AUGMENTED LAGRANGIAN METHOD FOR AN EULER'S ELASTICA BASED SEGMENTATION MODEL THAT PROMOTES CONVEX CONTOURS

被引:39
作者
Bae, Egil [1 ]
Tai, Xue-Cheng [2 ,3 ]
Zhu, Wei [2 ,3 ]
机构
[1] Norwegian Def Res Estab, POB 25, N-2027 Kjeller, Norway
[2] Univ Bergen, Dept Math, POB 7803, N-5020 Bergen, Norway
[3] Univ Alabama, Dept Math, Box 870350, Tuscaloosa, AL 35487 USA
关键词
Euler's elastica; augmented Lagrangian method; image segmentation; convex contour; variational model; VARIATIONAL APPROACH; IMAGE SEGMENTATION; ACTIVE CONTOURS; APPROXIMATION; ALGORITHMS;
D O I
10.3934/ipi.2017001
中图分类号
O29 [应用数学];
学科分类号
070104 ;
摘要
In this paper, we propose an image segmentation model where an L-1 variant of the Euler's elastica energy is used as boundary regularization. An interesting feature of this model lies in its preference for convex segmentation contours. However, due to the high order and non-differentiability of Euler's elastica energy, it is nontrivial to minimize the associated functional. As in recent work on the ordinary L-2-Euler's elastica model in imaging, we propose using an augmented Lagrangian method to tackle the minimization problem. Specifically, we design a novel augmented Lagrangian functional that deals with the mean curvature term differently than in previous works. The new treatment reduces the number of Lagrange multipliers employed, and more importantly, it helps represent the curvature more effectively and faithfully. Numerical experiments validate the efficiency of the proposed augmented Lagrangian method and also demonstrate new features of this particular segmentation model, such as shape driven and data driven properties.
引用
收藏
页码:1 / 23
页数:23
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