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Cloud Detection and Characterization using Topological Data Analysis

机译:使用拓扑数据分析云检测和表征

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The presence of cirrus clouds introduces complex heating and cooling effects on the atmosphere and can also interfere with remote sensing from satellite-based sensors or from high-altitude aircraft. Detection of cirrus clouds thus provides an opportunity for atmospheric correction to introduce accurate compensation to images of the earth's surface. Previous work on detection and characterization of cirrus clouds have been based on observing spectral signatures on a spectral channel with significant water absorption, or calculation of radiant intensity ratios over a water band to a reference spectral channel. Our proposed approach is based on applying computational homology to characterize the topological properties of cirrus clouds. We utilize an application called JPLEX to study the persistent homology of multi-dimensional simplicial complexes built from available hyperspectral or multispectral data. The technique has been successfully applied to discriminate subtle features in high dimensional noisy data sets. Previous examples include anomaly detection in hyperspectral images. The analysis makes use of the entire multidimensional data set (not just one or a combination of spectral bands) which may offer advantages in discriminating among various cloud types in a scene, as well as determining other characteristics of cirrus clouds such as altitude and thickness. Our initial computational experiment with an AVIRJS scene has demonstrated that JPLEX is able to discriminate between cumulus and cirrus clouds.
机译:卷云云的存在引入了大气中的复杂加热和冷却效果,并且还可以干扰卫星的传感器或高空飞机的遥感。因此,卷云云的检测为大气校正提供了大气校正的机会,以便对地球表面的图像引入准确的补偿。以前关于卷云云的检测和表征的研究基于观察具有显着吸水的光谱鉴定,或者在水带中计算到参考光谱通道的辐射强度比。我们所提出的方法是基于应用计算同源性来表征卷云云的拓扑性质。我们利用称为JPLEX的应用程序来研究从可用的高光谱或多光谱数据建造的多维单纯复合体的持续同源性。该技术已成功应用于鉴别高维噪声数据集中的微妙特征。以前的例子包括高光谱图像中的异常检测。分析利用整个多维数据集(不仅仅是一种或光谱带的组合),其可以提供在场景中各种云类型之间区分的优点,以及确定诸如高度和厚度的卷云云的其他特征。我们的初始计算实验具有AVIRJS现场的表明,JPLEX能够区分积云和卷云。

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