48Z
dc.date.available2008-06-03T11:59:48Z
dc.date.issued2007-07
dc.description.abstractJoint Regression Analysis (JRA) has been widely used to compare cultivars. In this technique a linear regression is adjusted per cultivar. The slope of each regression measures the ability of the corresponding cultivar to answer to variations in productivity. Presently we are manly interested in cultivars with better responses to high productivity. To extend the application range of JRA to connected series of designs in incomplete blocks, thus going beyond the classic case of series of randomized blocks, we introduced the L2 environmental indexes. Nowadays, comparison trials for cultivars are mainly ®-designs, which have in- complete blocks. Moreover, the introduction of these indexes: enables the inte- gration of JRA into the statistical inference for normal models; allows a better approach to the study of speci¯c interactions. These interactions occur when a cultivar behaves abnormally well or abnormally badly, for a (location , year) pair. We will also, use JRA to obtain and update of lists of recommended cultivars. Appropriate algorithms have been developed for the adjustments: the zig zag algorithm and the double minimization algorithm.en
dc.format.extent135298 bytes
dc.format.mimetypeapplication/pdf
dc.identifier.accesstyperestrito_ueen
dc.identifier.authoremaildgsp@uevora.pt
dc.identifier.capituloOverview of Joint Regression Analysisen
dc.identifier.edicaoProceedings of the 22nd International Workshop on Statistical Modellingen
dc.identifier.isbn978-84-690-5943-2en
dc.identifier.locationBarcelonaen
dc.identifier.numpag4 pagen
dc.identifier.sharewithEste registo é para ser partilhado na comunidade CIMA-UE.en
dc.identifier.urihttp://hdl.handle.net/10174/1210
dc.identifier.volume1en
dc.language.isoeng
dc.publisherInstitut d'Estadística de Catalunya, IDESCATen
dc.rightsrestrictedAccessen
dc.subjectJoint Regression Analysisen
dc.subjectLinear regressionsen
dc.subjectL2 environmental indexesen
dc.subjectDouble minimizationen
dc.subjectZig-zag algorithmen
dc.titleOverview of Joint Regression Analysisen
dc.typebookParten

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