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A Fuzzy Similarity Based Image Segmentation Scheme Using Self-organizing Map with Iterative Region Merging

机译:基于自组织映射和迭代区域合并的模糊相似度图像分割方案

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This paper presents a new region-based segmentation scheme which considers homogeneous regions as constituted of pixel blocks that are highly similar to their neighborhoods. Based on the postulate that each homogenous region can be represented by an exemplary pixel block, segmentation is done by grouping contiguous pixel blocks whose neighborhoods are highly similar to the exemplary pixel blocks. In our approach, the degree of similarity between one pixel block and its neighborhood is determined via fuzzy similarity, while the exemplary pixel blocks are automatically discovered by Kohonen self-organizing map. The discovered pixel blocks are later used to split the image into its constituent regions. To obtain a more discernible result, a two-stage iterative merging technique based on Region Adjacency Graph (RAG) is applied. The proposed scheme has been evaluated using real images with results that are comparable and in certain cases better than the morphological watershed segmentation.
机译:本文提出了一种新的基于区域的分割方案,该方案将同质区域视为由高度类似于其邻域的像素块组成。基于每个均质区域可以由示例性像素块表示的假设,通过对邻域与示例性像素块高度相似的连续像素块进行分组来进行分割。在我们的方法中,一个像素块与其邻域之间的相似度是通过模糊相似度确定的,而示例性像素块是由Kohonen自组织图自动发现的。发现的像素块随后用于将图像分成其组成区域。为了获得更明显的结果,应用了基于区域邻接图(RAG)的两阶段迭代合并技术。所提出的方案已使用真实图像进行了评估,结果可比,并且在某些情况下优于形态学分水岭分割。

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