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Image reconstruction by linear programming

机译:通过线性编程进行图像重建

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One way of image denoising is to project a noisy image to the subspace of admissible images derived, for instance, by PCA. However, a major drawback of this method is that all pixels are updated by the projection, even when only a few pixels are corrupted by noise or occlusion. We propose a new method to identify the noisy pixels by /spl lscr//sub 1/-norm penalization and to update the identified pixels only. The identification and updating of noisy pixels are formulated as one linear program which can be efficiently solved. In particular, one can apply the /spl nu/ trick to directly specify the fraction of pixels to be reconstructed. Moreover, we extend the linear program to be able to exploit prior knowledge that occlusions often appear in contiguous blocks (e.g., sunglasses on faces). The basic idea is to penalize boundary points and interior points of the occluded area differently. We are also able to show the /spl nu/ property for this extended LP leading to a method which is easy to use. Experimental results demonstrate the power of our approach.
机译:图像去噪的一种方法是将噪声图像投影到例如由PCA导出的可允许图像的子空间中。但是,该方法的主要缺点是,即使只有少数像素被噪声或遮挡损坏,所有像素都可以通过投影进行更新。我们提出了一种通过/ spl lscr // sub 1 /范数惩罚来识别噪点像素的新方法,并且仅更新识别出的像素。噪声像素的识别和更新被制定为一个可以有效解决的线性程序。特别是,可以使用/ spl nu /技巧直接指定要重构的像素比例。此外,我们扩展了线性程序,以便能够利用通常在连续块中出现遮挡的先验知识(例如,脸上戴墨镜)。基本思想是对封闭区域的边界点和内部点进行不同的惩罚。我们还可以显示此扩展LP的/ spl nu /属性,从而导致一种易于使用的方法。实验结果证明了我们方法的力量。

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