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首页> 外文期刊>Medical Physics >Efficient simulation of SPECT down-scatter including photon interactions with crystal and lead.
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Efficient simulation of SPECT down-scatter including photon interactions with crystal and lead.

机译:SPECT向下散射的有效模拟,包括光子与晶体和铅的相互作用。

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A major image degrading factor in simultaneous Dual Isotope (DI) SPECT or simultaneous Emission-Transmission (ECT-TCT) imaging, is the detection of photons emitted by the higher energy isotope in the energy window used for imaging the lower energy isotope. In Tc-99m/Tl-201 DI-SPECT typically tens of percents of the total detected down-scatter is caused by lead x rays. In Tc-99m/Gd-153 ECT-TCT, a comparable fraction of the down-scatter originates from Tc-99m photons which only partly deposit their energy in the detector crystal (i.e., due to crystal interactions). Efficient simulation methods which model down-scatter can be used to optimize DI-SPECT or ECT-TCT imaging acquisition or reconstruction protocols. In this paper we adapt a previously proposed efficient down-scatter simulation method, to include the interactions of photons with the detector crystal and collimator lead. To this end, point spread function tables including crystal and lead interactions are precalculated. Subsequently, photons are traced through the patient body until their last scatter position, and the precalculated responses are used to project the photons onto the detector plane, while photon attenuation in the patient is taken into account. The approach is evaluated by comparing simulated Tc-99m down-scatter projections with measured projections. Incorporation of photon interaction with crystal and lead leads to significantly improved accuracy of the shape of down-scatter responses, while differences in total counts between simulated and measured projections typically decrease from tens of percents to a couple of percents. Calculating 60 down-scatter projections of an extended distribution on a 64 x 64 x 64 grid takes about three minutes on a PC with two 1.2 GHz processors. We conclude that accurate and efficient simulation of down-scatter is now possible including the major effects of the nonuniform mass density of the patient as well as photon interactions with the crystal and collimator lead.
机译:同时双同位素(DI)SPECT或同时发射-透射(ECT-TCT)成像中的主要图像退化因素是,在用于成像低能同位素的能量窗口中检测高能同位素发射的光子。在Tc-99m / Tl-201中,DI-SPECT通常检测到的向下散射总量的百分之几十是由铅X射线引起的。在Tc-99m / Gd-153 ECT-TCT中,向下散射的相当一部分来自Tc-99m光子,该光子仅将其能量部分沉积在检测器晶体中(即由于晶体相互作用)。可以对向下散射进行建模的有效仿真方法可用于优化DI-SPECT或ECT-TCT成像采集或重建协议。在本文中,我们采用了先前提出的有效的向下散射模拟方法,以包括光子与探测器晶体和准直仪引线之间的相互作用。为此,预先计算了包含晶体和铅相互作用的点扩散函数表。随后,通过患者身体跟踪光子,直到其最后一个散射位置为止,并使用预先计算的响应将光子投射到检测器平面上,同时考虑到患者体内的光子衰减。通过将模拟的Tc-99m向下散射投影与测量的投影进行比较来评估该方法。光子与晶体和铅相互作用的结合可显着提高向下散射响应的形状精度,而模拟和测量的投影之间的总计数差异通常会从百分之几十减少到百分之几。在带有两个1.2 GHz处理器的PC上,在64 x 64 x 64网格上计算扩展分布的60个向下散射投影需要大约三分钟的时间。我们得出的结论是,现在可以进行准确而有效的向下散射模拟,包括患者不均匀质量密度以及光子与晶体和准直仪引线相互作用的主要影响。

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