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Film grain reduction on colour images using undecimated wavelet transform

机译:使用未抽取的小波变换减少彩色图像上的胶片颗粒

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摘要

The presence of film grain often imposes the crucial quality choice between film enlargement and speed. In this work we present an automatic technique for reducing the amount of grain on film images. The technique reduces the noise by thresholding the wavelet components of the image with parameterised family of functions obtained with an initial training on a set of images. The training produces the parameters identifying the functions by optimising a cost function related to the image visual quality. The method has been tested on images contaminated by artificial and by real grain noise from two Kodak film makes. Being the main focus of this work on the grain reduction aspect rather than on the modelling side, we rely on a well known and state of the art software (Furnace) instead of producing a new noise model. The results demonstrate the efficiency of the method in reducing the grain noise and the ability of the technique in adapting the parameters to the noise level on each colour component. Another relevant characteristic of the method is its potential to be used for various different applications, class of images and type of noises just by modifying training set of images, cost function and shape of the thresholding functions.
机译:胶片颗粒的存在通常会在胶片放大和速度之间施加至关重要的质量选择。在这项工作中,我们提出了一种减少胶片图像上颗粒数量的自动技术。该技术通过使用在一组图像上进行初始训练而获得的参数化函数族对图像的小波分量进行阈值处理来降低噪声。训练通过优化与图像视觉质量有关的成本函数来产生识别函数的参数。该方法已经过两次柯达胶卷的人工和真实颗粒噪声污染的图像测试。作为这项工作的主要重点是减少晶粒方面,而不是建模方面,我们依靠众所周知的最新软件(Furnace)而不是生成新的噪声模型。结果证明了该方法在降低谷物噪声方面的效率,以及该技术使参数适应每个颜色分量上的噪声水平的能力。该方法的另一个相关特征是,仅通过修改图像的训练集,成本函数和阈值函数的形状,就可以将其用于各种不同的应用,图像类别和噪声类型。

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