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Improved dual-energy material discrimination for dual-source CT by means of additional spectral filtration.

机译:通过附加的光谱过滤,改善了双源CT的双能材料判别能力。

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The use of additional spectral filtration for dual-energy (DE) imaging using a dual-source CT (DSCT) system was investigated and its effect on the material-specific DE(ratio) was evaluated for several clinically relevant materials. The x-ray spectra, data acquisition, and reconstruction processes for a DSCT system (Siemens Definition) were simulated using information provided by the system manufacturer, resulting in virtual DE images. The factory-installed filtration for the 80 kV spectrum was left unchanged to avoid any further reductions in tube output, and only the filtration for the high-energy spectrum was modified. Only practical single-element filter materials within the atomic number range of 40 < or = Z < or = 83 were evaluated, with the aim of maximizing the separation between the two spectra, while maintaining similar noise levels for high- and low-energy images acquired at the same tube current. The differences between mean energies and the ratio of the 140 and 80 kV detector signals, each integrated below 80 keV, were evaluated. The simulations were performed for three attenuation scenarios: Head, body, and large body. The large body scenario was evaluated for the DE acquisition mode using the 100 and 140 kV spectra. The DE(ratio) for calcium hydroxyapatite (simulating bone or calcifications), iodine, and iron were determined for CT images simulated using the modified and factory-installed filtration. Several filter materials were found to perform well at proper thicknesses, with tin being a good practical choice. When image noise was matched between the low- and high-energy images, the spectral difference in mean absorbed energy using tin was increased from 25.7 to 42.7 keV (head), from 28.6 to 44.1 keV (body), and from 20.2 to 30.2 keV (large body). The overlap of the signal spectra for energies below 80 keV was reduced from 78% to 31% (head), from 93% to 27% (body), and from 106% to 79% (large body). The DE(ratio) for the body attenuation scenario increased from 1.45 to 1.91 (calcium), from 1.84 to 3.39 (iodine), and from 1.73 to 2.93 (iron) with the additional tin filtration compared to the factory filtration. This use of additional filtration for one of the x-ray tubes used in dual-source DECT dramatically increased the difference between material-specific DE ratios, e.g., from 0.39 to 1.48 for calcium and iodine or from 0.28 to 1.02 for calcium and iron. Because the ability to discriminate between different materials in DE imaging depends primarily on the differences in DE ratios, this increase is expected to improve the performance of any material-specific DECT imaging task. Furthermore, for the large patient size and in conjunction with a 100/140 kV acquisition, the use of additional filtration decreased noise in the low-energy images and increased contrast in the DE image relative to that obtained with 80/140 kV and no additional filtration.
机译:研究了使用双光谱CT(DSCT)系统对双能(DE)成像使用附加光谱滤光片的方法,并评估了几种临床相关材料对特定材料DE(比率)的影响。使用系统制造商提供的信息模拟了DSCT系统(Siemens Definition)的X射线光谱,数据采集和重建过程,从而生成了虚拟DE图像。出厂时安装的80 kV频谱过滤器保持不变,以避免进一步降低灯管输出功率,仅对高能频谱过滤器进行了修改。仅对原子数范围为40 <或= Z <或= 83的实用单元素滤光材料进行了评估,目的是最大限度地提高两个光谱之间的距离,同时针对高能和低能图像保持相似的噪声水平在相同的管电流下获得。评估了平均能量之间的差异以及分别集成在80 keV以下的140 kV和80 kV检测器信号之比。针对三种衰减情况执行了仿真:头部,身体和大身体。使用100 kV和140 kV谱评估了大体方案的DE采集模式。使用改进的和工厂安装的过滤器模拟的CT图像中确定了羟基磷灰石钙(模拟骨骼或钙化),碘和铁的DE(比)。发现几种过滤材料在适当的厚度下性能良好,其中锡是一个很好的实用选择。当在低能量和高能量图像之间匹配图像噪声时,使用锡的平均吸收能量的光谱差异从25.7 keV(头部)增加到从28.6 keV(44.1 keV)(身体),从20.2 keV(增加)到40.2 keV(身体)。 (大身)。对于低于80 keV的能量,信号频谱的重叠从78%降低到31%(头部),从93%降低到27%(身体),从106%降低到79%(大体)。与工厂过滤相比,在进行额外锡过滤的情况下,身体衰减情况的DE(比)从1.45增至1.91(钙),从1.84增至3.39(碘),从1.73增至2.93(铁)。对于双源DECT中使用的一个X射线管,这种额外过滤的使用显着增加了特定于材料的DE比率之间的差异,例如,钙和碘从0.39到1.48,钙和铁从0.28到1.02。由于在DE成像中区分不同材料的能力主要取决于DE比率的差异,因此可以预期,这种增加将改善任何特定于材料的DECT成像任务的性能。此外,与80/140 kV采集的图像相比,对于较大的患者规模以及与100/140 kV采集相结合,使用额外的过滤可以降低低能图像中的噪声,并提高DE图像中的对比度。过滤。

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