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基于局部性和历史的码本更新的自适应矢量量化

Adaptive vector quantization with codebook updating based on locality and history.

作者信息

Shen Guobin, Zeng Bing, Liou Ming-L

机构信息

Microsoft Res. Asia, Beijing, China.

出版信息

IEEE Trans Image Process. 2003;12(3):283-95. doi: 10.1109/TIP.2003.810915.

Abstract

In this paper, we propose two techniques that are applicable to any adaptive vector quantization (AVQ) systems. The first one is called the locality-based codebook updating: when performing a codebook updating, we update the operational codebook using not only the current input vector but also the codewords at all positions within a selected neighboring area (called the locality), while the operational codebook is organized in a "cache" manner. This technique is rationalized by the high correlation cross neighboring vectors that facilitates a more efficient coding of the indices of the codewords chosen from the codebook. The second technique is called the history aid, which makes use of the information of previously coded vectors to quantize the current input vector if it is used to update the operational codebook. A more effective AVQ system is obtained by combining together the history aid and the locality-based updating. Extensive simulations are carried out to demonstrate the improved results achieved by our AVQ systems. Particularly, when the operational codebook size is relatively small, the improvement over a benchmark AVQ system--the generalized threshold replenishment (GTR)--is drastic. For example, when the size is 32, testing on a nonstationary signal (containing frames from different video sequences, ordered in the concatenating or interleaving format) shows that the combination of history aid and locality-based updating offers more than 4 dB gain over GTR at 0.5 bpp.

摘要

在本文中,我们提出了两种适用于任何自适应矢量量化(AVQ)系统的技术。第一种称为基于局部性的码本更新:在执行码本更新时,我们不仅使用当前输入矢量,还使用选定邻域(称为局部性)内所有位置的码字来更新操作码本,而操作码本是以“缓存”方式组织的。这种技术的合理性在于相邻矢量之间的高度相关性,这有助于更有效地对从码本中选择的码字索引进行编码。第二种技术称为历史辅助,它利用先前编码矢量的信息来量化当前输入矢量(如果该矢量用于更新操作码本)。通过将历史辅助和基于局部性的更新相结合,可以获得更有效的AVQ系统。我们进行了广泛的仿真,以证明我们的AVQ系统所取得的改进结果。特别是,当操作码本大小相对较小时,相对于基准AVQ系统——广义阈值补充(GTR)——的改进非常显著。例如,当大小为32时,在非平稳信号(包含来自不同视频序列的帧,以拼接或交织格式排序)上进行测试表明,在0.5比特每像素(bpp)时,历史辅助和基于局部性的更新相结合比GTR提供了超过4 dB的增益。

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