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首页> 外文期刊>Journal of X-ray science and technology >A weighted difference of L1 and L2 on the gradient minimization based on alternating direction method for circular computed tomography
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A weighted difference of L1 and L2 on the gradient minimization based on alternating direction method for circular computed tomography

机译:基于交流方向方法的循环剖析方法L1和L2的加权差异

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摘要

Iterative reconstruction algorithms for computed tomography (CT) through total variation (TV) regularization can provide accurate and stable reconstruction results. TV minimization is the L-1-norm of gradient-magnitude images and can be regarded as a convex relaxation method to replace the L-0 norm. In this study, a fast and efficient algorithm, which is named a weighted difference of L-1 and L-2 (L-1 - alpha L-2) on the gradient minimization, was proposed and investigated. The new algorithm provides a better description of sparsity for the optimization-based algorithms than TV minimization algorithms. The alternating direction method is an efficient method to solve the proposed model, which is utilized in this study. Both simulations and real CT projections were tested to verify the performances of the proposed algorithm. In the simulation experiments, the reconstructions from the proposed method provided better image quality than TV minimization algorithms with only 7 views in 180 degrees, which is also computationally faster. Meanwhile, the new algorithm enabled to achieve the final solution with less iteration numbers.
机译:通过总变化(TV)正则化的计算机断层扫描(CT)的迭代重建算法可以提供准确稳定的重建结果。电视最小化是梯度幅度图像的L-1标准,并且可以被视为吞吐量方法以更换L-0标准。在该研究中,提出了一种快速高效的算法,其在梯度最小化上命名为L-1和L-2(L-1-αL-2)的加权差异,并研究。新算法为基于优化的算法提供了比电视最小化算法更好的稀疏性描述。交替方向方法是解决本研究中使用的拟议模型的有效方法。测试两种模拟和真实的CT投影以验证所提出的算法的性能。在模拟实验中,来自所提出的方法的重建提供比电视最小化算法更好的图像质量,其中180度只有7个视图,这也是更快的计算方式。同时,启用新算法以实现更少的迭代号的最终解决方案。

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