首页> 外文会议>Signals, Systems and Computers (ASILOMAR), 2011 Conference Record of the Forty Fifth Asilomar Conference on >Noise model discrimination for digital images based on variance-stabilizing transforms and on local statistics: Preliminary results
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Noise model discrimination for digital images based on variance-stabilizing transforms and on local statistics: Preliminary results

机译:基于方差稳定化变换和局部统计的数字图像噪声模型判别:初步结果

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摘要

Most of the image restoration algorithms assumed the noise model and its parameters as an a priori information. Nevertheless this is not necessarily the case for real scenarios. Moreover, lack of knowledge about the noise parameters leads to heuristically approaches to choose the restoration algorithm's parameters. Given a non-texture observed image, which can be noise-free or corrupted with some kind of noise (we consider Gaussian, Poisson, Gamma and Rayleigh) we propose a simple yet effective method to discriminate the noise model (or lack of) that corrupts the observed image by first applying a set of variance-stabilizing transforms and then proceed to estimate the variance using a local statistics estimator; the estimated variance will be unitary only for the particular variance-stabilizing transform that matches the correct noise model.
机译:大多数图像恢复算法都将噪声模型及其参数假定为先验信息。但是,对于实际场景,情况不一定如此。此外,由于缺乏对噪声参数的了解,导致采用启发式方法选择恢复算法的参数。给定一个无纹理的观察图像,该图像可以无噪声或被某种噪声破坏(我们认为是高斯,泊松,伽马和瑞利),我们提出了一种简单而有效的方法来区分噪声模型(或缺乏噪声模型)首先通过应用一组方差稳定变换来破坏观察到的图像,然后使用局部统计量估计器进行方差估计;仅对于与正确噪声模型匹配的特定方差稳定变换,估计方差才是单一的。

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