首页> 外文期刊>Nature reviews neuroscience >Optimal virtual monoenergetic image in 'TwinBeam' dual-energy CT for organs-at-risk delineation based on contrast-noise-ratio in head-and-neck radiotherapy
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Optimal virtual monoenergetic image in 'TwinBeam' dual-energy CT for organs-at-risk delineation based on contrast-noise-ratio in head-and-neck radiotherapy

机译:基于头颈放射疗法的对比度比对比度噪声,最佳虚拟单能凝固图像在“双裁芯”双能量CT

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Purpose Dual-energy computed tomography (DECT) using TwinBeam CT (TBCT) is a new option for radiation oncology simulators. TBCT scanning provides virtual monoenergetic images which are attractive in treatment planning since lower energies offer better contrast for soft tissues, and higher energies reduce noise. A protocol is needed to achieve optimal performance of this feature. In this study, we investigated the TBCT scan schema with the head-and-neck radiotherapy workflow at our clinic and selected the optimal energy with best contrast-noise-ratio (CNR) in organs-at-risks (OARs) delineation for head-and-neck treatment planning. Methods and materials We synthesized monochromatic images from 40 keV to 190 keV at 5 keV increments from data acquired by TBCT. We collected the Hounsfield unit (HU) numbers of OARs (brainstem, mandible, spinal cord, and parotid glands), the HU numbers of marginal regions outside OARs, and the noise levels for each monochromatic image. We then calculated the CNR for the different OARs at each energy level to generate a serial of spectral curves for each OAR. Based on these spectral curves of CNR, the mono-energy corresponding to the max CNR was identified for each OAR of each patient. Results Computed tomography scans of ten patients by TBCT were used to test the optimal monoenergetic image for the CNR of OAR. Based on the maximized CNR, the optimal energy values were 78.5 +/- 5.3 keV for the brainstem, 78.0 +/- 4.2 keV for the mandible, 78.5 +/- 5.7 keV for the parotid glands, and 78.5 +/- 5.3 keV for the spinal cord. Overall, the optimal energy for the maximum CNR of these OARs in head-and-neck cancer patients was 80 keV. Conclusion We have proposed a clinically feasible protocol that selects the optimal energy level of the virtual monoenergetic image in TBCT for OAR delineation based on the CNR in head-and-neck OAR. This protocol can be applied in TBCT simulation.
机译:目的双能计算断层扫描(DECT)使用Twinbeam CT(TBCT)是放射肿瘤模拟器的新选择。 TBCT扫描提供了虚拟单元素图像,其在治疗计划中具有吸引力,因为较低的能量为软组织提供更好的对比度,并且更高的能量降低了噪音。需要协议以实现此功能的最佳性能。在这项研究中,我们调查了TBCT扫描模式,在我们的诊所的头部和颈部放射疗法工作流程,并选择了具有最佳对比 - 风险(OAR)的最佳对比 - 噪声比(CNR)的最佳能量 - 和颈部治疗计划。方法和材料我们以5keV为50kev到190keV的单色图像,从TBCT获取的数据增量。我们收集了Hounsfield单位(Hu)桨数(脑干,下颌骨,脊髓和腮腺),桨外边缘区域的HU数,以及每个单色图像的噪声水平。然后,我们计算每个能级的不同桨的CNR,以为每个OAR产生串联的光谱曲线。基于CNR的这些光谱曲线,针对每位患者的每只桨鉴定对应于MAX CNR的单能。结果TBCT的10名患者的计算断层扫描扫描用于测试OAR CNR的最佳单元图像。基于最大化的CNR,脑干的最佳能量值为78.5 +/- 5.3 keV,下颌骨78.0 +/- 4.2 keV,腮腺的78.5 +/- 5.7 kev,78.5 +/- 5.3 kev脊髓。总的来说,头颈癌症患者中最大CNR的最佳能量为80 kev。结论我们提出了一种临床可行的协议,其基于头部桨桨中的CNR选择TBCT中的TBCT中的虚拟单元图像的最佳能级。该协议可以应用于TBCT仿真。

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