Please use this identifier to cite or link to this item: http://hdl.handle.net/10071/25443
Author(s): Camacho, P.
Almeida, A. de.
António, N.
Editor: Carvalho, J. V. de., Rocha, Á., Liberato, P., and Peña, A.
Date: 2020
Title: Using customer segmentation to build a hybrid recommendation model
Volume: 208
Pages: 299 - 308
Event title: International Conference on Tourism, Technology and Systems, ICOTTS 2020
ISSN: 2190-3018
ISBN: 978-981-33-4256-9
DOI (Digital Object Identifier): 10.1007/978-981-33-4256-9_27
Keywords: Hospitality
Transfers
Customer segmentation
Recommendation system
Abstract: The growing trend in leisure tourism has been closely followed by the number of hospitality services. Nowadays, customers are more sophisticated and demand a personalized and simplified experience, which is commonly achieved through the use of technological means for anticipating customer behavior. Thus, the ability to predict a customer’s willingness to buy is also a growing trend in hospitality businesses to reach more customers and consolidate existing ones. The acquisition of a transfer service through website reservation generates data that can be used to perform customer segmentation and enable recommendations for other products or services to a customer, like recreation experiences. This work uses data from a Portuguese private transfer company to understand how its private transfer business customers can be segmented and how to predict their behavior to enhance services cross-selling. Information extracted from the data acquired with the private transfer reservations is used to train a model to predict customer willingness to buy, and based on it, offer leisure services to customers. For that, a hybrid classifier was trained to offer recommendations to a customer when he/she is booking a transfer. The model employs a two-phase process: first, a binary classifier asserts if the customer who’s buying the transfer would eventually buy a service experience. In that case, a multi-class model decides what should be the most likely experience to be recommended.
Peerreviewed: yes
Access type: Open Access
Appears in Collections:ISTAR-CRI - Comunicações a conferências internacionais
IT-CRI - Comunicações a conferências internacionais

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