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On context-based entropy coding of block transform coefficients

机译:基于上下文的块变换系数熵编码

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It has been well established that state-of-the-art wavelet image coders outperform block transform image coders in the rate-distortion (R-D) sense by a wide margin. An often asked question is: how much of the coding improvement is due to the transform and how much is due to the encoding strategy? A notable observation is that each block transform coefficient is highly correlated with its neighbors within the same block as well as its neighbors within the same subband. Current block transform coders suffer from poor context modeling and fail to take full advantage of intra- and inter-block correlation in both space and frequency sense. This paper presents a simple, fast and efficient adaptive block transform image coding algorithm based on high-order space-frequency, context modeling. Despite the simplicity constraints, coding results show that the proposed codec achieves competitive R-D performances comparing to the best wavelet codecs in the current literature.
机译:公认的是,最新的小波图像编码器在速率失真(R-D)的意义上要远远胜过块变换图像编码器。一个经常被问到的问题是:编码的改进有多少归因于变换,编码的改进有多归因于编码?值得注意的观察是,每个块变换系数与其在同一块内的邻居以及在同一子带内的邻居高度相关。当前的块变换编码器遭受不良的上下文建模的困扰,并且在空间和频率意义上都无法充分利用块内和块间相关性。本文提出了一种基于高阶空频上下文建模的简单,快速,高效的自适应块变换图像编码算法。尽管存在简单性方面的限制,但编码结果表明,与当前文献中的最佳小波编解码器相比,所提出的编解码器可实现具有竞争力的R-D性能。

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