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SFCVQ and EZW coding method based on Karhunen-Loeve transformation and integer wavelet transformation 被引量:1
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作者 闫敬文 陈嘉臻 《Chinese Optics Letters》 SCIE EI CAS CSCD 2007年第3期153-155,共3页
A new hyperspectral image compression method of spectral feature classification vector quantization (SFCVQ) and embedded zero-tree of wavelet (EZW) based on Karhunen-Loeve transformation (KLT) and integer wavele... A new hyperspectral image compression method of spectral feature classification vector quantization (SFCVQ) and embedded zero-tree of wavelet (EZW) based on Karhunen-Loeve transformation (KLT) and integer wavelet transformation is represented. In comparison with the other methods, this method not only keeps the characteristics of high compression ratio and easy real-time transmission, but also has the advantage of high computation speed. After lifting based integer wavelet and SFCVQ coding are intro- duced, a system of nearly lossless compression of hyperspectral images is designed. KLT is used to remove the correlation of spectral redundancy as one-dimensional (1D) linear transform, and SFCVQ coding is applied to enhance compression ratio. The two-dimensional (2D) integer wavelet transformation is adopted for the decorrelation of 2D spatial redundancy. EZW coding method is applied to compress data in wavelet domain. Experimental results show that in comparison with the method of wavelet SFCVQ (WSFCVQ), the method of improved BiBlock zero tree coding (IBBZTC) and the method of feature spectral vector quantization (FSVQ), the peak signal-to-noise ratio (PSNR) of this method can enhance over 9 dB, and the total compression performance is improved greatly. 展开更多
关键词 classification (of information) Image coding Signal to noise ratio vector quantization wavelet transforms
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一种小波树分类和合成编码结合的图像压缩方法
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作者 张培珍 黄子俊 管幼东 《空军雷达学院学报》 2006年第4期291-293,297,共4页
针对传统小波变换过程复杂的缺点和SPIHT算法编码过程重复运算、存储量大的问题,提出了一种小波树分类和合成编码结合的图像压缩方法.该方法首先对纹理丰富的图像进行3级小波变换,再对高频子带通过小波树分类器分为低频树和高频树.最后... 针对传统小波变换过程复杂的缺点和SPIHT算法编码过程重复运算、存储量大的问题,提出了一种小波树分类和合成编码结合的图像压缩方法.该方法首先对纹理丰富的图像进行3级小波变换,再对高频子带通过小波树分类器分为低频树和高频树.最后对最低频子带进行差值脉冲编码调制(DPCM),对低频树和高频树分别进行SPIHT和多阶段矢量量化(MVQ.)仿真结果表明,该方法在峰值信噪比和编解码时间均优于SPIHT算法.在0.125 b/s下,Boat图像峰值信噪比(PSNR)比SPIHT算法提高了0.8 dB. 展开更多
关键词 小波变换 小波树分类 合成编码 矢量量化
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