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Regularizing active set method for nonnegatively constrained ill-posed multichannel image restoration problem

机译:非负约束不适定多通道图像恢复问题的正则化主动集方法

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In this paper, we consider the nonnegatively constrained multichannel image deblurring problem and propose regularizing active set methods for numerical restoration. For image deblurring problems, it is reasonable to solve a regularizing model with nonnegativity constraints because of the physical meaning of the image. We consider a general regularizing l_(p) - l_(q) model with nonnegativity constraints. For p and q equaling 2, the model is in a convex quadratic form, therefore, the active set method is proposed since the nonnegativity constraints are imposed naturally. For p and q not equaling 2, we present an active set method with a feasible Newton-conjugate gradient solution technique. Numerical experiments are presented for ill-posed three-channel blurred image restoration problems.
机译:在本文中,我们考虑了非负约束多通道图像去模糊问题,并提出了用于数字恢复的正则化有效集方法。对于图像去模糊问题,由于图像的物理意义,解决具有非负约束的正则化模型是合理的。我们考虑具有非负约束的一般正则化l_(p)-l_(q)模型。对于等于2的p和q,模型为凸二次方形式,因此,由于非负约束是自然施加的,因此提出了主动集方法。对于不等于2的p和q,我们提出了一种具有可行牛顿共轭梯度解技术的主动集方法。针对不适定的三通道模糊图像恢复问题提出了数值实验。

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