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Segmentation of color images based on the gravitational clustering concept

机译:基于引力聚类概念的彩色图像分割

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摘要

A new clustering algorithm derived from the Markovian model of the gravitational clustering concept is proposed that works in the RGB measurement space for color image. To enable the model to be applicable in image segmentation, the new algorithm imposes a clustering constraint at each clustering iteration to control and determine the formation of multiple clusters. Using such constraint to limit the attraction between clusters, a termination condition can be easily defined. The new clustering algorithm is evaluated objectively and subjectively on three different images against the K-means clustering algorithm, the recursive histogram clustering algorithm for color (also known as the multi-spectral thresholding), the Hedley-Yan algorithm, and the widely used seed-based region growing algorithm. From the evaluation, it is observed that the new algorithm exhibits the following characteristics: (1) its objective measurement figures are comparable with the best in this group of segmentation algorithms; (2) it generates smoother region boundaries; (3) the segmented boundaries align closely with the original boundaries; and (4) it forms a meaningful number of segmented regions. © 1998 Society of Photo-Optical Instrumentation Engineers.
机译:提出了一种新的基于重力聚类概念的马尔可夫模型的聚类算法,该算法适用于彩色图像的RGB测量空间。为了使该模型适用于图像分割,新算法在每次聚类迭代时都施加了聚类约束,以控制和确定多个聚类的形成。使用这种约束来限制簇之间的吸引力,可以容易地定义终止条件。针对K均值聚类算法,颜色的递归直方图聚类算法(也称为多光谱阈值),Hedley-Yan算法以及广泛使用的种子,在三种不同的图像上客观,主观地评估了新的聚类算法。基于区域的增长算法。从评估中可以看出,新算法具有以下特点:(1)其客观的测量数据与该组分割算法中最好的可比; (2)产生更平滑的区域边界; (3)分割后的边界与原始边界紧密对齐; (4)它形成了大量有意义的分割区域。 ©1998光电仪器工程师协会。

著录项

  • 作者

    Lai HS; Yung HC;

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  • 年度 1998
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  • 原文格式 PDF
  • 正文语种 eng
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