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Experimental Comparison of Multi-Sharpening Methods Applied To Sentinel-2 MSI and Sentinel-3 OLCI Images

机译:应用于Sentinel-2 MSI和Sentinel-3 OLCI图像的多锐化方法的实验比较

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Multi-spectral images are crucial to detect and to understand phenomena in marine observation. However, in coastal areas, these phenomena are complex and their analyze requires multi-spectral images with both a high spatial and spectral resolution. Unfortunately, no satellite is able to provide both at the same time. As a consequence, multi-sharpening techniques—a.k.a. fusion or super- resolution of multi-spectral and/or hyper-spectral images—were proposed and consist of combining information from at least two multi-spectral images with different spatial and spectral resolutions. The fused image then combines their best characteristics. Various methods—based on different strategies and tools—have been proposed to solve this problem. This article presents a comparative review of fusion methods applied to Sentinel-2 MSI (13 spectral bands with a spatial resolution ranging from 10 to 60 m) and Sentinel-3 OLCI (21 spectral bands with a spatial resolution of 300 m) images. Indeed, both satellites are extensively used in marine observation and, to the best of the authors’ knowledge, the fusion of their data was partially investigated (and not in the way we aim to do in this paper). To that end, we provide both a quantitative analysis of the performance of some state-of-the-art methods on simulated images, and a qualitative analysis on real images.
机译:多光谱图像对于检测和了解海洋观察中的现象至关重要。然而,在沿海地区,这些现象是复杂的,并且它们的分析需要具有高空间和光谱分辨率的多光谱图像。不幸的是,没有卫星可以同时提供两者。结果,多锐化技术-A.k.a。提出了多光谱和/或超光谱图像的融合或超分辨率,并由与具有不同空间和光谱分辨率的至少两个多光谱图像组合信息。然后融合图像结合了它们的最佳特性。已经提出了各种方法 - 基于不同的策略和工具 - 已经提出解决这个问题。本文介绍了应用于Sentinel-2 MSI的融合方法的比较审查(带有来自10至60米的空间分辨率的13个光谱带,Sentinel-3 OLCI(具有300μm的空间分辨率的21个光谱带)。实际上,两颗卫星都广泛用于海洋观察,并据作者的知识,他们的数据融合是部分调查(而不是我们旨在在本文中进行的方式)。为此,我们提供了对模拟图像的一些最先进方法的性能的定量分析,以及对真实图像的定性分析。

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