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Hierarchy embedded differential image for progressive transmission using lossless compression

机译:分层嵌入的差分图像,使用无损压缩进行渐进式传输

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Algorithms for constructing differential images with hierarchical data structure are presented. The data structures are simple, efficient, and ideal for viewing images in progressive transmission using lossless compression. Unlike conventional pyramidal structures, the total number of nodes required to build the structure is the same as the number of pixels in an image at the same time its hierarchy is preserved. These structures are constructed using subsampling or mean-sampling methods for predictors with block sizes of 2/spl times/2 or 3/spl times/3. Experiments were conducted to compare these structures in terms of their first order entropy and RMS errors in the reconstruction process. Results indicate that the mean-sampling with circular-difference method yields the lowest entropy, comparable to that with 1-D lossless DPCM predictive coding. Lastly, hardware for the efficient construction and access of the hierarchical structures is discussed and evaluated.
机译:提出了利用分层数据结构构造差分图像的算法。数据结构简单,高效,非常适合使用无损压缩以渐进传输方式查看图像。与常规的金字塔结构不同,构建该结构所需的节点总数与图像的像素数目相同,同时保留了其层次结构。对于子块大小为2 / spl次/ 2或3 / spl次/ 3的预测变量,使用子采样或均采样方法构造这些结构。进行了实验,以比较它们在重建过程中的一阶熵和RMS误差。结果表明,与采用一维无损DPCM预测编码的情况相比,使用圆差法进行均值采样的熵最低。最后,讨论并评估了用于高效构建和访问层次结构的硬件。

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