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Lossless Compression of Color Map Images by Context Tree Modeling

机译:通过上下文树建模对彩色地图图像进行无损压缩

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Significant lossless compression results of color map images have been obtained by dividing the color maps into layers and by compressing the binary layers separately using an optimized context tree model that exploits interlayer dependencies. Even though the use of a binary alphabet simplifies the context tree construction and exploits spatial dependencies efficiently, it is expected that an equivalent or better result would be obtained by operating directly on the color image without layer separation. In this paper, we extend the previous context-tree-based method to operate on color values instead of binary layers. We first generate an n-ary context tree by constructing a complete tree up to a predefined depth, and then prune out nodes that do not provide compression improvements. Experiments show that the proposed method outperforms existing methods for a large set of different color map images
机译:通过将色图划分为多个层并使用利用层间依赖性的优化上下文树模型分别压缩二进制层,已获得了色图图像的重要无损压缩结果。即使使用二进制字母简化了上下文树的构造并有效地利用了空间依赖性,但是可以预期,通过直接在彩色图像上进行操作而无需进行层分离,可以获得同等或更佳的结果。在本文中,我们扩展了以前的基于上下文树的方法,以对颜色值(而不是二进制层)进行操作。我们首先通过构造一个完整的树来生成n元上下文树,该树的深度达到预定义的深度,然后修剪掉没有提供压缩改进功能的节点。实验表明,对于大量不同的彩色地图图像,该方法优于现有方法

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