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Sistema de recomendación de películas

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dc.contributor.author Abad, C.
dc.contributor.author Kam Paw Molina, Alexis Ramón
dc.contributor.author Calva Paucar, Ligia Elena
dc.date.accessioned 2010-01-15
dc.date.available 2010-01-15
dc.date.issued 2010-01-15
dc.identifier.uri http://www.dspace.espol.edu.ec/handle/123456789/8798
dc.description.abstract This paper describes a scalable and distributed mechanism to generate recommendations for items to any user. It describes all the tools used, especially those provided by Amazon Web Services (AWS), for handling a massive amount of data, testing and final implementation of this project, which includes the use of the paradigm MapReduce through the framework Hadoop. For the generation of recommendations used a Collaborative Filtering Algorithm based on Items and the calculation of the similarity between two items was applied Pearson Correlation Coefficient. Also includes an example which measures the level of accuracy of the recommendations generated, using the method of the Sum of Weights for the calculation of predictions and the Mean Absolute Error (MAE) to evaluate the degree of similarity between the estimated scores (predictions) and the actual scores. Although the primary focus is for movie recommendations, this solution can be applied to recommendations of other items. en
dc.language.iso spa en
dc.rights openAccess
dc.subject SISTEMAS DE RECOMENDACIÓN en
dc.subject FILTRADO COLABORATIVO en
dc.subject MAPREDUCE en
dc.title Sistema de recomendación de películas en
dc.type Article en


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