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Cited 1 time in webofscience Cited 3 time in scopus
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Flow analysis-based fast-moving flow calibration for a people-counting system

Authors
Park, Jae HyeonCho, Sung In
Issue Date
Sep-2021
Publisher
SPRINGER
Keywords
Vision-based people-counting; Flow analysis; Foreground extraction; LOI-based people-counting
Citation
MULTIMEDIA TOOLS AND APPLICATIONS, v.80, no.21-23, pp 31671 - 31685
Pages
15
Indexed
SCIE
SCOPUS
Journal Title
MULTIMEDIA TOOLS AND APPLICATIONS
Volume
80
Number
21-23
Start Page
31671
End Page
31685
URI
https://scholarworks.dongguk.edu/handle/sw.dongguk/4554
DOI
10.1007/s11042-021-11231-1
ISSN
1380-7501
1573-7721
Abstract
We propose a new vision-based people-counting method that uses flow analysis with the movement speed of a person to increase the accuracy of people-counting. The proposed method consists of two procedures: simple estimation of foreground movement speed and multiple people detection based on the flow analysis. First, we extract the flow that is generated by the movements of the foreground, and its volume that is calculated by accumulating the foreground pixels on a line of interest (LOI) while people enter and exit the target region. Second, the number of frames containing the foreground in the LOI for each entry and exit event is counted to estimate the speed of the flow cluster. Finally, the number of people is estimated from the flow volume (FV) and the number of frames. In the experimental results, the proposed method enhanced the average F1 score and accuracy by up to 25% and 9%, respectively, compared to existing people-counting methods. The results confirmed that the proposed method achieved substantial accuracy improvements over existing methods when the person passed the target region for various speed patterns.
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College of Advanced Convergence Engineering > Department of Computer Science and Artificial Intelligence > 1. Journal Articles

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