基于嵌入式四叉树Hilbert扫描的图像压缩算法:Hi-SET编码器的介绍

Jesús Jaime Moreno Escobar, X. Otazu
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引用次数: 5

摘要

在这项工作中,我们提出了一种基于嵌入式四树希尔伯特扫描(Hi-SET)的有效且计算简单的图像压缩算法。它允许将图像表示为沿分形函数的嵌入比特流。嵌入是现代图像压缩算法的一个重要特征,Salomon在[1,第614页]中引用了另一个特征,也许是唯一的一个特征,即在解码过程中的任何时刻,解码器输入的比特数都能达到最佳质量。Hi-SET还具有后一种特性。此外,编码器基于四叉树划分策略,该策略应用于图像变换结构,如离散余弦变换或小波变换,可以在频率和空间上获得能量聚类。编码算法由三个一般步骤组成,仅使用有效像素列表。开发了用于灰度和彩色图像压缩的编码器的实现。Hi-SET压缩图像平均比基于希尔伯特扫描的其他压缩技术获得的图像高6.20dB。此外,与JPEG2000编码器相比,Hi-SET在灰度压缩和彩色压缩方面分别提高了1.39dB和1.00dB的图像质量。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Image compression algorithm based on Hilbert Scanning of Embedded quadTrees: An introduction of the Hi-SET coder
In this work we present an effective and computationally simple algorithm for image compression based on Hilbert Scanning of Embedded quadTrees (Hi-SET). It allows to represent an image as an embedded bitstream along a fractal function. Embedding is an important feature of modern image compression algorithms, in this way Salomon in [1, pg. 614] cite that another feature and perhaps a unique one is the fact of achieving the best quality for the number of bits input by the decoder at any point during the decoding. Hi-SET possesses also this latter feature. Furthermore, the coder is based on a quadtree partition strategy, that applied to image transformation structures such as discrete cosine or wavelet transform allows to obtain an energy clustering both in frequency and space. The coding algorithm is composed of three general steps, using just a list of significant pixels. The implementation of the proposed coder is developed for gray-scale and color image compression. Hi-SET compressed images are, on average, 6.20dB better than the ones obtained by other compression techniques based on the Hilbert scanning. Moreover, Hi-SET improves the image quality in 1.39dB and 1.00dB in gray-scale and color compression, respectively, when compared with JPEG2000 coder.
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