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首页> 外文期刊>Physics in medicine and biology. >Enhanced reconstruction in magnetic particle imaging by whitening and randomized SVD approximation
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Enhanced reconstruction in magnetic particle imaging by whitening and randomized SVD approximation

机译:通过美白和随机的SVD近似增强磁颗粒成像中的重建

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摘要

Abstract, Magnetic particle imaging (MPI) is a medical imaging modality of recent origin, and it exploits the nonlinear magnetization phenomenon to recover a spatially dependent concentration of nanoparticles. In practice, image reconstruction in MPI is frequently carried out by standard Tikhonov regularization with nonnegativity constraint, which is then minimized by a Kaczmarz type method. In this work, we revisit two issues in the numerical reconstruction in MPI in the lens of inverse theory, i.e. the choice of fidelity and acceleration, and propose two algorithmic tricks, i.e. a whitening procedure to incorporate the noise statistics and accelerating Kaczmarz iteration via randomized SVD. The two tricks are straightforward to implement and easy to incorporate in existing reconstruction algorithms. Their significant potentials are illustrated by extensive numerical experiments on a publicly available dataset
机译:摘要,磁性粒子成像(MPI)是近期的医学成像模型,利用非线性磁化现象来回收纳米颗粒的空间依赖性浓度。 在实践中,MPI中的图像重建经常通过具有非承诺约束的标准Tikhonov正规进行,然后通过Kaczmarz型方法最小化。 在这项工作中,我们在逆理论的镜片中重新审视MPI中数值重建的两个问题,即选择保真度和加速度,并提出了两种算法技巧,即通过随机化加速噪声统计和加速Kaczmarz迭代的美白程序。 SVD。 这两个技巧是直接实现和容易地合并在现有的重建算法中。 它们的显着潜力通过广泛的数据集进行了广泛的数值实验来说明

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