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Improved Statistically Based Retrievals via Spatial-Spectral Data Compression for IASI Data

机译:通过空间光谱数据压缩对IASI数据进行改进的基于统计的检索

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In this paper, we analyze the effect of spatial and spectral compression on the performance of statistically based retrieval. Although the quality of the information is not completely preserved during the coding process, experiments reveal that a certain amount of compression may yield a positive impact on the accuracy of retrievals. We unveil two strategies, both with interesting benefits: either to apply a very high compression, which still maintains the same retrieval performance as that obtained for uncompressed data; or to apply a moderate to high compression, which improves the performance. As a second contribution of this paper, we focus on the origins of these benefits. On the one hand, we show that a certain amount of noise is removed during the compression stage, which benefits the retrievals performance. On the other hand, we analyze the effect of compression on spectral/ spatial regularization (smoothing). We quantify the amount of information shared among the spatial neighbors for the different methods and compression ratios. We also propose a simple strategy to specifically exploit spectral and spatial relations and find that, when these relations are taken into account beforehand, the benefits of compression are reduced. These experiments suggest that compression can be understood as an indirect way to regularize the data and exploit spatial neighbors information, which improves the performance of pixelwise statistics-based retrieval algorithms.
机译:在本文中,我们分析了空间和频谱压缩对基于统计的检索性能的影响。尽管在编码过程中并未完全保留信息的质量,但实验表明,一定程度的压缩可能会对检索的准确性产生积极影响。我们推出了两种策略,它们都有很多有趣的好处:要么应用非常高的压缩率,但仍然保持与未压缩数据相同的检索性能;或应用中度到高压缩率,以提高性能。作为本文的第二个贡献,我们集中于这些好处的起源。一方面,我们表明在压缩阶段可以消除一定量的噪声,这有利于检索性能。另一方面,我们分析了压缩对频谱/空间正则化(平滑)的影响。我们针对不同方法和压缩率对空间邻居之间共享的信息量进行量化。我们还提出了一种简单的策略来专门利用光谱和空间关系,并发现,如果事先考虑这些关系,则会降低压缩的好处。这些实验表明,可以将压缩理解为一种规整数据和利用空间邻居信息的间接方法,从而提高了基于像素统计的检索算法的性能。

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