DocumentCode :
2955179
Title :
Efficient Object Tracking using Control-Based Observer Design
Author :
Qu, Wei ; Schonfeld, Dan
Author_Institution :
ECE Dept., Illinois Univ., Chicago, IL
fYear :
2006
fDate :
9-12 July 2006
Firstpage :
1001
Lastpage :
1004
Abstract :
Kernel-based tracking approaches have proven to be more efficient in computation compared to other tracking approaches such as particle filtering. However, existing kernel-based tracking approaches suffer from the well-known "singularity" problem. In this paper, we propose a novel object tracking frame work to handle this problem by using a control-based observer design. Specifically, we formulate object tracking as a recursive inverse problem, thus unifying several approaches to video tracking, including kernel-based tracking, into a consistent theoretical framework. Moreover, we interpret the inverse equation as a measurement process and supplement it by introducing state dynamics as a constraint. The augmented recursive inverse equation forms a state-space model, which is solved by using a control-based optimal observer. By exploiting observability theory from control engineering, we extend the current approach to kernel-based tracking and provide explicit criteria for kernel design and dynamics evaluation. The tracking performance of our approach has been demonstrated on both synthetic and real-world video data
Keywords :
state-space methods; target tracking; video signal processing; control-based observer design; kernel-based object tracking approach; real-world video data; recursive inverse problem; state-space model; Equations; Filtering; Inverse problems; Kernel; Layout; Observability; Optical filters; Parameter estimation; Particle tracking; State estimation;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Multimedia and Expo, 2006 IEEE International Conference on
Conference_Location :
Toronto, Ont.
Print_ISBN :
1-4244-0366-7
Electronic_ISBN :
1-4244-0367-7
Type :
conf
DOI :
10.1109/ICME.2006.262702
Filename :
4036771
Link To Document :
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