DocumentCode :
3419507
Title :
Object detection through edge behavior modeling
Author :
Ramirez-Rivera, A. ; Murshed, Manzur ; Chae, Oksam
Author_Institution :
Kyung Hee Univ., Yongin, South Korea
fYear :
2011
fDate :
Aug. 30 2011-Sept. 2 2011
Firstpage :
273
Lastpage :
278
Abstract :
The detection of moving objects depends on the accuracy of the model used to represent the background. Common pixel-based and naive edge-based approaches have many drawbacks in dynamic environments, e.g., false detections with noise. We propose a novel background model that encodes the background as edges, building a statistical distribution per segment that represents the edge behavior. We build the background distributions using a kernel-based approach; the moving objects are detected as the edges that deviate from the distributions. The method does adaptive thresholding to the edges, which maintains their shape and boosts the detection accuracy. Sets of gradient distributions are incorporated into the model, to determine edges that lie within the distributions, but are moving edges. The number of distributions is handled dynamically, allowing them to increase and decrease accordingly to the situation. The experiments show that the proposed method improves the detection rates, due to its robustness against illumination changes.
Keywords :
edge detection; image representation; object detection; statistical distributions; adaptive thresholding; background distributions; background representation; detection accuracy; edge behavior modeling; edge detection; gradient distributions; illumination change; kernel-based approach; naive edge-based approach; object detection; pixel-based approach; statistical distribution; Adaptation models; Computational modeling; Image edge detection; Lighting; Noise; Robustness; Shape;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Advanced Video and Signal-Based Surveillance (AVSS), 2011 8th IEEE International Conference on
Conference_Location :
Klagenfurt
Print_ISBN :
978-1-4577-0844-2
Electronic_ISBN :
978-1-4577-0843-5
Type :
conf
DOI :
10.1109/AVSS.2011.6027336
Filename :
6027336
Link To Document :
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