DocumentCode
1351586
Title
Monocular 3-D Tracking of Inextensible Deformable Surfaces Under
-Norm
Author
Shen, Shuhan ; Shi, Wenhuan ; Liu, Yuncai
Author_Institution
Inst. of Image Process. & Pattern Recognition, Shanghai Jiao Tong Univ., Shanghai, China
Volume
19
Issue
2
fYear
2010
Firstpage
512
Lastpage
521
Abstract
We present a method for recovering the 3-D shape of an inextensible deformable surface from a monocular image sequence. State-of-the-art methods on this problem, utilize L ??-norm of reprojection residual vectors and formulate the tracking problem as a Second-Order Cone Programming (SOCP) problem. Instead of using L ?? which is sensitive to outliers, we use L 2-norm of reprojection errors. Generally, using L 2 leads a nonconvex optimization problem which is difficult to minimize. Instead of solving the nonconvex problem directly, we design an iterative L 2-norm approximation process to approximate the nonconvex objective function, in which only a linear system needs to be solved at each iteration. Furthermore, we introduce a shape regularization term into this iterative process in order to keep the inextensibility of the recovered mesh. Compared with previous methods, ours performs more robust to image noises, outliers and large interframe motions with high computational efficiency. The robustness and accuracy of our approach are evaluated quantitatively on synthetic data and qualitatively on real data.
Keywords
concave programming; image motion analysis; image sequences; iterative methods; shape recognition; tracking; L2-norm; image noises; inextensible deformable surface; inextensible deformable surfaces; interframe motions; iterative process; monocular 3d tracking; monocular image sequence; nonconvex optimization problem; reprojection residual vectors; second-order cone programming; $L_2$ -norm; Deformable 3-D tracking; monocular tracking;
fLanguage
English
Journal_Title
Image Processing, IEEE Transactions on
Publisher
ieee
ISSN
1057-7149
Type
jour
DOI
10.1109/TIP.2009.2038115
Filename
5350717
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