论文标题

使用类似系统矩阵的簇的广义MPI多块重建

Generalized MPI Multi-Patch Reconstruction using Clusters of similar System Matrices

论文作者

Boberg, Marija, Knopp, Tobias, Szwargulski, Patryk, Möddel, Martin

论文摘要

层析成像方法磁性粒子成像(MPI)需要一种多块方法来捕获大型视野。这种方法由仅少量立方厘米的小体积的连续或逐步空间移动组成,该体积使用KHz范围内的一个或多个激发场扫描。在理想磁场的假设下,MPI系统矩阵是移动不变的,而单个矩阵又足以显着减少校准时间和重建工作。但是,对于大型场缺陷,该方法可以导致严重的图像伪像。在目前的工作中,我们将有效的多块重建概括为在非理想场的条件下工作,在非理想的野外条件下,偏移不变性仅适用于子体积的小移位。基于基于磁场的度量,将斑块聚类,使得在每个群集中,移位不变性保持良好的近似值。群集的总数是我们方法的主要参数,允许交易校准时间和图像伪像。基于磁场的度量可以在不知道系统矩阵的情况下执行聚类。开发的重建算法在具有15个斑块的多斑测量序列上进行评估,其中有效的多块重建具有单个校准测量导致强大的图像伪像。分析表明,校准测量值可以从15次降低到11,而没有可见的图像伪影。进一步的减少到9是可能的,只有图像质量轻微降解。

The tomographic imaging method magnetic particle imaging (MPI) requires a multi-patch approach for capturing large field of views. This approach consists of a continuous or stepwise spatial shift of a small sub-volume of only few cubic centimeters size, which is scanned using one or multiple excitation fields in the kHz range. Under the assumption of ideal magnetic fields, the MPI system matrix is shift invariant and in turn a single matrix suffices for image reconstruction significantly reducing the calibration time and reconstruction effort. For large field imperfections, however, the method can lead to severe image artifacts. In the present work we generalize the efficient multi-patch reconstruction to work under non-ideal field conditions, where shift invariance holds only approximately for small shifts of the sub-volume. Patches are clustered based on a magnetic-field-based metric such that in each cluster the shift invariance holds in good approximation. The total number of clusters is the main parameter of our method and allows to trade off calibration time and image artifacts. The magnetic-field-based metric allows to perform the clustering without prior knowledge of the system matrices. The developed reconstruction algorithm is evaluated on a multi-patch measurement sequence with 15 patches, where efficient multi-patch reconstruction with a single calibration measurement leads to strong image artifacts. Analysis reveals that calibration measurements can be decreased from 15 to 11 with no visible image artifacts. A further reduction to 9 is possible with only slight degradation in image quality.

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