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Use of the angle information in the wavelet transform maxima for image de-noising

机译:在小波变换最大值中使用角度信息进行图像降噪

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摘要

In this article, a new method of de-noising is proposed, based on the wavelet maxima. The originality of this method is in the use of the gradient angle in a multi-scale framework as the discriminatory parameter. In order to use to the best advantage the angle information, the multi-scale gradient decomposition schema proposed by Mallat is modified thus enabling a computation of uncorrelated partial derivatives. From this computation, a selection method of multi-scale contours is put forward, having a lesser algorithmic complexity than processings based on the gradient norm. The performance of this new algorithm is illustrated using simulated data and angiography images.
机译:在本文中,提出了一种基于小波最大值的去噪新方法。该方法的独创性在于在多尺度框架中使用梯度角作为判别参数。为了最大程度地利用角度信息,对Mallat提出的多尺度梯度分解方案进行了修改,从而可以计算不相关的偏导数。通过该计算,提出了一种多尺度轮廓的选择方法,其算法复杂度低于基于梯度范数的处理。使用仿真数据和血管造影图像说明了这种新算法的性能。

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