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Image based atmospheric correction of remotely sensed images

机译:基于遥感影像的大气校正

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Remotely sensed data is an effective source of information for monitoring changes in land use and land cover. However remotely sensed images are often degraded due to atmospheric effects or physical limitations. Atmospheric correction minimizes or removes the atmospheric influences that are added to the pure signal of target and to extract more accurate information. The atmospheric correction is often considered critical pre-processing step to achieve full spectral information from every pixel especially with hyperspectral and multispectral data. In this paper, multispectral atmospheric correction approaches that require no ancillary data are implemented in spatial domain. They are tested on Landsat image consisting of 7 multispectral bands and their performance is evaluated using visual and statistical measures. The application of the atmospheric correction methods for vegetation analyses using Normalized Difference Vegetation Index is also presented in this paper.
机译:遥感数据是监测土地利用和土地覆盖变化的有效信息来源。但是,由于大气影响或物理限制,遥感影像通常会退化。大气校正可以最大程度地减少或消除添加到目标纯信号中的大气影响,并提取出更准确的信息。大气校正通常被认为是至关重要的预处理步骤,尤其是对于高光谱和多光谱数据,要获得每个像素的全部光谱信息。在本文中,在空间域中实现了不需要辅助数据的多光谱大气校正方法。在包含7个多光谱波段的Landsat图像上对它们进行了测试,并使用视觉和统计手段对它们的性能进行了评估。本文还介绍了大气校正方法在利用归一化植被指数进行植被分析中的应用。

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