首页> 外文会议>International Conference on Intelligent Computing(ICIC 2006); 20060816-19; Kunming(CN) >POCS Supers-Resolution Sequence Image Reconstruction Based on Image Registration Excluded Aliased Frequency Domain
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POCS Supers-Resolution Sequence Image Reconstruction Based on Image Registration Excluded Aliased Frequency Domain

机译:基于图像配准排除混叠频域的POCS超分辨率序列图像重建

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This paper introduces the theory of super-resolution image reconstruction and degraded model in brief, and presents a new super-resolution image reconstruction algorithm. The algorithm bases on the new image registration excluded aliased frequency domain and the Projection Onto Convex Set (POCS) method. The algorithm can precisely estimate the image registration parameter by excluding aliased frequency domain of the low-resolution images and killing the center part of the magnitude spectrum. In order to compute the shifts and the rotation angle, we set up the polar coordinates in the center of the image. By computing the frequency function of the rotation angle by integrating over radial lines, the algorithm converts the two-dimension correlation to one-dimension correlation. And then, the POCS method is used to reconstruct high-resolution image from these aliased image sequences. As a result, we find that the reconstruction algorithm has the same precision of image registration as the spatial image registration and good effect of super-resolution image reconstruction.
机译:简要介绍了超分辨率图像重建的原理和降级模型,提出了一种新的超分辨率图像重建算法。该算法基于新的图像配准排除混叠频域和投影到凸集(POCS)方法。该算法可以通过排除低分辨率图像的混叠频域并消除幅度谱的中心部分来精确估计图像配准参数。为了计算位移和旋转角度,我们在图像中心设置了极坐标。通过对径向线进行积分计算旋转角的频率函数,该算法将二维相关转换为一维相关。然后,POCS方法用于从这些混叠图像序列中重建高分辨率图像。结果,我们发现该重建算法具有与空间图像配准相同的图像配准精度,并且具有超分辨率图像重建的良好效果。

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