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Distributed CT image reconstruction algorithm based on the alternating direction method

机译:基于交替方向法的分布式CT图像重建算法

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摘要

With the development of compressive sensing theory, image reconstruction from few-view projections has been paid considerable research attention in the field of computed tomography (CT). Total variation (TV)-based CT image reconstruction has been shown experimentally to be capable of producing accurate reconstructions from sparse-view data. Motivated by the need of solving few-view reconstruction problem with large scale data, a general block distribution reconstruction algorithm based on TV minimization and the alternating direction method (ADM) has been developed in this study. By utilizing the inexact ADM, which involves linearization and proximal point techniques, the algorithm is relatively simple and hence convenient for the derivation and distributed implementation. And because the data as well as the computation are distributed to individual nodes, an outstanding acceleration factor is achieved. Experimental results demonstrate that the proposed method can accelerate the alternating direction total variation minimization (ADTVM) algorithm with nearly no loss of accuracy, which means compared with ADTVM, the proposed algorithm has a better accuracy with same running time.
机译:随着压缩感测理论的发展,在计算机断层摄影(CT)领域中,从少视点投影的图像重建已引起了广泛的研究关注。实验证明,基于总变异(TV)的CT图像重建能够从稀疏视图数据中生成准确的重建结果。出于解决大规模数据的少视图重建问题的需要,本研究开发了一种基于电视最小化和交变方向法(ADM)的通用块分布重建算法。通过利用涉及线性化和近端技术的不精确ADM,该算法相对简单,因此便于推导和分布式实现。并且由于数据和计算都分配给各个节点,因此可以实现出色的加速因子。实验结果表明,所提出的方法可以加速交变方向总方差最小化(ADTVM)算法,几乎不损失精度,这意味着与ADTVM相比,该算法在相同的运行时间下具有更好的精度。

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