期刊文献+

基于分类K-L变换的多波段遥感图像近无损压缩方法 被引量:6

Near-Lossless Compression of Multispectral Remote Sensing Image Based on Classified K-L Transform
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摘要 去除空间和谱间相关性是多波段遥感图像压缩中的重要环节 ,为了得到更好的去相关效果 ,将矢量量化方法引入多波段遥感图像压缩中 ,以去除对应同一地物的波段矢量间的相关性。再通过分类K L变换去除量化误差图像的谱间相关性 ,对K L变换后的特征图像采用预测树的方法进一步去除谱间结构相关性和空间相关性。实验结果表明 。 The spatial and spectral decorrelation are important steps in the compression of multispectral remote sensing image. To obtain better decorrelation effect, in this paper, the vector quantization is employed into the compression of multispectral remote sensing image in order to decorrelate the spectral vectors corresponding to the same objects. Then the classified K_L transform is used to reduce the spectral correlation of quantization error image. Finally, the prediction tree is adopted to reduce the spectral correlation of structure and the spatial correlation of the eigenimages. The experimemtal results show that satisfactory compression effect, has been achieved using the methods introduced in this paper.
作者 倪林
出处 《遥感学报》 EI CSCD 北大核心 2001年第3期205-213,共9页 NATIONAL REMOTE SENSING BULLETIN
基金 中国科学技术大学青年基金!资助项目
关键词 矢量量化 分类K-L变换 预测树 遥感图像 近无损压缩 vector quantization classified K_L transform prediction tree
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参考文献4

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同被引文献34

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