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Confident prior guided level-set segmentation using adaptive external force

机译:使用自适应外力进行有信心的事先指导的水平集分割

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In this paper we propose a new level-set based image segmentation method. Our contributions lie in two aspects. Firstly, to solve initialization sensitivity of existing methods, we propose an adaptive external force. It can dynamically determine its direction according to the change of contrast between two sides of the curve during the evolving process, in contrast to balloon force in traditional snakes which either contract or expand according to initial condition. Secondly, we propose a shape matching criterion and use it to select the mostly matched template and evaluate its confidence value. We integrate these two techniques into level-set based segmentation. The resulting contours are more accurate due to the fact that large intra-class deformation and clutter has been considered in confident shape prior. We compare experimental results with other deformable models and two state-of-art models. We analyze advantages and disadvantages of our model.
机译:在本文中,我们提出了一种新的基于水平集的图像分割方法。我们的贡献来自两个方面。首先,为了解决现有方法的初始化敏感性,我们提出了一种自适应外力。它可以根据演变过程中曲线两侧之间的对比度变化动态地确定其方向,这与传统蛇根据初始条件会收缩或扩张的气球力相反。其次,我们提出了一个形状匹配准则,并用它来选择最匹配的模板并评估其置信度值。我们将这两种技术集成到基于水平集的细分中。由于已经考虑了较大的组内变形和杂波,因此事先确定的形状使轮廓更加准确。我们将实验结果与其他可变形模型和两个最新模型进行了比较。我们分析了模型的优缺点。

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