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On the Convergence of Generalized Simultaneous Iterative Reconstruction Algorithms

机译:广义同时迭代重构算法的收敛性

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摘要

In this paper, we generalize the widely used simultaneous block iterative reconstruction algorithm and show that it converges, at a linear rate, to a weighted least-squares and weighted minimum-norm reconstruction. Our theoretical result provides a much simpler proof of the convergence properties obtained by Jiang and Wang and covers a much more general class of algorithms. The frequency domain iterative reconstruction algorithm is then introduced as a special application of our theory
机译:在本文中,我们推广了广泛使用的同时块迭代重建算法,并表明它以线性速率收敛到加权最小二乘和加权最小范数重构。我们的理论结果提供了江和王获得的收敛性的简单得多的证明,并涵盖了更通用的算法类别。然后介绍频域迭代重建算法作为我们理论的一种特殊应用

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