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Count statistics and pileup correction for nonparalyzable photon counting detectors with finite pulse length

机译:脉冲长度有限的不可瘫痪光子计数探测器的计数统计和堆积校正

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Photon counting detectors arc expected to be the next big step in the development of medical computed tomography. Accurate modeling of the behavior of photon counting detectors in the high count rate regime is therefore important for detector performance evaluations and the development of accurate image reconstruction methods. The commonly used ideal nonparalyzable detector model is based on the assumption that photon interactions are converted to pulses with zero extent in time, which is too simplistic to accurately predict the behavior of photon counting detectors in both low and high count rate regimes. In this work we develop a statistical count model for a nonparalyzable detector with finite pulse length and use it to derive the asymptotic mean and variance of the output count distribution using tools from renewal theory. We use the statistical moments of the distribution to construct an estimator of the true number of counts for pileup correction. We confirm the accuracy of the model and evaluate the pileup correction using Monte Carlo simulations. The results show that image quality is preserved for surprisingly high count rates.
机译:光子计数检测器有望成为医学计算机断层摄影技术发展的下一步。因此,在高计数率条件下对光子计数检测器的行为进行准确建模对于检测器性能评估和精确图像重建方法的发展非常重要。常用的理想非瘫痪探测器模型是基于这样的假设,即光子相互作用被转换为时间为零的脉冲,这太简单了,无法在低计数率和高计数率两种情况下准确地预测光子计数探测器的行为。在这项工作中,我们为脉冲长度有限的不可瘫痪检测器开发了一个统计计数模型,并使用它来使用更新理论中的工具来得出输出计数分布的渐近均值和方差。我们使用分布的统计矩来构造用于堆积校正的真实计数的估计量。我们确认模型的准确性,并使用蒙特卡洛模拟评估堆积校正。结果表明,以惊人的高计数率保留了图像质量。

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