Sauranen S, Mäkelä T, Kaasalainen T, Kortesniemi M
Department of Physics, University of Helsinki, Helsinki, Finland; HUS Diagnostic Center, Radiology, University of Helsinki and Helsinki University Hospital, P.O. Box 340, 00290 Helsinki, Finland.
Department of Physics, University of Helsinki, Helsinki, Finland; HUS Diagnostic Center, Radiology, University of Helsinki and Helsinki University Hospital, P.O. Box 340, 00290 Helsinki, Finland.
Phys Med. 2024 Feb;118:103211. doi: 10.1016/j.ejmp.2024.103211. Epub 2024 Jan 18.
A quality control (QC) system for dual-energy CT (DECT) was developed. The scope of the QC system was to monitor both the constancy of the CT images and the software used in calculating the DECT derived maps. Longitudinal analysis was based on a standard imaging protocol, a commercial multi-energy phantom, and a semi-automatic analysis tool.
The phantom consisted of an elliptical body section with round slots for interchangeable inserts. It was scanned with 90kVp/Sn150kVp, automatic tube current modulation, and 9.6 mGy CTDI. From the two conventional CT images, scanner manufacturer's software was used to provide virtual monoenergetic images at two different energies, effective atomic number (Z) maps, and iodine concentration maps. The images were analyzed using an open-source tool allowing user-selected statistics of interest. The means and standard deviations of the phantom background and the iodine, calcium, and water inserts were recorded. The QC tool is available at github.com/tomakela/dectqatool.
The obtained results were generally highly consistent over time, except for the smaller diameter iodine inserts. A small change inZ was observed after a DECT software update. The developed QC tool aided the analysis robustness: the segmentations were modifiable when needed, and small rotations or air bubbles in the water insert were easily corrected.
The developed QC system provided easy-to-use workflow for constancy measurements. A small deviation due to change in the post-processing was detected. The proposed imaging protocol and analysis steps, and the reported measurement variations can aid in determining action levels for DECT QC.
开发了一种用于双能CT(DECT)的质量控制(QC)系统。该QC系统的范围是监测CT图像的稳定性以及用于计算DECT衍生图谱的软件。纵向分析基于标准成像协议、商用多能体模和半自动分析工具。
体模由一个椭圆形身体部分组成,带有用于可互换插入物的圆形插槽。采用90kVp/Sn150kVp、自动管电流调制和9.6 mGy CTDI进行扫描。从两幅传统CT图像中,使用扫描仪制造商的软件提供两种不同能量下的虚拟单能图像、有效原子序数(Z)图谱和碘浓度图谱。使用开源工具对图像进行分析,该工具允许用户选择感兴趣的统计数据。记录体模背景以及碘、钙和水插入物的均值和标准差。该QC工具可在github.com/tomakela/dectqatool上获取。
除了较小直径的碘插入物外,随时间获得的结果总体上高度一致。在DECT软件更新后,观察到Z有小的变化。开发的QC工具有助于提高分析的稳健性:分割在需要时可修改,并且水插入物中的小旋转或气泡很容易校正。
开发的QC系统为稳定性测量提供了易于使用的工作流程。检测到由于后处理变化导致的小偏差。所提出的成像协议和分析步骤以及报告的测量变化有助于确定DECT QC的行动水平。