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Noise Estimation from a Single Image

机译:单个图像的噪声估计

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In order to work well, many computer vision algorithms require that their parameters be adjusted according to the image noise level, making it an important quantity to estimate. We show how to estimate an upper bound on the noise level from a single image based on a piecewise smooth image prior model and measured CCD camera response functions. We also learn the space of noise level functions how noise level changes with respect to brightness and use Bayesian MAP inference to infer the noise level function from a single image. We illustrate the utility of this noise estimation for two algorithms: edge detection and featurepreserving smoothing through bilateral filtering. For a variety of different noise levels, we obtain good results for both these algorithms with no user-specified inputs.
机译:为了运行良好,许多计算机视觉算法要求根据图像噪声水平调整其参数,使其成为估计的重要数量。我们展示了如何基于分段平滑图像先前模型和测量的CCD相机响应函数来估计从单个图像估计噪声水平的上限。我们还了解噪声级功能的空间如何如何相对于亮度变化,并使用贝叶斯地图推理从单个图像推断噪声级别功能。我们说明了两个算法的噪声估计的效用:边缘检测和通过双边滤波平滑平滑的功能。对于各种不同的噪声水平,我们为这两个算法获得了良好的结果,没有用户指定的输入。

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