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Lossy compression of MERIS superspectral images with exogenous quasi optimal coding transforms

机译:利用外源准最优编码变换对MERIS超光谱图像进行有损压缩

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Our research focuses on reducing complexity of hyperspectral image codecs based on transform and/or subband coding, so they can be on-board a satellite. It is well-known that the Karhunen-Loeve Transform (KLT) can be sub-optimal in transform coding for non Gaussian data. However, it is generally recommended as the best calculable linear coding transform in practice. Now, the concept and the computation of optimal coding transforms (OCT), under low restrictive hypotheses at high bit-rates, were carried out and adapted to a compression scheme compatible with both the JPEG2000 Part2 standard and the CCSDS recommendations for on-board satellite image compression, leading to the concept and computation of Optimal Spectral Transforms (OST). These linear transforms are optimal for reducing spectral redundancies of multi- or hyper-spectral images, when the spatial redundancies are reduced with a fixed 2-D Discrete Wavelet Transform (DWT). The problem of OST is their heavy computational cost. In this paper we present the performances in coding of a quasi optimal spectral transform, called exogenous OrthOST, obtained by learning an orthogonal OST on a sample of superspectral images from the spectrometer MERIS. The performances are presented in terms of bit-rate versus distortion for four various distortions and compared to the ones of the KLT. We observe good performances of the exogenous OrthOST, as it was the case on Hyperion hyper-spectral images in previous works.
机译:我们的研究重点在于降低基于变换和/或子带编码的高光谱图像编解码器的复杂度,因此它们可以安装在卫星上。众所周知,在非高斯数据的变换编码中,Karhunen-Loeve变换(KLT)可能不是最佳的。但是,通常建议将其作为实践中最佳的可计算线性编码转换。现在,在高比特率的低限制性假设下,进行了最佳编码变换(OCT)的概念和计算,并使其适应于与JPEG2000 Part2标准和CCSDS机载卫星建议兼容的压缩方案图像压缩,从而导致了最佳光谱变换(OST)的概念和计算。当使用固定的2-D离散小波变换(DWT)减少空间冗余时,这些线性变换对于减少多光谱或高光谱图像的光谱冗余是最佳的。 OST的问题是其沉重的计算成本。在本文中,我们介绍了通过学习来自光谱仪MERIS的超光谱图像样本上的正交OST获得的准最优光谱变换(称为外源OrthOST)的编码性能。这些性能是根据四种失真的比特率与失真的关系来表示的,并与KLT的失真进行了比较。我们观察到外源OrthOST的良好性能,就像以前工作中Hyperion高光谱图像的情况一样。

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