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Enhanced initialization method for LBG codebook design algorithm in vector quantization of images

机译:图像矢量量化中LBG码本设计算法的增强初始化方法

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In this paper, a new initialization method is developed for enhancing the LBG codebook design algorithm in image vector quantization. The proposed method first arranges the training set data according to three different characteristics of the training vector, i.e. mean, variance and shape. A sampling method based on the criterion of maximum error reduction is then developed to select the desired number of representative vectors in the sorted training set as the initial codebook for the LBG algorithm. Computer simulations using real images show that the proposed approach outperforms the random guess and the splitting method. With the new approach, a higher quality of boundary preservation and a better local minimum are obtainable through a fewer number of iteration.
机译:本文提出了一种新的初始化方法,以增强图像矢量量化中的LBG码本设计算法。所提出的方法首先根据训练矢量的三个不同特征,即均值,方差和形状来排列训练集数据。然后,开发了一种基于最大错误减少准则的采样方法,以在排序后的训练集中选择所需数量的代表性向量作为LBG算法的初始码本。使用真实图像的计算机仿真表明,所提出的方法优于随机猜测和分割方法。使用新方法,可以通过较少的迭代次数获得更高的边界保留质量和更好的局部最小值。

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