首页> 外文期刊>Medical Physics >Pulse pileup statistics for energy discriminating photon counting x-ray detectors.
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Pulse pileup statistics for energy discriminating photon counting x-ray detectors.

机译:能量分辨光子计数X射线探测器的脉冲堆积统计信息。

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Purpose: Energy discriminating photon counting x-ray detectors can be subject to a wide range of flux rates if applied in clinical settings. Even when the incident rate is a small fraction of the detector's maximum periodic rate No, pulse pileup leads to count rate losses and spectral distortion. Although the deterministic effects can be corrected, the detrimental effect of pileup on image noise is not well understood and may limit the performance of photon counting systems. Therefore, the authors devise a method to determine the detector count statistics and imaging performance. METHODS: The detector count statistics are derived analytically for an idealized pileup model with delta pulses of a nonparalyzable detector. These statistics are then used to compute the performance (e.g., contrast-to-noise ratio) for both single material and material decomposition contrast detection tasks via the Cramdr-Rao lower bound (CRLB) as a function of the detector input count rate. With more realistic unipolar and bipolar pulse pileup models of a nonparalyzable detector, the imaging task performance is determined by Monte Carlo simulations and also approximated by a multinomial method based solely on the mean detected output spectrum. Photon counting performance at different count rates is compared with ideal energy integration, which is unaffected by count rate. RESULTS: The authors found that an ideal photon counting detector with perfect energy resolution outperforms energy integration for our contrast detection tasks, but when the input count rate exceeds 20% N0, many of these benefits disappear. The benefit with iodine contrast falls rapidly with increased count rate while water contrast is not as sensitive to count rates. The performance with a delta pulse model is overoptimistic when compared to the more realistic bipolar pulse model. The multinomial approximation predicts imaging performance very close to the prediction from Monte Carlo simulations. The monoenergetic image with maximum contrast-to-noise ratio from dual energy imaging with ideal photon counting is only slightly better than with dual kVp energy integration, and with a bipolar pulse model, energy integration outperforms photon counting for this particular metric because of the count rate losses. However, the material resolving capability of photon counting can be superior to energy integration with dual kVp even in the presence of pileup because of the energy information available to photon counting. CONCLUSIONS: A computationally efficient multinomial approximation of the count statistics that is based on the mean output spectrum can accurately predict imaging performance. This enables photon counting system designers to directly relate the effect of pileup to its impact on imaging statistics and how to best take advantage of the benefits of energy discriminating photon counting detectors, such as material separation with spectral imaging.
机译:目的:如果在临床环境中使用,能区分能量的光子计数X射线探测器可能会受到多种通量率的影响。即使入射率只是检测器最大周期性率No的一小部分,脉冲堆积也会导致计数率损失和频谱失真。尽管可以纠正确定性影响,但是对图像噪声堆积的不利影响尚不清楚,并且可能会限制光子计数系统的性能。因此,作者设计了一种确定检测器计数统计信息和成像性能的方法。方法:对于具有不可瘫痪探测器的增量脉冲的理想堆积模型,可以通过分析得出探测器数量统计信息。然后将这些统计信息用于通过Cramdr-Rao下限(CRLB)计算单个材料和材料分解对比检测任务的性能(例如,对比噪声比),作为检测器输入计数率的函数。使用非瘫痪探测器的更现实的单极和双极脉冲堆积模型,成像任务的性能由Monte Carlo模拟确定,并且还可以通过仅基于平均检测输出频谱的多项式方法进行近似。将不同计数率下的光子计数性能与理想的能量积分进行比较,后者不受计数率的影响。结果:作者发现,具有理想能量分辨率的理想光子计数检测器在我们的对比度检测任务中胜过了能量积分,但是当输入计数率超过N0 20%时,其中许多好处就会消失。碘对比度的好处随着计数率的增加而迅速下降,而水对比度对计数率的敏感性不高。与更现实的双极脉冲模型相比,增量脉冲模型的性能过于乐观。多项式逼近可非常接近于蒙特卡洛模拟的预测性能。来自双能量成像和理想光子计数的具有最大对比度/噪声比的单能图像仅比双kVp能量积分稍好,并且在双极脉冲模型下,由于该计数,能量积分的性能优于此特定度量的光子计数率损失。但是,由于存在可用于光子计数的能量信息,即使在存在堆积的情况下,光子计数的材料分辨能力也可以优于具有双kVp的能量积分。结论:基于平均输出频谱的计数统计的计算有效的多项式近似可以准确地预测成像性能。这使光子计数系统设计人员能够直接将堆积的影响与其对成像统计的影响联系起来,以及如何最好地利用能量区分光子计数检测器的优势,例如利用光谱成像进行材料分离。

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