Group segmentation during object tracking using optical flow discontinuities


Autoria(s): Denman, Simon; Fookes, Clinton B.; Sridharan, Sridha
Data(s)

01/11/2010

Resumo

Within a surveillance video, occlusions are commonplace, and accurately resolving these occlusions is key when seeking to accurately track objects. The challenge of accurately segmenting objects is further complicated by the fact that within many real-world surveillance environments, the objects appear very similar. For example, footage of pedestrians in a city environment will consist of many people wearing dark suits. In this paper, we propose a novel technique to segment groups and resolve occlusions using optical flow discontinuities. We demonstrate that the ratio of continuous to discontinuous pixels within a region can be used to locate the overlapping edges, and incorporate this into an object tracking framework. Results on a portion of the ETISEO database show that the proposed algorithm results in improved tracking performance overall, and improved tracking within occlusions.

Formato

application/pdf

Identificador

http://eprints.qut.edu.au/38736/

Publicador

IEEE Computer Society

Relação

http://eprints.qut.edu.au/38736/1/c38736.pdf

DOI:10.1109/PSIVT.2010.52

Denman, Simon, Fookes, Clinton B., & Sridharan, Sridha (2010) Group segmentation during object tracking using optical flow discontinuities. In Proceedings of the 4th Pacific-Rim Symposium on Image and Video Technology, IEEE Computer Society, Nanyang Technological University, Singapore, pp. 270-275.

http://purl.org/au-research/grants/ARC/LP0990135

Direitos

Copyright 2010 IEEE

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Fonte

Faculty of Built Environment and Engineering; Information Security Institute; School of Engineering Systems

Palavras-Chave #080104 Computer Vision #090609 Signal Processing #Object Tracking #Group Segmentation #Optical Flow #Occlusion
Tipo

Conference Paper