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Kaczmarz Iterative Projection and Nonuniform Sampling with Complexity Estimates

机译:复杂度估计的Kaczmarz迭代投影和非均匀采样

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Kaczmarz’s alternating projection method has been widely used for solving mostly over-determined linear system of equations in various fields of engineering, medical imaging, and computational science. Because of its simple iterative nature with light computation, this method was successfully applied in computerized tomography. Since tomography generates a matrix with highly coherent rows, randomized Kaczmarz algorithm is expected to provide faster convergence as it picks a row for each iteration at random, based on a certain probability distribution. Since Kaczmarz’s method is a subspace projection method, the convergence rate for simple Kaczmarz algorithm was developed in terms of subspace angles. This paper provides analyses of simple and randomized Kaczmarz algorithms and explains the link between them. New versions of randomization are proposed that may speed up convergence in the presence of nonuniform sampling, which is common in tomography applications. It is anticipated that proper understanding of sampling and coherence with respect to convergence and noise can improve future systems to reduce the cumulative radiation exposures to the patient. Quantitative simulations of convergence rates and relative algorithm benchmarks have been produced to illustrate the effects of measurement coherency and algorithm performance, respectively, under various conditions in a real-time kernel.
机译:Kaczmarz的交替投影方法已广泛用于解决工程,医学成像和计算科学等各个领域中大多数超定线性方程组。由于其具有光计算的简单迭代性质,因此该方法已成功应用于计算机断层扫描。由于层析成像会生成具有高度相干行的矩阵,因此,由于随机Kaczmarz算法会基于某个概率分布为每次迭代随机选择一行,因此有望提供更快的收敛性。由于Kaczmarz的方法是子空间投影方法,因此简单的Kaczmarz算法的收敛速度是根据子空间角度开发的。本文提供了对简单和随机Kaczmarz算法的分析,并解释了它们之间的联系。提出了新版本的随机化方法,可以在存在不均匀采样的情况下加快收敛速度​​,这在层析成像应用中很常见。可以预期的是,对于会聚和噪声方面的采样和相干性的正确理解可以改善未来的系统,以减少对患者的累积辐射暴露。收敛速率和相关算法基准的定量模拟已被制作出来,以分别说明实时内核中各种条件下测量一致性和算法性能的影响。

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