Trust and Reputation Modelling for Tourism Recommendations Supported by Crowdsourcing

Bibliographic Details
Main Author: Leal, Fátima
Publication Date: 2018
Other Authors: Malheiro, Benedita, Burguillo, Juan Carlos
Language: eng
Source: Repositórios Científicos de Acesso Aberto de Portugal (RCAAP)
Download full: http://hdl.handle.net/10400.22/11378
Summary: Tourism crowdsourcing platforms have a profound influence on the tourist behaviour particularly in terms of travel planning. Not only they hold the opinions shared by other tourists concerning tourism resources, but, with the help of recommendation engines, are the pillar of personalised resource recommendation. However, since prospective tourists are unaware of the trustworthiness or reputation of crowd publishers, they are in fact taking a leap of faith when then rely on the crowd wisdom. In this paper, we argue that modelling publisher Trust & Reputation improves the quality of the tourism recommendations supported by crowdsourced information. Therefore, we present a tourism recommendation system which integrates: (i) user profiling using the multi-criteria ratings; (ii) k-Nearest Neighbours (k-NN) prediction of the user ratings; (iii) Trust & Reputation modelling; and (iv) incremental model update, i.e., providing near real-time recommendations. In terms of contributions, this paper provides two different Trust & Reputation approaches: (i) general reputation employing the pairwise trust values using all users; and (ii) neighbour-based reputation employing the pairwise trust values of the common neighbours. The proposed method was experimented using crowdsourced datasets from Expedia and TripAdvisor platforms.
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spelling Trust and Reputation Modelling for Tourism Recommendations Supported by CrowdsourcingCrowdsourcingTrust & ReputationRating PredictionTourismTourism crowdsourcing platforms have a profound influence on the tourist behaviour particularly in terms of travel planning. Not only they hold the opinions shared by other tourists concerning tourism resources, but, with the help of recommendation engines, are the pillar of personalised resource recommendation. However, since prospective tourists are unaware of the trustworthiness or reputation of crowd publishers, they are in fact taking a leap of faith when then rely on the crowd wisdom. In this paper, we argue that modelling publisher Trust & Reputation improves the quality of the tourism recommendations supported by crowdsourced information. Therefore, we present a tourism recommendation system which integrates: (i) user profiling using the multi-criteria ratings; (ii) k-Nearest Neighbours (k-NN) prediction of the user ratings; (iii) Trust & Reputation modelling; and (iv) incremental model update, i.e., providing near real-time recommendations. In terms of contributions, this paper provides two different Trust & Reputation approaches: (i) general reputation employing the pairwise trust values using all users; and (ii) neighbour-based reputation employing the pairwise trust values of the common neighbours. The proposed method was experimented using crowdsourced datasets from Expedia and TripAdvisor platforms.Springer International PublishingREPOSITÓRIO P.PORTOLeal, FátimaMalheiro, BeneditaBurguillo, Juan Carlos2018-04-18T09:14:09Z20182018-03-25T19:28:56Z2018-01-01T00:00:00Zbook partinfo:eu-repo/semantics/publishedVersionapplication/pdfhttp://hdl.handle.net/10400.22/11378eng978-3-319-77702-310.1007/978-3-319-77703-0_81info:eu-repo/semantics/openAccessreponame:Repositórios Científicos de Acesso Aberto de Portugal (RCAAP)instname:FCCN, serviços digitais da FCT – Fundação para a Ciência e a Tecnologiainstacron:RCAAP2025-03-07T10:19:08Zoai:recipp.ipp.pt:10400.22/11378Portal AgregadorONGhttps://www.rcaap.pt/oai/openaireinfo@rcaap.ptopendoar:https://opendoar.ac.uk/repository/71602025-05-29T00:47:54.290591Repositórios Científicos de Acesso Aberto de Portugal (RCAAP) - FCCN, serviços digitais da FCT – Fundação para a Ciência e a Tecnologiafalse
dc.title.none.fl_str_mv Trust and Reputation Modelling for Tourism Recommendations Supported by Crowdsourcing
title Trust and Reputation Modelling for Tourism Recommendations Supported by Crowdsourcing
spellingShingle Trust and Reputation Modelling for Tourism Recommendations Supported by Crowdsourcing
Leal, Fátima
Crowdsourcing
Trust & Reputation
Rating Prediction
Tourism
title_short Trust and Reputation Modelling for Tourism Recommendations Supported by Crowdsourcing
title_full Trust and Reputation Modelling for Tourism Recommendations Supported by Crowdsourcing
title_fullStr Trust and Reputation Modelling for Tourism Recommendations Supported by Crowdsourcing
title_full_unstemmed Trust and Reputation Modelling for Tourism Recommendations Supported by Crowdsourcing
title_sort Trust and Reputation Modelling for Tourism Recommendations Supported by Crowdsourcing
author Leal, Fátima
author_facet Leal, Fátima
Malheiro, Benedita
Burguillo, Juan Carlos
author_role author
author2 Malheiro, Benedita
Burguillo, Juan Carlos
author2_role author
author
dc.contributor.none.fl_str_mv REPOSITÓRIO P.PORTO
dc.contributor.author.fl_str_mv Leal, Fátima
Malheiro, Benedita
Burguillo, Juan Carlos
dc.subject.por.fl_str_mv Crowdsourcing
Trust & Reputation
Rating Prediction
Tourism
topic Crowdsourcing
Trust & Reputation
Rating Prediction
Tourism
description Tourism crowdsourcing platforms have a profound influence on the tourist behaviour particularly in terms of travel planning. Not only they hold the opinions shared by other tourists concerning tourism resources, but, with the help of recommendation engines, are the pillar of personalised resource recommendation. However, since prospective tourists are unaware of the trustworthiness or reputation of crowd publishers, they are in fact taking a leap of faith when then rely on the crowd wisdom. In this paper, we argue that modelling publisher Trust & Reputation improves the quality of the tourism recommendations supported by crowdsourced information. Therefore, we present a tourism recommendation system which integrates: (i) user profiling using the multi-criteria ratings; (ii) k-Nearest Neighbours (k-NN) prediction of the user ratings; (iii) Trust & Reputation modelling; and (iv) incremental model update, i.e., providing near real-time recommendations. In terms of contributions, this paper provides two different Trust & Reputation approaches: (i) general reputation employing the pairwise trust values using all users; and (ii) neighbour-based reputation employing the pairwise trust values of the common neighbours. The proposed method was experimented using crowdsourced datasets from Expedia and TripAdvisor platforms.
publishDate 2018
dc.date.none.fl_str_mv 2018-04-18T09:14:09Z
2018
2018-03-25T19:28:56Z
2018-01-01T00:00:00Z
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dc.identifier.uri.fl_str_mv http://hdl.handle.net/10400.22/11378
url http://hdl.handle.net/10400.22/11378
dc.language.iso.fl_str_mv eng
language eng
dc.relation.none.fl_str_mv 978-3-319-77702-3
10.1007/978-3-319-77703-0_81
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eu_rights_str_mv openAccess
dc.format.none.fl_str_mv application/pdf
dc.publisher.none.fl_str_mv Springer International Publishing
publisher.none.fl_str_mv Springer International Publishing
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