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Subband/VQ coding of color images with perceptually optimal bitallocation

机译:具有感知最佳位分配的彩色图像的子带/ VQ编码

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Subband coding and vector quantization combined can provide a powerful method for compressing color images. The use of properties of the human visual system can increase the performance of such a system and allow one to achieve very high quality reconstructed images at compression ratios exceeding 10:1. The authors design a color subband-vector quantization system, and formulate the bit allocation problem as an optimization problem where the objective function depends on the distortion-rate curves of the quantizers and on a set of perceptual weights. These weights are derived from data provided by measurements of the mean detection threshold of the human visual system for color transitions along the luminance, red-green, and blue-yellow directions. Minimization of the objective function constrained by the desired bit rate gives a perceptually optimal bit allocation. Three subband/VQ cases are examined. In the first two cases (case 1 and case 2), the color components of the lowest frequency subband are scalar quantized. Case 1 combines the three color components of each pixel of the higher frequency subbands into a three-dimensional vector, while case 2 creates four-dimensional vectors from 2×2 blocks in each subband color component. The third case (case 3) is the same as case 2, except that the chrominance components of the lowest frequency subband are also vector quantized with 2×2 blocks in each component. To obtain the required compression ratio and the high color fidelity required for HDTV applications, the vector quantization is done in C.I.E. L*a*b* space and AC1C2 space
机译:子带编码和矢量量化相结合可以为压缩彩色图像提供强大的方法。使用人类视觉系统的属性可以提高这种系统的性能,并允许人们以超过10:1的压缩比获得非常高质量的重建图像。作者设计了一个彩色子带矢量量化系统,并将位分配问题表述为优化问题,其中目标函数取决于量化器的失真率曲线和一组感知权重。这些权重是从对沿亮度,红绿色和蓝黄色方向的颜色过渡的人类视觉系统的平均检测阈值的测量提供的数据中得出的。受期望的比特率约束的目标函数的最小化给出了感知上最佳的比特分配。检查了三个子带/ VQ情况。在前两种情况下(情况1和情况2),将最低频率子带的颜色分量进行标量量化。情况1将较高频率子带的每个像素的三个颜色分量组合成三维向量,而情况2从每个子带颜色分量中的2×2块创建三维向量。第三种情况(情况3)与情况2相同,除了最低频率子带的色度分量也用每个分量中的2×2块进行矢量量化。为了获得HDTV应用所需的压缩率和高色彩保真度,矢量量化是在C.I.E. L * a * b *空间和AC1C2空间

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