首页> 外文会议>Conference on Computational Imaging II; 20040119-20040120; San Jose,CA; US >Multi-Frame Demosaicing and Super-Resolution from Under-Sampled Color Images
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Multi-Frame Demosaicing and Super-Resolution from Under-Sampled Color Images

机译:欠采样彩色图像的多帧去马赛克和超分辨率

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摘要

In the last two decades, two related categories of problems have been studied independently in the image restora-tion literature: super-resolution and demosaicing. A closer look at these problems reveals the relation between them, and as conventional color digital cameras suffer from both low-spatial resolution and color filtering, it is reasonable to address them in a unified context. In this paper, we propose a fast and robust, hybrid method of super-resolution and demosaicing, based on a maximum a posteriori (MAP) estimation technique by minimizing a multi-term cost function. The L_1 norm is used for measuring the difference between the projected estimate of the high-resolution image and each low-resolution image, removing outliers in the data and errors due to possibly inaccurate motion estimation. Bilateral regularization is used for regularizing the luminance component, resulting in sharp edges and forcing interpolation along the edges and not across them. Simultaneously, Tikhonov regularization is used to smooth the chrominance component. Finally, an additional regularization term is used to force similar edge orientation in different color channels. We show that the minimization of the total cost function is relatively easy and fast. Experimental results on synthetic and real data sets confirm the effectiveness of our method.
机译:在过去的二十年中,图像恢复文献中独立研究了两个相关类别的问题:超分辨率和去马赛克。仔细研究这些问题可以发现它们之间的关系,并且由于常规彩色数码相机同时具有低空间分辨率和彩色滤镜的问题,因此有必要在统一的环境中解决这些问题。在本文中,我们提出了一种基于最大后验(MAP)估计技术的快速,鲁棒,超分辨率和去马赛克的混合方法,该方法通过最小化多项成本函数。 L_1范数用于测量高分辨率图像的投影估计与每个低分辨率图像之间的差异,消除数据中的异常值和由于可能不正确的运动估计而引起的错误。双边正则化用于正则化亮度分量,从而产生尖锐的边缘并强制沿边缘而不是跨边缘进行插值。同时,使用Tikhonov正则化来平滑色度分量。最后,使用一个附加的正则项来强制不同颜色通道中的相似边缘方向。我们证明总成本函数的最小化是相对容易和快速的。综合和真实数据集的实验结果证实了我们方法的有效性。

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