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Estimating ROI activity concentration with photon-processing and photon-counting SPECT imaging systems

机译:利用光子处理和光子计数SPECT成像系统估算ROI活性浓度

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Recently a new class of imaging systems, referred to as photon-processing (PP) systems, are being developed that uses real-time maximum-likelihood (ML) methods to estimate multiple attributes per detected photon and store these attributes in a list format. PP systems could have a number of potential advantages compared to systems that bin photons based on attributes such as energy, projection angle, and position, referred to as photon-counting (PC) systems. For example, PP systems do not suffer from binning-related information loss and provide the potential to extract information from attributes such as energy deposited by the detected photon. To quantify the effects of this advantage on task performance, objective evaluation studies are required. We performed this study in the context of quantitative 2-dimensional single-photon emission computed tomography (SPECT) imaging with the end task of estimating the mean activity concentration within a region of interest (ROI). We first theoretically outline the effect of null space on estimating the mean activity concentration, and argue that due to this effect, PP systems could have better estimation performance compared to PC systems with noise-free data. To evaluate the performance of PP and PC systems with noisy data, we developed a singular value decomposition (SVD)-based analytic method to estimate the activity concentration from PP systems. Using simulations, we studied the accuracy and precision of this technique in estimating the activity concentration. We used this framework to objectively compare PP and PC systems on the activity concentration estimation task. We investigated the effects of varying the size of the ROI and varying the number of bins for the attribute corresponding to the angular orientation of the detector in a continuously rotating SPECT system. The results indicate that in several cases, PP systems offer improved estimation performance compared to PC systems.
机译:最近,正在开发一种新型的成像系统,称为光子处理(PP)系统,该系统使用实时最大似然(ML)方法来估计每个检测到的光子的多个属性,并将这些属性以列表格式存储。与基于能量,投影角度和位置等属性对光子进行分类的系统(称为光子计数(PC)系统)相比,PP系统可能具有许多潜在的优势。例如,PP系统不会遭受与分箱有关的信息丢失,并具有从属性(例如由检测到的光子沉积的能量)中提取信息的潜力。为了量化这种优势对任务绩效的影响,需要进行客观评估研究。我们在定量二维单光子发射计算机断层扫描(SPECT)成像的背景下进行了这项研究,最终任务是估计感兴趣区域(ROI)内的平均活性浓度。我们首先从理论上概述了零空间对估计平均活动浓度的影响,并认为由于这种影响,PP系统与无噪声数据的PC系统相比可能具有更好的估计性能。为了评估带有嘈杂数据的PP和PC系统的性能,我们开发了一种基于奇异值分解(SVD)的分析方法来估计PP系统中的活性浓度。通过模拟,我们研究了这项技术在估算活动浓度时的准确性和精确性。我们使用此框架客观地比较了PP和PC系统在活动浓度估算任务上的作用。我们研究了在连续旋转的SPECT系统中,改变ROI大小和改变仓数的影响,以适应与检测器的角度方向相对应的属性。结果表明,在某些情况下,与PC系统相比,PP系统提供了更高的估计性能。

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