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首页> 外文期刊>IEEE Journal on Selected Areas in Communications >Lossless image compression with a codebook of block scans
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Lossless image compression with a codebook of block scans

机译:使用块扫描码本进行无损图像压缩

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摘要

When applying predictive compression on image data there is an implicit assumption that the image is scanned in a particular order. Clearly, depending on the image, a different scanning order may give better compression. In earlier work, we had defined the notion of a prediction tree (or scan) which defines a scanning order for an image. An image can be decorrelated by taking differences among adjacent pixels along any traversal of a scan. Given an image, an optimal scan that minimizes the absolute sum of the differences encountered can be computed efficiently. However, the number of bits required to encode an optimal scan turns out to be prohibitive for most applications. In this paper we present a prediction scheme that partitions an image into blocks and for each block selects a scan from a codebook of scans such that the resulting prediction error is minimized. Techniques based on clustering are developed for the design of a codebook of scans. Design of both semiadaptive and adaptive codebooks is considered. We also combine the new prediction scheme with an effective error modeling scheme. Implementation results are then given, which compare very favorably with the JPEG lossless compression standard.
机译:在对图像数据应用预测压缩时,存在一个隐式假设,即按特定顺序扫描图像。显然,根据图像,不同的扫描顺序可能会带来更好的压缩效果。在较早的工作中,我们定义了预测树(或扫描)的概念,该概念定义了图像的扫描顺序。通过沿扫描的任何遍历获取相邻像素之间的差异,可以对图像进行去相关。给定图像,可以有效地计算使遇到的差异的绝对和最小的最佳扫描。但是,对于大多数应用而言,编码最佳扫描所需的位数却被禁止。在本文中,我们提出了一种预测方案,该方案将图像划分为多个块,并为每个块从扫描码本中选择一个扫描,以使生成的预测误差最小。开发了基于聚类的技术来设计扫描码本。考虑了半自适应和自适应码本的设计。我们还将新的预测方案与有效的错误建模方案相结合。然后给出了实现结果,与JPEG无损压缩标准相比,该结果非常理想。

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