Predictive model based on sentiment analysis for peruvian smes in the sustainable tourist sector

Gianpierre Zapata, Javier Murga, Carlos Raymundo, Jose Alvarez, Francisco Dominguez

Producción científica: Capítulo del libro/informe/acta de congresoContribución a la conferenciarevisión exhaustiva

8 Citas (Scopus)

Resumen

In the sustainable tourist sector today, there is a wide margin of loss in small and medium-sized enterprise (SMEs) because of a poor control in logistical expenses. In other words, acquired goods are note being sold, a scenario which is very common in tourism SMEs. These SMEs buy a number of travel packages to big companies and because of the lack of demand of said packages, they expire and they become an expense, not the investment it was meant to be. To solve this problem, we propose a Predictive model based on sentiment analysis of a social networks that will help the sales decision making. Once the data of the social network is analyzed, we also propose a prediction model of tourist destinations, using this information as data source it will be able to predict the tourist interest. In addition, a case study was applied to a real Peruvian tourist enterprise showing their data before and after using the proposed model in order to validate the feasibility of proposed model.

Idioma originalInglés
Título de la publicación alojadaIC3K 2017 - Proceedings of the 9th International Joint Conference on Knowledge Discovery, Knowledge Engineering and Knowledge Management
EditoresKecheng Liu, Ana Carolina Salgado, Jorge Bernardino, Joaquim Filipe, Joaquim Filipe
EditorialSciTePress
Páginas232-240
Número de páginas9
ISBN (versión impresa)9789897582738
DOI
EstadoPublicada - 2017
Evento9th International Joint Conference on Knowledge Discovery, Knowledge Engineering and Knowledge Management, IC3K 2017 - Funchal, Madeira, Portugal
Duración: 1 nov. 20173 nov. 2017

Serie de la publicación

NombreIC3K 2017 - Proceedings of the 9th International Joint Conference on Knowledge Discovery, Knowledge Engineering and Knowledge Management
Volumen3

Conferencia

Conferencia9th International Joint Conference on Knowledge Discovery, Knowledge Engineering and Knowledge Management, IC3K 2017
País/TerritorioPortugal
CiudadFunchal, Madeira
Período1/11/173/11/17

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