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Landsat TM Satellite Image Restoration Using Kalman Filter

机译:使用卡尔曼滤波器的Landsat TM卫星图像恢复

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摘要

Satellites orbit the Earth and obtain continuous imagery of the ground below along their orbital path. The quality of satellite images propagating through the atmosphere is affected by phenomena such as scattering and absorption of light, and turbulence, which degrade the image by blurring it and reducing its contrast. The atmospheric Wiener filter, which corrects for turbulence blur, aerosol blur, and path radiance simultaneously, is implemented in digital restoration of Landsat TM (Thematic Mapper) imagery. Digital restoration results of Landsat TM imagery using the atmospheric Wiener filter were presented in the past. Here, a new approach for digital restoration of Landsat TM is presented by implementing a Kalman filter as an atmospheric filter, which corrects for turbulence blur, aerosol blur, and path radiance simultaneously. Turbulence MTF is calculated from meteorological data or estimated if no meteorological data were measured. Aerosol MTF is consistent with optical depth. The product of the two yields atmospheric MTF, which is implemented in both the atmospheric Wiener and Kalman filters. Restoration improves both smallness of size of resolvable detail and contrast. Restorations are quite apparent even under clear weather conditions. Here, restorations results of the atmospheric Kalman filter are presented along with those for the atmospheric Wiener filter. A way to determine which is the best restoration result and how good is the restored image is presented by a visual comparison and by considering several mathematical criteria. In general the Kalman restoration is superior, and inclusion of turbulence blur also leads to slightly improved restoration.
机译:卫星绕地球轨道运行,并沿其轨道路径获取下方地面的连续图像。通过大气传播的卫星图像的质量会受到诸如光的散射和吸收以及湍流等现象的影响,这些现象会通过模糊和降低对比度来降低图像质量。大气维纳滤镜可同时校正湍流模糊,气溶胶模糊和路径辐射度,并在Landsat TM(专题映射器)图像的数字恢复中实现。过去曾介绍过使用大气维纳滤波器的Landsat TM影像的数字恢复结果。在这里,通过将Kalman滤镜实现为大气滤镜,提出了一种Landsat TM数字恢复的新方法,该滤镜可以同时校正湍流模糊,气溶胶模糊和路径辐射。湍流MTF是从气象数据中计算得出的,或者如果未测量到气象数据,则进行估算。气溶胶MTF与光学深度一致。两者的乘积会产生大气MTF,这在大气维纳和卡尔曼滤波器中均实现。恢复可以同时减小可解决细节的大小和对比度。即使在晴朗的天气条件下,恢复也很明显。在此,介绍了大气卡尔曼滤波器的恢复结果以及大气维纳滤波器的恢复结果。通过视觉比较并考虑一些数学标准,可以确定哪种方法是最佳的修复结果,以及修复的图像的质量。总的来说,卡尔曼恢复是优越的,湍流模糊的引入也导致恢复略有改善。

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