首页> 外文期刊>生体医工学 >特異値分解による直交基底を用いた磁性ナノ粒子イメージングにおける逆問題再構成手法の検討
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特異値分解による直交基底を用いた磁性ナノ粒子イメージングにおける逆問題再構成手法の検討

机译:基于奇异值分解的正交基在磁性纳米粒子成像中逆问题重构方法的研究

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摘要

Recently, magnetic particle imaging (MPI) has gained attention as a new medical imaging diagnosis technology. In MPI, an image is reconstructed by detecting the signals from magnetic nanoparticles(MNPs) injected into the body. Since MNPs have the property of accumulating in cancer cells, MPI is expected to be applicable to early diagnosis of cancer. The fundamental method of MPI involves reconstructing the MNP distribution by detecting the odd harmonics generated from MNPs. However, this method has a problem in that image blurring and artifacts occur due to signals from MNPs outside the signal detection region. In order to resolve this problem, a reconstruction method based on solution of the inverse problem has been proposed. This method suppresses image blurring and artifacts by considering the signals from MNPs outside the target measurement region. However, this method requires huge matrix operation and thereby increasing reconstruction time. In this paper, we propose a new image reconstruction method with orthonormal basis calculated using singular value decomposition. The system function and the observed signals from the distribution of unknown MNPs, which are used for image reconstruction, are expanded using the orthonormal basis. Since the proposed method has a reduced matrix size compared with the conventional solution of the inverse problem,image reconstruction time can be reduced. By numerical simulation, we confirmed that image reconstruction with an image quality equivalent to that of the conventional solution of the inverse problem was obtained in 1/39 calculation time for a 11 x 11 matrix size image.
机译:近年来,作为一种新的医学成像诊断技术,磁性粒子成像(MPI)已引起关注。在MPI中,通过检测来自注入人体的磁性纳米颗粒(MNP)的信号来重建图像。由于MNP具有在癌细胞中蓄积的特性,因此MPI有望应用于癌症的早期诊断。 MPI的基本方法包括通过检测从MNP生成的奇次谐波来重建MNP分布。然而,该方法的问题在于,由于来自信号检测区域外部的MNP的信号,图像模糊并且出现伪像。为了解决这个问题,已经提出了一种基于反问题求解的重构方法。该方法通过考虑来自目标测量区域之外的MNP的信号来抑制图像模糊和伪影。但是,该方法需要巨大的矩阵运算,从而增加了重建时间。在本文中,我们提出了一种基于奇异值分解的正交基图像重建方法。系统功能和来自未知MNP分布的观测信号(用于图像重建)在正交基础上进行扩展。由于所提出的方法与反问题的传统解决方案相比具有减小的矩阵尺寸,因此可以减少图像重建时间。通过数值模拟,我们确认对于11 x 11矩阵大小的图像,在1/39的计算时间内获得了具有与反问题常规解决方案相同的图像质量的图像重建。

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