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research article

Cascade of Descriptors to Detect and Track Objects Across Any Network of Cameras

Alahi, Alexandre  
•
Vandergheynst, Pierre  
•
Bierlaire, Michel  
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2010
Computer Vision and Image Understanding

Most of the multi-camera systems assume a well structured environment to detect and match objects across cameras. Cameras need to be fixed and calibrated. In this work, a novel system is presented to detect and match any objects in a network of uncalibrated fixed and mobile cameras. Objects are detected with the mobile cameras given only their observations from the fixed cameras. No training stage and data are used. Detected objects are correctly matched across cameras leading to a better understanding of the scene. A cascade of dense region descriptors is proposed to describe any object of interest. Various region descriptors are studied such as color histogram, histogram of oriented gradients, haar- wavelet responses, and covariance matrices of various features. The proposed descriptor outperforms existing approaches such as scale invariant feature transform (SIFT), or the speeded up robust features (SURF). Moreover, a sparse scan of the image plane is proposed to reduce the search space of the detection and matching process, approaching nearly real- time performance. The approach is robust to changes in illuminations, viewpoints, color distributions and image quality. Partial occlusions are also handled.

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Type
research article
DOI
10.1016/j.cviu.2010.01.004
Web of Science ID

WOS:000278443300003

Author(s)
Alahi, Alexandre  
Vandergheynst, Pierre  
Bierlaire, Michel  
Kunt, Murat  
Date Issued

2010

Publisher

Elsevier

Published in
Computer Vision and Image Understanding
Volume

114

Issue

6

Start page

624

End page

640

Subjects

Detection

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Tracking

•

Region Descriptors

•

Cascade of descriptors

•

Multi-View

•

Mobile cameras

•

Pedestrian Recognition

•

lts2

•

LTS2

•

object

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
TRANSP-OR  
VITA  
LTS2  
Available on Infoscience
December 1, 2008
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/31991
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