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High order entropy-constrained residual VQ for lossless compression of images

机译:高阶熵约束残差VQ用于图像的无损压缩

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High order entropy coding is a powerful technique for exploiting high order statistical dependencies. However, the exponentially high complexity associated with such a method often discourages its use. In this paper, an entropy-constrained residual vector quantization method is proposed for lossless compression of images. The method consists of first quantizing the input image using a high order entropy-constrained residual vector quantizer and then coding the residual image using a first order entropy coder. The distortion measure used in the entropy-constrained optimization is essentially the first order entropy of the residual image. Experimental results show very competitive performance.
机译:高阶熵编码是一种利用高阶统计依赖性的强大技术。然而,与这种方法相关的指数级高复杂性经常阻碍其使用。本文提出了一种熵约束残差矢量量化方法,用于图像的无损压缩。该方法包括首先使用高阶熵约束的残差矢量量化器对输入图像进行量化,然后使用一阶熵编码器对残差图像进行编码。熵约束优化中使用的失真度量本质上是残差图像的一阶熵。实验结果显示出非常出色的性能。

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