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首页> 外文期刊>Advances in Electrical and Computer Engineering >An Adaptive Parameter Estimation in a BTV Regularized Image Super-Resolution Reconstruction
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An Adaptive Parameter Estimation in a BTV Regularized Image Super-Resolution Reconstruction

机译:BTV正则化图像超分辨率重构中的自适应参数估计

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Access to the fine spatial resolution has always been a hotspot in digital imaging. One way to improve resolution is to use signal post-processing techniques. In this study, an improved multi-frame image super-resolution (SR) algorithm is proposed. The objective function should be minimized consists of a data error term, a regularization term and a regularization parameter. Based on the bilateral-total-variation (BTV) regularization, in the proposed method on one hand, the data error term incorporates frames with high accuracies in the reconstruction process, where an indicator weights each frame proportional to the frame error. On the other hand the regularization parameter is updated in each iteration based upon the Morozov's discrepancy principle. Iterative adjustment of the regularization parameter guarantees the SR solution to satisfy discrepancy principle. Visual evaluation and also quantitative measurements show that the performance of the proposed algorithm is better than of the several state-of-the-art methods.
机译:可获得精细的空间分辨率一直是数字成像的热点。一种提高分辨率的方法是使用信号后处理技术。在这项研究中,提出了一种改进的多帧图像超分辨率(SR)算法。目标函数应最小化,包括数据误差项,正则项和正则参数。基于双边总变化(BTV)正则化,一方面,在所提出的方法中,数据误差项在重建过程中合并了具有高精度的帧,其中指示符按与帧误差成比例的方式加权每个帧。另一方面,基于Morozov的差异原理在每次迭代中更新正则化参数。正则化参数的迭代调整可确保SR解决方案满足差异原理。视觉评估和定量测量表明,所提出算法的性能优于几种最新方法。

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