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Keywords
(7)
Active Zone
Cluster Algorithm
Entry and Exit
Fuzzy Relation
Soft Computing
Transitive Closure
Unsupervised Learning
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Video Activity Extraction and Reporting with Incremental Unsupervised Learning
Video Activity Extraction and Reporting with Incremental Unsupervised Learning,10.1109/AVSS.2010.74,Luis Patino,François Bremond,M. Evans,A. Shahrokni
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Video Activity Extraction and Reporting with Incremental Unsupervised Learning
(
Citations: 2
)
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Luis Patino
,
François Bremond
,
M. Evans
,
A. Shahrokni
,
J. Ferryman
The present work presents a new method for activity extraction and reporting from video based on the aggregation of fuzzy relations. Trajectory clustering is first employed mainly to discover the points of
entry and exit
of mobiles appearing in the scene. In a second step, proximity relations between resulting clusters of detected mobiles and contextual elements from the scene are modeled employing fuzzy relations. These can then be aggregated employing typical soft-computing algebra. A clustering algorithm based on the
transitive closure
calculation of the fuzzy relations allows building the structure of the scene and characterises the ongoing different activities of the scene. Discovered activity zones can be reported as activity maps with different granularities thanks to the analysis of the
transitive closure
matrix. Taking advantage of the soft relation properties, activity zones and related activities can be labeled in a more human-like language. We present results obtained on real videos corresponding to apron monitoring in the Toulouse airport in France.
Conference:
Advanced Video and Signal Based Surveillance - AVSS
, 2010
DOI:
10.1109/AVSS.2010.74
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Citation Context
(2)
...Representative publications include [2], [3], [4], [5], [
6
]...
Xuan Song
,
et al.
A novel laser-based system: Fully online detection of abnormal activit...
...Unsupervised learning to discover motions [12] [
11
] with trajectories analyses sequences of events and searches for interesting activities...
Stefan Hommes
,
et al.
Detection of abnormal behaviour in a surveillance environment using co...
References
(20)
Hidden Markov Models for Optical Flow Analysis in Crowds
(
Citations: 34
)
Ernesto L. Andrade
,
Scott Blunsden
,
Robert B. Fisher
Conference:
International Conference on Pattern Recognition - ICPR
, vol. 1, pp. 460-463, 2006
Single camera calibration for trajectory-based behavior analysis
(
Citations: 7
)
Nadeem Anjum
,
Andrea Cavallaro
Conference:
Advanced Video and Signal Based Surveillance - AVSS
, pp. 147-152, 2007
Counting Pedestrians in Video Sequences Using Trajectory Clustering
(
Citations: 34
)
Gianluca Antonini
,
Jean-philippe Thiran
Journal:
IEEE Transactions on Circuits and Systems for Video Technology - TCSV
, vol. 16, no. 8, pp. 1008-1020, 2006
Object Trajectory-Based Activity Classification and Recognition Using Hidden Markov Models
(
Citations: 47
)
Faisal I. Bashir
,
Ashfaq A. Khokhar
,
Dan Schonfeld
Journal:
IEEE Transactions on Image Processing
, vol. 16, no. 7, pp. 1912-1919, 2007
Stochastic Searching Networks
(
Citations: 38
)
J. M. Bishop
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Citations
(2)
A novel laser-based system: Fully online detection of abnormal activity via an unsupervised method
Xuan Song
,
Xiaowei Shao
,
Ryosuke Shibasaki
,
Huijing Zhao
,
Jinshi Cui
,
Hongbin Zha
Conference:
International Conference on Robotics and Automation - ICRA
, pp. 1317-1322, 2011
Detection of abnormal behaviour in a surveillance environment using control charts
Stefan Hommes
,
Radu State
,
Andreas Zinnen
,
Thomas Engel
Conference:
Advanced Video and Signal Based Surveillance - AVSS
, 2011