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Recomendaciones con filtrado colaborativo basado en usuarío y en ítem aplicando el paradigma map-reduce

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dc.contributor.author Macias, Mervyn
dc.contributor.author De La Rosa, Freddy
dc.contributor.author Abad, Cristina
dc.date.accessioned 2009-10-19
dc.date.available 2009-10-19
dc.date.issued 2009-10-19
dc.identifier.uri http://www.dspace.espol.edu.ec/handle/123456789/7756
dc.description.abstract A system of recommendations is a specific type of filter of information that helps the user to select such articles of his (her, your) interest as movies, musical, web pages, magazines, books, etc. Nowadays, the web sites that give these services need that the great quantity of information got for all the implicit or explicit actions of million users on million articles, is tried in a rapid way and with the minor possible infrastructure, this in order to obtain rapid and better indexes of useful preferences and to minor cost The Present work has as aim to present two alternatives of processing recommendation of musical articles based on the implicit preferences of the users and using a model of massive and scalable programming inside Hadoop's framework as a system of the execution of tasks in parallel and tolerantly to failures. en
dc.language.iso spa en
dc.rights openAccess
dc.subject FILTRADO COLABORATIVO en
dc.subject SISTEMA DE ARCHIVOS DISTRIBUIDOS HADOOP (HDFS) en
dc.subject MAHOUT en
dc.subject COEFICIENTE CORRELACIÓN DE PEARSON. en
dc.title Recomendaciones con filtrado colaborativo basado en usuarío y en ítem aplicando el paradigma map-reduce en
dc.type Article en


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