DocumentCode
3087539
Title
Human segmentation based on disparity map and GrabCut
Author
Dongge Gu ; Yong Zhao ; Yule Yuan ; Gang Hu
fYear
2012
fDate
16-18 Dec. 2012
Firstpage
67
Lastpage
71
Abstract
Human segmentation plays an important role in vision analysis due to its importance for applications such as 3D pose estimation, human behavior analysis, body parameter estimation and image compositing. In this paper, we present a new human segmentation method that can segment human from the complex background environment without using background subtraction like algorithms and motion estimation algorithms. Initially, semi-global stereo matching algorithm was used to get the coarse disparity map. Then GrabCut was used on the disparity space image to get the human´s coarse silhouette. After some erosion morphology operations, the silhouette obtained from the disparity space image was used as the input marks for the GrabCut, which was used on the color image to get accurate human segmentation. Results show that the proposed method can have a good performance.
Keywords
computer vision; image matching; image segmentation; parameter estimation; pose estimation; stereo image processing; 3D pose estimation; body parameter estimation; coarse disparity map; erosion morphology operation; grabcut; human behavior analysis; human segmentation; image compositing; semiglobal stereo matching algorithm; vision analysis; Color; Humans; Image segmentation; Motion segmentation; Programming; GrabCut; disparity estimation; human segmentation;
fLanguage
English
Publisher
ieee
Conference_Titel
Computer Vision in Remote Sensing (CVRS), 2012 International Conference on
Conference_Location
Xiamen
Print_ISBN
978-1-4673-1272-1
Type
conf
DOI
10.1109/CVRS.2012.6421235
Filename
6421235
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