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<field name="value">Rodríguez Diez, Juan José</field>
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<field name="orcid_id">0000-0002-3291-2739</field>
<field name="value">Juez Gil, Mario</field>
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<field name="confidence">500</field>
<field name="orcid_id">0000-0002-2510-6421</field>
<field name="value">López Nozal, Carlos</field>
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<field name="orcid_id">0000-0001-8462-212X</field>
<field name="value">Arnaiz González, Álvar</field>
<field name="authority">39</field>
<field name="orcid_id">0000-0001-6965-0237</field>
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<field name="value">2022-05-11T11:19:35Z</field>
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<field name="value">2022-02</field>
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<field name="value">1868-8071</field>
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<field name="value">10.1007/s13042-021-01329-1</field>
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<field name="value">The prediction of multiple numeric outputs at the same time is called multi-target regression (MTR), and it has gained&#xd;
attention during the last decades. This task is a challenging research topic in supervised learning because it poses additional&#xd;
difficulties to traditional single-target regression (STR), and many real-world problems involve the prediction of multiple&#xd;
targets at once. One of the most successful approaches to deal with MTR, although not the only one, consists in transforming&#xd;
the problem in several STR problems, whose outputs will be combined building up the MTR output. In this paper, the&#xd;
Rotation Forest ensemble method, previously proposed for single-label classification and single-target regression, is adapted&#xd;
to MTR tasks and tested with several regressors and data sets. Our proposal rotates the input space in an efficient and novel&#xd;
fashion, avoiding extra rotations forced by MTR problem decomposition. Four approaches for MTR are used: single-target&#xd;
(ST), stacked-single target (SST), Ensembles of Regressor Chains (ERC), and Multi-target Regression via Quantization&#xd;
(MRQ). For assessing the benefits of the proposal, a thorough experimentation with 28 MTR data sets and statistical tests&#xd;
are used, concluding that Rotation Forest, adapted by means of these approaches, outperforms other popular ensembles,&#xd;
such as Bagging and Random Forest.</field>
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<field name="value">Ministerio de Economía y Competitividad of the Spanish Government under project TIN2015-67534-P (MINECO-FEDER, UE), by the Junta de Castilla y León under project BU085P17 (JCyL/FEDER, UE) (both projects co-financed through European Union FEDER funds), and by the Consejería de Educación of the Junta de Castilla y León and the European Social Fund with the EDU/1100/2017 pre-doctoral grant.</field>
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<field name="value">eng</field>
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<field name="value">International Journal of Machine Learning and Cybernetics. 2022, V. 13, n. 2, p. 523-548</field>
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<field name="value">Rotation Forest</field>
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<field name="value">Rotation Forest for multi-target regression</field>
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<field name="value">13</field>
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