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Demosaicking of Noisy Bayer-Sampled Color Images With Least-Squares Luma-Chroma Demultiplexing and Noise Level Estimation

机译:最小二乘亮度色度多路分解和噪声水平估计对嘈杂的拜耳采样彩色图像进行去马赛克

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摘要

This paper adapts the least-squares luma-chroma demultiplexing (LSLCD) demosaicking method to noisy Bayer color filter array (CFA) images. A model is presented for the noise in white-balanced gamma-corrected CFA images. A method to estimate the noise level in each of the red, green, and blue color channels is then developed. Based on the estimated noise parameters, one of a finite set of configurations adapted to a particular level of noise is selected to demosaic the noisy data. The noise-adaptive demosaicking scheme is called LSLCD with noise estimation (LSLCD-NE). Experimental results demonstrate state-of-the-art performance over a wide range of noise levels, with low computational complexity. Many results with several algorithms, noise levels, and images are presented on our companion web site along with software to allow reproduction of our results.
机译:本文将最小二乘亮度色度解复用(LSLCD)去马赛克方法应用于嘈杂的拜耳彩色滤光片阵列(CFA)图像。提出了一种针对白平衡伽马校正的CFA图像中的噪声的模型。然后开发了一种估计红色,绿色和蓝色通道中每个通道的噪声水平的方法。基于估计的噪声参数,选择适合于特定噪声水平的一组有限配置中的一个,以消除噪声数据。噪声自适应去马赛克方案称为带噪声估计的LSLCD(LSLCD-NE)。实验结果证明了在各种噪声水平下的最新性能,并且计算复杂度低。伴随着几种算法,噪声水平和图像的许多结果与软件一起显示在我们的同伴网站上,以允许再现我们的结果。

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