DocumentCode
56129
Title
Illumination Robust Video Foreground Prediction Based on Color Recovering
Author
Yanli Wan ; Zhenjiang Miao ; Xiao-Ping Zhang ; Zhen Tang ; Zhifei Wang
Author_Institution
Inst. of Syst. Eng. & Control, Beijing Jiaotong Univ., Beijing, China
Volume
16
Issue
3
fYear
2014
fDate
Apr-14
Firstpage
637
Lastpage
652
Abstract
Video foreground prediction is a technique to estimate the probability of each pixel being foreground in current frame based on a foreground segmentation result of its previous frame. Existing foreground prediction algorithms usually assume that the illumination conditions are constant for consecutive frames. Therefore, they cannot predict foreground accurately when the illumination condition changes sharply between video frames. In this paper, a new robust video foreground prediction algorithm is proposed based on color recovering, which is derived based on an observation that the illumination changes are locally smooth. By integrating color recovering with an optical flow estimation algorithm and an opacity propagation algorithm, the negative impact of the illumination changes could be removed. Experimental results show that the proposed algorithm can get more accurate results for videos with illumination changes compared with the existing foreground prediction algorithms.
Keywords
image colour analysis; image segmentation; image sequences; opacity; probability; smoothing methods; video signal processing; color recovery; foreground segmentation; illumination conditions; illumination robust video foreground prediction algorithm; locally smooth illumination changes; opacity propagation algorithm; optical flow estimation algorithm; probability estimation; video foreground prediction; video frames; Color; Estimation; Image color analysis; Lighting; Optical imaging; Prediction algorithms; Vectors; Color recovering; foreground prediction; illumination changes; opacity propagation; optical flow estimation;
fLanguage
English
Journal_Title
Multimedia, IEEE Transactions on
Publisher
ieee
ISSN
1520-9210
Type
jour
DOI
10.1109/TMM.2014.2299515
Filename
6709747
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