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Iterative FBP for improved reconstruction of X-ray differential phase-contrast tomograms

机译:迭代FBP用于改善X射线微分相衬层析成像的重建

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X-ray differential phase-contrast tomography is a recently-developed modality for the imaging of low-contrast biological samples. Its mathematical model is based on the first derivative of the Radon transform and the images, in practice, are reconstructed using a variant of filtered back-projection (FBP). In this paper, we develop an alternative reconstruction algorithm with the aim of reducing the number of required views, while maintaining image quality. To that end, we discretize the forward model based on polynomial B-spline functions. Then, we formulate the reconstruction as a regularized weighted-norm optimization problem with a penalty on the total variation (TV) of the solution. This leads to the derivation of a novel iterative algorithm that involves an alternation of gradient updates (FBP step) and shrinkage-thresholding (within the framework of the fast iterative shrinkage-thresholding algorithm). Experiments with real data suggest that the proposed method significantly improves upon FBP; it can handle a drastic reduction in the number of projections without noticeable degradation of the quality with respect to the standard procedure.
机译:X射线差分相衬层析成像技术是近来开发的一种用于低对比度生物样品成像的方法。它的数学模型基于Radon变换的一阶导数,实际上,图像是使用滤波反投影(FBP)的变体重建的。在本文中,我们开发了一种替代重建算法,旨在减少所需视图的数量,同时保持图像质量。为此,我们将基于多项式B样条函数的正向模型离散化。然后,我们将重建公式化为正则化的加权范数优化问题,但对解决方案的总变化(TV)造成了损失。这导致了一种新颖的迭代算法的推导,该算法涉及梯度更新(FBP步骤)和收缩阈值(在快速迭代收缩阈值算法的框架内)的交替。实际数据的实验表明,该方法在FBP方面有显着改进。与标准程序相比,它可以大幅减少投影的数量,而不会明显降低质量。

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