TBM for color image processing: a quantization algorithm

A. Capelle-Laizé, C. Fernandez-Maloigne, O. Colot
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引用次数: 4

Abstract

In this paper, we propose a color image quantization algorithm based upon TBM. In this context, we consider that the color quantization problem can be viewed as clustering problem of the color-space into P clusters. Using TBM, we define a top-down evidential clustering algorithm which iteratively decreases the number of clusters of the color space into P clusters. This convergence is ensured using a novel criterion based upon the pignistic probability function. The P clusters provide the new reduced color palette and a quantized color image is computed. This quantization method is completely automatic and preserves the final result from any initial condition. Experiments on various images show the algorithm efficiency for color quantization and highlight the efficiency of TBM for color image processing
TBM用于彩色图像处理:一种量化算法
本文提出了一种基于TBM的彩色图像量化算法。在这种情况下,我们认为颜色量化问题可以看作是颜色空间成P个簇的聚类问题。利用TBM,我们定义了一种自上而下的证据聚类算法,迭代地将色彩空间的聚类数量减少为P个聚类。采用基于皮格尼格概率函数的新准则保证了这种收敛性。P簇提供新的简化调色板,并计算量化的彩色图像。这种量化方法是完全自动的,并保留了任何初始条件下的最终结果。在各种图像上的实验表明了该算法在颜色量化方面的有效性,突出了TBM在彩色图像处理方面的效率
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