Revisiting crowd counting: State-of-the-art, trends, and future perspectives
المؤلف | Khan, Muhammad Asif |
المؤلف | Menouar, Hamid |
المؤلف | Hamila, Ridha |
تاريخ الإتاحة | 2023-04-04T09:09:09Z |
تاريخ النشر | 2023 |
اسم المنشور | Image and Vision Computing |
المصدر | Scopus |
الملخص | Crowd counting is an effective tool for situational awareness in public places. Automated crowd counting using images and videos is an interesting yet challenging problem that has gained significant attention in computer vision. Over the past few years, various deep learning methods have been developed to achieve state-of-the-art performance. The methods evolved over time vary in many aspects such as model architecture, input pipeline, learning paradigm, computational complexity, and accuracy gains etc. In this paper, we present a systematic and comprehensive review of the most significant contributions in the area of crowd counting. Although few surveys exist on the topic, our survey is most up-to date and different in several aspects. First, it provides a more meaningful categorization of the most significant contributions by model architectures, learning methods (i.e., loss functions), and evaluation methods (i.e., evaluation metrics). We chose prominent and distinct works and excluded similar works. We also sort the well-known crowd counting models by their performance over benchmark datasets. We believe that this survey can be a good resource for novice researchers to understand the progressive developments and contributions over time and the current state-of-the-art. 2022 Elsevier B.V. |
راعي المشروع | This 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. |
اللغة | en |
الناشر | Elsevier |
الموضوع | CNN Crowd counting Density estimation Evaluation metrics Loss functions Transformers |
النوع | Article Review |
رقم المجلد | 129 |
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