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conference paper

Context-Aware Crowd Counting

Liu, Weizhe  
•
Salzmann, Mathieu  
•
Fua, Pascal  
June 20, 2019
Conference On Computer Vision And Pattern Recognition (CVPR)
IEEE/CVF Conference on Computer Vision and Pattern Recognition (CVPR)

State-of-the-art methods for counting people in crowded scenes rely on deep networks to estimate crowd density. They typically use the same filters over the whole image or over large image patches. Only then do they estimate local scale to compensate for perspective distortion. This is typically achieved by training an auxiliary classifier to select, for predefined image patches, the best kernel size among a limited set of choices. As such, these methods are not end-to-end trainable and restricted in the scope of context they can leverage. In this paper, we introduce an end-to-end trainable deep architecture that combines features obtained using multiple receptive field sizes and learns the importance of each such feature at each image location. In other words, our approach adaptively encodes the scale of the contextual information required to accurately predict crowd density. This yields an algorithm that outperforms state-of-the-art crowd counting methods, especially when perspective effects are strong.

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Type
conference paper
DOI
10.1109/CVPR.2019.00524
Author(s)
Liu, Weizhe  
Salzmann, Mathieu  
Fua, Pascal  
Date Issued

2019-06-20

Publisher

IEEE/CVF

Published in
Conference On Computer Vision And Pattern Recognition (CVPR)
ISBN of the book

978-1-7281-3293-8

Start page

5094

End page

5103

Subjects

Crowd Counting

•

Crowd Density Estimation

•

Deep Learning

•

Computer Vision

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
CVLAB  
Event nameEvent placeEvent date
IEEE/CVF Conference on Computer Vision and Pattern Recognition (CVPR)

Long Beach, CA, USA

June 16-20, 2019

Available on Infoscience
May 24, 2019
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/156544
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