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A soft thresholding approach for MDL denoising

机译:用于MDL去​​噪的软阈值方法

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The existing MDL method for wavelet denoising is extended with a soft thresholding approach. We assume that the wavelet coefficients are comprised of an informative part and a noise part. We propose a soft thresholding method based on the earlier MDL hard thresholding approach equivalent to fitting two Gaussian density functions to the wavelet coefficients, one for the informative part in the data and the other for noise. Our approach is data-dependent and since it is completely characterized by the properties of the MDL hard thresholding solution, it does not require any additional parameters to be estimated. We show that our method improves the results of the existing MDL denoising method for both artificial and natural test signals.
机译:利用软阈值方法扩展了现有的用于小波去噪的MDL方法。我们假设小波系数由信息部分和噪声部分组成。我们提出了一种基于较早的MDL硬阈值方法的软阈值方法,该方法等效于将两个高斯密度函数拟合到小波系数,一个用于数据中的信息部分,另一个用于噪声。我们的方法依赖于数据,并且由于其完全具有MDL硬阈值解决方案的特性,因此不需要估计任何其他参数。我们表明,我们的方法改进了针对人工和自然测试信号的现有MDL去噪方法的结果。

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