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首页> 外文期刊>IEICE Transactions on fundamentals of electronics, communications & computer sciences >Proximity Based Object Segmentation in Natural Color Images Using the Level Set Method
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Proximity Based Object Segmentation in Natural Color Images Using the Level Set Method

机译:使用水平集方法的自然彩色图像中基于邻近度的对象分割

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摘要

Segmenting indicated objects from natural color images remains a challenging problem for researches of image processing. In this paper, a novel level set approach is presented, to address this issue. In this segmentation algorithm, a contour that lies inside a particular region of the concerned object is first initialized by a user. The level set model is then applied, to extract the object of arbitrary shape and size containing this initial region. Constrained on the position of the initial contour, our proposed framework combines two particular energy terms, namely local and global energy, in its energy functional, to control movement of the contour toward object boundaries. These energy terms are mainly based on graph partitioning active contour models and Bhattacharyya flow, respectively. Its flow describes dissimilarities, measuring correlative relationships between the region of interest and surroundings. The experimental results obtained from our image collection show that the suggested method yields accurate and good performance, or better than a number of segmentation algorithms, when applied to various natural images.
机译:从自然彩色图像中分割指示对象仍然是图像处理研究中的一个难题。在本文中,提出了一种新颖的水平集方法来解决此问题。在该分割算法中,首先由用户初始化位于所关注对象的特定区域内的轮廓。然后应用水平集模型,以提取包含此初始区域的任意形状和大小的对象。受限于初始轮廓的位置,我们提出的框架在其能量函数中结合了两个特殊的能量项,即局部能量和全局能量,以控制轮廓向对象边界的移动。这些能量项分别主要基于图划分活动轮廓模型和Bhattacharyya流。它的流程描述了相异之处,并测量了感兴趣区域与周围环境之间的相关关系。从我们的图像收集中获得的实验结果表明,所提出的方法在应用于各种自然图像时可产生准确且良好的性能,或优于许多分割算法。

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