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A Method Based on Piecewise Linear Models for Accurate Restoration of Images Corrupted by Gaussian Noise

机译:基于分段线性模型的高斯噪声腐蚀图像精确复原方法

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摘要

Piecewise linear (PWL) models are very attractive for image processing due to their simplicity and effectiveness. A new filtering architecture adopting multiparameter PWL functions is proposed for accurate restoration of images corrupted by Gaussian noise. The filtering performance is analyzed by taking into account the different behavior from the point of view of noise removal and detail preservation. The sensitivity to a change of the parameter settings is also investigated. In the new approach, the parameter values are automatically selected by resorting to a procedure that estimates the standard deviation of the Gaussian noise. Results dealing with different test images and noise variances show that the method yields a very accurate restoration of the image data
机译:分段线性(PWL)模型具有简单性和有效性,因此对图像处理非常有吸引力。提出了一种采用多参数PWL函数的新型滤波架构,用于精确恢复被高斯噪声破坏的图像。从噪声消除和细节保留的角度考虑了不同的行为,从而分析了过滤性能。还研究了对参数设置更改的敏感性。在新方法中,参数值是通过估算高斯噪声标准偏差的过程自动选择的。处理不同测试图像和噪声方差的结果表明,该方法可以非常准确地恢复图像数据

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