DocumentCode :
1720964
Title :
An Approach for Enhancing the Results of Detecting Foreground Objects and Their Moving Shadows in Surveillance Video
Author :
Ong, Cahya ; Lu, Sijun ; Zhang, Jian
Author_Institution :
Sch. of Comput. Sci. & Eng., UNSW, Sydney, NSW
fYear :
2008
Firstpage :
242
Lastpage :
249
Abstract :
Automated surveillance system is becoming increasingly important especially in the fields of computer vision and video processing. This paper describes a novel approach for improving the results of detecting foreground objects and their shadows in indoor image sequences. Several previous techniques have been developed in the literature that deal with moving shadows. However, a comparative evaluation of the existing approaches shows that most of the methods are unable to extract and preserve the shape of the moving objects completely. Since accurately detecting the moving objects from the background scene is a crucial step in such system, we then design a method to improve the detection results by appropriately filling the regions that are erroneously removed from foreground regions. We propose to combine the classification result of the moving objects, object representation based on the cardboard and head detection technique for performing the improvement task.
Keywords :
computer vision; image representation; image sequences; object detection; video signal processing; video surveillance; automated surveillance system; cardboard detection; computer vision; foreground object detection; head detection; indoor image sequences; moving shadows; object representation; surveillance video; video processing; Australia; Computer vision; Filling; Image sequences; Layout; Lighting; Object detection; Power system modeling; Surveillance; Video sequences;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Digital Image Computing: Techniques and Applications (DICTA), 2008
Conference_Location :
Canberra, ACT
Print_ISBN :
978-0-7695-3456-5
Type :
conf
DOI :
10.1109/DICTA.2008.39
Filename :
4700027
Link To Document :
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