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Sharpening Misrsat-1 data using Super-Resolution and HPF fusion methods

机译:使用超分辨率和HPF融合方法锐化Misrsat-1数据

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Spatial resolution enhancement is usually required in the remote sensing field. Super-Resolution (SR) is a fusion process for reconstructing a High-Resolution (HR) image from several Low-Resolution (LR) images covering the same region in the world. It is difficult, however, for some satellite remote sensing arrangements to get several images of the same scene in a short time, especially for highly dynamic scenes. In this paper, we study the SR process of Misrsat-1 data using sub-pixel shifts between bands 1, 3, and the Panchromatic (PAN) sub-band. Due to the difference in radiometry between the different bands, we propose performing the SR process between the high-pass details extracted from bands 1, 3, and the PAN, and then using the High-Pass Filter (HPF) fusion method for sharpening the Multi-Spectral (MS) image of Misrsat-1 using the super-resolved high-pass details. The comparison of the proposed method with the cubic convolution interpolation method has shown an enhancement in the image entropy, Point Spread Function (PSF), and Modulation Transfer Function (MTF).
机译:在遥感领域中通常需要增强空间分辨率。超分辨率(SR)是一种融合过程,用于从覆盖世界同一区域的几张低分辨率(LR)图像中重建高分辨率(HR)图像。但是,对于某些卫星遥感装置来说,很难在短时间内获得同一场景的多个图像,特别是对于高度动态的场景。在本文中,我们使用频带1,频带3和全色(PAN)子频带之间的子像素移位来研究Misrsat-1数据的SR过程。由于不同频段之间的辐射度差异,我们建议在从频段1、3和PAN提取的高通细节之间执行SR过程,然后使用高通滤波器(HPF)融合方法来锐化使用超分辨高通细节的Misrsat-1的多光谱(MS)图像。所提出的方法与三次卷积插值方法的比较显示出图像熵,点扩展函数(PSF)和调制传递函数(MTF)的增强。

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