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On optimal transforms in lossy compression of multicomponent images with JPEG2000

机译:使用JPEG2000进行多分量图像有损压缩的最佳变换

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It is well known in transform coding, that the Karhunen-Loeve transform (KLT) is optimal only for Gaussian sources. However, in many applications using JPEG2000 Part 2 codecs, the KLT is generally considered as the optimal linear transform for reducing redundancies between components of multicomponent images. In this paper we present the criterion satisfied by an optimal transform of a JPEG2000 compatible compression scheme, under high resolution quantization hypothesis and without the Gaussianity assumption. We also introduce two variants of the compression scheme and the associated criteria minimized by optimal transforms. Then we give two algorithms, derived of the Independent Component Analysis algorithm ICAinf, that compute the optimal transform, one under the orthogonality constraint and the other without no constraint but invertibility. The computational complexity of the algorithms is evaluated. Finally, comparisons with the KLT are presented on hyperspectral and multispectral satellite images with different measures of distortion, as it is recommended for evaluating the performances of the codec in applications (like classification and target detection). For hyperspectral images, we observe a little but significant gain at medium and high bit-rates of the optimal transforms compared to the KLT. The actual drawback of the optimal transforms is their heavy computational complexity.
机译:在变换编码中众所周知,Karhunen-Loeve变换(KLT)仅对于高斯源是最佳的。但是,在许多使用JP​​EG2000第2部分编解码器的应用程序中,通常将KLT视为减少多分量图像各分量之间冗余的最佳线性变换。在本文中,我们提出了在高分辨率量化假设下且没有高斯假设的情况下,通过对JPEG2000兼容压缩方案进行最佳变换而满足的标准。我们还介绍了压缩方案的两个变体以及通过最佳变换最小化的关联标准。然后,我们给出了两种算法,它们是从独立分量分析算法ICAinf中派生的,它们可以计算出最佳变换,一种是在正交性约束下,另一种没有约束但具有可逆性。评估算法的计算复杂性。最后,与KLT的比较在具有不同失真度的高光谱和多光谱卫星图像上进行了介绍,建议将其用于评估编解码器在应用中的性能(例如分类和目标检测)。对于高光谱图像,与KLT相比,在中等和高比特率的最佳变换上我们观察到了一点点但显着的增益。最佳变换的实际缺点是计算量大。

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