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Big data meets the big screen: a comprehensive machine learning study about the movie industry-understanding box-office dynamics: the role of timing and audience in movie revenue predictio

datacite.subject.fosCiências Sociais::Economia e Gestão
dc.contributor.advisorGuha, Sreyaa
dc.contributor.authorGonçalves, Tomás Shoemaker Simão
dc.date.accessioned2026-06-16T14:39:09Z
dc.date.available2026-06-16T14:39:09Z
dc.date.issued2025-01-17
dc.date.submitted2024-12-17
dc.description.abstractThis thesis investigates factors influencing movie success using machine learning and deep learning techniques. Traditional machine learning methods analyze key determinants of box office performance, such as audience and critic ratings, release timing, and sequel dynamics. Deep learning approaches, including Natural Language Processing and Time Series Classification, examine patterns in sequential movie data. By integrating diverse data sources and predictive modeling techniques across the movie lifecycle, this study provides a comprehensive perspective on audience engagement and market dynamics. The findings advance academic understanding of the topic and offer actionable recommendations for industry stakeholders aiming to optimize performance.eng
dc.identifier.tid203992210
dc.identifier.urihttp://hdl.handle.net/10362/203808
dc.language.isoeng
dc.relationUID/ECO/00124/2013
dc.rights.urihttp://creativecommons.org/licenses/by/4.0/
dc.subjectBox office success
dc.subjectMovie success factors
dc.subjectTraditional machine learning
dc.subjectNatural language processing
dc.subjectTime series analysis
dc.titleBig data meets the big screen: a comprehensive machine learning study about the movie industry-understanding box-office dynamics: the role of timing and audience in movie revenue predictioeng
dc.typemaster thesis
dspace.entity.typePublication
thesis.degree.nameA Work Project, presented as part of the requirements for the Award of a Master’s degree in Business Analytics from the Nova School of Business and Economics

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