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Neural network algorithm for image reconstruction using the grid-friendly projections

机译:使用网格友好投影的图像重建神经网络算法

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摘要

The presented paper describes a development of original approach to the reconstruction problem using a recurrent neural network. Particularly, the “grid-friendly” angles of performed projections are selected according to the discrete Radon transform (DRT) concept to decrease the number of projections required. The methodology of our approach is consistent with analytical reconstruction algorithms. Reconstruction problem is reformulated in our approach to optimization problem. This problem is solved in present concept using method based on the maximum likelihood methodology. The reconstruction algorithm proposed in this work is consequently adapted for more practical discrete fan beam projections. Computer simulation results show that the neural network reconstruction algorithm designed to work in this way improves obtained results and outperforms conventional methods in reconstructed image quality.
机译:提出的论文描述了使用递归神经网络的原始方法对重建问题的发展。特别是,根据离散Radon变换(DRT)概念选择已执行投影的“网格友好”角度,以减少所需的投影数量。我们方法的方法与解析重建算法一致。重构问题在我们的优化问题方法中被重新表述。使用基于最大似然方法的方法在本概念中解决了该问题。因此,这项工作中提出的重建算法适用于更实际的离散扇形束投影。计算机仿真结果表明,以这种方式工作的神经网络重建算法可改善获得的结果,并在重建的图像质量方面优于传统方法。

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