首页> 外文会议>IEEE Nuclear Science Symposium and Medical Imaging Conference >Towards quantitative SPECT: Error estimation of SPECT OSEM with 3D resolution recovery, attenuation correction and scatter correction
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Towards quantitative SPECT: Error estimation of SPECT OSEM with 3D resolution recovery, attenuation correction and scatter correction

机译:朝定量SPECT:具有3D分辨率恢复,衰减校正和分散校正的SPECT OSEM的误差估计

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In this study we systematically investigate biases relevant to quantitative SPECT if OSEM with isotropic (3D) depth dependent resolution recovery (OSEM-3D), attenuation and scatter correction is used. We focus on the dependencies of activity estimation errors on the projection operator, structure size, pixel size, count density and reconstruction parameters. We use Tc-99m to establish a base line. Four Siemens low energy collimators (Low Energy Ultra High Resolution, Low Energy High Resolution, Low Energy All Purpose, Low Energy High Sensitivity) with geometric resolution between 4.4 mm and 13.1 mm at 10 cm distance and sensitivity between 100 cpm/μCi and 1020 cpm/μCi are tested with simulations of spheres with diameters between 9.8 mm and 168 mm in background. Pixel sizes and total counts are varied between 2.4 mm and 9.6 mm and 0.125 and 32 million counts. Images are reconstructed with OSEM-3D (Flash3D) with attenuation and scatter correction. Emission recovery is quantitatively measured for different reconstruction parameter settings. In addition, physical measurements of standard quality control phantoms are performed using an actual SPECT/CT system (Symbia® T6). Cross calibration of the imaging system with a well counter and results from simulations are used to quantitatively estimate the true activity concentration in the physical phantoms. Results show variations of emission recovery between 13.8% and 104.5% depending on sphere volume and number of OSEM-3D updates. After correction for the emission recovery errors and cross calibration of the imaging system the errors in absolute quantitation using the physical sphere phantom are between +0.01±0.61% for the largest (16 ml) and −5.87±1.00% for the smallest (0.5 ml) sphere. As a conclusion, the emission recovery varies over a wide range and is highly dependent on imaging parameters when using OSEM-3D reconstruction. Accurate quantitation in phantoms is possible gi--ven that errors at the specific imaging operation point can be estimated. In a clinical setup this is a nontrivial task, and perhaps too cumbersome for routine clinical use.
机译:在本研究中,如果使用具有各向同性(3D)深度依赖性分辨率恢复(OSEM-3D),衰减和散射校正,则系统地研究与定量SPECT相关的偏差。我们专注于投影算子,结构大小,像素大小,计数密度和重建参数上的活动估计误差的依赖关系。我们使用TC-99M建立基线。四个西门子低能量准直器(低能量超高分辨率,低能量高分辨率,低能量所有目的,低能量高灵敏度),几何分辨率在10cm和13.1毫米之间的几何分辨率,距离距离,100cpm /μci和1020cpm之间的灵敏度。 /μCI通过在3.8毫米和168毫米之间的球体模拟进行测试。像素尺寸和总计数在2.4 mm和9.6 mm之间变化,0.125和3200万计数。使用衰减和分散校正将图像与OSEM-3D(Flash3D)重建。为不同的重建参数设置定量测量发射恢复。此外,标准质量控制幻像的物理测量使用实际的SPECT / CT系统(Symbia®T6)进行。具有孔计数器的成像系统的交叉校准和仿真结果用于定量估计物理幻像中的真实活性浓度。结果表明,根据球体体积和OSEM-3D更新的数量,发射恢复的变化率为13.8%和104.5%。在校正发射恢复误差和成像系统的交叉校准后,使用物理球体的绝对定量的误差为最大(16毫升)的±0.01±0.61%,最小的-5.87±1.00%(0.5毫升) )球体。作为结论,排放恢复在宽范围内变化,并且在使用OSEM-3D重建时高度依赖于成像参数。幽灵中的精确定量是可以估计特定成像操作点处的误差的Gi-Hem。在临床设置中,这是一个非活动任务,也许对于常规的临床用途也许太麻烦了。

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