Use of collaborative filters to recommend information in a chatbot system: Tecnologico de Monterrey Admissions Chatbot

dc.audience.educationlevelPúblico en general/General publices_MX
dc.contributor.advisorCeballos Cancino, Héctor Gibrán
dc.contributor.authorVázquez Cetina, Emmanuel
dc.contributor.catalogerpuelquio, emipsanchezes_MX
dc.contributor.committeememberHernández Gress, Neil
dc.contributor.committeememberGarza Villarreal, Sara Elena
dc.contributor.departmentEscuela de Ingeniería y Cienciases_MX
dc.contributor.institutionCampus Monterreyes_MX
dc.contributor.mentorAlvarado Uribe, Joanna
dc.date.accepted2021-06-16
dc.date.accessioned2022-09-01T00:27:15Z
dc.date.available2022-09-01T00:27:15Z
dc.date.created2019
dc.date.embargoenddate2022-06-16
dc.date.issued2021-06
dc.description.abstractOne of the main objectives of companies is to provide customers with a good customer service experience, so that customers are satisfied. Therefore, with the emergence of natural language processing techniques, companies are looking for automated solutions that provide quality services to customers. This is possible thanks to chatbots, which are helpful because they are permanently available and respond immediately. Additionally, with the use of recommendation systems, suggestions can be provided to the user, allowing a better conversation flow and reducing the response time. This research main objective is the development of a recommendation system for a conversational chatbot of online customer service of the ITESM admission department to suggest the following question to the user. In this project, a framework for a hybrid recommendation system is proposed, considering the user connection variables in each conversation, as user features, and applying an (Latent Dirichlet Allocation) LDA in the set of options provided by the chatbot to capture the context of the conversation as item features. In state-of-the-art, a problem similar to ours was found; this consists of recommending the following question that a user of the StackExchange platform can answer, using user characteristics and question labels to create different models. The results found that using a LightFM model, a maximum precision of 0.750 was obtained. In contrast, with our data set, a maximum precision of 0.787 is obtained, indicating that this model works well in our problem.es_MX
dc.description.degreeMaestro en Ciencias de la Computaciónes_MX
dc.format.mediumTextoes_MX
dc.identificator7||33||3399||339999es_MX
dc.identifier.citationVázquez Cetina, E. (2021). Use of collaborative filters to recommend information in a chatbot system: Tecnologico de Monterrey Admissions Chatbot. Instituto Tecnológico y de Estudios Superiores de Monterrey.es_MX
dc.identifier.cvu1013230es_MX
dc.identifier.orcidhttps://orcid.org/0000-0002-7710-6116es_MX
dc.identifier.urihttps://hdl.handle.net/11285/648779
dc.language.isoenges_MX
dc.publisherInstituto Tecnológico y de Estudios Superiores de Monterreyes_MX
dc.relation.isFormatOfdraftes_MX
dc.rightsembargoedAccesses_MX
dc.rights.embargoreasonPeriodo predeterminado para revisión de contenido susceptible de protección, patente o comercialización.es_MX
dc.rights.urihttp://creativecommons.org/licenses/by-nc-nd/4.0es_MX
dc.subject.classificationINGENIERÍA Y TECNOLOGÍA::CIENCIAS TECNOLÓGICAS::OTRAS ESPECIALIDADES TECNOLÓGICAS::OTRASes_MX
dc.subject.keywordRecommendation Systemses_MX
dc.subject.keywordChatbotes_MX
dc.subject.keywordLightFMes_MX
dc.subject.lcshTechnologyes_MX
dc.titleUse of collaborative filters to recommend information in a chatbot system: Tecnologico de Monterrey Admissions Chatbotes_MX
dc.typeTesis de maestría

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