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Color image segmentation based on 3-D clustering: Morphological approach

机译:基于3D聚类的彩色图像分割:形态学方法

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摘要

In this paper, a new segmentation algorithm for color images based on mathematical morphology is presented. Color image segmentation is essentially a clustering process in 3-D color space, but the characteristics of clusters vary severely, according to the type of images and color coordinates. Hence, the methodology employs the scheme of thresholding the difference of Gaussian smoothed 3-D histogram to get the initial seeds for clustering, and then uses a closing operation and adaptive dilation to extract the number of clusters and their representative values, and to include the suppressed bins during Gaussian smoothing, without a priori knowledge on the image. This procedure also implicitly takes into account the statistical properties, such as the shape, connectivity and distribution of clusters. Intensive computer simulation has been performed and the results are discussed in this paper. The results of the simulation show that the proposed segmentation algorithm is independent of the choice of color coordinates, the shape of clusters, and the type of images. The segmentation results using the k-means technique are also presented for comparison purposes. (C) 1998 Pattern Recognition Society. Published by Elsevier Science Ltd. All rights reserved. [References: 18]
机译:提出了一种基于数学形态学的彩色图像分割算法。彩色图像分割本质上是3-D色彩空间中的聚类过程,但是根据图像的类型和颜色坐标,聚类的特征差异很大。因此,该方法采用对高斯平滑3-D直方图之差进行阈值处理的方案,以获取用于聚类的初始种子,然后使用闭合运算和自适应膨胀来提取聚类数目及其代表值,并包括在没有先验知识的情况下,在高斯平滑过程中抑制了垃圾箱。此过程还隐式考虑了统计属性,例如群集的形状,连接性和分布。进行了密集的计算机仿真,并对结果进行了讨论。仿真结果表明,提出的分割算法与颜色坐标的选择,簇的形状以及图像的类型无关。还提供了使用k均值技术的分割结果以进行比较。 (C)1998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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