基于矩形针孔孔径的小动物SPECT系统设计

S. Metzler, S. Moore, Mi-Ae Park
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引用次数: 9

摘要

我们研究了在多针孔固定系统中使用矩形孔径针孔对小鼠心脏成像的影响。该系统将利用临床SPECT系统上的标准NaI(TI)检测器。使用矩形孔径至少有两个优点:(1)轴向和横向的视场(FOV)是可分离的,因为它们是由孔径插入的壁面决定的,它们可以有独立的接受角;(2)对于相同的立体角(即允许更多的针孔),投影到探测器上的平铺比传统的圆形孔径更有效,因为圆形孔径投影的填充分数小于π/4。系统设计将这些矩形孔放入钨聚合物管中,该管将使用比金更致密、更硬的Pt/Ir合金铸造,该管将从3D打印塑料模具中铸造。这种制造技术将在针孔镶件的位置和方向上提供灵活性,但制造成本比传统加工要低。系统灵敏度取决于分辨率和视场;我们计划将视场限制在一个能够容纳老鼠心脏的区域。我们使用MLEM算法测试了模拟数据的重建,包括点幻影和MOBY™幻影,并在整个目标视场中发现了良好的分辨率和保真度,具有良好的角度采样。在重建过程中通过系统建模恢复分辨率之前,该系统可以在高倍率下达到估计的最佳系统分辨率0.4 mm,但该工作点将产生较低的灵敏度。与商业和研究系统的比较表明,在相同的分辨率下,灵敏度有所提高。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Design of a new small-animal SPECT system based on rectangular pinhole aperture
We have studied the impact of using rectangular-aperture pinholes in a multi-pinhole, stationary system for cardiac imaging of mice. The system will utilize the standard NaI(TI) detectors on a clinical SPECT system. There are at least two advantages to using rectangular apertures: (1) the fields of view (FOV) in the axial and transverse directions become separable since they are determined by the walls of the aperture insert, which can have independent acceptance angles; and (2) the tiling of projections onto the detector is more efficient for the same solid angle (i.e., allows more pinholes) than traditional, circular apertures since the circular-aperture projections have a packing fraction of less than π/4. The system design places these rectangular apertures, which will be cast using a Pt/Ir alloy that is denser and harder than gold, into a tungsten-polymer tube that will be cast from a mold that is 3D printed in plastic. This fabrication technique will provide flexibility in the placement and orientation of the pinhole inserts yet will be less expensive to manufacture than traditional machining. The system sensitivity depends on the resolution and FOV; we plan to limit the FOV to a region that accommodates a mouse heart with some margin. We have tested the reconstruction of simulated data, with both point phantoms and the MOBY™ phantom, using an MLEM algorithm and found both good resolution and fidelity throughout the targeted FOV, with good angular sampling. The system can achieve an estimated best system resolution of 0.4 mm with high magnification - before resolution recovery by system modeling during reconstruction - but this operating point would yield low sensitivity. Comparisons with commercial and research systems indicate improved sensitivity at the same resolution.
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