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dc.contributor.advisorBarreiro García, Álvaro
dc.contributor.authorParapar, Javier
dc.contributor.otherUniversidade da Coruña. Departamento de Computaciónes_ES
dc.date.accessioned2013-09-23T11:03:55Z
dc.date.available2013-09-23T11:03:55Z
dc.date.issued2013
dc.identifier.urihttp://hdl.handle.net/2183/10332
dc.description.abstract[Abstratc] Relevance-Based Language Models introduced in the Language Modelling framework the concept of relevance, which is explicit in other retrieval models such as the Probabilistic models. Relevance Models have been mainly used for a specific task within Information Retrieval called Pseudo-Relevance Feedback, a kind of local query expansion technique where relevance is assumed over a top of documents from the initial retrieval and where those documents are used to select expansion terms for the original query and produce a, hopefully more effective, second retrieval. In this thesis we investigate some new estimations for Relevance Models for both Pseudo-Relevance Feedback and other tasks beyond retrieval, particularly, constrained text clustering and item recommendation in Recommender Systems. We study the benefits of our proposals for those tasks in comparison with existing estimations. This new modellings are able not only to improve the effectiveness of the existing estimations and methods but also to outperform their robustness, a critical factor when dealing with Pseudo-Relevance Feedback methods. These objectives are pursued by different means: promoting divergent terms in the estimation of the Relevance Models, presenting new cluster-based retrieval models, introducing new methods for automatically determine the size of the pseudo-relevant set on a query-basis, and originally producing new modellings under the Relevance-Based Language Modelling framework for the constrained text clustering and the item recommendation problems.es_ES
dc.language.isoenges_ES
dc.rightsOs titulares dos dereitos de propiedade intelectual autorizan a visualización do contido desta tese a través de Internet, así como a súa reproducción, gravación en soporte informático ou impresión para o seu uso privado e/ou con fins de estudo e de investigación. En nengún caso se permite o uso lucrativo deste documento. Estos dereitos afectan tanto ó resumo da tese como o seu contido Los titulares de los derechos de propiedad intelectual autorizan la visualización del contenido de esta tesis a través de Internet, así como su repoducción, grabación en soporte informático o impresión para su uso privado o con fines de investigación. En ningún caso se permite el uso lucrativo de este documento. Estos derechos afectan tanto al resumen de la tesis como a su contenidoes_ES
dc.subjectLingüística informáticaes_ES
dc.subjectRecuperación de la informaciónes_ES
dc.titleRelevance-based language models : new estimations and applicationses_ES
dc.typeinfo:eu-repo/semantics/doctoralThesises_ES
dc.rights.accessinfo:eu-repo/semantics/openAccesses_ES


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