Surti Suleman, Karp Joel S, Popescu Lucretiu M, Daube-Witherspoon Margaret E, Werner Matthew
Department of Radiology, University of Pennsylvania, 3400 Spruce Street, Philadelphia, PA 19104, USA.
IEEE Trans Med Imaging. 2006 May;25(5):529-38. doi: 10.1109/TMI.2006.871419.
The purpose of this paper is to determine the benefit that can be achieved in image quality for a time-of-flight (TOF) fully three-dimensional (3-D) whole-body positron emission tomography (PET) scanner. We simulate a 3-D whole-body time-of-flight PET scanner with a complete modeling of spatial and energy resolutions. The scanner is based on LaBr3 Anger-logic detectors with which 300ps timing resolution has been achieved. Multiple simulations were performed for 70-cm long uniform cylinders with 27-cm and 35-cm diameters, containing hot spheres (22, 17, 13, and 10-mm diameter) in a central slice and 10-mm diameter hot spheres in a slice at 1/4 axial FOV. Image reconstruction was performed with a list-mode iterative TOF algorithm and data were analyzed after attenuation and scatter corrections for timing resolutions of 300, 600, 1000 ps and non-TOF for varying count levels. The results show that contrast recovery improves slightly with TOF (NEMA NU2-2001 analysis), and improved timing resolution leads to a faster convergence to the maximum contrast value. Detectability for 10-mm diameter hot spheres estimated using a nonprewhitening matched filter (NPW SNR) also improves nonlinearly with TOF. The gain in image quality using contrast and noise measures is proportional to the object diameter and inversely proportional to the timing resolution of the scanner. The gains in NPW SNR are smaller, but they also increase with increasing object diameter and improved timing resolution. The results show that scan times can be reduced in a TOF scanner to achieve images similar to those from a non-TOF scanner, or improved image quality achieved for same scan times.
本文的目的是确定飞行时间(TOF)全三维(3-D)全身正电子发射断层扫描(PET)扫描仪在图像质量方面能够实现的益处。我们模拟了一台3-D全身飞行时间PET扫描仪,对其空间分辨率和能量分辨率进行了完整建模。该扫描仪基于LaBr3安杰逻辑探测器,已实现300皮秒的定时分辨率。对直径为27厘米和35厘米、长度为70厘米的均匀圆柱体进行了多次模拟,在中心切片中包含热球(直径分别为22、17、13和10毫米),在轴向视野1/4处的切片中包含直径为10毫米的热球。使用列表模式迭代TOF算法进行图像重建,并在对300、600、1000皮秒的定时分辨率以及非TOF情况进行衰减和散射校正后,针对不同计数水平对数据进行分析。结果表明,飞行时间(根据NEMA NU2 - 2001分析)可使对比度恢复略有提高,且定时分辨率的提高会导致更快地收敛到最大对比度值。使用非白化匹配滤波器(NPW SNR)估计的10毫米直径热球的可探测性也随飞行时间呈非线性提高。使用对比度和噪声测量得到的图像质量增益与物体直径成正比,与扫描仪的定时分辨率成反比。NPW SNR的增益较小,但也随着物体直径的增加和定时分辨率的提高而增加。结果表明,在飞行时间扫描仪中可以缩短扫描时间以获得与非飞行时间扫描仪相似的图像,或者在相同扫描时间下实现更高的图像质量。