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Region competition: unifying snakes, region growing, and Bayes/MDL for multiband image segmentation

机译:区域竞争:统一蛇,区域增长和贝叶斯/ MDL进行多波段图像分割

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摘要

We present a novel statistical and variational approach to image segmentation based on a new algorithm, named region competition. This algorithm is derived by minimizing a generalized Bayes/minimum description length (MDL) criterion using the variational principle. The algorithm is guaranteed to converge to a local minimum and combines aspects of snakes/balloons and region growing. The classic snakes/balloons and region growing algorithms can be directly derived from our approach. We provide theoretical analysis of region competition including accuracy of boundary location, criteria for initial conditions, and the relationship to edge detection using filters. It is straightforward to generalize the algorithm to multiband segmentation and we demonstrate it on gray level images, color images and texture images. The novel color model allows us to eliminate intensity gradients and shadows, thereby obtaining segmentation based on the albedos of objects. It also helps detect highlight regions.
机译:我们提出了一种新的统计和变分方法,基于一种名为区域竞争的新算法进行图像分割。该算法是通过使用变分原理使广义贝叶斯/最小描述长度(MDL)标准最小化而得出的。该算法保证收敛到局部最小值,并结合了蛇/气球和区域生长的各个方面。经典的蛇/气球和区域生长算法可以直接从我们的方法中得出。我们提供了区域竞争的理论分析,包括边界定位的准确性,初始条件的标准以及与使用过滤器进行边缘检测的关系。将算法推广到多波段分割很简单,我们在灰度图像,彩色图像和纹理图像上进行了演示。新颖的颜色模型使我们能够消除强度梯度和阴影,从而基于对象的反照率获得分割效果。它还有助于检测高光区域。

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