Frequency-dependent MTF and DQE of photon-counting x-ray imaging detectors (Conference Presentation)

J. Tanguay, N. Mantella, I. Cunningham
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引用次数: 0

Abstract

Theoretical modeling of the performance of x-ray imaging detectors enables understanding relationships between the physics of x-ray detection and x-ray image quality, and enables theoretical optimization of novel x-ray imaging techniques and technologies. We present an overview of a framework for theoretical modeling of the frequency-dependent signal and noise properties of single-photon-counting (SPC) and energy-resolving x-ray imaging detectors. We show that the energy-response function, large-area gain, modulation transfer function (MTF), noise power spectrum (NPS) (including spatio-energetic noise correlations) and detective quantum efficiency (DQE) of SPC and energy-resolving x-ray imaging detectors are related through the probability density function (PDF) describing the number electron-hole (e-h) pairs collected in detector elements following individual x-ray interactions. We demonstrate how a PDF-transfer approach can be used to model analytically the MTF and NPS, including spatio-energetic noise correlations, of SPC and energy-resolving x-ray imaging detectors. Our approach enables modeling the combined effects of stochastic conversion gain, electronic noise, characteristic emission, characteristic reabsorption, coulomb repulsion and diffusion of e-h pairs and energy thresholding on the MTF and NPS. We present applications of this framework to (1) analysis of the frequency-dependent DQE of SPC systems that use cadmium telluride (CdTe) x-ray converters, and (2) analysis of spatio-energetic noise correlations in CdTe energy-resolving x-ray detectors. The developed framework provides a platform for theoretical optimization of next-generation SPC and energy-resolving x-ray imaging detectors.
光子计数x射线成像探测器的频率相关MTF和DQE(会议报告)
x射线成像探测器性能的理论建模使人们能够理解x射线探测物理和x射线图像质量之间的关系,并使新型x射线成像技术和技术的理论优化成为可能。我们概述了单光子计数(SPC)和能量分辨x射线成像探测器的频率相关信号和噪声特性的理论建模框架。研究表明,SPC和能量分辨x射线成像探测器的能量响应函数、大面积增益、调制传递函数(MTF)、噪声功率谱(NPS)(包括空间-能量噪声相关性)和探测量子效率(DQE)通过描述在单个x射线相互作用后探测器元件中收集的电子-空穴(e-h)对数量的概率密度函数(PDF)相关。我们演示了如何使用pdf转移方法对SPC和能量分辨x射线成像探测器的MTF和NPS进行分析建模,包括空间能量噪声相关性。我们的方法能够模拟随机转换增益、电子噪声、特征发射、特征重吸收、e-h对的库仑排斥和扩散以及能量阈值对MTF和NPS的综合影响。我们介绍了该框架在以下方面的应用:(1)分析使用碲化镉(CdTe) x射线转换器的SPC系统的频率相关DQE,以及(2)分析CdTe能量分辨x射线探测器的空间能量噪声相关性。所开发的框架为下一代SPC和能量分辨x射线成像探测器的理论优化提供了平台。
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