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首页> 外文期刊>Inverse problems and imaging >ITERATIVE CHOICE OF THE OPTIMAL REGULARIZATION PARAMETER IN TV IMAGE RESTORATION
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ITERATIVE CHOICE OF THE OPTIMAL REGULARIZATION PARAMETER IN TV IMAGE RESTORATION

机译:电视图像恢复中最佳调节参数的迭代选择

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We present iterative methods for choosing the optimal regularization parameter for linear inverse problems with Total Variation regularization. This approach is based on the Morozov discrepancy principle or on a damped version of this principle and on an approximating model function for the data term. The theoretical convergence of the method of choice of the regularization parameter is demonstrated. The choice of the optimal parameter is refined with a Newton method. The efficiency of the method is illustrated on deconvolution and super-resolution experiments on different types of images. Results are provided for different levels of blur, noise and loss of spatial resolution. The damped Morozov discrepancy principle often outerperforms the approaches based on the classical Morozov principle and on the Unbiased Predictive Risk Estimator. Moreover, the proposed methods are fast schemes to select the best parameter for TV regularization.
机译:我们提出了使用总变化正则化为线性反问题选择最佳正则化参数的迭代方法。该方法基于Morozov差异原理或该原理的阻尼形式以及数据项的近似模型函数。证明了正则化参数选择方法的理论收敛性。最佳参数的选择通过牛顿法进行优化。在反卷积和不同类型图像的超分辨率实验中说明了该方法的效率。提供了针对不同程度的模糊,噪声和空间分辨率损失的结果。阻尼Morozov差异原理通常优于基于经典Morozov原理和无偏预测风险估计器的方法。而且,所提出的方法是为电视正则化选择最佳参数的快速方案。

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