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Rapidly-converging multigrid reconstruction of cone-beam tomographic data

机译:锥束层析数据的快速收敛多网格重建

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In the context of large-angle cone-beam tomography (CBCT), we present a practical iterative reconstruction (IR) scheme designed for rapid convergence as required for large datasets. The robustness of the reconstruction is provided by the "space-filling" source trajectory along which the experimental data is collected. The speed of convergence is achieved by leveraging the highly isotropic nature of this trajectory to design an approximate deconvolution filter that serves as a pre-conditioner in a multi-grid scheme. We demonstrate this IR scheme for CBCT and compare convergence to that of more traditional techniques.
机译:在大角度锥形束层析成像(CBCT)的背景下,我们提出了一种实用的迭代重建(IR)方案,旨在根据大型数据集的需要快速收敛。由“空间填充”源轨迹提供重建的鲁棒性,沿着该源轨迹收集实验数据。通过利用该轨迹的高度各向同性的特性来设计一个近似解卷积滤波器,该滤波器可以用作多网格方案中的前置条件,从而实现收敛速度。我们演示了这种用于CBCT的IR方案,并将其收敛性与更传统的技术进行了比较。

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