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Morphological tools for spatial and multiscale analysis of passive microwave remote sensing data

机译:无源微波遥感数据的空间和多尺度分析的形态学工具

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Earth Observation through microwave radiometry is particularly useful for various applications, e.g., soil moisture, ocean salinity, or sea ice cover. However, most of the image processing/data analysis techniques aiming to provide automatic measurement from remote sensing data do not rely on any spatial information, similarly to the early years of optical/hyperspectral remote sensing. After more than a decade of research, it has been observed that spatial information can very significantly improve the accuracy of land use/land cover maps. In this context, the goal of this paper is to propose a few insights on how spatial information can benefit to (passive) microwave remote sensing. To do so, we focus here on mathematical morphology and provide some illustrative examples where morphological operators can improve the processing and analysis of microwave radiometric information. Such tools had great influence on multispectral/hyperspectral remote sensing in the past, and are expected to have a similar impact in the microwave field in the future, with the launch of upcoming missions with improved spatial resolution, e.g. SMOS-NEXT.
机译:通过微波辐射测定的地球观察对于各种应用特别有用,例如土壤水分,海洋盐水或海冰盖。然而,主要是从遥感数据提供自动测量的大多数图像处理/数据分析技术不依赖于任何空间信息,类似于光学/超光谱遥感的早期多年。经过十多年的研究,已经观察到空间信息可以非常显着提高土地使用/陆地覆盖图的准确性。在这种情况下,本文的目标是提出一些关于空间信息如何受益于(被动)微波遥感的洞察。为此,我们专注于数学形态,并提供一些说明性的例子,其中形态运算符可以改善微波辐射信息的加工和分析。这些工具过去对多光谱/高光谱遥感有很大影响,预计将来在未来的微波领域产生类似的影响,推出即将到来的空间分辨率,例如具有改进的空间分辨率的任务。 smos-next。

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