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AuthorAl-Buenain, Ahmad
AuthorHaouari, Mohamed
AuthorJacob, Jithu Reji
Available date2024-10-02T09:38:11Z
Publication Date2024-03-01
Publication NameMathematics
Identifierhttp://dx.doi.org/10.3390/math12060926
CitationAl-Buenain, A., Haouari, M., & Jacob, J. R. (2024). Predicting Fan Attendance at Mega Sports Events—A Machine Learning Approach: A Case Study of the FIFA World Cup Qatar 2022. Mathematics, 12(6), 926.‏
URIhttps://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=85188879918&origin=inward
URIhttp://hdl.handle.net/10576/59692
AbstractMega sports events generate significant media coverage and have a considerable economic impact on the host cities. Organizing such events is a complex task that requires extensive planning. The success of these events hinges on the attendees’ satisfaction. Therefore, accurately predicting the number of fans from each country is essential for the organizers to optimize planning and ensure a positive experience. This study aims to introduce a new application for machine learning in order to accurately predict the number of attendees. The model is developed using attendance data from the FIFA World Cup (FWC) Russia 2018 to forecast the FWC Qatar 2022 attendance. Stochastic gradient descent (SGD) was found to be the top-performing algorithm, achieving an R2 metric of 0.633 in an Auto-Sklearn experiment that considered a total of 2523 models. After a thorough analysis of the result, it was found that team qualification has the highest impact on attendance. Other factors such as distance, number of expatriates in the host country, and socio-geopolitical factors have a considerable influence on visitor counts. Although the model produces good results, with ML it is always recommended to have more data inputs. Therefore, using previous tournament data has the potential to increase the accuracy of the results.
Languageen
PublisherMultidisciplinary Digital Publishing Institute (MDPI)
Subjectattendee prediction
FIFA World Cup
machine learning
mega sports events
stochastic gradient descent
TitlePredicting Fan Attendance at Mega Sports Events—A Machine Learning Approach: A Case Study of the FIFA World Cup Qatar 2022
TypeArticle
Issue Number6
Volume Number12
dc.accessType Open Access


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