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Moment-based alignment for shape prior with variational B-spline level set

机译:基于变矩B样条水平集的形状的基于矩的对齐

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This paper presents a new shape prior-based implicit active contour model for image segmentation. The paper proposes an energy functional including a data term and a shape prior term. The data term, inspired from the region-based active contour approach, evolves the contour based on the region information of the image to segment. The shape prior term, defined as the distance between the evolving shape and a reference shape, constraints the evolution of the contour with respect to the reference shape. Especially, in this paper, we present shapes via geometric moments, and utilize the shape normalization procedure, which takes into account the affine transformation, to align the evolving shape with the reference one. By this way, we could directly calculate the shape transformation, instead of solving a set of coupled partial differential equations as in the gradient descent approach. In addition, we represent the level-set function in the proposed energy functional as a linear combination of continuous basic functions expressed on a B-spline basic. This allows a fast convergence to the segmentation solution. Experiment results on synthetic, real, and medical images show that the proposed model is able to extract object boundaries even in the presence of clutter and occlusion.
机译:本文提出了一种新的基于形状先验的隐式主动轮廓模型用于图像分割。本文提出了一个能量函数,包括一个数据项和一个形状先验项。数据项的灵感来自基于区域的主动轮廓方法,可根据要分割的图像区域信息来扩展轮廓。形状先验项(定义为不断发展的形状与参考形状之间的距离)限制了轮廓相对于参考形状的演变。特别是,在本文中,我们通过几何矩来表示形状,并利用考虑了仿射变换的形状归一化过程,将演化的形状与参考形状对齐。通过这种方式,我们可以直接计算形状变换,而不用像梯度下降法那样求解一组耦合的偏微分方程。此外,我们在提出的能量函数中将水平集函数表示为以B样条曲线基本形式表示的连续基本函数的线性组合。这样可以快速收敛到细分解决方案。在合成,真实和医学图像上的实验结果表明,即使在杂波和遮挡的情况下,该模型也能够提取物体边界。

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