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Evaluation of the geometric, scatter and septal penetration components in fan beam collimators using Monte Carlo simulation

机译:蒙特卡罗模拟评估风扇束准直器中的几何,散射和隔膜渗透组分

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The quantitative analysis of SPECT data requires an accurate determination of the collimator point spread function (PSF). The aim of this work is to characterize the PSFs of fan beam and parallel collimators by using Monte Carlo simulation. Given a particular collimator configuration, a detailed hexagonal hole array is generated and information describing its geometry is stored in a look-up table. When a photon crosses the collimator front plane, a forty-hole array is placed around its impact position using this table. Each photon is then tracked up to the detector surface by using the Monte Carlo code PENELOPE and its associated geometry handling routines. Particle counters are defined that score the probability of impact on the detector as a function of the final photon position. Four sets of counters are employed so as to differentiate contributions to the geometric, septal penetration, coherent (Rayleigh) and incoherent (Compton) scatter components. Furthermore, sensitivity quantification and pulse-height energy spectra are calculated for different source locations. Monte Carlo results have been compared with sensitivity values obtained experimentally and good agreement was found. Our results show that for (99m){sup left}Tc imaging, the geometric component represents about 95% of the fan beam PSF, whereas the incoherent scattering component is negligible.
机译:SPECT数据的定量分析需要准确地确定准直器点扩展功能(PSF)。这项工作的目的是通过使用Monte Carlo仿真来表征风扇梁和平行准直器的PSF。给定特定准直器配置,生成详细的六边形孔阵列,并且描述其几何形状的信息存储在查找表中。当光子穿过准直器前平面时,使用该表将四十孔阵列放置在其冲击位置周围。然后通过使用蒙特卡罗代码佩内洛普及其相关的几何处理例程,将每个光子追踪到检测器表面。定义粒子计数器,其作为最终光子位置的函数得分对检测器的撞击概率。采用四套计数器,以区分几何,隔膜渗透,相干(瑞利)和非联络(康普顿)散射组分的贡献。此外,对不同的源位置计算灵敏度量化和脉冲高度能谱。 Monte Carlo结果已经与实验获得的敏感值进行了比较,并且发现了良好的一致性。我们的结果表明,对于(99米){SUP左} TC成像,几何分量表示风扇束PSF的约95%,而非相干散射部件可忽略不计。

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