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AuthorKhan, Muhammad Asif
AuthorMenouar, Hamid
AuthorHamila, Ridha
Available date2024-09-15T07:29:04Z
Publication Date2023
Publication NameAI Magazine
ResourceScopus
ISSN7384602
URIhttp://dx.doi.org/10.1002/aaai.12117
URIhttp://hdl.handle.net/10576/58913
AbstractOver the last decade, there has been a remarkable surge in interest in automated crowd monitoring within the computer vision community. Modern deep-learning approaches have made it possible to develop fully automated vision-based crowd-monitoring applications. However, despite the magnitude of the issue at hand, the significant technological advancements, and the consistent interest of the research community, there are still numerous challenges that need to be overcome. In this article, we delve into six major areas of visual crowd analysis, emphasizing the key developments in each of these areas. We outline the crucial unresolved issues that must be tackled in future works, in order to ensure that the field of automated crowd monitoring continues to progress and thrive. Several surveys related to this topic have been conducted in the past. Nonetheless, this article thoroughly examines and presents a more intuitive categorization of works, while also depicting the latest breakthroughs within the field, incorporating more recent studies carried out within the last few years in a concise manner. By carefully choosing prominent works with significant contributions in terms of novelty or performance gains, this paper presents a more comprehensive exposition of advancements in the current state-of-the-art.
SponsorThis publication was made possible by the PDRA award PDRA7?0606?21012 from the Qatar National Research Fund (a member of The Qatar Foundation). The statements made herein are solely the responsibility of the authors.
Languageen
PublisherJohn Wiley and Sons Inc
SubjectAutomation
Crowd analysis
Fully automated
Learning approach
Monitoring applications
Performance Gain
Research communities
Research problems
Technological advancement
Vision based
Vision communities
Deep learning
TitleVisual crowd analysis: Open research problems
TypeArticle
Pagination296-311
Issue Number3
Volume Number44
dc.accessType Open Access


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