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Model-based vector quantization with application to remotely sensed image data

机译:基于模型的矢量量化及其在遥感图像数据中的应用

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Model-based vector quantization (MVQ) is introduced here as a variant of vector quantization (VQ). MVQ has the asymmetrical computational properties of conventional VQ, but does not require the use of pregenerated codebooks. This is a great advantage, since codebook generation is usually a computationally intensive process, and maintenance of codebooks for coding and decoding can pose difficulties. MVQ uses a simple mathematical model for mean removed errors combined with a human visual system model to generate parameterized codebooks. The error model parameter (/spl lambda/) is included with the compressed image as side information from which the same codebook is regenerated for decoding. As far as the user is concerned, MVQ is a codebookless VQ variant. After a brief introduction, the problems associated with codebook generation and maintenance are discussed. We then give a description of the MVQ algorithm, followed by an evaluation of the performance of MVQ on remotely sensed image data sets from NASA sources. The results obtained with MVQ are compared with other VQ techniques and JPEG/DCT. Finally, we demonstrate the performance of MVQ as a part of a progressive compression system suitable for use in an image archival and distribution installation.
机译:作为矢量量化(VQ)的变体,此处介绍了基于模型的矢量量化(MVQ)。 MVQ具有常规VQ的不对称计算特性,但不需要使用预生成的代码本。这是一个很大的优点,因为码本的生成通常是一个计算量大的过程,并且维护码本以进行编码和解码可能会带来困难。 MVQ使用简单的数学模型来消除均值误差,并结合人类视觉系统模型来生成参数化的密码本。错误模型参数(/ spl lambda /)包含在压缩图像中,作为附带信息,可从该附带信息中重新生成相同的密码本以进行解码。就用户而言,MVQ是无码本的VQ变体。在简要介绍之后,讨论了与码本生成和维护相关的问题。然后,我们对MVQ算法进行描述,然后对NASA来源的遥感图像数据集上的MVQ性能进行评估。使用MVQ获得的结果与其他VQ技术和JPEG / DCT进行了比较。最后,我们演示了MVQ作为渐进压缩系统一部分的性能,该渐进压缩系统适用于图像存档和发行安装。

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