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Super-Resolution of Magnetic Resonance Images via Convex Optimization with Local and Global Prior Regularization and Spectrum Fitting

机译:通过局部和全局先验正则化和频谱拟合的凸优化实现磁共振图像的超分辨率

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摘要

Given a low-resolution image, there are many challenges to obtain a super-resolved, high-resolution image. Many of those approaches try to simultaneously upsample and deblur an image in signal domain. However, the nature of the super-resolution is to restore high-frequency components in frequency domain rather than upsampling in signal domain. In that sense, there is a close relationship between super-resolution of an image and extrapolation of the spectrum. In this study, we propose a novel framework for super-resolution, where the high-frequency components are theoretically restored with respect to the frequency fidelities. This framework helps to introduce multiple simultaneous regularizers in both signal and frequency domains. Furthermore, we propose a new super-resolution model where frequency fidelity, low-rank (LR) prior, low total variation (TV) prior, and boundary prior are considered at once. The proposed method is formulated as a convex optimization problem which can be solved by the alternating direction method of multipliers. The proposed method is the generalized form of the multiple super-resolution methods such as TV super-resolution, LR and TV super-resolution, and the Gerchberg method. Experimental results show the utility of the proposed method comparing with some existing methods using both simulational and practical images.
机译:给定低分辨率图像,要获得超分辨的高分辨率图像存在许多挑战。这些方法中的许多方法试图在信号域中同时对图像进行上采样和去模糊。但是,超分辨率的本质是在频域中恢复高频分量,而不是在信号域中上采样。从这个意义上说,图像的超分辨率与光谱的外推之间有着密切的关系。在这项研究中,我们提出了一种超分辨率的新颖框架,其中在理论上就频率保真度恢复了高频分量。该框架有助于在信号和频域中引入多个同时的正则器。此外,我们提出了一种新的超分辨率模型,其中同时考虑了频率保真度,低秩(LR)优先级,低总变化(TV)优先级和边界优先级。提出的方法被公式化为凸优化问题,可以通过乘数的交替方向方法解决。提出的方法是电视超分辨率,LR和电视超分辨率以及Gerchberg方法等多种超分辨率方法的推广形式。实验结果表明,与已有的使用模拟和实际图像的方法相比,该方法的实用性。

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