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dc.contributor.authorCabero Fayos, Ismael
dc.contributor.authorEpifanio, Irene
dc.date2020-06
dc.date.accessioned2020-10-19T07:03:54Z
dc.date.available2020-10-19T07:03:54Z
dc.identifier.issn16962281
dc.identifier.urihttps://reunir.unir.net/handle/123456789/10665
dc.description.abstractOne of the main challenges researchers face is to identify the most relevant features in a prediction model. As a consequence, many regularized methods seeking sparsity have flourished. Although sparse, their solutions may not be interpretable in the presence of spurious coefficients and correlated features. In this paper we aim to enhance interpretability in linear regression in presence of multicollinearity by: (i) forcing the sign of the estimated coefficients to be consistent with the sign of the correlations between predictors, and (ii) avoiding spurious coefficients so that only significant features are represented in the model. This will be addressed by modelling constraints and adding them to an optimization problem expressing some estimation procedure such as ordinary least squares or the lasso. The so-obtained constrained regression models will become Mixed Integer Quadratic Problems. The numerical experiments carried out on real and simulated datasets show that tightening the search space of some standard linear regression models by adding the constraints modelling (i) and/or (ii) help to improve the sparsity and interpretability of the solutions with competitive predictive quality.es_ES
dc.language.isoenges_ES
dc.publisherSORTes_ES
dc.relation.ispartofseries;vol.44, nº 1
dc.relation.urihttps://www.idescat.cat/sort/next.htmles_ES
dc.rightsopenAccesses_ES
dc.subjectlinear regressiones_ES
dc.subjectmulticollinearityes_ES
dc.subjectsparsityes_ES
dc.subjectcardinality constraintes_ES
dc.subjectmixed integer non linear programminges_ES
dc.subjectScopuses_ES
dc.subjectJCRes_ES
dc.titleFinding archetypal patterns for binary questionnaireses_ES
dc.typeArticulo Revista Indexadaes_ES
reunir.tag~ARIes_ES
dc.identifier.doihttps://doi.org/10.2436/20.8080.02.94


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