DocumentCode :
2726703
Title :
Chaos-Synchronization Based Representation of Objects and Events From MPEG-7 Low-Level Descriptors
Author :
Azhar, Hanif ; Amer, Aishy
Author_Institution :
Electr. & Comput. Eng., Concordia Univ., Montreal, Que.
fYear :
2007
fDate :
1-5 April 2007
Firstpage :
391
Lastpage :
396
Abstract :
Chaos theory has been reported to simulate partial functions (i.e., neuronal activity in brain) of the human visual system. In this work, we propose a chaotic synchronization-based representation of semantic entities (objects, events) in surveillance scenes using MPEG-7 low level Ds. MPEG-7 visual descriptors are used to extract low-level features of video objects. The chaotic synchronization is used to perform feature binding (i.e., group semantically relevant feature elements) from these Ds. The objective is to search for unique numeric descriptions (based on low-level features) to identify semantic entities. The idea of a semantic space is introduced to explain feature binding from multiple feature spaces. Subjective evaluation (based on classification) shows the existence of such numeric description for related semantic entities (e.g., male, female, automobile, multiple persons, enter appear, move)
Keywords :
chaos; feature extraction; image representation; object detection; surveillance; video signal processing; MPEG-7 low-level descriptors; MPEG-7 visual descriptors; chaos synchronization; chaos theory; feature binding; feature extraction; human visual system; numeric descriptions; object representation; semantic entities; surveillance scenes; video objects; Chaos; Computational intelligence; Layout; MPEG 7 Standard; Signal processing; Tellurium; Chaos; Classification; Descriptor; MPEG-7; Semantic; Video Surveillance;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Computational Intelligence in Image and Signal Processing, 2007. CIISP 2007. IEEE Symposium on
Conference_Location :
Honolulu, HI
Print_ISBN :
1-4244-0707-9
Type :
conf
DOI :
10.1109/CIISP.2007.369201
Filename :
4221451
Link To Document :
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