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首页> 外文期刊>Nuclear Instruments & Methods in Physics Research. Section A, Accelerators, Spectrometers, Detectors and Associated Equipment >Development of organ-specific dual-head single-photon emission computed tomography using variable pinhole collimator
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Development of organ-specific dual-head single-photon emission computed tomography using variable pinhole collimator

机译:使用可变针孔准直器开发器官特定双头单光子发射电流层析造影

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Single-photon emission computed tomography (SPECT) is a nuclear medical imaging method enabling the user to view functional images of patients. The collimator, which is an essential component of the SPECT, limits the direction of the incident gamma rays, such that the distribution of the gamma photons from the body can be observed. Collimators are composed of shielding materials with high atomic number and density, thus it is difficult to fabricate them in complex shapes. Among the existing collimators, the pinhole collimator consists of a small aperture perforated in a shielding material, and the modification of the pinhole parameters, such as the hole diameter and acceptance angle, during the scan is also challenging. A variable pinhole (VP) collimator comprises several thin tungsten layers with various hole sizes. Thus, the pinhole parameters can be varied for the region of interest (ROI) by forming the desired pinhole shape using a combination of holes. In this study, we implemented the concept of a VP collimator and applied it in a SPECT system to enhance its performance. The collimator was composed of five layers of with a diameter of 170 mm and thickness of 1 mm and with six holes of different sizes in each layer. Two point sources (Co-57, 122 keV) were used for the performance analysis by changing the system parameters. The spatial resolution and sensitivity of the SPECT system were affected by the variation of the pinhole diameters, with the peak-to-valley ratio increasing by up to 3.3 times with the increase in the magnification of the SPECT system. Two line source phantoms (Tc-99m, 140 keV) with an internal diameter of 1 mm were used for the performance evaluation of the system. The phantoms were positioned 20 mm apart inside the ROI with a diameter of 50 mm at a position of 29 mm from the object center. By applying the VP collimator, the resolution and the sensitivity performance were improved, achieving a full width at half maximum value of 2.7 times and counts of 2.8 times those of the conventional SPECT system. In future research, we aim to improve the system efficiency by conducting simultaneous experimental driving test of the dual-head VP collimator SPECT system.
机译:单光子发射计算断层扫描(SPECT)是一种核医学成像方法,使用户能够查看患者的功能图像。作为SPECT的基本部件的准直器限制了入射伽马射线的方向,使得可以观察到来自主体的伽马光子的分布。准直器由具有高原子数和密度的屏蔽材料组成,因此难以以复杂的形状制造它们。在现有的准直器中,针孔准直器包括在屏蔽材料中穿孔的小孔径,并且在扫描期间,诸如孔直径和接受角的针孔参数的改变也是具有挑战性的。可变针孔(VP)准直器包括具有各种孔尺寸的多个薄钨层。因此,通过使用孔的组合形成所需的针孔形状,可以为感兴趣区域(ROI)而变化的针孔参数。在这项研究中,我们实施了VP准直器的概念,并在SPECT系统中应用,以提高其性能。准直器由5层的直径组成,直径为170毫米,厚度为1毫米,每层中有六个不同的尺寸。通过改变系统参数,使用两个点源(CO-57,122 keV)进行性能分析。 SPECT系统的空间分辨率和灵敏度受针孔直径的变化的影响,峰谷比随着SPECT系统的放大率的增加而增加高达3.3倍。用于内径为1mm的两个线源幻影(TC-99M,140 keV)用于系统的性能评估。在距离物体中心的位置为29mm的直径为50mm的ROI内分开20mm。通过应用VP准直器,提高了分辨率和灵敏度性能,实现了最大值的全宽度为2.7倍,并且常规SPECT系统的2.8倍的计数。在未来的研究中,我们旨在通过对双头VP准直器SPECT系统进行同时实验驾驶测试来提高系统效率。

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