Joint optimization of run-length coding, context-based arithmetic coding and quantization step sizes

E. Yang, Longji Wang
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引用次数: 6

Abstract

Given the JPEG syntax, the rate-distortion performance a JPEG optimization method can improve is limited. Part of the limitation comes from the poor context modeling used by a JPEG coder, which fails to take full advantage of the pixel correlation existing in both space and frequency domains. Consequently, context-based arithmetic coding is proposed in the literature to replace the Huffman coding used in JPEG for better rate-distortion performance. In this paper, we extend our previous JPEG compatible joint optimization algorithm to a context-based arithmetic coding scenario. Experimental results show that an extra of 10∼15% size reduction or 0.5 dB compression gain can be achieved on top of JPEG compatible joint optimization with the same level of complexity.
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游程编码、基于上下文的算术编码和量化步长联合优化
考虑到JPEG的语法,JPEG优化方法所能改善的率失真性能是有限的。部分限制来自JPEG编码器使用的糟糕的上下文建模,它不能充分利用空间和频域中存在的像素相关性。因此,文献中提出了基于上下文的算术编码来取代JPEG中使用的霍夫曼编码,以获得更好的率失真性能。在本文中,我们将先前的JPEG兼容联合优化算法扩展到基于上下文的算术编码场景。实验结果表明,在相同复杂度的JPEG兼容联合优化的基础上,可以实现10 ~ 15%的尺寸减小或0.5 dB的压缩增益。
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