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首页> 外文期刊>IEEE Transactions on Pattern Analysis and Machine Intelligence >Limits on super-resolution and how to break them
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Limits on super-resolution and how to break them

机译:超分辨率的限制以及如何打破它们

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摘要

Nearly all super-resolution algorithms are based on the fundamental constraints that the super-resolution image should generate low resolution input images when appropriately warped and down-sampled to model the image formation process. (These reconstruction constraints are normally combined with some form of smoothness prior to regularize their solution.) We derive a sequence of analytical results which show that the reconstruction constraints provide less and less useful information as the magnification factor increases. We also validate these results empirically and show that, for large enough magnification factors, any smoothness prior leads to overly smooth results with very little high-frequency content. Next, we propose a super-resolution algorithm that uses a different kind of constraint in addition to the reconstruction constraints. The algorithm attempts to recognize local features in the low-resolution images and then enhances their resolution in an appropriate manner. We call such a super-resolution algorithm a hallucination or reconstruction algorithm. We tried our hallucination algorithm on two different data sets, frontal images of faces and printed Roman text. We obtained significantly better results than existing reconstruction-based algorithms, both qualitatively and in terms of RMS pixel error.
机译:几乎所有的超分辨率算法都基于以下基本约束:当对图像进行适当变形和下采样以对图像形成过程进行建模时,超分辨率图像应生成低分辨率输入图像。 (这些重构约束通常在进行正则化求解之前先与某种形式的平滑度组合。)我们得出一系列分析结果,这些结果表明,随着放大系数的增加,重构约束将提供越来越少的有用信息。我们还凭经验验证了这些结果,并表明,对于足够大的放大倍数,任何平滑度都会导致非常平滑的结果,而高频成分很少。接下来,我们提出了一种超分辨率算法,该算法除了使用重构约束外还使用另一种约束。该算法尝试识别低分辨率图像中的局部特征,然后以适当的方式增强其分辨率。我们将这种超分辨率算法称为幻觉或重构算法。我们在两个不同的数据集(人脸的正面图像和印刷的罗马文字)上尝试了幻觉算法。从质量和均方根像素误差方面,我们都比现有的基于重建的算法获得了明显更好的结果。

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