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Temperature Dependence of the LabPET Small-Animal PET Scanner

机译:Labpet小动物PET扫描仪的温度依赖性

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INTRODUCTION In quantitative PET imaging it is important to correct for all image-degrading effects, for example detector efficiency variation. Detector efficiency variation depends on the stability of detector efficiency when operating conditions vary within normal limits. As the efficiency of APD-based light detection strongly depends on ambient temperature, temperature-dependent detector efficiency normalization may be needed in APD-based PET scanners. We have investigated the temperature dependence of the LabPET APD-based small-animal PET scanner. MATERIALS AND METHODS First a simulation study was performed to evaluate the effect of different APD temperature coefficients on the temperature dependence of scanner sensitivity. Five experiments were also performed. First the immediate effect of temperature changes on scanner sensitivity was evaluated. Second, the effect of temperature changes that have stabilized for a few hours was investigated. In a third experiment the axial sensitivity profile was acquired at 21°C and 24°C. Next, two acquisitions of the NEMA image quality phantom (at 21°C and 23°C) were performed and absolute quantification was done based on normalization scans acquired at the correct and incorrect temperature. Finally, the feasibility of maintaining a constant room temperature and the stability of the scanner sensitivity under constant room temperature was evaluated. RESULTS Simulations showed that the relation between temperature-dependent APD gain changes and scanner sensitivity is quite complex. A temperature deviation leading to a 1% change in APD gain corresponds to a much larger change in scanner sensitivity due to the shape of the energy histogram. In the first and second experiment a strong correlation between temperature and scanner sensitivity was observed. Changes of 2.24 kcps/MBq and 1.64 kcps/MBq per °C were seen for immediate and stabilized temperature changes respectively. The NEMA axial sensitivity profile also showed a decrease in sensitivity at higher temperature. The quantification experiment showed that a larger quantification error (up to 13%) results when a normalization scan acquired at the incorrect temperature is used. In the last experiment, temperature variability was 0.19°C and counts varied by 10.2 Mcts (1.33%). CONCLUSION The sensitivity of the LabPET small-animal PET scanner strongly depends on room temperature. Therefore, room temperature should be kept as stable as possible and temperature-dependent detector efficiency normalization should be used. However, with constant room temperature excellent scanner stability is observed. Temperature should be kept constant within 0.5°C and weekly normalization scans are recommended.
机译:在定量PET成像中引入,重要的是要对所有图像降级效果进行校正,例如检测器效率变化。检测器效率变化取决于操作条件在正常限制内变化时检测器效率的稳定性。随着基于APD的光检测的效率强烈地取决于环境温度,在基于APD的PET扫描仪中可能需要依赖于温度的检测器效率标准化。我们研究了Labpet APD的小型动物PET扫描仪的温度依赖性。材料和方法首先进行仿真研究,以评估不同APD温度系数对扫描仪灵敏度的温度依赖性的影响。还进行了五项实验。首先,评估了温度变化对扫描仪灵敏度的立即影响。其次,研究了稳定几小时稳定的温度变化的影响。在第三实验中,在21℃和24℃下获得轴向敏感性曲线。接下来,对NEMA图像质量幻像(21℃和23℃)的两次获取进行,并且基于在正确和不正确的温度下获得的标准化扫描进行绝对量化。最后,评估了保持恒定室温的可行性和持续室温下扫描仪灵敏度的稳定性。结果模拟表明,温度依赖性APD增益变化与扫描仪灵敏度之间的关系非常复杂。导致APD增益的1%变化的温度偏差对应于由于能量直方图的形状引起的扫描仪灵敏度的更大变化。在第一和第二实验中,观察到温度和扫描仪灵敏度之间的强相关性。对于即时和稳定的温度变化,可以看到2.24 kCPS / MBQ和1.64 KCPS / MBQ / MBQ / MBQ的变化。 NEMA轴向敏感性曲线还显示出较高温度的灵敏度降低。定量实验表明,当在使用不正确温度的归一化扫描时,较大的定量误差(最多13%)导致。在最后一个实验中,温度变异性为0.19℃,并且计数变化10.2MCT(1.33%)。结论Labpet小型动物PET扫描仪的灵敏度强烈取决于室温。因此,应尽可能保持室温,应尽可能稳定,应使用温度相关的检测效率标准化。然而,利用恒定的室温,观察到优异的扫描仪稳定性。温度应保持在0.5°C的0.5°C和每周标准化扫描。

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