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A lossless color image compression method based on a new reversible color transform

机译:基于新的可逆色彩变换的无损彩色图像压缩方法

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In many conventional lossless color image compression methods, the pixels or lines from each color component are interleaved, and then they are predicted and coded. Also, it has been reported that the reversible color transform (RCT) followed by a grayscale encoder gives higher coding gain than the independent compression of each channel does. In this paper, we propose a lossless color image compression method that concentrates on the efficient coding of chrominance channels with a new color transform and hierarchical coding of chrominance channel pixels. Specifically, we first transform an input image with R, G, and B color space into Y CuCv color space using the proposed RCT, which shows better decorrelation performance than the existing RCT. After the color transformation, the luminance channel Y is compressed by a conventional lossless image coder, such as JPEG-LS, CALIC, or JPEG2000 lossless. Unlike the luminance channel, the chrominance channels Cu and Cv are relatively smooth and have different statistical characteristic. Therefore, the chrominance channels are differently encoded based on a hierarchical decomposition and directional prediction. Finally, effective context modeling for prediction residuals is adopted. Experimental results show that the proposed method improves the compression performance by 40% over the conventional channel independent compression methods and 5% over the existing methods that exploit the channel correlation.
机译:在许多常规的无损彩色图像压缩方法中,来自每个颜色分量的像素或线被交织,然后对其进行预测和编码。另外,据报道,跟着每个通道的独立压缩相比,跟随着灰度编码器的可逆颜色变换(RCT)给出了更高的编码增益。在本文中,我们提出了一种无损彩色图像压缩方法,该方法着重于利用新的色彩变换对色度通道进行有效的编码和色度通道像素的分层编码。具体来说,我们首先使用提出的RCT将具有R,G和B颜色空间的输入图像转换为YC u C v 颜色空间,该图像显示出比R,G和B更好的去相关性能。现有的RCT。在进行颜色变换之后,亮度通道Y由诸如JPEG-LS,CALIC或JPEG2000无损的常规无损图像编码器压缩。与亮度通道不同,色度通道C u 和C v 比较平滑,并且具有不同的统计特性。因此,基于分级分解和方向预测来对色度信道进行不同地编码。最后,采用有效的上下文建模来预测残差。实验结果表明,与传统的独立于通道的压缩方法相比,所提方法的压缩性能提高了40%,与利用通道相关性的现有方法相比,压缩性能提高了5%。

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