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Applications of universal context modeling to lossless compression of gray-scale images

机译:通用上下文建模在灰度图像无损压缩中的应用

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摘要

Inspired by theoretical results on universal modeling, a general framework for sequential modeling of gray-scale images is proposed and applied to lossless compression. The model is based on stochastic complexity considerations and is implemented with a tree structure. It is efficiently estimated by a modification of the universal algorithm context. Several variants of the algorithm are described. The sequential, lossless compression schemes obtained when the context modeler is used with an arithmetic coder are tested with a representative set of gray-scale images. The compression ratios are compared with those obtained with state-of-the-art algorithms available in the literature, with the results of the comparison consistently favoring the proposed approach.
机译:受通用建模理论结果的启发,提出了灰度图像顺序建模的通用框架,并将其应用于无损压缩。该模型基于随机复杂性考虑,并以树结构实现。通过修改通用算法上下文可以有效地进行估算。描述了该算法的几种变体。将上下文建模器与算术编码器一起使用时获得的顺序无损压缩方案将与一组代表性的灰度图像一起进行测试。将压缩率与文献中提供的最新算法所获得的压缩率进行比较,比较结果始终有利于所提出的方法。

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