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Super-resolution from unregistered aliased images with unknown scalings and shifts

机译:未知缩放和偏移的未注册别名图像的超分辨率

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We consider the problem of super-resolution from unregistered aliased images with unknown spatial scaling factors and shifts. Due to the limitation of pixel size in the image sensor, the sampling rate for each image is lower than the Nyquist rate of the scene. Thus, we have aliasing in captured images, which makes it hard to register the low-resolution images and then generate a high-resolution image. To work out this problem, we formulate it as a multichannel sampling and reconstruction problem with unknown parameters, spatial scaling factors and shifts. We can estimate the unknown parameters and then reconstruct the high-resolution image by solving a nonlinear least square problem using the variable projection method. Experiments with synthesized 1-D signals and 2-D images show the effectiveness of the proposed algorithm.
机译:我们考虑来自未注册的具有未知空间缩放因子和偏移的混叠图像的超分辨率问题。由于图像传感器中像素大小的限制,每个图像的采样率都低于场景的奈奎斯特率。因此,我们在捕获的图像中出现了混叠现象,这使得难以注册低分辨率图像然后生成高分辨率图像。为了解决这个问题,我们将其公式化为具有未知参数,空间比例因子和频移的多通道采样和重构问题。我们可以估计未知参数,然后通过使用可变投影方法解决非线性最小二乘问题来重建高分辨率图像。合成的一维信号和二维图像的实验表明了该算法的有效性。

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