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On required accuracy of mixed noise parameter estimation for image enhancement via denoising

机译:关于通过降噪进行图像增强的混合噪声参数估计所需的精度

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Characteristics of noise (type, statistics, spatial correlation) are nowadays exploited in many image denoising and enhancement methods. However, these characteristics are often unknown, and they have to be extracted from an image at hand. There are many powerful and accurate blind methods for noise variance estimation for the cases of additive and multiplicative noise models. However, more complicated noise models containing a mixture of signal-independent (SI) and signal-dependent (SD) components are often more adequate in practice. Parameters of both components have to be automatically estimated to be used in image enhancement. This paper addresses a question of required accuracy of such estimation. Analysis is carried out for color images processed by a filter based on discrete cosine transform. The influence of errors in mixed noise parameters estimation is studied in terms of filtering efficiency. This efficiency is characterized by the conventional criterion peak signal-to-noise ratio (PSNR) and two visual quality metrics, PSNR human visual system masking (PSNR-HVS-M) and multi-scale structural similarity (MSSIM). If a reduction of filtering efficiency exceeds 0.5?dB (in terms of PSNR and PSNR-HVS-M) or 0.005 (in terms of MSSIM), mixed noise parameters estimation is assumed to be unacceptable. As the result, it is shown that SI and SD noise parameters have to be estimated with a relative error not exceeding 20%…30%.
机译:如今,噪声特征(类型,统计量,空间相关性)已在许多图像去噪和增强方法中得到利用。但是,这些特征通常是未知的,因此必须从手边的图像中提取出来。对于加性和乘性噪声模型,有许多强大而准确的盲法用于噪声方差估计。但是,实际上,包含信号独立(SI)和信号独立(SD)成分混合的更复杂的噪声模型通常更合适。必须自动估计两个组件的参数才能在图像增强中使用。本文讨论了这种估计所需精度的问题。对由基于离散余弦变换的滤波器处理的彩色图像进行分析。从滤波效率的角度研究了误差对混合噪声参数估计的影响。这种效率的特征在于常规标准峰值信噪比(PSNR)和两个视觉质量指标,即PSNR人工视觉系统遮罩(PSNR-HVS-M)和多尺度结构相似性(MSSIM)。如果滤波效率的降低超过0.5?dB(以PSNR和PSNR-HVS-M计)或0.005(以MSSIM计),则混合噪声参数估计被认为是不可接受的。结果表明,必须估计SI和SD噪声参数的相对误差不超过20%…30%。

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