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Preconditioned Alternating Projection Algorithms for Maximum a Posteriori ECT Reconstruction

机译:预处理交替投影算法最大后验ECT重建

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摘要

We propose a preconditioned alternating projection algorithm (PAPA) for solving the maximum a posteriori (MAP) emission computed tomography (ECT) reconstruction problem. Specifically, we formulate the reconstruction problem as a constrained convex optimization problem with the total variation (TV) regularization. We then characterize the solution of the constrained convex optimization problem and show that it satisfies a system of fixed-point equations defined in terms of two proximity operators raised from the convex functions that define the TV-norm and the constrain involved in the problem. The characterization (of the solution) via the proximity operators that define two projection operators naturally leads to an alternating projection algorithm for finding the solution. For efficient numerical computation, we introduce to the alternating projection algorithm a preconditioning matrix (the EM-preconditioner) for the dense system matrix involved in the optimization problem. We prove theoretically convergence of the preconditioned alternating projection algorithm. In numerical experiments, performance of our algorithms, with an appropriately selected preconditioning matrix, is compared with performance of the conventional MAP expectation-maximization (MAP-EM) algorithm with TV regularizer (EM-TV) and that of the recently developed nested EM-TV algorithm for ECT reconstruction. Based on the numerical experiments performed in this work, we observe that the alternating projection algorithm with the EM-preconditioner outperforms significantly the EM-TV in all aspects including the convergence speed, the noise in the reconstructed images and the image quality. It also outperforms the nested EM-TV in the convergence speed while providing comparable image quality.
机译:我们提出了一种预处理交替投影算法(PAPA),用于解决最大后验(MAP)发射计算机断层扫描(ECT)重建问题。具体来说,我们将重构问题公式化为具有总变化(TV)正则化的约束凸优化问题。然后,我们描述了约束凸优化问题的解决方案的特征,并表明它满足了一个定点方程组,该定点方程是根据两个凸运算定义的定点方程,这些凸运算定义了TV范数和该问题所涉及的约束。通过定义两个投影算子的邻近算子对(解决方案)进行表征,自然会导致找到解决方案的交替投影算法。为了进行高效的数值计算,我们向交替投影算法引入了针对优化问题中涉及的密集系统矩阵的预处理矩阵(EM预处理器)。我们证明了预处理交替投影算法的理论收敛性。在数值实验中,将我们的算法(具有适当选择的预处理矩阵)的性能与带有TV正则器(EM-TV)的传统MAP期望最大化(MAP-EM)算法以及最近开发的嵌套EM- ECT重建的电视算法。根据这项工作进行的数值实验,我们观察到带有EM预调节器的交替投影算法在所有方面都优于EM-TV,包括收敛速度,重建图像中的噪声和图像质量。它在融合速度上也优于嵌套式EM-TV,同时提供可比的图像质量。

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