Tree-structured vector quantization with significance map for wavelet image coding

P. Cosman, S. M. Perlmutter, K. Perlmutter
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引用次数: 23

Abstract

Variable-rate tree-structured VQ is applied to the coefficients obtained from an orthogonal wavelet decomposition. After encoding a vector, we examine the spatially corresponding vectors in the higher subbands to see whether or not they are "significant", that is, above some threshold. One bit of side information is sent to the decoder to inform it of the result. When the higher bands are encoded, those vectors which were earlier marked as insignificant are not coded. An improved version of the algorithm makes the decision not to code vectors from the higher bands based on a distortion/rate tradeoff rather than a strict thresholding criterion. Results of this method on the test image "Lena" yielded a PSNR of 30.15 dB at 0.174 bits per pixel.
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基于显著性图的树结构矢量量化小波图像编码
将变速率树结构VQ应用于正交小波分解得到的系数。在对矢量进行编码后,我们检查较高子带中空间对应的矢量,以查看它们是否“显著”,即高于某个阈值。一个比特的副信息被发送到解码器,以通知它的结果。在对较高波段进行编码时,不编码先前标记为不重要的那些矢量。该算法的改进版本基于失真/速率权衡而不是严格的阈值准则来决定不编码来自较高频带的矢量。该方法在测试图像“Lena”上的结果是在每像素0.174比特时产生30.15 dB的PSNR。
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