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A General Framework for Nonlinear Regularized Krylov-Based Image Restoration

机译:非线性正则化基于Krylov的图像恢复的通用框架

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This paper introduces a new approach to computing an approximate solution of Tikhonov-regularized large-scale ill-posed problems with a general nonlinear regularization operator. The iterative method applies a sequence of projections onto generalized Krylov subspaces using a semi-implicit approach to deal with the nonlinearity in the regularization term. A suitable value of the regularization parameter is determined by the discrepancy principle. Computed examples illustrate the performance of the method applied to the restoration of blurred and noisy images.
机译:本文介绍了一种使用通用非线性正则化算子来计算Tikhonov正则化大不适定问题的近似解的新方法。迭代方法使用半隐式方法将投影序列应用于广义Krylov子空间,以处理正则项中的非线性。正则化参数的合适值由差异原理确定。算例说明了该方法在模糊图像和噪点图像复原中的性能。

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