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首页> 外文期刊>Journal of Advanced Computatioanl Intelligence and Intelligent Informatics >Effective Multiple Vector Quantization for Image Compression
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Effective Multiple Vector Quantization for Image Compression

机译:有效的多矢量量化图像压缩

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摘要

Multiple-VQ methods generate multiple independent codebooks to compress an image by using a neural network algorithm. In the image restoration, the methods restore low quality images from the multiple code-books, and then combine the low quality ones into a high quality one. However, the naive implementation of these methods increases the compressed data size too much. This paper proposes two improving techniques to this problem: "index inference" and "ranking based index coding." It is shown that index inference and ranking based index coding are effective for smaller and larger codebook sizes, respectively.
机译:多个VQ方法使用神经网络算法生成多个独立的代码本来压缩图像。在图像恢复中,这些方法从多个码本中恢复低质量的图像,然后将低质量的图像组合成高质量的图像。但是,这些方法的简单实现大大增加了压缩数据的大小。本文针对此问题提出了两种改进技术:“索引推断”和“基于排名的索引编码”。结果表明,基于索引推断和基于排名的索引编码分别对较小和较大的码本大小有效。

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