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Adaptive coding of images via multiresolution ICA

机译:通过多分辨率ICA自适应编码图像

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Multiresolution (MR) representations have been very successful in image encoding, due to both their algorithmic performance and coding efficiency. However these transforms are fixed, suggesting that coding efficiency could be further improved if a multiresolution code could be adapted to a specific signal class. Among adaptive coding methods, independent component analysis (ICA) provides the best linear code by finding a linear transform with maximally independent coefficients, given a specific signal distribution. This technique, however, scales poorly with the dimensionality of the data, and has been ill-suited for large-scale image coding. We propose a hybrid method (multi-resolution ICA) which derives an ICA basis for each subband space produced by a given MR transform over the image class. We find that this method produces a significantly more efficient code compared to the MR transform alone. We provide both quantitative and qualitative assessments of coding performance, and illustrate improvement over standard (i.e., non-adaptive) wavelet-based representations such as that used in JPEG2000.
机译:由于多分辨率(MR)的算法性能和编码效率,它们在图像编码中非常成功。但是,这些变换是固定的,这表明如果可以将多分辨率代码适应特定的信号类别,则可以进一步提高编码效率。在自适应编码方法中,给定特定信号分布,独立分量分析(ICA)通过找到具有最大独立系数的线性变换来提供最佳线性编码。但是,该技术不能很好地随着数据的维数进行缩放,因此不适用于大规模图像编码。我们提出一种混合方法(多分辨率ICA),该方法为图像类上的给定MR变换所产生的每个子带空间推导ICA基础。我们发现,与仅使用MR转换相比,此方法产生的代码效率明显更高。我们提供了编码性能的定量和定性评估,并说明了对基于小波的标准(即非自适应)小波表示形式(例如JPEG2000中使用的表示形式)的改进。

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