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dc.contributor.authorPham, Anh T.
dc.contributor.authorRaich, Raviv
dc.contributor.authorFern, Xiaoli Z.
dc.contributor.authorPérez Arriaga, Jesús 
dc.contributor.otherUniversidad de Cantabriaes_ES
dc.date.accessioned2016-11-15T15:35:37Z
dc.date.available2016-11-15T15:35:37Z
dc.date.issued2015
dc.identifier.issn1938-7288
dc.identifier.urihttp://hdl.handle.net/10902/9607
dc.description.abstractMulti-instance multi-label learning (MIML) is a framework for learning in the presence of label ambiguity. In MIML, experts provide labels for groups of instances (bags), instead of directly providing a label for every instance. When labeling efforts are focused on a set of target classes, instances outside this set will not be appropriately modeled. For example, ornithologists label bird audio recordings with a list of species present. Other additional sound instances, e.g., a rain drop or a moving vehicle sound, are not labeled. The challenge is due to the fact that for a given bag, the presence or absence of novel instances is latent. In this paper, this problem is addressed using a discriminative probabilistic model that accounts for novel instances. We propose an exact and efficient implementation of the maximum likelihood approach to determine the model parameters and consequently learn an instance-level classifier for all classes including the novel class. Experiments on both synthetic and real datasets illustrate the effectiveness of the proposed approach.es_ES
dc.format.extent9 p.es_ES
dc.language.isoenges_ES
dc.publisherJMLR-es_ES
dc.publisherMicrotome Publishinges_ES
dc.rights© Microtome Publishinges_ES
dc.sourceJMLR: workshop and conference proceedings, 2015, 37, 2427–2435es_ES
dc.source32nd International Conference on Machine Learning, Lille, France, 2015es_ES
dc.titleMulti-instance multi-label learning in the presence of novel class instanceses_ES
dc.typeinfo:eu-repo/semantics/conferenceObjectes_ES
dc.relation.publisherVersionhttp://www.jmlr.org/proceedings/papers/v37/pham15.htmles_ES
dc.rights.accessRightsopenAccesses_ES
dc.type.versionpublishedVersiones_ES


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