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Super Resolution of Remote Sensing Images using Edge-Directed Radial Basis Functions

机译:使用边缘定向径向基函数的超高分辨率遥感影像

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Edge-Directed Radial Basis Functions (EDRBF) are used to compute super resolution(SR) image from a given set of low resolution (LR) images differing in subpixel shifts. The algorithm is tested on remote sensing images and compared for accuracy with other well-known algorithms such as Iterative Back Projection (IBP), Maximum Likelihood (ML) algorithm, interpolation of scattered points using Nearest Neighbor (NN) and Inversed Distance Weighted (IDW) interpolation, and Radial Basis Functin(RBF) . The accuracy of SR depends on various factors besides the algorithm (ⅰ) number of subpixel shitted LR images (ⅱ) accuracy with which the LR shifts are estimated by registration algorithms (ⅲ) and the targeted spatial resolution of SR. In our studies, the accuracy of EDRBF is compared with other algorithms keeping these factors constant. The algorithm has two steps: ⅰ) registration of low resolution images and (ⅱ) estimating the pixels in High Resolution (HR) grid using EDRBF. Experiments are conducted by simulating LR images from a input HR image with different sub-pixel shifts. The reconstructed SR image is compared with input HR image to measure the accuracy of the algorithm using sum of squared errors (SSE). The algorithm has outperformed all of the algorithms mentioned above. The algorithm is robust and is not overly sensitive to the registration inaccuracies.
机译:边缘定向径向基函数(EDRBF)用于从子像素移位不同的一组给定的低分辨率(LR)图像中计算超分辨率(SR)图像。该算法在遥感影像上进行了测试,并与其他知名算法进行了比较,例如迭代反向投影(IBP),最大似然(ML)算法,使用最近邻(NN)和反向距离加权(IDW)对散乱点进行插值)插值,以及径向基函数(RBF)。 SR的准确性取决于算法(1/3)子像素粉碎的LR图像的数量(1/3)的准确性,该精度可通过配准算法(l)和SR的目标空间分辨率来估计LR偏移。在我们的研究中,将EDRBF的准确性与保持这些因素恒定的其他算法进行了比较。该算法分两个步骤:ⅰ)配准低分辨率图像,以及(ⅱ)使用EDRBF估计高分辨率(HR)网格中的像素。通过从输入的HR图像中模拟具有不同子像素偏移的LR图像来进行实验。将重建的SR图像与输入HR图像进行比较,以使用平方误差和(SSE)来测量算法的准确性。该算法的性能优于上述所有算法。该算法是鲁棒的,并且对配准误差不太敏感。

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