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Mapping shadows in very high-resolution satellite data using HSV and edge detection techniques

机译:使用HSV和边缘检测技术在超高分辨率卫星数据中绘制阴影

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Multispectral scanners (MSS) such as IKONOS have very high spatial resolution and therefore, provide excellent source of information about terrestrial features. The images from these scanners may contain shadows that can lead to partial or complete loss of radiometric information, leading to misinterpretation or inaccurate classification. In addition, the identification of shadows is critical for several applications. The goal of this study is to develop computer-based algorithms to detect shadows from IKONOS panchromatic (1 × 1 m) and MSS bands (4 × 4 m). We converted subsets of IKONOS pan and MSS images over New York City to HSV color space, and used histogram analysis to determine an intensity threshold. Potential sunlit and shadow areas were demarcated and edge detection techniques were employed to eliminate the non-shadow, low-intensity areas and identify shadow areas on the image subsets. We tested the results on a time series of datasets to develop a robust model that has the capability to detect shadows and extract them from high-resolution satellite imagery.
机译:诸如IKONOS的多光谱扫描仪(MSS)具有很高的空间分辨率,因此可提供有关地面特征的极佳信息源。这些扫描仪发出的图像可能包含阴影,这些阴影可能会导致辐射信息的部分或全部丢失,从而导致误解或分类不正确。此外,阴影的识别对于多种应用至关重要。这项研究的目的是开发基于计算机的算法,以检测IKONOS全色(1×1 m)和MSS波段(4×4 m)的阴影。我们将纽约市的IKONOS平移和MSS图像子集转换为HSV颜色空间,并使用直方图分析来确定强度阈值。划定了潜在的阳光照射区域和阴影区域,并使用边缘检测技术消除了非阴影,低强度区域并在图像子集上标识了阴影区域。我们在数据集的时间序列上测试了结果,以开发出一个强大的模型,该模型具有检测阴影并将其从高分辨率卫星图像中提取的功能。

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