图像编码中加权通用矢量量化的均值去中心化

Barry D. Andrews, P. Chou, M. Effros, R. Gray
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引用次数: 5

摘要

加权通用向量量化利用传统的码字设计技术设计局部最优的多码本系统。将该技术应用于医学图像序列,比标准的全搜索向量量化和熵编码提高10.3 dB,但代价是增加了复杂性。在这种建议的变化中,系统中的每个码本都被赋予一个平均值或“预测”值,该值从映射到给定码本的所有超向量中减去。然后使用所选码本的码字对产生的残差进行编码。将均值去除系统应用于医疗数据集,在不付出任何代价的情况下实现了高达0.5 dB的改进。
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A mean-removed variation of weighted universal vector quantization for image coding
Weighted universal vector quantization uses traditional codeword design techniques to design locally optimal multi-codebook systems. Application of this technique to a sequence of medical images produces a 10.3 dB improvement over standard full search vector quantization followed by entropy coding at the cost of increased complexity. In this proposed variation each codebook in the system is given a mean or 'prediction' value which is subtracted from all supervectors that map to the given codebook. The chosen codebook's codewords are then used to encode the resulting residuals. Application of the mean-removed system to the medical data set achieves up to 0.5 dB improvement at no rate expense.<>
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