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首页> 外文期刊>Pattern Recognition: The Journal of the Pattern Recognition Society >Growing snakes: active contours for complex topologies
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Growing snakes: active contours for complex topologies

机译:不断增长的蛇:复杂拓扑的活动轮廓

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摘要

Snakes are active contours that minimize an energy function. In this paper we introduce a new kind of snakes, called growing snakes. These snakes are modeled as a set of particles connected by thin rods. Unlike the traditional snakes, growing snakes are automatically initialized, They start at the position where the gradient magnitude of an image is largest, and start to grow, looking for zones of high gradient magnitude; simultaneously the associated energy function is minimized. Growing snakes can find contours with complex topology, describing holes, occlusions, separate objects and bifurcations. In a post-process the T-junctions are refined looking for the configuration with minimal energy. We also describe a technique that permits one to regularize the field of external forces that act on the Growing Snakes, which allow them to have good performance, even in the case of images with high levels of noise. Finally. we present results in synthetic and real images. (C) 2002 Pattern Recognition Society. Published by Elsevier Science Ltd. All rights reserved. [References: 18]
机译:蛇是使能量功能最小化的活动轮廓。在本文中,我们介绍了一种新型蛇,称为生长蛇。这些蛇被建模为一组由细杆连接的粒子。与传统的蛇不同,正在生长的蛇会自动初始化,它们从图像的梯度幅度最大的位置开始,然后开始生长,寻找高梯度幅度的区域。同时,相关的能量函数被最小化。成长中的蛇可以找到具有复杂拓扑结构的轮廓,描述孔洞,遮挡,分离的物体和分叉。在后处理中,对T型结进行精炼,以寻找具有最小能量的配置。我们还描述了一种技术,该技术可以使作用在生长中的蛇上的外力场规则化,即使在图像噪声高的情况下,它们也可以具有良好的性能。最后。我们以合成和真实图像呈现结果。 (C)2002模式识别学会。由Elsevier Science Ltd.出版。保留所有权利。 [参考:18]

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